diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/Cargo.toml b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/Cargo.toml new file mode 100644 index 0000000000000000000000000000000000000000..a6785bb20555dbae92f6ae9fb9801aeb1e453f64 --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/Cargo.toml @@ -0,0 +1,26 @@ +[package] +name = "std_detect" +version = "0.1.5" +authors = [ + "Alex Crichton ", + "Andrew Gallant ", + "Gonzalo Brito Gadeschi ", +] +description = "`std::detect` - Rust's standard library run-time CPU feature detection." +license = "MIT OR Apache-2.0" +edition = "2024" + +[badges] +is-it-maintained-issue-resolution = { repository = "rust-lang/stdarch" } +is-it-maintained-open-issues = { repository = "rust-lang/stdarch" } +maintenance = { status = "experimental" } + +[dependencies] +core = { version = "1.0.0", package = 'rustc-std-workspace-core' } +alloc = { version = "1.0.0", package = 'rustc-std-workspace-alloc' } + +[target.'cfg(not(windows))'.dependencies] +libc = { version = "0.2.0", default-features = false } + +[features] +std_detect_env_override = [] diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/README.md b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/README.md new file mode 100644 index 0000000000000000000000000000000000000000..895f3426d04959c31ad340ca2088d168c57ad95a --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/README.md @@ -0,0 +1,69 @@ +`std::detect` - Rust's standard library run-time CPU feature detection +======= + +The private `std::detect` module implements run-time feature detection in Rust's +standard library. This allows detecting whether the CPU the binary runs on +supports certain features, like SIMD instructions. + +# Usage + +`std::detect` APIs are available as part of `libstd`. Prefer using it via the +standard library than through this crate. Unstable features of `std::detect` are +available on nightly Rust behind various feature-gates. + +If you need run-time feature detection in `#[no_std]` environments, Rust `core` +library cannot help you. By design, Rust `core` is platform independent, but +performing run-time feature detection requires a certain level of cooperation +from the platform. + +You can then manually include `std_detect` as a dependency to get similar +run-time feature detection support than the one offered by Rust's standard +library. We intend to make `std_detect` more flexible and configurable in this +regard to better serve the needs of `#[no_std]` targets. + +# Platform support + +* All `x86`/`x86_64` targets are supported on all platforms by querying the + `cpuid` instruction directly for the features supported by the hardware and + the operating system. `std_detect` assumes that the binary is an user-space + application. + +* Linux/Android: + * `arm{32, 64}`, `mips{32,64}{,el}`, `powerpc{32,64}{,le}`, `loongarch{32,64}`, `s390x`: + `std_detect` supports these on Linux by querying ELF auxiliary vectors (using `getauxval` + when available), and if that fails, by querying `/proc/self/auxv`. + * `arm64`: partial support for doing run-time feature detection by directly + querying `mrs` is implemented for Linux >= 4.11, but not enabled by default. + * `riscv{32,64}`: + `std_detect` supports these on Linux by querying `riscv_hwprobe`, and + by querying ELF auxiliary vectors (using `getauxval` when available). + +* FreeBSD: + * `arm32`, `powerpc64`: `std_detect` supports these on FreeBSD by querying ELF + auxiliary vectors using `elf_aux_info`. + * `arm64`: run-time feature detection is implemented by directly querying `mrs`. + +* OpenBSD: + * `powerpc64`: `std_detect` supports these on OpenBSD by querying ELF auxiliary + vectors using `elf_aux_info`. + * `arm64`: run-time feature detection is implemented by querying `sysctl`. + +* Windows: + * `arm64`: run-time feature detection is implemented by querying `IsProcessorFeaturePresent`. + +# License + +This project is licensed under either of + + * Apache License, Version 2.0, ([LICENSE-APACHE](LICENSE-APACHE) or + http://www.apache.org/licenses/LICENSE-2.0) + * MIT license ([LICENSE-MIT](LICENSE-MIT) or + http://opensource.org/licenses/MIT) + +at your option. + +# Contribution + +Unless you explicitly state otherwise, any contribution intentionally submitted +for inclusion in `std_detect` by you, as defined in the Apache-2.0 license, +shall be dual licensed as above, without any additional terms or conditions. diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/arch/aarch64.rs b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/arch/aarch64.rs new file mode 100644 index 0000000000000000000000000000000000000000..5e85e96374edaeb8ac3e0d7a9af8d17fe29be32a --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/arch/aarch64.rs @@ -0,0 +1,264 @@ +//! Aarch64 run-time features. + +features! { + @TARGET: aarch64; + @CFG: any(target_arch = "aarch64", target_arch = "arm64ec"); + @MACRO_NAME: is_aarch64_feature_detected; + @MACRO_ATTRS: + /// Check for the presence of a CPU feature at runtime. + /// + /// When the feature is known to be enabled at compile time (e.g. via `-Ctarget-feature`) + /// the macro expands to `true`. + /// + /// This macro takes one argument which is a string literal of the feature being tested for. + /// The feature names are mostly taken from their FEAT_* definitions in the [ARM Architecture + /// Reference Manual][docs]. + /// + /// Currently most features are only supported on linux-based platforms: on other platforms the + /// runtime check will always return `false`. + /// + /// ## Supported arguments + /// + /// * `"aes"` - FEAT_AES & FEAT_PMULL + /// * `"asimd"` or "neon" - FEAT_AdvSIMD + /// * `"bf16"` - FEAT_BF16 + /// * `"bti"` - FEAT_BTI + /// * `"crc"` - FEAT_CRC + /// * `"cssc"` - FEAT_CSSC + /// * `"dit"` - FEAT_DIT + /// * `"dotprod"` - FEAT_DotProd + /// * `"dpb"` - FEAT_DPB + /// * `"dpb2"` - FEAT_DPB2 + /// * `"ecv"` - FEAT_ECV + /// * `"f32mm"` - FEAT_F32MM + /// * `"f64mm"` - FEAT_F64MM + /// * `"faminmax"` - FEAT_FAMINMAX + /// * `"fcma"` - FEAT_FCMA + /// * `"fhm"` - FEAT_FHM + /// * `"flagm"` - FEAT_FLAGM + /// * `"flagm2"` - FEAT_FLAGM2 + /// * `"fp"` - FEAT_FP + /// * `"fp16"` - FEAT_FP16 + /// * `"fp8"` - FEAT_FP8 + /// * `"fp8dot2"` - FEAT_FP8DOT2 + /// * `"fp8dot4"` - FEAT_FP8DOT4 + /// * `"fp8fma"` - FEAT_FP8FMA + /// * `"fpmr"` - FEAT_FPMR + /// * `"frintts"` - FEAT_FRINTTS + /// * `"hbc"` - FEAT_HBC + /// * `"i8mm"` - FEAT_I8MM + /// * `"jsconv"` - FEAT_JSCVT + /// * `"lse"` - FEAT_LSE + /// * `"lse128"` - FEAT_LSE128 + /// * `"lse2"` - FEAT_LSE2 + /// * `"lut"` - FEAT_LUT + /// * `"mops"` - FEAT_MOPS + /// * `"mte"` - FEAT_MTE & FEAT_MTE2 + /// * `"paca"` - FEAT_PAuth (address authentication) + /// * `"pacg"` - FEAT_Pauth (generic authentication) + /// * `"pauth-lr"` - FEAT_PAuth_LR + /// * `"pmull"` - FEAT_PMULL + /// * `"rand"` - FEAT_RNG + /// * `"rcpc"` - FEAT_LRCPC + /// * `"rcpc2"` - FEAT_LRCPC2 + /// * `"rcpc3"` - FEAT_LRCPC3 + /// * `"rdm"` - FEAT_RDM + /// * `"sb"` - FEAT_SB + /// * `"sha2"` - FEAT_SHA1 & FEAT_SHA256 + /// * `"sha3"` - FEAT_SHA512 & FEAT_SHA3 + /// * `"sm4"` - FEAT_SM3 & FEAT_SM4 + /// * `"sme"` - FEAT_SME + /// * `"sme-b16b16"` - FEAT_SME_B16B16 + /// * `"sme-f16f16"` - FEAT_SME_F16F16 + /// * `"sme-f64f64"` - FEAT_SME_F64F64 + /// * `"sme-f8f16"` - FEAT_SME_F8F16 + /// * `"sme-f8f32"` - FEAT_SME_F8F32 + /// * `"sme-fa64"` - FEAT_SME_FA64 + /// * `"sme-i16i64"` - FEAT_SME_I16I64 + /// * `"sme-lutv2"` - FEAT_SME_LUTv2 + /// * `"sme2"` - FEAT_SME2 + /// * `"sme2p1"` - FEAT_SME2p1 + /// * `"ssbs"` - FEAT_SSBS & FEAT_SSBS2 + /// * `"ssve-fp8dot2"` - FEAT_SSVE_FP8DOT2 + /// * `"ssve-fp8dot4"` - FEAT_SSVE_FP8DOT4 + /// * `"ssve-fp8fma"` - FEAT_SSVE_FP8FMA + /// * `"sve"` - FEAT_SVE + /// * `"sve-b16b16"` - FEAT_SVE_B16B16 (SVE or SME Z-targeting instructions) + /// * `"sve2"` - FEAT_SVE2 + /// * `"sve2-aes"` - FEAT_SVE_AES & FEAT_SVE_PMULL128 (SVE2 AES crypto) + /// * `"sve2-bitperm"` - FEAT_SVE2_BitPerm + /// * `"sve2-sha3"` - FEAT_SVE2_SHA3 + /// * `"sve2-sm4"` - FEAT_SVE2_SM4 + /// * `"sve2p1"` - FEAT_SVE2p1 + /// * `"tme"` - FEAT_TME + /// * `"wfxt"` - FEAT_WFxT + /// + /// [docs]: https://developer.arm.com/documentation/ddi0487/latest + #[stable(feature = "simd_aarch64", since = "1.60.0")] + @BIND_FEATURE_NAME: "asimd"; "neon"; + @NO_RUNTIME_DETECTION: "ras"; + @NO_RUNTIME_DETECTION: "v8.1a"; + @NO_RUNTIME_DETECTION: "v8.2a"; + @NO_RUNTIME_DETECTION: "v8.3a"; + @NO_RUNTIME_DETECTION: "v8.4a"; + @NO_RUNTIME_DETECTION: "v8.5a"; + @NO_RUNTIME_DETECTION: "v8.6a"; + @NO_RUNTIME_DETECTION: "v8.7a"; + @NO_RUNTIME_DETECTION: "v8.8a"; + @NO_RUNTIME_DETECTION: "v8.9a"; + @NO_RUNTIME_DETECTION: "v9.1a"; + @NO_RUNTIME_DETECTION: "v9.2a"; + @NO_RUNTIME_DETECTION: "v9.3a"; + @NO_RUNTIME_DETECTION: "v9.4a"; + @NO_RUNTIME_DETECTION: "v9.5a"; + @NO_RUNTIME_DETECTION: "v9a"; + @FEATURE: #[stable(feature = "simd_aarch64", since = "1.60.0")] asimd: "neon"; + /// FEAT_AdvSIMD (Advanced SIMD/NEON) + @FEATURE: #[stable(feature = "simd_aarch64", since = "1.60.0")] pmull: "pmull"; + implied by target_features: ["aes"]; + /// FEAT_PMULL (Polynomial Multiply) - Implied by `aes` target_feature + @FEATURE: #[stable(feature = "simd_aarch64", since = "1.60.0")] fp: "fp"; + implied by target_features: ["neon"]; + /// FEAT_FP (Floating point support) - Implied by `neon` target_feature + @FEATURE: #[stable(feature = "simd_aarch64", since = "1.60.0")] aes: "aes"; + /// FEAT_AES (AES SIMD instructions) & FEAT_PMULL (PMULL{2}, 64-bit operand variants) + @FEATURE: #[stable(feature = "simd_aarch64", since = "1.60.0")] bf16: "bf16"; + /// FEAT_BF16 (BFloat16 type, plus MM instructions, plus ASIMD support) + @FEATURE: #[stable(feature = "simd_aarch64", since = "1.60.0")] bti: "bti"; + /// FEAT_BTI (Branch Target Identification) + @FEATURE: #[stable(feature = "simd_aarch64", since = "1.60.0")] crc: "crc"; + /// FEAT_CRC32 (Cyclic Redundancy Check) + @FEATURE: #[unstable(feature = "stdarch_aarch64_feature_detection", issue = "127764")] cssc: "cssc"; + /// FEAT_CSSC (Common Short Sequence Compression instructions) + @FEATURE: #[stable(feature = "simd_aarch64", since = "1.60.0")] dit: "dit"; + /// FEAT_DIT (Data Independent Timing instructions) + @FEATURE: #[stable(feature = "simd_aarch64", since = "1.60.0")] dpb: "dpb"; + /// FEAT_DPB (aka dcpop - data cache clean to point of persistence) + @FEATURE: #[stable(feature = "simd_aarch64", since = "1.60.0")] dpb2: "dpb2"; + /// FEAT_DPB2 (aka dcpodp - data cache clean to point of deep persistence) + @FEATURE: #[stable(feature = "simd_aarch64", since = "1.60.0")] dotprod: "dotprod"; + /// FEAT_DotProd (Vector Dot-Product - ASIMDDP) + @FEATURE: #[unstable(feature = "stdarch_aarch64_feature_detection", issue = "127764")] ecv: "ecv"; + /// FEAT_ECV (Enhanced Counter Virtualization) + @FEATURE: #[stable(feature = "simd_aarch64", since = "1.60.0")] f32mm: "f32mm"; + /// FEAT_F32MM (single-precision matrix multiplication) + @FEATURE: #[stable(feature = "simd_aarch64", since = "1.60.0")] f64mm: "f64mm"; + /// FEAT_F64MM (double-precision matrix multiplication) + @FEATURE: #[unstable(feature = "stdarch_aarch64_feature_detection", issue = "127764")] faminmax: "faminmax"; + /// FEAT_FAMINMAX (FAMIN and FAMAX SIMD/SVE/SME instructions) + @FEATURE: #[stable(feature = "simd_aarch64", since = "1.60.0")] fcma: "fcma"; + /// FEAT_FCMA (float complex number operations) + @FEATURE: #[stable(feature = "simd_aarch64", since = "1.60.0")] fhm: "fhm"; + /// FEAT_FHM (fp16 multiplication instructions) + @FEATURE: #[stable(feature = "simd_aarch64", since = "1.60.0")] flagm: "flagm"; + /// FEAT_FLAGM (flag manipulation instructions) + @FEATURE: #[unstable(feature = "stdarch_aarch64_feature_detection", issue = "127764")] flagm2: "flagm2"; + /// FEAT_FLAGM2 (flag manipulation instructions) + @FEATURE: #[stable(feature = "simd_aarch64", since = "1.60.0")] fp16: "fp16"; + /// FEAT_FP16 (Half-float support) + @FEATURE: #[unstable(feature = "stdarch_aarch64_feature_detection", issue = "127764")] fp8: "fp8"; + /// FEAT_FP8 (F8CVT Instructions) + @FEATURE: #[unstable(feature = "stdarch_aarch64_feature_detection", issue = "127764")] fp8dot2: "fp8dot2"; + /// FEAT_FP8DOT2 (F8DP2 Instructions) + @FEATURE: #[unstable(feature = "stdarch_aarch64_feature_detection", issue = "127764")] fp8dot4: "fp8dot4"; + /// FEAT_FP8DOT4 (F8DP4 Instructions) + @FEATURE: #[unstable(feature = "stdarch_aarch64_feature_detection", issue = "127764")] fp8fma: "fp8fma"; + /// FEAT_FP8FMA (F8FMA Instructions) + @FEATURE: #[unstable(feature = "stdarch_aarch64_feature_detection", issue = "127764")] fpmr: "fpmr"; + without cfg check: true; + /// FEAT_FPMR (Special-purpose AArch64-FPMR register) + @FEATURE: #[stable(feature = "simd_aarch64", since = "1.60.0")] frintts: "frintts"; + /// FEAT_FRINTTS (float to integer rounding instructions) + @FEATURE: #[unstable(feature = "stdarch_aarch64_feature_detection", issue = "127764")] hbc: "hbc"; + /// FEAT_HBC (Hinted conditional branches) + @FEATURE: #[stable(feature = "simd_aarch64", since = "1.60.0")] i8mm: "i8mm"; + /// FEAT_I8MM (integer matrix multiplication, plus ASIMD support) + @FEATURE: #[stable(feature = "simd_aarch64", since = "1.60.0")] jsconv: "jsconv"; + /// FEAT_JSCVT (JavaScript float conversion instructions) + @FEATURE: #[stable(feature = "simd_aarch64", since = "1.60.0")] lse: "lse"; + /// FEAT_LSE (Large System Extension - atomics) + @FEATURE: #[unstable(feature = "stdarch_aarch64_feature_detection", issue = "127764")] lse128: "lse128"; + /// FEAT_LSE128 (128-bit atomics) + @FEATURE: #[stable(feature = "simd_aarch64", since = "1.60.0")] lse2: "lse2"; + /// FEAT_LSE2 (unaligned and register-pair atomics) + @FEATURE: #[unstable(feature = "stdarch_aarch64_feature_detection", issue = "127764")] lut: "lut"; + /// FEAT_LUT (Lookup Table Instructions) + @FEATURE: #[unstable(feature = "stdarch_aarch64_feature_detection", issue = "127764")] mops: "mops"; + /// FEAT_MOPS (Standardization of memory operations) + @FEATURE: #[stable(feature = "simd_aarch64", since = "1.60.0")] mte: "mte"; + /// FEAT_MTE & FEAT_MTE2 (Memory Tagging Extension) + @FEATURE: #[stable(feature = "simd_aarch64", since = "1.60.0")] paca: "paca"; + /// FEAT_PAuth (address authentication) + @FEATURE: #[stable(feature = "simd_aarch64", since = "1.60.0")] pacg: "pacg"; + /// FEAT_PAuth (generic authentication) + @FEATURE: #[unstable(feature = "stdarch_aarch64_feature_detection", issue = "127764")] pauth_lr: "pauth-lr"; + /// FEAT_PAuth_LR + @FEATURE: #[stable(feature = "simd_aarch64", since = "1.60.0")] rand: "rand"; + /// FEAT_RNG (Random Number Generator) + @FEATURE: #[stable(feature = "simd_aarch64", since = "1.60.0")] rcpc: "rcpc"; + /// FEAT_LRCPC (Release consistent Processor consistent) + @FEATURE: #[stable(feature = "simd_aarch64", since = "1.60.0")] rcpc2: "rcpc2"; + /// FEAT_LRCPC2 (RCPC with immediate offsets) + @FEATURE: #[unstable(feature = "stdarch_aarch64_feature_detection", issue = "127764")] rcpc3: "rcpc3"; + /// FEAT_LRCPC3 (RCPC Instructions v3) + @FEATURE: #[stable(feature = "simd_aarch64", since = "1.60.0")] rdm: "rdm"; + /// FEAT_RDM (Rounding Doubling Multiply - ASIMDRDM) + @FEATURE: #[stable(feature = "simd_aarch64", since = "1.60.0")] sb: "sb"; + /// FEAT_SB (speculation barrier) + @FEATURE: #[stable(feature = "simd_aarch64", since = "1.60.0")] sha2: "sha2"; + /// FEAT_SHA1 & FEAT_SHA256 (SHA1 & SHA2-256 instructions) + @FEATURE: #[stable(feature = "simd_aarch64", since = "1.60.0")] sha3: "sha3"; + /// FEAT_SHA512 & FEAT_SHA3 (SHA2-512 & SHA3 instructions) + @FEATURE: #[stable(feature = "simd_aarch64", since = "1.60.0")] sm4: "sm4"; + /// FEAT_SM3 & FEAT_SM4 (SM3 & SM4 instructions) + @FEATURE: #[unstable(feature = "stdarch_aarch64_feature_detection", issue = "127764")] sme: "sme"; + /// FEAT_SME (Scalable Matrix Extension) + @FEATURE: #[unstable(feature = "stdarch_aarch64_feature_detection", issue = "127764")] sme2: "sme2"; + /// FEAT_SME2 (SME Version 2) + @FEATURE: #[unstable(feature = "stdarch_aarch64_feature_detection", issue = "127764")] sme2p1: "sme2p1"; + /// FEAT_SME2p1 (SME Version 2.1) + @FEATURE: #[unstable(feature = "stdarch_aarch64_feature_detection", issue = "127764")] sme_b16b16: "sme-b16b16"; + /// FEAT_SME_B16B16 + @FEATURE: #[unstable(feature = "stdarch_aarch64_feature_detection", issue = "127764")] sme_f16f16: "sme-f16f16"; + /// FEAT_SME_F16F16 (Non-widening half-precision FP16 to FP16 arithmetic for SME2) + @FEATURE: #[unstable(feature = "stdarch_aarch64_feature_detection", issue = "127764")] sme_f64f64: "sme-f64f64"; + /// FEAT_SME_F64F64 (Double-precision floating-point outer product instructions) + @FEATURE: #[unstable(feature = "stdarch_aarch64_feature_detection", issue = "127764")] sme_f8f16: "sme-f8f16"; + /// FEAT_SME_F8F16 + @FEATURE: #[unstable(feature = "stdarch_aarch64_feature_detection", issue = "127764")] sme_f8f32: "sme-f8f32"; + /// FEAT_SME_F8F32 + @FEATURE: #[unstable(feature = "stdarch_aarch64_feature_detection", issue = "127764")] sme_fa64: "sme-fa64"; + /// FEAT_SME_FA64 (Full A64 instruction set support in Streaming SVE mode) + @FEATURE: #[unstable(feature = "stdarch_aarch64_feature_detection", issue = "127764")] sme_i16i64: "sme-i16i64"; + /// FEAT_SME_I16I64 (16-bit to 64-bit integer widening outer product instructions) + @FEATURE: #[unstable(feature = "stdarch_aarch64_feature_detection", issue = "127764")] sme_lutv2: "sme-lutv2"; + /// FEAT_SME_LUTv2 (LUTI4 Instruction) + @FEATURE: #[stable(feature = "simd_aarch64", since = "1.60.0")] ssbs: "ssbs"; + /// FEAT_SSBS & FEAT_SSBS2 (speculative store bypass safe) + @FEATURE: #[unstable(feature = "stdarch_aarch64_feature_detection", issue = "127764")] ssve_fp8dot2: "ssve-fp8dot2"; + /// FEAT_SSVE_FP8DOT2 + @FEATURE: #[unstable(feature = "stdarch_aarch64_feature_detection", issue = "127764")] ssve_fp8dot4: "ssve-fp8dot4"; + /// FEAT_SSVE_FP8DOT4 + @FEATURE: #[unstable(feature = "stdarch_aarch64_feature_detection", issue = "127764")] ssve_fp8fma: "ssve-fp8fma"; + /// FEAT_SSVE_FP8FMA + @FEATURE: #[stable(feature = "simd_aarch64", since = "1.60.0")] sve: "sve"; + /// FEAT_SVE (Scalable Vector Extension) + @FEATURE: #[stable(feature = "simd_aarch64", since = "1.60.0")] sve2: "sve2"; + /// FEAT_SVE2 (Scalable Vector Extension 2) + @FEATURE: #[unstable(feature = "stdarch_aarch64_feature_detection", issue = "127764")] sve2p1: "sve2p1"; + /// FEAT_SVE2p1 (Scalable Vector Extension 2.1) + @FEATURE: #[stable(feature = "simd_aarch64", since = "1.60.0")] sve2_aes: "sve2-aes"; + /// FEAT_SVE_AES & FEAT_SVE_PMULL128 (SVE2 AES crypto) + @FEATURE: #[unstable(feature = "stdarch_aarch64_feature_detection", issue = "127764")] sve_b16b16: "sve-b16b16"; + /// FEAT_SVE_B16B16 (SVE or SME Z-targeting instructions) + @FEATURE: #[stable(feature = "simd_aarch64", since = "1.60.0")] sve2_bitperm: "sve2-bitperm"; + /// FEAT_SVE_BitPerm (SVE2 bit permutation instructions) + @FEATURE: #[stable(feature = "simd_aarch64", since = "1.60.0")] sve2_sha3: "sve2-sha3"; + /// FEAT_SVE_SHA3 (SVE2 SHA3 crypto) + @FEATURE: #[stable(feature = "simd_aarch64", since = "1.60.0")] sve2_sm4: "sve2-sm4"; + /// FEAT_SVE_SM4 (SVE2 SM4 crypto) + @FEATURE: #[stable(feature = "simd_aarch64", since = "1.60.0")] tme: "tme"; + /// FEAT_TME (Transactional Memory Extensions) + @FEATURE: #[unstable(feature = "stdarch_aarch64_feature_detection", issue = "127764")] wfxt: "wfxt"; + /// FEAT_WFxT (WFET and WFIT Instructions) +} diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/arch/arm.rs b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/arch/arm.rs new file mode 100644 index 0000000000000000000000000000000000000000..75b8ca9a1e88089e20886de372225bec0ea26d73 --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/arch/arm.rs @@ -0,0 +1,32 @@ +//! Run-time feature detection on ARM Aarch32. + +features! { + @TARGET: arm; + @CFG: target_arch = "arm"; + @MACRO_NAME: is_arm_feature_detected; + @MACRO_ATTRS: + /// Check for the presence of a CPU feature at runtime. + /// + /// When the feature is known to be enabled at compile time (e.g. via `-Ctarget-feature`) + /// the macro expands to `true`. + #[unstable(feature = "stdarch_arm_feature_detection", issue = "111190")] + @NO_RUNTIME_DETECTION: "v7"; + @NO_RUNTIME_DETECTION: "vfp2"; + @NO_RUNTIME_DETECTION: "vfp3"; + @NO_RUNTIME_DETECTION: "vfp4"; + @FEATURE: #[unstable(feature = "stdarch_arm_feature_detection", issue = "111190")] neon: "neon"; + /// ARM Advanced SIMD (NEON) - Aarch32 + @FEATURE: #[unstable(feature = "stdarch_arm_feature_detection", issue = "111190")] pmull: "pmull"; + without cfg check: true; + /// Polynomial Multiply + @FEATURE: #[unstable(feature = "stdarch_arm_feature_detection", issue = "111190")] crc: "crc"; + /// CRC32 (Cyclic Redundancy Check) + @FEATURE: #[unstable(feature = "stdarch_arm_feature_detection", issue = "111190")] aes: "aes"; + /// FEAT_AES (AES instructions) + @FEATURE: #[unstable(feature = "stdarch_arm_feature_detection", issue = "111190")] sha2: "sha2"; + /// FEAT_SHA1 & FEAT_SHA256 (SHA1 & SHA2-256 instructions) + @FEATURE: #[unstable(feature = "stdarch_arm_feature_detection", issue = "111190")] i8mm: "i8mm"; + /// FEAT_I8MM (integer matrix multiplication, plus ASIMD support) + @FEATURE: #[unstable(feature = "stdarch_arm_feature_detection", issue = "111190")] dotprod: "dotprod"; + /// FEAT_DotProd (Vector Dot-Product - ASIMDDP) +} diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/arch/loongarch.rs b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/arch/loongarch.rs new file mode 100644 index 0000000000000000000000000000000000000000..62996277381114cea062123107c58de6ec4212bd --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/arch/loongarch.rs @@ -0,0 +1,58 @@ +//! Run-time feature detection on LoongArch. + +features! { + @TARGET: loongarch; + @CFG: any(target_arch = "loongarch32", target_arch = "loongarch64"); + @MACRO_NAME: is_loongarch_feature_detected; + @MACRO_ATTRS: + /// Check for the presence of a CPU feature at runtime. + /// + /// When the feature is known to be enabled at compile time (e.g. via `-Ctarget-feature`) + /// the macro expands to `true`. + /// + /// Supported arguments are: + /// + /// * `"32s"` + /// * `"f"` + /// * `"d"` + /// * `"frecipe"` + /// * `"div32"` + /// * `"lsx"` + /// * `"lasx"` + /// * `"lam-bh"` + /// * `"lamcas"` + /// * `"ld-seq-sa"` + /// * `"scq"` + /// * `"lbt"` + /// * `"lvz"` + /// * `"ual"` + #[stable(feature = "stdarch_loongarch_feature", since = "1.89.0")] + @FEATURE: #[unstable(feature = "stdarch_loongarch_feature_detection", issue = "117425")] _32s: "32s"; + /// 32S + @FEATURE: #[stable(feature = "stdarch_loongarch_feature", since = "1.89.0")] f: "f"; + /// F + @FEATURE: #[stable(feature = "stdarch_loongarch_feature", since = "1.89.0")] d: "d"; + /// D + @FEATURE: #[stable(feature = "stdarch_loongarch_feature", since = "1.89.0")] frecipe: "frecipe"; + /// Frecipe + @FEATURE: #[unstable(feature = "stdarch_loongarch_feature_detection", issue = "117425")] div32: "div32"; + /// Div32 + @FEATURE: #[stable(feature = "stdarch_loongarch_feature", since = "1.89.0")] lsx: "lsx"; + /// LSX + @FEATURE: #[stable(feature = "stdarch_loongarch_feature", since = "1.89.0")] lasx: "lasx"; + /// LASX + @FEATURE: #[unstable(feature = "stdarch_loongarch_feature_detection", issue = "117425")] lam_bh: "lam-bh"; + /// LAM-BH + @FEATURE: #[unstable(feature = "stdarch_loongarch_feature_detection", issue = "117425")] lamcas: "lamcas"; + /// LAM-CAS + @FEATURE: #[unstable(feature = "stdarch_loongarch_feature_detection", issue = "117425")] ld_seq_sa: "ld-seq-sa"; + /// LD-SEQ-SA + @FEATURE: #[unstable(feature = "stdarch_loongarch_feature_detection", issue = "117425")] scq: "scq"; + /// SCQ + @FEATURE: #[stable(feature = "stdarch_loongarch_feature", since = "1.89.0")] lbt: "lbt"; + /// LBT + @FEATURE: #[stable(feature = "stdarch_loongarch_feature", since = "1.89.0")] lvz: "lvz"; + /// LVZ + @FEATURE: #[unstable(feature = "stdarch_loongarch_feature_detection", issue = "117425")] ual: "ual"; + /// UAL +} diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/arch/mips.rs b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/arch/mips.rs new file mode 100644 index 0000000000000000000000000000000000000000..9e1960eb96da5a3de30a4147611f778aeba12c68 --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/arch/mips.rs @@ -0,0 +1,15 @@ +//! Run-time feature detection on MIPS. + +features! { + @TARGET: mips; + @CFG: target_arch = "mips"; + @MACRO_NAME: is_mips_feature_detected; + @MACRO_ATTRS: + /// Check for the presence of a CPU feature at runtime. + /// + /// When the feature is known to be enabled at compile time (e.g. via `-Ctarget-feature`) + /// the macro expands to `true`. + #[unstable(feature = "stdarch_mips_feature_detection", issue = "111188")] + @FEATURE: #[unstable(feature = "stdarch_mips_feature_detection", issue = "111188")] msa: "msa"; + /// MIPS SIMD Architecture (MSA) +} diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/arch/mips64.rs b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/arch/mips64.rs new file mode 100644 index 0000000000000000000000000000000000000000..2bb44ba6e2b39486f58a08400e0a58b2d9f1b904 --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/arch/mips64.rs @@ -0,0 +1,15 @@ +//! Run-time feature detection on MIPS64. + +features! { + @TARGET: mips64; + @CFG: target_arch = "mips64"; + @MACRO_NAME: is_mips64_feature_detected; + @MACRO_ATTRS: + /// Check for the presence of a CPU feature at runtime. + /// + /// When the feature is known to be enabled at compile time (e.g. via `-Ctarget-feature`) + /// the macro expands to `true`. + #[unstable(feature = "stdarch_mips_feature_detection", issue = "111188")] + @FEATURE: #[unstable(feature = "stdarch_mips_feature_detection", issue = "111188")] msa: "msa"; + /// MIPS SIMD Architecture (MSA) +} diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/arch/mod.rs b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/arch/mod.rs new file mode 100644 index 0000000000000000000000000000000000000000..2be7f091c285eca69c4419486e370163eb01c1cc --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/arch/mod.rs @@ -0,0 +1,83 @@ +#![allow(dead_code)] + +// Export the macros for all supported architectures. +#[macro_use] +mod x86; +#[macro_use] +mod arm; +#[macro_use] +mod aarch64; +#[macro_use] +mod riscv; +#[macro_use] +mod powerpc; +#[macro_use] +mod powerpc64; +#[macro_use] +mod mips; +#[macro_use] +mod mips64; +#[macro_use] +mod loongarch; +#[macro_use] +mod s390x; + +cfg_select! { + any(target_arch = "x86", target_arch = "x86_64") => { + #[stable(feature = "simd_x86", since = "1.27.0")] + pub use x86::*; + } + target_arch = "arm" => { + #[unstable(feature = "stdarch_arm_feature_detection", issue = "111190")] + pub use arm::*; + } + any(target_arch = "aarch64", target_arch = "arm64ec") => { + #[stable(feature = "simd_aarch64", since = "1.60.0")] + pub use aarch64::*; + } + any(target_arch = "riscv32", target_arch = "riscv64") => { + #[unstable(feature = "stdarch_riscv_feature_detection", issue = "111192")] + pub use riscv::*; + } + target_arch = "powerpc" => { + #[unstable(feature = "stdarch_powerpc_feature_detection", issue = "111191")] + pub use powerpc::*; + } + target_arch = "powerpc64" => { + #[unstable(feature = "stdarch_powerpc_feature_detection", issue = "111191")] + pub use powerpc64::*; + } + target_arch = "mips" => { + #[unstable(feature = "stdarch_mips_feature_detection", issue = "111188")] + pub use mips::*; + } + target_arch = "mips64" => { + #[unstable(feature = "stdarch_mips_feature_detection", issue = "111188")] + pub use mips64::*; + } + any(target_arch = "loongarch32", target_arch = "loongarch64") => { + #[stable(feature = "stdarch_loongarch_feature", since = "1.89.0")] + pub use loongarch::*; + } + target_arch = "s390x" => { + #[stable(feature = "stdarch_s390x_feature_detection", since = "1.93.0")] + pub use s390x::*; + } + _ => { + // Unimplemented architecture: + #[doc(hidden)] + pub(crate) enum Feature { + Null + } + #[doc(hidden)] + #[unstable(feature = "stdarch_internal", issue = "none")] + pub mod __is_feature_detected {} + + impl Feature { + #[doc(hidden)] + pub(crate) fn from_str(_s: &str) -> Result { Err(()) } + #[doc(hidden)] + pub(crate) fn to_str(self) -> &'static str { "" } + } + } +} diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/arch/powerpc.rs b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/arch/powerpc.rs new file mode 100644 index 0000000000000000000000000000000000000000..be2db0b81c2fc5655d318935e92bf3875902d085 --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/arch/powerpc.rs @@ -0,0 +1,33 @@ +//! Run-time feature detection on PowerPC. + +features! { + @TARGET: powerpc; + @CFG: target_arch = "powerpc"; + @MACRO_NAME: is_powerpc_feature_detected; + @MACRO_ATTRS: + /// Check for the presence of a CPU feature at runtime. + /// + /// When the feature is known to be enabled at compile time (e.g. via `-Ctarget-feature`) + /// the macro expands to `true`. + #[unstable(feature = "stdarch_powerpc_feature_detection", issue = "111191")] + @FEATURE: #[unstable(feature = "stdarch_powerpc_feature_detection", issue = "111191")] altivec: "altivec"; + /// Altivec + @FEATURE: #[unstable(feature = "stdarch_powerpc_feature_detection", issue = "111191")] vsx: "vsx"; + /// VSX + @FEATURE: #[unstable(feature = "stdarch_powerpc_feature_detection", issue = "111191")] power8: "power8"; + without cfg check: true; + /// Power8 + @FEATURE: #[unstable(feature = "stdarch_powerpc_feature_detection", issue = "111191")] power8_altivec: "power8-altivec"; + /// Power8 altivec + @FEATURE: #[unstable(feature = "stdarch_powerpc_feature_detection", issue = "111191")] power8_vector: "power8-vector"; + /// Power8 vector + @FEATURE: #[unstable(feature = "stdarch_powerpc_feature_detection", issue = "111191")] power8_crypto: "power8-crypto"; + /// Power8 crypto + @FEATURE: #[unstable(feature = "stdarch_powerpc_feature_detection", issue = "111191")] power9: "power9"; + without cfg check: true; + /// Power9 + @FEATURE: #[unstable(feature = "stdarch_powerpc_feature_detection", issue = "111191")] power9_altivec: "power9-altivec"; + /// Power9 altivec + @FEATURE: #[unstable(feature = "stdarch_powerpc_feature_detection", issue = "111191")] power9_vector: "power9-vector"; + /// Power9 vector +} diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/arch/powerpc64.rs b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/arch/powerpc64.rs new file mode 100644 index 0000000000000000000000000000000000000000..98e8d5f32b75c74e230fd2e6f5625d92050bc030 --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/arch/powerpc64.rs @@ -0,0 +1,33 @@ +//! Run-time feature detection on PowerPC64. + +features! { + @TARGET: powerpc64; + @CFG: target_arch = "powerpc64"; + @MACRO_NAME: is_powerpc64_feature_detected; + @MACRO_ATTRS: + /// Check for the presence of a CPU feature at runtime. + /// + /// When the feature is known to be enabled at compile time (e.g. via `-Ctarget-feature`) + /// the macro expands to `true`. + #[unstable(feature = "stdarch_powerpc_feature_detection", issue = "111191")] + @FEATURE: #[unstable(feature = "stdarch_powerpc_feature_detection", issue = "111191")] altivec: "altivec"; + /// Altivec + @FEATURE: #[unstable(feature = "stdarch_powerpc_feature_detection", issue = "111191")] vsx: "vsx"; + /// VSX + @FEATURE: #[unstable(feature = "stdarch_powerpc_feature_detection", issue = "111191")] power8: "power8"; + without cfg check: true; + /// Power8 + @FEATURE: #[unstable(feature = "stdarch_powerpc_feature_detection", issue = "111191")] power8_altivec: "power8-altivec"; + /// Power8 altivec + @FEATURE: #[unstable(feature = "stdarch_powerpc_feature_detection", issue = "111191")] power8_vector: "power8-vector"; + /// Power8 vector + @FEATURE: #[unstable(feature = "stdarch_powerpc_feature_detection", issue = "111191")] power8_crypto: "power8-crypto"; + /// Power8 crypto + @FEATURE: #[unstable(feature = "stdarch_powerpc_feature_detection", issue = "111191")] power9: "power9"; + without cfg check: true; + /// Power9 + @FEATURE: #[unstable(feature = "stdarch_powerpc_feature_detection", issue = "111191")] power9_altivec: "power9-altivec"; + /// Power9 altivec + @FEATURE: #[unstable(feature = "stdarch_powerpc_feature_detection", issue = "111191")] power9_vector: "power9-vector"; + /// Power9 vector +} diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/arch/riscv.rs b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/arch/riscv.rs new file mode 100644 index 0000000000000000000000000000000000000000..0e6bab512ac1559920fa092128cfb45c8bc3dcb0 --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/arch/riscv.rs @@ -0,0 +1,380 @@ +//! Run-time feature detection on RISC-V. + +features! { + @TARGET: riscv; + @CFG: any(target_arch = "riscv32", target_arch = "riscv64"); + @MACRO_NAME: is_riscv_feature_detected; + @MACRO_ATTRS: + /// Check for the presence of a CPU feature at runtime. + /// + /// When the feature is known to be enabled at compile time (e.g. via `-Ctarget-feature`) + /// the macro expands to `true`. + /// + /// RISC-V standard defined the base sets and the extension sets. + /// The base sets are RV32I, RV64I, RV32E or RV128I. Any RISC-V platform + /// must support one base set and/or multiple extension sets. + /// + /// Any RISC-V standard instruction sets can be in state of either ratified, + /// frozen or draft. The version and status of current standard instruction + /// sets can be checked out from preface section of the [ISA manual]. + /// + /// Platform may define and support their own custom instruction sets with + /// ISA prefix X. These sets are highly platform specific and should be + /// detected with their own platform support crates. + /// + /// [ISA manual]: https://riscv.org/specifications/ratified/ + /// + /// # Platform-specific/agnostic Behavior and Availability + /// + /// Runtime detection depends on the platform-specific feature detection + /// facility and its availability per feature is + /// highly platform/version-specific. + /// + /// Still, a best-effort attempt is performed to enable subset/dependent + /// features if a superset feature is enabled regardless of the platform. + /// For instance, if the A extension (`"a"`) is enabled, its subsets (the + /// Zalrsc and Zaamo extensions; `"zalrsc"` and `"zaamo"`) are also enabled. + /// Likewise, if the F extension (`"f"`) is enabled, one of its dependencies + /// (the Zicsr extension `"zicsr"`) is also enabled. + /// + /// # Unprivileged Specification + /// + /// The supported ratified RISC-V instruction sets are as follows (OS + /// columns denote runtime feature detection support with or without the + /// minimum supported version): + /// + /// | Literal | Base | Linux | + /// |:---------- |:------- |:---------- | + /// | `"rv32e"` | RV32E | No | + /// | `"rv32i"` | RV32I | Yes [^ima] | + /// | `"rv64i"` | RV64I | Yes [^ima] | + /// + /// | Literal | Extension | Linux | + /// |:--------------- |:----------- |:------------------- | + /// | `"a"` | A | Yes [^ima] | + /// | `"b"` | B | 6.5 | + /// | `"c"` | C | Yes | + /// | `"d"` | D | Yes | + /// | `"f"` | F | Yes | + /// | `"m"` | M | Yes [^ima] | + /// | `"q"` | Q | No | + /// | `"v"` | V | 6.5 | + /// | `"zaamo"` | Zaamo | 6.15 [^ima] [^dep] | + /// | `"zabha"` | Zabha | 6.16 | + /// | `"zacas"` | Zacas | 6.8 | + /// | `"zalrsc"` | Zalrsc | 6.15 [^ima] [^dep] | + /// | `"zawrs"` | Zawrs | 6.11 | + /// | `"zba"` | Zba | 6.5 | + /// | `"zbb"` | Zbb | 6.5 | + /// | `"zbc"` | Zbc | 6.8 | + /// | `"zbkb"` | Zbkb | 6.8 | + /// | `"zbkc"` | Zbkc | 6.8 | + /// | `"zbkx"` | Zbkx | 6.8 | + /// | `"zbs"` | Zbs | 6.5 | + /// | `"zca"` | Zca | 6.11 [^dep] | + /// | `"zcb"` | Zcb | 6.11 | + /// | `"zcd"` | Zcd | 6.11 [^dep] | + /// | `"zcf"` | Zcf | 6.11 [^dep] | + /// | `"zcmop"` | Zcmop | 6.11 | + /// | `"zdinx"` | Zdinx | No | + /// | `"zfa"` | Zfa | 6.8 | + /// | `"zfbfmin"` | Zfbfmin | 6.15 | + /// | `"zfh"` | Zfh | 6.8 | + /// | `"zfhmin"` | Zfhmin | 6.8 | + /// | `"zfinx"` | Zfinx | No | + /// | `"zhinx"` | Zhinx | No | + /// | `"zhinxmin"` | Zhinxmin | No | + /// | `"zicbom"` | Zicbom | 6.15 | + /// | `"zicboz"` | Zicboz | 6.7 | + /// | `"zicntr"` | Zicntr | 6.15 [^ima] [^cntr] | + /// | `"zicond"` | Zicond | 6.8 | + /// | `"zicsr"` | Zicsr | No [^ima] [^dep] | + /// | `"zifencei"` | Zifencei | No [^ima] | + /// | `"zihintntl"` | Zihintntl | 6.8 | + /// | `"zihintpause"` | Zihintpause | 6.10 | + /// | `"zihpm"` | Zihpm | 6.15 [^cntr] | + /// | `"zimop"` | Zimop | 6.11 | + /// | `"zk"` | Zk | No [^zkr] | + /// | `"zkn"` | Zkn | 6.8 | + /// | `"zknd"` | Zknd | 6.8 | + /// | `"zkne"` | Zkne | 6.8 | + /// | `"zknh"` | Zknh | 6.8 | + /// | `"zkr"` | Zkr | No [^zkr] | + /// | `"zks"` | Zks | 6.8 | + /// | `"zksed"` | Zksed | 6.8 | + /// | `"zksh"` | Zksh | 6.8 | + /// | `"zkt"` | Zkt | 6.8 | + /// | `"ztso"` | Ztso | 6.8 | + /// | `"zvbb"` | Zvbb | 6.8 | + /// | `"zvbc"` | Zvbc | 6.8 | + /// | `"zve32f"` | Zve32f | 6.11 [^dep] | + /// | `"zve32x"` | Zve32x | 6.11 [^dep] | + /// | `"zve64d"` | Zve64d | 6.11 [^dep] | + /// | `"zve64f"` | Zve64f | 6.11 [^dep] | + /// | `"zve64x"` | Zve64x | 6.11 [^dep] | + /// | `"zvfbfmin"` | Zvfbfmin | 6.15 | + /// | `"zvfbfwma"` | Zvfbfwma | 6.15 | + /// | `"zvfh"` | Zvfh | 6.8 | + /// | `"zvfhmin"` | Zvfhmin | 6.8 | + /// | `"zvkb"` | Zvkb | 6.8 | + /// | `"zvkg"` | Zvkg | 6.8 | + /// | `"zvkn"` | Zvkn | 6.8 | + /// | `"zvknc"` | Zvknc | 6.8 | + /// | `"zvkned"` | Zvkned | 6.8 | + /// | `"zvkng"` | Zvkng | 6.8 | + /// | `"zvknha"` | Zvknha | 6.8 | + /// | `"zvknhb"` | Zvknhb | 6.8 | + /// | `"zvks"` | Zvks | 6.8 | + /// | `"zvksc"` | Zvksc | 6.8 | + /// | `"zvksed"` | Zvksed | 6.8 | + /// | `"zvksg"` | Zvksg | 6.8 | + /// | `"zvksh"` | Zvksh | 6.8 | + /// | `"zvkt"` | Zvkt | 6.8 | + /// + /// [^ima]: Or enabled when the IMA base behavior is detected on the Linux + /// kernel version 6.4 or later (for bases, the only matching one -- either + /// `"rv32i"` or `"rv64i"` -- is enabled). + /// + /// [^cntr]: Even if this extension is available, it does not necessarily + /// mean all performance counters are accessible. + /// For example, accesses to all performance counters except `time` + /// (wall-clock) are blocked by default on the Linux kernel + /// version 6.6 or later. + /// Also beware that, even if performance counters like `cycle` and + /// `instret` are accessible, their value can be unreliable (e.g. returning + /// the constant value) under certain circumstances. + /// + /// [^dep]: Or enabled as a dependency of another extension (a superset) + /// even if runtime detection of this feature itself is not supported (as + /// long as the runtime detection of the superset is supported). + /// + /// [^zkr]: Linux does not report existence of this extension even if + /// supported by the hardware mainly because the `seed` CSR on the Zkr + /// extension (which provides hardware-based randomness) is normally + /// inaccessible from the user mode. + /// For the Zk extension features except this CSR, check existence of both + /// `"zkn"` and `"zkt"` features instead. + /// + /// There's also bases and extensions marked as standard instruction set, + /// but they are in frozen or draft state. These instruction sets are also + /// reserved by this macro and can be detected in the future platforms. + /// + /// Draft RISC-V instruction sets: + /// + /// * RV128I: `"rv128i"` + /// * J: `"j"` + /// * P: `"p"` + /// * Zam: `"zam"` + /// + /// # Performance Hints + /// + /// The two features below define performance hints for unaligned + /// scalar/vector memory accesses, respectively. If enabled, it denotes that + /// corresponding unaligned memory access is reasonably fast. + /// + /// * `"unaligned-scalar-mem"` + /// * Runtime detection requires Linux kernel version 6.4 or later. + /// * `"unaligned-vector-mem"` + /// * Runtime detection requires Linux kernel version 6.13 or later. + #[stable(feature = "riscv_ratified", since = "1.78.0")] + + @FEATURE: #[unstable(feature = "stdarch_riscv_feature_detection", issue = "111192")] rv32i: "rv32i"; + without cfg check: true; + /// RV32I Base Integer Instruction Set + @FEATURE: #[unstable(feature = "stdarch_riscv_feature_detection", issue = "111192")] rv32e: "rv32e"; + without cfg check: true; + /// RV32E Base Integer Instruction Set + @FEATURE: #[unstable(feature = "stdarch_riscv_feature_detection", issue = "111192")] rv64i: "rv64i"; + without cfg check: true; + /// RV64I Base Integer Instruction Set + @FEATURE: #[unstable(feature = "stdarch_riscv_feature_detection", issue = "111192")] rv128i: "rv128i"; + without cfg check: true; + /// RV128I Base Integer Instruction Set + + @FEATURE: #[unstable(feature = "stdarch_riscv_feature_detection", issue = "111192")] unaligned_scalar_mem: "unaligned-scalar-mem"; + /// Has reasonably performant unaligned scalar + @FEATURE: #[unstable(feature = "stdarch_riscv_feature_detection", issue = "111192")] unaligned_vector_mem: "unaligned-vector-mem"; + /// Has reasonably performant unaligned vector + + @FEATURE: #[stable(feature = "riscv_ratified_v2", since = "1.94.0")] zicsr: "zicsr"; + /// "Zicsr" Extension for Control and Status Register (CSR) Instructions + @FEATURE: #[stable(feature = "riscv_ratified_v2", since = "1.94.0")] zicntr: "zicntr"; + /// "Zicntr" Extension for Base Counters and Timers + @FEATURE: #[stable(feature = "riscv_ratified_v2", since = "1.94.0")] zihpm: "zihpm"; + /// "Zihpm" Extension for Hardware Performance Counters + @FEATURE: #[stable(feature = "riscv_ratified_v2", since = "1.94.0")] zifencei: "zifencei"; + /// "Zifencei" Extension for Instruction-Fetch Fence + + @FEATURE: #[stable(feature = "riscv_ratified_v2", since = "1.94.0")] zihintntl: "zihintntl"; + /// "Zihintntl" Extension for Non-Temporal Locality Hints + @FEATURE: #[stable(feature = "riscv_ratified_v2", since = "1.94.0")] zihintpause: "zihintpause"; + /// "Zihintpause" Extension for Pause Hint + @FEATURE: #[stable(feature = "riscv_ratified_v2", since = "1.94.0")] zimop: "zimop"; + /// "Zimop" Extension for May-Be-Operations + @FEATURE: #[stable(feature = "riscv_ratified_v2", since = "1.94.0")] zicbom: "zicbom"; + /// "Zicbom" Extension for Cache-Block Management Instructions + @FEATURE: #[stable(feature = "riscv_ratified_v2", since = "1.94.0")] zicboz: "zicboz"; + /// "Zicboz" Extension for Cache-Block Zero Instruction + @FEATURE: #[stable(feature = "riscv_ratified_v2", since = "1.94.0")] zicond: "zicond"; + /// "Zicond" Extension for Integer Conditional Operations + + @FEATURE: #[stable(feature = "riscv_ratified", since = "1.78.0")] m: "m"; + /// "M" Extension for Integer Multiplication and Division + + @FEATURE: #[stable(feature = "riscv_ratified", since = "1.78.0")] a: "a"; + /// "A" Extension for Atomic Instructions + @FEATURE: #[stable(feature = "riscv_ratified_v2", since = "1.94.0")] zalrsc: "zalrsc"; + /// "Zalrsc" Extension for Load-Reserved/Store-Conditional Instructions + @FEATURE: #[stable(feature = "riscv_ratified_v2", since = "1.94.0")] zaamo: "zaamo"; + /// "Zaamo" Extension for Atomic Memory Operations + @FEATURE: #[stable(feature = "riscv_ratified_v2", since = "1.94.0")] zawrs: "zawrs"; + /// "Zawrs" Extension for Wait-on-Reservation-Set Instructions + @FEATURE: #[stable(feature = "riscv_ratified_v2", since = "1.94.0")] zabha: "zabha"; + /// "Zabha" Extension for Byte and Halfword Atomic Memory Operations + @FEATURE: #[stable(feature = "riscv_ratified_v2", since = "1.94.0")] zacas: "zacas"; + /// "Zacas" Extension for Atomic Compare-and-Swap (CAS) Instructions + @FEATURE: #[unstable(feature = "stdarch_riscv_feature_detection", issue = "111192")] zam: "zam"; + without cfg check: true; + /// "Zam" Extension for Misaligned Atomics + @FEATURE: #[stable(feature = "riscv_ratified_v2", since = "1.94.0")] ztso: "ztso"; + /// "Ztso" Extension for Total Store Ordering + + @FEATURE: #[unstable(feature = "stdarch_riscv_feature_detection", issue = "111192")] f: "f"; + /// "F" Extension for Single-Precision Floating-Point + @FEATURE: #[unstable(feature = "stdarch_riscv_feature_detection", issue = "111192")] d: "d"; + /// "D" Extension for Double-Precision Floating-Point + @FEATURE: #[unstable(feature = "stdarch_riscv_feature_detection", issue = "111192")] q: "q"; + without cfg check: true; + /// "Q" Extension for Quad-Precision Floating-Point + @FEATURE: #[unstable(feature = "stdarch_riscv_feature_detection", issue = "111192")] zfh: "zfh"; + /// "Zfh" Extension for Half-Precision Floating-Point + @FEATURE: #[unstable(feature = "stdarch_riscv_feature_detection", issue = "111192")] zfhmin: "zfhmin"; + /// "Zfhmin" Extension for Minimal Half-Precision Floating-Point + @FEATURE: #[unstable(feature = "stdarch_riscv_feature_detection", issue = "111192")] zfa: "zfa"; + /// "Zfa" Extension for Additional Floating-Point Instructions + @FEATURE: #[unstable(feature = "stdarch_riscv_feature_detection", issue = "111192")] zfbfmin: "zfbfmin"; + /// "Zfbfmin" Extension for Scalar BF16 Converts + + @FEATURE: #[unstable(feature = "stdarch_riscv_feature_detection", issue = "111192")] zfinx: "zfinx"; + /// "Zfinx" Extension for Single-Precision Floating-Point in Integer Registers + @FEATURE: #[unstable(feature = "stdarch_riscv_feature_detection", issue = "111192")] zdinx: "zdinx"; + /// "Zdinx" Extension for Double-Precision Floating-Point in Integer Registers + @FEATURE: #[unstable(feature = "stdarch_riscv_feature_detection", issue = "111192")] zhinx: "zhinx"; + /// "Zhinx" Extension for Half-Precision Floating-Point in Integer Registers + @FEATURE: #[unstable(feature = "stdarch_riscv_feature_detection", issue = "111192")] zhinxmin: "zhinxmin"; + /// "Zhinxmin" Extension for Minimal Half-Precision Floating-Point in Integer Registers + + @FEATURE: #[stable(feature = "riscv_ratified", since = "1.78.0")] c: "c"; + /// "C" Extension for Compressed Instructions + @FEATURE: #[stable(feature = "riscv_ratified_v2", since = "1.94.0")] zca: "zca"; + /// "Zca" Compressed Instructions excluding Floating-Point Loads/Stores + @FEATURE: #[unstable(feature = "stdarch_riscv_feature_detection", issue = "111192")] zcf: "zcf"; + without cfg check: true; + /// "Zcf" Compressed Instructions for Single-Precision Floating-Point Loads/Stores on RV32 + @FEATURE: #[unstable(feature = "stdarch_riscv_feature_detection", issue = "111192")] zcd: "zcd"; + without cfg check: true; + /// "Zcd" Compressed Instructions for Double-Precision Floating-Point Loads/Stores + @FEATURE: #[stable(feature = "riscv_ratified_v2", since = "1.94.0")] zcb: "zcb"; + /// "Zcb" Simple Code-size Saving Compressed Instructions + @FEATURE: #[stable(feature = "riscv_ratified_v2", since = "1.94.0")] zcmop: "zcmop"; + /// "Zcmop" Extension for Compressed May-Be-Operations + + @FEATURE: #[stable(feature = "riscv_ratified_v2", since = "1.94.0")] b: "b"; + /// "B" Extension for Bit Manipulation + @FEATURE: #[stable(feature = "riscv_ratified", since = "1.78.0")] zba: "zba"; + /// "Zba" Extension for Address Generation + @FEATURE: #[stable(feature = "riscv_ratified", since = "1.78.0")] zbb: "zbb"; + /// "Zbb" Extension for Basic Bit-Manipulation + @FEATURE: #[stable(feature = "riscv_ratified", since = "1.78.0")] zbc: "zbc"; + /// "Zbc" Extension for Carry-less Multiplication + @FEATURE: #[stable(feature = "riscv_ratified", since = "1.78.0")] zbs: "zbs"; + /// "Zbs" Extension for Single-Bit Instructions + + @FEATURE: #[stable(feature = "riscv_ratified", since = "1.78.0")] zbkb: "zbkb"; + /// "Zbkb" Extension for Bit-Manipulation for Cryptography + @FEATURE: #[stable(feature = "riscv_ratified", since = "1.78.0")] zbkc: "zbkc"; + /// "Zbkc" Extension for Carry-less Multiplication for Cryptography + @FEATURE: #[stable(feature = "riscv_ratified", since = "1.78.0")] zbkx: "zbkx"; + /// "Zbkx" Extension for Crossbar Permutations + @FEATURE: #[stable(feature = "riscv_ratified", since = "1.78.0")] zknd: "zknd"; + /// "Zknd" Cryptography Extension for NIST Suite: AES Decryption + @FEATURE: #[stable(feature = "riscv_ratified", since = "1.78.0")] zkne: "zkne"; + /// "Zkne" Cryptography Extension for NIST Suite: AES Encryption + @FEATURE: #[stable(feature = "riscv_ratified", since = "1.78.0")] zknh: "zknh"; + /// "Zknh" Cryptography Extension for NIST Suite: Hash Function Instructions + @FEATURE: #[stable(feature = "riscv_ratified", since = "1.78.0")] zksed: "zksed"; + /// "Zksed" Cryptography Extension for ShangMi Suite: SM4 Block Cipher Instructions + @FEATURE: #[stable(feature = "riscv_ratified", since = "1.78.0")] zksh: "zksh"; + /// "Zksh" Cryptography Extension for ShangMi Suite: SM3 Hash Function Instructions + @FEATURE: #[stable(feature = "riscv_ratified", since = "1.78.0")] zkr: "zkr"; + /// "Zkr" Entropy Source Extension + @FEATURE: #[stable(feature = "riscv_ratified", since = "1.78.0")] zkn: "zkn"; + /// "Zkn" Cryptography Extension for NIST Algorithm Suite + @FEATURE: #[stable(feature = "riscv_ratified", since = "1.78.0")] zks: "zks"; + /// "Zks" Cryptography Extension for ShangMi Algorithm Suite + @FEATURE: #[stable(feature = "riscv_ratified", since = "1.78.0")] zk: "zk"; + /// "Zk" Cryptography Extension for Standard Scalar Cryptography + @FEATURE: #[stable(feature = "riscv_ratified", since = "1.78.0")] zkt: "zkt"; + /// "Zkt" Cryptography Extension for Data Independent Execution Latency + + @FEATURE: #[unstable(feature = "stdarch_riscv_feature_detection", issue = "111192")] v: "v"; + /// "V" Extension for Vector Operations + @FEATURE: #[unstable(feature = "stdarch_riscv_feature_detection", issue = "111192")] zve32x: "zve32x"; + /// "Zve32x" Vector Extension for Embedded Processors (32-bit+; Integer) + @FEATURE: #[unstable(feature = "stdarch_riscv_feature_detection", issue = "111192")] zve32f: "zve32f"; + /// "Zve32f" Vector Extension for Embedded Processors (32-bit+; with Single-Precision Floating-Point) + @FEATURE: #[unstable(feature = "stdarch_riscv_feature_detection", issue = "111192")] zve64x: "zve64x"; + /// "Zve64x" Vector Extension for Embedded Processors (64-bit+; Integer) + @FEATURE: #[unstable(feature = "stdarch_riscv_feature_detection", issue = "111192")] zve64f: "zve64f"; + /// "Zve64f" Vector Extension for Embedded Processors (64-bit+; with Single-Precision Floating-Point) + @FEATURE: #[unstable(feature = "stdarch_riscv_feature_detection", issue = "111192")] zve64d: "zve64d"; + /// "Zve64d" Vector Extension for Embedded Processors (64-bit+; with Double-Precision Floating-Point) + @FEATURE: #[unstable(feature = "stdarch_riscv_feature_detection", issue = "111192")] zvfh: "zvfh"; + /// "Zvfh" Vector Extension for Half-Precision Floating-Point + @FEATURE: #[unstable(feature = "stdarch_riscv_feature_detection", issue = "111192")] zvfhmin: "zvfhmin"; + /// "Zvfhmin" Vector Extension for Minimal Half-Precision Floating-Point + @FEATURE: #[unstable(feature = "stdarch_riscv_feature_detection", issue = "111192")] zvfbfmin: "zvfbfmin"; + /// "Zvfbfmin" Vector Extension for BF16 Converts + @FEATURE: #[unstable(feature = "stdarch_riscv_feature_detection", issue = "111192")] zvfbfwma: "zvfbfwma"; + /// "Zvfbfwma" Vector Extension for BF16 Widening Multiply-Add + + @FEATURE: #[unstable(feature = "stdarch_riscv_feature_detection", issue = "111192")] zvbb: "zvbb"; + /// "Zvbb" Extension for Vector Basic Bit-Manipulation + @FEATURE: #[unstable(feature = "stdarch_riscv_feature_detection", issue = "111192")] zvbc: "zvbc"; + /// "Zvbc" Extension for Vector Carryless Multiplication + @FEATURE: #[unstable(feature = "stdarch_riscv_feature_detection", issue = "111192")] zvkb: "zvkb"; + /// "Zvkb" Extension for Vector Cryptography Bit-Manipulation + @FEATURE: #[unstable(feature = "stdarch_riscv_feature_detection", issue = "111192")] zvkg: "zvkg"; + /// "Zvkg" Cryptography Extension for Vector GCM/GMAC + @FEATURE: #[unstable(feature = "stdarch_riscv_feature_detection", issue = "111192")] zvkned: "zvkned"; + /// "Zvkned" Cryptography Extension for NIST Suite: Vector AES Block Cipher + @FEATURE: #[unstable(feature = "stdarch_riscv_feature_detection", issue = "111192")] zvknha: "zvknha"; + /// "Zvknha" Cryptography Extension for Vector SHA-2 Secure Hash (SHA-256) + @FEATURE: #[unstable(feature = "stdarch_riscv_feature_detection", issue = "111192")] zvknhb: "zvknhb"; + /// "Zvknhb" Cryptography Extension for Vector SHA-2 Secure Hash (SHA-256/512) + @FEATURE: #[unstable(feature = "stdarch_riscv_feature_detection", issue = "111192")] zvksed: "zvksed"; + /// "Zvksed" Cryptography Extension for ShangMi Suite: Vector SM4 Block Cipher + @FEATURE: #[unstable(feature = "stdarch_riscv_feature_detection", issue = "111192")] zvksh: "zvksh"; + /// "Zvksh" Cryptography Extension for ShangMi Suite: Vector SM3 Secure Hash + @FEATURE: #[unstable(feature = "stdarch_riscv_feature_detection", issue = "111192")] zvkn: "zvkn"; + /// "Zvkn" Cryptography Extension for NIST Algorithm Suite + @FEATURE: #[unstable(feature = "stdarch_riscv_feature_detection", issue = "111192")] zvknc: "zvknc"; + /// "Zvknc" Cryptography Extension for NIST Algorithm Suite with Carryless Multiply + @FEATURE: #[unstable(feature = "stdarch_riscv_feature_detection", issue = "111192")] zvkng: "zvkng"; + /// "Zvkng" Cryptography Extension for NIST Algorithm Suite with GCM + @FEATURE: #[unstable(feature = "stdarch_riscv_feature_detection", issue = "111192")] zvks: "zvks"; + /// "Zvks" Cryptography Extension for ShangMi Algorithm Suite + @FEATURE: #[unstable(feature = "stdarch_riscv_feature_detection", issue = "111192")] zvksc: "zvksc"; + /// "Zvksc" Cryptography Extension for ShangMi Algorithm Suite with Carryless Multiply + @FEATURE: #[unstable(feature = "stdarch_riscv_feature_detection", issue = "111192")] zvksg: "zvksg"; + /// "Zvksg" Cryptography Extension for ShangMi Algorithm Suite with GCM + @FEATURE: #[unstable(feature = "stdarch_riscv_feature_detection", issue = "111192")] zvkt: "zvkt"; + /// "Zvkt" Extension for Vector Data-Independent Execution Latency + + @FEATURE: #[unstable(feature = "stdarch_riscv_feature_detection", issue = "111192")] j: "j"; + without cfg check: true; + /// "J" Extension for Dynamically Translated Languages + @FEATURE: #[unstable(feature = "stdarch_riscv_feature_detection", issue = "111192")] p: "p"; + without cfg check: true; + /// "P" Extension for Packed-SIMD Instructions +} diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/arch/s390x.rs b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/arch/s390x.rs new file mode 100644 index 0000000000000000000000000000000000000000..63f7390d5ae36f7a262f2d1d83bc9e444e07708c --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/arch/s390x.rs @@ -0,0 +1,61 @@ +//! Run-time feature detection on s390x. + +features! { + @TARGET: s390x; + @CFG: target_arch = "s390x"; + @MACRO_NAME: is_s390x_feature_detected; + @MACRO_ATTRS: + /// Check for the presence of a CPU feature at runtime. + /// + /// When the feature is known to be enabled at compile time (e.g. via `-Ctarget-feature`) + /// the macro expands to `true`. + #[stable(feature = "stdarch_s390x_feature_detection", since = "1.93.0")] + @FEATURE: #[unstable(feature = "s390x_target_feature", issue = "150259")] concurrent_functions: "concurrent-functions"; + /// s390x concurrent-functions facility + @FEATURE: #[unstable(feature = "s390x_target_feature", issue = "150259")] deflate_conversion: "deflate-conversion"; + /// s390x deflate-conversion facility + @FEATURE: #[unstable(feature = "s390x_target_feature", issue = "150259")] enhanced_sort: "enhanced-sort"; + /// s390x enhanced-sort facility + @FEATURE: #[unstable(feature = "s390x_target_feature", issue = "150259")] guarded_storage: "guarded-storage"; + /// s390x guarded-storage facility + @FEATURE: #[unstable(feature = "s390x_target_feature", issue = "150259")] high_word: "high-word"; + /// s390x high-word facility + @FEATURE: #[unstable(feature = "s390x_target_feature", issue = "150259")] message_security_assist_extension3: "message-security-assist-extension3"; + /// s390x message-security-assist-extension3 facility + @FEATURE: #[unstable(feature = "s390x_target_feature", issue = "150259")] message_security_assist_extension4: "message-security-assist-extension4"; + /// s390x message-security-assist-extension4 facility + @FEATURE: #[unstable(feature = "s390x_target_feature", issue = "150259")] message_security_assist_extension5: "message-security-assist-extension5"; + /// s390x message-security-assist-extension5 facility + @FEATURE: #[unstable(feature = "s390x_target_feature", issue = "150259")] message_security_assist_extension8: "message-security-assist-extension8"; + /// s390x message-security-assist-extension8 facility + @FEATURE: #[unstable(feature = "s390x_target_feature", issue = "150259")] message_security_assist_extension9: "message-security-assist-extension9"; + /// s390x message-security-assist-extension9 facility + @FEATURE: #[unstable(feature = "s390x_target_feature", issue = "150259")] message_security_assist_extension12: "message-security-assist-extension12"; + /// s390x message-security-assist-extension12 facility + @FEATURE: #[stable(feature = "s390x_target_feature_vector", since = "1.93.0")] miscellaneous_extensions_2: "miscellaneous-extensions-2"; + /// s390x miscellaneous-extensions-2 facility + @FEATURE: #[stable(feature = "s390x_target_feature_vector", since = "1.93.0")] miscellaneous_extensions_3: "miscellaneous-extensions-3"; + /// s390x miscellaneous-extensions-3 facility + @FEATURE: #[stable(feature = "s390x_target_feature_vector", since = "1.93.0")] miscellaneous_extensions_4: "miscellaneous-extensions-4"; + /// s390x miscellaneous-extensions-4 facility + @FEATURE: #[stable(feature = "s390x_target_feature_vector", since = "1.93.0")] nnp_assist: "nnp-assist"; + /// s390x nnp-assist facility + @FEATURE: #[unstable(feature = "s390x_target_feature", issue = "150259")] transactional_execution: "transactional-execution"; + /// s390x transactional-execution facility + @FEATURE: #[stable(feature = "s390x_target_feature_vector", since = "1.93.0")] vector: "vector"; + /// s390x vector facility + @FEATURE: #[stable(feature = "s390x_target_feature_vector", since = "1.93.0")] vector_enhancements_1: "vector-enhancements-1"; + /// s390x vector-enhancements-1 facility + @FEATURE: #[stable(feature = "s390x_target_feature_vector", since = "1.93.0")] vector_enhancements_2: "vector-enhancements-2"; + /// s390x vector-enhancements-2 facility + @FEATURE: #[stable(feature = "s390x_target_feature_vector", since = "1.93.0")] vector_enhancements_3: "vector-enhancements-3"; + /// s390x vector-enhancements-3 facility + @FEATURE: #[stable(feature = "s390x_target_feature_vector", since = "1.93.0")] vector_packed_decimal: "vector-packed-decimal"; + /// s390x vector-packed-decimal facility + @FEATURE: #[stable(feature = "s390x_target_feature_vector", since = "1.93.0")] vector_packed_decimal_enhancement: "vector-packed-decimal-enhancement"; + /// s390x vector-packed-decimal-enhancement facility + @FEATURE: #[stable(feature = "s390x_target_feature_vector", since = "1.93.0")] vector_packed_decimal_enhancement_2: "vector-packed-decimal-enhancement-2"; + /// s390x vector-packed-decimal-enhancement-2 facility + @FEATURE: #[stable(feature = "s390x_target_feature_vector", since = "1.93.0")] vector_packed_decimal_enhancement_3: "vector-packed-decimal-enhancement-3"; + /// s390x vector-packed-decimal-enhancement-3 facility +} diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/arch/x86.rs b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/arch/x86.rs new file mode 100644 index 0000000000000000000000000000000000000000..4c3a71ebc5ee73863d4fe29acadaf822e4ed8ae7 --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/arch/x86.rs @@ -0,0 +1,280 @@ +//! This module implements minimal run-time feature detection for x86. +//! +//! The features are detected using the `detect_features` function below. +//! This function uses the CPUID instruction to read the feature flags from the +//! CPU and encodes them in a `usize` where each bit position represents +//! whether a feature is available (bit is set) or unavailable (bit is cleared). +//! +//! The enum `Feature` is used to map bit positions to feature names, and the +//! the `__crate::detect::check_for!` macro is used to map string literals (e.g., +//! "avx") to these bit positions (e.g., `Feature::avx`). +//! +//! The run-time feature detection is performed by the +//! `__crate::detect::check_for(Feature) -> bool` function. On its first call, +//! this functions queries the CPU for the available features and stores them +//! in a global `AtomicUsize` variable. The query is performed by just checking +//! whether the feature bit in this global variable is set or cleared. + +features! { + @TARGET: x86; + @CFG: any(target_arch = "x86", target_arch = "x86_64"); + @MACRO_NAME: is_x86_feature_detected; + @MACRO_ATTRS: + /// Check for the presence of a CPU feature at runtime. + /// + /// When the feature is known to be enabled at compile time (e.g. via `-Ctarget-feature`) + /// the macro expands to `true`. + /// + /// Runtime detection currently relies mostly on the `cpuid` instruction. + /// + /// This macro only takes one argument which is a string literal of the feature + /// being tested for. The feature names supported are the lowercase versions of + /// the ones defined by Intel in [their documentation][docs]. + /// + /// ## Supported arguments + /// + /// This macro supports the same names that `#[target_feature]` supports. Unlike + /// `#[target_feature]`, however, this macro does not support names separated + /// with a comma. Instead testing for multiple features must be done through + /// separate macro invocations for now. + /// + /// Supported arguments are: + /// + /// * `"aes"` + /// * `"pclmulqdq"` + /// * `"rdrand"` + /// * `"rdseed"` + /// * `"tsc"` + /// * `"mmx"` + /// * `"sse"` + /// * `"sse2"` + /// * `"sse3"` + /// * `"ssse3"` + /// * `"sse4.1"` + /// * `"sse4.2"` + /// * `"sse4a"` + /// * `"sha"` + /// * `"avx"` + /// * `"avx2"` + /// * `"sha512"` + /// * `"sm3"` + /// * `"sm4"` + /// * `"avx512f"` + /// * `"avx512cd"` + /// * `"avx512er"` + /// * `"avx512pf"` + /// * `"avx512bw"` + /// * `"avx512dq"` + /// * `"avx512vl"` + /// * `"avx512ifma"` + /// * `"avx512vbmi"` + /// * `"avx512vpopcntdq"` + /// * `"avx512vbmi2"` + /// * `"gfni"` + /// * `"vaes"` + /// * `"vpclmulqdq"` + /// * `"avx512vnni"` + /// * `"avx512bitalg"` + /// * `"avx512bf16"` + /// * `"avx512vp2intersect"` + /// * `"avx512fp16"` + /// * `"avxvnni"` + /// * `"avxifma"` + /// * `"avxneconvert"` + /// * `"avxvnniint8"` + /// * `"avxvnniint16"` + /// * `"amx-tile"` + /// * `"amx-int8"` + /// * `"amx-bf16"` + /// * `"amx-fp16"` + /// * `"amx-complex"` + /// * `"amx-avx512"` + /// * `"amx-fp8"` + /// * `"amx-movrs"` + /// * `"amx-tf32"` + /// * `"f16c"` + /// * `"fma"` + /// * `"bmi1"` + /// * `"bmi2"` + /// * `"abm"` + /// * `"lzcnt"` + /// * `"tbm"` + /// * `"popcnt"` + /// * `"fxsr"` + /// * `"xsave"` + /// * `"xsaveopt"` + /// * `"xsaves"` + /// * `"xsavec"` + /// * `"cmpxchg16b"` + /// * `"kl"` + /// * `"widekl"` + /// * `"adx"` + /// * `"rtm"` + /// * `"movbe"` + /// * `"ermsb"` + /// * `"movrs"` + /// * `"xop"` + /// + /// [docs]: https://software.intel.com/sites/landingpage/IntrinsicsGuide + #[stable(feature = "simd_x86", since = "1.27.0")] + @BIND_FEATURE_NAME: "abm"; "lzcnt"; // abm is a synonym for lzcnt + @BIND_FEATURE_NAME: "avx512gfni"; "gfni"; #[deprecated(since = "1.67.0", note = "the `avx512gfni` feature has been renamed to `gfni`")]; + @BIND_FEATURE_NAME: "avx512vaes"; "vaes"; #[deprecated(since = "1.67.0", note = "the `avx512vaes` feature has been renamed to `vaes`")]; + @BIND_FEATURE_NAME: "avx512vpclmulqdq"; "vpclmulqdq"; #[deprecated(since = "1.67.0", note = "the `avx512vpclmulqdq` feature has been renamed to `vpclmulqdq`")]; + @FEATURE: #[stable(feature = "simd_x86", since = "1.27.0")] aes: "aes"; + /// AES (Advanced Encryption Standard New Instructions AES-NI) + @FEATURE: #[stable(feature = "simd_x86", since = "1.27.0")] pclmulqdq: "pclmulqdq"; + /// CLMUL (Carry-less Multiplication) + @FEATURE: #[stable(feature = "simd_x86", since = "1.27.0")] rdrand: "rdrand"; + /// RDRAND + @FEATURE: #[stable(feature = "simd_x86", since = "1.27.0")] rdseed: "rdseed"; + /// RDSEED + @FEATURE: #[stable(feature = "simd_x86", since = "1.27.0")] tsc: "tsc"; + without cfg check: true; + /// TSC (Time Stamp Counter) + @FEATURE: #[stable(feature = "simd_x86", since = "1.27.0")] mmx: "mmx"; + without cfg check: true; + /// MMX (MultiMedia eXtensions) + @FEATURE: #[stable(feature = "simd_x86", since = "1.27.0")] sse: "sse"; + /// SSE (Streaming SIMD Extensions) + @FEATURE: #[stable(feature = "simd_x86", since = "1.27.0")] sse2: "sse2"; + /// SSE2 (Streaming SIMD Extensions 2) + @FEATURE: #[stable(feature = "simd_x86", since = "1.27.0")] sse3: "sse3"; + /// SSE3 (Streaming SIMD Extensions 3) + @FEATURE: #[stable(feature = "simd_x86", since = "1.27.0")] ssse3: "ssse3"; + /// SSSE3 (Supplemental Streaming SIMD Extensions 3) + @FEATURE: #[stable(feature = "simd_x86", since = "1.27.0")] sse4_1: "sse4.1"; + /// SSE4.1 (Streaming SIMD Extensions 4.1) + @FEATURE: #[stable(feature = "simd_x86", since = "1.27.0")] sse4_2: "sse4.2"; + /// SSE4.2 (Streaming SIMD Extensions 4.2) + @FEATURE: #[stable(feature = "simd_x86", since = "1.27.0")] sse4a: "sse4a"; + /// SSE4a (Streaming SIMD Extensions 4a) + @FEATURE: #[stable(feature = "simd_x86", since = "1.27.0")] sha: "sha"; + /// SHA + @FEATURE: #[stable(feature = "simd_x86", since = "1.27.0")] avx: "avx"; + /// AVX (Advanced Vector Extensions) + @FEATURE: #[stable(feature = "simd_x86", since = "1.27.0")] avx2: "avx2"; + /// AVX2 (Advanced Vector Extensions 2) + @FEATURE: #[stable(feature = "sha512_sm_x86", since = "1.89.0")] sha512: "sha512"; + /// SHA512 + @FEATURE: #[stable(feature = "sha512_sm_x86", since = "1.89.0")] sm3: "sm3"; + /// SM3 + @FEATURE: #[stable(feature = "sha512_sm_x86", since = "1.89.0")] sm4: "sm4"; + /// SM4 + @FEATURE: #[stable(feature = "simd_x86", since = "1.27.0")] avx512f: "avx512f" ; + /// AVX-512 F (Foundation) + @FEATURE: #[stable(feature = "simd_x86", since = "1.27.0")] avx512cd: "avx512cd" ; + /// AVX-512 CD (Conflict Detection Instructions) + @FEATURE: #[stable(feature = "simd_x86", since = "1.27.0")] avx512er: "avx512er"; + without cfg check: true; + /// AVX-512 ER (Expo nential and Reciprocal Instructions) + @FEATURE: #[stable(feature = "simd_x86", since = "1.27.0")] avx512pf: "avx512pf"; + without cfg check: true; + /// AVX-512 PF (Prefetch Instructions) + @FEATURE: #[stable(feature = "simd_x86", since = "1.27.0")] avx512bw: "avx512bw"; + /// AVX-512 BW (Byte and Word Instructions) + @FEATURE: #[stable(feature = "simd_x86", since = "1.27.0")] avx512dq: "avx512dq"; + /// AVX-512 DQ (Doubleword and Quadword) + @FEATURE: #[stable(feature = "simd_x86", since = "1.27.0")] avx512vl: "avx512vl"; + /// AVX-512 VL (Vector Length Extensions) + @FEATURE: #[stable(feature = "simd_x86", since = "1.27.0")] avx512ifma: "avx512ifma"; + /// AVX-512 IFMA (Integer Fused Multiply Add) + @FEATURE: #[stable(feature = "simd_x86", since = "1.27.0")] avx512vbmi: "avx512vbmi"; + /// AVX-512 VBMI (Vector Byte Manipulation Instructions) + @FEATURE: #[stable(feature = "simd_x86", since = "1.27.0")] avx512vpopcntdq: "avx512vpopcntdq"; + /// AVX-512 VPOPCNTDQ (Vector Population Count Doubleword and Quadword) + @FEATURE: #[stable(feature = "simd_x86", since = "1.27.0")] avx512vbmi2: "avx512vbmi2"; + /// AVX-512 VBMI2 (Additional byte, word, dword and qword capabilities) + @FEATURE: #[stable(feature = "simd_x86", since = "1.27.0")] gfni: "gfni"; + /// AVX-512 GFNI (Galois Field New Instruction) + @FEATURE: #[stable(feature = "simd_x86", since = "1.27.0")] vaes: "vaes"; + /// AVX-512 VAES (Vector AES instruction) + @FEATURE: #[stable(feature = "simd_x86", since = "1.27.0")] vpclmulqdq: "vpclmulqdq"; + /// AVX-512 VPCLMULQDQ (Vector PCLMULQDQ instructions) + @FEATURE: #[stable(feature = "simd_x86", since = "1.27.0")] avx512vnni: "avx512vnni"; + /// AVX-512 VNNI (Vector Neural Network Instructions) + @FEATURE: #[stable(feature = "simd_x86", since = "1.27.0")] avx512bitalg: "avx512bitalg"; + /// AVX-512 BITALG (Support for VPOPCNT\[B,W\] and VPSHUFBITQMB) + @FEATURE: #[stable(feature = "simd_x86", since = "1.27.0")] avx512bf16: "avx512bf16"; + /// AVX-512 BF16 (BFLOAT16 instructions) + @FEATURE: #[stable(feature = "simd_x86", since = "1.27.0")] avx512vp2intersect: "avx512vp2intersect"; + /// AVX-512 P2INTERSECT + @FEATURE: #[stable(feature = "simd_x86", since = "1.27.0")] avx512fp16: "avx512fp16"; + /// AVX-512 FP16 (FLOAT16 instructions) + @FEATURE: #[stable(feature = "avx512_target_feature", since = "1.89.0")] avxifma: "avxifma"; + /// AVX-IFMA (Integer Fused Multiply Add) + @FEATURE: #[stable(feature = "avx512_target_feature", since = "1.89.0")] avxneconvert: "avxneconvert"; + /// AVX-NE-CONVERT (Exceptionless Convert) + @FEATURE: #[stable(feature = "avx512_target_feature", since = "1.89.0")] avxvnni: "avxvnni"; + /// AVX-VNNI (Vector Neural Network Instructions) + @FEATURE: #[stable(feature = "avx512_target_feature", since = "1.89.0")] avxvnniint16: "avxvnniint16"; + /// AVX-VNNI_INT8 (VNNI with 16-bit Integers) + @FEATURE: #[stable(feature = "avx512_target_feature", since = "1.89.0")] avxvnniint8: "avxvnniint8"; + /// AVX-VNNI_INT16 (VNNI with 8-bit integers) + @FEATURE: #[unstable(feature = "x86_amx_intrinsics", issue = "126622")] amx_tile: "amx-tile"; + /// AMX (Advanced Matrix Extensions) - Tile load/store + @FEATURE: #[unstable(feature = "x86_amx_intrinsics", issue = "126622")] amx_int8: "amx-int8"; + /// AMX-INT8 (Operations on 8-bit integers) + @FEATURE: #[unstable(feature = "x86_amx_intrinsics", issue = "126622")] amx_bf16: "amx-bf16"; + /// AMX-BF16 (BFloat16 Operations) + @FEATURE: #[unstable(feature = "x86_amx_intrinsics", issue = "126622")] amx_fp16: "amx-fp16"; + /// AMX-FP16 (Float16 Operations) + @FEATURE: #[unstable(feature = "x86_amx_intrinsics", issue = "126622")] amx_complex: "amx-complex"; + /// AMX-COMPLEX (Complex number Operations) + @FEATURE: #[unstable(feature = "x86_amx_intrinsics", issue = "126622")] amx_avx512: "amx-avx512"; + /// AMX-AVX512 (AVX512 operations extended to matrices) + @FEATURE: #[unstable(feature = "x86_amx_intrinsics", issue = "126622")] amx_fp8: "amx-fp8"; + /// AMX-FP8 (Float8 Operations) + @FEATURE: #[unstable(feature = "x86_amx_intrinsics", issue = "126622")] amx_movrs: "amx-movrs"; + /// AMX-MOVRS (Matrix MOVERS operations) + @FEATURE: #[unstable(feature = "x86_amx_intrinsics", issue = "126622")] amx_tf32: "amx-tf32"; + /// AMX-TF32 (TensorFloat32 Operations) + @FEATURE: #[unstable(feature = "apx_target_feature", issue = "139284")] apxf: "apxf"; + /// APX-F (Advanced Performance Extensions - Foundation) + @FEATURE: #[unstable(feature = "avx10_target_feature", issue = "138843")] avx10_1: "avx10.1"; + /// AVX10.1 + @FEATURE: #[unstable(feature = "avx10_target_feature", issue = "138843")] avx10_2: "avx10.2"; + /// AVX10.2 + @FEATURE: #[stable(feature = "simd_x86", since = "1.27.0")] f16c: "f16c"; + /// F16C (Conversions between IEEE-754 `binary16` and `binary32` formats) + @FEATURE: #[stable(feature = "simd_x86", since = "1.27.0")] fma: "fma"; + /// FMA (Fused Multiply Add) + @FEATURE: #[stable(feature = "simd_x86", since = "1.27.0")] bmi1: "bmi1" ; + /// BMI1 (Bit Manipulation Instructions 1) + @FEATURE: #[stable(feature = "simd_x86", since = "1.27.0")] bmi2: "bmi2" ; + /// BMI2 (Bit Manipulation Instructions 2) + @FEATURE: #[stable(feature = "simd_x86", since = "1.27.0")] lzcnt: "lzcnt"; + /// ABM (Advanced Bit Manipulation) / LZCNT (Leading Zero Count) + @FEATURE: #[stable(feature = "simd_x86", since = "1.27.0")] tbm: "tbm"; + /// TBM (Trailing Bit Manipulation) + @FEATURE: #[stable(feature = "simd_x86", since = "1.27.0")] popcnt: "popcnt"; + /// POPCNT (Population Count) + @FEATURE: #[stable(feature = "simd_x86", since = "1.27.0")] fxsr: "fxsr"; + /// FXSR (Floating-point context fast save and restore) + @FEATURE: #[stable(feature = "simd_x86", since = "1.27.0")] xsave: "xsave"; + /// XSAVE (Save Processor Extended States) + @FEATURE: #[stable(feature = "simd_x86", since = "1.27.0")] xsaveopt: "xsaveopt"; + /// XSAVEOPT (Save Processor Extended States Optimized) + @FEATURE: #[stable(feature = "simd_x86", since = "1.27.0")] xsaves: "xsaves"; + /// XSAVES (Save Processor Extended States Supervisor) + @FEATURE: #[stable(feature = "simd_x86", since = "1.27.0")] xsavec: "xsavec"; + /// XSAVEC (Save Processor Extended States Compacted) + @FEATURE: #[stable(feature = "simd_x86", since = "1.27.0")] cmpxchg16b: "cmpxchg16b"; + /// CMPXCH16B (16-byte compare-and-swap instruction) + @FEATURE: #[stable(feature = "keylocker_x86", since = "1.89.0")] kl: "kl"; + /// Intel Key Locker + @FEATURE: #[stable(feature = "keylocker_x86", since = "1.89.0")] widekl: "widekl"; + /// Intel Key Locker Wide + @FEATURE: #[stable(feature = "simd_x86_adx", since = "1.33.0")] adx: "adx"; + /// ADX, Intel ADX (Multi-Precision Add-Carry Instruction Extensions) + @FEATURE: #[stable(feature = "simd_x86", since = "1.27.0")] rtm: "rtm"; + /// RTM, Intel (Restricted Transactional Memory) + @FEATURE: #[stable(feature = "movbe_target_feature", since = "1.67.0")] movbe: "movbe"; + /// MOVBE (Move Data After Swapping Bytes) + @FEATURE: #[unstable(feature = "movrs_target_feature", issue = "137976")] movrs: "movrs"; + /// MOVRS (Move data with the read-shared hint) + @FEATURE: #[stable(feature = "simd_x86", since = "1.27.0")] ermsb: "ermsb"; + /// ERMSB, Enhanced REP MOVSB and STOSB + @FEATURE: #[unstable(feature = "xop_target_feature", issue = "127208")] xop: "xop"; + /// XOP: eXtended Operations (AMD) +} diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/bit.rs b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/bit.rs new file mode 100644 index 0000000000000000000000000000000000000000..6f06c5523e4fd02d1570743a7e0573e1f131e4b5 --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/bit.rs @@ -0,0 +1,9 @@ +//! Bit manipulation utilities. + +/// Tests the `bit` of `x`. +#[allow(dead_code)] +#[inline] +pub(crate) fn test(x: usize, bit: u32) -> bool { + debug_assert!(bit < usize::BITS, "bit index out-of-bounds"); + x & (1 << bit) != 0 +} diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/cache.rs b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/cache.rs new file mode 100644 index 0000000000000000000000000000000000000000..c0c0b7b7f86350dc744f081321f5a2b01d7db0fe --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/cache.rs @@ -0,0 +1,203 @@ +//! Caches run-time feature detection so that it only needs to be computed +//! once. + +#![allow(dead_code)] // not used on all platforms + +use core::sync::atomic::{AtomicUsize, Ordering}; + +/// Sets the `bit` of `x`. +#[inline] +const fn set_bit(x: u128, bit: u32) -> u128 { + x | 1 << bit +} + +/// Tests the `bit` of `x`. +#[inline] +const fn test_bit(x: u128, bit: u32) -> bool { + x & (1 << bit) != 0 +} + +/// Unset the `bit of `x`. +#[inline] +const fn unset_bit(x: u128, bit: u32) -> u128 { + x & !(1 << bit) +} + +/// Maximum number of features that can be cached. +const CACHE_CAPACITY: u32 = 93; + +/// This type is used to initialize the cache +// The derived `Default` implementation will initialize the field to zero, +// which is what we want. +#[derive(Copy, Clone, Default, PartialEq, Eq)] +pub(crate) struct Initializer(u128); + +// NOTE: the `debug_assert!` would catch that we do not add more Features than +// the one fitting our cache. +impl Initializer { + /// Tests the `bit` of the cache. + #[inline] + pub(crate) fn test(self, bit: u32) -> bool { + debug_assert!(bit < CACHE_CAPACITY, "too many features, time to increase the cache size!"); + test_bit(self.0, bit) + } + + /// Sets the `bit` of the cache. + #[inline] + pub(crate) fn set(&mut self, bit: u32) { + debug_assert!(bit < CACHE_CAPACITY, "too many features, time to increase the cache size!"); + let v = self.0; + self.0 = set_bit(v, bit); + } + + /// Unsets the `bit` of the cache. + #[inline] + pub(crate) fn unset(&mut self, bit: u32) { + debug_assert!(bit < CACHE_CAPACITY, "too many features, time to increase the cache size!"); + let v = self.0; + self.0 = unset_bit(v, bit); + } +} + +/// This global variable is a cache of the features supported by the CPU. +// Note: the third slot is only used in x86 +// Another Slot can be added if needed without any change to `Initializer` +static CACHE: [Cache; 3] = [Cache::uninitialized(), Cache::uninitialized(), Cache::uninitialized()]; + +/// Feature cache with capacity for `size_of::() * 8 - 1` features. +/// +/// Note: 0 is used to represent an uninitialized cache, and (at least) the most +/// significant bit is set on any cache which has been initialized. +/// +/// Note: we use `Relaxed` atomic operations, because we are only interested in +/// the effects of operations on a single memory location. That is, we only need +/// "modification order", and not the full-blown "happens before". +struct Cache(AtomicUsize); + +impl Cache { + const CAPACITY: u32 = (core::mem::size_of::() * 8 - 1) as u32; + const MASK: usize = (1 << Cache::CAPACITY) - 1; + const INITIALIZED_BIT: usize = 1usize << Cache::CAPACITY; + + /// Creates an uninitialized cache. + #[allow(clippy::declare_interior_mutable_const)] + const fn uninitialized() -> Self { + Cache(AtomicUsize::new(0)) + } + + /// Is the `bit` in the cache set? Returns `None` if the cache has not been initialized. + #[inline] + pub(crate) fn test(&self, bit: u32) -> Option { + let cached = self.0.load(Ordering::Relaxed); + if cached == 0 { None } else { Some(test_bit(cached as u128, bit)) } + } + + /// Initializes the cache. + #[inline] + fn initialize(&self, value: usize) -> usize { + debug_assert_eq!((value & !Cache::MASK), 0); + self.0.store(value | Cache::INITIALIZED_BIT, Ordering::Relaxed); + value + } +} + +cfg_select! { + feature = "std_detect_env_override" => { + #[inline] + fn disable_features(disable: &[u8], value: &mut Initializer) { + if let Ok(disable) = core::str::from_utf8(disable) { + for v in disable.split(" ") { + let _ = super::Feature::from_str(v).map(|v| value.unset(v as u32)); + } + } + } + + #[inline] + fn initialize(mut value: Initializer) -> Initializer { + use core::ffi::CStr; + const RUST_STD_DETECT_UNSTABLE: &CStr = c"RUST_STD_DETECT_UNSTABLE"; + cfg_select! { + windows => { + use alloc::vec; + #[link(name = "kernel32")] + unsafe extern "system" { + fn GetEnvironmentVariableA(name: *const u8, buffer: *mut u8, size: u32) -> u32; + } + let len = unsafe { GetEnvironmentVariableA(RUST_STD_DETECT_UNSTABLE.as_ptr().cast::(), core::ptr::null_mut(), 0) }; + if len > 0 { + // +1 to include the null terminator. + let mut env = vec![0; len as usize + 1]; + let len = unsafe { GetEnvironmentVariableA(RUST_STD_DETECT_UNSTABLE.as_ptr().cast::(), env.as_mut_ptr(), len + 1) }; + if len > 0 { + disable_features(&env[..len as usize], &mut value); + } + } + } + _ => { + let env = unsafe { + libc::getenv(RUST_STD_DETECT_UNSTABLE.as_ptr()) + }; + if !env.is_null() { + let len = unsafe { libc::strlen(env) }; + let env = unsafe { core::slice::from_raw_parts(env as *const u8, len) }; + disable_features(env, &mut value); + } + } + } + do_initialize(value); + value + } + } + _ => { + #[inline] + fn initialize(value: Initializer) -> Initializer { + do_initialize(value); + value + } + } +} + +#[inline] +fn do_initialize(value: Initializer) { + CACHE[0].initialize((value.0) as usize & Cache::MASK); + CACHE[1].initialize((value.0 >> Cache::CAPACITY) as usize & Cache::MASK); + CACHE[2].initialize((value.0 >> (2 * Cache::CAPACITY)) as usize & Cache::MASK); +} + +// We only have to detect features once, and it's fairly costly, so hint to LLVM +// that it should assume that cache hits are more common than misses (which is +// the point of caching). It's possibly unfortunate that this function needs to +// reach across modules like this to call `os::detect_features`, but it produces +// the best code out of several attempted variants. +// +// The `Initializer` that the cache was initialized with is returned, so that +// the caller can call `test()` on it without having to load the value from the +// cache again. +#[cold] +fn detect_and_initialize() -> Initializer { + initialize(super::os::detect_features()) +} + +/// Tests the `bit` of the storage. If the storage has not been initialized, +/// initializes it with the result of `os::detect_features()`. +/// +/// On its first invocation, it detects the CPU features and caches them in the +/// `CACHE` global variable as an `AtomicU64`. +/// +/// It uses the `Feature` variant to index into this variable as a bitset. If +/// the bit is set, the feature is enabled, and otherwise it is disabled. +/// +/// If the feature `std_detect_env_override` is enabled looks for the env +/// variable `RUST_STD_DETECT_UNSTABLE` and uses its content to disable +/// Features that would had been otherwise detected. +#[inline] +pub(crate) fn test(bit: u32) -> bool { + let (relative_bit, idx) = if bit < Cache::CAPACITY { + (bit, 0) + } else if bit < 2 * Cache::CAPACITY { + (bit - Cache::CAPACITY, 1) + } else { + (bit - 2 * Cache::CAPACITY, 2) + }; + CACHE[idx].test(relative_bit).unwrap_or_else(|| detect_and_initialize().test(bit)) +} diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/macros.rs b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/macros.rs new file mode 100644 index 0000000000000000000000000000000000000000..17140e15653d2bf1b52fefc9885461092e443bb7 --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/macros.rs @@ -0,0 +1,203 @@ +#[macro_export] +#[allow_internal_unstable(stdarch_internal)] +#[unstable(feature = "stdarch_internal", issue = "none")] +macro_rules! detect_feature { + ($feature:tt, $feature_lit:tt) => { + $crate::detect_feature!($feature, $feature_lit : $feature_lit) + }; + ($feature:tt, $feature_lit:tt : $($target_feature_lit:tt),*) => { + $(cfg!(target_feature = $target_feature_lit) ||)* + $crate::detect::__is_feature_detected::$feature() + }; + ($feature:tt, $feature_lit:tt, without cfg check: true) => { + $crate::detect::__is_feature_detected::$feature() + }; +} + +#[allow(unused_macros, reason = "it's used in the features! macro below")] +macro_rules! check_cfg_feature { + ($feature:tt, $feature_lit:tt) => { + check_cfg_feature!($feature, $feature_lit : $feature_lit) + }; + ($feature:tt, $feature_lit:tt : $($target_feature_lit:tt),*) => { + $(cfg!(target_feature = $target_feature_lit);)* + }; + ($feature:tt, $feature_lit:tt, without cfg check: $feature_cfg_check:literal) => { + #[allow(unexpected_cfgs, reason = $feature_lit)] + { cfg!(target_feature = $feature_lit) } + }; +} + +#[allow(unused)] +macro_rules! features { + ( + @TARGET: $target:ident; + @CFG: $cfg:meta; + @MACRO_NAME: $macro_name:ident; + @MACRO_ATTRS: $(#[$macro_attrs:meta])* + $(@BIND_FEATURE_NAME: $bind_feature:tt; $feature_impl:tt; $(#[$deprecate_attr:meta];)?)* + $(@NO_RUNTIME_DETECTION: $nort_feature:tt; )* + $(@FEATURE: #[$stability_attr:meta] $feature:ident: $feature_lit:tt; + $(without cfg check: $feature_cfg_check:tt;)? + $(implied by target_features: [$($target_feature_lit:tt),*];)? + $(#[$feature_comment:meta])*)* + ) => { + #[macro_export] + $(#[$macro_attrs])* + #[allow_internal_unstable(stdarch_internal)] + #[cfg($cfg)] + #[doc(cfg($cfg))] + macro_rules! $macro_name { + $( + ($feature_lit) => { + $crate::detect_feature!($feature, $feature_lit $(, without cfg check: $feature_cfg_check)? $(: $($target_feature_lit),*)?) + }; + )* + $( + ($bind_feature) => { + { + $( + #[$deprecate_attr] macro_rules! deprecated_feature { {} => {}; } + deprecated_feature! {}; + )? + $crate::$macro_name!($feature_impl) + } + }; + )* + $( + ($nort_feature) => { + compile_error!( + concat!( + stringify!($nort_feature), + " feature cannot be detected at run-time" + ) + ) + }; + )* + ($t:tt,) => { + $crate::$macro_name!($t); + }; + ($t:tt) => { + compile_error!( + concat!( + concat!("unknown ", stringify!($target)), + concat!(" target feature: ", $t) + ) + ) + }; + } + + $(#[$macro_attrs])* + #[macro_export] + #[cfg(not($cfg))] + #[doc(cfg($cfg))] + macro_rules! $macro_name { + $( + ($feature_lit) => { + compile_error!( + concat!( + r#"This macro cannot be used on the current target. + You can prevent it from being used in other architectures by + guarding it behind a cfg("#, + stringify!($cfg), + ")." + ) + ) + }; + )* + $( + ($bind_feature) => { $crate::$macro_name!($feature_impl) }; + )* + $( + ($nort_feature) => { + compile_error!( + concat!( + stringify!($nort_feature), + " feature cannot be detected at run-time" + ) + ) + }; + )* + ($t:tt,) => { + $crate::$macro_name!($t); + }; + ($t:tt) => { + compile_error!( + concat!( + concat!("unknown ", stringify!($target)), + concat!(" target feature: ", $t) + ) + ) + }; + } + + #[deny(unexpected_cfgs)] + #[deny(unfulfilled_lint_expectations)] + const _: () = { + $( + check_cfg_feature!($feature, $feature_lit $(, without cfg check: $feature_cfg_check)? $(: $($target_feature_lit),*)?); + )* + }; + + /// Each variant denotes a position in a bitset for a particular feature. + /// + /// PLEASE: do not use this, it is an implementation detail subject + /// to change. + #[doc(hidden)] + #[allow(non_camel_case_types)] + #[derive(Copy, Clone)] + #[repr(u8)] + #[unstable(feature = "stdarch_internal", issue = "none")] + #[cfg($cfg)] + pub(crate) enum Feature { + $( + $(#[$feature_comment])* + $feature, + )* + + // Do not add variants after last: + _last + } + + #[cfg($cfg)] + impl Feature { + pub(crate) fn to_str(self) -> &'static str { + match self { + $(Feature::$feature => $feature_lit,)* + Feature::_last => unreachable!(), + } + } + + #[cfg(feature = "std_detect_env_override")] + pub(crate) fn from_str(s: &str) -> Result { + match s { + $($feature_lit => Ok(Feature::$feature),)* + _ => Err(()) + } + } + } + + /// Each function performs run-time feature detection for a single + /// feature. This allow us to use stability attributes on a per feature + /// basis. + /// + /// PLEASE: do not use this, it is an implementation detail subject + /// to change. + #[doc(hidden)] + #[cfg($cfg)] + #[unstable(feature = "stdarch_internal", issue = "none")] + pub mod __is_feature_detected { + $( + + /// PLEASE: do not use this, it is an implementation detail + /// subject to change. + #[inline] + #[doc(hidden)] + #[$stability_attr] + pub fn $feature() -> bool { + $crate::detect::check_for($crate::detect::Feature::$feature) + } + )* + } + }; +} diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/mod.rs b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/mod.rs new file mode 100644 index 0000000000000000000000000000000000000000..c888dd34d9db5809344f5bfc71636a503e8c100d --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/mod.rs @@ -0,0 +1,125 @@ +//! This module implements run-time feature detection. +//! +//! The `is_{arch}_feature_detected!("feature-name")` macros take the name of a +//! feature as a string-literal, and return a boolean indicating whether the +//! feature is enabled at run-time or not. +//! +//! These macros do two things: +//! * map the string-literal into an integer stored as a `Feature` enum, +//! * call a `os::check_for(x: Feature)` function that returns `true` if the +//! feature is enabled. +//! +//! The `Feature` enums are also implemented in the `arch/{target_arch}.rs` +//! modules. +//! +//! The `check_for` functions are, in general, Operating System dependent. Most +//! architectures do not allow user-space programs to query the feature bits +//! due to security concerns (x86 is the big exception). These functions are +//! implemented in the `os/{target_os}.rs` modules. + +#[macro_use] +mod macros; + +mod arch; + +// This module needs to be public because the `is_{arch}_feature_detected!` +// macros expand calls to items within it in user crates. +#[doc(hidden)] +#[unstable(feature = "stdarch_internal", issue = "none")] +pub use self::arch::__is_feature_detected; +pub(crate) use self::arch::Feature; + +mod bit; +mod cache; + +cfg_select! { + miri => { + // When running under miri all target-features that are not enabled at + // compile-time are reported as disabled at run-time. + // + // For features for which `cfg(target_feature)` returns true, + // this run-time detection logic is never called. + #[path = "os/other.rs"] + mod os; + } + any(target_arch = "x86", target_arch = "x86_64") => { + // On x86/x86_64 no OS specific functionality is required. + #[path = "os/x86.rs"] + mod os; + } + any(target_os = "linux", target_os = "android") => { + #[cfg(any(target_arch = "riscv32", target_arch = "riscv64"))] + #[path = "os/riscv.rs"] + mod riscv; + #[path = "os/linux/mod.rs"] + mod os; + } + target_os = "freebsd" => { + #[cfg(target_arch = "aarch64")] + #[path = "os/aarch64.rs"] + mod aarch64; + #[path = "os/freebsd/mod.rs"] + mod os; + } + target_os = "openbsd" => { + #[allow(dead_code)] // we don't use code that calls the mrs instruction. + #[cfg(target_arch = "aarch64")] + #[path = "os/aarch64.rs"] + mod aarch64; + #[path = "os/openbsd/mod.rs"] + mod os; + } + all(target_os = "windows", any(target_arch = "aarch64", target_arch = "arm64ec")) => { + #[path = "os/windows/aarch64.rs"] + mod os; + } + all(target_vendor = "apple", target_arch = "aarch64") => { + #[path = "os/darwin/aarch64.rs"] + mod os; + } + _ => { + #[path = "os/other.rs"] + mod os; + } +} + +/// Performs run-time feature detection. +#[inline] +#[allow(dead_code)] +fn check_for(x: Feature) -> bool { + cache::test(x as u32) +} + +/// Returns an `Iterator` where +/// `Item.0` is the feature name, and `Item.1` is a `bool` which +/// is `true` if the feature is supported by the host and `false` otherwise. +#[unstable(feature = "stdarch_internal", issue = "none")] +pub fn features() -> impl Iterator { + cfg_select! { + any( + target_arch = "x86", + target_arch = "x86_64", + target_arch = "arm", + target_arch = "aarch64", + target_arch = "arm64ec", + target_arch = "riscv32", + target_arch = "riscv64", + target_arch = "powerpc", + target_arch = "powerpc64", + target_arch = "mips", + target_arch = "mips64", + target_arch = "loongarch32", + target_arch = "loongarch64", + target_arch = "s390x", + ) => { + (0_u8..Feature::_last as u8).map(|discriminant: u8| { + #[allow(bindings_with_variant_name)] // RISC-V has Feature::f + let f: Feature = unsafe { core::mem::transmute(discriminant) }; + let name: &'static str = f.to_str(); + let enabled: bool = check_for(f); + (name, enabled) + }) + } + _ => None.into_iter(), + } +} diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/os/aarch64.rs b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/os/aarch64.rs new file mode 100644 index 0000000000000000000000000000000000000000..3232e435d524cb5bd688f006840ac5163f01fbd6 --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/os/aarch64.rs @@ -0,0 +1,127 @@ +//! Run-time feature detection for Aarch64 on any OS that emulates the mrs instruction. +//! +//! On FreeBSD >= 12.0, Linux >= 4.11 and other operating systems, it is possible to use +//! privileged system registers from userspace to check CPU feature support. +//! +//! AArch64 system registers ID_AA64ISAR0_EL1, ID_AA64PFR0_EL1, ID_AA64ISAR1_EL1 +//! have bits dedicated to features like AdvSIMD, CRC32, AES, atomics (LSE), etc. +//! Each part of the register indicates the level of support for a certain feature, e.g. +//! when ID_AA64ISAR0_EL1\[7:4\] is >= 1, AES is supported; when it's >= 2, PMULL is supported. +//! +//! For proper support of [SoCs where different cores have different capabilities](https://medium.com/@jadr2ddude/a-big-little-problem-a-tale-of-big-little-gone-wrong-e7778ce744bb), +//! the OS has to always report only the features supported by all cores, like [FreeBSD does](https://reviews.freebsd.org/D17137#393947). +//! +//! References: +//! +//! - [Zircon implementation](https://fuchsia.googlesource.com/zircon/+/master/kernel/arch/arm64/feature.cpp) +//! - [Linux documentation](https://www.kernel.org/doc/Documentation/arm64/cpu-feature-registers.txt) +//! - [ARM documentation](https://developer.arm.com/documentation/ddi0601/2022-12/AArch64-Registers?lang=en) + +use core::arch::asm; + +use crate::detect::{Feature, cache}; + +/// Try to read the features from the system registers. +/// +/// This will cause SIGILL if the current OS is not trapping the mrs instruction. +pub(crate) fn detect_features() -> cache::Initializer { + // ID_AA64ISAR0_EL1 - Instruction Set Attribute Register 0 + let aa64isar0: u64; + unsafe { + asm!( + "mrs {}, ID_AA64ISAR0_EL1", + out(reg) aa64isar0, + options(pure, nomem, preserves_flags, nostack) + ); + } + + // ID_AA64ISAR1_EL1 - Instruction Set Attribute Register 1 + let aa64isar1: u64; + unsafe { + asm!( + "mrs {}, ID_AA64ISAR1_EL1", + out(reg) aa64isar1, + options(pure, nomem, preserves_flags, nostack) + ); + } + + // ID_AA64MMFR2_EL1 - AArch64 Memory Model Feature Register 2 + let aa64mmfr2: u64; + unsafe { + asm!( + "mrs {}, ID_AA64MMFR2_EL1", + out(reg) aa64mmfr2, + options(pure, nomem, preserves_flags, nostack) + ); + } + + // ID_AA64PFR0_EL1 - Processor Feature Register 0 + let aa64pfr0: u64; + unsafe { + asm!( + "mrs {}, ID_AA64PFR0_EL1", + out(reg) aa64pfr0, + options(pure, nomem, preserves_flags, nostack) + ); + } + + parse_system_registers(aa64isar0, aa64isar1, aa64mmfr2, Some(aa64pfr0)) +} + +pub(crate) fn parse_system_registers( + aa64isar0: u64, + aa64isar1: u64, + aa64mmfr2: u64, + aa64pfr0: Option, +) -> cache::Initializer { + let mut value = cache::Initializer::default(); + + let mut enable_feature = |f, enable| { + if enable { + value.set(f as u32); + } + }; + + // ID_AA64ISAR0_EL1 - Instruction Set Attribute Register 0 + enable_feature(Feature::pmull, bits_shift(aa64isar0, 7, 4) >= 2); + enable_feature(Feature::lse, bits_shift(aa64isar0, 23, 20) >= 2); + enable_feature(Feature::crc, bits_shift(aa64isar0, 19, 16) >= 1); + + // ID_AA64PFR0_EL1 - Processor Feature Register 0 + if let Some(aa64pfr0) = aa64pfr0 { + let fp = bits_shift(aa64pfr0, 19, 16) < 0xF; + let fphp = bits_shift(aa64pfr0, 19, 16) >= 1; + let asimd = bits_shift(aa64pfr0, 23, 20) < 0xF; + let asimdhp = bits_shift(aa64pfr0, 23, 20) >= 1; + enable_feature(Feature::fp, fp); + enable_feature(Feature::fp16, fphp); + // SIMD support requires float support - if half-floats are + // supported, it also requires half-float support: + enable_feature(Feature::asimd, fp && asimd && (!fphp | asimdhp)); + // SIMD extensions require SIMD support: + enable_feature(Feature::aes, asimd && bits_shift(aa64isar0, 7, 4) >= 2); + let sha1 = bits_shift(aa64isar0, 11, 8) >= 1; + let sha2 = bits_shift(aa64isar0, 15, 12) >= 1; + enable_feature(Feature::sha2, asimd && sha1 && sha2); + enable_feature(Feature::rdm, asimd && bits_shift(aa64isar0, 31, 28) >= 1); + enable_feature(Feature::dotprod, asimd && bits_shift(aa64isar0, 47, 44) >= 1); + enable_feature(Feature::sve, asimd && bits_shift(aa64pfr0, 35, 32) >= 1); + } + + // ID_AA64ISAR1_EL1 - Instruction Set Attribute Register 1 + // Check for either APA or API field + enable_feature(Feature::paca, bits_shift(aa64isar1, 11, 4) >= 1); + enable_feature(Feature::rcpc, bits_shift(aa64isar1, 23, 20) >= 1); + // Check for either GPA or GPI field + enable_feature(Feature::pacg, bits_shift(aa64isar1, 31, 24) >= 1); + + // ID_AA64MMFR2_EL1 - AArch64 Memory Model Feature Register 2 + enable_feature(Feature::lse2, bits_shift(aa64mmfr2, 35, 32) >= 1); + + value +} + +#[inline] +fn bits_shift(x: u64, high: usize, low: usize) -> u64 { + (x >> low) & ((1 << (high - low + 1)) - 1) +} diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/os/darwin/aarch64.rs b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/os/darwin/aarch64.rs new file mode 100644 index 0000000000000000000000000000000000000000..a23d65a23d811621f60f78094ed150ffdd6e0c47 --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/os/darwin/aarch64.rs @@ -0,0 +1,166 @@ +//! Run-time feature detection for aarch64 on Darwin (macOS/iOS/tvOS/watchOS/visionOS). +//! +//! + +use core::ffi::CStr; + +use crate::detect::{Feature, cache}; + +#[inline] +fn _sysctlbyname(name: &CStr) -> bool { + use libc; + + let mut enabled: i32 = 0; + let mut enabled_len: usize = 4; + let enabled_ptr = &mut enabled as *mut i32 as *mut libc::c_void; + + let ret = unsafe { + libc::sysctlbyname(name.as_ptr(), enabled_ptr, &mut enabled_len, core::ptr::null_mut(), 0) + }; + + match ret { + 0 => enabled != 0, + _ => false, + } +} + +/// Try to read the features using sysctlbyname. +pub(crate) fn detect_features() -> cache::Initializer { + let mut value = cache::Initializer::default(); + + let mut enable_feature = |f, enable| { + if enable { + value.set(f as u32); + } + }; + + // Armv8.0 features not using the standard identifiers + let fp = _sysctlbyname(c"hw.optional.floatingpoint"); + let asimd = _sysctlbyname(c"hw.optional.AdvSIMD"); + let crc_old = _sysctlbyname(c"hw.optional.armv8_crc32"); + + // Armv8 and Armv9 features using the standard identifiers + let aes = _sysctlbyname(c"hw.optional.arm.FEAT_AES"); + let bf16 = _sysctlbyname(c"hw.optional.arm.FEAT_BF16"); + let bti = _sysctlbyname(c"hw.optional.arm.FEAT_BTI"); + let crc = _sysctlbyname(c"hw.optional.arm.FEAT_CRC32"); + let cssc = _sysctlbyname(c"hw.optional.arm.FEAT_CSSC"); + let dit = _sysctlbyname(c"hw.optional.arm.FEAT_DIT"); + let dotprod = _sysctlbyname(c"hw.optional.arm.FEAT_DotProd"); + let dpb = _sysctlbyname(c"hw.optional.arm.FEAT_DPB"); + let dpb2 = _sysctlbyname(c"hw.optional.arm.FEAT_DPB2"); + let ecv = _sysctlbyname(c"hw.optional.arm.FEAT_ECV"); + let fcma = _sysctlbyname(c"hw.optional.arm.FEAT_FCMA"); + let fhm = _sysctlbyname(c"hw.optional.arm.FEAT_FHM"); + let flagm = _sysctlbyname(c"hw.optional.arm.FEAT_FlagM"); + let flagm2 = _sysctlbyname(c"hw.optional.arm.FEAT_FlagM2"); + let fp16 = _sysctlbyname(c"hw.optional.arm.FEAT_FP16"); + let frintts = _sysctlbyname(c"hw.optional.arm.FEAT_FRINTTS"); + let hbc = _sysctlbyname(c"hw.optional.arm.FEAT_HBC"); + let i8mm = _sysctlbyname(c"hw.optional.arm.FEAT_I8MM"); + let jsconv = _sysctlbyname(c"hw.optional.arm.FEAT_JSCVT"); + let rcpc = _sysctlbyname(c"hw.optional.arm.FEAT_LRCPC"); + let rcpc2 = _sysctlbyname(c"hw.optional.arm.FEAT_LRCPC2"); + let lse = _sysctlbyname(c"hw.optional.arm.FEAT_LSE"); + let lse2 = _sysctlbyname(c"hw.optional.arm.FEAT_LSE2"); + let mte = _sysctlbyname(c"hw.optional.arm.FEAT_MTE"); + let mte2 = _sysctlbyname(c"hw.optional.arm.FEAT_MTE2"); + let pauth = _sysctlbyname(c"hw.optional.arm.FEAT_PAuth"); + let pmull = _sysctlbyname(c"hw.optional.arm.FEAT_PMULL"); + let rdm = _sysctlbyname(c"hw.optional.arm.FEAT_RDM"); + let sb = _sysctlbyname(c"hw.optional.arm.FEAT_SB"); + let sha1 = _sysctlbyname(c"hw.optional.arm.FEAT_SHA1"); + let sha256 = _sysctlbyname(c"hw.optional.arm.FEAT_SHA256"); + let sha3 = _sysctlbyname(c"hw.optional.arm.FEAT_SHA3"); + let sha512 = _sysctlbyname(c"hw.optional.arm.FEAT_SHA512"); + let sme = _sysctlbyname(c"hw.optional.arm.FEAT_SME"); + let sme2 = _sysctlbyname(c"hw.optional.arm.FEAT_SME2"); + let sme2p1 = _sysctlbyname(c"hw.optional.arm.FEAT_SME2p1"); + let sme_b16b16 = _sysctlbyname(c"hw.optional.arm.FEAT_SME_B16B16"); + let sme_f16f16 = _sysctlbyname(c"hw.optional.arm.FEAT_SME_F16F16"); + let sme_f64f64 = _sysctlbyname(c"hw.optional.arm.FEAT_SME_F64F64"); + let sme_i16i64 = _sysctlbyname(c"hw.optional.arm.FEAT_SME_I16I64"); + let ssbs = _sysctlbyname(c"hw.optional.arm.FEAT_SSBS"); + let wfxt = _sysctlbyname(c"hw.optional.arm.FEAT_WFxT"); + + // The following features are not exposed by `is_aarch64_feature_detected`, + // but *are* reported by `sysctl`. They are here as documentation that they + // exist, and may potentially be exposed later. + /* + let afp = _sysctlbyname(c"hw.optional.arm.FEAT_AFP"); + let csv2 = _sysctlbyname(c"hw.optional.arm.FEAT_CSV2"); + let csv3 = _sysctlbyname(c"hw.optional.arm.FEAT_CSV3"); + let ebf16 = _sysctlbyname(c"hw.optional.arm.FEAT_EBF16"); + let fpac = _sysctlbyname(c"hw.optional.arm.FEAT_FPAC"); + let fpaccombine = _sysctlbyname(c"hw.optional.arm.FEAT_FPACCOMBINE"); + let mte_async = _sysctlbyname(c"hw.optional.arm.FEAT_MTE_ASYNC"); + let mte_canonical_tags = _sysctlbyname(c"hw.optional.arm.FEAT_MTE_CANONICAL_TAGS"); + let mte_no_address_tags = _sysctlbyname(c"hw.optional.arm.FEAT_MTE_NO_ADDRESS_TAGS"); + let mte_store_only = _sysctlbyname(c"hw.optional.arm.FEAT_MTE_STORE_ONLY"); + let mte3 = _sysctlbyname(c"hw.optional.arm.FEAT_MTE3"); + let mte4 = _sysctlbyname(c"hw.optional.arm.FEAT_MTE4"); + let pacimp = _sysctlbyname(c"hw.optional.arm.FEAT_PACIMP"); + let pauth2 = _sysctlbyname(c"hw.optional.arm.FEAT_PAuth2"); + let rpres = _sysctlbyname(c"hw.optional.arm.FEAT_RPRES"); + let specres = _sysctlbyname(c"hw.optional.arm.FEAT_SPECRES"); + let specres2 = _sysctlbyname(c"hw.optional.arm.FEAT_SPECRES2"); + */ + + // The following "features" are reported by `sysctl` but are mandatory parts + // of SME or SME2, and so are not exposed separately by + // `is_aarch64_feature_detected`. They are here to document their + // existence, in case they're needed in the future. + /* + let sme_b16f32 = _sysctlbyname(c"hw.optional.arm.SME_B16F32"); + let sme_bi32i32 = _sysctlbyname(c"hw.optional.arm.SME_BI32I32"); + let sme_f16f32 = _sysctlbyname(c"hw.optional.arm.SME_F16F32"); + let sme_f32f32 = _sysctlbyname(c"hw.optional.arm.SME_F32F32"); + let sme_i16i32 = _sysctlbyname(c"hw.optional.arm.SME_I16I32"); + let sme_i8i32 = _sysctlbyname(c"hw.optional.arm.SME_I8I32"); + */ + + enable_feature(Feature::aes, aes && pmull); + enable_feature(Feature::asimd, asimd); + enable_feature(Feature::bf16, bf16); + enable_feature(Feature::bti, bti); + enable_feature(Feature::crc, crc_old || crc); + enable_feature(Feature::cssc, cssc); + enable_feature(Feature::dit, dit); + enable_feature(Feature::dotprod, dotprod); + enable_feature(Feature::dpb, dpb); + enable_feature(Feature::dpb2, dpb2); + enable_feature(Feature::ecv, ecv); + enable_feature(Feature::fcma, fcma); + enable_feature(Feature::fhm, fhm); + enable_feature(Feature::flagm, flagm); + enable_feature(Feature::flagm2, flagm2); + enable_feature(Feature::fp, fp); + enable_feature(Feature::fp16, fp16); + enable_feature(Feature::frintts, frintts); + enable_feature(Feature::hbc, hbc); + enable_feature(Feature::i8mm, i8mm); + enable_feature(Feature::jsconv, jsconv); + enable_feature(Feature::lse, lse); + enable_feature(Feature::lse2, lse2); + enable_feature(Feature::mte, mte && mte2); + enable_feature(Feature::paca, pauth); + enable_feature(Feature::pacg, pauth); + enable_feature(Feature::pmull, aes && pmull); + enable_feature(Feature::rcpc, rcpc); + enable_feature(Feature::rcpc2, rcpc2); + enable_feature(Feature::rdm, rdm); + enable_feature(Feature::sb, sb); + enable_feature(Feature::sha2, sha1 && sha256 && asimd); + enable_feature(Feature::sha3, sha512 && sha3 && asimd); + enable_feature(Feature::sme, sme); + enable_feature(Feature::sme2, sme2); + enable_feature(Feature::sme2p1, sme2p1); + enable_feature(Feature::sme_b16b16, sme_b16b16); + enable_feature(Feature::sme_f16f16, sme_f16f16); + enable_feature(Feature::sme_f64f64, sme_f64f64); + enable_feature(Feature::sme_i16i64, sme_i16i64); + enable_feature(Feature::ssbs, ssbs); + enable_feature(Feature::wfxt, wfxt); + + value +} diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/os/freebsd/aarch64.rs b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/os/freebsd/aarch64.rs new file mode 100644 index 0000000000000000000000000000000000000000..ccc48f536054d9c0bbaa975035ead7377bd67d90 --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/os/freebsd/aarch64.rs @@ -0,0 +1,3 @@ +//! Run-time feature detection for Aarch64 on FreeBSD. + +pub(crate) use super::super::aarch64::detect_features; diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/os/freebsd/arm.rs b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/os/freebsd/arm.rs new file mode 100644 index 0000000000000000000000000000000000000000..0a15156e1bd8db54809892f6756a7a9c4cc18c36 --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/os/freebsd/arm.rs @@ -0,0 +1,36 @@ +//! Run-time feature detection for ARM on FreeBSD + +use super::auxvec; +use crate::detect::{Feature, cache}; + +// Defined in machine/elf.h. +// https://github.com/freebsd/freebsd-src/blob/deb63adf945d446ed91a9d84124c71f15ae571d1/sys/arm/include/elf.h +const HWCAP_NEON: usize = 0x00001000; +const HWCAP2_AES: usize = 0x00000001; +const HWCAP2_PMULL: usize = 0x00000002; +const HWCAP2_SHA1: usize = 0x00000004; +const HWCAP2_SHA2: usize = 0x00000008; +const HWCAP2_CRC32: usize = 0x00000010; + +/// Try to read the features from the auxiliary vector +pub(crate) fn detect_features() -> cache::Initializer { + let mut value = cache::Initializer::default(); + let enable_feature = |value: &mut cache::Initializer, f, enable| { + if enable { + value.set(f as u32); + } + }; + + if let Ok(auxv) = auxvec::auxv() { + enable_feature(&mut value, Feature::neon, auxv.hwcap & HWCAP_NEON != 0); + enable_feature(&mut value, Feature::pmull, auxv.hwcap2 & HWCAP2_PMULL != 0); + enable_feature(&mut value, Feature::crc, auxv.hwcap2 & HWCAP2_CRC32 != 0); + enable_feature(&mut value, Feature::aes, auxv.hwcap2 & HWCAP2_AES != 0); + // SHA2 requires SHA1 & SHA2 features + let sha1 = auxv.hwcap2 & HWCAP2_SHA1 != 0; + let sha2 = auxv.hwcap2 & HWCAP2_SHA2 != 0; + enable_feature(&mut value, Feature::sha2, sha1 && sha2); + return value; + } + value +} diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/os/freebsd/auxvec.rs b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/os/freebsd/auxvec.rs new file mode 100644 index 0000000000000000000000000000000000000000..2a7b87c05d1c4b612c9449c9ef3ea4df56e0b97d --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/os/freebsd/auxvec.rs @@ -0,0 +1,63 @@ +//! Parses ELF auxiliary vectors. +#![cfg_attr( + any( + target_arch = "aarch64", + target_arch = "arm", + target_arch = "powerpc64", + target_arch = "riscv64" + ), + allow(dead_code) +)] + +/// Cache HWCAP bitfields of the ELF Auxiliary Vector. +/// +/// If an entry cannot be read all the bits in the bitfield are set to zero. +/// This should be interpreted as all the features being disabled. +#[derive(Debug, Copy, Clone)] +pub(crate) struct AuxVec { + pub hwcap: usize, + pub hwcap2: usize, +} + +/// ELF Auxiliary Vector +/// +/// The auxiliary vector is a memory region in a running ELF program's stack +/// composed of (key: usize, value: usize) pairs. +/// +/// The keys used in the aux vector are platform dependent. For FreeBSD, they are +/// defined in [sys/elf_common.h][elf_common_h]. The hardware capabilities of a given +/// CPU can be queried with the `AT_HWCAP` and `AT_HWCAP2` keys. +/// +/// Note that run-time feature detection is not invoked for features that can +/// be detected at compile-time. +/// +/// [elf_common.h]: https://svnweb.freebsd.org/base/release/12.0.0/sys/sys/elf_common.h?revision=341707 +pub(crate) fn auxv() -> Result { + let hwcap = archauxv(libc::AT_HWCAP); + let hwcap2 = archauxv(libc::AT_HWCAP2); + // Zero could indicate that no features were detected, but it's also used to + // indicate an error. In particular, on many platforms AT_HWCAP2 will be + // legitimately zero, since it contains the most recent feature flags. + if hwcap != 0 || hwcap2 != 0 { + return Ok(AuxVec { hwcap, hwcap2 }); + } + Err(()) +} + +/// Tries to read the `key` from the auxiliary vector. +fn archauxv(key: libc::c_int) -> usize { + const OUT_LEN: libc::c_int = core::mem::size_of::() as libc::c_int; + let mut out: libc::c_ulong = 0; + unsafe { + // elf_aux_info is available on FreeBSD 12.0+ and 11.4+: + // https://github.com/freebsd/freebsd-src/commit/0b08ae2120cdd08c20a2b806e2fcef4d0a36c470 + // https://github.com/freebsd/freebsd-src/blob/release/11.4.0/sys/sys/auxv.h + // FreeBSD 11 support in std has been removed in Rust 1.75 (https://github.com/rust-lang/rust/pull/114521), + // so we can safely use this function. + let res = + libc::elf_aux_info(key, &mut out as *mut libc::c_ulong as *mut libc::c_void, OUT_LEN); + // If elf_aux_info fails, `out` will be left at zero (which is the proper default value). + debug_assert!(res == 0 || out == 0); + } + out as usize +} diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/os/freebsd/mod.rs b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/os/freebsd/mod.rs new file mode 100644 index 0000000000000000000000000000000000000000..7de9250e83584b388e9d0bbd6c99666d8e3190d5 --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/os/freebsd/mod.rs @@ -0,0 +1,25 @@ +//! Run-time feature detection on FreeBSD + +mod auxvec; + +cfg_select! { + target_arch = "aarch64" => { + mod aarch64; + pub(crate) use self::aarch64::detect_features; + } + target_arch = "arm" => { + mod arm; + pub(crate) use self::arm::detect_features; + } + target_arch = "powerpc64" => { + mod powerpc; + pub(crate) use self::powerpc::detect_features; + } + _ => { + use crate::detect::cache; + /// Performs run-time feature detection. + pub(crate) fn detect_features() -> cache::Initializer { + cache::Initializer::default() + } + } +} diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/os/freebsd/powerpc.rs b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/os/freebsd/powerpc.rs new file mode 100644 index 0000000000000000000000000000000000000000..d03af68cd08158059fbc7252664dd853ffc81e17 --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/os/freebsd/powerpc.rs @@ -0,0 +1,21 @@ +//! Run-time feature detection for PowerPC on FreeBSD. + +use super::auxvec; +use crate::detect::{Feature, cache}; + +pub(crate) fn detect_features() -> cache::Initializer { + let mut value = cache::Initializer::default(); + let enable_feature = |value: &mut cache::Initializer, f, enable| { + if enable { + value.set(f as u32); + } + }; + + if let Ok(auxv) = auxvec::auxv() { + enable_feature(&mut value, Feature::altivec, auxv.hwcap & 0x10000000 != 0); + enable_feature(&mut value, Feature::vsx, auxv.hwcap & 0x00000080 != 0); + enable_feature(&mut value, Feature::power8, auxv.hwcap2 & 0x80000000 != 0); + return value; + } + value +} diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/os/linux/aarch64.rs b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/os/linux/aarch64.rs new file mode 100644 index 0000000000000000000000000000000000000000..b733b8a9eb23686c749d6f1dd432e9b04945f96d --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/os/linux/aarch64.rs @@ -0,0 +1,409 @@ +//! Run-time feature detection for Aarch64 on Linux. + +use super::auxvec; +use crate::detect::{Feature, bit, cache}; + +/// Try to read the features from the auxiliary vector. +pub(crate) fn detect_features() -> cache::Initializer { + #[cfg(target_os = "android")] + let is_exynos9810 = { + // Samsung Exynos 9810 has a bug that big and little cores have different + // ISAs. And on older Android (pre-9), the kernel incorrectly reports + // that features available only on some cores are available on all cores. + // https://reviews.llvm.org/D114523 + let mut arch = [0_u8; libc::PROP_VALUE_MAX as usize]; + let len = unsafe { + libc::__system_property_get(c"ro.arch".as_ptr(), arch.as_mut_ptr() as *mut libc::c_char) + }; + // On Exynos, ro.arch is not available on Android 12+, but it is fine + // because Android 9+ includes the fix. + len > 0 && arch.starts_with(b"exynos9810") + }; + #[cfg(not(target_os = "android"))] + let is_exynos9810 = false; + + if let Ok(auxv) = auxvec::auxv() { + let hwcap: AtHwcap = auxv.into(); + return hwcap.cache(is_exynos9810); + } + cache::Initializer::default() +} + +/// These values are part of the platform-specific [asm/hwcap.h][hwcap] . +/// +/// The names match those used for cpuinfo. +/// +/// [hwcap]: https://github.com/torvalds/linux/blob/master/arch/arm64/include/uapi/asm/hwcap.h +#[derive(Debug, Default, PartialEq)] +struct AtHwcap { + // AT_HWCAP + fp: bool, + asimd: bool, + // evtstrm: No LLVM support. + aes: bool, + pmull: bool, + sha1: bool, + sha2: bool, + crc32: bool, + atomics: bool, + fphp: bool, + asimdhp: bool, + // cpuid: No LLVM support. + asimdrdm: bool, + jscvt: bool, + fcma: bool, + lrcpc: bool, + dcpop: bool, + sha3: bool, + sm3: bool, + sm4: bool, + asimddp: bool, + sha512: bool, + sve: bool, + fhm: bool, + dit: bool, + uscat: bool, + ilrcpc: bool, + flagm: bool, + ssbs: bool, + sb: bool, + paca: bool, + pacg: bool, + + // AT_HWCAP2 + dcpodp: bool, + sve2: bool, + sveaes: bool, + svepmull: bool, + svebitperm: bool, + svesha3: bool, + svesm4: bool, + flagm2: bool, + frint: bool, + // svei8mm: See i8mm feature. + svef32mm: bool, + svef64mm: bool, + // svebf16: See bf16 feature. + i8mm: bool, + bf16: bool, + // dgh: No LLVM support. + rng: bool, + bti: bool, + mte: bool, + ecv: bool, + // afp: bool, + // rpres: bool, + // mte3: bool, + sme: bool, + smei16i64: bool, + smef64f64: bool, + // smei8i32: bool, + // smef16f32: bool, + // smeb16f32: bool, + // smef32f32: bool, + smefa64: bool, + wfxt: bool, + // ebf16: bool, + // sveebf16: bool, + cssc: bool, + // rprfm: bool, + sve2p1: bool, + sme2: bool, + sme2p1: bool, + // smei16i32: bool, + // smebi32i32: bool, + smeb16b16: bool, + smef16f16: bool, + mops: bool, + hbc: bool, + sveb16b16: bool, + lrcpc3: bool, + lse128: bool, + fpmr: bool, + lut: bool, + faminmax: bool, + f8cvt: bool, + f8fma: bool, + f8dp4: bool, + f8dp2: bool, + f8e4m3: bool, + f8e5m2: bool, + smelutv2: bool, + smef8f16: bool, + smef8f32: bool, + smesf8fma: bool, + smesf8dp4: bool, + smesf8dp2: bool, + // pauthlr: bool, +} + +impl From for AtHwcap { + /// Reads AtHwcap from the auxiliary vector. + fn from(auxv: auxvec::AuxVec) -> Self { + let mut cap = AtHwcap { + fp: bit::test(auxv.hwcap, 0), + asimd: bit::test(auxv.hwcap, 1), + // evtstrm: bit::test(auxv.hwcap, 2), + aes: bit::test(auxv.hwcap, 3), + pmull: bit::test(auxv.hwcap, 4), + sha1: bit::test(auxv.hwcap, 5), + sha2: bit::test(auxv.hwcap, 6), + crc32: bit::test(auxv.hwcap, 7), + atomics: bit::test(auxv.hwcap, 8), + fphp: bit::test(auxv.hwcap, 9), + asimdhp: bit::test(auxv.hwcap, 10), + // cpuid: bit::test(auxv.hwcap, 11), + asimdrdm: bit::test(auxv.hwcap, 12), + jscvt: bit::test(auxv.hwcap, 13), + fcma: bit::test(auxv.hwcap, 14), + lrcpc: bit::test(auxv.hwcap, 15), + dcpop: bit::test(auxv.hwcap, 16), + sha3: bit::test(auxv.hwcap, 17), + sm3: bit::test(auxv.hwcap, 18), + sm4: bit::test(auxv.hwcap, 19), + asimddp: bit::test(auxv.hwcap, 20), + sha512: bit::test(auxv.hwcap, 21), + sve: bit::test(auxv.hwcap, 22), + fhm: bit::test(auxv.hwcap, 23), + dit: bit::test(auxv.hwcap, 24), + uscat: bit::test(auxv.hwcap, 25), + ilrcpc: bit::test(auxv.hwcap, 26), + flagm: bit::test(auxv.hwcap, 27), + ssbs: bit::test(auxv.hwcap, 28), + sb: bit::test(auxv.hwcap, 29), + paca: bit::test(auxv.hwcap, 30), + pacg: bit::test(auxv.hwcap, 31), + + // AT_HWCAP2 + dcpodp: bit::test(auxv.hwcap2, 0), + sve2: bit::test(auxv.hwcap2, 1), + sveaes: bit::test(auxv.hwcap2, 2), + svepmull: bit::test(auxv.hwcap2, 3), + svebitperm: bit::test(auxv.hwcap2, 4), + svesha3: bit::test(auxv.hwcap2, 5), + svesm4: bit::test(auxv.hwcap2, 6), + flagm2: bit::test(auxv.hwcap2, 7), + frint: bit::test(auxv.hwcap2, 8), + // svei8mm: bit::test(auxv.hwcap2, 9), + svef32mm: bit::test(auxv.hwcap2, 10), + svef64mm: bit::test(auxv.hwcap2, 11), + // svebf16: bit::test(auxv.hwcap2, 12), + i8mm: bit::test(auxv.hwcap2, 13), + bf16: bit::test(auxv.hwcap2, 14), + // dgh: bit::test(auxv.hwcap2, 15), + rng: bit::test(auxv.hwcap2, 16), + bti: bit::test(auxv.hwcap2, 17), + mte: bit::test(auxv.hwcap2, 18), + ecv: bit::test(auxv.hwcap2, 19), + // afp: bit::test(auxv.hwcap2, 20), + // rpres: bit::test(auxv.hwcap2, 21), + // mte3: bit::test(auxv.hwcap2, 22), + sme: bit::test(auxv.hwcap2, 23), + smei16i64: bit::test(auxv.hwcap2, 24), + smef64f64: bit::test(auxv.hwcap2, 25), + // smei8i32: bit::test(auxv.hwcap2, 26), + // smef16f32: bit::test(auxv.hwcap2, 27), + // smeb16f32: bit::test(auxv.hwcap2, 28), + // smef32f32: bit::test(auxv.hwcap2, 29), + smefa64: bit::test(auxv.hwcap2, 30), + wfxt: bit::test(auxv.hwcap2, 31), + ..Default::default() + }; + + // Hardware capabilities from bits 32 to 63 should only + // be tested on LP64 targets with 64 bits `usize`. + // On ILP32 targets like `aarch64-unknown-linux-gnu_ilp32`, + // these hardware capabilities will default to `false`. + // https://github.com/rust-lang/rust/issues/146230 + #[cfg(target_pointer_width = "64")] + { + // cap.ebf16: bit::test(auxv.hwcap2, 32); + // cap.sveebf16: bit::test(auxv.hwcap2, 33); + cap.cssc = bit::test(auxv.hwcap2, 34); + // cap.rprfm: bit::test(auxv.hwcap2, 35); + cap.sve2p1 = bit::test(auxv.hwcap2, 36); + cap.sme2 = bit::test(auxv.hwcap2, 37); + cap.sme2p1 = bit::test(auxv.hwcap2, 38); + // cap.smei16i32 = bit::test(auxv.hwcap2, 39); + // cap.smebi32i32 = bit::test(auxv.hwcap2, 40); + cap.smeb16b16 = bit::test(auxv.hwcap2, 41); + cap.smef16f16 = bit::test(auxv.hwcap2, 42); + cap.mops = bit::test(auxv.hwcap2, 43); + cap.hbc = bit::test(auxv.hwcap2, 44); + cap.sveb16b16 = bit::test(auxv.hwcap2, 45); + cap.lrcpc3 = bit::test(auxv.hwcap2, 46); + cap.lse128 = bit::test(auxv.hwcap2, 47); + cap.fpmr = bit::test(auxv.hwcap2, 48); + cap.lut = bit::test(auxv.hwcap2, 49); + cap.faminmax = bit::test(auxv.hwcap2, 50); + cap.f8cvt = bit::test(auxv.hwcap2, 51); + cap.f8fma = bit::test(auxv.hwcap2, 52); + cap.f8dp4 = bit::test(auxv.hwcap2, 53); + cap.f8dp2 = bit::test(auxv.hwcap2, 54); + cap.f8e4m3 = bit::test(auxv.hwcap2, 55); + cap.f8e5m2 = bit::test(auxv.hwcap2, 56); + cap.smelutv2 = bit::test(auxv.hwcap2, 57); + cap.smef8f16 = bit::test(auxv.hwcap2, 58); + cap.smef8f32 = bit::test(auxv.hwcap2, 59); + cap.smesf8fma = bit::test(auxv.hwcap2, 60); + cap.smesf8dp4 = bit::test(auxv.hwcap2, 61); + cap.smesf8dp2 = bit::test(auxv.hwcap2, 62); + // cap.pauthlr = bit::test(auxv.hwcap2, ??); + } + cap + } +} + +impl AtHwcap { + /// Initializes the cache from the feature -bits. + /// + /// The feature dependencies here come directly from LLVM's feature definitions: + /// https://github.com/llvm/llvm-project/blob/main/llvm/lib/Target/AArch64/AArch64.td + fn cache(self, is_exynos9810: bool) -> cache::Initializer { + let mut value = cache::Initializer::default(); + { + let mut enable_feature = |f, enable| { + if enable { + value.set(f as u32); + } + }; + + // Samsung Exynos 9810 has a bug that big and little cores have different + // ISAs. And on older Android (pre-9), the kernel incorrectly reports + // that features available only on some cores are available on all cores. + // So, only check features that are known to be available on exynos-m3: + // $ rustc --print cfg --target aarch64-linux-android -C target-cpu=exynos-m3 | grep target_feature + // See also https://github.com/rust-lang/stdarch/pull/1378#discussion_r1103748342. + if is_exynos9810 { + enable_feature(Feature::fp, self.fp); + enable_feature(Feature::crc, self.crc32); + // ASIMD support requires float support - if half-floats are + // supported, it also requires half-float support: + let asimd = self.fp && self.asimd && (!self.fphp | self.asimdhp); + enable_feature(Feature::asimd, asimd); + // Cryptographic extensions require ASIMD + // AES also covers FEAT_PMULL + enable_feature(Feature::aes, self.aes && self.pmull && asimd); + enable_feature(Feature::sha2, self.sha1 && self.sha2 && asimd); + return value; + } + + enable_feature(Feature::fp, self.fp); + // Half-float support requires float support + enable_feature(Feature::fp16, self.fp && self.fphp); + // FHM (fp16fml in LLVM) requires half float support + enable_feature(Feature::fhm, self.fphp && self.fhm); + enable_feature(Feature::pmull, self.pmull); + enable_feature(Feature::crc, self.crc32); + enable_feature(Feature::lse, self.atomics); + enable_feature(Feature::lse2, self.uscat); + enable_feature(Feature::lse128, self.lse128 && self.atomics); + enable_feature(Feature::rcpc, self.lrcpc); + // RCPC2 (rcpc-immo in LLVM) requires RCPC support + let rcpc2 = self.ilrcpc && self.lrcpc; + enable_feature(Feature::rcpc2, rcpc2); + enable_feature(Feature::rcpc3, self.lrcpc3 && rcpc2); + enable_feature(Feature::dit, self.dit); + enable_feature(Feature::flagm, self.flagm); + enable_feature(Feature::flagm2, self.flagm2); + enable_feature(Feature::ssbs, self.ssbs); + enable_feature(Feature::sb, self.sb); + enable_feature(Feature::paca, self.paca); + enable_feature(Feature::pacg, self.pacg); + // enable_feature(Feature::pauth_lr, self.pauthlr); + enable_feature(Feature::dpb, self.dcpop); + enable_feature(Feature::dpb2, self.dcpodp); + enable_feature(Feature::rand, self.rng); + enable_feature(Feature::bti, self.bti); + enable_feature(Feature::mte, self.mte); + // jsconv requires float support + enable_feature(Feature::jsconv, self.jscvt && self.fp); + enable_feature(Feature::rdm, self.asimdrdm); + enable_feature(Feature::dotprod, self.asimddp); + enable_feature(Feature::frintts, self.frint); + + // FEAT_I8MM & FEAT_BF16 also include optional SVE components which linux exposes + // separately. We ignore that distinction here. + enable_feature(Feature::i8mm, self.i8mm); + enable_feature(Feature::bf16, self.bf16); + + // ASIMD support requires float support - if half-floats are + // supported, it also requires half-float support: + let asimd = self.fp && self.asimd && (!self.fphp | self.asimdhp); + enable_feature(Feature::asimd, asimd); + // ASIMD extensions require ASIMD support: + enable_feature(Feature::fcma, self.fcma && asimd); + enable_feature(Feature::sve, self.sve && asimd); + + // SVE extensions require SVE & ASIMD + enable_feature(Feature::f32mm, self.svef32mm && self.sve && asimd); + enable_feature(Feature::f64mm, self.svef64mm && self.sve && asimd); + + // Cryptographic extensions require ASIMD + enable_feature(Feature::aes, self.aes && asimd); + enable_feature(Feature::sha2, self.sha1 && self.sha2 && asimd); + // SHA512/SHA3 require SHA1 & SHA256 + enable_feature( + Feature::sha3, + self.sha512 && self.sha3 && self.sha1 && self.sha2 && asimd, + ); + enable_feature(Feature::sm4, self.sm3 && self.sm4 && asimd); + + // SVE2 requires SVE + let sve2 = self.sve2 && self.sve && asimd; + enable_feature(Feature::sve2, sve2); + enable_feature(Feature::sve2p1, self.sve2p1 && sve2); + // SVE2 extensions require SVE2 and crypto features + enable_feature(Feature::sve2_aes, self.sveaes && self.svepmull && sve2 && self.aes); + enable_feature(Feature::sve2_sm4, self.svesm4 && sve2 && self.sm3 && self.sm4); + enable_feature( + Feature::sve2_sha3, + self.svesha3 && sve2 && self.sha512 && self.sha3 && self.sha1 && self.sha2, + ); + enable_feature(Feature::sve2_bitperm, self.svebitperm && self.sve2); + enable_feature(Feature::sve_b16b16, self.bf16 && self.sveb16b16); + enable_feature(Feature::hbc, self.hbc); + enable_feature(Feature::mops, self.mops); + enable_feature(Feature::ecv, self.ecv); + enable_feature(Feature::lut, self.lut); + enable_feature(Feature::cssc, self.cssc); + enable_feature(Feature::fpmr, self.fpmr); + enable_feature(Feature::faminmax, self.faminmax); + let fp8 = self.f8cvt && self.faminmax && self.lut && self.bf16; + enable_feature(Feature::fp8, fp8); + let fp8fma = self.f8fma && fp8; + enable_feature(Feature::fp8fma, fp8fma); + let fp8dot4 = self.f8dp4 && fp8fma; + enable_feature(Feature::fp8dot4, fp8dot4); + enable_feature(Feature::fp8dot2, self.f8dp2 && fp8dot4); + enable_feature(Feature::wfxt, self.wfxt); + let sme = self.sme && self.bf16; + enable_feature(Feature::sme, sme); + enable_feature(Feature::sme_i16i64, self.smei16i64 && sme); + enable_feature(Feature::sme_f64f64, self.smef64f64 && sme); + enable_feature(Feature::sme_fa64, self.smefa64 && sme && sve2); + let sme2 = self.sme2 && sme; + enable_feature(Feature::sme2, sme2); + enable_feature(Feature::sme2p1, self.sme2p1 && sme2); + enable_feature( + Feature::sme_b16b16, + sme2 && self.bf16 && self.sveb16b16 && self.smeb16b16, + ); + enable_feature(Feature::sme_f16f16, self.smef16f16 && sme2); + enable_feature(Feature::sme_lutv2, self.smelutv2); + let sme_f8f32 = self.smef8f32 && sme2 && fp8; + enable_feature(Feature::sme_f8f32, sme_f8f32); + enable_feature(Feature::sme_f8f16, self.smef8f16 && sme_f8f32); + let ssve_fp8fma = self.smesf8fma && sme2 && fp8; + enable_feature(Feature::ssve_fp8fma, ssve_fp8fma); + let ssve_fp8dot4 = self.smesf8dp4 && ssve_fp8fma; + enable_feature(Feature::ssve_fp8dot4, ssve_fp8dot4); + enable_feature(Feature::ssve_fp8dot2, self.smesf8dp2 && ssve_fp8dot4); + } + value + } +} + +#[cfg(target_endian = "little")] +#[cfg(test)] +mod tests; diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/os/linux/aarch64/tests.rs b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/os/linux/aarch64/tests.rs new file mode 100644 index 0000000000000000000000000000000000000000..4d7c9a419d386639d986ac0e4d6455a0ac203e1c --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/os/linux/aarch64/tests.rs @@ -0,0 +1,70 @@ +use super::auxvec::auxv_from_file; +use super::*; +// The baseline hwcaps used in the (artificial) auxv test files. +fn baseline_hwcaps() -> AtHwcap { + AtHwcap { + fp: true, + asimd: true, + aes: true, + pmull: true, + sha1: true, + sha2: true, + crc32: true, + atomics: true, + fphp: true, + asimdhp: true, + asimdrdm: true, + lrcpc: true, + dcpop: true, + asimddp: true, + ssbs: true, + ..AtHwcap::default() + } +} + +#[test] +fn linux_empty_hwcap2_aarch64() { + let file = concat!( + env!("CARGO_MANIFEST_DIR"), + "/src/detect/test_data/linux-empty-hwcap2-aarch64.auxv" + ); + println!("file: {file}"); + let v = auxv_from_file(file).unwrap(); + println!("HWCAP : 0x{:0x}", v.hwcap); + println!("HWCAP2: 0x{:0x}", v.hwcap2); + assert_eq!(AtHwcap::from(v), baseline_hwcaps()); +} +#[test] +fn linux_no_hwcap2_aarch64() { + let file = + concat!(env!("CARGO_MANIFEST_DIR"), "/src/detect/test_data/linux-no-hwcap2-aarch64.auxv"); + println!("file: {file}"); + let v = auxv_from_file(file).unwrap(); + println!("HWCAP : 0x{:0x}", v.hwcap); + println!("HWCAP2: 0x{:0x}", v.hwcap2); + assert_eq!(AtHwcap::from(v), baseline_hwcaps()); +} +#[test] +fn linux_hwcap2_aarch64() { + let file = + concat!(env!("CARGO_MANIFEST_DIR"), "/src/detect/test_data/linux-hwcap2-aarch64.auxv"); + println!("file: {file}"); + let v = auxv_from_file(file).unwrap(); + println!("HWCAP : 0x{:0x}", v.hwcap); + println!("HWCAP2: 0x{:0x}", v.hwcap2); + assert_eq!( + AtHwcap::from(v), + AtHwcap { + // Some other HWCAP bits. + paca: true, + pacg: true, + // HWCAP2-only bits. + dcpodp: true, + frint: true, + rng: true, + bti: true, + mte: true, + ..baseline_hwcaps() + } + ); +} diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/os/linux/arm.rs b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/os/linux/arm.rs new file mode 100644 index 0000000000000000000000000000000000000000..bbb173227d07f0891bcff6dce11e36280c81b650 --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/os/linux/arm.rs @@ -0,0 +1,34 @@ +//! Run-time feature detection for ARM on Linux. + +use super::auxvec; +use crate::detect::{Feature, bit, cache}; + +/// Try to read the features from the auxiliary vector. +pub(crate) fn detect_features() -> cache::Initializer { + let mut value = cache::Initializer::default(); + let enable_feature = |value: &mut cache::Initializer, f, enable| { + if enable { + value.set(f as u32); + } + }; + + // The values are part of the platform-specific [asm/hwcap.h][hwcap] + // + // [hwcap]: https://github.com/torvalds/linux/blob/master/arch/arm/include/uapi/asm/hwcap.h + if let Ok(auxv) = auxvec::auxv() { + enable_feature(&mut value, Feature::i8mm, bit::test(auxv.hwcap, 27)); + enable_feature(&mut value, Feature::dotprod, bit::test(auxv.hwcap, 24)); + enable_feature(&mut value, Feature::neon, bit::test(auxv.hwcap, 12)); + enable_feature(&mut value, Feature::pmull, bit::test(auxv.hwcap2, 1)); + enable_feature(&mut value, Feature::crc, bit::test(auxv.hwcap2, 4)); + enable_feature(&mut value, Feature::aes, bit::test(auxv.hwcap2, 0)); + // SHA2 requires SHA1 & SHA2 features + enable_feature( + &mut value, + Feature::sha2, + bit::test(auxv.hwcap2, 2) && bit::test(auxv.hwcap2, 3), + ); + return value; + } + value +} diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/os/linux/auxvec.rs b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/os/linux/auxvec.rs new file mode 100644 index 0000000000000000000000000000000000000000..c0bbc7d4efa88e2aa12f4400019bd3612e47af03 --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/os/linux/auxvec.rs @@ -0,0 +1,221 @@ +//! Parses ELF auxiliary vectors. +#![allow(dead_code)] + +pub(crate) const AT_NULL: usize = 0; + +/// Key to access the CPU Hardware capabilities bitfield. +pub(crate) const AT_HWCAP: usize = 16; +/// Key to access the CPU Hardware capabilities 2 bitfield. +#[cfg(any( + target_arch = "aarch64", + target_arch = "arm", + target_arch = "powerpc", + target_arch = "powerpc64", + target_arch = "s390x", +))] +pub(crate) const AT_HWCAP2: usize = 26; + +/// Cache HWCAP bitfields of the ELF Auxiliary Vector. +/// +/// If an entry cannot be read all the bits in the bitfield are set to zero. +/// This should be interpreted as all the features being disabled. +#[derive(Debug, Copy, Clone)] +#[cfg_attr(test, derive(PartialEq))] +pub(crate) struct AuxVec { + pub hwcap: usize, + #[cfg(any( + target_arch = "aarch64", + target_arch = "arm", + target_arch = "powerpc", + target_arch = "powerpc64", + target_arch = "s390x", + ))] + pub hwcap2: usize, +} + +/// ELF Auxiliary Vector +/// +/// The auxiliary vector is a memory region in a running ELF program's stack +/// composed of (key: usize, value: usize) pairs. +/// +/// The keys used in the aux vector are platform dependent. For Linux, they are +/// defined in [linux/auxvec.h][auxvec_h]. The hardware capabilities of a given +/// CPU can be queried with the `AT_HWCAP` and `AT_HWCAP2` keys. +/// +/// There is no perfect way of reading the auxiliary vector. +/// +/// - If [`getauxval`] is linked to the binary we use it, and otherwise it will +/// try to read `/proc/self/auxv`. +/// - If that fails, this function returns an error. +/// +/// Note that run-time feature detection is not invoked for features that can +/// be detected at compile-time. +/// +/// Note: We always directly use `getauxval` on `*-linux-{gnu,musl,ohos}*` and +/// `*-android*` targets rather than `dlsym` it because we can safely assume +/// `getauxval` is linked to the binary. +/// - `*-linux-gnu*` targets ([since Rust 1.64](https://blog.rust-lang.org/2022/08/01/Increasing-glibc-kernel-requirements.html)) +/// have glibc requirements higher than [glibc 2.16 that added `getauxval`](https://sourceware.org/legacy-ml/libc-announce/2012/msg00000.html). +/// - `*-linux-musl*` targets ([at least since Rust 1.15](https://github.com/rust-lang/rust/blob/1.15.0/src/ci/docker/x86_64-musl/build-musl.sh#L15)) +/// use musl newer than [musl 1.1.0 that added `getauxval`](https://git.musl-libc.org/cgit/musl/tree/WHATSNEW?h=v1.1.0#n1197) +/// - `*-linux-ohos*` targets use a [fork of musl 1.2](https://gitee.com/openharmony/docs/blob/master/en/application-dev/reference/native-lib/musl.md) +/// - `*-android*` targets ([since Rust 1.68](https://blog.rust-lang.org/2023/01/09/android-ndk-update-r25.html)) +/// have the minimum supported API level higher than [Android 4.3 (API level 18) that added `getauxval`](https://github.com/aosp-mirror/platform_bionic/blob/d3ebc2f7c49a9893b114124d4a6b315f3a328764/libc/include/sys/auxv.h#L49). +/// +/// For more information about when `getauxval` is available check the great +/// [`auxv` crate documentation][auxv_docs]. +/// +/// [auxvec_h]: https://github.com/torvalds/linux/blob/master/include/uapi/linux/auxvec.h +/// [auxv_docs]: https://docs.rs/auxv/0.3.3/auxv/ +/// [`getauxval`]: https://man7.org/linux/man-pages/man3/getauxval.3.html +pub(crate) fn auxv() -> Result { + // Try to call a getauxval function. + if let Ok(hwcap) = getauxval(AT_HWCAP) { + // Targets with only AT_HWCAP: + #[cfg(any( + target_arch = "riscv32", + target_arch = "riscv64", + target_arch = "mips", + target_arch = "mips64", + target_arch = "loongarch32", + target_arch = "loongarch64", + ))] + { + // Zero could indicate that no features were detected, but it's also used to indicate + // an error. In either case, try the fallback. + if hwcap != 0 { + return Ok(AuxVec { hwcap }); + } + } + + // Targets with AT_HWCAP and AT_HWCAP2: + #[cfg(any( + target_arch = "aarch64", + target_arch = "arm", + target_arch = "powerpc", + target_arch = "powerpc64", + target_arch = "s390x", + ))] + { + if let Ok(hwcap2) = getauxval(AT_HWCAP2) { + // Zero could indicate that no features were detected, but it's also used to indicate + // an error. In particular, on many platforms AT_HWCAP2 will be legitimately zero, + // since it contains the most recent feature flags. Use the fallback only if no + // features were detected at all. + if hwcap != 0 || hwcap2 != 0 { + return Ok(AuxVec { hwcap, hwcap2 }); + } + } + } + + // Intentionnaly not used + let _ = hwcap; + } + + // If calling getauxval fails, try to read the auxiliary vector from + // its file: + auxv_from_file("/proc/self/auxv").map_err(|_| ()) +} + +/// Tries to read the `key` from the auxiliary vector by calling the +/// `getauxval` function. If the function is not linked, this function return `Err`. +fn getauxval(key: usize) -> Result { + type F = unsafe extern "C" fn(libc::c_ulong) -> libc::c_ulong; + cfg_select! { + any( + all( + target_os = "linux", + any(target_env = "gnu", target_env = "musl", target_env = "ohos"), + ), + target_os = "android", + ) => { + let ffi_getauxval: F = libc::getauxval; + } + _ => { + let ffi_getauxval: F = unsafe { + let ptr = libc::dlsym(libc::RTLD_DEFAULT, c"getauxval".as_ptr()); + if ptr.is_null() { + return Err(()); + } + core::mem::transmute(ptr) + }; + } + } + Ok(unsafe { ffi_getauxval(key as libc::c_ulong) as usize }) +} + +/// Tries to read the auxiliary vector from the `file`. If this fails, this +/// function returns `Err`. +pub(super) fn auxv_from_file(file: &str) -> Result { + let file = super::read_file(file)?; + auxv_from_file_bytes(&file) +} + +/// Read auxiliary vector from a slice of bytes. +pub(super) fn auxv_from_file_bytes(bytes: &[u8]) -> Result { + // See . + // + // The auxiliary vector contains at most 34 (key,value) fields: from + // `AT_MINSIGSTKSZ` to `AT_NULL`, but its number may increase. + let len = bytes.len(); + let mut buf = alloc::vec![0_usize; 1 + len / core::mem::size_of::()]; + unsafe { + core::ptr::copy_nonoverlapping(bytes.as_ptr(), buf.as_mut_ptr() as *mut u8, len); + } + + auxv_from_buf(&buf) +} + +/// Tries to interpret the `buffer` as an auxiliary vector. If that fails, this +/// function returns `Err`. +fn auxv_from_buf(buf: &[usize]) -> Result { + // Targets with only AT_HWCAP: + #[cfg(any( + target_arch = "riscv32", + target_arch = "riscv64", + target_arch = "mips", + target_arch = "mips64", + target_arch = "loongarch32", + target_arch = "loongarch64", + ))] + { + for el in buf.chunks(2) { + match el[0] { + AT_NULL => break, + AT_HWCAP => return Ok(AuxVec { hwcap: el[1] }), + _ => (), + } + } + } + // Targets with AT_HWCAP and AT_HWCAP2: + #[cfg(any( + target_arch = "aarch64", + target_arch = "arm", + target_arch = "powerpc", + target_arch = "powerpc64", + target_arch = "s390x", + ))] + { + let mut hwcap = None; + // For some platforms, AT_HWCAP2 was added recently, so let it default to zero. + let mut hwcap2 = 0; + for el in buf.chunks(2) { + match el[0] { + AT_NULL => break, + AT_HWCAP => hwcap = Some(el[1]), + AT_HWCAP2 => hwcap2 = el[1], + _ => (), + } + } + + if let Some(hwcap) = hwcap { + return Ok(AuxVec { hwcap, hwcap2 }); + } + } + // Suppress unused variable + let _ = buf; + Err(alloc::string::String::from("hwcap not found")) +} + +#[cfg(test)] +mod tests; diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/os/linux/auxvec/tests.rs b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/os/linux/auxvec/tests.rs new file mode 100644 index 0000000000000000000000000000000000000000..88f0d6d493376ba390db709fa44dff4d7403b695 --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/os/linux/auxvec/tests.rs @@ -0,0 +1,108 @@ +use super::*; + +// FIXME: on mips/mips64 getauxval returns 0, and /proc/self/auxv +// does not always contain the AT_HWCAP key under qemu. +#[cfg(any( + target_arch = "arm", + target_arch = "powerpc", + target_arch = "powerpc64", + target_arch = "s390x", +))] +#[test] +fn auxv_crate() { + let v = auxv(); + if let Ok(hwcap) = getauxval(AT_HWCAP) { + let rt_hwcap = v.expect("failed to find hwcap key").hwcap; + assert_eq!(rt_hwcap, hwcap); + } + + // Targets with AT_HWCAP and AT_HWCAP2: + #[cfg(any( + target_arch = "aarch64", + target_arch = "arm", + target_arch = "powerpc", + target_arch = "powerpc64", + target_arch = "s390x", + ))] + { + if let Ok(hwcap2) = getauxval(AT_HWCAP2) { + let rt_hwcap2 = v.expect("failed to find hwcap2 key").hwcap2; + assert_eq!(rt_hwcap2, hwcap2); + } + } +} + +#[test] +fn auxv_dump() { + if let Ok(auxvec) = auxv() { + println!("{:?}", auxvec); + } else { + println!("both getauxval() and reading /proc/self/auxv failed!"); + } +} + +cfg_select! { + target_arch = "arm" => { + // The tests below can be executed under qemu, where we do not have access to the test + // files on disk, so we need to embed them with `include_bytes!`. + #[test] + fn linux_rpi3() { + let auxv = include_bytes!(concat!(env!("CARGO_MANIFEST_DIR"), "/src/detect/test_data/linux-rpi3.auxv")); + let v = auxv_from_file_bytes(auxv).unwrap(); + assert_eq!(v.hwcap, 4174038); + assert_eq!(v.hwcap2, 16); + } + + #[test] + fn linux_macos_vb() { + let auxv = include_bytes!(concat!(env!("CARGO_MANIFEST_DIR"), "/src/detect/test_data/macos-virtualbox-linux-x86-4850HQ.auxv")); + // The file contains HWCAP but not HWCAP2. In that case, we treat HWCAP2 as zero. + let v = auxv_from_file_bytes(auxv).unwrap(); + assert_eq!(v.hwcap, 126614527); + assert_eq!(v.hwcap2, 0); + } + } + target_arch = "aarch64" => { + #[cfg(target_endian = "little")] + #[test] + fn linux_artificial_aarch64() { + let auxv = include_bytes!(concat!(env!("CARGO_MANIFEST_DIR"), "/src/detect/test_data/linux-artificial-aarch64.auxv")); + let v = auxv_from_file_bytes(auxv).unwrap(); + assert_eq!(v.hwcap, 0x0123456789abcdef); + assert_eq!(v.hwcap2, 0x02468ace13579bdf); + } + #[cfg(target_endian = "little")] + #[test] + fn linux_no_hwcap2_aarch64() { + let auxv = include_bytes!(concat!(env!("CARGO_MANIFEST_DIR"), "/src/detect/test_data/linux-no-hwcap2-aarch64.auxv")); + let v = auxv_from_file_bytes(auxv).unwrap(); + // An absent HWCAP2 is treated as zero, and does not prevent acceptance of HWCAP. + assert_ne!(v.hwcap, 0); + assert_eq!(v.hwcap2, 0); + } + } + _ => {} +} + +#[test] +fn auxv_dump_procfs() { + if let Ok(auxvec) = auxv_from_file("/proc/self/auxv") { + println!("{:?}", auxvec); + } else { + println!("reading /proc/self/auxv failed!"); + } +} + +#[cfg(any( + target_arch = "aarch64", + target_arch = "arm", + target_arch = "powerpc", + target_arch = "powerpc64", + target_arch = "s390x", +))] +#[test] +fn auxv_crate_procfs() { + if let Ok(procfs_auxv) = auxv_from_file("/proc/self/auxv") { + assert_eq!(auxv().unwrap(), procfs_auxv); + } +} diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/os/linux/loongarch.rs b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/os/linux/loongarch.rs new file mode 100644 index 0000000000000000000000000000000000000000..74415266f8b15cdca83e4075d5dc3aac835884af --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/os/linux/loongarch.rs @@ -0,0 +1,60 @@ +//! Run-time feature detection for LoongArch on Linux. + +use core::arch::asm; + +use super::auxvec; +use crate::detect::{Feature, bit, cache}; + +/// Try to read the features from the auxiliary vector. +pub(crate) fn detect_features() -> cache::Initializer { + let mut value = cache::Initializer::default(); + let enable_feature = |value: &mut cache::Initializer, feature, enable| { + if enable { + value.set(feature as u32); + } + }; + + // The values are part of the platform-specific [cpucfg] + // + // [cpucfg]: LoongArch Reference Manual Volume 1: Basic Architecture v1.1 + let cpucfg1: usize; + let cpucfg2: usize; + let cpucfg3: usize; + unsafe { + asm!( + "cpucfg {}, {}", + "cpucfg {}, {}", + "cpucfg {}, {}", + out(reg) cpucfg1, in(reg) 1, + out(reg) cpucfg2, in(reg) 2, + out(reg) cpucfg3, in(reg) 3, + options(pure, nomem, preserves_flags, nostack) + ); + } + enable_feature(&mut value, Feature::_32s, bit::test(cpucfg1, 0) || bit::test(cpucfg1, 1)); + enable_feature(&mut value, Feature::frecipe, bit::test(cpucfg2, 25)); + enable_feature(&mut value, Feature::div32, bit::test(cpucfg2, 26)); + enable_feature(&mut value, Feature::lam_bh, bit::test(cpucfg2, 27)); + enable_feature(&mut value, Feature::lamcas, bit::test(cpucfg2, 28)); + enable_feature(&mut value, Feature::scq, bit::test(cpucfg2, 30)); + enable_feature(&mut value, Feature::ld_seq_sa, bit::test(cpucfg3, 23)); + + // The values are part of the platform-specific [asm/hwcap.h][hwcap] + // + // [hwcap]: https://github.com/torvalds/linux/blob/master/arch/loongarch/include/uapi/asm/hwcap.h + if let Ok(auxv) = auxvec::auxv() { + enable_feature(&mut value, Feature::f, bit::test(cpucfg2, 1) && bit::test(auxv.hwcap, 3)); + enable_feature(&mut value, Feature::d, bit::test(cpucfg2, 2) && bit::test(auxv.hwcap, 3)); + enable_feature(&mut value, Feature::lsx, bit::test(auxv.hwcap, 4)); + enable_feature(&mut value, Feature::lasx, bit::test(auxv.hwcap, 5)); + enable_feature( + &mut value, + Feature::lbt, + bit::test(auxv.hwcap, 10) && bit::test(auxv.hwcap, 11) && bit::test(auxv.hwcap, 12), + ); + enable_feature(&mut value, Feature::lvz, bit::test(auxv.hwcap, 9)); + enable_feature(&mut value, Feature::ual, bit::test(auxv.hwcap, 2)); + return value; + } + value +} diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/os/linux/mips.rs b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/os/linux/mips.rs new file mode 100644 index 0000000000000000000000000000000000000000..0cfa8869887ee569a37a75a90dd8837b15ed58e5 --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/os/linux/mips.rs @@ -0,0 +1,23 @@ +//! Run-time feature detection for MIPS on Linux. + +use super::auxvec; +use crate::detect::{Feature, bit, cache}; + +/// Try to read the features from the auxiliary vector. +pub(crate) fn detect_features() -> cache::Initializer { + let mut value = cache::Initializer::default(); + let enable_feature = |value: &mut cache::Initializer, f, enable| { + if enable { + value.set(f as u32); + } + }; + + // The values are part of the platform-specific [asm/hwcap.h][hwcap] + // + // [hwcap]: https://github.com/torvalds/linux/blob/master/arch/mips/include/uapi/asm/hwcap.h + if let Ok(auxv) = auxvec::auxv() { + enable_feature(&mut value, Feature::msa, bit::test(auxv.hwcap, 1)); + return value; + } + value +} diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/os/linux/mod.rs b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/os/linux/mod.rs new file mode 100644 index 0000000000000000000000000000000000000000..aec94f963f5c1cbfa0ed2536c5ed0408fa0f68bb --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/os/linux/mod.rs @@ -0,0 +1,74 @@ +//! Run-time feature detection on Linux + +use alloc::vec::Vec; + +mod auxvec; + +fn read_file(orig_path: &str) -> Result, alloc::string::String> { + use alloc::format; + + let mut path = Vec::from(orig_path.as_bytes()); + path.push(0); + + unsafe { + let file = libc::open(path.as_ptr() as *const libc::c_char, libc::O_RDONLY); + if file == -1 { + return Err(format!("Cannot open file at {orig_path}")); + } + + let mut data = Vec::new(); + loop { + data.reserve(4096); + let spare = data.spare_capacity_mut(); + match libc::read(file, spare.as_mut_ptr() as *mut _, spare.len()) { + -1 => { + libc::close(file); + return Err(format!("Error while reading from file at {orig_path}")); + } + 0 => break, + n => data.set_len(data.len() + n as usize), + } + } + + libc::close(file); + Ok(data) + } +} + +cfg_select! { + target_arch = "aarch64" => { + mod aarch64; + pub(crate) use self::aarch64::detect_features; + } + target_arch = "arm" => { + mod arm; + pub(crate) use self::arm::detect_features; + } + any(target_arch = "riscv32", target_arch = "riscv64") => { + mod riscv; + pub(crate) use self::riscv::detect_features; + } + any(target_arch = "mips", target_arch = "mips64") => { + mod mips; + pub(crate) use self::mips::detect_features; + } + any(target_arch = "powerpc", target_arch = "powerpc64") => { + mod powerpc; + pub(crate) use self::powerpc::detect_features; + } + any(target_arch = "loongarch32", target_arch = "loongarch64") => { + mod loongarch; + pub(crate) use self::loongarch::detect_features; + } + target_arch = "s390x" => { + mod s390x; + pub(crate) use self::s390x::detect_features; + } + _ => { + use crate::detect::cache; + /// Performs run-time feature detection. + pub(crate) fn detect_features() -> cache::Initializer { + cache::Initializer::default() + } + } +} diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/os/linux/powerpc.rs b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/os/linux/powerpc.rs new file mode 100644 index 0000000000000000000000000000000000000000..6a4f7e715d932fa6a40331c84c6fc3d7befd72b7 --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/os/linux/powerpc.rs @@ -0,0 +1,35 @@ +//! Run-time feature detection for PowerPC on Linux. + +use super::auxvec; +use crate::detect::{Feature, cache}; + +/// Try to read the features from the auxiliary vector. +pub(crate) fn detect_features() -> cache::Initializer { + let mut value = cache::Initializer::default(); + let enable_feature = |value: &mut cache::Initializer, f, enable| { + if enable { + value.set(f as u32); + } + }; + + // The values are part of the platform-specific [asm/cputable.h][cputable] + // + // [cputable]: https://github.com/torvalds/linux/blob/master/arch/powerpc/include/uapi/asm/cputable.h + if let Ok(auxv) = auxvec::auxv() { + // note: the PowerPC values are the mask to do the test (instead of the + // index of the bit to test like in ARM and Aarch64) + enable_feature(&mut value, Feature::altivec, auxv.hwcap & 0x10000000 != 0); + enable_feature(&mut value, Feature::vsx, auxv.hwcap & 0x00000080 != 0); + let power8_features = auxv.hwcap2 & 0x80000000 != 0; + enable_feature(&mut value, Feature::power8, power8_features); + enable_feature(&mut value, Feature::power8_altivec, power8_features); + enable_feature(&mut value, Feature::power8_crypto, power8_features); + enable_feature(&mut value, Feature::power8_vector, power8_features); + let power9_features = auxv.hwcap2 & 0x00800000 != 0; + enable_feature(&mut value, Feature::power9, power9_features); + enable_feature(&mut value, Feature::power9_altivec, power9_features); + enable_feature(&mut value, Feature::power9_vector, power9_features); + return value; + } + value +} diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/os/linux/riscv.rs b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/os/linux/riscv.rs new file mode 100644 index 0000000000000000000000000000000000000000..18f9f68ec67efe2df437e33385dd62d7fc5d899f --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/os/linux/riscv.rs @@ -0,0 +1,323 @@ +//! Run-time feature detection for RISC-V on Linux. +//! +//! On RISC-V, detection using auxv only supports single-letter extensions. +//! So, we use riscv_hwprobe that supports multi-letter extensions if available. +//! + +use core::ptr; + +use super::super::riscv::imply_features; +use super::auxvec; +use crate::detect::{Feature, bit, cache}; + +// See +// for runtime status query constants. +const PR_RISCV_V_GET_CONTROL: libc::c_int = 70; +const PR_RISCV_V_VSTATE_CTRL_ON: libc::c_int = 2; +const PR_RISCV_V_VSTATE_CTRL_CUR_MASK: libc::c_int = 3; + +// See +// for riscv_hwprobe struct and hardware probing constants. + +#[repr(C)] +struct riscv_hwprobe { + key: i64, + value: u64, +} + +impl riscv_hwprobe { + // key is overwritten to -1 if not supported by riscv_hwprobe syscall. + pub fn get(&self) -> Option { + (self.key != -1).then_some(self.value) + } +} + +#[allow(non_upper_case_globals)] +const __NR_riscv_hwprobe: libc::c_long = 258; + +const RISCV_HWPROBE_KEY_BASE_BEHAVIOR: i64 = 3; +const RISCV_HWPROBE_BASE_BEHAVIOR_IMA: u64 = 1 << 0; + +const RISCV_HWPROBE_KEY_IMA_EXT_0: i64 = 4; +const RISCV_HWPROBE_IMA_FD: u64 = 1 << 0; +const RISCV_HWPROBE_IMA_C: u64 = 1 << 1; +const RISCV_HWPROBE_IMA_V: u64 = 1 << 2; +const RISCV_HWPROBE_EXT_ZBA: u64 = 1 << 3; +const RISCV_HWPROBE_EXT_ZBB: u64 = 1 << 4; +const RISCV_HWPROBE_EXT_ZBS: u64 = 1 << 5; +const RISCV_HWPROBE_EXT_ZICBOZ: u64 = 1 << 6; +const RISCV_HWPROBE_EXT_ZBC: u64 = 1 << 7; +const RISCV_HWPROBE_EXT_ZBKB: u64 = 1 << 8; +const RISCV_HWPROBE_EXT_ZBKC: u64 = 1 << 9; +const RISCV_HWPROBE_EXT_ZBKX: u64 = 1 << 10; +const RISCV_HWPROBE_EXT_ZKND: u64 = 1 << 11; +const RISCV_HWPROBE_EXT_ZKNE: u64 = 1 << 12; +const RISCV_HWPROBE_EXT_ZKNH: u64 = 1 << 13; +const RISCV_HWPROBE_EXT_ZKSED: u64 = 1 << 14; +const RISCV_HWPROBE_EXT_ZKSH: u64 = 1 << 15; +const RISCV_HWPROBE_EXT_ZKT: u64 = 1 << 16; +const RISCV_HWPROBE_EXT_ZVBB: u64 = 1 << 17; +const RISCV_HWPROBE_EXT_ZVBC: u64 = 1 << 18; +const RISCV_HWPROBE_EXT_ZVKB: u64 = 1 << 19; +const RISCV_HWPROBE_EXT_ZVKG: u64 = 1 << 20; +const RISCV_HWPROBE_EXT_ZVKNED: u64 = 1 << 21; +const RISCV_HWPROBE_EXT_ZVKNHA: u64 = 1 << 22; +const RISCV_HWPROBE_EXT_ZVKNHB: u64 = 1 << 23; +const RISCV_HWPROBE_EXT_ZVKSED: u64 = 1 << 24; +const RISCV_HWPROBE_EXT_ZVKSH: u64 = 1 << 25; +const RISCV_HWPROBE_EXT_ZVKT: u64 = 1 << 26; +const RISCV_HWPROBE_EXT_ZFH: u64 = 1 << 27; +const RISCV_HWPROBE_EXT_ZFHMIN: u64 = 1 << 28; +const RISCV_HWPROBE_EXT_ZIHINTNTL: u64 = 1 << 29; +const RISCV_HWPROBE_EXT_ZVFH: u64 = 1 << 30; +const RISCV_HWPROBE_EXT_ZVFHMIN: u64 = 1 << 31; +const RISCV_HWPROBE_EXT_ZFA: u64 = 1 << 32; +const RISCV_HWPROBE_EXT_ZTSO: u64 = 1 << 33; +const RISCV_HWPROBE_EXT_ZACAS: u64 = 1 << 34; +const RISCV_HWPROBE_EXT_ZICOND: u64 = 1 << 35; +const RISCV_HWPROBE_EXT_ZIHINTPAUSE: u64 = 1 << 36; +const RISCV_HWPROBE_EXT_ZVE32X: u64 = 1 << 37; +const RISCV_HWPROBE_EXT_ZVE32F: u64 = 1 << 38; +const RISCV_HWPROBE_EXT_ZVE64X: u64 = 1 << 39; +const RISCV_HWPROBE_EXT_ZVE64F: u64 = 1 << 40; +const RISCV_HWPROBE_EXT_ZVE64D: u64 = 1 << 41; +const RISCV_HWPROBE_EXT_ZIMOP: u64 = 1 << 42; +const RISCV_HWPROBE_EXT_ZCA: u64 = 1 << 43; +const RISCV_HWPROBE_EXT_ZCB: u64 = 1 << 44; +const RISCV_HWPROBE_EXT_ZCD: u64 = 1 << 45; +const RISCV_HWPROBE_EXT_ZCF: u64 = 1 << 46; +const RISCV_HWPROBE_EXT_ZCMOP: u64 = 1 << 47; +const RISCV_HWPROBE_EXT_ZAWRS: u64 = 1 << 48; +// Excluded because it only reports the existence of `prctl`-based pointer masking control. +// const RISCV_HWPROBE_EXT_SUPM: u64 = 1 << 49; +const RISCV_HWPROBE_EXT_ZICNTR: u64 = 1 << 50; +const RISCV_HWPROBE_EXT_ZIHPM: u64 = 1 << 51; +const RISCV_HWPROBE_EXT_ZFBFMIN: u64 = 1 << 52; +const RISCV_HWPROBE_EXT_ZVFBFMIN: u64 = 1 << 53; +const RISCV_HWPROBE_EXT_ZVFBFWMA: u64 = 1 << 54; +const RISCV_HWPROBE_EXT_ZICBOM: u64 = 1 << 55; +const RISCV_HWPROBE_EXT_ZAAMO: u64 = 1 << 56; +const RISCV_HWPROBE_EXT_ZALRSC: u64 = 1 << 57; +const RISCV_HWPROBE_EXT_ZABHA: u64 = 1 << 58; + +const RISCV_HWPROBE_KEY_CPUPERF_0: i64 = 5; +const RISCV_HWPROBE_MISALIGNED_FAST: u64 = 3; +const RISCV_HWPROBE_MISALIGNED_MASK: u64 = 7; + +const RISCV_HWPROBE_KEY_MISALIGNED_SCALAR_PERF: i64 = 9; +const RISCV_HWPROBE_MISALIGNED_SCALAR_FAST: u64 = 3; + +const RISCV_HWPROBE_KEY_MISALIGNED_VECTOR_PERF: i64 = 10; +const RISCV_HWPROBE_MISALIGNED_VECTOR_FAST: u64 = 3; + +// syscall returns an unsupported error if riscv_hwprobe is not supported, +// so we can safely use this function on older versions of Linux. +fn _riscv_hwprobe(out: &mut [riscv_hwprobe]) -> bool { + unsafe fn __riscv_hwprobe( + pairs: *mut riscv_hwprobe, + pair_count: libc::size_t, + cpu_set_size: libc::size_t, + cpus: *mut libc::c_ulong, + flags: libc::c_uint, + ) -> libc::c_long { + unsafe { libc::syscall(__NR_riscv_hwprobe, pairs, pair_count, cpu_set_size, cpus, flags) } + } + + unsafe { __riscv_hwprobe(out.as_mut_ptr(), out.len(), 0, ptr::null_mut(), 0) == 0 } +} + +/// Read list of supported features from (1) the auxiliary vector +/// and (2) the results of `riscv_hwprobe` and `prctl` system calls. +pub(crate) fn detect_features() -> cache::Initializer { + let mut value = cache::Initializer::default(); + let mut enable_feature = |feature, enable| { + if enable { + value.set(feature as u32); + } + }; + + // Use auxiliary vector to enable single-letter ISA extensions. + // The values are part of the platform-specific [asm/hwcap.h][hwcap] + // + // [hwcap]: https://git.kernel.org/pub/scm/linux/kernel/git/torvalds/linux.git/tree/arch/riscv/include/uapi/asm/hwcap.h?h=v6.16 + let auxv = auxvec::auxv().expect("read auxvec"); // should not fail on RISC-V platform + let mut has_i = bit::test(auxv.hwcap, (b'i' - b'a').into()); + #[allow(clippy::eq_op)] + enable_feature(Feature::a, bit::test(auxv.hwcap, (b'a' - b'a').into())); + enable_feature(Feature::c, bit::test(auxv.hwcap, (b'c' - b'a').into())); + enable_feature(Feature::d, bit::test(auxv.hwcap, (b'd' - b'a').into())); + enable_feature(Feature::f, bit::test(auxv.hwcap, (b'f' - b'a').into())); + enable_feature(Feature::m, bit::test(auxv.hwcap, (b'm' - b'a').into())); + let has_v = bit::test(auxv.hwcap, (b'v' - b'a').into()); + let mut is_v_set = false; + + // Use riscv_hwprobe syscall to query more extensions and + // performance-related capabilities. + 'hwprobe: { + macro_rules! init { + { $($name: ident : $key: expr),* $(,)? } => { + #[repr(usize)] + enum Indices { $($name),* } + let mut t = [$(riscv_hwprobe { key: $key, value: 0 }),*]; + macro_rules! data_mut { () => { &mut t } } + macro_rules! query { [$idx: ident] => { t[Indices::$idx as usize].get() } } + } + } + init! { + BaseBehavior: RISCV_HWPROBE_KEY_BASE_BEHAVIOR, + Extensions: RISCV_HWPROBE_KEY_IMA_EXT_0, + MisalignedScalarPerf: RISCV_HWPROBE_KEY_MISALIGNED_SCALAR_PERF, + MisalignedVectorPerf: RISCV_HWPROBE_KEY_MISALIGNED_VECTOR_PERF, + MisalignedScalarPerfFallback: RISCV_HWPROBE_KEY_CPUPERF_0, + }; + if !_riscv_hwprobe(data_mut!()) { + break 'hwprobe; + } + + // Query scalar misaligned behavior. + if let Some(value) = query![MisalignedScalarPerf] { + enable_feature( + Feature::unaligned_scalar_mem, + value == RISCV_HWPROBE_MISALIGNED_SCALAR_FAST, + ); + } else if let Some(value) = query![MisalignedScalarPerfFallback] { + // Deprecated method for fallback + enable_feature( + Feature::unaligned_scalar_mem, + value & RISCV_HWPROBE_MISALIGNED_MASK == RISCV_HWPROBE_MISALIGNED_FAST, + ); + } + + // Query vector misaligned behavior. + if let Some(value) = query![MisalignedVectorPerf] { + enable_feature( + Feature::unaligned_vector_mem, + value == RISCV_HWPROBE_MISALIGNED_VECTOR_FAST, + ); + } + + // Query whether "I" base and extensions "M" and "A" (as in the ISA + // manual version 2.2) are enabled. "I" base at that time corresponds + // to "I", "Zicsr", "Zicntr" and "Zifencei" (as in the ISA manual version + // 20240411). + // This is a current requirement of + // `RISCV_HWPROBE_KEY_IMA_EXT_0`-based tests. + if query![BaseBehavior].is_none_or(|value| value & RISCV_HWPROBE_BASE_BEHAVIOR_IMA == 0) { + break 'hwprobe; + } + has_i = true; + enable_feature(Feature::zicsr, true); + enable_feature(Feature::zicntr, true); + enable_feature(Feature::zifencei, true); + enable_feature(Feature::m, true); + enable_feature(Feature::a, true); + + // Enable features based on `RISCV_HWPROBE_KEY_IMA_EXT_0`. + let Some(ima_ext_0) = query![Extensions] else { + break 'hwprobe; + }; + let test = |mask| (ima_ext_0 & mask) != 0; + + enable_feature(Feature::d, test(RISCV_HWPROBE_IMA_FD)); // F is implied. + enable_feature(Feature::c, test(RISCV_HWPROBE_IMA_C)); + + enable_feature(Feature::zicntr, test(RISCV_HWPROBE_EXT_ZICNTR)); + enable_feature(Feature::zihpm, test(RISCV_HWPROBE_EXT_ZIHPM)); + + enable_feature(Feature::zihintntl, test(RISCV_HWPROBE_EXT_ZIHINTNTL)); + enable_feature(Feature::zihintpause, test(RISCV_HWPROBE_EXT_ZIHINTPAUSE)); + enable_feature(Feature::zimop, test(RISCV_HWPROBE_EXT_ZIMOP)); + enable_feature(Feature::zicbom, test(RISCV_HWPROBE_EXT_ZICBOM)); + enable_feature(Feature::zicboz, test(RISCV_HWPROBE_EXT_ZICBOZ)); + enable_feature(Feature::zicond, test(RISCV_HWPROBE_EXT_ZICOND)); + + enable_feature(Feature::zalrsc, test(RISCV_HWPROBE_EXT_ZALRSC)); + enable_feature(Feature::zaamo, test(RISCV_HWPROBE_EXT_ZAAMO)); + enable_feature(Feature::zawrs, test(RISCV_HWPROBE_EXT_ZAWRS)); + enable_feature(Feature::zabha, test(RISCV_HWPROBE_EXT_ZABHA)); + enable_feature(Feature::zacas, test(RISCV_HWPROBE_EXT_ZACAS)); + enable_feature(Feature::ztso, test(RISCV_HWPROBE_EXT_ZTSO)); + + enable_feature(Feature::zba, test(RISCV_HWPROBE_EXT_ZBA)); + enable_feature(Feature::zbb, test(RISCV_HWPROBE_EXT_ZBB)); + enable_feature(Feature::zbs, test(RISCV_HWPROBE_EXT_ZBS)); + enable_feature(Feature::zbc, test(RISCV_HWPROBE_EXT_ZBC)); + + enable_feature(Feature::zbkb, test(RISCV_HWPROBE_EXT_ZBKB)); + enable_feature(Feature::zbkc, test(RISCV_HWPROBE_EXT_ZBKC)); + enable_feature(Feature::zbkx, test(RISCV_HWPROBE_EXT_ZBKX)); + enable_feature(Feature::zknd, test(RISCV_HWPROBE_EXT_ZKND)); + enable_feature(Feature::zkne, test(RISCV_HWPROBE_EXT_ZKNE)); + enable_feature(Feature::zknh, test(RISCV_HWPROBE_EXT_ZKNH)); + enable_feature(Feature::zksed, test(RISCV_HWPROBE_EXT_ZKSED)); + enable_feature(Feature::zksh, test(RISCV_HWPROBE_EXT_ZKSH)); + enable_feature(Feature::zkt, test(RISCV_HWPROBE_EXT_ZKT)); + + enable_feature(Feature::zcmop, test(RISCV_HWPROBE_EXT_ZCMOP)); + enable_feature(Feature::zca, test(RISCV_HWPROBE_EXT_ZCA)); + enable_feature(Feature::zcf, test(RISCV_HWPROBE_EXT_ZCF)); + enable_feature(Feature::zcd, test(RISCV_HWPROBE_EXT_ZCD)); + enable_feature(Feature::zcb, test(RISCV_HWPROBE_EXT_ZCB)); + + enable_feature(Feature::zfh, test(RISCV_HWPROBE_EXT_ZFH)); + enable_feature(Feature::zfhmin, test(RISCV_HWPROBE_EXT_ZFHMIN)); + enable_feature(Feature::zfa, test(RISCV_HWPROBE_EXT_ZFA)); + enable_feature(Feature::zfbfmin, test(RISCV_HWPROBE_EXT_ZFBFMIN)); + + // Use prctl (if any) to determine whether the vector extension + // is enabled on the current thread (assuming the entire process + // share the same status). If prctl fails (e.g. QEMU userland emulator + // as of version 9.2.3), use auxiliary vector to retrieve the default + // vector status on the process startup. + let has_vectors = { + let v_status = unsafe { libc::prctl(PR_RISCV_V_GET_CONTROL) }; + if v_status >= 0 { + (v_status & PR_RISCV_V_VSTATE_CTRL_CUR_MASK) == PR_RISCV_V_VSTATE_CTRL_ON + } else { + has_v + } + }; + if has_vectors { + enable_feature(Feature::v, test(RISCV_HWPROBE_IMA_V)); + enable_feature(Feature::zve32x, test(RISCV_HWPROBE_EXT_ZVE32X)); + enable_feature(Feature::zve32f, test(RISCV_HWPROBE_EXT_ZVE32F)); + enable_feature(Feature::zve64x, test(RISCV_HWPROBE_EXT_ZVE64X)); + enable_feature(Feature::zve64f, test(RISCV_HWPROBE_EXT_ZVE64F)); + enable_feature(Feature::zve64d, test(RISCV_HWPROBE_EXT_ZVE64D)); + + enable_feature(Feature::zvbb, test(RISCV_HWPROBE_EXT_ZVBB)); + enable_feature(Feature::zvbc, test(RISCV_HWPROBE_EXT_ZVBC)); + enable_feature(Feature::zvkb, test(RISCV_HWPROBE_EXT_ZVKB)); + enable_feature(Feature::zvkg, test(RISCV_HWPROBE_EXT_ZVKG)); + enable_feature(Feature::zvkned, test(RISCV_HWPROBE_EXT_ZVKNED)); + enable_feature(Feature::zvknha, test(RISCV_HWPROBE_EXT_ZVKNHA)); + enable_feature(Feature::zvknhb, test(RISCV_HWPROBE_EXT_ZVKNHB)); + enable_feature(Feature::zvksed, test(RISCV_HWPROBE_EXT_ZVKSED)); + enable_feature(Feature::zvksh, test(RISCV_HWPROBE_EXT_ZVKSH)); + enable_feature(Feature::zvkt, test(RISCV_HWPROBE_EXT_ZVKT)); + + enable_feature(Feature::zvfh, test(RISCV_HWPROBE_EXT_ZVFH)); + enable_feature(Feature::zvfhmin, test(RISCV_HWPROBE_EXT_ZVFHMIN)); + enable_feature(Feature::zvfbfmin, test(RISCV_HWPROBE_EXT_ZVFBFMIN)); + enable_feature(Feature::zvfbfwma, test(RISCV_HWPROBE_EXT_ZVFBFWMA)); + } + is_v_set = true; + }; + + // Set V purely depending on the auxiliary vector + // only if no fine-grained vector extension detection is available. + if !is_v_set { + enable_feature(Feature::v, has_v); + } + + // Handle base ISA. + // If future RV128I is supported, implement with `enable_feature` here. + // Note that we should use `target_arch` instead of `target_pointer_width` + // to avoid misdetection caused by experimental ABIs such as RV64ILP32. + #[cfg(target_arch = "riscv64")] + enable_feature(Feature::rv64i, has_i); + #[cfg(target_arch = "riscv32")] + enable_feature(Feature::rv32i, has_i); + + imply_features(value) +} diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/os/linux/s390x.rs b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/os/linux/s390x.rs new file mode 100644 index 0000000000000000000000000000000000000000..9b53f526d619831790bf2ce66143396bff687c98 --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/os/linux/s390x.rs @@ -0,0 +1,152 @@ +//! Run-time feature detection for s390x on Linux. + +use super::auxvec; +use crate::detect::{Feature, bit, cache}; + +/// Try to read the features from the auxiliary vector +pub(crate) fn detect_features() -> cache::Initializer { + let opt_hwcap: Option = auxvec::auxv().ok().map(Into::into); + let facilities = ExtendedFacilityList::new(); + cache(opt_hwcap, facilities) +} + +#[derive(Debug, Default, PartialEq)] +struct AtHwcap { + esan3: bool, + zarch: bool, + stfle: bool, + msa: bool, + ldisp: bool, + eimm: bool, + dfp: bool, + hpage: bool, + etf3eh: bool, + high_gprs: bool, + te: bool, + vxrs: bool, + vxrs_bcd: bool, + vxrs_ext: bool, + gs: bool, + vxrs_ext2: bool, + vxrs_pde: bool, + sort: bool, + dflt: bool, + vxrs_pde2: bool, + nnpa: bool, + pci_mio: bool, + sie: bool, +} + +impl From for AtHwcap { + /// Reads AtHwcap from the auxiliary vector. + fn from(auxv: auxvec::AuxVec) -> Self { + AtHwcap { + esan3: bit::test(auxv.hwcap, 0), + zarch: bit::test(auxv.hwcap, 1), + stfle: bit::test(auxv.hwcap, 2), + msa: bit::test(auxv.hwcap, 3), + ldisp: bit::test(auxv.hwcap, 4), + eimm: bit::test(auxv.hwcap, 5), + dfp: bit::test(auxv.hwcap, 6), + hpage: bit::test(auxv.hwcap, 7), + etf3eh: bit::test(auxv.hwcap, 8), + high_gprs: bit::test(auxv.hwcap, 9), + te: bit::test(auxv.hwcap, 10), + vxrs: bit::test(auxv.hwcap, 11), + vxrs_bcd: bit::test(auxv.hwcap, 12), + vxrs_ext: bit::test(auxv.hwcap, 13), + gs: bit::test(auxv.hwcap, 14), + vxrs_ext2: bit::test(auxv.hwcap, 15), + vxrs_pde: bit::test(auxv.hwcap, 16), + sort: bit::test(auxv.hwcap, 17), + dflt: bit::test(auxv.hwcap, 18), + vxrs_pde2: bit::test(auxv.hwcap, 19), + nnpa: bit::test(auxv.hwcap, 20), + pci_mio: bit::test(auxv.hwcap, 21), + sie: bit::test(auxv.hwcap, 22), + } + } +} + +struct ExtendedFacilityList([u64; 4]); + +impl ExtendedFacilityList { + fn new() -> Self { + let mut result: [u64; 4] = [0; 4]; + // SAFETY: rust/llvm only support s390x version with the `stfle` instruction. + unsafe { + core::arch::asm!( + // equivalently ".insn s, 0xb2b00000, 0({1})", + "stfle 0({})", + in(reg_addr) result.as_mut_ptr() , + inout("r0") result.len() as u64 - 1 => _, + options(nostack) + ); + } + Self(result) + } + + const fn get_bit(&self, n: usize) -> bool { + // NOTE: bits are numbered from the left. + self.0[n / 64] & (1 << (63 - (n % 64))) != 0 + } +} + +/// Initializes the cache from the feature bits. +/// +/// These values are part of the platform-specific [asm/elf.h][kernel], and are a selection of the +/// fields found in the [Facility Indications]. +/// +/// [Facility Indications]: https://www.ibm.com/support/pages/sites/default/files/2021-05/SA22-7871-10.pdf#page=63 +/// [kernel]: https://github.com/torvalds/linux/blob/b62cef9a5c673f1b8083159f5dc03c1c5daced2f/arch/s390/include/asm/elf.h#L129 +fn cache(hwcap: Option, facilities: ExtendedFacilityList) -> cache::Initializer { + let mut value = cache::Initializer::default(); + + { + let mut enable_if_set = |bit_index, f| { + if facilities.get_bit(bit_index) { + value.set(f as u32); + } + }; + + // We use HWCAP for `vector` because it requires both hardware and kernel support. + if let Some(AtHwcap { vxrs: true, .. }) = hwcap { + // vector and related + + enable_if_set(129, Feature::vector); + + enable_if_set(135, Feature::vector_enhancements_1); + enable_if_set(148, Feature::vector_enhancements_2); + enable_if_set(198, Feature::vector_enhancements_3); + + enable_if_set(134, Feature::vector_packed_decimal); + enable_if_set(152, Feature::vector_packed_decimal_enhancement); + enable_if_set(192, Feature::vector_packed_decimal_enhancement_2); + enable_if_set(199, Feature::vector_packed_decimal_enhancement_3); + + enable_if_set(165, Feature::nnp_assist); + } + + // others + + enable_if_set(76, Feature::message_security_assist_extension3); + enable_if_set(77, Feature::message_security_assist_extension4); + enable_if_set(57, Feature::message_security_assist_extension5); + enable_if_set(146, Feature::message_security_assist_extension8); + enable_if_set(155, Feature::message_security_assist_extension9); + enable_if_set(86, Feature::message_security_assist_extension12); + + enable_if_set(58, Feature::miscellaneous_extensions_2); + enable_if_set(61, Feature::miscellaneous_extensions_3); + enable_if_set(84, Feature::miscellaneous_extensions_4); + + enable_if_set(45, Feature::high_word); + enable_if_set(73, Feature::transactional_execution); + enable_if_set(133, Feature::guarded_storage); + enable_if_set(150, Feature::enhanced_sort); + enable_if_set(151, Feature::deflate_conversion); + enable_if_set(201, Feature::concurrent_functions); + } + + value +} diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/os/openbsd/aarch64.rs b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/os/openbsd/aarch64.rs new file mode 100644 index 0000000000000000000000000000000000000000..6825a3760e4857527de33a62450fdad1d1afa70b --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/os/openbsd/aarch64.rs @@ -0,0 +1,57 @@ +//! Run-time feature detection for Aarch64 on OpenBSD. +//! +//! OpenBSD doesn't trap the mrs instruction, but exposes the system registers through sysctl. +//! https://github.com/openbsd/src/commit/d335af936b9d7dd9cf655cae1ce19560c45de6c8 +//! https://github.com/golang/go/commit/cd54ef1f61945459486e9eea2f016d99ef1da925 + +use core::mem::MaybeUninit; +use core::ptr; + +use crate::detect::cache; + +// Defined in machine/cpu.h. +// https://github.com/openbsd/src/blob/72ccc03bd11da614f31f7ff76e3f6fce99bc1c79/sys/arch/arm64/include/cpu.h#L25-L40 +const CPU_ID_AA64ISAR0: libc::c_int = 2; +const CPU_ID_AA64ISAR1: libc::c_int = 3; +const CPU_ID_AA64MMFR2: libc::c_int = 7; +const CPU_ID_AA64PFR0: libc::c_int = 8; + +/// Try to read the features from the system registers. +pub(crate) fn detect_features() -> cache::Initializer { + // ID_AA64ISAR0_EL1 and ID_AA64ISAR1_EL1 are supported on OpenBSD 7.1+. + // https://github.com/openbsd/src/commit/d335af936b9d7dd9cf655cae1ce19560c45de6c8 + // Others are supported on OpenBSD 7.3+. + // https://github.com/openbsd/src/commit/c7654cd65262d532212f65123ee3905ba200365c + // sysctl returns an unsupported error if operation is not supported, + // so we can safely use this function on older versions of OpenBSD. + let aa64isar0 = sysctl64(&[libc::CTL_MACHDEP, CPU_ID_AA64ISAR0]).unwrap_or(0); + let aa64isar1 = sysctl64(&[libc::CTL_MACHDEP, CPU_ID_AA64ISAR1]).unwrap_or(0); + let aa64mmfr2 = sysctl64(&[libc::CTL_MACHDEP, CPU_ID_AA64MMFR2]).unwrap_or(0); + // Do not use unwrap_or(0) because in fp and asimd fields, 0 indicates that + // the feature is available. + let aa64pfr0 = sysctl64(&[libc::CTL_MACHDEP, CPU_ID_AA64PFR0]); + + crate::detect::aarch64::parse_system_registers(aa64isar0, aa64isar1, aa64mmfr2, aa64pfr0) +} + +#[inline] +fn sysctl64(mib: &[libc::c_int]) -> Option { + const OUT_LEN: libc::size_t = core::mem::size_of::(); + let mut out = MaybeUninit::::uninit(); + let mut out_len = OUT_LEN; + let res = unsafe { + libc::sysctl( + mib.as_ptr(), + mib.len() as libc::c_uint, + out.as_mut_ptr() as *mut libc::c_void, + &mut out_len, + ptr::null_mut(), + 0, + ) + }; + if res == -1 || out_len != OUT_LEN { + return None; + } + // SAFETY: we've checked that sysctl was successful and `out` was filled. + Some(unsafe { out.assume_init() }) +} diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/os/openbsd/auxvec.rs b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/os/openbsd/auxvec.rs new file mode 100644 index 0000000000000000000000000000000000000000..7a1efb2265d4c9de4afc16b19e83c770d254120d --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/os/openbsd/auxvec.rs @@ -0,0 +1,54 @@ +//! Parses ELF auxiliary vectors. +#![cfg_attr( + any(target_arch = "aarch64", target_arch = "powerpc64", target_arch = "riscv64"), + allow(dead_code) +)] + +/// Cache HWCAP bitfields of the ELF Auxiliary Vector. +/// +/// If an entry cannot be read all the bits in the bitfield are set to zero. +/// This should be interpreted as all the features being disabled. +#[derive(Debug, Copy, Clone)] +pub(crate) struct AuxVec { + pub hwcap: usize, + pub hwcap2: usize, +} + +/// ELF Auxiliary Vector +/// +/// The auxiliary vector is a memory region in a running ELF program's stack +/// composed of (key: usize, value: usize) pairs. +/// +/// The keys used in the aux vector are platform dependent. For OpenBSD, they are +/// defined in [machine/elf.h][elfh]. The hardware capabilities of a given CPU +/// can be queried with the `AT_HWCAP` and `AT_HWCAP2` keys. +/// +/// Note that run-time feature detection is not invoked for features that can +/// be detected at compile-time. +/// +/// [elf.h]: https://github.com/openbsd/src/blob/master/sys/arch/arm64/include/elf.h +/// [elf.h]: https://github.com/openbsd/src/blob/master/sys/arch/powerpc64/include/elf.h +pub(crate) fn auxv() -> Result { + let hwcap = archauxv(libc::AT_HWCAP); + let hwcap2 = archauxv(libc::AT_HWCAP2); + // Zero could indicate that no features were detected, but it's also used to + // indicate an error. In particular, on many platforms AT_HWCAP2 will be + // legitimately zero, since it contains the most recent feature flags. + if hwcap != 0 || hwcap2 != 0 { + return Ok(AuxVec { hwcap, hwcap2 }); + } + Err(()) +} + +/// Tries to read the `key` from the auxiliary vector. +fn archauxv(key: libc::c_int) -> usize { + const OUT_LEN: libc::c_int = core::mem::size_of::() as libc::c_int; + let mut out: libc::c_ulong = 0; + unsafe { + let res = + libc::elf_aux_info(key, &mut out as *mut libc::c_ulong as *mut libc::c_void, OUT_LEN); + // If elf_aux_info fails, `out` will be left at zero (which is the proper default value). + debug_assert!(res == 0 || out == 0); + } + out as usize +} diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/os/openbsd/mod.rs b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/os/openbsd/mod.rs new file mode 100644 index 0000000000000000000000000000000000000000..ebfdbd5e6bcfcf234e0d2aa7b096c50410f708c7 --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/os/openbsd/mod.rs @@ -0,0 +1,21 @@ +//! Run-time feature detection on OpenBSD + +mod auxvec; + +cfg_select! { + target_arch = "aarch64" => { + mod aarch64; + pub(crate) use self::aarch64::detect_features; + } + target_arch = "powerpc64" => { + mod powerpc; + pub(crate) use self::powerpc::detect_features; + } + _ => { + use crate::detect::cache; + /// Performs run-time feature detection. + pub(crate) fn detect_features() -> cache::Initializer { + cache::Initializer::default() + } + } +} diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/os/openbsd/powerpc.rs b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/os/openbsd/powerpc.rs new file mode 100644 index 0000000000000000000000000000000000000000..dd98ab2a3f76ed7e4a34f3098a4546689712c753 --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/os/openbsd/powerpc.rs @@ -0,0 +1,21 @@ +//! Run-time feature detection for PowerPC on OpenBSD. + +use super::auxvec; +use crate::detect::{Feature, cache}; + +pub(crate) fn detect_features() -> cache::Initializer { + let mut value = cache::Initializer::default(); + let enable_feature = |value: &mut cache::Initializer, f, enable| { + if enable { + value.set(f as u32); + } + }; + + if let Ok(auxv) = auxvec::auxv() { + enable_feature(&mut value, Feature::altivec, auxv.hwcap & 0x10000000 != 0); + enable_feature(&mut value, Feature::vsx, auxv.hwcap & 0x00000080 != 0); + enable_feature(&mut value, Feature::power8, auxv.hwcap2 & 0x80000000 != 0); + return value; + } + value +} diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/os/other.rs b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/os/other.rs new file mode 100644 index 0000000000000000000000000000000000000000..091fafc4ebf4d7e9c6dd589d8d42299f5a5774a4 --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/os/other.rs @@ -0,0 +1,8 @@ +//! Other operating systems + +use crate::detect::cache; + +#[allow(dead_code)] +pub(crate) fn detect_features() -> cache::Initializer { + cache::Initializer::default() +} diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/os/riscv.rs b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/os/riscv.rs new file mode 100644 index 0000000000000000000000000000000000000000..9b9e0cba09d1c430062f19886a260734875ceb4b --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/os/riscv.rs @@ -0,0 +1,159 @@ +//! Run-time feature detection utility for RISC-V. +//! +//! On RISC-V, full feature detection needs a help of one or more +//! feature detection mechanisms (usually provided by the operating system). +//! +//! RISC-V architecture defines many extensions and some have dependency to others. +//! More importantly, some of them cannot be enabled without resolving such +//! dependencies due to limited set of features that such mechanisms provide. +//! +//! This module provides an OS-independent utility to process such relations +//! between RISC-V extensions. + +use crate::detect::{Feature, cache}; + +/// Imply features by the given set of enabled features. +/// +/// Note that it does not perform any consistency checks including existence of +/// conflicting extensions and/or complicated requirements. Eliminating such +/// inconsistencies is the responsibility of the feature detection logic and +/// its provider(s). +pub(crate) fn imply_features(mut value: cache::Initializer) -> cache::Initializer { + loop { + // Check convergence of the feature flags later. + let prev = value; + + // Expect that the optimizer turns repeated operations into + // a fewer number of bit-manipulation operations. + macro_rules! imply { + // Regular implication: + // A1 => (B1[, B2...]), A2 => (B1[, B2...]) and so on. + ($($from: ident)|+ => $($to: ident)&+) => { + if [$(Feature::$from as u32),+].iter().any(|&x| value.test(x)) { + $( + value.set(Feature::$to as u32); + )+ + } + }; + // Implication with multiple requirements: + // A1 && A2 ... => (B1[, B2...]). + ($($from: ident)&+ => $($to: ident)&+) => { + if [$(Feature::$from as u32),+].iter().all(|&x| value.test(x)) { + $( + value.set(Feature::$to as u32); + )+ + } + }; + } + macro_rules! group { + ($group: ident == $($member: ident)&+) => { + // Forward implication as defined in the specifications. + imply!($group => $($member)&+); + // Reverse implication to "group extension" from its members. + // This is not a part of specifications but convenient for + // feature detection and implemented in e.g. LLVM. + imply!($($member)&+ => $group); + }; + } + + /* + If a dependency/implication is not explicitly stated in the + specification, it is denoted as a comment as follows: + "defined as subset": + The latter extension is described as a subset of the former + (but the evidence is weak). + "functional": + The former extension is functionally a superset of the latter + (no direct references though). + */ + + imply!(zvbb => zvkb); + + // Certain set of vector cryptography extensions form a group. + group!(zvkn == zvkned & zvknhb & zvkb & zvkt); + group!(zvknc == zvkn & zvbc); + group!(zvkng == zvkn & zvkg); + group!(zvks == zvksed & zvksh & zvkb & zvkt); + group!(zvksc == zvks & zvbc); + group!(zvksg == zvks & zvkg); + + imply!(zvknhb => zvknha); // functional + + // For vector cryptography, Zvknhb and Zvbc require integer arithmetic + // with EEW=64 (Zve64x) while others not depending on them + // require EEW=32 (Zve32x). + imply!(zvknhb | zvbc => zve64x); + imply!(zvbb | zvkb | zvkg | zvkned | zvknha | zvksed | zvksh => zve32x); + + imply!(zbc => zbkc); // defined as subset + group!(zkn == zbkb & zbkc & zbkx & zkne & zknd & zknh); + group!(zks == zbkb & zbkc & zbkx & zksed & zksh); + group!(zk == zkn & zkr & zkt); + + imply!(zabha | zacas => zaamo); + group!(a == zalrsc & zaamo); + + group!(b == zba & zbb & zbs); + + imply!(zcf => zca & f); + imply!(zcd => zca & d); + imply!(zcmop | zcb => zca); + + imply!(zhinx => zhinxmin); + imply!(zdinx | zhinxmin => zfinx); + + imply!(zvfh => zvfhmin); // functional + imply!(zvfh => zve32f & zfhmin); + imply!(zvfhmin => zve32f); + imply!(zvfbfwma => zvfbfmin & zfbfmin); + imply!(zvfbfmin => zve32f); + + imply!(v => zve64d); + imply!(zve64d => zve64f & d); + imply!(zve64f => zve64x & zve32f); + imply!(zve64x => zve32x); + imply!(zve32f => zve32x & f); + + imply!(zfh => zfhmin); + imply!(q => d); + imply!(d | zfhmin | zfa => f); + imply!(zfbfmin => f); // and some of (not all) "Zfh" instructions. + + // Relatively complex implication rules around the "C" extension. + // (from "C" and some others) + imply!(c => zca); + imply!(c & d => zcd); + #[cfg(target_arch = "riscv32")] + imply!(c & f => zcf); + // (to "C"; defined as superset) + cfg_select! { + target_arch = "riscv32" => { + if value.test(Feature::d as u32) { + imply!(zcf & zcd => c); + } else if value.test(Feature::f as u32) { + imply!(zcf => c); + } else { + imply!(zca => c); + } + } + _ => { + if value.test(Feature::d as u32) { + imply!(zcd => c); + } else { + imply!(zca => c); + } + } + } + + imply!(zicntr | zihpm | f | zfinx | zve32x => zicsr); + + // Loop until the feature flags converge. + if prev == value { + return value; + } + } +} + +#[cfg(test)] +#[path = "riscv/tests.rs"] +mod tests; diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/os/riscv/tests.rs b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/os/riscv/tests.rs new file mode 100644 index 0000000000000000000000000000000000000000..99a81dee05a6c83851a25c760267271460e81704 --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/os/riscv/tests.rs @@ -0,0 +1,64 @@ +use super::*; + +#[test] +fn simple_direct() { + let mut value = cache::Initializer::default(); + value.set(Feature::f as u32); + // F (and other extensions with CSRs) -> Zicsr + assert!(imply_features(value).test(Feature::zicsr as u32)); +} + +#[test] +fn simple_indirect() { + let mut value = cache::Initializer::default(); + value.set(Feature::q as u32); + // Q -> D, D -> F, F -> Zicsr + assert!(imply_features(value).test(Feature::zicsr as u32)); +} + +#[test] +fn complex_zcd() { + let mut value = cache::Initializer::default(); + // C & D -> Zcd + value.set(Feature::c as u32); + assert!(!imply_features(value).test(Feature::zcd as u32)); + value.set(Feature::d as u32); + assert!(imply_features(value).test(Feature::zcd as u32)); +} + +#[test] +fn group_simple_forward() { + let mut value = cache::Initializer::default(); + // A -> Zalrsc & Zaamo (forward implication) + value.set(Feature::a as u32); + let value = imply_features(value); + assert!(value.test(Feature::zalrsc as u32)); + assert!(value.test(Feature::zaamo as u32)); +} + +#[test] +fn group_simple_backward() { + let mut value = cache::Initializer::default(); + // Zalrsc & Zaamo -> A (reverse implication) + value.set(Feature::zalrsc as u32); + value.set(Feature::zaamo as u32); + assert!(imply_features(value).test(Feature::a as u32)); +} + +#[test] +fn group_complex_convergence() { + let mut value = cache::Initializer::default(); + // Needs 3 iterations to converge + // (and 4th iteration for convergence checking): + // 1. [Zvksc] -> Zvks & Zvbc + // 2. Zvks -> Zvksed & Zvksh & Zvkb & Zvkt + // 3a. [Zvkned] & [Zvknhb] & [Zvkb] & Zvkt -> {Zvkn} + // 3b. Zvkn & Zvbc -> {Zvknc} + value.set(Feature::zvksc as u32); + value.set(Feature::zvkned as u32); + value.set(Feature::zvknhb as u32); + value.set(Feature::zvkb as u32); + let value = imply_features(value); + assert!(value.test(Feature::zvkn as u32)); + assert!(value.test(Feature::zvknc as u32)); +} diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/os/windows/aarch64.rs b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/os/windows/aarch64.rs new file mode 100644 index 0000000000000000000000000000000000000000..937f9f26eedc16181dfb9b1b132ed19cccf56655 --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/os/windows/aarch64.rs @@ -0,0 +1,125 @@ +//! Run-time feature detection for Aarch64 on Windows. + +use crate::detect::{Feature, cache}; + +/// Try to read the features using IsProcessorFeaturePresent. +pub(crate) fn detect_features() -> cache::Initializer { + type DWORD = u32; + type BOOL = i32; + + const FALSE: BOOL = 0; + // The following Microsoft documents isn't updated for aarch64. + // https://docs.microsoft.com/en-us/windows/win32/api/processthreadsapi/nf-processthreadsapi-isprocessorfeaturepresent + // These are defined in winnt.h of Windows SDK + const PF_ARM_VFP_32_REGISTERS_AVAILABLE: u32 = 18; + const PF_ARM_NEON_INSTRUCTIONS_AVAILABLE: u32 = 19; + const PF_ARM_V8_CRYPTO_INSTRUCTIONS_AVAILABLE: u32 = 30; + const PF_ARM_V8_CRC32_INSTRUCTIONS_AVAILABLE: u32 = 31; + const PF_ARM_V81_ATOMIC_INSTRUCTIONS_AVAILABLE: u32 = 34; + const PF_ARM_V82_DP_INSTRUCTIONS_AVAILABLE: u32 = 43; + const PF_ARM_V83_JSCVT_INSTRUCTIONS_AVAILABLE: u32 = 44; + const PF_ARM_V83_LRCPC_INSTRUCTIONS_AVAILABLE: u32 = 45; + const PF_ARM_SVE_INSTRUCTIONS_AVAILABLE: u32 = 46; + const PF_ARM_SVE2_INSTRUCTIONS_AVAILABLE: u32 = 47; + const PF_ARM_SVE2_1_INSTRUCTIONS_AVAILABLE: u32 = 48; + const PF_ARM_SVE_AES_INSTRUCTIONS_AVAILABLE: u32 = 49; + const PF_ARM_SVE_PMULL128_INSTRUCTIONS_AVAILABLE: u32 = 50; + const PF_ARM_SVE_BITPERM_INSTRUCTIONS_AVAILABLE: u32 = 51; + // const PF_ARM_SVE_BF16_INSTRUCTIONS_AVAILABLE: u32 = 52; + // const PF_ARM_SVE_EBF16_INSTRUCTIONS_AVAILABLE: u32 = 53; + const PF_ARM_SVE_B16B16_INSTRUCTIONS_AVAILABLE: u32 = 54; + const PF_ARM_SVE_SHA3_INSTRUCTIONS_AVAILABLE: u32 = 55; + const PF_ARM_SVE_SM4_INSTRUCTIONS_AVAILABLE: u32 = 56; + // const PF_ARM_SVE_I8MM_INSTRUCTIONS_AVAILABLE: u32 = 57; + // const PF_ARM_SVE_F32MM_INSTRUCTIONS_AVAILABLE: u32 = 58; + // const PF_ARM_SVE_F64MM_INSTRUCTIONS_AVAILABLE: u32 = 59; + + unsafe extern "system" { + fn IsProcessorFeaturePresent(ProcessorFeature: DWORD) -> BOOL; + } + + let mut value = cache::Initializer::default(); + { + let mut enable_feature = |f, enable| { + if enable { + value.set(f as u32); + } + }; + + // Some features may be supported on current CPU, + // but no way to detect it by OS API. + // Also, we require unsafe block for the extern "system" calls. + unsafe { + enable_feature( + Feature::fp, + IsProcessorFeaturePresent(PF_ARM_VFP_32_REGISTERS_AVAILABLE) != FALSE, + ); + enable_feature( + Feature::asimd, + IsProcessorFeaturePresent(PF_ARM_NEON_INSTRUCTIONS_AVAILABLE) != FALSE, + ); + enable_feature( + Feature::crc, + IsProcessorFeaturePresent(PF_ARM_V8_CRC32_INSTRUCTIONS_AVAILABLE) != FALSE, + ); + enable_feature( + Feature::lse, + IsProcessorFeaturePresent(PF_ARM_V81_ATOMIC_INSTRUCTIONS_AVAILABLE) != FALSE, + ); + enable_feature( + Feature::dotprod, + IsProcessorFeaturePresent(PF_ARM_V82_DP_INSTRUCTIONS_AVAILABLE) != FALSE, + ); + enable_feature( + Feature::jsconv, + IsProcessorFeaturePresent(PF_ARM_V83_JSCVT_INSTRUCTIONS_AVAILABLE) != FALSE, + ); + enable_feature( + Feature::rcpc, + IsProcessorFeaturePresent(PF_ARM_V83_LRCPC_INSTRUCTIONS_AVAILABLE) != FALSE, + ); + enable_feature( + Feature::sve, + IsProcessorFeaturePresent(PF_ARM_SVE_INSTRUCTIONS_AVAILABLE) != FALSE, + ); + enable_feature( + Feature::sve2, + IsProcessorFeaturePresent(PF_ARM_SVE2_INSTRUCTIONS_AVAILABLE) != FALSE, + ); + enable_feature( + Feature::sve2p1, + IsProcessorFeaturePresent(PF_ARM_SVE2_1_INSTRUCTIONS_AVAILABLE) != FALSE, + ); + enable_feature( + Feature::sve2_aes, + IsProcessorFeaturePresent(PF_ARM_SVE_AES_INSTRUCTIONS_AVAILABLE) != FALSE + && IsProcessorFeaturePresent(PF_ARM_SVE_PMULL128_INSTRUCTIONS_AVAILABLE) + != FALSE, + ); + enable_feature( + Feature::sve2_bitperm, + IsProcessorFeaturePresent(PF_ARM_SVE_BITPERM_INSTRUCTIONS_AVAILABLE) != FALSE, + ); + enable_feature( + Feature::sve_b16b16, + IsProcessorFeaturePresent(PF_ARM_SVE_B16B16_INSTRUCTIONS_AVAILABLE) != FALSE, + ); + enable_feature( + Feature::sve2_sha3, + IsProcessorFeaturePresent(PF_ARM_SVE_SHA3_INSTRUCTIONS_AVAILABLE) != FALSE, + ); + enable_feature( + Feature::sve2_sm4, + IsProcessorFeaturePresent(PF_ARM_SVE_SM4_INSTRUCTIONS_AVAILABLE) != FALSE, + ); + // PF_ARM_V8_CRYPTO_INSTRUCTIONS_AVAILABLE means aes, sha1, sha2 and + // pmull support + let crypto = + IsProcessorFeaturePresent(PF_ARM_V8_CRYPTO_INSTRUCTIONS_AVAILABLE) != FALSE; + enable_feature(Feature::aes, crypto); + enable_feature(Feature::pmull, crypto); + enable_feature(Feature::sha2, crypto); + } + } + value +} diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/os/x86.rs b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/os/x86.rs new file mode 100644 index 0000000000000000000000000000000000000000..f2205ba07dd415658c26a2ea1fe96c4e3a63b939 --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/os/x86.rs @@ -0,0 +1,330 @@ +//! x86 run-time feature detection is OS independent. + +#[cfg(target_arch = "x86")] +use core::arch::x86::*; +#[cfg(target_arch = "x86_64")] +use core::arch::x86_64::*; +use core::mem; + +use crate::detect::{Feature, bit, cache}; + +/// Run-time feature detection on x86 works by using the CPUID instruction. +/// +/// The [CPUID Wikipedia page][wiki_cpuid] contains +/// all the information about which flags to set to query which values, and in +/// which registers these are reported. +/// +/// The definitive references are: +/// - [Intel 64 and IA-32 Architectures Software Developer's Manual Volume 2: +/// Instruction Set Reference, A-Z][intel64_ref]. +/// - [AMD64 Architecture Programmer's Manual, Volume 3: General-Purpose and +/// System Instructions][amd64_ref]. +/// +/// [wiki_cpuid]: https://en.wikipedia.org/wiki/CPUID +/// [intel64_ref]: http://www.intel.de/content/dam/www/public/us/en/documents/manuals/64-ia-32-architectures-software-developer-instruction-set-reference-manual-325383.pdf +/// [amd64_ref]: http://support.amd.com/TechDocs/24594.pdf +#[allow(clippy::similar_names)] +pub(crate) fn detect_features() -> cache::Initializer { + let mut value = cache::Initializer::default(); + + if cfg!(target_env = "sgx") { + // doesn't support this because it is untrusted data + return value; + } + + // Calling `__cpuid`/`__cpuid_count` from here on is safe because the CPU + // has `cpuid` support. + + // 0. EAX = 0: Basic Information: + // - EAX returns the "Highest Function Parameter", that is, the maximum + // leaf value for subsequent calls of `cpuinfo` in range [0, + // 0x8000_0000]. - The vendor ID is stored in 12 u8 ascii chars, + // returned in EBX, EDX, and ECX (in that order): + let (max_basic_leaf, vendor_id) = { + let CpuidResult { eax: max_basic_leaf, ebx, ecx, edx } = __cpuid(0); + let vendor_id: [[u8; 4]; 3] = [ebx.to_ne_bytes(), edx.to_ne_bytes(), ecx.to_ne_bytes()]; + let vendor_id: [u8; 12] = unsafe { mem::transmute(vendor_id) }; + (max_basic_leaf, vendor_id) + }; + + if max_basic_leaf < 1 { + // Earlier Intel 486, CPUID not implemented + return value; + } + + // EAX = 1, ECX = 0: Queries "Processor Info and Feature Bits"; + // Contains information about most x86 features. + let CpuidResult { ecx: proc_info_ecx, edx: proc_info_edx, .. } = __cpuid(0x0000_0001_u32); + + // EAX = 7: Queries "Extended Features"; + // Contains information about bmi,bmi2, and avx2 support. + let ( + extended_features_ebx, + extended_features_ecx, + extended_features_edx, + extended_features_eax_leaf_1, + extended_features_edx_leaf_1, + ) = if max_basic_leaf >= 7 { + let CpuidResult { ebx, ecx, edx, .. } = __cpuid(0x0000_0007_u32); + let CpuidResult { eax: eax_1, edx: edx_1, .. } = + __cpuid_count(0x0000_0007_u32, 0x0000_0001_u32); + (ebx, ecx, edx, eax_1, edx_1) + } else { + (0, 0, 0, 0, 0) // CPUID does not support "Extended Features" + }; + + // EAX = 0x8000_0000, ECX = 0: Get Highest Extended Function Supported + // - EAX returns the max leaf value for extended information, that is, + // `cpuid` calls in range [0x8000_0000; u32::MAX]: + let CpuidResult { eax: extended_max_basic_leaf, .. } = __cpuid(0x8000_0000_u32); + + // EAX = 0x8000_0001, ECX=0: Queries "Extended Processor Info and Feature + // Bits" + let extended_proc_info_ecx = if extended_max_basic_leaf >= 1 { + let CpuidResult { ecx, .. } = __cpuid(0x8000_0001_u32); + ecx + } else { + 0 + }; + + { + // borrows value till the end of this scope: + let mut enable = |r, rb, f| { + let present = bit::test(r as usize, rb); + if present { + value.set(f as u32); + } + present + }; + + enable(proc_info_ecx, 0, Feature::sse3); + enable(proc_info_ecx, 1, Feature::pclmulqdq); + enable(proc_info_ecx, 9, Feature::ssse3); + enable(proc_info_ecx, 13, Feature::cmpxchg16b); + enable(proc_info_ecx, 19, Feature::sse4_1); + enable(proc_info_ecx, 20, Feature::sse4_2); + enable(proc_info_ecx, 22, Feature::movbe); + enable(proc_info_ecx, 23, Feature::popcnt); + enable(proc_info_ecx, 25, Feature::aes); + let f16c = enable(proc_info_ecx, 29, Feature::f16c); + enable(proc_info_ecx, 30, Feature::rdrand); + enable(extended_features_ebx, 18, Feature::rdseed); + enable(extended_features_ebx, 19, Feature::adx); + enable(extended_features_ebx, 11, Feature::rtm); + enable(proc_info_edx, 4, Feature::tsc); + enable(proc_info_edx, 23, Feature::mmx); + enable(proc_info_edx, 24, Feature::fxsr); + enable(proc_info_edx, 25, Feature::sse); + enable(proc_info_edx, 26, Feature::sse2); + enable(extended_features_ebx, 29, Feature::sha); + + enable(extended_features_ecx, 8, Feature::gfni); + enable(extended_features_ecx, 9, Feature::vaes); + enable(extended_features_ecx, 10, Feature::vpclmulqdq); + + enable(extended_features_ebx, 3, Feature::bmi1); + enable(extended_features_ebx, 8, Feature::bmi2); + + enable(extended_features_ebx, 9, Feature::ermsb); + + enable(extended_features_eax_leaf_1, 31, Feature::movrs); + + // Detect if CPUID.19h available + if bit::test(extended_features_ecx as usize, 23) { + let CpuidResult { ebx, .. } = __cpuid(0x19); + enable(ebx, 0, Feature::kl); + enable(ebx, 2, Feature::widekl); + } + + // This detects ABM on AMD CPUs and LZCNT on Intel CPUs. + // On intel CPUs with popcnt, lzcnt implements the + // "missing part" of ABM, so we map both to the same + // internal feature. + // + // The `is_x86_feature_detected!("lzcnt")` macro then + // internally maps to Feature::abm. + enable(extended_proc_info_ecx, 5, Feature::lzcnt); + + // As Hygon Dhyana originates from AMD technology and shares most of the architecture with + // AMD's family 17h, but with different CPU Vendor ID("HygonGenuine")/Family series + // number(Family 18h). + // + // For CPUID feature bits, Hygon Dhyana(family 18h) share the same definition with AMD + // family 17h. + // + // Related AMD CPUID specification is https://www.amd.com/system/files/TechDocs/25481.pdf. + // Related Hygon kernel patch can be found on + // http://lkml.kernel.org/r/5ce86123a7b9dad925ac583d88d2f921040e859b.1538583282.git.puwen@hygon.cn + if vendor_id == *b"AuthenticAMD" || vendor_id == *b"HygonGenuine" { + // These features are available on AMD arch CPUs: + enable(extended_proc_info_ecx, 6, Feature::sse4a); + enable(extended_proc_info_ecx, 21, Feature::tbm); + enable(extended_proc_info_ecx, 11, Feature::xop); + } + + // `XSAVE` and `AVX` support: + let cpu_xsave = bit::test(proc_info_ecx as usize, 26); + if cpu_xsave { + // 0. Here the CPU supports `XSAVE`. + + // 1. Detect `OSXSAVE`, that is, whether the OS is AVX enabled and + // supports saving the state of the AVX/AVX2 vector registers on + // context-switches, see: + // + // - [intel: is avx enabled?][is_avx_enabled], + // - [mozilla: sse.cpp][mozilla_sse_cpp]. + // + // [is_avx_enabled]: https://software.intel.com/en-us/blogs/2011/04/14/is-avx-enabled + // [mozilla_sse_cpp]: https://hg.mozilla.org/mozilla-central/file/64bab5cbb9b6/mozglue/build/SSE.cpp#l190 + let cpu_osxsave = bit::test(proc_info_ecx as usize, 27); + + if cpu_osxsave { + // 2. The OS must have signaled the CPU that it supports saving and + // restoring the: + // + // * SSE -> `XCR0.SSE[1]` + // * AVX -> `XCR0.AVX[2]` + // * AVX-512 -> `XCR0.AVX-512[7:5]`. + // * AMX -> `XCR0.AMX[18:17]` + // * APX -> `XCR0.APX[19]` + // + // by setting the corresponding bits of `XCR0` to `1`. + // + // This is safe because the CPU supports `xsave` + // and the OS has set `osxsave`. + let xcr0 = unsafe { _xgetbv(0) }; + // Test `XCR0.SSE[1]` and `XCR0.AVX[2]` with the mask `0b110 == 6`: + let os_avx_support = xcr0 & 6 == 6; + // Test `XCR0.AVX-512[7:5]` with the mask `0b1110_0000 == 0xe0`: + let os_avx512_support = xcr0 & 0xe0 == 0xe0; + // Test `XCR0.AMX[18:17]` with the mask `0b110_0000_0000_0000_0000 == 0x60000` + let os_amx_support = xcr0 & 0x60000 == 0x60000; + // Test `XCR0.APX[19]` with the mask `0b1000_0000_0000_0000_0000 == 0x80000` + let os_apx_support = xcr0 & 0x80000 == 0x80000; + + // Only if the OS and the CPU support saving/restoring the AVX + // registers we enable `xsave` support: + if os_avx_support { + // See "13.3 ENABLING THE XSAVE FEATURE SET AND XSAVE-ENABLED + // FEATURES" in the "Intel® 64 and IA-32 Architectures Software + // Developer’s Manual, Volume 1: Basic Architecture": + // + // "Software enables the XSAVE feature set by setting + // CR4.OSXSAVE[bit 18] to 1 (e.g., with the MOV to CR4 + // instruction). If this bit is 0, execution of any of XGETBV, + // XRSTOR, XRSTORS, XSAVE, XSAVEC, XSAVEOPT, XSAVES, and XSETBV + // causes an invalid-opcode exception (#UD)" + // + enable(proc_info_ecx, 26, Feature::xsave); + + // For `xsaveopt`, `xsavec`, and `xsaves` we need to query: + // Processor Extended State Enumeration Sub-leaf (EAX = 0DH, + // ECX = 1): + if max_basic_leaf >= 0xd { + let CpuidResult { eax: proc_extended_state1_eax, .. } = + __cpuid_count(0xd_u32, 1); + enable(proc_extended_state1_eax, 0, Feature::xsaveopt); + enable(proc_extended_state1_eax, 1, Feature::xsavec); + enable(proc_extended_state1_eax, 3, Feature::xsaves); + } + + // FMA (uses 256-bit wide registers): + let fma = enable(proc_info_ecx, 12, Feature::fma); + + // And AVX/AVX2: + enable(proc_info_ecx, 28, Feature::avx); + enable(extended_features_ebx, 5, Feature::avx2); + + // "Short" versions of AVX512 instructions + enable(extended_features_eax_leaf_1, 4, Feature::avxvnni); + enable(extended_features_eax_leaf_1, 23, Feature::avxifma); + enable(extended_features_edx_leaf_1, 4, Feature::avxvnniint8); + enable(extended_features_edx_leaf_1, 5, Feature::avxneconvert); + enable(extended_features_edx_leaf_1, 10, Feature::avxvnniint16); + + enable(extended_features_eax_leaf_1, 0, Feature::sha512); + enable(extended_features_eax_leaf_1, 1, Feature::sm3); + enable(extended_features_eax_leaf_1, 2, Feature::sm4); + + // For AVX-512 the OS also needs to support saving/restoring + // the extended state, only then we enable AVX-512 support: + // Also, Rust makes `avx512f` imply `fma` and `f16c`, because + // otherwise the assembler is broken. But Intel doesn't guarantee + // that `fma` and `f16c` are available with `avx512f`, so we + // need to check for them separately. + if os_avx512_support && f16c && fma { + enable(extended_features_ebx, 16, Feature::avx512f); + enable(extended_features_ebx, 17, Feature::avx512dq); + enable(extended_features_ebx, 21, Feature::avx512ifma); + enable(extended_features_ebx, 26, Feature::avx512pf); + enable(extended_features_ebx, 27, Feature::avx512er); + enable(extended_features_ebx, 28, Feature::avx512cd); + enable(extended_features_ebx, 30, Feature::avx512bw); + enable(extended_features_ebx, 31, Feature::avx512vl); + enable(extended_features_ecx, 1, Feature::avx512vbmi); + enable(extended_features_ecx, 6, Feature::avx512vbmi2); + enable(extended_features_ecx, 11, Feature::avx512vnni); + enable(extended_features_ecx, 12, Feature::avx512bitalg); + enable(extended_features_ecx, 14, Feature::avx512vpopcntdq); + enable(extended_features_edx, 8, Feature::avx512vp2intersect); + enable(extended_features_edx, 23, Feature::avx512fp16); + enable(extended_features_eax_leaf_1, 5, Feature::avx512bf16); + } + } + + if os_amx_support { + enable(extended_features_edx, 24, Feature::amx_tile); + enable(extended_features_edx, 25, Feature::amx_int8); + enable(extended_features_edx, 22, Feature::amx_bf16); + enable(extended_features_eax_leaf_1, 21, Feature::amx_fp16); + enable(extended_features_edx_leaf_1, 8, Feature::amx_complex); + + if max_basic_leaf >= 0x1e { + let CpuidResult { eax: amx_feature_flags_eax, .. } = + __cpuid_count(0x1e_u32, 1); + + enable(amx_feature_flags_eax, 4, Feature::amx_fp8); + enable(amx_feature_flags_eax, 6, Feature::amx_tf32); + enable(amx_feature_flags_eax, 7, Feature::amx_avx512); + enable(amx_feature_flags_eax, 8, Feature::amx_movrs); + } + } + + if os_apx_support { + enable(extended_features_edx_leaf_1, 21, Feature::apxf); + } + + let avx10_1 = enable(extended_features_edx_leaf_1, 19, Feature::avx10_1); + if avx10_1 { + let CpuidResult { ebx, .. } = __cpuid(0x24); + let avx10_version = ebx & 0xff; + if avx10_version >= 2 { + value.set(Feature::avx10_2 as u32); + } + } + } + } + } + + // Unfortunately, some Skylake chips erroneously report support for BMI1 and + // BMI2 without actual support. These chips don't support AVX, and it seems + // that all Intel chips with non-erroneous support BMI do (I didn't check + // other vendors), so we can disable these flags for chips that don't also + // report support for AVX. + // + // It's possible this will pessimize future chips that do support BMI and + // not AVX, but this seems minor compared to a hard crash you get when + // executing an unsupported instruction (to put it another way, it's safe + // for us to under-report CPU features, but not to over-report them). Still, + // to limit any impact this may have in the future, we only do this for + // Intel chips, as it's a bug only present in their chips. + // + // This bug is documented as `SKL052` in the errata section of this document: + // http://www.intel.com/content/dam/www/public/us/en/documents/specification-updates/desktop-6th-gen-core-family-spec-update.pdf + if vendor_id == *b"GenuineIntel" && !value.test(Feature::avx as u32) { + value.unset(Feature::bmi1 as u32); + value.unset(Feature::bmi2 as u32); + } + + value +} diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/test_data/linux-artificial-aarch64.auxv b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/test_data/linux-artificial-aarch64.auxv new file mode 100644 index 0000000000000000000000000000000000000000..ec826afcf38179904c8b4312842dc474687d254c Binary files /dev/null and b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/test_data/linux-artificial-aarch64.auxv differ diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/test_data/linux-empty-hwcap2-aarch64.auxv b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/test_data/linux-empty-hwcap2-aarch64.auxv new file mode 100644 index 0000000000000000000000000000000000000000..95537b73f2069a6ff257b2e20c42809e4bb30c9e Binary files /dev/null and b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/test_data/linux-empty-hwcap2-aarch64.auxv differ diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/test_data/linux-hwcap2-aarch64.auxv b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/test_data/linux-hwcap2-aarch64.auxv new file mode 100644 index 0000000000000000000000000000000000000000..1d87264b221901c140c379792e7e14c7e74cbf5c Binary files /dev/null and b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/test_data/linux-hwcap2-aarch64.auxv differ diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/test_data/linux-no-hwcap2-aarch64.auxv b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/test_data/linux-no-hwcap2-aarch64.auxv new file mode 100644 index 0000000000000000000000000000000000000000..35f01cc767c507ed0d28a1d349fa84ba33dc7899 Binary files /dev/null and b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/test_data/linux-no-hwcap2-aarch64.auxv differ diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/test_data/linux-rpi3.auxv b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/test_data/linux-rpi3.auxv new file mode 100644 index 0000000000000000000000000000000000000000..0538e661f63ad0676ced42f9ac4cd57787555c20 Binary files /dev/null and b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/test_data/linux-rpi3.auxv differ diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/test_data/macos-virtualbox-linux-x86-4850HQ.auxv b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/test_data/macos-virtualbox-linux-x86-4850HQ.auxv new file mode 100644 index 0000000000000000000000000000000000000000..75abc02d17813074bf947fa0725e8509e21109ee Binary files /dev/null and b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/detect/test_data/macos-virtualbox-linux-x86-4850HQ.auxv differ diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/lib.rs b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/lib.rs new file mode 100644 index 0000000000000000000000000000000000000000..f9d79df670a0f7dc913a7f1ebfb73334cb8388a9 --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/src/lib.rs @@ -0,0 +1,35 @@ +//! Run-time feature detection for the Rust standard library. +//! +//! To detect whether a feature is enabled in the system running the binary +//! use one of the appropriate macro for the target: +//! +//! * `x86` and `x86_64`: [`is_x86_feature_detected`] +//! * `arm`: [`is_arm_feature_detected`] +//! * `aarch64`: [`is_aarch64_feature_detected`] +//! * `riscv`: [`is_riscv_feature_detected`] +//! * `mips`: [`is_mips_feature_detected`] +//! * `mips64`: [`is_mips64_feature_detected`] +//! * `powerpc`: [`is_powerpc_feature_detected`] +//! * `powerpc64`: [`is_powerpc64_feature_detected`] +//! * `loongarch`: [`is_loongarch_feature_detected`] +//! * `s390x`: [`is_s390x_feature_detected`] + +#![unstable(feature = "stdarch_internal", issue = "none")] +#![feature(staged_api, doc_cfg, allow_internal_unstable)] +#![deny(rust_2018_idioms)] +#![allow(clippy::shadow_reuse)] +#![cfg_attr(test, allow(unused_imports))] +#![no_std] +#![allow(internal_features)] + +#[cfg(test)] +#[macro_use] +extern crate std; + +// rust-lang/rust#83888: removing `extern crate` gives an error that `vec_spare> +#[allow(unused_extern_crates)] +extern crate alloc; + +#[doc(hidden)] +#[unstable(feature = "stdarch_internal", issue = "none")] +pub mod detect; diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/tests/cpu-detection.rs b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/tests/cpu-detection.rs new file mode 100644 index 0000000000000000000000000000000000000000..0aad088af7de5a9eac9128ef3233df5cf448e366 --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/tests/cpu-detection.rs @@ -0,0 +1,335 @@ +#![allow(internal_features, unused_features)] +#![feature(stdarch_internal)] +#![cfg_attr(target_arch = "arm", feature(stdarch_arm_feature_detection))] +#![cfg_attr( + any(target_arch = "aarch64", target_arch = "arm64ec"), + feature(stdarch_aarch64_feature_detection) +)] +#![cfg_attr( + any(target_arch = "riscv32", target_arch = "riscv64"), + feature(stdarch_riscv_feature_detection) +)] +#![cfg_attr(target_arch = "powerpc", feature(stdarch_powerpc_feature_detection))] +#![cfg_attr(target_arch = "powerpc64", feature(stdarch_powerpc_feature_detection))] +#![allow(clippy::unwrap_used, clippy::use_debug, clippy::print_stdout)] + +#[cfg_attr( + any( + target_arch = "arm", + target_arch = "aarch64", + target_arch = "arm64ec", + target_arch = "riscv32", + target_arch = "riscv64", + target_arch = "powerpc", + target_arch = "powerpc64", + target_arch = "s390x", + ), + macro_use +)] +#[cfg(any( + target_arch = "arm", + target_arch = "aarch64", + target_arch = "arm64ec", + target_arch = "riscv32", + target_arch = "riscv64", + target_arch = "powerpc", + target_arch = "powerpc64", + target_arch = "s390x", +))] +extern crate std_detect; + +#[test] +fn all() { + for (f, e) in std_detect::detect::features() { + println!("{f}: {e}"); + } +} + +#[test] +#[cfg(all(target_arch = "arm", target_os = "freebsd"))] +fn arm_freebsd() { + println!("neon: {}", is_arm_feature_detected!("neon")); + println!("pmull: {}", is_arm_feature_detected!("pmull")); + println!("crc: {}", is_arm_feature_detected!("crc")); + println!("aes: {}", is_arm_feature_detected!("aes")); + println!("sha2: {}", is_arm_feature_detected!("sha2")); +} + +#[test] +#[cfg(all(target_arch = "arm", any(target_os = "linux", target_os = "android")))] +fn arm_linux() { + println!("neon: {}", is_arm_feature_detected!("neon")); + println!("pmull: {}", is_arm_feature_detected!("pmull")); + println!("crc: {}", is_arm_feature_detected!("crc")); + println!("aes: {}", is_arm_feature_detected!("aes")); + println!("sha2: {}", is_arm_feature_detected!("sha2")); + println!("dotprod: {}", is_arm_feature_detected!("dotprod")); + println!("i8mm: {}", is_arm_feature_detected!("i8mm")); +} + +#[test] +#[cfg(all(target_arch = "aarch64", any(target_os = "linux", target_os = "android")))] +fn aarch64_linux() { + println!("asimd: {}", is_aarch64_feature_detected!("asimd")); + println!("neon: {}", is_aarch64_feature_detected!("neon")); + println!("pmull: {}", is_aarch64_feature_detected!("pmull")); + println!("fp: {}", is_aarch64_feature_detected!("fp")); + println!("fp16: {}", is_aarch64_feature_detected!("fp16")); + println!("sve: {}", is_aarch64_feature_detected!("sve")); + println!("crc: {}", is_aarch64_feature_detected!("crc")); + println!("lse: {}", is_aarch64_feature_detected!("lse")); + println!("lse2: {}", is_aarch64_feature_detected!("lse2")); + println!("lse128: {}", is_aarch64_feature_detected!("lse128")); + println!("rdm: {}", is_aarch64_feature_detected!("rdm")); + println!("rcpc: {}", is_aarch64_feature_detected!("rcpc")); + println!("rcpc2: {}", is_aarch64_feature_detected!("rcpc2")); + println!("rcpc3: {}", is_aarch64_feature_detected!("rcpc3")); + println!("dotprod: {}", is_aarch64_feature_detected!("dotprod")); + println!("fhm: {}", is_aarch64_feature_detected!("fhm")); + println!("dit: {}", is_aarch64_feature_detected!("dit")); + println!("flagm: {}", is_aarch64_feature_detected!("flagm")); + println!("flagm2: {}", is_aarch64_feature_detected!("flagm2")); + println!("ssbs: {}", is_aarch64_feature_detected!("ssbs")); + println!("sb: {}", is_aarch64_feature_detected!("sb")); + println!("paca: {}", is_aarch64_feature_detected!("paca")); + println!("pacg: {}", is_aarch64_feature_detected!("pacg")); + // println!("pauth-lr: {}", is_aarch64_feature_detected!("pauth-lr")); + println!("dpb: {}", is_aarch64_feature_detected!("dpb")); + println!("dpb2: {}", is_aarch64_feature_detected!("dpb2")); + println!("sve-b16b16: {}", is_aarch64_feature_detected!("sve-b16b16")); + println!("sve2: {}", is_aarch64_feature_detected!("sve2")); + println!("sve2p1: {}", is_aarch64_feature_detected!("sve2p1")); + println!("sve2-aes: {}", is_aarch64_feature_detected!("sve2-aes")); + println!("sve2-sm4: {}", is_aarch64_feature_detected!("sve2-sm4")); + println!("sve2-sha3: {}", is_aarch64_feature_detected!("sve2-sha3")); + println!("sve2-bitperm: {}", is_aarch64_feature_detected!("sve2-bitperm")); + println!("frintts: {}", is_aarch64_feature_detected!("frintts")); + println!("i8mm: {}", is_aarch64_feature_detected!("i8mm")); + println!("f32mm: {}", is_aarch64_feature_detected!("f32mm")); + println!("f64mm: {}", is_aarch64_feature_detected!("f64mm")); + println!("bf16: {}", is_aarch64_feature_detected!("bf16")); + println!("rand: {}", is_aarch64_feature_detected!("rand")); + println!("bti: {}", is_aarch64_feature_detected!("bti")); + println!("mte: {}", is_aarch64_feature_detected!("mte")); + println!("jsconv: {}", is_aarch64_feature_detected!("jsconv")); + println!("fcma: {}", is_aarch64_feature_detected!("fcma")); + println!("aes: {}", is_aarch64_feature_detected!("aes")); + println!("sha2: {}", is_aarch64_feature_detected!("sha2")); + println!("sha3: {}", is_aarch64_feature_detected!("sha3")); + println!("sm4: {}", is_aarch64_feature_detected!("sm4")); + println!("hbc: {}", is_aarch64_feature_detected!("hbc")); + println!("mops: {}", is_aarch64_feature_detected!("mops")); + println!("ecv: {}", is_aarch64_feature_detected!("ecv")); + println!("cssc: {}", is_aarch64_feature_detected!("cssc")); + println!("fpmr: {}", is_aarch64_feature_detected!("fpmr")); + println!("lut: {}", is_aarch64_feature_detected!("lut")); + println!("faminmax: {}", is_aarch64_feature_detected!("faminmax")); + println!("fp8: {}", is_aarch64_feature_detected!("fp8")); + println!("fp8fma: {}", is_aarch64_feature_detected!("fp8fma")); + println!("fp8dot4: {}", is_aarch64_feature_detected!("fp8dot4")); + println!("fp8dot2: {}", is_aarch64_feature_detected!("fp8dot2")); + println!("wfxt: {}", is_aarch64_feature_detected!("wfxt")); + println!("sme: {}", is_aarch64_feature_detected!("sme")); + println!("sme-b16b16: {}", is_aarch64_feature_detected!("sme-b16b16")); + println!("sme-i16i64: {}", is_aarch64_feature_detected!("sme-i16i64")); + println!("sme-f64f64: {}", is_aarch64_feature_detected!("sme-f64f64")); + println!("sme-fa64: {}", is_aarch64_feature_detected!("sme-fa64")); + println!("sme2: {}", is_aarch64_feature_detected!("sme2")); + println!("sme2p1: {}", is_aarch64_feature_detected!("sme2p1")); + println!("sme-f16f16: {}", is_aarch64_feature_detected!("sme-f16f16")); + println!("sme-lutv2: {}", is_aarch64_feature_detected!("sme-lutv2")); + println!("sme-f8f16: {}", is_aarch64_feature_detected!("sme-f8f16")); + println!("sme-f8f32: {}", is_aarch64_feature_detected!("sme-f8f32")); + println!("ssve-fp8fma: {}", is_aarch64_feature_detected!("ssve-fp8fma")); + println!("ssve-fp8dot4: {}", is_aarch64_feature_detected!("ssve-fp8dot4")); + println!("ssve-fp8dot2: {}", is_aarch64_feature_detected!("ssve-fp8dot2")); +} + +#[test] +#[cfg(all(any(target_arch = "aarch64", target_arch = "arm64ec"), target_os = "windows"))] +fn aarch64_windows() { + println!("asimd: {:?}", is_aarch64_feature_detected!("asimd")); + println!("fp: {:?}", is_aarch64_feature_detected!("fp")); + println!("crc: {:?}", is_aarch64_feature_detected!("crc")); + println!("lse: {:?}", is_aarch64_feature_detected!("lse")); + println!("dotprod: {:?}", is_aarch64_feature_detected!("dotprod")); + println!("jsconv: {:?}", is_aarch64_feature_detected!("jsconv")); + println!("rcpc: {:?}", is_aarch64_feature_detected!("rcpc")); + println!("aes: {:?}", is_aarch64_feature_detected!("aes")); + println!("pmull: {:?}", is_aarch64_feature_detected!("pmull")); + println!("sha2: {:?}", is_aarch64_feature_detected!("sha2")); +} + +#[test] +#[cfg(all(target_arch = "aarch64", any(target_os = "freebsd", target_os = "openbsd")))] +fn aarch64_bsd() { + println!("asimd: {:?}", is_aarch64_feature_detected!("asimd")); + println!("pmull: {:?}", is_aarch64_feature_detected!("pmull")); + println!("fp: {:?}", is_aarch64_feature_detected!("fp")); + println!("fp16: {:?}", is_aarch64_feature_detected!("fp16")); + println!("sve: {:?}", is_aarch64_feature_detected!("sve")); + println!("crc: {:?}", is_aarch64_feature_detected!("crc")); + println!("lse: {:?}", is_aarch64_feature_detected!("lse")); + println!("lse2: {:?}", is_aarch64_feature_detected!("lse2")); + println!("rdm: {:?}", is_aarch64_feature_detected!("rdm")); + println!("rcpc: {:?}", is_aarch64_feature_detected!("rcpc")); + println!("dotprod: {:?}", is_aarch64_feature_detected!("dotprod")); + println!("paca: {:?}", is_aarch64_feature_detected!("paca")); + println!("pacg: {:?}", is_aarch64_feature_detected!("pacg")); + println!("aes: {:?}", is_aarch64_feature_detected!("aes")); + println!("sha2: {:?}", is_aarch64_feature_detected!("sha2")); +} + +#[test] +#[cfg(all(target_arch = "aarch64", target_vendor = "apple"))] +fn aarch64_darwin() { + println!("asimd: {:?}", is_aarch64_feature_detected!("asimd")); + println!("fp: {:?}", is_aarch64_feature_detected!("fp")); + println!("fp16: {:?}", is_aarch64_feature_detected!("fp16")); + println!("pmull: {:?}", is_aarch64_feature_detected!("pmull")); + println!("crc: {:?}", is_aarch64_feature_detected!("crc")); + println!("lse: {:?}", is_aarch64_feature_detected!("lse")); + println!("lse2: {:?}", is_aarch64_feature_detected!("lse2")); + println!("rdm: {:?}", is_aarch64_feature_detected!("rdm")); + println!("rcpc: {:?}", is_aarch64_feature_detected!("rcpc")); + println!("rcpc2: {:?}", is_aarch64_feature_detected!("rcpc2")); + println!("dotprod: {:?}", is_aarch64_feature_detected!("dotprod")); + println!("fhm: {:?}", is_aarch64_feature_detected!("fhm")); + println!("flagm: {:?}", is_aarch64_feature_detected!("flagm")); + println!("ssbs: {:?}", is_aarch64_feature_detected!("ssbs")); + println!("sb: {:?}", is_aarch64_feature_detected!("sb")); + println!("paca: {:?}", is_aarch64_feature_detected!("paca")); + println!("dpb: {:?}", is_aarch64_feature_detected!("dpb")); + println!("dpb2: {:?}", is_aarch64_feature_detected!("dpb2")); + println!("frintts: {:?}", is_aarch64_feature_detected!("frintts")); + println!("i8mm: {:?}", is_aarch64_feature_detected!("i8mm")); + println!("bf16: {:?}", is_aarch64_feature_detected!("bf16")); + println!("bti: {:?}", is_aarch64_feature_detected!("bti")); + println!("fcma: {:?}", is_aarch64_feature_detected!("fcma")); + println!("jsconv: {:?}", is_aarch64_feature_detected!("jsconv")); + println!("aes: {:?}", is_aarch64_feature_detected!("aes")); + println!("sha2: {:?}", is_aarch64_feature_detected!("sha2")); + println!("sha3: {:?}", is_aarch64_feature_detected!("sha3")); +} + +#[test] +#[cfg(all( + any(target_arch = "riscv32", target_arch = "riscv64"), + any(target_os = "linux", target_os = "android") +))] +fn riscv_linux() { + println!("rv32i: {}", is_riscv_feature_detected!("rv32i")); + println!("rv32e: {}", is_riscv_feature_detected!("rv32e")); + println!("rv64i: {}", is_riscv_feature_detected!("rv64i")); + println!("rv128i: {}", is_riscv_feature_detected!("rv128i")); + println!("unaligned-scalar-mem: {}", is_riscv_feature_detected!("unaligned-scalar-mem")); + println!("unaligned-vector-mem: {}", is_riscv_feature_detected!("unaligned-vector-mem")); + println!("zicsr: {}", is_riscv_feature_detected!("zicsr")); + println!("zicntr: {}", is_riscv_feature_detected!("zicntr")); + println!("zihpm: {}", is_riscv_feature_detected!("zihpm")); + println!("zifencei: {}", is_riscv_feature_detected!("zifencei")); + println!("zihintntl: {}", is_riscv_feature_detected!("zihintntl")); + println!("zihintpause: {}", is_riscv_feature_detected!("zihintpause")); + println!("zimop: {}", is_riscv_feature_detected!("zimop")); + println!("zicbom: {}", is_riscv_feature_detected!("zicbom")); + println!("zicboz: {}", is_riscv_feature_detected!("zicboz")); + println!("zicond: {}", is_riscv_feature_detected!("zicond")); + println!("m: {}", is_riscv_feature_detected!("m")); + println!("a: {}", is_riscv_feature_detected!("a")); + println!("zalrsc: {}", is_riscv_feature_detected!("zalrsc")); + println!("zaamo: {}", is_riscv_feature_detected!("zaamo")); + println!("zawrs: {}", is_riscv_feature_detected!("zawrs")); + println!("zabha: {}", is_riscv_feature_detected!("zabha")); + println!("zacas: {}", is_riscv_feature_detected!("zacas")); + println!("zam: {}", is_riscv_feature_detected!("zam")); + println!("ztso: {}", is_riscv_feature_detected!("ztso")); + println!("f: {}", is_riscv_feature_detected!("f")); + println!("d: {}", is_riscv_feature_detected!("d")); + println!("q: {}", is_riscv_feature_detected!("q")); + println!("zfh: {}", is_riscv_feature_detected!("zfh")); + println!("zfhmin: {}", is_riscv_feature_detected!("zfhmin")); + println!("zfa: {}", is_riscv_feature_detected!("zfa")); + println!("zfbfmin: {}", is_riscv_feature_detected!("zfbfmin")); + println!("zfinx: {}", is_riscv_feature_detected!("zfinx")); + println!("zdinx: {}", is_riscv_feature_detected!("zdinx")); + println!("zhinx: {}", is_riscv_feature_detected!("zhinx")); + println!("zhinxmin: {}", is_riscv_feature_detected!("zhinxmin")); + println!("c: {}", is_riscv_feature_detected!("c")); + println!("zca: {}", is_riscv_feature_detected!("zca")); + println!("zcf: {}", is_riscv_feature_detected!("zcf")); + println!("zcd: {}", is_riscv_feature_detected!("zcd")); + println!("zcb: {}", is_riscv_feature_detected!("zcb")); + println!("zcmop: {}", is_riscv_feature_detected!("zcmop")); + println!("b: {}", is_riscv_feature_detected!("b")); + println!("zba: {}", is_riscv_feature_detected!("zba")); + println!("zbb: {}", is_riscv_feature_detected!("zbb")); + println!("zbc: {}", is_riscv_feature_detected!("zbc")); + println!("zbs: {}", is_riscv_feature_detected!("zbs")); + println!("zbkb: {}", is_riscv_feature_detected!("zbkb")); + println!("zbkc: {}", is_riscv_feature_detected!("zbkc")); + println!("zbkx: {}", is_riscv_feature_detected!("zbkx")); + println!("zknd: {}", is_riscv_feature_detected!("zknd")); + println!("zkne: {}", is_riscv_feature_detected!("zkne")); + println!("zknh: {}", is_riscv_feature_detected!("zknh")); + println!("zksed: {}", is_riscv_feature_detected!("zksed")); + println!("zksh: {}", is_riscv_feature_detected!("zksh")); + println!("zkr: {}", is_riscv_feature_detected!("zkr")); + println!("zkn: {}", is_riscv_feature_detected!("zkn")); + println!("zks: {}", is_riscv_feature_detected!("zks")); + println!("zk: {}", is_riscv_feature_detected!("zk")); + println!("zkt: {}", is_riscv_feature_detected!("zkt")); + println!("v: {}", is_riscv_feature_detected!("v")); + println!("zve32x: {}", is_riscv_feature_detected!("zve32x")); + println!("zve32f: {}", is_riscv_feature_detected!("zve32f")); + println!("zve64x: {}", is_riscv_feature_detected!("zve64x")); + println!("zve64f: {}", is_riscv_feature_detected!("zve64f")); + println!("zve64d: {}", is_riscv_feature_detected!("zve64d")); + println!("zvfh: {}", is_riscv_feature_detected!("zvfh")); + println!("zvfhmin: {}", is_riscv_feature_detected!("zvfhmin")); + println!("zvfbfmin: {}", is_riscv_feature_detected!("zvfbfmin")); + println!("zvfbfwma: {}", is_riscv_feature_detected!("zvfbfwma")); + println!("zvbb: {}", is_riscv_feature_detected!("zvbb")); + println!("zvbc: {}", is_riscv_feature_detected!("zvbc")); + println!("zvkb: {}", is_riscv_feature_detected!("zvkb")); + println!("zvkg: {}", is_riscv_feature_detected!("zvkg")); + println!("zvkned: {}", is_riscv_feature_detected!("zvkned")); + println!("zvknha: {}", is_riscv_feature_detected!("zvknha")); + println!("zvknhb: {}", is_riscv_feature_detected!("zvknhb")); + println!("zvksed: {}", is_riscv_feature_detected!("zvksed")); + println!("zvksh: {}", is_riscv_feature_detected!("zvksh")); + println!("zvkn: {}", is_riscv_feature_detected!("zvkn")); + println!("zvknc: {}", is_riscv_feature_detected!("zvknc")); + println!("zvkng: {}", is_riscv_feature_detected!("zvkng")); + println!("zvks: {}", is_riscv_feature_detected!("zvks")); + println!("zvksc: {}", is_riscv_feature_detected!("zvksc")); + println!("zvksg: {}", is_riscv_feature_detected!("zvksg")); + println!("zvkt: {}", is_riscv_feature_detected!("zvkt")); + println!("j: {}", is_riscv_feature_detected!("j")); + println!("p: {}", is_riscv_feature_detected!("p")); +} + +#[test] +#[cfg(all(target_arch = "powerpc", target_os = "linux"))] +fn powerpc_linux() { + println!("altivec: {}", is_powerpc_feature_detected!("altivec")); + println!("vsx: {}", is_powerpc_feature_detected!("vsx")); + println!("power8: {}", is_powerpc_feature_detected!("power8")); +} + +#[test] +#[cfg(all( + target_arch = "powerpc64", + any(target_os = "linux", target_os = "freebsd", target_os = "openbsd"), +))] +fn powerpc64_linux_or_bsd() { + println!("altivec: {}", is_powerpc64_feature_detected!("altivec")); + println!("vsx: {}", is_powerpc64_feature_detected!("vsx")); + println!("power8: {}", is_powerpc64_feature_detected!("power8")); + println!("power9: {}", is_powerpc64_feature_detected!("power9")); +} + +#[test] +#[cfg(all(target_arch = "s390x", target_os = "linux",))] +fn s390x_linux() { + println!("vector: {}", is_s390x_feature_detected!("vector")); +} diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/tests/macro_trailing_commas.rs b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/tests/macro_trailing_commas.rs new file mode 100644 index 0000000000000000000000000000000000000000..a60b34acb872f2d5b396e61c87f582f7d0e22653 --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/tests/macro_trailing_commas.rs @@ -0,0 +1,110 @@ +#![allow(internal_features, unused_features)] +#![cfg_attr( + any( + target_arch = "arm", + target_arch = "aarch64", + target_arch = "arm64ec", + target_arch = "x86", + target_arch = "x86_64", + target_arch = "powerpc", + target_arch = "powerpc64", + target_arch = "s390x", + target_arch = "riscv32", + target_arch = "riscv64", + target_arch = "loongarch32", + target_arch = "loongarch64" + ), + feature(stdarch_internal) +)] +#![cfg_attr(target_arch = "arm", feature(stdarch_arm_feature_detection))] +#![cfg_attr( + any(target_arch = "aarch64", target_arch = "arm64ec"), + feature(stdarch_aarch64_feature_detection) +)] +#![cfg_attr( + any(target_arch = "powerpc", target_arch = "powerpc64"), + feature(stdarch_powerpc_feature_detection) +)] +#![cfg_attr( + any(target_arch = "riscv32", target_arch = "riscv64"), + feature(stdarch_riscv_feature_detection) +)] +#![cfg_attr( + any(target_arch = "loongarch32", target_arch = "loongarch64"), + feature(stdarch_loongarch_feature_detection) +)] + +#[cfg(any( + target_arch = "arm", + target_arch = "aarch64", + target_arch = "arm64ec", + target_arch = "x86", + target_arch = "x86_64", + target_arch = "powerpc", + target_arch = "powerpc64", + target_arch = "s390x", + target_arch = "riscv32", + target_arch = "riscv64", + target_arch = "loongarch32", + target_arch = "loongarch64" +))] +#[macro_use] +extern crate std_detect; + +#[test] +#[cfg(target_arch = "arm")] +fn arm() { + let _ = is_arm_feature_detected!("neon"); + let _ = is_arm_feature_detected!("neon",); +} + +#[test] +#[cfg(any(target_arch = "aarch64", target_arch = "arm64ec"))] +fn aarch64() { + let _ = is_aarch64_feature_detected!("fp"); + let _ = is_aarch64_feature_detected!("fp",); +} + +#[test] +#[cfg(any(target_arch = "loongarch32", target_arch = "loongarch64"))] +fn loongarch() { + let _ = is_loongarch_feature_detected!("32s"); + let _ = is_loongarch_feature_detected!("32s",); + let _ = is_loongarch_feature_detected!("lsx"); + let _ = is_loongarch_feature_detected!("lsx",); +} + +#[test] +#[cfg(target_arch = "powerpc")] +fn powerpc() { + let _ = is_powerpc_feature_detected!("altivec"); + let _ = is_powerpc_feature_detected!("altivec",); +} + +#[test] +#[cfg(target_arch = "powerpc64")] +fn powerpc64() { + let _ = is_powerpc64_feature_detected!("altivec"); + let _ = is_powerpc64_feature_detected!("altivec",); +} + +#[test] +#[cfg(any(target_arch = "riscv32", target_arch = "riscv64"))] +fn riscv() { + let _ = is_riscv_feature_detected!("zk"); + let _ = is_riscv_feature_detected!("zk",); +} + +#[test] +#[cfg(target_arch = "s390x")] +fn s390x() { + let _ = is_s390x_feature_detected!("vector"); + let _ = is_s390x_feature_detected!("vector",); +} + +#[test] +#[cfg(any(target_arch = "x86", target_arch = "x86_64"))] +fn x86() { + let _ = is_x86_feature_detected!("sse"); + let _ = is_x86_feature_detected!("sse",); +} diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/tests/x86-specific.rs b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/tests/x86-specific.rs new file mode 100644 index 0000000000000000000000000000000000000000..90ca32208e78d79b7f182d8e593877cc5363de54 --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/std_detect/tests/x86-specific.rs @@ -0,0 +1,90 @@ +#![cfg(any(target_arch = "x86", target_arch = "x86_64"))] +#![allow(internal_features)] +#![feature(stdarch_internal, x86_amx_intrinsics, xop_target_feature, movrs_target_feature)] + +#[macro_use] +extern crate std_detect; + +#[test] +fn dump() { + println!("aes: {:?}", is_x86_feature_detected!("aes")); + println!("pclmulqdq: {:?}", is_x86_feature_detected!("pclmulqdq")); + println!("rdrand: {:?}", is_x86_feature_detected!("rdrand")); + println!("rdseed: {:?}", is_x86_feature_detected!("rdseed")); + println!("tsc: {:?}", is_x86_feature_detected!("tsc")); + println!("sse: {:?}", is_x86_feature_detected!("sse")); + println!("sse2: {:?}", is_x86_feature_detected!("sse2")); + println!("sse3: {:?}", is_x86_feature_detected!("sse3")); + println!("ssse3: {:?}", is_x86_feature_detected!("ssse3")); + println!("sse4.1: {:?}", is_x86_feature_detected!("sse4.1")); + println!("sse4.2: {:?}", is_x86_feature_detected!("sse4.2")); + println!("sse4a: {:?}", is_x86_feature_detected!("sse4a")); + println!("sha: {:?}", is_x86_feature_detected!("sha")); + println!("f16c: {:?}", is_x86_feature_detected!("f16c")); + println!("avx: {:?}", is_x86_feature_detected!("avx")); + println!("avx2: {:?}", is_x86_feature_detected!("avx2")); + println!("sha512: {:?}", is_x86_feature_detected!("sha512")); + println!("sm3: {:?}", is_x86_feature_detected!("sm3")); + println!("sm4: {:?}", is_x86_feature_detected!("sm4")); + println!("avx512f: {:?}", is_x86_feature_detected!("avx512f")); + println!("avx512cd: {:?}", is_x86_feature_detected!("avx512cd")); + println!("avx512er: {:?}", is_x86_feature_detected!("avx512er")); + println!("avx512pf: {:?}", is_x86_feature_detected!("avx512pf")); + println!("avx512bw: {:?}", is_x86_feature_detected!("avx512bw")); + println!("avx512dq: {:?}", is_x86_feature_detected!("avx512dq")); + println!("avx512vl: {:?}", is_x86_feature_detected!("avx512vl")); + println!("avx512_ifma: {:?}", is_x86_feature_detected!("avx512ifma")); + println!("avx512vbmi {:?}", is_x86_feature_detected!("avx512vbmi")); + println!("avx512_vpopcntdq: {:?}", is_x86_feature_detected!("avx512vpopcntdq")); + println!("avx512vbmi2: {:?}", is_x86_feature_detected!("avx512vbmi2")); + println!("gfni: {:?}", is_x86_feature_detected!("gfni")); + println!("vaes: {:?}", is_x86_feature_detected!("vaes")); + println!("vpclmulqdq: {:?}", is_x86_feature_detected!("vpclmulqdq")); + println!("avx512vnni: {:?}", is_x86_feature_detected!("avx512vnni")); + println!("avx512bitalg: {:?}", is_x86_feature_detected!("avx512bitalg")); + println!("avx512bf16: {:?}", is_x86_feature_detected!("avx512bf16")); + println!("avx512vp2intersect: {:?}", is_x86_feature_detected!("avx512vp2intersect")); + println!("avx512fp16: {:?}", is_x86_feature_detected!("avx512fp16")); + println!("fma: {:?}", is_x86_feature_detected!("fma")); + println!("abm: {:?}", is_x86_feature_detected!("abm")); + println!("bmi: {:?}", is_x86_feature_detected!("bmi1")); + println!("bmi2: {:?}", is_x86_feature_detected!("bmi2")); + println!("tbm: {:?}", is_x86_feature_detected!("tbm")); + println!("popcnt: {:?}", is_x86_feature_detected!("popcnt")); + println!("lzcnt: {:?}", is_x86_feature_detected!("lzcnt")); + println!("fxsr: {:?}", is_x86_feature_detected!("fxsr")); + println!("xsave: {:?}", is_x86_feature_detected!("xsave")); + println!("xsaveopt: {:?}", is_x86_feature_detected!("xsaveopt")); + println!("xsaves: {:?}", is_x86_feature_detected!("xsaves")); + println!("xsavec: {:?}", is_x86_feature_detected!("xsavec")); + println!("cmpxchg16b: {:?}", is_x86_feature_detected!("cmpxchg16b")); + println!("adx: {:?}", is_x86_feature_detected!("adx")); + println!("rtm: {:?}", is_x86_feature_detected!("rtm")); + println!("movbe: {:?}", is_x86_feature_detected!("movbe")); + println!("avxvnni: {:?}", is_x86_feature_detected!("avxvnni")); + println!("avxvnniint8: {:?}", is_x86_feature_detected!("avxvnniint8")); + println!("avxneconvert: {:?}", is_x86_feature_detected!("avxneconvert")); + println!("avxifma: {:?}", is_x86_feature_detected!("avxifma")); + println!("avxvnniint16: {:?}", is_x86_feature_detected!("avxvnniint16")); + println!("amx-bf16: {:?}", is_x86_feature_detected!("amx-bf16")); + println!("amx-tile: {:?}", is_x86_feature_detected!("amx-tile")); + println!("amx-int8: {:?}", is_x86_feature_detected!("amx-int8")); + println!("amx-fp16: {:?}", is_x86_feature_detected!("amx-fp16")); + println!("amx-complex: {:?}", is_x86_feature_detected!("amx-complex")); + println!("xop: {:?}", is_x86_feature_detected!("xop")); + println!("kl: {:?}", is_x86_feature_detected!("kl")); + println!("widekl: {:?}", is_x86_feature_detected!("widekl")); + println!("movrs: {:?}", is_x86_feature_detected!("movrs")); + println!("amx-fp8: {:?}", is_x86_feature_detected!("amx-fp8")); + println!("amx-tf32: {:?}", is_x86_feature_detected!("amx-tf32")); + println!("amx-avx512: {:?}", is_x86_feature_detected!("amx-avx512")); + println!("amx-movrs: {:?}", is_x86_feature_detected!("amx-movrs")); +} + +#[test] +#[allow(deprecated)] +fn x86_deprecated() { + println!("avx512gfni {:?}", is_x86_feature_detected!("avx512gfni")); + println!("avx512vaes {:?}", is_x86_feature_detected!("avx512vaes")); + println!("avx512vpclmulqdq {:?}", is_x86_feature_detected!("avx512vpclmulqdq")); +} diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/stdarch/README.md b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/stdarch/README.md new file mode 100644 index 0000000000000000000000000000000000000000..50905b49e80d334d101ae89f36327208fb07ed8c --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/stdarch/README.md @@ -0,0 +1,16 @@ +stdarch - Rust's standard library SIMD components +======= + +[![Actions Status](https://github.com/rust-lang/stdarch/workflows/CI/badge.svg)](https://github.com/rust-lang/stdarch/actions) + + +This repository contains the [`core_arch`](crates/core_arch/README.md) crate, which implements `core::arch` - Rust's core library architecture-specific intrinsics. + +The `std::simd` component now lives in the +[`packed_simd_2`](https://github.com/rust-lang/packed_simd) crate. + +## Synchronizing josh subtree with rustc + +This repository is linked to `rust-lang/rust` as a [josh](https://josh-project.github.io/josh/intro.html) subtree. You can use the [rustc-josh-sync](https://github.com/rust-lang/josh-sync) tool to perform synchronization. + +You can find a guide on how to perform the synchronization [here](https://rustc-dev-guide.rust-lang.org/external-repos.html#synchronizing-a-josh-subtree). diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/stdarch/ci/dox.sh b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/stdarch/ci/dox.sh new file mode 100644 index 0000000000000000000000000000000000000000..9803f7e3711195023957c9cf536fd98813b53be7 --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/stdarch/ci/dox.sh @@ -0,0 +1,48 @@ +#!/usr/bin/env bash + +# Builds documentation for all target triples that we have a registered URL for +# in liblibc. This scrapes the list of triples to document from `src/lib.rs` +# which has a bunch of `html_root_url` directives we pick up. + +set -ex + +export RUSTDOCFLAGS="-D warnings" + +dox() { + if [ "$CI" != "" ]; then + rustup target add "${1}" || true + fi + + cargo clean --target "${1}" + + if [ "${1}" == "amdgcn-amd-amdhsa" ]; then + if [ "$CI" != "" ]; then + rustup component add rust-src + fi + export CARGO_UNSTABLE_BUILD_STD=core + # amdgpu needs a target-cpu, any is fine + export RUSTFLAGS="${RUSTFLAGS} -Ctarget-cpu=gfx900" + fi + + cargo build --verbose --target "${1}" --manifest-path crates/core_arch/Cargo.toml + cargo doc --verbose --target "${1}" --manifest-path crates/core_arch/Cargo.toml +} + +if [ -z "$1" ]; then + dox i686-unknown-linux-gnu + dox x86_64-unknown-linux-gnu + dox armv7-unknown-linux-gnueabihf + dox aarch64-unknown-linux-gnu + dox powerpc-unknown-linux-gnu + dox powerpc64le-unknown-linux-gnu + dox loongarch64-unknown-linux-gnu + # MIPS targets disabled since they are dropped to tier 3. + # See https://github.com/rust-lang/compiler-team/issues/648 + #dox mips-unknown-linux-gnu + #dox mips64-unknown-linux-gnuabi64 + dox wasm32-unknown-unknown + dox nvptx64-nvidia-cuda + dox amdgcn-amd-amdhsa +else + dox "${1}" +fi diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/stdarch/ci/intrinsic-test-docker.sh b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/stdarch/ci/intrinsic-test-docker.sh new file mode 100644 index 0000000000000000000000000000000000000000..beeff42c76212f3cc2c82eb7e25e91387bb8f8e1 --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/stdarch/ci/intrinsic-test-docker.sh @@ -0,0 +1,59 @@ +#!/usr/bin/env sh + +# Small script to run tests for a target (or all targets) inside all the +# respective docker images. + +set -ex + +if [ $# -lt 1 ]; then + >&2 echo "Usage: $0 " + exit 1 +fi + +run() { + # Set the linker that is used for the host (e.g. when compiling a build.rs) + # This overrides any configuration in e.g. `.cargo/config.toml`, which will + # probably not work within the docker container. + HOST_LINKER="CARGO_TARGET_$(rustc --print host-tuple | tr '[:lower:]-' '[:upper:]_')_LINKER" + + # Prevent `Read-only file system (os error 30)`. + cargo generate-lockfile + + echo "Building docker container for TARGET=${1}" + docker build -t stdarch -f "ci/docker/${1}/Dockerfile" ci/ + mkdir -p target c_programs rust_programs + echo "Running docker" + # shellcheck disable=SC2016 + docker run \ + --rm \ + --user "$(id -u)":"$(id -g)" \ + --env CARGO_HOME=/cargo \ + --env CARGO_TARGET_DIR=/checkout/target \ + --env TARGET="${1}" \ + --env PROFILE \ + --env "${HOST_LINKER}"="cc" \ + --env STDARCH_DISABLE_ASSERT_INSTR \ + --env NOSTD \ + --env NORUN \ + --env RUSTFLAGS \ + --env CARGO_UNSTABLE_BUILD_STD \ + --env TEST_SAMPLE_INTRINSICS_PERCENTAGE \ + --volume "${HOME}/.cargo":/cargo \ + --volume "$(rustc --print sysroot)":/rust:ro \ + --volume "$(pwd)":/checkout:ro \ + --volume "$(pwd)"/target:/checkout/target \ + --volume "$(pwd)"/c_programs:/checkout/c_programs \ + --volume "$(pwd)"/rust_programs:/checkout/rust_programs \ + --init \ + --workdir /checkout \ + --privileged \ + stdarch \ + sh -c "HOME=/tmp PATH=\$PATH:/rust/bin exec ci/intrinsic-test.sh ${1}" +} + +if [ -z "$1" ]; then + >&2 echo "No target specified!" + exit 1 +else + run "${1}" +fi diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/stdarch/ci/intrinsic-test.sh b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/stdarch/ci/intrinsic-test.sh new file mode 100644 index 0000000000000000000000000000000000000000..89104e2672ad99c7dc8dafb231d12657eea40012 --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/stdarch/ci/intrinsic-test.sh @@ -0,0 +1,131 @@ +#!/usr/bin/env sh + +set -ex + +: "${TARGET?The TARGET environment variable must be set.}" + +export RUSTFLAGS="${RUSTFLAGS} -D warnings -Z merge-functions=disabled -Z verify-llvm-ir" +export HOST_RUSTFLAGS="${RUSTFLAGS}" +export PROFILE="${PROFILE:="release"}" + +case ${TARGET} in + # On 32-bit use a static relocation model which avoids some extra + # instructions when dealing with static data, notably allowing some + # instruction assertion checks to pass below the 20 instruction limit. If + # this is the default, dynamic, then too many instructions are generated + # when we assert the instruction for a function and it causes tests to fail. + i686-* | i586-*) + export RUSTFLAGS="${RUSTFLAGS} -C relocation-model=static" + ;; + # Some x86_64 targets enable by default more features beyond SSE2, + # which cause some instruction assertion checks to fail. + x86_64-*) + export RUSTFLAGS="${RUSTFLAGS} -C target-feature=-sse3" + ;; + #Unoptimized build uses fast-isel which breaks with msa + mips-* | mipsel-*) + export RUSTFLAGS="${RUSTFLAGS} -C llvm-args=-fast-isel=false" + ;; + armv7-*eabihf | thumbv7-*eabihf) + export RUSTFLAGS="${RUSTFLAGS} -Ctarget-feature=+neon" + ;; + # Some of our test dependencies use the deprecated `gcc` crates which + # doesn't detect RISC-V compilers automatically, so do it manually here. + riscv*) + export RUSTFLAGS="${RUSTFLAGS} -Ctarget-feature=+zk,+zks,+zbb,+zbc" + ;; +esac + +echo "RUSTFLAGS=${RUSTFLAGS}" +echo "OBJDUMP=${OBJDUMP}" +echo "PROFILE=${PROFILE}" + +INTRINSIC_TEST="--manifest-path=crates/intrinsic-test/Cargo.toml" + +# Test targets compiled with extra features. +case ${TARGET} in + # Setup aarch64 & armv7 specific variables, the runner, along with some + # tests to skip + aarch64-unknown-linux-gnu*) + TEST_CPPFLAGS="-fuse-ld=lld -I/usr/aarch64-linux-gnu/include/ -I/usr/aarch64-linux-gnu/include/c++/9/aarch64-linux-gnu/" + TEST_SKIP_INTRINSICS=crates/intrinsic-test/missing_aarch64.txt + TEST_CXX_COMPILER="clang++" + TEST_RUNNER="${CARGO_TARGET_AARCH64_UNKNOWN_LINUX_GNU_RUNNER}" + : "${TEST_SAMPLE_INTRINSICS_PERCENTAGE:=100}" + ;; + + aarch64_be-unknown-linux-gnu*) + TEST_CPPFLAGS="-fuse-ld=lld" + TEST_SKIP_INTRINSICS=crates/intrinsic-test/missing_aarch64_be.txt + TEST_CXX_COMPILER="clang++" + TEST_RUNNER="${CARGO_TARGET_AARCH64_BE_UNKNOWN_LINUX_GNU_RUNNER}" + : "${TEST_SAMPLE_INTRINSICS_PERCENTAGE:=100}" + ;; + + armv7-unknown-linux-gnueabihf*) + TEST_CPPFLAGS="-fuse-ld=lld -I/usr/arm-linux-gnueabihf/include/ -I/usr/arm-linux-gnueabihf/include/c++/9/arm-linux-gnueabihf/" + TEST_SKIP_INTRINSICS=crates/intrinsic-test/missing_arm.txt + TEST_CXX_COMPILER="clang++" + TEST_RUNNER="${CARGO_TARGET_ARMV7_UNKNOWN_LINUX_GNUEABIHF_RUNNER}" + : "${TEST_SAMPLE_INTRINSICS_PERCENTAGE:=100}" + ;; + + x86_64-unknown-linux-gnu*) + TEST_CPPFLAGS="-fuse-ld=lld -I/usr/include/x86_64-linux-gnu/" + TEST_CXX_COMPILER="clang++" + TEST_RUNNER="${CARGO_TARGET_X86_64_UNKNOWN_LINUX_GNU_RUNNER}" + TEST_SKIP_INTRINSICS=crates/intrinsic-test/missing_x86.txt + : "${TEST_SAMPLE_INTRINSICS_PERCENTAGE:=20}" + ;; + *) + ;; + +esac + +# Arm specific +case "${TARGET}" in + aarch64-unknown-linux-gnu*|armv7-unknown-linux-gnueabihf*) + CPPFLAGS="${TEST_CPPFLAGS}" RUSTFLAGS="${HOST_RUSTFLAGS}" RUST_LOG=warn \ + cargo run "${INTRINSIC_TEST}" --release \ + --bin intrinsic-test -- intrinsics_data/arm_intrinsics.json \ + --runner "${TEST_RUNNER}" \ + --cppcompiler "${TEST_CXX_COMPILER}" \ + --skip "${TEST_SKIP_INTRINSICS}" \ + --target "${TARGET}" \ + --profile "${PROFILE}" \ + --sample-percentage "${TEST_SAMPLE_INTRINSICS_PERCENTAGE}" + ;; + + aarch64_be-unknown-linux-gnu*) + CPPFLAGS="${TEST_CPPFLAGS}" RUSTFLAGS="${HOST_RUSTFLAGS}" RUST_LOG=warn \ + cargo run "${INTRINSIC_TEST}" --release \ + --bin intrinsic-test -- intrinsics_data/arm_intrinsics.json \ + --runner "${TEST_RUNNER}" \ + --cppcompiler "${TEST_CXX_COMPILER}" \ + --skip "${TEST_SKIP_INTRINSICS}" \ + --target "${TARGET}" \ + --profile "${PROFILE}" \ + --linker "${CARGO_TARGET_AARCH64_BE_UNKNOWN_LINUX_GNU_LINKER}" \ + --cxx-toolchain-dir "${AARCH64_BE_TOOLCHAIN}" \ + --sample-percentage "${TEST_SAMPLE_INTRINSICS_PERCENTAGE}" + ;; + + x86_64-unknown-linux-gnu*) + # `CARGO_TARGET_X86_64_UNKNOWN_LINUX_GNU_RUNNER` is not necessary for `intrinsic-test` + # because the binary needs to run directly on the host. + # Hence the use of `env -u`. + env -u CARGO_TARGET_X86_64_UNKNOWN_LINUX_GNU_RUNNER \ + CPPFLAGS="${TEST_CPPFLAGS}" RUSTFLAGS="${HOST_RUSTFLAGS}" \ + RUST_LOG=warn RUST_BACKTRACE=1 \ + cargo run "${INTRINSIC_TEST}" --release \ + --bin intrinsic-test -- intrinsics_data/x86-intel.xml \ + --runner "${TEST_RUNNER}" \ + --skip "${TEST_SKIP_INTRINSICS}" \ + --cppcompiler "${TEST_CXX_COMPILER}" \ + --target "${TARGET}" \ + --profile "${PROFILE}" \ + --sample-percentage "${TEST_SAMPLE_INTRINSICS_PERCENTAGE}" + ;; + *) + ;; +esac diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/stdarch/ci/run-docker.sh b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/stdarch/ci/run-docker.sh new file mode 100644 index 0000000000000000000000000000000000000000..28dfd5a24a9f12ae59543598e6bb028f7d2e0064 --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/stdarch/ci/run-docker.sh @@ -0,0 +1,60 @@ +#!/usr/bin/env sh + +# Small script to run tests for a target (or all targets) inside all the +# respective docker images. + +set -ex + +if [ $# -lt 1 ]; then + >&2 echo "Usage: $0 " + exit 1 +fi + +run() { + # Set the linker that is used for the host (e.g. when compiling a build.rs) + # This overrides any configuration in e.g. `.cargo/config.toml`, which will + # probably not work within the docker container. + HOST_LINKER="CARGO_TARGET_$(rustc --print host-tuple | tr '[:lower:]-' '[:upper:]_')_LINKER" + + # Prevent `Read-only file system (os error 30)`. + cargo generate-lockfile + + echo "Building docker container for TARGET=${1}" + docker build -t stdarch -f "ci/docker/${1}/Dockerfile" ci/ + mkdir -p target c_programs rust_programs + echo "Running docker" + # shellcheck disable=SC2016 + docker run \ + --rm \ + --user "$(id -u)":"$(id -g)" \ + --env CARGO_HOME=/cargo \ + --env CARGO_TARGET_DIR=/checkout/target \ + --env TARGET="${1}" \ + --env "${HOST_LINKER}"="cc" \ + --env STDARCH_TEST_EVERYTHING \ + --env STDARCH_DISABLE_ASSERT_INSTR \ + --env NOSTD \ + --env NORUN \ + --env RUSTFLAGS \ + --env CARGO_UNSTABLE_BUILD_STD \ + --env PROFILE \ + --volume "${HOME}/.cargo":/cargo \ + --volume "$(rustc --print sysroot)":/rust:ro \ + --volume "$(pwd)":/checkout:ro \ + --volume "$(pwd)"/target:/checkout/target \ + --volume "$(pwd)"/c_programs:/checkout/c_programs \ + --volume "$(pwd)"/rust_programs:/checkout/rust_programs \ + --init \ + --workdir /checkout \ + --privileged \ + stdarch \ + sh -c "HOME=/tmp PATH=\$PATH:/rust/bin exec ci/run.sh ${1}" +} + +if [ -z "$1" ]; then + for d in ci/docker/*; do + run "${d}" + done +else + run "${1}" +fi diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/stdarch/ci/run.sh b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/stdarch/ci/run.sh new file mode 100644 index 0000000000000000000000000000000000000000..ea012b42f983b7c2c2c2bab64fc4bbc8d4e86fb6 --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/stdarch/ci/run.sh @@ -0,0 +1,147 @@ +#!/usr/bin/env sh + +set -ex + +: "${TARGET?The TARGET environment variable must be set.}" + +# Tests are all super fast anyway, and they fault often enough on travis that +# having only one thread increases debuggability to be worth it. +#export RUST_BACKTRACE=full +#export RUST_TEST_NOCAPTURE=1 +#export RUST_TEST_THREADS=1 + +export RUSTFLAGS="${RUSTFLAGS} -D warnings -Z merge-functions=disabled -Z verify-llvm-ir" +export HOST_RUSTFLAGS="${RUSTFLAGS}" +export PROFILE="${PROFILE:="release"}" + +case ${TARGET} in + # On Windows the linker performs identical COMDAT folding (ICF) by default + # in release mode which removes identical COMDAT sections. This interferes + # with our instruction assertions just like LLVM's MergeFunctions pass so + # we disable it. + *-pc-windows-msvc) + export RUSTFLAGS="${RUSTFLAGS} -Clink-args=/OPT:NOICF" + ;; + # On 32-bit use a static relocation model which avoids some extra + # instructions when dealing with static data, notably allowing some + # instruction assertion checks to pass below the 20 instruction limit. If + # this is the default, dynamic, then too many instructions are generated + # when we assert the instruction for a function and it causes tests to fail. + i686-* | i586-*) + export RUSTFLAGS="${RUSTFLAGS} -C relocation-model=static" + ;; + # Some x86_64 targets enable by default more features beyond SSE2, + # which cause some instruction assertion checks to fail. + x86_64-*) + export RUSTFLAGS="${RUSTFLAGS} -C target-feature=-sse3" + ;; + #Unoptimized build uses fast-isel which breaks with msa + mips-* | mipsel-*) + export RUSTFLAGS="${RUSTFLAGS} -C llvm-args=-fast-isel=false" + ;; + armv7-*eabihf | thumbv7-*eabihf) + export RUSTFLAGS="${RUSTFLAGS} -Ctarget-feature=+neon,+fp16" + ;; + amdgcn-*) + export RUSTFLAGS="${RUSTFLAGS} -Ctarget-cpu=gfx1200" + ;; + # Some of our test dependencies use the deprecated `gcc` crates which + # doesn't detect RISC-V compilers automatically, so do it manually here. + riscv*) + export RUSTFLAGS="${RUSTFLAGS} -Ctarget-feature=+zk,+zks,+zbb,+zbc" + ;; + hexagon*) + export RUSTFLAGS="${RUSTFLAGS} -Ctarget-feature=+hvxv60,+hvx-length128b" + ;; +esac + +echo "RUSTFLAGS=${RUSTFLAGS}" +echo "OBJDUMP=${OBJDUMP}" +echo "STDARCH_DISABLE_ASSERT_INSTR=${STDARCH_DISABLE_ASSERT_INSTR}" +echo "STDARCH_TEST_EVERYTHING=${STDARCH_TEST_EVERYTHING}" +echo "STDARCH_TEST_SKIP_FEATURE=${STDARCH_TEST_SKIP_FEATURE}" +echo "STDARCH_TEST_SKIP_FUNCTION=${STDARCH_TEST_SKIP_FUNCTION}" +echo "PROFILE=${PROFILE}" + +cargo_test() { + cmd="cargo" + subcmd="test" + if [ "$NORUN" = "1" ]; then + export subcmd="build" + fi + cmd="$cmd ${subcmd} --target=$TARGET --profile=$PROFILE $1" + cmd="$cmd -- $2" + + case ${TARGET} in + # wasm targets can't catch panics so if a test failures make sure the test + # harness isn't trying to capture output, otherwise we won't get any useful + # output. + wasm32*) + if [ "$PROFILE" = "release" ]; then + dir="release" + else + dir="debug" + fi + export CARGO_TARGET_WASM32_WASIP1_RUNNER="wasmtime -Wexceptions --dir /checkout/target/wasm32-wasip1/$dir/deps::." + cmd="$cmd --nocapture" + ;; + esac + $cmd +} + +CORE_ARCH="--manifest-path=crates/core_arch/Cargo.toml" +STDARCH_EXAMPLES="--manifest-path=examples/Cargo.toml" + +cargo_test "${CORE_ARCH}" + +if [ "$NOSTD" != "1" ]; then + cargo_test "${STDARCH_EXAMPLES}" +fi + + +# Test targets compiled with extra features. +case ${TARGET} in + x86_64* | i686*) + export STDARCH_DISABLE_ASSERT_INSTR=1 + + export RUSTFLAGS="${RUSTFLAGS} -C target-feature=+avx" + cargo_test + ;; + # FIXME: don't build anymore + #mips-*gnu* | mipsel-*gnu*) + # export RUSTFLAGS="${RUSTFLAGS} -C target-feature=+msa,+fp64,+mips32r5" + # cargo_test + # ;; + mips64*) + export RUSTFLAGS="${RUSTFLAGS} -C target-feature=+msa" + cargo_test + ;; + s390x*) + export RUSTFLAGS="${RUSTFLAGS} -C target-feature=+vector-enhancements-1" + cargo_test + ;; + powerpc64*) + export RUSTFLAGS="${RUSTFLAGS} -C target-feature=+altivec" + cargo_test + + export RUSTFLAGS="${RUSTFLAGS} -C target-feature=+vsx" + cargo_test + ;; + powerpc*) + # qemu has a bug in PPC32 which leads to a crash when compiled with `vsx` + export RUSTFLAGS="${RUSTFLAGS} -C target-feature=+altivec" + cargo_test + ;; + *) + ;; + +esac + +if [ "$NORUN" != "1" ] && [ "$NOSTD" != 1 ]; then + # Test examples + ( + cd examples + cargo test --target "${TARGET}" --profile "${PROFILE}" + echo test | cargo run --target "${TARGET}" --profile "${PROFILE}" hex + ) +fi diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/stdarch/ci/style.sh b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/stdarch/ci/style.sh new file mode 100644 index 0000000000000000000000000000000000000000..8f81883f3f61a218a8e845ff4b484f676cdd956c --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/stdarch/ci/style.sh @@ -0,0 +1,22 @@ +#!/usr/bin/env sh + +set -ex + +if rustup component add rustfmt-preview ; then + command -v rustfmt + rustfmt -V + cargo fmt --all -- --check +fi + +# if rustup component add clippy-preview ; then +# cargo clippy -V +# cargo clippy --all -- -D clippy::pedantic +# fi + +if shellcheck --version ; then + shellcheck -e SC2103 ci/*.sh +else + echo "shellcheck not found" + exit 1 +fi + diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/stdarch/crates/assert-instr-macro/Cargo.toml b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/stdarch/crates/assert-instr-macro/Cargo.toml new file mode 100644 index 0000000000000000000000000000000000000000..77ee571ccbb8296ca79701b4046c191d22ba53c9 --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/stdarch/crates/assert-instr-macro/Cargo.toml @@ -0,0 +1,17 @@ +[package] +name = "assert-instr-macro" +version = "0.1.0" +authors = ["Alex Crichton "] +edition = "2024" + +[lib] +proc-macro = true +test = false + +[dependencies] +proc-macro2 = "1.0" +quote = "1.0" +syn = { version = "2.0", features = ["full"] } + +[lints.rust] +unexpected_cfgs = {level = "warn", check-cfg = ['cfg(optimized)'] } diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/stdarch/crates/assert-instr-macro/build.rs b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/stdarch/crates/assert-instr-macro/build.rs new file mode 100644 index 0000000000000000000000000000000000000000..360bc274213c66d3ce9f661f8c6eb173e1e1de7a --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/stdarch/crates/assert-instr-macro/build.rs @@ -0,0 +1,12 @@ +use std::env; + +fn main() { + let opt_level = env::var("OPT_LEVEL") + .ok() + .and_then(|s| s.parse().ok()) + .unwrap_or(0); + let profile = env::var("PROFILE").unwrap_or_default(); + if profile == "release" || opt_level >= 2 { + println!("cargo:rustc-cfg=optimized"); + } +} diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/stdarch/crates/core_arch/Cargo.toml b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/stdarch/crates/core_arch/Cargo.toml new file mode 100644 index 0000000000000000000000000000000000000000..670447a2d5a8b780ae18b8dc3e04b0d6acbc0170 --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/stdarch/crates/core_arch/Cargo.toml @@ -0,0 +1,32 @@ +[package] +name = "core_arch" +version = "0.1.5" +authors = [ + "Alex Crichton ", + "Andrew Gallant ", + "Gonzalo Brito Gadeschi ", +] +description = "`core::arch` - Rust's core library architecture-specific intrinsics." +homepage = "https://github.com/rust-lang/stdarch" +repository = "https://github.com/rust-lang/stdarch" +readme = "README.md" +keywords = ["core", "simd", "arch", "intrinsics"] +categories = ["hardware-support", "no-std"] +license = "MIT OR Apache-2.0" +edition = "2024" + +[badges] +is-it-maintained-issue-resolution = { repository = "rust-lang/stdarch" } +is-it-maintained-open-issues = { repository = "rust-lang/stdarch" } +maintenance = { status = "experimental" } + +[dev-dependencies] +stdarch-test = { version = "0.*", path = "../stdarch-test" } + +[target.'cfg(all(target_arch = "x86_64", target_os = "linux"))'.dev-dependencies] +syscalls = { version = "0.6.18", default-features = false } + +[lints.clippy] +too_long_first_doc_paragraph = "allow" +missing_transmute_annotations = "allow" +useless_transmute = "allow" diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/stdarch/crates/core_arch/LICENSE-APACHE b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/stdarch/crates/core_arch/LICENSE-APACHE new file mode 100644 index 0000000000000000000000000000000000000000..16fe87b06e802f094b3fbb0894b137bca2b16ef1 --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/stdarch/crates/core_arch/LICENSE-APACHE @@ -0,0 +1,201 @@ + Apache License + Version 2.0, January 2004 + http://www.apache.org/licenses/ + +TERMS AND CONDITIONS FOR USE, REPRODUCTION, AND DISTRIBUTION + +1. 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We also recommend that a + file or class name and description of purpose be included on the + same "printed page" as the copyright notice for easier + identification within third-party archives. + +Copyright [yyyy] [name of copyright owner] + +Licensed under the Apache License, Version 2.0 (the "License"); +you may not use this file except in compliance with the License. +You may obtain a copy of the License at + + http://www.apache.org/licenses/LICENSE-2.0 + +Unless required by applicable law or agreed to in writing, software +distributed under the License is distributed on an "AS IS" BASIS, +WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied. +See the License for the specific language governing permissions and +limitations under the License. diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/stdarch/crates/core_arch/LICENSE-MIT b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/stdarch/crates/core_arch/LICENSE-MIT new file mode 100644 index 0000000000000000000000000000000000000000..52d82415d8b60cd3c5858c8939fa0d8fae1aeca0 --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/stdarch/crates/core_arch/LICENSE-MIT @@ -0,0 +1,25 @@ +Copyright (c) 2017 The Rust Project Developers + +Permission is hereby granted, free of charge, to any +person obtaining a copy of this software and associated +documentation files (the "Software"), to deal in the +Software without restriction, including without +limitation the rights to use, copy, modify, merge, +publish, distribute, sublicense, and/or sell copies of +the Software, and to permit persons to whom the Software +is furnished to do so, subject to the following +conditions: + +The above copyright notice and this permission notice +shall be included in all copies or substantial portions +of the Software. + +THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF +ANY KIND, EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED +TO THE WARRANTIES OF MERCHANTABILITY, FITNESS FOR A +PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT +SHALL THE AUTHORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY +CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN ACTION +OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR +IN CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER +DEALINGS IN THE SOFTWARE. diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/stdarch/crates/core_arch/MISSING.md b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/stdarch/crates/core_arch/MISSING.md new file mode 100644 index 0000000000000000000000000000000000000000..c948f3f8c90e1825d5ab4a58bddfdcc842e438b4 --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/stdarch/crates/core_arch/MISSING.md @@ -0,0 +1,116 @@ +## The following neon instructions are currently not implemented in stdarch + +### Not implemented on arm: + +`vcadd_rot270_f32` + +`vcadd_rot90_f32` + +`vcaddq_rot270_f32` + +`vcaddq_rot90_f32` + +`vdot_s32` + +`vdot_u32` + +`vdotq_s32` + +`vdotq_u32` + +`vdot_lane_s32` + +`vdot_lane_u32` + +`vdotq_lane_s32` + +`vdotq_lane_u32` + +`vcmla_f32` + +`vcmla_lane_f32` + +`vcmla_laneq_f32` + +`vcmla_rot180_f32` + +`vcmla_rot180_lane_f32` + +`vcmla_rot180_laneq_f32` + +`vcmla_rot270_f32` + +`vcmla_rot270_lane_f32` + +`vcmla_rot270_laneq_f32` + +`vcmla_rot90_f32` + +`vcmla_rot90_lane_f32` + +`vcmla_rot90_laneq_f32` + +`vcmlaq_f32` + +`vcmlaq_lane_f32` + +`vcmlaq_laneq_f32` + +`vcmlaq_rot180_f32` + +`vcmlaq_rot180_lane_f32` + +`vcmlaq_rot180_laneq_f32` + +`vcmlaq_rot270_f32` + +`vcmlaq_rot270_lane_f32` + +`vcmlaq_rot270_laneq_f32` + +`vcmlaq_rot90_f32` + +`vcmlaq_rot90_lane_f32` + +`vcmlaq_rot90_laneq_f32` + +### Not implemented in LLVM: + +`vrnd32x_f64` + +`vrnd32xq_f64` + +`vrnd32z_f64` + +`vrnd32zq_f64` + +`vrnd64x_f64` + +`vrnd64xq_f64` + +`vrnd64z_f64` + +`vrnd64zq_f64` + +### LLVM Select errors may occur: + +`vsudot_lane_s32` + +`vsudot_laneq_s32` + +`vsudotq_lane_s32` + +`vsudotq_laneq_s32` + +`vusdot_lane_s32` + +`vusdot_laneq_s32` + +`vusdot_s32` + +`vusdotq_lane_s32` + +`vusdotq_laneq_s32` + +`vusdotq_s32v` + diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/stdarch/crates/core_arch/README.md b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/stdarch/crates/core_arch/README.md new file mode 100644 index 0000000000000000000000000000000000000000..d341365b987a22a03b00715ecb6e8d5c940c866a --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/stdarch/crates/core_arch/README.md @@ -0,0 +1,58 @@ +`core::arch` - Rust's core library architecture-specific intrinsics +======= + +The `core::arch` module implements architecture-dependent intrinsics (e.g. SIMD). + +# Usage + +`core::arch` is available as part of `libcore` and it is re-exported by +`libstd`. Prefer using it via `core::arch` or `std::arch` than via this crate. + +Using `core::arch` via this crate requires nightly Rust, and it can (and does) +break often. The only cases in which you should consider using it via this crate +are: + +* if you need to re-compile `core::arch` yourself, e.g., with particular + target-features enabled that are not enabled for `libcore`/`libstd`. Note: if + you need to re-compile it for a non-standard target, please prefer using + `xargo` and re-compiling `libcore`/`libstd` as appropriate instead of using + this crate. + +* using some features that might not be available even behind unstable Rust + features. We try to keep these to a minimum. If you need to use some of these + features, please open an issue so that we can expose them in nightly Rust and + you can use them from there. + +# Documentation + +* [Documentation - i686][i686] +* [Documentation - x86\_64][x86_64] +* [Documentation - arm][arm] +* [Documentation - aarch64][aarch64] +* [Documentation - powerpc][powerpc] +* [Documentation - powerpc64][powerpc64] +* [How to get started][contrib] +* [How to help implement intrinsics][help-implement] + +[contrib]: https://github.com/rust-lang/stdarch/blob/HEAD/CONTRIBUTING.md +[help-implement]: https://github.com/rust-lang/stdarch/issues/40 +[i686]: https://rust-lang.github.io/stdarch/i686/core_arch/ +[x86_64]: https://rust-lang.github.io/stdarch/x86_64/core_arch/ +[arm]: https://rust-lang.github.io/stdarch/arm/core_arch/ +[aarch64]: https://rust-lang.github.io/stdarch/aarch64/core_arch/ +[powerpc]: https://rust-lang.github.io/stdarch/powerpc/core_arch/ +[powerpc64]: https://rust-lang.github.io/stdarch/powerpc64/core_arch/ + +# License + +`core_arch` is primarily distributed under the terms of both the MIT license and +the Apache License (Version 2.0), with portions covered by various BSD-like +licenses. + +See LICENSE-APACHE, and LICENSE-MIT for details. + +# Contribution + +Unless you explicitly state otherwise, any contribution intentionally submitted +for inclusion in `core_arch` by you, as defined in the Apache-2.0 license, +shall be dual licensed as above, without any additional terms or conditions. diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/stdarch/crates/core_arch/missing-x86.md b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/stdarch/crates/core_arch/missing-x86.md new file mode 100644 index 0000000000000000000000000000000000000000..640ec7d0fe7d1b7b169417f05ba3e951941869df --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/stdarch/crates/core_arch/missing-x86.md @@ -0,0 +1,258 @@ + +
["AMX-BF16"]

+ + * [ ] [`__tile_dpbf16ps`](https://software.intel.com/sites/landingpage/IntrinsicsGuide/#text=__tile_dpbf16ps) +

+ + +
["AMX-COMPLEX"]

+ + * [ ] [`__tile_cmmimfp16ps`](https://software.intel.com/sites/landingpage/IntrinsicsGuide/#text=__tile_cmmimfp16ps) + * [ ] [`__tile_cmmrlfp16ps`](https://software.intel.com/sites/landingpage/IntrinsicsGuide/#text=__tile_cmmrlfp16ps) +

+ + +
["AMX-FP16"]

+ + * [ ] [`__tile_dpfp16ps`](https://software.intel.com/sites/landingpage/IntrinsicsGuide/#text=__tile_dpfp16ps) +

+ + +
["AMX-INT8"]

+ + * [ ] [`__tile_dpbssd`](https://software.intel.com/sites/landingpage/IntrinsicsGuide/#text=__tile_dpbssd) + * [ ] [`__tile_dpbsud`](https://software.intel.com/sites/landingpage/IntrinsicsGuide/#text=__tile_dpbsud) + * [ ] [`__tile_dpbusd`](https://software.intel.com/sites/landingpage/IntrinsicsGuide/#text=__tile_dpbusd) + * [ ] [`__tile_dpbuud`](https://software.intel.com/sites/landingpage/IntrinsicsGuide/#text=__tile_dpbuud) +

+ + +
["AMX-TILE"]

+ + * [ ] [`__tile_loadd`](https://software.intel.com/sites/landingpage/IntrinsicsGuide/#text=__tile_loadd) + * [ ] [`__tile_stored`](https://software.intel.com/sites/landingpage/IntrinsicsGuide/#text=__tile_stored) + * [ ] [`__tile_stream_loadd`](https://software.intel.com/sites/landingpage/IntrinsicsGuide/#text=__tile_stream_loadd) + * [ ] [`__tile_zero`](https://software.intel.com/sites/landingpage/IntrinsicsGuide/#text=__tile_zero) +

+ + +
["AVX512_FP16"]

+ + * [ ] [`_mm256_set1_pch`](https://software.intel.com/sites/landingpage/IntrinsicsGuide/#text=_mm256_set1_pch) + * [ ] [`_mm512_set1_pch`](https://software.intel.com/sites/landingpage/IntrinsicsGuide/#text=_mm512_set1_pch) + * [ ] [`_mm_set1_pch`](https://software.intel.com/sites/landingpage/IntrinsicsGuide/#text=_mm_set1_pch) +

+ + +
["AVX512_VP2INTERSECT", "AVX512F"]

+ + * [ ] [`_mm512_2intersect_epi32`](https://software.intel.com/sites/landingpage/IntrinsicsGuide/#text=_mm512_2intersect_epi32) + * [ ] [`_mm512_2intersect_epi64`](https://software.intel.com/sites/landingpage/IntrinsicsGuide/#text=_mm512_2intersect_epi64) +

+ + +
["AVX512_VP2INTERSECT", "AVX512VL"]

+ + * [ ] [`_mm256_2intersect_epi32`](https://software.intel.com/sites/landingpage/IntrinsicsGuide/#text=_mm256_2intersect_epi32) + * [ ] [`_mm256_2intersect_epi64`](https://software.intel.com/sites/landingpage/IntrinsicsGuide/#text=_mm256_2intersect_epi64) + * [ ] [`_mm_2intersect_epi32`](https://software.intel.com/sites/landingpage/IntrinsicsGuide/#text=_mm_2intersect_epi32) + * [ ] [`_mm_2intersect_epi64`](https://software.intel.com/sites/landingpage/IntrinsicsGuide/#text=_mm_2intersect_epi64) +

+ + +
["CET_SS"]

+ + * [ ] [`_clrssbsy`](https://software.intel.com/sites/landingpage/IntrinsicsGuide/#text=_clrssbsy) + * [ ] [`_get_ssp`](https://software.intel.com/sites/landingpage/IntrinsicsGuide/#text=_get_ssp) + * [ ] [`_get_ssp`](https://software.intel.com/sites/landingpage/IntrinsicsGuide/#text=_get_ssp) + * [ ] [`_inc_ssp`](https://software.intel.com/sites/landingpage/IntrinsicsGuide/#text=_inc_ssp) + * [ ] [`_incsspd`](https://software.intel.com/sites/landingpage/IntrinsicsGuide/#text=_incsspd) + * [ ] [`_incsspq`](https://software.intel.com/sites/landingpage/IntrinsicsGuide/#text=_incsspq) + * [ ] [`_rdsspd_i32`](https://software.intel.com/sites/landingpage/IntrinsicsGuide/#text=_rdsspd_i32) + * [ ] [`_rdsspq_i64`](https://software.intel.com/sites/landingpage/IntrinsicsGuide/#text=_rdsspq_i64) + * [ ] [`_rstorssp`](https://software.intel.com/sites/landingpage/IntrinsicsGuide/#text=_rstorssp) + * [ ] [`_saveprevssp`](https://software.intel.com/sites/landingpage/IntrinsicsGuide/#text=_saveprevssp) + * [ ] [`_setssbsy`](https://software.intel.com/sites/landingpage/IntrinsicsGuide/#text=_setssbsy) + * [ ] [`_wrssd`](https://software.intel.com/sites/landingpage/IntrinsicsGuide/#text=_wrssd) + * [ ] [`_wrssq`](https://software.intel.com/sites/landingpage/IntrinsicsGuide/#text=_wrssq) + * [ ] [`_wrussd`](https://software.intel.com/sites/landingpage/IntrinsicsGuide/#text=_wrussd) + * [ ] [`_wrussq`](https://software.intel.com/sites/landingpage/IntrinsicsGuide/#text=_wrussq) +

+ + +
["CLDEMOTE"]

+ + * [ ] [`_mm_cldemote`](https://software.intel.com/sites/landingpage/IntrinsicsGuide/#text=_mm_cldemote) +

+ + +
["CLFLUSHOPT"]

+ + * [ ] [`_mm_clflushopt`](https://software.intel.com/sites/landingpage/IntrinsicsGuide/#text=_mm_clflushopt) +

+ + +
["CLWB"]

+ + * [ ] [`_mm_clwb`](https://software.intel.com/sites/landingpage/IntrinsicsGuide/#text=_mm_clwb) +

+ + +
["CMPCCXADD"]

+ + * [ ] [`_cmpccxadd_epi32`](https://software.intel.com/sites/landingpage/IntrinsicsGuide/#text=_cmpccxadd_epi32) + * [ ] [`_cmpccxadd_epi64`](https://software.intel.com/sites/landingpage/IntrinsicsGuide/#text=_cmpccxadd_epi64) +

+ + +
["ENQCMD"]

+ + * [ ] [`_enqcmd`](https://software.intel.com/sites/landingpage/IntrinsicsGuide/#text=_enqcmd) + * [ ] [`_enqcmds`](https://software.intel.com/sites/landingpage/IntrinsicsGuide/#text=_enqcmds) +

+ + +
["FSGSBASE"]

+ + * [ ] [`_readfsbase_u32`](https://software.intel.com/sites/landingpage/IntrinsicsGuide/#text=_readfsbase_u32) + * [ ] [`_readfsbase_u64`](https://software.intel.com/sites/landingpage/IntrinsicsGuide/#text=_readfsbase_u64) + * [ ] [`_readgsbase_u32`](https://software.intel.com/sites/landingpage/IntrinsicsGuide/#text=_readgsbase_u32) + * [ ] [`_readgsbase_u64`](https://software.intel.com/sites/landingpage/IntrinsicsGuide/#text=_readgsbase_u64) + * [ ] [`_writefsbase_u32`](https://software.intel.com/sites/landingpage/IntrinsicsGuide/#text=_writefsbase_u32) + * [ ] [`_writefsbase_u64`](https://software.intel.com/sites/landingpage/IntrinsicsGuide/#text=_writefsbase_u64) + * [ ] [`_writegsbase_u32`](https://software.intel.com/sites/landingpage/IntrinsicsGuide/#text=_writegsbase_u32) + * [ ] [`_writegsbase_u64`](https://software.intel.com/sites/landingpage/IntrinsicsGuide/#text=_writegsbase_u64) +

+ + +
["HRESET"]

+ + * [ ] [`_hreset`](https://software.intel.com/sites/landingpage/IntrinsicsGuide/#text=_hreset) +

+ + +
["INVPCID"]

+ + * [ ] [`_invpcid`](https://software.intel.com/sites/landingpage/IntrinsicsGuide/#text=_invpcid) +

+ + +
["MONITOR"]

+ + * [ ] [`_mm_monitor`](https://software.intel.com/sites/landingpage/IntrinsicsGuide/#text=_mm_monitor) + * [ ] [`_mm_mwait`](https://software.intel.com/sites/landingpage/IntrinsicsGuide/#text=_mm_mwait) +

+ + +
["MOVBE"]

+ + * [ ] [`_loadbe_i16`](https://software.intel.com/sites/landingpage/IntrinsicsGuide/#text=_loadbe_i16) + * [ ] [`_loadbe_i32`](https://software.intel.com/sites/landingpage/IntrinsicsGuide/#text=_loadbe_i32) + * [ ] [`_loadbe_i64`](https://software.intel.com/sites/landingpage/IntrinsicsGuide/#text=_loadbe_i64) + * [ ] [`_storebe_i16`](https://software.intel.com/sites/landingpage/IntrinsicsGuide/#text=_storebe_i16) + * [ ] [`_storebe_i32`](https://software.intel.com/sites/landingpage/IntrinsicsGuide/#text=_storebe_i32) + * [ ] [`_storebe_i64`](https://software.intel.com/sites/landingpage/IntrinsicsGuide/#text=_storebe_i64) +

+ + +
["MOVDIR64B"]

+ + * [ ] [`_movdir64b`](https://software.intel.com/sites/landingpage/IntrinsicsGuide/#text=_movdir64b) +

+ + +
["MOVDIRI"]

+ + * [ ] [`_directstoreu_u32`](https://software.intel.com/sites/landingpage/IntrinsicsGuide/#text=_directstoreu_u32) + * [ ] [`_directstoreu_u64`](https://software.intel.com/sites/landingpage/IntrinsicsGuide/#text=_directstoreu_u64) +

+ + +
["PCONFIG"]

+ + * [ ] [`_pconfig_u32`](https://software.intel.com/sites/landingpage/IntrinsicsGuide/#text=_pconfig_u32) +

+ + +
["POPCNT"]

+ + * [ ] [`_mm_popcnt_u32`](https://software.intel.com/sites/landingpage/IntrinsicsGuide/#text=_mm_popcnt_u32) + * [ ] [`_mm_popcnt_u64`](https://software.intel.com/sites/landingpage/IntrinsicsGuide/#text=_mm_popcnt_u64) +

+ + +
["PREFETCHI"]

+ + * [ ] [`_m_prefetchit0`](https://software.intel.com/sites/landingpage/IntrinsicsGuide/#text=_m_prefetchit0) + * [ ] [`_m_prefetchit1`](https://software.intel.com/sites/landingpage/IntrinsicsGuide/#text=_m_prefetchit1) +

+ + +
["RAO_INT"]

+ + * [ ] [`_aadd_i32`](https://software.intel.com/sites/landingpage/IntrinsicsGuide/#text=_aadd_i32) + * [ ] [`_aadd_i64`](https://software.intel.com/sites/landingpage/IntrinsicsGuide/#text=_aadd_i64) + * [ ] [`_aand_i32`](https://software.intel.com/sites/landingpage/IntrinsicsGuide/#text=_aand_i32) + * [ ] [`_aand_i64`](https://software.intel.com/sites/landingpage/IntrinsicsGuide/#text=_aand_i64) + * [ ] [`_aor_i32`](https://software.intel.com/sites/landingpage/IntrinsicsGuide/#text=_aor_i32) + * [ ] [`_aor_i64`](https://software.intel.com/sites/landingpage/IntrinsicsGuide/#text=_aor_i64) + * [ ] [`_axor_i32`](https://software.intel.com/sites/landingpage/IntrinsicsGuide/#text=_axor_i32) + * [ ] [`_axor_i64`](https://software.intel.com/sites/landingpage/IntrinsicsGuide/#text=_axor_i64) +

+ + +
["RDPID"]

+ + * [ ] [`_rdpid_u32`](https://software.intel.com/sites/landingpage/IntrinsicsGuide/#text=_rdpid_u32) +

+ + +
["SERIALIZE"]

+ + * [ ] [`_serialize`](https://software.intel.com/sites/landingpage/IntrinsicsGuide/#text=_serialize) +

+ + +
["SSE"]

+ + * [ ] [`_mm_free`](https://software.intel.com/sites/landingpage/IntrinsicsGuide/#text=_mm_free) + * [ ] [`_mm_malloc`](https://software.intel.com/sites/landingpage/IntrinsicsGuide/#text=_mm_malloc) +

+ + +
["TSXLDTRK"]

+ + * [ ] [`_xresldtrk`](https://software.intel.com/sites/landingpage/IntrinsicsGuide/#text=_xresldtrk) + * [ ] [`_xsusldtrk`](https://software.intel.com/sites/landingpage/IntrinsicsGuide/#text=_xsusldtrk) +

+ + +
["UINTR"]

+ + * [ ] [`_clui`](https://software.intel.com/sites/landingpage/IntrinsicsGuide/#text=_clui) + * [ ] [`_senduipi`](https://software.intel.com/sites/landingpage/IntrinsicsGuide/#text=_senduipi) + * [ ] [`_stui`](https://software.intel.com/sites/landingpage/IntrinsicsGuide/#text=_stui) + * [ ] [`_testui`](https://software.intel.com/sites/landingpage/IntrinsicsGuide/#text=_testui) +

+ + +
["USER_MSR"]

+ + * [ ] [`_urdmsr`](https://software.intel.com/sites/landingpage/IntrinsicsGuide/#text=_urdmsr) + * [ ] [`_uwrmsr`](https://software.intel.com/sites/landingpage/IntrinsicsGuide/#text=_uwrmsr) +

+ + +
["WAITPKG"]

+ + * [ ] [`_tpause`](https://software.intel.com/sites/landingpage/IntrinsicsGuide/#text=_tpause) + * [ ] [`_umonitor`](https://software.intel.com/sites/landingpage/IntrinsicsGuide/#text=_umonitor) + * [ ] [`_umwait`](https://software.intel.com/sites/landingpage/IntrinsicsGuide/#text=_umwait) +

+ + +
["WBNOINVD"]

+ + * [ ] [`_wbnoinvd`](https://software.intel.com/sites/landingpage/IntrinsicsGuide/#text=_wbnoinvd) +

+ diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/stdarch/crates/core_arch/rustfmt.toml b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/stdarch/crates/core_arch/rustfmt.toml new file mode 100644 index 0000000000000000000000000000000000000000..e69de29bb2d1d6434b8b29ae775ad8c2e48c5391 diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/stdarch/crates/simd-test-macro/Cargo.toml b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/stdarch/crates/simd-test-macro/Cargo.toml new file mode 100644 index 0000000000000000000000000000000000000000..8f9f9b13273cb5ec6eb8f69e4df08fcdd05119fd --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/stdarch/crates/simd-test-macro/Cargo.toml @@ -0,0 +1,14 @@ +[package] +name = "simd-test-macro" +version = "0.1.0" +authors = ["Alex Crichton "] +edition = "2024" + +[lib] +proc-macro = true +test = false + +[dependencies] +proc-macro2 = "1.0" +quote = "1.0" +syn = { version = "2.0", features = ["full"] } diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/stdarch/crates/stdarch-gen-arm/Cargo.toml b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/stdarch/crates/stdarch-gen-arm/Cargo.toml new file mode 100644 index 0000000000000000000000000000000000000000..de24335a52e86ef22d97103d540f99ff4abf05b4 --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/stdarch/crates/stdarch-gen-arm/Cargo.toml @@ -0,0 +1,22 @@ +[package] +name = "stdarch-gen-arm" +version = "0.1.0" +authors = ["Luca Vizzarro ", + "Jamie Cunliffe ", + "Adam Gemmell ", + "James Barford-Evans "] +license = "MIT OR Apache-2.0" +edition = "2024" + +# See more keys and their definitions at https://doc.rust-lang.org/cargo/reference/manifest.html + +[dependencies] +itertools = "0.14.0" +proc-macro2 = "1.0" +quote = "1.0" +regex = "1.5" +serde = { version = "1.0", features = ["derive"] } +serde_with = { version = "3.2.0", default-features = false, features = ["macros"] } +serde_yaml = "0.8" +walkdir = "2.3.2" diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/stdarch/crates/stdarch-gen-arm/README.md b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/stdarch/crates/stdarch-gen-arm/README.md new file mode 100644 index 0000000000000000000000000000000000000000..4da14bcbb6c9bd8f884f84416786e924fd085a3f --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/stdarch/crates/stdarch-gen-arm/README.md @@ -0,0 +1,300 @@ +# stdarch-gen-arm generator guide +## Running the generator +- Run: `cargo run --bin=stdarch-gen-arm -- crates/stdarch-gen-arm/spec` +``` +$ cargo run --bin=stdarch-gen-arm -- crates/stdarch-gen-arm/spec + Finished `dev` profile [unoptimized + debuginfo] target(s) in 0.18s + Running `target/debug/stdarch-gen-arm crates/stdarch-gen-arm/spec` +``` +## Input/Output +### Input files (intrinsic YAML definitions) + - `crates/stdarch-gen-arm/spec//*.spec.yml` +### Output files + - Generated intrinsics: + - `crates/core_arch/src///generated.rs` + - Generated load/store tests: + - `crates/core_arch/src///ld_st_tests_.rs` + - Only generated when `test: { load: }` or `test: { store: }` is set for SVE/SVE2 intrinsics. +## `.spec.yml` file anatomy +``` +--- +Configs +--- +Variable definitions +--- + +Intrinsic definitions + +--- +``` +- If you're new to YAML syntax, consider [reviewing](https://quickref.me/yaml.html) some of the less obvious syntax and features. +- For example, mapping an attribute to a sequence can be done in two different ways: +```yaml +attribute: [item_a, item_b, item_c] +``` +or +```yaml +attribute: + - item_a + - item_b + - item_c +``` +## Configs +- Mappings defining top-level settings applied to all intrinsics: +- `arch_cfgs` + - Sequence of mappings specifying `arch_name`, `target_feature` (sequence), and `llvm_prefix`. +- `uses_neon_types`(_Optional_) + - A boolean specifying whether to emit NEON type imports in generated code. +- `auto_big_endian`(_Optional_) + - A boolean specifying whether to auto-generate big-endian shuffles when possible. +- `auto_llvm_sign_conversion`(_Optional_) + - A boolean specifying whether to auto-convert LLVM wrapper args to signed types. +## Variable definitions +- Defines YAML anchors/variables to avoid repetition. +- Commonly used for stability attributes, cfgs and target features. +## Intrinsic definitions +### Example +```yaml + - name: "vtst{neon_type[0].no}" + doc: "Signed compare bitwise Test bits nonzero" + arguments: ["a: {neon_type[0]}", "b: {neon_type[0]}"] + return_type: "{neon_type[1]}" + attr: + - FnCall: [cfg_attr, [test, {FnCall: [assert_instr, [cmtst]]}]] + - FnCall: [stable, ['feature = "neon_intrinsics"', 'since = "1.59.0"']] + safety: safe + types: + - [int64x1_t, uint64x1_t, 'i64x1', 'i64x1::new(0)'] + - [int64x2_t, uint64x2_t, 'i64x2', 'i64x2::new(0, 0)'] + - [poly64x1_t, uint64x1_t, 'i64x1', 'i64x1::new(0)'] + - [poly64x2_t, uint64x2_t, 'i64x2', 'i64x2::new(0, 0)'] + compose: + - Let: [c, "{neon_type[0]}", {FnCall: [simd_and, [a, b]]}] + - Let: [d, "{type[2]}", "{type[3]}"] + - FnCall: [simd_ne, [c, {FnCall: [transmute, [d]]}]] +``` + +### Explanation of fields +- `name` + - The name of the intrinsic + - Often built from a base name followed by a type suffix +- `doc` (_Optional_) + - A string explaining the purpose of the intrinsic +- `static_defs` (_Optional_) + - A sequence of const generics of the format `"const : "` +- `arguments` + - A sequence of strings in the format `": "` +- `return_type` (_Optional_) + - A string specifying the return type. If omitted, the intrinsic returns `()`. +- `attr` (_Optional_) + - A sequence of items defining the attributes to be applied to the intrinsic. Often stability attributes, target features, or `assert_instr` tests. At least one of `attr` or `assert_instr` must be set. +- `target_features` (_Optional_) + - A sequence of target features to enable for this intrinsic (merged with any global `arch_cfgs` settings). +- `assert_instr` (_Optional_) + - A sequence of strings expected to be found in the assembly. Required if `attr` is not set. +- `safety` (_Optional_) + - Use `safe`, or map `unsafe:` to a sequence of unsafety comments: + - `custom: ""` + - `uninitialized` + - `pointer_offset`, `pointer_offset_vnum`, or `dereference` (optionally qualified with `predicated`, `predicated_non_faulting`, or `predicated_first_faulting`) + - `unpredictable_on_fault` + - `non_temporal` + - `neon` + - `no_provenance: ""` +- `substitutions` (_Optional_) + - Mappings of custom wildcard names to either `MatchSize` or `MatchKind` expressions +- `types` + - A sequence or sequence of sequences specifying the types to use when producing each intrinsic variant. These sequences can then be indexed by wildcards. +- `constraints` (_Optional_) + - A sequence of mappings. Each specifies a variable and a constraint. The available mappings are: + - Assert a variable's value exists in a sequence of i32's + - Usage: `{ variable: , any_values: [,...] }` + - Assert a variable's value exists in a range (inclusive) + - Usage: `{ variable: , range: [, ] }` + - Assert a variable's value exists in a range via a match (inclusive) + - Usage: `{ variable: , range: }` + - Assert a variable's value does not exceed the number of elements in a SVE type ``. + - Usage: `{ variable: , sve_max_elems_type: }` + - Assert a variable's value does not exceed the number of elements in a vector type ``. + - Usage: `{ variable: , vec_max_elems_type: }` +- `predication_methods` (_Optional_) + - Configuration for predicate-form variants. Only used when the intrinsic name includes an `_m*_` wildcard (e.g., `{_mx}`, `{_mxz}`). + - `zeroing_method`: Required when requesting `_z`; either `{ drop: }` to remove an argument and replace it with a zero initialiser, or `{ select: }` to select zeros into a predicate. + - `dont_care_method`: How `_x` should be implemented (`inferred`, `as_zeroing`, or `as_merging`). +- `compose` + - A sequence of expressions that make up the body of the intrinsic +- `big_endian_inverse` (_Optional_) + - A boolean, default false. If true, generates two implementations of each intrinsic variant, one for each endianness, and attempts to automatically generate the required bit swizzles +- `visibility` (_Optional_) + - Function visibility. One of `public` (default) or `private`. +- `n_variant_op` (_Optional_) + - Enables generation of an `_n` variant when the intrinsic name includes the `{_n}` wildcard. Set to the operand name that should be splattered for the `_n` form. +- `test` (_Optional_) + - When set, load/store tests are automatically generated. + - A mapping of either `load` or `store` to a number that indexes `types` to specify the type that the test should be addressing in memory. +### Expressions +#### Common +- `Let` + - Defines a variable + - Usage: `Let: [, , ]` +- `Const` + - Defines a const + - Usage: `Const: [, , ]` +- `Assign` + - Performs variable assignment + - Usage: `Assign: [, ]` +- `FnCall` + - Performs a function call + - Usage: `FnCall: [, [, ... ], [, ...](optional), ]` +- `MacroCall` + - Performs a macro call + - Usage: `MacroCall: [, ]` +- `MethodCall` + - Performs a method call + - Usage: `MethodCall: [, , [, ... ]]` +- `LLVMLink` + - Creates an LLVM link and stores the function's name in the wildcard `{llvm_link}` for later use in subsequent expressions. + - If left unset, the arguments and return type inherit from the intrinsic's signature by default. The links will also be set automatically if unset. + - Usage: +```yaml +LLVMLink: + name: + arguments: [, ... ](optional) + return_type: (optional) + links: (optional) + - link: + arch: + - ... +``` +- `Identifier` + - Emits a symbol. Prepend with a `$` to treat it as a scope variable, which engages variable tracking and enables inference. For example, `my_function_name` for a generic symbol or `$my_variable` for a variable. + - Usage `Identifier: [, ]` +- `CastAs` + - Casts an expression to an unchecked type + - Usage: `CastAs: [, ]` +- `MatchSize` + - Allows for conditional generation depending on the size of a specified type + - Usage: +```yaml +MatchSize: + - + - default: + byte(optional): + halfword(optional): + doubleword(optional): +``` +- `MatchKind` + - Allows for conditional generation depending on the kind of a specified type +```yaml +MatchKind: + - + - default: + float(optional): + unsigned(optional): +``` +#### Rarely Used +- `IntConstant` + - Constant signed integer expression + - Usage: `IntConstant: ` +- `FloatConstant` + - Constant floating-point expression + - Usage: `FloatConstant: ` +- `BoolConstant` + - Constant boolean expression + - Usage: `BoolConstant: ` +- `Array` + - An array of expressions + - Usage: `Array: [, ...]` +- `SvUndef` + - Returns the LLVM `undef` symbol + - Usage: `SvUndef` +- `Multiply` + - Simply `*` + - Usage: `Multiply: [, ]` +- `Xor` + - Simply `^` + - Usage: `Xor: [, ]` +- `ConvertConst` + - Converts the specified constant to the specified type's kind + - Usage: `ConvertConst: [, ]` +- `Type` + - Yields the given type in the Rust representation + - Usage: `Type: []` + +### Wildstrings +- Wildstrings let you take advantage of wildcards. +- For example, they are often used in intrinsic names `name: "vtst{neon_type[0].no}"` +- As shown above, wildcards are identified by the surrounding curly brackets. +- Double curly brackets can be used to escape wildcard functionality if you need literal curly brackets in the generated intrinsic. +### Wildcards +Wildcards are heavily used in the spec. They let you write generalised definitions for a group of intrinsics that generate multiple variants. The wildcard itself is replaced with the relevant string in each variant. +Ignoring endianness, for each row in the `types` field of an intrinsic in the spec, a variant of the intrinsic will be generated. That row's contents can be indexed by the wildcards. Below is the behaviour of each wildcard. +- `type[]` + - Replaced in each variant with the value in the indexed position in the relevant row of the `types` field. + - For unnested sequences of `types` (i.e., `types` is a sequence where each element is a single item, not another sequence), the square brackets can be omitted. Simply: `type` +- `neon_type[]` + - Extends the behaviour of `type` with some NEON-specific features and inference. + - Tuples: This wildcard can also be written as `neon_type_x` where `n` is in the set `{2,3,4}`. This generates the `n`-tuple variant of the (inferred) NEON type. + - Suffixes: These modify the behaviour of the wildcard from simple substitution. + - `no` - normal behaviour. Tries to do as much work as it can for you, inferring when to emit: + - Regular type-size suffixes: `_s8`, `_u16`, `_f32`, ... + - `q` variants for double-width (128b) vector types: `q_s8`, `q_u16`, `q_f32`, ... + - `_x` variants for tuple vector types: `_s8_x2`, `_u32_x3`, `_f64_x4`, ... + - As well as any combination of the above: `q_s16_x16` ... + - Most of the other suffixes modify the normal behaviour by disabling features or adding new ones. (See table below) +- `sve_type[]` + - Similar to `neon_type`, but without the suffixes. +- `size[]` + - The size (in bits) of the indexed type. +- `size_minus_one[]` + - Emits the size (in bits) of the indexed type minus one. +- `size_literal[]` + - The literal representation of the indexed type. + - `b`: byte, `h`: halfword, `w`: word, or `d`: double. +- `type_kind[]` + - The literal representation of the indexed type's kind. + - `f`: float, `s`: signed, `u`: unsigned, `p`: polynomial, `b`: boolean. +- `size_in_bytes_log2[]` + - Log2 of the size of the indexed type in *bytes*. +- `predicate[]` + - SVE predicate vector type inferred from the indexed type. +- `max_predicate` + - The same as predicate, but uses the largest type in the relevant `types` sequence/row. +- `_n` + - Emits the current N-variant suffix when `n_variant_op` is configured. +- ` as ` + - If `` evaluates to a vector, it produces a vector of the same shape, but with `` as the base type. +- `llvm_link` + - If the `LLVMLink` mapping has been set for an intrinsic, this will give the name of the link. +- `_m*` + - Predicate form masks. Use wildcards such as `{_mx}` or `{_mxz}` to expand merging/don't-care/zeroing variants according to the mask. +- `` + - You may simply call upon wildcards defined under `substitutions`. +### neon_type suffixes + +| suffix | implication | +| ----------------- | --------------------------------------------- | +| `.no` | Normal | +| `.noq` | Never include `q`s | +| `.nox` | Never include `_x`s | +| `.N` | Include `_n_`, e.g., `_n_s8` | +| `.noq_N` | Include `_n_`, but never `q`s | +| `.dup` | Include `_dup_`, e.g., `_dup_s8` | +| `.dup_nox` | Include `_dup_` but never `_x`s | +| `.lane` | Include `_lane_`, e.g., `_lane_s8` | +| `.lane_nox` | Include `_lane_`, but never `_x`s | +| `.rot90` | Include `_rot90_`, e.g., `_rot90_s8` | +| `.rot180` | Include `_rot180_`, e.g., `_rot180_s8` | +| `.rot270` | Include `_rot270_`, e.g., `_rot270_s8` | +| `.rot90_lane` | Include `_rot90_lane_` | +| `.rot180_lane` | Include `_rot180_lane_` | +| `.rot270_lane` | Include `_rot270_lane_` | +| `.rot90_laneq` | Include `_rot90_laneq_` | +| `.rot180_laneq` | Include `_rot180_laneq_` | +| `.rot270_laneq` | Include `_rot270_laneq_` | +| `.base` | Produce only the size, e.g., `8`, `16` | +| `.u` | Produce the type's unsigned equivalent | +| `.laneq_nox` | Include `_laneq_`, but never `_x`s | +| `.tuple` | Produce only the size of the tuple, e.g., `3` | +| `.base_byte_size` | Produce only the size in bytes. | + diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/stdarch/examples/Cargo.toml b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/stdarch/examples/Cargo.toml new file mode 100644 index 0000000000000000000000000000000000000000..c4fc4c7e374c85ee340f8d36d49051de0cc34538 --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/stdarch/examples/Cargo.toml @@ -0,0 +1,34 @@ +[package] +name = "stdarch_examples" +version = "0.0.0" +authors = [ + "Alex Crichton ", + "Andrew Gallant ", + "Gonzalo Brito Gadeschi ", +] +description = "Examples of the stdarch crate." +edition = "2024" +default-run = "hex" + +[dependencies] +core_arch = { path = "../crates/core_arch" } +quickcheck = "1.0" +rand = "0.8" + +[[bin]] +name = "hex" +path = "hex.rs" + +[[bin]] +name = "connect5" +path = "connect5.rs" + +# Hexagon-only: requires --target hexagon-unknown-linux-musl +[[bin]] +name = "gaussian" +path = "gaussian.rs" + +[[example]] +name = "wasm" +crate-type = ["cdylib"] +path = "wasm.rs" diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/stdarch/examples/connect5.rs b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/stdarch/examples/connect5.rs new file mode 100644 index 0000000000000000000000000000000000000000..f24657b1483947ae7107e57643f6c2e51693d1e9 --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/stdarch/examples/connect5.rs @@ -0,0 +1,1235 @@ +//! Outer-Open Gomoku is a board game which is a enhanced version of connect5 (Gomoku).\ +//! The game is a two-player game which played on a 15x15 Go board.\ +//! Two players take turns placing a move on an empty intersection in this board.\ +//! The winner is the first player to form an unbroken chain of five moves horizontally, vertically, or diagonally.\ +//! Unlike Gomoku, the first move is required to be placed at the two outer rows or columns of this board.\ +//! This program provides an AI playing with Minimax search with alpha-beta pruning which uses +//! patterns on evaluation.\ +//! The avx512 intrinsic can do 32 pattern matching at one time.\ +//! This avx512 is tested with non-avx512 code to verify its correctness.\ +//! +//! On Intel i7-7800x using single thread with fixed AVX-512 clock at 4.0GHz, the avx512 is speed up about 9x.\ +//! The average time for each move in the avx512 is around 14.00s ± 1.31s and in the non-avx512 +//! is 129.02s ± 4.96s.\ +//! On Intel Tiger Lake i7-1165G7, the avx512 is around 11.11s ± 1.31s. +//! +//! Pattern Matching\ +//! Use 512-bit to present the board state. The location 0 is top left.\ +//! 0 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15\ +//! 16 17 18 19 20 21 22 23 24 25 26 27 28 29 30 31\ +//! ...\ +//! Pattern "OOOOO" is matching through "0 1 2 3 4", "1 2 3 4 5", ...\ +//! Using avx512, "0 1 2 3 4", "16 17 18 19 20", ... can be matched simultaneously.\ +//! +//! //! You can test out this program via: +//! +//! cargo +nightly run --release --bin connect5 +//! +//! You should see a game self-playing. In the end of the game, it shows the average time for +//! each move. + +#![allow(internal_features)] +#![cfg_attr(target_arch = "x86", feature(stdarch_internal))] +#![cfg_attr(target_arch = "x86_64", feature(stdarch_internal))] +#![feature(stmt_expr_attributes)] + +use rand::seq::SliceRandom; +use rand::thread_rng; + +use std::cmp; +use std::time::Instant; + +#[cfg(target_arch = "x86")] +use core_arch::arch::x86::*; +#[cfg(target_arch = "x86_64")] +use core_arch::arch::x86_64::*; +#[cfg(target_arch = "x86")] +use std::is_x86_feature_detected; +#[cfg(target_arch = "x86_64")] +use std::is_x86_feature_detected; + +// types + +#[derive(Clone, Copy, PartialEq, Eq)] +pub enum Color { + Black = 0, + White = 1, + Empty = 2, + Border = 3, +} + +type Square = i32; +type Move = i32; +type Side = Color; + +// constants + +const FILE_SIZE: i32 = 15; +const RANK_SIZE: i32 = 15; +const SQUARE_SIZE: i32 = (FILE_SIZE + 1) * (FILE_SIZE + 4) + 16 + 4; + +const EVAL_INF: i32 = FILE_SIZE * RANK_SIZE * 100; +const MOVE_NONE: Move = -1; +const SCORE_NONE: i32 = -EVAL_INF - 1; + +/// DIRECTION 0: left to right\ +/// DIRECTION 1: top to bottom\ +/// DIRECTION 2: top left to bottom right\ +/// DIRECTION 3: top right to bottom left +#[rustfmt::skip] +#[allow(clippy::identity_op)] +const DIRECTION: [[i32; 5]; 4] = [ [1, 2, 3, 4, 5], + [1 * (FILE_SIZE + 1), 2 * (FILE_SIZE + 1), 3 * (FILE_SIZE + 1), 4 * (FILE_SIZE + 1), 5 * (FILE_SIZE + 1)], + [1 * (FILE_SIZE + 2), 2 * (FILE_SIZE + 2), 3 * (FILE_SIZE + 2), 4 * (FILE_SIZE + 2), 5 * (FILE_SIZE + 2)], + [1 * (FILE_SIZE + 0), 2 * (FILE_SIZE + 0), 3 * (FILE_SIZE + 0), 4 * (FILE_SIZE + 0), 5 * (FILE_SIZE + 0)]]; + +/// A table to encode each location to a value in bit 31-0 in the bitboard for 4 direction +#[rustfmt::skip] +const MAPMOVEVALUE: [[i32; 239]; 4] = [ [// Direction 0 + 1<<31, 1<<30, 1<<29, 1<<28, 1<<27, 1<<26, 1<<25, 1<<24, 1<<23, 1<<22, 1<<21, 1<<20, 1<<19, 1<<18, 1<<17, 0, + 1<<31, 1<<30, 1<<29, 1<<28, 1<<27, 1<<26, 1<<25, 1<<24, 1<<23, 1<<22, 1<<21, 1<<20, 1<<19, 1<<18, 1<<17, 0, + 1<<31, 1<<30, 1<<29, 1<<28, 1<<27, 1<<26, 1<<25, 1<<24, 1<<23, 1<<22, 1<<21, 1<<20, 1<<19, 1<<18, 1<<17, 0, + 1<<31, 1<<30, 1<<29, 1<<28, 1<<27, 1<<26, 1<<25, 1<<24, 1<<23, 1<<22, 1<<21, 1<<20, 1<<19, 1<<18, 1<<17, 0, + 1<<31, 1<<30, 1<<29, 1<<28, 1<<27, 1<<26, 1<<25, 1<<24, 1<<23, 1<<22, 1<<21, 1<<20, 1<<19, 1<<18, 1<<17, 0, + 1<<31, 1<<30, 1<<29, 1<<28, 1<<27, 1<<26, 1<<25, 1<<24, 1<<23, 1<<22, 1<<21, 1<<20, 1<<19, 1<<18, 1<<17, 0, + 1<<31, 1<<30, 1<<29, 1<<28, 1<<27, 1<<26, 1<<25, 1<<24, 1<<23, 1<<22, 1<<21, 1<<20, 1<<19, 1<<18, 1<<17, 0, + 1<<31, 1<<30, 1<<29, 1<<28, 1<<27, 1<<26, 1<<25, 1<<24, 1<<23, 1<<22, 1<<21, 1<<20, 1<<19, 1<<18, 1<<17, 0, + 1<<31, 1<<30, 1<<29, 1<<28, 1<<27, 1<<26, 1<<25, 1<<24, 1<<23, 1<<22, 1<<21, 1<<20, 1<<19, 1<<18, 1<<17, 0, + 1<<31, 1<<30, 1<<29, 1<<28, 1<<27, 1<<26, 1<<25, 1<<24, 1<<23, 1<<22, 1<<21, 1<<20, 1<<19, 1<<18, 1<<17, 0, + 1<<31, 1<<30, 1<<29, 1<<28, 1<<27, 1<<26, 1<<25, 1<<24, 1<<23, 1<<22, 1<<21, 1<<20, 1<<19, 1<<18, 1<<17, 0, + 1<<31, 1<<30, 1<<29, 1<<28, 1<<27, 1<<26, 1<<25, 1<<24, 1<<23, 1<<22, 1<<21, 1<<20, 1<<19, 1<<18, 1<<17, 0, + 1<<31, 1<<30, 1<<29, 1<<28, 1<<27, 1<<26, 1<<25, 1<<24, 1<<23, 1<<22, 1<<21, 1<<20, 1<<19, 1<<18, 1<<17, 0, + 1<<31, 1<<30, 1<<29, 1<<28, 1<<27, 1<<26, 1<<25, 1<<24, 1<<23, 1<<22, 1<<21, 1<<20, 1<<19, 1<<18, 1<<17, 0, + 1<<31, 1<<30, 1<<29, 1<<28, 1<<27, 1<<26, 1<<25, 1<<24, 1<<23, 1<<22, 1<<21, 1<<20, 1<<19, 1<<18, 1<<17], + [// Direction 1 + 1<<31, 1<<31, 1<<31, 1<<31, 1<<31, 1<<31, 1<<31, 1<<31, 1<<31, 1<<31, 1<<31, 1<<31, 1<<31, 1<<31, 1<<31, 0, + 1<<30, 1<<30, 1<<30, 1<<30, 1<<30, 1<<30, 1<<30, 1<<30, 1<<30, 1<<30, 1<<30, 1<<30, 1<<30, 1<<30, 1<<30, 0, + 1<<29, 1<<29, 1<<29, 1<<29, 1<<29, 1<<29, 1<<29, 1<<29, 1<<29, 1<<29, 1<<29, 1<<29, 1<<29, 1<<29, 1<<29, 0, + 1<<28, 1<<28, 1<<28, 1<<28, 1<<28, 1<<28, 1<<28, 1<<28, 1<<28, 1<<28, 1<<28, 1<<28, 1<<28, 1<<28, 1<<28, 0, + 1<<27, 1<<27, 1<<27, 1<<27, 1<<27, 1<<27, 1<<27, 1<<27, 1<<27, 1<<27, 1<<27, 1<<27, 1<<27, 1<<27, 1<<27, 0, + 1<<26, 1<<26, 1<<26, 1<<26, 1<<26, 1<<26, 1<<26, 1<<26, 1<<26, 1<<26, 1<<26, 1<<26, 1<<26, 1<<26, 1<<26, 0, + 1<<25, 1<<25, 1<<25, 1<<25, 1<<25, 1<<25, 1<<25, 1<<25, 1<<25, 1<<25, 1<<25, 1<<25, 1<<25, 1<<25, 1<<25, 0, + 1<<24, 1<<24, 1<<24, 1<<24, 1<<24, 1<<24, 1<<24, 1<<24, 1<<24, 1<<24, 1<<24, 1<<24, 1<<24, 1<<24, 1<<24, 0, + 1<<23, 1<<23, 1<<23, 1<<23, 1<<23, 1<<23, 1<<23, 1<<23, 1<<23, 1<<23, 1<<23, 1<<23, 1<<23, 1<<23, 1<<23, 0, + 1<<22, 1<<22, 1<<22, 1<<22, 1<<22, 1<<22, 1<<22, 1<<22, 1<<22, 1<<22, 1<<22, 1<<22, 1<<22, 1<<22, 1<<22, 0, + 1<<21, 1<<21, 1<<21, 1<<21, 1<<21, 1<<21, 1<<21, 1<<21, 1<<21, 1<<21, 1<<21, 1<<21, 1<<21, 1<<21, 1<<21, 0, + 1<<20, 1<<20, 1<<20, 1<<20, 1<<20, 1<<20, 1<<20, 1<<20, 1<<20, 1<<20, 1<<20, 1<<20, 1<<20, 1<<20, 1<<20, 0, + 1<<19, 1<<19, 1<<19, 1<<19, 1<<19, 1<<19, 1<<19, 1<<19, 1<<19, 1<<19, 1<<19, 1<<19, 1<<19, 1<<19, 1<<19, 0, + 1<<18, 1<<18, 1<<18, 1<<18, 1<<18, 1<<18, 1<<18, 1<<18, 1<<18, 1<<18, 1<<18, 1<<18, 1<<18, 1<<18, 1<<18, 0, + 1<<17, 1<<17, 1<<17, 1<<17, 1<<17, 1<<17, 1<<17, 1<<17, 1<<17, 1<<17, 1<<17, 1<<17, 1<<17, 1<<17, 1<<17], + [// Direction 2 + 1<<15, 1<<15, 1<<15, 1<<15, 1<<15, 1<<15, 1<<15, 1<<15, 1<<15, 1<<15, 1<<15, 0, 0, 0, 0, 0, + 1<<15, 1<<14, 1<<14, 1<<14, 1<<14, 1<<14, 1<<14, 1<<14, 1<<14, 1<<14, 1<<14, 1<<14, 0, 0, 0, 0, + 1<<15, 1<<14, 1<<13, 1<<13, 1<<13, 1<<13, 1<<13, 1<<13, 1<<13, 1<<13, 1<<13, 1<<13, 1<<13, 0, 0, 0, + 1<<15, 1<<14, 1<<13, 1<<12, 1<<12, 1<<12, 1<<12, 1<<12, 1<<12, 1<<12, 1<<12, 1<<12, 1<<12, 1<<12, 0, 0, + 1<<15, 1<<14, 1<<13, 1<<12, 1<<11, 1<<11, 1<<11, 1<<11, 1<<11, 1<<11, 1<<11, 1<<11, 1<<11, 1<<11, 1<<11, 0, + 1<<15, 1<<14, 1<<13, 1<<12, 1<<11, 1<<10, 1<<10, 1<<10, 1<<10, 1<<10, 1<<10, 1<<10, 1<<10, 1<<10, 1<<10, 0, + 1<<9, 1<<14, 1<<13, 1<<12, 1<<11, 1<<10, 1<<9, 1<<9, 1<<9, 1<<9, 1<<9, 1<<9, 1<<9, 1<<9, 1<<9, 0, + 1<<8, 1<<8, 1<<13, 1<<12, 1<<11, 1<<10, 1<<9, 1<<8, 1<<8, 1<<8, 1<<8, 1<<8, 1<<8, 1<<8, 1<<8, 0, + 1<<7, 1<<7, 1<<7, 1<<12, 1<<11, 1<<10, 1<<9, 1<<8, 1<<7, 1<<7, 1<<7, 1<<7, 1<<7, 1<<7, 1<<7, 0, + 1<<6, 1<<6, 1<<6, 1<<6, 1<<11, 1<<10, 1<<9, 1<<8, 1<<7, 1<<6, 1<<6, 1<<6, 1<<6, 1<<6, 1<<6, 0, + 1<<5, 1<<5, 1<<5, 1<<5, 1<<5, 1<<10, 1<<9, 1<<8, 1<<7, 1<<6, 1<<5, 1<<5, 1<<5, 1<<5, 1<<5, 0, + 0, 1<<4, 1<<4, 1<<4, 1<<4, 1<<4, 1<<9, 1<<8, 1<<7, 1<<6, 1<<5, 1<<4, 1<<4, 1<<4, 1<<4, 0, + 0, 0, 1<<3, 1<<3, 1<<3, 1<<3, 1<<3, 1<<8, 1<<7, 1<<6, 1<<5, 1<<4, 1<<3, 1<<3, 1<<3, 0, + 0, 0, 0, 1<<2, 1<<2, 1<<2, 1<<2, 1<<2, 1<<7, 1<<6, 1<<5, 1<<4, 1<<3, 1<<2, 1<<2, 0, + 0, 0, 0, 0, 1<<1, 1<<1, 1<<1, 1<<1, 1<<1, 1<<6, 1<<5, 1<<4, 1<<3, 1<<2, 1<<1], + [// Direction 3 + 0, 0, 0, 0, 1<<15, 1<<15, 1<<15, 1<<15, 1<<15, 1<<15, 1<<15, 1<<15, 1<<15, 1<<15, 1<<15, 0, + 0, 0, 0, 1<<14, 1<<14, 1<<14, 1<<14, 1<<14, 1<<14, 1<<14, 1<<14, 1<<14, 1<<14, 1<<14, 1<<15, 0, + 0, 0, 1<<13, 1<<13, 1<<13, 1<<13, 1<<13, 1<<13, 1<<13, 1<<13, 1<<13, 1<<13, 1<<13, 1<<14, 1<<15, 0, + 0, 1<<12, 1<<12, 1<<12, 1<<12, 1<<12, 1<<12, 1<<12, 1<<12, 1<<12, 1<<12, 1<<12, 1<<13, 1<<14, 1<<15, 0, + 1<<11, 1<<11, 1<<11, 1<<11, 1<<11, 1<<11, 1<<11, 1<<11, 1<<11, 1<<11, 1<<11, 1<<12, 1<<13, 1<<14, 1<<15, 0, + 1<<10, 1<<10, 1<<10, 1<<10, 1<<10, 1<<10, 1<<10, 1<<10, 1<<10, 1<<10, 1<<11, 1<<12, 1<<13, 1<<14, 1<<15, 0, + 1<<9, 1<<9, 1<<9, 1<<9, 1<<9, 1<<9, 1<<9, 1<<9, 1<<9, 1<<10, 1<<11, 1<<12, 1<<13, 1<<14, 1<<9, 0, + 1<<8, 1<<8, 1<<8, 1<<8, 1<<8, 1<<8, 1<<8, 1<<8, 1<<9, 1<<10, 1<<11, 1<<12, 1<<13, 1<<8, 1<<8, 0, + 1<<7, 1<<7, 1<<7, 1<<7, 1<<7, 1<<7, 1<<7, 1<<8, 1<<9, 1<<10, 1<<11, 1<<12, 1<<7, 1<<7, 1<<7, 0, + 1<<6, 1<<6, 1<<6, 1<<6, 1<<6, 1<<6, 1<<7, 1<<8, 1<<9, 1<<10, 1<<11, 1<<6, 1<<6, 1<<6, 1<<6, 0, + 1<<5, 1<<5, 1<<5, 1<<5, 1<<5, 1<<6, 1<<7, 1<<8, 1<<9, 1<<10, 1<<5, 1<<5, 1<<5, 1<<5, 1<<5, 0, + 1<<4, 1<<4, 1<<4, 1<<4, 1<<5, 1<<6, 1<<7, 1<<8, 1<<9, 1<<4, 1<<4, 1<<4, 1<<4, 1<<4, 0, 0, + 1<<3, 1<<3, 1<<3, 1<<4, 1<<5, 1<<6, 1<<7, 1<<8, 1<<3, 1<<3, 1<<3, 1<<3, 1<<3, 0, 0, 0, + 1<<2, 1<<2, 1<<3, 1<<4, 1<<5, 1<<6, 1<<7, 1<<2, 1<<2, 1<<2, 1<<2, 1<<2, 0, 0, 0, 0, + 1<<1, 1<<2, 1<<3, 1<<4, 1<<5, 1<<6, 1<<1, 1<<1, 1<<1, 1<<1, 1<<1, 0, 0, 0, 0] + ]; + +/// A table to encode each location to an index in the bitboard for 4 direction +#[rustfmt::skip] +const MAPMOVEIDX: [[i32; 239]; 4] = [ [// Direction 0 + 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, + 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 0, + 2, 2, 2, 2, 2, 2, 2, 2, 2, 2, 2, 2, 2, 2, 2, 0, + 3, 3, 3, 3, 3, 3, 3, 3, 3, 3, 3, 3, 3, 3, 3, 0, + 4, 4, 4, 4, 4, 4, 4, 4, 4, 4, 4, 4, 4, 4, 4, 0, + 5, 5, 5, 5, 5, 5, 5, 5, 5, 5, 5, 5, 5, 5, 5, 0, + 6, 6, 6, 6, 6, 6, 6, 6, 6, 6, 6, 6, 6, 6, 6, 0, + 7, 7, 7, 7, 7, 7, 7, 7, 7, 7, 7, 7, 7, 7, 7, 0, + 8, 8, 8, 8, 8, 8, 8, 8, 8, 8, 8, 8, 8, 8, 8, 0, + 9, 9, 9, 9, 9, 9, 9, 9, 9, 9, 9, 9, 9, 9, 9, 0, + 10, 10, 10, 10, 10, 10, 10, 10, 10, 10, 10, 10, 10, 10, 10, 0, + 11, 11, 11, 11, 11, 11, 11, 11, 11, 11, 11, 11, 11, 11, 11, 0, + 12, 12, 12, 12, 12, 12, 12, 12, 12, 12, 12, 12, 12, 12, 12, 0, + 13, 13, 13, 13, 13, 13, 13, 13, 13, 13, 13, 13, 13, 13, 13, 0, + 14, 14, 14, 14, 14, 14, 14, 14, 14, 14, 14, 14, 14, 14, 14], + [// Direction 1 + 0, 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 0, + 0, 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 0, + 0, 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 0, + 0, 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 0, + 0, 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 0, + 0, 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 0, + 0, 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 0, + 0, 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 0, + 0, 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 0, + 0, 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 0, + 0, 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 0, + 0, 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 0, + 0, 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 0, + 0, 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 0, + 0, 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14], + [// Direction 2 + 10, 9, 8, 7, 6, 5, 4, 3, 2, 1, 0, 0, 0, 0, 0, 0, + 11, 10, 9, 8, 7, 6, 5, 4, 3, 2, 1, 0, 0, 0, 0, 0, + 12, 11, 10, 9, 8, 7, 6, 5, 4, 3, 2, 1, 0, 0, 0, 0, + 13, 12, 11, 10, 9, 8, 7, 6, 5, 4, 3, 2, 1, 0, 0, 0, + 14, 13, 12, 11, 10, 9, 8, 7, 6, 5, 4, 3, 2, 1, 0, 0, + 15, 14, 13, 12, 11, 10, 9, 8, 7, 6, 5, 4, 3, 2, 1, 0, + 1, 15, 14, 13, 12, 11, 10, 9, 8, 7, 6, 5, 4, 3, 2, 0, + 2, 1, 15, 14, 13, 12, 11, 10, 9, 8, 7, 6, 5, 4, 3, 0, + 3, 2, 1, 15, 14, 13, 12, 11, 10, 9, 8, 7, 6, 5, 4, 0, + 4, 3, 2, 1, 15, 14, 13, 12, 11, 10, 9, 8, 7, 6, 5, 0, + 5, 4, 3, 2, 1, 15, 14, 13, 12, 11, 10, 9, 8, 7, 6, 0, + 0, 5, 4, 3, 2, 1, 15, 14, 13, 12, 11, 10, 9, 8, 7, 0, + 0, 0, 5, 4, 3, 2, 1, 15, 14, 13, 12, 11, 10, 9, 8, 0, + 0, 0, 0, 5, 4, 3, 2, 1, 15, 14, 13, 12, 11, 10, 9, 0, + 0, 0, 0, 0, 5, 4, 3, 2, 1, 15, 14, 13, 12, 11, 10], + [// Direction 3 + 0, 0, 0, 0, 0, 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 0, + 0, 0, 0, 0, 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 0, + 0, 0, 0, 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 0, + 0, 0, 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 0, + 0, 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 0, + 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 0, + 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 1, 0, + 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 1, 2, 0, + 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 1, 2, 3, 0, + 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 1, 2, 3, 4, 0, + 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 1, 2, 3, 4, 5, 0, + 7, 8, 9, 10, 11, 12, 13, 14, 15, 1, 2, 3, 4, 5, 0, 0, + 8, 9, 10, 11, 12, 13, 14, 15, 1, 2, 3, 4, 5, 0, 0, 0, + 9, 10, 11, 12, 13, 14, 15, 1, 2, 3, 4, 5, 0, 0, 0, 0, + 10, 11, 12, 13, 14, 15, 1, 2, 3, 4, 5, 0, 0, 0, 0] + ]; + +// structures + +/// Use one-dimensional array to store the board state. The location 0 is top left.\ +/// 0 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15\ +/// 16 17 18 19 20 21 22 23 24 25 26 27 28 29 30 31\ +/// ... \ +/// position 15, 31, ... are Borders.\ +/// position 0 is file 0, rank 0.\ +/// position 17 is file 1, rank 1.\ +/// +/// Use a three-dimensional array to store the bitboard.\ +/// The first dimension is color: Black, White and Empty.\ +/// The second and third one are 2 x 512-bit. Direction 0 and 2 use the first 512-bit. Direction 1 and +/// 3 use the second 512-bit.\ +/// Each 512-bit is a 32-bit x 16 array. Direction 0 and 1 store at bit 31-16 and Direction 2 and 3 store at bit 15-0. +pub struct Pos { + // position + state: [Color; SQUARE_SIZE as usize], + p_turn: Side, + bitboard: [[[i32; 16]; 2]; 3], +} + +impl Pos { + pub fn init(&mut self) { + // starting position + // Set up the Border + for i in 0..SQUARE_SIZE as usize { + self.state[i] = Color::Border; + } + + // In the beginning, all is Empty + for rk in 0..RANK_SIZE { + for fl in 0..FILE_SIZE { + let sq: Square = square_make(fl, rk); + self.state[sq as usize] = Color::Empty; + } + } + + // first move is Black + self.p_turn = Color::Black; + + let black = Color::Black as usize; + let white = Color::White as usize; + let empty = Color::Empty as usize; + + // set up the corresponding bitboard + for i in 0..2 { + for j in 0..16 { + self.bitboard[black][i][j] = 0; + self.bitboard[white][i][j] = 0; + self.bitboard[empty][i][j] = 0; + } + } + + for i in 0..2 { + // use bit 31-16 to store direction 0 and 1 + #[rustfmt::skip] + for j in 0..FILE_SIZE as usize { + self.bitboard[empty][i][j] = (1<<31)|(1<<30)|(1<<29)|(1<<28)|(1<<27)|(1<<26)|(1<<25)|(1<<24)|(1<<23)|(1<<22)|(1<<21)|(1<<20)|(1<<19)|(1<<18)|(1<<17); + } + } + + // use bit 15-0 to store direction 2 and 3. There are 21 for each one. We combine row1 and row16, row2 and row17, row3 and row18, row4 and row19, and row 5 and row20 + #[rustfmt::skip] + for i in 0..2 { + self.bitboard[empty][i][0] |= (1<<15)|(1<<14)|(1<<13)|(1<<12)|(1<<11); //row 0 + self.bitboard[empty][i][1] |= (1<<15)|(1<<14)|(1<<13)|(1<<12)|(1<<11)|(1<<10)/*row1*/|(1<<9)|(1<<8)|(1<<7)|(1<<6)|(1<<5)|(1<<4)|(1<<3)|(1<<2)|(1<<1);//row16 + self.bitboard[empty][i][2] |= (1<<15)|(1<<14)|(1<<13)|(1<<12)|(1<<11)|(1<<10)|(1<<9)/*row2*/|(1<<8)|(1<<7)|(1<<6)|(1<<5)|(1<<4)|(1<<3)|(1<<2)|(1<<1);//row17 + self.bitboard[empty][i][3] |= (1<<15)|(1<<14)|(1<<13)|(1<<12)|(1<<11)|(1<<10)|(1<<9)|(1<<8)/*row3*/|(1<<7)|(1<<6)|(1<<5)|(1<<4)|(1<<3)|(1<<2)|(1<<1);//row18 + self.bitboard[empty][i][4] |= (1<<15)|(1<<14)|(1<<13)|(1<<12)|(1<<11)|(1<<10)|(1<<9)|(1<<8)|(1<<7)/*row4*/|(1<<6)|(1<<5)|(1<<4)|(1<<3)|(1<<2)|(1<<1);//row19 + self.bitboard[empty][i][5] |= (1<<15)|(1<<14)|(1<<13)|(1<<12)|(1<<11)|(1<<10)|(1<<9)|(1<<8)|(1<<7)|(1<<6)/*row5*/|(1<<5)|(1<<4)|(1<<3)|(1<<2)|(1<<1);//row20 + self.bitboard[empty][i][6] |= (1<<15)|(1<<14)|(1<<13)|(1<<12)|(1<<11)|(1<<10)|(1<<9)|(1<<8)|(1<<7)|(1<<6)|(1<<5);//row6 + self.bitboard[empty][i][7] |= (1<<15)|(1<<14)|(1<<13)|(1<<12)|(1<<11)|(1<<10)|(1<<9)|(1<<8)|(1<<7)|(1<<6)|(1<<5)|(1<<4);//row7 + self.bitboard[empty][i][8] |= (1<<15)|(1<<14)|(1<<13)|(1<<12)|(1<<11)|(1<<10)|(1<<9)|(1<<8)|(1<<7)|(1<<6)|(1<<5)|(1<<4)|(1<<3);//row8 + self.bitboard[empty][i][9] |= (1<<15)|(1<<14)|(1<<13)|(1<<12)|(1<<11)|(1<<10)|(1<<9)|(1<<8)|(1<<7)|(1<<6)|(1<<5)|(1<<4)|(1<<3)|(1<<2);//row9 + self.bitboard[empty][i][10] |= (1<<15)|(1<<14)|(1<<13)|(1<<12)|(1<<11)|(1<<10)|(1<<9)|(1<<8)|(1<<7)|(1<<6)|(1<<5)|(1<<4)|(1<<3)|(1<<2)|(1<<1);//row10 + self.bitboard[empty][i][11] |= (1<<15)|(1<<14)|(1<<13)|(1<<12)|(1<<11)|(1<<10)|(1<<9)|(1<<8)|(1<<7)|(1<<6)|(1<<5)|(1<<4)|(1<<3)|(1<<2);//row11 + self.bitboard[empty][i][12] |= (1<<15)|(1<<14)|(1<<13)|(1<<12)|(1<<11)|(1<<10)|(1<<9)|(1<<8)|(1<<7)|(1<<6)|(1<<5)|(1<<4)|(1<<3);//row12 + self.bitboard[empty][i][13] |= (1<<15)|(1<<14)|(1<<13)|(1<<12)|(1<<11)|(1<<10)|(1<<9)|(1<<8)|(1<<7)|(1<<6)|(1<<5)|(1<<4);//row13 + self.bitboard[empty][i][14] |= (1<<15)|(1<<14)|(1<<13)|(1<<12)|(1<<11)|(1<<10)|(1<<9)|(1<<8)|(1<<7)|(1<<6)|(1<<5);//row14 + self.bitboard[empty][i][15] |= (1<<15)|(1<<14)|(1<<13)|(1<<12)|(1<<11)|(1<<10)|(1<<9)|(1<<8)|(1<<7)|(1<<6);//row15 + } + } + + pub fn do_move(&mut self, mv: Move) { + let atk: Side = self.p_turn; + let def: Side = side_opp(atk); + + let mv = mv as usize; + let black = Color::Black as usize; + let white = Color::White as usize; + let empty = Color::Empty as usize; + + match self.p_turn { + Color::Black => { + self.state[mv] = Color::Black; + // update black move and remove empty move in bitboard + self.bitboard[black][0][MAPMOVEIDX[0][mv] as usize] |= MAPMOVEVALUE[0][mv]; + self.bitboard[empty][0][MAPMOVEIDX[0][mv] as usize] ^= MAPMOVEVALUE[0][mv]; + self.bitboard[black][1][MAPMOVEIDX[1][mv] as usize] |= MAPMOVEVALUE[1][mv]; + self.bitboard[empty][1][MAPMOVEIDX[1][mv] as usize] ^= MAPMOVEVALUE[1][mv]; + self.bitboard[black][0][MAPMOVEIDX[2][mv] as usize] |= MAPMOVEVALUE[2][mv]; + self.bitboard[empty][0][MAPMOVEIDX[2][mv] as usize] ^= MAPMOVEVALUE[2][mv]; + self.bitboard[black][1][MAPMOVEIDX[3][mv] as usize] |= MAPMOVEVALUE[3][mv]; + self.bitboard[empty][1][MAPMOVEIDX[3][mv] as usize] ^= MAPMOVEVALUE[3][mv]; + } + Color::White => { + self.state[mv] = Color::White; + // update white move and remove empty move in bitboard + self.bitboard[white][0][MAPMOVEIDX[0][mv] as usize] |= MAPMOVEVALUE[0][mv]; + self.bitboard[empty][0][MAPMOVEIDX[0][mv] as usize] ^= MAPMOVEVALUE[0][mv]; + self.bitboard[white][1][MAPMOVEIDX[1][mv] as usize] |= MAPMOVEVALUE[1][mv]; + self.bitboard[empty][1][MAPMOVEIDX[1][mv] as usize] ^= MAPMOVEVALUE[1][mv]; + self.bitboard[white][0][MAPMOVEIDX[2][mv] as usize] |= MAPMOVEVALUE[2][mv]; + self.bitboard[empty][0][MAPMOVEIDX[2][mv] as usize] ^= MAPMOVEVALUE[2][mv]; + self.bitboard[white][1][MAPMOVEIDX[3][mv] as usize] |= MAPMOVEVALUE[3][mv]; + self.bitboard[empty][1][MAPMOVEIDX[3][mv] as usize] ^= MAPMOVEVALUE[3][mv]; + } + _ => panic! {}, + } + + self.p_turn = def; + } + + fn turn(&self) -> Side { + self.p_turn + } + + pub fn can_play(&self, from: Square) -> bool { + self.state[from as usize] == Color::Empty + } +} + +pub struct List { + // legal move list + p_move: [Move; (FILE_SIZE * RANK_SIZE) as usize], + p_size: i32, +} + +/// Use List to store legal moves. +impl List { + pub fn clear(&mut self) { + self.p_size = 0; + } + + pub fn add(&mut self, mv: Move) { + self.p_move[self.p_size as usize] = mv; + self.p_size += 1; + } + + pub fn size(&self) -> i32 { + self.p_size + } + + pub fn shuffle(&mut self) { + let mut rng = thread_rng(); + let num = self.p_size as usize; + + self.p_move[..num].shuffle(&mut rng); + } +} + +// functions + +fn square_make(fl: i32, rk: i32) -> Square { + rk * (FILE_SIZE + 1) + fl +} + +fn side_opp(sd: Side) -> Side { + match sd { + Side::White => Side::Black, + Side::Black => Side::White, + _ => panic!(""), + } +} + +fn pos_is_winner(pos: &Pos) -> bool { + let current_side = side_opp(pos.p_turn); + check_pattern5(pos, current_side) +} + +fn pos_is_draw(pos: &Pos) -> bool { + let mut found: bool = true; + + for rk in 0..RANK_SIZE { + for fl in 0..FILE_SIZE { + let sq: Square = square_make(fl, rk); + if pos.can_play(sq) { + found = false; + break; + } + + if !found { + break; + } + } + } + + found && !pos_is_winner(pos) +} + +#[target_feature(enable = "avx512f,avx512bw,popcnt")] +#[cfg(any(target_arch = "x86", target_arch = "x86_64"))] +fn pos_is_draw_avx512(pos: &Pos) -> bool { + let empty = Color::Empty as usize; + + let board0org = unsafe { _mm512_loadu_epi32(&pos.bitboard[empty][0][0]) }; + + let answer = _mm512_set1_epi32(0); + + // if all empty is 0, all board is filled. + let temp_mask = _mm512_mask_cmpneq_epi32_mask(0b11111111_11111111, answer, board0org); + + _popcnt32(temp_mask as i32) == 0 && !pos_is_winner_avx512(pos) +} + +fn pos_is_end(pos: &Pos) -> bool { + pos_is_winner(pos) || pos_is_draw(pos) +} + +fn pos_disp(pos: &Pos) { + for rk in 0..RANK_SIZE { + for fl in 0..FILE_SIZE { + let sq: Square = square_make(fl, rk); + + match pos.state[sq as usize] { + Color::Black => print!("# "), + Color::White => print!("O "), + Color::Empty => print!("- "), + Color::Border => print!("| "), + } + } + + println!(); + } + + match pos.turn() { + Color::Black => println!("black to play"), + Color::White => println!("white to play"), + _ => panic!(), + } +} + +fn gen_moves(list: &mut List, pos: &Pos) { + list.clear(); + + for rk in 0..RANK_SIZE { + for fl in 0..FILE_SIZE { + let sq: Square = square_make(fl, rk); + if pos.can_play(sq) { + list.add(sq); + } + } + } +} + +/// AI: use Minimax search with alpha-beta pruning +#[allow(clippy::manual_range_contains)] +fn search(pos: &Pos, alpha: i32, beta: i32, depth: i32, _ply: i32) -> i32 { + assert!(-EVAL_INF <= alpha && alpha < beta && beta <= EVAL_INF); + // leaf? + + #[cfg(any(target_arch = "x86", target_arch = "x86_64"))] + { + if check_x86_avx512_features() { + unsafe { + if pos_is_winner_avx512(pos) { + return -EVAL_INF + _ply; + } + + if pos_is_draw_avx512(pos) { + return 0; + } + } + } else { + if pos_is_winner(pos) { + return -EVAL_INF + _ply; + } + + if pos_is_draw(pos) { + return 0; + } + } + } + + #[cfg(not(any(target_arch = "x86", target_arch = "x86_64")))] + { + if pos_is_winner(pos) { + return -EVAL_INF + _ply; + } + + if pos_is_draw(pos) { + return 0; + } + } + + if depth == 0 { + return eval(pos, _ply); + } + + let p_move_new: [Move; (FILE_SIZE * RANK_SIZE) as usize] = + [0; (FILE_SIZE * RANK_SIZE) as usize]; + + let mut list = List { + p_move: p_move_new, + p_size: 0, + }; + + let mut bm: Move = MOVE_NONE; + let mut bs: i32 = SCORE_NONE; + + gen_moves(&mut list, pos); + + // move loop + + if _ply == 0 { + list.shuffle(); + } + + for i in 0..list.size() { + if bs < beta { + let mv: Move = list.p_move[i as usize]; + + let mut new_pos = Pos { + state: pos.state, + p_turn: pos.p_turn, + bitboard: pos.bitboard, + }; + + new_pos.do_move(mv); + + let sc: i32 = -search(&new_pos, -beta, -cmp::max(alpha, bs), depth - 1, _ply + 1); + + if sc > bs { + bm = mv; + bs = sc; + } + } + } + + assert_ne!(bm, MOVE_NONE); + assert!(bs >= -EVAL_INF && bs <= EVAL_INF); + + //best move at the root node, best score elsewhere + if _ply == 0 { bm } else { bs } +} + +/// Evaluation function: give different scores to different patterns after a fixed depth. +fn eval(pos: &Pos, _ply: i32) -> i32 { + let atk: Side = pos.turn(); + let def: Side = side_opp(atk); + + // check if opp has live4 which will win playing next move + #[cfg(any(target_arch = "x86", target_arch = "x86_64"))] + { + if check_x86_avx512_features() { + if unsafe { check_patternlive4_avx512(pos, def) } { + return -4096; + } + } else if check_patternlive4(pos, def) { + return -4096; + } + } + + #[cfg(not(any(target_arch = "x86", target_arch = "x86_64")))] + { + if check_patternlive4(pos, def) { + return -4096; + } + } + + // check if self has live4 which will win playing next move + #[cfg(any(target_arch = "x86", target_arch = "x86_64"))] + { + if check_x86_avx512_features() { + if unsafe { check_patternlive4_avx512(pos, atk) } { + return 2560; + } + } else if check_patternlive4(pos, atk) { + return 2560; + } + } + + #[cfg(not(any(target_arch = "x86", target_arch = "x86_64")))] + { + if check_patternlive4(pos, atk) { + return 2560; + } + } + + // check if self has dead4 which will win playing next move + #[cfg(any(target_arch = "x86", target_arch = "x86_64"))] + { + if check_x86_avx512_features() { + if unsafe { check_patterndead4_avx512(pos, atk) > 0 } { + return 2560; + } + } else if check_patterndead4(pos, atk) > 0 { + return 2560; + } + } + + #[cfg(not(any(target_arch = "x86", target_arch = "x86_64")))] + { + if check_patterndead4(pos, atk) > 0 { + return 2560; + } + } + + #[cfg(any(target_arch = "x86", target_arch = "x86_64"))] + { + if check_x86_avx512_features() { + unsafe { + let n_c4: i32 = check_patterndead4_avx512(pos, def); + let n_c3: i32 = check_patternlive3_avx512(pos, def); + + // check if opp has 2 dead4 which will win playing next move + if n_c4 > 1 { + return -2048; + } + + // check if opp has a dead 4 and live 3 which will win playing the next two move + if n_c4 == 1 && n_c3 > 0 { + return -2048; + } + + if check_patternlive3_avx512(pos, atk) > 1 { + return 2560; + } + + // check if opp has 2 live3 which will win playing the next two move + if n_c3 > 1 { + return -2048; + } + } + } else { + let n_c4: i32 = check_patterndead4(pos, def); + let n_c3: i32 = check_patternlive3(pos, def); + + // check if opp has 2 dead4 which will win playing next move + if n_c4 > 1 { + return -2048; + } + + // check if opp has a dead 4 and live 3 which will win playing the next two move + if n_c4 == 1 && n_c3 > 0 { + return -2048; + } + + // check if self has 2 live3 which will win playing the next two move + if check_patternlive3(pos, atk) > 1 { + return 2560; + } + + // check if opp has 2 live3 which will win playing the next two move + if n_c3 > 1 { + return -2048; + } + } + } + + #[cfg(not(any(target_arch = "x86", target_arch = "x86_64")))] + { + let n_c4: i32 = check_patterndead4(pos, def); + let n_c3: i32 = check_patternlive3(pos, def); + + // check if opp has 2 dead4 which will win playing next move + if n_c4 > 1 { + return -2048; + } + + // check if opp has a dead 4 and live 3 which will win playing the next two move + if n_c4 == 1 && n_c3 > 0 { + return -2048; + } + + // check if self has 2 live3 which will win playing the next two move + if check_patternlive3(pos, atk) > 1 { + return 2560; + } + + // check if opp has 2 live3 which will win playing the next two move + if n_c3 > 1 { + return -2048; + } + } + + 0 +} + +/// Check OOOOO +fn check_pattern5(pos: &Pos, sd: Side) -> bool { + let mut n: i32 = 0; + + for rk in 0..RANK_SIZE { + for fl in 0..FILE_SIZE { + let sq: Square = square_make(fl, rk); + + for direction in &DIRECTION { + let idx0 = sq; + let idx1 = sq + direction[0]; + let idx2 = sq + direction[1]; + let idx3 = sq + direction[2]; + let idx4 = sq + direction[3]; + + let val0 = pos.state[idx0 as usize]; + let val1 = pos.state[idx1 as usize]; + let val2 = pos.state[idx2 as usize]; + let val3 = pos.state[idx3 as usize]; + let val4 = pos.state[idx4 as usize]; + + #[rustfmt::skip] + if val0 == sd && val1 == sd && val2 == sd && val3 == sd && val4 == sd { n += 1; } + } + } + } + + n > 0 +} + +/// Check -OOOO- +fn check_patternlive4(pos: &Pos, sd: Side) -> bool { + let mut n: i32 = 0; + + for rk in 0..RANK_SIZE { + for fl in 0..FILE_SIZE { + let sq: Square = square_make(fl, rk); + + for direction in &DIRECTION { + let idx0 = sq; + let idx1 = sq + direction[0]; + let idx2 = sq + direction[1]; + let idx3 = sq + direction[2]; + let idx4 = sq + direction[3]; + let idx5 = sq + direction[4]; + + let val0 = pos.state[idx0 as usize]; + let val1 = pos.state[idx1 as usize]; + let val2 = pos.state[idx2 as usize]; + let val3 = pos.state[idx3 as usize]; + let val4 = pos.state[idx4 as usize]; + let val5 = pos.state[idx5 as usize]; + + #[rustfmt::skip] + if val0 == Color::Empty && val1 == sd && val2 == sd && val3 == sd && val4 == sd && val5 == Color::Empty { n += 1; } + } + } + } + + n > 0 +} + +/// Check OOOO-, OOO-O, OO-OO, O-OOO, -OOOO +fn check_patterndead4(pos: &Pos, sd: Side) -> i32 { + let mut n: i32 = 0; + + for rk in 0..RANK_SIZE { + for fl in 0..FILE_SIZE { + let sq: Square = square_make(fl, rk); + + for direction in &DIRECTION { + let idx0 = sq; + let idx1 = sq + direction[0]; + let idx2 = sq + direction[1]; + let idx3 = sq + direction[2]; + let idx4 = sq + direction[3]; + + let val0 = pos.state[idx0 as usize]; + let val1 = pos.state[idx1 as usize]; + let val2 = pos.state[idx2 as usize]; + let val3 = pos.state[idx3 as usize]; + let val4 = pos.state[idx4 as usize]; + + #[rustfmt::skip] + if val0 == sd && val1 == sd && val2 == sd && val3 == sd && val4 == Color::Empty { n += 1; } + #[rustfmt::skip] + if val0 == sd && val1 == sd && val2 == sd && val3 == Color::Empty && val4 == sd { n += 1; } + #[rustfmt::skip] + if val0 == sd && val1 == sd && val2 == Color::Empty && val3 == sd && val4 == sd { n += 1; } + #[rustfmt::skip] + if val0 == sd && val1 == Color::Empty && val2 == sd && val3 == sd && val4 == sd { n += 1; } + #[rustfmt::skip] + if val0 == Color::Empty && val1 == sd && val2 == sd && val3 == sd && val4 == sd { n += 1; } + } + } + } + + n +} + +/// Check -OOO-, -OO-O-, -O-OO- +fn check_patternlive3(pos: &Pos, sd: Side) -> i32 { + let mut n: i32 = 0; + + for rk in 0..RANK_SIZE { + for fl in 0..FILE_SIZE { + let sq: Square = square_make(fl, rk); + + for direction in &DIRECTION { + let idx0 = sq; + let idx1 = sq + direction[0]; + let idx2 = sq + direction[1]; + let idx3 = sq + direction[2]; + let idx4 = sq + direction[3]; + let idx5 = sq + direction[4]; + + let val0 = pos.state[idx0 as usize]; + let val1 = pos.state[idx1 as usize]; + let val2 = pos.state[idx2 as usize]; + let val3 = pos.state[idx3 as usize]; + let val4 = pos.state[idx4 as usize]; + let val5 = pos.state[idx5 as usize]; + + #[rustfmt::skip] + if val0 == Color::Empty && val1 == sd && val2 == sd && val3 == sd && val4 == Color::Empty { n +=1; } + #[rustfmt::skip] + if val0 == Color::Empty && val1 == sd && val2 == sd && val3 == Color::Empty && val4 == sd && val5 == Color::Empty { n += 1; } + #[rustfmt::skip] + if val0 == Color::Empty && val1 == sd && val2 == Color::Empty && val3 == sd && val4 == sd && val5 == Color::Empty { n += 1; } + } + } + } + + n +} + +#[target_feature(enable = "avx512f,avx512bw,popcnt")] +#[cfg(any(target_arch = "x86", target_arch = "x86_64"))] +fn pos_is_winner_avx512(pos: &Pos) -> bool { + let current_side = side_opp(pos.p_turn); + let coloridx = current_side as usize; + + let board0org: [__m512i; 2] = unsafe { + [ + _mm512_loadu_epi32(&pos.bitboard[coloridx][0][0]), + _mm512_loadu_epi32(&pos.bitboard[coloridx][1][0]), + ] + }; // load states from bitboard + + #[rustfmt::skip] + let answer = _mm512_set1_epi16((1<<15)|(1<<14)|(1<<13)|(1<<12)|(1<<11)); // an unbroken chain of five moves + + // use Mask to filter out which data is not processed. + // 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 16 17 18 19 20 21 22 23 24 25 26 27 28 29 30 31 32 + // 1 x x x x _ _ _ _ _ _ _ _ _ _ _ 0 x o x o x 0 0 0 0 0 0 0 0 0 0 0 + // 2 x _ _ _ _ o _ x o _ _ _ _ _ _ 0 x o _ _ _ _ _| x x o o o x x _ _ + // . ... + // . ... + // . ... + // 16 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 x o x o o o o o o o 0 0 0 0 0 0 + // + // answer_mask[0]: 01_11..............: "0" is in row 16 and column 1-16. + // There is no data to match (x = black, o = white, _ = empty, 0 = no data). + // + // + // Then, shift one space left. + // 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 16 17 18 19 20 21 22 23 24 25 26 27 28 29 30 31 32 + // 1 x x x _ _ _ _ _ _ _ _ _ _ _ 0 x o x o x 0 0 0 0 0 0 0 0 0 0 0 0 + // . ... + // . ... + // . ... + // 16 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 x o x o o o o o o o 0 0 0 0 0 0 0 + // answer_mask[1]: ................_10: "0" is in row 1 and column 17-32; + // There is no enough data to match (o x o x but we want to match o o o o o). + // + // answer_mask[2]: mix 2 data together (column 17-23 and column 24-32). Using Mask to make it match correctly. + // For example, column 23,24,25,26,27 is not a pattern and 24,25,26,27,28 is a pattern. + // That is why some mask bits are set to 0 from answer_mask[2] to answer_mask[10]. + + #[rustfmt::skip] + let answer_mask: [__mmask32; 11] = [0b01_11_11_11_11_11_11_11_11_11_11_11_11_11_11_11, + 0b01_11_11_11_11_11_11_11_11_11_11_11_11_11_11_10, + 0b01_11_11_11_11_11_11_11_11_11_11_11_11_11_10_10, + 0b01_11_11_11_11_11_11_11_11_11_11_11_11_10_10_10, + 0b01_11_11_11_11_11_11_11_11_11_11_11_10_10_10_10, + 0b01_11_11_11_11_11_11_11_11_11_11_10_10_10_10_10, + 0b00_11_11_11_11_11_11_11_11_11_10_10_10_10_11_10, + 0b00_10_11_11_11_11_11_11_11_10_10_10_10_11_11_10, + 0b00_10_10_11_11_11_11_11_10_10_10_10_11_11_11_10, + 0b00_10_10_10_11_11_11_10_10_10_10_11_11_11_11_10, + 0b00_10_10_10_10_11_10_10_10_10_11_11_11_11_11_10]; + let mut count_match: i32 = 0; + + for mut board0 in board0org { + let boardf = _mm512_and_si512(answer, board0); + let temp_mask = _mm512_mask_cmpeq_epi16_mask(answer_mask[0], answer, boardf); + count_match += _popcnt32(temp_mask as i32); + + for i in 1..11 { + // OOOOOOOOOOO----, the last 4 "-" cannot make an unbroken chain of five. + board0 = _mm512_slli_epi32(board0, 1); // shift one space left + let boardf = _mm512_and_si512(answer, board0); // focus on the pattern + let temp_mask = _mm512_mask_cmpeq_epi16_mask(answer_mask[i], answer, boardf); // see if it matches the pattern + count_match += _popcnt32(temp_mask as i32); + } + } + + count_match > 0 +} + +#[target_feature(enable = "avx512f,avx512bw,popcnt")] +#[cfg(any(target_arch = "x86", target_arch = "x86_64"))] +fn check_patternlive4_avx512(pos: &Pos, sd: Side) -> bool { + let coloridx = sd as usize; + let emptyidx = Color::Empty as usize; + + #[rustfmt::skip] + let answer_color = _mm512_set1_epi16( (1<<14)|(1<<13)|(1<<12)|(1<<11) ); + #[rustfmt::skip] + let answer_empty = _mm512_set1_epi16( (1<<15)| (1<<10) ); + #[rustfmt::skip] + let answer = _mm512_set1_epi16( (1<<15)|(1<<14)|(1<<13)|(1<<12)|(1<<11)|(1<<10) ); + + #[rustfmt::skip] + let answer_mask: [__mmask32; 10] = [0b01_11_11_11_11_11_11_11_11_11_11_11_11_11_11_10, + 0b01_11_11_11_11_11_11_11_11_11_11_11_11_11_10_10, + 0b01_11_11_11_11_11_11_11_11_11_11_11_11_10_10_10, + 0b01_11_11_11_11_11_11_11_11_11_11_11_10_10_10_10, + 0b01_11_11_11_11_11_11_11_11_11_11_10_10_10_10_10, + 0b00_11_11_11_11_11_11_11_11_11_10_10_10_10_10_10, + 0b00_10_11_11_11_11_11_11_11_10_10_10_10_10_11_10, + 0b00_10_10_11_11_11_11_11_10_10_10_10_10_11_11_10, + 0b00_10_10_10_11_11_11_10_10_10_10_10_11_11_11_10, + 0b00_10_10_10_10_11_10_10_10_10_10_11_11_11_11_10]; + let board0org: [__m512i; 2] = unsafe { + [ + _mm512_loadu_epi32(&pos.bitboard[coloridx][0][0]), + _mm512_loadu_epi32(&pos.bitboard[coloridx][1][0]), + ] + }; + let board1org: [__m512i; 2] = unsafe { + [ + _mm512_loadu_epi32(&pos.bitboard[emptyidx][0][0]), + _mm512_loadu_epi32(&pos.bitboard[emptyidx][1][0]), + ] + }; + + let mut count_match: i32 = 0; + + for dir in 0..2 { + let mut board0 = board0org[dir]; + let mut board1 = board1org[dir]; + + let boardf1 = _mm512_and_si512(answer_color, board0); + let boardf2 = _mm512_and_si512(answer_empty, board1); + let boardf = _mm512_or_si512(boardf1, boardf2); + + let temp_mask = _mm512_mask_cmpeq_epi16_mask(answer_mask[0], answer, boardf); + count_match += _popcnt32(temp_mask as i32); + + for i in 1..10 { + board0 = _mm512_slli_epi32(board0, 1); + board1 = _mm512_slli_epi32(board1, 1); + + let boardf1 = _mm512_and_si512(answer_color, board0); + let boardf2 = _mm512_and_si512(answer_empty, board1); + let boardf = _mm512_or_si512(boardf1, boardf2); + + let temp_mask = _mm512_mask_cmpeq_epi16_mask(answer_mask[i], answer, boardf); + count_match += _popcnt32(temp_mask as i32); + } + } + + count_match > 0 +} + +#[target_feature(enable = "avx512f,avx512bw,popcnt")] +#[cfg(any(target_arch = "x86", target_arch = "x86_64"))] +fn check_patterndead4_avx512(pos: &Pos, sd: Side) -> i32 { + let coloridx = sd as usize; + let emptyidx = Color::Empty as usize; + + #[rustfmt::skip] + let answer_color: [__m512i; 5] = [_mm512_set1_epi16( (1<<14)|(1<<13)|(1<<12)|(1<<11) ), + _mm512_set1_epi16( (1<<15)| (1<<13)|(1<<12)|(1<<11) ), + _mm512_set1_epi16( (1<<15)|(1<<14) |(1<<12)|(1<<11) ), + _mm512_set1_epi16( (1<<15)|(1<<14)|(1<<13) |(1<<11) ), + _mm512_set1_epi16( (1<<15)|(1<<14)|(1<<13)|(1<<12) )]; + #[rustfmt::skip] + let answer_empty: [__m512i; 5]= [_mm512_set1_epi16( 1<<15 ), + _mm512_set1_epi16( 1<<14 ), + _mm512_set1_epi16( 1<<13 ), + _mm512_set1_epi16( 1<<12 ), + _mm512_set1_epi16( 1<<11)]; + #[rustfmt::skip] + let answer = _mm512_set1_epi16( (1<<15)|(1<<14)|(1<<13)|(1<<12)|(1<<11)); + + #[rustfmt::skip] + let answer_mask: [__mmask32; 11] = [0b01_11_11_11_11_11_11_11_11_11_11_11_11_11_11_11, + 0b01_11_11_11_11_11_11_11_11_11_11_11_11_11_11_10, + 0b01_11_11_11_11_11_11_11_11_11_11_11_11_11_10_10, + 0b01_11_11_11_11_11_11_11_11_11_11_11_11_10_10_10, + 0b01_11_11_11_11_11_11_11_11_11_11_11_10_10_10_10, + 0b01_11_11_11_11_11_11_11_11_11_11_10_10_10_10_10, + 0b00_11_11_11_11_11_11_11_11_11_10_10_10_10_11_10, + 0b00_10_11_11_11_11_11_11_11_10_10_10_10_11_11_10, + 0b00_10_10_11_11_11_11_11_10_10_10_10_11_11_11_10, + 0b00_10_10_10_11_11_11_10_10_10_10_11_11_11_11_10, + 0b00_10_10_10_10_11_10_10_10_10_11_11_11_11_11_10]; + let board0org: [__m512i; 2] = unsafe { + [ + _mm512_loadu_epi32(&pos.bitboard[coloridx][0][0]), + _mm512_loadu_epi32(&pos.bitboard[coloridx][1][0]), + ] + }; + let board1org: [__m512i; 2] = unsafe { + [ + _mm512_loadu_epi32(&pos.bitboard[emptyidx][0][0]), + _mm512_loadu_epi32(&pos.bitboard[emptyidx][1][0]), + ] + }; + + let mut count_match: i32 = 0; + + for pattern in 0..5 { + for dir in 0..2 { + let mut board0 = board0org[dir]; + let mut board1 = board1org[dir]; + + let boardf1 = _mm512_and_si512(answer_color[pattern], board0); + let boardf2 = _mm512_and_si512(answer_empty[pattern], board1); + let boardf = _mm512_or_si512(boardf1, boardf2); + + let temp_mask = _mm512_mask_cmpeq_epi16_mask(answer_mask[0], answer, boardf); + count_match += _popcnt32(temp_mask as i32); + + for i in 1..11 { + board0 = _mm512_slli_epi32(board0, 1); + board1 = _mm512_slli_epi32(board1, 1); + + let boardf1 = _mm512_and_si512(answer_color[pattern], board0); + let boardf2 = _mm512_and_si512(answer_empty[pattern], board1); + let boardf = _mm512_or_si512(boardf1, boardf2); + + let temp_mask = _mm512_mask_cmpeq_epi16_mask(answer_mask[i], answer, boardf); + count_match += _popcnt32(temp_mask as i32); + } + } + } + + count_match +} + +#[target_feature(enable = "avx512f,avx512bw,popcnt")] +#[cfg(any(target_arch = "x86", target_arch = "x86_64"))] +fn check_patternlive3_avx512(pos: &Pos, sd: Side) -> i32 { + let coloridx = sd as usize; + let emptyidx = Color::Empty as usize; + + #[rustfmt::skip] + let board0org: [__m512i; 2] = unsafe { [_mm512_loadu_epi32(&pos.bitboard[coloridx][0][0]), _mm512_loadu_epi32(&pos.bitboard[coloridx][1][0])] }; + #[rustfmt::skip] + let board1org: [__m512i; 2] = unsafe { [_mm512_loadu_epi32(&pos.bitboard[emptyidx][0][0]), _mm512_loadu_epi32(&pos.bitboard[emptyidx][1][0])] }; + + #[rustfmt::skip] + let answer_color: [__m512i; 1] = [_mm512_set1_epi16( (1<<14)|(1<<13)|(1<<12) )]; + #[rustfmt::skip] + let answer_empty: [__m512i; 1] = [_mm512_set1_epi16( (1<<15)| (1<<11) )]; + #[rustfmt::skip] + let answer: __m512i = _mm512_set1_epi16( (1<<15)|(1<<14)|(1<<13)|(1<<12)|(1<<11) ); + + let mut count_match: i32 = 0; + + #[rustfmt::skip] + let answer_mask: [__mmask32; 11] = [0b01_11_11_11_11_11_11_11_11_11_11_11_11_11_11_11, + 0b01_11_11_11_11_11_11_11_11_11_11_11_11_11_11_10, + 0b01_11_11_11_11_11_11_11_11_11_11_11_11_11_10_10, + 0b01_11_11_11_11_11_11_11_11_11_11_11_11_10_10_10, + 0b01_11_11_11_11_11_11_11_11_11_11_11_10_10_10_10, + 0b01_11_11_11_11_11_11_11_11_11_11_10_10_10_10_10, + 0b00_11_11_11_11_11_11_11_11_11_10_10_10_10_11_10, + 0b00_10_11_11_11_11_11_11_11_10_10_10_10_11_11_10, + 0b00_10_10_11_11_11_11_11_10_10_10_10_11_11_11_10, + 0b00_10_10_10_11_11_11_10_10_10_10_11_11_11_11_10, + 0b00_10_10_10_10_11_10_10_10_10_11_11_11_11_11_10]; + for pattern in 0..1 { + for dir in 0..2 { + let mut board0 = board0org[dir]; + let mut board1 = board1org[dir]; + + let boardf1 = _mm512_and_si512(answer_color[pattern], board0); + let boardf2 = _mm512_and_si512(answer_empty[pattern], board1); + let boardf = _mm512_or_si512(boardf1, boardf2); + + let temp_mask = _mm512_mask_cmpeq_epi16_mask(answer_mask[0], answer, boardf); + count_match += _popcnt32(temp_mask as i32); + + for i in 1..11 { + board0 = _mm512_slli_epi32(board0, 1); + board1 = _mm512_slli_epi32(board1, 1); + + let boardf1 = _mm512_and_si512(answer_color[pattern], board0); + let boardf2 = _mm512_and_si512(answer_empty[pattern], board1); + let boardf = _mm512_or_si512(boardf1, boardf2); + + let temp_mask = _mm512_mask_cmpeq_epi16_mask(answer_mask[i], answer, boardf); + count_match += _popcnt32(temp_mask as i32); + } + } + } + + #[rustfmt::skip] + let answer_color: [__m512i; 2] = [_mm512_set1_epi16( (1<<14)| (1<<12)|(1<<11) ), + _mm512_set1_epi16( (1<<14)|(1<<13) |(1<<11) )]; + #[rustfmt::skip] + let answer_empty: [__m512i; 2] = [_mm512_set1_epi16( (1<<15)| (1<<13)| (1<<10) ), + _mm512_set1_epi16( (1<<15)| (1<<12)| (1<<10) )]; + #[rustfmt::skip] + let answer: __m512i = _mm512_set1_epi16( (1<<15)|(1<<14)|(1<<13)|(1<<12)|(1<<11)|(1<<10) ); + + #[rustfmt::skip] + let answer_mask: [__mmask32; 10] = [0b01_11_11_11_11_11_11_11_11_11_11_11_11_11_11_10, + 0b01_11_11_11_11_11_11_11_11_11_11_11_11_11_10_10, + 0b01_11_11_11_11_11_11_11_11_11_11_11_11_10_10_10, + 0b01_11_11_11_11_11_11_11_11_11_11_11_10_10_10_10, + 0b01_11_11_11_11_11_11_11_11_11_11_10_10_10_10_10, + 0b00_11_11_11_11_11_11_11_11_11_10_10_10_10_10_10, + 0b00_10_11_11_11_11_11_11_11_10_10_10_10_10_11_10, + 0b00_10_10_11_11_11_11_11_10_10_10_10_10_11_11_10, + 0b00_10_10_10_11_11_11_10_10_10_10_10_11_11_11_10, + 0b00_10_10_10_10_11_10_10_10_10_10_11_11_11_11_10]; + for pattern in 0..2 { + for dir in 0..2 { + let mut board0 = board0org[dir]; + let mut board1 = board1org[dir]; + + let boardf1 = _mm512_and_si512(answer_color[pattern], board0); + let boardf2 = _mm512_and_si512(answer_empty[pattern], board1); + let boardf = _mm512_or_si512(boardf1, boardf2); + + let temp_mask = _mm512_mask_cmpeq_epi16_mask(answer_mask[0], answer, boardf); + count_match += _popcnt32(temp_mask as i32); + + for i in 1..10 { + board0 = _mm512_slli_epi32(board0, 1); + board1 = _mm512_slli_epi32(board1, 1); + + let boardf1 = _mm512_and_si512(answer_color[pattern], board0); + let boardf2 = _mm512_and_si512(answer_empty[pattern], board1); + let boardf = _mm512_or_si512(boardf1, boardf2); + + let temp_mask = _mm512_mask_cmpeq_epi16_mask(answer_mask[i], answer, boardf); + count_match += _popcnt32(temp_mask as i32); + } + } + } + + count_match +} + +#[cfg(any(target_arch = "x86", target_arch = "x86_64"))] +fn check_x86_avx512_features() -> bool { + is_x86_feature_detected!("avx512bw") && is_x86_feature_detected!("popcnt") +} + +fn main() { + #[cfg(any(target_arch = "x86", target_arch = "x86_64"))] + { + if check_x86_avx512_features() { + println!("\n\nThe program is running with avx512f and avx512bw intrinsics\n\n"); + } else { + println!("\n\nThe program is running with NO intrinsics.\n\n"); + } + } + + #[cfg(not(any(target_arch = "x86", target_arch = "x86_64")))] + { + println!("\n\nThe program is running with NO intrinsics.\n\n"); + } + + loop { + let start = Instant::now(); + + println!("Hello, this is Connect5 (Outer-Open Gomoku)!"); + println!("Self-playing with search depth = 4"); + + let test_state: [Color; SQUARE_SIZE as usize] = [Color::Empty; SQUARE_SIZE as usize]; + let test_bitboard: [[[i32; 16]; 2]; 3] = [[[0; 16]; 2]; 3]; + + let mut test1 = Pos { + state: test_state, + p_turn: Color::Black, + bitboard: test_bitboard, + }; + + test1.init(); + + let mut count: i32 = 0; + + for i in 0..(FILE_SIZE * RANK_SIZE) { + let mut next_move: Move = square_make(1, 7); // set the first move is (1,7) + + if i > 0 { + next_move = search(&test1, -EVAL_INF, EVAL_INF, 4, 0); + } // search depth = 4 + + test1.do_move(next_move); + pos_disp(&test1); + + if pos_is_end(&test1) { + println!("Game over!!!!!! at Move {i}"); + count = i + 1; + break; + } + } + + let duration = start.elapsed(); + + println!( + "Average time for each move is: {:?}", + duration / count as u32 + ); + } +} diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/stdarch/examples/gaussian.rs b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/stdarch/examples/gaussian.rs new file mode 100644 index 0000000000000000000000000000000000000000..dea16f797aca6f138010bf0441a3d127f37ebf02 --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/stdarch/examples/gaussian.rs @@ -0,0 +1,351 @@ +//! Hexagon HVX Gaussian 3x3 blur example +//! +//! This example demonstrates the use of Hexagon HVX intrinsics to implement +//! a 3x3 Gaussian blur filter on unsigned 8-bit images. +//! +//! The 3x3 Gaussian kernel is: +//! 1 2 1 +//! 2 4 2 / 16 +//! 1 2 1 +//! +//! This is a separable filter: `[1 2 1]^T * [1 2 1] / 16`. +//! +//! On Hexagon targets, this implementation uses `HvxVectorPair` for widening +//! arithmetic to achieve full precision in the Gaussian computation, avoiding +//! the approximation errors of byte-averaging approaches. On other targets, +//! it runs a reference implementation in pure Rust. +//! +//! # Building and Running (Hexagon) +//! +//! To build (requires Hexagon toolchain): +//! +//! RUSTFLAGS="-C target-feature=+hvxv62,+hvx-length128b \ +//! -C linker=hexagon-unknown-linux-musl-clang" \ +//! cargo +nightly build -p stdarch_examples --bin gaussian \ +//! --target hexagon-unknown-linux-musl \ +//! -Zbuild-std -Zbuild-std-features=llvm-libunwind +//! +//! To run under QEMU: +//! +//! qemu-hexagon -L /target/hexagon-unknown-linux-musl \ +//! target/hexagon-unknown-linux-musl/debug/gaussian +//! +//! # Building and Running (Other targets) +//! +//! cargo +nightly run -p stdarch_examples --bin gaussian + +#![cfg_attr(target_arch = "hexagon", feature(stdarch_hexagon))] +#![cfg_attr(target_arch = "hexagon", feature(hexagon_target_feature))] +#![allow( + unsafe_op_in_unsafe_fn, + clippy::unwrap_used, + clippy::print_stdout, + clippy::missing_docs_in_private_items, + clippy::cast_possible_wrap, + clippy::cast_ptr_alignment +)] + +/// Image width - must be multiple of HVX vector length on Hexagon +const WIDTH: usize = 256; +const HEIGHT: usize = 16; + +// ============================================================================ +// Hexagon HVX implementation +// ============================================================================ + +#[cfg(target_arch = "hexagon")] +mod hvx { + #[cfg(not(target_feature = "hvx-length128b"))] + use core_arch::arch::hexagon::v64::*; + #[cfg(target_feature = "hvx-length128b")] + use core_arch::arch::hexagon::v128::*; + + /// Vector length in bytes for HVX 128-byte mode + #[cfg(target_feature = "hvx-length128b")] + const VLEN: usize = 128; + + /// Vector length in bytes for HVX 64-byte mode + #[cfg(not(target_feature = "hvx-length128b"))] + const VLEN: usize = 64; + + /// Vertical 1-2-1 filter pass using HvxVectorPair widening arithmetic + /// + /// Computes: dst[x] = (row_above[x] + 2*center[x] + row_below[x] + 2) >> 2 + /// + /// Uses HvxVectorPair to widen u8 to u16 for precise arithmetic, avoiding + /// the rounding errors of byte-averaging approximations. + /// + /// # Safety + /// + /// - `src` must point to the center row with valid data at -stride and +stride + /// - `dst` must point to a valid output buffer for `width` bytes + /// - `width` must be a multiple of VLEN + /// - All pointers must be HVX-aligned (128-byte for 128B mode) + #[target_feature(enable = "hvxv62")] + unsafe fn vertical_121_pass(src: *const u8, stride: isize, width: usize, dst: *mut u8) { + let inp0 = src.offset(-stride) as *const HvxVector; + let inp1 = src as *const HvxVector; + let inp2 = src.offset(stride) as *const HvxVector; + let outp = dst as *mut HvxVector; + + let n_chunks = width / VLEN; + for i in 0..n_chunks { + let above = *inp0.add(i); + let center = *inp1.add(i); + let below = *inp2.add(i); + + // Widen above + below to 16-bit using HvxVectorPair + // q6_wh_vadd_vubvub: adds two u8 vectors, producing u16 results in a pair + let above_plus_below: HvxVectorPair = q6_wh_vadd_vubvub(above, below); + + // Widen center * 2 (add center to itself) + let center_x2: HvxVectorPair = q6_wh_vadd_vubvub(center, center); + + // Add them: (above + below) + (center * 2) = above + 2*center + below + let sum: HvxVectorPair = q6_wh_vadd_whwh(above_plus_below, center_x2); + + // Extract high and low vectors from the pair (each contains u16 values) + let sum_lo = q6_v_lo_w(sum); // Lower 64 elements as i16 + let sum_hi = q6_v_hi_w(sum); // Upper 64 elements as i16 + + // Arithmetic right shift by 2 (divide by 4) with rounding + // Add 2 for rounding before shift: (sum + 2) >> 2 + let two = q6_vh_vsplat_r(2); + let sum_lo_rounded = q6_vh_vadd_vhvh(sum_lo, two); + let sum_hi_rounded = q6_vh_vadd_vhvh(sum_hi, two); + let shifted_lo = q6_vh_vasr_vhvh(sum_lo_rounded, two); + let shifted_hi = q6_vh_vasr_vhvh(sum_hi_rounded, two); + + // Pack back to u8 with saturation: takes hi and lo halfword vectors, + // saturates to u8, and interleaves them back to original order + let result = q6_vub_vsat_vhvh(shifted_hi, shifted_lo); + + *outp.add(i) = result; + } + } + + /// Horizontal 1-2-1 filter pass using HvxVectorPair widening arithmetic + /// + /// Computes: dst[x] = (src[x-1] + 2*src[x] + src[x+1] + 2) >> 2 + /// + /// Uses `valign` and `vlalign` to shift vectors by 1 byte for neighbor access, + /// then HvxVectorPair for precise widening arithmetic. + /// + /// # Safety + /// + /// - `src` and `dst` must point to valid buffers of `width` bytes + /// - `width` must be a multiple of VLEN + /// - All pointers must be HVX-aligned + #[target_feature(enable = "hvxv62")] + unsafe fn horizontal_121_pass(src: *const u8, width: usize, dst: *mut u8) { + let inp = src as *const HvxVector; + let outp = dst as *mut HvxVector; + + let n_chunks = width / VLEN; + let mut prev = q6_v_vzero(); + + for i in 0..n_chunks { + let curr = *inp.add(i); + let next = if i + 1 < n_chunks { + *inp.add(i + 1) + } else { + q6_v_vzero() + }; + + // Left neighbor (x-1): shift curr right by 1 byte, filling from prev + let left = q6_v_vlalign_vvr(curr, prev, 1); + + // Right neighbor (x+1): shift curr left by 1 byte, filling from next + let right = q6_v_valign_vvr(next, curr, 1); + + // Widen left + right to 16-bit + let left_plus_right: HvxVectorPair = q6_wh_vadd_vubvub(left, right); + + // Widen center * 2 + let center_x2: HvxVectorPair = q6_wh_vadd_vubvub(curr, curr); + + // Add: left + 2*center + right + let sum: HvxVectorPair = q6_wh_vadd_whwh(left_plus_right, center_x2); + + // Extract high and low vectors + let sum_lo = q6_v_lo_w(sum); + let sum_hi = q6_v_hi_w(sum); + + // Arithmetic right shift by 2 with rounding + let two = q6_vh_vsplat_r(2); + let sum_lo_rounded = q6_vh_vadd_vhvh(sum_lo, two); + let sum_hi_rounded = q6_vh_vadd_vhvh(sum_hi, two); + let shifted_lo = q6_vh_vasr_vhvh(sum_lo_rounded, two); + let shifted_hi = q6_vh_vasr_vhvh(sum_hi_rounded, two); + + // Pack back to u8 with saturation + let result = q6_vub_vsat_vhvh(shifted_hi, shifted_lo); + + *outp.add(i) = result; + + prev = curr; + } + } + + /// Apply Gaussian 3x3 blur to an entire image using separable filtering + /// + /// Two-pass approach: + /// 1. Vertical pass: apply 1-2-1 filter across rows + /// 2. Horizontal pass: apply 1-2-1 filter across columns + /// + /// Combined effect: 3x3 Gaussian kernel [1 2 1; 2 4 2; 1 2 1] / 16 + /// + /// # Safety + /// + /// - `src` and `dst` must point to valid image buffers of `stride * height` bytes + /// - `tmp` must point to a valid temporary buffer of `width` bytes, HVX-aligned + /// - `width` must be a multiple of VLEN and >= VLEN + /// - `stride` must be >= `width` + /// - All buffers must be HVX-aligned (128-byte for 128B mode) + #[target_feature(enable = "hvxv62")] + pub unsafe fn gaussian3x3u8( + src: *const u8, + stride: usize, + width: usize, + height: usize, + dst: *mut u8, + tmp: *mut u8, + ) { + let stride_i = stride as isize; + + // Process interior rows (skip first and last which lack vertical neighbors) + for y in 1..height - 1 { + let row_src = src.offset(y as isize * stride_i); + let row_dst = dst.offset(y as isize * stride_i); + + // Pass 1: vertical 1-2-1 into tmp + vertical_121_pass(row_src, stride_i, width, tmp); + + // Pass 2: horizontal 1-2-1 from tmp into dst + horizontal_121_pass(tmp, width, row_dst); + } + } +} + +// ============================================================================ +// Reference implementation (works on all targets) +// ============================================================================ + +/// Reference implementation of Gaussian 3x3 blur +/// +/// Kernel: +/// 1 2 1 +/// 2 4 2 / 16 +/// 1 2 1 +fn gaussian3x3u8_reference(src: &[u8], stride: usize, width: usize, height: usize, dst: &mut [u8]) { + for y in 1..height - 1 { + for x in 1..width - 1 { + // Compute column sums (vertical 1-2-1 weights) + let mut col = [0u32; 3]; + for i in 0..3 { + col[i] = 1 * src[(y - 1) * stride + x - 1 + i] as u32 + + 2 * src[y * stride + x - 1 + i] as u32 + + 1 * src[(y + 1) * stride + x - 1 + i] as u32; + } + // Apply horizontal 1-2-1 weights and normalize + // (1*col[0] + 2*col[1] + 1*col[2] + 8) / 16 + dst[y * stride + x] = ((1 * col[0] + 2 * col[1] + 1 * col[2] + 8) >> 4) as u8; + } + } +} + +/// Generate deterministic test pattern +fn generate_test_pattern(buf: &mut [u8], width: usize, height: usize) { + for y in 0..height { + for x in 0..width { + buf[y * width + x] = ((x + y * 7) % 256) as u8; + } + } +} + +// ============================================================================ +// Main: runs HVX + reference on Hexagon, reference-only on other targets +// ============================================================================ + +#[cfg(target_arch = "hexagon")] +fn main() { + // Aligned buffers for HVX + #[repr(align(128))] + struct AlignedBuf([u8; N]); + + let mut src = AlignedBuf::<{ WIDTH * HEIGHT }>([0u8; WIDTH * HEIGHT]); + let mut dst_hvx = AlignedBuf::<{ WIDTH * HEIGHT }>([0u8; WIDTH * HEIGHT]); + let mut tmp = AlignedBuf::<{ WIDTH }>([0u8; WIDTH]); + let mut dst_ref = vec![0u8; WIDTH * HEIGHT]; + + // Generate test pattern + generate_test_pattern(&mut src.0, WIDTH, HEIGHT); + + // Run HVX implementation + unsafe { + hvx::gaussian3x3u8( + src.0.as_ptr(), + WIDTH, + WIDTH, + HEIGHT, + dst_hvx.0.as_mut_ptr(), + tmp.0.as_mut_ptr(), + ); + } + + // Run reference + gaussian3x3u8_reference(&src.0, WIDTH, WIDTH, HEIGHT, &mut dst_ref); + + // Verify HVX matches reference (allowing small rounding differences) + let mut max_diff = 0i32; + for y in 1..HEIGHT - 1 { + for x in 1..WIDTH - 1 { + let idx = y * WIDTH + x; + let diff = (dst_hvx.0[idx] as i32 - dst_ref[idx] as i32).abs(); + max_diff = max_diff.max(diff); + // Allow up to 1 LSB difference due to rounding + assert!( + diff <= 1, + "HVX differs from reference at ({}, {}): hvx={}, ref={}, diff={}", + x, + y, + dst_hvx.0[idx], + dst_ref[idx], + diff + ); + } + } + + println!( + "Gaussian 3x3 HVX test passed! Max difference from reference: {}", + max_diff + ); +} + +#[cfg(not(target_arch = "hexagon"))] +fn main() { + let mut src = vec![0u8; WIDTH * HEIGHT]; + let mut dst = vec![0u8; WIDTH * HEIGHT]; + + // Generate test pattern + generate_test_pattern(&mut src, WIDTH, HEIGHT); + + // Run reference implementation + gaussian3x3u8_reference(&src, WIDTH, WIDTH, HEIGHT, &mut dst); + + // Verify output is non-trivial (blurred values differ from input) + let mut changed = 0; + for y in 1..HEIGHT - 1 { + for x in 1..WIDTH - 1 { + let idx = y * WIDTH + x; + if src[idx] != dst[idx] { + changed += 1; + } + } + } + + println!( + "Gaussian 3x3 reference test passed! {} pixels changed by blur", + changed + ); +} diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/stdarch/examples/hex.rs b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/stdarch/examples/hex.rs new file mode 100644 index 0000000000000000000000000000000000000000..621f55bc0951f52434680383cc94ea647a3b0223 --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/stdarch/examples/hex.rs @@ -0,0 +1,423 @@ +//! An example showing runtime dispatch to an architecture-optimized +//! implementation. +//! +//! This program implements hex encoding a slice into a predetermined +//! destination using various different instruction sets. This selects at +//! runtime the most optimized implementation and uses that rather than being +//! required to be compiled differently. +//! +//! You can test out this program via: +//! +//! echo test | cargo +nightly run --release hex +//! +//! and you should see `746573740a` get printed out. + +#![allow(internal_features)] +#![feature(wasm_target_feature)] +#![cfg_attr(test, feature(test))] +#![cfg_attr( + any(target_arch = "x86", target_arch = "x86_64"), + feature(stdarch_internal) +)] +#![allow( + clippy::unwrap_used, + clippy::print_stdout, + clippy::shadow_reuse, + clippy::cast_possible_wrap, + clippy::cast_ptr_alignment, + clippy::cast_sign_loss, + clippy::missing_docs_in_private_items +)] + +use std::{ + io::{self, Read}, + str, +}; + +#[cfg(target_arch = "x86")] +use core_arch::arch::x86::*; +#[cfg(target_arch = "x86_64")] +use core_arch::arch::x86_64::*; +#[cfg(target_arch = "x86")] +use std::is_x86_feature_detected; +#[cfg(target_arch = "x86_64")] +use std::is_x86_feature_detected; + +fn main() { + let mut input = Vec::new(); + io::stdin().read_to_end(&mut input).unwrap(); + let mut dst = vec![0; 2 * input.len()]; + let s = hex_encode(&input, &mut dst).unwrap(); + println!("{s}"); +} + +fn hex_encode<'a>(src: &[u8], dst: &'a mut [u8]) -> Result<&'a str, usize> { + let len = src.len().checked_mul(2).unwrap(); + if dst.len() < len { + return Err(len); + } + + #[cfg(any(target_arch = "x86", target_arch = "x86_64"))] + { + if is_x86_feature_detected!("avx2") { + return unsafe { hex_encode_avx2(src, dst) }; + } + if is_x86_feature_detected!("sse4.1") { + return unsafe { hex_encode_sse41(src, dst) }; + } + } + #[cfg(target_arch = "wasm32")] + { + if true { + return hex_encode_simd128(src, dst); + } + } + + hex_encode_fallback(src, dst) +} + +#[target_feature(enable = "avx2")] +#[cfg(any(target_arch = "x86", target_arch = "x86_64"))] +fn hex_encode_avx2<'a>(mut src: &[u8], dst: &'a mut [u8]) -> Result<&'a str, usize> { + assert!(dst.len() >= src.len().checked_mul(2).unwrap()); + + let ascii_zero = _mm256_set1_epi8(b'0' as i8); + let nines = _mm256_set1_epi8(9); + let ascii_a = _mm256_set1_epi8((b'a' - 9 - 1) as i8); + let and4bits = _mm256_set1_epi8(0xf); + + let mut i = 0_usize; + while src.len() >= 32 { + // SAFETY: the loop condition ensures that we have at least 32 bytes + let invec = unsafe { _mm256_loadu_si256(src.as_ptr() as *const _) }; + + let masked1 = _mm256_and_si256(invec, and4bits); + let masked2 = _mm256_and_si256(_mm256_srli_epi64(invec, 4), and4bits); + + // return 0xff corresponding to the elements > 9, or 0x00 otherwise + let cmpmask1 = _mm256_cmpgt_epi8(masked1, nines); + let cmpmask2 = _mm256_cmpgt_epi8(masked2, nines); + + // add '0' or the offset depending on the masks + let masked1 = _mm256_add_epi8(masked1, _mm256_blendv_epi8(ascii_zero, ascii_a, cmpmask1)); + let masked2 = _mm256_add_epi8(masked2, _mm256_blendv_epi8(ascii_zero, ascii_a, cmpmask2)); + + // interleave masked1 and masked2 bytes + let res1 = _mm256_unpacklo_epi8(masked2, masked1); + let res2 = _mm256_unpackhi_epi8(masked2, masked1); + + // Store everything into the right destination now + unsafe { + // SAFETY: the assertion at the beginning of the function ensures + // that `dst` is large enough. + let base = dst.as_mut_ptr().add(i * 2); + let base1 = base.add(0) as *mut _; + let base2 = base.add(16) as *mut _; + let base3 = base.add(32) as *mut _; + let base4 = base.add(48) as *mut _; + _mm256_storeu2_m128i(base3, base1, res1); + _mm256_storeu2_m128i(base4, base2, res2); + } + + src = &src[32..]; + i += 32; + } + + let _ = hex_encode_sse41(src, &mut dst[i * 2..]); + + // SAFETY: `dst` only contains ASCII characters + unsafe { Ok(str::from_utf8_unchecked(&dst[..src.len() * 2 + i * 2])) } +} + +// copied from https://github.com/Matherunner/bin2hex-sse/blob/master/base16_sse4.cpp +#[target_feature(enable = "sse4.1")] +#[cfg(any(target_arch = "x86", target_arch = "x86_64"))] +fn hex_encode_sse41<'a>(mut src: &[u8], dst: &'a mut [u8]) -> Result<&'a str, usize> { + assert!(dst.len() >= src.len().checked_mul(2).unwrap()); + + let ascii_zero = _mm_set1_epi8(b'0' as i8); + let nines = _mm_set1_epi8(9); + let ascii_a = _mm_set1_epi8((b'a' - 9 - 1) as i8); + let and4bits = _mm_set1_epi8(0xf); + + let mut i = 0_usize; + while src.len() >= 16 { + // SAFETY: the loop condition ensures that we have at least 16 bytes + let invec = unsafe { _mm_loadu_si128(src.as_ptr() as *const _) }; + + let masked1 = _mm_and_si128(invec, and4bits); + let masked2 = _mm_and_si128(_mm_srli_epi64(invec, 4), and4bits); + + // return 0xff corresponding to the elements > 9, or 0x00 otherwise + let cmpmask1 = _mm_cmpgt_epi8(masked1, nines); + let cmpmask2 = _mm_cmpgt_epi8(masked2, nines); + + // add '0' or the offset depending on the masks + let masked1 = _mm_add_epi8(masked1, _mm_blendv_epi8(ascii_zero, ascii_a, cmpmask1)); + let masked2 = _mm_add_epi8(masked2, _mm_blendv_epi8(ascii_zero, ascii_a, cmpmask2)); + + // interleave masked1 and masked2 bytes + let res1 = _mm_unpacklo_epi8(masked2, masked1); + let res2 = _mm_unpackhi_epi8(masked2, masked1); + + unsafe { + // SAFETY: the assertion at the beginning of the function ensures + // that `dst` is large enough. + _mm_storeu_si128(dst.as_mut_ptr().add(i * 2) as *mut _, res1); + _mm_storeu_si128(dst.as_mut_ptr().add(i * 2 + 16) as *mut _, res2); + } + src = &src[16..]; + i += 16; + } + + let _ = hex_encode_fallback(src, &mut dst[i * 2..]); + + // SAFETY: `dst` only contains ASCII characters + unsafe { Ok(str::from_utf8_unchecked(&dst[..src.len() * 2 + i * 2])) } +} + +#[cfg(target_arch = "wasm32")] +#[target_feature(enable = "simd128")] +fn hex_encode_simd128<'a>(mut src: &[u8], dst: &'a mut [u8]) -> Result<&'a str, usize> { + assert!(dst.len() >= src.len().checked_mul(2).unwrap()); + + use core_arch::arch::wasm32::*; + + let ascii_zero = u8x16_splat(b'0'); + let nines = u8x16_splat(9); + let ascii_a = u8x16_splat(b'a' - 9 - 1); + let and4bits = u8x16_splat(0xf); + + let mut i = 0_usize; + while src.len() >= 16 { + // SAFETY: the loop condition ensures that we have at least 16 bytes + let invec = unsafe { v128_load(src.as_ptr() as *const _) }; + + let masked1 = v128_and(invec, and4bits); + let masked2 = v128_and(u8x16_shr(invec, 4), and4bits); + + // return 0xff corresponding to the elements > 9, or 0x00 otherwise + let cmpmask1 = u8x16_gt(masked1, nines); + let cmpmask2 = u8x16_gt(masked2, nines); + + // add '0' or the offset depending on the masks + let masked1 = u8x16_add(masked1, v128_bitselect(ascii_a, ascii_zero, cmpmask1)); + let masked2 = u8x16_add(masked2, v128_bitselect(ascii_a, ascii_zero, cmpmask2)); + + // Next we need to shuffle around masked{1,2} to get back to the + // original source text order. The first element (res1) we'll store uses + // all the low bytes from the 2 masks and the second element (res2) uses + // all the upper bytes. + let res1 = u8x16_shuffle::<0, 16, 1, 17, 2, 18, 3, 19, 4, 20, 5, 21, 6, 22, 7, 23>( + masked2, masked1, + ); + let res2 = u8x16_shuffle::<8, 24, 9, 25, 10, 26, 11, 27, 12, 28, 13, 29, 14, 30, 15, 31>( + masked2, masked1, + ); + + unsafe { + // SAFETY: the assertion at the beginning of the function ensures + // that `dst` is large enough. + v128_store(dst.as_mut_ptr().add(i * 2) as *mut _, res1); + v128_store(dst.as_mut_ptr().add(i * 2 + 16) as *mut _, res2); + } + src = &src[16..]; + i += 16; + } + + let _ = hex_encode_fallback(src, &mut dst[i * 2..]); + + // SAFETY: `dst` only contains ASCII characters + unsafe { Ok(str::from_utf8_unchecked(&dst[..src.len() * 2 + i * 2])) } +} + +fn hex_encode_fallback<'a>(src: &[u8], dst: &'a mut [u8]) -> Result<&'a str, usize> { + fn hex(byte: u8) -> u8 { + static TABLE: &[u8] = b"0123456789abcdef"; + TABLE[byte as usize] + } + + for (byte, slots) in src.iter().zip(dst.chunks_mut(2)) { + slots[0] = hex((*byte >> 4) & 0xf); + slots[1] = hex(*byte & 0xf); + } + + unsafe { Ok(str::from_utf8_unchecked(&dst[..src.len() * 2])) } +} + +// Run these with `cargo +nightly test --example hex -p stdarch` +#[cfg(test)] +mod tests { + use super::*; + + fn test(input: &[u8], output: &str) { + let tmp = || vec![0; input.len() * 2]; + + assert_eq!(hex_encode_fallback(input, &mut tmp()).unwrap(), output); + assert_eq!(hex_encode(input, &mut tmp()).unwrap(), output); + + #[cfg(any(target_arch = "x86", target_arch = "x86_64"))] + unsafe { + if self::is_x86_feature_detected!("avx2") { + assert_eq!(hex_encode_avx2(input, &mut tmp()).unwrap(), output); + } + if self::is_x86_feature_detected!("sse4.1") { + assert_eq!(hex_encode_sse41(input, &mut tmp()).unwrap(), output); + } + } + } + + #[test] + fn empty() { + test(b"", ""); + } + + #[test] + fn big() { + test(&[0; 1024], &"0".repeat(2048)); + } + + #[test] + fn odd() { + test(&[0; 313], &"0".repeat(313 * 2)); + } + + #[test] + fn avx_works() { + let mut input = [0; 33]; + input[4] = 3; + input[16] = 3; + input[17] = 0x30; + input[21] = 1; + input[31] = 0x24; + test( + &input, + "\ + 0000000003000000\ + 0000000000000000\ + 0330000000010000\ + 0000000000000024\ + 00\ + ", + ); + } + + quickcheck::quickcheck! { + fn encode_equals_fallback(input: Vec) -> bool { + let mut space1 = vec![0; input.len() * 2]; + let mut space2 = vec![0; input.len() * 2]; + let a = hex_encode(&input, &mut space1).unwrap(); + let b = hex_encode_fallback(&input, &mut space2).unwrap(); + a == b + } + + #[cfg(any(target_arch = "x86", target_arch = "x86_64"))] + fn avx_equals_fallback(input: Vec) -> bool { + if !self::is_x86_feature_detected!("avx2") { + return true + } + let mut space1 = vec![0; input.len() * 2]; + let mut space2 = vec![0; input.len() * 2]; + let a = unsafe { hex_encode_avx2(&input, &mut space1).unwrap() }; + let b = hex_encode_fallback(&input, &mut space2).unwrap(); + a == b + } + + #[cfg(any(target_arch = "x86", target_arch = "x86_64"))] + fn sse41_equals_fallback(input: Vec) -> bool { + if !self::is_x86_feature_detected!("avx2") { + return true + } + let mut space1 = vec![0; input.len() * 2]; + let mut space2 = vec![0; input.len() * 2]; + let a = unsafe { hex_encode_sse41(&input, &mut space1).unwrap() }; + let b = hex_encode_fallback(&input, &mut space2).unwrap(); + a == b + } + } +} + +// Run these with `cargo +nightly bench --example hex -p stdarch` +#[cfg(test)] +mod benches { + extern crate rand; + extern crate test; + + use self::rand::Rng; + + use super::*; + + const SMALL_LEN: usize = 117; + const LARGE_LEN: usize = 1 * 1024 * 1024; + + fn doit( + b: &mut test::Bencher, + len: usize, + f: for<'a> unsafe fn(&[u8], &'a mut [u8]) -> Result<&'a str, usize>, + ) { + let mut rng = rand::thread_rng(); + let input = std::iter::repeat(()) + .map(|()| rng.r#gen::()) + .take(len) + .collect::>(); + let mut dst = vec![0; input.len() * 2]; + b.bytes = len as u64; + b.iter(|| unsafe { + f(&input, &mut dst).unwrap(); + dst[0] + }); + } + + #[bench] + fn small_default(b: &mut test::Bencher) { + doit(b, SMALL_LEN, hex_encode); + } + + #[bench] + fn small_fallback(b: &mut test::Bencher) { + doit(b, SMALL_LEN, hex_encode_fallback); + } + + #[bench] + fn large_default(b: &mut test::Bencher) { + doit(b, LARGE_LEN, hex_encode); + } + + #[bench] + fn large_fallback(b: &mut test::Bencher) { + doit(b, LARGE_LEN, hex_encode_fallback); + } + + #[cfg(any(target_arch = "x86", target_arch = "x86_64"))] + mod x86 { + use super::*; + + #[bench] + fn small_avx2(b: &mut test::Bencher) { + if self::is_x86_feature_detected!("avx2") { + doit(b, SMALL_LEN, hex_encode_avx2); + } + } + + #[bench] + fn small_sse41(b: &mut test::Bencher) { + if self::is_x86_feature_detected!("sse4.1") { + doit(b, SMALL_LEN, hex_encode_sse41); + } + } + + #[bench] + fn large_avx2(b: &mut test::Bencher) { + if self::is_x86_feature_detected!("avx2") { + doit(b, LARGE_LEN, hex_encode_avx2); + } + } + + #[bench] + fn large_sse41(b: &mut test::Bencher) { + if self::is_x86_feature_detected!("sse4.1") { + doit(b, LARGE_LEN, hex_encode_sse41); + } + } + } +} diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/stdarch/examples/wasm.rs b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/stdarch/examples/wasm.rs new file mode 100644 index 0000000000000000000000000000000000000000..ed313b15d1e345418fa8c027636058710d85cd25 --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/stdarch/examples/wasm.rs @@ -0,0 +1,48 @@ +//! A simple slab allocator for pages in wasm + +#![cfg(target_arch = "wasm32")] + +use std::ptr; + +use core_arch::arch::wasm32::*; + +static mut HEAD: *mut *mut u8 = 0 as _; + +#[unsafe(no_mangle)] +pub unsafe extern "C" fn page_alloc() -> *mut u8 { + unsafe { + if !HEAD.is_null() { + let next = *HEAD; + let ret = HEAD; + HEAD = next as *mut _; + return ret as *mut u8; + } + } + + let ret = memory_grow(0, 1); + + // if we failed to allocate a page then return null + if ret == usize::MAX { + return ptr::null_mut(); + } + + ((ret as u32) * page_size()) as *mut u8 +} + +#[unsafe(no_mangle)] +pub unsafe extern "C" fn page_free(page: *mut u8) { + let page = page as *mut *mut u8; + unsafe { + *page = HEAD as *mut u8; + HEAD = page; + } +} + +#[unsafe(no_mangle)] +pub unsafe extern "C" fn memory_used() -> usize { + (page_size() * (memory_size(0) as u32)) as usize +} + +fn page_size() -> u32 { + 64 * 1024 +} diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/stdarch/intrinsics_data/arm_intrinsics.json b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/stdarch/intrinsics_data/arm_intrinsics.json new file mode 100644 index 0000000000000000000000000000000000000000..bce85d19a10f1e7dc42cc332c0fccb2c42d62335 --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/stdarch/intrinsics_data/arm_intrinsics.json @@ -0,0 +1,121063 @@ +[ + { + "SIMD_ISA": "Neon", + "name": "__crc32b", + "arguments": [ + "uint32_t a", + "uint8_t b" + ], + "return_type": { + "value": "uint32_t" + }, + "Arguments_Preparation": { + "a": { + "register": "Wn" + }, + "b": { + "register": "Wm" + } + }, + "Architectures": [ + "A32", + "A64" + ], + "instructions": [ + [ + "CRC32B" + ] + ] + }, + { + "SIMD_ISA": "Neon", + "name": "__crc32cb", + "arguments": [ + "uint32_t a", + "uint8_t b" + ], + "return_type": { + 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"register": "Vm" + }, + "index": { + "minimum": 0, + "maximum": 1 + }, + "r": { + "register": "Vd.8H" + } + }, + "Architectures": [ + "A64" + ], + "instructions": [ + [ + "LUTI4" + ] + ] + }, + { + "SIMD_ISA": "Neon", + "name": "vluti4q_laneq_p16_x2", + "arguments": [ + "poly16x8x2_t vn", + "uint8x16_t vm", + "const int index" + ], + "return_type": { + "value": "poly16x8_t" + }, + "Arguments_Preparation": { + "vn": { + "register": "Vn1.8H" + }, + "vm": { + "register": "Vm" + }, + "index": { + "minimum": 0, + "maximum": 3 + }, + "r": { + "register": "Vd.8H" + } + }, + "Architectures": [ + "A64" + ], + "instructions": [ + [ + "LUTI4" + ] + ] + }, + { + "SIMD_ISA": "Neon", + "name": "__jcvt", + "arguments": [ + "float64_t a" + ], + "return_type": { + "value": "int32_t" + }, + "Arguments_Preparation": { + "a": { + "register": "Dn" + } + }, + "Architectures": [ + "A64" + ], + "instructions": [ + [ + "FJCVTZS" + ] + ] + } +] diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/stdarch/intrinsics_data/x86-intel.xml b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/stdarch/intrinsics_data/x86-intel.xml new file mode 100644 index 0000000000000000000000000000000000000000..41f2119e681f9a3e38b08ca806bbebd5eb35f665 --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/stdarch/intrinsics_data/x86-intel.xml @@ -0,0 +1,158422 @@ + + + + + + + + Add unsigned 32-bit integers "a" and "b" with unsigned 8-bit carry-in "c_in" (carry or overflow flag), and store the unsigned 32-bit result in "out", and the carry-out in "dst" (carry or overflow flag). + +tmp[32:0] := a[31:0] + b[31:0] + (c_in > 0 ? 1 : 0) +MEM[out+31:out] := tmp[31:0] +dst[0] := tmp[32] +dst[7:1] := 0 + + + + ADX +
immintrin.h
+ Arithmetic +
+ + + + + + + Add unsigned 64-bit integers "a" and "b" with unsigned 8-bit carry-in "c_in" (carry or overflow flag), and store the unsigned 64-bit result in "out", and the carry-out in "dst" (carry or overflow flag). + +tmp[64:0] := a[63:0] + b[63:0] + (c_in > 0 ? 1 : 0) +MEM[out+63:out] := tmp[63:0] +dst[0] := tmp[64] +dst[7:1] := 0 + + + + ADX +
immintrin.h
+ Arithmetic +
+ + + + + Perform one round of an AES encryption flow on data (state) in "a" using the round key in "RoundKey", and store the result in "dst"." + a[127:0] := ShiftRows(a[127:0]) +a[127:0] := SubBytes(a[127:0]) +a[127:0] := MixColumns(a[127:0]) +dst[127:0] := a[127:0] XOR RoundKey[127:0] + + + AES +
wmmintrin.h
+ Cryptography +
+ + + + + Perform the last round of an AES encryption flow on data (state) in "a" using the round key in "RoundKey", and store the result in "dst"." + a[127:0] := ShiftRows(a[127:0]) +a[127:0] := SubBytes(a[127:0]) +dst[127:0] := a[127:0] XOR RoundKey[127:0] + + + AES +
wmmintrin.h
+ Cryptography +
+ + + + + Perform one round of an AES decryption flow on data (state) in "a" using the round key in "RoundKey", and store the result in "dst". + a[127:0] := InvShiftRows(a[127:0]) +a[127:0] := InvSubBytes(a[127:0]) +a[127:0] := InvMixColumns(a[127:0]) +dst[127:0] := a[127:0] XOR RoundKey[127:0] + + + AES +
wmmintrin.h
+ Cryptography +
+ + + + + Perform the last round of an AES decryption flow on data (state) in "a" using the round key in "RoundKey", and store the result in "dst". + a[127:0] := InvShiftRows(a[127:0]) +a[127:0] := InvSubBytes(a[127:0]) +dst[127:0] := a[127:0] XOR RoundKey[127:0] + + + AES +
wmmintrin.h
+ Cryptography +
+ + + + Perform the InvMixColumns transformation on "a" and store the result in "dst". + dst[127:0] := InvMixColumns(a[127:0]) + + + AES +
wmmintrin.h
+ Cryptography +
+ + + + + Assist in expanding the AES cipher key by computing steps towards generating a round key for encryption cipher using data from "a" and an 8-bit round constant specified in "imm8", and store the result in "dst"." + X3[31:0] := a[127:96] +X2[31:0] := a[95:64] +X1[31:0] := a[63:32] +X0[31:0] := a[31:0] +RCON[31:0] := ZeroExtend32(imm8[7:0]) +dst[31:0] := SubWord(X1) +dst[63:32] := RotWord(SubWord(X1)) XOR RCON +dst[95:64] := SubWord(X3) +dst[127:96] := RotWord(SubWord(X3)) XOR RCON + + + AES +
wmmintrin.h
+ Cryptography +
+ + + + + + + + Compute dot-product of BF16 (16-bit) floating-point pairs in tiles "a" and "b", accumulating the intermediate single-precision (32-bit) floating-point elements with elements in "dst", and store the 32-bit result back to tile "dst". + FOR m := 0 TO dst.rows - 1 + tmp := dst.row[m] + FOR k := 0 TO (a.colsb / 4) - 1 + FOR n := 0 TO (dst.colsb / 4) - 1 + tmp.fp32[n] += FP32(a.row[m].bf16[2*k+0]) * FP32(b.row[k].bf16[2*n+0]) + tmp.fp32[n] += FP32(a.row[m].bf16[2*k+1]) * FP32(b.row[k].bf16[2*n+1]) + ENDFOR + ENDFOR + write_row_and_zero(dst, m, tmp, dst.colsb) +ENDFOR +zero_upper_rows(dst, dst.rows) +zero_tileconfig_start() + + + AMX-BF16 +
immintrin.h
+ Application-Targeted +
+ + + Compute dot-product of BF16 (16-bit) floating-point pairs in tiles "src0" and "src1", accumulating the intermediate single-precision (32-bit) floating-point elements with elements in "dst", and store the 32-bit result back to tile "dst". The shape of tile is specified in the struct of __tile1024i. The register of the tile is allocated by compiler. + + FOR m := 0 TO dst.rows - 1 + tmp := dst.row[m] + FOR k := 0 TO (src0.colsb / 4) - 1 + FOR n := 0 TO (dst.colsb / 4) - 1 + tmp.fp32[n] += FP32(src0.row[m].bf16[2*k+0]) * FP32(src1.row[k].bf16[2*n+0]) + tmp.fp32[n] += FP32(src0.row[m].bf16[2*k+1]) * FP32(src1.row[k].bf16[2*n+1]) + ENDFOR + ENDFOR + write_row_and_zero(dst, m, tmp, dst.colsb) +ENDFOR +zero_upper_rows(dst, dst.rows) +zero_tileconfig_start() + + + + + AMX-BF16 +
immintrin.h
+ Application-Targeted +
+ + + + + + + Perform matrix multiplication of two tiles containing complex elements and accumulate the results into a packed single precision tile. Each dword element in input tiles "a" and "b" is interpreted as a complex number with FP16 real part and FP16 imaginary part. Calculates the imaginary part of the result. For each possible combination of (row of "a", column of "b"), it performs a set of multiplication and accumulations on all corresponding complex numbers (one from "a" and one from "b"). The imaginary part of the "a" element is multiplied with the real part of the corresponding "b" element, and the real part of the "a" element is multiplied with the imaginary part of the corresponding "b" elements. The two accumulated results are added, and then accumulated into the corresponding row and column of "dst". + FOR m := 0 TO dst.rows - 1 + tmp := dst.row[m] + FOR k := 0 TO (a.colsb / 4) - 1 + FOR n := 0 TO (dst.colsb / 4) - 1 + tmp.fp32[n] += FP32(a.row[m].fp16[2*k+0]) * FP32(b.row[k].fp16[2*n+1]) + tmp.fp32[n] += FP32(a.row[m].fp16[2*k+1]) * FP32(b.row[k].fp16[2*n+0]) + ENDFOR + ENDFOR + write_row_and_zero(dst, m, tmp, dst.colsb) +ENDFOR +zero_upper_rows(dst, dst.rows) +zero_tileconfig_start() + + + AMX-COMPLEX +
immintrin.h
+ Application-Targeted +
+ + + + + + Perform matrix multiplication of two tiles containing complex elements and accumulate the results into a packed single precision tile. Each dword element in input tiles "a" and "b" is interpreted as a complex number with FP16 real part and FP16 imaginary part. Calculates the real part of the result. For each possible combination of (row of "a", column of "b"), it performs a set of multiplication and accumulations on all corresponding complex numbers (one from "a" and one from "b"). The real part of the "a" element is multiplied with the real part of the corresponding "b" element, and the negated imaginary part of the "a" element is multiplied with the imaginary part of the corresponding "b" elements. The two accumulated results are added, and then accumulated into the corresponding row and column of "dst". + FOR m := 0 TO dst.rows - 1 + tmp := dst.row[m] + FOR k := 0 TO (a.colsb / 4) - 1 + FOR n := 0 TO (dst.colsb / 4) - 1 + tmp.fp32[n] += FP32(a.row[m].fp16[2*k+0]) * FP32(b.row[k].fp16[2*n+0]) + tmp.fp32[n] += FP32(-a.row[m].fp16[2*k+1]) * FP32(b.row[k].fp16[2*n+1]) + ENDFOR + ENDFOR + write_row_and_zero(dst, m, tmp, dst.colsb) +ENDFOR +zero_upper_rows(dst, dst.rows) +zero_tileconfig_start() + + + AMX-COMPLEX +
immintrin.h
+ Application-Targeted +
+ + + Perform matrix multiplication of two tiles containing complex elements and accumulate the results into a packed single precision tile. Each dword element in input tiles "src0" and "src1" is interpreted as a complex number with FP16 real part and FP16 imaginary part. This function calculates the imaginary part of the result. + + FOR m := 0 TO dst.rows - 1 + tmp := dst.row[m] + FOR k := 0 TO (src0.colsb / 4) - 1 + FOR n := 0 TO (dst.colsb / 4) - 1 + tmp.fp32[n] += FP32(src0.row[m].fp16[2*k+0]) * FP32(src1.row[k].fp16[2*n+1]) + tmp.fp32[n] += FP32(src0.row[m].fp16[2*k+1]) * FP32(src1.row[k].fp16[2*n+0]) + ENDFOR + ENDFOR + write_row_and_zero(dst, m, tmp, dst.colsb) +ENDFOR +zero_upper_rows(dst, dst.rows) +zero_tileconfig_start() + + + + + AMX-COMPLEX +
immintrin.h
+ Application-Targeted +
+ + + Perform matrix multiplication of two tiles containing complex elements and accumulate the results into a packed single precision tile. Each dword element in input tiles src0 and src1 is interpreted as a complex number with FP16 real part and FP16 imaginary part. This function calculates the real part of the result. + + FOR m := 0 TO dst.rows - 1 + tmp := dst.row[m] + FOR k := 0 TO (src0.colsb / 4) - 1 + FOR n := 0 TO (dst.colsb / 4) - 1 + tmp.fp32[n] += FP32(src0.row[m].fp16[2*k+0]) * FP32(src1.row[k].fp16[2*n+0]) + tmp.fp32[n] += FP32(-src0.row[m].fp16[2*k+1]) * FP32(src1.row[k].fp16[2*n+1]) + ENDFOR + ENDFOR + write_row_and_zero(dst, m, tmp, dst.colsb) +ENDFOR +zero_upper_rows(dst, dst.rows) +zero_tileconfig_start() + + + + + AMX-COMPLEX +
immintrin.h
+ Application-Targeted +
+ + + + + + + Compute dot-product of FP16 (16-bit) floating-point pairs in tiles "a" and "b", accumulating the intermediate single-precision (32-bit) floating-point elements with elements in "dst", and store the 32-bit result back to tile "dst". + FOR m := 0 TO dst.rows - 1 + tmp := dst.row[m] + FOR k := 0 TO (a.colsb / 4) - 1 + FOR n := 0 TO (dst.colsb / 4) - 1 + tmp.fp32[n] += FP32(a.row[m].fp16[2*k+0]) * FP32(b.row[k].fp16[2*n+0]) + tmp.fp32[n] += FP32(a.row[m].fp16[2*k+1]) * FP32(b.row[k].fp16[2*n+1]) + ENDFOR + ENDFOR + write_row_and_zero(dst, m, tmp, dst.colsb) +ENDFOR +zero_upper_rows(dst, dst.rows) +zero_tileconfig_start() + + + AMX-FP16 +
immintrin.h
+ Application-Targeted +
+ + + Compute dot-product of FP16 (16-bit) floating-point pairs in tiles "src0" and "src1", accumulating the intermediate single-precision (32-bit) floating-point elements with elements in "dst", and store the 32-bit result back to tile "dst". The shape of tile is specified in the struct of __tile1024i. The register of the tile is allocated by compiler. + + FOR m := 0 TO dst.rows - 1 + tmp := dst.row[m] + FOR k := 0 TO (src0.colsb / 4) - 1 + FOR n := 0 TO (dst.colsb / 4) - 1 + tmp.fp32[n] += FP32(src0.row[m].fp16[2*k+0]) * FP32(src1.row[k].fp16[2*n+0]) + tmp.fp32[n] += FP32(src0.row[m].fp16[2*k+1]) * FP32(src1.row[k].fp16[2*n+1]) + ENDFOR + ENDFOR + write_row_and_zero(dst, m, tmp, dst.colsb) +ENDFOR +zero_upper_rows(dst, dst.rows) +zero_tileconfig_start() + + + + + AMX-FP16 +
immintrin.h
+ Application-Targeted +
+ + + + + + + Compute dot-product of bytes in tiles with a source/destination accumulator. Multiply groups of 4 adjacent pairs of signed 8-bit integers in "a" with corresponding unsigned 8-bit integers in "b", producing 4 intermediate 32-bit results. Sum these 4 results with the corresponding 32-bit integer in "dst", and store the 32-bit result back to tile "dst". + DEFINE DPBD(c, x, y) { + tmp1 := SignExtend32(x.byte[0]) * ZeroExtend32(y.byte[0]) + tmp2 := SignExtend32(x.byte[1]) * ZeroExtend32(y.byte[1]) + tmp3 := SignExtend32(x.byte[2]) * ZeroExtend32(y.byte[2]) + tmp4 := SignExtend32(x.byte[3]) * ZeroExtend32(y.byte[3]) + + RETURN c + tmp1 + tmp2 + tmp3 + tmp4 +} +FOR m := 0 TO dst.rows - 1 + tmp := dst.row[m] + FOR k := 0 TO (a.colsb / 4) - 1 + FOR n := 0 TO (dst.colsb / 4) - 1 + tmp.dword[n] := DPBD(tmp.dword[n], a.row[m].dword[k], b.row[k].dword[n]) + ENDFOR + ENDFOR + write_row_and_zero(dst, m, tmp, dst.colsb) +ENDFOR +zero_upper_rows(dst, dst.rows) +zero_tileconfig_start() + + + AMX-INT8 +
immintrin.h
+ Application-Targeted +
+ + + + + + Compute dot-product of bytes in tiles with a source/destination accumulator. Multiply groups of 4 adjacent pairs of unsigned 8-bit integers in "a" with corresponding signed 8-bit integers in "b", producing 4 intermediate 32-bit results. Sum these 4 results with the corresponding 32-bit integer in "dst", and store the 32-bit result back to tile "dst". + DEFINE DPBD(c, x, y) { + tmp1 := ZeroExtend32(x.byte[0]) * SignExtend32(y.byte[0]) + tmp2 := ZeroExtend32(x.byte[1]) * SignExtend32(y.byte[1]) + tmp3 := ZeroExtend32(x.byte[2]) * SignExtend32(y.byte[2]) + tmp4 := ZeroExtend32(x.byte[3]) * SignExtend32(y.byte[3]) + + RETURN c + tmp1 + tmp2 + tmp3 + tmp4 +} +FOR m := 0 TO dst.rows - 1 + tmp := dst.row[m] + FOR k := 0 TO (a.colsb / 4) - 1 + FOR n := 0 TO (dst.colsb / 4) - 1 + tmp.dword[n] := DPBD(tmp.dword[n], a.row[m].dword[k], b.row[k].dword[n]) + ENDFOR + ENDFOR + write_row_and_zero(dst, m, tmp, dst.colsb) +ENDFOR +zero_upper_rows(dst, dst.rows) +zero_tileconfig_start() + + + AMX-INT8 +
immintrin.h
+ Application-Targeted +
+ + + + + + Compute dot-product of bytes in tiles with a source/destination accumulator. Multiply groups of 4 adjacent pairs of unsigned 8-bit integers in "a" with corresponding unsigned 8-bit integers in "b", producing 4 intermediate 32-bit results. Sum these 4 results with the corresponding 32-bit integer in "dst", and store the 32-bit result back to tile "dst". + DEFINE DPBD(c, x, y) { + tmp1 := ZeroExtend32(x.byte[0]) * ZeroExtend32(y.byte[0]) + tmp2 := ZeroExtend32(x.byte[1]) * ZeroExtend32(y.byte[1]) + tmp3 := ZeroExtend32(x.byte[2]) * ZeroExtend32(y.byte[2]) + tmp4 := ZeroExtend32(x.byte[3]) * ZeroExtend32(y.byte[3]) + + RETURN c + tmp1 + tmp2 + tmp3 + tmp4 +} +FOR m := 0 TO dst.rows - 1 + tmp := dst.row[m] + FOR k := 0 TO (a.colsb / 4) - 1 + FOR n := 0 TO (dst.colsb / 4) - 1 + tmp.dword[n] := DPBD(tmp.dword[n], a.row[m].dword[k], b.row[k].dword[n]) + ENDFOR + ENDFOR + write_row_and_zero(dst, m, tmp, dst.colsb) +ENDFOR +zero_upper_rows(dst, dst.rows) +zero_tileconfig_start() + + + AMX-INT8 +
immintrin.h
+ Application-Targeted +
+ + + + + + Compute dot-product of bytes in tiles with a source/destination accumulator. Multiply groups of 4 adjacent pairs of signed 8-bit integers in "a" with corresponding signed 8-bit integers in "b", producing 4 intermediate 32-bit results. Sum these 4 results with the corresponding 32-bit integer in "dst", and store the 32-bit result back to tile "dst". + DEFINE DPBD(c, x, y) { + tmp1 := SignExtend32(x.byte[0]) * SignExtend32(y.byte[0]) + tmp2 := SignExtend32(x.byte[1]) * SignExtend32(y.byte[1]) + tmp3 := SignExtend32(x.byte[2]) * SignExtend32(y.byte[2]) + tmp4 := SignExtend32(x.byte[3]) * SignExtend32(y.byte[3]) + + RETURN c + tmp1 + tmp2 + tmp3 + tmp4 +} +FOR m := 0 TO dst.rows - 1 + tmp := dst.row[m] + FOR k := 0 TO (a.colsb / 4) - 1 + FOR n := 0 TO (dst.colsb / 4) - 1 + tmp.dword[n] := DPBD(tmp.dword[n], a.row[m].dword[k], b.row[k].dword[n]) + ENDFOR + ENDFOR + write_row_and_zero(dst, m, tmp, dst.colsb) +ENDFOR +zero_upper_rows(dst, dst.rows) +zero_tileconfig_start() + + + AMX-INT8 +
immintrin.h
+ Application-Targeted +
+ + + Compute dot-product of bytes in tiles with a source/destination accumulator. Multiply groups of 4 adjacent pairs of signed 8-bit integers in "src0" with corresponding signed 8-bit integers in "src1", producing 4 intermediate 32-bit results. Sum these 4 results with the corresponding 32-bit integer in "dst", and store the 32-bit result back to tile "dst". The shape of tile is specified in the struct of __tile1024i. The register of the tile is allocated by compiler. + + DEFINE DPBD(c, x, y) { + tmp1 := SignExtend32(x.byte[0]) * SignExtend32(y.byte[0]) + tmp2 := SignExtend32(x.byte[1]) * SignExtend32(y.byte[1]) + tmp3 := SignExtend32(x.byte[2]) * SignExtend32(y.byte[2]) + tmp4 := SignExtend32(x.byte[3]) * SignExtend32(y.byte[3]) + RETURN c + tmp1 + tmp2 + tmp3 + tmp4 +} +FOR m := 0 TO dst.rows - 1 + tmp := dst.row[m] + FOR k := 0 TO (src0.colsb / 4) - 1 + FOR n := 0 TO (dst.colsb / 4) - 1 + tmp.dword[n] := DPBD(tmp.dword[n], src0.row[m].dword[k], src1.row[k].dword[n]) + ENDFOR + ENDFOR + write_row_and_zero(dst, m, tmp, dst.colsb) +ENDFOR +zero_upper_rows(dst, dst.rows) +zero_tileconfig_start() + + + + + AMX-INT8 +
immintrin.h
+ Application-Targeted +
+ + + Compute dot-product of bytes in tiles with a source/destination accumulator. Multiply groups of 4 adjacent pairs of signed 8-bit integers in "src0" with corresponding unsigned 8-bit integers in "src1", producing 4 intermediate 32-bit results. Sum these 4 results with the corresponding 32-bit integer in "dst", and store the 32-bit result back to tile "dst". The shape of tile is specified in the struct of __tile1024i. The register of the tile is allocated by compiler. + + DEFINE DPBD(c, x, y) { + tmp1 := SignExtend32(x.byte[0]) * ZeroExtend32(y.byte[0]) + tmp2 := SignExtend32(x.byte[1]) * ZeroExtend32(y.byte[1]) + tmp3 := SignExtend32(x.byte[2]) * ZeroExtend32(y.byte[2]) + tmp4 := SignExtend32(x.byte[3]) * ZeroExtend32(y.byte[3]) + RETURN c + tmp1 + tmp2 + tmp3 + tmp4 +} +FOR m := 0 TO dst.rows - 1 + tmp := dst.row[m] + FOR k := 0 TO (src0.colsb / 4) - 1 + FOR n := 0 TO (dst.colsb / 4) - 1 + tmp.dword[n] := DPBD(tmp.dword[n], src0.row[m].dword[k], src1.row[k].dword[n]) + ENDFOR + ENDFOR + write_row_and_zero(dst, m, tmp, dst.colsb) +ENDFOR +zero_upper_rows(dst, dst.rows) +zero_tileconfig_start() + + + + + AMX-INT8 +
immintrin.h
+ Application-Targeted +
+ + + Compute dot-product of bytes in tiles with a source/destination accumulator. Multiply groups of 4 adjacent pairs of unsigned 8-bit integers in "src0" with corresponding signed 8-bit integers in "src1", producing 4 intermediate 32-bit results. Sum these 4 results with the corresponding 32-bit integer in "dst", and store the 32-bit result back to tile "dst". The shape of tile is specified in the struct of __tile1024i. The register of the tile is allocated by compiler. + + DEFINE DPBD(c, x, y) { + tmp1 := ZeroExtend32(x.byte[0]) * SignExtend32(y.byte[0]) + tmp2 := ZeroExtend32(x.byte[1]) * SignExtend32(y.byte[1]) + tmp3 := ZeroExtend32(x.byte[2]) * SignExtend32(y.byte[2]) + tmp4 := ZeroExtend32(x.byte[3]) * SignExtend32(y.byte[3]) + RETURN c + tmp1 + tmp2 + tmp3 + tmp4 +} +FOR m := 0 TO dst.rows - 1 + tmp := dst.row[m] + FOR k := 0 TO (src0.colsb / 4) - 1 + FOR n := 0 TO (dst.colsb / 4) - 1 + tmp.dword[n] := DPBD(tmp.dword[n], src0.row[m].dword[k], src1.row[k].dword[n]) + ENDFOR + ENDFOR + write_row_and_zero(dst, m, tmp, dst.colsb) +ENDFOR +zero_upper_rows(dst, dst.rows) +zero_tileconfig_start() + + + + + AMX-INT8 +
immintrin.h
+ Application-Targeted +
+ + + Compute dot-product of bytes in tiles with a source/destination accumulator. Multiply groups of 4 adjacent pairs of unsigned 8-bit integers in "src0" with corresponding unsigned 8-bit integers in "src1", producing 4 intermediate 32-bit results. Sum these 4 results with the corresponding 32-bit integer in "dst", and store the 32-bit result back to tile "dst". The shape of tile is specified in the struct of __tile1024i. The register of the tile is allocated by compiler. + + DEFINE DPBD(c, x, y) { + tmp1 := ZeroExtend32(x.byte[0]) * ZeroExtend32(y.byte[0]) + tmp2 := ZeroExtend32(x.byte[1]) * ZeroExtend32(y.byte[1]) + tmp3 := ZeroExtend32(x.byte[2]) * ZeroExtend32(y.byte[2]) + tmp4 := ZeroExtend32(x.byte[3]) * ZeroExtend32(y.byte[3]) + RETURN c + tmp1 + tmp2 + tmp3 + tmp4 +} +FOR m := 0 TO dst.rows - 1 + tmp := dst.row[m] + FOR k := 0 TO (src0.colsb / 4) - 1 + FOR n := 0 TO (dst.colsb / 4) - 1 + tmp.dword[n] := DPBD(tmp.dword[n], src0.row[m].dword[k], src1.row[k].dword[n]) + ENDFOR + ENDFOR + write_row_and_zero(dst, m, tmp, dst.colsb) +ENDFOR +zero_upper_rows(dst, dst.rows) +zero_tileconfig_start() + + + + + AMX-INT8 +
immintrin.h
+ Application-Targeted +
+ + + + + Load tile configuration from a 64-byte memory location specified by "mem_addr". The tile configuration format is specified below, and includes the tile type pallette, the number of bytes per row, and the number of rows. If the specified pallette_id is zero, that signifies the init state for both the tile config and the tile data, and the tiles are zeroed. Any invalid configurations will result in #GP fault. + +// format of memory payload. each field is a byte. +// 0: palette +// 1: start_row +// 2-15: reserved, must be zero +// 16-17: tile0.colsb +// 18-19: tile1.colsb +// 20-21: tile2.colsb +// ... +// 30-31: tile7.colsb +// 32-47: reserved, must be zero +// 48: tile0.rows +// 49: tile1.rows +// 50: tile2.rows +// ... +// 55: tile7.rows +// 56-63: reserved, must be zero + + + AMX-TILE +
immintrin.h
+ Application-Targeted +
+ + + + Stores the current tile configuration to a 64-byte memory location specified by "mem_addr". The tile configuration format is specified below, and includes the tile type pallette, the number of bytes per row, and the number of rows. If tiles are not configured, all zeroes will be stored to memory. + +// format of memory payload. each field is a byte. +// 0: palette +// 1: start_row +// 2-15: reserved, must be zero +// 16-17: tile0.colsb +// 18-19: tile1.colsb +// 20-21: tile2.colsb +// ... +// 30-31: tile7.colsb +// 32-47: reserved, must be zero +// 48: tile0.rows +// 49: tile1.rows +// 50: tile2.rows +// ... +// 55: tile7.rows +// 56-63: reserved, must be zero + + + AMX-TILE +
immintrin.h
+ Application-Targeted +
+ + + + + + Load tile rows from memory specifieid by "base" address and "stride" into destination tile "dst" using the tile configuration previously configured via "_tile_loadconfig". + start := tileconfig.startRow +IF start == 0 // not restarting, zero incoming state + tilezero(dst) +FI +nbytes := dst.colsb +DO WHILE start < dst.rows + memptr := base + start * stride + write_row_and_zero(dst, start, read_memory(memptr, nbytes), nbytes) + start := start + 1 +OD +zero_upper_rows(dst, dst.rows) +zero_tileconfig_start() + + + AMX-TILE +
immintrin.h
+ Application-Targeted +
+ + + + + + Load tile rows from memory specifieid by "base" address and "stride" into destination tile "dst" using the tile configuration previously configured via "_tile_loadconfig". This intrinsic provides a hint to the implementation that the data will likely not be reused in the near future and the data caching can be optimized accordingly. + start := tileconfig.startRow +IF start == 0 // not restarting, zero incoming state + tilezero(dst) +FI +nbytes := dst.colsb +DO WHILE start < dst.rows + memptr := base + start * stride + write_row_and_zero(dst, start, read_memory(memptr, nbytes), nbytes) + start := start + 1 +OD +zero_upper_rows(dst, dst.rows) +zero_tileconfig_start() + + + AMX-TILE +
immintrin.h
+ Application-Targeted +
+ + + Release the tile configuration to return to the init state, which releases all storage it currently holds. + + AMX-TILE +
immintrin.h
+ Application-Targeted +
+ + + + + + Store the tile specified by "src" to memory specifieid by "base" address and "stride" using the tile configuration previously configured via "_tile_loadconfig". + start := tileconfig.startRow +DO WHILE start < src.rows + memptr := base + start * stride + write_memory(memptr, src.colsb, src.row[start]) + start := start + 1 +OD +zero_tileconfig_start() + + + AMX-TILE +
immintrin.h
+ Application-Targeted +
+ + + + Zero the tile specified by "tdest". + nbytes := palette_table[tileconfig.palette_id].bytes_per_row +FOR i := 0 TO palette_table[tileconfig.palette_id].max_rows-1 + FOR j := 0 TO nbytes-1 + tdest.row[i].byte[j] := 0 + ENDFOR +ENDFOR + + + AMX-TILE +
immintrin.h
+ Application-Targeted +
+ + + Load tile rows from memory specifieid by "base" address and "stride" into destination tile "dst". The shape of tile is specified in the struct of __tile1024i. The register of the tile is allocated by compiler. + + start := tileconfig.startRow +IF start == 0 // not restarting, zero incoming state + tilezero(dst) +FI +nbytes := dst.colsb +DO WHILE start < dst.rows + memptr := base + start * stride + write_row_and_zero(dst, start, read_memory(memptr, nbytes), nbytes) + start := start + 1 +OD +zero_upper_rows(dst, dst.rows) +zero_tileconfig_start() + + + + + AMX-TILE +
immintrin.h
+ Application-Targeted +
+ + + Store the tile specified by "src" to memory specifieid by "base" address and "stride". The shape of tile is specified in the struct of __tile1024i. The register of the tile is allocated by compiler. + + start := tileconfig.startRow +DO WHILE start < src.rows + memptr := base + start * stride + write_memory(memptr, src.colsb, src.row[start]) + start := start + 1 +OD +zero_tileconfig_start() + + + + + AMX-TILE +
immintrin.h
+ Application-Targeted +
+ + + Load tile rows from memory specifieid by "base" address and "stride" into destination tile "dst". This intrinsic provides a hint to the implementation that the data will likely not be reused in the near future and the data caching can be optimized accordingly. The shape of tile is specified in the struct of __tile1024i. The register of the tile is allocated by compiler. + + start := tileconfig.startRow +IF start == 0 // not restarting, zero incoming state + tilezero(dst) +FI +nbytes := dst.colsb +DO WHILE start < dst.rows + memptr := base + start * stride + write_row_and_zero(dst, start, read_memory(memptr, nbytes), nbytes) + start := start + 1 +OD +zero_upper_rows(dst, dst.rows) +zero_tileconfig_start() + + + + + AMX-TILE +
immintrin.h
+ Application-Targeted +
+ + + Zero the tile specified by "dst". The shape of tile is specified in the struct of __tile1024i. The register of the tile is allocated by compiler. + + nbytes := palette_table[tileconfig.palette_id].bytes_per_row +FOR i := 0 TO palette_table[tileconfig.palette_id].max_rows-1 + FOR j := 0 TO nbytes-1 + tdest.row[i].byte[j] := 0 + ENDFOR +ENDFOR + + + AMX-TILE +
immintrin.h
+ Application-Targeted +
+ + + + + Compute the inverse cosine of packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst". + +FOR j := 0 to 3 + i := j*64 + dst[i+63:i] := ACOS(a[i+63:i]) +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Trigonometry +
+ + + + Compute the inverse cosine of packed single-precision (32-bit) floating-point elements in "a" expressed in radians, and store the results in "dst". + +FOR j := 0 to 7 + i := j*32 + dst[i+31:i] := ACOS(a[i+31:i]) +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Trigonometry +
+ + + + Compute the inverse hyperbolic cosine of packed double-precision (64-bit) floating-point elements in "a" expressed in radians, and store the results in "dst". + +FOR j := 0 to 3 + i := j*64 + dst[i+63:i] := ACOSH(a[i+63:i]) +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Trigonometry +
+ + + + Compute the inverse hyperbolic cosine of packed single-precision (32-bit) floating-point elements in "a" expressed in radians, and store the results in "dst". + +FOR j := 0 to 7 + i := j*32 + dst[i+31:i] := ACOSH(a[i+31:i]) +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Trigonometry +
+ + + + Compute the inverse sine of packed double-precision (64-bit) floating-point elements in "a" expressed in radians, and store the results in "dst". + +FOR j := 0 to 3 + i := j*64 + dst[i+63:i] := ASIN(a[i+63:i]) +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Trigonometry +
+ + + + Compute the inverse sine of packed single-precision (32-bit) floating-point elements in "a" expressed in radians, and store the results in "dst". + +FOR j := 0 to 7 + i := j*32 + dst[i+31:i] := ASIN(a[i+31:i]) +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Trigonometry +
+ + + + Compute the inverse hyperbolic sine of packed double-precision (64-bit) floating-point elements in "a" expressed in radians, and store the results in "dst". + +FOR j := 0 to 3 + i := j*64 + dst[i+63:i] := ASINH(a[i+63:i]) +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Trigonometry +
+ + + + Compute the inverse hyperbolic sine of packed single-precision (32-bit) floating-point elements in "a" expressed in radians, and store the results in "dst". + +FOR j := 0 to 7 + i := j*32 + dst[i+31:i] := ASINH(a[i+31:i]) +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Trigonometry +
+ + + + Compute the inverse tangent of packed double-precision (64-bit) floating-point elements in "a" expressed in radians, and store the results in "dst". + +FOR j := 0 to 3 + i := j*64 + dst[i+63:i] := ATAN(a[i+63:i]) +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Trigonometry +
+ + + + Compute the inverse tangent of packed single-precision (32-bit) floating-point elements in "a" expressed in radians, and store the results in "dst". + +FOR j := 0 to 7 + i := j*32 + dst[i+31:i] := ATAN(a[i+31:i]) +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Trigonometry +
+ + + + + Compute the inverse tangent of packed double-precision (64-bit) floating-point elements in "a" divided by packed elements in "b", and store the results in "dst" expressed in radians. + +FOR j := 0 to 3 + i := j*64 + dst[i+63:i] := ATAN2(a[i+63:i], b[i+63:i]) +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Trigonometry +
+ + + + + Compute the inverse tangent of packed single-precision (32-bit) floating-point elements in "a" divided by packed elements in "b", and store the results in "dst" expressed in radians. + +FOR j := 0 to 7 + i := j*32 + dst[i+31:i] := ATAN2(a[i+31:i], b[i+31:i]) +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Trigonometry +
+ + + + Compute the inverse hyperbolic tangent of packed double-precision (64-bit) floating-point elements in "a" expressed in radians, and store the results in "dst". + +FOR j := 0 to 3 + i := j*64 + dst[i+63:i] := ATANH(a[i+63:i]) +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Trigonometry +
+ + + + Compute the inverse hyperbolic tangent of packed single-precision (32-bit) floating-point elements in "a" expressed in radians, and store the results in "dst". + +FOR j := 0 to 7 + i := j*32 + dst[i+31:i] := ATANH(a[i+31:i]) +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Trigonometry +
+ + + + Compute the cosine of packed double-precision (64-bit) floating-point elements in "a" expressed in radians, and store the results in "dst". + +FOR j := 0 to 3 + i := j*64 + dst[i+63:i] := COS(a[i+63:i]) +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Trigonometry +
+ + + + Compute the cosine of packed single-precision (32-bit) floating-point elements in "a" expressed in radians, and store the results in "dst". + +FOR j := 0 to 7 + i := j*32 + dst[i+31:i] := COS(a[i+31:i]) +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Trigonometry +
+ + + + Compute the cosine of packed double-precision (64-bit) floating-point elements in "a" expressed in degrees, and store the results in "dst". + FOR j := 0 to 3 + i := j*64 + dst[i+63:i] := COSD(a[i+63:i]) +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Trigonometry +
+ + + + Compute the cosine of packed single-precision (32-bit) floating-point elements in "a" expressed in degrees, and store the results in "dst". + FOR j := 0 to 7 + i := j*32 + dst[i+31:i] := COSD(a[i+31:i]) +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Trigonometry +
+ + + + Compute the hyperbolic cosine of packed double-precision (64-bit) floating-point elements in "a" expressed in radians, and store the results in "dst". + +FOR j := 0 to 3 + i := j*64 + dst[i+63:i] := COSH(a[i+63:i]) +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Trigonometry +
+ + + + Compute the hyperbolic cosine of packed single-precision (32-bit) floating-point elements in "a" expressed in radians, and store the results in "dst". + +FOR j := 0 to 7 + i := j*32 + dst[i+31:i] := COSH(a[i+31:i]) +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Trigonometry +
+ + + + + Compute the length of the hypotenous of a right triangle, with the lengths of the other two sides of the triangle stored as packed double-precision (64-bit) floating-point elements in "a" and "b", and store the results in "dst". + +FOR j := 0 to 3 + i := j*64 + dst[i+63:i] := SQRT(POW(a[i+63:i], 2.0) + POW(b[i+63:i], 2.0)) +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Trigonometry +
+ + + + + Compute the length of the hypotenous of a right triangle, with the lengths of the other two sides of the triangle stored as packed single-precision (32-bit) floating-point elements in "a" and "b", and store the results in "dst". + +FOR j := 0 to 7 + i := j*32 + dst[i+31:i] := SQRT(POW(a[i+31:i], 2.0) + POW(b[i+31:i], 2.0)) +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Trigonometry +
+ + + + Compute the sine of packed double-precision (64-bit) floating-point elements in "a" expressed in radians, and store the results in "dst". + +FOR j := 0 to 3 + i := j*64 + dst[i+63:i] := SIN(a[i+63:i]) +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Trigonometry +
+ + + + Compute the sine of packed single-precision (32-bit) floating-point elements in "a" expressed in radians, and store the results in "dst". + +FOR j := 0 to 7 + i := j*32 + dst[i+31:i] := SIN(a[i+31:i]) +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Trigonometry +
+ + + + + Compute the sine and cosine of packed double-precision (64-bit) floating-point elements in "a" expressed in radians, store the sine in "dst", and store the cosine into memory at "mem_addr". + +FOR j := 0 to 3 + i := j*64 + dst[i+63:i] := SIN(a[i+63:i]) + MEM[mem_addr+i+63:mem_addr+i] := COS(a[i+63:i]) +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Trigonometry +
+ + + + + Compute the sine and cosine of packed single-precision (32-bit) floating-point elements in "a" expressed in radians, store the sine in "dst", and store the cosine into memory at "mem_addr". + +FOR j := 0 to 7 + i := j*32 + dst[i+31:i] := SIN(a[i+31:i]) + MEM[mem_addr+i+31:mem_addr+i] := COS(a[i+31:i]) +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Trigonometry +
+ + + + Compute the sine of packed double-precision (64-bit) floating-point elements in "a" expressed in degrees, and store the results in "dst". + FOR j := 0 to 3 + i := j*64 + dst[i+63:i] := SIND(a[i+63:i]) +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Trigonometry +
+ + + + Compute the sine of packed single-precision (32-bit) floating-point elements in "a" expressed in degrees, and store the results in "dst". + FOR j := 0 to 7 + i := j*32 + dst[i+31:i] := SIND(a[i+31:i]) +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Trigonometry +
+ + + + Compute the hyperbolic sine of packed double-precision (64-bit) floating-point elements in "a" expressed in radians, and store the results in "dst". + +FOR j := 0 to 3 + i := j*64 + dst[i+63:i] := SINH(a[i+63:i]) +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Trigonometry +
+ + + + Compute the hyperbolic sine of packed single-precision (32-bit) floating-point elements in "a" expressed in radians, and store the results in "dst". + +FOR j := 0 to 7 + i := j*32 + dst[i+31:i] := SINH(a[i+31:i]) +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Trigonometry +
+ + + + Compute the tangent of packed double-precision (64-bit) floating-point elements in "a" expressed in radians, and store the results in "dst". + +FOR j := 0 to 3 + i := j*64 + dst[i+63:i] := TAN(a[i+63:i]) +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Trigonometry +
+ + + + Compute the tangent of packed single-precision (32-bit) floating-point elements in "a" expressed in radians, and store the results in "dst". + +FOR j := 0 to 7 + i := j*32 + dst[i+31:i] := TAN(a[i+31:i]) +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Trigonometry +
+ + + + Compute the tangent of packed double-precision (64-bit) floating-point elements in "a" expressed in degrees, and store the results in "dst". + FOR j := 0 to 3 + i := j*64 + dst[i+63:i] := TAND(a[i+63:i]) +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Trigonometry +
+ + + + Compute the tangent of packed single-precision (32-bit) floating-point elements in "a" expressed in degrees, and store the results in "dst". + FOR j := 0 to 7 + i := j*32 + dst[i+31:i] := TAND(a[i+31:i]) +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Trigonometry +
+ + + + Compute the hyperbolic tangent of packed double-precision (64-bit) floating-point elements in "a" expressed in radians, and store the results in "dst". + +FOR j := 0 to 3 + i := j*64 + dst[i+63:i] := TANH(a[i+63:i]) +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Trigonometry +
+ + + + Compute the hyperbolic tangent of packed single-precision (32-bit) floating-point elements in "a" expressed in radians, and store the results in "dst". + +FOR j := 0 to 7 + i := j*32 + dst[i+31:i] := TANH(a[i+31:i]) +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Trigonometry +
+ + + + Compute the cube root of packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst". + FOR j := 0 to 3 + i := j*64 + dst[i+63:i] := CubeRoot(a[i+63:i]) +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Elementary Math Functions +
+ + + + Compute the cube root of packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst". + FOR j := 0 to 7 + i := j*32 + dst[i+31:i] := CubeRoot(a[i+31:i]) +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Elementary Math Functions +
+ + + + Compute the exponential value of "e" raised to the power of packed complex numbers in "a", and store the complex results in "dst". Each complex number is composed of two adjacent single-precision (32-bit) floating-point elements, which defines the complex number "complex = vec.fp32[0] + i * vec.fp32[1]". + +DEFINE CEXP(a[31:0], b[31:0]) { + result[31:0] := POW(FP32(e), a[31:0]) * COS(b[31:0]) + result[63:32] := POW(FP32(e), a[31:0]) * SIN(b[31:0]) + RETURN result +} +FOR j := 0 to 3 + i := j*64 + dst[i+63:i] := CEXP(a[i+31:i], a[i+63:i+32]) +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Elementary Math Functions +
+ + + + Compute the natural logarithm of packed complex numbers in "a", and store the complex results in "dst". Each complex number is composed of two adjacent single-precision (32-bit) floating-point elements, which defines the complex number "complex = vec.fp32[0] + i * vec.fp32[1]". + +DEFINE CLOG(a[31:0], b[31:0]) { + result[31:0] := LOG(SQRT(POW(a, 2.0) + POW(b, 2.0))) + result[63:32] := ATAN2(b, a) + RETURN result +} +FOR j := 0 to 3 + i := j*64 + dst[i+63:i] := CLOG(a[i+31:i], a[i+63:i+32]) +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Elementary Math Functions +
+ + + + Compute the square root of packed complex snumbers in "a", and store the complex results in "dst". Each complex number is composed of two adjacent single-precision (32-bit) floating-point elements, which defines the complex number "complex = vec.fp32[0] + i * vec.fp32[1]". + +DEFINE CSQRT(a[31:0], b[31:0]) { + sign[31:0] := (b < 0.0) ? -FP32(1.0) : FP32(1.0) + result[31:0] := SQRT((a + SQRT(POW(a, 2.0) + POW(b, 2.0))) / 2.0) + result[63:32] := sign * SQRT((-a + SQRT(POW(a, 2.0) + POW(b, 2.0))) / 2.0) + RETURN result +} +FOR j := 0 to 3 + i := j*64 + dst[i+63:i] := CSQRT(a[i+31:i], a[i+63:i+32]) +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Elementary Math Functions +
+ + + + Compute the exponential value of "e" raised to the power of packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst". + +FOR j := 0 to 3 + i := j*64 + dst[i+63:i] := POW(e, a[i+63:i]) +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Elementary Math Functions +
+ + + + Compute the exponential value of "e" raised to the power of packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst". + +FOR j := 0 to 7 + i := j*32 + dst[i+31:i] := POW(FP32(e), a[i+31:i]) +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Elementary Math Functions +
+ + + + Compute the exponential value of 10 raised to the power of packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst". + +FOR j := 0 to 3 + i := j*64 + dst[i+63:i] := POW(10.0, a[i+63:i]) +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Elementary Math Functions +
+ + + + Compute the exponential value of 10 raised to the power of packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst". + +FOR j := 0 to 7 + i := j*32 + dst[i+31:i] := POW(FP32(10.0), a[i+31:i]) +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Elementary Math Functions +
+ + + + Compute the exponential value of 2 raised to the power of packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst". + +FOR j := 0 to 3 + i := j*64 + dst[i+63:i] := POW(2.0, a[i+63:i]) +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Elementary Math Functions +
+ + + + Compute the exponential value of 2 raised to the power of packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst". + +FOR j := 0 to 7 + i := j*32 + dst[i+31:i] := POW(FP32(2.0), a[i+31:i]) +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Elementary Math Functions +
+ + + + Compute the exponential value of "e" raised to the power of packed double-precision (64-bit) floating-point elements in "a", subtract one from each element, and store the results in "dst". + +FOR j := 0 to 3 + i := j*64 + dst[i+63:i] := POW(e, a[i+63:i]) - 1.0 +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Elementary Math Functions +
+ + + + Compute the exponential value of "e" raised to the power of packed single-precision (32-bit) floating-point elements in "a", subtract one from each element, and store the results in "dst". + +FOR j := 0 to 7 + i := j*32 + dst[i+31:i] := POW(FP32(e), a[i+31:i]) - 1.0 +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Elementary Math Functions +
+ + + + Compute the inverse cube root of packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst". + FOR j := 0 to 3 + i := j*64 + dst[i+63:i] := InvCubeRoot(a[i+63:i]) +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Elementary Math Functions +
+ + + + Compute the inverse cube root of packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst". + FOR j := 0 to 7 + i := j*32 + dst[i+31:i] := InvCubeRoot(a[i+31:i]) +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Elementary Math Functions +
+ + + + Compute the inverse square root of packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst". + FOR j := 0 to 3 + i := j*64 + dst[i+63:i] := InvSQRT(a[i+63:i]) +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Elementary Math Functions +
+ + + + Compute the inverse square root of packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst". + FOR j := 0 to 7 + i := j*32 + dst[i+31:i] := InvSQRT(a[i+31:i]) +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Elementary Math Functions +
+ + + + Compute the natural logarithm of packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst". + +FOR j := 0 to 3 + i := j*64 + dst[i+63:i] := LOG(a[i+63:i]) +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Elementary Math Functions +
+ + + + Compute the natural logarithm of packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst". + +FOR j := 0 to 7 + i := j*32 + dst[i+31:i] := LOG(a[i+31:i]) +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Elementary Math Functions +
+ + + + Compute the base-10 logarithm of packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst". + +FOR j := 0 to 3 + i := j*64 + dst[i+63:i] := LOG(a[i+63:i]) / LOG(10.0) +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Elementary Math Functions +
+ + + + Compute the base-10 logarithm of packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst". + +FOR j := 0 to 7 + i := j*32 + dst[i+31:i] := LOG(a[i+31:i]) / LOG(10.0) +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Elementary Math Functions +
+ + + + Compute the natural logarithm of one plus packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst". + +FOR j := 0 to 3 + i := j*64 + dst[i+63:i] := LOG(1.0 + a[i+63:i]) +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Elementary Math Functions +
+ + + + Compute the natural logarithm of one plus packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst". + +FOR j := 0 to 7 + i := j*32 + dst[i+31:i] := LOG(1.0 + a[i+31:i]) +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Elementary Math Functions +
+ + + + Compute the base-2 logarithm of packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst". + +FOR j := 0 to 3 + i := j*64 + dst[i+63:i] := LOG(a[i+63:i]) / LOG(2.0) +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Elementary Math Functions +
+ + + + Compute the base-2 logarithm of packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst". + +FOR j := 0 to 7 + i := j*32 + dst[i+31:i] := LOG(a[i+31:i]) / LOG(2.0) +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Elementary Math Functions +
+ + + + Convert the exponent of each packed double-precision (64-bit) floating-point element in "a" to a double-precision floating-point number representing the integer exponent, and store the results in "dst". This intrinsic essentially calculates "floor(log2(x))" for each element. + FOR j := 0 to 3 + i := j*64 + dst[i+63:i] := ConvertExpFP64(a[i+63:i]) +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Elementary Math Functions +
+ + + + Convert the exponent of each packed single-precision (32-bit) floating-point element in "a" to a single-precision floating-point number representing the integer exponent, and store the results in "dst". This intrinsic essentially calculates "floor(log2(x))" for each element. + FOR j := 0 to 7 + i := j*32 + dst[i+31:i] := ConvertExpFP32(a[i+31:i]) +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Elementary Math Functions +
+ + + + + Compute the exponential value of packed double-precision (64-bit) floating-point elements in "a" raised by packed elements in "b", and store the results in "dst". + +FOR j := 0 to 3 + i := j*64 + dst[i+63:i] := POW(a[i+63:i], b[i+63:i]) +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Elementary Math Functions +
+ + + + + Compute the exponential value of packed single-precision (32-bit) floating-point elements in "a" raised by packed elements in "b", and store the results in "dst". + +FOR j := 0 to 7 + i := j*32 + dst[i+31:i] := POW(a[i+31:i], b[i+31:i]) +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Elementary Math Functions +
+ + + + Compute the square root of packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst". Note that this intrinsic is less efficient than "_mm_sqrt_pd". + +FOR j := 0 to 3 + i := j*64 + dst[i+63:i] := SQRT(a[i+63:i]) +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Elementary Math Functions +
+ + + + Compute the square root of packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst". Note that this intrinsic is less efficient than "_mm_sqrt_ps". + +FOR j := 0 to 7 + i := j*32 + dst[i+31:i] := SQRT(a[i+31:i]) +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Elementary Math Functions +
+ + + + Compute the cumulative distribution function of packed double-precision (64-bit) floating-point elements in "a" using the normal distribution, and store the results in "dst". + FOR j := 0 to 3 + i := j*64 + dst[i+63:i] := CDFNormal(a[i+63:i]) +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Probability/Statistics +
+ + + + Compute the cumulative distribution function of packed single-precision (32-bit) floating-point elements in "a" using the normal distribution, and store the results in "dst". + FOR j := 0 to 7 + i := j*32 + dst[i+31:i] := CDFNormal(a[i+31:i]) +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Probability/Statistics +
+ + + + Compute the inverse cumulative distribution function of packed double-precision (64-bit) floating-point elements in "a" using the normal distribution, and store the results in "dst". + FOR j := 0 to 3 + i := j*64 + dst[i+63:i] := InverseCDFNormal(a[i+63:i]) +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Probability/Statistics +
+ + + + Compute the inverse cumulative distribution function of packed single-precision (32-bit) floating-point elements in "a" using the normal distribution, and store the results in "dst". + FOR j := 0 to 7 + i := j*32 + dst[i+31:i] := InverseCDFNormal(a[i+31:i]) +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Probability/Statistics +
+ + + + Compute the error function of packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst". + FOR j := 0 to 3 + i := j*64 + dst[i+63:i] := ERF(a[i+63:i]) +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Probability/Statistics +
+ + + + Compute the error function of packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst". + FOR j := 0 to 7 + i := j*32 + dst[i+31:i] := ERF(a[i+31:i]) +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Probability/Statistics +
+ + + + Compute the complementary error function of packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst". + FOR j := 0 to 3 + i := j*64 + dst[i+63:i] := 1.0 - ERF(a[i+63:i]) +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Probability/Statistics +
+ + + + Compute the complementary error function of packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst". + FOR j := 0 to 7 + i := j*32 + dst[i+63:i] := 1.0 - ERF(a[i+31:i]) +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Probability/Statistics +
+ + + + Compute the inverse complementary error function of packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst". + FOR j := 0 to 3 + i := j*64 + dst[i+63:i] := 1.0 / (1.0 - ERF(a[i+63:i])) +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Probability/Statistics +
+ + + + Compute the inverse complementary error function of packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst". + FOR j := 0 to 7 + i := j*32 + dst[i+63:i] := 1.0 / (1.0 - ERF(a[i+31:i])) +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Probability/Statistics +
+ + + + Compute the inverse error function of packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst". + FOR j := 0 to 3 + i := j*64 + dst[i+63:i] := 1.0 / ERF(a[i+63:i]) +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Probability/Statistics +
+ + + + Compute the inverse error function of packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst". + FOR j := 0 to 7 + i := j*32 + dst[i+63:i] := 1.0 / ERF(a[i+31:i]) +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Probability/Statistics +
+ + + + + Divide packed signed 8-bit integers in "a" by packed elements in "b", and store the truncated results in "dst". + +FOR j := 0 to 31 + i := 8*j + IF b[i+7:i] == 0 + #DE + FI + dst[i+7:i] := Truncate8(a[i+7:i] / b[i+7:i]) +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Arithmetic +
+ + + + + Divide packed signed 16-bit integers in "a" by packed elements in "b", and store the truncated results in "dst". + +FOR j := 0 to 15 + i := 16*j + IF b[i+15:i] == 0 + #DE + FI + dst[i+15:i] := Truncate16(a[i+15:i] / b[i+15:i]) +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Arithmetic +
+ + + + + Divide packed signed 32-bit integers in "a" by packed elements in "b", and store the truncated results in "dst". + +FOR j := 0 to 7 + i := 32*j + IF b[i+31:i] == 0 + #DE + FI + dst[i+31:i] := Truncate32(a[i+31:i] / b[i+31:i]) +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Arithmetic +
+ + + + + Divide packed signed 64-bit integers in "a" by packed elements in "b", and store the truncated results in "dst". + +FOR j := 0 to 3 + i := 64*j + IF b[i+63:i] == 0 + #DE + FI + dst[i+63:i] := Truncate64(a[i+63:i] / b[i+63:i]) +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Arithmetic +
+ + + + + Divide packed unsigned 8-bit integers in "a" by packed elements in "b", and store the truncated results in "dst". + +FOR j := 0 to 31 + i := 8*j + IF b[i+7:i] == 0 + #DE + FI + dst[i+7:i] := Truncate8(a[i+7:i] / b[i+7:i]) +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Arithmetic +
+ + + + + Divide packed unsigned 16-bit integers in "a" by packed elements in "b", and store the truncated results in "dst". + +FOR j := 0 to 15 + i := 16*j + IF b[i+15:i] == 0 + #DE + FI + dst[i+15:i] := Truncate16(a[i+15:i] / b[i+15:i]) +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Arithmetic +
+ + + + + Divide packed unsigned 32-bit integers in "a" by packed elements in "b", and store the truncated results in "dst". + +FOR j := 0 to 7 + i := 32*j + IF b[i+31:i] == 0 + #DE + FI + dst[i+31:i] := Truncate32(a[i+31:i] / b[i+31:i]) +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Arithmetic +
+ + + + + Divide packed unsigned 64-bit integers in "a" by packed elements in "b", and store the truncated results in "dst". + +FOR j := 0 to 3 + i := 64*j + IF b[i+63:i] == 0 + #DE + FI + dst[i+63:i] := Truncate64(a[i+63:i] / b[i+63:i]) +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Arithmetic +
+ + + + + Divide packed 32-bit integers in "a" by packed elements in "b", and store the truncated results in "dst". + FOR j := 0 to 7 + i := 32*j + dst[i+31:i] := TRUNCATE(a[i+31:i] / b[i+31:i]) +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Arithmetic +
+ + + + + + Divide packed 32-bit integers in "a" by packed elements in "b", store the truncated results in "dst", and store the remainders as packed 32-bit integers into memory at "mem_addr". + FOR j := 0 to 7 + i := 32*j + dst[i+31:i] := TRUNCATE(a[i+31:i] / b[i+31:i]) + MEM[mem_addr+i+31:mem_addr+i] := REMAINDER(a[i+31:i] / b[i+31:i]) +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Arithmetic +
+ + + + + Divide packed 32-bit integers in "a" by packed elements in "b", and store the remainders as packed 32-bit integers in "dst". + FOR j := 0 to 7 + i := 32*j + dst[i+31:i] := REMAINDER(a[i+31:i] / b[i+31:i]) +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Arithmetic +
+ + + + + Divide packed 8-bit integers in "a" by packed elements in "b", and store the remainders as packed 32-bit integers in "dst". + FOR j := 0 to 31 + i := 8*j + dst[i+7:i] := REMAINDER(a[i+7:i] / b[i+7:i]) +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Arithmetic +
+ + + + + Divide packed 16-bit integers in "a" by packed elements in "b", and store the remainders as packed 32-bit integers in "dst". + FOR j := 0 to 15 + i := 16*j + dst[i+15:i] := REMAINDER(a[i+15:i] / b[i+15:i]) +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Arithmetic +
+ + + + + Divide packed 32-bit integers in "a" by packed elements in "b", and store the remainders as packed 32-bit integers in "dst". + FOR j := 0 to 7 + i := 32*j + dst[i+31:i] := REMAINDER(a[i+31:i] / b[i+31:i]) +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Arithmetic +
+ + + + + Divide packed 64-bit integers in "a" by packed elements in "b", and store the remainders as packed 32-bit integers in "dst". + FOR j := 0 to 3 + i := 64*j + dst[i+63:i] := REMAINDER(a[i+63:i] / b[i+63:i]) +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Arithmetic +
+ + + + + Divide packed unsigned 8-bit integers in "a" by packed elements in "b", and store the remainders as packed unsigned 32-bit integers in "dst". + FOR j := 0 to 31 + i := 8*j + dst[i+7:i] := REMAINDER(a[i+7:i] / b[i+7:i]) +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Arithmetic +
+ + + + + Divide packed unsigned 16-bit integers in "a" by packed elements in "b", and store the remainders as packed unsigned 32-bit integers in "dst". + FOR j := 0 to 15 + i := 16*j + dst[i+15:i] := REMAINDER(a[i+15:i] / b[i+15:i]) +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Arithmetic +
+ + + + + Divide packed unsigned 32-bit integers in "a" by packed elements in "b", and store the remainders as packed unsigned 32-bit integers in "dst". + FOR j := 0 to 7 + i := 32*j + dst[i+31:i] := REMAINDER(a[i+31:i] / b[i+31:i]) +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Arithmetic +
+ + + + + Divide packed unsigned 64-bit integers in "a" by packed elements in "b", and store the remainders as packed unsigned 32-bit integers in "dst". + FOR j := 0 to 3 + i := 64*j + dst[i+63:i] := REMAINDER(a[i+63:i] / b[i+63:i]) +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Arithmetic +
+ + + + + Divide packed unsigned 32-bit integers in "a" by packed elements in "b", and store the truncated results in "dst". + FOR j := 0 to 7 + i := 32*j + dst[i+31:i] := TRUNCATE(a[i+31:i] / b[i+31:i]) +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Arithmetic +
+ + + + + + Divide packed unsigned 32-bit integers in "a" by packed elements in "b", store the truncated results in "dst", and store the remainders as packed unsigned 32-bit integers into memory at "mem_addr". + FOR j := 0 to 7 + i := 32*j + dst[i+31:i] := TRUNCATE(a[i+31:i] / b[i+31:i]) + MEM[mem_addr+i+31:mem_addr+i] := REMAINDER(a[i+31:i] / b[i+31:i]) +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Arithmetic +
+ + + + + Divide packed unsigned 32-bit integers in "a" by packed elements in "b", and store the remainders as packed unsigned 32-bit integers in "dst". + FOR j := 0 to 7 + i := 32*j + dst[i+31:i] := REMAINDER(a[i+31:i] / b[i+31:i]) +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Arithmetic +
+ + + + Round the packed double-precision (64-bit) floating-point elements in "a" up to an integer value, and store the results as packed double-precision floating-point elements in "dst". This intrinsic may generate the "roundpd"/"vroundpd" instruction. + +FOR j := 0 to 3 + i := j*64 + dst[i+63:i] := CEIL(a[i+63:i]) +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Special Math Functions +
+ + + + Round the packed single-precision (32-bit) floating-point elements in "a" up to an integer value, and store the results as packed single-precision floating-point elements in "dst". This intrinsic may generate the "roundps"/"vroundps" instruction. + +FOR j := 0 to 7 + i := j*32 + dst[i+31:i] := CEIL(a[i+31:i]) +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Special Math Functions +
+ + + + Round the packed double-precision (64-bit) floating-point elements in "a" down to an integer value, and store the results as packed double-precision floating-point elements in "dst". This intrinsic may generate the "roundpd"/"vroundpd" instruction. + +FOR j := 0 to 3 + i := j*64 + dst[i+63:i] := FLOOR(a[i+63:i]) +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Special Math Functions +
+ + + + Round the packed single-precision (32-bit) floating-point elements in "a" down to an integer value, and store the results as packed single-precision floating-point elements in "dst". This intrinsic may generate the "roundps"/"vroundps" instruction. + +FOR j := 0 to 7 + i := j*32 + dst[i+31:i] := FLOOR(a[i+31:i]) +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Special Math Functions +
+ + + + Round the packed double-precision (64-bit) floating-point elements in "a" to the nearest integer value, and store the results as packed double-precision floating-point elements in "dst". This intrinsic may generate the "roundpd"/"vroundpd" instruction. + +FOR j := 0 to 3 + i := j*64 + dst[i+63:i] := ROUND(a[i+63:i]) +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Special Math Functions +
+ + + + Round the packed single-precision (32-bit) floating-point elements in "a" to the nearest integer value, and store the results as packed single-precision floating-point elements in "dst". This intrinsic may generate the "roundps"/"vroundps" instruction. + +FOR j := 0 to 7 + i := j*32 + dst[i+31:i] := ROUND(a[i+31:i]) +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Special Math Functions +
+ + + + Truncate the packed double-precision (64-bit) floating-point elements in "a", and store the results as packed double-precision floating-point elements in "dst". This intrinsic may generate the "roundpd"/"vroundpd" instruction. + FOR j := 0 to 3 + i := j*64 + dst[i+63:i] := TRUNCATE(a[i+63:i]) +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Miscellaneous +
+ + + + Truncate the packed single-precision (32-bit) floating-point elements in "a", and store the results as packed single-precision floating-point elements in "dst". This intrinsic may generate the "roundps"/"vroundps" instruction. + FOR j := 0 to 7 + i := j*32 + dst[i+31:i] := TRUNCATE(a[i+31:i]) +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Miscellaneous +
+ + + + + + + Add packed double-precision (64-bit) floating-point elements in "a" and "b", and store the results in "dst". + +FOR j := 0 to 3 + i := j*64 + dst[i+63:i] := a[i+63:i] + b[i+63:i] +ENDFOR +dst[MAX:256] := 0 + + + AVX +
immintrin.h
+ Arithmetic +
+ + + + + Add packed single-precision (32-bit) floating-point elements in "a" and "b", and store the results in "dst". + +FOR j := 0 to 7 + i := j*32 + dst[i+31:i] := a[i+31:i] + b[i+31:i] +ENDFOR +dst[MAX:256] := 0 + + + AVX +
immintrin.h
+ Arithmetic +
+ + + + + Alternatively add and subtract packed double-precision (64-bit) floating-point elements in "a" to/from packed elements in "b", and store the results in "dst". + +FOR j := 0 to 3 + i := j*64 + IF ((j & 1) == 0) + dst[i+63:i] := a[i+63:i] - b[i+63:i] + ELSE + dst[i+63:i] := a[i+63:i] + b[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX +
immintrin.h
+ Arithmetic +
+ + + + + Alternatively add and subtract packed single-precision (32-bit) floating-point elements in "a" to/from packed elements in "b", and store the results in "dst". + +FOR j := 0 to 7 + i := j*32 + IF ((j & 1) == 0) + dst[i+31:i] := a[i+31:i] - b[i+31:i] + ELSE + dst[i+31:i] := a[i+31:i] + b[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX +
immintrin.h
+ Arithmetic +
+ + + + + Divide packed double-precision (64-bit) floating-point elements in "a" by packed elements in "b", and store the results in "dst". + +FOR j := 0 to 3 + i := 64*j + dst[i+63:i] := a[i+63:i] / b[i+63:i] +ENDFOR +dst[MAX:256] := 0 + + + AVX +
immintrin.h
+ Arithmetic +
+ + + + + Divide packed single-precision (32-bit) floating-point elements in "a" by packed elements in "b", and store the results in "dst". + +FOR j := 0 to 7 + i := 32*j + dst[i+31:i] := a[i+31:i] / b[i+31:i] +ENDFOR +dst[MAX:256] := 0 + + + AVX +
immintrin.h
+ Arithmetic +
+ + + + + + Conditionally multiply the packed single-precision (32-bit) floating-point elements in "a" and "b" using the high 4 bits in "imm8", sum the four products, and conditionally store the sum in "dst" using the low 4 bits of "imm8". + +DEFINE DP(a[127:0], b[127:0], imm8[7:0]) { + FOR j := 0 to 3 + i := j*32 + IF imm8[(4+j)%8] + temp[i+31:i] := a[i+31:i] * b[i+31:i] + ELSE + temp[i+31:i] := FP32(0.0) + FI + ENDFOR + + sum[31:0] := (temp[127:96] + temp[95:64]) + (temp[63:32] + temp[31:0]) + + FOR j := 0 to 3 + i := j*32 + IF imm8[j%8] + tmpdst[i+31:i] := sum[31:0] + ELSE + tmpdst[i+31:i] := FP32(0.0) + FI + ENDFOR + RETURN tmpdst[127:0] +} +dst[127:0] := DP(a[127:0], b[127:0], imm8[7:0]) +dst[255:128] := DP(a[255:128], b[255:128], imm8[7:0]) +dst[MAX:256] := 0 + + + AVX +
immintrin.h
+ Arithmetic +
+ + + + + Horizontally add adjacent pairs of double-precision (64-bit) floating-point elements in "a" and "b", and pack the results in "dst". + +dst[63:0] := a[127:64] + a[63:0] +dst[127:64] := b[127:64] + b[63:0] +dst[191:128] := a[255:192] + a[191:128] +dst[255:192] := b[255:192] + b[191:128] +dst[MAX:256] := 0 + + + AVX +
immintrin.h
+ Arithmetic +
+ + + + + Horizontally add adjacent pairs of single-precision (32-bit) floating-point elements in "a" and "b", and pack the results in "dst". + +dst[31:0] := a[63:32] + a[31:0] +dst[63:32] := a[127:96] + a[95:64] +dst[95:64] := b[63:32] + b[31:0] +dst[127:96] := b[127:96] + b[95:64] +dst[159:128] := a[191:160] + a[159:128] +dst[191:160] := a[255:224] + a[223:192] +dst[223:192] := b[191:160] + b[159:128] +dst[255:224] := b[255:224] + b[223:192] +dst[MAX:256] := 0 + + + AVX +
immintrin.h
+ Arithmetic +
+ + + + + Horizontally subtract adjacent pairs of double-precision (64-bit) floating-point elements in "a" and "b", and pack the results in "dst". + +dst[63:0] := a[63:0] - a[127:64] +dst[127:64] := b[63:0] - b[127:64] +dst[191:128] := a[191:128] - a[255:192] +dst[255:192] := b[191:128] - b[255:192] +dst[MAX:256] := 0 + + + AVX +
immintrin.h
+ Arithmetic +
+ + + + + Horizontally subtract adjacent pairs of single-precision (32-bit) floating-point elements in "a" and "b", and pack the results in "dst". + +dst[31:0] := a[31:0] - a[63:32] +dst[63:32] := a[95:64] - a[127:96] +dst[95:64] := b[31:0] - b[63:32] +dst[127:96] := b[95:64] - b[127:96] +dst[159:128] := a[159:128] - a[191:160] +dst[191:160] := a[223:192] - a[255:224] +dst[223:192] := b[159:128] - b[191:160] +dst[255:224] := b[223:192] - b[255:224] +dst[MAX:256] := 0 + + + AVX +
immintrin.h
+ Arithmetic +
+ + + + + Multiply packed double-precision (64-bit) floating-point elements in "a" and "b", and store the results in "dst". + +FOR j := 0 to 3 + i := j*64 + dst[i+63:i] := a[i+63:i] * b[i+63:i] +ENDFOR +dst[MAX:256] := 0 + + + AVX +
immintrin.h
+ Arithmetic +
+ + + + + Multiply packed single-precision (32-bit) floating-point elements in "a" and "b", and store the results in "dst". + +FOR j := 0 to 7 + i := j*32 + dst[i+31:i] := a[i+31:i] * b[i+31:i] +ENDFOR +dst[MAX:256] := 0 + + + AVX +
immintrin.h
+ Arithmetic +
+ + + + + Subtract packed double-precision (64-bit) floating-point elements in "b" from packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst". + +FOR j := 0 to 3 + i := j*64 + dst[i+63:i] := a[i+63:i] - b[i+63:i] +ENDFOR +dst[MAX:256] := 0 + + + AVX +
immintrin.h
+ Arithmetic +
+ + + + + Subtract packed single-precision (32-bit) floating-point elements in "b" from packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst". + +FOR j := 0 to 7 + i := j*32 + dst[i+31:i] := a[i+31:i] - b[i+31:i] +ENDFOR +dst[MAX:256] := 0 + + + AVX +
immintrin.h
+ Arithmetic +
+ + + + + Compute the bitwise AND of packed double-precision (64-bit) floating-point elements in "a" and "b", and store the results in "dst". + +FOR j := 0 to 3 + i := j*64 + dst[i+63:i] := (a[i+63:i] AND b[i+63:i]) +ENDFOR +dst[MAX:256] := 0 + + + AVX +
immintrin.h
+ Logical +
+ + + + + Compute the bitwise AND of packed single-precision (32-bit) floating-point elements in "a" and "b", and store the results in "dst". + +FOR j := 0 to 7 + i := j*32 + dst[i+31:i] := (a[i+31:i] AND b[i+31:i]) +ENDFOR +dst[MAX:256] := 0 + + + AVX +
immintrin.h
+ Logical +
+ + + + + Compute the bitwise NOT of packed double-precision (64-bit) floating-point elements in "a" and then AND with "b", and store the results in "dst". + +FOR j := 0 to 3 + i := j*64 + dst[i+63:i] := ((NOT a[i+63:i]) AND b[i+63:i]) +ENDFOR +dst[MAX:256] := 0 + + + AVX +
immintrin.h
+ Logical +
+ + + + + Compute the bitwise NOT of packed single-precision (32-bit) floating-point elements in "a" and then AND with "b", and store the results in "dst". + +FOR j := 0 to 7 + i := j*32 + dst[i+31:i] := ((NOT a[i+31:i]) AND b[i+31:i]) +ENDFOR +dst[MAX:256] := 0 + + + AVX +
immintrin.h
+ Logical +
+ + + + + Compute the bitwise OR of packed double-precision (64-bit) floating-point elements in "a" and "b", and store the results in "dst". + +FOR j := 0 to 3 + i := j*64 + dst[i+63:i] := a[i+63:i] OR b[i+63:i] +ENDFOR +dst[MAX:256] := 0 + + + AVX +
immintrin.h
+ Logical +
+ + + + + Compute the bitwise OR of packed single-precision (32-bit) floating-point elements in "a" and "b", and store the results in "dst". + +FOR j := 0 to 7 + i := j*32 + dst[i+31:i] := a[i+31:i] OR b[i+31:i] +ENDFOR +dst[MAX:256] := 0 + + + AVX +
immintrin.h
+ Logical +
+ + + + + Compute the bitwise XOR of packed double-precision (64-bit) floating-point elements in "a" and "b", and store the results in "dst". + +FOR j := 0 to 3 + i := j*64 + dst[i+63:i] := a[i+63:i] XOR b[i+63:i] +ENDFOR +dst[MAX:256] := 0 + + + AVX +
immintrin.h
+ Logical +
+ + + + + Compute the bitwise XOR of packed single-precision (32-bit) floating-point elements in "a" and "b", and store the results in "dst". + +FOR j := 0 to 7 + i := j*32 + dst[i+31:i] := a[i+31:i] XOR b[i+31:i] +ENDFOR +dst[MAX:256] := 0 + + + AVX +
immintrin.h
+ Logical +
+ + + + + Compute the bitwise AND of 256 bits (representing integer data) in "a" and "b", and set "ZF" to 1 if the result is zero, otherwise set "ZF" to 0. Compute the bitwise NOT of "a" and then AND with "b", and set "CF" to 1 if the result is zero, otherwise set "CF" to 0. Return the "ZF" value. + +IF ((a[255:0] AND b[255:0]) == 0) + ZF := 1 +ELSE + ZF := 0 +FI +IF (((NOT a[255:0]) AND b[255:0]) == 0) + CF := 1 +ELSE + CF := 0 +FI +RETURN ZF + + + AVX +
immintrin.h
+ Logical +
+ + + + + Compute the bitwise AND of 256 bits (representing integer data) in "a" and "b", and set "ZF" to 1 if the result is zero, otherwise set "ZF" to 0. Compute the bitwise NOT of "a" and then AND with "b", and set "CF" to 1 if the result is zero, otherwise set "CF" to 0. Return the "CF" value. + +IF ((a[255:0] AND b[255:0]) == 0) + ZF := 1 +ELSE + ZF := 0 +FI +IF (((NOT a[255:0]) AND b[255:0]) == 0) + CF := 1 +ELSE + CF := 0 +FI +RETURN CF + + + AVX +
immintrin.h
+ Logical +
+ + + + + Compute the bitwise AND of 256 bits (representing integer data) in "a" and "b", and set "ZF" to 1 if the result is zero, otherwise set "ZF" to 0. Compute the bitwise NOT of "a" and then AND with "b", and set "CF" to 1 if the result is zero, otherwise set "CF" to 0. Return 1 if both the "ZF" and "CF" values are zero, otherwise return 0. + +IF ((a[255:0] AND b[255:0]) == 0) + ZF := 1 +ELSE + ZF := 0 +FI +IF (((NOT a[255:0]) AND b[255:0]) == 0) + CF := 1 +ELSE + CF := 0 +FI +IF (ZF == 0 && CF == 0) + dst := 1 +ELSE + dst := 0 +FI + + + AVX +
immintrin.h
+ Logical +
+ + + + + Compute the bitwise AND of 256 bits (representing double-precision (64-bit) floating-point elements) in "a" and "b", producing an intermediate 256-bit value, and set "ZF" to 1 if the sign bit of each 64-bit element in the intermediate value is zero, otherwise set "ZF" to 0. Compute the bitwise NOT of "a" and then AND with "b", producing an intermediate value, and set "CF" to 1 if the sign bit of each 64-bit element in the intermediate value is zero, otherwise set "CF" to 0. Return the "ZF" value. + +tmp[255:0] := a[255:0] AND b[255:0] +IF (tmp[63] == 0 && tmp[127] == 0 && tmp[191] == 0 && tmp[255] == 0) + ZF := 1 +ELSE + ZF := 0 +FI +tmp[255:0] := (NOT a[255:0]) AND b[255:0] +IF (tmp[63] == 0 && tmp[127] == 0 && tmp[191] == 0 && tmp[255] == 0) + CF := 1 +ELSE + CF := 0 +FI +dst := ZF + + + AVX +
immintrin.h
+ Logical +
+ + + + + Compute the bitwise AND of 256 bits (representing double-precision (64-bit) floating-point elements) in "a" and "b", producing an intermediate 256-bit value, and set "ZF" to 1 if the sign bit of each 64-bit element in the intermediate value is zero, otherwise set "ZF" to 0. Compute the bitwise NOT of "a" and then AND with "b", producing an intermediate value, and set "CF" to 1 if the sign bit of each 64-bit element in the intermediate value is zero, otherwise set "CF" to 0. Return the "CF" value. + +tmp[255:0] := a[255:0] AND b[255:0] +IF (tmp[63] == 0 && tmp[127] == 0 && tmp[191] == 0 && tmp[255] == 0) + ZF := 1 +ELSE + ZF := 0 +FI +tmp[255:0] := (NOT a[255:0]) AND b[255:0] +IF (tmp[63] == 0 && tmp[127] == 0 && tmp[191] == 0 && tmp[255] == 0) + CF := 1 +ELSE + CF := 0 +FI +dst := CF + + + AVX +
immintrin.h
+ Logical +
+ + + + + Compute the bitwise AND of 256 bits (representing double-precision (64-bit) floating-point elements) in "a" and "b", producing an intermediate 256-bit value, and set "ZF" to 1 if the sign bit of each 64-bit element in the intermediate value is zero, otherwise set "ZF" to 0. Compute the bitwise NOT of "a" and then AND with "b", producing an intermediate value, and set "CF" to 1 if the sign bit of each 64-bit element in the intermediate value is zero, otherwise set "CF" to 0. Return 1 if both the "ZF" and "CF" values are zero, otherwise return 0. + +tmp[255:0] := a[255:0] AND b[255:0] +IF (tmp[63] == 0 && tmp[127] == 0 && tmp[191] == 0 && tmp[255] == 0) + ZF := 1 +ELSE + ZF := 0 +FI +tmp[255:0] := (NOT a[255:0]) AND b[255:0] +IF (tmp[63] == 0 && tmp[127] == 0 && tmp[191] == 0 && tmp[255] == 0) + CF := 1 +ELSE + CF := 0 +FI +IF (ZF == 0 && CF == 0) + dst := 1 +ELSE + dst := 0 +FI + + + AVX +
immintrin.h
+ Logical +
+ + + + + Compute the bitwise AND of 128 bits (representing double-precision (64-bit) floating-point elements) in "a" and "b", producing an intermediate 128-bit value, and set "ZF" to 1 if the sign bit of each 64-bit element in the intermediate value is zero, otherwise set "ZF" to 0. Compute the bitwise NOT of "a" and then AND with "b", producing an intermediate value, and set "CF" to 1 if the sign bit of each 64-bit element in the intermediate value is zero, otherwise set "CF" to 0. Return the "ZF" value. + +tmp[127:0] := a[127:0] AND b[127:0] +IF (tmp[63] == 0 && tmp[127] == 0) + ZF := 1 +ELSE + ZF := 0 +FI +tmp[127:0] := (NOT a[127:0]) AND b[127:0] +IF (tmp[63] == 0 && tmp[127] == 0) + CF := 1 +ELSE + CF := 0 +FI +dst := ZF + + + AVX +
immintrin.h
+ Logical +
+ + + + + Compute the bitwise AND of 128 bits (representing double-precision (64-bit) floating-point elements) in "a" and "b", producing an intermediate 128-bit value, and set "ZF" to 1 if the sign bit of each 64-bit element in the intermediate value is zero, otherwise set "ZF" to 0. Compute the bitwise NOT of "a" and then AND with "b", producing an intermediate value, and set "CF" to 1 if the sign bit of each 64-bit element in the intermediate value is zero, otherwise set "CF" to 0. Return the "CF" value. + +tmp[127:0] := a[127:0] AND b[127:0] +IF (tmp[63] == 0 && tmp[127] == 0) + ZF := 1 +ELSE + ZF := 0 +FI +tmp[127:0] := (NOT a[127:0]) AND b[127:0] +IF (tmp[63] == 0 && tmp[127] == 0) + CF := 1 +ELSE + CF := 0 +FI +dst := CF + + + AVX +
immintrin.h
+ Logical +
+ + + + + Compute the bitwise AND of 128 bits (representing double-precision (64-bit) floating-point elements) in "a" and "b", producing an intermediate 128-bit value, and set "ZF" to 1 if the sign bit of each 64-bit element in the intermediate value is zero, otherwise set "ZF" to 0. Compute the bitwise NOT of "a" and then AND with "b", producing an intermediate value, and set "CF" to 1 if the sign bit of each 64-bit element in the intermediate value is zero, otherwise set "CF" to 0. Return 1 if both the "ZF" and "CF" values are zero, otherwise return 0. + +tmp[127:0] := a[127:0] AND b[127:0] +IF (tmp[63] == 0 && tmp[127] == 0) + ZF := 1 +ELSE + ZF := 0 +FI +tmp[127:0] := (NOT a[127:0]) AND b[127:0] +IF (tmp[63] == 0 && tmp[127] == 0) + CF := 1 +ELSE + CF := 0 +FI +IF (ZF == 0 && CF == 0) + dst := 1 +ELSE + dst := 0 +FI + + + AVX +
immintrin.h
+ Logical +
+ + + + + Compute the bitwise AND of 256 bits (representing single-precision (32-bit) floating-point elements) in "a" and "b", producing an intermediate 256-bit value, and set "ZF" to 1 if the sign bit of each 32-bit element in the intermediate value is zero, otherwise set "ZF" to 0. Compute the bitwise NOT of "a" and then AND with "b", producing an intermediate value, and set "CF" to 1 if the sign bit of each 32-bit element in the intermediate value is zero, otherwise set "CF" to 0. Return the "ZF" value. + +tmp[255:0] := a[255:0] AND b[255:0] +IF (tmp[31] == 0 && tmp[63] == 0 && tmp[95] == 0 && tmp[127] == 0 && \ + tmp[159] == 0 && tmp[191] == 0 && tmp[223] == 0 && tmp[255] == 0) + ZF := 1 +ELSE + ZF := 0 +FI +tmp[255:0] := (NOT a[255:0]) AND b[255:0] +IF (tmp[31] == 0 && tmp[63] == 0 && tmp[95] == 0 && tmp[127] == 0 && \ + tmp[159] == 0 && tmp[191] == 0 && tmp[223] == 0 && tmp[255] == 0) + CF := 1 +ELSE + CF := 0 +FI +dst := ZF + + + AVX +
immintrin.h
+ Logical +
+ + + + + Compute the bitwise AND of 256 bits (representing single-precision (32-bit) floating-point elements) in "a" and "b", producing an intermediate 256-bit value, and set "ZF" to 1 if the sign bit of each 32-bit element in the intermediate value is zero, otherwise set "ZF" to 0. Compute the bitwise NOT of "a" and then AND with "b", producing an intermediate value, and set "CF" to 1 if the sign bit of each 32-bit element in the intermediate value is zero, otherwise set "CF" to 0. Return the "CF" value. + +tmp[255:0] := a[255:0] AND b[255:0] +IF (tmp[31] == 0 && tmp[63] == 0 && tmp[95] == 0 && tmp[127] == 0 && \ + tmp[159] == 0 && tmp[191] == 0 && tmp[223] == 0 && tmp[255] == 0) + ZF := 1 +ELSE + ZF := 0 +FI +tmp[255:0] := (NOT a[255:0]) AND b[255:0] +IF (tmp[31] == 0 && tmp[63] == 0 && tmp[95] == 0 && tmp[127] == 0 && \ + tmp[159] == 0 && tmp[191] == 0 && tmp[223] == 0 && tmp[255] == 0) + CF := 1 +ELSE + CF := 0 +FI +dst := CF + + + AVX +
immintrin.h
+ Logical +
+ + + + + Compute the bitwise AND of 256 bits (representing single-precision (32-bit) floating-point elements) in "a" and "b", producing an intermediate 256-bit value, and set "ZF" to 1 if the sign bit of each 32-bit element in the intermediate value is zero, otherwise set "ZF" to 0. Compute the bitwise NOT of "a" and then AND with "b", producing an intermediate value, and set "CF" to 1 if the sign bit of each 32-bit element in the intermediate value is zero, otherwise set "CF" to 0. Return 1 if both the "ZF" and "CF" values are zero, otherwise return 0. + +tmp[255:0] := a[255:0] AND b[255:0] +IF (tmp[31] == 0 && tmp[63] == 0 && tmp[95] == 0 && tmp[127] == 0 && \ + tmp[159] == 0 && tmp[191] == 0 && tmp[223] == 0 && tmp[255] == 0) + ZF := 1 +ELSE + ZF := 0 +FI +tmp[255:0] := (NOT a[255:0]) AND b[255:0] +IF (tmp[31] == 0 && tmp[63] == 0 && tmp[95] == 0 && tmp[127] == 0 && \ + tmp[159] == 0 && tmp[191] == 0 && tmp[223] == 0 && tmp[255] == 0) + CF := 1 +ELSE + CF := 0 +FI +IF (ZF == 0 && CF == 0) + dst := 1 +ELSE + dst := 0 +FI + + + AVX +
immintrin.h
+ Logical +
+ + + + + Compute the bitwise AND of 128 bits (representing single-precision (32-bit) floating-point elements) in "a" and "b", producing an intermediate 128-bit value, and set "ZF" to 1 if the sign bit of each 32-bit element in the intermediate value is zero, otherwise set "ZF" to 0. Compute the bitwise NOT of "a" and then AND with "b", producing an intermediate value, and set "CF" to 1 if the sign bit of each 32-bit element in the intermediate value is zero, otherwise set "CF" to 0. Return the "ZF" value. + +tmp[127:0] := a[127:0] AND b[127:0] +IF (tmp[31] == 0 && tmp[63] == 0 && tmp[95] == 0 && tmp[127] == 0) + ZF := 1 +ELSE + ZF := 0 +FI +tmp[127:0] := (NOT a[127:0]) AND b[127:0] +IF (tmp[31] == 0 && tmp[63] == 0 && tmp[95] == 0 && tmp[127] == 0) + CF := 1 +ELSE + CF := 0 +FI +dst := ZF + + + AVX +
immintrin.h
+ Logical +
+ + + + + Compute the bitwise AND of 128 bits (representing single-precision (32-bit) floating-point elements) in "a" and "b", producing an intermediate 128-bit value, and set "ZF" to 1 if the sign bit of each 32-bit element in the intermediate value is zero, otherwise set "ZF" to 0. Compute the bitwise NOT of "a" and then AND with "b", producing an intermediate value, and set "CF" to 1 if the sign bit of each 32-bit element in the intermediate value is zero, otherwise set "CF" to 0. Return the "CF" value. + +tmp[127:0] := a[127:0] AND b[127:0] +IF (tmp[31] == 0 && tmp[63] == 0 && tmp[95] == 0 && tmp[127] == 0) + ZF := 1 +ELSE + ZF := 0 +FI +tmp[127:0] := (NOT a[127:0]) AND b[127:0] +IF (tmp[31] == 0 && tmp[63] == 0 && tmp[95] == 0 && tmp[127] == 0) + CF := 1 +ELSE + CF := 0 +FI +dst := CF + + + AVX +
immintrin.h
+ Logical +
+ + + + + Compute the bitwise AND of 128 bits (representing single-precision (32-bit) floating-point elements) in "a" and "b", producing an intermediate 128-bit value, and set "ZF" to 1 if the sign bit of each 32-bit element in the intermediate value is zero, otherwise set "ZF" to 0. Compute the bitwise NOT of "a" and then AND with "b", producing an intermediate value, and set "CF" to 1 if the sign bit of each 32-bit element in the intermediate value is zero, otherwise set "CF" to 0. Return 1 if both the "ZF" and "CF" values are zero, otherwise return 0. + +tmp[127:0] := a[127:0] AND b[127:0] +IF (tmp[31] == 0 && tmp[63] == 0 && tmp[95] == 0 && tmp[127] == 0) + ZF := 1 +ELSE + ZF := 0 +FI +tmp[127:0] := (NOT a[127:0]) AND b[127:0] +IF (tmp[31] == 0 && tmp[63] == 0 && tmp[95] == 0 && tmp[127] == 0) + CF := 1 +ELSE + CF := 0 +FI +IF (ZF == 0 && CF == 0) + dst := 1 +ELSE + dst := 0 +FI + + + AVX +
immintrin.h
+ Logical +
+ + + + + + Blend packed double-precision (64-bit) floating-point elements from "a" and "b" using control mask "imm8", and store the results in "dst". + +FOR j := 0 to 3 + i := j*64 + IF imm8[j] + dst[i+63:i] := b[i+63:i] + ELSE + dst[i+63:i] := a[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX +
immintrin.h
+ Swizzle +
+ + + + + + Blend packed single-precision (32-bit) floating-point elements from "a" and "b" using control mask "imm8", and store the results in "dst". + +FOR j := 0 to 7 + i := j*32 + IF imm8[j] + dst[i+31:i] := b[i+31:i] + ELSE + dst[i+31:i] := a[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX +
immintrin.h
+ Swizzle +
+ + + + + + Blend packed double-precision (64-bit) floating-point elements from "a" and "b" using "mask", and store the results in "dst". + +FOR j := 0 to 3 + i := j*64 + IF mask[i+63] + dst[i+63:i] := b[i+63:i] + ELSE + dst[i+63:i] := a[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX +
immintrin.h
+ Swizzle +
+ + + + + + Blend packed single-precision (32-bit) floating-point elements from "a" and "b" using "mask", and store the results in "dst". + +FOR j := 0 to 7 + i := j*32 + IF mask[i+31] + dst[i+31:i] := b[i+31:i] + ELSE + dst[i+31:i] := a[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX +
immintrin.h
+ Swizzle +
+ + + + + + Shuffle double-precision (64-bit) floating-point elements within 128-bit lanes using the control in "imm8", and store the results in "dst". + +dst[63:0] := (imm8[0] == 0) ? a[63:0] : a[127:64] +dst[127:64] := (imm8[1] == 0) ? b[63:0] : b[127:64] +dst[191:128] := (imm8[2] == 0) ? a[191:128] : a[255:192] +dst[255:192] := (imm8[3] == 0) ? b[191:128] : b[255:192] +dst[MAX:256] := 0 + + + AVX +
immintrin.h
+ Swizzle +
+ + + + + + Shuffle single-precision (32-bit) floating-point elements in "a" within 128-bit lanes using the control in "imm8", and store the results in "dst". + +DEFINE SELECT4(src, control) { + CASE(control[1:0]) OF + 0: tmp[31:0] := src[31:0] + 1: tmp[31:0] := src[63:32] + 2: tmp[31:0] := src[95:64] + 3: tmp[31:0] := src[127:96] + ESAC + RETURN tmp[31:0] +} +dst[31:0] := SELECT4(a[127:0], imm8[1:0]) +dst[63:32] := SELECT4(a[127:0], imm8[3:2]) +dst[95:64] := SELECT4(b[127:0], imm8[5:4]) +dst[127:96] := SELECT4(b[127:0], imm8[7:6]) +dst[159:128] := SELECT4(a[255:128], imm8[1:0]) +dst[191:160] := SELECT4(a[255:128], imm8[3:2]) +dst[223:192] := SELECT4(b[255:128], imm8[5:4]) +dst[255:224] := SELECT4(b[255:128], imm8[7:6]) +dst[MAX:256] := 0 + + + AVX +
immintrin.h
+ Swizzle +
+ + + + + Extract 128 bits (composed of 4 packed single-precision (32-bit) floating-point elements) from "a", selected with "imm8", and store the result in "dst". + +CASE imm8[0] OF +0: dst[127:0] := a[127:0] +1: dst[127:0] := a[255:128] +ESAC +dst[MAX:128] := 0 + + + AVX +
immintrin.h
+ Swizzle +
+ + + + + Extract 128 bits (composed of 2 packed double-precision (64-bit) floating-point elements) from "a", selected with "imm8", and store the result in "dst". + +CASE imm8[0] OF +0: dst[127:0] := a[127:0] +1: dst[127:0] := a[255:128] +ESAC +dst[MAX:128] := 0 + + + AVX +
immintrin.h
+ Swizzle +
+ + + + + Extract 128 bits (composed of integer data) from "a", selected with "imm8", and store the result in "dst". + +CASE imm8[0] OF +0: dst[127:0] := a[127:0] +1: dst[127:0] := a[255:128] +ESAC +dst[MAX:128] := 0 + + + AVX +
immintrin.h
+ Swizzle +
+ + + + + Extract a 32-bit integer from "a", selected with "index", and store the result in "dst". + +dst[31:0] := (a[255:0] >> (index[2:0] * 32))[31:0] + + AVX +
immintrin.h
+ Swizzle +
+ + + + + Extract a 64-bit integer from "a", selected with "index", and store the result in "dst". + +dst[63:0] := (a[255:0] >> (index[1:0] * 64))[63:0] + + AVX +
immintrin.h
+ Swizzle +
+ + + + + Shuffle single-precision (32-bit) floating-point elements in "a" within 128-bit lanes using the control in "b", and store the results in "dst". + +DEFINE SELECT4(src, control) { + CASE(control[1:0]) OF + 0: tmp[31:0] := src[31:0] + 1: tmp[31:0] := src[63:32] + 2: tmp[31:0] := src[95:64] + 3: tmp[31:0] := src[127:96] + ESAC + RETURN tmp[31:0] +} +dst[31:0] := SELECT4(a[127:0], b[1:0]) +dst[63:32] := SELECT4(a[127:0], b[33:32]) +dst[95:64] := SELECT4(a[127:0], b[65:64]) +dst[127:96] := SELECT4(a[127:0], b[97:96]) +dst[159:128] := SELECT4(a[255:128], b[129:128]) +dst[191:160] := SELECT4(a[255:128], b[161:160]) +dst[223:192] := SELECT4(a[255:128], b[193:192]) +dst[255:224] := SELECT4(a[255:128], b[225:224]) +dst[MAX:256] := 0 + + + AVX +
immintrin.h
+ Swizzle +
+ + + + + Shuffle single-precision (32-bit) floating-point elements in "a" using the control in "b", and store the results in "dst". + +DEFINE SELECT4(src, control) { + CASE(control[1:0]) OF + 0: tmp[31:0] := src[31:0] + 1: tmp[31:0] := src[63:32] + 2: tmp[31:0] := src[95:64] + 3: tmp[31:0] := src[127:96] + ESAC + RETURN tmp[31:0] +} +dst[31:0] := SELECT4(a[127:0], b[1:0]) +dst[63:32] := SELECT4(a[127:0], b[33:32]) +dst[95:64] := SELECT4(a[127:0], b[65:64]) +dst[127:96] := SELECT4(a[127:0], b[97:96]) +dst[MAX:128] := 0 + + + AVX +
immintrin.h
+ Swizzle +
+ + + + + Shuffle single-precision (32-bit) floating-point elements in "a" within 128-bit lanes using the control in "imm8", and store the results in "dst". + +DEFINE SELECT4(src, control) { + CASE(control[1:0]) OF + 0: tmp[31:0] := src[31:0] + 1: tmp[31:0] := src[63:32] + 2: tmp[31:0] := src[95:64] + 3: tmp[31:0] := src[127:96] + ESAC + RETURN tmp[31:0] +} +dst[31:0] := SELECT4(a[127:0], imm8[1:0]) +dst[63:32] := SELECT4(a[127:0], imm8[3:2]) +dst[95:64] := SELECT4(a[127:0], imm8[5:4]) +dst[127:96] := SELECT4(a[127:0], imm8[7:6]) +dst[159:128] := SELECT4(a[255:128], imm8[1:0]) +dst[191:160] := SELECT4(a[255:128], imm8[3:2]) +dst[223:192] := SELECT4(a[255:128], imm8[5:4]) +dst[255:224] := SELECT4(a[255:128], imm8[7:6]) +dst[MAX:256] := 0 + + + AVX +
immintrin.h
+ Swizzle +
+ + + + + Shuffle single-precision (32-bit) floating-point elements in "a" using the control in "imm8", and store the results in "dst". + +DEFINE SELECT4(src, control) { + CASE(control[1:0]) OF + 0: tmp[31:0] := src[31:0] + 1: tmp[31:0] := src[63:32] + 2: tmp[31:0] := src[95:64] + 3: tmp[31:0] := src[127:96] + ESAC + RETURN tmp[31:0] +} +dst[31:0] := SELECT4(a[127:0], imm8[1:0]) +dst[63:32] := SELECT4(a[127:0], imm8[3:2]) +dst[95:64] := SELECT4(a[127:0], imm8[5:4]) +dst[127:96] := SELECT4(a[127:0], imm8[7:6]) +dst[MAX:128] := 0 + + + AVX +
immintrin.h
+ Swizzle +
+ + + + + Shuffle double-precision (64-bit) floating-point elements in "a" within 128-bit lanes using the control in "b", and store the results in "dst". + +IF (b[1] == 0) dst[63:0] := a[63:0]; FI +IF (b[1] == 1) dst[63:0] := a[127:64]; FI +IF (b[65] == 0) dst[127:64] := a[63:0]; FI +IF (b[65] == 1) dst[127:64] := a[127:64]; FI +IF (b[129] == 0) dst[191:128] := a[191:128]; FI +IF (b[129] == 1) dst[191:128] := a[255:192]; FI +IF (b[193] == 0) dst[255:192] := a[191:128]; FI +IF (b[193] == 1) dst[255:192] := a[255:192]; FI +dst[MAX:256] := 0 + + + AVX +
immintrin.h
+ Swizzle +
+ + + + + Shuffle double-precision (64-bit) floating-point elements in "a" using the control in "b", and store the results in "dst". + +IF (b[1] == 0) dst[63:0] := a[63:0]; FI +IF (b[1] == 1) dst[63:0] := a[127:64]; FI +IF (b[65] == 0) dst[127:64] := a[63:0]; FI +IF (b[65] == 1) dst[127:64] := a[127:64]; FI +dst[MAX:128] := 0 + + + AVX +
immintrin.h
+ Swizzle +
+ + + + + Shuffle double-precision (64-bit) floating-point elements in "a" within 128-bit lanes using the control in "imm8", and store the results in "dst". + +IF (imm8[0] == 0) dst[63:0] := a[63:0]; FI +IF (imm8[0] == 1) dst[63:0] := a[127:64]; FI +IF (imm8[1] == 0) dst[127:64] := a[63:0]; FI +IF (imm8[1] == 1) dst[127:64] := a[127:64]; FI +IF (imm8[2] == 0) dst[191:128] := a[191:128]; FI +IF (imm8[2] == 1) dst[191:128] := a[255:192]; FI +IF (imm8[3] == 0) dst[255:192] := a[191:128]; FI +IF (imm8[3] == 1) dst[255:192] := a[255:192]; FI +dst[MAX:256] := 0 + + + AVX +
immintrin.h
+ Swizzle +
+ + + + + Shuffle double-precision (64-bit) floating-point elements in "a" using the control in "imm8", and store the results in "dst". + +IF (imm8[0] == 0) dst[63:0] := a[63:0]; FI +IF (imm8[0] == 1) dst[63:0] := a[127:64]; FI +IF (imm8[1] == 0) dst[127:64] := a[63:0]; FI +IF (imm8[1] == 1) dst[127:64] := a[127:64]; FI +dst[MAX:128] := 0 + + + AVX +
immintrin.h
+ Swizzle +
+ + + + + + Shuffle 128-bits (composed of 4 packed single-precision (32-bit) floating-point elements) selected by "imm8" from "a" and "b", and store the results in "dst". + +DEFINE SELECT4(src1, src2, control) { + CASE(control[1:0]) OF + 0: tmp[127:0] := src1[127:0] + 1: tmp[127:0] := src1[255:128] + 2: tmp[127:0] := src2[127:0] + 3: tmp[127:0] := src2[255:128] + ESAC + IF control[3] + tmp[127:0] := 0 + FI + RETURN tmp[127:0] +} +dst[127:0] := SELECT4(a[255:0], b[255:0], imm8[3:0]) +dst[255:128] := SELECT4(a[255:0], b[255:0], imm8[7:4]) +dst[MAX:256] := 0 + + + AVX +
immintrin.h
+ Swizzle +
+ + + + + + Shuffle 128-bits (composed of 2 packed double-precision (64-bit) floating-point elements) selected by "imm8" from "a" and "b", and store the results in "dst". + +DEFINE SELECT4(src1, src2, control) { + CASE(control[1:0]) OF + 0: tmp[127:0] := src1[127:0] + 1: tmp[127:0] := src1[255:128] + 2: tmp[127:0] := src2[127:0] + 3: tmp[127:0] := src2[255:128] + ESAC + IF control[3] + tmp[127:0] := 0 + FI + RETURN tmp[127:0] +} +dst[127:0] := SELECT4(a[255:0], b[255:0], imm8[3:0]) +dst[255:128] := SELECT4(a[255:0], b[255:0], imm8[7:4]) +dst[MAX:256] := 0 + + + AVX +
immintrin.h
+ Swizzle +
+ + + + + + Shuffle 128-bits (composed of integer data) selected by "imm8" from "a" and "b", and store the results in "dst". + +DEFINE SELECT4(src1, src2, control) { + CASE(control[1:0]) OF + 0: tmp[127:0] := src1[127:0] + 1: tmp[127:0] := src1[255:128] + 2: tmp[127:0] := src2[127:0] + 3: tmp[127:0] := src2[255:128] + ESAC + IF control[3] + tmp[127:0] := 0 + FI + RETURN tmp[127:0] +} +dst[127:0] := SELECT4(a[255:0], b[255:0], imm8[3:0]) +dst[255:128] := SELECT4(a[255:0], b[255:0], imm8[7:4]) +dst[MAX:256] := 0 + + + AVX +
immintrin.h
+ Swizzle +
+ + + + + + Copy "a" to "dst", then insert 128 bits (composed of 4 packed single-precision (32-bit) floating-point elements) from "b" into "dst" at the location specified by "imm8". + +dst[255:0] := a[255:0] +CASE (imm8[0]) OF +0: dst[127:0] := b[127:0] +1: dst[255:128] := b[127:0] +ESAC +dst[MAX:256] := 0 + + + AVX +
immintrin.h
+ Swizzle +
+ + + + + + Copy "a" to "dst", then insert 128 bits (composed of 2 packed double-precision (64-bit) floating-point elements) from "b" into "dst" at the location specified by "imm8". + +dst[255:0] := a[255:0] +CASE imm8[0] OF +0: dst[127:0] := b[127:0] +1: dst[255:128] := b[127:0] +ESAC +dst[MAX:256] := 0 + + + AVX +
immintrin.h
+ Swizzle +
+ + + + + + Copy "a" to "dst", then insert 128 bits from "b" into "dst" at the location specified by "imm8". + +dst[255:0] := a[255:0] +CASE (imm8[0]) OF +0: dst[127:0] := b[127:0] +1: dst[255:128] := b[127:0] +ESAC +dst[MAX:256] := 0 + + + AVX +
immintrin.h
+ Swizzle +
+ + + + + + Copy "a" to "dst", and insert the 8-bit integer "i" into "dst" at the location specified by "index". + +dst[255:0] := a[255:0] +sel := index[4:0]*8 +dst[sel+7:sel] := i[7:0] + + AVX +
immintrin.h
+ Swizzle +
+ + + + + + Copy "a" to "dst", and insert the 16-bit integer "i" into "dst" at the location specified by "index". + +dst[255:0] := a[255:0] +sel := index[3:0]*16 +dst[sel+15:sel] := i[15:0] + + AVX +
immintrin.h
+ Swizzle +
+ + + + + + Copy "a" to "dst", and insert the 32-bit integer "i" into "dst" at the location specified by "index". + +dst[255:0] := a[255:0] +sel := index[2:0]*32 +dst[sel+31:sel] := i[31:0] + + AVX +
immintrin.h
+ Swizzle +
+ + + + + + Copy "a" to "dst", and insert the 64-bit integer "i" into "dst" at the location specified by "index". + +dst[255:0] := a[255:0] +sel := index[1:0]*64 +dst[sel+63:sel] := i[63:0] + + AVX +
immintrin.h
+ Swizzle +
+ + + + + Unpack and interleave double-precision (64-bit) floating-point elements from the high half of each 128-bit lane in "a" and "b", and store the results in "dst". + +DEFINE INTERLEAVE_HIGH_QWORDS(src1[127:0], src2[127:0]) { + dst[63:0] := src1[127:64] + dst[127:64] := src2[127:64] + RETURN dst[127:0] +} +dst[127:0] := INTERLEAVE_HIGH_QWORDS(a[127:0], b[127:0]) +dst[255:128] := INTERLEAVE_HIGH_QWORDS(a[255:128], b[255:128]) +dst[MAX:256] := 0 + + + AVX +
immintrin.h
+ Swizzle +
+ + + + + Unpack and interleave single-precision (32-bit) floating-point elements from the high half of each 128-bit lane in "a" and "b", and store the results in "dst". + +DEFINE INTERLEAVE_HIGH_DWORDS(src1[127:0], src2[127:0]) { + dst[31:0] := src1[95:64] + dst[63:32] := src2[95:64] + dst[95:64] := src1[127:96] + dst[127:96] := src2[127:96] + RETURN dst[127:0] +} +dst[127:0] := INTERLEAVE_HIGH_DWORDS(a[127:0], b[127:0]) +dst[255:128] := INTERLEAVE_HIGH_DWORDS(a[255:128], b[255:128]) +dst[MAX:256] := 0 + + + AVX +
immintrin.h
+ Swizzle +
+ + + + + Unpack and interleave double-precision (64-bit) floating-point elements from the low half of each 128-bit lane in "a" and "b", and store the results in "dst". + +DEFINE INTERLEAVE_QWORDS(src1[127:0], src2[127:0]) { + dst[63:0] := src1[63:0] + dst[127:64] := src2[63:0] + RETURN dst[127:0] +} +dst[127:0] := INTERLEAVE_QWORDS(a[127:0], b[127:0]) +dst[255:128] := INTERLEAVE_QWORDS(a[255:128], b[255:128]) +dst[MAX:256] := 0 + + + AVX +
immintrin.h
+ Swizzle +
+ + + + + Unpack and interleave single-precision (32-bit) floating-point elements from the low half of each 128-bit lane in "a" and "b", and store the results in "dst". + +DEFINE INTERLEAVE_DWORDS(src1[127:0], src2[127:0]) { + dst[31:0] := src1[31:0] + dst[63:32] := src2[31:0] + dst[95:64] := src1[63:32] + dst[127:96] := src2[63:32] + RETURN dst[127:0] +} +dst[127:0] := INTERLEAVE_DWORDS(a[127:0], b[127:0]) +dst[255:128] := INTERLEAVE_DWORDS(a[255:128], b[255:128]) +dst[MAX:256] := 0 + + + AVX +
immintrin.h
+ Swizzle +
+ + + + + Compare packed double-precision (64-bit) floating-point elements in "a" and "b", and store packed maximum values in "dst". [max_float_note] + +FOR j := 0 to 3 + i := j*64 + dst[i+63:i] := MAX(a[i+63:i], b[i+63:i]) +ENDFOR +dst[MAX:256] := 0 + + + AVX +
immintrin.h
+ Special Math Functions +
+ + + + + Compare packed single-precision (32-bit) floating-point elements in "a" and "b", and store packed maximum values in "dst". [max_float_note] + +FOR j := 0 to 7 + i := j*32 + dst[i+31:i] := MAX(a[i+31:i], b[i+31:i]) +ENDFOR +dst[MAX:256] := 0 + + + AVX +
immintrin.h
+ Special Math Functions +
+ + + + + Compare packed double-precision (64-bit) floating-point elements in "a" and "b", and store packed minimum values in "dst". [min_float_note] + +FOR j := 0 to 3 + i := j*64 + dst[i+63:i] := MIN(a[i+63:i], b[i+63:i]) +ENDFOR +dst[MAX:256] := 0 + + + AVX +
immintrin.h
+ Special Math Functions +
+ + + + + Compare packed single-precision (32-bit) floating-point elements in "a" and "b", and store packed minimum values in "dst". [min_float_note] + +FOR j := 0 to 7 + i := j*32 + dst[i+31:i] := MIN(a[i+31:i], b[i+31:i]) +ENDFOR +dst[MAX:256] := 0 + + + AVX +
immintrin.h
+ Special Math Functions +
+ + + + + Round the packed double-precision (64-bit) floating-point elements in "a" using the "rounding" parameter, and store the results as packed double-precision floating-point elements in "dst". + [round_note] + +FOR j := 0 to 3 + i := j*64 + dst[i+63:i] := ROUND(a[i+63:i], rounding) +ENDFOR +dst[MAX:256] := 0 + + + AVX +
immintrin.h
+ Special Math Functions +
+ + + + + Round the packed single-precision (32-bit) floating-point elements in "a" using the "rounding" parameter, and store the results as packed single-precision floating-point elements in "dst". + [round_note] + +FOR j := 0 to 7 + i := j*32 + dst[i+31:i] := ROUND(a[i+31:i], rounding) +ENDFOR +dst[MAX:256] := 0 + + + AVX +
immintrin.h
+ Special Math Functions +
+ + + + Round the packed single-precision (32-bit) floating-point elements in "a" down to an integer value, and store the results as packed single-precision floating-point elements in "dst". + +FOR j := 0 to 7 + i := j*32 + dst[i+31:i] := FLOOR(a[i+31:i]) +ENDFOR +dst[MAX:256] := 0 + + + AVX +
immintrin.h
+ Special Math Functions +
+ + + + Round the packed single-precision (32-bit) floating-point elements in "a" up to an integer value, and store the results as packed single-precision floating-point elements in "dst". + +FOR j := 0 to 7 + i := j*32 + dst[i+31:i] := CEIL(a[i+31:i]) +ENDFOR +dst[MAX:256] := 0 + + + AVX +
immintrin.h
+ Special Math Functions +
+ + + + Round the packed double-precision (64-bit) floating-point elements in "a" down to an integer value, and store the results as packed double-precision floating-point elements in "dst". + +FOR j := 0 to 3 + i := j*64 + dst[i+63:i] := FLOOR(a[i+63:i]) +ENDFOR +dst[MAX:256] := 0 + + + AVX +
immintrin.h
+ Special Math Functions +
+ + + + Round the packed double-precision (64-bit) floating-point elements in "a" up to an integer value, and store the results as packed double-precision floating-point elements in "dst". + +FOR j := 0 to 3 + i := j*64 + dst[i+63:i] := CEIL(a[i+63:i]) +ENDFOR +dst[MAX:256] := 0 + + + AVX +
immintrin.h
+ Special Math Functions +
+ + + + + + Compare packed double-precision (64-bit) floating-point elements in "a" and "b" based on the comparison operand specified by "imm8", and store the results in "dst". + CASE (imm8[4:0]) OF +0: OP := _CMP_EQ_OQ +1: OP := _CMP_LT_OS +2: OP := _CMP_LE_OS +3: OP := _CMP_UNORD_Q +4: OP := _CMP_NEQ_UQ +5: OP := _CMP_NLT_US +6: OP := _CMP_NLE_US +7: OP := _CMP_ORD_Q +8: OP := _CMP_EQ_UQ +9: OP := _CMP_NGE_US +10: OP := _CMP_NGT_US +11: OP := _CMP_FALSE_OQ +12: OP := _CMP_NEQ_OQ +13: OP := _CMP_GE_OS +14: OP := _CMP_GT_OS +15: OP := _CMP_TRUE_UQ +16: OP := _CMP_EQ_OS +17: OP := _CMP_LT_OQ +18: OP := _CMP_LE_OQ +19: OP := _CMP_UNORD_S +20: OP := _CMP_NEQ_US +21: OP := _CMP_NLT_UQ +22: OP := _CMP_NLE_UQ +23: OP := _CMP_ORD_S +24: OP := _CMP_EQ_US +25: OP := _CMP_NGE_UQ +26: OP := _CMP_NGT_UQ +27: OP := _CMP_FALSE_OS +28: OP := _CMP_NEQ_OS +29: OP := _CMP_GE_OQ +30: OP := _CMP_GT_OQ +31: OP := _CMP_TRUE_US +ESAC +FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := ( a[i+63:i] OP b[i+63:i] ) ? 0xFFFFFFFFFFFFFFFF : 0 +ENDFOR +dst[MAX:128] := 0 + + + AVX +
immintrin.h
+ Compare +
+ + + + + + Compare packed double-precision (64-bit) floating-point elements in "a" and "b" based on the comparison operand specified by "imm8", and store the results in "dst". + CASE (imm8[4:0]) OF +0: OP := _CMP_EQ_OQ +1: OP := _CMP_LT_OS +2: OP := _CMP_LE_OS +3: OP := _CMP_UNORD_Q +4: OP := _CMP_NEQ_UQ +5: OP := _CMP_NLT_US +6: OP := _CMP_NLE_US +7: OP := _CMP_ORD_Q +8: OP := _CMP_EQ_UQ +9: OP := _CMP_NGE_US +10: OP := _CMP_NGT_US +11: OP := _CMP_FALSE_OQ +12: OP := _CMP_NEQ_OQ +13: OP := _CMP_GE_OS +14: OP := _CMP_GT_OS +15: OP := _CMP_TRUE_UQ +16: OP := _CMP_EQ_OS +17: OP := _CMP_LT_OQ +18: OP := _CMP_LE_OQ +19: OP := _CMP_UNORD_S +20: OP := _CMP_NEQ_US +21: OP := _CMP_NLT_UQ +22: OP := _CMP_NLE_UQ +23: OP := _CMP_ORD_S +24: OP := _CMP_EQ_US +25: OP := _CMP_NGE_UQ +26: OP := _CMP_NGT_UQ +27: OP := _CMP_FALSE_OS +28: OP := _CMP_NEQ_OS +29: OP := _CMP_GE_OQ +30: OP := _CMP_GT_OQ +31: OP := _CMP_TRUE_US +ESAC +FOR j := 0 to 3 + i := j*64 + dst[i+63:i] := ( a[i+63:i] OP b[i+63:i] ) ? 0xFFFFFFFFFFFFFFFF : 0 +ENDFOR +dst[MAX:256] := 0 + + + AVX +
immintrin.h
+ Compare +
+ + + + + + Compare packed single-precision (32-bit) floating-point elements in "a" and "b" based on the comparison operand specified by "imm8", and store the results in "dst". + CASE (imm8[4:0]) OF +0: OP := _CMP_EQ_OQ +1: OP := _CMP_LT_OS +2: OP := _CMP_LE_OS +3: OP := _CMP_UNORD_Q +4: OP := _CMP_NEQ_UQ +5: OP := _CMP_NLT_US +6: OP := _CMP_NLE_US +7: OP := _CMP_ORD_Q +8: OP := _CMP_EQ_UQ +9: OP := _CMP_NGE_US +10: OP := _CMP_NGT_US +11: OP := _CMP_FALSE_OQ +12: OP := _CMP_NEQ_OQ +13: OP := _CMP_GE_OS +14: OP := _CMP_GT_OS +15: OP := _CMP_TRUE_UQ +16: OP := _CMP_EQ_OS +17: OP := _CMP_LT_OQ +18: OP := _CMP_LE_OQ +19: OP := _CMP_UNORD_S +20: OP := _CMP_NEQ_US +21: OP := _CMP_NLT_UQ +22: OP := _CMP_NLE_UQ +23: OP := _CMP_ORD_S +24: OP := _CMP_EQ_US +25: OP := _CMP_NGE_UQ +26: OP := _CMP_NGT_UQ +27: OP := _CMP_FALSE_OS +28: OP := _CMP_NEQ_OS +29: OP := _CMP_GE_OQ +30: OP := _CMP_GT_OQ +31: OP := _CMP_TRUE_US +ESAC +FOR j := 0 to 3 + i := j*32 + dst[i+31:i] := ( a[i+31:i] OP b[i+31:i] ) ? 0xFFFFFFFF : 0 +ENDFOR +dst[MAX:128] := 0 + + + AVX +
immintrin.h
+ Compare +
+ + + + + + Compare packed single-precision (32-bit) floating-point elements in "a" and "b" based on the comparison operand specified by "imm8", and store the results in "dst". + CASE (imm8[4:0]) OF +0: OP := _CMP_EQ_OQ +1: OP := _CMP_LT_OS +2: OP := _CMP_LE_OS +3: OP := _CMP_UNORD_Q +4: OP := _CMP_NEQ_UQ +5: OP := _CMP_NLT_US +6: OP := _CMP_NLE_US +7: OP := _CMP_ORD_Q +8: OP := _CMP_EQ_UQ +9: OP := _CMP_NGE_US +10: OP := _CMP_NGT_US +11: OP := _CMP_FALSE_OQ +12: OP := _CMP_NEQ_OQ +13: OP := _CMP_GE_OS +14: OP := _CMP_GT_OS +15: OP := _CMP_TRUE_UQ +16: OP := _CMP_EQ_OS +17: OP := _CMP_LT_OQ +18: OP := _CMP_LE_OQ +19: OP := _CMP_UNORD_S +20: OP := _CMP_NEQ_US +21: OP := _CMP_NLT_UQ +22: OP := _CMP_NLE_UQ +23: OP := _CMP_ORD_S +24: OP := _CMP_EQ_US +25: OP := _CMP_NGE_UQ +26: OP := _CMP_NGT_UQ +27: OP := _CMP_FALSE_OS +28: OP := _CMP_NEQ_OS +29: OP := _CMP_GE_OQ +30: OP := _CMP_GT_OQ +31: OP := _CMP_TRUE_US +ESAC +FOR j := 0 to 7 + i := j*32 + dst[i+31:i] := ( a[i+31:i] OP b[i+31:i] ) ? 0xFFFFFFFF : 0 +ENDFOR +dst[MAX:256] := 0 + + + AVX +
immintrin.h
+ Compare +
+ + + + + + Compare the lower double-precision (64-bit) floating-point element in "a" and "b" based on the comparison operand specified by "imm8", store the result in the lower element of "dst", and copy the upper element from "a" to the upper element of "dst". + CASE (imm8[4:0]) OF +0: OP := _CMP_EQ_OQ +1: OP := _CMP_LT_OS +2: OP := _CMP_LE_OS +3: OP := _CMP_UNORD_Q +4: OP := _CMP_NEQ_UQ +5: OP := _CMP_NLT_US +6: OP := _CMP_NLE_US +7: OP := _CMP_ORD_Q +8: OP := _CMP_EQ_UQ +9: OP := _CMP_NGE_US +10: OP := _CMP_NGT_US +11: OP := _CMP_FALSE_OQ +12: OP := _CMP_NEQ_OQ +13: OP := _CMP_GE_OS +14: OP := _CMP_GT_OS +15: OP := _CMP_TRUE_UQ +16: OP := _CMP_EQ_OS +17: OP := _CMP_LT_OQ +18: OP := _CMP_LE_OQ +19: OP := _CMP_UNORD_S +20: OP := _CMP_NEQ_US +21: OP := _CMP_NLT_UQ +22: OP := _CMP_NLE_UQ +23: OP := _CMP_ORD_S +24: OP := _CMP_EQ_US +25: OP := _CMP_NGE_UQ +26: OP := _CMP_NGT_UQ +27: OP := _CMP_FALSE_OS +28: OP := _CMP_NEQ_OS +29: OP := _CMP_GE_OQ +30: OP := _CMP_GT_OQ +31: OP := _CMP_TRUE_US +ESAC +dst[63:0] := ( a[63:0] OP b[63:0] ) ? 0xFFFFFFFFFFFFFFFF : 0 +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + AVX +
immintrin.h
+ Compare +
+ + + + + + Compare the lower single-precision (32-bit) floating-point element in "a" and "b" based on the comparison operand specified by "imm8", store the result in the lower element of "dst", and copy the upper 3 packed elements from "a" to the upper elements of "dst". + CASE (imm8[4:0]) OF +0: OP := _CMP_EQ_OQ +1: OP := _CMP_LT_OS +2: OP := _CMP_LE_OS +3: OP := _CMP_UNORD_Q +4: OP := _CMP_NEQ_UQ +5: OP := _CMP_NLT_US +6: OP := _CMP_NLE_US +7: OP := _CMP_ORD_Q +8: OP := _CMP_EQ_UQ +9: OP := _CMP_NGE_US +10: OP := _CMP_NGT_US +11: OP := _CMP_FALSE_OQ +12: OP := _CMP_NEQ_OQ +13: OP := _CMP_GE_OS +14: OP := _CMP_GT_OS +15: OP := _CMP_TRUE_UQ +16: OP := _CMP_EQ_OS +17: OP := _CMP_LT_OQ +18: OP := _CMP_LE_OQ +19: OP := _CMP_UNORD_S +20: OP := _CMP_NEQ_US +21: OP := _CMP_NLT_UQ +22: OP := _CMP_NLE_UQ +23: OP := _CMP_ORD_S +24: OP := _CMP_EQ_US +25: OP := _CMP_NGE_UQ +26: OP := _CMP_NGT_UQ +27: OP := _CMP_FALSE_OS +28: OP := _CMP_NEQ_OS +29: OP := _CMP_GE_OQ +30: OP := _CMP_GT_OQ +31: OP := _CMP_TRUE_US +ESAC +dst[31:0] := ( a[31:0] OP b[31:0] ) ? 0xFFFFFFFF : 0 +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX +
immintrin.h
+ Compare +
+ + + + Convert packed signed 32-bit integers in "a" to packed double-precision (64-bit) floating-point elements, and store the results in "dst". + +FOR j := 0 to 3 + i := j*32 + m := j*64 + dst[m+63:m] := Convert_Int32_To_FP64(a[i+31:i]) +ENDFOR +dst[MAX:256] := 0 + + + AVX +
immintrin.h
+ Convert +
+ + + + Convert packed signed 32-bit integers in "a" to packed single-precision (32-bit) floating-point elements, and store the results in "dst". + +FOR j := 0 to 7 + i := 32*j + dst[i+31:i] := Convert_Int32_To_FP32(a[i+31:i]) +ENDFOR +dst[MAX:256] := 0 + + + AVX +
immintrin.h
+ Convert +
+ + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed single-precision (32-bit) floating-point elements, and store the results in "dst". + +FOR j := 0 to 3 + i := 32*j + k := 64*j + dst[i+31:i] := Convert_FP64_To_FP32(a[k+63:k]) +ENDFOR +dst[MAX:128] := 0 + + + AVX +
immintrin.h
+ Convert +
+ + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed 32-bit integers, and store the results in "dst". + +FOR j := 0 to 7 + i := 32*j + dst[i+31:i] := Convert_FP32_To_Int32(a[i+31:i]) +ENDFOR +dst[MAX:256] := 0 + + + AVX +
immintrin.h
+ Convert +
+ + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed double-precision (64-bit) floating-point elements, and store the results in "dst". + +FOR j := 0 to 3 + i := 64*j + k := 32*j + dst[i+63:i] := Convert_FP32_To_FP64(a[k+31:k]) +ENDFOR +dst[MAX:256] := 0 + + + AVX +
immintrin.h
+ Convert +
+ + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed 32-bit integers with truncation, and store the results in "dst". + +FOR j := 0 to 3 + i := 32*j + k := 64*j + dst[i+31:i] := Convert_FP64_To_Int32_Truncate(a[k+63:k]) +ENDFOR +dst[MAX:128] := 0 + + + AVX +
immintrin.h
+ Convert +
+ + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed 32-bit integers, and store the results in "dst". + +FOR j := 0 to 3 + i := 32*j + k := 64*j + dst[i+31:i] := Convert_FP64_To_Int32(a[k+63:k]) +ENDFOR +dst[MAX:128] := 0 + + + AVX +
immintrin.h
+ Convert +
+ + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed 32-bit integers with truncation, and store the results in "dst". + +FOR j := 0 to 7 + i := 32*j + dst[i+31:i] := Convert_FP32_To_Int32_Truncate(a[i+31:i]) +ENDFOR +dst[MAX:256] := 0 + + + AVX +
immintrin.h
+ Convert +
+ + + + Copy the lower single-precision (32-bit) floating-point element of "a" to "dst". + +dst[31:0] := a[31:0] + + + AVX +
immintrin.h
+ Convert +
+ + + + Copy the lower double-precision (64-bit) floating-point element of "a" to "dst". + +dst[63:0] := a[63:0] + + + AVX +
immintrin.h
+ Convert +
+ + + + Copy the lower 32-bit integer in "a" to "dst". + +dst[31:0] := a[31:0] + + + AVX +
immintrin.h
+ Convert +
+ + + + Zero the contents of all XMM or YMM registers. + YMM0[MAX:0] := 0 +YMM1[MAX:0] := 0 +YMM2[MAX:0] := 0 +YMM3[MAX:0] := 0 +YMM4[MAX:0] := 0 +YMM5[MAX:0] := 0 +YMM6[MAX:0] := 0 +YMM7[MAX:0] := 0 +IF _64_BIT_MODE + YMM8[MAX:0] := 0 + YMM9[MAX:0] := 0 + YMM10[MAX:0] := 0 + YMM11[MAX:0] := 0 + YMM12[MAX:0] := 0 + YMM13[MAX:0] := 0 + YMM14[MAX:0] := 0 + YMM15[MAX:0] := 0 +FI + + + AVX +
immintrin.h
+ General Support +
+ + + + Zero the upper 128 bits of all YMM registers; the lower 128-bits of the registers are unmodified. + YMM0[MAX:128] := 0 +YMM1[MAX:128] := 0 +YMM2[MAX:128] := 0 +YMM3[MAX:128] := 0 +YMM4[MAX:128] := 0 +YMM5[MAX:128] := 0 +YMM6[MAX:128] := 0 +YMM7[MAX:128] := 0 +IF _64_BIT_MODE + YMM8[MAX:128] := 0 + YMM9[MAX:128] := 0 + YMM10[MAX:128] := 0 + YMM11[MAX:128] := 0 + YMM12[MAX:128] := 0 + YMM13[MAX:128] := 0 + YMM14[MAX:128] := 0 + YMM15[MAX:128] := 0 +FI + + + AVX +
immintrin.h
+ General Support +
+ + + + Return vector of type __m256 with undefined elements. + AVX +
immintrin.h
+ General Support +
+ + + + Return vector of type __m256d with undefined elements. + AVX +
immintrin.h
+ General Support +
+ + + + Return vector of type __m256i with undefined elements. + AVX +
immintrin.h
+ General Support +
+ + + + Broadcast a single-precision (32-bit) floating-point element from memory to all elements of "dst". + +tmp[31:0] := MEM[mem_addr+31:mem_addr] +FOR j := 0 to 7 + i := j*32 + dst[i+31:i] := tmp[31:0] +ENDFOR +dst[MAX:256] := 0 + + + AVX +
immintrin.h
+ Load +
+ + Swizzle + + + Broadcast a single-precision (32-bit) floating-point element from memory to all elements of "dst". + +tmp[31:0] := MEM[mem_addr+31:mem_addr] +FOR j := 0 to 3 + i := j*32 + dst[i+31:i] := tmp[31:0] +ENDFOR +dst[MAX:128] := 0 + + + AVX +
immintrin.h
+ Load +
+ + Swizzle + + + Broadcast a double-precision (64-bit) floating-point element from memory to all elements of "dst". + +tmp[63:0] := MEM[mem_addr+63:mem_addr] +FOR j := 0 to 3 + i := j*64 + dst[i+63:i] := tmp[63:0] +ENDFOR +dst[MAX:256] := 0 + + + AVX +
immintrin.h
+ Load +
+ + Swizzle + + + Broadcast 128 bits from memory (composed of 4 packed single-precision (32-bit) floating-point elements) to all elements of "dst". + +tmp[127:0] := MEM[mem_addr+127:mem_addr] +dst[127:0] := tmp[127:0] +dst[255:128] := tmp[127:0] +dst[MAX:256] := 0 + + + AVX +
immintrin.h
+ Load +
+ + Swizzle + + + Broadcast 128 bits from memory (composed of 2 packed double-precision (64-bit) floating-point elements) to all elements of "dst". + +tmp[127:0] := MEM[mem_addr+127:mem_addr] +dst[127:0] := tmp[127:0] +dst[255:128] := tmp[127:0] +dst[MAX:256] := 0 + + + AVX +
immintrin.h
+ Load +
+ + + + Load 256-bits (composed of 4 packed double-precision (64-bit) floating-point elements) from memory into "dst". + "mem_addr" must be aligned on a 32-byte boundary or a general-protection exception may be generated. + +dst[255:0] := MEM[mem_addr+255:mem_addr] +dst[MAX:256] := 0 + + + AVX +
immintrin.h
+ Load +
+ + + + Load 256-bits (composed of 8 packed single-precision (32-bit) floating-point elements) from memory into "dst". + "mem_addr" must be aligned on a 32-byte boundary or a general-protection exception may be generated. + +dst[255:0] := MEM[mem_addr+255:mem_addr] +dst[MAX:256] := 0 + + + AVX +
immintrin.h
+ Load +
+ + + + Load 256-bits (composed of 4 packed double-precision (64-bit) floating-point elements) from memory into "dst". + "mem_addr" does not need to be aligned on any particular boundary. + +dst[255:0] := MEM[mem_addr+255:mem_addr] +dst[MAX:256] := 0 + + + AVX +
immintrin.h
+ Load +
+ + + + Load 256-bits (composed of 8 packed single-precision (32-bit) floating-point elements) from memory into "dst". + "mem_addr" does not need to be aligned on any particular boundary. + +dst[255:0] := MEM[mem_addr+255:mem_addr] +dst[MAX:256] := 0 + + + AVX +
immintrin.h
+ Load +
+ + + + Load 256-bits of integer data from memory into "dst". + "mem_addr" must be aligned on a 32-byte boundary or a general-protection exception may be generated. + +dst[255:0] := MEM[mem_addr+255:mem_addr] +dst[MAX:256] := 0 + + + AVX +
immintrin.h
+ Load +
+ + + + Load 256-bits of integer data from memory into "dst". + "mem_addr" does not need to be aligned on any particular boundary. + +dst[255:0] := MEM[mem_addr+255:mem_addr] +dst[MAX:256] := 0 + + + AVX +
immintrin.h
+ Load +
+ + + + + Load packed double-precision (64-bit) floating-point elements from memory into "dst" using "mask" (elements are zeroed out when the high bit of the corresponding element is not set). + +FOR j := 0 to 3 + i := j*64 + IF mask[i+63] + dst[i+63:i] := MEM[mem_addr+i+63:mem_addr+i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX +
immintrin.h
+ Load +
+ + + + + Load packed double-precision (64-bit) floating-point elements from memory into "dst" using "mask" (elements are zeroed out when the high bit of the corresponding element is not set). + +FOR j := 0 to 1 + i := j*64 + IF mask[i+63] + dst[i+63:i] := MEM[mem_addr+i+63:mem_addr+i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX +
immintrin.h
+ Load +
+ + + + + Load packed single-precision (32-bit) floating-point elements from memory into "dst" using "mask" (elements are zeroed out when the high bit of the corresponding element is not set). + +FOR j := 0 to 7 + i := j*32 + IF mask[i+31] + dst[i+31:i] := MEM[mem_addr+i+31:mem_addr+i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX +
immintrin.h
+ Load +
+ + + + + Load packed single-precision (32-bit) floating-point elements from memory into "dst" using "mask" (elements are zeroed out when the high bit of the corresponding element is not set). + +FOR j := 0 to 3 + i := j*32 + IF mask[i+31] + dst[i+31:i] := MEM[mem_addr+i+31:mem_addr+i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX +
immintrin.h
+ Load +
+ + + + Load 256-bits of integer data from unaligned memory into "dst". This intrinsic may perform better than "_mm256_loadu_si256" when the data crosses a cache line boundary. + +dst[255:0] := MEM[mem_addr+255:mem_addr] +dst[MAX:256] := 0 + + + AVX +
immintrin.h
+ Load +
+ + + + + Load two 128-bit values (composed of 4 packed single-precision (32-bit) floating-point elements) from memory, and combine them into a 256-bit value in "dst". + "hiaddr" and "loaddr" do not need to be aligned on any particular boundary. + +dst[127:0] := MEM[loaddr+127:loaddr] +dst[255:128] := MEM[hiaddr+127:hiaddr] +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Load +
+ + + + + Load two 128-bit values (composed of 2 packed double-precision (64-bit) floating-point elements) from memory, and combine them into a 256-bit value in "dst". + "hiaddr" and "loaddr" do not need to be aligned on any particular boundary. + +dst[127:0] := MEM[loaddr+127:loaddr] +dst[255:128] := MEM[hiaddr+127:hiaddr] +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Load +
+ + + + + Load two 128-bit values (composed of integer data) from memory, and combine them into a 256-bit value in "dst". + "hiaddr" and "loaddr" do not need to be aligned on any particular boundary. + +dst[127:0] := MEM[loaddr+127:loaddr] +dst[255:128] := MEM[hiaddr+127:hiaddr] +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Load +
+ + + + + Store 256-bits (composed of 4 packed double-precision (64-bit) floating-point elements) from "a" into memory. + "mem_addr" must be aligned on a 32-byte boundary or a general-protection exception may be generated. + +MEM[mem_addr+255:mem_addr] := a[255:0] + + + AVX +
immintrin.h
+ Store +
+ + + + + Store 256-bits (composed of 8 packed single-precision (32-bit) floating-point elements) from "a" into memory. + "mem_addr" must be aligned on a 32-byte boundary or a general-protection exception may be generated. + +MEM[mem_addr+255:mem_addr] := a[255:0] + + + AVX +
immintrin.h
+ Store +
+ + + + + Store 256-bits (composed of 4 packed double-precision (64-bit) floating-point elements) from "a" into memory. + "mem_addr" does not need to be aligned on any particular boundary. + +MEM[mem_addr+255:mem_addr] := a[255:0] + + + AVX +
immintrin.h
+ Store +
+ + + + + Store 256-bits (composed of 8 packed single-precision (32-bit) floating-point elements) from "a" into memory. + "mem_addr" does not need to be aligned on any particular boundary. + +MEM[mem_addr+255:mem_addr] := a[255:0] + + + AVX +
immintrin.h
+ Store +
+ + + + + Store 256-bits of integer data from "a" into memory. + "mem_addr" must be aligned on a 32-byte boundary or a general-protection exception may be generated. + +MEM[mem_addr+255:mem_addr] := a[255:0] + + + AVX +
immintrin.h
+ Store +
+ + + + + Store 256-bits of integer data from "a" into memory. + "mem_addr" does not need to be aligned on any particular boundary. + +MEM[mem_addr+255:mem_addr] := a[255:0] + + + AVX +
immintrin.h
+ Store +
+ + + + + + Store packed double-precision (64-bit) floating-point elements from "a" into memory using "mask". + +FOR j := 0 to 3 + i := j*64 + IF mask[i+63] + MEM[mem_addr+i+63:mem_addr+i] := a[i+63:i] + FI +ENDFOR + + + AVX +
immintrin.h
+ Store +
+ + + + + + Store packed double-precision (64-bit) floating-point elements from "a" into memory using "mask". + +FOR j := 0 to 1 + i := j*64 + IF mask[i+63] + MEM[mem_addr+i+63:mem_addr+i] := a[i+63:i] + FI +ENDFOR + + + AVX +
immintrin.h
+ Store +
+ + + + + + Store packed single-precision (32-bit) floating-point elements from "a" into memory using "mask". + +FOR j := 0 to 7 + i := j*32 + IF mask[i+31] + MEM[mem_addr+i+31:mem_addr+i] := a[i+31:i] + FI +ENDFOR + + + AVX +
immintrin.h
+ Store +
+ + + + + + Store packed single-precision (32-bit) floating-point elements from "a" into memory using "mask". + +FOR j := 0 to 3 + i := j*32 + IF mask[i+31] + MEM[mem_addr+i+31:mem_addr+i] := a[i+31:i] + FI +ENDFOR + + + AVX +
immintrin.h
+ Store +
+ + + + + Store 256-bits of integer data from "a" into memory using a non-temporal memory hint. + "mem_addr" must be aligned on a 32-byte boundary or a general-protection exception may be generated. + +MEM[mem_addr+255:mem_addr] := a[255:0] + + + AVX +
immintrin.h
+ Store +
+ + + + + Store 256-bits (composed of 4 packed double-precision (64-bit) floating-point elements) from "a" into memory using a non-temporal memory hint. + "mem_addr" must be aligned on a 32-byte boundary or a general-protection exception may be generated. + +MEM[mem_addr+255:mem_addr] := a[255:0] + + + AVX +
immintrin.h
+ Store +
+ + + + + Store 256-bits (composed of 8 packed single-precision (32-bit) floating-point elements) from "a" into memory using a non-temporal memory hint. + "mem_addr" must be aligned on a 32-byte boundary or a general-protection exception may be generated. + +MEM[mem_addr+255:mem_addr] := a[255:0] + + + AVX +
immintrin.h
+ Store +
+ + + + + + Store the high and low 128-bit halves (each composed of 4 packed single-precision (32-bit) floating-point elements) from "a" into memory two different 128-bit locations. + "hiaddr" and "loaddr" do not need to be aligned on any particular boundary. + +MEM[loaddr+127:loaddr] := a[127:0] +MEM[hiaddr+127:hiaddr] := a[255:128] + + AVX +
immintrin.h
+ Store +
+ + + + + + Store the high and low 128-bit halves (each composed of 2 packed double-precision (64-bit) floating-point elements) from "a" into memory two different 128-bit locations. + "hiaddr" and "loaddr" do not need to be aligned on any particular boundary. + +MEM[loaddr+127:loaddr] := a[127:0] +MEM[hiaddr+127:hiaddr] := a[255:128] + + AVX +
immintrin.h
+ Store +
+ + + + + + Store the high and low 128-bit halves (each composed of integer data) from "a" into memory two different 128-bit locations. + "hiaddr" and "loaddr" do not need to be aligned on any particular boundary. + +MEM[loaddr+127:loaddr] := a[127:0] +MEM[hiaddr+127:hiaddr] := a[255:128] + + AVX +
immintrin.h
+ Store +
+ + + + Duplicate odd-indexed single-precision (32-bit) floating-point elements from "a", and store the results in "dst". + +dst[31:0] := a[63:32] +dst[63:32] := a[63:32] +dst[95:64] := a[127:96] +dst[127:96] := a[127:96] +dst[159:128] := a[191:160] +dst[191:160] := a[191:160] +dst[223:192] := a[255:224] +dst[255:224] := a[255:224] +dst[MAX:256] := 0 + + + AVX +
immintrin.h
+ Move +
+ + + + Duplicate even-indexed single-precision (32-bit) floating-point elements from "a", and store the results in "dst". + +dst[31:0] := a[31:0] +dst[63:32] := a[31:0] +dst[95:64] := a[95:64] +dst[127:96] := a[95:64] +dst[159:128] := a[159:128] +dst[191:160] := a[159:128] +dst[223:192] := a[223:192] +dst[255:224] := a[223:192] +dst[MAX:256] := 0 + + + AVX +
immintrin.h
+ Move +
+ + + + Duplicate even-indexed double-precision (64-bit) floating-point elements from "a", and store the results in "dst". + +dst[63:0] := a[63:0] +dst[127:64] := a[63:0] +dst[191:128] := a[191:128] +dst[255:192] := a[191:128] +dst[MAX:256] := 0 + + + AVX +
immintrin.h
+ Move +
+ + + + Compute the approximate reciprocal of packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst". The maximum relative error for this approximation is less than 1.5*2^-12. + +FOR j := 0 to 7 + i := j*32 + dst[i+31:i] := 1.0 / a[i+31:i] +ENDFOR +dst[MAX:256] := 0 + + + AVX +
immintrin.h
+ Elementary Math Functions +
+ + + + Compute the approximate reciprocal square root of packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst". The maximum relative error for this approximation is less than 1.5*2^-12. + +FOR j := 0 to 7 + i := j*32 + dst[i+31:i] := (1.0 / SQRT(a[i+31:i])) +ENDFOR +dst[MAX:256] := 0 + + + AVX +
immintrin.h
+ Elementary Math Functions +
+ + + + Compute the square root of packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst". + +FOR j := 0 to 3 + i := j*64 + dst[i+63:i] := SQRT(a[i+63:i]) +ENDFOR +dst[MAX:256] := 0 + + + AVX +
immintrin.h
+ Elementary Math Functions +
+ + + + Compute the square root of packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst". + +FOR j := 0 to 7 + i := j*32 + dst[i+31:i] := SQRT(a[i+31:i]) +ENDFOR +dst[MAX:256] := 0 + + + AVX +
immintrin.h
+ Elementary Math Functions +
+ + + + Set each bit of mask "dst" based on the most significant bit of the corresponding packed double-precision (64-bit) floating-point element in "a". + +FOR j := 0 to 3 + i := j*64 + IF a[i+63] + dst[j] := 1 + ELSE + dst[j] := 0 + FI +ENDFOR +dst[MAX:4] := 0 + + + AVX +
immintrin.h
+ Miscellaneous +
+ + + + Set each bit of mask "dst" based on the most significant bit of the corresponding packed single-precision (32-bit) floating-point element in "a". + +FOR j := 0 to 7 + i := j*32 + IF a[i+31] + dst[j] := 1 + ELSE + dst[j] := 0 + FI +ENDFOR +dst[MAX:8] := 0 + + + AVX +
immintrin.h
+ Miscellaneous +
+ + + + Return vector of type __m256d with all elements set to zero. + +dst[MAX:0] := 0 + + + AVX +
immintrin.h
+ Set +
+ + + + Return vector of type __m256 with all elements set to zero. + +dst[MAX:0] := 0 + + + AVX +
immintrin.h
+ Set +
+ + + + Return vector of type __m256i with all elements set to zero. + +dst[MAX:0] := 0 + + + AVX +
immintrin.h
+ Set +
+ + + + + + + Set packed double-precision (64-bit) floating-point elements in "dst" with the supplied values. + +dst[63:0] := e0 +dst[127:64] := e1 +dst[191:128] := e2 +dst[255:192] := e3 +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Set +
+ + + + + + + + + + + Set packed single-precision (32-bit) floating-point elements in "dst" with the supplied values. + +dst[31:0] := e0 +dst[63:32] := e1 +dst[95:64] := e2 +dst[127:96] := e3 +dst[159:128] := e4 +dst[191:160] := e5 +dst[223:192] := e6 +dst[255:224] := e7 +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Set +
+ + + + + + + + + + + + + + + + + + + + + + + + + + + + + + + + + + + Set packed 8-bit integers in "dst" with the supplied values. + +dst[7:0] := e0 +dst[15:8] := e1 +dst[23:16] := e2 +dst[31:24] := e3 +dst[39:32] := e4 +dst[47:40] := e5 +dst[55:48] := e6 +dst[63:56] := e7 +dst[71:64] := e8 +dst[79:72] := e9 +dst[87:80] := e10 +dst[95:88] := e11 +dst[103:96] := e12 +dst[111:104] := e13 +dst[119:112] := e14 +dst[127:120] := e15 +dst[135:128] := e16 +dst[143:136] := e17 +dst[151:144] := e18 +dst[159:152] := e19 +dst[167:160] := e20 +dst[175:168] := e21 +dst[183:176] := e22 +dst[191:184] := e23 +dst[199:192] := e24 +dst[207:200] := e25 +dst[215:208] := e26 +dst[223:216] := e27 +dst[231:224] := e28 +dst[239:232] := e29 +dst[247:240] := e30 +dst[255:248] := e31 +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Set +
+ + + + + + + + + + + + + + + + + + + Set packed 16-bit integers in "dst" with the supplied values. + +dst[15:0] := e0 +dst[31:16] := e1 +dst[47:32] := e2 +dst[63:48] := e3 +dst[79:64] := e4 +dst[95:80] := e5 +dst[111:96] := e6 +dst[127:112] := e7 +dst[143:128] := e8 +dst[159:144] := e9 +dst[175:160] := e10 +dst[191:176] := e11 +dst[207:192] := e12 +dst[223:208] := e13 +dst[239:224] := e14 +dst[255:240] := e15 +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Set +
+ + + + + + + + + + + Set packed 32-bit integers in "dst" with the supplied values. + +dst[31:0] := e0 +dst[63:32] := e1 +dst[95:64] := e2 +dst[127:96] := e3 +dst[159:128] := e4 +dst[191:160] := e5 +dst[223:192] := e6 +dst[255:224] := e7 +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Set +
+ + + + + + + Set packed 64-bit integers in "dst" with the supplied values. + +dst[63:0] := e0 +dst[127:64] := e1 +dst[191:128] := e2 +dst[255:192] := e3 +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Set +
+ + + + + + + Set packed double-precision (64-bit) floating-point elements in "dst" with the supplied values in reverse order. + +dst[63:0] := e3 +dst[127:64] := e2 +dst[191:128] := e1 +dst[255:192] := e0 +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Set +
+ + + + + + + + + + + Set packed single-precision (32-bit) floating-point elements in "dst" with the supplied values in reverse order. + +dst[31:0] := e7 +dst[63:32] := e6 +dst[95:64] := e5 +dst[127:96] := e4 +dst[159:128] := e3 +dst[191:160] := e2 +dst[223:192] := e1 +dst[255:224] := e0 +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Set +
+ + + + + + + + + + + + + + + + + + + + + + + + + + + + + + + + + + + Set packed 8-bit integers in "dst" with the supplied values in reverse order. + +dst[7:0] := e31 +dst[15:8] := e30 +dst[23:16] := e29 +dst[31:24] := e28 +dst[39:32] := e27 +dst[47:40] := e26 +dst[55:48] := e25 +dst[63:56] := e24 +dst[71:64] := e23 +dst[79:72] := e22 +dst[87:80] := e21 +dst[95:88] := e20 +dst[103:96] := e19 +dst[111:104] := e18 +dst[119:112] := e17 +dst[127:120] := e16 +dst[135:128] := e15 +dst[143:136] := e14 +dst[151:144] := e13 +dst[159:152] := e12 +dst[167:160] := e11 +dst[175:168] := e10 +dst[183:176] := e9 +dst[191:184] := e8 +dst[199:192] := e7 +dst[207:200] := e6 +dst[215:208] := e5 +dst[223:216] := e4 +dst[231:224] := e3 +dst[239:232] := e2 +dst[247:240] := e1 +dst[255:248] := e0 +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Set +
+ + + + + + + + + + + + + + + + + + + Set packed 16-bit integers in "dst" with the supplied values in reverse order. + +dst[15:0] := e15 +dst[31:16] := e14 +dst[47:32] := e13 +dst[63:48] := e12 +dst[79:64] := e11 +dst[95:80] := e10 +dst[111:96] := e9 +dst[127:112] := e8 +dst[143:128] := e7 +dst[159:144] := e6 +dst[175:160] := e5 +dst[191:176] := e4 +dst[207:192] := e3 +dst[223:208] := e2 +dst[239:224] := e1 +dst[255:240] := e0 +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Set +
+ + + + + + + + + + + Set packed 32-bit integers in "dst" with the supplied values in reverse order. + +dst[31:0] := e7 +dst[63:32] := e6 +dst[95:64] := e5 +dst[127:96] := e4 +dst[159:128] := e3 +dst[191:160] := e2 +dst[223:192] := e1 +dst[255:224] := e0 +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Set +
+ + + + + + + Set packed 64-bit integers in "dst" with the supplied values in reverse order. + +dst[63:0] := e3 +dst[127:64] := e2 +dst[191:128] := e1 +dst[255:192] := e0 +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Set +
+ + + + Broadcast double-precision (64-bit) floating-point value "a" to all elements of "dst". + +FOR j := 0 to 3 + i := j*64 + dst[i+63:i] := a[63:0] +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Set +
+ + + + Broadcast single-precision (32-bit) floating-point value "a" to all elements of "dst". + +FOR j := 0 to 7 + i := j*32 + dst[i+31:i] := a[31:0] +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Set +
+ + + + Broadcast 8-bit integer "a" to all elements of "dst". This intrinsic may generate the "vpbroadcastb". + +FOR j := 0 to 31 + i := j*8 + dst[i+7:i] := a[7:0] +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Set +
+ + + + Broadcast 16-bit integer "a" to all all elements of "dst". This intrinsic may generate the "vpbroadcastw". + +FOR j := 0 to 15 + i := j*16 + dst[i+15:i] := a[15:0] +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Set +
+ + + + Broadcast 32-bit integer "a" to all elements of "dst". This intrinsic may generate the "vpbroadcastd". + +FOR j := 0 to 7 + i := j*32 + dst[i+31:i] := a[31:0] +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Set +
+ + + + Broadcast 64-bit integer "a" to all elements of "dst". This intrinsic may generate the "vpbroadcastq". + +FOR j := 0 to 3 + i := j*64 + dst[i+63:i] := a[63:0] +ENDFOR +dst[MAX:256] := 0 + + AVX +
immintrin.h
+ Set +
+ + + + + Set packed __m256 vector "dst" with the supplied values. + +dst[127:0] := lo[127:0] +dst[255:128] := hi[127:0] +dst[MAX:256] := 0 + + + AVX +
immintrin.h
+ Set +
+ + + + + Set packed __m256d vector "dst" with the supplied values. + +dst[127:0] := lo[127:0] +dst[255:128] := hi[127:0] +dst[MAX:256] := 0 + + + AVX +
immintrin.h
+ Set +
+ + + + + Set packed __m256i vector "dst" with the supplied values. + +dst[127:0] := lo[127:0] +dst[255:128] := hi[127:0] +dst[MAX:256] := 0 + + + AVX +
immintrin.h
+ Set +
+ + + + + Set packed __m256 vector "dst" with the supplied values. + +dst[127:0] := lo[127:0] +dst[255:128] := hi[127:0] +dst[MAX:256] := 0 + + + AVX +
immintrin.h
+ Set +
+ + + + + Set packed __m256d vector "dst" with the supplied values. + +dst[127:0] := lo[127:0] +dst[255:128] := hi[127:0] +dst[MAX:256] := 0 + + + AVX +
immintrin.h
+ Set +
+ + + + + Set packed __m256i vector "dst" with the supplied values. + +dst[127:0] := lo[127:0] +dst[255:128] := hi[127:0] +dst[MAX:256] := 0 + + + AVX +
immintrin.h
+ Set +
+ + + + Cast vector of type __m256d to type __m256. + This intrinsic is only used for compilation and does not generate any instructions, thus it has zero latency. + AVX +
immintrin.h
+ Cast +
+ + + + Cast vector of type __m256 to type __m256d. + This intrinsic is only used for compilation and does not generate any instructions, thus it has zero latency. + AVX +
immintrin.h
+ Cast +
+ + + + Cast vector of type __m256 to type __m256i. This intrinsic is only used for compilation and does not generate any instructions, thus it has zero latency. + AVX +
immintrin.h
+ Cast +
+ + + + Cast vector of type __m256d to type __m256i. This intrinsic is only used for compilation and does not generate any instructions, thus it has zero latency. + AVX +
immintrin.h
+ Cast +
+ + + + Cast vector of type __m256i to type __m256. This intrinsic is only used for compilation and does not generate any instructions, thus it has zero latency. + AVX +
immintrin.h
+ Cast +
+ + + + Cast vector of type __m256i to type __m256d. This intrinsic is only used for compilation and does not generate any instructions, thus it has zero latency. + AVX +
immintrin.h
+ Cast +
+ + + + Cast vector of type __m256 to type __m128. This intrinsic is only used for compilation and does not generate any instructions, thus it has zero latency. + AVX +
immintrin.h
+ Cast +
+ + + + Cast vector of type __m256d to type __m128d. This intrinsic is only used for compilation and does not generate any instructions, thus it has zero latency. + AVX +
immintrin.h
+ Cast +
+ + + + Cast vector of type __m256i to type __m128i. This intrinsic is only used for compilation and does not generate any instructions, thus it has zero latency. + AVX +
immintrin.h
+ Cast +
+ + + + Cast vector of type __m128 to type __m256; the upper 128 bits of the result are undefined. This intrinsic is only used for compilation and does not generate any instructions, thus it has zero latency. + AVX +
immintrin.h
+ Cast +
+ + + + Cast vector of type __m128d to type __m256d; the upper 128 bits of the result are undefined. This intrinsic is only used for compilation and does not generate any instructions, thus it has zero latency. + AVX +
immintrin.h
+ Cast +
+ + + + Cast vector of type __m128i to type __m256i; the upper 128 bits of the result are undefined. This intrinsic is only used for compilation and does not generate any instructions, thus it has zero latency. + AVX +
immintrin.h
+ Cast +
+ + + + Cast vector of type __m128 to type __m256; the upper 128 bits of the result are zeroed. This intrinsic is only used for compilation and does not generate any instructions, thus it has zero latency. + AVX +
immintrin.h
+ Cast +
+ + + + Cast vector of type __m128d to type __m256d; the upper 128 bits of the result are zeroed. This intrinsic is only used for compilation and does not generate any instructions, thus it has zero latency. + AVX +
immintrin.h
+ Cast +
+ + + + Cast vector of type __m128i to type __m256i; the upper 128 bits of the result are zeroed. This intrinsic is only used for compilation and does not generate any instructions, thus it has zero latency. + AVX +
immintrin.h
+ Cast +
+ + + + + + + Extract an 8-bit integer from "a", selected with "index", and store the result in "dst". + +dst[7:0] := (a[255:0] >> (index[4:0] * 8))[7:0] + + AVX2 +
immintrin.h
+ Swizzle +
+ + + + + Extract a 16-bit integer from "a", selected with "index", and store the result in "dst". + +dst[15:0] := (a[255:0] >> (index[3:0] * 16))[15:0] + + AVX2 +
immintrin.h
+ Swizzle +
+ + + + + + Blend packed 16-bit integers from "a" and "b" within 128-bit lanes using control mask "imm8", and store the results in "dst". + +FOR j := 0 to 15 + i := j*16 + IF imm8[j%8] + dst[i+15:i] := b[i+15:i] + ELSE + dst[i+15:i] := a[i+15:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Swizzle +
+ + + + + + Blend packed 32-bit integers from "a" and "b" using control mask "imm8", and store the results in "dst". + +FOR j := 0 to 3 + i := j*32 + IF imm8[j] + dst[i+31:i] := b[i+31:i] + ELSE + dst[i+31:i] := a[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX2 +
immintrin.h
+ Swizzle +
+ + + + + + Blend packed 32-bit integers from "a" and "b" using control mask "imm8", and store the results in "dst". + +FOR j := 0 to 7 + i := j*32 + IF imm8[j] + dst[i+31:i] := b[i+31:i] + ELSE + dst[i+31:i] := a[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Swizzle +
+ + + + + + Blend packed 8-bit integers from "a" and "b" using "mask", and store the results in "dst". + +FOR j := 0 to 31 + i := j*8 + IF mask[i+7] + dst[i+7:i] := b[i+7:i] + ELSE + dst[i+7:i] := a[i+7:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Swizzle +
+ + + + Broadcast the low packed 8-bit integer from "a" to all elements of "dst". + +FOR j := 0 to 15 + i := j*8 + dst[i+7:i] := a[7:0] +ENDFOR +dst[MAX:128] := 0 + + + AVX2 +
immintrin.h
+ Swizzle +
+ + + + Broadcast the low packed 8-bit integer from "a" to all elements of "dst". + +FOR j := 0 to 31 + i := j*8 + dst[i+7:i] := a[7:0] +ENDFOR +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Swizzle +
+ + + + Broadcast the low packed 32-bit integer from "a" to all elements of "dst". + +FOR j := 0 to 3 + i := j*32 + dst[i+31:i] := a[31:0] +ENDFOR +dst[MAX:128] := 0 + + + AVX2 +
immintrin.h
+ Swizzle +
+ + + + Broadcast the low packed 32-bit integer from "a" to all elements of "dst". + +FOR j := 0 to 7 + i := j*32 + dst[i+31:i] := a[31:0] +ENDFOR +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Swizzle +
+ + + + Broadcast the low packed 64-bit integer from "a" to all elements of "dst". + +FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := a[63:0] +ENDFOR +dst[MAX:128] := 0 + + + AVX2 +
immintrin.h
+ Swizzle +
+ + + + Broadcast the low packed 64-bit integer from "a" to all elements of "dst". + +FOR j := 0 to 3 + i := j*64 + dst[i+63:i] := a[63:0] +ENDFOR +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Swizzle +
+ + + + Broadcast the low double-precision (64-bit) floating-point element from "a" to all elements of "dst". + +FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := a[63:0] +ENDFOR +dst[MAX:128] := 0 + + + AVX2 +
immintrin.h
+ Swizzle +
+ + + + Broadcast the low double-precision (64-bit) floating-point element from "a" to all elements of "dst". + +FOR j := 0 to 3 + i := j*64 + dst[i+63:i] := a[63:0] +ENDFOR +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Swizzle +
+ + + + Broadcast 128 bits of integer data from "a" to all 128-bit lanes in "dst". + +dst[127:0] := a[127:0] +dst[255:128] := a[127:0] +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Swizzle +
+ + + + Broadcast 128 bits of integer data from "a" to all 128-bit lanes in "dst". + +dst[127:0] := a[127:0] +dst[255:128] := a[127:0] +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Swizzle +
+ + + + Broadcast the low single-precision (32-bit) floating-point element from "a" to all elements of "dst". + +FOR j := 0 to 3 + i := j*32 + dst[i+31:i] := a[31:0] +ENDFOR +dst[MAX:128] := 0 + + + AVX2 +
immintrin.h
+ Swizzle +
+ + + + Broadcast the low single-precision (32-bit) floating-point element from "a" to all elements of "dst". + +FOR j := 0 to 7 + i := j*32 + dst[i+31:i] := a[31:0] +ENDFOR +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Swizzle +
+ + + + Broadcast the low packed 16-bit integer from "a" to all elements of "dst". + +FOR j := 0 to 7 + i := j*16 + dst[i+15:i] := a[15:0] +ENDFOR +dst[MAX:128] := 0 + + + AVX2 +
immintrin.h
+ Swizzle +
+ + + + Broadcast the low packed 16-bit integer from "a" to all elements of "dst". + +FOR j := 0 to 15 + i := j*16 + dst[i+15:i] := a[15:0] +ENDFOR +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Swizzle +
+ + + + + Extract 128 bits (composed of integer data) from "a", selected with "imm8", and store the result in "dst". + +CASE imm8[0] OF +0: dst[127:0] := a[127:0] +1: dst[127:0] := a[255:128] +ESAC +dst[MAX:128] := 0 + + + AVX2 +
immintrin.h
+ Swizzle +
+ + + + + + Copy "a" to "dst", then insert 128 bits (composed of integer data) from "b" into "dst" at the location specified by "imm8". + +dst[255:0] := a[255:0] +CASE (imm8[0]) OF +0: dst[127:0] := b[127:0] +1: dst[255:128] := b[127:0] +ESAC +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Swizzle +
+ + + + + + Shuffle 128-bits (composed of integer data) selected by "imm8" from "a" and "b", and store the results in "dst". + +DEFINE SELECT4(src1, src2, control) { + CASE(control[1:0]) OF + 0: tmp[127:0] := src1[127:0] + 1: tmp[127:0] := src1[255:128] + 2: tmp[127:0] := src2[127:0] + 3: tmp[127:0] := src2[255:128] + ESAC + IF control[3] + tmp[127:0] := 0 + FI + RETURN tmp[127:0] +} +dst[127:0] := SELECT4(a[255:0], b[255:0], imm8[3:0]) +dst[255:128] := SELECT4(a[255:0], b[255:0], imm8[7:4]) +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Swizzle +
+ + + + + Shuffle 64-bit integers in "a" across lanes using the control in "imm8", and store the results in "dst". + +DEFINE SELECT4(src, control) { + CASE(control[1:0]) OF + 0: tmp[63:0] := src[63:0] + 1: tmp[63:0] := src[127:64] + 2: tmp[63:0] := src[191:128] + 3: tmp[63:0] := src[255:192] + ESAC + RETURN tmp[63:0] +} +dst[63:0] := SELECT4(a[255:0], imm8[1:0]) +dst[127:64] := SELECT4(a[255:0], imm8[3:2]) +dst[191:128] := SELECT4(a[255:0], imm8[5:4]) +dst[255:192] := SELECT4(a[255:0], imm8[7:6]) +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Swizzle +
+ + + + + Shuffle double-precision (64-bit) floating-point elements in "a" across lanes using the control in "imm8", and store the results in "dst". + +DEFINE SELECT4(src, control) { + CASE(control[1:0]) OF + 0: tmp[63:0] := src[63:0] + 1: tmp[63:0] := src[127:64] + 2: tmp[63:0] := src[191:128] + 3: tmp[63:0] := src[255:192] + ESAC + RETURN tmp[63:0] +} +dst[63:0] := SELECT4(a[255:0], imm8[1:0]) +dst[127:64] := SELECT4(a[255:0], imm8[3:2]) +dst[191:128] := SELECT4(a[255:0], imm8[5:4]) +dst[255:192] := SELECT4(a[255:0], imm8[7:6]) +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Swizzle +
+ + + + + Shuffle 32-bit integers in "a" across lanes using the corresponding index in "idx", and store the results in "dst". + +FOR j := 0 to 7 + i := j*32 + id := idx[i+2:i]*32 + dst[i+31:i] := a[id+31:id] +ENDFOR +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Swizzle +
+ + + + + Shuffle single-precision (32-bit) floating-point elements in "a" across lanes using the corresponding index in "idx". + +FOR j := 0 to 7 + i := j*32 + id := idx[i+2:i]*32 + dst[i+31:i] := a[id+31:id] +ENDFOR +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Swizzle +
+ + + + + Shuffle 32-bit integers in "a" within 128-bit lanes using the control in "imm8", and store the results in "dst". + +DEFINE SELECT4(src, control) { + CASE(control[1:0]) OF + 0: tmp[31:0] := src[31:0] + 1: tmp[31:0] := src[63:32] + 2: tmp[31:0] := src[95:64] + 3: tmp[31:0] := src[127:96] + ESAC + RETURN tmp[31:0] +} +dst[31:0] := SELECT4(a[127:0], imm8[1:0]) +dst[63:32] := SELECT4(a[127:0], imm8[3:2]) +dst[95:64] := SELECT4(a[127:0], imm8[5:4]) +dst[127:96] := SELECT4(a[127:0], imm8[7:6]) +dst[159:128] := SELECT4(a[255:128], imm8[1:0]) +dst[191:160] := SELECT4(a[255:128], imm8[3:2]) +dst[223:192] := SELECT4(a[255:128], imm8[5:4]) +dst[255:224] := SELECT4(a[255:128], imm8[7:6]) +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Swizzle +
+ + + + + Shuffle 8-bit integers in "a" within 128-bit lanes according to shuffle control mask in the corresponding 8-bit element of "b", and store the results in "dst". + +FOR j := 0 to 15 + i := j*8 + IF b[i+7] == 1 + dst[i+7:i] := 0 + ELSE + index[3:0] := b[i+3:i] + dst[i+7:i] := a[index*8+7:index*8] + FI + IF b[128+i+7] == 1 + dst[128+i+7:128+i] := 0 + ELSE + index[3:0] := b[128+i+3:128+i] + dst[128+i+7:128+i] := a[128+index*8+7:128+index*8] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Swizzle +
+ + + + + Shuffle 16-bit integers in the high 64 bits of 128-bit lanes of "a" using the control in "imm8". Store the results in the high 64 bits of 128-bit lanes of "dst", with the low 64 bits of 128-bit lanes being copied from from "a" to "dst". + +dst[63:0] := a[63:0] +dst[79:64] := (a >> (imm8[1:0] * 16))[79:64] +dst[95:80] := (a >> (imm8[3:2] * 16))[79:64] +dst[111:96] := (a >> (imm8[5:4] * 16))[79:64] +dst[127:112] := (a >> (imm8[7:6] * 16))[79:64] +dst[191:128] := a[191:128] +dst[207:192] := (a >> (imm8[1:0] * 16))[207:192] +dst[223:208] := (a >> (imm8[3:2] * 16))[207:192] +dst[239:224] := (a >> (imm8[5:4] * 16))[207:192] +dst[255:240] := (a >> (imm8[7:6] * 16))[207:192] +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Swizzle +
+ + + + + Shuffle 16-bit integers in the low 64 bits of 128-bit lanes of "a" using the control in "imm8". Store the results in the low 64 bits of 128-bit lanes of "dst", with the high 64 bits of 128-bit lanes being copied from from "a" to "dst". + +dst[15:0] := (a >> (imm8[1:0] * 16))[15:0] +dst[31:16] := (a >> (imm8[3:2] * 16))[15:0] +dst[47:32] := (a >> (imm8[5:4] * 16))[15:0] +dst[63:48] := (a >> (imm8[7:6] * 16))[15:0] +dst[127:64] := a[127:64] +dst[143:128] := (a >> (imm8[1:0] * 16))[143:128] +dst[159:144] := (a >> (imm8[3:2] * 16))[143:128] +dst[175:160] := (a >> (imm8[5:4] * 16))[143:128] +dst[191:176] := (a >> (imm8[7:6] * 16))[143:128] +dst[255:192] := a[255:192] +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Swizzle +
+ + + + + Unpack and interleave 8-bit integers from the high half of each 128-bit lane in "a" and "b", and store the results in "dst". + +DEFINE INTERLEAVE_HIGH_BYTES(src1[127:0], src2[127:0]) { + dst[7:0] := src1[71:64] + dst[15:8] := src2[71:64] + dst[23:16] := src1[79:72] + dst[31:24] := src2[79:72] + dst[39:32] := src1[87:80] + dst[47:40] := src2[87:80] + dst[55:48] := src1[95:88] + dst[63:56] := src2[95:88] + dst[71:64] := src1[103:96] + dst[79:72] := src2[103:96] + dst[87:80] := src1[111:104] + dst[95:88] := src2[111:104] + dst[103:96] := src1[119:112] + dst[111:104] := src2[119:112] + dst[119:112] := src1[127:120] + dst[127:120] := src2[127:120] + RETURN dst[127:0] +} +dst[127:0] := INTERLEAVE_HIGH_BYTES(a[127:0], b[127:0]) +dst[255:128] := INTERLEAVE_HIGH_BYTES(a[255:128], b[255:128]) +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Swizzle +
+ + + + + Unpack and interleave 16-bit integers from the high half of each 128-bit lane in "a" and "b", and store the results in "dst". + +DEFINE INTERLEAVE_HIGH_WORDS(src1[127:0], src2[127:0]) { + dst[15:0] := src1[79:64] + dst[31:16] := src2[79:64] + dst[47:32] := src1[95:80] + dst[63:48] := src2[95:80] + dst[79:64] := src1[111:96] + dst[95:80] := src2[111:96] + dst[111:96] := src1[127:112] + dst[127:112] := src2[127:112] + RETURN dst[127:0] +} +dst[127:0] := INTERLEAVE_HIGH_WORDS(a[127:0], b[127:0]) +dst[255:128] := INTERLEAVE_HIGH_WORDS(a[255:128], b[255:128]) +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Swizzle +
+ + + + + Unpack and interleave 32-bit integers from the high half of each 128-bit lane in "a" and "b", and store the results in "dst". + +DEFINE INTERLEAVE_HIGH_DWORDS(src1[127:0], src2[127:0]) { + dst[31:0] := src1[95:64] + dst[63:32] := src2[95:64] + dst[95:64] := src1[127:96] + dst[127:96] := src2[127:96] + RETURN dst[127:0] +} +dst[127:0] := INTERLEAVE_HIGH_DWORDS(a[127:0], b[127:0]) +dst[255:128] := INTERLEAVE_HIGH_DWORDS(a[255:128], b[255:128]) +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Swizzle +
+ + + + + Unpack and interleave 64-bit integers from the high half of each 128-bit lane in "a" and "b", and store the results in "dst". + +DEFINE INTERLEAVE_HIGH_QWORDS(src1[127:0], src2[127:0]) { + dst[63:0] := src1[127:64] + dst[127:64] := src2[127:64] + RETURN dst[127:0] +} +dst[127:0] := INTERLEAVE_HIGH_QWORDS(a[127:0], b[127:0]) +dst[255:128] := INTERLEAVE_HIGH_QWORDS(a[255:128], b[255:128]) +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Swizzle +
+ + + + + Unpack and interleave 8-bit integers from the low half of each 128-bit lane in "a" and "b", and store the results in "dst". + +DEFINE INTERLEAVE_BYTES(src1[127:0], src2[127:0]) { + dst[7:0] := src1[7:0] + dst[15:8] := src2[7:0] + dst[23:16] := src1[15:8] + dst[31:24] := src2[15:8] + dst[39:32] := src1[23:16] + dst[47:40] := src2[23:16] + dst[55:48] := src1[31:24] + dst[63:56] := src2[31:24] + dst[71:64] := src1[39:32] + dst[79:72] := src2[39:32] + dst[87:80] := src1[47:40] + dst[95:88] := src2[47:40] + dst[103:96] := src1[55:48] + dst[111:104] := src2[55:48] + dst[119:112] := src1[63:56] + dst[127:120] := src2[63:56] + RETURN dst[127:0] +} +dst[127:0] := INTERLEAVE_BYTES(a[127:0], b[127:0]) +dst[255:128] := INTERLEAVE_BYTES(a[255:128], b[255:128]) +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Swizzle +
+ + + + + Unpack and interleave 16-bit integers from the low half of each 128-bit lane in "a" and "b", and store the results in "dst". + +DEFINE INTERLEAVE_WORDS(src1[127:0], src2[127:0]) { + dst[15:0] := src1[15:0] + dst[31:16] := src2[15:0] + dst[47:32] := src1[31:16] + dst[63:48] := src2[31:16] + dst[79:64] := src1[47:32] + dst[95:80] := src2[47:32] + dst[111:96] := src1[63:48] + dst[127:112] := src2[63:48] + RETURN dst[127:0] +} +dst[127:0] := INTERLEAVE_WORDS(a[127:0], b[127:0]) +dst[255:128] := INTERLEAVE_WORDS(a[255:128], b[255:128]) +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Swizzle +
+ + + + + Unpack and interleave 32-bit integers from the low half of each 128-bit lane in "a" and "b", and store the results in "dst". + +DEFINE INTERLEAVE_DWORDS(src1[127:0], src2[127:0]) { + dst[31:0] := src1[31:0] + dst[63:32] := src2[31:0] + dst[95:64] := src1[63:32] + dst[127:96] := src2[63:32] + RETURN dst[127:0] +} +dst[127:0] := INTERLEAVE_DWORDS(a[127:0], b[127:0]) +dst[255:128] := INTERLEAVE_DWORDS(a[255:128], b[255:128]) +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Swizzle +
+ + + + + Unpack and interleave 64-bit integers from the low half of each 128-bit lane in "a" and "b", and store the results in "dst". + +DEFINE INTERLEAVE_QWORDS(src1[127:0], src2[127:0]) { + dst[63:0] := src1[63:0] + dst[127:64] := src2[63:0] + RETURN dst[127:0] +} +dst[127:0] := INTERLEAVE_QWORDS(a[127:0], b[127:0]) +dst[255:128] := INTERLEAVE_QWORDS(a[255:128], b[255:128]) +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Swizzle +
+ + + + Compute the absolute value of packed signed 8-bit integers in "a", and store the unsigned results in "dst". + +FOR j := 0 to 31 + i := j*8 + dst[i+7:i] := ABS(a[i+7:i]) +ENDFOR +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Special Math Functions +
+ + + + Compute the absolute value of packed signed 16-bit integers in "a", and store the unsigned results in "dst". + +FOR j := 0 to 15 + i := j*16 + dst[i+15:i] := ABS(a[i+15:i]) +ENDFOR +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Special Math Functions +
+ + + + Compute the absolute value of packed signed 32-bit integers in "a", and store the unsigned results in "dst". + +FOR j := 0 to 7 + i := j*32 + dst[i+31:i] := ABS(a[i+31:i]) +ENDFOR +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Special Math Functions +
+ + + + + Compare packed signed 8-bit integers in "a" and "b", and store packed maximum values in "dst". + +FOR j := 0 to 31 + i := j*8 + dst[i+7:i] := MAX(a[i+7:i], b[i+7:i]) +ENDFOR +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Special Math Functions +
+ + + + + Compare packed signed 16-bit integers in "a" and "b", and store packed maximum values in "dst". + +FOR j := 0 to 15 + i := j*16 + dst[i+15:i] := MAX(a[i+15:i], b[i+15:i]) +ENDFOR +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Special Math Functions +
+ + + + + Compare packed signed 32-bit integers in "a" and "b", and store packed maximum values in "dst". + +FOR j := 0 to 7 + i := j*32 + dst[i+31:i] := MAX(a[i+31:i], b[i+31:i]) +ENDFOR +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Special Math Functions +
+ + + + + Compare packed unsigned 8-bit integers in "a" and "b", and store packed maximum values in "dst". + +FOR j := 0 to 31 + i := j*8 + dst[i+7:i] := MAX(a[i+7:i], b[i+7:i]) +ENDFOR +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Special Math Functions +
+ + + + + Compare packed unsigned 16-bit integers in "a" and "b", and store packed maximum values in "dst". + +FOR j := 0 to 15 + i := j*16 + dst[i+15:i] := MAX(a[i+15:i], b[i+15:i]) +ENDFOR +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Special Math Functions +
+ + + + + Compare packed unsigned 32-bit integers in "a" and "b", and store packed maximum values in "dst". + +FOR j := 0 to 7 + i := j*32 + dst[i+31:i] := MAX(a[i+31:i], b[i+31:i]) +ENDFOR +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Special Math Functions +
+ + + + + Compare packed signed 8-bit integers in "a" and "b", and store packed minimum values in "dst". + +FOR j := 0 to 31 + i := j*8 + dst[i+7:i] := MIN(a[i+7:i], b[i+7:i]) +ENDFOR +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Special Math Functions +
+ + + + + Compare packed signed 16-bit integers in "a" and "b", and store packed minimum values in "dst". + +FOR j := 0 to 15 + i := j*16 + dst[i+15:i] := MIN(a[i+15:i], b[i+15:i]) +ENDFOR +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Special Math Functions +
+ + + + + Compare packed signed 32-bit integers in "a" and "b", and store packed minimum values in "dst". + +FOR j := 0 to 7 + i := j*32 + dst[i+31:i] := MIN(a[i+31:i], b[i+31:i]) +ENDFOR +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Special Math Functions +
+ + + + + Compare packed unsigned 8-bit integers in "a" and "b", and store packed minimum values in "dst". + +FOR j := 0 to 31 + i := j*8 + dst[i+7:i] := MIN(a[i+7:i], b[i+7:i]) +ENDFOR +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Special Math Functions +
+ + + + + Compare packed unsigned 16-bit integers in "a" and "b", and store packed minimum values in "dst". + +FOR j := 0 to 15 + i := j*16 + dst[i+15:i] := MIN(a[i+15:i], b[i+15:i]) +ENDFOR +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Special Math Functions +
+ + + + + Compare packed unsigned 32-bit integers in "a" and "b", and store packed minimum values in "dst". + +FOR j := 0 to 7 + i := j*32 + dst[i+31:i] := MIN(a[i+31:i], b[i+31:i]) +ENDFOR +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Special Math Functions +
+ + + + + Add packed 8-bit integers in "a" and "b", and store the results in "dst". + +FOR j := 0 to 31 + i := j*8 + dst[i+7:i] := a[i+7:i] + b[i+7:i] +ENDFOR +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Arithmetic +
+ + + + + Add packed 16-bit integers in "a" and "b", and store the results in "dst". + +FOR j := 0 to 15 + i := j*16 + dst[i+15:i] := a[i+15:i] + b[i+15:i] +ENDFOR +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Arithmetic +
+ + + + + Add packed 32-bit integers in "a" and "b", and store the results in "dst". + +FOR j := 0 to 7 + i := j*32 + dst[i+31:i] := a[i+31:i] + b[i+31:i] +ENDFOR +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Arithmetic +
+ + + + + Add packed 64-bit integers in "a" and "b", and store the results in "dst". + +FOR j := 0 to 3 + i := j*64 + dst[i+63:i] := a[i+63:i] + b[i+63:i] +ENDFOR +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Arithmetic +
+ + + + + Add packed 8-bit integers in "a" and "b" using saturation, and store the results in "dst". + +FOR j := 0 to 31 + i := j*8 + dst[i+7:i] := Saturate8( a[i+7:i] + b[i+7:i] ) +ENDFOR +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Arithmetic +
+ + + + + Add packed 16-bit integers in "a" and "b" using saturation, and store the results in "dst". + +FOR j := 0 to 15 + i := j*16 + dst[i+15:i] := Saturate16( a[i+15:i] + b[i+15:i] ) +ENDFOR +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Arithmetic +
+ + + + + Add packed unsigned 8-bit integers in "a" and "b" using saturation, and store the results in "dst". + +FOR j := 0 to 31 + i := j*8 + dst[i+7:i] := SaturateU8( a[i+7:i] + b[i+7:i] ) +ENDFOR +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Arithmetic +
+ + + + + Add packed unsigned 16-bit integers in "a" and "b" using saturation, and store the results in "dst". + +FOR j := 0 to 15 + i := j*16 + dst[i+15:i] := SaturateU16( a[i+15:i] + b[i+15:i] ) +ENDFOR +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Arithmetic +
+ + + + + Horizontally add adjacent pairs of 16-bit integers in "a" and "b", and pack the signed 16-bit results in "dst". + +dst[15:0] := a[31:16] + a[15:0] +dst[31:16] := a[63:48] + a[47:32] +dst[47:32] := a[95:80] + a[79:64] +dst[63:48] := a[127:112] + a[111:96] +dst[79:64] := b[31:16] + b[15:0] +dst[95:80] := b[63:48] + b[47:32] +dst[111:96] := b[95:80] + b[79:64] +dst[127:112] := b[127:112] + b[111:96] +dst[143:128] := a[159:144] + a[143:128] +dst[159:144] := a[191:176] + a[175:160] +dst[175:160] := a[223:208] + a[207:192] +dst[191:176] := a[255:240] + a[239:224] +dst[207:192] := b[159:144] + b[143:128] +dst[223:208] := b[191:176] + b[175:160] +dst[239:224] := b[223:208] + b[207:192] +dst[255:240] := b[255:240] + b[239:224] +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Arithmetic +
+ + + + + Horizontally add adjacent pairs of 32-bit integers in "a" and "b", and pack the signed 32-bit results in "dst". + +dst[31:0] := a[63:32] + a[31:0] +dst[63:32] := a[127:96] + a[95:64] +dst[95:64] := b[63:32] + b[31:0] +dst[127:96] := b[127:96] + b[95:64] +dst[159:128] := a[191:160] + a[159:128] +dst[191:160] := a[255:224] + a[223:192] +dst[223:192] := b[191:160] + b[159:128] +dst[255:224] := b[255:224] + b[223:192] +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Arithmetic +
+ + + + + Horizontally add adjacent pairs of signed 16-bit integers in "a" and "b" using saturation, and pack the signed 16-bit results in "dst". + +dst[15:0] := Saturate16(a[31:16] + a[15:0]) +dst[31:16] := Saturate16(a[63:48] + a[47:32]) +dst[47:32] := Saturate16(a[95:80] + a[79:64]) +dst[63:48] := Saturate16(a[127:112] + a[111:96]) +dst[79:64] := Saturate16(b[31:16] + b[15:0]) +dst[95:80] := Saturate16(b[63:48] + b[47:32]) +dst[111:96] := Saturate16(b[95:80] + b[79:64]) +dst[127:112] := Saturate16(b[127:112] + b[111:96]) +dst[143:128] := Saturate16(a[159:144] + a[143:128]) +dst[159:144] := Saturate16(a[191:176] + a[175:160]) +dst[175:160] := Saturate16(a[223:208] + a[207:192]) +dst[191:176] := Saturate16(a[255:240] + a[239:224]) +dst[207:192] := Saturate16(b[159:144] + b[143:128]) +dst[223:208] := Saturate16(b[191:176] + b[175:160]) +dst[239:224] := Saturate16(b[223:208] + b[207:192]) +dst[255:240] := Saturate16(b[255:240] + b[239:224]) +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Arithmetic +
+ + + + + Horizontally subtract adjacent pairs of 16-bit integers in "a" and "b", and pack the signed 16-bit results in "dst". + +dst[15:0] := a[15:0] - a[31:16] +dst[31:16] := a[47:32] - a[63:48] +dst[47:32] := a[79:64] - a[95:80] +dst[63:48] := a[111:96] - a[127:112] +dst[79:64] := b[15:0] - b[31:16] +dst[95:80] := b[47:32] - b[63:48] +dst[111:96] := b[79:64] - b[95:80] +dst[127:112] := b[111:96] - b[127:112] +dst[143:128] := a[143:128] - a[159:144] +dst[159:144] := a[175:160] - a[191:176] +dst[175:160] := a[207:192] - a[223:208] +dst[191:176] := a[239:224] - a[255:240] +dst[207:192] := b[143:128] - b[159:144] +dst[223:208] := b[175:160] - b[191:176] +dst[239:224] := b[207:192] - b[223:208] +dst[255:240] := b[239:224] - b[255:240] +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Arithmetic +
+ + + + + Horizontally subtract adjacent pairs of 32-bit integers in "a" and "b", and pack the signed 32-bit results in "dst". + +dst[31:0] := a[31:0] - a[63:32] +dst[63:32] := a[95:64] - a[127:96] +dst[95:64] := b[31:0] - b[63:32] +dst[127:96] := b[95:64] - b[127:96] +dst[159:128] := a[159:128] - a[191:160] +dst[191:160] := a[223:192] - a[255:224] +dst[223:192] := b[159:128] - b[191:160] +dst[255:224] := b[223:192] - b[255:224] +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Arithmetic +
+ + + + + Horizontally subtract adjacent pairs of signed 16-bit integers in "a" and "b" using saturation, and pack the signed 16-bit results in "dst". + +dst[15:0] := Saturate16(a[15:0] - a[31:16]) +dst[31:16] := Saturate16(a[47:32] - a[63:48]) +dst[47:32] := Saturate16(a[79:64] - a[95:80]) +dst[63:48] := Saturate16(a[111:96] - a[127:112]) +dst[79:64] := Saturate16(b[15:0] - b[31:16]) +dst[95:80] := Saturate16(b[47:32] - b[63:48]) +dst[111:96] := Saturate16(b[79:64] - b[95:80]) +dst[127:112] := Saturate16(b[111:96] - b[127:112]) +dst[143:128] := Saturate16(a[143:128] - a[159:144]) +dst[159:144] := Saturate16(a[175:160] - a[191:176]) +dst[175:160] := Saturate16(a[207:192] - a[223:208]) +dst[191:176] := Saturate16(a[239:224] - a[255:240]) +dst[207:192] := Saturate16(b[143:128] - b[159:144]) +dst[223:208] := Saturate16(b[175:160] - b[191:176]) +dst[239:224] := Saturate16(b[207:192] - b[223:208]) +dst[255:240] := Saturate16(b[239:224] - b[255:240]) +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Arithmetic +
+ + + + + Multiply packed signed 16-bit integers in "a" and "b", producing intermediate signed 32-bit integers. Horizontally add adjacent pairs of intermediate 32-bit integers, and pack the results in "dst". + +FOR j := 0 to 7 + i := j*32 + dst[i+31:i] := SignExtend32(a[i+31:i+16]*b[i+31:i+16]) + SignExtend32(a[i+15:i]*b[i+15:i]) +ENDFOR +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Arithmetic +
+ + + + + Vertically multiply each unsigned 8-bit integer from "a" with the corresponding signed 8-bit integer from "b", producing intermediate signed 16-bit integers. Horizontally add adjacent pairs of intermediate signed 16-bit integers, and pack the saturated results in "dst". + +FOR j := 0 to 15 + i := j*16 + dst[i+15:i] := Saturate16( a[i+15:i+8]*b[i+15:i+8] + a[i+7:i]*b[i+7:i] ) +ENDFOR +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Arithmetic +
+ + + + + Multiply the low signed 32-bit integers from each packed 64-bit element in "a" and "b", and store the signed 64-bit results in "dst". + +FOR j := 0 to 3 + i := j*64 + dst[i+63:i] := SignExtend64(a[i+31:i]) * SignExtend64(b[i+31:i]) +ENDFOR +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Arithmetic +
+ + + + + Multiply the low unsigned 32-bit integers from each packed 64-bit element in "a" and "b", and store the unsigned 64-bit results in "dst". + +FOR j := 0 to 3 + i := j*64 + dst[i+63:i] := a[i+31:i] * b[i+31:i] +ENDFOR +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Arithmetic +
+ + + + + Multiply the packed signed 16-bit integers in "a" and "b", producing intermediate 32-bit integers, and store the high 16 bits of the intermediate integers in "dst". + +FOR j := 0 to 15 + i := j*16 + tmp[31:0] := SignExtend32(a[i+15:i]) * SignExtend32(b[i+15:i]) + dst[i+15:i] := tmp[31:16] +ENDFOR +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Arithmetic +
+ + + + + Multiply the packed unsigned 16-bit integers in "a" and "b", producing intermediate 32-bit integers, and store the high 16 bits of the intermediate integers in "dst". + +FOR j := 0 to 15 + i := j*16 + tmp[31:0] := a[i+15:i] * b[i+15:i] + dst[i+15:i] := tmp[31:16] +ENDFOR +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Arithmetic +
+ + + + + Multiply packed signed 16-bit integers in "a" and "b", producing intermediate signed 32-bit integers. Truncate each intermediate integer to the 18 most significant bits, round by adding 1, and store bits [16:1] to "dst". + +FOR j := 0 to 15 + i := j*16 + tmp[31:0] := ((SignExtend32(a[i+15:i]) * SignExtend32(b[i+15:i])) >> 14) + 1 + dst[i+15:i] := tmp[16:1] +ENDFOR +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Arithmetic +
+ + + + + Multiply the packed signed 16-bit integers in "a" and "b", producing intermediate 32-bit integers, and store the low 16 bits of the intermediate integers in "dst". + +FOR j := 0 to 15 + i := j*16 + tmp[31:0] := SignExtend32(a[i+15:i]) * SignExtend32(b[i+15:i]) + dst[i+15:i] := tmp[15:0] +ENDFOR +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Arithmetic +
+ + + + + Multiply the packed signed 32-bit integers in "a" and "b", producing intermediate 64-bit integers, and store the low 32 bits of the intermediate integers in "dst". + +FOR j := 0 to 7 + i := j*32 + tmp[63:0] := a[i+31:i] * b[i+31:i] + dst[i+31:i] := tmp[31:0] +ENDFOR +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Arithmetic +
+ + + + + Compute the absolute differences of packed unsigned 8-bit integers in "a" and "b", then horizontally sum each consecutive 8 differences to produce four unsigned 16-bit integers, and pack these unsigned 16-bit integers in the low 16 bits of 64-bit elements in "dst". + +FOR j := 0 to 31 + i := j*8 + tmp[i+7:i] := ABS(a[i+7:i] - b[i+7:i]) +ENDFOR +FOR j := 0 to 3 + i := j*64 + dst[i+15:i] := tmp[i+7:i] + tmp[i+15:i+8] + tmp[i+23:i+16] + tmp[i+31:i+24] + \ + tmp[i+39:i+32] + tmp[i+47:i+40] + tmp[i+55:i+48] + tmp[i+63:i+56] + dst[i+63:i+16] := 0 +ENDFOR +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Arithmetic +
+ + + + + Negate packed signed 8-bit integers in "a" when the corresponding signed 8-bit integer in "b" is negative, and store the results in "dst". Element in "dst" are zeroed out when the corresponding element in "b" is zero. + +FOR j := 0 to 31 + i := j*8 + IF b[i+7:i] < 0 + dst[i+7:i] := -(a[i+7:i]) + ELSE IF b[i+7:i] == 0 + dst[i+7:i] := 0 + ELSE + dst[i+7:i] := a[i+7:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Arithmetic +
+ + + + + Negate packed signed 16-bit integers in "a" when the corresponding signed 16-bit integer in "b" is negative, and store the results in "dst". Element in "dst" are zeroed out when the corresponding element in "b" is zero. + +FOR j := 0 to 15 + i := j*16 + IF b[i+15:i] < 0 + dst[i+15:i] := -(a[i+15:i]) + ELSE IF b[i+15:i] == 0 + dst[i+15:i] := 0 + ELSE + dst[i+15:i] := a[i+15:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Arithmetic +
+ + + + + Negate packed signed 32-bit integers in "a" when the corresponding signed 32-bit integer in "b" is negative, and store the results in "dst". Element in "dst" are zeroed out when the corresponding element in "b" is zero. + +FOR j := 0 to 7 + i := j*32 + IF b[i+31:i] < 0 + dst[i+31:i] := -(a[i+31:i]) + ELSE IF b[i+31:i] == 0 + dst[i+31:i] := 0 + ELSE + dst[i+31:i] := a[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Arithmetic +
+ + + + + Subtract packed 8-bit integers in "b" from packed 8-bit integers in "a", and store the results in "dst". + +FOR j := 0 to 31 + i := j*8 + dst[i+7:i] := a[i+7:i] - b[i+7:i] +ENDFOR +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Arithmetic +
+ + + + + Subtract packed 16-bit integers in "b" from packed 16-bit integers in "a", and store the results in "dst". + +FOR j := 0 to 15 + i := j*16 + dst[i+15:i] := a[i+15:i] - b[i+15:i] +ENDFOR +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Arithmetic +
+ + + + + Subtract packed 32-bit integers in "b" from packed 32-bit integers in "a", and store the results in "dst". + +FOR j := 0 to 7 + i := j*32 + dst[i+31:i] := a[i+31:i] - b[i+31:i] +ENDFOR +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Arithmetic +
+ + + + + Subtract packed 64-bit integers in "b" from packed 64-bit integers in "a", and store the results in "dst". + +FOR j := 0 to 3 + i := j*64 + dst[i+63:i] := a[i+63:i] - b[i+63:i] +ENDFOR +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Arithmetic +
+ + + + + Subtract packed signed 8-bit integers in "b" from packed 8-bit integers in "a" using saturation, and store the results in "dst". + +FOR j := 0 to 31 + i := j*8 + dst[i+7:i] := Saturate8(a[i+7:i] - b[i+7:i]) +ENDFOR +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Arithmetic +
+ + + + + Subtract packed signed 16-bit integers in "b" from packed 16-bit integers in "a" using saturation, and store the results in "dst". + +FOR j := 0 to 15 + i := j*16 + dst[i+15:i] := Saturate16(a[i+15:i] - b[i+15:i]) +ENDFOR +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Arithmetic +
+ + + + + Subtract packed unsigned 8-bit integers in "b" from packed unsigned 8-bit integers in "a" using saturation, and store the results in "dst". + +FOR j := 0 to 31 + i := j*8 + dst[i+7:i] := SaturateU8(a[i+7:i] - b[i+7:i]) +ENDFOR +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Arithmetic +
+ + + + + Subtract packed unsigned 16-bit integers in "b" from packed unsigned 16-bit integers in "a" using saturation, and store the results in "dst". + +FOR j := 0 to 15 + i := j*16 + dst[i+15:i] := SaturateU16(a[i+15:i] - b[i+15:i]) +ENDFOR +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Arithmetic +
+ + + + + + Concatenate pairs of 16-byte blocks in "a" and "b" into a 32-byte temporary result, shift the result right by "imm8" bytes, and store the low 16 bytes in "dst". + +FOR j := 0 to 1 + i := j*128 + tmp[255:0] := ((a[i+127:i] << 128)[255:0] OR b[i+127:i]) >> (imm8*8) + dst[i+127:i] := tmp[127:0] +ENDFOR +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Miscellaneous +
+ + + + Create mask from the most significant bit of each 8-bit element in "a", and store the result in "dst". + +FOR j := 0 to 31 + i := j*8 + dst[j] := a[i+7] +ENDFOR + + + AVX2 +
immintrin.h
+ Miscellaneous +
+ + + + + + Compute the sum of absolute differences (SADs) of quadruplets of unsigned 8-bit integers in "a" compared to those in "b", and store the 16-bit results in "dst". + Eight SADs are performed for each 128-bit lane using one quadruplet from "b" and eight quadruplets from "a". One quadruplet is selected from "b" starting at on the offset specified in "imm8". Eight quadruplets are formed from sequential 8-bit integers selected from "a" starting at the offset specified in "imm8". + +DEFINE MPSADBW(a[127:0], b[127:0], imm8[2:0]) { + a_offset := imm8[2]*32 + b_offset := imm8[1:0]*32 + FOR j := 0 to 7 + i := j*8 + k := a_offset+i + l := b_offset + tmp[i*2+15:i*2] := ABS(Signed(a[k+7:k] - b[l+7:l])) + ABS(Signed(a[k+15:k+8] - b[l+15:l+8])) + \ + ABS(Signed(a[k+23:k+16] - b[l+23:l+16])) + ABS(Signed(a[k+31:k+24] - b[l+31:l+24])) + ENDFOR + RETURN tmp[127:0] +} +dst[127:0] := MPSADBW(a[127:0], b[127:0], imm8[2:0]) +dst[255:128] := MPSADBW(a[255:128], b[255:128], imm8[5:3]) +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Miscellaneous +
+ + + + + Convert packed signed 16-bit integers from "a" and "b" to packed 8-bit integers using signed saturation, and store the results in "dst". + +dst[7:0] := Saturate8(a[15:0]) +dst[15:8] := Saturate8(a[31:16]) +dst[23:16] := Saturate8(a[47:32]) +dst[31:24] := Saturate8(a[63:48]) +dst[39:32] := Saturate8(a[79:64]) +dst[47:40] := Saturate8(a[95:80]) +dst[55:48] := Saturate8(a[111:96]) +dst[63:56] := Saturate8(a[127:112]) +dst[71:64] := Saturate8(b[15:0]) +dst[79:72] := Saturate8(b[31:16]) +dst[87:80] := Saturate8(b[47:32]) +dst[95:88] := Saturate8(b[63:48]) +dst[103:96] := Saturate8(b[79:64]) +dst[111:104] := Saturate8(b[95:80]) +dst[119:112] := Saturate8(b[111:96]) +dst[127:120] := Saturate8(b[127:112]) +dst[135:128] := Saturate8(a[143:128]) +dst[143:136] := Saturate8(a[159:144]) +dst[151:144] := Saturate8(a[175:160]) +dst[159:152] := Saturate8(a[191:176]) +dst[167:160] := Saturate8(a[207:192]) +dst[175:168] := Saturate8(a[223:208]) +dst[183:176] := Saturate8(a[239:224]) +dst[191:184] := Saturate8(a[255:240]) +dst[199:192] := Saturate8(b[143:128]) +dst[207:200] := Saturate8(b[159:144]) +dst[215:208] := Saturate8(b[175:160]) +dst[223:216] := Saturate8(b[191:176]) +dst[231:224] := Saturate8(b[207:192]) +dst[239:232] := Saturate8(b[223:208]) +dst[247:240] := Saturate8(b[239:224]) +dst[255:248] := Saturate8(b[255:240]) +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Miscellaneous +
+ + + + + Convert packed signed 32-bit integers from "a" and "b" to packed 16-bit integers using signed saturation, and store the results in "dst". + +dst[15:0] := Saturate16(a[31:0]) +dst[31:16] := Saturate16(a[63:32]) +dst[47:32] := Saturate16(a[95:64]) +dst[63:48] := Saturate16(a[127:96]) +dst[79:64] := Saturate16(b[31:0]) +dst[95:80] := Saturate16(b[63:32]) +dst[111:96] := Saturate16(b[95:64]) +dst[127:112] := Saturate16(b[127:96]) +dst[143:128] := Saturate16(a[159:128]) +dst[159:144] := Saturate16(a[191:160]) +dst[175:160] := Saturate16(a[223:192]) +dst[191:176] := Saturate16(a[255:224]) +dst[207:192] := Saturate16(b[159:128]) +dst[223:208] := Saturate16(b[191:160]) +dst[239:224] := Saturate16(b[223:192]) +dst[255:240] := Saturate16(b[255:224]) +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Miscellaneous +
+ + + + + Convert packed signed 16-bit integers from "a" and "b" to packed 8-bit integers using unsigned saturation, and store the results in "dst". + +dst[7:0] := SaturateU8(a[15:0]) +dst[15:8] := SaturateU8(a[31:16]) +dst[23:16] := SaturateU8(a[47:32]) +dst[31:24] := SaturateU8(a[63:48]) +dst[39:32] := SaturateU8(a[79:64]) +dst[47:40] := SaturateU8(a[95:80]) +dst[55:48] := SaturateU8(a[111:96]) +dst[63:56] := SaturateU8(a[127:112]) +dst[71:64] := SaturateU8(b[15:0]) +dst[79:72] := SaturateU8(b[31:16]) +dst[87:80] := SaturateU8(b[47:32]) +dst[95:88] := SaturateU8(b[63:48]) +dst[103:96] := SaturateU8(b[79:64]) +dst[111:104] := SaturateU8(b[95:80]) +dst[119:112] := SaturateU8(b[111:96]) +dst[127:120] := SaturateU8(b[127:112]) +dst[135:128] := SaturateU8(a[143:128]) +dst[143:136] := SaturateU8(a[159:144]) +dst[151:144] := SaturateU8(a[175:160]) +dst[159:152] := SaturateU8(a[191:176]) +dst[167:160] := SaturateU8(a[207:192]) +dst[175:168] := SaturateU8(a[223:208]) +dst[183:176] := SaturateU8(a[239:224]) +dst[191:184] := SaturateU8(a[255:240]) +dst[199:192] := SaturateU8(b[143:128]) +dst[207:200] := SaturateU8(b[159:144]) +dst[215:208] := SaturateU8(b[175:160]) +dst[223:216] := SaturateU8(b[191:176]) +dst[231:224] := SaturateU8(b[207:192]) +dst[239:232] := SaturateU8(b[223:208]) +dst[247:240] := SaturateU8(b[239:224]) +dst[255:248] := SaturateU8(b[255:240]) +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Miscellaneous +
+ + + + + Convert packed signed 32-bit integers from "a" and "b" to packed 16-bit integers using unsigned saturation, and store the results in "dst". + +dst[15:0] := SaturateU16(a[31:0]) +dst[31:16] := SaturateU16(a[63:32]) +dst[47:32] := SaturateU16(a[95:64]) +dst[63:48] := SaturateU16(a[127:96]) +dst[79:64] := SaturateU16(b[31:0]) +dst[95:80] := SaturateU16(b[63:32]) +dst[111:96] := SaturateU16(b[95:64]) +dst[127:112] := SaturateU16(b[127:96]) +dst[143:128] := SaturateU16(a[159:128]) +dst[159:144] := SaturateU16(a[191:160]) +dst[175:160] := SaturateU16(a[223:192]) +dst[191:176] := SaturateU16(a[255:224]) +dst[207:192] := SaturateU16(b[159:128]) +dst[223:208] := SaturateU16(b[191:160]) +dst[239:224] := SaturateU16(b[223:192]) +dst[255:240] := SaturateU16(b[255:224]) +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Miscellaneous +
+ + + + + Compute the bitwise AND of 256 bits (representing integer data) in "a" and "b", and store the result in "dst". + +dst[255:0] := (a[255:0] AND b[255:0]) +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Logical +
+ + + + + Compute the bitwise NOT of 256 bits (representing integer data) in "a" and then AND with "b", and store the result in "dst". + +dst[255:0] := ((NOT a[255:0]) AND b[255:0]) +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Logical +
+ + + + + Compute the bitwise OR of 256 bits (representing integer data) in "a" and "b", and store the result in "dst". + +dst[255:0] := (a[255:0] OR b[255:0]) +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Logical +
+ + + + + Compute the bitwise XOR of 256 bits (representing integer data) in "a" and "b", and store the result in "dst". + +dst[255:0] := (a[255:0] XOR b[255:0]) +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Logical +
+ + + + + Average packed unsigned 8-bit integers in "a" and "b", and store the results in "dst". + +FOR j := 0 to 31 + i := j*8 + dst[i+7:i] := (a[i+7:i] + b[i+7:i] + 1) >> 1 +ENDFOR +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Probability/Statistics +
+ + + + + Average packed unsigned 16-bit integers in "a" and "b", and store the results in "dst". + +FOR j := 0 to 15 + i := j*16 + dst[i+15:i] := (a[i+15:i] + b[i+15:i] + 1) >> 1 +ENDFOR +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Probability/Statistics +
+ + + + + Compare packed 8-bit integers in "a" and "b" for equality, and store the results in "dst". + +FOR j := 0 to 31 + i := j*8 + dst[i+7:i] := ( a[i+7:i] == b[i+7:i] ) ? 0xFF : 0 +ENDFOR +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Compare +
+ + + + + Compare packed 16-bit integers in "a" and "b" for equality, and store the results in "dst". + +FOR j := 0 to 15 + i := j*16 + dst[i+15:i] := ( a[i+15:i] == b[i+15:i] ) ? 0xFFFF : 0 +ENDFOR +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Compare +
+ + + + + Compare packed 32-bit integers in "a" and "b" for equality, and store the results in "dst". + +FOR j := 0 to 7 + i := j*32 + dst[i+31:i] := ( a[i+31:i] == b[i+31:i] ) ? 0xFFFFFFFF : 0 +ENDFOR +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Compare +
+ + + + + Compare packed 64-bit integers in "a" and "b" for equality, and store the results in "dst". + +FOR j := 0 to 3 + i := j*64 + dst[i+63:i] := ( a[i+63:i] == b[i+63:i] ) ? 0xFFFFFFFFFFFFFFFF : 0 +ENDFOR +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Compare +
+ + + + + Compare packed signed 8-bit integers in "a" and "b" for greater-than, and store the results in "dst". + +FOR j := 0 to 31 + i := j*8 + dst[i+7:i] := ( a[i+7:i] > b[i+7:i] ) ? 0xFF : 0 +ENDFOR +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Compare +
+ + + + + Compare packed signed 16-bit integers in "a" and "b" for greater-than, and store the results in "dst". + +FOR j := 0 to 15 + i := j*16 + dst[i+15:i] := ( a[i+15:i] > b[i+15:i] ) ? 0xFFFF : 0 +ENDFOR +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Compare +
+ + + + + Compare packed signed 32-bit integers in "a" and "b" for greater-than, and store the results in "dst". + +FOR j := 0 to 7 + i := j*32 + dst[i+31:i] := ( a[i+31:i] > b[i+31:i] ) ? 0xFFFFFFFF : 0 +ENDFOR +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Compare +
+ + + + + Compare packed signed 64-bit integers in "a" and "b" for greater-than, and store the results in "dst". + +FOR j := 0 to 3 + i := j*64 + dst[i+63:i] := ( a[i+63:i] > b[i+63:i] ) ? 0xFFFFFFFFFFFFFFFF : 0 +ENDFOR +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Compare +
+ + + + Sign extend packed 16-bit integers in "a" to packed 32-bit integers, and store the results in "dst". + +FOR j:= 0 to 7 + i := 32*j + k := 16*j + dst[i+31:i] := SignExtend32(a[k+15:k]) +ENDFOR +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Convert +
+ + + + Sign extend packed 16-bit integers in "a" to packed 64-bit integers, and store the results in "dst". + +FOR j:= 0 to 3 + i := 64*j + k := 16*j + dst[i+63:i] := SignExtend64(a[k+15:k]) +ENDFOR +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Convert +
+ + + + Sign extend packed 32-bit integers in "a" to packed 64-bit integers, and store the results in "dst". + +FOR j:= 0 to 3 + i := 64*j + k := 32*j + dst[i+63:i] := SignExtend64(a[k+31:k]) +ENDFOR +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Convert +
+ + + + Sign extend packed 8-bit integers in "a" to packed 16-bit integers, and store the results in "dst". + +FOR j := 0 to 15 + i := j*8 + l := j*16 + dst[l+15:l] := SignExtend16(a[i+7:i]) +ENDFOR +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Convert +
+ + + + Sign extend packed 8-bit integers in "a" to packed 32-bit integers, and store the results in "dst". + +FOR j := 0 to 7 + i := 32*j + k := 8*j + dst[i+31:i] := SignExtend32(a[k+7:k]) +ENDFOR +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Convert +
+ + + + Sign extend packed 8-bit integers in the low 8 bytes of "a" to packed 64-bit integers, and store the results in "dst". + +FOR j := 0 to 3 + i := 64*j + k := 8*j + dst[i+63:i] := SignExtend64(a[k+7:k]) +ENDFOR +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Convert +
+ + + + Zero extend packed unsigned 16-bit integers in "a" to packed 32-bit integers, and store the results in "dst". + +FOR j := 0 to 7 + i := 32*j + k := 16*j + dst[i+31:i] := ZeroExtend32(a[k+15:k]) +ENDFOR +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Convert +
+ + + + Zero extend packed unsigned 16-bit integers in "a" to packed 64-bit integers, and store the results in "dst". + +FOR j:= 0 to 3 + i := 64*j + k := 16*j + dst[i+63:i] := ZeroExtend64(a[k+15:k]) +ENDFOR +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Convert +
+ + + + Zero extend packed unsigned 32-bit integers in "a" to packed 64-bit integers, and store the results in "dst". + +FOR j:= 0 to 3 + i := 64*j + k := 32*j + dst[i+63:i] := ZeroExtend64(a[k+31:k]) +ENDFOR +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Convert +
+ + + + Zero extend packed unsigned 8-bit integers in "a" to packed 16-bit integers, and store the results in "dst". + +FOR j := 0 to 15 + i := j*8 + l := j*16 + dst[l+15:l] := ZeroExtend16(a[i+7:i]) +ENDFOR +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Convert +
+ + + + Zero extend packed unsigned 8-bit integers in "a" to packed 32-bit integers, and store the results in "dst". + +FOR j := 0 to 7 + i := 32*j + k := 8*j + dst[i+31:i] := ZeroExtend32(a[k+7:k]) +ENDFOR +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Convert +
+ + + + Zero extend packed unsigned 8-bit integers in the low 8 byte sof "a" to packed 64-bit integers, and store the results in "dst". + +FOR j := 0 to 3 + i := 64*j + k := 8*j + dst[i+63:i] := ZeroExtend64(a[k+7:k]) +ENDFOR +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Convert +
+ + + + + + Gather double-precision (64-bit) floating-point elements from memory using 32-bit indices. 64-bit elements are loaded from addresses starting at "base_addr" and offset by each 32-bit element in "vindex" (each index is scaled by the factor in "scale"). Gathered elements are merged into "dst". "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 1 + i := j*64 + m := j*32 + addr := base_addr + SignExtend64(vindex[m+31:m]) * ZeroExtend64(scale) * 8 + dst[i+63:i] := MEM[addr+63:addr] +ENDFOR +dst[MAX:128] := 0 + + + AVX2 +
immintrin.h
+ Load +
+ + + + + + Gather double-precision (64-bit) floating-point elements from memory using 32-bit indices. 64-bit elements are loaded from addresses starting at "base_addr" and offset by each 32-bit element in "vindex" (each index is scaled by the factor in "scale"). Gathered elements are merged into "dst". "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 3 + i := j*64 + m := j*32 + addr := base_addr + SignExtend64(vindex[m+31:m]) * ZeroExtend64(scale) * 8 + dst[i+63:i] := MEM[addr+63:addr] +ENDFOR +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Load +
+ + + + + + Gather single-precision (32-bit) floating-point elements from memory using 32-bit indices. 32-bit elements are loaded from addresses starting at "base_addr" and offset by each 32-bit element in "vindex" (each index is scaled by the factor in "scale"). Gathered elements are merged into "dst". "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 3 + i := j*32 + m := j*32 + addr := base_addr + SignExtend64(vindex[m+31:m]) * ZeroExtend64(scale) * 8 + dst[i+31:i] := MEM[addr+31:addr] +ENDFOR +dst[MAX:128] := 0 + + + AVX2 +
immintrin.h
+ Load +
+ + + + + + Gather single-precision (32-bit) floating-point elements from memory using 32-bit indices. 32-bit elements are loaded from addresses starting at "base_addr" and offset by each 32-bit element in "vindex" (each index is scaled by the factor in "scale"). Gathered elements are merged into "dst". "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 7 + i := j*32 + m := j*32 + addr := base_addr + SignExtend64(vindex[m+31:m]) * ZeroExtend64(scale) * 8 + dst[i+31:i] := MEM[addr+31:addr] +ENDFOR +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Load +
+ + + + + + Gather 32-bit integers from memory using 32-bit indices. 32-bit elements are loaded from addresses starting at "base_addr" and offset by each 32-bit element in "vindex" (each index is scaled by the factor in "scale"). Gathered elements are merged into "dst". "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 3 + i := j*32 + m := j*32 + addr := base_addr + SignExtend64(vindex[m+31:m]) * ZeroExtend64(scale) * 8 + dst[i+31:i] := MEM[addr+31:addr] +ENDFOR +dst[MAX:128] := 0 + + + AVX2 +
immintrin.h
+ Load +
+ + + + + + Gather 32-bit integers from memory using 32-bit indices. 32-bit elements are loaded from addresses starting at "base_addr" and offset by each 32-bit element in "vindex" (each index is scaled by the factor in "scale"). Gathered elements are merged into "dst". "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 7 + i := j*32 + m := j*32 + addr := base_addr + SignExtend64(vindex[m+31:m]) * ZeroExtend64(scale) * 8 + dst[i+31:i] := MEM[addr+31:addr] +ENDFOR +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Load +
+ + + + + + Gather 64-bit integers from memory using 32-bit indices. 64-bit elements are loaded from addresses starting at "base_addr" and offset by each 32-bit element in "vindex" (each index is scaled by the factor in "scale"). Gathered elements are merged into "dst". "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 1 + i := j*64 + m := j*32 + addr := base_addr + SignExtend64(vindex[m+31:m]) * ZeroExtend64(scale) * 8 + dst[i+63:i] := MEM[addr+63:addr] +ENDFOR +dst[MAX:128] := 0 + + + AVX2 +
immintrin.h
+ Load +
+ + + + + + Gather 64-bit integers from memory using 32-bit indices. 64-bit elements are loaded from addresses starting at "base_addr" and offset by each 32-bit element in "vindex" (each index is scaled by the factor in "scale"). Gathered elements are merged into "dst". "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 3 + i := j*64 + m := j*32 + addr := base_addr + SignExtend64(vindex[m+31:m]) * ZeroExtend64(scale) * 8 + dst[i+63:i] := MEM[addr+63:addr] +ENDFOR +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Load +
+ + + + + + Gather double-precision (64-bit) floating-point elements from memory using 64-bit indices. 64-bit elements are loaded from addresses starting at "base_addr" and offset by each 64-bit element in "vindex" (each index is scaled by the factor in "scale"). Gathered elements are merged into "dst". "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 1 + i := j*64 + m := j*64 + addr := base_addr + vindex[m+63:m] * ZeroExtend64(scale) * 8 + dst[i+63:i] := MEM[addr+63:addr] +ENDFOR +dst[MAX:128] := 0 + + + AVX2 +
immintrin.h
+ Load +
+ + + + + + Gather double-precision (64-bit) floating-point elements from memory using 64-bit indices. 64-bit elements are loaded from addresses starting at "base_addr" and offset by each 64-bit element in "vindex" (each index is scaled by the factor in "scale"). Gathered elements are merged into "dst". "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 3 + i := j*64 + m := j*64 + addr := base_addr + vindex[m+63:m] * ZeroExtend64(scale) * 8 + dst[i+63:i] := MEM[addr+63:addr] +ENDFOR +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Load +
+ + + + + + Gather single-precision (32-bit) floating-point elements from memory using 64-bit indices. 32-bit elements are loaded from addresses starting at "base_addr" and offset by each 64-bit element in "vindex" (each index is scaled by the factor in "scale"). Gathered elements are merged into "dst". "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 1 + i := j*32 + m := j*64 + addr := base_addr + vindex[m+63:m] * ZeroExtend64(scale) * 8 + dst[i+31:i] := MEM[addr+31:addr] +ENDFOR +dst[MAX:64] := 0 + + + AVX2 +
immintrin.h
+ Load +
+ + + + + + Gather single-precision (32-bit) floating-point elements from memory using 64-bit indices. 32-bit elements are loaded from addresses starting at "base_addr" and offset by each 64-bit element in "vindex" (each index is scaled by the factor in "scale"). Gathered elements are merged into "dst". "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 3 + i := j*32 + m := j*64 + addr := base_addr + vindex[m+63:m] * ZeroExtend64(scale) * 8 + dst[i+31:i] := MEM[addr+31:addr] +ENDFOR +dst[MAX:128] := 0 + + + AVX2 +
immintrin.h
+ Load +
+ + + + + + Gather 32-bit integers from memory using 64-bit indices. 32-bit elements are loaded from addresses starting at "base_addr" and offset by each 64-bit element in "vindex" (each index is scaled by the factor in "scale"). Gathered elements are merged into "dst". "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 1 + i := j*32 + m := j*64 + addr := base_addr + vindex[m+63:m] * ZeroExtend64(scale) * 8 + dst[i+31:i] := MEM[addr+31:addr] +ENDFOR +dst[MAX:64] := 0 + + + AVX2 +
immintrin.h
+ Load +
+ + + + + + Gather 32-bit integers from memory using 64-bit indices. 32-bit elements are loaded from addresses starting at "base_addr" and offset by each 64-bit element in "vindex" (each index is scaled by the factor in "scale"). Gathered elements are merged into "dst". "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 3 + i := j*32 + m := j*64 + addr := base_addr + vindex[m+63:m] * ZeroExtend64(scale) * 8 + dst[i+31:i] := MEM[addr+31:addr] +ENDFOR +dst[MAX:128] := 0 + + + AVX2 +
immintrin.h
+ Load +
+ + + + + + Gather 64-bit integers from memory using 64-bit indices. 64-bit elements are loaded from addresses starting at "base_addr" and offset by each 64-bit element in "vindex" (each index is scaled by the factor in "scale"). Gathered elements are merged into "dst". "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 1 + i := j*64 + m := j*64 + addr := base_addr + vindex[m+63:m] * ZeroExtend64(scale) * 8 + dst[i+63:i] := MEM[addr+63:addr] +ENDFOR +dst[MAX:128] := 0 + + + AVX2 +
immintrin.h
+ Load +
+ + + + + + Gather 64-bit integers from memory using 64-bit indices. 64-bit elements are loaded from addresses starting at "base_addr" and offset by each 64-bit element in "vindex" (each index is scaled by the factor in "scale"). Gathered elements are merged into "dst". "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 3 + i := j*64 + m := j*64 + addr := base_addr + vindex[m+63:m] * ZeroExtend64(scale) * 8 + dst[i+63:i] := MEM[addr+63:addr] +ENDFOR +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Load +
+ + + + + + + + Gather double-precision (64-bit) floating-point elements from memory using 32-bit indices. 64-bit elements are loaded from addresses starting at "base_addr" and offset by each 32-bit element in "vindex" (each index is scaled by the factor in "scale"). Gathered elements are merged into "dst" using "mask" (elements are copied from "src" when the highest bit is not set in the corresponding element). "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 1 + i := j*64 + m := j*32 + IF mask[i+63] + addr := base_addr + SignExtend64(vindex[m+31:m]) * ZeroExtend64(scale) * 8 + dst[i+63:i] := MEM[addr+63:addr] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +mask[MAX:128] := 0 +dst[MAX:128] := 0 + + + AVX2 +
immintrin.h
+ Load +
+ + + + + + + + Gather double-precision (64-bit) floating-point elements from memory using 32-bit indices. 64-bit elements are loaded from addresses starting at "base_addr" and offset by each 32-bit element in "vindex" (each index is scaled by the factor in "scale"). Gathered elements are merged into "dst" using "mask" (elements are copied from "src" when the highest bit is not set in the corresponding element). "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 3 + i := j*64 + m := j*32 + IF mask[i+63] + addr := base_addr + SignExtend64(vindex[m+31:m]) * ZeroExtend64(scale) * 8 + dst[i+63:i] := MEM[addr+63:addr] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +mask[MAX:256] := 0 +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Load +
+ + + + + + + + Gather single-precision (32-bit) floating-point elements from memory using 32-bit indices. 32-bit elements are loaded from addresses starting at "base_addr" and offset by each 32-bit element in "vindex" (each index is scaled by the factor in "scale"). Gathered elements are merged into "dst" using "mask" (elements are copied from "src" when the highest bit is not set in the corresponding element). "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 3 + i := j*32 + m := j*32 + IF mask[i+31] + addr := base_addr + SignExtend64(vindex[m+31:m]) * ZeroExtend64(scale) * 8 + dst[i+31:i] := MEM[addr+31:addr] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +mask[MAX:128] := 0 +dst[MAX:128] := 0 + + + AVX2 +
immintrin.h
+ Load +
+ + + + + + + + Gather single-precision (32-bit) floating-point elements from memory using 32-bit indices. 32-bit elements are loaded from addresses starting at "base_addr" and offset by each 32-bit element in "vindex" (each index is scaled by the factor in "scale"). Gathered elements are merged into "dst" using "mask" (elements are copied from "src" when the highest bit is not set in the corresponding element). "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 7 + i := j*32 + m := j*32 + IF mask[i+31] + addr := base_addr + SignExtend64(vindex[m+31:m]) * ZeroExtend64(scale) * 8 + dst[i+31:i] := MEM[addr+31:addr] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +mask[MAX:256] := 0 +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Load +
+ + + + + + + + Gather 32-bit integers from memory using 32-bit indices. 32-bit elements are loaded from addresses starting at "base_addr" and offset by each 32-bit element in "vindex" (each index is scaled by the factor in "scale"). Gathered elements are merged into "dst" using "mask" (elements are copied from "src" when the highest bit is not set in the corresponding element). "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 3 + i := j*32 + m := j*32 + IF mask[i+31] + addr := base_addr + SignExtend64(vindex[m+31:m]) * ZeroExtend64(scale) * 8 + dst[i+31:i] := MEM[addr+31:addr] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +mask[MAX:128] := 0 +dst[MAX:128] := 0 + + + AVX2 +
immintrin.h
+ Load +
+ + + + + + + + Gather 32-bit integers from memory using 32-bit indices. 32-bit elements are loaded from addresses starting at "base_addr" and offset by each 32-bit element in "vindex" (each index is scaled by the factor in "scale"). Gathered elements are merged into "dst" using "mask" (elements are copied from "src" when the highest bit is not set in the corresponding element). "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 7 + i := j*32 + m := j*32 + IF mask[i+31] + addr := base_addr + SignExtend64(vindex[m+31:m]) * ZeroExtend64(scale) * 8 + dst[i+31:i] := MEM[addr+31:addr] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +mask[MAX:256] := 0 +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Load +
+ + + + + + + + Gather 64-bit integers from memory using 32-bit indices. 64-bit elements are loaded from addresses starting at "base_addr" and offset by each 32-bit element in "vindex" (each index is scaled by the factor in "scale"). Gathered elements are merged into "dst" using "mask" (elements are copied from "src" when the highest bit is not set in the corresponding element). "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 1 + i := j*64 + m := j*32 + IF mask[i+63] + addr := base_addr + SignExtend64(vindex[m+31:m]) * ZeroExtend64(scale) * 8 + dst[i+63:i] := MEM[addr+63:addr] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +mask[MAX:128] := 0 +dst[MAX:128] := 0 + + + AVX2 +
immintrin.h
+ Load +
+ + + + + + + + Gather 64-bit integers from memory using 32-bit indices. 64-bit elements are loaded from addresses starting at "base_addr" and offset by each 32-bit element in "vindex" (each index is scaled by the factor in "scale"). Gathered elements are merged into "dst" using "mask" (elements are copied from "src" when the highest bit is not set in the corresponding element). "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 3 + i := j*64 + m := j*32 + IF mask[i+63] + addr := base_addr + SignExtend64(vindex[m+31:m]) * ZeroExtend64(scale) * 8 + dst[i+63:i] := MEM[addr+63:addr] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +mask[MAX:256] := 0 +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Load +
+ + + + + + + + Gather double-precision (64-bit) floating-point elements from memory using 64-bit indices. 64-bit elements are loaded from addresses starting at "base_addr" and offset by each 64-bit element in "vindex" (each index is scaled by the factor in "scale"). Gathered elements are merged into "dst" using "mask" (elements are copied from "src" when the highest bit is not set in the corresponding element). "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 1 + i := j*64 + m := j*64 + IF mask[i+63] + addr := base_addr + vindex[m+63:m] * ZeroExtend64(scale) * 8 + dst[i+63:i] := MEM[addr+63:addr] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +mask[MAX:128] := 0 +dst[MAX:128] := 0 + + + AVX2 +
immintrin.h
+ Load +
+ + + + + + + + Gather double-precision (64-bit) floating-point elements from memory using 64-bit indices. 64-bit elements are loaded from addresses starting at "base_addr" and offset by each 64-bit element in "vindex" (each index is scaled by the factor in "scale"). Gathered elements are merged into "dst" using "mask" (elements are copied from "src" when the highest bit is not set in the corresponding element). "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 3 + i := j*64 + m := j*64 + IF mask[i+63] + addr := base_addr + vindex[m+63:m] * ZeroExtend64(scale) * 8 + dst[i+63:i] := MEM[addr+63:addr] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +mask[MAX:256] := 0 +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Load +
+ + + + + + + + Gather single-precision (32-bit) floating-point elements from memory using 64-bit indices. 32-bit elements are loaded from addresses starting at "base_addr" and offset by each 64-bit element in "vindex" (each index is scaled by the factor in "scale"). Gathered elements are merged into "dst" using "mask" (elements are copied from "src" when the highest bit is not set in the corresponding element). "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 1 + i := j*32 + m := j*64 + IF mask[i+31] + addr := base_addr + vindex[m+63:m] * ZeroExtend64(scale) * 8 + dst[i+31:i] := MEM[addr+31:addr] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +mask[MAX:64] := 0 +dst[MAX:64] := 0 + + + AVX2 +
immintrin.h
+ Load +
+ + + + + + + + Gather single-precision (32-bit) floating-point elements from memory using 64-bit indices. 32-bit elements are loaded from addresses starting at "base_addr" and offset by each 64-bit element in "vindex" (each index is scaled by the factor in "scale"). Gathered elements are merged into "dst" using "mask" (elements are copied from "src" when the highest bit is not set in the corresponding element). "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 3 + i := j*32 + m := j*64 + IF mask[i+31] + addr := base_addr + vindex[m+63:m] * ZeroExtend64(scale) * 8 + dst[i+31:i] := MEM[addr+31:addr] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +mask[MAX:128] := 0 +dst[MAX:128] := 0 + + + AVX2 +
immintrin.h
+ Load +
+ + + + + + + + Gather 32-bit integers from memory using 64-bit indices. 32-bit elements are loaded from addresses starting at "base_addr" and offset by each 64-bit element in "vindex" (each index is scaled by the factor in "scale"). Gathered elements are merged into "dst" using "mask" (elements are copied from "src" when the highest bit is not set in the corresponding element). "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 1 + i := j*32 + m := j*64 + IF mask[i+31] + addr := base_addr + vindex[m+63:m] * ZeroExtend64(scale) * 8 + dst[i+31:i] := MEM[addr+31:addr] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +mask[MAX:64] := 0 +dst[MAX:64] := 0 + + + AVX2 +
immintrin.h
+ Load +
+ + + + + + + + Gather 32-bit integers from memory using 64-bit indices. 32-bit elements are loaded from addresses starting at "base_addr" and offset by each 64-bit element in "vindex" (each index is scaled by the factor in "scale"). Gathered elements are merged into "dst" using "mask" (elements are copied from "src" when the highest bit is not set in the corresponding element). "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 3 + i := j*32 + m := j*64 + IF mask[i+31] + addr := base_addr + vindex[m+63:m] * ZeroExtend64(scale) * 8 + dst[i+31:i] := MEM[addr+31:addr] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +mask[MAX:128] := 0 +dst[MAX:128] := 0 + + + AVX2 +
immintrin.h
+ Load +
+ + + + + + + + Gather 64-bit integers from memory using 64-bit indices. 64-bit elements are loaded from addresses starting at "base_addr" and offset by each 64-bit element in "vindex" (each index is scaled by the factor in "scale"). Gathered elements are merged into "dst" using "mask" (elements are copied from "src" when the highest bit is not set in the corresponding element). "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 1 + i := j*64 + m := j*64 + IF mask[i+63] + addr := base_addr + vindex[m+63:m] * ZeroExtend64(scale) * 8 + dst[i+63:i] := MEM[addr+63:addr] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +mask[MAX:128] := 0 +dst[MAX:128] := 0 + + + AVX2 +
immintrin.h
+ Load +
+ + + + + + + + Gather 64-bit integers from memory using 64-bit indices. 64-bit elements are loaded from addresses starting at "base_addr" and offset by each 64-bit element in "vindex" (each index is scaled by the factor in "scale"). Gathered elements are merged into "dst" using "mask" (elements are copied from "src" when the highest bit is not set in the corresponding element). "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 3 + i := j*64 + m := j*64 + IF mask[i+63] + addr := base_addr + vindex[m+63:m] * ZeroExtend64(scale) * 8 + dst[i+63:i] := MEM[addr+63:addr] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +mask[MAX:256] := 0 +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Load +
+ + + + + Load packed 32-bit integers from memory into "dst" using "mask" (elements are zeroed out when the highest bit is not set in the corresponding element). + +FOR j := 0 to 3 + i := j*32 + IF mask[i+31] + dst[i+31:i] := MEM[mem_addr+i+31:mem_addr+i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX2 +
immintrin.h
+ Load +
+ + + + + Load packed 32-bit integers from memory into "dst" using "mask" (elements are zeroed out when the highest bit is not set in the corresponding element). + +FOR j := 0 to 7 + i := j*32 + IF mask[i+31] + dst[i+31:i] := MEM[mem_addr+i+31:mem_addr+i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Load +
+ + + + + Load packed 64-bit integers from memory into "dst" using "mask" (elements are zeroed out when the highest bit is not set in the corresponding element). + +FOR j := 0 to 1 + i := j*64 + IF mask[i+63] + dst[i+63:i] := MEM[mem_addr+i+63:mem_addr+i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX2 +
immintrin.h
+ Load +
+ + + + + Load packed 64-bit integers from memory into "dst" using "mask" (elements are zeroed out when the highest bit is not set in the corresponding element). + +FOR j := 0 to 3 + i := j*64 + IF mask[i+63] + dst[i+63:i] := MEM[mem_addr+i+63:mem_addr+i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Load +
+ + + + Load 256-bits of integer data from memory into "dst" using a non-temporal memory hint. + "mem_addr" must be aligned on a 32-byte boundary or a general-protection exception may be generated. + +dst[255:0] := MEM[mem_addr+255:mem_addr] +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Load +
+ + + + + + Store packed 32-bit integers from "a" into memory using "mask" (elements are not stored when the highest bit is not set in the corresponding element). + +FOR j := 0 to 3 + i := j*32 + IF mask[i+31] + MEM[mem_addr+i+31:mem_addr+i] := a[i+31:i] + FI +ENDFOR + + + AVX2 +
immintrin.h
+ Store +
+ + + + + + Store packed 32-bit integers from "a" into memory using "mask" (elements are not stored when the highest bit is not set in the corresponding element). + +FOR j := 0 to 7 + i := j*32 + IF mask[i+31] + MEM[mem_addr+i+31:mem_addr+i] := a[i+31:i] + FI +ENDFOR + + + AVX2 +
immintrin.h
+ Store +
+ + + + + + Store packed 64-bit integers from "a" into memory using "mask" (elements are not stored when the highest bit is not set in the corresponding element). + +FOR j := 0 to 1 + i := j*64 + IF mask[i+63] + MEM[mem_addr+i+63:mem_addr+i] := a[i+63:i] + FI +ENDFOR + + + AVX2 +
immintrin.h
+ Store +
+ + + + + + Store packed 64-bit integers from "a" into memory using "mask" (elements are not stored when the highest bit is not set in the corresponding element). + +FOR j := 0 to 3 + i := j*64 + IF mask[i+63] + MEM[mem_addr+i+63:mem_addr+i] := a[i+63:i] + FI +ENDFOR + + + AVX2 +
immintrin.h
+ Store +
+ + + + + Shift 128-bit lanes in "a" left by "imm8" bytes while shifting in zeros, and store the results in "dst". + +tmp := imm8[7:0] +IF tmp > 15 + tmp := 16 +FI +dst[127:0] := a[127:0] << (tmp*8) +dst[255:128] := a[255:128] << (tmp*8) +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Shift +
+ + + + + Shift 128-bit lanes in "a" left by "imm8" bytes while shifting in zeros, and store the results in "dst". + +tmp := imm8[7:0] +IF tmp > 15 + tmp := 16 +FI +dst[127:0] := a[127:0] << (tmp*8) +dst[255:128] := a[255:128] << (tmp*8) +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Shift +
+ + + + + Shift packed 16-bit integers in "a" left by "count" while shifting in zeros, and store the results in "dst". + +FOR j := 0 to 15 + i := j*16 + IF count[63:0] > 15 + dst[i+15:i] := 0 + ELSE + dst[i+15:i] := ZeroExtend16(a[i+15:i] << count[63:0]) + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Shift +
+ + + + + Shift packed 16-bit integers in "a" left by "imm8" while shifting in zeros, and store the results in "dst". + +FOR j := 0 to 15 + i := j*16 + IF imm8[7:0] > 15 + dst[i+15:i] := 0 + ELSE + dst[i+15:i] := ZeroExtend16(a[i+15:i] << imm8[7:0]) + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Shift +
+ + + + + Shift packed 32-bit integers in "a" left by "count" while shifting in zeros, and store the results in "dst". + +FOR j := 0 to 7 + i := j*32 + IF count[63:0] > 31 + dst[i+31:i] := 0 + ELSE + dst[i+31:i] := ZeroExtend32(a[i+31:i] << count[63:0]) + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Shift +
+ + + + + Shift packed 32-bit integers in "a" left by "imm8" while shifting in zeros, and store the results in "dst". + +FOR j := 0 to 7 + i := j*32 + IF imm8[7:0] > 31 + dst[i+31:i] := 0 + ELSE + dst[i+31:i] := ZeroExtend32(a[i+31:i] << imm8[7:0]) + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Shift +
+ + + + + Shift packed 64-bit integers in "a" left by "count" while shifting in zeros, and store the results in "dst". + +FOR j := 0 to 3 + i := j*64 + IF count[63:0] > 63 + dst[i+63:i] := 0 + ELSE + dst[i+63:i] := ZeroExtend64(a[i+63:i] << count[63:0]) + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Shift +
+ + + + + Shift packed 64-bit integers in "a" left by "imm8" while shifting in zeros, and store the results in "dst". + +FOR j := 0 to 3 + i := j*64 + IF imm8[7:0] > 63 + dst[i+63:i] := 0 + ELSE + dst[i+63:i] := ZeroExtend64(a[i+63:i] << imm8[7:0]) + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Shift +
+ + + + + Shift packed 32-bit integers in "a" left by the amount specified by the corresponding element in "count" while shifting in zeros, and store the results in "dst". + +FOR j := 0 to 3 + i := j*32 + IF count[i+31:i] < 32 + dst[i+31:i] := ZeroExtend32(a[i+31:i] << count[i+31:i]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX2 +
immintrin.h
+ Shift +
+ + + + + Shift packed 32-bit integers in "a" left by the amount specified by the corresponding element in "count" while shifting in zeros, and store the results in "dst". + +FOR j := 0 to 7 + i := j*32 + IF count[i+31:i] < 32 + dst[i+31:i] := ZeroExtend32(a[i+31:i] << count[i+31:i]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Shift +
+ + + + + Shift packed 64-bit integers in "a" left by the amount specified by the corresponding element in "count" while shifting in zeros, and store the results in "dst". + +FOR j := 0 to 1 + i := j*64 + IF count[i+63:i] < 64 + dst[i+63:i] := ZeroExtend64(a[i+63:i] << count[i+63:i]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX2 +
immintrin.h
+ Shift +
+ + + + + Shift packed 64-bit integers in "a" left by the amount specified by the corresponding element in "count" while shifting in zeros, and store the results in "dst". + +FOR j := 0 to 3 + i := j*64 + IF count[i+63:i] < 64 + dst[i+63:i] := ZeroExtend64(a[i+63:i] << count[i+63:i]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Shift +
+ + + + + Shift packed 16-bit integers in "a" right by "count" while shifting in sign bits, and store the results in "dst". + +FOR j := 0 to 15 + i := j*16 + IF count[63:0] > 15 + dst[i+15:i] := (a[i+15] ? 0xFFFF : 0x0) + ELSE + dst[i+15:i] := SignExtend16(a[i+15:i] >> count[63:0]) + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Shift +
+ + + + + Shift packed 16-bit integers in "a" right by "imm8" while shifting in sign bits, and store the results in "dst". + +FOR j := 0 to 15 + i := j*16 + IF imm8[7:0] > 15 + dst[i+15:i] := (a[i+15] ? 0xFFFF : 0x0) + ELSE + dst[i+15:i] := SignExtend16(a[i+15:i] >> imm8[7:0]) + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Shift +
+ + + + + Shift packed 32-bit integers in "a" right by "count" while shifting in sign bits, and store the results in "dst". + +FOR j := 0 to 7 + i := j*32 + IF count[63:0] > 31 + dst[i+31:i] := (a[i+31] ? 0xFFFFFFFF : 0x0) + ELSE + dst[i+31:i] := SignExtend32(a[i+31:i] >> count[63:0]) + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Shift +
+ + + + + Shift packed 32-bit integers in "a" right by "imm8" while shifting in sign bits, and store the results in "dst". + +FOR j := 0 to 7 + i := j*32 + IF imm8[7:0] > 31 + dst[i+31:i] := (a[i+31] ? 0xFFFFFFFF : 0x0) + ELSE + dst[i+31:i] := SignExtend32(a[i+31:i] >> imm8[7:0]) + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Shift +
+ + + + + Shift packed 32-bit integers in "a" right by the amount specified by the corresponding element in "count" while shifting in sign bits, and store the results in "dst". + +FOR j := 0 to 3 + i := j*32 + IF count[i+31:i] < 32 + dst[i+31:i] := SignExtend32(a[i+31:i] >> count[i+31:i]) + ELSE + dst[i+31:i] := (a[i+31] ? 0xFFFFFFFF : 0) + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX2 +
immintrin.h
+ Shift +
+ + + + + Shift packed 32-bit integers in "a" right by the amount specified by the corresponding element in "count" while shifting in sign bits, and store the results in "dst". + +FOR j := 0 to 7 + i := j*32 + IF count[i+31:i] < 32 + dst[i+31:i] := SignExtend32(a[i+31:i] >> count[i+31:i]) + ELSE + dst[i+31:i] := (a[i+31] ? 0xFFFFFFFF : 0) + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Shift +
+ + + + + Shift 128-bit lanes in "a" right by "imm8" bytes while shifting in zeros, and store the results in "dst". + +tmp := imm8[7:0] +IF tmp > 15 + tmp := 16 +FI +dst[127:0] := a[127:0] >> (tmp*8) +dst[255:128] := a[255:128] >> (tmp*8) +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Shift +
+ + + + + Shift 128-bit lanes in "a" right by "imm8" bytes while shifting in zeros, and store the results in "dst". + +tmp := imm8[7:0] +IF tmp > 15 + tmp := 16 +FI +dst[127:0] := a[127:0] >> (tmp*8) +dst[255:128] := a[255:128] >> (tmp*8) +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Shift +
+ + + + + Shift packed 16-bit integers in "a" right by "count" while shifting in zeros, and store the results in "dst". + +FOR j := 0 to 15 + i := j*16 + IF count[63:0] > 15 + dst[i+15:i] := 0 + ELSE + dst[i+15:i] := ZeroExtend16(a[i+15:i] >> count[63:0]) + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Shift +
+ + + + + Shift packed 16-bit integers in "a" right by "imm8" while shifting in zeros, and store the results in "dst". + +FOR j := 0 to 15 + i := j*16 + IF imm8[7:0] > 15 + dst[i+15:i] := 0 + ELSE + dst[i+15:i] := ZeroExtend16(a[i+15:i] >> imm8[7:0]) + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Shift +
+ + + + + Shift packed 32-bit integers in "a" right by "count" while shifting in zeros, and store the results in "dst". + +FOR j := 0 to 7 + i := j*32 + IF count[63:0] > 31 + dst[i+31:i] := 0 + ELSE + dst[i+31:i] := ZeroExtend32(a[i+31:i] >> count[63:0]) + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Shift +
+ + + + + Shift packed 32-bit integers in "a" right by "imm8" while shifting in zeros, and store the results in "dst". + +FOR j := 0 to 7 + i := j*32 + IF imm8[7:0] > 31 + dst[i+31:i] := 0 + ELSE + dst[i+31:i] := ZeroExtend32(a[i+31:i] >> imm8[7:0]) + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Shift +
+ + + + + Shift packed 64-bit integers in "a" right by "count" while shifting in zeros, and store the results in "dst". + +FOR j := 0 to 3 + i := j*64 + IF count[63:0] > 63 + dst[i+63:i] := 0 + ELSE + dst[i+63:i] := ZeroExtend64(a[i+63:i] >> count[63:0]) + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Shift +
+ + + + + Shift packed 64-bit integers in "a" right by "imm8" while shifting in zeros, and store the results in "dst". + +FOR j := 0 to 3 + i := j*64 + IF imm8[7:0] > 63 + dst[i+63:i] := 0 + ELSE + dst[i+63:i] := ZeroExtend64(a[i+63:i] >> imm8[7:0]) + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Shift +
+ + + + + Shift packed 32-bit integers in "a" right by the amount specified by the corresponding element in "count" while shifting in zeros, and store the results in "dst". + +FOR j := 0 to 3 + i := j*32 + IF count[i+31:i] < 32 + dst[i+31:i] := ZeroExtend32(a[i+31:i] >> count[i+31:i]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX2 +
immintrin.h
+ Shift +
+ + + + + Shift packed 32-bit integers in "a" right by the amount specified by the corresponding element in "count" while shifting in zeros, and store the results in "dst". + +FOR j := 0 to 7 + i := j*32 + IF count[i+31:i] < 32 + dst[i+31:i] := ZeroExtend32(a[i+31:i] >> count[i+31:i]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Shift +
+ + + + + Shift packed 64-bit integers in "a" right by the amount specified by the corresponding element in "count" while shifting in zeros, and store the results in "dst". + +FOR j := 0 to 1 + i := j*64 + IF count[i+63:i] < 64 + dst[i+63:i] := ZeroExtend64(a[i+63:i] >> count[i+63:i]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX2 +
immintrin.h
+ Shift +
+ + + + + Shift packed 64-bit integers in "a" right by the amount specified by the corresponding element in "count" while shifting in zeros, and store the results in "dst". + +FOR j := 0 to 3 + i := j*64 + IF count[i+63:i] < 64 + dst[i+63:i] := ZeroExtend64(a[i+63:i] >> count[i+63:i]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX2 +
immintrin.h
+ Shift +
+ + + + + + + + Compute the sum of absolute differences (SADs) of quadruplets of unsigned 8-bit integers in "a" compared to those in "b", and store the 16-bit results in "dst". + Four SADs are performed on four 8-bit quadruplets for each 64-bit lane. The first two SADs use the lower 8-bit quadruplet of the lane from "a", and the last two SADs use the uppper 8-bit quadruplet of the lane from "a". Quadruplets from "b" are selected from within 128-bit lanes according to the control in "imm8", and each SAD in each 64-bit lane uses the selected quadruplet at 8-bit offsets. + +FOR i := 0 to 1 + tmp.m128[i].dword[0] := b.m128[i].dword[ imm8[1:0] ] + tmp.m128[i].dword[1] := b.m128[i].dword[ imm8[3:2] ] + tmp.m128[i].dword[2] := b.m128[i].dword[ imm8[5:4] ] + tmp.m128[i].dword[3] := b.m128[i].dword[ imm8[7:6] ] +ENDFOR +FOR j := 0 to 3 + i := j*64 + dst[i+15:i] := ABS(a[i+7:i] - tmp[i+7:i]) + ABS(a[i+15:i+8] - tmp[i+15:i+8]) +\ + ABS(a[i+23:i+16] - tmp[i+23:i+16]) + ABS(a[i+31:i+24] - tmp[i+31:i+24]) + + dst[i+31:i+16] := ABS(a[i+7:i] - tmp[i+15:i+8]) + ABS(a[i+15:i+8] - tmp[i+23:i+16]) +\ + ABS(a[i+23:i+16] - tmp[i+31:i+24]) + ABS(a[i+31:i+24] - tmp[i+39:i+32]) + + dst[i+47:i+32] := ABS(a[i+39:i+32] - tmp[i+23:i+16]) + ABS(a[i+47:i+40] - tmp[i+31:i+24]) +\ + ABS(a[i+55:i+48] - tmp[i+39:i+32]) + ABS(a[i+63:i+56] - tmp[i+47:i+40]) + + dst[i+63:i+48] := ABS(a[i+39:i+32] - tmp[i+31:i+24]) + ABS(a[i+47:i+40] - tmp[i+39:i+32]) +\ + ABS(a[i+55:i+48] - tmp[i+47:i+40]) + ABS(a[i+63:i+56] - tmp[i+55:i+48]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + + Compute the sum of absolute differences (SADs) of quadruplets of unsigned 8-bit integers in "a" compared to those in "b", and store the 16-bit results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + Four SADs are performed on four 8-bit quadruplets for each 64-bit lane. The first two SADs use the lower 8-bit quadruplet of the lane from "a", and the last two SADs use the uppper 8-bit quadruplet of the lane from "a". Quadruplets from "b" are selected from within 128-bit lanes according to the control in "imm8", and each SAD in each 64-bit lane uses the selected quadruplet at 8-bit offsets. + +FOR i := 0 to 1 + tmp.m128[i].dword[0] := b.m128[i].dword[ imm8[1:0] ] + tmp.m128[i].dword[1] := b.m128[i].dword[ imm8[3:2] ] + tmp.m128[i].dword[2] := b.m128[i].dword[ imm8[5:4] ] + tmp.m128[i].dword[3] := b.m128[i].dword[ imm8[7:6] ] +ENDFOR +FOR j := 0 to 3 + i := j*64 + tmp_dst[i+15:i] := ABS(a[i+7:i] - tmp[i+7:i]) + ABS(a[i+15:i+8] - tmp[i+15:i+8]) +\ + ABS(a[i+23:i+16] - tmp[i+23:i+16]) + ABS(a[i+31:i+24] - tmp[i+31:i+24]) + + tmp_dst[i+31:i+16] := ABS(a[i+7:i] - tmp[i+15:i+8]) + ABS(a[i+15:i+8] - tmp[i+23:i+16]) +\ + ABS(a[i+23:i+16] - tmp[i+31:i+24]) + ABS(a[i+31:i+24] - tmp[i+39:i+32]) + + tmp_dst[i+47:i+32] := ABS(a[i+39:i+32] - tmp[i+23:i+16]) + ABS(a[i+47:i+40] - tmp[i+31:i+24]) +\ + ABS(a[i+55:i+48] - tmp[i+39:i+32]) + ABS(a[i+63:i+56] - tmp[i+47:i+40]) + + tmp_dst[i+63:i+48] := ABS(a[i+39:i+32] - tmp[i+31:i+24]) + ABS(a[i+47:i+40] - tmp[i+39:i+32]) +\ + ABS(a[i+55:i+48] - tmp[i+47:i+40]) + ABS(a[i+63:i+56] - tmp[i+55:i+48]) +ENDFOR +FOR j := 0 to 15 + i := j*16 + IF k[j] + dst[i+15:i] := tmp_dst[i+15:i] + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Compute the sum of absolute differences (SADs) of quadruplets of unsigned 8-bit integers in "a" compared to those in "b", and store the 16-bit results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + Four SADs are performed on four 8-bit quadruplets for each 64-bit lane. The first two SADs use the lower 8-bit quadruplet of the lane from "a", and the last two SADs use the uppper 8-bit quadruplet of the lane from "a". Quadruplets from "b" are selected from within 128-bit lanes according to the control in "imm8", and each SAD in each 64-bit lane uses the selected quadruplet at 8-bit offsets. + +FOR i := 0 to 1 + tmp.m128[i].dword[0] := b.m128[i].dword[ imm8[1:0] ] + tmp.m128[i].dword[1] := b.m128[i].dword[ imm8[3:2] ] + tmp.m128[i].dword[2] := b.m128[i].dword[ imm8[5:4] ] + tmp.m128[i].dword[3] := b.m128[i].dword[ imm8[7:6] ] +ENDFOR +FOR j := 0 to 3 + i := j*64 + tmp_dst[i+15:i] := ABS(a[i+7:i] - tmp[i+7:i]) + ABS(a[i+15:i+8] - tmp[i+15:i+8]) +\ + ABS(a[i+23:i+16] - tmp[i+23:i+16]) + ABS(a[i+31:i+24] - tmp[i+31:i+24]) + + tmp_dst[i+31:i+16] := ABS(a[i+7:i] - tmp[i+15:i+8]) + ABS(a[i+15:i+8] - tmp[i+23:i+16]) +\ + ABS(a[i+23:i+16] - tmp[i+31:i+24]) + ABS(a[i+31:i+24] - tmp[i+39:i+32]) + + tmp_dst[i+47:i+32] := ABS(a[i+39:i+32] - tmp[i+23:i+16]) + ABS(a[i+47:i+40] - tmp[i+31:i+24]) +\ + ABS(a[i+55:i+48] - tmp[i+39:i+32]) + ABS(a[i+63:i+56] - tmp[i+47:i+40]) + + tmp_dst[i+63:i+48] := ABS(a[i+39:i+32] - tmp[i+31:i+24]) + ABS(a[i+47:i+40] - tmp[i+39:i+32]) +\ + ABS(a[i+55:i+48] - tmp[i+47:i+40]) + ABS(a[i+63:i+56] - tmp[i+55:i+48]) +ENDFOR +FOR j := 0 to 15 + i := j*16 + IF k[j] + dst[i+15:i] := tmp_dst[i+15:i] + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Compute the sum of absolute differences (SADs) of quadruplets of unsigned 8-bit integers in "a" compared to those in "b", and store the 16-bit results in "dst". + Four SADs are performed on four 8-bit quadruplets for each 64-bit lane. The first two SADs use the lower 8-bit quadruplet of the lane from "a", and the last two SADs use the uppper 8-bit quadruplet of the lane from "a". Quadruplets from "b" are selected according to the control in "imm8", and each SAD in each 64-bit lane uses the selected quadruplet at 8-bit offsets. + +tmp.dword[0] := b.dword[ imm8[1:0] ] +tmp.dword[1] := b.dword[ imm8[3:2] ] +tmp.dword[2] := b.dword[ imm8[5:4] ] +tmp.dword[3] := b.dword[ imm8[7:6] ] +FOR j := 0 to 1 + i := j*64 + dst[i+15:i] := ABS(a[i+7:i] - tmp[i+7:i]) + ABS(a[i+15:i+8] - tmp[i+15:i+8]) +\ + ABS(a[i+23:i+16] - tmp[i+23:i+16]) + ABS(a[i+31:i+24] - tmp[i+31:i+24]) + + dst[i+31:i+16] := ABS(a[i+7:i] - tmp[i+15:i+8]) + ABS(a[i+15:i+8] - tmp[i+23:i+16]) +\ + ABS(a[i+23:i+16] - tmp[i+31:i+24]) + ABS(a[i+31:i+24] - tmp[i+39:i+32]) + + dst[i+47:i+32] := ABS(a[i+39:i+32] - tmp[i+23:i+16]) + ABS(a[i+47:i+40] - tmp[i+31:i+24]) +\ + ABS(a[i+55:i+48] - tmp[i+39:i+32]) + ABS(a[i+63:i+56] - tmp[i+47:i+40]) + + dst[i+63:i+48] := ABS(a[i+39:i+32] - tmp[i+31:i+24]) + ABS(a[i+47:i+40] - tmp[i+39:i+32]) +\ + ABS(a[i+55:i+48] - tmp[i+47:i+40]) + ABS(a[i+63:i+56] - tmp[i+55:i+48]) +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + + Compute the sum of absolute differences (SADs) of quadruplets of unsigned 8-bit integers in "a" compared to those in "b", and store the 16-bit results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + Four SADs are performed on four 8-bit quadruplets for each 64-bit lane. The first two SADs use the lower 8-bit quadruplet of the lane from "a", and the last two SADs use the uppper 8-bit quadruplet of the lane from "a". Quadruplets from "b" are selected according to the control in "imm8", and each SAD in each 64-bit lane uses the selected quadruplet at 8-bit offsets. + +tmp.dword[0] := b.dword[ imm8[1:0] ] +tmp.dword[1] := b.dword[ imm8[3:2] ] +tmp.dword[2] := b.dword[ imm8[5:4] ] +tmp.dword[3] := b.dword[ imm8[7:6] ] +FOR j := 0 to 1 + i := j*64 + tmp_dst[i+15:i] := ABS(a[i+7:i] - tmp[i+7:i]) + ABS(a[i+15:i+8] - tmp[i+15:i+8]) +\ + ABS(a[i+23:i+16] - tmp[i+23:i+16]) + ABS(a[i+31:i+24] - tmp[i+31:i+24]) + + tmp_dst[i+31:i+16] := ABS(a[i+7:i] - tmp[i+15:i+8]) + ABS(a[i+15:i+8] - tmp[i+23:i+16]) +\ + ABS(a[i+23:i+16] - tmp[i+31:i+24]) + ABS(a[i+31:i+24] - tmp[i+39:i+32]) + + tmp_dst[i+47:i+32] := ABS(a[i+39:i+32] - tmp[i+23:i+16]) + ABS(a[i+47:i+40] - tmp[i+31:i+24]) +\ + ABS(a[i+55:i+48] - tmp[i+39:i+32]) + ABS(a[i+63:i+56] - tmp[i+47:i+40]) + + tmp_dst[i+63:i+48] := ABS(a[i+39:i+32] - tmp[i+31:i+24]) + ABS(a[i+47:i+40] - tmp[i+39:i+32]) +\ + ABS(a[i+55:i+48] - tmp[i+47:i+40]) + ABS(a[i+63:i+56] - tmp[i+55:i+48]) +ENDFOR +FOR j := 0 to 7 + i := j*16 + IF k[j] + dst[i+15:i] := tmp_dst[i+15:i] + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Compute the sum of absolute differences (SADs) of quadruplets of unsigned 8-bit integers in "a" compared to those in "b", and store the 16-bit results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + Four SADs are performed on four 8-bit quadruplets for each 64-bit lane. The first two SADs use the lower 8-bit quadruplet of the lane from "a", and the last two SADs use the uppper 8-bit quadruplet of the lane from "a". Quadruplets from "b" are selected according to the control in "imm8", and each SAD in each 64-bit lane uses the selected quadruplet at 8-bit offsets. + +tmp.dword[0] := b.dword[ imm8[1:0] ] +tmp.dword[1] := b.dword[ imm8[3:2] ] +tmp.dword[2] := b.dword[ imm8[5:4] ] +tmp.dword[3] := b.dword[ imm8[7:6] ] +FOR j := 0 to 1 + i := j*64 + tmp_dst[i+15:i] := ABS(a[i+7:i] - tmp[i+7:i]) + ABS(a[i+15:i+8] - tmp[i+15:i+8]) +\ + ABS(a[i+23:i+16] - tmp[i+23:i+16]) + ABS(a[i+31:i+24] - tmp[i+31:i+24]) + + tmp_dst[i+31:i+16] := ABS(a[i+7:i] - tmp[i+15:i+8]) + ABS(a[i+15:i+8] - tmp[i+23:i+16]) +\ + ABS(a[i+23:i+16] - tmp[i+31:i+24]) + ABS(a[i+31:i+24] - tmp[i+39:i+32]) + + tmp_dst[i+47:i+32] := ABS(a[i+39:i+32] - tmp[i+23:i+16]) + ABS(a[i+47:i+40] - tmp[i+31:i+24]) +\ + ABS(a[i+55:i+48] - tmp[i+39:i+32]) + ABS(a[i+63:i+56] - tmp[i+47:i+40]) + + tmp_dst[i+63:i+48] := ABS(a[i+39:i+32] - tmp[i+31:i+24]) + ABS(a[i+47:i+40] - tmp[i+39:i+32]) +\ + ABS(a[i+55:i+48] - tmp[i+47:i+40]) + ABS(a[i+63:i+56] - tmp[i+55:i+48]) +ENDFOR +FOR j := 0 to 7 + i := j*16 + IF k[j] + dst[i+15:i] := tmp_dst[i+15:i] + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + + Concatenate pairs of 16-byte blocks in "a" and "b" into a 32-byte temporary result, shift the result right by "imm8" bytes, and store the low 16 bytes in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*128 + tmp[255:0] := ((a[i+127:i] << 128)[255:0] OR b[i+127:i]) >> (imm8*8) + tmp_dst[i+127:i] := tmp[127:0] +ENDFOR +FOR j := 0 to 31 + i := j*8 + IF k[j] + dst[i+7:i] := tmp_dst[i+7:i] + ELSE + dst[i+7:i] := src[i+7:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Concatenate pairs of 16-byte blocks in "a" and "b" into a 32-byte temporary result, shift the result right by "imm8" bytes, and store the low 16 bytes in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*128 + tmp[255:0] := ((a[i+127:i] << 128)[255:0] OR b[i+127:i]) >> (imm8*8) + tmp_dst[i+127:i] := tmp[127:0] +ENDFOR +FOR j := 0 to 31 + i := j*8 + IF k[j] + dst[i+7:i] := tmp_dst[i+7:i] + ELSE + dst[i+7:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + + Concatenate pairs of 16-byte blocks in "a" and "b" into a 32-byte temporary result, shift the result right by "imm8" bytes, and store the low 16 bytes in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +tmp_dst[255:0] := ((a[127:0] << 128)[255:0] OR b[127:0]) >> (imm8*8) +FOR j := 0 to 15 + i := j*8 + IF k[j] + dst[i+7:i] := tmp_dst[i+7:i] + ELSE + dst[i+7:i] := src[i+7:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Concatenate pairs of 16-byte blocks in "a" and "b" into a 32-byte temporary result, shift the result right by "imm8" bytes, and store the low 16 bytes in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +tmp_dst[255:0] := ((a[127:0] << 128)[255:0] OR b[127:0]) >> (imm8*8) +FOR j := 0 to 15 + i := j*8 + IF k[j] + dst[i+7:i] := tmp_dst[i+7:i] + ELSE + dst[i+7:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Blend packed 8-bit integers from "a" and "b" using control mask "k", and store the results in "dst". + +FOR j := 0 to 31 + i := j*8 + IF k[j] + dst[i+7:i] := b[i+7:i] + ELSE + dst[i+7:i] := a[i+7:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Blend packed 8-bit integers from "a" and "b" using control mask "k", and store the results in "dst". + +FOR j := 0 to 15 + i := j*8 + IF k[j] + dst[i+7:i] := b[i+7:i] + ELSE + dst[i+7:i] := a[i+7:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Blend packed 16-bit integers from "a" and "b" using control mask "k", and store the results in "dst". + +FOR j := 0 to 15 + i := j*16 + IF k[j] + dst[i+15:i] := b[i+15:i] + ELSE + dst[i+15:i] := a[i+15:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Blend packed 16-bit integers from "a" and "b" using control mask "k", and store the results in "dst". + +FOR j := 0 to 7 + i := j*16 + IF k[j] + dst[i+15:i] := b[i+15:i] + ELSE + dst[i+15:i] := a[i+15:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Broadcast the low packed 8-bit integer from "a" to all elements of "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*8 + IF k[j] + dst[i+7:i] := a[7:0] + ELSE + dst[i+7:i] := src[i+7:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + Broadcast the low packed 8-bit integer from "a" to all elements of "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*8 + IF k[j] + dst[i+7:i] := a[7:0] + ELSE + dst[i+7:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Broadcast the low packed 8-bit integer from "a" to all elements of "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*8 + IF k[j] + dst[i+7:i] := a[7:0] + ELSE + dst[i+7:i] := src[i+7:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + Broadcast the low packed 8-bit integer from "a" to all elements of "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*8 + IF k[j] + dst[i+7:i] := a[7:0] + ELSE + dst[i+7:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Broadcast the low packed 16-bit integer from "a" to all elements of "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*16 + IF k[j] + dst[i+15:i] := a[15:0] + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + Broadcast the low packed 16-bit integer from "a" to all elements of "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*16 + IF k[j] + dst[i+15:i] := a[15:0] + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Broadcast the low packed 16-bit integer from "a" to all elements of "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*16 + IF k[j] + dst[i+15:i] := a[15:0] + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + Broadcast the low packed 16-bit integer from "a" to all elements of "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*16 + IF k[j] + dst[i+15:i] := a[15:0] + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Shuffle 16-bit integers in "a" and "b" across lanes using the corresponding selector and index in "idx", and store the results in "dst" using writemask "k" (elements are copied from "idx" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*16 + IF k[j] + off := 16*idx[i+3:i] + dst[i+15:i] := idx[i+4] ? b[off+15:off] : a[off+15:off] + ELSE + dst[i+15:i] := idx[i+15:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Shuffle 16-bit integers in "a" and "b" across lanes using the corresponding selector and index in "idx", and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*16 + IF k[j] + off := 16*idx[i+3:i] + dst[i+15:i] := idx[i+4] ? b[off+15:off] : a[off+15:off] + ELSE + dst[i+15:i] := a[i+15:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Shuffle 16-bit integers in "a" and "b" across lanes using the corresponding selector and index in "idx", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*16 + IF k[j] + off := 16*idx[i+3:i] + dst[i+15:i] := idx[i+4] ? b[off+15:off] : a[off+15:off] + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + + AVX512BW + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Shuffle 16-bit integers in "a" and "b" across lanes using the corresponding selector and index in "idx", and store the results in "dst". + +FOR j := 0 to 15 + i := j*16 + off := 16*idx[i+3:i] + dst[i+15:i] := idx[i+4] ? b[off+15:off] : a[off+15:off] +ENDFOR +dst[MAX:256] := 0 + + + + AVX512BW + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Shuffle 16-bit integers in "a" and "b" using the corresponding selector and index in "idx", and store the results in "dst" using writemask "k" (elements are copied from "idx" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*16 + IF k[j] + off := 16*idx[i+2:i] + dst[i+15:i] := idx[i+3] ? b[off+15:off] : a[off+15:off] + ELSE + dst[i+15:i] := idx[i+15:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Shuffle 16-bit integers in "a" and "b" using the corresponding selector and index in "idx", and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*16 + IF k[j] + off := 16*idx[i+2:i] + dst[i+15:i] := idx[i+3] ? b[off+15:off] : a[off+15:off] + ELSE + dst[i+15:i] := a[i+15:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Shuffle 16-bit integers in "a" and "b" using the corresponding selector and index in "idx", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*16 + IF k[j] + off := 16*idx[i+2:i] + dst[i+15:i] := idx[i+3] ? b[off+15:off] : a[off+15:off] + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + + AVX512BW + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Shuffle 16-bit integers in "a" and "b" using the corresponding selector and index in "idx", and store the results in "dst". + +FOR j := 0 to 7 + i := j*16 + off := 16*idx[i+2:i] + dst[i+15:i] := idx[i+3] ? b[off+15:off] : a[off+15:off] +ENDFOR +dst[MAX:128] := 0 + + + + AVX512BW + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Shuffle 16-bit integers in "a" across lanes using the corresponding index in "idx", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*16 + id := idx[i+3:i]*16 + IF k[j] + dst[i+15:i] := a[id+15:id] + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Shuffle 16-bit integers in "a" across lanes using the corresponding index in "idx", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*16 + id := idx[i+3:i]*16 + IF k[j] + dst[i+15:i] := a[id+15:id] + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + Shuffle 16-bit integers in "a" across lanes using the corresponding index in "idx", and store the results in "dst". + +FOR j := 0 to 15 + i := j*16 + id := idx[i+3:i]*16 + dst[i+15:i] := a[id+15:id] +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Shuffle 16-bit integers in "a" using the corresponding index in "idx", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*16 + id := idx[i+2:i]*16 + IF k[j] + dst[i+15:i] := a[id+15:id] + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Shuffle 16-bit integers in "a" using the corresponding index in "idx", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*16 + id := idx[i+2:i]*16 + IF k[j] + dst[i+15:i] := a[id+15:id] + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + Shuffle 16-bit integers in "a" using the corresponding index in "idx", and store the results in "dst". + +FOR j := 0 to 7 + i := j*16 + id := idx[i+2:i]*16 + dst[i+15:i] := a[id+15:id] +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + Set each bit of mask register "k" based on the most significant bit of the corresponding packed 8-bit integer in "a". + +FOR j := 0 to 31 + i := j*8 + IF a[i+7] + k[j] := 1 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:32] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + Set each bit of mask register "k" based on the most significant bit of the corresponding packed 8-bit integer in "a". + +FOR j := 0 to 15 + i := j*8 + IF a[i+7] + k[j] := 1 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:16] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + Set each packed 8-bit integer in "dst" to all ones or all zeros based on the value of the corresponding bit in "k". + +FOR j := 0 to 31 + i := j*8 + IF k[j] + dst[i+7:i] := 0xFF + ELSE + dst[i+7:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + Set each packed 8-bit integer in "dst" to all ones or all zeros based on the value of the corresponding bit in "k". + +FOR j := 0 to 15 + i := j*8 + IF k[j] + dst[i+7:i] := 0xFF + ELSE + dst[i+7:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + Set each packed 16-bit integer in "dst" to all ones or all zeros based on the value of the corresponding bit in "k". + +FOR j := 0 to 15 + i := j*16 + IF k[j] + dst[i+15:i] := 0xFFFF + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + Set each packed 16-bit integer in "dst" to all ones or all zeros based on the value of the corresponding bit in "k". + +FOR j := 0 to 7 + i := j*16 + IF k[j] + dst[i+15:i] := 0xFFFF + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + Set each bit of mask register "k" based on the most significant bit of the corresponding packed 16-bit integer in "a". + +FOR j := 0 to 15 + i := j*16 + IF a[i+15] + k[j] := 1 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:16] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + Set each bit of mask register "k" based on the most significant bit of the corresponding packed 16-bit integer in "a". + +FOR j := 0 to 7 + i := j*16 + IF a[i+15] + k[j] := 1 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:8] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Shuffle packed 8-bit integers in "a" according to shuffle control mask in the corresponding 8-bit element of "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*8 + IF k[j] + IF b[i+7] == 1 + dst[i+7:i] := 0 + ELSE + index[4:0] := b[i+3:i] + (j & 0x10) + dst[i+7:i] := a[index*8+7:index*8] + FI + ELSE + dst[i+7:i] := src[i+7:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Swizzle +
+ + + + + + Shuffle packed 8-bit integers in "a" according to shuffle control mask in the corresponding 8-bit element of "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*8 + IF k[j] + IF b[i+7] == 1 + dst[i+7:i] := 0 + ELSE + index[4:0] := b[i+3:i] + (j & 0x10) + dst[i+7:i] := a[index*8+7:index*8] + FI + ELSE + dst[i+7:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Swizzle +
+ + + + + + + Shuffle packed 8-bit integers in "a" according to shuffle control mask in the corresponding 8-bit element of "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*8 + IF k[j] + IF b[i+7] == 1 + dst[i+7:i] := 0 + ELSE + index[3:0] := b[i+3:i] + dst[i+7:i] := a[index*8+7:index*8] + FI + ELSE + dst[i+7:i] := src[i+7:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Swizzle +
+ + + + + + Shuffle packed 8-bit integers in "a" according to shuffle control mask in the corresponding 8-bit element of "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*8 + IF k[j] + IF b[i+7] == 1 + dst[i+7:i] := 0 + ELSE + index[3:0] := b[i+3:i] + dst[i+7:i] := a[index*8+7:index*8] + FI + ELSE + dst[i+7:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Swizzle +
+ + + + + + + Shuffle 16-bit integers in the high 64 bits of 128-bit lanes of "a" using the control in "imm8". Store the results in the high 64 bits of 128-bit lanes of "dst", with the low 64 bits of 128-bit lanes being copied from from "a" to "dst", using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +tmp_dst[63:0] := a[63:0] +tmp_dst[79:64] := (a >> (imm8[1:0] * 16))[79:64] +tmp_dst[95:80] := (a >> (imm8[3:2] * 16))[79:64] +tmp_dst[111:96] := (a >> (imm8[5:4] * 16))[79:64] +tmp_dst[127:112] := (a >> (imm8[7:6] * 16))[79:64] +tmp_dst[191:128] := a[191:128] +tmp_dst[207:192] := (a >> (imm8[1:0] * 16))[207:192] +tmp_dst[223:208] := (a >> (imm8[3:2] * 16))[207:192] +tmp_dst[239:224] := (a >> (imm8[5:4] * 16))[207:192] +tmp_dst[255:240] := (a >> (imm8[7:6] * 16))[207:192] +FOR j := 0 to 15 + i := j*16 + IF k[j] + dst[i+15:i] := tmp_dst[i+15:i] + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Shuffle 16-bit integers in the high 64 bits of 128-bit lanes of "a" using the control in "imm8". Store the results in the high 64 bits of 128-bit lanes of "dst", with the low 64 bits of 128-bit lanes being copied from from "a" to "dst", using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +tmp_dst[63:0] := a[63:0] +tmp_dst[79:64] := (a >> (imm8[1:0] * 16))[79:64] +tmp_dst[95:80] := (a >> (imm8[3:2] * 16))[79:64] +tmp_dst[111:96] := (a >> (imm8[5:4] * 16))[79:64] +tmp_dst[127:112] := (a >> (imm8[7:6] * 16))[79:64] +tmp_dst[191:128] := a[191:128] +tmp_dst[207:192] := (a >> (imm8[1:0] * 16))[207:192] +tmp_dst[223:208] := (a >> (imm8[3:2] * 16))[207:192] +tmp_dst[239:224] := (a >> (imm8[5:4] * 16))[207:192] +tmp_dst[255:240] := (a >> (imm8[7:6] * 16))[207:192] +FOR j := 0 to 15 + i := j*16 + IF k[j] + dst[i+15:i] := tmp_dst[i+15:i] + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Shuffle 16-bit integers in the high 64 bits of "a" using the control in "imm8". Store the results in the high 64 bits of "dst", with the low 64 bits being copied from from "a" to "dst", using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +tmp_dst[63:0] := a[63:0] +tmp_dst[79:64] := (a >> (imm8[1:0] * 16))[79:64] +tmp_dst[95:80] := (a >> (imm8[3:2] * 16))[79:64] +tmp_dst[111:96] := (a >> (imm8[5:4] * 16))[79:64] +tmp_dst[127:112] := (a >> (imm8[7:6] * 16))[79:64] +FOR j := 0 to 7 + i := j*16 + IF k[j] + dst[i+15:i] := tmp_dst[i+15:i] + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Shuffle 16-bit integers in the high 64 bits of "a" using the control in "imm8". Store the results in the high 64 bits of "dst", with the low 64 bits being copied from from "a" to "dst", using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +tmp_dst[63:0] := a[63:0] +tmp_dst[79:64] := (a >> (imm8[1:0] * 16))[79:64] +tmp_dst[95:80] := (a >> (imm8[3:2] * 16))[79:64] +tmp_dst[111:96] := (a >> (imm8[5:4] * 16))[79:64] +tmp_dst[127:112] := (a >> (imm8[7:6] * 16))[79:64] +FOR j := 0 to 7 + i := j*16 + IF k[j] + dst[i+15:i] := tmp_dst[i+15:i] + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Shuffle 16-bit integers in the low 64 bits of 128-bit lanes of "a" using the control in "imm8". Store the results in the low 64 bits of 128-bit lanes of "dst", with the high 64 bits of 128-bit lanes being copied from from "a" to "dst", using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +tmp_dst[15:0] := (a >> (imm8[1:0] * 16))[15:0] +tmp_dst[31:16] := (a >> (imm8[3:2] * 16))[15:0] +tmp_dst[47:32] := (a >> (imm8[5:4] * 16))[15:0] +tmp_dst[63:48] := (a >> (imm8[7:6] * 16))[15:0] +tmp_dst[127:64] := a[127:64] +tmp_dst[143:128] := (a >> (imm8[1:0] * 16))[143:128] +tmp_dst[159:144] := (a >> (imm8[3:2] * 16))[143:128] +tmp_dst[175:160] := (a >> (imm8[5:4] * 16))[143:128] +tmp_dst[191:176] := (a >> (imm8[7:6] * 16))[143:128] +tmp_dst[255:192] := a[255:192] +FOR j := 0 to 15 + i := j*16 + IF k[j] + dst[i+15:i] := tmp_dst[i+15:i] + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Shuffle 16-bit integers in the low 64 bits of 128-bit lanes of "a" using the control in "imm8". Store the results in the low 64 bits of 128-bit lanes of "dst", with the high 64 bits of 128-bit lanes being copied from from "a" to "dst", using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +tmp_dst[15:0] := (a >> (imm8[1:0] * 16))[15:0] +tmp_dst[31:16] := (a >> (imm8[3:2] * 16))[15:0] +tmp_dst[47:32] := (a >> (imm8[5:4] * 16))[15:0] +tmp_dst[63:48] := (a >> (imm8[7:6] * 16))[15:0] +tmp_dst[127:64] := a[127:64] +tmp_dst[143:128] := (a >> (imm8[1:0] * 16))[143:128] +tmp_dst[159:144] := (a >> (imm8[3:2] * 16))[143:128] +tmp_dst[175:160] := (a >> (imm8[5:4] * 16))[143:128] +tmp_dst[191:176] := (a >> (imm8[7:6] * 16))[143:128] +tmp_dst[255:192] := a[255:192] +FOR j := 0 to 15 + i := j*16 + IF k[j] + dst[i+15:i] := tmp_dst[i+15:i] + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Shuffle 16-bit integers in the low 64 bits of "a" using the control in "imm8". Store the results in the low 64 bits of "dst", with the high 64 bits being copied from from "a" to "dst", using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +tmp_dst[15:0] := (a >> (imm8[1:0] * 16))[15:0] +tmp_dst[31:16] := (a >> (imm8[3:2] * 16))[15:0] +tmp_dst[47:32] := (a >> (imm8[5:4] * 16))[15:0] +tmp_dst[63:48] := (a >> (imm8[7:6] * 16))[15:0] +tmp_dst[127:64] := a[127:64] +FOR j := 0 to 7 + i := j*16 + IF k[j] + dst[i+15:i] := tmp_dst[i+15:i] + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Shuffle 16-bit integers in the low 64 bits of "a" using the control in "imm8". Store the results in the low 64 bits of "dst", with the high 64 bits being copied from from "a" to "dst", using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +tmp_dst[15:0] := (a >> (imm8[1:0] * 16))[15:0] +tmp_dst[31:16] := (a >> (imm8[3:2] * 16))[15:0] +tmp_dst[47:32] := (a >> (imm8[5:4] * 16))[15:0] +tmp_dst[63:48] := (a >> (imm8[7:6] * 16))[15:0] +tmp_dst[127:64] := a[127:64] +FOR j := 0 to 7 + i := j*16 + IF k[j] + dst[i+15:i] := tmp_dst[i+15:i] + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Unpack and interleave 8-bit integers from the high half of each 128-bit lane in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +DEFINE INTERLEAVE_HIGH_BYTES(src1[127:0], src2[127:0]) { + dst[7:0] := src1[71:64] + dst[15:8] := src2[71:64] + dst[23:16] := src1[79:72] + dst[31:24] := src2[79:72] + dst[39:32] := src1[87:80] + dst[47:40] := src2[87:80] + dst[55:48] := src1[95:88] + dst[63:56] := src2[95:88] + dst[71:64] := src1[103:96] + dst[79:72] := src2[103:96] + dst[87:80] := src1[111:104] + dst[95:88] := src2[111:104] + dst[103:96] := src1[119:112] + dst[111:104] := src2[119:112] + dst[119:112] := src1[127:120] + dst[127:120] := src2[127:120] + RETURN dst[127:0] +} +tmp_dst[127:0] := INTERLEAVE_HIGH_BYTES(a[127:0], b[127:0]) +tmp_dst[255:128] := INTERLEAVE_HIGH_BYTES(a[255:128], b[255:128]) +FOR j := 0 to 31 + i := j*8 + IF k[j] + dst[i+7:i] := tmp_dst[i+7:i] + ELSE + dst[i+7:i] := src[i+7:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Unpack and interleave 8-bit integers from the high half of each 128-bit lane in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +DEFINE INTERLEAVE_HIGH_BYTES(src1[127:0], src2[127:0]) { + dst[7:0] := src1[71:64] + dst[15:8] := src2[71:64] + dst[23:16] := src1[79:72] + dst[31:24] := src2[79:72] + dst[39:32] := src1[87:80] + dst[47:40] := src2[87:80] + dst[55:48] := src1[95:88] + dst[63:56] := src2[95:88] + dst[71:64] := src1[103:96] + dst[79:72] := src2[103:96] + dst[87:80] := src1[111:104] + dst[95:88] := src2[111:104] + dst[103:96] := src1[119:112] + dst[111:104] := src2[119:112] + dst[119:112] := src1[127:120] + dst[127:120] := src2[127:120] + RETURN dst[127:0] +} +tmp_dst[127:0] := INTERLEAVE_HIGH_BYTES(a[127:0], b[127:0]) +tmp_dst[255:128] := INTERLEAVE_HIGH_BYTES(a[255:128], b[255:128]) +FOR j := 0 to 31 + i := j*8 + IF k[j] + dst[i+7:i] := tmp_dst[i+7:i] + ELSE + dst[i+7:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Unpack and interleave 8-bit integers from the high half of "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +DEFINE INTERLEAVE_HIGH_BYTES(src1[127:0], src2[127:0]) { + dst[7:0] := src1[71:64] + dst[15:8] := src2[71:64] + dst[23:16] := src1[79:72] + dst[31:24] := src2[79:72] + dst[39:32] := src1[87:80] + dst[47:40] := src2[87:80] + dst[55:48] := src1[95:88] + dst[63:56] := src2[95:88] + dst[71:64] := src1[103:96] + dst[79:72] := src2[103:96] + dst[87:80] := src1[111:104] + dst[95:88] := src2[111:104] + dst[103:96] := src1[119:112] + dst[111:104] := src2[119:112] + dst[119:112] := src1[127:120] + dst[127:120] := src2[127:120] + RETURN dst[127:0] +} +tmp_dst[127:0] := INTERLEAVE_HIGH_BYTES(a[127:0], b[127:0]) +FOR j := 0 to 15 + i := j*8 + IF k[j] + dst[i+7:i] := tmp_dst[i+7:i] + ELSE + dst[i+7:i] := src[i+7:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Unpack and interleave 8-bit integers from the high half of "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +DEFINE INTERLEAVE_HIGH_BYTES(src1[127:0], src2[127:0]) { + dst[7:0] := src1[71:64] + dst[15:8] := src2[71:64] + dst[23:16] := src1[79:72] + dst[31:24] := src2[79:72] + dst[39:32] := src1[87:80] + dst[47:40] := src2[87:80] + dst[55:48] := src1[95:88] + dst[63:56] := src2[95:88] + dst[71:64] := src1[103:96] + dst[79:72] := src2[103:96] + dst[87:80] := src1[111:104] + dst[95:88] := src2[111:104] + dst[103:96] := src1[119:112] + dst[111:104] := src2[119:112] + dst[119:112] := src1[127:120] + dst[127:120] := src2[127:120] + RETURN dst[127:0] +} +tmp_dst[127:0] := INTERLEAVE_HIGH_BYTES(a[127:0], b[127:0]) +FOR j := 0 to 15 + i := j*8 + IF k[j] + dst[i+7:i] := tmp_dst[i+7:i] + ELSE + dst[i+7:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Unpack and interleave 16-bit integers from the high half of each 128-bit lane in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +DEFINE INTERLEAVE_HIGH_WORDS(src1[127:0], src2[127:0]) { + dst[15:0] := src1[79:64] + dst[31:16] := src2[79:64] + dst[47:32] := src1[95:80] + dst[63:48] := src2[95:80] + dst[79:64] := src1[111:96] + dst[95:80] := src2[111:96] + dst[111:96] := src1[127:112] + dst[127:112] := src2[127:112] + RETURN dst[127:0] +} +tmp_dst[127:0] := INTERLEAVE_HIGH_WORDS(a[127:0], b[127:0]) +tmp_dst[255:128] := INTERLEAVE_HIGH_WORDS(a[255:128], b[255:128]) +FOR j := 0 to 15 + i := j*16 + IF k[j] + dst[i+15:i] := tmp_dst[i+15:i] + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Unpack and interleave 16-bit integers from the high half of each 128-bit lane in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +DEFINE INTERLEAVE_HIGH_WORDS(src1[127:0], src2[127:0]) { + dst[15:0] := src1[79:64] + dst[31:16] := src2[79:64] + dst[47:32] := src1[95:80] + dst[63:48] := src2[95:80] + dst[79:64] := src1[111:96] + dst[95:80] := src2[111:96] + dst[111:96] := src1[127:112] + dst[127:112] := src2[127:112] + RETURN dst[127:0] +} +tmp_dst[127:0] := INTERLEAVE_HIGH_WORDS(a[127:0], b[127:0]) +tmp_dst[255:128] := INTERLEAVE_HIGH_WORDS(a[255:128], b[255:128]) +FOR j := 0 to 15 + i := j*16 + IF k[j] + dst[i+15:i] := tmp_dst[i+15:i] + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Unpack and interleave 16-bit integers from the high half of "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +DEFINE INTERLEAVE_HIGH_WORDS(src1[127:0], src2[127:0]) { + dst[15:0] := src1[79:64] + dst[31:16] := src2[79:64] + dst[47:32] := src1[95:80] + dst[63:48] := src2[95:80] + dst[79:64] := src1[111:96] + dst[95:80] := src2[111:96] + dst[111:96] := src1[127:112] + dst[127:112] := src2[127:112] + RETURN dst[127:0] +} +tmp_dst[127:0] := INTERLEAVE_HIGH_WORDS(a[127:0], b[127:0]) +FOR j := 0 to 7 + i := j*16 + IF k[j] + dst[i+15:i] := tmp_dst[i+15:i] + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Unpack and interleave 16-bit integers from the high half of "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +DEFINE INTERLEAVE_HIGH_WORDS(src1[127:0], src2[127:0]) { + dst[15:0] := src1[79:64] + dst[31:16] := src2[79:64] + dst[47:32] := src1[95:80] + dst[63:48] := src2[95:80] + dst[79:64] := src1[111:96] + dst[95:80] := src2[111:96] + dst[111:96] := src1[127:112] + dst[127:112] := src2[127:112] + RETURN dst[127:0] +} +tmp_dst[127:0] := INTERLEAVE_HIGH_WORDS(a[127:0], b[127:0]) +FOR j := 0 to 7 + i := j*16 + IF k[j] + dst[i+15:i] := tmp_dst[i+15:i] + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Unpack and interleave 8-bit integers from the low half of each 128-bit lane in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +DEFINE INTERLEAVE_BYTES(src1[127:0], src2[127:0]) { + dst[7:0] := src1[7:0] + dst[15:8] := src2[7:0] + dst[23:16] := src1[15:8] + dst[31:24] := src2[15:8] + dst[39:32] := src1[23:16] + dst[47:40] := src2[23:16] + dst[55:48] := src1[31:24] + dst[63:56] := src2[31:24] + dst[71:64] := src1[39:32] + dst[79:72] := src2[39:32] + dst[87:80] := src1[47:40] + dst[95:88] := src2[47:40] + dst[103:96] := src1[55:48] + dst[111:104] := src2[55:48] + dst[119:112] := src1[63:56] + dst[127:120] := src2[63:56] + RETURN dst[127:0] +} +tmp_dst[127:0] := INTERLEAVE_BYTES(a[127:0], b[127:0]) +tmp_dst[255:128] := INTERLEAVE_BYTES(a[255:128], b[255:128]) +FOR j := 0 to 31 + i := j*8 + IF k[j] + dst[i+7:i] := tmp_dst[i+7:i] + ELSE + dst[i+7:i] := src[i+7:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Unpack and interleave 8-bit integers from the low half of each 128-bit lane in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +DEFINE INTERLEAVE_BYTES(src1[127:0], src2[127:0]) { + dst[7:0] := src1[7:0] + dst[15:8] := src2[7:0] + dst[23:16] := src1[15:8] + dst[31:24] := src2[15:8] + dst[39:32] := src1[23:16] + dst[47:40] := src2[23:16] + dst[55:48] := src1[31:24] + dst[63:56] := src2[31:24] + dst[71:64] := src1[39:32] + dst[79:72] := src2[39:32] + dst[87:80] := src1[47:40] + dst[95:88] := src2[47:40] + dst[103:96] := src1[55:48] + dst[111:104] := src2[55:48] + dst[119:112] := src1[63:56] + dst[127:120] := src2[63:56] + RETURN dst[127:0] +} +tmp_dst[127:0] := INTERLEAVE_BYTES(a[127:0], b[127:0]) +tmp_dst[255:128] := INTERLEAVE_BYTES(a[255:128], b[255:128]) +FOR j := 0 to 31 + i := j*8 + IF k[j] + dst[i+7:i] := tmp_dst[i+7:i] + ELSE + dst[i+7:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Unpack and interleave 8-bit integers from the low half of "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +DEFINE INTERLEAVE_BYTES(src1[127:0], src2[127:0]) { + dst[7:0] := src1[7:0] + dst[15:8] := src2[7:0] + dst[23:16] := src1[15:8] + dst[31:24] := src2[15:8] + dst[39:32] := src1[23:16] + dst[47:40] := src2[23:16] + dst[55:48] := src1[31:24] + dst[63:56] := src2[31:24] + dst[71:64] := src1[39:32] + dst[79:72] := src2[39:32] + dst[87:80] := src1[47:40] + dst[95:88] := src2[47:40] + dst[103:96] := src1[55:48] + dst[111:104] := src2[55:48] + dst[119:112] := src1[63:56] + dst[127:120] := src2[63:56] + RETURN dst[127:0] +} +tmp_dst[127:0] := INTERLEAVE_BYTES(a[127:0], b[127:0]) +FOR j := 0 to 15 + i := j*8 + IF k[j] + dst[i+7:i] := tmp_dst[i+7:i] + ELSE + dst[i+7:i] := src[i+7:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Unpack and interleave 8-bit integers from the low half of "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +DEFINE INTERLEAVE_BYTES(src1[127:0], src2[127:0]) { + dst[7:0] := src1[7:0] + dst[15:8] := src2[7:0] + dst[23:16] := src1[15:8] + dst[31:24] := src2[15:8] + dst[39:32] := src1[23:16] + dst[47:40] := src2[23:16] + dst[55:48] := src1[31:24] + dst[63:56] := src2[31:24] + dst[71:64] := src1[39:32] + dst[79:72] := src2[39:32] + dst[87:80] := src1[47:40] + dst[95:88] := src2[47:40] + dst[103:96] := src1[55:48] + dst[111:104] := src2[55:48] + dst[119:112] := src1[63:56] + dst[127:120] := src2[63:56] + RETURN dst[127:0] +} +tmp_dst[127:0] := INTERLEAVE_BYTES(a[127:0], b[127:0]) +FOR j := 0 to 15 + i := j*8 + IF k[j] + dst[i+7:i] := tmp_dst[i+7:i] + ELSE + dst[i+7:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Unpack and interleave 16-bit integers from the low half of each 128-bit lane in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +DEFINE INTERLEAVE_WORDS(src1[127:0], src2[127:0]) { + dst[15:0] := src1[15:0] + dst[31:16] := src2[15:0] + dst[47:32] := src1[31:16] + dst[63:48] := src2[31:16] + dst[79:64] := src1[47:32] + dst[95:80] := src2[47:32] + dst[111:96] := src1[63:48] + dst[127:112] := src2[63:48] + RETURN dst[127:0] +} +tmp_dst[127:0] := INTERLEAVE_WORDS(a[127:0], b[127:0]) +tmp_dst[255:128] := INTERLEAVE_WORDS(a[255:128], b[255:128]) +FOR j := 0 to 15 + i := j*16 + IF k[j] + dst[i+15:i] := tmp_dst[i+15:i] + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Unpack and interleave 16-bit integers from the low half of each 128-bit lane in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +DEFINE INTERLEAVE_WORDS(src1[127:0], src2[127:0]) { + dst[15:0] := src1[15:0] + dst[31:16] := src2[15:0] + dst[47:32] := src1[31:16] + dst[63:48] := src2[31:16] + dst[79:64] := src1[47:32] + dst[95:80] := src2[47:32] + dst[111:96] := src1[63:48] + dst[127:112] := src2[63:48] + RETURN dst[127:0] +} +tmp_dst[127:0] := INTERLEAVE_WORDS(a[127:0], b[127:0]) +tmp_dst[255:128] := INTERLEAVE_WORDS(a[255:128], b[255:128]) +FOR j := 0 to 15 + i := j*16 + IF k[j] + dst[i+15:i] := tmp_dst[i+15:i] + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Unpack and interleave 16-bit integers from the low half of "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +DEFINE INTERLEAVE_WORDS(src1[127:0], src2[127:0]) { + dst[15:0] := src1[15:0] + dst[31:16] := src2[15:0] + dst[47:32] := src1[31:16] + dst[63:48] := src2[31:16] + dst[79:64] := src1[47:32] + dst[95:80] := src2[47:32] + dst[111:96] := src1[63:48] + dst[127:112] := src2[63:48] + RETURN dst[127:0] +} +tmp_dst[127:0] := INTERLEAVE_WORDS(a[127:0], b[127:0]) +FOR j := 0 to 7 + i := j*16 + IF k[j] + dst[i+15:i] := tmp_dst[i+15:i] + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Unpack and interleave 16-bit integers from the low half of "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +DEFINE INTERLEAVE_WORDS(src1[127:0], src2[127:0]) { + dst[15:0] := src1[15:0] + dst[31:16] := src2[15:0] + dst[47:32] := src1[31:16] + dst[63:48] := src2[31:16] + dst[79:64] := src1[47:32] + dst[95:80] := src2[47:32] + dst[111:96] := src1[63:48] + dst[127:112] := src2[63:48] + RETURN dst[127:0] +} +tmp_dst[127:0] := INTERLEAVE_WORDS(a[127:0], b[127:0]) +FOR j := 0 to 7 + i := j*16 + IF k[j] + dst[i+15:i] := tmp_dst[i+15:i] + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Load packed 16-bit integers from memory into "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + "mem_addr" does not need to be aligned on any particular boundary. + +FOR j := 0 to 15 + i := j*16 + IF k[j] + dst[i+15:i] := MEM[mem_addr+i+15:mem_addr+i] + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Load +
+ + + + + Load packed 16-bit integers from memory into "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + "mem_addr" does not need to be aligned on any particular boundary. + +FOR j := 0 to 15 + i := j*16 + IF k[j] + dst[i+15:i] := MEM[mem_addr+i+15:mem_addr+i] + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Load +
+ + + + + + Load packed 16-bit integers from memory into "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + "mem_addr" does not need to be aligned on any particular boundary. + +FOR j := 0 to 7 + i := j*16 + IF k[j] + dst[i+15:i] := MEM[mem_addr+i+15:mem_addr+i] + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Load +
+ + + + + Load packed 16-bit integers from memory into "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + "mem_addr" does not need to be aligned on any particular boundary. + +FOR j := 0 to 7 + i := j*16 + IF k[j] + dst[i+15:i] := MEM[mem_addr+i+15:mem_addr+i] + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Load +
+ + + + + + Load packed 8-bit integers from memory into "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + "mem_addr" does not need to be aligned on any particular boundary. + +FOR j := 0 to 31 + i := j*8 + IF k[j] + dst[i+7:i] := MEM[mem_addr+i+7:mem_addr+i] + ELSE + dst[i+7:i] := src[i+7:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Load +
+ + + + + Load packed 8-bit integers from memory into "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + "mem_addr" does not need to be aligned on any particular boundary. + +FOR j := 0 to 31 + i := j*8 + IF k[j] + dst[i+7:i] := MEM[mem_addr+i+7:mem_addr+i] + ELSE + dst[i+7:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Load +
+ + + + + + Load packed 8-bit integers from memory into "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + "mem_addr" does not need to be aligned on any particular boundary. + +FOR j := 0 to 15 + i := j*8 + IF k[j] + dst[i+7:i] := MEM[mem_addr+i+7:mem_addr+i] + ELSE + dst[i+7:i] := src[i+7:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Load +
+ + + + + Load packed 8-bit integers from memory into "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + "mem_addr" does not need to be aligned on any particular boundary. + +FOR j := 0 to 15 + i := j*8 + IF k[j] + dst[i+7:i] := MEM[mem_addr+i+7:mem_addr+i] + ELSE + dst[i+7:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Load +
+ + + + Load 256-bits (composed of 16 packed 16-bit integers) from memory into "dst". + "mem_addr" does not need to be aligned on any particular boundary. + +dst[255:0] := MEM[mem_addr+255:mem_addr] +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Load +
+ + + + Load 256-bits (composed of 32 packed 8-bit integers) from memory into "dst". + "mem_addr" does not need to be aligned on any particular boundary. + +dst[255:0] := MEM[mem_addr+255:mem_addr] +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Load +
+ + + + Load 128-bits (composed of 8 packed 16-bit integers) from memory into "dst". + "mem_addr" does not need to be aligned on any particular boundary. + +dst[127:0] := MEM[mem_addr+127:mem_addr] +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Load +
+ + + + Load 128-bits (composed of 16 packed 8-bit integers) from memory into "dst". + "mem_addr" does not need to be aligned on any particular boundary. + +dst[127:0] := MEM[mem_addr+127:mem_addr] +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Load +
+ + + + + + Move packed 16-bit integers from "a" into "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*16 + IF k[j] + dst[i+15:i] := a[i+15:i] + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Move +
+ + + + + Move packed 16-bit integers from "a" into "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*16 + IF k[j] + dst[i+15:i] := a[i+15:i] + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Move +
+ + + + + + Move packed 16-bit integers from "a" into "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*16 + IF k[j] + dst[i+15:i] := a[i+15:i] + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Move +
+ + + + + Move packed 16-bit integers from "a" into "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*16 + IF k[j] + dst[i+15:i] := a[i+15:i] + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Move +
+ + + + + + Move packed 8-bit integers from "a" into "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*8 + IF k[j] + dst[i+7:i] := a[i+7:i] + ELSE + dst[i+7:i] := src[i+7:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Move +
+ + + + + Move packed 8-bit integers from "a" into "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*8 + IF k[j] + dst[i+7:i] := a[i+7:i] + ELSE + dst[i+7:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Move +
+ + + + + + Move packed 8-bit integers from "a" into "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*8 + IF k[j] + dst[i+7:i] := a[i+7:i] + ELSE + dst[i+7:i] := src[i+7:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Move +
+ + + + + Move packed 8-bit integers from "a" into "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*8 + IF k[j] + dst[i+7:i] := a[i+7:i] + ELSE + dst[i+7:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Move +
+ + + + + + Store packed 16-bit integers from "a" into memory using writemask "k". + "mem_addr" does not need to be aligned on any particular boundary. + +FOR j := 0 to 15 + i := j*16 + IF k[j] + MEM[mem_addr+i+15:mem_addr+i] := a[i+15:i] + FI +ENDFOR + + + AVX512BW + AVX512VL +
immintrin.h
+ Store +
+ + + + + + Store packed 16-bit integers from "a" into memory using writemask "k". + "mem_addr" does not need to be aligned on any particular boundary. + +FOR j := 0 to 7 + i := j*16 + IF k[j] + MEM[mem_addr+i+15:mem_addr+i] := a[i+15:i] + FI +ENDFOR + + + AVX512BW + AVX512VL +
immintrin.h
+ Store +
+ + + + + + Store packed 8-bit integers from "a" into memory using writemask "k". + "mem_addr" does not need to be aligned on any particular boundary. + +FOR j := 0 to 31 + i := j*8 + IF k[j] + MEM[mem_addr+i+7:mem_addr+i] := a[i+7:i] + FI +ENDFOR + + + AVX512BW + AVX512VL +
immintrin.h
+ Store +
+ + + + + + Store packed 8-bit integers from "a" into memory using writemask "k". + "mem_addr" does not need to be aligned on any particular boundary. + +FOR j := 0 to 15 + i := j*8 + IF k[j] + MEM[mem_addr+i+7:mem_addr+i] := a[i+7:i] + FI +ENDFOR + + + AVX512BW + AVX512VL +
immintrin.h
+ Store +
+ + + + + Store 256-bits (composed of 16 packed 16-bit integers) from "a" into memory. + "mem_addr" does not need to be aligned on any particular boundary. + +MEM[mem_addr+255:mem_addr] := a[255:0] + + + AVX512BW + AVX512VL +
immintrin.h
+ Store +
+ + + + + Store 256-bits (composed of 32 packed 8-bit integers) from "a" into memory. + "mem_addr" does not need to be aligned on any particular boundary. + +MEM[mem_addr+255:mem_addr] := a[255:0] + + + AVX512BW + AVX512VL +
immintrin.h
+ Store +
+ + + + + Store 128-bits (composed of 8 packed 16-bit integers) from "a" into memory. + "mem_addr" does not need to be aligned on any particular boundary. + +MEM[mem_addr+127:mem_addr] := a[127:0] + + + AVX512BW + AVX512VL +
immintrin.h
+ Store +
+ + + + + Store 128-bits (composed of 16 packed 8-bit integers) from "a" into memory. + "mem_addr" does not need to be aligned on any particular boundary. + +MEM[mem_addr+127:mem_addr] := a[127:0] + + + AVX512BW + AVX512VL +
immintrin.h
+ Store +
+ + + + + + Compute the absolute value of packed signed 8-bit integers in "a", and store the unsigned results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*8 + IF k[j] + dst[i+7:i] := ABS(a[i+7:i]) + ELSE + dst[i+7:i] := src[i+7:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + Compute the absolute value of packed signed 8-bit integers in "a", and store the unsigned results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*8 + IF k[j] + dst[i+7:i] := ABS(a[i+7:i]) + ELSE + dst[i+7:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Compute the absolute value of packed signed 8-bit integers in "a", and store the unsigned results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*8 + IF k[j] + dst[i+7:i] := ABS(a[i+7:i]) + ELSE + dst[i+7:i] := src[i+7:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + Compute the absolute value of packed signed 8-bit integers in "a", and store the unsigned results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*8 + IF k[j] + dst[i+7:i] := ABS(a[i+7:i]) + ELSE + dst[i+7:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Compute the absolute value of packed signed 16-bit integers in "a", and store the unsigned results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*16 + IF k[j] + dst[i+15:i] := ABS(a[i+15:i]) + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + Compute the absolute value of packed signed 16-bit integers in "a", and store the unsigned results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*16 + IF k[j] + dst[i+15:i] := ABS(a[i+15:i]) + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Compute the absolute value of packed signed 16-bit integers in "a", and store the unsigned results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*16 + IF k[j] + dst[i+15:i] := ABS(a[i+15:i]) + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + Compute the absolute value of packed signed 16-bit integers in "a", and store the unsigned results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*16 + IF k[j] + dst[i+15:i] := ABS(a[i+15:i]) + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Add packed 8-bit integers in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*8 + IF k[j] + dst[i+7:i] := a[i+7:i] + b[i+7:i] + ELSE + dst[i+7:i] := src[i+7:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Add packed 8-bit integers in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*8 + IF k[j] + dst[i+7:i] := a[i+7:i] + b[i+7:i] + ELSE + dst[i+7:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Add packed 8-bit integers in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*8 + IF k[j] + dst[i+7:i] := a[i+7:i] + b[i+7:i] + ELSE + dst[i+7:i] := src[i+7:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Add packed 8-bit integers in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*8 + IF k[j] + dst[i+7:i] := a[i+7:i] + b[i+7:i] + ELSE + dst[i+7:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Add packed signed 8-bit integers in "a" and "b" using saturation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*8 + IF k[j] + dst[i+7:i] := Saturate8( a[i+7:i] + b[i+7:i] ) + ELSE + dst[i+7:i] := src[i+7:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Add packed signed 8-bit integers in "a" and "b" using saturation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*8 + IF k[j] + dst[i+7:i] := Saturate8( a[i+7:i] + b[i+7:i] ) + ELSE + dst[i+7:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Add packed signed 8-bit integers in "a" and "b" using saturation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*8 + IF k[j] + dst[i+7:i] := Saturate8( a[i+7:i] + b[i+7:i] ) + ELSE + dst[i+7:i] := src[i+7:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Add packed signed 8-bit integers in "a" and "b" using saturation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*8 + IF k[j] + dst[i+7:i] := Saturate8( a[i+7:i] + b[i+7:i] ) + ELSE + dst[i+7:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Add packed signed 16-bit integers in "a" and "b" using saturation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*16 + IF k[j] + dst[i+15:i] := Saturate16( a[i+15:i] + b[i+15:i] ) + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Add packed signed 16-bit integers in "a" and "b" using saturation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*16 + IF k[j] + dst[i+15:i] := Saturate16( a[i+15:i] + b[i+15:i] ) + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Add packed signed 16-bit integers in "a" and "b" using saturation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*16 + IF k[j] + dst[i+15:i] := Saturate16( a[i+15:i] + b[i+15:i] ) + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Add packed signed 16-bit integers in "a" and "b" using saturation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*16 + IF k[j] + dst[i+15:i] := Saturate16( a[i+15:i] + b[i+15:i] ) + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Add packed unsigned 8-bit integers in "a" and "b" using saturation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*8 + IF k[j] + dst[i+7:i] := SaturateU8( a[i+7:i] + b[i+7:i] ) + ELSE + dst[i+7:i] := src[i+7:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Add packed unsigned 8-bit integers in "a" and "b" using saturation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*8 + IF k[j] + dst[i+7:i] := SaturateU8( a[i+7:i] + b[i+7:i] ) + ELSE + dst[i+7:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Add packed unsigned 8-bit integers in "a" and "b" using saturation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*8 + IF k[j] + dst[i+7:i] := SaturateU8( a[i+7:i] + b[i+7:i] ) + ELSE + dst[i+7:i] := src[i+7:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Add packed unsigned 8-bit integers in "a" and "b" using saturation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*8 + IF k[j] + dst[i+7:i] := SaturateU8( a[i+7:i] + b[i+7:i] ) + ELSE + dst[i+7:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Add packed unsigned 16-bit integers in "a" and "b" using saturation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*16 + IF k[j] + dst[i+15:i] := SaturateU16( a[i+15:i] + b[i+15:i] ) + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Add packed unsigned 16-bit integers in "a" and "b" using saturation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*16 + IF k[j] + dst[i+15:i] := SaturateU16( a[i+15:i] + b[i+15:i] ) + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Add packed unsigned 16-bit integers in "a" and "b" using saturation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*16 + IF k[j] + dst[i+15:i] := SaturateU16( a[i+15:i] + b[i+15:i] ) + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Add packed unsigned 16-bit integers in "a" and "b" using saturation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*16 + IF k[j] + dst[i+15:i] := SaturateU16( a[i+15:i] + b[i+15:i] ) + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Add packed 16-bit integers in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*16 + IF k[j] + dst[i+15:i] := a[i+15:i] + b[i+15:i] + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Add packed 16-bit integers in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*16 + IF k[j] + dst[i+15:i] := a[i+15:i] + b[i+15:i] + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Add packed 16-bit integers in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*16 + IF k[j] + dst[i+15:i] := a[i+15:i] + b[i+15:i] + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Add packed 16-bit integers in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*16 + IF k[j] + dst[i+15:i] := a[i+15:i] + b[i+15:i] + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Average packed unsigned 8-bit integers in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*8 + IF k[j] + dst[i+7:i] := (a[i+7:i] + b[i+7:i] + 1) >> 1 + ELSE + dst[i+7:i] := src[i+7:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Average packed unsigned 8-bit integers in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*8 + IF k[j] + dst[i+7:i] := (a[i+7:i] + b[i+7:i] + 1) >> 1 + ELSE + dst[i+7:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Average packed unsigned 8-bit integers in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*8 + IF k[j] + dst[i+7:i] := (a[i+7:i] + b[i+7:i] + 1) >> 1 + ELSE + dst[i+7:i] := src[i+7:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Average packed unsigned 8-bit integers in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*8 + IF k[j] + dst[i+7:i] := (a[i+7:i] + b[i+7:i] + 1) >> 1 + ELSE + dst[i+7:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Average packed unsigned 16-bit integers in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*16 + IF k[j] + dst[i+15:i] := (a[i+15:i] + b[i+15:i] + 1) >> 1 + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Average packed unsigned 16-bit integers in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*16 + IF k[j] + dst[i+15:i] := (a[i+15:i] + b[i+15:i] + 1) >> 1 + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Average packed unsigned 16-bit integers in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*16 + IF k[j] + dst[i+15:i] := (a[i+15:i] + b[i+15:i] + 1) >> 1 + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Average packed unsigned 16-bit integers in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*16 + IF k[j] + dst[i+15:i] := (a[i+15:i] + b[i+15:i] + 1) >> 1 + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed unsigned 8-bit integers in "a" by packed signed 8-bit integers in "b", producing intermediate signed 16-bit integers. Horizontally add adjacent pairs of intermediate signed 16-bit integers, and pack the saturated results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*16 + IF k[j] + dst[i+15:i] := Saturate16( a[i+15:i+8]*b[i+15:i+8] + a[i+7:i]*b[i+7:i] ) + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply packed unsigned 8-bit integers in "a" by packed signed 8-bit integers in "b", producing intermediate signed 16-bit integers. Horizontally add adjacent pairs of intermediate signed 16-bit integers, and pack the saturated results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*16 + IF k[j] + dst[i+15:i] := Saturate16( a[i+15:i+8]*b[i+15:i+8] + a[i+7:i]*b[i+7:i] ) + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed unsigned 8-bit integers in "a" by packed signed 8-bit integers in "b", producing intermediate signed 16-bit integers. Horizontally add adjacent pairs of intermediate signed 16-bit integers, and pack the saturated results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*16 + IF k[j] + dst[i+15:i] := Saturate16( a[i+15:i+8]*b[i+15:i+8] + a[i+7:i]*b[i+7:i] ) + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply packed unsigned 8-bit integers in "a" by packed signed 8-bit integers in "b", producing intermediate signed 16-bit integers. Horizontally add adjacent pairs of intermediate signed 16-bit integers, and pack the saturated results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*16 + IF k[j] + dst[i+15:i] := Saturate16( a[i+15:i+8]*b[i+15:i+8] + a[i+7:i]*b[i+7:i] ) + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed signed 16-bit integers in "a" and "b", producing intermediate signed 32-bit integers. Horizontally add adjacent pairs of intermediate 32-bit integers, and pack the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := SignExtend32(a[i+31:i+16]*b[i+31:i+16]) + SignExtend32(a[i+15:i]*b[i+15:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply packed signed 16-bit integers in "a" and "b", producing intermediate signed 32-bit integers. Horizontally add adjacent pairs of intermediate 32-bit integers, and pack the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := SignExtend32(a[i+31:i+16]*b[i+31:i+16]) + SignExtend32(a[i+15:i]*b[i+15:i]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed signed 16-bit integers in "a" and "b", producing intermediate signed 32-bit integers. Horizontally add adjacent pairs of intermediate 32-bit integers, and pack the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := SignExtend32(a[i+31:i+16]*b[i+31:i+16]) + SignExtend32(a[i+15:i]*b[i+15:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply packed signed 16-bit integers in "a" and "b", producing intermediate signed 32-bit integers. Horizontally add adjacent pairs of intermediate 32-bit integers, and pack the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := SignExtend32(a[i+31:i+16]*b[i+31:i+16]) + SignExtend32(a[i+15:i]*b[i+15:i]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Compare packed signed 8-bit integers in "a" and "b", and store packed maximum values in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*8 + IF k[j] + dst[i+7:i] := MAX(a[i+7:i], b[i+7:i]) + ELSE + dst[i+7:i] := src[i+7:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Compare packed signed 8-bit integers in "a" and "b", and store packed maximum values in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*8 + IF k[j] + dst[i+7:i] := MAX(a[i+7:i], b[i+7:i]) + ELSE + dst[i+7:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Compare packed signed 8-bit integers in "a" and "b", and store packed maximum values in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*8 + IF k[j] + dst[i+7:i] := MAX(a[i+7:i], b[i+7:i]) + ELSE + dst[i+7:i] := src[i+7:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Compare packed signed 8-bit integers in "a" and "b", and store packed maximum values in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*8 + IF k[j] + dst[i+7:i] := MAX(a[i+7:i], b[i+7:i]) + ELSE + dst[i+7:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Compare packed signed 16-bit integers in "a" and "b", and store packed maximum values in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*16 + IF k[j] + dst[i+15:i] := MAX(a[i+15:i], b[i+15:i]) + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Compare packed signed 16-bit integers in "a" and "b", and store packed maximum values in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*16 + IF k[j] + dst[i+15:i] := MAX(a[i+15:i], b[i+15:i]) + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Compare packed signed 16-bit integers in "a" and "b", and store packed maximum values in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*16 + IF k[j] + dst[i+15:i] := MAX(a[i+15:i], b[i+15:i]) + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Compare packed signed 16-bit integers in "a" and "b", and store packed maximum values in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*16 + IF k[j] + dst[i+15:i] := MAX(a[i+15:i], b[i+15:i]) + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Compare packed unsigned 8-bit integers in "a" and "b", and store packed maximum values in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*8 + IF k[j] + dst[i+7:i] := MAX(a[i+7:i], b[i+7:i]) + ELSE + dst[i+7:i] := src[i+7:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Compare packed unsigned 8-bit integers in "a" and "b", and store packed maximum values in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*8 + IF k[j] + dst[i+7:i] := MAX(a[i+7:i], b[i+7:i]) + ELSE + dst[i+7:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Compare packed unsigned 8-bit integers in "a" and "b", and store packed maximum values in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*8 + IF k[j] + dst[i+7:i] := MAX(a[i+7:i], b[i+7:i]) + ELSE + dst[i+7:i] := src[i+7:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Compare packed unsigned 8-bit integers in "a" and "b", and store packed maximum values in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*8 + IF k[j] + dst[i+7:i] := MAX(a[i+7:i], b[i+7:i]) + ELSE + dst[i+7:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Compare packed unsigned 16-bit integers in "a" and "b", and store packed maximum values in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*16 + IF k[j] + dst[i+15:i] := MAX(a[i+15:i], b[i+15:i]) + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Compare packed unsigned 16-bit integers in "a" and "b", and store packed maximum values in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*16 + IF k[j] + dst[i+15:i] := MAX(a[i+15:i], b[i+15:i]) + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Compare packed unsigned 16-bit integers in "a" and "b", and store packed maximum values in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*16 + IF k[j] + dst[i+15:i] := MAX(a[i+15:i], b[i+15:i]) + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Compare packed unsigned 16-bit integers in "a" and "b", and store packed maximum values in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*16 + IF k[j] + dst[i+15:i] := MAX(a[i+15:i], b[i+15:i]) + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Compare packed signed 8-bit integers in "a" and "b", and store packed minimum values in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*8 + IF k[j] + dst[i+7:i] := MIN(a[i+7:i], b[i+7:i]) + ELSE + dst[i+7:i] := src[i+7:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Compare packed signed 8-bit integers in "a" and "b", and store packed minimum values in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*8 + IF k[j] + dst[i+7:i] := MIN(a[i+7:i], b[i+7:i]) + ELSE + dst[i+7:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Compare packed signed 8-bit integers in "a" and "b", and store packed minimum values in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*8 + IF k[j] + dst[i+7:i] := MIN(a[i+7:i], b[i+7:i]) + ELSE + dst[i+7:i] := src[i+7:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Compare packed signed 8-bit integers in "a" and "b", and store packed minimum values in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*8 + IF k[j] + dst[i+7:i] := MIN(a[i+7:i], b[i+7:i]) + ELSE + dst[i+7:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Compare packed signed 16-bit integers in "a" and "b", and store packed minimum values in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*16 + IF k[j] + dst[i+15:i] := MIN(a[i+15:i], b[i+15:i]) + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Compare packed signed 16-bit integers in "a" and "b", and store packed minimum values in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*16 + IF k[j] + dst[i+15:i] := MIN(a[i+15:i], b[i+15:i]) + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Compare packed signed 16-bit integers in "a" and "b", and store packed minimum values in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*16 + IF k[j] + dst[i+15:i] := MIN(a[i+15:i], b[i+15:i]) + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Compare packed signed 16-bit integers in "a" and "b", and store packed minimum values in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*16 + IF k[j] + dst[i+15:i] := MIN(a[i+15:i], b[i+15:i]) + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Compare packed unsigned 8-bit integers in "a" and "b", and store packed minimum values in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*8 + IF k[j] + dst[i+7:i] := MIN(a[i+7:i], b[i+7:i]) + ELSE + dst[i+7:i] := src[i+7:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Compare packed unsigned 8-bit integers in "a" and "b", and store packed minimum values in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*8 + IF k[j] + dst[i+7:i] := MIN(a[i+7:i], b[i+7:i]) + ELSE + dst[i+7:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Compare packed unsigned 8-bit integers in "a" and "b", and store packed minimum values in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*8 + IF k[j] + dst[i+7:i] := MIN(a[i+7:i], b[i+7:i]) + ELSE + dst[i+7:i] := src[i+7:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Compare packed unsigned 8-bit integers in "a" and "b", and store packed minimum values in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*8 + IF k[j] + dst[i+7:i] := MIN(a[i+7:i], b[i+7:i]) + ELSE + dst[i+7:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Compare packed unsigned 16-bit integers in "a" and "b", and store packed minimum values in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*16 + IF k[j] + dst[i+15:i] := MIN(a[i+15:i], b[i+15:i]) + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Compare packed unsigned 16-bit integers in "a" and "b", and store packed minimum values in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*16 + IF k[j] + dst[i+15:i] := MIN(a[i+15:i], b[i+15:i]) + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Compare packed unsigned 16-bit integers in "a" and "b", and store packed minimum values in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*16 + IF k[j] + dst[i+15:i] := MIN(a[i+15:i], b[i+15:i]) + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Compare packed unsigned 16-bit integers in "a" and "b", and store packed minimum values in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*16 + IF k[j] + dst[i+15:i] := MIN(a[i+15:i], b[i+15:i]) + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed signed 16-bit integers in "a" and "b", producing intermediate signed 32-bit integers. Truncate each intermediate integer to the 18 most significant bits, round by adding 1, and store bits [16:1] to "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*16 + IF k[j] + tmp[31:0] := ((SignExtend32(a[i+15:i]) * SignExtend32(b[i+15:i])) >> 14) + 1 + dst[i+15:i] := tmp[16:1] + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply packed signed 16-bit integers in "a" and "b", producing intermediate signed 32-bit integers. Truncate each intermediate integer to the 18 most significant bits, round by adding 1, and store bits [16:1] to "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*16 + IF k[j] + tmp[31:0] := ((SignExtend32(a[i+15:i]) * SignExtend32(b[i+15:i])) >> 14) + 1 + dst[i+15:i] := tmp[16:1] + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed signed 16-bit integers in "a" and "b", producing intermediate signed 32-bit integers. Truncate each intermediate integer to the 18 most significant bits, round by adding 1, and store bits [16:1] to "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*16 + IF k[j] + tmp[31:0] := ((SignExtend32(a[i+15:i]) * SignExtend32(b[i+15:i])) >> 14) + 1 + dst[i+15:i] := tmp[16:1] + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply packed signed 16-bit integers in "a" and "b", producing intermediate signed 32-bit integers. Truncate each intermediate integer to the 18 most significant bits, round by adding 1, and store bits [16:1] to "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*16 + IF k[j] + tmp[31:0] := ((SignExtend32(a[i+15:i]) * SignExtend32(b[i+15:i])) >> 14) + 1 + dst[i+15:i] := tmp[16:1] + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply the packed unsigned 16-bit integers in "a" and "b", producing intermediate 32-bit integers, and store the high 16 bits of the intermediate integers in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*16 + IF k[j] + tmp[31:0] := a[i+15:i] * b[i+15:i] + dst[i+15:i] := tmp[31:16] + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply the packed unsigned 16-bit integers in "a" and "b", producing intermediate 32-bit integers, and store the high 16 bits of the intermediate integers in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*16 + IF k[j] + tmp[31:0] := a[i+15:i] * b[i+15:i] + dst[i+15:i] := tmp[31:16] + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply the packed unsigned 16-bit integers in "a" and "b", producing intermediate 32-bit integers, and store the high 16 bits of the intermediate integers in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*16 + IF k[j] + tmp[31:0] := a[i+15:i] * b[i+15:i] + dst[i+15:i] := tmp[31:16] + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply the packed unsigned 16-bit integers in "a" and "b", producing intermediate 32-bit integers, and store the high 16 bits of the intermediate integers in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*16 + IF k[j] + tmp[31:0] := a[i+15:i] * b[i+15:i] + dst[i+15:i] := tmp[31:16] + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply the packed signed 16-bit integers in "a" and "b", producing intermediate 32-bit integers, and store the high 16 bits of the intermediate integers in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*16 + IF k[j] + tmp[31:0] := SignExtend32(a[i+15:i]) * SignExtend32(b[i+15:i]) + dst[i+15:i] := tmp[31:16] + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply the packed signed 16-bit integers in "a" and "b", producing intermediate 32-bit integers, and store the high 16 bits of the intermediate integers in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*16 + IF k[j] + tmp[31:0] := SignExtend32(a[i+15:i]) * SignExtend32(b[i+15:i]) + dst[i+15:i] := tmp[31:16] + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply the packed signed 16-bit integers in "a" and "b", producing intermediate 32-bit integers, and store the high 16 bits of the intermediate integers in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*16 + IF k[j] + tmp[31:0] := SignExtend32(a[i+15:i]) * SignExtend32(b[i+15:i]) + dst[i+15:i] := tmp[31:16] + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply the packed signed 16-bit integers in "a" and "b", producing intermediate 32-bit integers, and store the high 16 bits of the intermediate integers in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*16 + IF k[j] + tmp[31:0] := SignExtend32(a[i+15:i]) * SignExtend32(b[i+15:i]) + dst[i+15:i] := tmp[31:16] + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply the packed 16-bit integers in "a" and "b", producing intermediate 32-bit integers, and store the low 16 bits of the intermediate integers in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*16 + IF k[j] + tmp[31:0] := SignExtend32(a[i+15:i]) * SignExtend32(b[i+15:i]) + dst[i+15:i] := tmp[15:0] + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply the packed 16-bit integers in "a" and "b", producing intermediate 32-bit integers, and store the low 16 bits of the intermediate integers in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*16 + IF k[j] + tmp[31:0] := SignExtend32(a[i+15:i]) * SignExtend32(b[i+15:i]) + dst[i+15:i] := tmp[15:0] + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply the packed 16-bit integers in "a" and "b", producing intermediate 32-bit integers, and store the low 16 bits of the intermediate integers in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*16 + IF k[j] + tmp[31:0] := SignExtend32(a[i+15:i]) * SignExtend32(b[i+15:i]) + dst[i+15:i] := tmp[15:0] + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply the packed 16-bit integers in "a" and "b", producing intermediate 32-bit integers, and store the low 16 bits of the intermediate integers in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*16 + IF k[j] + tmp[31:0] := SignExtend32(a[i+15:i]) * SignExtend32(b[i+15:i]) + dst[i+15:i] := tmp[15:0] + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Subtract packed 8-bit integers in "b" from packed 8-bit integers in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*8 + IF k[j] + dst[i+7:i] := a[i+7:i] - b[i+7:i] + ELSE + dst[i+7:i] := src[i+7:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Subtract packed 8-bit integers in "b" from packed 8-bit integers in "a", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*8 + IF k[j] + dst[i+7:i] := a[i+7:i] - b[i+7:i] + ELSE + dst[i+7:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Subtract packed 8-bit integers in "b" from packed 8-bit integers in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*8 + IF k[j] + dst[i+7:i] := a[i+7:i] - b[i+7:i] + ELSE + dst[i+7:i] := src[i+7:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Subtract packed 8-bit integers in "b" from packed 8-bit integers in "a", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*8 + IF k[j] + dst[i+7:i] := a[i+7:i] - b[i+7:i] + ELSE + dst[i+7:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Subtract packed signed 8-bit integers in "b" from packed 8-bit integers in "a" using saturation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*8 + IF k[j] + dst[i+7:i] := Saturate8(a[i+7:i] - b[i+7:i]) + ELSE + dst[i+7:i] := src[i+7:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Subtract packed signed 8-bit integers in "b" from packed 8-bit integers in "a" using saturation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*8 + IF k[j] + dst[i+7:i] := Saturate8(a[i+7:i] - b[i+7:i]) + ELSE + dst[i+7:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Subtract packed signed 8-bit integers in "b" from packed 8-bit integers in "a" using saturation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*8 + IF k[j] + dst[i+7:i] := Saturate8(a[i+7:i] - b[i+7:i]) + ELSE + dst[i+7:i] := src[i+7:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Subtract packed signed 8-bit integers in "b" from packed 8-bit integers in "a" using saturation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*8 + IF k[j] + dst[i+7:i] := Saturate8(a[i+7:i] - b[i+7:i]) + ELSE + dst[i+7:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Subtract packed signed 16-bit integers in "b" from packed 16-bit integers in "a" using saturation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*16 + IF k[j] + dst[i+15:i] := Saturate16(a[i+15:i] - b[i+15:i]) + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Subtract packed signed 16-bit integers in "b" from packed 16-bit integers in "a" using saturation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*16 + IF k[j] + dst[i+15:i] := Saturate16(a[i+15:i] - b[i+15:i]) + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Subtract packed signed 16-bit integers in "b" from packed 16-bit integers in "a" using saturation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*16 + IF k[j] + dst[i+15:i] := Saturate16(a[i+15:i] - b[i+15:i]) + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Subtract packed signed 16-bit integers in "b" from packed 16-bit integers in "a" using saturation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*16 + IF k[j] + dst[i+15:i] := Saturate16(a[i+15:i] - b[i+15:i]) + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Subtract packed unsigned 8-bit integers in "b" from packed unsigned 8-bit integers in "a" using saturation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*8 + IF k[j] + dst[i+7:i] := SaturateU8(a[i+7:i] - b[i+7:i]) + ELSE + dst[i+7:i] := src[i+7:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Subtract packed unsigned 8-bit integers in "b" from packed unsigned 8-bit integers in "a" using saturation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*8 + IF k[j] + dst[i+7:i] := SaturateU8(a[i+7:i] - b[i+7:i]) + ELSE + dst[i+7:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Subtract packed unsigned 8-bit integers in "b" from packed unsigned 8-bit integers in "a" using saturation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*8 + IF k[j] + dst[i+7:i] := SaturateU8(a[i+7:i] - b[i+7:i]) + ELSE + dst[i+7:i] := src[i+7:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Subtract packed unsigned 8-bit integers in "b" from packed unsigned 8-bit integers in "a" using saturation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*8 + IF k[j] + dst[i+7:i] := SaturateU8(a[i+7:i] - b[i+7:i]) + ELSE + dst[i+7:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Subtract packed unsigned 16-bit integers in "b" from packed unsigned 16-bit integers in "a" using saturation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*16 + IF k[j] + dst[i+15:i] := SaturateU16(a[i+15:i] - b[i+15:i]) + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Subtract packed unsigned 16-bit integers in "b" from packed unsigned 16-bit integers in "a" using saturation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*16 + IF k[j] + dst[i+15:i] := SaturateU16(a[i+15:i] - b[i+15:i]) + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Subtract packed unsigned 16-bit integers in "b" from packed unsigned 16-bit integers in "a" using saturation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*16 + IF k[j] + dst[i+15:i] := SaturateU16(a[i+15:i] - b[i+15:i]) + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Subtract packed unsigned 16-bit integers in "b" from packed unsigned 16-bit integers in "a" using saturation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*16 + IF k[j] + dst[i+15:i] := SaturateU16(a[i+15:i] - b[i+15:i]) + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Subtract packed 16-bit integers in "b" from packed 16-bit integers in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*16 + IF k[j] + dst[i+15:i] := a[i+15:i] - b[i+15:i] + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Subtract packed 16-bit integers in "b" from packed 16-bit integers in "a", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*16 + IF k[j] + dst[i+15:i] := a[i+15:i] - b[i+15:i] + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Subtract packed 16-bit integers in "b" from packed 16-bit integers in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*16 + IF k[j] + dst[i+15:i] := a[i+15:i] - b[i+15:i] + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Subtract packed 16-bit integers in "b" from packed 16-bit integers in "a", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*16 + IF k[j] + dst[i+15:i] := a[i+15:i] - b[i+15:i] + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + Miscellaneous + + + + + + Convert packed signed 32-bit integers from "a" and "b" to packed 16-bit integers using signed saturation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +tmp_dst[15:0] := Saturate16(a[31:0]) +tmp_dst[31:16] := Saturate16(a[63:32]) +tmp_dst[47:32] := Saturate16(a[95:64]) +tmp_dst[63:48] := Saturate16(a[127:96]) +tmp_dst[79:64] := Saturate16(b[31:0]) +tmp_dst[95:80] := Saturate16(b[63:32]) +tmp_dst[111:96] := Saturate16(b[95:64]) +tmp_dst[127:112] := Saturate16(b[127:96]) +tmp_dst[143:128] := Saturate16(a[159:128]) +tmp_dst[159:144] := Saturate16(a[191:160]) +tmp_dst[175:160] := Saturate16(a[223:192]) +tmp_dst[191:176] := Saturate16(a[255:224]) +tmp_dst[207:192] := Saturate16(b[159:128]) +tmp_dst[223:208] := Saturate16(b[191:160]) +tmp_dst[239:224] := Saturate16(b[223:192]) +tmp_dst[255:240] := Saturate16(b[255:224]) +FOR j := 0 to 15 + i := j*16 + IF k[j] + dst[i+15:i] := tmp_dst[i+15:i] + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Convert +
+ + Miscellaneous + + + + + Convert packed signed 32-bit integers from "a" and "b" to packed 16-bit integers using signed saturation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +tmp_dst[15:0] := Saturate16(a[31:0]) +tmp_dst[31:16] := Saturate16(a[63:32]) +tmp_dst[47:32] := Saturate16(a[95:64]) +tmp_dst[63:48] := Saturate16(a[127:96]) +tmp_dst[79:64] := Saturate16(b[31:0]) +tmp_dst[95:80] := Saturate16(b[63:32]) +tmp_dst[111:96] := Saturate16(b[95:64]) +tmp_dst[127:112] := Saturate16(b[127:96]) +tmp_dst[143:128] := Saturate16(a[159:128]) +tmp_dst[159:144] := Saturate16(a[191:160]) +tmp_dst[175:160] := Saturate16(a[223:192]) +tmp_dst[191:176] := Saturate16(a[255:224]) +tmp_dst[207:192] := Saturate16(b[159:128]) +tmp_dst[223:208] := Saturate16(b[191:160]) +tmp_dst[239:224] := Saturate16(b[223:192]) +tmp_dst[255:240] := Saturate16(b[255:224]) +FOR j := 0 to 15 + i := j*16 + IF k[j] + dst[i+15:i] := tmp_dst[i+15:i] + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Convert +
+ + Miscellaneous + + + + + + Convert packed signed 32-bit integers from "a" and "b" to packed 16-bit integers using signed saturation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +tmp_dst[15:0] := Saturate16(a[31:0]) +tmp_dst[31:16] := Saturate16(a[63:32]) +tmp_dst[47:32] := Saturate16(a[95:64]) +tmp_dst[63:48] := Saturate16(a[127:96]) +tmp_dst[79:64] := Saturate16(b[31:0]) +tmp_dst[95:80] := Saturate16(b[63:32]) +tmp_dst[111:96] := Saturate16(b[95:64]) +tmp_dst[127:112] := Saturate16(b[127:96]) +FOR j := 0 to 7 + i := j*16 + IF k[j] + dst[i+15:i] := tmp_dst[i+15:i] + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Convert +
+ + Miscellaneous + + + + + Convert packed signed 32-bit integers from "a" and "b" to packed 16-bit integers using signed saturation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +tmp_dst[15:0] := Saturate16(a[31:0]) +tmp_dst[31:16] := Saturate16(a[63:32]) +tmp_dst[47:32] := Saturate16(a[95:64]) +tmp_dst[63:48] := Saturate16(a[127:96]) +tmp_dst[79:64] := Saturate16(b[31:0]) +tmp_dst[95:80] := Saturate16(b[63:32]) +tmp_dst[111:96] := Saturate16(b[95:64]) +tmp_dst[127:112] := Saturate16(b[127:96]) +FOR j := 0 to 7 + i := j*16 + IF k[j] + dst[i+15:i] := tmp_dst[i+15:i] + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Convert +
+ + Miscellaneous + + + + + + Convert packed signed 16-bit integers from "a" and "b" to packed 8-bit integers using signed saturation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +tmp_dst[7:0] := Saturate8(a[15:0]) +tmp_dst[15:8] := Saturate8(a[31:16]) +tmp_dst[23:16] := Saturate8(a[47:32]) +tmp_dst[31:24] := Saturate8(a[63:48]) +tmp_dst[39:32] := Saturate8(a[79:64]) +tmp_dst[47:40] := Saturate8(a[95:80]) +tmp_dst[55:48] := Saturate8(a[111:96]) +tmp_dst[63:56] := Saturate8(a[127:112]) +tmp_dst[71:64] := Saturate8(b[15:0]) +tmp_dst[79:72] := Saturate8(b[31:16]) +tmp_dst[87:80] := Saturate8(b[47:32]) +tmp_dst[95:88] := Saturate8(b[63:48]) +tmp_dst[103:96] := Saturate8(b[79:64]) +tmp_dst[111:104] := Saturate8(b[95:80]) +tmp_dst[119:112] := Saturate8(b[111:96]) +tmp_dst[127:120] := Saturate8(b[127:112]) +tmp_dst[135:128] := Saturate8(a[143:128]) +tmp_dst[143:136] := Saturate8(a[159:144]) +tmp_dst[151:144] := Saturate8(a[175:160]) +tmp_dst[159:152] := Saturate8(a[191:176]) +tmp_dst[167:160] := Saturate8(a[207:192]) +tmp_dst[175:168] := Saturate8(a[223:208]) +tmp_dst[183:176] := Saturate8(a[239:224]) +tmp_dst[191:184] := Saturate8(a[255:240]) +tmp_dst[199:192] := Saturate8(b[143:128]) +tmp_dst[207:200] := Saturate8(b[159:144]) +tmp_dst[215:208] := Saturate8(b[175:160]) +tmp_dst[223:216] := Saturate8(b[191:176]) +tmp_dst[231:224] := Saturate8(b[207:192]) +tmp_dst[239:232] := Saturate8(b[223:208]) +tmp_dst[247:240] := Saturate8(b[239:224]) +tmp_dst[255:248] := Saturate8(b[255:240]) +FOR j := 0 to 31 + i := j*8 + IF k[j] + dst[i+7:i] := tmp_dst[i+7:i] + ELSE + dst[i+7:i] := src[i+7:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Convert +
+ + Miscellaneous + + + + + Convert packed signed 16-bit integers from "a" and "b" to packed 8-bit integers using signed saturation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +tmp_dst[7:0] := Saturate8(a[15:0]) +tmp_dst[15:8] := Saturate8(a[31:16]) +tmp_dst[23:16] := Saturate8(a[47:32]) +tmp_dst[31:24] := Saturate8(a[63:48]) +tmp_dst[39:32] := Saturate8(a[79:64]) +tmp_dst[47:40] := Saturate8(a[95:80]) +tmp_dst[55:48] := Saturate8(a[111:96]) +tmp_dst[63:56] := Saturate8(a[127:112]) +tmp_dst[71:64] := Saturate8(b[15:0]) +tmp_dst[79:72] := Saturate8(b[31:16]) +tmp_dst[87:80] := Saturate8(b[47:32]) +tmp_dst[95:88] := Saturate8(b[63:48]) +tmp_dst[103:96] := Saturate8(b[79:64]) +tmp_dst[111:104] := Saturate8(b[95:80]) +tmp_dst[119:112] := Saturate8(b[111:96]) +tmp_dst[127:120] := Saturate8(b[127:112]) +tmp_dst[135:128] := Saturate8(a[143:128]) +tmp_dst[143:136] := Saturate8(a[159:144]) +tmp_dst[151:144] := Saturate8(a[175:160]) +tmp_dst[159:152] := Saturate8(a[191:176]) +tmp_dst[167:160] := Saturate8(a[207:192]) +tmp_dst[175:168] := Saturate8(a[223:208]) +tmp_dst[183:176] := Saturate8(a[239:224]) +tmp_dst[191:184] := Saturate8(a[255:240]) +tmp_dst[199:192] := Saturate8(b[143:128]) +tmp_dst[207:200] := Saturate8(b[159:144]) +tmp_dst[215:208] := Saturate8(b[175:160]) +tmp_dst[223:216] := Saturate8(b[191:176]) +tmp_dst[231:224] := Saturate8(b[207:192]) +tmp_dst[239:232] := Saturate8(b[223:208]) +tmp_dst[247:240] := Saturate8(b[239:224]) +tmp_dst[255:248] := Saturate8(b[255:240]) +FOR j := 0 to 31 + i := j*8 + IF k[j] + dst[i+7:i] := tmp_dst[i+7:i] + ELSE + dst[i+7:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Convert +
+ + Miscellaneous + + + + + + Convert packed signed 16-bit integers from "a" and "b" to packed 8-bit integers using signed saturation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +tmp_dst[7:0] := Saturate8(a[15:0]) +tmp_dst[15:8] := Saturate8(a[31:16]) +tmp_dst[23:16] := Saturate8(a[47:32]) +tmp_dst[31:24] := Saturate8(a[63:48]) +tmp_dst[39:32] := Saturate8(a[79:64]) +tmp_dst[47:40] := Saturate8(a[95:80]) +tmp_dst[55:48] := Saturate8(a[111:96]) +tmp_dst[63:56] := Saturate8(a[127:112]) +tmp_dst[71:64] := Saturate8(b[15:0]) +tmp_dst[79:72] := Saturate8(b[31:16]) +tmp_dst[87:80] := Saturate8(b[47:32]) +tmp_dst[95:88] := Saturate8(b[63:48]) +tmp_dst[103:96] := Saturate8(b[79:64]) +tmp_dst[111:104] := Saturate8(b[95:80]) +tmp_dst[119:112] := Saturate8(b[111:96]) +tmp_dst[127:120] := Saturate8(b[127:112]) +FOR j := 0 to 15 + i := j*8 + IF k[j] + dst[i+7:i] := tmp_dst[i+7:i] + ELSE + dst[i+7:i] := src[i+7:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Convert +
+ + Miscellaneous + + + + + Convert packed signed 16-bit integers from "a" and "b" to packed 8-bit integers using signed saturation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +tmp_dst[7:0] := Saturate8(a[15:0]) +tmp_dst[15:8] := Saturate8(a[31:16]) +tmp_dst[23:16] := Saturate8(a[47:32]) +tmp_dst[31:24] := Saturate8(a[63:48]) +tmp_dst[39:32] := Saturate8(a[79:64]) +tmp_dst[47:40] := Saturate8(a[95:80]) +tmp_dst[55:48] := Saturate8(a[111:96]) +tmp_dst[63:56] := Saturate8(a[127:112]) +tmp_dst[71:64] := Saturate8(b[15:0]) +tmp_dst[79:72] := Saturate8(b[31:16]) +tmp_dst[87:80] := Saturate8(b[47:32]) +tmp_dst[95:88] := Saturate8(b[63:48]) +tmp_dst[103:96] := Saturate8(b[79:64]) +tmp_dst[111:104] := Saturate8(b[95:80]) +tmp_dst[119:112] := Saturate8(b[111:96]) +tmp_dst[127:120] := Saturate8(b[127:112]) +FOR j := 0 to 15 + i := j*8 + IF k[j] + dst[i+7:i] := tmp_dst[i+7:i] + ELSE + dst[i+7:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Convert +
+ + Miscellaneous + + + + + + Convert packed signed 32-bit integers from "a" and "b" to packed 16-bit integers using unsigned saturation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +tmp_dst[15:0] := SaturateU16(a[31:0]) +tmp_dst[31:16] := SaturateU16(a[63:32]) +tmp_dst[47:32] := SaturateU16(a[95:64]) +tmp_dst[63:48] := SaturateU16(a[127:96]) +tmp_dst[79:64] := SaturateU16(b[31:0]) +tmp_dst[95:80] := SaturateU16(b[63:32]) +tmp_dst[111:96] := SaturateU16(b[95:64]) +tmp_dst[127:112] := SaturateU16(b[127:96]) +tmp_dst[143:128] := SaturateU16(a[159:128]) +tmp_dst[159:144] := SaturateU16(a[191:160]) +tmp_dst[175:160] := SaturateU16(a[223:192]) +tmp_dst[191:176] := SaturateU16(a[255:224]) +tmp_dst[207:192] := SaturateU16(b[159:128]) +tmp_dst[223:208] := SaturateU16(b[191:160]) +tmp_dst[239:224] := SaturateU16(b[223:192]) +tmp_dst[255:240] := SaturateU16(b[255:224]) +FOR j := 0 to 15 + i := j*16 + IF k[j] + dst[i+15:i] := tmp_dst[i+15:i] + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Convert +
+ + Miscellaneous + + + + + Convert packed signed 32-bit integers from "a" and "b" to packed 16-bit integers using unsigned saturation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +tmp_dst[15:0] := SaturateU16(a[31:0]) +tmp_dst[31:16] := SaturateU16(a[63:32]) +tmp_dst[47:32] := SaturateU16(a[95:64]) +tmp_dst[63:48] := SaturateU16(a[127:96]) +tmp_dst[79:64] := SaturateU16(b[31:0]) +tmp_dst[95:80] := SaturateU16(b[63:32]) +tmp_dst[111:96] := SaturateU16(b[95:64]) +tmp_dst[127:112] := SaturateU16(b[127:96]) +tmp_dst[143:128] := SaturateU16(a[159:128]) +tmp_dst[159:144] := SaturateU16(a[191:160]) +tmp_dst[175:160] := SaturateU16(a[223:192]) +tmp_dst[191:176] := SaturateU16(a[255:224]) +tmp_dst[207:192] := SaturateU16(b[159:128]) +tmp_dst[223:208] := SaturateU16(b[191:160]) +tmp_dst[239:224] := SaturateU16(b[223:192]) +tmp_dst[255:240] := SaturateU16(b[255:224]) +FOR j := 0 to 15 + i := j*16 + IF k[j] + dst[i+15:i] := tmp_dst[i+15:i] + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Convert +
+ + Miscellaneous + + + + + + Convert packed signed 32-bit integers from "a" and "b" to packed 16-bit integers using unsigned saturation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +tmp_dst[15:0] := SaturateU16(a[31:0]) +tmp_dst[31:16] := SaturateU16(a[63:32]) +tmp_dst[47:32] := SaturateU16(a[95:64]) +tmp_dst[63:48] := SaturateU16(a[127:96]) +tmp_dst[79:64] := SaturateU16(b[31:0]) +tmp_dst[95:80] := SaturateU16(b[63:32]) +tmp_dst[111:96] := SaturateU16(b[95:64]) +tmp_dst[127:112] := SaturateU16(b[127:96]) +FOR j := 0 to 7 + i := j*16 + IF k[j] + dst[i+15:i] := tmp_dst[i+15:i] + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Convert +
+ + Miscellaneous + + + + + Convert packed signed 32-bit integers from "a" and "b" to packed 16-bit integers using unsigned saturation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +tmp_dst[15:0] := SaturateU16(a[31:0]) +tmp_dst[31:16] := SaturateU16(a[63:32]) +tmp_dst[47:32] := SaturateU16(a[95:64]) +tmp_dst[63:48] := SaturateU16(a[127:96]) +tmp_dst[79:64] := SaturateU16(b[31:0]) +tmp_dst[95:80] := SaturateU16(b[63:32]) +tmp_dst[111:96] := SaturateU16(b[95:64]) +tmp_dst[127:112] := SaturateU16(b[127:96]) +FOR j := 0 to 7 + i := j*16 + IF k[j] + dst[i+15:i] := tmp_dst[i+15:i] + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Convert +
+ + Miscellaneous + + + + + + Convert packed signed 16-bit integers from "a" and "b" to packed 8-bit integers using unsigned saturation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +tmp_dst[7:0] := SaturateU8(a[15:0]) +tmp_dst[15:8] := SaturateU8(a[31:16]) +tmp_dst[23:16] := SaturateU8(a[47:32]) +tmp_dst[31:24] := SaturateU8(a[63:48]) +tmp_dst[39:32] := SaturateU8(a[79:64]) +tmp_dst[47:40] := SaturateU8(a[95:80]) +tmp_dst[55:48] := SaturateU8(a[111:96]) +tmp_dst[63:56] := SaturateU8(a[127:112]) +tmp_dst[71:64] := SaturateU8(b[15:0]) +tmp_dst[79:72] := SaturateU8(b[31:16]) +tmp_dst[87:80] := SaturateU8(b[47:32]) +tmp_dst[95:88] := SaturateU8(b[63:48]) +tmp_dst[103:96] := SaturateU8(b[79:64]) +tmp_dst[111:104] := SaturateU8(b[95:80]) +tmp_dst[119:112] := SaturateU8(b[111:96]) +tmp_dst[127:120] := SaturateU8(b[127:112]) +tmp_dst[135:128] := SaturateU8(a[143:128]) +tmp_dst[143:136] := SaturateU8(a[159:144]) +tmp_dst[151:144] := SaturateU8(a[175:160]) +tmp_dst[159:152] := SaturateU8(a[191:176]) +tmp_dst[167:160] := SaturateU8(a[207:192]) +tmp_dst[175:168] := SaturateU8(a[223:208]) +tmp_dst[183:176] := SaturateU8(a[239:224]) +tmp_dst[191:184] := SaturateU8(a[255:240]) +tmp_dst[199:192] := SaturateU8(b[143:128]) +tmp_dst[207:200] := SaturateU8(b[159:144]) +tmp_dst[215:208] := SaturateU8(b[175:160]) +tmp_dst[223:216] := SaturateU8(b[191:176]) +tmp_dst[231:224] := SaturateU8(b[207:192]) +tmp_dst[239:232] := SaturateU8(b[223:208]) +tmp_dst[247:240] := SaturateU8(b[239:224]) +tmp_dst[255:248] := SaturateU8(b[255:240]) +FOR j := 0 to 31 + i := j*8 + IF k[j] + dst[i+7:i] := tmp_dst[i+7:i] + ELSE + dst[i+7:i] := src[i+7:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Convert +
+ + Miscellaneous + + + + + Convert packed signed 16-bit integers from "a" and "b" to packed 8-bit integers using unsigned saturation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +tmp_dst[7:0] := SaturateU8(a[15:0]) +tmp_dst[15:8] := SaturateU8(a[31:16]) +tmp_dst[23:16] := SaturateU8(a[47:32]) +tmp_dst[31:24] := SaturateU8(a[63:48]) +tmp_dst[39:32] := SaturateU8(a[79:64]) +tmp_dst[47:40] := SaturateU8(a[95:80]) +tmp_dst[55:48] := SaturateU8(a[111:96]) +tmp_dst[63:56] := SaturateU8(a[127:112]) +tmp_dst[71:64] := SaturateU8(b[15:0]) +tmp_dst[79:72] := SaturateU8(b[31:16]) +tmp_dst[87:80] := SaturateU8(b[47:32]) +tmp_dst[95:88] := SaturateU8(b[63:48]) +tmp_dst[103:96] := SaturateU8(b[79:64]) +tmp_dst[111:104] := SaturateU8(b[95:80]) +tmp_dst[119:112] := SaturateU8(b[111:96]) +tmp_dst[127:120] := SaturateU8(b[127:112]) +tmp_dst[135:128] := SaturateU8(a[143:128]) +tmp_dst[143:136] := SaturateU8(a[159:144]) +tmp_dst[151:144] := SaturateU8(a[175:160]) +tmp_dst[159:152] := SaturateU8(a[191:176]) +tmp_dst[167:160] := SaturateU8(a[207:192]) +tmp_dst[175:168] := SaturateU8(a[223:208]) +tmp_dst[183:176] := SaturateU8(a[239:224]) +tmp_dst[191:184] := SaturateU8(a[255:240]) +tmp_dst[199:192] := SaturateU8(b[143:128]) +tmp_dst[207:200] := SaturateU8(b[159:144]) +tmp_dst[215:208] := SaturateU8(b[175:160]) +tmp_dst[223:216] := SaturateU8(b[191:176]) +tmp_dst[231:224] := SaturateU8(b[207:192]) +tmp_dst[239:232] := SaturateU8(b[223:208]) +tmp_dst[247:240] := SaturateU8(b[239:224]) +tmp_dst[255:248] := SaturateU8(b[255:240]) +FOR j := 0 to 31 + i := j*8 + IF k[j] + dst[i+7:i] := tmp_dst[i+7:i] + ELSE + dst[i+7:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Convert +
+ + Miscellaneous + + + + + + Convert packed signed 16-bit integers from "a" and "b" to packed 8-bit integers using unsigned saturation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +tmp_dst[7:0] := SaturateU8(a[15:0]) +tmp_dst[15:8] := SaturateU8(a[31:16]) +tmp_dst[23:16] := SaturateU8(a[47:32]) +tmp_dst[31:24] := SaturateU8(a[63:48]) +tmp_dst[39:32] := SaturateU8(a[79:64]) +tmp_dst[47:40] := SaturateU8(a[95:80]) +tmp_dst[55:48] := SaturateU8(a[111:96]) +tmp_dst[63:56] := SaturateU8(a[127:112]) +tmp_dst[71:64] := SaturateU8(b[15:0]) +tmp_dst[79:72] := SaturateU8(b[31:16]) +tmp_dst[87:80] := SaturateU8(b[47:32]) +tmp_dst[95:88] := SaturateU8(b[63:48]) +tmp_dst[103:96] := SaturateU8(b[79:64]) +tmp_dst[111:104] := SaturateU8(b[95:80]) +tmp_dst[119:112] := SaturateU8(b[111:96]) +tmp_dst[127:120] := SaturateU8(b[127:112]) +FOR j := 0 to 15 + i := j*8 + IF k[j] + dst[i+7:i] := tmp_dst[i+7:i] + ELSE + dst[i+7:i] := src[i+7:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Convert +
+ + Miscellaneous + + + + + Convert packed signed 16-bit integers from "a" and "b" to packed 8-bit integers using unsigned saturation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +tmp_dst[7:0] := SaturateU8(a[15:0]) +tmp_dst[15:8] := SaturateU8(a[31:16]) +tmp_dst[23:16] := SaturateU8(a[47:32]) +tmp_dst[31:24] := SaturateU8(a[63:48]) +tmp_dst[39:32] := SaturateU8(a[79:64]) +tmp_dst[47:40] := SaturateU8(a[95:80]) +tmp_dst[55:48] := SaturateU8(a[111:96]) +tmp_dst[63:56] := SaturateU8(a[127:112]) +tmp_dst[71:64] := SaturateU8(b[15:0]) +tmp_dst[79:72] := SaturateU8(b[31:16]) +tmp_dst[87:80] := SaturateU8(b[47:32]) +tmp_dst[95:88] := SaturateU8(b[63:48]) +tmp_dst[103:96] := SaturateU8(b[79:64]) +tmp_dst[111:104] := SaturateU8(b[95:80]) +tmp_dst[119:112] := SaturateU8(b[111:96]) +tmp_dst[127:120] := SaturateU8(b[127:112]) +FOR j := 0 to 15 + i := j*8 + IF k[j] + dst[i+7:i] := tmp_dst[i+7:i] + ELSE + dst[i+7:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed signed 16-bit integers in "a" to packed 8-bit integers with signed saturation, and store the results in "dst". + +FOR j := 0 to 15 + i := 16*j + l := 8*j + dst[l+7:l] := Saturate8(a[i+15:i]) +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed signed 16-bit integers in "a" to packed 8-bit integers with signed saturation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := 16*j + l := 8*j + IF k[j] + dst[l+7:l] := Saturate8(a[i+15:i]) + ELSE + dst[l+7:l] := src[l+7:l] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Convert +
+ + Store + + + + + Convert packed signed 16-bit integers in "a" to packed 8-bit integers with signed saturation, and store the active results (those with their respective bit set in writemask "k") to unaligned memory at "base_addr". + +FOR j := 0 to 15 + i := 16*j + l := 8*j + IF k[j] + MEM[base_addr+l+7:base_addr+l] := Saturate8(a[i+15:i]) + FI +ENDFOR + + + AVX512BW + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed signed 16-bit integers in "a" to packed 8-bit integers with signed saturation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := 16*j + l := 8*j + IF k[j] + dst[l+7:l] := Saturate8(a[i+15:i]) + ELSE + dst[l+7:l] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed signed 16-bit integers in "a" to packed 8-bit integers with signed saturation, and store the results in "dst". + +FOR j := 0 to 7 + i := 16*j + l := 8*j + dst[l+7:l] := Saturate8(a[i+15:i]) +ENDFOR +dst[MAX:64] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed signed 16-bit integers in "a" to packed 8-bit integers with signed saturation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := 16*j + l := 8*j + IF k[j] + dst[l+7:l] := Saturate8(a[i+15:i]) + ELSE + dst[l+7:l] := src[l+7:l] + FI +ENDFOR +dst[MAX:64] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Convert +
+ + Store + + + + + Convert packed signed 16-bit integers in "a" to packed 8-bit integers with signed saturation, and store the active results (those with their respective bit set in writemask "k") to unaligned memory at "base_addr". + +FOR j := 0 to 7 + i := 16*j + l := 8*j + IF k[j] + MEM[base_addr+l+7:base_addr+l] := Saturate8(a[i+15:i]) + FI +ENDFOR + + + AVX512BW + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed signed 16-bit integers in "a" to packed 8-bit integers with signed saturation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := 16*j + l := 8*j + IF k[j] + dst[l+7:l] := Saturate8(a[i+15:i]) + ELSE + dst[l+7:l] := 0 + FI +ENDFOR +dst[MAX:64] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Sign extend packed 8-bit integers in "a" to packed 16-bit integers, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*8 + l := j*16 + IF k[j] + dst[l+15:l] := SignExtend16(a[i+7:i]) + ELSE + dst[l+15:l] := src[l+15:l] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Sign extend packed 8-bit integers in "a" to packed 16-bit integers, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*8 + l := j*16 + IF k[j] + dst[l+15:l] := SignExtend16(a[i+7:i]) + ELSE + dst[l+15:l] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Sign extend packed 8-bit integers in "a" to packed 16-bit integers, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*8 + l := j*16 + IF k[j] + dst[l+15:l] := SignExtend16(a[i+7:i]) + ELSE + dst[l+15:l] := src[l+15:l] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Sign extend packed 8-bit integers in "a" to packed 16-bit integers, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*8 + l := j*16 + IF k[j] + dst[l+15:l] := SignExtend16(a[i+7:i]) + ELSE + dst[l+15:l] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed unsigned 16-bit integers in "a" to packed unsigned 8-bit integers with unsigned saturation, and store the results in "dst". + +FOR j := 0 to 15 + i := 16*j + l := 8*j + dst[l+7:l] := SaturateU8(a[i+15:i]) +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed unsigned 16-bit integers in "a" to packed unsigned 8-bit integers with unsigned saturation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := 16*j + l := 8*j + IF k[j] + dst[l+7:l] := SaturateU8(a[i+15:i]) + ELSE + dst[l+7:l] := src[l+7:l] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Convert +
+ + Store + + + + + Convert packed unsigned 16-bit integers in "a" to packed unsigned 8-bit integers with unsigned saturation, and store the active results (those with their respective bit set in writemask "k") to unaligned memory at "base_addr". + +FOR j := 0 to 15 + i := 16*j + l := 8*j + IF k[j] + MEM[base_addr+l+7:base_addr+l] := SaturateU8(a[i+15:i]) + FI +ENDFOR + + + AVX512BW + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed unsigned 16-bit integers in "a" to packed unsigned 8-bit integers with unsigned saturation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := 16*j + l := 8*j + IF k[j] + dst[l+7:l] := SaturateU8(a[i+15:i]) + ELSE + dst[l+7:l] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed unsigned 16-bit integers in "a" to packed unsigned 8-bit integers with unsigned saturation, and store the results in "dst". + +FOR j := 0 to 7 + i := 16*j + l := 8*j + dst[l+7:l] := SaturateU8(a[i+15:i]) +ENDFOR +dst[MAX:64] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed unsigned 16-bit integers in "a" to packed unsigned 8-bit integers with unsigned saturation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := 16*j + l := 8*j + IF k[j] + dst[l+7:l] := SaturateU8(a[i+15:i]) + ELSE + dst[l+7:l] := src[l+7:l] + FI +ENDFOR +dst[MAX:64] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Convert +
+ + Store + + + + + Convert packed unsigned 16-bit integers in "a" to packed unsigned 8-bit integers with unsigned saturation, and store the active results (those with their respective bit set in writemask "k") to unaligned memory at "base_addr". + +FOR j := 0 to 7 + i := 16*j + l := 8*j + IF k[j] + MEM[base_addr+l+7:base_addr+l] := SaturateU8(a[i+15:i]) + FI +ENDFOR + + + AVX512BW + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed unsigned 16-bit integers in "a" to packed unsigned 8-bit integers with unsigned saturation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := 16*j + l := 8*j + IF k[j] + dst[l+7:l] := SaturateU8(a[i+15:i]) + ELSE + dst[l+7:l] := 0 + FI +ENDFOR +dst[MAX:64] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed 16-bit integers in "a" to packed 8-bit integers with truncation, and store the results in "dst". + +FOR j := 0 to 15 + i := 16*j + l := 8*j + dst[l+7:l] := Truncate8(a[i+15:i]) +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed 16-bit integers in "a" to packed 8-bit integers with truncation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := 16*j + l := 8*j + IF k[j] + dst[l+7:l] := Truncate8(a[i+15:i]) + ELSE + dst[l+7:l] := src[l+7:l] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Convert +
+ + Store + + + + + Convert packed 16-bit integers in "a" to packed 8-bit integers with truncation, and store the active results (those with their respective bit set in writemask "k") to unaligned memory at "base_addr". + +FOR j := 0 to 15 + i := 16*j + l := 8*j + IF k[j] + MEM[base_addr+l+7:base_addr+l] := Truncate8(a[i+15:i]) + FI +ENDFOR + + + AVX512BW + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed 16-bit integers in "a" to packed 8-bit integers with truncation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := 16*j + l := 8*j + IF k[j] + dst[l+7:l] := Truncate8(a[i+15:i]) + ELSE + dst[l+7:l] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed 16-bit integers in "a" to packed 8-bit integers with truncation, and store the results in "dst". + +FOR j := 0 to 7 + i := 16*j + l := 8*j + dst[l+7:l] := Truncate8(a[i+15:i]) +ENDFOR +dst[MAX:64] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed 16-bit integers in "a" to packed 8-bit integers with truncation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := 16*j + l := 8*j + IF k[j] + dst[l+7:l] := Truncate8(a[i+15:i]) + ELSE + dst[l+7:l] := src[l+7:l] + FI +ENDFOR +dst[MAX:64] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Convert +
+ + Store + + + + + Convert packed 16-bit integers in "a" to packed 8-bit integers with truncation, and store the active results (those with their respective bit set in writemask "k") to unaligned memory at "base_addr". + +FOR j := 0 to 7 + i := 16*j + l := 8*j + IF k[j] + MEM[base_addr+l+7:base_addr+l] := Truncate8(a[i+15:i]) + FI +ENDFOR + + + AVX512BW + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed 16-bit integers in "a" to packed 8-bit integers with truncation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := 16*j + l := 8*j + IF k[j] + dst[l+7:l] := Truncate8(a[i+15:i]) + ELSE + dst[l+7:l] := 0 + FI +ENDFOR +dst[MAX:64] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Zero extend packed unsigned 8-bit integers in "a" to packed 16-bit integers, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*8 + l := j*16 + IF k[j] + dst[l+15:l] := ZeroExtend16(a[i+7:i]) + ELSE + dst[l+15:l] := src[l+15:l] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Zero extend packed unsigned 8-bit integers in "a" to packed 16-bit integers, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*8 + l := j*16 + IF k[j] + dst[l+15:l] := ZeroExtend16(a[i+7:i]) + ELSE + dst[l+15:l] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Zero extend packed unsigned 8-bit integers in "a" to packed 16-bit integers, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*8 + l := j*16 + IF k[j] + dst[l+15:l] := ZeroExtend16(a[i+7:i]) + ELSE + dst[l+15:l] := src[l+15:l] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Zero extend packed unsigned 8-bit integers in "a" to packed 16-bit integers, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*8 + l := j*16 + IF k[j] + dst[l+15:l] := ZeroExtend16(a[i+7:i]) + ELSE + dst[l+15:l] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Broadcast 8-bit integer "a" to all elements of "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*8 + IF k[j] + dst[i+7:i] := a[7:0] + ELSE + dst[i+7:i] := src[i+7:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Set +
+ + + + + Broadcast 8-bit integer "a" to all elements of "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*8 + IF k[j] + dst[i+7:i] := a[7:0] + ELSE + dst[i+7:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Set +
+ + + + + + Broadcast 8-bit integer "a" to all elements of "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*8 + IF k[j] + dst[i+7:i] := a[7:0] + ELSE + dst[i+7:i] := src[i+7:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Set +
+ + + + + Broadcast 8-bit integer "a" to all elements of "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*8 + IF k[j] + dst[i+7:i] := a[7:0] + ELSE + dst[i+7:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Set +
+ + + + + + Broadcast the low packed 16-bit integer from "a" to all elements of "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*16 + IF k[j] + dst[i+15:i] := a[15:0] + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Set +
+ + + + + Broadcast 16-bit integer "a" to all elements of "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*16 + IF k[j] + dst[i+15:i] := a[15:0] + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Set +
+ + + + + + Broadcast the low packed 16-bit integer from "a" to all elements of "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*16 + IF k[j] + dst[i+15:i] := a[15:0] + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Set +
+ + + + + Broadcast the low packed 16-bit integer from "a" to all elements of "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*16 + IF k[j] + dst[i+15:i] := a[15:0] + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Set +
+ + + + + + Compare packed signed 8-bit integers in "a" and "b" based on the comparison operand specified by "imm8", and store the results in mask vector "k". + CASE (imm8[2:0]) OF +0: OP := _MM_CMPINT_EQ +1: OP := _MM_CMPINT_LT +2: OP := _MM_CMPINT_LE +3: OP := _MM_CMPINT_FALSE +4: OP := _MM_CMPINT_NE +5: OP := _MM_CMPINT_NLT +6: OP := _MM_CMPINT_NLE +7: OP := _MM_CMPINT_TRUE +ESAC +FOR j := 0 to 31 + i := j*8 + k[j] := ( a[i+7:i] OP b[i+7:i] ) ? 1 : 0 +ENDFOR +k[MAX:32] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compare packed signed 8-bit integers in "a" and "b" for equality, and store the results in mask vector "k". + +FOR j := 0 to 31 + i := j*8 + k[j] := ( a[i+7:i] == b[i+7:i] ) ? 1 : 0 +ENDFOR +k[MAX:32] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compare packed signed 8-bit integers in "a" and "b" for greater-than-or-equal, and store the results in mask vector "k". + +FOR j := 0 to 31 + i := j*8 + k[j] := ( a[i+7:i] >= b[i+7:i] ) ? 1 : 0 +ENDFOR +k[MAX:32] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compare packed signed 8-bit integers in "a" and "b" for greater-than, and store the results in mask vector "k". + +FOR j := 0 to 31 + i := j*8 + k[j] := ( a[i+7:i] > b[i+7:i] ) ? 1 : 0 +ENDFOR +k[MAX:32] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compare packed signed 8-bit integers in "a" and "b" for less-than-or-equal, and store the results in mask vector "k". + +FOR j := 0 to 31 + i := j*8 + k[j] := ( a[i+7:i] <= b[i+7:i] ) ? 1 : 0 +ENDFOR +k[MAX:32] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compare packed signed 8-bit integers in "a" and "b" for less-than, and store the results in mask vector "k". + +FOR j := 0 to 31 + i := j*8 + k[j] := ( a[i+7:i] < b[i+7:i] ) ? 1 : 0 +ENDFOR +k[MAX:32] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compare packed signed 8-bit integers in "a" and "b" for not-equal, and store the results in mask vector "k". + +FOR j := 0 to 31 + i := j*8 + k[j] := ( a[i+7:i] != b[i+7:i] ) ? 1 : 0 +ENDFOR +k[MAX:32] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + + Compare packed signed 8-bit integers in "a" and "b" based on the comparison operand specified by "imm8", and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + CASE (imm8[2:0]) OF +0: OP := _MM_CMPINT_EQ +1: OP := _MM_CMPINT_LT +2: OP := _MM_CMPINT_LE +3: OP := _MM_CMPINT_FALSE +4: OP := _MM_CMPINT_NE +5: OP := _MM_CMPINT_NLT +6: OP := _MM_CMPINT_NLE +7: OP := _MM_CMPINT_TRUE +ESAC +FOR j := 0 to 31 + i := j*8 + IF k1[j] + k[j] := ( a[i+7:i] OP b[i+7:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:32] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed signed 8-bit integers in "a" and "b" for equality, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*8 + IF k1[j] + k[j] := ( a[i+7:i] == b[i+7:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:32] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed signed 8-bit integers in "a" and "b" for greater-than-or-equal, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*8 + IF k1[j] + k[j] := ( a[i+7:i] >= b[i+7:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:32] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed signed 8-bit integers in "a" and "b" for greater-than, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*8 + IF k1[j] + k[j] := ( a[i+7:i] > b[i+7:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:32] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed signed 8-bit integers in "a" and "b" for less-than-or-equal, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*8 + IF k1[j] + k[j] := ( a[i+7:i] <= b[i+7:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:32] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed signed 8-bit integers in "a" and "b" for less-than, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*8 + IF k1[j] + k[j] := ( a[i+7:i] < b[i+7:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:32] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed signed 8-bit integers in "a" and "b" for not-equal, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*8 + IF k1[j] + k[j] := ( a[i+7:i] != b[i+7:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:32] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed signed 8-bit integers in "a" and "b" based on the comparison operand specified by "imm8", and store the results in mask vector "k". + CASE (imm8[2:0]) OF +0: OP := _MM_CMPINT_EQ +1: OP := _MM_CMPINT_LT +2: OP := _MM_CMPINT_LE +3: OP := _MM_CMPINT_FALSE +4: OP := _MM_CMPINT_NE +5: OP := _MM_CMPINT_NLT +6: OP := _MM_CMPINT_NLE +7: OP := _MM_CMPINT_TRUE +ESAC +FOR j := 0 to 15 + i := j*8 + k[j] := ( a[i+7:i] OP b[i+7:i] ) ? 1 : 0 +ENDFOR +k[MAX:16] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compare packed signed 8-bit integers in "a" and "b" for equality, and store the results in mask vector "k". + +FOR j := 0 to 15 + i := j*8 + k[j] := ( a[i+7:i] == b[i+7:i] ) ? 1 : 0 +ENDFOR +k[MAX:16] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compare packed signed 8-bit integers in "a" and "b" for greater-than-or-equal, and store the results in mask vector "k". + +FOR j := 0 to 15 + i := j*8 + k[j] := ( a[i+7:i] >= b[i+7:i] ) ? 1 : 0 +ENDFOR +k[MAX:16] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compare packed signed 8-bit integers in "a" and "b" for greater-than, and store the results in mask vector "k". + +FOR j := 0 to 15 + i := j*8 + k[j] := ( a[i+7:i] > b[i+7:i] ) ? 1 : 0 +ENDFOR +k[MAX:16] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compare packed signed 8-bit integers in "a" and "b" for less-than-or-equal, and store the results in mask vector "k". + +FOR j := 0 to 15 + i := j*8 + k[j] := ( a[i+7:i] <= b[i+7:i] ) ? 1 : 0 +ENDFOR +k[MAX:16] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compare packed signed 8-bit integers in "a" and "b" for less-than, and store the results in mask vector "k". + +FOR j := 0 to 15 + i := j*8 + k[j] := ( a[i+7:i] < b[i+7:i] ) ? 1 : 0 +ENDFOR +k[MAX:16] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compare packed signed 8-bit integers in "a" and "b" for not-equal, and store the results in mask vector "k". + +FOR j := 0 to 15 + i := j*8 + k[j] := ( a[i+7:i] != b[i+7:i] ) ? 1 : 0 +ENDFOR +k[MAX:16] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + + Compare packed signed 8-bit integers in "a" and "b" based on the comparison operand specified by "imm8", and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + CASE (imm8[2:0]) OF +0: OP := _MM_CMPINT_EQ +1: OP := _MM_CMPINT_LT +2: OP := _MM_CMPINT_LE +3: OP := _MM_CMPINT_FALSE +4: OP := _MM_CMPINT_NE +5: OP := _MM_CMPINT_NLT +6: OP := _MM_CMPINT_NLE +7: OP := _MM_CMPINT_TRUE +ESAC +FOR j := 0 to 15 + i := j*8 + IF k1[j] + k[j] := ( a[i+7:i] OP b[i+7:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:16] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed signed 8-bit integers in "a" and "b" for equality, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*8 + IF k1[j] + k[j] := ( a[i+7:i] == b[i+7:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:16] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed signed 8-bit integers in "a" and "b" for greater-than-or-equal, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*8 + IF k1[j] + k[j] := ( a[i+7:i] >= b[i+7:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:16] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed signed 8-bit integers in "a" and "b" for greater-than, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*8 + IF k1[j] + k[j] := ( a[i+7:i] > b[i+7:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:16] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed signed 8-bit integers in "a" and "b" for less-than-or-equal, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*8 + IF k1[j] + k[j] := ( a[i+7:i] <= b[i+7:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:16] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed signed 8-bit integers in "a" and "b" for less-than, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*8 + IF k1[j] + k[j] := ( a[i+7:i] < b[i+7:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:16] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed signed 8-bit integers in "a" and "b" for not-equal, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*8 + IF k1[j] + k[j] := ( a[i+7:i] != b[i+7:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:16] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed unsigned 8-bit integers in "a" and "b" based on the comparison operand specified by "imm8", and store the results in mask vector "k". + CASE (imm8[2:0]) OF +0: OP := _MM_CMPINT_EQ +1: OP := _MM_CMPINT_LT +2: OP := _MM_CMPINT_LE +3: OP := _MM_CMPINT_FALSE +4: OP := _MM_CMPINT_NE +5: OP := _MM_CMPINT_NLT +6: OP := _MM_CMPINT_NLE +7: OP := _MM_CMPINT_TRUE +ESAC +FOR j := 0 to 31 + i := j*8 + k[j] := ( a[i+7:i] OP b[i+7:i] ) ? 1 : 0 +ENDFOR +k[MAX:32] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compare packed unsigned 8-bit integers in "a" and "b" for equality, and store the results in mask vector "k". + +FOR j := 0 to 31 + i := j*8 + k[j] := ( a[i+7:i] == b[i+7:i] ) ? 1 : 0 +ENDFOR +k[MAX:32] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compare packed unsigned 8-bit integers in "a" and "b" for greater-than-or-equal, and store the results in mask vector "k". + +FOR j := 0 to 31 + i := j*8 + k[j] := ( a[i+7:i] >= b[i+7:i] ) ? 1 : 0 +ENDFOR +k[MAX:32] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compare packed unsigned 8-bit integers in "a" and "b" for greater-than, and store the results in mask vector "k". + +FOR j := 0 to 31 + i := j*8 + k[j] := ( a[i+7:i] > b[i+7:i] ) ? 1 : 0 +ENDFOR +k[MAX:32] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compare packed unsigned 8-bit integers in "a" and "b" for less-than-or-equal, and store the results in mask vector "k". + +FOR j := 0 to 31 + i := j*8 + k[j] := ( a[i+7:i] <= b[i+7:i] ) ? 1 : 0 +ENDFOR +k[MAX:32] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compare packed unsigned 8-bit integers in "a" and "b" for less-than, and store the results in mask vector "k". + +FOR j := 0 to 31 + i := j*8 + k[j] := ( a[i+7:i] < b[i+7:i] ) ? 1 : 0 +ENDFOR +k[MAX:32] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compare packed unsigned 8-bit integers in "a" and "b" for not-equal, and store the results in mask vector "k". + +FOR j := 0 to 31 + i := j*8 + k[j] := ( a[i+7:i] != b[i+7:i] ) ? 1 : 0 +ENDFOR +k[MAX:32] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + + Compare packed unsigned 8-bit integers in "a" and "b" based on the comparison operand specified by "imm8", and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + CASE (imm8[2:0]) OF +0: OP := _MM_CMPINT_EQ +1: OP := _MM_CMPINT_LT +2: OP := _MM_CMPINT_LE +3: OP := _MM_CMPINT_FALSE +4: OP := _MM_CMPINT_NE +5: OP := _MM_CMPINT_NLT +6: OP := _MM_CMPINT_NLE +7: OP := _MM_CMPINT_TRUE +ESAC +FOR j := 0 to 31 + i := j*8 + IF k1[j] + k[j] := ( a[i+7:i] OP b[i+7:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:32] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed unsigned 8-bit integers in "a" and "b" for equality, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*8 + IF k1[j] + k[j] := ( a[i+7:i] == b[i+7:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:32] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed unsigned 8-bit integers in "a" and "b" for greater-than-or-equal, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*8 + IF k1[j] + k[j] := ( a[i+7:i] >= b[i+7:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:32] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed unsigned 8-bit integers in "a" and "b" for greater-than, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*8 + IF k1[j] + k[j] := ( a[i+7:i] > b[i+7:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:32] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed unsigned 8-bit integers in "a" and "b" for less-than-or-equal, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*8 + IF k1[j] + k[j] := ( a[i+7:i] <= b[i+7:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:32] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed unsigned 8-bit integers in "a" and "b" for less-than, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*8 + IF k1[j] + k[j] := ( a[i+7:i] < b[i+7:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:32] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed unsigned 8-bit integers in "a" and "b" for not-equal, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*8 + IF k1[j] + k[j] := ( a[i+7:i] != b[i+7:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:32] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed unsigned 8-bit integers in "a" and "b" based on the comparison operand specified by "imm8", and store the results in mask vector "k". + CASE (imm8[2:0]) OF +0: OP := _MM_CMPINT_EQ +1: OP := _MM_CMPINT_LT +2: OP := _MM_CMPINT_LE +3: OP := _MM_CMPINT_FALSE +4: OP := _MM_CMPINT_NE +5: OP := _MM_CMPINT_NLT +6: OP := _MM_CMPINT_NLE +7: OP := _MM_CMPINT_TRUE +ESAC +FOR j := 0 to 15 + i := j*8 + k[j] := ( a[i+7:i] OP b[i+7:i] ) ? 1 : 0 +ENDFOR +k[MAX:16] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compare packed unsigned 8-bit integers in "a" and "b" for equality, and store the results in mask vector "k". + +FOR j := 0 to 15 + i := j*8 + k[j] := ( a[i+7:i] == b[i+7:i] ) ? 1 : 0 +ENDFOR +k[MAX:16] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compare packed unsigned 8-bit integers in "a" and "b" for greater-than-or-equal, and store the results in mask vector "k". + +FOR j := 0 to 15 + i := j*8 + k[j] := ( a[i+7:i] >= b[i+7:i] ) ? 1 : 0 +ENDFOR +k[MAX:16] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compare packed unsigned 8-bit integers in "a" and "b" for greater-than, and store the results in mask vector "k". + +FOR j := 0 to 15 + i := j*8 + k[j] := ( a[i+7:i] > b[i+7:i] ) ? 1 : 0 +ENDFOR +k[MAX:16] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compare packed unsigned 8-bit integers in "a" and "b" for less-than-or-equal, and store the results in mask vector "k". + +FOR j := 0 to 15 + i := j*8 + k[j] := ( a[i+7:i] <= b[i+7:i] ) ? 1 : 0 +ENDFOR +k[MAX:16] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compare packed unsigned 8-bit integers in "a" and "b" for less-than, and store the results in mask vector "k". + +FOR j := 0 to 15 + i := j*8 + k[j] := ( a[i+7:i] < b[i+7:i] ) ? 1 : 0 +ENDFOR +k[MAX:16] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compare packed unsigned 8-bit integers in "a" and "b" for not-equal, and store the results in mask vector "k". + +FOR j := 0 to 15 + i := j*8 + k[j] := ( a[i+7:i] != b[i+7:i] ) ? 1 : 0 +ENDFOR +k[MAX:16] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + + Compare packed unsigned 8-bit integers in "a" and "b" based on the comparison operand specified by "imm8", and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + CASE (imm8[2:0]) OF +0: OP := _MM_CMPINT_EQ +1: OP := _MM_CMPINT_LT +2: OP := _MM_CMPINT_LE +3: OP := _MM_CMPINT_FALSE +4: OP := _MM_CMPINT_NE +5: OP := _MM_CMPINT_NLT +6: OP := _MM_CMPINT_NLE +7: OP := _MM_CMPINT_TRUE +ESAC +FOR j := 0 to 15 + i := j*8 + IF k1[j] + k[j] := ( a[i+7:i] OP b[i+7:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:16] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed unsigned 8-bit integers in "a" and "b" for equality, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*8 + IF k1[j] + k[j] := ( a[i+7:i] == b[i+7:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:16] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed unsigned 8-bit integers in "a" and "b" for greater-than-or-equal, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*8 + IF k1[j] + k[j] := ( a[i+7:i] >= b[i+7:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:16] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed unsigned 8-bit integers in "a" and "b" for greater-than, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*8 + IF k1[j] + k[j] := ( a[i+7:i] > b[i+7:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:16] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed unsigned 8-bit integers in "a" and "b" for less-than-or-equal, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*8 + IF k1[j] + k[j] := ( a[i+7:i] <= b[i+7:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:16] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed unsigned 8-bit integers in "a" and "b" for less-than, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*8 + IF k1[j] + k[j] := ( a[i+7:i] < b[i+7:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:16] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed unsigned 8-bit integers in "a" and "b" for not-equal, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*8 + IF k1[j] + k[j] := ( a[i+7:i] != b[i+7:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:16] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed unsigned 16-bit integers in "a" and "b" based on the comparison operand specified by "imm8", and store the results in mask vector "k". + CASE (imm8[2:0]) OF +0: OP := _MM_CMPINT_EQ +1: OP := _MM_CMPINT_LT +2: OP := _MM_CMPINT_LE +3: OP := _MM_CMPINT_FALSE +4: OP := _MM_CMPINT_NE +5: OP := _MM_CMPINT_NLT +6: OP := _MM_CMPINT_NLE +7: OP := _MM_CMPINT_TRUE +ESAC +FOR j := 0 to 15 + i := j*16 + k[j] := ( a[i+15:i] OP b[i+15:i] ) ? 1 : 0 +ENDFOR +k[MAX:16] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compare packed unsigned 16-bit integers in "a" and "b" for equality, and store the results in mask vector "k". + +FOR j := 0 to 15 + i := j*16 + k[j] := ( a[i+15:i] == b[i+15:i] ) ? 1 : 0 +ENDFOR +k[MAX:16] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compare packed unsigned 16-bit integers in "a" and "b" for greater-than-or-equal, and store the results in mask vector "k". + +FOR j := 0 to 15 + i := j*16 + k[j] := ( a[i+15:i] >= b[i+15:i] ) ? 1 : 0 +ENDFOR +k[MAX:16] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compare packed unsigned 16-bit integers in "a" and "b" for greater-than, and store the results in mask vector "k". + +FOR j := 0 to 15 + i := j*16 + k[j] := ( a[i+15:i] > b[i+15:i] ) ? 1 : 0 +ENDFOR +k[MAX:16] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compare packed unsigned 16-bit integers in "a" and "b" for less-than-or-equal, and store the results in mask vector "k". + +FOR j := 0 to 15 + i := j*16 + k[j] := ( a[i+15:i] <= b[i+15:i] ) ? 1 : 0 +ENDFOR +k[MAX:16] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compare packed unsigned 16-bit integers in "a" and "b" for less-than, and store the results in mask vector "k". + +FOR j := 0 to 15 + i := j*16 + k[j] := ( a[i+15:i] < b[i+15:i] ) ? 1 : 0 +ENDFOR +k[MAX:16] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compare packed unsigned 16-bit integers in "a" and "b" for not-equal, and store the results in mask vector "k". + +FOR j := 0 to 15 + i := j*16 + k[j] := ( a[i+15:i] != b[i+15:i] ) ? 1 : 0 +ENDFOR +k[MAX:16] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + + Compare packed unsigned 16-bit integers in "a" and "b" based on the comparison operand specified by "imm8", and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + CASE (imm8[2:0]) OF +0: OP := _MM_CMPINT_EQ +1: OP := _MM_CMPINT_LT +2: OP := _MM_CMPINT_LE +3: OP := _MM_CMPINT_FALSE +4: OP := _MM_CMPINT_NE +5: OP := _MM_CMPINT_NLT +6: OP := _MM_CMPINT_NLE +7: OP := _MM_CMPINT_TRUE +ESAC +FOR j := 0 to 15 + i := j*16 + IF k1[j] + k[j] := ( a[i+15:i] OP b[i+15:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:16] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed unsigned 16-bit integers in "a" and "b" for equality, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*16 + IF k1[j] + k[j] := ( a[i+15:i] == b[i+15:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:16] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed unsigned 16-bit integers in "a" and "b" for greater-than-or-equal, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*16 + IF k1[j] + k[j] := ( a[i+15:i] >= b[i+15:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:16] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed unsigned 16-bit integers in "a" and "b" for greater-than, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*16 + IF k1[j] + k[j] := ( a[i+15:i] > b[i+15:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:16] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed unsigned 16-bit integers in "a" and "b" for less-than-or-equal, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*16 + IF k1[j] + k[j] := ( a[i+15:i] <= b[i+15:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:16] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed unsigned 16-bit integers in "a" and "b" for less-than, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*16 + IF k1[j] + k[j] := ( a[i+15:i] < b[i+15:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:16] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed unsigned 16-bit integers in "a" and "b" for not-equal, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*16 + IF k1[j] + k[j] := ( a[i+15:i] != b[i+15:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:16] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed unsigned 16-bit integers in "a" and "b" based on the comparison operand specified by "imm8", and store the results in mask vector "k". + CASE (imm8[2:0]) OF +0: OP := _MM_CMPINT_EQ +1: OP := _MM_CMPINT_LT +2: OP := _MM_CMPINT_LE +3: OP := _MM_CMPINT_FALSE +4: OP := _MM_CMPINT_NE +5: OP := _MM_CMPINT_NLT +6: OP := _MM_CMPINT_NLE +7: OP := _MM_CMPINT_TRUE +ESAC +FOR j := 0 to 7 + i := j*16 + k[j] := ( a[i+15:i] OP b[i+15:i] ) ? 1 : 0 +ENDFOR +k[MAX:8] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compare packed unsigned 16-bit integers in "a" and "b" for equality, and store the results in mask vector "k". + +FOR j := 0 to 7 + i := j*16 + k[j] := ( a[i+15:i] == b[i+15:i] ) ? 1 : 0 +ENDFOR +k[MAX:8] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compare packed unsigned 16-bit integers in "a" and "b" for greater-than-or-equal, and store the results in mask vector "k". + +FOR j := 0 to 7 + i := j*16 + k[j] := ( a[i+15:i] >= b[i+15:i] ) ? 1 : 0 +ENDFOR +k[MAX:8] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compare packed unsigned 16-bit integers in "a" and "b" for greater-than, and store the results in mask vector "k". + +FOR j := 0 to 7 + i := j*16 + k[j] := ( a[i+15:i] > b[i+15:i] ) ? 1 : 0 +ENDFOR +k[MAX:8] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compare packed unsigned 16-bit integers in "a" and "b" for less-than-or-equal, and store the results in mask vector "k". + +FOR j := 0 to 7 + i := j*16 + k[j] := ( a[i+15:i] <= b[i+15:i] ) ? 1 : 0 +ENDFOR +k[MAX:8] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compare packed unsigned 16-bit integers in "a" and "b" for less-than, and store the results in mask vector "k". + +FOR j := 0 to 7 + i := j*16 + k[j] := ( a[i+15:i] < b[i+15:i] ) ? 1 : 0 +ENDFOR +k[MAX:8] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compare packed unsigned 16-bit integers in "a" and "b" for not-equal, and store the results in mask vector "k". + +FOR j := 0 to 7 + i := j*16 + k[j] := ( a[i+15:i] != b[i+15:i] ) ? 1 : 0 +ENDFOR +k[MAX:8] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + + Compare packed unsigned 16-bit integers in "a" and "b" based on the comparison operand specified by "imm8", and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + CASE (imm8[2:0]) OF +0: OP := _MM_CMPINT_EQ +1: OP := _MM_CMPINT_LT +2: OP := _MM_CMPINT_LE +3: OP := _MM_CMPINT_FALSE +4: OP := _MM_CMPINT_NE +5: OP := _MM_CMPINT_NLT +6: OP := _MM_CMPINT_NLE +7: OP := _MM_CMPINT_TRUE +ESAC +FOR j := 0 to 7 + i := j*16 + IF k1[j] + k[j] := ( a[i+15:i] OP b[i+15:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:8] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed unsigned 16-bit integers in "a" and "b" for equality, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*16 + IF k1[j] + k[j] := ( a[i+15:i] == b[i+15:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:8] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed unsigned 16-bit integers in "a" and "b" for greater-than-or-equal, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*16 + IF k1[j] + k[j] := ( a[i+15:i] >= b[i+15:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:8] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed unsigned 16-bit integers in "a" and "b" for greater-than, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*16 + IF k1[j] + k[j] := ( a[i+15:i] > b[i+15:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:8] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed unsigned 16-bit integers in "a" and "b" for less-than-or-equal, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*16 + IF k1[j] + k[j] := ( a[i+15:i] <= b[i+15:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:8] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed unsigned 16-bit integers in "a" and "b" for less-than, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*16 + IF k1[j] + k[j] := ( a[i+15:i] < b[i+15:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:8] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed unsigned 16-bit integers in "a" and "b" for not-equal, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*16 + IF k1[j] + k[j] := ( a[i+15:i] != b[i+15:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:8] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed signed 16-bit integers in "a" and "b" based on the comparison operand specified by "imm8", and store the results in mask vector "k". + CASE (imm8[2:0]) OF +0: OP := _MM_CMPINT_EQ +1: OP := _MM_CMPINT_LT +2: OP := _MM_CMPINT_LE +3: OP := _MM_CMPINT_FALSE +4: OP := _MM_CMPINT_NE +5: OP := _MM_CMPINT_NLT +6: OP := _MM_CMPINT_NLE +7: OP := _MM_CMPINT_TRUE +ESAC +FOR j := 0 to 15 + i := j*16 + k[j] := ( a[i+15:i] OP b[i+15:i] ) ? 1 : 0 +ENDFOR +k[MAX:16] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compare packed signed 16-bit integers in "a" and "b" for equality, and store the results in mask vector "k". + +FOR j := 0 to 15 + i := j*16 + k[j] := ( a[i+15:i] == b[i+15:i] ) ? 1 : 0 +ENDFOR +k[MAX:16] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compare packed signed 16-bit integers in "a" and "b" for greater-than-or-equal, and store the results in mask vector "k". + +FOR j := 0 to 15 + i := j*16 + k[j] := ( a[i+15:i] >= b[i+15:i] ) ? 1 : 0 +ENDFOR +k[MAX:16] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compare packed signed 16-bit integers in "a" and "b" for greater-than, and store the results in mask vector "k". + +FOR j := 0 to 15 + i := j*16 + k[j] := ( a[i+15:i] > b[i+15:i] ) ? 1 : 0 +ENDFOR +k[MAX:16] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compare packed signed 16-bit integers in "a" and "b" for less-than-or-equal, and store the results in mask vector "k". + +FOR j := 0 to 15 + i := j*16 + k[j] := ( a[i+15:i] <= b[i+15:i] ) ? 1 : 0 +ENDFOR +k[MAX:16] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compare packed signed 16-bit integers in "a" and "b" for less-than, and store the results in mask vector "k". + +FOR j := 0 to 15 + i := j*16 + k[j] := ( a[i+15:i] < b[i+15:i] ) ? 1 : 0 +ENDFOR +k[MAX:16] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compare packed signed 16-bit integers in "a" and "b" for not-equal, and store the results in mask vector "k". + +FOR j := 0 to 15 + i := j*16 + k[j] := ( a[i+15:i] != b[i+15:i] ) ? 1 : 0 +ENDFOR +k[MAX:16] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + + Compare packed signed 16-bit integers in "a" and "b" based on the comparison operand specified by "imm8", and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + CASE (imm8[2:0]) OF +0: OP := _MM_CMPINT_EQ +1: OP := _MM_CMPINT_LT +2: OP := _MM_CMPINT_LE +3: OP := _MM_CMPINT_FALSE +4: OP := _MM_CMPINT_NE +5: OP := _MM_CMPINT_NLT +6: OP := _MM_CMPINT_NLE +7: OP := _MM_CMPINT_TRUE +ESAC +FOR j := 0 to 15 + i := j*16 + IF k1[j] + k[j] := ( a[i+15:i] OP b[i+15:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:16] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed signed 16-bit integers in "a" and "b" for equality, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*16 + IF k1[j] + k[j] := ( a[i+15:i] == b[i+15:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:16] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed signed 16-bit integers in "a" and "b" for greater-than-or-equal, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*16 + IF k1[j] + k[j] := ( a[i+15:i] >= b[i+15:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:16] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed signed 16-bit integers in "a" and "b" for greater-than, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*16 + IF k1[j] + k[j] := ( a[i+15:i] > b[i+15:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:16] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed signed 16-bit integers in "a" and "b" for less-than-or-equal, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*16 + IF k1[j] + k[j] := ( a[i+15:i] <= b[i+15:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:16] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed signed 16-bit integers in "a" and "b" for less-than, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*16 + IF k1[j] + k[j] := ( a[i+15:i] < b[i+15:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:16] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed signed 16-bit integers in "a" and "b" for not-equal, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*16 + IF k1[j] + k[j] := ( a[i+15:i] != b[i+15:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:16] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed signed 16-bit integers in "a" and "b" based on the comparison operand specified by "imm8", and store the results in mask vector "k". + CASE (imm8[2:0]) OF +0: OP := _MM_CMPINT_EQ +1: OP := _MM_CMPINT_LT +2: OP := _MM_CMPINT_LE +3: OP := _MM_CMPINT_FALSE +4: OP := _MM_CMPINT_NE +5: OP := _MM_CMPINT_NLT +6: OP := _MM_CMPINT_NLE +7: OP := _MM_CMPINT_TRUE +ESAC +FOR j := 0 to 7 + i := j*16 + k[j] := ( a[i+15:i] OP b[i+15:i] ) ? 1 : 0 +ENDFOR +k[MAX:8] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compare packed signed 16-bit integers in "a" and "b" for equality, and store the results in mask vector "k". + +FOR j := 0 to 7 + i := j*16 + k[j] := ( a[i+15:i] == b[i+15:i] ) ? 1 : 0 +ENDFOR +k[MAX:8] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compare packed signed 16-bit integers in "a" and "b" for greater-than-or-equal, and store the results in mask vector "k". + +FOR j := 0 to 7 + i := j*16 + k[j] := ( a[i+15:i] >= b[i+15:i] ) ? 1 : 0 +ENDFOR +k[MAX:8] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compare packed signed 16-bit integers in "a" and "b" for greater-than, and store the results in mask vector "k". + +FOR j := 0 to 7 + i := j*16 + k[j] := ( a[i+15:i] > b[i+15:i] ) ? 1 : 0 +ENDFOR +k[MAX:8] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compare packed signed 16-bit integers in "a" and "b" for less-than-or-equal, and store the results in mask vector "k". + +FOR j := 0 to 7 + i := j*16 + k[j] := ( a[i+15:i] <= b[i+15:i] ) ? 1 : 0 +ENDFOR +k[MAX:8] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compare packed signed 16-bit integers in "a" and "b" for less-than, and store the results in mask vector "k". + +FOR j := 0 to 7 + i := j*16 + k[j] := ( a[i+15:i] < b[i+15:i] ) ? 1 : 0 +ENDFOR +k[MAX:8] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compare packed signed 16-bit integers in "a" and "b" for not-equal, and store the results in mask vector "k". + +FOR j := 0 to 7 + i := j*16 + k[j] := ( a[i+15:i] != b[i+15:i] ) ? 1 : 0 +ENDFOR +k[MAX:8] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + + Compare packed signed 16-bit integers in "a" and "b" based on the comparison operand specified by "imm8", and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + CASE (imm8[2:0]) OF +0: OP := _MM_CMPINT_EQ +1: OP := _MM_CMPINT_LT +2: OP := _MM_CMPINT_LE +3: OP := _MM_CMPINT_FALSE +4: OP := _MM_CMPINT_NE +5: OP := _MM_CMPINT_NLT +6: OP := _MM_CMPINT_NLE +7: OP := _MM_CMPINT_TRUE +ESAC +FOR j := 0 to 7 + i := j*16 + IF k1[j] + k[j] := ( a[i+15:i] OP b[i+15:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:8] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed signed 16-bit integers in "a" and "b" for equality, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*16 + IF k1[j] + k[j] := ( a[i+15:i] == b[i+15:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:8] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed signed 16-bit integers in "a" and "b" for greater-than-or-equal, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*16 + IF k1[j] + k[j] := ( a[i+15:i] >= b[i+15:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:8] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed signed 16-bit integers in "a" and "b" for greater-than, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*16 + IF k1[j] + k[j] := ( a[i+15:i] > b[i+15:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:8] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed signed 16-bit integers in "a" and "b" for less-than-or-equal, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*16 + IF k1[j] + k[j] := ( a[i+15:i] <= b[i+15:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:8] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed signed 16-bit integers in "a" and "b" for less-than, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*16 + IF k1[j] + k[j] := ( a[i+15:i] < b[i+15:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:8] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed signed 16-bit integers in "a" and "b" for not-equal, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*16 + IF k1[j] + k[j] := ( a[i+15:i] != b[i+15:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:8] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compute the bitwise AND of packed 8-bit integers in "a" and "b", producing intermediate 8-bit values, and set the corresponding bit in result mask "k" (subject to writemask "k") if the intermediate value is non-zero. + +FOR j := 0 to 31 + i := j*8 + IF k1[j] + k[j] := ((a[i+7:i] AND b[i+7:i]) != 0) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:32] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compute the bitwise AND of packed 8-bit integers in "a" and "b", producing intermediate 8-bit values, and set the corresponding bit in result mask "k" if the intermediate value is non-zero. + +FOR j := 0 to 31 + i := j*8 + k[j] := ((a[i+7:i] AND b[i+7:i]) != 0) ? 1 : 0 +ENDFOR +k[MAX:32] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compute the bitwise AND of packed 8-bit integers in "a" and "b", producing intermediate 8-bit values, and set the corresponding bit in result mask "k" (subject to writemask "k") if the intermediate value is non-zero. + +FOR j := 0 to 15 + i := j*8 + IF k1[j] + k[j] := ((a[i+7:i] AND b[i+7:i]) != 0) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:16] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compute the bitwise AND of packed 8-bit integers in "a" and "b", producing intermediate 8-bit values, and set the corresponding bit in result mask "k" if the intermediate value is non-zero. + +FOR j := 0 to 15 + i := j*8 + k[j] := ((a[i+7:i] AND b[i+7:i]) != 0) ? 1 : 0 +ENDFOR +k[MAX:16] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compute the bitwise AND of packed 16-bit integers in "a" and "b", producing intermediate 16-bit values, and set the corresponding bit in result mask "k" (subject to writemask "k") if the intermediate value is non-zero. + +FOR j := 0 to 15 + i := j*16 + IF k1[j] + k[j] := ((a[i+15:i] AND b[i+15:i]) != 0) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:16] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compute the bitwise AND of packed 16-bit integers in "a" and "b", producing intermediate 16-bit values, and set the corresponding bit in result mask "k" if the intermediate value is non-zero. + +FOR j := 0 to 15 + i := j*16 + k[j] := ((a[i+15:i] AND b[i+15:i]) != 0) ? 1 : 0 +ENDFOR +k[MAX:16] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compute the bitwise AND of packed 16-bit integers in "a" and "b", producing intermediate 16-bit values, and set the corresponding bit in result mask "k" (subject to writemask "k") if the intermediate value is non-zero. + +FOR j := 0 to 7 + i := j*16 + IF k1[j] + k[j] := ((a[i+15:i] AND b[i+15:i]) != 0) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:8] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compute the bitwise AND of packed 16-bit integers in "a" and "b", producing intermediate 16-bit values, and set the corresponding bit in result mask "k" if the intermediate value is non-zero. + +FOR j := 0 to 7 + i := j*16 + k[j] := ((a[i+15:i] AND b[i+15:i]) != 0) ? 1 : 0 +ENDFOR +k[MAX:8] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compute the bitwise NAND of packed 8-bit integers in "a" and "b", producing intermediate 8-bit values, and set the corresponding bit in result mask "k" (subject to writemask "k") if the intermediate value is zero. + +FOR j := 0 to 31 + i := j*8 + IF k1[j] + k[j] := ((a[i+7:i] AND b[i+7:i]) == 0) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:32] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compute the bitwise NAND of packed 8-bit integers in "a" and "b", producing intermediate 8-bit values, and set the corresponding bit in result mask "k" if the intermediate value is zero. + +FOR j := 0 to 31 + i := j*8 + k[j] := ((a[i+7:i] AND b[i+7:i]) == 0) ? 1 : 0 +ENDFOR +k[MAX:32] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compute the bitwise NAND of packed 8-bit integers in "a" and "b", producing intermediate 8-bit values, and set the corresponding bit in result mask "k" (subject to writemask "k") if the intermediate value is zero. + +FOR j := 0 to 15 + i := j*8 + IF k1[j] + k[j] := ((a[i+7:i] AND b[i+7:i]) == 0) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:16] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compute the bitwise NAND of packed 8-bit integers in "a" and "b", producing intermediate 8-bit values, and set the corresponding bit in result mask "k" if the intermediate value is zero. + +FOR j := 0 to 15 + i := j*8 + k[j] := ((a[i+7:i] AND b[i+7:i]) == 0) ? 1 : 0 +ENDFOR +k[MAX:16] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compute the bitwise NAND of packed 16-bit integers in "a" and "b", producing intermediate 16-bit values, and set the corresponding bit in result mask "k" (subject to writemask "k") if the intermediate value is zero. + +FOR j := 0 to 15 + i := j*16 + IF k1[j] + k[j] := ((a[i+15:i] AND b[i+15:i]) == 0) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:16] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compute the bitwise NAND of packed 16-bit integers in "a" and "b", producing intermediate 16-bit values, and set the corresponding bit in result mask "k" if the intermediate value is zero. + +FOR j := 0 to 15 + i := j*16 + k[j] := ((a[i+15:i] AND b[i+15:i]) == 0) ? 1 : 0 +ENDFOR +k[MAX:16] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compute the bitwise NAND of packed 16-bit integers in "a" and "b", producing intermediate 16-bit values, and set the corresponding bit in result mask "k" (subject to writemask "k") if the intermediate value is zero. + +FOR j := 0 to 7 + i := j*16 + IF k1[j] + k[j] := ((a[i+15:i] AND b[i+15:i]) == 0) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:8] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compute the bitwise NAND of packed 16-bit integers in "a" and "b", producing intermediate 16-bit values, and set the corresponding bit in result mask "k" if the intermediate value is zero. + +FOR j := 0 to 7 + i := j*16 + k[j] := ((a[i+15:i] AND b[i+15:i]) == 0) ? 1 : 0 +ENDFOR +k[MAX:8] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + + Shift packed 16-bit integers in "a" left by the amount specified by the corresponding element in "count" while shifting in zeros, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*16 + IF k[j] + IF count[i+15:i] < 16 + dst[i+15:i] := ZeroExtend16(a[i+15:i] << count[i+15:i]) + ELSE + dst[i+15:i] := 0 + FI + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + Shift packed 16-bit integers in "a" left by the amount specified by the corresponding element in "count" while shifting in zeros, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*16 + IF k[j] + IF count[i+15:i] < 16 + dst[i+15:i] := ZeroExtend16(a[i+15:i] << count[i+15:i]) + ELSE + dst[i+15:i] := 0 + FI + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Shift +
+ + + + + Shift packed 16-bit integers in "a" left by the amount specified by the corresponding element in "count" while shifting in zeros, and store the results in "dst". + +FOR j := 0 to 15 + i := j*16 + IF count[i+15:i] < 16 + dst[i+15:i] := ZeroExtend16(a[i+15:i] << count[i+15:i]) + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + Shift packed 16-bit integers in "a" left by the amount specified by the corresponding element in "count" while shifting in zeros, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*16 + IF k[j] + IF count[i+15:i] < 16 + dst[i+15:i] := ZeroExtend16(a[i+15:i] << count[i+15:i]) + ELSE + dst[i+15:i] := 0 + FI + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + Shift packed 16-bit integers in "a" left by the amount specified by the corresponding element in "count" while shifting in zeros, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*16 + IF k[j] + IF count[i+15:i] < 16 + dst[i+15:i] := ZeroExtend16(a[i+15:i] << count[i+15:i]) + ELSE + dst[i+15:i] := 0 + FI + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Shift +
+ + + + + Shift packed 16-bit integers in "a" left by the amount specified by the corresponding element in "count" while shifting in zeros, and store the results in "dst". + +FOR j := 0 to 7 + i := j*16 + IF count[i+15:i] < 16 + dst[i+15:i] := ZeroExtend16(a[i+15:i] << count[i+15:i]) + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + Shift packed 16-bit integers in "a" left by "count" while shifting in zeros, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*16 + IF k[j] + IF count[63:0] > 15 + dst[i+15:i] := 0 + ELSE + dst[i+15:i] := ZeroExtend16(a[i+15:i] << count[63:0]) + FI + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + Shift packed 16-bit integers in "a" left by "imm8" while shifting in zeros, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*16 + IF k[j] + IF imm8[7:0] > 15 + dst[i+15:i] := 0 + ELSE + dst[i+15:i] := ZeroExtend16(a[i+15:i] << imm8[7:0]) + FI + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + Shift packed 16-bit integers in "a" left by "count" while shifting in zeros, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*16 + IF k[j] + IF count[63:0] > 15 + dst[i+15:i] := 0 + ELSE + dst[i+15:i] := ZeroExtend16(a[i+15:i] << count[63:0]) + FI + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + Shift packed 16-bit integers in "a" left by "imm8" while shifting in zeros, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*16 + IF k[j] + IF imm8[7:0] > 15 + dst[i+15:i] := 0 + ELSE + dst[i+15:i] := ZeroExtend16(a[i+15:i] << imm8[7:0]) + FI + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + Shift packed 16-bit integers in "a" left by "count" while shifting in zeros, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*16 + IF k[j] + IF count[63:0] > 15 + dst[i+15:i] := 0 + ELSE + dst[i+15:i] := ZeroExtend16(a[i+15:i] << count[63:0]) + FI + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + Shift packed 16-bit integers in "a" left by "imm8" while shifting in zeros, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*16 + IF k[j] + IF imm8[7:0] > 15 + dst[i+15:i] := 0 + ELSE + dst[i+15:i] := ZeroExtend16(a[i+15:i] << imm8[7:0]) + FI + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + Shift packed 16-bit integers in "a" left by "count" while shifting in zeros, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*16 + IF k[j] + IF count[63:0] > 15 + dst[i+15:i] := 0 + ELSE + dst[i+15:i] := ZeroExtend16(a[i+15:i] << count[63:0]) + FI + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + Shift packed 16-bit integers in "a" left by "imm8" while shifting in zeros, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*16 + IF k[j] + IF imm8[7:0] > 15 + dst[i+15:i] := 0 + ELSE + dst[i+15:i] := ZeroExtend16(a[i+15:i] << imm8[7:0]) + FI + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + Shift packed 16-bit integers in "a" right by the amount specified by the corresponding element in "count" while shifting in sign bits, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*16 + IF k[j] + IF count[i+15:i] < 16 + dst[i+15:i] := SignExtend16(a[i+15:i] >> count[i+15:i]) + ELSE + dst[i+15:i] := (a[i+15] ? 0xFFFF : 0) + FI + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + Shift packed 16-bit integers in "a" right by the amount specified by the corresponding element in "count" while shifting in sign bits, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*16 + IF k[j] + IF count[i+15:i] < 16 + dst[i+15:i] := SignExtend16(a[i+15:i] >> count[i+15:i]) + ELSE + dst[i+15:i] := (a[i+15] ? 0xFFFF : 0) + FI + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Shift +
+ + + + + Shift packed 16-bit integers in "a" right by the amount specified by the corresponding element in "count" while shifting in sign bits, and store the results in "dst". + +FOR j := 0 to 15 + i := j*16 + IF count[i+15:i] < 16 + dst[i+15:i] := SignExtend16(a[i+15:i] >> count[i+15:i]) + ELSE + dst[i+15:i] := (a[i+15] ? 0xFFFF : 0) + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + Shift packed 16-bit integers in "a" right by the amount specified by the corresponding element in "count" while shifting in sign bits, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*16 + IF k[j] + IF count[i+15:i] < 16 + dst[i+15:i] := SignExtend16(a[i+15:i] >> count[i+15:i]) + ELSE + dst[i+15:i] := (a[i+15] ? 0xFFFF : 0) + FI + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + Shift packed 16-bit integers in "a" right by the amount specified by the corresponding element in "count" while shifting in sign bits, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*16 + IF k[j] + IF count[i+15:i] < 16 + dst[i+15:i] := SignExtend16(a[i+15:i] >> count[i+15:i]) + ELSE + dst[i+15:i] := (a[i+15] ? 0xFFFF : 0) + FI + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Shift +
+ + + + + Shift packed 16-bit integers in "a" right by the amount specified by the corresponding element in "count" while shifting in sign bits, and store the results in "dst". + +FOR j := 0 to 7 + i := j*16 + IF count[i+15:i] < 16 + dst[i+15:i] := SignExtend16(a[i+15:i] >> count[i+15:i]) + ELSE + dst[i+15:i] := (a[i+15] ? 0xFFFF : 0) + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + Shift packed 16-bit integers in "a" right by "count" while shifting in sign bits, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*16 + IF k[j] + IF count[63:0] > 15 + dst[i+15:i] := (a[i+15] ? 0xFFFF : 0x0) + ELSE + dst[i+15:i] := SignExtend16(a[i+15:i] >> count[63:0]) + FI + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + Shift packed 16-bit integers in "a" right by "imm8" while shifting in sign bits, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*16 + IF k[j] + IF imm8[7:0] > 15 + dst[i+15:i] := (a[i+15] ? 0xFFFF : 0x0) + ELSE + dst[i+15:i] := SignExtend16(a[i+15:i] >> imm8[7:0]) + FI + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + Shift packed 16-bit integers in "a" right by "count" while shifting in sign bits, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*16 + IF k[j] + IF count[63:0] > 15 + dst[i+15:i] := (a[i+15] ? 0xFFFF : 0x0) + ELSE + dst[i+15:i] := SignExtend16(a[i+15:i] >> count[63:0]) + FI + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + Shift packed 16-bit integers in "a" right by "imm8" while shifting in sign bits, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*16 + IF k[j] + IF imm8[7:0] > 15 + dst[i+15:i] := (a[i+15] ? 0xFFFF : 0x0) + ELSE + dst[i+15:i] := SignExtend16(a[i+15:i] >> imm8[7:0]) + FI + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + Shift packed 16-bit integers in "a" right by "count" while shifting in sign bits, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*16 + IF k[j] + IF count[63:0] > 15 + dst[i+15:i] := (a[i+15] ? 0xFFFF : 0x0) + ELSE + dst[i+15:i] := SignExtend16(a[i+15:i] >> count[63:0]) + FI + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + Shift packed 16-bit integers in "a" right by "imm8" while shifting in sign bits, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*16 + IF k[j] + IF imm8[7:0] > 15 + dst[i+15:i] := (a[i+15] ? 0xFFFF : 0x0) + ELSE + dst[i+15:i] := SignExtend16(a[i+15:i] >> imm8[7:0]) + FI + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + Shift packed 16-bit integers in "a" right by "count" while shifting in sign bits, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*16 + IF k[j] + IF count[63:0] > 15 + dst[i+15:i] := (a[i+15] ? 0xFFFF : 0x0) + ELSE + dst[i+15:i] := SignExtend16(a[i+15:i] >> count[63:0]) + FI + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + Shift packed 16-bit integers in "a" right by "imm8" while shifting in sign bits, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*16 + IF k[j] + IF imm8[7:0] > 15 + dst[i+15:i] := (a[i+15] ? 0xFFFF : 0x0) + ELSE + dst[i+15:i] := SignExtend16(a[i+15:i] >> imm8[7:0]) + FI + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + Shift packed 16-bit integers in "a" right by the amount specified by the corresponding element in "count" while shifting in zeros, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*16 + IF k[j] + IF count[i+15:i] < 16 + dst[i+15:i] := ZeroExtend16(a[i+15:i] >> count[i+15:i]) + ELSE + dst[i+15:i] := 0 + FI + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + Shift packed 16-bit integers in "a" right by the amount specified by the corresponding element in "count" while shifting in zeros, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*16 + IF k[j] + IF count[i+15:i] < 16 + dst[i+15:i] := ZeroExtend16(a[i+15:i] >> count[i+15:i]) + ELSE + dst[i+15:i] := 0 + FI + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Shift +
+ + + + + Shift packed 16-bit integers in "a" right by the amount specified by the corresponding element in "count" while shifting in zeros, and store the results in "dst". + +FOR j := 0 to 15 + i := j*16 + IF count[i+15:i] < 16 + dst[i+15:i] := ZeroExtend16(a[i+15:i] >> count[i+15:i]) + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + Shift packed 16-bit integers in "a" right by the amount specified by the corresponding element in "count" while shifting in zeros, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*16 + IF k[j] + IF count[i+15:i] < 16 + dst[i+15:i] := ZeroExtend16(a[i+15:i] >> count[i+15:i]) + ELSE + dst[i+15:i] := 0 + FI + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + Shift packed 16-bit integers in "a" right by the amount specified by the corresponding element in "count" while shifting in zeros, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*16 + IF k[j] + IF count[i+15:i] < 16 + dst[i+15:i] := ZeroExtend16(a[i+15:i] >> count[i+15:i]) + ELSE + dst[i+15:i] := 0 + FI + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Shift +
+ + + + + Shift packed 16-bit integers in "a" right by the amount specified by the corresponding element in "count" while shifting in zeros, and store the results in "dst". + +FOR j := 0 to 7 + i := j*16 + IF count[i+15:i] < 16 + dst[i+15:i] := ZeroExtend16(a[i+15:i] >> count[i+15:i]) + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + Shift packed 16-bit integers in "a" right by "count" while shifting in zeros, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*16 + IF k[j] + IF count[63:0] > 15 + dst[i+15:i] := 0 + ELSE + dst[i+15:i] := ZeroExtend16(a[i+15:i] >> count[63:0]) + FI + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + Shift packed 16-bit integers in "a" right by "imm8" while shifting in zeros, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*16 + IF k[j] + IF imm8[7:0] > 15 + dst[i+15:i] := 0 + ELSE + dst[i+15:i] := ZeroExtend16(a[i+15:i] >> imm8[7:0]) + FI + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + Shift packed 16-bit integers in "a" right by "count" while shifting in zeros, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*16 + IF k[j] + IF count[63:0] > 15 + dst[i+15:i] := 0 + ELSE + dst[i+15:i] := ZeroExtend16(a[i+15:i] >> count[63:0]) + FI + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + Shift packed 16-bit integers in "a" right by "imm8" while shifting in zeros, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*16 + IF k[j] + IF imm8[7:0] > 15 + dst[i+15:i] := 0 + ELSE + dst[i+15:i] := ZeroExtend16(a[i+15:i] >> imm8[7:0]) + FI + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + Shift packed 16-bit integers in "a" right by "count" while shifting in zeros, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*16 + IF k[j] + IF count[63:0] > 15 + dst[i+15:i] := 0 + ELSE + dst[i+15:i] := ZeroExtend16(a[i+15:i] >> count[63:0]) + FI + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + Shift packed 16-bit integers in "a" right by "imm8" while shifting in zeros, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*16 + IF k[j] + IF imm8[7:0] > 15 + dst[i+15:i] := 0 + ELSE + dst[i+15:i] := ZeroExtend16(a[i+15:i] >> imm8[7:0]) + FI + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + Shift packed 16-bit integers in "a" right by "count" while shifting in zeros, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*16 + IF k[j] + IF count[63:0] > 15 + dst[i+15:i] := 0 + ELSE + dst[i+15:i] := ZeroExtend16(a[i+15:i] >> count[63:0]) + FI + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + Shift packed 16-bit integers in "a" right by "imm8" while shifting in zeros, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*16 + IF k[j] + IF imm8[7:0] > 15 + dst[i+15:i] := 0 + ELSE + dst[i+15:i] := ZeroExtend16(a[i+15:i] >> imm8[7:0]) + FI + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512BW + AVX512VL +
immintrin.h
+ Shift +
+ + + + Reduce the packed 16-bit integers in "a" by addition. Returns the sum of all elements in "a". + +DEFINE REDUCE_ADD(src, len) { + IF len == 2 + RETURN src[15:0] + src[31:16] + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*16 + src[i+15:i] := src[i+15:i] + src[i+16*len+31:i+16*len] + ENDFOR + RETURN REDUCE_ADD(src[16*len-1:0], len) +} +dst[15:0] := REDUCE_ADD(a, 8) + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + Reduce the packed 16-bit integers in "a" by addition using mask "k". Returns the sum of all active elements in "a". + +DEFINE REDUCE_ADD(src, len) { + IF len == 2 + RETURN src[15:0] + src[31:16] + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*16 + src[i+15:i] := src[i+15:i] + src[i+16*len+15:i+16*len] + ENDFOR + RETURN REDUCE_ADD(src[16*len-1:0], len) +} +tmp := a +FOR j := 0 to 7 + i := j*16 + IF k[j] + tmp[i+15:i] := a[i+15:i] + ELSE + tmp[i+15:i] := 0 + FI +ENDFOR +dst[15:0] := REDUCE_ADD(tmp, 8) + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + Reduce the packed 16-bit integers in "a" by addition. Returns the sum of all elements in "a". + +DEFINE REDUCE_ADD(src, len) { + IF len == 2 + RETURN src[15:0] + src[31:16] + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*16 + src[i+15:i] := src[i+15:i] + src[i+16*len+31:i+16*len] + ENDFOR + RETURN REDUCE_ADD(src[16*len-1:0], len) +} +dst[15:0] := REDUCE_ADD(a, 16) + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + Reduce the packed 16-bit integers in "a" by addition using mask "k". Returns the sum of all active elements in "a". + +DEFINE REDUCE_ADD(src, len) { + IF len == 2 + RETURN src[15:0] + src[31:16] + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*16 + src[i+15:i] := src[i+15:i] + src[i+16*len+15:i+16*len] + ENDFOR + RETURN REDUCE_ADD(src[16*len-1:0], len) +} +tmp := a +FOR j := 0 to 15 + i := j*16 + IF k[j] + tmp[i+15:i] := a[i+15:i] + ELSE + tmp[i+15:i] := 0 + FI +ENDFOR +dst[15:0] := REDUCE_ADD(tmp, 16) + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + Reduce the packed 8-bit integers in "a" by addition. Returns the sum of all elements in "a". + +DEFINE REDUCE_ADD(src, len) { + IF len == 2 + RETURN src[7:0] + src[15:8] + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*8 + src[i+7:i] := src[i+7:i] + src[i+8*len+15:i+8*len] + ENDFOR + RETURN REDUCE_ADD(src[8*len-1:0], len) +} +dst[7:0] := REDUCE_ADD(a, 16) + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + Reduce the packed 8-bit integers in "a" by addition using mask "k". Returns the sum of all active elements in "a". + +DEFINE REDUCE_ADD(src, len) { + IF len == 2 + RETURN src[7:0] + src[15:8] + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*8 + src[i+7:i] := src[i+7:i] + src[i+8*len+7:i+8*len] + ENDFOR + RETURN REDUCE_ADD(src[8*len-1:0], len) +} +tmp := a +FOR j := 0 to 15 + i := j*8 + IF k[j] + tmp[i+7:i] := a[i+7:i] + ELSE + tmp[i+7:i] := 0 + FI +ENDFOR +dst[7:0] := REDUCE_ADD(tmp, 16) + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + Reduce the packed 8-bit integers in "a" by addition. Returns the sum of all elements in "a". + +DEFINE REDUCE_ADD(src, len) { + IF len == 2 + RETURN src[7:0] + src[15:8] + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*8 + src[i+7:i] := src[i+7:i] + src[i+8*len+15:i+8*len] + ENDFOR + RETURN REDUCE_ADD(src[8*len-1:0], len) +} +dst[7:0] := REDUCE_ADD(a, 32) + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + Reduce the packed 8-bit integers in "a" by addition using mask "k". Returns the sum of all active elements in "a". + +DEFINE REDUCE_ADD(src, len) { + IF len == 2 + RETURN src[7:0] + src[15:8] + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*8 + src[i+7:i] := src[i+7:i] + src[i+8*len+7:i+8*len] + ENDFOR + RETURN REDUCE_ADD(src[8*len-1:0], len) +} +tmp := a +FOR j := 0 to 31 + i := j*8 + IF k[j] + tmp[i+7:i] := a[i+7:i] + ELSE + tmp[i+7:i] := 0 + FI +ENDFOR +dst[7:0] := REDUCE_ADD(tmp, 32) + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + Reduce the packed 16-bit integers in "a" by multiplication. Returns the sum of all elements in "a". + +DEFINE REDUCE_MUL(src, len) { + IF len == 2 + RETURN src[15:0] * src[31:16] + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*16 + src[i+15:i] := src[i+15:i] * src[i+16*len+31:i+16*len] + ENDFOR + RETURN REDUCE_MUL(src[16*len-1:0], len) +} +dst[15:0] := REDUCE_MUL(a, 8) + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + Reduce the packed 16-bit integers in "a" by multiplication using mask "k". Returns the sum of all active elements in "a". + +DEFINE REDUCE_MUL(src, len) { + IF len == 2 + RETURN src[15:0] * src[31:16] + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*16 + src[i+15:i] := src[i+15:i] * src[i+16*len+15:i+16*len] + ENDFOR + RETURN REDUCE_MUL(src[16*len-1:0], len) +} +tmp := a +FOR j := 0 to 7 + i := j*16 + IF k[j] + tmp[i+15:i] := a[i+15:i] + ELSE + tmp[i+15:i] := 1 + FI +ENDFOR +dst[15:0] := REDUCE_MUL(tmp, 8) + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + Reduce the packed 16-bit integers in "a" by multiplication. Returns the sum of all elements in "a". + +DEFINE REDUCE_MUL(src, len) { + IF len == 2 + RETURN src[15:0] * src[31:16] + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*16 + src[i+15:i] := src[i+15:i] * src[i+16*len+31:i+16*len] + ENDFOR + RETURN REDUCE_MUL(src[16*len-1:0], len) +} +dst[15:0] := REDUCE_MUL(a, 16) + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + Reduce the packed 16-bit integers in "a" by multiplication using mask "k". Returns the sum of all active elements in "a". + +DEFINE REDUCE_MUL(src, len) { + IF len == 2 + RETURN src[15:0] * src[31:16] + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*16 + src[i+15:i] := src[i+15:i] * src[i+16*len+15:i+16*len] + ENDFOR + RETURN REDUCE_MUL(src[16*len-1:0], len) +} +tmp := a +FOR j := 0 to 15 + i := j*16 + IF k[j] + tmp[i+15:i] := a[i+15:i] + ELSE + tmp[i+15:i] := 1 + FI +ENDFOR +dst[15:0] := REDUCE_MUL(tmp, 16) + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + Reduce the packed 8-bit integers in "a" by multiplication. Returns the sum of all elements in "a". + +DEFINE REDUCE_MUL(src, len) { + IF len == 2 + RETURN src[7:0] * src[15:8] + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*8 + src[i+7:i] := src[i+7:i] * src[i+8*len+15:i+8*len] + ENDFOR + RETURN REDUCE_MUL(src[8*len-1:0], len) +} +dst[7:0] := REDUCE_MUL(a, 16) + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + Reduce the packed 8-bit integers in "a" by multiplication using mask "k". Returns the sum of all active elements in "a". + +DEFINE REDUCE_MUL(src, len) { + IF len == 2 + RETURN src[7:0] * src[15:8] + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*8 + src[i+7:i] := src[i+7:i] * src[i+8*len+7:i+8*len] + ENDFOR + RETURN REDUCE_MUL(src[8*len-1:0], len) +} +tmp := a +FOR j := 0 to 15 + i := j*8 + IF k[j] + tmp[i+7:i] := a[i+7:i] + ELSE + tmp[i+7:i] := 1 + FI +ENDFOR +dst[7:0] := REDUCE_MUL(tmp, 16) + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + Reduce the packed 8-bit integers in "a" by multiplication. Returns the sum of all elements in "a". + +DEFINE REDUCE_MUL(src, len) { + IF len == 2 + RETURN src[7:0] * src[15:8] + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*8 + src[i+7:i] := src[i+7:i] * src[i+8*len+15:i+8*len] + ENDFOR + RETURN REDUCE_MUL(src[8*len-1:0], len) +} +dst[7:0] := REDUCE_MUL(a, 32) + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + Reduce the packed 8-bit integers in "a" by multiplication using mask "k". Returns the sum of all active elements in "a". + +DEFINE REDUCE_MUL(src, len) { + IF len == 2 + RETURN src[7:0] * src[15:8] + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*8 + src[i+7:i] := src[i+7:i] * src[i+8*len+7:i+8*len] + ENDFOR + RETURN REDUCE_MUL(src[8*len-1:0], len) +} +tmp := a +FOR j := 0 to 31 + i := j*8 + IF k[j] + tmp[i+7:i] := a[i+7:i] + ELSE + tmp[i+7:i] := 1 + FI +ENDFOR +dst[7:0] := REDUCE_MUL(tmp, 32) + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + Reduce the packed 16-bit integers in "a" by multiplication. Returns the sum of all elements in "a". + +DEFINE REDUCE_OR(src, len) { + IF len == 2 + RETURN src[15:0] OR src[31:16] + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*16 + src[i+15:i] := src[i+15:i] OR src[i+16*len+31:i+16*len] + ENDFOR + RETURN REDUCE_OR(src[16*len-1:0], len) +} +dst[15:0] := REDUCE_OR(a, 8) + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + Reduce the packed 16-bit integers in "a" by multiplication using mask "k". Returns the sum of all active elements in "a". + +DEFINE REDUCE_OR(src, len) { + IF len == 2 + RETURN src[15:0] OR src[31:16] + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*16 + src[i+15:i] := src[i+15:i] OR src[i+16*len+15:i+16*len] + ENDFOR + RETURN REDUCE_OR(src[16*len-1:0], len) +} +tmp := a +FOR j := 0 to 7 + i := j*16 + IF k[j] + tmp[i+15:i] := a[i+15:i] + ELSE + tmp[i+15:i] := 0 + FI +ENDFOR +dst[15:0] := REDUCE_OR(tmp, 8) + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + Reduce the packed 16-bit integers in "a" by multiplication. Returns the sum of all elements in "a". + +DEFINE REDUCE_OR(src, len) { + IF len == 2 + RETURN src[15:0] OR src[31:16] + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*16 + src[i+15:i] := src[i+15:i] OR src[i+16*len+31:i+16*len] + ENDFOR + RETURN REDUCE_OR(src[16*len-1:0], len) +} +dst[15:0] := REDUCE_OR(a, 16) + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + Reduce the packed 16-bit integers in "a" by multiplication using mask "k". Returns the sum of all active elements in "a". + +DEFINE REDUCE_OR(src, len) { + IF len == 2 + RETURN src[15:0] OR src[31:16] + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*16 + src[i+15:i] := src[i+15:i] OR src[i+16*len+15:i+16*len] + ENDFOR + RETURN REDUCE_OR(src[16*len-1:0], len) +} +tmp := a +FOR j := 0 to 15 + i := j*16 + IF k[j] + tmp[i+15:i] := a[i+15:i] + ELSE + tmp[i+15:i] := 0 + FI +ENDFOR +dst[15:0] := REDUCE_OR(tmp, 16) + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + Reduce the packed 8-bit integers in "a" by multiplication. Returns the sum of all elements in "a". + +DEFINE REDUCE_OR(src, len) { + IF len == 2 + RETURN src[7:0] OR src[15:8] + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*8 + src[i+7:i] := src[i+7:i] OR src[i+8*len+15:i+8*len] + ENDFOR + RETURN REDUCE_OR(src[8*len-1:0], len) +} +dst[7:0] := REDUCE_OR(a, 16) + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + Reduce the packed 8-bit integers in "a" by multiplication using mask "k". Returns the sum of all active elements in "a". + +DEFINE REDUCE_OR(src, len) { + IF len == 2 + RETURN src[7:0] OR src[15:8] + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*8 + src[i+7:i] := src[i+7:i] OR src[i+8*len+7:i+8*len] + ENDFOR + RETURN REDUCE_OR(src[8*len-1:0], len) +} +tmp := a +FOR j := 0 to 15 + i := j*8 + IF k[j] + tmp[i+7:i] := a[i+7:i] + ELSE + tmp[i+7:i] := 0 + FI +ENDFOR +dst[7:0] := REDUCE_OR(tmp, 16) + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + Reduce the packed 8-bit integers in "a" by multiplication. Returns the sum of all elements in "a". + +DEFINE REDUCE_OR(src, len) { + IF len == 2 + RETURN src[7:0] OR src[15:8] + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*8 + src[i+7:i] := src[i+7:i] OR src[i+8*len+15:i+8*len] + ENDFOR + RETURN REDUCE_OR(src[8*len-1:0], len) +} +dst[7:0] := REDUCE_OR(a, 32) + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + Reduce the packed 8-bit integers in "a" by multiplication using mask "k". Returns the sum of all active elements in "a". + +DEFINE REDUCE_OR(src, len) { + IF len == 2 + RETURN src[7:0] OR src[15:8] + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*8 + src[i+7:i] := src[i+7:i] OR src[i+8*len+7:i+8*len] + ENDFOR + RETURN REDUCE_OR(src[8*len-1:0], len) +} +tmp := a +FOR j := 0 to 31 + i := j*8 + IF k[j] + tmp[i+7:i] := a[i+7:i] + ELSE + tmp[i+7:i] := 0 + FI +ENDFOR +dst[7:0] := REDUCE_OR(tmp, 32) + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + Reduce the packed 16-bit integers in "a" by multiplication. Returns the sum of all elements in "a". + +DEFINE REDUCE_AND(src, len) { + IF len == 2 + RETURN src[15:0] AND src[31:16] + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*16 + src[i+15:i] := src[i+15:i] AND src[i+16*len+31:i+16*len] + ENDFOR + RETURN REDUCE_AND(src[16*len-1:0], len) +} +dst[15:0] := REDUCE_AND(a, 8) + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + Reduce the packed 16-bit integers in "a" by multiplication using mask "k". Returns the sum of all active elements in "a". + +DEFINE REDUCE_AND(src, len) { + IF len == 2 + RETURN src[15:0] AND src[31:16] + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*16 + src[i+15:i] := src[i+15:i] AND src[i+16*len+15:i+16*len] + ENDFOR + RETURN REDUCE_AND(src[16*len-1:0], len) +} +tmp := a +FOR j := 0 to 7 + i := j*16 + IF k[j] + tmp[i+15:i] := a[i+15:i] + ELSE + tmp[i+15:i] := 0xFFFF + FI +ENDFOR +dst[15:0] := REDUCE_AND(tmp, 8) + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + Reduce the packed 16-bit integers in "a" by multiplication. Returns the sum of all elements in "a". + +DEFINE REDUCE_AND(src, len) { + IF len == 2 + RETURN src[15:0] AND src[31:16] + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*16 + src[i+15:i] := src[i+15:i] AND src[i+16*len+31:i+16*len] + ENDFOR + RETURN REDUCE_AND(src[16*len-1:0], len) +} +dst[15:0] := REDUCE_AND(a, 16) + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + Reduce the packed 16-bit integers in "a" by multiplication using mask "k". Returns the sum of all active elements in "a". + +DEFINE REDUCE_AND(src, len) { + IF len == 2 + RETURN src[15:0] AND src[31:16] + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*16 + src[i+15:i] := src[i+15:i] AND src[i+16*len+15:i+16*len] + ENDFOR + RETURN REDUCE_AND(src[16*len-1:0], len) +} +tmp := a +FOR j := 0 to 15 + i := j*16 + IF k[j] + tmp[i+15:i] := a[i+15:i] + ELSE + tmp[i+15:i] := 0xFFFF + FI +ENDFOR +dst[15:0] := REDUCE_AND(tmp, 16) + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + Reduce the packed 8-bit integers in "a" by multiplication. Returns the sum of all elements in "a". + +DEFINE REDUCE_AND(src, len) { + IF len == 2 + RETURN src[7:0] AND src[15:8] + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*8 + src[i+7:i] := src[i+7:i] AND src[i+8*len+15:i+8*len] + ENDFOR + RETURN REDUCE_AND(src[8*len-1:0], len) +} +dst[7:0] := REDUCE_AND(a, 16) + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + Reduce the packed 8-bit integers in "a" by multiplication using mask "k". Returns the sum of all active elements in "a". + +DEFINE REDUCE_AND(src, len) { + IF len == 2 + RETURN src[7:0] AND src[15:8] + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*8 + src[i+7:i] := src[i+7:i] AND src[i+8*len+7:i+8*len] + ENDFOR + RETURN REDUCE_AND(src[8*len-1:0], len) +} +tmp := a +FOR j := 0 to 15 + i := j*8 + IF k[j] + tmp[i+7:i] := a[i+7:i] + ELSE + tmp[i+7:i] := 0xFF + FI +ENDFOR +dst[7:0] := REDUCE_AND(tmp, 16) + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + Reduce the packed 8-bit integers in "a" by multiplication. Returns the sum of all elements in "a". + +DEFINE REDUCE_AND(src, len) { + IF len == 2 + RETURN src[7:0] AND src[15:8] + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*8 + src[i+7:i] := src[i+7:i] AND src[i+8*len+15:i+8*len] + ENDFOR + RETURN REDUCE_AND(src[8*len-1:0], len) +} +dst[7:0] := REDUCE_AND(a, 32) + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + Reduce the packed 8-bit integers in "a" by multiplication using mask "k". Returns the sum of all active elements in "a". + +DEFINE REDUCE_AND(src, len) { + IF len == 2 + RETURN src[7:0] AND src[15:8] + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*8 + src[i+7:i] := src[i+7:i] AND src[i+8*len+7:i+8*len] + ENDFOR + RETURN REDUCE_AND(src[8*len-1:0], len) +} +tmp := a +FOR j := 0 to 31 + i := j*8 + IF k[j] + tmp[i+7:i] := a[i+7:i] + ELSE + tmp[i+7:i] := 0xFF + FI +ENDFOR +dst[7:0] := REDUCE_AND(tmp, 32) + + AVX512BW + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + Reduce the packed signed 16-bit integers in "a" by maximum. Returns the maximum of all active elements in "a". + +DEFINE REDUCE_MAX(src, len) { + IF len == 2 + RETURN (src[15:0] > src[31:16] ? src[15:0] : src[31:16]) + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*16 + src[i+15:i] := (src[i+15:i] > src[i+16*len+15:i+16*len] ? src[i+15:i] : src[i+16*len+15:i+16*len]) + ENDFOR + RETURN REDUCE_MAX(src[16*len-1:0], len) +} +dst[15:0] := REDUCE_MAX(a, 8) + + AVX512BW + AVX512VL +
immintrin.h
+ Special Math Functions +
+ + + + + Reduce the packed signed 16-bit integers in "a" by maximum using mask "k". Returns the maximum of all active elements in "a". + +DEFINE REDUCE_MAX(src, len) { + IF len == 2 + RETURN (src[15:0] > src[31:16] ? src[15:0] : src[31:16]) + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*16 + src[i+15:i] := (src[i+15:i] > src[i+16*len+15:i+16*len] ? src[i+15:i] : src[i+16*len+15:i+16*len]) + ENDFOR + RETURN REDUCE_MAX(src[16*len-1:0], len) +} +tmp := a +FOR j := 0 to 7 + i := j*16 + IF k[j] + tmp[i+15:i] := a[i+15:i] + ELSE + tmp[i+15:i] := Int16(-0x8000) + FI +ENDFOR +dst[15:0] := REDUCE_MAX(tmp, 8) + + AVX512BW + AVX512VL +
immintrin.h
+ Special Math Functions +
+ + + + Reduce the packed signed 16-bit integers in "a" by maximum. Returns the maximum of all active elements in "a". + +DEFINE REDUCE_MAX(src, len) { + IF len == 2 + RETURN (src[15:0] > src[31:16] ? src[15:0] : src[31:16]) + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*16 + src[i+15:i] := (src[i+15:i] > src[i+16*len+15:i+16*len] ? src[i+15:i] : src[i+16*len+15:i+16*len]) + ENDFOR + RETURN REDUCE_MAX(src[16*len-1:0], len) +} +dst[15:0] := REDUCE_MAX(a, 16) + + AVX512BW + AVX512VL +
immintrin.h
+ Special Math Functions +
+ + + + + Reduce the packed signed 16-bit integers in "a" by maximum using mask "k". Returns the maximum of all active elements in "a". + +DEFINE REDUCE_MAX(src, len) { + IF len == 2 + RETURN (src[15:0] > src[31:16] ? src[15:0] : src[31:16]) + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*16 + src[i+15:i] := (src[i+15:i] > src[i+16*len+15:i+16*len] ? src[i+15:i] : src[i+16*len+15:i+16*len]) + ENDFOR + RETURN REDUCE_MAX(src[16*len-1:0], len) +} +tmp := a +FOR j := 0 to 15 + i := j*16 + IF k[j] + tmp[i+15:i] := a[i+15:i] + ELSE + tmp[i+15:i] := Int16(-0x8000) + FI +ENDFOR +dst[15:0] := REDUCE_MAX(tmp, 16) + + AVX512BW + AVX512VL +
immintrin.h
+ Special Math Functions +
+ + + + Reduce the packed signed 8-bit integers in "a" by maximum. Returns the maximum of all active elements in "a". + +DEFINE REDUCE_MAX(src, len) { + IF len == 2 + RETURN (src[7:0] > src[15:8] ? src[7:0] : src[15:8]) + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*8 + src[i+7:i] := (src[i+7:i] > src[i+8*len+7:i+8*len] ? src[i+7:i] : src[i+8*len+7:i+8*len]) + ENDFOR + RETURN REDUCE_MAX(src[8*len-1:0], len) +} +dst[7:0] := REDUCE_MAX(a, 16) + + AVX512BW + AVX512VL +
immintrin.h
+ Special Math Functions +
+ + + + + Reduce the packed signed 8-bit integers in "a" by maximum using mask "k". Returns the maximum of all active elements in "a". + +DEFINE REDUCE_MAX(src, len) { + IF len == 2 + RETURN (src[7:0] > src[15:8] ? src[7:0] : src[15:8]) + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*8 + src[i+7:i] := (src[i+7:i] > src[i+8*len+7:i+8*len] ? src[i+7:i] : src[i+8*len+7:i+8*len]) + ENDFOR + RETURN REDUCE_MAX(src[8*len-1:0], len) +} +tmp := a +FOR j := 0 to 15 + i := j*8 + IF k[j] + tmp[i+7:i] := a[i+7:i] + ELSE + tmp[i+7:i] := Int8(-0x80) + FI +ENDFOR +dst[7:0] := REDUCE_MAX(tmp, 16) + + AVX512BW + AVX512VL +
immintrin.h
+ Special Math Functions +
+ + + + Reduce the packed signed 8-bit integers in "a" by maximum. Returns the maximum of all active elements in "a". + +DEFINE REDUCE_MAX(src, len) { + IF len == 2 + RETURN (src[7:0] > src[15:8] ? src[7:0] : src[15:8]) + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*8 + src[i+7:i] := (src[i+7:i] > src[i+8*len+7:i+8*len] ? src[i+7:i] : src[i+8*len+7:i+8*len]) + ENDFOR + RETURN REDUCE_MAX(src[8*len-1:0], len) +} +dst[7:0] := REDUCE_MAX(a, 32) + + AVX512BW + AVX512VL +
immintrin.h
+ Special Math Functions +
+ + + + + Reduce the packed signed 8-bit integers in "a" by maximum using mask "k". Returns the maximum of all active elements in "a". + +DEFINE REDUCE_MAX(src, len) { + IF len == 2 + RETURN (src[7:0] > src[15:8] ? src[7:0] : src[15:8]) + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*8 + src[i+7:i] := (src[i+7:i] > src[i+8*len+7:i+8*len] ? src[i+7:i] : src[i+8*len+7:i+8*len]) + ENDFOR + RETURN REDUCE_MAX(src[8*len-1:0], len) +} +tmp := a +FOR j := 0 to 31 + i := j*8 + IF k[j] + tmp[i+7:i] := a[i+7:i] + ELSE + tmp[i+7:i] := Int8(-0x80) + FI +ENDFOR +dst[7:0] := REDUCE_MAX(tmp, 32) + + AVX512BW + AVX512VL +
immintrin.h
+ Special Math Functions +
+ + + + Reduce the packed unsigned 16-bit integers in "a" by maximum. Returns the maximum of all active elements in "a". + +DEFINE REDUCE_MAX(src, len) { + IF len == 2 + RETURN (src[15:0] > src[31:16] ? src[15:0] : src[31:16]) + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*16 + src[i+15:i] := (src[i+15:i] > src[i+16*len+15:i+16*len] ? src[i+15:i] : src[i+16*len+15:i+16*len]) + ENDFOR + RETURN REDUCE_MAX(src[16*len-1:0], len) +} +dst[15:0] := REDUCE_MAX(a, 8) + + AVX512BW + AVX512VL +
immintrin.h
+ Special Math Functions +
+ + + + + Reduce the packed unsigned 16-bit integers in "a" by maximum using mask "k". Returns the maximum of all active elements in "a". + +DEFINE REDUCE_MAX(src, len) { + IF len == 2 + RETURN (src[15:0] > src[31:16] ? src[15:0] : src[31:16]) + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*16 + src[i+15:i] := (src[i+15:i] > src[i+16*len+15:i+16*len] ? src[i+15:i] : src[i+16*len+15:i+16*len]) + ENDFOR + RETURN REDUCE_MAX(src[16*len-1:0], len) +} +tmp := a +FOR j := 0 to 7 + i := j*16 + IF k[j] + tmp[i+15:i] := a[i+15:i] + ELSE + tmp[i+15:i] := 0 + FI +ENDFOR +dst[15:0] := REDUCE_MAX(tmp, 8) + + AVX512BW + AVX512VL +
immintrin.h
+ Special Math Functions +
+ + + + Reduce the packed unsigned 16-bit integers in "a" by maximum. Returns the maximum of all active elements in "a". + +DEFINE REDUCE_MAX(src, len) { + IF len == 2 + RETURN (src[15:0] > src[31:16] ? src[15:0] : src[31:16]) + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*16 + src[i+15:i] := (src[i+15:i] > src[i+16*len+15:i+16*len] ? src[i+15:i] : src[i+16*len+15:i+16*len]) + ENDFOR + RETURN REDUCE_MAX(src[16*len-1:0], len) +} +dst[15:0] := REDUCE_MAX(a, 16) + + AVX512BW + AVX512VL +
immintrin.h
+ Special Math Functions +
+ + + + + Reduce the packed unsigned 16-bit integers in "a" by maximum using mask "k". Returns the maximum of all active elements in "a". + +DEFINE REDUCE_MAX(src, len) { + IF len == 2 + RETURN (src[15:0] > src[31:16] ? src[15:0] : src[31:16]) + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*16 + src[i+15:i] := (src[i+15:i] > src[i+16*len+15:i+16*len] ? src[i+15:i] : src[i+16*len+15:i+16*len]) + ENDFOR + RETURN REDUCE_MAX(src[16*len-1:0], len) +} +tmp := a +FOR j := 0 to 15 + i := j*16 + IF k[j] + tmp[i+15:i] := a[i+15:i] + ELSE + tmp[i+15:i] := 0 + FI +ENDFOR +dst[15:0] := REDUCE_MAX(tmp, 16) + + AVX512BW + AVX512VL +
immintrin.h
+ Special Math Functions +
+ + + + Reduce the packed unsigned 8-bit integers in "a" by maximum. Returns the maximum of all active elements in "a". + +DEFINE REDUCE_MAX(src, len) { + IF len == 2 + RETURN (src[7:0] > src[15:8] ? src[7:0] : src[15:8]) + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*8 + src[i+7:i] := (src[i+7:i] > src[i+8*len+7:i+8*len] ? src[i+7:i] : src[i+8*len+7:i+8*len]) + ENDFOR + RETURN REDUCE_MAX(src[8*len-1:0], len) +} +dst[7:0] := REDUCE_MAX(a, 16) + + AVX512BW + AVX512VL +
immintrin.h
+ Special Math Functions +
+ + + + + Reduce the packed unsigned 8-bit integers in "a" by maximum using mask "k". Returns the maximum of all active elements in "a". + +DEFINE REDUCE_MAX(src, len) { + IF len == 2 + RETURN (src[7:0] > src[15:8] ? src[7:0] : src[15:8]) + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*8 + src[i+7:i] := (src[i+7:i] > src[i+8*len+7:i+8*len] ? src[i+7:i] : src[i+8*len+7:i+8*len]) + ENDFOR + RETURN REDUCE_MAX(src[8*len-1:0], len) +} +tmp := a +FOR j := 0 to 15 + i := j*8 + IF k[j] + tmp[i+7:i] := a[i+7:i] + ELSE + tmp[i+7:i] := 0 + FI +ENDFOR +dst[7:0] := REDUCE_MAX(tmp, 16) + + AVX512BW + AVX512VL +
immintrin.h
+ Special Math Functions +
+ + + + Reduce the packed unsigned 8-bit integers in "a" by maximum. Returns the maximum of all active elements in "a". + +DEFINE REDUCE_MAX(src, len) { + IF len == 2 + RETURN (src[7:0] > src[15:8] ? src[7:0] : src[15:8]) + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*8 + src[i+7:i] := (src[i+7:i] > src[i+8*len+7:i+8*len] ? src[i+7:i] : src[i+8*len+7:i+8*len]) + ENDFOR + RETURN REDUCE_MAX(src[8*len-1:0], len) +} +dst[7:0] := REDUCE_MAX(a, 32) + + AVX512BW + AVX512VL +
immintrin.h
+ Special Math Functions +
+ + + + + Reduce the packed unsigned 8-bit integers in "a" by maximum using mask "k". Returns the maximum of all active elements in "a". + +DEFINE REDUCE_MAX(src, len) { + IF len == 2 + RETURN (src[7:0] > src[15:8] ? src[7:0] : src[15:8]) + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*8 + src[i+7:i] := (src[i+7:i] > src[i+8*len+7:i+8*len] ? src[i+7:i] : src[i+8*len+7:i+8*len]) + ENDFOR + RETURN REDUCE_MAX(src[8*len-1:0], len) +} +tmp := a +FOR j := 0 to 31 + i := j*8 + IF k[j] + tmp[i+7:i] := a[i+7:i] + ELSE + tmp[i+7:i] := 0 + FI +ENDFOR +dst[7:0] := REDUCE_MAX(tmp, 32) + + AVX512BW + AVX512VL +
immintrin.h
+ Special Math Functions +
+ + + + Reduce the packed signed 16-bit integers in "a" by minimum. Returns the minimum of all active elements in "a". + +DEFINE REDUCE_MIN(src, len) { + IF len == 2 + RETURN (src[15:0] < src[31:16] ? src[15:0] : src[31:16]) + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*16 + src[i+15:i] := (src[i+15:i] < src[i+16*len+15:i+16*len] ? src[i+15:i] : src[i+16*len+15:i+16*len]) + ENDFOR + RETURN REDUCE_MIN(src[16*len-1:0], len) +} +dst[15:0] := REDUCE_MIN(a, 8) + + AVX512BW + AVX512VL +
immintrin.h
+ Special Math Functions +
+ + + + + Reduce the packed signed 16-bit integers in "a" by minimum using mask "k". Returns the minimum of all active elements in "a". + +DEFINE REDUCE_MIN(src, len) { + IF len == 2 + RETURN (src[15:0] < src[31:16] ? src[15:0] : src[31:16]) + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*16 + src[i+15:i] := (src[i+15:i] < src[i+16*len+15:i+16*len] ? src[i+15:i] : src[i+16*len+15:i+16*len]) + ENDFOR + RETURN REDUCE_MIN(src[16*len-1:0], len) +} +tmp := a +FOR j := 0 to 7 + i := j*16 + IF k[j] + tmp[i+15:i] := a[i+15:i] + ELSE + tmp[i+15:i] := Int16(0x7FFF) + FI +ENDFOR +dst[15:0] := REDUCE_MIN(tmp, 8) + + AVX512BW + AVX512VL +
immintrin.h
+ Special Math Functions +
+ + + + Reduce the packed signed 16-bit integers in "a" by minimum. Returns the minimum of all active elements in "a". + +DEFINE REDUCE_MIN(src, len) { + IF len == 2 + RETURN (src[15:0] < src[31:16] ? src[15:0] : src[31:16]) + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*16 + src[i+15:i] := (src[i+15:i] < src[i+16*len+15:i+16*len] ? src[i+15:i] : src[i+16*len+15:i+16*len]) + ENDFOR + RETURN REDUCE_MIN(src[16*len-1:0], len) +} +dst[15:0] := REDUCE_MIN(a, 16) + + AVX512BW + AVX512VL +
immintrin.h
+ Special Math Functions +
+ + + + + Reduce the packed signed 16-bit integers in "a" by minimum using mask "k". Returns the minimum of all active elements in "a". + +DEFINE REDUCE_MIN(src, len) { + IF len == 2 + RETURN (src[15:0] < src[31:16] ? src[15:0] : src[31:16]) + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*16 + src[i+15:i] := (src[i+15:i] < src[i+16*len+15:i+16*len] ? src[i+15:i] : src[i+16*len+15:i+16*len]) + ENDFOR + RETURN REDUCE_MIN(src[16*len-1:0], len) +} +tmp := a +FOR j := 0 to 15 + i := j*16 + IF k[j] + tmp[i+15:i] := a[i+15:i] + ELSE + tmp[i+15:i] := Int16(0x7FFF) + FI +ENDFOR +dst[15:0] := REDUCE_MIN(tmp, 16) + + AVX512BW + AVX512VL +
immintrin.h
+ Special Math Functions +
+ + + + Reduce the packed signed 8-bit integers in "a" by minimum. Returns the minimum of all active elements in "a". + +DEFINE REDUCE_MIN(src, len) { + IF len == 2 + RETURN (src[7:0] < src[15:8] ? src[7:0] : src[15:8]) + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*8 + src[i+7:i] := (src[i+7:i] < src[i+8*len+7:i+8*len] ? src[i+7:i] : src[i+8*len+7:i+8*len]) + ENDFOR + RETURN REDUCE_MIN(src[8*len-1:0], len) +} +dst[7:0] := REDUCE_MIN(a, 16) + + AVX512BW + AVX512VL +
immintrin.h
+ Special Math Functions +
+ + + + + Reduce the packed signed 8-bit integers in "a" by minimum using mask "k". Returns the minimum of all active elements in "a". + +DEFINE REDUCE_MIN(src, len) { + IF len == 2 + RETURN (src[7:0] < src[15:8] ? src[7:0] : src[15:8]) + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*8 + src[i+7:i] := (src[i+7:i] < src[i+8*len+7:i+8*len] ? src[i+7:i] : src[i+8*len+7:i+8*len]) + ENDFOR + RETURN REDUCE_MIN(src[8*len-1:0], len) +} +tmp := a +FOR j := 0 to 15 + i := j*8 + IF k[j] + tmp[i+7:i] := a[i+7:i] + ELSE + tmp[i+7:i] := Int8(0x7F) + FI +ENDFOR +dst[7:0] := REDUCE_MIN(tmp, 16) + + AVX512BW + AVX512VL +
immintrin.h
+ Special Math Functions +
+ + + + Reduce the packed signed 8-bit integers in "a" by minimum. Returns the minimum of all active elements in "a". + +DEFINE REDUCE_MIN(src, len) { + IF len == 2 + RETURN (src[7:0] < src[15:8] ? src[7:0] : src[15:8]) + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*8 + src[i+7:i] := (src[i+7:i] < src[i+8*len+7:i+8*len] ? src[i+7:i] : src[i+8*len+7:i+8*len]) + ENDFOR + RETURN REDUCE_MIN(src[8*len-1:0], len) +} +dst[7:0] := REDUCE_MIN(a, 32) + + AVX512BW + AVX512VL +
immintrin.h
+ Special Math Functions +
+ + + + + Reduce the packed signed 8-bit integers in "a" by minimum using mask "k". Returns the minimum of all active elements in "a". + +DEFINE REDUCE_MIN(src, len) { + IF len == 2 + RETURN (src[7:0] < src[15:8] ? src[7:0] : src[15:8]) + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*8 + src[i+7:i] := (src[i+7:i] < src[i+8*len+7:i+8*len] ? src[i+7:i] : src[i+8*len+7:i+8*len]) + ENDFOR + RETURN REDUCE_MIN(src[8*len-1:0], len) +} +tmp := a +FOR j := 0 to 31 + i := j*8 + IF k[j] + tmp[i+7:i] := a[i+7:i] + ELSE + tmp[i+7:i] := Int8(0x7F) + FI +ENDFOR +dst[7:0] := REDUCE_MIN(tmp, 32) + + AVX512BW + AVX512VL +
immintrin.h
+ Special Math Functions +
+ + + + Reduce the packed unsigned 16-bit integers in "a" by minimum. Returns the minimum of all active elements in "a". + +DEFINE REDUCE_MIN(src, len) { + IF len == 2 + RETURN (src[15:0] < src[31:16] ? src[15:0] : src[31:16]) + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*16 + src[i+15:i] := (src[i+15:i] < src[i+16*len+15:i+16*len] ? src[i+15:i] : src[i+16*len+15:i+16*len]) + ENDFOR + RETURN REDUCE_MIN(src[16*len-1:0], len) +} +dst[15:0] := REDUCE_MIN(a, 8) + + AVX512BW + AVX512VL +
immintrin.h
+ Special Math Functions +
+ + + + + Reduce the packed unsigned 16-bit integers in "a" by minimum using mask "k". Returns the minimum of all active elements in "a". + +DEFINE REDUCE_MIN(src, len) { + IF len == 2 + RETURN (src[15:0] < src[31:16] ? src[15:0] : src[31:16]) + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*16 + src[i+15:i] := (src[i+15:i] < src[i+16*len+15:i+16*len] ? src[i+15:i] : src[i+16*len+15:i+16*len]) + ENDFOR + RETURN REDUCE_MIN(src[16*len-1:0], len) +} +tmp := a +FOR j := 0 to 7 + i := j*16 + IF k[j] + tmp[i+15:i] := a[i+15:i] + ELSE + tmp[i+15:i] := 0xFFFF + FI +ENDFOR +dst[15:0] := REDUCE_MIN(tmp, 8) + + AVX512BW + AVX512VL +
immintrin.h
+ Special Math Functions +
+ + + + Reduce the packed unsigned 16-bit integers in "a" by minimum. Returns the minimum of all active elements in "a". + +DEFINE REDUCE_MIN(src, len) { + IF len == 2 + RETURN (src[15:0] < src[31:16] ? src[15:0] : src[31:16]) + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*16 + src[i+15:i] := (src[i+15:i] < src[i+16*len+15:i+16*len] ? src[i+15:i] : src[i+16*len+15:i+16*len]) + ENDFOR + RETURN REDUCE_MIN(src[16*len-1:0], len) +} +dst[15:0] := REDUCE_MIN(a, 16) + + AVX512BW + AVX512VL +
immintrin.h
+ Special Math Functions +
+ + + + + Reduce the packed unsigned 16-bit integers in "a" by minimum using mask "k". Returns the minimum of all active elements in "a". + +DEFINE REDUCE_MIN(src, len) { + IF len == 2 + RETURN (src[15:0] < src[31:16] ? src[15:0] : src[31:16]) + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*16 + src[i+15:i] := (src[i+15:i] < src[i+16*len+15:i+16*len] ? src[i+15:i] : src[i+16*len+15:i+16*len]) + ENDFOR + RETURN REDUCE_MIN(src[16*len-1:0], len) +} +tmp := a +FOR j := 0 to 15 + i := j*16 + IF k[j] + tmp[i+15:i] := a[i+15:i] + ELSE + tmp[i+15:i] := 0xFFFF + FI +ENDFOR +dst[15:0] := REDUCE_MIN(tmp, 16) + + AVX512BW + AVX512VL +
immintrin.h
+ Special Math Functions +
+ + + + Reduce the packed unsigned 8-bit integers in "a" by minimum. Returns the minimum of all active elements in "a". + +DEFINE REDUCE_MIN(src, len) { + IF len == 2 + RETURN (src[7:0] < src[15:8] ? src[7:0] : src[15:8]) + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*8 + src[i+7:i] := (src[i+7:i] < src[i+8*len+7:i+8*len] ? src[i+7:i] : src[i+8*len+7:i+8*len]) + ENDFOR + RETURN REDUCE_MIN(src[8*len-1:0], len) +} +dst[7:0] := REDUCE_MIN(a, 16) + + AVX512BW + AVX512VL +
immintrin.h
+ Special Math Functions +
+ + + + + Reduce the packed unsigned 8-bit integers in "a" by minimum using mask "k". Returns the minimum of all active elements in "a". + +DEFINE REDUCE_MIN(src, len) { + IF len == 2 + RETURN (src[7:0] < src[15:8] ? src[7:0] : src[15:8]) + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*8 + src[i+7:i] := (src[i+7:i] < src[i+8*len+7:i+8*len] ? src[i+7:i] : src[i+8*len+7:i+8*len]) + ENDFOR + RETURN REDUCE_MIN(src[8*len-1:0], len) +} +tmp := a +FOR j := 0 to 15 + i := j*8 + IF k[j] + tmp[i+7:i] := a[i+7:i] + ELSE + tmp[i+7:i] := 0xFF + FI +ENDFOR +dst[7:0] := REDUCE_MIN(tmp, 16) + + AVX512BW + AVX512VL +
immintrin.h
+ Special Math Functions +
+ + + + Reduce the packed unsigned 8-bit integers in "a" by minimum. Returns the minimum of all active elements in "a". + +DEFINE REDUCE_MIN(src, len) { + IF len == 2 + RETURN (src[7:0] < src[15:8] ? src[7:0] : src[15:8]) + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*8 + src[i+7:i] := (src[i+7:i] < src[i+8*len+7:i+8*len] ? src[i+7:i] : src[i+8*len+7:i+8*len]) + ENDFOR + RETURN REDUCE_MIN(src[8*len-1:0], len) +} +dst[7:0] := REDUCE_MIN(a, 32) + + AVX512BW + AVX512VL +
immintrin.h
+ Special Math Functions +
+ + + + + Reduce the packed unsigned 8-bit integers in "a" by minimum using mask "k". Returns the minimum of all active elements in "a". + +DEFINE REDUCE_MIN(src, len) { + IF len == 2 + RETURN (src[7:0] < src[15:8] ? src[7:0] : src[15:8]) + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*8 + src[i+7:i] := (src[i+7:i] < src[i+8*len+7:i+8*len] ? src[i+7:i] : src[i+8*len+7:i+8*len]) + ENDFOR + RETURN REDUCE_MIN(src[8*len-1:0], len) +} +tmp := a +FOR j := 0 to 15 + i := j*8 + IF k[j] + tmp[i+7:i] := a[i+7:i] + ELSE + tmp[i+7:i] := 0xFF + FI +ENDFOR +dst[7:0] := REDUCE_MIN(tmp, 16) + + AVX512BW + AVX512VL +
immintrin.h
+ Special Math Functions +
+ + + + + + Unpack and interleave 32 bits from masks "a" and "b", and store the 64-bit result in "dst". + +dst[31:0] := b[31:0] +dst[63:32] := a[31:0] +dst[MAX:64] := 0 + + + AVX512BW +
immintrin.h
+ Miscellaneous +
+ + + + + Unpack and interleave 16 bits from masks "a" and "b", and store the 32-bit result in "dst". + +dst[15:0] := b[15:0] +dst[31:16] := a[15:0] +dst[MAX:32] := 0 + + + AVX512BW +
immintrin.h
+ Miscellaneous +
+ + + + + + Compute the sum of absolute differences (SADs) of quadruplets of unsigned 8-bit integers in "a" compared to those in "b", and store the 16-bit results in "dst". + Four SADs are performed on four 8-bit quadruplets for each 64-bit lane. The first two SADs use the lower 8-bit quadruplet of the lane from "a", and the last two SADs use the uppper 8-bit quadruplet of the lane from "a". Quadruplets from "b" are selected from within 128-bit lanes according to the control in "imm8", and each SAD in each 64-bit lane uses the selected quadruplet at 8-bit offsets. + +FOR i := 0 to 3 + tmp.m128[i].dword[0] := b.m128[i].dword[ imm8[1:0] ] + tmp.m128[i].dword[1] := b.m128[i].dword[ imm8[3:2] ] + tmp.m128[i].dword[2] := b.m128[i].dword[ imm8[5:4] ] + tmp.m128[i].dword[3] := b.m128[i].dword[ imm8[7:6] ] +ENDFOR +FOR j := 0 to 7 + i := j*64 + dst[i+15:i] := ABS(a[i+7:i] - tmp[i+7:i]) + ABS(a[i+15:i+8] - tmp[i+15:i+8]) +\ + ABS(a[i+23:i+16] - tmp[i+23:i+16]) + ABS(a[i+31:i+24] - tmp[i+31:i+24]) + + dst[i+31:i+16] := ABS(a[i+7:i] - tmp[i+15:i+8]) + ABS(a[i+15:i+8] - tmp[i+23:i+16]) +\ + ABS(a[i+23:i+16] - tmp[i+31:i+24]) + ABS(a[i+31:i+24] - tmp[i+39:i+32]) + + dst[i+47:i+32] := ABS(a[i+39:i+32] - tmp[i+23:i+16]) + ABS(a[i+47:i+40] - tmp[i+31:i+24]) +\ + ABS(a[i+55:i+48] - tmp[i+39:i+32]) + ABS(a[i+63:i+56] - tmp[i+47:i+40]) + + dst[i+63:i+48] := ABS(a[i+39:i+32] - tmp[i+31:i+24]) + ABS(a[i+47:i+40] - tmp[i+39:i+32]) +\ + ABS(a[i+55:i+48] - tmp[i+47:i+40]) + ABS(a[i+63:i+56] - tmp[i+55:i+48]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Miscellaneous +
+ + + + + + + + Compute the sum of absolute differences (SADs) of quadruplets of unsigned 8-bit integers in "a" compared to those in "b", and store the 16-bit results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + Four SADs are performed on four 8-bit quadruplets for each 64-bit lane. The first two SADs use the lower 8-bit quadruplet of the lane from "a", and the last two SADs use the uppper 8-bit quadruplet of the lane from "a". Quadruplets from "b" are selected from within 128-bit lanes according to the control in "imm8", and each SAD in each 64-bit lane uses the selected quadruplet at 8-bit offsets. + +FOR i := 0 to 3 + tmp.m128[i].dword[0] := b.m128[i].dword[ imm8[1:0] ] + tmp.m128[i].dword[1] := b.m128[i].dword[ imm8[3:2] ] + tmp.m128[i].dword[2] := b.m128[i].dword[ imm8[5:4] ] + tmp.m128[i].dword[3] := b.m128[i].dword[ imm8[7:6] ] +ENDFOR +FOR j := 0 to 7 + i := j*64 + tmp_dst[i+15:i] := ABS(a[i+7:i] - tmp[i+7:i]) + ABS(a[i+15:i+8] - tmp[i+15:i+8]) +\ + ABS(a[i+23:i+16] - tmp[i+23:i+16]) + ABS(a[i+31:i+24] - tmp[i+31:i+24]) + + tmp_dst[i+31:i+16] := ABS(a[i+7:i] - tmp[i+15:i+8]) + ABS(a[i+15:i+8] - tmp[i+23:i+16]) +\ + ABS(a[i+23:i+16] - tmp[i+31:i+24]) + ABS(a[i+31:i+24] - tmp[i+39:i+32]) + + tmp_dst[i+47:i+32] := ABS(a[i+39:i+32] - tmp[i+23:i+16]) + ABS(a[i+47:i+40] - tmp[i+31:i+24]) +\ + ABS(a[i+55:i+48] - tmp[i+39:i+32]) + ABS(a[i+63:i+56] - tmp[i+47:i+40]) + + tmp_dst[i+63:i+48] := ABS(a[i+39:i+32] - tmp[i+31:i+24]) + ABS(a[i+47:i+40] - tmp[i+39:i+32]) +\ + ABS(a[i+55:i+48] - tmp[i+47:i+40]) + ABS(a[i+63:i+56] - tmp[i+55:i+48]) +ENDFOR +FOR j := 0 to 31 + i := j*16 + IF k[j] + dst[i+15:i] := tmp_dst[i+15:i] + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Miscellaneous +
+ + + + + + + Compute the sum of absolute differences (SADs) of quadruplets of unsigned 8-bit integers in "a" compared to those in "b", and store the 16-bit results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + Four SADs are performed on four 8-bit quadruplets for each 64-bit lane. The first two SADs use the lower 8-bit quadruplet of the lane from "a", and the last two SADs use the uppper 8-bit quadruplet of the lane from "a". Quadruplets from "b" are selected from within 128-bit lanes according to the control in "imm8", and each SAD in each 64-bit lane uses the selected quadruplet at 8-bit offsets. + +FOR i := 0 to 3 + tmp.m128[i].dword[0] := b.m128[i].dword[ imm8[1:0] ] + tmp.m128[i].dword[1] := b.m128[i].dword[ imm8[3:2] ] + tmp.m128[i].dword[2] := b.m128[i].dword[ imm8[5:4] ] + tmp.m128[i].dword[3] := b.m128[i].dword[ imm8[7:6] ] +ENDFOR +FOR j := 0 to 7 + i := j*64 + tmp_dst[i+15:i] := ABS(a[i+7:i] - tmp[i+7:i]) + ABS(a[i+15:i+8] - tmp[i+15:i+8]) +\ + ABS(a[i+23:i+16] - tmp[i+23:i+16]) + ABS(a[i+31:i+24] - tmp[i+31:i+24]) + + tmp_dst[i+31:i+16] := ABS(a[i+7:i] - tmp[i+15:i+8]) + ABS(a[i+15:i+8] - tmp[i+23:i+16]) +\ + ABS(a[i+23:i+16] - tmp[i+31:i+24]) + ABS(a[i+31:i+24] - tmp[i+39:i+32]) + + tmp_dst[i+47:i+32] := ABS(a[i+39:i+32] - tmp[i+23:i+16]) + ABS(a[i+47:i+40] - tmp[i+31:i+24]) +\ + ABS(a[i+55:i+48] - tmp[i+39:i+32]) + ABS(a[i+63:i+56] - tmp[i+47:i+40]) + + tmp_dst[i+63:i+48] := ABS(a[i+39:i+32] - tmp[i+31:i+24]) + ABS(a[i+47:i+40] - tmp[i+39:i+32]) +\ + ABS(a[i+55:i+48] - tmp[i+47:i+40]) + ABS(a[i+63:i+56] - tmp[i+55:i+48]) +ENDFOR +FOR j := 0 to 31 + i := j*16 + IF k[j] + dst[i+15:i] := tmp_dst[i+15:i] + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Miscellaneous +
+ + + + + + Concatenate pairs of 16-byte blocks in "a" and "b" into a 32-byte temporary result, shift the result right by "imm8" bytes, and store the low 16 bytes in "dst". + +FOR j := 0 to 3 + i := j*128 + tmp[255:0] := ((a[i+127:i] << 128)[255:0] OR b[i+127:i]) >> (imm8*8) + dst[i+127:i] := tmp[127:0] +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Miscellaneous +
+ + + + + + + + Concatenate pairs of 16-byte blocks in "a" and "b" into a 32-byte temporary result, shift the result right by "imm8" bytes, and store the low 16 bytes in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*128 + tmp[255:0] := ((a[i+127:i] << 128)[255:0] OR b[i+127:i]) >> (imm8*8) + tmp_dst[i+127:i] := tmp[127:0] +ENDFOR +FOR j := 0 to 63 + i := j*8 + IF k[j] + dst[i+7:i] := tmp_dst[i+7:i] + ELSE + dst[i+7:i] := src[i+7:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Miscellaneous +
+ + + + + + + Concatenate pairs of 16-byte blocks in "a" and "b" into a 32-byte temporary result, shift the result right by "imm8" bytes, and store the low 16 bytes in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*128 + tmp[255:0] := ((a[i+127:i] << 128)[255:0] OR b[i+127:i]) >> (imm8*8) + tmp_dst[i+127:i] := tmp[127:0] +ENDFOR +FOR j := 0 to 63 + i := j*8 + IF k[j] + dst[i+7:i] := tmp_dst[i+7:i] + ELSE + dst[i+7:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Miscellaneous +
+ + + + + + Blend packed 8-bit integers from "a" and "b" using control mask "k", and store the results in "dst". + +FOR j := 0 to 63 + i := j*8 + IF k[j] + dst[i+7:i] := b[i+7:i] + ELSE + dst[i+7:i] := a[i+7:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Miscellaneous +
+ + + + + + Blend packed 16-bit integers from "a" and "b" using control mask "k", and store the results in "dst". + +FOR j := 0 to 31 + i := j*16 + IF k[j] + dst[i+15:i] := b[i+15:i] + ELSE + dst[i+15:i] := a[i+15:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Miscellaneous +
+ + + + Broadcast the low packed 8-bit integer from "a" to all elements of "dst". + +FOR j := 0 to 63 + i := j*8 + dst[i+7:i] := a[7:0] +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Miscellaneous +
+ + + + + + Broadcast the low packed 8-bit integer from "a" to all elements of "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 63 + i := j*8 + IF k[j] + dst[i+7:i] := a[7:0] + ELSE + dst[i+7:i] := src[i+7:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Miscellaneous +
+ + + + + Broadcast the low packed 8-bit integer from "a" to all elements of "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 63 + i := j*8 + IF k[j] + dst[i+7:i] := a[7:0] + ELSE + dst[i+7:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Miscellaneous +
+ + + + Broadcast the low packed 16-bit integer from "a" to all elements of "dst". + +FOR j := 0 to 31 + i := j*16 + dst[i+15:i] := a[15:0] +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Miscellaneous +
+ + + + + + Broadcast the low packed 16-bit integer from "a" to all elements of "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*16 + IF k[j] + dst[i+15:i] := a[15:0] + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Miscellaneous +
+ + + + + Broadcast the low packed 16-bit integer from "a" to all elements of "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*16 + IF k[j] + dst[i+15:i] := a[15:0] + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Miscellaneous +
+ + + + + + + Shuffle 16-bit integers in "a" and "b" across lanes using the corresponding selector and index in "idx", and store the results in "dst" using writemask "k" (elements are copied from "idx" when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*16 + IF k[j] + off := 16*idx[i+4:i] + dst[i+15:i] := idx[i+5] ? b[off+15:off] : a[off+15:off] + ELSE + dst[i+15:i] := idx[i+15:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Miscellaneous +
+ + + + + + + Shuffle 16-bit integers in "a" and "b" across lanes using the corresponding selector and index in "idx", and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*16 + IF k[j] + off := 16*idx[i+4:i] + dst[i+15:i] := idx[i+5] ? b[off+15:off] : a[off+15:off] + ELSE + dst[i+15:i] := a[i+15:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Miscellaneous +
+ + + + + + + Shuffle 16-bit integers in "a" and "b" across lanes using the corresponding selector and index in "idx", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*16 + IF k[j] + off := 16*idx[i+4:i] + dst[i+15:i] := idx[i+5] ? b[off+15:off] : a[off+15:off] + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + + AVX512BW +
immintrin.h
+ Miscellaneous +
+ + + + + + Shuffle 16-bit integers in "a" and "b" across lanes using the corresponding selector and index in "idx", and store the results in "dst". + +FOR j := 0 to 31 + i := j*16 + off := 16*idx[i+4:i] + dst[i+15:i] := idx[i+5] ? b[off+15:off] : a[off+15:off] +ENDFOR +dst[MAX:512] := 0 + + + + AVX512BW +
immintrin.h
+ Miscellaneous +
+ + + + + + + Shuffle 16-bit integers in "a" across lanes using the corresponding index in "idx", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*16 + id := idx[i+4:i]*16 + IF k[j] + dst[i+15:i] := a[id+15:id] + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Miscellaneous +
+ + + + + + Shuffle 16-bit integers in "a" across lanes using the corresponding index in "idx", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*16 + id := idx[i+4:i]*16 + IF k[j] + dst[i+15:i] := a[id+15:id] + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Miscellaneous +
+ + + + + Shuffle 16-bit integers in "a" across lanes using the corresponding index in "idx", and store the results in "dst". + +FOR j := 0 to 31 + i := j*16 + id := idx[i+4:i]*16 + dst[i+15:i] := a[id+15:id] +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Miscellaneous +
+ + + + Set each bit of mask register "k" based on the most significant bit of the corresponding packed 8-bit integer in "a". + +FOR j := 0 to 63 + i := j*8 + IF a[i+7] + k[j] := 1 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:64] := 0 + + + AVX512BW +
immintrin.h
+ Miscellaneous +
+ + + + Set each packed 8-bit integer in "dst" to all ones or all zeros based on the value of the corresponding bit in "k". + +FOR j := 0 to 63 + i := j*8 + IF k[j] + dst[i+7:i] := 0xFF + ELSE + dst[i+7:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Miscellaneous +
+ + + + Set each packed 16-bit integer in "dst" to all ones or all zeros based on the value of the corresponding bit in "k". + +FOR j := 0 to 31 + i := j*16 + IF k[j] + dst[i+15:i] := 0xFFFF + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Miscellaneous +
+ + + + Set each bit of mask register "k" based on the most significant bit of the corresponding packed 16-bit integer in "a". + +FOR j := 0 to 31 + i := j*16 + IF a[i+15] + k[j] := 1 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:32] := 0 + + + AVX512BW +
immintrin.h
+ Miscellaneous +
+ + + + + Compute the absolute differences of packed unsigned 8-bit integers in "a" and "b", then horizontally sum each consecutive 8 differences to produce eight unsigned 16-bit integers, and pack these unsigned 16-bit integers in the low 16 bits of 64-bit elements in "dst". + +FOR j := 0 to 63 + i := j*8 + tmp[i+7:i] := ABS(a[i+7:i] - b[i+7:i]) +ENDFOR +FOR j := 0 to 7 + i := j*64 + dst[i+15:i] := tmp[i+7:i] + tmp[i+15:i+8] + tmp[i+23:i+16] + tmp[i+31:i+24] + \ + tmp[i+39:i+32] + tmp[i+47:i+40] + tmp[i+55:i+48] + tmp[i+63:i+56] + dst[i+63:i+16] := 0 +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Miscellaneous +
+ + + + + + + Shuffle 8-bit integers in "a" within 128-bit lanes using the control in the corresponding 8-bit element of "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 63 + i := j*8 + IF k[j] + IF b[i+7] == 1 + dst[i+7:i] := 0 + ELSE + index[5:0] := b[i+3:i] + (j & 0x30) + dst[i+7:i] := a[index*8+7:index*8] + FI + ELSE + dst[i+7:i] := src[i+7:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Swizzle +
+ + + + + + Shuffle packed 8-bit integers in "a" according to shuffle control mask in the corresponding 8-bit element of "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 63 + i := j*8 + IF k[j] + IF b[i+7] == 1 + dst[i+7:i] := 0 + ELSE + index[5:0] := b[i+3:i] + (j & 0x30) + dst[i+7:i] := a[index*8+7:index*8] + FI + ELSE + dst[i+7:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Swizzle +
+ + + + + Shuffle packed 8-bit integers in "a" according to shuffle control mask in the corresponding 8-bit element of "b", and store the results in "dst". + +FOR j := 0 to 63 + i := j*8 + IF b[i+7] == 1 + dst[i+7:i] := 0 + ELSE + index[5:0] := b[i+3:i] + (j & 0x30) + dst[i+7:i] := a[index*8+7:index*8] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Swizzle +
+ + + + + + + Shuffle 16-bit integers in the high 64 bits of 128-bit lanes of "a" using the control in "imm8". Store the results in the high 64 bits of 128-bit lanes of "dst", with the low 64 bits of 128-bit lanes being copied from from "a" to "dst", using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +tmp_dst[63:0] := a[63:0] +tmp_dst[79:64] := (a >> (imm8[1:0] * 16))[79:64] +tmp_dst[95:80] := (a >> (imm8[3:2] * 16))[79:64] +tmp_dst[111:96] := (a >> (imm8[5:4] * 16))[79:64] +tmp_dst[127:112] := (a >> (imm8[7:6] * 16))[79:64] +tmp_dst[191:128] := a[191:128] +tmp_dst[207:192] := (a >> (imm8[1:0] * 16))[207:192] +tmp_dst[223:208] := (a >> (imm8[3:2] * 16))[207:192] +tmp_dst[239:224] := (a >> (imm8[5:4] * 16))[207:192] +tmp_dst[255:240] := (a >> (imm8[7:6] * 16))[207:192] +tmp_dst[319:256] := a[319:256] +tmp_dst[335:320] := (a >> (imm8[1:0] * 16))[335:320] +tmp_dst[351:336] := (a >> (imm8[3:2] * 16))[335:320] +tmp_dst[367:352] := (a >> (imm8[5:4] * 16))[335:320] +tmp_dst[383:368] := (a >> (imm8[7:6] * 16))[335:320] +tmp_dst[447:384] := a[447:384] +tmp_dst[463:448] := (a >> (imm8[1:0] * 16))[463:448] +tmp_dst[479:464] := (a >> (imm8[3:2] * 16))[463:448] +tmp_dst[495:480] := (a >> (imm8[5:4] * 16))[463:448] +tmp_dst[511:496] := (a >> (imm8[7:6] * 16))[463:448] +FOR j := 0 to 31 + i := j*16 + IF k[j] + dst[i+15:i] := tmp_dst[i+15:i] + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Miscellaneous +
+ + + + + + Shuffle 16-bit integers in the high 64 bits of 128-bit lanes of "a" using the control in "imm8". Store the results in the high 64 bits of 128-bit lanes of "dst", with the low 64 bits of 128-bit lanes being copied from from "a" to "dst", using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +tmp_dst[63:0] := a[63:0] +tmp_dst[79:64] := (a >> (imm8[1:0] * 16))[79:64] +tmp_dst[95:80] := (a >> (imm8[3:2] * 16))[79:64] +tmp_dst[111:96] := (a >> (imm8[5:4] * 16))[79:64] +tmp_dst[127:112] := (a >> (imm8[7:6] * 16))[79:64] +tmp_dst[191:128] := a[191:128] +tmp_dst[207:192] := (a >> (imm8[1:0] * 16))[207:192] +tmp_dst[223:208] := (a >> (imm8[3:2] * 16))[207:192] +tmp_dst[239:224] := (a >> (imm8[5:4] * 16))[207:192] +tmp_dst[255:240] := (a >> (imm8[7:6] * 16))[207:192] +tmp_dst[319:256] := a[319:256] +tmp_dst[335:320] := (a >> (imm8[1:0] * 16))[335:320] +tmp_dst[351:336] := (a >> (imm8[3:2] * 16))[335:320] +tmp_dst[367:352] := (a >> (imm8[5:4] * 16))[335:320] +tmp_dst[383:368] := (a >> (imm8[7:6] * 16))[335:320] +tmp_dst[447:384] := a[447:384] +tmp_dst[463:448] := (a >> (imm8[1:0] * 16))[463:448] +tmp_dst[479:464] := (a >> (imm8[3:2] * 16))[463:448] +tmp_dst[495:480] := (a >> (imm8[5:4] * 16))[463:448] +tmp_dst[511:496] := (a >> (imm8[7:6] * 16))[463:448] +FOR j := 0 to 31 + i := j*16 + IF k[j] + dst[i+15:i] := tmp_dst[i+15:i] + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Miscellaneous +
+ + + + + Shuffle 16-bit integers in the high 64 bits of 128-bit lanes of "a" using the control in "imm8". Store the results in the high 64 bits of 128-bit lanes of "dst", with the low 64 bits of 128-bit lanes being copied from from "a" to "dst". + +dst[63:0] := a[63:0] +dst[79:64] := (a >> (imm8[1:0] * 16))[79:64] +dst[95:80] := (a >> (imm8[3:2] * 16))[79:64] +dst[111:96] := (a >> (imm8[5:4] * 16))[79:64] +dst[127:112] := (a >> (imm8[7:6] * 16))[79:64] +dst[191:128] := a[191:128] +dst[207:192] := (a >> (imm8[1:0] * 16))[207:192] +dst[223:208] := (a >> (imm8[3:2] * 16))[207:192] +dst[239:224] := (a >> (imm8[5:4] * 16))[207:192] +dst[255:240] := (a >> (imm8[7:6] * 16))[207:192] +dst[319:256] := a[319:256] +dst[335:320] := (a >> (imm8[1:0] * 16))[335:320] +dst[351:336] := (a >> (imm8[3:2] * 16))[335:320] +dst[367:352] := (a >> (imm8[5:4] * 16))[335:320] +dst[383:368] := (a >> (imm8[7:6] * 16))[335:320] +dst[447:384] := a[447:384] +dst[463:448] := (a >> (imm8[1:0] * 16))[463:448] +dst[479:464] := (a >> (imm8[3:2] * 16))[463:448] +dst[495:480] := (a >> (imm8[5:4] * 16))[463:448] +dst[511:496] := (a >> (imm8[7:6] * 16))[463:448] +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Miscellaneous +
+ + + + + + + Shuffle 16-bit integers in the low 64 bits of 128-bit lanes of "a" using the control in "imm8". Store the results in the low 64 bits of 128-bit lanes of "dst", with the high 64 bits of 128-bit lanes being copied from from "a" to "dst", using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +tmp_dst[15:0] := (a >> (imm8[1:0] * 16))[15:0] +tmp_dst[31:16] := (a >> (imm8[3:2] * 16))[15:0] +tmp_dst[47:32] := (a >> (imm8[5:4] * 16))[15:0] +tmp_dst[63:48] := (a >> (imm8[7:6] * 16))[15:0] +tmp_dst[127:64] := a[127:64] +tmp_dst[143:128] := (a >> (imm8[1:0] * 16))[143:128] +tmp_dst[159:144] := (a >> (imm8[3:2] * 16))[143:128] +tmp_dst[175:160] := (a >> (imm8[5:4] * 16))[143:128] +tmp_dst[191:176] := (a >> (imm8[7:6] * 16))[143:128] +tmp_dst[255:192] := a[255:192] +tmp_dst[271:256] := (a >> (imm8[1:0] * 16))[271:256] +tmp_dst[287:272] := (a >> (imm8[3:2] * 16))[271:256] +tmp_dst[303:288] := (a >> (imm8[5:4] * 16))[271:256] +tmp_dst[319:304] := (a >> (imm8[7:6] * 16))[271:256] +tmp_dst[383:320] := a[383:320] +tmp_dst[399:384] := (a >> (imm8[1:0] * 16))[399:384] +tmp_dst[415:400] := (a >> (imm8[3:2] * 16))[399:384] +tmp_dst[431:416] := (a >> (imm8[5:4] * 16))[399:384] +tmp_dst[447:432] := (a >> (imm8[7:6] * 16))[399:384] +tmp_dst[511:448] := a[511:448] +FOR j := 0 to 31 + i := j*16 + IF k[j] + dst[i+15:i] := tmp_dst[i+15:i] + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Miscellaneous +
+ + + + + + Shuffle 16-bit integers in the low 64 bits of 128-bit lanes of "a" using the control in "imm8". Store the results in the low 64 bits of 128-bit lanes of "dst", with the high 64 bits of 128-bit lanes being copied from from "a" to "dst", using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +tmp_dst[15:0] := (a >> (imm8[1:0] * 16))[15:0] +tmp_dst[31:16] := (a >> (imm8[3:2] * 16))[15:0] +tmp_dst[47:32] := (a >> (imm8[5:4] * 16))[15:0] +tmp_dst[63:48] := (a >> (imm8[7:6] * 16))[15:0] +tmp_dst[127:64] := a[127:64] +tmp_dst[143:128] := (a >> (imm8[1:0] * 16))[143:128] +tmp_dst[159:144] := (a >> (imm8[3:2] * 16))[143:128] +tmp_dst[175:160] := (a >> (imm8[5:4] * 16))[143:128] +tmp_dst[191:176] := (a >> (imm8[7:6] * 16))[143:128] +tmp_dst[255:192] := a[255:192] +tmp_dst[271:256] := (a >> (imm8[1:0] * 16))[271:256] +tmp_dst[287:272] := (a >> (imm8[3:2] * 16))[271:256] +tmp_dst[303:288] := (a >> (imm8[5:4] * 16))[271:256] +tmp_dst[319:304] := (a >> (imm8[7:6] * 16))[271:256] +tmp_dst[383:320] := a[383:320] +tmp_dst[399:384] := (a >> (imm8[1:0] * 16))[399:384] +tmp_dst[415:400] := (a >> (imm8[3:2] * 16))[399:384] +tmp_dst[431:416] := (a >> (imm8[5:4] * 16))[399:384] +tmp_dst[447:432] := (a >> (imm8[7:6] * 16))[399:384] +tmp_dst[511:448] := a[511:448] +FOR j := 0 to 31 + i := j*16 + IF k[j] + dst[i+15:i] := tmp_dst[i+15:i] + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Miscellaneous +
+ + + + + Shuffle 16-bit integers in the low 64 bits of 128-bit lanes of "a" using the control in "imm8". Store the results in the low 64 bits of 128-bit lanes of "dst", with the high 64 bits of 128-bit lanes being copied from from "a" to "dst". + +dst[15:0] := (a >> (imm8[1:0] * 16))[15:0] +dst[31:16] := (a >> (imm8[3:2] * 16))[15:0] +dst[47:32] := (a >> (imm8[5:4] * 16))[15:0] +dst[63:48] := (a >> (imm8[7:6] * 16))[15:0] +dst[127:64] := a[127:64] +dst[143:128] := (a >> (imm8[1:0] * 16))[143:128] +dst[159:144] := (a >> (imm8[3:2] * 16))[143:128] +dst[175:160] := (a >> (imm8[5:4] * 16))[143:128] +dst[191:176] := (a >> (imm8[7:6] * 16))[143:128] +dst[255:192] := a[255:192] +dst[271:256] := (a >> (imm8[1:0] * 16))[271:256] +dst[287:272] := (a >> (imm8[3:2] * 16))[271:256] +dst[303:288] := (a >> (imm8[5:4] * 16))[271:256] +dst[319:304] := (a >> (imm8[7:6] * 16))[271:256] +dst[383:320] := a[383:320] +dst[399:384] := (a >> (imm8[1:0] * 16))[399:384] +dst[415:400] := (a >> (imm8[3:2] * 16))[399:384] +dst[431:416] := (a >> (imm8[5:4] * 16))[399:384] +dst[447:432] := (a >> (imm8[7:6] * 16))[399:384] +dst[511:448] := a[511:448] +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Miscellaneous +
+ + + + + + + Unpack and interleave 8-bit integers from the high half of each 128-bit lane in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +DEFINE INTERLEAVE_HIGH_BYTES(src1[127:0], src2[127:0]) { + dst[7:0] := src1[71:64] + dst[15:8] := src2[71:64] + dst[23:16] := src1[79:72] + dst[31:24] := src2[79:72] + dst[39:32] := src1[87:80] + dst[47:40] := src2[87:80] + dst[55:48] := src1[95:88] + dst[63:56] := src2[95:88] + dst[71:64] := src1[103:96] + dst[79:72] := src2[103:96] + dst[87:80] := src1[111:104] + dst[95:88] := src2[111:104] + dst[103:96] := src1[119:112] + dst[111:104] := src2[119:112] + dst[119:112] := src1[127:120] + dst[127:120] := src2[127:120] + RETURN dst[127:0] +} +tmp_dst[127:0] := INTERLEAVE_HIGH_BYTES(a[127:0], b[127:0]) +tmp_dst[255:128] := INTERLEAVE_HIGH_BYTES(a[255:128], b[255:128]) +tmp_dst[383:256] := INTERLEAVE_HIGH_BYTES(a[383:256], b[383:256]) +tmp_dst[511:384] := INTERLEAVE_HIGH_BYTES(a[511:384], b[511:384]) +FOR j := 0 to 63 + i := j*8 + IF k[j] + dst[i+7:i] := tmp_dst[i+7:i] + ELSE + dst[i+7:i] := src[i+7:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Miscellaneous +
+ + + + + + Unpack and interleave 8-bit integers from the high half of each 128-bit lane in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +DEFINE INTERLEAVE_HIGH_BYTES(src1[127:0], src2[127:0]) { + dst[7:0] := src1[71:64] + dst[15:8] := src2[71:64] + dst[23:16] := src1[79:72] + dst[31:24] := src2[79:72] + dst[39:32] := src1[87:80] + dst[47:40] := src2[87:80] + dst[55:48] := src1[95:88] + dst[63:56] := src2[95:88] + dst[71:64] := src1[103:96] + dst[79:72] := src2[103:96] + dst[87:80] := src1[111:104] + dst[95:88] := src2[111:104] + dst[103:96] := src1[119:112] + dst[111:104] := src2[119:112] + dst[119:112] := src1[127:120] + dst[127:120] := src2[127:120] + RETURN dst[127:0] +} +tmp_dst[127:0] := INTERLEAVE_HIGH_BYTES(a[127:0], b[127:0]) +tmp_dst[255:128] := INTERLEAVE_HIGH_BYTES(a[255:128], b[255:128]) +tmp_dst[383:256] := INTERLEAVE_HIGH_BYTES(a[383:256], b[383:256]) +tmp_dst[511:384] := INTERLEAVE_HIGH_BYTES(a[511:384], b[511:384]) +FOR j := 0 to 63 + i := j*8 + IF k[j] + dst[i+7:i] := tmp_dst[i+7:i] + ELSE + dst[i+7:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Miscellaneous +
+ + + + + Unpack and interleave 8-bit integers from the high half of each 128-bit lane in "a" and "b", and store the results in "dst". + +DEFINE INTERLEAVE_HIGH_BYTES(src1[127:0], src2[127:0]) { + dst[7:0] := src1[71:64] + dst[15:8] := src2[71:64] + dst[23:16] := src1[79:72] + dst[31:24] := src2[79:72] + dst[39:32] := src1[87:80] + dst[47:40] := src2[87:80] + dst[55:48] := src1[95:88] + dst[63:56] := src2[95:88] + dst[71:64] := src1[103:96] + dst[79:72] := src2[103:96] + dst[87:80] := src1[111:104] + dst[95:88] := src2[111:104] + dst[103:96] := src1[119:112] + dst[111:104] := src2[119:112] + dst[119:112] := src1[127:120] + dst[127:120] := src2[127:120] + RETURN dst[127:0] +} +dst[127:0] := INTERLEAVE_HIGH_BYTES(a[127:0], b[127:0]) +dst[255:128] := INTERLEAVE_HIGH_BYTES(a[255:128], b[255:128]) +dst[383:256] := INTERLEAVE_HIGH_BYTES(a[383:256], b[383:256]) +dst[511:384] := INTERLEAVE_HIGH_BYTES(a[511:384], b[511:384]) +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Miscellaneous +
+ + + + + + + Unpack and interleave 16-bit integers from the high half of each 128-bit lane in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +DEFINE INTERLEAVE_HIGH_WORDS(src1[127:0], src2[127:0]) { + dst[15:0] := src1[79:64] + dst[31:16] := src2[79:64] + dst[47:32] := src1[95:80] + dst[63:48] := src2[95:80] + dst[79:64] := src1[111:96] + dst[95:80] := src2[111:96] + dst[111:96] := src1[127:112] + dst[127:112] := src2[127:112] + RETURN dst[127:0] +} +tmp_dst[127:0] := INTERLEAVE_HIGH_WORDS(a[127:0], b[127:0]) +tmp_dst[255:128] := INTERLEAVE_HIGH_WORDS(a[255:128], b[255:128]) +tmp_dst[383:256] := INTERLEAVE_HIGH_WORDS(a[383:256], b[383:256]) +tmp_dst[511:384] := INTERLEAVE_HIGH_WORDS(a[511:384], b[511:384]) +FOR j := 0 to 31 + i := j*16 + IF k[j] + dst[i+15:i] := tmp_dst[i+15:i] + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Miscellaneous +
+ + + + + + Unpack and interleave 16-bit integers from the high half of each 128-bit lane in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +DEFINE INTERLEAVE_HIGH_WORDS(src1[127:0], src2[127:0]) { + dst[15:0] := src1[79:64] + dst[31:16] := src2[79:64] + dst[47:32] := src1[95:80] + dst[63:48] := src2[95:80] + dst[79:64] := src1[111:96] + dst[95:80] := src2[111:96] + dst[111:96] := src1[127:112] + dst[127:112] := src2[127:112] + RETURN dst[127:0] +} +tmp_dst[127:0] := INTERLEAVE_HIGH_WORDS(a[127:0], b[127:0]) +tmp_dst[255:128] := INTERLEAVE_HIGH_WORDS(a[255:128], b[255:128]) +tmp_dst[383:256] := INTERLEAVE_HIGH_WORDS(a[383:256], b[383:256]) +tmp_dst[511:384] := INTERLEAVE_HIGH_WORDS(a[511:384], b[511:384]) +FOR j := 0 to 31 + i := j*16 + IF k[j] + dst[i+15:i] := tmp_dst[i+15:i] + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Miscellaneous +
+ + + + + Unpack and interleave 16-bit integers from the high half of each 128-bit lane in "a" and "b", and store the results in "dst". + +DEFINE INTERLEAVE_HIGH_WORDS(src1[127:0], src2[127:0]) { + dst[15:0] := src1[79:64] + dst[31:16] := src2[79:64] + dst[47:32] := src1[95:80] + dst[63:48] := src2[95:80] + dst[79:64] := src1[111:96] + dst[95:80] := src2[111:96] + dst[111:96] := src1[127:112] + dst[127:112] := src2[127:112] + RETURN dst[127:0] +} +dst[127:0] := INTERLEAVE_HIGH_WORDS(a[127:0], b[127:0]) +dst[255:128] := INTERLEAVE_HIGH_WORDS(a[255:128], b[255:128]) +dst[383:256] := INTERLEAVE_HIGH_WORDS(a[383:256], b[383:256]) +dst[511:384] := INTERLEAVE_HIGH_WORDS(a[511:384], b[511:384]) +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Miscellaneous +
+ + + + + + + Unpack and interleave 8-bit integers from the low half of each 128-bit lane in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +DEFINE INTERLEAVE_BYTES(src1[127:0], src2[127:0]) { + dst[7:0] := src1[7:0] + dst[15:8] := src2[7:0] + dst[23:16] := src1[15:8] + dst[31:24] := src2[15:8] + dst[39:32] := src1[23:16] + dst[47:40] := src2[23:16] + dst[55:48] := src1[31:24] + dst[63:56] := src2[31:24] + dst[71:64] := src1[39:32] + dst[79:72] := src2[39:32] + dst[87:80] := src1[47:40] + dst[95:88] := src2[47:40] + dst[103:96] := src1[55:48] + dst[111:104] := src2[55:48] + dst[119:112] := src1[63:56] + dst[127:120] := src2[63:56] + RETURN dst[127:0] +} +tmp_dst[127:0] := INTERLEAVE_BYTES(a[127:0], b[127:0]) +tmp_dst[255:128] := INTERLEAVE_BYTES(a[255:128], b[255:128]) +tmp_dst[383:256] := INTERLEAVE_BYTES(a[383:256], b[383:256]) +tmp_dst[511:384] := INTERLEAVE_BYTES(a[511:384], b[511:384]) +FOR j := 0 to 63 + i := j*8 + IF k[j] + dst[i+7:i] := tmp_dst[i+7:i] + ELSE + dst[i+7:i] := src[i+7:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Miscellaneous +
+ + + + + + Unpack and interleave 8-bit integers from the low half of each 128-bit lane in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +DEFINE INTERLEAVE_BYTES(src1[127:0], src2[127:0]) { + dst[7:0] := src1[7:0] + dst[15:8] := src2[7:0] + dst[23:16] := src1[15:8] + dst[31:24] := src2[15:8] + dst[39:32] := src1[23:16] + dst[47:40] := src2[23:16] + dst[55:48] := src1[31:24] + dst[63:56] := src2[31:24] + dst[71:64] := src1[39:32] + dst[79:72] := src2[39:32] + dst[87:80] := src1[47:40] + dst[95:88] := src2[47:40] + dst[103:96] := src1[55:48] + dst[111:104] := src2[55:48] + dst[119:112] := src1[63:56] + dst[127:120] := src2[63:56] + RETURN dst[127:0] +} +tmp_dst[127:0] := INTERLEAVE_BYTES(a[127:0], b[127:0]) +tmp_dst[255:128] := INTERLEAVE_BYTES(a[255:128], b[255:128]) +tmp_dst[383:256] := INTERLEAVE_BYTES(a[383:256], b[383:256]) +tmp_dst[511:384] := INTERLEAVE_BYTES(a[511:384], b[511:384]) +FOR j := 0 to 63 + i := j*8 + IF k[j] + dst[i+7:i] := tmp_dst[i+7:i] + ELSE + dst[i+7:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Miscellaneous +
+ + + + + Unpack and interleave 8-bit integers from the low half of each 128-bit lane in "a" and "b", and store the results in "dst". + +DEFINE INTERLEAVE_BYTES(src1[127:0], src2[127:0]) { + dst[7:0] := src1[7:0] + dst[15:8] := src2[7:0] + dst[23:16] := src1[15:8] + dst[31:24] := src2[15:8] + dst[39:32] := src1[23:16] + dst[47:40] := src2[23:16] + dst[55:48] := src1[31:24] + dst[63:56] := src2[31:24] + dst[71:64] := src1[39:32] + dst[79:72] := src2[39:32] + dst[87:80] := src1[47:40] + dst[95:88] := src2[47:40] + dst[103:96] := src1[55:48] + dst[111:104] := src2[55:48] + dst[119:112] := src1[63:56] + dst[127:120] := src2[63:56] + RETURN dst[127:0] +} +dst[127:0] := INTERLEAVE_BYTES(a[127:0], b[127:0]) +dst[255:128] := INTERLEAVE_BYTES(a[255:128], b[255:128]) +dst[383:256] := INTERLEAVE_BYTES(a[383:256], b[383:256]) +dst[511:384] := INTERLEAVE_BYTES(a[511:384], b[511:384]) +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Miscellaneous +
+ + + + + + + Unpack and interleave 16-bit integers from the low half of each 128-bit lane in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +DEFINE INTERLEAVE_WORDS(src1[127:0], src2[127:0]) { + dst[15:0] := src1[15:0] + dst[31:16] := src2[15:0] + dst[47:32] := src1[31:16] + dst[63:48] := src2[31:16] + dst[79:64] := src1[47:32] + dst[95:80] := src2[47:32] + dst[111:96] := src1[63:48] + dst[127:112] := src2[63:48] + RETURN dst[127:0] +} +tmp_dst[127:0] := INTERLEAVE_WORDS(a[127:0], b[127:0]) +tmp_dst[255:128] := INTERLEAVE_WORDS(a[255:128], b[255:128]) +tmp_dst[383:256] := INTERLEAVE_WORDS(a[383:256], b[383:256]) +tmp_dst[511:384] := INTERLEAVE_WORDS(a[511:384], b[511:384]) +FOR j := 0 to 31 + i := j*16 + IF k[j] + dst[i+15:i] := tmp_dst[i+15:i] + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Miscellaneous +
+ + + + + + Unpack and interleave 16-bit integers from the low half of each 128-bit lane in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +DEFINE INTERLEAVE_WORDS(src1[127:0], src2[127:0]) { + dst[15:0] := src1[15:0] + dst[31:16] := src2[15:0] + dst[47:32] := src1[31:16] + dst[63:48] := src2[31:16] + dst[79:64] := src1[47:32] + dst[95:80] := src2[47:32] + dst[111:96] := src1[63:48] + dst[127:112] := src2[63:48] + RETURN dst[127:0] +} +tmp_dst[127:0] := INTERLEAVE_WORDS(a[127:0], b[127:0]) +tmp_dst[255:128] := INTERLEAVE_WORDS(a[255:128], b[255:128]) +tmp_dst[383:256] := INTERLEAVE_WORDS(a[383:256], b[383:256]) +tmp_dst[511:384] := INTERLEAVE_WORDS(a[511:384], b[511:384]) +FOR j := 0 to 31 + i := j*16 + IF k[j] + dst[i+15:i] := tmp_dst[i+15:i] + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Miscellaneous +
+ + + + + Unpack and interleave 16-bit integers from the low half of each 128-bit lane in "a" and "b", and store the results in "dst". + +DEFINE INTERLEAVE_WORDS(src1[127:0], src2[127:0]) { + dst[15:0] := src1[15:0] + dst[31:16] := src2[15:0] + dst[47:32] := src1[31:16] + dst[63:48] := src2[31:16] + dst[79:64] := src1[47:32] + dst[95:80] := src2[47:32] + dst[111:96] := src1[63:48] + dst[127:112] := src2[63:48] + RETURN dst[127:0] +} +dst[127:0] := INTERLEAVE_WORDS(a[127:0], b[127:0]) +dst[255:128] := INTERLEAVE_WORDS(a[255:128], b[255:128]) +dst[383:256] := INTERLEAVE_WORDS(a[383:256], b[383:256]) +dst[511:384] := INTERLEAVE_WORDS(a[511:384], b[511:384]) +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Miscellaneous +
+ + + + + + Load packed 16-bit integers from memory into "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + "mem_addr" does not need to be aligned on any particular boundary. + +FOR j := 0 to 31 + i := j*16 + IF k[j] + dst[i+15:i] := MEM[mem_addr+i+15:mem_addr+i] + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Load +
+ + + + + Load packed 16-bit integers from memory into "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + "mem_addr" does not need to be aligned on any particular boundary. + +FOR j := 0 to 31 + i := j*16 + IF k[j] + dst[i+15:i] := MEM[mem_addr+i+15:mem_addr+i] + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Load +
+ + + + + + Load packed 8-bit integers from memory into "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + "mem_addr" does not need to be aligned on any particular boundary. + +FOR j := 0 to 63 + i := j*8 + IF k[j] + dst[i+7:i] := MEM[mem_addr+i+7:mem_addr+i] + ELSE + dst[i+7:i] := src[i+7:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Load +
+ + + + + Load packed 8-bit integers from memory into "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + "mem_addr" does not need to be aligned on any particular boundary. + +FOR j := 0 to 63 + i := j*8 + IF k[j] + dst[i+7:i] := MEM[mem_addr+i+7:mem_addr+i] + ELSE + dst[i+7:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Load +
+ + + + Load 512-bits (composed of 32 packed 16-bit integers) from memory into "dst". + "mem_addr" does not need to be aligned on any particular boundary. + +dst[511:0] := MEM[mem_addr+511:mem_addr] +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Load +
+ + + + Load 512-bits (composed of 64 packed 8-bit integers) from memory into "dst". + "mem_addr" does not need to be aligned on any particular boundary. + +dst[511:0] := MEM[mem_addr+511:mem_addr] +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Load +
+ + + + Load 32-bit mask from memory into "k". + +k[31:0] := MEM[mem_addr+31:mem_addr] + + + AVX512BW +
immintrin.h
+ Load +
+ + + + Load 64-bit mask from memory into "k". + +k[63:0] := MEM[mem_addr+63:mem_addr] + + + AVX512BW +
immintrin.h
+ Load +
+ + + + + + Move packed 16-bit integers from "a" into "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*16 + IF k[j] + dst[i+15:i] := a[i+15:i] + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Move +
+ + + + + Move packed 16-bit integers from "a" into "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*16 + IF k[j] + dst[i+15:i] := a[i+15:i] + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Move +
+ + + + + + Move packed 8-bit integers from "a" into "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 63 + i := j*8 + IF k[j] + dst[i+7:i] := a[i+7:i] + ELSE + dst[i+7:i] := src[i+7:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Move +
+ + + + + Move packed 8-bit integers from "a" into "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 63 + i := j*8 + IF k[j] + dst[i+7:i] := a[i+7:i] + ELSE + dst[i+7:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Move +
+ + + + + + Store packed 16-bit integers from "a" into memory using writemask "k". + "mem_addr" does not need to be aligned on any particular boundary. + +FOR j := 0 to 31 + i := j*16 + IF k[j] + MEM[mem_addr+i+15:mem_addr+i] := a[i+15:i] + FI +ENDFOR + + + AVX512BW +
immintrin.h
+ Store +
+ + + + + + Store packed 8-bit integers from "a" into memory using writemask "k". + "mem_addr" does not need to be aligned on any particular boundary. + +FOR j := 0 to 63 + i := j*8 + IF k[j] + MEM[mem_addr+i+7:mem_addr+i] := a[i+7:i] + FI +ENDFOR + + + AVX512BW +
immintrin.h
+ Store +
+ + + + + Store 512-bits (composed of 32 packed 16-bit integers) from "a" into memory. + "mem_addr" does not need to be aligned on any particular boundary. + +MEM[mem_addr+511:mem_addr] := a[511:0] + + + AVX512BW +
immintrin.h
+ Store +
+ + + + + Store 512-bits (composed of 64 packed 8-bit integers) from "a" into memory. + "mem_addr" does not need to be aligned on any particular boundary. + +MEM[mem_addr+511:mem_addr] := a[511:0] + + + AVX512BW +
immintrin.h
+ Store +
+ + + + + Store 32-bit mask from "a" into memory. + +MEM[mem_addr+31:mem_addr] := a[31:0] + + + AVX512BW +
immintrin.h
+ Store +
+ + + + + Store 64-bit mask from "a" into memory. + +MEM[mem_addr+63:mem_addr] := a[63:0] + + + AVX512BW +
immintrin.h
+ Store +
+ + + + Compute the absolute value of packed signed 8-bit integers in "a", and store the unsigned results in "dst". + +FOR j := 0 to 63 + i := j*8 + dst[i+7:i] := ABS(a[i+7:i]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Arithmetic +
+ + + + + + Compute the absolute value of packed signed 8-bit integers in "a", and store the unsigned results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 63 + i := j*8 + IF k[j] + dst[i+7:i] := ABS(a[i+7:i]) + ELSE + dst[i+7:i] := src[i+7:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Arithmetic +
+ + + + + Compute the absolute value of packed signed 8-bit integers in "a", and store the unsigned results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 63 + i := j*8 + IF k[j] + dst[i+7:i] := ABS(a[i+7:i]) + ELSE + dst[i+7:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Arithmetic +
+ + + + Compute the absolute value of packed signed 16-bit integers in "a", and store the unsigned results in "dst". + +FOR j := 0 to 31 + i := j*16 + dst[i+15:i] := ABS(a[i+15:i]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Arithmetic +
+ + + + + + Compute the absolute value of packed signed 16-bit integers in "a", and store the unsigned results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*16 + IF k[j] + dst[i+15:i] := ABS(a[i+15:i]) + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Arithmetic +
+ + + + + Compute the absolute value of packed signed 16-bit integers in "a", and store the unsigned results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*16 + IF k[j] + dst[i+15:i] := ABS(a[i+15:i]) + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Arithmetic +
+ + + + + Add packed 8-bit integers in "a" and "b", and store the results in "dst". + +FOR j := 0 to 63 + i := j*8 + dst[i+7:i] := a[i+7:i] + b[i+7:i] +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Arithmetic +
+ + + + + + + Add packed 8-bit integers in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 63 + i := j*8 + IF k[j] + dst[i+7:i] := a[i+7:i] + b[i+7:i] + ELSE + dst[i+7:i] := src[i+7:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Arithmetic +
+ + + + + + Add packed 8-bit integers in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 63 + i := j*8 + IF k[j] + dst[i+7:i] := a[i+7:i] + b[i+7:i] + ELSE + dst[i+7:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Arithmetic +
+ + + + + Add packed signed 8-bit integers in "a" and "b" using saturation, and store the results in "dst". + +FOR j := 0 to 63 + i := j*8 + dst[i+7:i] := Saturate8( a[i+7:i] + b[i+7:i] ) +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Arithmetic +
+ + + + + + + Add packed signed 8-bit integers in "a" and "b" using saturation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 63 + i := j*8 + IF k[j] + dst[i+7:i] := Saturate8( a[i+7:i] + b[i+7:i] ) + ELSE + dst[i+7:i] := src[i+7:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Arithmetic +
+ + + + + + Add packed signed 8-bit integers in "a" and "b" using saturation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 63 + i := j*8 + IF k[j] + dst[i+7:i] := Saturate8( a[i+7:i] + b[i+7:i] ) + ELSE + dst[i+7:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Arithmetic +
+ + + + + Add packed signed 16-bit integers in "a" and "b" using saturation, and store the results in "dst". + +FOR j := 0 to 31 + i := j*16 + dst[i+15:i] := Saturate16( a[i+15:i] + b[i+15:i] ) +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Arithmetic +
+ + + + + + + Add packed signed 16-bit integers in "a" and "b" using saturation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*16 + IF k[j] + dst[i+15:i] := Saturate16( a[i+15:i] + b[i+15:i] ) + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Arithmetic +
+ + + + + + Add packed signed 16-bit integers in "a" and "b" using saturation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*16 + IF k[j] + dst[i+15:i] := Saturate16( a[i+15:i] + b[i+15:i] ) + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Arithmetic +
+ + + + + Add packed unsigned 8-bit integers in "a" and "b" using saturation, and store the results in "dst". + +FOR j := 0 to 63 + i := j*8 + dst[i+7:i] := SaturateU8( a[i+7:i] + b[i+7:i] ) +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Arithmetic +
+ + + + + + + Add packed unsigned 8-bit integers in "a" and "b" using saturation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 63 + i := j*8 + IF k[j] + dst[i+7:i] := SaturateU8( a[i+7:i] + b[i+7:i] ) + ELSE + dst[i+7:i] := src[i+7:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Arithmetic +
+ + + + + + Add packed unsigned 8-bit integers in "a" and "b" using saturation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 63 + i := j*8 + IF k[j] + dst[i+7:i] := SaturateU8( a[i+7:i] + b[i+7:i] ) + ELSE + dst[i+7:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Arithmetic +
+ + + + + Add packed unsigned 16-bit integers in "a" and "b" using saturation, and store the results in "dst". + +FOR j := 0 to 31 + i := j*16 + dst[i+15:i] := SaturateU16( a[i+15:i] + b[i+15:i] ) +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Arithmetic +
+ + + + + + + Add packed unsigned 16-bit integers in "a" and "b" using saturation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*16 + IF k[j] + dst[i+15:i] := SaturateU16( a[i+15:i] + b[i+15:i] ) + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Arithmetic +
+ + + + + + Add packed unsigned 16-bit integers in "a" and "b" using saturation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*16 + IF k[j] + dst[i+15:i] := SaturateU16( a[i+15:i] + b[i+15:i] ) + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Arithmetic +
+ + + + + Add packed 16-bit integers in "a" and "b", and store the results in "dst". + +FOR j := 0 to 31 + i := j*16 + dst[i+15:i] := a[i+15:i] + b[i+15:i] +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Arithmetic +
+ + + + + + + Add packed 16-bit integers in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*16 + IF k[j] + dst[i+15:i] := a[i+15:i] + b[i+15:i] + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Arithmetic +
+ + + + + + Add packed 16-bit integers in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*16 + IF k[j] + dst[i+15:i] := a[i+15:i] + b[i+15:i] + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Arithmetic +
+ + + + + Average packed unsigned 8-bit integers in "a" and "b", and store the results in "dst". + +FOR j := 0 to 63 + i := j*8 + dst[i+7:i] := (a[i+7:i] + b[i+7:i] + 1) >> 1 +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Arithmetic +
+ + + + + + + Average packed unsigned 8-bit integers in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 63 + i := j*8 + IF k[j] + dst[i+7:i] := (a[i+7:i] + b[i+7:i] + 1) >> 1 + ELSE + dst[i+7:i] := src[i+7:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Arithmetic +
+ + + + + + Average packed unsigned 8-bit integers in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 63 + i := j*8 + IF k[j] + dst[i+7:i] := (a[i+7:i] + b[i+7:i] + 1) >> 1 + ELSE + dst[i+7:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Arithmetic +
+ + + + + Average packed unsigned 16-bit integers in "a" and "b", and store the results in "dst". + +FOR j := 0 to 31 + i := j*16 + dst[i+15:i] := (a[i+15:i] + b[i+15:i] + 1) >> 1 +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Arithmetic +
+ + + + + + + Average packed unsigned 16-bit integers in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*16 + IF k[j] + dst[i+15:i] := (a[i+15:i] + b[i+15:i] + 1) >> 1 + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Arithmetic +
+ + + + + + Average packed unsigned 16-bit integers in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*16 + IF k[j] + dst[i+15:i] := (a[i+15:i] + b[i+15:i] + 1) >> 1 + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Arithmetic +
+ + + + + Vertically multiply each unsigned 8-bit integer from "a" with the corresponding signed 8-bit integer from "b", producing intermediate signed 16-bit integers. Horizontally add adjacent pairs of intermediate signed 16-bit integers, and pack the saturated results in "dst". + +FOR j := 0 to 31 + i := j*16 + dst[i+15:i] := Saturate16( a[i+15:i+8]*b[i+15:i+8] + a[i+7:i]*b[i+7:i] ) +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed unsigned 8-bit integers in "a" by packed signed 8-bit integers in "b", producing intermediate signed 16-bit integers. Horizontally add adjacent pairs of intermediate signed 16-bit integers, and pack the saturated results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*16 + IF k[j] + dst[i+15:i] := Saturate16( a[i+15:i+8]*b[i+15:i+8] + a[i+7:i]*b[i+7:i] ) + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply packed unsigned 8-bit integers in "a" by packed signed 8-bit integers in "b", producing intermediate signed 16-bit integers. Horizontally add adjacent pairs of intermediate signed 16-bit integers, and pack the saturated results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*16 + IF k[j] + dst[i+15:i] := Saturate16( a[i+15:i+8]*b[i+15:i+8] + a[i+7:i]*b[i+7:i] ) + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Arithmetic +
+ + + + + Multiply packed signed 16-bit integers in "a" and "b", producing intermediate signed 32-bit integers. Horizontally add adjacent pairs of intermediate 32-bit integers, and pack the results in "dst". + +FOR j := 0 to 15 + i := j*32 + dst[i+31:i] := SignExtend32(a[i+31:i+16]*b[i+31:i+16]) + SignExtend32(a[i+15:i]*b[i+15:i]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed signed 16-bit integers in "a" and "b", producing intermediate signed 32-bit integers. Horizontally add adjacent pairs of intermediate 32-bit integers, and pack the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := SignExtend32(a[i+31:i+16]*b[i+31:i+16]) + SignExtend32(a[i+15:i]*b[i+15:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply packed signed 16-bit integers in "a" and "b", producing intermediate signed 32-bit integers. Horizontally add adjacent pairs of intermediate 32-bit integers, and pack the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := SignExtend32(a[i+31:i+16]*b[i+31:i+16]) + SignExtend32(a[i+15:i]*b[i+15:i]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Arithmetic +
+ + + + + + + Compare packed signed 8-bit integers in "a" and "b", and store packed maximum values in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 63 + i := j*8 + IF k[j] + dst[i+7:i] := MAX(a[i+7:i], b[i+7:i]) + ELSE + dst[i+7:i] := src[i+7:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Arithmetic +
+ + + + + + Compare packed signed 8-bit integers in "a" and "b", and store packed maximum values in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 63 + i := j*8 + IF k[j] + dst[i+7:i] := MAX(a[i+7:i], b[i+7:i]) + ELSE + dst[i+7:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Arithmetic +
+ + + + + Compare packed signed 8-bit integers in "a" and "b", and store packed maximum values in "dst". + +FOR j := 0 to 63 + i := j*8 + dst[i+7:i] := MAX(a[i+7:i], b[i+7:i]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Arithmetic +
+ + + + + + + Compare packed signed 16-bit integers in "a" and "b", and store packed maximum values in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*16 + IF k[j] + dst[i+15:i] := MAX(a[i+15:i], b[i+15:i]) + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Arithmetic +
+ + + + + + Compare packed signed 16-bit integers in "a" and "b", and store packed maximum values in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*16 + IF k[j] + dst[i+15:i] := MAX(a[i+15:i], b[i+15:i]) + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Arithmetic +
+ + + + + Compare packed signed 16-bit integers in "a" and "b", and store packed maximum values in "dst". + +FOR j := 0 to 31 + i := j*16 + dst[i+15:i] := MAX(a[i+15:i], b[i+15:i]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Arithmetic +
+ + + + + + + Compare packed unsigned 8-bit integers in "a" and "b", and store packed maximum values in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 63 + i := j*8 + IF k[j] + dst[i+7:i] := MAX(a[i+7:i], b[i+7:i]) + ELSE + dst[i+7:i] := src[i+7:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Arithmetic +
+ + + + + + Compare packed unsigned 8-bit integers in "a" and "b", and store packed maximum values in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 63 + i := j*8 + IF k[j] + dst[i+7:i] := MAX(a[i+7:i], b[i+7:i]) + ELSE + dst[i+7:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Arithmetic +
+ + + + + Compare packed unsigned 8-bit integers in "a" and "b", and store packed maximum values in "dst". + +FOR j := 0 to 63 + i := j*8 + dst[i+7:i] := MAX(a[i+7:i], b[i+7:i]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Arithmetic +
+ + + + + + + Compare packed unsigned 16-bit integers in "a" and "b", and store packed maximum values in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*16 + IF k[j] + dst[i+15:i] := MAX(a[i+15:i], b[i+15:i]) + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Arithmetic +
+ + + + + + Compare packed unsigned 16-bit integers in "a" and "b", and store packed maximum values in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*16 + IF k[j] + dst[i+15:i] := MAX(a[i+15:i], b[i+15:i]) + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Arithmetic +
+ + + + + Compare packed unsigned 16-bit integers in "a" and "b", and store packed maximum values in "dst". + +FOR j := 0 to 31 + i := j*16 + dst[i+15:i] := MAX(a[i+15:i], b[i+15:i]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Arithmetic +
+ + + + + + + Compare packed signed 8-bit integers in "a" and "b", and store packed minimum values in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 63 + i := j*8 + IF k[j] + dst[i+7:i] := MIN(a[i+7:i], b[i+7:i]) + ELSE + dst[i+7:i] := src[i+7:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Arithmetic +
+ + + + + + Compare packed signed 8-bit integers in "a" and "b", and store packed minimum values in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 63 + i := j*8 + IF k[j] + dst[i+7:i] := MIN(a[i+7:i], b[i+7:i]) + ELSE + dst[i+7:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Arithmetic +
+ + + + + Compare packed signed 8-bit integers in "a" and "b", and store packed minimum values in "dst". + +FOR j := 0 to 63 + i := j*8 + dst[i+7:i] := MIN(a[i+7:i], b[i+7:i]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Arithmetic +
+ + + + + + + Compare packed signed 16-bit integers in "a" and "b", and store packed minimum values in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*16 + IF k[j] + dst[i+15:i] := MIN(a[i+15:i], b[i+15:i]) + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Arithmetic +
+ + + + + + Compare packed signed 16-bit integers in "a" and "b", and store packed minimum values in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*16 + IF k[j] + dst[i+15:i] := MIN(a[i+15:i], b[i+15:i]) + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Arithmetic +
+ + + + + Compare packed signed 16-bit integers in "a" and "b", and store packed minimum values in "dst". + +FOR j := 0 to 31 + i := j*16 + dst[i+15:i] := MIN(a[i+15:i], b[i+15:i]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Arithmetic +
+ + + + + + + Compare packed unsigned 8-bit integers in "a" and "b", and store packed minimum values in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 63 + i := j*8 + IF k[j] + dst[i+7:i] := MIN(a[i+7:i], b[i+7:i]) + ELSE + dst[i+7:i] := src[i+7:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Arithmetic +
+ + + + + + Compare packed unsigned 8-bit integers in "a" and "b", and store packed minimum values in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 63 + i := j*8 + IF k[j] + dst[i+7:i] := MIN(a[i+7:i], b[i+7:i]) + ELSE + dst[i+7:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Arithmetic +
+ + + + + Compare packed unsigned 8-bit integers in "a" and "b", and store packed minimum values in "dst". + +FOR j := 0 to 63 + i := j*8 + dst[i+7:i] := MIN(a[i+7:i], b[i+7:i]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Arithmetic +
+ + + + + + + Compare packed unsigned 16-bit integers in "a" and "b", and store packed minimum values in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*16 + IF k[j] + dst[i+15:i] := MIN(a[i+15:i], b[i+15:i]) + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Arithmetic +
+ + + + + + Compare packed unsigned 16-bit integers in "a" and "b", and store packed minimum values in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*16 + IF k[j] + dst[i+15:i] := MIN(a[i+15:i], b[i+15:i]) + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Arithmetic +
+ + + + + Compare packed unsigned 16-bit integers in "a" and "b", and store packed minimum values in "dst". + +FOR j := 0 to 31 + i := j*16 + dst[i+15:i] := MIN(a[i+15:i], b[i+15:i]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed signed 16-bit integers in "a" and "b", producing intermediate signed 32-bit integers. Truncate each intermediate integer to the 18 most significant bits, round by adding 1, and store bits [16:1] to "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*16 + IF k[j] + tmp[31:0] := ((SignExtend32(a[i+15:i]) * SignExtend32(b[i+15:i])) >> 14) + 1 + dst[i+15:i] := tmp[16:1] + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply packed signed 16-bit integers in "a" and "b", producing intermediate signed 32-bit integers. Truncate each intermediate integer to the 18 most significant bits, round by adding 1, and store bits [16:1] to "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*16 + IF k[j] + tmp[31:0] := ((SignExtend32(a[i+15:i]) * SignExtend32(b[i+15:i])) >> 14) + 1 + dst[i+15:i] := tmp[16:1] + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Arithmetic +
+ + + + + Multiply packed signed 16-bit integers in "a" and "b", producing intermediate signed 32-bit integers. Truncate each intermediate integer to the 18 most significant bits, round by adding 1, and store bits [16:1] to "dst". + +FOR j := 0 to 31 + i := j*16 + tmp[31:0] := ((SignExtend32(a[i+15:i]) * SignExtend32(b[i+15:i])) >> 14) + 1 + dst[i+15:i] := tmp[16:1] +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply the packed unsigned 16-bit integers in "a" and "b", producing intermediate 32-bit integers, and store the high 16 bits of the intermediate integers in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*16 + IF k[j] + tmp[31:0] := a[i+15:i] * b[i+15:i] + dst[i+15:i] := tmp[31:16] + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply the packed unsigned 16-bit integers in "a" and "b", producing intermediate 32-bit integers, and store the high 16 bits of the intermediate integers in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*16 + IF k[j] + tmp[31:0] := a[i+15:i] * b[i+15:i] + dst[i+15:i] := tmp[31:16] + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Arithmetic +
+ + + + + Multiply the packed unsigned 16-bit integers in "a" and "b", producing intermediate 32-bit integers, and store the high 16 bits of the intermediate integers in "dst". + +FOR j := 0 to 31 + i := j*16 + tmp[31:0] := a[i+15:i] * b[i+15:i] + dst[i+15:i] := tmp[31:16] +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply the packed signed 16-bit integers in "a" and "b", producing intermediate 32-bit integers, and store the high 16 bits of the intermediate integers in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*16 + IF k[j] + tmp[31:0] := SignExtend32(a[i+15:i]) * SignExtend32(b[i+15:i]) + dst[i+15:i] := tmp[31:16] + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply the packed signed 16-bit integers in "a" and "b", producing intermediate 32-bit integers, and store the high 16 bits of the intermediate integers in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*16 + IF k[j] + tmp[31:0] := SignExtend32(a[i+15:i]) * SignExtend32(b[i+15:i]) + dst[i+15:i] := tmp[31:16] + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Arithmetic +
+ + + + + Multiply the packed signed 16-bit integers in "a" and "b", producing intermediate 32-bit integers, and store the high 16 bits of the intermediate integers in "dst". + +FOR j := 0 to 31 + i := j*16 + tmp[31:0] := SignExtend32(a[i+15:i]) * SignExtend32(b[i+15:i]) + dst[i+15:i] := tmp[31:16] +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply the packed 16-bit integers in "a" and "b", producing intermediate 32-bit integers, and store the low 16 bits of the intermediate integers in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*16 + IF k[j] + tmp[31:0] := SignExtend32(a[i+15:i]) * SignExtend32(b[i+15:i]) + dst[i+15:i] := tmp[15:0] + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply the packed 16-bit integers in "a" and "b", producing intermediate 32-bit integers, and store the low 16 bits of the intermediate integers in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*16 + IF k[j] + tmp[31:0] := SignExtend32(a[i+15:i]) * SignExtend32(b[i+15:i]) + dst[i+15:i] := tmp[15:0] + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Arithmetic +
+ + + + + Multiply the packed 16-bit integers in "a" and "b", producing intermediate 32-bit integers, and store the low 16 bits of the intermediate integers in "dst". + +FOR j := 0 to 31 + i := j*16 + tmp[31:0] := SignExtend32(a[i+15:i]) * SignExtend32(b[i+15:i]) + dst[i+15:i] := tmp[15:0] +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Arithmetic +
+ + + + + + + Subtract packed 8-bit integers in "b" from packed 8-bit integers in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 63 + i := j*8 + IF k[j] + dst[i+7:i] := a[i+7:i] - b[i+7:i] + ELSE + dst[i+7:i] := src[i+7:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Arithmetic +
+ + + + + + Subtract packed 8-bit integers in "b" from packed 8-bit integers in "a", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 63 + i := j*8 + IF k[j] + dst[i+7:i] := a[i+7:i] - b[i+7:i] + ELSE + dst[i+7:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Arithmetic +
+ + + + + Subtract packed 8-bit integers in "b" from packed 8-bit integers in "a", and store the results in "dst". + +FOR j := 0 to 63 + i := j*8 + dst[i+7:i] := a[i+7:i] - b[i+7:i] +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Arithmetic +
+ + + + + + + Subtract packed signed 8-bit integers in "b" from packed 8-bit integers in "a" using saturation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 63 + i := j*8 + IF k[j] + dst[i+7:i] := Saturate8(a[i+7:i] - b[i+7:i]) + ELSE + dst[i+7:i] := src[i+7:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Arithmetic +
+ + + + + + Subtract packed signed 8-bit integers in "b" from packed 8-bit integers in "a" using saturation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 63 + i := j*8 + IF k[j] + dst[i+7:i] := Saturate8(a[i+7:i] - b[i+7:i]) + ELSE + dst[i+7:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Arithmetic +
+ + + + + Subtract packed signed 8-bit integers in "b" from packed 8-bit integers in "a" using saturation, and store the results in "dst". + +FOR j := 0 to 63 + i := j*8 + dst[i+7:i] := Saturate8(a[i+7:i] - b[i+7:i]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Arithmetic +
+ + + + + + + Subtract packed signed 16-bit integers in "b" from packed 16-bit integers in "a" using saturation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*16 + IF k[j] + dst[i+15:i] := Saturate16(a[i+15:i] - b[i+15:i]) + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Arithmetic +
+ + + + + + Subtract packed signed 16-bit integers in "b" from packed 16-bit integers in "a" using saturation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*16 + IF k[j] + dst[i+15:i] := Saturate16(a[i+15:i] - b[i+15:i]) + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Arithmetic +
+ + + + + Subtract packed signed 16-bit integers in "b" from packed 16-bit integers in "a" using saturation, and store the results in "dst". + +FOR j := 0 to 31 + i := j*16 + dst[i+15:i] := Saturate16(a[i+15:i] - b[i+15:i]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Arithmetic +
+ + + + + + + Subtract packed unsigned 8-bit integers in "b" from packed unsigned 8-bit integers in "a" using saturation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 63 + i := j*8 + IF k[j] + dst[i+7:i] := SaturateU8(a[i+7:i] - b[i+7:i]) + ELSE + dst[i+7:i] := src[i+7:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Arithmetic +
+ + + + + + Subtract packed unsigned 8-bit integers in "b" from packed unsigned 8-bit integers in "a" using saturation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 63 + i := j*8 + IF k[j] + dst[i+7:i] := SaturateU8(a[i+7:i] - b[i+7:i]) + ELSE + dst[i+7:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Arithmetic +
+ + + + + Subtract packed unsigned 8-bit integers in "b" from packed unsigned 8-bit integers in "a" using saturation, and store the results in "dst". + +FOR j := 0 to 63 + i := j*8 + dst[i+7:i] := SaturateU8(a[i+7:i] - b[i+7:i]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Arithmetic +
+ + + + + + + Subtract packed unsigned 16-bit integers in "b" from packed unsigned 16-bit integers in "a" using saturation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*16 + IF k[j] + dst[i+15:i] := SaturateU16(a[i+15:i] - b[i+15:i]) + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Arithmetic +
+ + + + + + Subtract packed unsigned 16-bit integers in "b" from packed unsigned 16-bit integers in "a" using saturation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*16 + IF k[j] + dst[i+15:i] := SaturateU16(a[i+15:i] - b[i+15:i]) + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Arithmetic +
+ + + + + Subtract packed unsigned 16-bit integers in "b" from packed unsigned 16-bit integers in "a" using saturation, and store the results in "dst". + +FOR j := 0 to 31 + i := j*16 + dst[i+15:i] := SaturateU16(a[i+15:i] - b[i+15:i]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Arithmetic +
+ + + + + + + Subtract packed 16-bit integers in "b" from packed 16-bit integers in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*16 + IF k[j] + dst[i+15:i] := a[i+15:i] - b[i+15:i] + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Arithmetic +
+ + + + + + Subtract packed 16-bit integers in "b" from packed 16-bit integers in "a", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*16 + IF k[j] + dst[i+15:i] := a[i+15:i] - b[i+15:i] + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Arithmetic +
+ + + + + Subtract packed 16-bit integers in "b" from packed 16-bit integers in "a", and store the results in "dst". + +FOR j := 0 to 31 + i := j*16 + dst[i+15:i] := a[i+15:i] - b[i+15:i] +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Arithmetic +
+ + Miscellaneous + + + + + + Convert packed signed 32-bit integers from "a" and "b" to packed 16-bit integers using signed saturation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +tmp_dst[15:0] := Saturate16(a[31:0]) +tmp_dst[31:16] := Saturate16(a[63:32]) +tmp_dst[47:32] := Saturate16(a[95:64]) +tmp_dst[63:48] := Saturate16(a[127:96]) +tmp_dst[79:64] := Saturate16(b[31:0]) +tmp_dst[95:80] := Saturate16(b[63:32]) +tmp_dst[111:96] := Saturate16(b[95:64]) +tmp_dst[127:112] := Saturate16(b[127:96]) +tmp_dst[143:128] := Saturate16(a[159:128]) +tmp_dst[159:144] := Saturate16(a[191:160]) +tmp_dst[175:160] := Saturate16(a[223:192]) +tmp_dst[191:176] := Saturate16(a[255:224]) +tmp_dst[207:192] := Saturate16(b[159:128]) +tmp_dst[223:208] := Saturate16(b[191:160]) +tmp_dst[239:224] := Saturate16(b[223:192]) +tmp_dst[255:240] := Saturate16(b[255:224]) +tmp_dst[271:256] := Saturate16(a[287:256]) +tmp_dst[287:272] := Saturate16(a[319:288]) +tmp_dst[303:288] := Saturate16(a[351:320]) +tmp_dst[319:304] := Saturate16(a[383:352]) +tmp_dst[335:320] := Saturate16(b[287:256]) +tmp_dst[351:336] := Saturate16(b[319:288]) +tmp_dst[367:352] := Saturate16(b[351:320]) +tmp_dst[383:368] := Saturate16(b[383:352]) +tmp_dst[399:384] := Saturate16(a[415:384]) +tmp_dst[415:400] := Saturate16(a[447:416]) +tmp_dst[431:416] := Saturate16(a[479:448]) +tmp_dst[447:432] := Saturate16(a[511:480]) +tmp_dst[463:448] := Saturate16(b[415:384]) +tmp_dst[479:464] := Saturate16(b[447:416]) +tmp_dst[495:480] := Saturate16(b[479:448]) +tmp_dst[511:496] := Saturate16(b[511:480]) +FOR j := 0 to 31 + i := j*16 + IF k[j] + dst[i+15:i] := tmp_dst[i+15:i] + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Convert +
+ + Miscellaneous + + + + + Convert packed signed 32-bit integers from "a" and "b" to packed 16-bit integers using signed saturation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +tmp_dst[15:0] := Saturate16(a[31:0]) +tmp_dst[31:16] := Saturate16(a[63:32]) +tmp_dst[47:32] := Saturate16(a[95:64]) +tmp_dst[63:48] := Saturate16(a[127:96]) +tmp_dst[79:64] := Saturate16(b[31:0]) +tmp_dst[95:80] := Saturate16(b[63:32]) +tmp_dst[111:96] := Saturate16(b[95:64]) +tmp_dst[127:112] := Saturate16(b[127:96]) +tmp_dst[143:128] := Saturate16(a[159:128]) +tmp_dst[159:144] := Saturate16(a[191:160]) +tmp_dst[175:160] := Saturate16(a[223:192]) +tmp_dst[191:176] := Saturate16(a[255:224]) +tmp_dst[207:192] := Saturate16(b[159:128]) +tmp_dst[223:208] := Saturate16(b[191:160]) +tmp_dst[239:224] := Saturate16(b[223:192]) +tmp_dst[255:240] := Saturate16(b[255:224]) +tmp_dst[271:256] := Saturate16(a[287:256]) +tmp_dst[287:272] := Saturate16(a[319:288]) +tmp_dst[303:288] := Saturate16(a[351:320]) +tmp_dst[319:304] := Saturate16(a[383:352]) +tmp_dst[335:320] := Saturate16(b[287:256]) +tmp_dst[351:336] := Saturate16(b[319:288]) +tmp_dst[367:352] := Saturate16(b[351:320]) +tmp_dst[383:368] := Saturate16(b[383:352]) +tmp_dst[399:384] := Saturate16(a[415:384]) +tmp_dst[415:400] := Saturate16(a[447:416]) +tmp_dst[431:416] := Saturate16(a[479:448]) +tmp_dst[447:432] := Saturate16(a[511:480]) +tmp_dst[463:448] := Saturate16(b[415:384]) +tmp_dst[479:464] := Saturate16(b[447:416]) +tmp_dst[495:480] := Saturate16(b[479:448]) +tmp_dst[511:496] := Saturate16(b[511:480]) +FOR j := 0 to 31 + i := j*16 + IF k[j] + dst[i+15:i] := tmp_dst[i+15:i] + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Convert +
+ + Miscellaneous + + + + Convert packed signed 32-bit integers from "a" and "b" to packed 16-bit integers using signed saturation, and store the results in "dst". + +dst[15:0] := Saturate16(a[31:0]) +dst[31:16] := Saturate16(a[63:32]) +dst[47:32] := Saturate16(a[95:64]) +dst[63:48] := Saturate16(a[127:96]) +dst[79:64] := Saturate16(b[31:0]) +dst[95:80] := Saturate16(b[63:32]) +dst[111:96] := Saturate16(b[95:64]) +dst[127:112] := Saturate16(b[127:96]) +dst[143:128] := Saturate16(a[159:128]) +dst[159:144] := Saturate16(a[191:160]) +dst[175:160] := Saturate16(a[223:192]) +dst[191:176] := Saturate16(a[255:224]) +dst[207:192] := Saturate16(b[159:128]) +dst[223:208] := Saturate16(b[191:160]) +dst[239:224] := Saturate16(b[223:192]) +dst[255:240] := Saturate16(b[255:224]) +dst[271:256] := Saturate16(a[287:256]) +dst[287:272] := Saturate16(a[319:288]) +dst[303:288] := Saturate16(a[351:320]) +dst[319:304] := Saturate16(a[383:352]) +dst[335:320] := Saturate16(b[287:256]) +dst[351:336] := Saturate16(b[319:288]) +dst[367:352] := Saturate16(b[351:320]) +dst[383:368] := Saturate16(b[383:352]) +dst[399:384] := Saturate16(a[415:384]) +dst[415:400] := Saturate16(a[447:416]) +dst[431:416] := Saturate16(a[479:448]) +dst[447:432] := Saturate16(a[511:480]) +dst[463:448] := Saturate16(b[415:384]) +dst[479:464] := Saturate16(b[447:416]) +dst[495:480] := Saturate16(b[479:448]) +dst[511:496] := Saturate16(b[511:480]) +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Convert +
+ + Miscellaneous + + + + + + Convert packed signed 16-bit integers from "a" and "b" to packed 8-bit integers using signed saturation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +tmp_dst[7:0] := Saturate8(a[15:0]) +tmp_dst[15:8] := Saturate8(a[31:16]) +tmp_dst[23:16] := Saturate8(a[47:32]) +tmp_dst[31:24] := Saturate8(a[63:48]) +tmp_dst[39:32] := Saturate8(a[79:64]) +tmp_dst[47:40] := Saturate8(a[95:80]) +tmp_dst[55:48] := Saturate8(a[111:96]) +tmp_dst[63:56] := Saturate8(a[127:112]) +tmp_dst[71:64] := Saturate8(b[15:0]) +tmp_dst[79:72] := Saturate8(b[31:16]) +tmp_dst[87:80] := Saturate8(b[47:32]) +tmp_dst[95:88] := Saturate8(b[63:48]) +tmp_dst[103:96] := Saturate8(b[79:64]) +tmp_dst[111:104] := Saturate8(b[95:80]) +tmp_dst[119:112] := Saturate8(b[111:96]) +tmp_dst[127:120] := Saturate8(b[127:112]) +tmp_dst[135:128] := Saturate8(a[143:128]) +tmp_dst[143:136] := Saturate8(a[159:144]) +tmp_dst[151:144] := Saturate8(a[175:160]) +tmp_dst[159:152] := Saturate8(a[191:176]) +tmp_dst[167:160] := Saturate8(a[207:192]) +tmp_dst[175:168] := Saturate8(a[223:208]) +tmp_dst[183:176] := Saturate8(a[239:224]) +tmp_dst[191:184] := Saturate8(a[255:240]) +tmp_dst[199:192] := Saturate8(b[143:128]) +tmp_dst[207:200] := Saturate8(b[159:144]) +tmp_dst[215:208] := Saturate8(b[175:160]) +tmp_dst[223:216] := Saturate8(b[191:176]) +tmp_dst[231:224] := Saturate8(b[207:192]) +tmp_dst[239:232] := Saturate8(b[223:208]) +tmp_dst[247:240] := Saturate8(b[239:224]) +tmp_dst[255:248] := Saturate8(b[255:240]) +tmp_dst[263:256] := Saturate8(a[271:256]) +tmp_dst[271:264] := Saturate8(a[287:272]) +tmp_dst[279:272] := Saturate8(a[303:288]) +tmp_dst[287:280] := Saturate8(a[319:304]) +tmp_dst[295:288] := Saturate8(a[335:320]) +tmp_dst[303:296] := Saturate8(a[351:336]) +tmp_dst[311:304] := Saturate8(a[367:352]) +tmp_dst[319:312] := Saturate8(a[383:368]) +tmp_dst[327:320] := Saturate8(b[271:256]) +tmp_dst[335:328] := Saturate8(b[287:272]) +tmp_dst[343:336] := Saturate8(b[303:288]) +tmp_dst[351:344] := Saturate8(b[319:304]) +tmp_dst[359:352] := Saturate8(b[335:320]) +tmp_dst[367:360] := Saturate8(b[351:336]) +tmp_dst[375:368] := Saturate8(b[367:352]) +tmp_dst[383:376] := Saturate8(b[383:368]) +tmp_dst[391:384] := Saturate8(a[399:384]) +tmp_dst[399:392] := Saturate8(a[415:400]) +tmp_dst[407:400] := Saturate8(a[431:416]) +tmp_dst[415:408] := Saturate8(a[447:432]) +tmp_dst[423:416] := Saturate8(a[463:448]) +tmp_dst[431:424] := Saturate8(a[479:464]) +tmp_dst[439:432] := Saturate8(a[495:480]) +tmp_dst[447:440] := Saturate8(a[511:496]) +tmp_dst[455:448] := Saturate8(b[399:384]) +tmp_dst[463:456] := Saturate8(b[415:400]) +tmp_dst[471:464] := Saturate8(b[431:416]) +tmp_dst[479:472] := Saturate8(b[447:432]) +tmp_dst[487:480] := Saturate8(b[463:448]) +tmp_dst[495:488] := Saturate8(b[479:464]) +tmp_dst[503:496] := Saturate8(b[495:480]) +tmp_dst[511:504] := Saturate8(b[511:496]) +FOR j := 0 to 63 + i := j*8 + IF k[j] + dst[i+7:i] := tmp_dst[i+7:i] + ELSE + dst[i+7:i] := src[i+7:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Convert +
+ + Miscellaneous + + + + + Convert packed signed 16-bit integers from "a" and "b" to packed 8-bit integers using signed saturation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +tmp_dst[7:0] := Saturate8(a[15:0]) +tmp_dst[15:8] := Saturate8(a[31:16]) +tmp_dst[23:16] := Saturate8(a[47:32]) +tmp_dst[31:24] := Saturate8(a[63:48]) +tmp_dst[39:32] := Saturate8(a[79:64]) +tmp_dst[47:40] := Saturate8(a[95:80]) +tmp_dst[55:48] := Saturate8(a[111:96]) +tmp_dst[63:56] := Saturate8(a[127:112]) +tmp_dst[71:64] := Saturate8(b[15:0]) +tmp_dst[79:72] := Saturate8(b[31:16]) +tmp_dst[87:80] := Saturate8(b[47:32]) +tmp_dst[95:88] := Saturate8(b[63:48]) +tmp_dst[103:96] := Saturate8(b[79:64]) +tmp_dst[111:104] := Saturate8(b[95:80]) +tmp_dst[119:112] := Saturate8(b[111:96]) +tmp_dst[127:120] := Saturate8(b[127:112]) +tmp_dst[135:128] := Saturate8(a[143:128]) +tmp_dst[143:136] := Saturate8(a[159:144]) +tmp_dst[151:144] := Saturate8(a[175:160]) +tmp_dst[159:152] := Saturate8(a[191:176]) +tmp_dst[167:160] := Saturate8(a[207:192]) +tmp_dst[175:168] := Saturate8(a[223:208]) +tmp_dst[183:176] := Saturate8(a[239:224]) +tmp_dst[191:184] := Saturate8(a[255:240]) +tmp_dst[199:192] := Saturate8(b[143:128]) +tmp_dst[207:200] := Saturate8(b[159:144]) +tmp_dst[215:208] := Saturate8(b[175:160]) +tmp_dst[223:216] := Saturate8(b[191:176]) +tmp_dst[231:224] := Saturate8(b[207:192]) +tmp_dst[239:232] := Saturate8(b[223:208]) +tmp_dst[247:240] := Saturate8(b[239:224]) +tmp_dst[255:248] := Saturate8(b[255:240]) +tmp_dst[263:256] := Saturate8(a[271:256]) +tmp_dst[271:264] := Saturate8(a[287:272]) +tmp_dst[279:272] := Saturate8(a[303:288]) +tmp_dst[287:280] := Saturate8(a[319:304]) +tmp_dst[295:288] := Saturate8(a[335:320]) +tmp_dst[303:296] := Saturate8(a[351:336]) +tmp_dst[311:304] := Saturate8(a[367:352]) +tmp_dst[319:312] := Saturate8(a[383:368]) +tmp_dst[327:320] := Saturate8(b[271:256]) +tmp_dst[335:328] := Saturate8(b[287:272]) +tmp_dst[343:336] := Saturate8(b[303:288]) +tmp_dst[351:344] := Saturate8(b[319:304]) +tmp_dst[359:352] := Saturate8(b[335:320]) +tmp_dst[367:360] := Saturate8(b[351:336]) +tmp_dst[375:368] := Saturate8(b[367:352]) +tmp_dst[383:376] := Saturate8(b[383:368]) +tmp_dst[391:384] := Saturate8(a[399:384]) +tmp_dst[399:392] := Saturate8(a[415:400]) +tmp_dst[407:400] := Saturate8(a[431:416]) +tmp_dst[415:408] := Saturate8(a[447:432]) +tmp_dst[423:416] := Saturate8(a[463:448]) +tmp_dst[431:424] := Saturate8(a[479:464]) +tmp_dst[439:432] := Saturate8(a[495:480]) +tmp_dst[447:440] := Saturate8(a[511:496]) +tmp_dst[455:448] := Saturate8(b[399:384]) +tmp_dst[463:456] := Saturate8(b[415:400]) +tmp_dst[471:464] := Saturate8(b[431:416]) +tmp_dst[479:472] := Saturate8(b[447:432]) +tmp_dst[487:480] := Saturate8(b[463:448]) +tmp_dst[495:488] := Saturate8(b[479:464]) +tmp_dst[503:496] := Saturate8(b[495:480]) +tmp_dst[511:504] := Saturate8(b[511:496]) +FOR j := 0 to 63 + i := j*8 + IF k[j] + dst[i+7:i] := tmp_dst[i+7:i] + ELSE + dst[i+7:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Convert +
+ + Miscellaneous + + + + Convert packed signed 16-bit integers from "a" and "b" to packed 8-bit integers using signed saturation, and store the results in "dst". + +dst[7:0] := Saturate8(a[15:0]) +dst[15:8] := Saturate8(a[31:16]) +dst[23:16] := Saturate8(a[47:32]) +dst[31:24] := Saturate8(a[63:48]) +dst[39:32] := Saturate8(a[79:64]) +dst[47:40] := Saturate8(a[95:80]) +dst[55:48] := Saturate8(a[111:96]) +dst[63:56] := Saturate8(a[127:112]) +dst[71:64] := Saturate8(b[15:0]) +dst[79:72] := Saturate8(b[31:16]) +dst[87:80] := Saturate8(b[47:32]) +dst[95:88] := Saturate8(b[63:48]) +dst[103:96] := Saturate8(b[79:64]) +dst[111:104] := Saturate8(b[95:80]) +dst[119:112] := Saturate8(b[111:96]) +dst[127:120] := Saturate8(b[127:112]) +dst[135:128] := Saturate8(a[143:128]) +dst[143:136] := Saturate8(a[159:144]) +dst[151:144] := Saturate8(a[175:160]) +dst[159:152] := Saturate8(a[191:176]) +dst[167:160] := Saturate8(a[207:192]) +dst[175:168] := Saturate8(a[223:208]) +dst[183:176] := Saturate8(a[239:224]) +dst[191:184] := Saturate8(a[255:240]) +dst[199:192] := Saturate8(b[143:128]) +dst[207:200] := Saturate8(b[159:144]) +dst[215:208] := Saturate8(b[175:160]) +dst[223:216] := Saturate8(b[191:176]) +dst[231:224] := Saturate8(b[207:192]) +dst[239:232] := Saturate8(b[223:208]) +dst[247:240] := Saturate8(b[239:224]) +dst[255:248] := Saturate8(b[255:240]) +dst[263:256] := Saturate8(a[271:256]) +dst[271:264] := Saturate8(a[287:272]) +dst[279:272] := Saturate8(a[303:288]) +dst[287:280] := Saturate8(a[319:304]) +dst[295:288] := Saturate8(a[335:320]) +dst[303:296] := Saturate8(a[351:336]) +dst[311:304] := Saturate8(a[367:352]) +dst[319:312] := Saturate8(a[383:368]) +dst[327:320] := Saturate8(b[271:256]) +dst[335:328] := Saturate8(b[287:272]) +dst[343:336] := Saturate8(b[303:288]) +dst[351:344] := Saturate8(b[319:304]) +dst[359:352] := Saturate8(b[335:320]) +dst[367:360] := Saturate8(b[351:336]) +dst[375:368] := Saturate8(b[367:352]) +dst[383:376] := Saturate8(b[383:368]) +dst[391:384] := Saturate8(a[399:384]) +dst[399:392] := Saturate8(a[415:400]) +dst[407:400] := Saturate8(a[431:416]) +dst[415:408] := Saturate8(a[447:432]) +dst[423:416] := Saturate8(a[463:448]) +dst[431:424] := Saturate8(a[479:464]) +dst[439:432] := Saturate8(a[495:480]) +dst[447:440] := Saturate8(a[511:496]) +dst[455:448] := Saturate8(b[399:384]) +dst[463:456] := Saturate8(b[415:400]) +dst[471:464] := Saturate8(b[431:416]) +dst[479:472] := Saturate8(b[447:432]) +dst[487:480] := Saturate8(b[463:448]) +dst[495:488] := Saturate8(b[479:464]) +dst[503:496] := Saturate8(b[495:480]) +dst[511:504] := Saturate8(b[511:496]) +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Convert +
+ + Miscellaneous + + + + + + Convert packed signed 32-bit integers from "a" and "b" to packed 16-bit integers using unsigned saturation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +tmp_dst[15:0] := SaturateU16(a[31:0]) +tmp_dst[31:16] := SaturateU16(a[63:32]) +tmp_dst[47:32] := SaturateU16(a[95:64]) +tmp_dst[63:48] := SaturateU16(a[127:96]) +tmp_dst[79:64] := SaturateU16(b[31:0]) +tmp_dst[95:80] := SaturateU16(b[63:32]) +tmp_dst[111:96] := SaturateU16(b[95:64]) +tmp_dst[127:112] := SaturateU16(b[127:96]) +tmp_dst[143:128] := SaturateU16(a[159:128]) +tmp_dst[159:144] := SaturateU16(a[191:160]) +tmp_dst[175:160] := SaturateU16(a[223:192]) +tmp_dst[191:176] := SaturateU16(a[255:224]) +tmp_dst[207:192] := SaturateU16(b[159:128]) +tmp_dst[223:208] := SaturateU16(b[191:160]) +tmp_dst[239:224] := SaturateU16(b[223:192]) +tmp_dst[255:240] := SaturateU16(b[255:224]) +tmp_dst[271:256] := SaturateU16(a[287:256]) +tmp_dst[287:272] := SaturateU16(a[319:288]) +tmp_dst[303:288] := SaturateU16(a[351:320]) +tmp_dst[319:304] := SaturateU16(a[383:352]) +tmp_dst[335:320] := SaturateU16(b[287:256]) +tmp_dst[351:336] := SaturateU16(b[319:288]) +tmp_dst[367:352] := SaturateU16(b[351:320]) +tmp_dst[383:368] := SaturateU16(b[383:352]) +tmp_dst[399:384] := SaturateU16(a[415:384]) +tmp_dst[415:400] := SaturateU16(a[447:416]) +tmp_dst[431:416] := SaturateU16(a[479:448]) +tmp_dst[447:432] := SaturateU16(a[511:480]) +tmp_dst[463:448] := SaturateU16(b[415:384]) +tmp_dst[479:464] := SaturateU16(b[447:416]) +tmp_dst[495:480] := SaturateU16(b[479:448]) +tmp_dst[511:496] := SaturateU16(b[511:480]) +FOR j := 0 to 31 + i := j*16 + IF k[j] + dst[i+15:i] := tmp_dst[i+15:i] + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Convert +
+ + Miscellaneous + + + + + Convert packed signed 32-bit integers from "a" and "b" to packed 16-bit integers using unsigned saturation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +tmp_dst[15:0] := SaturateU16(a[31:0]) +tmp_dst[31:16] := SaturateU16(a[63:32]) +tmp_dst[47:32] := SaturateU16(a[95:64]) +tmp_dst[63:48] := SaturateU16(a[127:96]) +tmp_dst[79:64] := SaturateU16(b[31:0]) +tmp_dst[95:80] := SaturateU16(b[63:32]) +tmp_dst[111:96] := SaturateU16(b[95:64]) +tmp_dst[127:112] := SaturateU16(b[127:96]) +tmp_dst[143:128] := SaturateU16(a[159:128]) +tmp_dst[159:144] := SaturateU16(a[191:160]) +tmp_dst[175:160] := SaturateU16(a[223:192]) +tmp_dst[191:176] := SaturateU16(a[255:224]) +tmp_dst[207:192] := SaturateU16(b[159:128]) +tmp_dst[223:208] := SaturateU16(b[191:160]) +tmp_dst[239:224] := SaturateU16(b[223:192]) +tmp_dst[255:240] := SaturateU16(b[255:224]) +tmp_dst[271:256] := SaturateU16(a[287:256]) +tmp_dst[287:272] := SaturateU16(a[319:288]) +tmp_dst[303:288] := SaturateU16(a[351:320]) +tmp_dst[319:304] := SaturateU16(a[383:352]) +tmp_dst[335:320] := SaturateU16(b[287:256]) +tmp_dst[351:336] := SaturateU16(b[319:288]) +tmp_dst[367:352] := SaturateU16(b[351:320]) +tmp_dst[383:368] := SaturateU16(b[383:352]) +tmp_dst[399:384] := SaturateU16(a[415:384]) +tmp_dst[415:400] := SaturateU16(a[447:416]) +tmp_dst[431:416] := SaturateU16(a[479:448]) +tmp_dst[447:432] := SaturateU16(a[511:480]) +tmp_dst[463:448] := SaturateU16(b[415:384]) +tmp_dst[479:464] := SaturateU16(b[447:416]) +tmp_dst[495:480] := SaturateU16(b[479:448]) +tmp_dst[511:496] := SaturateU16(b[511:480]) +FOR j := 0 to 31 + i := j*16 + IF k[j] + dst[i+15:i] := tmp_dst[i+15:i] + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Convert +
+ + Miscellaneous + + + + Convert packed signed 32-bit integers from "a" and "b" to packed 16-bit integers using unsigned saturation, and store the results in "dst". + +dst[15:0] := SaturateU16(a[31:0]) +dst[31:16] := SaturateU16(a[63:32]) +dst[47:32] := SaturateU16(a[95:64]) +dst[63:48] := SaturateU16(a[127:96]) +dst[79:64] := SaturateU16(b[31:0]) +dst[95:80] := SaturateU16(b[63:32]) +dst[111:96] := SaturateU16(b[95:64]) +dst[127:112] := SaturateU16(b[127:96]) +dst[143:128] := SaturateU16(a[159:128]) +dst[159:144] := SaturateU16(a[191:160]) +dst[175:160] := SaturateU16(a[223:192]) +dst[191:176] := SaturateU16(a[255:224]) +dst[207:192] := SaturateU16(b[159:128]) +dst[223:208] := SaturateU16(b[191:160]) +dst[239:224] := SaturateU16(b[223:192]) +dst[255:240] := SaturateU16(b[255:224]) +dst[271:256] := SaturateU16(a[287:256]) +dst[287:272] := SaturateU16(a[319:288]) +dst[303:288] := SaturateU16(a[351:320]) +dst[319:304] := SaturateU16(a[383:352]) +dst[335:320] := SaturateU16(b[287:256]) +dst[351:336] := SaturateU16(b[319:288]) +dst[367:352] := SaturateU16(b[351:320]) +dst[383:368] := SaturateU16(b[383:352]) +dst[399:384] := SaturateU16(a[415:384]) +dst[415:400] := SaturateU16(a[447:416]) +dst[431:416] := SaturateU16(a[479:448]) +dst[447:432] := SaturateU16(a[511:480]) +dst[463:448] := SaturateU16(b[415:384]) +dst[479:464] := SaturateU16(b[447:416]) +dst[495:480] := SaturateU16(b[479:448]) +dst[511:496] := SaturateU16(b[511:480]) +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Convert +
+ + Miscellaneous + + + + + + Convert packed signed 16-bit integers from "a" and "b" to packed 8-bit integers using unsigned saturation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +tmp_dst[7:0] := SaturateU8(a[15:0]) +tmp_dst[15:8] := SaturateU8(a[31:16]) +tmp_dst[23:16] := SaturateU8(a[47:32]) +tmp_dst[31:24] := SaturateU8(a[63:48]) +tmp_dst[39:32] := SaturateU8(a[79:64]) +tmp_dst[47:40] := SaturateU8(a[95:80]) +tmp_dst[55:48] := SaturateU8(a[111:96]) +tmp_dst[63:56] := SaturateU8(a[127:112]) +tmp_dst[71:64] := SaturateU8(b[15:0]) +tmp_dst[79:72] := SaturateU8(b[31:16]) +tmp_dst[87:80] := SaturateU8(b[47:32]) +tmp_dst[95:88] := SaturateU8(b[63:48]) +tmp_dst[103:96] := SaturateU8(b[79:64]) +tmp_dst[111:104] := SaturateU8(b[95:80]) +tmp_dst[119:112] := SaturateU8(b[111:96]) +tmp_dst[127:120] := SaturateU8(b[127:112]) +tmp_dst[135:128] := SaturateU8(a[143:128]) +tmp_dst[143:136] := SaturateU8(a[159:144]) +tmp_dst[151:144] := SaturateU8(a[175:160]) +tmp_dst[159:152] := SaturateU8(a[191:176]) +tmp_dst[167:160] := SaturateU8(a[207:192]) +tmp_dst[175:168] := SaturateU8(a[223:208]) +tmp_dst[183:176] := SaturateU8(a[239:224]) +tmp_dst[191:184] := SaturateU8(a[255:240]) +tmp_dst[199:192] := SaturateU8(b[143:128]) +tmp_dst[207:200] := SaturateU8(b[159:144]) +tmp_dst[215:208] := SaturateU8(b[175:160]) +tmp_dst[223:216] := SaturateU8(b[191:176]) +tmp_dst[231:224] := SaturateU8(b[207:192]) +tmp_dst[239:232] := SaturateU8(b[223:208]) +tmp_dst[247:240] := SaturateU8(b[239:224]) +tmp_dst[255:248] := SaturateU8(b[255:240]) +tmp_dst[263:256] := SaturateU8(a[271:256]) +tmp_dst[271:264] := SaturateU8(a[287:272]) +tmp_dst[279:272] := SaturateU8(a[303:288]) +tmp_dst[287:280] := SaturateU8(a[319:304]) +tmp_dst[295:288] := SaturateU8(a[335:320]) +tmp_dst[303:296] := SaturateU8(a[351:336]) +tmp_dst[311:304] := SaturateU8(a[367:352]) +tmp_dst[319:312] := SaturateU8(a[383:368]) +tmp_dst[327:320] := SaturateU8(b[271:256]) +tmp_dst[335:328] := SaturateU8(b[287:272]) +tmp_dst[343:336] := SaturateU8(b[303:288]) +tmp_dst[351:344] := SaturateU8(b[319:304]) +tmp_dst[359:352] := SaturateU8(b[335:320]) +tmp_dst[367:360] := SaturateU8(b[351:336]) +tmp_dst[375:368] := SaturateU8(b[367:352]) +tmp_dst[383:376] := SaturateU8(b[383:368]) +tmp_dst[391:384] := SaturateU8(a[399:384]) +tmp_dst[399:392] := SaturateU8(a[415:400]) +tmp_dst[407:400] := SaturateU8(a[431:416]) +tmp_dst[415:408] := SaturateU8(a[447:432]) +tmp_dst[423:416] := SaturateU8(a[463:448]) +tmp_dst[431:424] := SaturateU8(a[479:464]) +tmp_dst[439:432] := SaturateU8(a[495:480]) +tmp_dst[447:440] := SaturateU8(a[511:496]) +tmp_dst[455:448] := SaturateU8(b[399:384]) +tmp_dst[463:456] := SaturateU8(b[415:400]) +tmp_dst[471:464] := SaturateU8(b[431:416]) +tmp_dst[479:472] := SaturateU8(b[447:432]) +tmp_dst[487:480] := SaturateU8(b[463:448]) +tmp_dst[495:488] := SaturateU8(b[479:464]) +tmp_dst[503:496] := SaturateU8(b[495:480]) +tmp_dst[511:504] := SaturateU8(b[511:496]) +FOR j := 0 to 63 + i := j*8 + IF k[j] + dst[i+7:i] := tmp_dst[i+7:i] + ELSE + dst[i+7:i] := src[i+7:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Convert +
+ + Miscellaneous + + + + + Convert packed signed 16-bit integers from "a" and "b" to packed 8-bit integers using unsigned saturation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +tmp_dst[7:0] := SaturateU8(a[15:0]) +tmp_dst[15:8] := SaturateU8(a[31:16]) +tmp_dst[23:16] := SaturateU8(a[47:32]) +tmp_dst[31:24] := SaturateU8(a[63:48]) +tmp_dst[39:32] := SaturateU8(a[79:64]) +tmp_dst[47:40] := SaturateU8(a[95:80]) +tmp_dst[55:48] := SaturateU8(a[111:96]) +tmp_dst[63:56] := SaturateU8(a[127:112]) +tmp_dst[71:64] := SaturateU8(b[15:0]) +tmp_dst[79:72] := SaturateU8(b[31:16]) +tmp_dst[87:80] := SaturateU8(b[47:32]) +tmp_dst[95:88] := SaturateU8(b[63:48]) +tmp_dst[103:96] := SaturateU8(b[79:64]) +tmp_dst[111:104] := SaturateU8(b[95:80]) +tmp_dst[119:112] := SaturateU8(b[111:96]) +tmp_dst[127:120] := SaturateU8(b[127:112]) +tmp_dst[135:128] := SaturateU8(a[143:128]) +tmp_dst[143:136] := SaturateU8(a[159:144]) +tmp_dst[151:144] := SaturateU8(a[175:160]) +tmp_dst[159:152] := SaturateU8(a[191:176]) +tmp_dst[167:160] := SaturateU8(a[207:192]) +tmp_dst[175:168] := SaturateU8(a[223:208]) +tmp_dst[183:176] := SaturateU8(a[239:224]) +tmp_dst[191:184] := SaturateU8(a[255:240]) +tmp_dst[199:192] := SaturateU8(b[143:128]) +tmp_dst[207:200] := SaturateU8(b[159:144]) +tmp_dst[215:208] := SaturateU8(b[175:160]) +tmp_dst[223:216] := SaturateU8(b[191:176]) +tmp_dst[231:224] := SaturateU8(b[207:192]) +tmp_dst[239:232] := SaturateU8(b[223:208]) +tmp_dst[247:240] := SaturateU8(b[239:224]) +tmp_dst[255:248] := SaturateU8(b[255:240]) +tmp_dst[263:256] := SaturateU8(a[271:256]) +tmp_dst[271:264] := SaturateU8(a[287:272]) +tmp_dst[279:272] := SaturateU8(a[303:288]) +tmp_dst[287:280] := SaturateU8(a[319:304]) +tmp_dst[295:288] := SaturateU8(a[335:320]) +tmp_dst[303:296] := SaturateU8(a[351:336]) +tmp_dst[311:304] := SaturateU8(a[367:352]) +tmp_dst[319:312] := SaturateU8(a[383:368]) +tmp_dst[327:320] := SaturateU8(b[271:256]) +tmp_dst[335:328] := SaturateU8(b[287:272]) +tmp_dst[343:336] := SaturateU8(b[303:288]) +tmp_dst[351:344] := SaturateU8(b[319:304]) +tmp_dst[359:352] := SaturateU8(b[335:320]) +tmp_dst[367:360] := SaturateU8(b[351:336]) +tmp_dst[375:368] := SaturateU8(b[367:352]) +tmp_dst[383:376] := SaturateU8(b[383:368]) +tmp_dst[391:384] := SaturateU8(a[399:384]) +tmp_dst[399:392] := SaturateU8(a[415:400]) +tmp_dst[407:400] := SaturateU8(a[431:416]) +tmp_dst[415:408] := SaturateU8(a[447:432]) +tmp_dst[423:416] := SaturateU8(a[463:448]) +tmp_dst[431:424] := SaturateU8(a[479:464]) +tmp_dst[439:432] := SaturateU8(a[495:480]) +tmp_dst[447:440] := SaturateU8(a[511:496]) +tmp_dst[455:448] := SaturateU8(b[399:384]) +tmp_dst[463:456] := SaturateU8(b[415:400]) +tmp_dst[471:464] := SaturateU8(b[431:416]) +tmp_dst[479:472] := SaturateU8(b[447:432]) +tmp_dst[487:480] := SaturateU8(b[463:448]) +tmp_dst[495:488] := SaturateU8(b[479:464]) +tmp_dst[503:496] := SaturateU8(b[495:480]) +tmp_dst[511:504] := SaturateU8(b[511:496]) +FOR j := 0 to 63 + i := j*8 + IF k[j] + dst[i+7:i] := tmp_dst[i+7:i] + ELSE + dst[i+7:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Convert +
+ + Miscellaneous + + + + Convert packed signed 16-bit integers from "a" and "b" to packed 8-bit integers using unsigned saturation, and store the results in "dst". + +dst[7:0] := SaturateU8(a[15:0]) +dst[15:8] := SaturateU8(a[31:16]) +dst[23:16] := SaturateU8(a[47:32]) +dst[31:24] := SaturateU8(a[63:48]) +dst[39:32] := SaturateU8(a[79:64]) +dst[47:40] := SaturateU8(a[95:80]) +dst[55:48] := SaturateU8(a[111:96]) +dst[63:56] := SaturateU8(a[127:112]) +dst[71:64] := SaturateU8(b[15:0]) +dst[79:72] := SaturateU8(b[31:16]) +dst[87:80] := SaturateU8(b[47:32]) +dst[95:88] := SaturateU8(b[63:48]) +dst[103:96] := SaturateU8(b[79:64]) +dst[111:104] := SaturateU8(b[95:80]) +dst[119:112] := SaturateU8(b[111:96]) +dst[127:120] := SaturateU8(b[127:112]) +dst[135:128] := SaturateU8(a[143:128]) +dst[143:136] := SaturateU8(a[159:144]) +dst[151:144] := SaturateU8(a[175:160]) +dst[159:152] := SaturateU8(a[191:176]) +dst[167:160] := SaturateU8(a[207:192]) +dst[175:168] := SaturateU8(a[223:208]) +dst[183:176] := SaturateU8(a[239:224]) +dst[191:184] := SaturateU8(a[255:240]) +dst[199:192] := SaturateU8(b[143:128]) +dst[207:200] := SaturateU8(b[159:144]) +dst[215:208] := SaturateU8(b[175:160]) +dst[223:216] := SaturateU8(b[191:176]) +dst[231:224] := SaturateU8(b[207:192]) +dst[239:232] := SaturateU8(b[223:208]) +dst[247:240] := SaturateU8(b[239:224]) +dst[255:248] := SaturateU8(b[255:240]) +dst[263:256] := SaturateU8(a[271:256]) +dst[271:264] := SaturateU8(a[287:272]) +dst[279:272] := SaturateU8(a[303:288]) +dst[287:280] := SaturateU8(a[319:304]) +dst[295:288] := SaturateU8(a[335:320]) +dst[303:296] := SaturateU8(a[351:336]) +dst[311:304] := SaturateU8(a[367:352]) +dst[319:312] := SaturateU8(a[383:368]) +dst[327:320] := SaturateU8(b[271:256]) +dst[335:328] := SaturateU8(b[287:272]) +dst[343:336] := SaturateU8(b[303:288]) +dst[351:344] := SaturateU8(b[319:304]) +dst[359:352] := SaturateU8(b[335:320]) +dst[367:360] := SaturateU8(b[351:336]) +dst[375:368] := SaturateU8(b[367:352]) +dst[383:376] := SaturateU8(b[383:368]) +dst[391:384] := SaturateU8(a[399:384]) +dst[399:392] := SaturateU8(a[415:400]) +dst[407:400] := SaturateU8(a[431:416]) +dst[415:408] := SaturateU8(a[447:432]) +dst[423:416] := SaturateU8(a[463:448]) +dst[431:424] := SaturateU8(a[479:464]) +dst[439:432] := SaturateU8(a[495:480]) +dst[447:440] := SaturateU8(a[511:496]) +dst[455:448] := SaturateU8(b[399:384]) +dst[463:456] := SaturateU8(b[415:400]) +dst[471:464] := SaturateU8(b[431:416]) +dst[479:472] := SaturateU8(b[447:432]) +dst[487:480] := SaturateU8(b[463:448]) +dst[495:488] := SaturateU8(b[479:464]) +dst[503:496] := SaturateU8(b[495:480]) +dst[511:504] := SaturateU8(b[511:496]) +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Convert +
+ + + + Convert packed signed 16-bit integers in "a" to packed 8-bit integers with signed saturation, and store the results in "dst". + +FOR j := 0 to 31 + i := 16*j + l := 8*j + dst[l+7:l] := Saturate8(a[i+15:i]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW +
immintrin.h
+ Convert +
+ + + + + + Convert packed signed 16-bit integers in "a" to packed 8-bit integers with signed saturation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := 16*j + l := 8*j + IF k[j] + dst[l+7:l] := Saturate8(a[i+15:i]) + ELSE + dst[l+7:l] := src[l+7:l] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW +
immintrin.h
+ Convert +
+ + Store + + + + + Convert packed signed 16-bit integers in "a" to packed 8-bit integers with signed saturation, and store the active results (those with their respective bit set in writemask "k") to unaligned memory at "base_addr". + +FOR j := 0 to 31 + i := 16*j + l := 8*j + IF k[j] + MEM[base_addr+l+7:base_addr+l] := Saturate8(a[i+15:i]) + FI +ENDFOR + + + AVX512BW +
immintrin.h
+ Convert +
+ + + + + Convert packed signed 16-bit integers in "a" to packed 8-bit integers with signed saturation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := 16*j + l := 8*j + IF k[j] + dst[l+7:l] := Saturate8(a[i+15:i]) + ELSE + dst[l+7:l] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW +
immintrin.h
+ Convert +
+ + + + Sign extend packed 8-bit integers in "a" to packed 16-bit integers, and store the results in "dst". + +FOR j := 0 to 31 + i := j*8 + l := j*16 + dst[l+15:l] := SignExtend16(a[i+7:i]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Convert +
+ + + + + + Sign extend packed 8-bit integers in "a" to packed 16-bit integers, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*8 + l := j*16 + IF k[j] + dst[l+15:l] := SignExtend16(a[i+7:i]) + ELSE + dst[l+15:l] := src[l+15:l] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Convert +
+ + + + + Sign extend packed 8-bit integers in "a" to packed 16-bit integers, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*8 + l := j*16 + IF k[j] + dst[l+15:l] := SignExtend16(a[i+7:i]) + ELSE + dst[l+15:l] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Convert +
+ + + + Convert packed unsigned 16-bit integers in "a" to packed unsigned 8-bit integers with unsigned saturation, and store the results in "dst". + +FOR j := 0 to 31 + i := 16*j + l := 8*j + dst[l+7:l] := SaturateU8(a[i+15:i]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW +
immintrin.h
+ Convert +
+ + + + + + Convert packed unsigned 16-bit integers in "a" to packed unsigned 8-bit integers with unsigned saturation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := 16*j + l := 8*j + IF k[j] + dst[l+7:l] := SaturateU8(a[i+15:i]) + ELSE + dst[l+7:l] := src[l+7:l] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW +
immintrin.h
+ Convert +
+ + Store + + + + + Convert packed unsigned 16-bit integers in "a" to packed unsigned 8-bit integers with unsigned saturation, and store the active results (those with their respective bit set in writemask "k") to unaligned memory at "base_addr". + +FOR j := 0 to 31 + i := 16*j + l := 8*j + IF k[j] + MEM[base_addr+l+7:base_addr+l] := SaturateU8(a[i+15:i]) + FI +ENDFOR + + + AVX512BW +
immintrin.h
+ Convert +
+ + + + + Convert packed unsigned 16-bit integers in "a" to packed unsigned 8-bit integers with unsigned saturation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := 16*j + l := 8*j + IF k[j] + dst[l+7:l] := SaturateU8(a[i+15:i]) + ELSE + dst[l+7:l] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW +
immintrin.h
+ Convert +
+ + + + Convert packed 16-bit integers in "a" to packed 8-bit integers with truncation, and store the results in "dst". + +FOR j := 0 to 31 + i := 16*j + l := 8*j + dst[l+7:l] := Truncate8(a[i+15:i]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW +
immintrin.h
+ Convert +
+ + + + + + Convert packed 16-bit integers in "a" to packed 8-bit integers with truncation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := 16*j + l := 8*j + IF k[j] + dst[l+7:l] := Truncate8(a[i+15:i]) + ELSE + dst[l+7:l] := src[l+7:l] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW +
immintrin.h
+ Convert +
+ + Store + + + + + Convert packed 16-bit integers in "a" to packed 8-bit integers with truncation, and store the active results (those with their respective bit set in writemask "k") to unaligned memory at "base_addr". + +FOR j := 0 to 31 + i := 16*j + l := 8*j + IF k[j] + MEM[base_addr+l+7:base_addr+l] := Truncate8(a[i+15:i]) + FI +ENDFOR + + + AVX512BW +
immintrin.h
+ Convert +
+ + + + + Convert packed 16-bit integers in "a" to packed 8-bit integers with truncation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := 16*j + l := 8*j + IF k[j] + dst[l+7:l] := Truncate8(a[i+15:i]) + ELSE + dst[l+7:l] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512BW +
immintrin.h
+ Convert +
+ + + + Zero extend packed unsigned 8-bit integers in "a" to packed 16-bit integers, and store the results in "dst". + +FOR j := 0 to 31 + i := j*8 + l := j*16 + dst[l+15:l] := ZeroExtend16(a[i+7:i]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Convert +
+ + + + + + Zero extend packed unsigned 8-bit integers in "a" to packed 16-bit integers, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*8 + l := j*16 + IF k[j] + dst[l+15:l] := ZeroExtend16(a[i+7:i]) + ELSE + dst[l+15:l] := src[l+15:l] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Convert +
+ + + + + Zero extend packed unsigned 8-bit integers in "a" to packed 16-bit integers, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*8 + l := j*16 + IF k[j] + dst[l+15:l] := ZeroExtend16(a[i+7:i]) + ELSE + dst[l+15:l] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Convert +
+ + + + + + Broadcast 8-bit integer "a" to all elements of "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 63 + i := j*8 + IF k[j] + dst[i+7:i] := a[7:0] + ELSE + dst[i+7:i] := src[i+7:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Set +
+ + + + + Broadcast 8-bit integer "a" to all elements of "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 63 + i := j*8 + IF k[j] + dst[i+7:i] := a[7:0] + ELSE + dst[i+7:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Set +
+ + + + + + Broadcast 16-bit integer "a" to all elements of "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*16 + IF k[j] + dst[i+15:i] := a[15:0] + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Set +
+ + + + + Broadcast the low packed 16-bit integer from "a" to all elements of "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*16 + IF k[j] + dst[i+15:i] := a[15:0] + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Set +
+ + + + + + Compare packed signed 8-bit integers in "a" and "b" based on the comparison operand specified by "imm8", and store the results in mask vector "k". + CASE (imm8[2:0]) OF +0: OP := _MM_CMPINT_EQ +1: OP := _MM_CMPINT_LT +2: OP := _MM_CMPINT_LE +3: OP := _MM_CMPINT_FALSE +4: OP := _MM_CMPINT_NE +5: OP := _MM_CMPINT_NLT +6: OP := _MM_CMPINT_NLE +7: OP := _MM_CMPINT_TRUE +ESAC +FOR j := 0 to 63 + i := j*8 + k[j] := ( a[i+7:i] OP b[i+7:i] ) ? 1 : 0 +ENDFOR +k[MAX:64] := 0 + + + AVX512BW +
immintrin.h
+ Compare +
+ + + + + Compare packed signed 8-bit integers in "a" and "b" for equality, and store the results in mask vector "k". + +FOR j := 0 to 63 + i := j*8 + k[j] := ( a[i+7:i] == b[i+7:i] ) ? 1 : 0 +ENDFOR +k[MAX:64] := 0 + + + AVX512BW +
immintrin.h
+ Compare +
+ + + + + Compare packed signed 8-bit integers in "a" and "b" for greater-than-or-equal, and store the results in mask vector "k". + +FOR j := 0 to 63 + i := j*8 + k[j] := ( a[i+7:i] >= b[i+7:i] ) ? 1 : 0 +ENDFOR +k[MAX:64] := 0 + + + AVX512BW +
immintrin.h
+ Compare +
+ + + + + Compare packed signed 8-bit integers in "a" and "b" for greater-than, and store the results in mask vector "k". + +FOR j := 0 to 63 + i := j*8 + k[j] := ( a[i+7:i] > b[i+7:i] ) ? 1 : 0 +ENDFOR +k[MAX:64] := 0 + + + AVX512BW +
immintrin.h
+ Compare +
+ + + + + Compare packed signed 8-bit integers in "a" and "b" for less-than-or-equal, and store the results in mask vector "k". + +FOR j := 0 to 63 + i := j*8 + k[j] := ( a[i+7:i] <= b[i+7:i] ) ? 1 : 0 +ENDFOR +k[MAX:64] := 0 + + + AVX512BW +
immintrin.h
+ Compare +
+ + + + + Compare packed signed 8-bit integers in "a" and "b" for less-than, and store the results in mask vector "k". + +FOR j := 0 to 63 + i := j*8 + k[j] := ( a[i+7:i] < b[i+7:i] ) ? 1 : 0 +ENDFOR +k[MAX:64] := 0 + + + AVX512BW +
immintrin.h
+ Compare +
+ + + + + Compare packed signed 8-bit integers in "a" and "b" for not-equal, and store the results in mask vector "k". + +FOR j := 0 to 63 + i := j*8 + k[j] := ( a[i+7:i] != b[i+7:i] ) ? 1 : 0 +ENDFOR +k[MAX:64] := 0 + + + AVX512BW +
immintrin.h
+ Compare +
+ + + + + + + Compare packed signed 8-bit integers in "a" and "b" based on the comparison operand specified by "imm8", and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + CASE (imm8[2:0]) OF +0: OP := _MM_CMPINT_EQ +1: OP := _MM_CMPINT_LT +2: OP := _MM_CMPINT_LE +3: OP := _MM_CMPINT_FALSE +4: OP := _MM_CMPINT_NE +5: OP := _MM_CMPINT_NLT +6: OP := _MM_CMPINT_NLE +7: OP := _MM_CMPINT_TRUE +ESAC +FOR j := 0 to 63 + i := j*8 + IF k1[j] + k[j] := ( a[i+7:i] OP b[i+7:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:64] := 0 + + + AVX512BW +
immintrin.h
+ Compare +
+ + + + + + Compare packed signed 8-bit integers in "a" and "b" for equality, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 63 + i := j*8 + IF k1[j] + k[j] := ( a[i+7:i] == b[i+7:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:64] := 0 + + + AVX512BW +
immintrin.h
+ Compare +
+ + + + + + Compare packed signed 8-bit integers in "a" and "b" for greater-than-or-equal, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 63 + i := j*8 + IF k1[j] + k[j] := ( a[i+7:i] >= b[i+7:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:64] := 0 + + + AVX512BW +
immintrin.h
+ Compare +
+ + + + + + Compare packed signed 8-bit integers in "a" and "b" for greater-than, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 63 + i := j*8 + IF k1[j] + k[j] := ( a[i+7:i] > b[i+7:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:64] := 0 + + + AVX512BW +
immintrin.h
+ Compare +
+ + + + + + Compare packed signed 8-bit integers in "a" and "b" for less-than-or-equal, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 63 + i := j*8 + IF k1[j] + k[j] := ( a[i+7:i] <= b[i+7:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:64] := 0 + + + AVX512BW +
immintrin.h
+ Compare +
+ + + + + + Compare packed signed 8-bit integers in "a" and "b" for less-than, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 63 + i := j*8 + IF k1[j] + k[j] := ( a[i+7:i] < b[i+7:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:64] := 0 + + + AVX512BW +
immintrin.h
+ Compare +
+ + + + + + Compare packed signed 8-bit integers in "a" and "b" for not-equal, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 63 + i := j*8 + IF k1[j] + k[j] := ( a[i+7:i] != b[i+7:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:64] := 0 + + + AVX512BW +
immintrin.h
+ Compare +
+ + + + + + Compare packed unsigned 8-bit integers in "a" and "b" based on the comparison operand specified by "imm8", and store the results in mask vector "k". + CASE (imm8[2:0]) OF +0: OP := _MM_CMPINT_EQ +1: OP := _MM_CMPINT_LT +2: OP := _MM_CMPINT_LE +3: OP := _MM_CMPINT_FALSE +4: OP := _MM_CMPINT_NE +5: OP := _MM_CMPINT_NLT +6: OP := _MM_CMPINT_NLE +7: OP := _MM_CMPINT_TRUE +ESAC +FOR j := 0 to 63 + i := j*8 + k[j] := ( a[i+7:i] OP b[i+7:i] ) ? 1 : 0 +ENDFOR +k[MAX:64] := 0 + + + AVX512BW +
immintrin.h
+ Compare +
+ + + + + Compare packed unsigned 8-bit integers in "a" and "b" for equality, and store the results in mask vector "k". + +FOR j := 0 to 63 + i := j*8 + k[j] := ( a[i+7:i] == b[i+7:i] ) ? 1 : 0 +ENDFOR +k[MAX:64] := 0 + + + AVX512BW +
immintrin.h
+ Compare +
+ + + + + Compare packed unsigned 8-bit integers in "a" and "b" for greater-than-or-equal, and store the results in mask vector "k". + +FOR j := 0 to 63 + i := j*8 + k[j] := ( a[i+7:i] >= b[i+7:i] ) ? 1 : 0 +ENDFOR +k[MAX:64] := 0 + + + AVX512BW +
immintrin.h
+ Compare +
+ + + + + Compare packed unsigned 8-bit integers in "a" and "b" for greater-than, and store the results in mask vector "k". + +FOR j := 0 to 63 + i := j*8 + k[j] := ( a[i+7:i] > b[i+7:i] ) ? 1 : 0 +ENDFOR +k[MAX:64] := 0 + + + AVX512BW +
immintrin.h
+ Compare +
+ + + + + Compare packed unsigned 8-bit integers in "a" and "b" for less-than-or-equal, and store the results in mask vector "k". + +FOR j := 0 to 63 + i := j*8 + k[j] := ( a[i+7:i] <= b[i+7:i] ) ? 1 : 0 +ENDFOR +k[MAX:64] := 0 + + + AVX512BW +
immintrin.h
+ Compare +
+ + + + + Compare packed unsigned 8-bit integers in "a" and "b" for less-than, and store the results in mask vector "k". + +FOR j := 0 to 63 + i := j*8 + k[j] := ( a[i+7:i] < b[i+7:i] ) ? 1 : 0 +ENDFOR +k[MAX:64] := 0 + + + AVX512BW +
immintrin.h
+ Compare +
+ + + + + Compare packed unsigned 8-bit integers in "a" and "b" for not-equal, and store the results in mask vector "k". + +FOR j := 0 to 63 + i := j*8 + k[j] := ( a[i+7:i] != b[i+7:i] ) ? 1 : 0 +ENDFOR +k[MAX:64] := 0 + + + AVX512BW +
immintrin.h
+ Compare +
+ + + + + + + Compare packed unsigned 8-bit integers in "a" and "b" based on the comparison operand specified by "imm8", and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + CASE (imm8[2:0]) OF +0: OP := _MM_CMPINT_EQ +1: OP := _MM_CMPINT_LT +2: OP := _MM_CMPINT_LE +3: OP := _MM_CMPINT_FALSE +4: OP := _MM_CMPINT_NE +5: OP := _MM_CMPINT_NLT +6: OP := _MM_CMPINT_NLE +7: OP := _MM_CMPINT_TRUE +ESAC +FOR j := 0 to 63 + i := j*8 + IF k1[j] + k[j] := ( a[i+7:i] OP b[i+7:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:64] := 0 + + + AVX512BW +
immintrin.h
+ Compare +
+ + + + + + Compare packed unsigned 8-bit integers in "a" and "b" for equality, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 63 + i := j*8 + IF k1[j] + k[j] := ( a[i+7:i] == b[i+7:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:64] := 0 + + + AVX512BW +
immintrin.h
+ Compare +
+ + + + + + Compare packed unsigned 8-bit integers in "a" and "b" for greater-than-or-equal, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 63 + i := j*8 + IF k1[j] + k[j] := ( a[i+7:i] >= b[i+7:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:64] := 0 + + + AVX512BW +
immintrin.h
+ Compare +
+ + + + + + Compare packed unsigned 8-bit integers in "a" and "b" for greater-than, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 63 + i := j*8 + IF k1[j] + k[j] := ( a[i+7:i] > b[i+7:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:64] := 0 + + + AVX512BW +
immintrin.h
+ Compare +
+ + + + + + Compare packed unsigned 8-bit integers in "a" and "b" for less-than-or-equal, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 63 + i := j*8 + IF k1[j] + k[j] := ( a[i+7:i] <= b[i+7:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:64] := 0 + + + AVX512BW +
immintrin.h
+ Compare +
+ + + + + + Compare packed unsigned 8-bit integers in "a" and "b" for less-than, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 63 + i := j*8 + IF k1[j] + k[j] := ( a[i+7:i] < b[i+7:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:64] := 0 + + + AVX512BW +
immintrin.h
+ Compare +
+ + + + + + Compare packed unsigned 8-bit integers in "a" and "b" for not-equal, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 63 + i := j*8 + IF k1[j] + k[j] := ( a[i+7:i] != b[i+7:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:64] := 0 + + + AVX512BW +
immintrin.h
+ Compare +
+ + + + + + Compare packed unsigned 16-bit integers in "a" and "b" based on the comparison operand specified by "imm8", and store the results in mask vector "k". + CASE (imm8[2:0]) OF +0: OP := _MM_CMPINT_EQ +1: OP := _MM_CMPINT_LT +2: OP := _MM_CMPINT_LE +3: OP := _MM_CMPINT_FALSE +4: OP := _MM_CMPINT_NE +5: OP := _MM_CMPINT_NLT +6: OP := _MM_CMPINT_NLE +7: OP := _MM_CMPINT_TRUE +ESAC +FOR j := 0 to 31 + i := j*16 + k[j] := ( a[i+15:i] OP b[i+15:i] ) ? 1 : 0 +ENDFOR +k[MAX:32] := 0 + + + AVX512BW +
immintrin.h
+ Compare +
+ + + + + Compare packed unsigned 16-bit integers in "a" and "b" for equality, and store the results in mask vector "k". + +FOR j := 0 to 31 + i := j*16 + k[j] := ( a[i+15:i] == b[i+15:i] ) ? 1 : 0 +ENDFOR +k[MAX:32] := 0 + + + AVX512BW +
immintrin.h
+ Compare +
+ + + + + Compare packed unsigned 16-bit integers in "a" and "b" for greater-than-or-equal, and store the results in mask vector "k". + +FOR j := 0 to 31 + i := j*16 + k[j] := ( a[i+15:i] >= b[i+15:i] ) ? 1 : 0 +ENDFOR +k[MAX:32] := 0 + + + AVX512BW +
immintrin.h
+ Compare +
+ + + + + Compare packed unsigned 16-bit integers in "a" and "b" for greater-than, and store the results in mask vector "k". + +FOR j := 0 to 31 + i := j*16 + k[j] := ( a[i+15:i] > b[i+15:i] ) ? 1 : 0 +ENDFOR +k[MAX:32] := 0 + + + AVX512BW +
immintrin.h
+ Compare +
+ + + + + Compare packed unsigned 16-bit integers in "a" and "b" for less-than-or-equal, and store the results in mask vector "k". + +FOR j := 0 to 31 + i := j*16 + k[j] := ( a[i+15:i] <= b[i+15:i] ) ? 1 : 0 +ENDFOR +k[MAX:32] := 0 + + + AVX512BW +
immintrin.h
+ Compare +
+ + + + + Compare packed unsigned 16-bit integers in "a" and "b" for less-than, and store the results in mask vector "k". + +FOR j := 0 to 31 + i := j*16 + k[j] := ( a[i+15:i] < b[i+15:i] ) ? 1 : 0 +ENDFOR +k[MAX:32] := 0 + + + AVX512BW +
immintrin.h
+ Compare +
+ + + + + Compare packed unsigned 16-bit integers in "a" and "b" for not-equal, and store the results in mask vector "k". + +FOR j := 0 to 31 + i := j*16 + k[j] := ( a[i+15:i] != b[i+15:i] ) ? 1 : 0 +ENDFOR +k[MAX:32] := 0 + + + AVX512BW +
immintrin.h
+ Compare +
+ + + + + + + Compare packed unsigned 16-bit integers in "a" and "b" based on the comparison operand specified by "imm8", and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + CASE (imm8[2:0]) OF +0: OP := _MM_CMPINT_EQ +1: OP := _MM_CMPINT_LT +2: OP := _MM_CMPINT_LE +3: OP := _MM_CMPINT_FALSE +4: OP := _MM_CMPINT_NE +5: OP := _MM_CMPINT_NLT +6: OP := _MM_CMPINT_NLE +7: OP := _MM_CMPINT_TRUE +ESAC +FOR j := 0 to 31 + i := j*16 + IF k1[j] + k[j] := ( a[i+15:i] OP b[i+15:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:32] := 0 + + + AVX512BW +
immintrin.h
+ Compare +
+ + + + + + Compare packed unsigned 16-bit integers in "a" and "b" for equality, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*16 + IF k1[j] + k[j] := ( a[i+15:i] == b[i+15:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:32] := 0 + + + AVX512BW +
immintrin.h
+ Compare +
+ + + + + + Compare packed unsigned 16-bit integers in "a" and "b" for greater-than-or-equal, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*16 + IF k1[j] + k[j] := ( a[i+15:i] >= b[i+15:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:32] := 0 + + + AVX512BW +
immintrin.h
+ Compare +
+ + + + + + Compare packed unsigned 16-bit integers in "a" and "b" for greater-than, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*16 + IF k1[j] + k[j] := ( a[i+15:i] > b[i+15:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:32] := 0 + + + AVX512BW +
immintrin.h
+ Compare +
+ + + + + + Compare packed unsigned 16-bit integers in "a" and "b" for less-than-or-equal, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*16 + IF k1[j] + k[j] := ( a[i+15:i] <= b[i+15:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:32] := 0 + + + AVX512BW +
immintrin.h
+ Compare +
+ + + + + + Compare packed unsigned 16-bit integers in "a" and "b" for less-than, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*16 + IF k1[j] + k[j] := ( a[i+15:i] < b[i+15:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:32] := 0 + + + AVX512BW +
immintrin.h
+ Compare +
+ + + + + + Compare packed unsigned 16-bit integers in "a" and "b" for not-equal, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*16 + IF k1[j] + k[j] := ( a[i+15:i] != b[i+15:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:32] := 0 + + + AVX512BW +
immintrin.h
+ Compare +
+ + + + + + Compare packed signed 16-bit integers in "a" and "b" based on the comparison operand specified by "imm8", and store the results in mask vector "k". + CASE (imm8[2:0]) OF +0: OP := _MM_CMPINT_EQ +1: OP := _MM_CMPINT_LT +2: OP := _MM_CMPINT_LE +3: OP := _MM_CMPINT_FALSE +4: OP := _MM_CMPINT_NE +5: OP := _MM_CMPINT_NLT +6: OP := _MM_CMPINT_NLE +7: OP := _MM_CMPINT_TRUE +ESAC +FOR j := 0 to 31 + i := j*16 + k[j] := ( a[i+15:i] OP b[i+15:i] ) ? 1 : 0 +ENDFOR +k[MAX:32] := 0 + + + AVX512BW +
immintrin.h
+ Compare +
+ + + + + Compare packed signed 16-bit integers in "a" and "b" for equality, and store the results in mask vector "k". + +FOR j := 0 to 31 + i := j*16 + k[j] := ( a[i+15:i] == b[i+15:i] ) ? 1 : 0 +ENDFOR +k[MAX:32] := 0 + + + AVX512BW +
immintrin.h
+ Compare +
+ + + + + Compare packed signed 16-bit integers in "a" and "b" for greater-than-or-equal, and store the results in mask vector "k". + +FOR j := 0 to 31 + i := j*16 + k[j] := ( a[i+15:i] >= b[i+15:i] ) ? 1 : 0 +ENDFOR +k[MAX:32] := 0 + + + AVX512BW +
immintrin.h
+ Compare +
+ + + + + Compare packed signed 16-bit integers in "a" and "b" for greater-than, and store the results in mask vector "k". + +FOR j := 0 to 31 + i := j*16 + k[j] := ( a[i+15:i] > b[i+15:i] ) ? 1 : 0 +ENDFOR +k[MAX:32] := 0 + + + AVX512BW +
immintrin.h
+ Compare +
+ + + + + Compare packed signed 16-bit integers in "a" and "b" for less-than-or-equal, and store the results in mask vector "k". + +FOR j := 0 to 31 + i := j*16 + k[j] := ( a[i+15:i] <= b[i+15:i] ) ? 1 : 0 +ENDFOR +k[MAX:32] := 0 + + + AVX512BW +
immintrin.h
+ Compare +
+ + + + + Compare packed signed 16-bit integers in "a" and "b" for less-than, and store the results in mask vector "k". + +FOR j := 0 to 31 + i := j*16 + k[j] := ( a[i+15:i] < b[i+15:i] ) ? 1 : 0 +ENDFOR +k[MAX:32] := 0 + + + AVX512BW +
immintrin.h
+ Compare +
+ + + + + Compare packed signed 16-bit integers in "a" and "b" for not-equal, and store the results in mask vector "k". + +FOR j := 0 to 31 + i := j*16 + k[j] := ( a[i+15:i] != b[i+15:i] ) ? 1 : 0 +ENDFOR +k[MAX:32] := 0 + + + AVX512BW +
immintrin.h
+ Compare +
+ + + + + + + Compare packed signed 16-bit integers in "a" and "b" based on the comparison operand specified by "imm8", and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + CASE (imm8[2:0]) OF +0: OP := _MM_CMPINT_EQ +1: OP := _MM_CMPINT_LT +2: OP := _MM_CMPINT_LE +3: OP := _MM_CMPINT_FALSE +4: OP := _MM_CMPINT_NE +5: OP := _MM_CMPINT_NLT +6: OP := _MM_CMPINT_NLE +7: OP := _MM_CMPINT_TRUE +ESAC +FOR j := 0 to 31 + i := j*16 + IF k1[j] + k[j] := ( a[i+15:i] OP b[i+15:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:32] := 0 + + + AVX512BW +
immintrin.h
+ Compare +
+ + + + + + Compare packed signed 16-bit integers in "a" and "b" for equality, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*16 + IF k1[j] + k[j] := ( a[i+15:i] == b[i+15:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:32] := 0 + + + AVX512BW +
immintrin.h
+ Compare +
+ + + + + + Compare packed signed 16-bit integers in "a" and "b" for greater-than-or-equal, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*16 + IF k1[j] + k[j] := ( a[i+15:i] >= b[i+15:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:32] := 0 + + + AVX512BW +
immintrin.h
+ Compare +
+ + + + + + Compare packed signed 16-bit integers in "a" and "b" for greater-than, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*16 + IF k1[j] + k[j] := ( a[i+15:i] > b[i+15:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:32] := 0 + + + AVX512BW +
immintrin.h
+ Compare +
+ + + + + + Compare packed signed 16-bit integers in "a" and "b" for less-than-or-equal, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*16 + IF k1[j] + k[j] := ( a[i+15:i] <= b[i+15:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:32] := 0 + + + AVX512BW +
immintrin.h
+ Compare +
+ + + + + + Compare packed signed 16-bit integers in "a" and "b" for less-than, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*16 + IF k1[j] + k[j] := ( a[i+15:i] < b[i+15:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:32] := 0 + + + AVX512BW +
immintrin.h
+ Compare +
+ + + + + + Compare packed signed 16-bit integers in "a" and "b" for not-equal, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*16 + IF k1[j] + k[j] := ( a[i+15:i] != b[i+15:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:32] := 0 + + + AVX512BW +
immintrin.h
+ Compare +
+ + + + + + Compute the bitwise AND of packed 8-bit integers in "a" and "b", producing intermediate 8-bit values, and set the corresponding bit in result mask "k" (subject to writemask "k") if the intermediate value is non-zero. + +FOR j := 0 to 63 + i := j*8 + IF k1[j] + k[j] := ((a[i+7:i] AND b[i+7:i]) != 0) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:64] := 0 + + + AVX512BW +
immintrin.h
+ Compare +
+ + + + + Compute the bitwise AND of packed 8-bit integers in "a" and "b", producing intermediate 8-bit values, and set the corresponding bit in result mask "k" if the intermediate value is non-zero. + +FOR j := 0 to 63 + i := j*8 + k[j] := ((a[i+7:i] AND b[i+7:i]) != 0) ? 1 : 0 +ENDFOR +k[MAX:64] := 0 + + + AVX512BW +
immintrin.h
+ Compare +
+ + + + + + Compute the bitwise AND of packed 16-bit integers in "a" and "b", producing intermediate 16-bit values, and set the corresponding bit in result mask "k" (subject to writemask "k") if the intermediate value is non-zero. + +FOR j := 0 to 31 + i := j*16 + IF k1[j] + k[j] := ((a[i+15:i] AND b[i+15:i]) != 0) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:32] := 0 + + + AVX512BW +
immintrin.h
+ Compare +
+ + + + + Compute the bitwise AND of packed 16-bit integers in "a" and "b", producing intermediate 16-bit values, and set the corresponding bit in result mask "k" if the intermediate value is non-zero. + +FOR j := 0 to 31 + i := j*16 + k[j] := ((a[i+15:i] AND b[i+15:i]) != 0) ? 1 : 0 +ENDFOR +k[MAX:32] := 0 + + + AVX512BW +
immintrin.h
+ Compare +
+ + + + + + Compute the bitwise NAND of packed 8-bit integers in "a" and "b", producing intermediate 8-bit values, and set the corresponding bit in result mask "k" (subject to writemask "k") if the intermediate value is zero. + +FOR j := 0 to 63 + i := j*8 + IF k1[j] + k[j] := ((a[i+7:i] AND b[i+7:i]) == 0) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:64] := 0 + + + AVX512BW +
immintrin.h
+ Compare +
+ + + + + Compute the bitwise NAND of packed 8-bit integers in "a" and "b", producing intermediate 8-bit values, and set the corresponding bit in result mask "k" if the intermediate value is zero. + +FOR j := 0 to 63 + i := j*8 + k[j] := ((a[i+7:i] AND b[i+7:i]) == 0) ? 1 : 0 +ENDFOR +k[MAX:64] := 0 + + + AVX512BW +
immintrin.h
+ Compare +
+ + + + + + Compute the bitwise NAND of packed 16-bit integers in "a" and "b", producing intermediate 16-bit values, and set the corresponding bit in result mask "k" (subject to writemask "k") if the intermediate value is zero. + +FOR j := 0 to 31 + i := j*16 + IF k1[j] + k[j] := ((a[i+15:i] AND b[i+15:i]) == 0) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:32] := 0 + + + AVX512BW +
immintrin.h
+ Compare +
+ + + + + Compute the bitwise NAND of packed 16-bit integers in "a" and "b", producing intermediate 16-bit values, and set the corresponding bit in result mask "k" if the intermediate value is zero. + +FOR j := 0 to 31 + i := j*16 + k[j] := ((a[i+15:i] AND b[i+15:i]) == 0) ? 1 : 0 +ENDFOR +k[MAX:32] := 0 + + + AVX512BW +
immintrin.h
+ Compare +
+ + + + + Shift 128-bit lanes in "a" left by "imm8" bytes while shifting in zeros, and store the results in "dst". + +tmp := imm8[7:0] +IF tmp > 15 + tmp := 16 +FI +dst[127:0] := a[127:0] << (tmp*8) +dst[255:128] := a[255:128] << (tmp*8) +dst[383:256] := a[383:256] << (tmp*8) +dst[511:384] := a[511:384] << (tmp*8) +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Shift +
+ + + + + + + Shift packed 16-bit integers in "a" left by the amount specified by the corresponding element in "count" while shifting in zeros, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*16 + IF k[j] + IF count[i+15:i] < 16 + dst[i+15:i] := ZeroExtend16(a[i+15:i] << count[i+15:i]) + ELSE + dst[i+15:i] := 0 + FI + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Shift +
+ + + + + + Shift packed 16-bit integers in "a" left by the amount specified by the corresponding element in "count" while shifting in zeros, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*16 + IF k[j] + IF count[i+15:i] < 16 + dst[i+15:i] := ZeroExtend16(a[i+15:i] << count[i+15:i]) + ELSE + dst[i+15:i] := 0 + FI + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Shift +
+ + + + + Shift packed 16-bit integers in "a" left by the amount specified by the corresponding element in "count" while shifting in zeros, and store the results in "dst". + +FOR j := 0 to 31 + i := j*16 + IF count[i+15:i] < 16 + dst[i+15:i] := ZeroExtend16(a[i+15:i] << count[i+15:i]) + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Shift +
+ + + + + + + Shift packed 16-bit integers in "a" left by "count" while shifting in zeros, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*16 + IF k[j] + IF count[63:0] > 15 + dst[i+15:i] := 0 + ELSE + dst[i+15:i] := ZeroExtend16(a[i+15:i] << count[63:0]) + FI + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Shift +
+ + + + + + + Shift packed 16-bit integers in "a" left by "imm8" while shifting in zeros, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*16 + IF k[j] + IF imm8[7:0] > 15 + dst[i+15:i] := 0 + ELSE + dst[i+15:i] := ZeroExtend16(a[i+15:i] << imm8[7:0]) + FI + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Shift +
+ + + + + + Shift packed 16-bit integers in "a" left by "count" while shifting in zeros, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*16 + IF k[j] + IF count[63:0] > 15 + dst[i+15:i] := 0 + ELSE + dst[i+15:i] := ZeroExtend16(a[i+15:i] << count[63:0]) + FI + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Shift +
+ + + + + + Shift packed 16-bit integers in "a" left by "imm8" while shifting in zeros, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*16 + IF k[j] + IF imm8[7:0] > 15 + dst[i+15:i] := 0 + ELSE + dst[i+15:i] := ZeroExtend16(a[i+15:i] << imm8[7:0]) + FI + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Shift +
+ + + + + Shift packed 16-bit integers in "a" left by "count" while shifting in zeros, and store the results in "dst". + +FOR j := 0 to 31 + i := j*16 + IF count[63:0] > 15 + dst[i+15:i] := 0 + ELSE + dst[i+15:i] := ZeroExtend16(a[i+15:i] << count[63:0]) + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Shift +
+ + + + + Shift packed 16-bit integers in "a" left by "imm8" while shifting in zeros, and store the results in "dst". + +FOR j := 0 to 31 + i := j*16 + IF imm8[7:0] > 15 + dst[i+15:i] := 0 + ELSE + dst[i+15:i] := ZeroExtend16(a[i+15:i] << imm8[7:0]) + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Shift +
+ + + + + + + Shift packed 16-bit integers in "a" right by the amount specified by the corresponding element in "count" while shifting in sign bits, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*16 + IF k[j] + IF count[i+15:i] < 16 + dst[i+15:i] := SignExtend16(a[i+15:i] >> count[i+15:i]) + ELSE + dst[i+15:i] := (a[i+15] ? 0xFFFF : 0) + FI + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Shift +
+ + + + + + Shift packed 16-bit integers in "a" right by the amount specified by the corresponding element in "count" while shifting in sign bits, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*16 + IF k[j] + IF count[i+15:i] < 16 + dst[i+15:i] := SignExtend16(a[i+15:i] >> count[i+15:i]) + ELSE + dst[i+15:i] := (a[i+15] ? 0xFFFF : 0) + FI + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Shift +
+ + + + + Shift packed 16-bit integers in "a" right by the amount specified by the corresponding element in "count" while shifting in sign bits, and store the results in "dst". + +FOR j := 0 to 31 + i := j*16 + IF count[i+15:i] < 16 + dst[i+15:i] := SignExtend16(a[i+15:i] >> count[i+15:i]) + ELSE + dst[i+15:i] := (a[i+15] ? 0xFFFF : 0) + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Shift +
+ + + + + + + Shift packed 16-bit integers in "a" right by "count" while shifting in sign bits, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*16 + IF k[j] + IF count[63:0] > 15 + dst[i+15:i] := (a[i+15] ? 0xFFFF : 0x0) + ELSE + dst[i+15:i] := SignExtend16(a[i+15:i] >> count[63:0]) + FI + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Shift +
+ + + + + + + Shift packed 16-bit integers in "a" right by "imm8" while shifting in sign bits, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*16 + IF k[j] + IF imm8[7:0] > 15 + dst[i+15:i] := (a[i+15] ? 0xFFFF : 0x0) + ELSE + dst[i+15:i] := SignExtend16(a[i+15:i] >> imm8[7:0]) + FI + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Shift +
+ + + + + + Shift packed 16-bit integers in "a" right by "count" while shifting in sign bits, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*16 + IF k[j] + IF count[63:0] > 15 + dst[i+15:i] := (a[i+15] ? 0xFFFF : 0x0) + ELSE + dst[i+15:i] := SignExtend16(a[i+15:i] >> count[63:0]) + FI + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Shift +
+ + + + + + Shift packed 16-bit integers in "a" right by "imm8" while shifting in sign bits, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*16 + IF k[j] + IF imm8[7:0] > 15 + dst[i+15:i] := (a[i+15] ? 0xFFFF : 0x0) + ELSE + dst[i+15:i] := SignExtend16(a[i+15:i] >> imm8[7:0]) + FI + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Shift +
+ + + + + Shift packed 16-bit integers in "a" right by "count" while shifting in sign bits, and store the results in "dst". + +FOR j := 0 to 31 + i := j*16 + IF count[63:0] > 15 + dst[i+15:i] := (a[i+15] ? 0xFFFF : 0x0) + ELSE + dst[i+15:i] := SignExtend16(a[i+15:i] >> count[63:0]) + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Shift +
+ + + + + Shift packed 16-bit integers in "a" right by "imm8" while shifting in sign bits, and store the results in "dst". + +FOR j := 0 to 31 + i := j*16 + IF imm8[7:0] > 15 + dst[i+15:i] := (a[i+15] ? 0xFFFF : 0x0) + ELSE + dst[i+15:i] := SignExtend16(a[i+15:i] >> imm8[7:0]) + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Shift +
+ + + + + Shift 128-bit lanes in "a" right by "imm8" bytes while shifting in zeros, and store the results in "dst". + +tmp := imm8[7:0] +IF tmp > 15 + tmp := 16 +FI +dst[127:0] := a[127:0] >> (tmp*8) +dst[255:128] := a[255:128] >> (tmp*8) +dst[383:256] := a[383:256] >> (tmp*8) +dst[511:384] := a[511:384] >> (tmp*8) +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Shift +
+ + + + + + + Shift packed 16-bit integers in "a" right by the amount specified by the corresponding element in "count" while shifting in zeros, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*16 + IF k[j] + IF count[i+15:i] < 16 + dst[i+15:i] := ZeroExtend16(a[i+15:i] >> count[i+15:i]) + ELSE + dst[i+15:i] := 0 + FI + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Shift +
+ + + + + + Shift packed 16-bit integers in "a" right by the amount specified by the corresponding element in "count" while shifting in zeros, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*16 + IF k[j] + IF count[i+15:i] < 16 + dst[i+15:i] := ZeroExtend16(a[i+15:i] >> count[i+15:i]) + ELSE + dst[i+15:i] := 0 + FI + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Shift +
+ + + + + Shift packed 16-bit integers in "a" right by the amount specified by the corresponding element in "count" while shifting in zeros, and store the results in "dst". + +FOR j := 0 to 31 + i := j*16 + IF count[i+15:i] < 16 + dst[i+15:i] := ZeroExtend16(a[i+15:i] >> count[i+15:i]) + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Shift +
+ + + + + + + Shift packed 16-bit integers in "a" right by "count" while shifting in zeros, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*16 + IF k[j] + IF count[63:0] > 15 + dst[i+15:i] := 0 + ELSE + dst[i+15:i] := ZeroExtend16(a[i+15:i] >> count[63:0]) + FI + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Shift +
+ + + + + + + Shift packed 16-bit integers in "a" right by "imm8" while shifting in zeros, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*16 + IF k[j] + IF imm8[7:0] > 15 + dst[i+15:i] := 0 + ELSE + dst[i+15:i] := ZeroExtend16(a[i+15:i] >> imm8[7:0]) + FI + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Shift +
+ + + + + + Shift packed 16-bit integers in "a" right by "count" while shifting in zeros, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*16 + IF k[j] + IF count[63:0] > 15 + dst[i+15:i] := 0 + ELSE + dst[i+15:i] := ZeroExtend16(a[i+15:i] >> count[63:0]) + FI + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Shift +
+ + + + + + Shift packed 16-bit integers in "a" right by "imm8" while shifting in zeros, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*16 + IF k[j] + IF imm8[7:0] > 15 + dst[i+15:i] := 0 + ELSE + dst[i+15:i] := ZeroExtend16(a[i+15:i] >> imm8[7:0]) + FI + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Shift +
+ + + + + Shift packed 16-bit integers in "a" right by "count" while shifting in zeros, and store the results in "dst". + +FOR j := 0 to 31 + i := j*16 + IF count[63:0] > 15 + dst[i+15:i] := 0 + ELSE + dst[i+15:i] := ZeroExtend16(a[i+15:i] >> count[63:0]) + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Shift +
+ + + + + Shift packed 16-bit integers in "a" right by "imm8" while shifting in zeros, and store the results in "dst". + +FOR j := 0 to 31 + i := j*16 + IF imm8[7:0] > 15 + dst[i+15:i] := 0 + ELSE + dst[i+15:i] := ZeroExtend16(a[i+15:i] >> imm8[7:0]) + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512BW +
immintrin.h
+ Shift +
+ + + + + Add 32-bit masks in "a" and "b", and store the result in "k". + +k[31:0] := a[31:0] + b[31:0] +k[MAX:32] := 0 + + + AVX512BW +
immintrin.h
+ Mask +
+ + + + + Add 64-bit masks in "a" and "b", and store the result in "k". + +k[63:0] := a[63:0] + b[63:0] +k[MAX:64] := 0 + + + AVX512BW +
immintrin.h
+ Mask +
+ + + + + Compute the bitwise AND of 32-bit masks "a" and "b", and store the result in "k". + +k[31:0] := a[31:0] AND b[31:0] +k[MAX:32] := 0 + + + AVX512BW +
immintrin.h
+ Mask +
+ + + + + Compute the bitwise AND of 64-bit masks "a" and "b", and store the result in "k". + +k[63:0] := a[63:0] AND b[63:0] +k[MAX:64] := 0 + + + AVX512BW +
immintrin.h
+ Mask +
+ + + + + Compute the bitwise NOT of 32-bit masks "a" and then AND with "b", and store the result in "k". + +k[31:0] := (NOT a[31:0]) AND b[31:0] +k[MAX:32] := 0 + + + AVX512BW +
immintrin.h
+ Mask +
+ + + + + Compute the bitwise NOT of 64-bit masks "a" and then AND with "b", and store the result in "k". + +k[63:0] := (NOT a[63:0]) AND b[63:0] +k[MAX:64] := 0 + + + AVX512BW +
immintrin.h
+ Mask +
+ + + + Compute the bitwise NOT of 32-bit mask "a", and store the result in "k". + +k[31:0] := NOT a[31:0] +k[MAX:32] := 0 + + + AVX512BW +
immintrin.h
+ Mask +
+ + + + Compute the bitwise NOT of 64-bit mask "a", and store the result in "k". + +k[63:0] := NOT a[63:0] +k[MAX:64] := 0 + + + AVX512BW +
immintrin.h
+ Mask +
+ + + + + Compute the bitwise OR of 32-bit masks "a" and "b", and store the result in "k". + +k[31:0] := a[31:0] OR b[31:0] +k[MAX:32] := 0 + + + AVX512BW +
immintrin.h
+ Mask +
+ + + + + Compute the bitwise OR of 64-bit masks "a" and "b", and store the result in "k". + +k[63:0] := a[63:0] OR b[63:0] +k[MAX:64] := 0 + + + AVX512BW +
immintrin.h
+ Mask +
+ + + + + Compute the bitwise XNOR of 32-bit masks "a" and "b", and store the result in "k". + +k[31:0] := NOT (a[31:0] XOR b[31:0]) +k[MAX:32] := 0 + + + AVX512BW +
immintrin.h
+ Mask +
+ + + + + Compute the bitwise XNOR of 64-bit masks "a" and "b", and store the result in "k". + +k[63:0] := NOT (a[63:0] XOR b[63:0]) +k[MAX:64] := 0 + + + AVX512BW +
immintrin.h
+ Mask +
+ + + + + Compute the bitwise XOR of 32-bit masks "a" and "b", and store the result in "k". + +k[31:0] := a[31:0] XOR b[31:0] +k[MAX:32] := 0 + + + AVX512BW +
immintrin.h
+ Mask +
+ + + + + Compute the bitwise XOR of 64-bit masks "a" and "b", and store the result in "k". + +k[63:0] := a[63:0] XOR b[63:0] +k[MAX:64] := 0 + + + AVX512BW +
immintrin.h
+ Mask +
+ + + + + Shift the bits of 32-bit mask "a" left by "count" while shifting in zeros, and store the least significant 32 bits of the result in "k". + +k[MAX:0] := 0 +IF count[7:0] <= 31 + k[31:0] := a[31:0] << count[7:0] +FI + + + AVX512BW +
immintrin.h
+ Mask +
+ + + + + Shift the bits of 64-bit mask "a" left by "count" while shifting in zeros, and store the least significant 64 bits of the result in "k". + +k[MAX:0] := 0 +IF count[7:0] <= 63 + k[63:0] := a[63:0] << count[7:0] +FI + + + AVX512BW +
immintrin.h
+ Mask +
+ + + + + Shift the bits of 32-bit mask "a" right by "count" while shifting in zeros, and store the least significant 32 bits of the result in "k". + +k[MAX:0] := 0 +IF count[7:0] <= 31 + k[31:0] := a[31:0] >> count[7:0] +FI + + + AVX512BW +
immintrin.h
+ Mask +
+ + + + + Shift the bits of 64-bit mask "a" right by "count" while shifting in zeros, and store the least significant 64 bits of the result in "k". + +k[MAX:0] := 0 +IF count[7:0] <= 63 + k[63:0] := a[63:0] >> count[7:0] +FI + + + AVX512BW +
immintrin.h
+ Mask +
+ + + + + + Compute the bitwise OR of 32-bit masks "a" and "b". If the result is all zeros, store 1 in "dst", otherwise store 0 in "dst". If the result is all ones, store 1 in "all_ones", otherwise store 0 in "all_ones". + +tmp[31:0] := a[31:0] OR b[31:0] +IF tmp[31:0] == 0x0 + dst := 1 +ELSE + dst := 0 +FI +IF tmp[31:0] == 0xFFFFFFFF + MEM[all_ones+7:all_ones] := 1 +ELSE + MEM[all_ones+7:all_ones] := 0 +FI + + + AVX512BW +
immintrin.h
+ Mask +
+ + + + + Compute the bitwise OR of 32-bit masks "a" and "b". If the result is all zeroes, store 1 in "dst", otherwise store 0 in "dst". + +tmp[31:0] := a[31:0] OR b[31:0] +IF tmp[31:0] == 0x0 + dst := 1 +ELSE + dst := 0 +FI + + + AVX512BW +
immintrin.h
+ Mask +
+ + + + + Compute the bitwise OR of 32-bit masks "a" and "b". If the result is all ones, store 1 in "dst", otherwise store 0 in "dst". + +tmp[31:0] := a[31:0] OR b[31:0] +IF tmp[31:0] == 0xFFFFFFFF + dst := 1 +ELSE + dst := 0 +FI + + + AVX512BW +
immintrin.h
+ Mask +
+ + + + + + Compute the bitwise OR of 64-bit masks "a" and "b". If the result is all zeros, store 1 in "dst", otherwise store 0 in "dst". If the result is all ones, store 1 in "all_ones", otherwise store 0 in "all_ones". + +tmp[63:0] := a[63:0] OR b[63:0] +IF tmp[63:0] == 0x0 + dst := 1 +ELSE + dst := 0 +FI +IF tmp[7:0] == 0xFFFFFFFFFFFFFFFF + MEM[all_ones+7:all_ones] := 1 +ELSE + MEM[all_ones+7:all_ones] := 0 +FI + + + AVX512BW +
immintrin.h
+ Mask +
+ + + + + Compute the bitwise OR of 64-bit masks "a" and "b". If the result is all zeroes, store 1 in "dst", otherwise store 0 in "dst". + +tmp[63:0] := a[63:0] OR b[63:0] +IF tmp[63:0] == 0x0 + dst := 1 +ELSE + dst := 0 +FI + + + AVX512BW +
immintrin.h
+ Mask +
+ + + + + Compute the bitwise OR of 64-bit masks "a" and "b". If the result is all ones, store 1 in "dst", otherwise store 0 in "dst". + +tmp[63:0] := a[63:0] OR b[63:0] +IF tmp[63:0] == 0xFFFFFFFFFFFFFFFF + dst := 1 +ELSE + dst := 0 +FI + + + AVX512BW +
immintrin.h
+ Mask +
+ + + + + + Compute the bitwise AND of 32-bit masks "a" and "b", and if the result is all zeros, store 1 in "dst", otherwise store 0 in "dst". Compute the bitwise NOT of "a" and then AND with "b", if the result is all zeros, store 1 in "and_not", otherwise store 0 in "and_not". + +tmp1[31:0] := a[31:0] AND b[31:0] +IF tmp1[31:0] == 0x0 + dst := 1 +ELSE + dst := 0 +FI +tmp2[31:0] := (NOT a[31:0]) AND b[31:0] +IF tmp2[31:0] == 0x0 + MEM[and_not+7:and_not] := 1 +ELSE + MEM[and_not+7:and_not] := 0 +FI + + + AVX512BW +
immintrin.h
+ Mask +
+ + + + + Compute the bitwise AND of 32-bit masks "a" and "b", and if the result is all zeros, store 1 in "dst", otherwise store 0 in "dst". + +tmp[31:0] := a[31:0] AND b[31:0] +IF tmp[31:0] == 0x0 + dst := 1 +ELSE + dst := 0 +FI + + + AVX512BW +
immintrin.h
+ Mask +
+ + + + + Compute the bitwise NOT of 32-bit mask "a" and then AND with "b", if the result is all zeroes, store 1 in "dst", otherwise store 0 in "dst". + +tmp[31:0] := (NOT a[31:0]) AND b[31:0] +IF tmp[31:0] == 0x0 + dst := 1 +ELSE + dst := 0 +FI + + + AVX512BW +
immintrin.h
+ Mask +
+ + + + + + Compute the bitwise AND of 64-bit masks "a" and "b", and if the result is all zeros, store 1 in "dst", otherwise store 0 in "dst". Compute the bitwise NOT of "a" and then AND with "b", if the result is all zeros, store 1 in "and_not", otherwise store 0 in "and_not". + +tmp1[63:0] := a[63:0] AND b[63:0] +IF tmp1[63:0] == 0x0 + dst := 1 +ELSE + dst := 0 +FI +tmp2[63:0] := (NOT a[63:0]) AND b[63:0] +IF tmp2[63:0] == 0x0 + MEM[and_not+7:and_not] := 1 +ELSE + MEM[and_not+7:and_not] := 0 +FI + + + AVX512BW +
immintrin.h
+ Mask +
+ + + + + Compute the bitwise AND of 64-bit masks "a" and "b", and if the result is all zeros, store 1 in "dst", otherwise store 0 in "dst". + +tmp[63:0] := a[63:0] AND b[63:0] +IF tmp[63:0] == 0x0 + dst := 1 +ELSE + dst := 0 +FI + + + AVX512BW +
immintrin.h
+ Mask +
+ + + + + Compute the bitwise NOT of 64-bit mask "a" and then AND with "b", if the result is all zeroes, store 1 in "dst", otherwise store 0 in "dst". + +tmp[63:0] := (NOT a[63:0]) AND b[63:0] +IF tmp[63:0] == 0x0 + dst := 1 +ELSE + dst := 0 +FI + + + AVX512BW +
immintrin.h
+ Mask +
+ + + + Convert 32-bit mask "a" into an integer value, and store the result in "dst". + +dst := ZeroExtend32(a[31:0]) + + + AVX512BW +
immintrin.h
+ Mask +
+ + + + Convert 64-bit mask "a" into an integer value, and store the result in "dst". + +dst := ZeroExtend64(a[63:0]) + + + AVX512BW +
immintrin.h
+ Mask +
+ + + + Convert integer value "a" into an 32-bit mask, and store the result in "k". + +k := ZeroExtend32(a[31:0]) + + + AVX512BW +
immintrin.h
+ Mask +
+ + + + Convert integer value "a" into an 64-bit mask, and store the result in "k". + +k := ZeroExtend64(a[63:0]) + + + AVX512BW +
immintrin.h
+ Mask +
+ + + + + + Broadcast the low 8-bits from input mask "k" to all 64-bit elements of "dst". + +FOR j := 0 to 3 + i := j*64 + dst[i+63:i] := ZeroExtend64(k[7:0]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512CD + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + Broadcast the low 8-bits from input mask "k" to all 64-bit elements of "dst". + +FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := ZeroExtend64(k[7:0]) +ENDFOR +dst[MAX:128] := 0 + + + AVX512CD + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + Broadcast the low 16-bits from input mask "k" to all 32-bit elements of "dst". + +FOR j := 0 to 7 + i := j*32 + dst[i+31:i] := ZeroExtend32(k[15:0]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512CD + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + Broadcast the low 16-bits from input mask "k" to all 32-bit elements of "dst". + +FOR j := 0 to 3 + i := j*32 + dst[i+31:i] := ZeroExtend32(k[15:0]) +ENDFOR +dst[MAX:128] := 0 + + + AVX512CD + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + Test each 32-bit element of "a" for equality with all other elements in "a" closer to the least significant bit. Each element's comparison forms a zero extended bit vector in "dst". + +FOR j := 0 to 7 + i := j*32 + FOR k := 0 to j-1 + m := k*32 + dst[i+k] := (a[i+31:i] == a[m+31:m]) ? 1 : 0 + ENDFOR + dst[i+31:i+j] := 0 +ENDFOR +dst[MAX:256] := 0 + + + AVX512CD + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Test each 32-bit element of "a" for equality with all other elements in "a" closer to the least significant bit using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). Each element's comparison forms a zero extended bit vector in "dst". + +FOR j := 0 to 7 + i := j*32 + IF k[j] + FOR l := 0 to j-1 + m := l*32 + dst[i+l] := (a[i+31:i] == a[m+31:m]) ? 1 : 0 + ENDFOR + dst[i+31:i+j] := 0 + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512CD + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Test each 32-bit element of "a" for equality with all other elements in "a" closer to the least significant bit using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). Each element's comparison forms a zero extended bit vector in "dst". + +FOR j := 0 to 7 + i := j*32 + IF k[j] + FOR l := 0 to j-1 + m := l*32 + dst[i+l] := (a[i+31:i] == a[m+31:m]) ? 1 : 0 + ENDFOR + dst[i+31:i+j] := 0 + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512CD + AVX512VL +
immintrin.h
+ Compare +
+ + + + Test each 32-bit element of "a" for equality with all other elements in "a" closer to the least significant bit. Each element's comparison forms a zero extended bit vector in "dst". + +FOR j := 0 to 3 + i := j*32 + FOR k := 0 to j-1 + m := k*32 + dst[i+k] := (a[i+31:i] == a[m+31:m]) ? 1 : 0 + ENDFOR + dst[i+31:i+j] := 0 +ENDFOR +dst[MAX:128] := 0 + + + AVX512CD + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Test each 32-bit element of "a" for equality with all other elements in "a" closer to the least significant bit using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). Each element's comparison forms a zero extended bit vector in "dst". + +FOR j := 0 to 3 + i := j*32 + IF k[j] + FOR l := 0 to j-1 + m := l*32 + dst[i+l] := (a[i+31:i] == a[m+31:m]) ? 1 : 0 + ENDFOR + dst[i+31:i+j] := 0 + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512CD + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Test each 32-bit element of "a" for equality with all other elements in "a" closer to the least significant bit using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). Each element's comparison forms a zero extended bit vector in "dst". + +FOR j := 0 to 3 + i := j*32 + IF k[j] + FOR l := 0 to j-1 + m := l*32 + dst[i+l] := (a[i+31:i] == a[m+31:m]) ? 1 : 0 + ENDFOR + dst[i+31:i+j] := 0 + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512CD + AVX512VL +
immintrin.h
+ Compare +
+ + + + Test each 64-bit element of "a" for equality with all other elements in "a" closer to the least significant bit. Each element's comparison forms a zero extended bit vector in "dst". + +FOR j := 0 to 3 + i := j*64 + FOR k := 0 to j-1 + m := k*64 + dst[i+k] := (a[i+63:i] == a[m+63:m]) ? 1 : 0 + ENDFOR + dst[i+63:i+j] := 0 +ENDFOR +dst[MAX:256] := 0 + + + AVX512CD + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Test each 64-bit element of "a" for equality with all other elements in "a" closer to the least significant bit using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). Each element's comparison forms a zero extended bit vector in "dst". + +FOR j := 0 to 3 + i := j*64 + IF k[j] + FOR l := 0 to j-1 + m := l*64 + dst[i+l] := (a[i+63:i] == a[m+63:m]) ? 1 : 0 + ENDFOR + dst[i+63:i+j] := 0 + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512CD + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Test each 64-bit element of "a" for equality with all other elements in "a" closer to the least significant bit using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). Each element's comparison forms a zero extended bit vector in "dst". + +FOR j := 0 to 3 + i := j*64 + IF k[j] + FOR l := 0 to j-1 + m := l*64 + dst[i+l] := (a[i+63:i] == a[m+63:m]) ? 1 : 0 + ENDFOR + dst[i+63:i+j] := 0 + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512CD + AVX512VL +
immintrin.h
+ Compare +
+ + + + Test each 64-bit element of "a" for equality with all other elements in "a" closer to the least significant bit. Each element's comparison forms a zero extended bit vector in "dst". + +FOR j := 0 to 1 + i := j*64 + FOR k := 0 to j-1 + m := k*64 + dst[i+k] := (a[i+63:i] == a[m+63:m]) ? 1 : 0 + ENDFOR + dst[i+63:i+j] := 0 +ENDFOR +dst[MAX:128] := 0 + + + AVX512CD + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Test each 64-bit element of "a" for equality with all other elements in "a" closer to the least significant bit using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). Each element's comparison forms a zero extended bit vector in "dst". + +FOR j := 0 to 1 + i := j*64 + IF k[j] + FOR l := 0 to j-1 + m := l*64 + dst[i+l] := (a[i+63:i] == a[m+63:m]) ? 1 : 0 + ENDFOR + dst[i+63:i+j] := 0 + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512CD + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Test each 64-bit element of "a" for equality with all other elements in "a" closer to the least significant bit using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). Each element's comparison forms a zero extended bit vector in "dst". + +FOR j := 0 to 1 + i := j*64 + IF k[j] + FOR l := 0 to j-1 + m := l*64 + dst[i+l] := (a[i+63:i] == a[m+63:m]) ? 1 : 0 + ENDFOR + dst[i+63:i+j] := 0 + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512CD + AVX512VL +
immintrin.h
+ Compare +
+ + + + Counts the number of leading zero bits in each packed 32-bit integer in "a", and store the results in "dst". + +FOR j := 0 to 7 + i := j*32 + tmp := 31 + dst[i+31:i] := 0 + DO WHILE (tmp >= 0 AND a[i+tmp] == 0) + tmp := tmp - 1 + dst[i+31:i] := dst[i+31:i] + 1 + OD +ENDFOR +dst[MAX:256] := 0 + + + AVX512CD + AVX512VL +
immintrin.h
+ Bit Manipulation +
+ + + + + + Counts the number of leading zero bits in each packed 32-bit integer in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k[j] + tmp := 31 + dst[i+31:i] := 0 + DO WHILE (tmp >= 0 AND a[i+tmp] == 0) + tmp := tmp - 1 + dst[i+31:i] := dst[i+31:i] + 1 + OD + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512CD + AVX512VL +
immintrin.h
+ Bit Manipulation +
+ + + + + Counts the number of leading zero bits in each packed 32-bit integer in "a", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k[j] + tmp := 31 + dst[i+31:i] := 0 + DO WHILE (tmp >= 0 AND a[i+tmp] == 0) + tmp := tmp - 1 + dst[i+31:i] := dst[i+31:i] + 1 + OD + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512CD + AVX512VL +
immintrin.h
+ Bit Manipulation +
+ + + + Counts the number of leading zero bits in each packed 32-bit integer in "a", and store the results in "dst". + +FOR j := 0 to 3 + i := j*32 + tmp := 31 + dst[i+31:i] := 0 + DO WHILE (tmp >= 0 AND a[i+tmp] == 0) + tmp := tmp - 1 + dst[i+31:i] := dst[i+31:i] + 1 + OD +ENDFOR +dst[MAX:128] := 0 + + + AVX512CD + AVX512VL +
immintrin.h
+ Bit Manipulation +
+ + + + + + Counts the number of leading zero bits in each packed 32-bit integer in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k[j] + tmp := 31 + dst[i+31:i] := 0 + DO WHILE (tmp >= 0 AND a[i+tmp] == 0) + tmp := tmp - 1 + dst[i+31:i] := dst[i+31:i] + 1 + OD + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512CD + AVX512VL +
immintrin.h
+ Bit Manipulation +
+ + + + + Counts the number of leading zero bits in each packed 32-bit integer in "a", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k[j] + tmp := 31 + dst[i+31:i] := 0 + DO WHILE (tmp >= 0 AND a[i+tmp] == 0) + tmp := tmp - 1 + dst[i+31:i] := dst[i+31:i] + 1 + OD + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512CD + AVX512VL +
immintrin.h
+ Bit Manipulation +
+ + + + Counts the number of leading zero bits in each packed 64-bit integer in "a", and store the results in "dst". + +FOR j := 0 to 3 + i := j*64 + tmp := 63 + dst[i+63:i] := 0 + DO WHILE (tmp >= 0 AND a[i+tmp] == 0) + tmp := tmp - 1 + dst[i+63:i] := dst[i+63:i] + 1 + OD +ENDFOR +dst[MAX:256] := 0 + + + AVX512CD + AVX512VL +
immintrin.h
+ Bit Manipulation +
+ + + + + + Counts the number of leading zero bits in each packed 64-bit integer in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + tmp := 63 + dst[i+63:i] := 0 + DO WHILE (tmp >= 0 AND a[i+tmp] == 0) + tmp := tmp - 1 + dst[i+63:i] := dst[i+63:i] + 1 + OD + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512CD + AVX512VL +
immintrin.h
+ Bit Manipulation +
+ + + + + Counts the number of leading zero bits in each packed 64-bit integer in "a", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + tmp := 63 + dst[i+63:i] := 0 + DO WHILE (tmp >= 0 AND a[i+tmp] == 0) + tmp := tmp - 1 + dst[i+63:i] := dst[i+63:i] + 1 + OD + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512CD + AVX512VL +
immintrin.h
+ Bit Manipulation +
+ + + + Counts the number of leading zero bits in each packed 64-bit integer in "a", and store the results in "dst". + +FOR j := 0 to 1 + i := j*64 + tmp := 63 + dst[i+63:i] := 0 + DO WHILE (tmp >= 0 AND a[i+tmp] == 0) + tmp := tmp - 1 + dst[i+63:i] := dst[i+63:i] + 1 + OD +ENDFOR +dst[MAX:128] := 0 + + + AVX512CD + AVX512VL +
immintrin.h
+ Bit Manipulation +
+ + + + + + Counts the number of leading zero bits in each packed 64-bit integer in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + tmp := 63 + dst[i+63:i] := 0 + DO WHILE (tmp >= 0 AND a[i+tmp] == 0) + tmp := tmp - 1 + dst[i+63:i] := dst[i+63:i] + 1 + OD + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512CD + AVX512VL +
immintrin.h
+ Bit Manipulation +
+ + + + + Counts the number of leading zero bits in each packed 64-bit integer in "a", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + tmp := 63 + dst[i+63:i] := 0 + DO WHILE (tmp >= 0 AND a[i+tmp] == 0) + tmp := tmp - 1 + dst[i+63:i] := dst[i+63:i] + 1 + OD + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512CD + AVX512VL +
immintrin.h
+ Bit Manipulation +
+ + + + + + Broadcast the low 8-bits from input mask "k" to all 64-bit elements of "dst". + +FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := ZeroExtend64(k[7:0]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512CD +
immintrin.h
+ Swizzle +
+ + + + Broadcast the low 16-bits from input mask "k" to all 32-bit elements of "dst". + +FOR j := 0 to 15 + i := j*32 + dst[i+31:i] := ZeroExtend32(k[15:0]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512CD +
immintrin.h
+ Swizzle +
+ + + + Test each 32-bit element of "a" for equality with all other elements in "a" closer to the least significant bit. Each element's comparison forms a zero extended bit vector in "dst". + +FOR j := 0 to 15 + i := j*32 + FOR k := 0 to j-1 + m := k*32 + dst[i+k] := (a[i+31:i] == a[m+31:m]) ? 1 : 0 + ENDFOR + dst[i+31:i+j] := 0 +ENDFOR +dst[MAX:512] := 0 + + + AVX512CD +
immintrin.h
+ Compare +
+ + + + + + Test each 32-bit element of "a" for equality with all other elements in "a" closer to the least significant bit using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). Each element's comparison forms a zero extended bit vector in "dst". + +FOR j := 0 to 15 + i := j*32 + IF k[j] + FOR l := 0 to j-1 + m := l*32 + dst[i+l] := (a[i+31:i] == a[m+31:m]) ? 1 : 0 + ENDFOR + dst[i+31:i+j] := 0 + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512CD +
immintrin.h
+ Compare +
+ + + + + Test each 32-bit element of "a" for equality with all other elements in "a" closer to the least significant bit using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). Each element's comparison forms a zero extended bit vector in "dst". + +FOR j := 0 to 15 + i := j*32 + IF k[j] + FOR l := 0 to j-1 + m := l*32 + dst[i+l] := (a[i+31:i] == a[m+31:m]) ? 1 : 0 + ENDFOR + dst[i+31:i+j] := 0 + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512CD +
immintrin.h
+ Compare +
+ + + + Test each 64-bit element of "a" for equality with all other elements in "a" closer to the least significant bit. Each element's comparison forms a zero extended bit vector in "dst". + +FOR j := 0 to 7 + i := j*64 + FOR k := 0 to j-1 + m := k*64 + dst[i+k] := (a[i+63:i] == a[m+63:m]) ? 1 : 0 + ENDFOR + dst[i+63:i+j] := 0 +ENDFOR +dst[MAX:512] := 0 + + + AVX512CD +
immintrin.h
+ Compare +
+ + + + + + Test each 64-bit element of "a" for equality with all other elements in "a" closer to the least significant bit using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). Each element's comparison forms a zero extended bit vector in "dst". + +FOR j := 0 to 7 + i := j*64 + IF k[j] + FOR l := 0 to j-1 + m := l*64 + dst[i+l] := (a[i+63:i] == a[m+63:m]) ? 1 : 0 + ENDFOR + dst[i+63:i+j] := 0 + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512CD +
immintrin.h
+ Compare +
+ + + + + Test each 64-bit element of "a" for equality with all other elements in "a" closer to the least significant bit using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). Each element's comparison forms a zero extended bit vector in "dst". + +FOR j := 0 to 7 + i := j*64 + IF k[j] + FOR l := 0 to j-1 + m := l*64 + dst[i+l] := (a[i+63:i] == a[m+63:m]) ? 1 : 0 + ENDFOR + dst[i+63:i+j] := 0 + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512CD +
immintrin.h
+ Compare +
+ + + + Counts the number of leading zero bits in each packed 32-bit integer in "a", and store the results in "dst". + +FOR j := 0 to 15 + i := j*32 + tmp := 31 + dst[i+31:i] := 0 + DO WHILE (tmp >= 0 AND a[i+tmp] == 0) + tmp := tmp - 1 + dst[i+31:i] := dst[i+31:i] + 1 + OD +ENDFOR +dst[MAX:512] := 0 + + + AVX512CD +
immintrin.h
+ Bit Manipulation +
+ + + + + + Counts the number of leading zero bits in each packed 32-bit integer in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + tmp := 31 + dst[i+31:i] := 0 + DO WHILE (tmp >= 0 AND a[i+tmp] == 0) + tmp := tmp - 1 + dst[i+31:i] := dst[i+31:i] + 1 + OD + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512CD +
immintrin.h
+ Bit Manipulation +
+ + + + + Counts the number of leading zero bits in each packed 32-bit integer in "a", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + tmp := 31 + dst[i+31:i] := 0 + DO WHILE (tmp >= 0 AND a[i+tmp] == 0) + tmp := tmp - 1 + dst[i+31:i] := dst[i+31:i] + 1 + OD + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512CD +
immintrin.h
+ Bit Manipulation +
+ + + + Counts the number of leading zero bits in each packed 64-bit integer in "a", and store the results in "dst". + +FOR j := 0 to 7 + i := j*64 + tmp := 63 + dst[i+63:i] := 0 + DO WHILE (tmp >= 0 AND a[i+tmp] == 0) + tmp := tmp - 1 + dst[i+63:i] := dst[i+63:i] + 1 + OD +ENDFOR +dst[MAX:512] := 0 + + + AVX512CD +
immintrin.h
+ Bit Manipulation +
+ + + + + + Counts the number of leading zero bits in each packed 64-bit integer in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + tmp := 63 + dst[i+63:i] := 0 + DO WHILE (tmp >= 0 AND a[i+tmp] == 0) + tmp := tmp - 1 + dst[i+63:i] := dst[i+63:i] + 1 + OD + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512CD +
immintrin.h
+ Bit Manipulation +
+ + + + + Counts the number of leading zero bits in each packed 64-bit integer in "a", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + tmp := 63 + dst[i+63:i] := 0 + DO WHILE (tmp >= 0 AND a[i+tmp] == 0) + tmp := tmp - 1 + dst[i+63:i] := dst[i+63:i] + 1 + OD + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512CD +
immintrin.h
+ Bit Manipulation +
+ + + + + + + + + Compute the bitwise NOT of packed double-precision (64-bit) floating-point elements in "a" and then AND with "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := ((NOT a[i+63:i]) AND b[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Logical +
+ + + + + + Compute the bitwise NOT of packed double-precision (64-bit) floating-point elements in "a" and then AND with "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := ((NOT a[i+63:i]) AND b[i+63:i]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Logical +
+ + + + + + + Compute the bitwise NOT of packed double-precision (64-bit) floating-point elements in "a" and then AND with "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := ((NOT a[i+63:i]) AND b[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Logical +
+ + + + + + Compute the bitwise NOT of packed double-precision (64-bit) floating-point elements in "a" and then AND with "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := ((NOT a[i+63:i]) AND b[i+63:i]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Logical +
+ + + + + + + Compute the bitwise NOT of packed single-precision (32-bit) floating-point elements in "a" and then AND with "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := ((NOT a[i+31:i]) AND b[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Logical +
+ + + + + + Compute the bitwise NOT of packed single-precision (32-bit) floating-point elements in "a" and then AND with "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := ((NOT a[i+31:i]) AND b[i+31:i]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Logical +
+ + + + + + + Compute the bitwise NOT of packed single-precision (32-bit) floating-point elements in "a" and then AND with "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := ((NOT a[i+31:i]) AND b[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Logical +
+ + + + + + Compute the bitwise NOT of packed single-precision (32-bit) floating-point elements in "a" and then AND with "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := ((NOT a[i+31:i]) AND b[i+31:i]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Logical +
+ + + + + + + Compute the bitwise AND of packed double-precision (64-bit) floating-point elements in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := (a[i+63:i] AND b[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Logical +
+ + + + + + Compute the bitwise AND of packed double-precision (64-bit) floating-point elements in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := (a[i+63:i] AND b[i+63:i]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Logical +
+ + + + + + + Compute the bitwise AND of packed double-precision (64-bit) floating-point elements in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := (a[i+63:i] AND b[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Logical +
+ + + + + + Compute the bitwise AND of packed double-precision (64-bit) floating-point elements in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := (a[i+63:i] AND b[i+63:i]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Logical +
+ + + + + + + Compute the bitwise AND of packed single-precision (32-bit) floating-point elements in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := (a[i+31:i] AND b[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Logical +
+ + + + + + Compute the bitwise AND of packed single-precision (32-bit) floating-point elements in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := (a[i+31:i] AND b[i+31:i]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Logical +
+ + + + + + + Compute the bitwise AND of packed single-precision (32-bit) floating-point elements in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := (a[i+31:i] AND b[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Logical +
+ + + + + + Compute the bitwise AND of packed single-precision (32-bit) floating-point elements in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := (a[i+31:i] AND b[i+31:i]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Logical +
+ + + + + + + Compute the bitwise OR of packed double-precision (64-bit) floating-point elements in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := a[i+63:i] OR b[i+63:i] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Logical +
+ + + + + + Compute the bitwise OR of packed double-precision (64-bit) floating-point elements in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := a[i+63:i] OR b[i+63:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Logical +
+ + + + + + + Compute the bitwise OR of packed double-precision (64-bit) floating-point elements in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := a[i+63:i] OR b[i+63:i] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Logical +
+ + + + + + Compute the bitwise OR of packed double-precision (64-bit) floating-point elements in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := a[i+63:i] OR b[i+63:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Logical +
+ + + + + + + Compute the bitwise OR of packed single-precision (32-bit) floating-point elements in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := a[i+31:i] OR b[i+31:i] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Logical +
+ + + + + + Compute the bitwise OR of packed single-precision (32-bit) floating-point elements in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := a[i+31:i] OR b[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Logical +
+ + + + + + + Compute the bitwise OR of packed single-precision (32-bit) floating-point elements in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := a[i+31:i] OR b[i+31:i] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Logical +
+ + + + + + Compute the bitwise OR of packed single-precision (32-bit) floating-point elements in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := a[i+31:i] OR b[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Logical +
+ + + + + + + Compute the bitwise XOR of packed double-precision (64-bit) floating-point elements in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := a[i+63:i] XOR b[i+63:i] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Logical +
+ + + + + + Compute the bitwise XOR of packed double-precision (64-bit) floating-point elements in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := a[i+63:i] XOR b[i+63:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Logical +
+ + + + + + + Compute the bitwise XOR of packed double-precision (64-bit) floating-point elements in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := a[i+63:i] XOR b[i+63:i] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Logical +
+ + + + + + Compute the bitwise XOR of packed double-precision (64-bit) floating-point elements in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := a[i+63:i] XOR b[i+63:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Logical +
+ + + + + + + Compute the bitwise XOR of packed single-precision (32-bit) floating-point elements in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := a[i+31:i] XOR b[i+31:i] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Logical +
+ + + + + + Compute the bitwise XOR of packed single-precision (32-bit) floating-point elements in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := a[i+31:i] XOR b[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Logical +
+ + + + + + + Compute the bitwise XOR of packed single-precision (32-bit) floating-point elements in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := a[i+31:i] XOR b[i+31:i] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Logical +
+ + + + + + Compute the bitwise XOR of packed single-precision (32-bit) floating-point elements in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := a[i+31:i] XOR b[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Logical +
+ + + + Broadcast the lower 2 packed single-precision (32-bit) floating-point elements from "a" to all elements of "dst". + +FOR j := 0 to 7 + i := j*32 + n := (j % 2)*32 + dst[i+31:i] := a[n+31:n] +ENDFOR +dst[MAX:256] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Broadcast the lower 2 packed single-precision (32-bit) floating-point elements from "a" to all elements of "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + n := (j % 2)*32 + IF k[j] + dst[i+31:i] := a[n+31:n] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + Broadcast the lower 2 packed single-precision (32-bit) floating-point elements from "a" to all elements of "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + n := (j % 2)*32 + IF k[j] + dst[i+31:i] := a[n+31:n] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + Broadcast the 2 packed double-precision (64-bit) floating-point elements from "a" to all elements of "dst". + +FOR j := 0 to 3 + i := j*64 + n := (j % 2)*64 + dst[i+63:i] := a[n+63:n] +ENDFOR +dst[MAX:256] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Broadcast the 2 packed double-precision (64-bit) floating-point elements from "a" to all elements of "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + n := (j % 2)*64 + IF k[j] + dst[i+63:i] := a[n+63:n] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + Broadcast the 2 packed double-precision (64-bit) floating-point elements from "a" to all elements of "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + n := (j % 2)*64 + IF k[j] + dst[i+63:i] := a[n+63:n] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + Broadcast the lower 2 packed 32-bit integers from "a" to all elements of "dst. + +FOR j := 0 to 7 + i := j*32 + n := (j % 2)*32 + dst[i+31:i] := a[n+31:n] +ENDFOR +dst[MAX:256] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Broadcast the lower 2 packed 32-bit integers from "a" to all elements of "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + n := (j % 2)*32 + IF k[j] + dst[i+31:i] := a[n+31:n] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + Broadcast the lower 2 packed 32-bit integers from "a" to all elements of "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + n := (j % 2)*32 + IF k[j] + dst[i+31:i] := a[n+31:n] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + Broadcast the lower 2 packed 32-bit integers from "a" to all elements of "dst. + +FOR j := 0 to 3 + i := j*32 + n := (j % 2)*32 + dst[i+31:i] := a[n+31:n] +ENDFOR +dst[MAX:128] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Broadcast the lower 2 packed 32-bit integers from "a" to all elements of "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + n := (j % 2)*32 + IF k[j] + dst[i+31:i] := a[n+31:n] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + Broadcast the lower 2 packed 32-bit integers from "a" to all elements of "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + n := (j % 2)*32 + IF k[j] + dst[i+31:i] := a[n+31:n] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + Broadcast the 2 packed 64-bit integers from "a" to all elements of "dst". + +FOR j := 0 to 3 + i := j*64 + n := (j % 2)*64 + dst[i+63:i] := a[n+63:n] +ENDFOR +dst[MAX:256] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Broadcast the 2 packed 64-bit integers from "a" to all elements of "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + n := (j % 2)*64 + IF k[j] + dst[i+63:i] := a[n+63:n] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + Broadcast the 2 packed 64-bit integers from "a" to all elements of "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + n := (j % 2)*64 + IF k[j] + dst[i+63:i] := a[n+63:n] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + Extract 128 bits (composed of 2 packed double-precision (64-bit) floating-point elements) from "a", selected with "imm8", and store the result in "dst". + +CASE imm8[0] OF +0: dst[127:0] := a[127:0] +1: dst[127:0] := a[255:128] +ESAC +dst[MAX:128] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Extract 128 bits (composed of 2 packed double-precision (64-bit) floating-point elements) from "a", selected with "imm8", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +CASE imm8[0] OF +0: tmp[127:0] := a[127:0] +1: tmp[127:0] := a[255:128] +ESAC +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := tmp[i+63:i] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Extract 128 bits (composed of 2 packed double-precision (64-bit) floating-point elements) from "a", selected with "imm8", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +CASE imm8[0] OF +0: tmp[127:0] := a[127:0] +1: tmp[127:0] := a[255:128] +ESAC +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := tmp[i+63:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + Extract 128 bits (composed of 2 packed 64-bit integers) from "a", selected with "imm8", and store the result in "dst". + +CASE imm8[0] OF +0: dst[127:0] := a[127:0] +1: dst[127:0] := a[255:128] +ESAC +dst[MAX:128] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Extract 128 bits (composed of 2 packed 64-bit integers) from "a", selected with "imm8", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +CASE imm8[0] OF +0: tmp[127:0] := a[127:0] +1: tmp[127:0] := a[255:128] +ESAC +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := tmp[i+63:i] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Extract 128 bits (composed of 2 packed 64-bit integers) from "a", selected with "imm8", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +CASE imm8[0] OF +0: tmp[127:0] := a[127:0] +1: tmp[127:0] := a[255:128] +ESAC +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := tmp[i+63:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + Test packed double-precision (64-bit) floating-point elements in "a" for special categories specified by "imm8", and store the results in mask vector "k". + [fpclass_note] + FOR j := 0 to 3 + i := j*64 + k[j] := CheckFPClass_FP64(a[i+63:i], imm8[7:0]) +ENDFOR +k[MAX:4] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Test packed double-precision (64-bit) floating-point elements in "a" for special categories specified by "imm8", and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + [fpclass_note] + FOR j := 0 to 3 + i := j*64 + IF k1[j] + k[j] := CheckFPClass_FP64(a[i+63:i], imm8[7:0]) + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:4] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + Test packed double-precision (64-bit) floating-point elements in "a" for special categories specified by "imm8", and store the results in mask vector "k". + [fpclass_note] + FOR j := 0 to 1 + i := j*64 + k[j] := CheckFPClass_FP64(a[i+63:i], imm8[7:0]) +ENDFOR +k[MAX:2] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Test packed double-precision (64-bit) floating-point elements in "a" for special categories specified by "imm8", and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + [fpclass_note] + FOR j := 0 to 1 + i := j*64 + IF k1[j] + k[j] := CheckFPClass_FP64(a[i+63:i], imm8[7:0]) + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:2] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + Test packed single-precision (32-bit) floating-point elements in "a" for special categories specified by "imm8", and store the results in mask vector "k". + [fpclass_note] + FOR j := 0 to 7 + i := j*32 + k[j] := CheckFPClass_FP32(a[i+31:i], imm8[7:0]) +ENDFOR +k[MAX:8] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Test packed single-precision (32-bit) floating-point elements in "a" for special categories specified by "imm8", and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + [fpclass_note] + FOR j := 0 to 7 + i := j*32 + IF k1[j] + k[j] := CheckFPClass_FP32(a[i+31:i], imm8[7:0]) + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:8] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + Test packed single-precision (32-bit) floating-point elements in "a" for special categories specified by "imm8", and store the results in mask vector "k". + [fpclass_note] + FOR j := 0 to 3 + i := j*32 + k[j] := CheckFPClass_FP32(a[i+31:i], imm8[7:0]) +ENDFOR +k[MAX:4] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Test packed single-precision (32-bit) floating-point elements in "a" for special categories specified by "imm8", and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + [fpclass_note] + FOR j := 0 to 3 + i := j*32 + IF k1[j] + k[j] := CheckFPClass_FP32(a[i+31:i], imm8[7:0]) + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:4] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Copy "a" to "dst", then insert 128 bits (composed of 2 packed double-precision (64-bit) floating-point elements) from "b" into "dst" at the location specified by "imm8". + +dst[255:0] := a[255:0] +CASE imm8[0] OF +0: dst[127:0] := b[127:0] +1: dst[255:128] := b[127:0] +ESAC +dst[MAX:256] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + + Copy "a" to "tmp", then insert 128 bits (composed of 2 packed double-precision (64-bit) floating-point elements) from "b" into "tmp" at the location specified by "imm8". Store "tmp" to "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +tmp[255:0] := a[255:0] +CASE (imm8[0]) OF +0: tmp[127:0] := b[127:0] +1: tmp[255:128] := b[127:0] +ESAC +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := tmp[i+63:i] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Copy "a" to "tmp", then insert 128 bits (composed of 2 packed double-precision (64-bit) floating-point elements) from "b" into "tmp" at the location specified by "imm8". Store "tmp" to "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +tmp[255:0] := a[255:0] +CASE (imm8[0]) OF +0: tmp[127:0] := b[127:0] +1: tmp[255:128] := b[127:0] +ESAC +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := tmp[i+63:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Copy "a" to "dst", then insert 128 bits (composed of 2 packed 64-bit integers) from "b" into "dst" at the location specified by "imm8". + +dst[255:0] := a[255:0] +CASE imm8[0] OF +0: dst[127:0] := b[127:0] +1: dst[255:128] := b[127:0] +ESAC +dst[MAX:256] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + + Copy "a" to "tmp", then insert 128 bits (composed of 2 packed 64-bit integers) from "b" into "tmp" at the location specified by "imm8". Store "tmp" to "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +tmp[255:0] := a[255:0] +CASE (imm8[0]) OF +0: tmp[127:0] := b[127:0] +1: tmp[255:128] := b[127:0] +ESAC +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := tmp[i+63:i] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Copy "a" to "tmp", then insert 128 bits (composed of 2 packed 64-bit integers) from "b" into "tmp" at the location specified by "imm8". Store "tmp" to "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +tmp[255:0] := a[255:0] +CASE (imm8[0]) OF +0: tmp[127:0] := b[127:0] +1: tmp[255:128] := b[127:0] +ESAC +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := tmp[i+63:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + Set each bit of mask register "k" based on the most significant bit of the corresponding packed 32-bit integer in "a". + +FOR j := 0 to 7 + i := j*32 + IF a[i+31] + k[j] := 1 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:8] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + Set each bit of mask register "k" based on the most significant bit of the corresponding packed 32-bit integer in "a". + +FOR j := 0 to 3 + i := j*32 + IF a[i+31] + k[j] := 1 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:4] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + Set each packed 32-bit integer in "dst" to all ones or all zeros based on the value of the corresponding bit in "k". + +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := 0xFFFFFFFF + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + Set each packed 32-bit integer in "dst" to all ones or all zeros based on the value of the corresponding bit in "k". + +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := 0xFFFFFFFF + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + Set each packed 64-bit integer in "dst" to all ones or all zeros based on the value of the corresponding bit in "k". + +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := 0xFFFFFFFFFFFFFFFF + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + Set each packed 64-bit integer in "dst" to all ones or all zeros based on the value of the corresponding bit in "k". + +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := 0xFFFFFFFFFFFFFFFF + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + Set each bit of mask register "k" based on the most significant bit of the corresponding packed 64-bit integer in "a". + +FOR j := 0 to 3 + i := j*64 + IF a[i+63] + k[j] := 1 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:4] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + Set each bit of mask register "k" based on the most significant bit of the corresponding packed 64-bit integer in "a". + +FOR j := 0 to 1 + i := j*64 + IF a[i+63] + k[j] := 1 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:2] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + + Calculate the max, min, absolute max, or absolute min (depending on control in "imm8") for packed double-precision (64-bit) floating-point elements in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + imm8[1:0] specifies the operation control: 00 = min, 01 = max, 10 = absolute min, 11 = absolute max. + imm8[3:2] specifies the sign control: 00 = sign from a, 01 = sign from compare result, 10 = clear sign bit, 11 = set sign bit. + +DEFINE RANGE(src1[63:0], src2[63:0], opCtl[1:0], signSelCtl[1:0]) { + CASE opCtl[1:0] OF + 0: tmp[63:0] := (src1[63:0] <= src2[63:0]) ? src1[63:0] : src2[63:0] + 1: tmp[63:0] := (src1[63:0] <= src2[63:0]) ? src2[63:0] : src1[63:0] + 2: tmp[63:0] := (ABS(src1[63:0]) <= ABS(src2[63:0])) ? src1[63:0] : src2[63:0] + 3: tmp[63:0] := (ABS(src1[63:0]) <= ABS(src2[63:0])) ? src2[63:0] : src1[63:0] + ESAC + + CASE signSelCtl[1:0] OF + 0: dst[63:0] := (src1[63] << 63) OR (tmp[62:0]) + 1: dst[63:0] := tmp[63:0] + 2: dst[63:0] := (0 << 63) OR (tmp[62:0]) + 3: dst[63:0] := (1 << 63) OR (tmp[62:0]) + ESAC + + RETURN dst +} +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := RANGE(a[i+63:i], b[i+63:i], imm8[1:0], imm8[3:2]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Calculate the max, min, absolute max, or absolute min (depending on control in "imm8") for packed double-precision (64-bit) floating-point elements in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + imm8[1:0] specifies the operation control: 00 = min, 01 = max, 10 = absolute min, 11 = absolute max. + imm8[3:2] specifies the sign control: 00 = sign from a, 01 = sign from compare result, 10 = clear sign bit, 11 = set sign bit. + +DEFINE RANGE(src1[63:0], src2[63:0], opCtl[1:0], signSelCtl[1:0]) { + CASE opCtl[1:0] OF + 0: tmp[63:0] := (src1[63:0] <= src2[63:0]) ? src1[63:0] : src2[63:0] + 1: tmp[63:0] := (src1[63:0] <= src2[63:0]) ? src2[63:0] : src1[63:0] + 2: tmp[63:0] := (ABS(src1[63:0]) <= ABS(src2[63:0])) ? src1[63:0] : src2[63:0] + 3: tmp[63:0] := (ABS(src1[63:0]) <= ABS(src2[63:0])) ? src2[63:0] : src1[63:0] + ESAC + + CASE signSelCtl[1:0] OF + 0: dst[63:0] := (src1[63] << 63) OR (tmp[62:0]) + 1: dst[63:0] := tmp[63:0] + 2: dst[63:0] := (0 << 63) OR (tmp[62:0]) + 3: dst[63:0] := (1 << 63) OR (tmp[62:0]) + ESAC + + RETURN dst +} +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := RANGE(a[i+63:i], b[i+63:i], imm8[1:0], imm8[3:2]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Calculate the max, min, absolute max, or absolute min (depending on control in "imm8") for packed double-precision (64-bit) floating-point elements in "a" and "b", and store the results in "dst". + imm8[1:0] specifies the operation control: 00 = min, 01 = max, 10 = absolute min, 11 = absolute max. + imm8[3:2] specifies the sign control: 00 = sign from a, 01 = sign from compare result, 10 = clear sign bit, 11 = set sign bit. + +DEFINE RANGE(src1[63:0], src2[63:0], opCtl[1:0], signSelCtl[1:0]) { + CASE opCtl[1:0] OF + 0: tmp[63:0] := (src1[63:0] <= src2[63:0]) ? src1[63:0] : src2[63:0] + 1: tmp[63:0] := (src1[63:0] <= src2[63:0]) ? src2[63:0] : src1[63:0] + 2: tmp[63:0] := (ABS(src1[63:0]) <= ABS(src2[63:0])) ? src1[63:0] : src2[63:0] + 3: tmp[63:0] := (ABS(src1[63:0]) <= ABS(src2[63:0])) ? src2[63:0] : src1[63:0] + ESAC + + CASE signSelCtl[1:0] OF + 0: dst[63:0] := (src1[63] << 63) OR (tmp[62:0]) + 1: dst[63:0] := tmp[63:0] + 2: dst[63:0] := (0 << 63) OR (tmp[62:0]) + 3: dst[63:0] := (1 << 63) OR (tmp[62:0]) + ESAC + + RETURN dst +} +FOR j := 0 to 3 + i := j*64 + dst[i+63:i] := RANGE(a[i+63:i], b[i+63:i], imm8[1:0], imm8[3:2]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + + Calculate the max, min, absolute max, or absolute min (depending on control in "imm8") for packed double-precision (64-bit) floating-point elements in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + imm8[1:0] specifies the operation control: 00 = min, 01 = max, 10 = absolute min, 11 = absolute max. + imm8[3:2] specifies the sign control: 00 = sign from a, 01 = sign from compare result, 10 = clear sign bit, 11 = set sign bit. + +DEFINE RANGE(src1[63:0], src2[63:0], opCtl[1:0], signSelCtl[1:0]) { + CASE opCtl[1:0] OF + 0: tmp[63:0] := (src1[63:0] <= src2[63:0]) ? src1[63:0] : src2[63:0] + 1: tmp[63:0] := (src1[63:0] <= src2[63:0]) ? src2[63:0] : src1[63:0] + 2: tmp[63:0] := (ABS(src1[63:0]) <= ABS(src2[63:0])) ? src1[63:0] : src2[63:0] + 3: tmp[63:0] := (ABS(src1[63:0]) <= ABS(src2[63:0])) ? src2[63:0] : src1[63:0] + ESAC + + CASE signSelCtl[1:0] OF + 0: dst[63:0] := (src1[63] << 63) OR (tmp[62:0]) + 1: dst[63:0] := tmp[63:0] + 2: dst[63:0] := (0 << 63) OR (tmp[62:0]) + 3: dst[63:0] := (1 << 63) OR (tmp[62:0]) + ESAC + + RETURN dst +} +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := RANGE(a[i+63:i], b[i+63:i], imm8[1:0], imm8[3:2]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Calculate the max, min, absolute max, or absolute min (depending on control in "imm8") for packed double-precision (64-bit) floating-point elements in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + imm8[1:0] specifies the operation control: 00 = min, 01 = max, 10 = absolute min, 11 = absolute max. + imm8[3:2] specifies the sign control: 00 = sign from a, 01 = sign from compare result, 10 = clear sign bit, 11 = set sign bit. + +DEFINE RANGE(src1[63:0], src2[63:0], opCtl[1:0], signSelCtl[1:0]) { + CASE opCtl[1:0] OF + 0: tmp[63:0] := (src1[63:0] <= src2[63:0]) ? src1[63:0] : src2[63:0] + 1: tmp[63:0] := (src1[63:0] <= src2[63:0]) ? src2[63:0] : src1[63:0] + 2: tmp[63:0] := (ABS(src1[63:0]) <= ABS(src2[63:0])) ? src1[63:0] : src2[63:0] + 3: tmp[63:0] := (ABS(src1[63:0]) <= ABS(src2[63:0])) ? src2[63:0] : src1[63:0] + ESAC + + CASE signSelCtl[1:0] OF + 0: dst[63:0] := (src1[63] << 63) OR (tmp[62:0]) + 1: dst[63:0] := tmp[63:0] + 2: dst[63:0] := (0 << 63) OR (tmp[62:0]) + 3: dst[63:0] := (1 << 63) OR (tmp[62:0]) + ESAC + + RETURN dst +} +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := RANGE(a[i+63:i], b[i+63:i], imm8[1:0], imm8[3:2]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Calculate the max, min, absolute max, or absolute min (depending on control in "imm8") for packed double-precision (64-bit) floating-point elements in "a" and "b", and store the results in "dst". + imm8[1:0] specifies the operation control: 00 = min, 01 = max, 10 = absolute min, 11 = absolute max. + imm8[3:2] specifies the sign control: 00 = sign from a, 01 = sign from compare result, 10 = clear sign bit, 11 = set sign bit. + +DEFINE RANGE(src1[63:0], src2[63:0], opCtl[1:0], signSelCtl[1:0]) { + CASE opCtl[1:0] OF + 0: tmp[63:0] := (src1[63:0] <= src2[63:0]) ? src1[63:0] : src2[63:0] + 1: tmp[63:0] := (src1[63:0] <= src2[63:0]) ? src2[63:0] : src1[63:0] + 2: tmp[63:0] := (ABS(src1[63:0]) <= ABS(src2[63:0])) ? src1[63:0] : src2[63:0] + 3: tmp[63:0] := (ABS(src1[63:0]) <= ABS(src2[63:0])) ? src2[63:0] : src1[63:0] + ESAC + + CASE signSelCtl[1:0] OF + 0: dst[63:0] := (src1[63] << 63) OR (tmp[62:0]) + 1: dst[63:0] := tmp[63:0] + 2: dst[63:0] := (0 << 63) OR (tmp[62:0]) + 3: dst[63:0] := (1 << 63) OR (tmp[62:0]) + ESAC + + RETURN dst +} +FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := RANGE(a[i+63:i], b[i+63:i], imm8[1:0], imm8[3:2]) +ENDFOR +dst[MAX:128] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + + Calculate the max, min, absolute max, or absolute min (depending on control in "imm8") for packed single-precision (32-bit) floating-point elements in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + imm8[1:0] specifies the operation control: 00 = min, 01 = max, 10 = absolute min, 11 = absolute max. + imm8[3:2] specifies the sign control: 00 = sign from a, 01 = sign from compare result, 10 = clear sign bit, 11 = set sign bit. + +DEFINE RANGE(src1[31:0], src2[31:0], opCtl[1:0], signSelCtl[1:0]) { + CASE opCtl[1:0] OF + 0: tmp[31:0] := (src1[31:0] <= src2[31:0]) ? src1[31:0] : src2[31:0] + 1: tmp[31:0] := (src1[31:0] <= src2[31:0]) ? src2[31:0] : src1[31:0] + 2: tmp[31:0] := (ABS(src1[31:0]) <= ABS(src2[31:0])) ? src1[31:0] : src2[31:0] + 3: tmp[31:0] := (ABS(src1[31:0]) <= ABS(src2[31:0])) ? src2[31:0] : src1[31:0] + ESAC + + CASE signSelCtl[1:0] OF + 0: dst[31:0] := (src1[31] << 31) OR (tmp[30:0]) + 1: dst[31:0] := tmp[63:0] + 2: dst[31:0] := (0 << 31) OR (tmp[30:0]) + 3: dst[31:0] := (1 << 31) OR (tmp[30:0]) + ESAC + + RETURN dst +} +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := RANGE(a[i+31:i], b[i+31:i], imm8[1:0], imm8[3:2]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Calculate the max, min, absolute max, or absolute min (depending on control in "imm8") for packed single-precision (32-bit) floating-point elements in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + imm8[1:0] specifies the operation control: 00 = min, 01 = max, 10 = absolute min, 11 = absolute max. + imm8[3:2] specifies the sign control: 00 = sign from a, 01 = sign from compare result, 10 = clear sign bit, 11 = set sign bit. + +DEFINE RANGE(src1[31:0], src2[31:0], opCtl[1:0], signSelCtl[1:0]) { + CASE opCtl[1:0] OF + 0: tmp[31:0] := (src1[31:0] <= src2[31:0]) ? src1[31:0] : src2[31:0] + 1: tmp[31:0] := (src1[31:0] <= src2[31:0]) ? src2[31:0] : src1[31:0] + 2: tmp[31:0] := (ABS(src1[31:0]) <= ABS(src2[31:0])) ? src1[31:0] : src2[31:0] + 3: tmp[31:0] := (ABS(src1[31:0]) <= ABS(src2[31:0])) ? src2[31:0] : src1[31:0] + ESAC + + CASE signSelCtl[1:0] OF + 0: dst[31:0] := (src1[31] << 31) OR (tmp[30:0]) + 1: dst[31:0] := tmp[63:0] + 2: dst[31:0] := (0 << 31) OR (tmp[30:0]) + 3: dst[31:0] := (1 << 31) OR (tmp[30:0]) + ESAC + + RETURN dst +} +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := RANGE(a[i+31:i], b[i+31:i], imm8[1:0], imm8[3:2]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Calculate the max, min, absolute max, or absolute min (depending on control in "imm8") for packed single-precision (32-bit) floating-point elements in "a" and "b", and store the results in "dst". + imm8[1:0] specifies the operation control: 00 = min, 01 = max, 10 = absolute min, 11 = absolute max. + imm8[3:2] specifies the sign control: 00 = sign from a, 01 = sign from compare result, 10 = clear sign bit, 11 = set sign bit. + +DEFINE RANGE(src1[31:0], src2[31:0], opCtl[1:0], signSelCtl[1:0]) { + CASE opCtl[1:0] OF + 0: tmp[31:0] := (src1[31:0] <= src2[31:0]) ? src1[31:0] : src2[31:0] + 1: tmp[31:0] := (src1[31:0] <= src2[31:0]) ? src2[31:0] : src1[31:0] + 2: tmp[31:0] := (ABS(src1[31:0]) <= ABS(src2[31:0])) ? src1[31:0] : src2[31:0] + 3: tmp[31:0] := (ABS(src1[31:0]) <= ABS(src2[31:0])) ? src2[31:0] : src1[31:0] + ESAC + + CASE signSelCtl[1:0] OF + 0: dst[31:0] := (src1[31] << 31) OR (tmp[30:0]) + 1: dst[31:0] := tmp[63:0] + 2: dst[31:0] := (0 << 31) OR (tmp[30:0]) + 3: dst[31:0] := (1 << 31) OR (tmp[30:0]) + ESAC + + RETURN dst +} +FOR j := 0 to 7 + i := j*32 + dst[i+31:i] := RANGE(a[i+31:i], b[i+31:i], imm8[1:0], imm8[3:2]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + + Calculate the max, min, absolute max, or absolute min (depending on control in "imm8") for packed single-precision (32-bit) floating-point elements in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + imm8[1:0] specifies the operation control: 00 = min, 01 = max, 10 = absolute min, 11 = absolute max. + imm8[3:2] specifies the sign control: 00 = sign from a, 01 = sign from compare result, 10 = clear sign bit, 11 = set sign bit. + +DEFINE RANGE(src1[31:0], src2[31:0], opCtl[1:0], signSelCtl[1:0]) { + CASE opCtl[1:0] OF + 0: tmp[31:0] := (src1[31:0] <= src2[31:0]) ? src1[31:0] : src2[31:0] + 1: tmp[31:0] := (src1[31:0] <= src2[31:0]) ? src2[31:0] : src1[31:0] + 2: tmp[31:0] := (ABS(src1[31:0]) <= ABS(src2[31:0])) ? src1[31:0] : src2[31:0] + 3: tmp[31:0] := (ABS(src1[31:0]) <= ABS(src2[31:0])) ? src2[31:0] : src1[31:0] + ESAC + + CASE signSelCtl[1:0] OF + 0: dst[31:0] := (src1[31] << 31) OR (tmp[30:0]) + 1: dst[31:0] := tmp[63:0] + 2: dst[31:0] := (0 << 31) OR (tmp[30:0]) + 3: dst[31:0] := (1 << 31) OR (tmp[30:0]) + ESAC + + RETURN dst +} +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := RANGE(a[i+31:i], b[i+31:i], imm8[1:0], imm8[3:2]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Calculate the max, min, absolute max, or absolute min (depending on control in "imm8") for packed single-precision (32-bit) floating-point elements in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + imm8[1:0] specifies the operation control: 00 = min, 01 = max, 10 = absolute min, 11 = absolute max. + imm8[3:2] specifies the sign control: 00 = sign from a, 01 = sign from compare result, 10 = clear sign bit, 11 = set sign bit. + +DEFINE RANGE(src1[31:0], src2[31:0], opCtl[1:0], signSelCtl[1:0]) { + CASE opCtl[1:0] OF + 0: tmp[31:0] := (src1[31:0] <= src2[31:0]) ? src1[31:0] : src2[31:0] + 1: tmp[31:0] := (src1[31:0] <= src2[31:0]) ? src2[31:0] : src1[31:0] + 2: tmp[31:0] := (ABS(src1[31:0]) <= ABS(src2[31:0])) ? src1[31:0] : src2[31:0] + 3: tmp[31:0] := (ABS(src1[31:0]) <= ABS(src2[31:0])) ? src2[31:0] : src1[31:0] + ESAC + + CASE signSelCtl[1:0] OF + 0: dst[31:0] := (src1[31] << 31) OR (tmp[30:0]) + 1: dst[31:0] := tmp[63:0] + 2: dst[31:0] := (0 << 31) OR (tmp[30:0]) + 3: dst[31:0] := (1 << 31) OR (tmp[30:0]) + ESAC + + RETURN dst +} +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := RANGE(a[i+31:i], b[i+31:i], imm8[1:0], imm8[3:2]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Calculate the max, min, absolute max, or absolute min (depending on control in "imm8") for packed single-precision (32-bit) floating-point elements in "a" and "b", and store the results in "dst". + imm8[1:0] specifies the operation control: 00 = min, 01 = max, 10 = absolute min, 11 = absolute max. + imm8[3:2] specifies the sign control: 00 = sign from a, 01 = sign from compare result, 10 = clear sign bit, 11 = set sign bit. + +DEFINE RANGE(src1[31:0], src2[31:0], opCtl[1:0], signSelCtl[1:0]) { + CASE opCtl[1:0] OF + 0: tmp[31:0] := (src1[31:0] <= src2[31:0]) ? src1[31:0] : src2[31:0] + 1: tmp[31:0] := (src1[31:0] <= src2[31:0]) ? src2[31:0] : src1[31:0] + 2: tmp[31:0] := (ABS(src1[31:0]) <= ABS(src2[31:0])) ? src1[31:0] : src2[31:0] + 3: tmp[31:0] := (ABS(src1[31:0]) <= ABS(src2[31:0])) ? src2[31:0] : src1[31:0] + ESAC + + CASE signSelCtl[1:0] OF + 0: dst[31:0] := (src1[31] << 31) OR (tmp[30:0]) + 1: dst[31:0] := tmp[63:0] + 2: dst[31:0] := (0 << 31) OR (tmp[30:0]) + 3: dst[31:0] := (1 << 31) OR (tmp[30:0]) + ESAC + + RETURN dst +} +FOR j := 0 to 3 + i := j*32 + dst[i+31:i] := RANGE(a[i+31:i], b[i+31:i], imm8[1:0], imm8[3:2]) +ENDFOR +dst[MAX:128] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Extract the reduced argument of packed double-precision (64-bit) floating-point elements in "a" by the number of bits specified by "imm8", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). [round_imm_note] + +DEFINE ReduceArgumentPD(src1[63:0], imm8[7:0]) { + m[63:0] := FP64(imm8[7:4]) // number of fraction bits after the binary point to be preserved + tmp[63:0] := POW(2.0, -m) * ROUND(POW(2.0, m) * src1[63:0], imm8[3:0]) + tmp[63:0] := src1[63:0] - tmp[63:0] + IF IsInf(tmp[63:0]) + tmp[63:0] := FP64(0.0) + FI + RETURN tmp[63:0] +} +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := ReduceArgumentPD(a[i+63:i], imm8[7:0]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Extract the reduced argument of packed double-precision (64-bit) floating-point elements in "a" by the number of bits specified by "imm8", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). [round_imm_note] + +DEFINE ReduceArgumentPD(src1[63:0], imm8[7:0]) { + m[63:0] := FP64(imm8[7:4]) // number of fraction bits after the binary point to be preserved + tmp[63:0] := POW(2.0, -m) * ROUND(POW(2.0, m) * src1[63:0], imm8[3:0]) + tmp[63:0] := src1[63:0] - tmp[63:0] + IF IsInf(tmp[63:0]) + tmp[63:0] := FP64(0.0) + FI + RETURN tmp[63:0] +} +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := ReduceArgumentPD(a[i+63:i], imm8[7:0]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + Extract the reduced argument of packed double-precision (64-bit) floating-point elements in "a" by the number of bits specified by "imm8", and store the results in "dst". [round_imm_note] + +DEFINE ReduceArgumentPD(src1[63:0], imm8[7:0]) { + m[63:0] := FP64(imm8[7:4]) // number of fraction bits after the binary point to be preserved + tmp[63:0] := POW(2.0, -m) * ROUND(POW(2.0, m) * src1[63:0], imm8[3:0]) + tmp[63:0] := src1[63:0] - tmp[63:0] + IF IsInf(tmp[63:0]) + tmp[63:0] := FP64(0.0) + FI + RETURN tmp[63:0] +} +FOR j := 0 to 3 + i := j*64 + dst[i+63:i] := ReduceArgumentPD(a[i+63:i], imm8[7:0]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Extract the reduced argument of packed double-precision (64-bit) floating-point elements in "a" by the number of bits specified by "imm8", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). [round_imm_note] + +DEFINE ReduceArgumentPD(src1[63:0], imm8[7:0]) { + m[63:0] := FP64(imm8[7:4]) // number of fraction bits after the binary point to be preserved + tmp[63:0] := POW(2.0, -m) * ROUND(POW(2.0, m) * src1[63:0], imm8[3:0]) + tmp[63:0] := src1[63:0] - tmp[63:0] + IF IsInf(tmp[63:0]) + tmp[63:0] := FP64(0.0) + FI + RETURN tmp[63:0] +} +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := ReduceArgumentPD(a[i+63:i], imm8[7:0]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Extract the reduced argument of packed double-precision (64-bit) floating-point elements in "a" by the number of bits specified by "imm8", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). [round_imm_note] + +DEFINE ReduceArgumentPD(src1[63:0], imm8[7:0]) { + m[63:0] := FP64(imm8[7:4]) // number of fraction bits after the binary point to be preserved + tmp[63:0] := POW(2.0, -m) * ROUND(POW(2.0, m) * src1[63:0], imm8[3:0]) + tmp[63:0] := src1[63:0] - tmp[63:0] + IF IsInf(tmp[63:0]) + tmp[63:0] := FP64(0.0) + FI + RETURN tmp[63:0] +} +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := ReduceArgumentPD(a[i+63:i], imm8[7:0]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + Extract the reduced argument of packed double-precision (64-bit) floating-point elements in "a" by the number of bits specified by "imm8", and store the results in "dst". [round_imm_note] + +DEFINE ReduceArgumentPD(src1[63:0], imm8[7:0]) { + m[63:0] := FP64(imm8[7:4]) // number of fraction bits after the binary point to be preserved + tmp[63:0] := POW(2.0, -m) * ROUND(POW(2.0, m) * src1[63:0], imm8[3:0]) + tmp[63:0] := src1[63:0] - tmp[63:0] + IF IsInf(tmp[63:0]) + tmp[63:0] := FP64(0.0) + FI + RETURN tmp[63:0] +} +FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := ReduceArgumentPD(a[i+63:i], imm8[7:0]) +ENDFOR +dst[MAX:128] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Extract the reduced argument of packed single-precision (32-bit) floating-point elements in "a" by the number of bits specified by "imm8", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). [round_imm_note] + +DEFINE ReduceArgumentPS(src1[31:0], imm8[7:0]) { + m[31:0] := FP32(imm8[7:4]) // number of fraction bits after the binary point to be preserved + tmp[31:0] := POW(FP32(2.0), -m) * ROUND(POW(FP32(2.0), m) * src1[31:0], imm8[3:0]) + tmp[31:0] := src1[31:0] - tmp[31:0] + IF IsInf(tmp[31:0]) + tmp[31:0] := FP32(0.0) + FI + RETURN tmp[31:0] +} +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := ReduceArgumentPS(a[i+31:i], imm8[7:0]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Extract the reduced argument of packed single-precision (32-bit) floating-point elements in "a" by the number of bits specified by "imm8", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). [round_imm_note] + +DEFINE ReduceArgumentPS(src1[31:0], imm8[7:0]) { + m[31:0] := FP32(imm8[7:4]) // number of fraction bits after the binary point to be preserved + tmp[31:0] := POW(FP32(2.0), -m) * ROUND(POW(FP32(2.0), m) * src1[31:0], imm8[3:0]) + tmp[31:0] := src1[31:0] - tmp[31:0] + IF IsInf(tmp[31:0]) + tmp[31:0] := FP32(0.0) + FI + RETURN tmp[31:0] +} +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := ReduceArgumentPS(a[i+31:i], imm8[7:0]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + Extract the reduced argument of packed single-precision (32-bit) floating-point elements in "a" by the number of bits specified by "imm8", and store the results in "dst". [round_imm_note] + +DEFINE ReduceArgumentPS(src1[31:0], imm8[7:0]) { + m[31:0] := FP32(imm8[7:4]) // number of fraction bits after the binary point to be preserved + tmp[31:0] := POW(FP32(2.0), -m) * ROUND(POW(FP32(2.0), m) * src1[31:0], imm8[3:0]) + tmp[31:0] := src1[31:0] - tmp[31:0] + RETURN tmp[31:0] + IF IsInf(tmp[31:0]) + tmp[31:0] := FP32(0.0) + FI +} +FOR j := 0 to 7 + i := j*32 + dst[i+31:i] := ReduceArgumentPS(a[i+31:i], imm8[7:0]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Extract the reduced argument of packed single-precision (32-bit) floating-point elements in "a" by the number of bits specified by "imm8", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). [round_imm_note] + +DEFINE ReduceArgumentPS(src1[31:0], imm8[7:0]) { + m[31:0] := FP32(imm8[7:4]) // number of fraction bits after the binary point to be preserved + tmp[31:0] := POW(FP32(2.0), -m) * ROUND(POW(FP32(2.0), m) * src1[31:0], imm8[3:0]) + tmp[31:0] := src1[31:0] - tmp[31:0] + IF IsInf(tmp[31:0]) + tmp[31:0] := FP32(0.0) + FI + RETURN tmp[31:0] +} +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := ReduceArgumentPS(a[i+31:i], imm8[7:0]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Extract the reduced argument of packed single-precision (32-bit) floating-point elements in "a" by the number of bits specified by "imm8", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). [round_imm_note] + +DEFINE ReduceArgumentPS(src1[31:0], imm8[7:0]) { + m[31:0] := FP32(imm8[7:4]) // number of fraction bits after the binary point to be preserved + tmp[31:0] := POW(FP32(2.0), -m) * ROUND(POW(FP32(2.0), m) * src1[31:0], imm8[3:0]) + tmp[31:0] := src1[31:0] - tmp[31:0] + IF IsInf(tmp[31:0]) + tmp[31:0] := FP32(0.0) + FI + RETURN tmp[31:0] +} +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := ReduceArgumentPS(a[i+31:i], imm8[7:0]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + Extract the reduced argument of packed single-precision (32-bit) floating-point elements in "a" by the number of bits specified by "imm8", and store the results in "dst". [round_imm_note] + +DEFINE ReduceArgumentPS(src1[31:0], imm8[7:0]) { + m[31:0] := FP32(imm8[7:4]) // number of fraction bits after the binary point to be preserved + tmp[31:0] := POW(FP32(2.0), -m) * ROUND(POW(FP32(2.0), m) * src1[31:0], imm8[3:0]) + tmp[31:0] := src1[31:0] - tmp[31:0] + IF IsInf(tmp[31:0]) + tmp[31:0] := FP32(0.0) + FI + RETURN tmp[31:0] +} +FOR j := 0 to 3 + i := j*32 + dst[i+31:i] := ReduceArgumentPS(a[i+31:i], imm8[7:0]) +ENDFOR +dst[MAX:128] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed 64-bit integers, and store the results in "dst". + +FOR j := 0 to 3 + i := j*64 + dst[i+63:i] := Convert_FP64_To_Int64(a[i+63:i]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed 64-bit integers, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := Convert_FP64_To_Int64(a[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed 64-bit integers, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := Convert_FP64_To_Int64(a[i+63:i]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed 64-bit integers, and store the results in "dst". + +FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := Convert_FP64_To_Int64(a[i+63:i]) +ENDFOR +dst[MAX:128] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed 64-bit integers, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := Convert_FP64_To_Int64(a[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed 64-bit integers, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := Convert_FP64_To_Int64(a[i+63:i]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed unsigned 64-bit integers, and store the results in "dst". + +FOR j := 0 to 3 + i := j*64 + dst[i+63:i] := Convert_FP64_To_UInt64(a[i+63:i]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed unsigned 64-bit integers, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := Convert_FP64_To_UInt64(a[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed unsigned 64-bit integers, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := Convert_FP64_To_UInt64(a[i+63:i]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed unsigned 64-bit integers, and store the results in "dst". + +FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := Convert_FP64_To_UInt64(a[i+63:i]) +ENDFOR +dst[MAX:128] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed unsigned 64-bit integers, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := Convert_FP64_To_UInt64(a[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed unsigned 64-bit integers, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := Convert_FP64_To_UInt64(a[i+63:i]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed 64-bit integers, and store the results in "dst". + +FOR j := 0 to 3 + i := j*64 + l := j*32 + dst[i+63:i] := Convert_FP32_To_Int64(a[l+31:l]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed 64-bit integers, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + l := j*32 + IF k[j] + dst[i+63:i] := Convert_FP32_To_Int64(a[l+31:l]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed 64-bit integers, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + l := j*32 + IF k[j] + dst[i+63:i] := Convert_FP32_To_Int64(a[l+31:l]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed 64-bit integers, and store the results in "dst". + +FOR j := 0 to 1 + i := j*64 + l := j*32 + dst[i+63:i] := Convert_FP32_To_Int64(a[l+31:l]) +ENDFOR +dst[MAX:128] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed 64-bit integers, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + l := j*32 + IF k[j] + dst[i+63:i] := Convert_FP32_To_Int64(a[l+31:l]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed 64-bit integers, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + l := j*32 + IF k[j] + dst[i+63:i] := Convert_FP32_To_Int64(a[l+31:l]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed unsigned 64-bit integers, and store the results in "dst". + +FOR j := 0 to 3 + i := j*64 + l := j*32 + dst[i+63:i] := Convert_FP32_To_UInt64(a[l+31:l]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed unsigned 64-bit integers, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + l := j*32 + IF k[j] + dst[i+63:i] := Convert_FP32_To_UInt64(a[l+31:l]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed unsigned 64-bit integers, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + l := j*32 + IF k[j] + dst[i+63:i] := Convert_FP32_To_UInt64(a[l+31:l]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed unsigned 64-bit integers, and store the results in "dst". + +FOR j := 0 to 1 + i := j*64 + l := j*32 + dst[i+63:i] := Convert_FP32_To_UInt64(a[l+31:l]) +ENDFOR +dst[MAX:128] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed unsigned 64-bit integers, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + l := j*32 + IF k[j] + dst[i+63:i] := Convert_FP32_To_UInt64(a[l+31:l]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed unsigned 64-bit integers, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + l := j*32 + IF k[j] + dst[i+63:i] := Convert_FP32_To_UInt64(a[l+31:l]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed signed 64-bit integers in "a" to packed double-precision (64-bit) floating-point elements, and store the results in "dst". + +FOR j := 0 to 3 + i := j*64 + dst[i+63:i] := Convert_Int64_To_FP64(a[i+63:i]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed signed 64-bit integers in "a" to packed double-precision (64-bit) floating-point elements, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := Convert_Int64_To_FP64(a[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed signed 64-bit integers in "a" to packed double-precision (64-bit) floating-point elements, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := Convert_Int64_To_FP64(a[i+63:i]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed signed 64-bit integers in "a" to packed double-precision (64-bit) floating-point elements, and store the results in "dst". + +FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := Convert_Int64_To_FP64(a[i+63:i]) +ENDFOR +dst[MAX:128] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed signed 64-bit integers in "a" to packed double-precision (64-bit) floating-point elements, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := Convert_Int64_To_FP64(a[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed signed 64-bit integers in "a" to packed double-precision (64-bit) floating-point elements, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := Convert_Int64_To_FP64(a[i+63:i]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed signed 64-bit integers in "a" to packed single-precision (32-bit) floating-point elements, and store the results in "dst". + +FOR j := 0 to 3 + i := j*64 + l := j*32 + dst[l+31:l] := Convert_Int64_To_FP32(a[i+63:i]) +ENDFOR +dst[MAX:128] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed signed 64-bit integers in "a" to packed single-precision (32-bit) floating-point elements, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + l := j*32 + IF k[j] + dst[l+31:l] := Convert_Int64_To_FP32(a[i+63:i]) + ELSE + dst[l+31:l] := src[l+31:l] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed signed 64-bit integers in "a" to packed single-precision (32-bit) floating-point elements, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + l := j*32 + IF k[j] + dst[l+31:l] := Convert_Int64_To_FP32(a[i+63:i]) + ELSE + dst[l+31:l] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed signed 64-bit integers in "a" to packed single-precision (32-bit) floating-point elements, and store the results in "dst". + +FOR j := 0 to 1 + i := j*64 + l := j*32 + dst[l+31:l] := Convert_Int64_To_FP32(a[i+63:i]) +ENDFOR +dst[MAX:64] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed signed 64-bit integers in "a" to packed single-precision (32-bit) floating-point elements, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + l := j*32 + IF k[j] + dst[l+31:l] := Convert_Int64_To_FP32(a[i+63:i]) + ELSE + dst[l+31:l] := src[l+31:l] + FI +ENDFOR +dst[MAX:64] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed signed 64-bit integers in "a" to packed single-precision (32-bit) floating-point elements, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + l := j*32 + IF k[j] + dst[l+31:l] := Convert_Int64_To_FP32(a[i+63:i]) + ELSE + dst[l+31:l] := 0 + FI +ENDFOR +dst[MAX:64] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed 64-bit integers with truncation, and store the results in "dst". + +FOR j := 0 to 3 + i := j*64 + dst[i+63:i] := Convert_FP64_To_Int64_Truncate(a[i+63:i]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed 64-bit integers with truncation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := Convert_FP64_To_Int64_Truncate(a[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed 64-bit integers with truncation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := Convert_FP64_To_Int64_Truncate(a[i+63:i]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed 64-bit integers with truncation, and store the results in "dst". + +FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := Convert_FP64_To_Int64_Truncate(a[i+63:i]) +ENDFOR +dst[MAX:128] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed 64-bit integers with truncation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := Convert_FP64_To_Int64_Truncate(a[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed 64-bit integers with truncation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := Convert_FP64_To_Int64_Truncate(a[i+63:i]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed unsigned 64-bit integers with truncation, and store the results in "dst". + +FOR j := 0 to 3 + i := j*64 + dst[i+63:i] := Convert_FP64_To_UInt64_Truncate(a[i+63:i]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed unsigned 64-bit integers with truncation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := Convert_FP64_To_UInt64_Truncate(a[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed unsigned 64-bit integers with truncation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := Convert_FP64_To_UInt64_Truncate(a[i+63:i]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed unsigned 64-bit integers with truncation, and store the results in "dst". + +FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := Convert_FP64_To_UInt64_Truncate(a[i+63:i]) +ENDFOR +dst[MAX:128] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed unsigned 64-bit integers with truncation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := Convert_FP64_To_UInt64_Truncate(a[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed unsigned 64-bit integers with truncation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := Convert_FP64_To_UInt64_Truncate(a[i+63:i]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed 64-bit integers with truncation, and store the results in "dst". + +FOR j := 0 to 3 + i := j*64 + l := j*32 + dst[i+63:i] := Convert_FP32_To_Int64_Truncate(a[l+31:l]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed 64-bit integers with truncation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + l := j*32 + IF k[j] + dst[i+63:i] := Convert_FP32_To_Int64_Truncate(a[l+31:l]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed 64-bit integers with truncation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + l := j*32 + IF k[j] + dst[i+63:i] := Convert_FP32_To_Int64_Truncate(a[l+31:l]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed 64-bit integers with truncation, and store the results in "dst". + +FOR j := 0 to 1 + i := j*64 + l := j*32 + dst[i+63:i] := Convert_FP32_To_Int64_Truncate(a[l+31:l]) +ENDFOR +dst[MAX:128] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed 64-bit integers with truncation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + l := j*32 + IF k[j] + dst[i+63:i] := Convert_FP32_To_Int64_Truncate(a[l+31:l]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed 64-bit integers with truncation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + l := j*32 + IF k[j] + dst[i+63:i] := Convert_FP32_To_Int64_Truncate(a[l+31:l]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed unsigned 64-bit integers with truncation, and store the results in "dst". + +FOR j := 0 to 3 + i := j*64 + l := j*32 + dst[i+63:i] := Convert_FP32_To_UInt64_Truncate(a[l+31:l]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed unsigned 64-bit integers with truncation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + l := j*32 + IF k[j] + dst[i+63:i] := Convert_FP32_To_UInt64_Truncate(a[l+31:l]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed unsigned 64-bit integers with truncation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + l := j*32 + IF k[j] + dst[i+63:i] := Convert_FP32_To_UInt64_Truncate(a[l+31:l]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed unsigned 64-bit integers with truncation, and store the results in "dst". + +FOR j := 0 to 1 + i := j*64 + l := j*32 + dst[i+63:i] := Convert_FP32_To_UInt64_Truncate(a[l+31:l]) +ENDFOR +dst[MAX:128] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed unsigned 64-bit integers with truncation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + l := j*32 + IF k[j] + dst[i+63:i] := Convert_FP32_To_UInt64_Truncate(a[l+31:l]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed unsigned 64-bit integers with truncation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + l := j*32 + IF k[j] + dst[i+63:i] := Convert_FP32_To_UInt64_Truncate(a[l+31:l]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed unsigned 64-bit integers in "a" to packed double-precision (64-bit) floating-point elements, and store the results in "dst". + +FOR j := 0 to 3 + i := j*64 + dst[i+63:i] := Convert_Int64_To_FP64(a[i+63:i]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed unsigned 64-bit integers in "a" to packed double-precision (64-bit) floating-point elements, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := Convert_Int64_To_FP64(a[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed unsigned 64-bit integers in "a" to packed double-precision (64-bit) floating-point elements, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := Convert_Int64_To_FP64(a[i+63:i]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed unsigned 64-bit integers in "a" to packed double-precision (64-bit) floating-point elements, and store the results in "dst". + +FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := Convert_Int64_To_FP64(a[i+63:i]) +ENDFOR +dst[MAX:128] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed unsigned 64-bit integers in "a" to packed double-precision (64-bit) floating-point elements, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := Convert_Int64_To_FP64(a[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed unsigned 64-bit integers in "a" to packed double-precision (64-bit) floating-point elements, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := Convert_Int64_To_FP64(a[i+63:i]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed unsigned 64-bit integers in "a" to packed single-precision (32-bit) floating-point elements, and store the results in "dst". + +FOR j := 0 to 3 + i := j*64 + l := j*32 + dst[l+31:l] := Convert_Int64_To_FP32(a[i+63:i]) +ENDFOR +dst[MAX:128] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed unsigned 64-bit integers in "a" to packed single-precision (32-bit) floating-point elements, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + l := j*32 + IF k[j] + dst[l+31:l] := Convert_Int64_To_FP32(a[i+63:i]) + ELSE + dst[l+31:l] := src[l+31:l] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed unsigned 64-bit integers in "a" to packed single-precision (32-bit) floating-point elements, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + l := j*32 + IF k[j] + dst[l+31:l] := Convert_Int64_To_FP32(a[i+63:i]) + ELSE + dst[l+31:l] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed unsigned 64-bit integers in "a" to packed single-precision (32-bit) floating-point elements, and store the results in "dst". + +FOR j := 0 to 1 + i := j*64 + l := j*32 + dst[l+31:l] := Convert_Int64_To_FP32(a[i+63:i]) +ENDFOR +dst[MAX:64] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed unsigned 64-bit integers in "a" to packed single-precision (32-bit) floating-point elements, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + l := j*32 + IF k[j] + dst[l+31:l] := Convert_Int64_To_FP32(a[i+63:i]) + ELSE + dst[l+31:l] := src[l+31:l] + FI +ENDFOR +dst[MAX:64] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed unsigned 64-bit integers in "a" to packed single-precision (32-bit) floating-point elements, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + l := j*32 + IF k[j] + dst[l+31:l] := Convert_Int64_To_FP32(a[i+63:i]) + ELSE + dst[l+31:l] := 0 + FI +ENDFOR +dst[MAX:64] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + + Multiply the packed 64-bit integers in "a" and "b", producing intermediate 128-bit integers, and store the low 64 bits of the intermediate integers in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + tmp[127:0] := a[i+63:i] * b[i+63:i] + dst[i+63:i] := tmp[63:0] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply the packed 64-bit integers in "a" and "b", producing intermediate 128-bit integers, and store the low 64 bits of the intermediate integers in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + tmp[127:0] := a[i+63:i] * b[i+63:i] + dst[i+63:i] := tmp[63:0] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + Multiply the packed 64-bit integers in "a" and "b", producing intermediate 128-bit integers, and store the low 64 bits of the intermediate integers in "dst". + +FOR j := 0 to 3 + i := j*64 + tmp[127:0] := a[i+63:i] * b[i+63:i] + dst[i+63:i] := tmp[63:0] +ENDFOR +dst[MAX:256] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply the packed 64-bit integers in "a" and "b", producing intermediate 128-bit integers, and store the low 64 bits of the intermediate integers in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + tmp[127:0] := a[i+63:i] * b[i+63:i] + dst[i+63:i] := tmp[63:0] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply the packed 64-bit integers in "a" and "b", producing intermediate 128-bit integers, and store the low 64 bits of the intermediate integers in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + tmp[127:0] := a[i+63:i] * b[i+63:i] + dst[i+63:i] := tmp[63:0] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + Multiply the packed 64-bit integers in "a" and "b", producing intermediate 128-bit integers, and store the low 64 bits of the intermediate integers in "dst". + +FOR j := 0 to 1 + i := j*64 + tmp[127:0] := a[i+63:i] * b[i+63:i] + dst[i+63:i] := tmp[63:0] +ENDFOR +dst[MAX:128] := 0 + + + AVX512DQ + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Compute the bitwise NOT of packed double-precision (64-bit) floating-point elements in "a" and then AND with "b", and store the results in "dst". + +FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := ((NOT a[i+63:i]) AND b[i+63:i]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Logical +
+ + + + + + + Compute the bitwise NOT of packed double-precision (64-bit) floating-point elements in "a" and then AND with "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := ((NOT a[i+63:i]) AND b[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Logical +
+ + + + + + Compute the bitwise NOT of packed double-precision (64-bit) floating-point elements in "a" and then AND with "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := ((NOT a[i+63:i]) AND b[i+63:i]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Logical +
+ + + + + Compute the bitwise NOT of packed single-precision (32-bit) floating-point elements in "a" and then AND with "b", and store the results in "dst". + +FOR j := 0 to 15 + i := j*32 + dst[i+31:i] := ((NOT a[i+31:i]) AND b[i+31:i]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Logical +
+ + + + + + + Compute the bitwise NOT of packed single-precision (32-bit) floating-point elements in "a" and then AND with "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := ((NOT a[i+31:i]) AND b[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Logical +
+ + + + + + Compute the bitwise NOT of packed single-precision (32-bit) floating-point elements in "a" and then AND with "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := ((NOT a[i+31:i]) AND b[i+31:i]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Logical +
+ + + + + Compute the bitwise AND of packed double-precision (64-bit) floating-point elements in "a" and "b", and store the results in "dst". + +FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := (a[i+63:i] AND b[i+63:i]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Logical +
+ + + + + + + Compute the bitwise AND of packed double-precision (64-bit) floating-point elements in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := (a[i+63:i] AND b[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Logical +
+ + + + + + Compute the bitwise AND of packed double-precision (64-bit) floating-point elements in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := (a[i+63:i] AND b[i+63:i]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Logical +
+ + + + + Compute the bitwise AND of packed single-precision (32-bit) floating-point elements in "a" and "b", and store the results in "dst". + +FOR j := 0 to 15 + i := j*32 + dst[i+31:i] := (a[i+31:i] AND b[i+31:i]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Logical +
+ + + + + + + Compute the bitwise AND of packed single-precision (32-bit) floating-point elements in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := (a[i+31:i] AND b[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Logical +
+ + + + + + Compute the bitwise AND of packed single-precision (32-bit) floating-point elements in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := (a[i+31:i] AND b[i+31:i]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Logical +
+ + + + + + + Compute the bitwise OR of packed double-precision (64-bit) floating-point elements in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := a[i+63:i] OR b[i+63:i] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Logical +
+ + + + + + Compute the bitwise OR of packed double-precision (64-bit) floating-point elements in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := a[i+63:i] OR b[i+63:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Logical +
+ + + + + Compute the bitwise OR of packed double-precision (64-bit) floating-point elements in "a" and "b", and store the results in "dst". + +FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := a[i+63:i] OR b[i+63:i] +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Logical +
+ + + + + + + Compute the bitwise OR of packed single-precision (32-bit) floating-point elements in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := a[i+31:i] OR b[i+31:i] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Logical +
+ + + + + + Compute the bitwise OR of packed single-precision (32-bit) floating-point elements in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := a[i+31:i] OR b[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Logical +
+ + + + + Compute the bitwise OR of packed single-precision (32-bit) floating-point elements in "a" and "b", and store the results in "dst". + +FOR j := 0 to 15 + i := j*32 + dst[i+31:i] := a[i+31:i] OR b[i+31:i] +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Logical +
+ + + + + + + Compute the bitwise XOR of packed double-precision (64-bit) floating-point elements in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := a[i+63:i] XOR b[i+63:i] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Logical +
+ + + + + + Compute the bitwise XOR of packed double-precision (64-bit) floating-point elements in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := a[i+63:i] XOR b[i+63:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Logical +
+ + + + + Compute the bitwise XOR of packed double-precision (64-bit) floating-point elements in "a" and "b", and store the results in "dst". + +FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := a[i+63:i] XOR b[i+63:i] +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Logical +
+ + + + + + + Compute the bitwise XOR of packed single-precision (32-bit) floating-point elements in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := a[i+31:i] XOR b[i+31:i] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Logical +
+ + + + + + Compute the bitwise XOR of packed single-precision (32-bit) floating-point elements in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := a[i+31:i] XOR b[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Logical +
+ + + + + Compute the bitwise XOR of packed single-precision (32-bit) floating-point elements in "a" and "b", and store the results in "dst". + +FOR j := 0 to 15 + i := j*32 + dst[i+31:i] := a[i+31:i] XOR b[i+31:i] +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Logical +
+ + + + Broadcast the lower 2 packed single-precision (32-bit) floating-point elements from "a" to all elements of "dst". + +FOR j := 0 to 15 + i := j*32 + n := (j % 2)*32 + dst[i+31:i] := a[n+31:n] +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Miscellaneous +
+ + + + + + Broadcast the lower 2 packed single-precision (32-bit) floating-point elements from "a" to all elements of "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + n := (j % 2)*32 + IF k[j] + dst[i+31:i] := a[n+31:n] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Miscellaneous +
+ + + + + Broadcast the lower 2 packed single-precision (32-bit) floating-point elements from "a" to all elements of "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + n := (j % 2)*32 + IF k[j] + dst[i+31:i] := a[n+31:n] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Miscellaneous +
+ + + + Broadcast the 8 packed single-precision (32-bit) floating-point elements from "a" to all elements of "dst". + +FOR j := 0 to 15 + i := j*32 + n := (j % 8)*32 + dst[i+31:i] := a[n+31:n] +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Miscellaneous +
+ + + + + + Broadcast the 8 packed single-precision (32-bit) floating-point elements from "a" to all elements of "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + n := (j % 8)*32 + IF k[j] + dst[i+31:i] := a[n+31:n] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Miscellaneous +
+ + + + + Broadcast the 8 packed single-precision (32-bit) floating-point elements from "a" to all elements of "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + n := (j % 8)*32 + IF k[j] + dst[i+31:i] := a[n+31:n] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Miscellaneous +
+ + + + Broadcast the 2 packed double-precision (64-bit) floating-point elements from "a" to all elements of "dst". + +FOR j := 0 to 7 + i := j*64 + n := (j % 2)*64 + dst[i+63:i] := a[n+63:n] +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Miscellaneous +
+ + + + + + Broadcast the 2 packed double-precision (64-bit) floating-point elements from "a" to all elements of "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + n := (j % 2)*64 + IF k[j] + dst[i+63:i] := a[n+63:n] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Miscellaneous +
+ + + + + Broadcast the 2 packed double-precision (64-bit) floating-point elements from "a" to all elements of "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + n := (j % 2)*64 + IF k[j] + dst[i+63:i] := a[n+63:n] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Miscellaneous +
+ + + + Broadcast the lower 2 packed 32-bit integers from "a" to all elements of "dst. + +FOR j := 0 to 15 + i := j*32 + n := (j % 2)*32 + dst[i+31:i] := a[n+31:n] +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Miscellaneous +
+ + + + + + Broadcast the lower 2 packed 32-bit integers from "a" to all elements of "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + n := (j % 2)*32 + IF k[j] + dst[i+31:i] := a[n+31:n] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Miscellaneous +
+ + + + + Broadcast the lower 2 packed 32-bit integers from "a" to all elements of "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + n := (j % 2)*32 + IF k[j] + dst[i+31:i] := a[n+31:n] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Miscellaneous +
+ + + + Broadcast the 8 packed 32-bit integers from "a" to all elements of "dst". + +FOR j := 0 to 15 + i := j*32 + n := (j % 8)*32 + dst[i+31:i] := a[n+31:n] +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Miscellaneous +
+ + + + + + Broadcast the 8 packed 32-bit integers from "a" to all elements of "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + n := (j % 8)*32 + IF k[j] + dst[i+31:i] := a[n+31:n] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Miscellaneous +
+ + + + + Broadcast the 8 packed 32-bit integers from "a" to all elements of "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + n := (j % 8)*32 + IF k[j] + dst[i+31:i] := a[n+31:n] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Miscellaneous +
+ + + + Broadcast the 2 packed 64-bit integers from "a" to all elements of "dst". + +FOR j := 0 to 7 + i := j*64 + n := (j % 2)*64 + dst[i+63:i] := a[n+63:n] +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Miscellaneous +
+ + + + + + Broadcast the 2 packed 64-bit integers from "a" to all elements of "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + n := (j % 2)*64 + IF k[j] + dst[i+63:i] := a[n+63:n] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Miscellaneous +
+ + + + + Broadcast the 2 packed 64-bit integers from "a" to all elements of "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + n := (j % 2)*64 + IF k[j] + dst[i+63:i] := a[n+63:n] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Miscellaneous +
+ + + + + Extract 256 bits (composed of 8 packed single-precision (32-bit) floating-point elements) from "a", selected with "imm8", and store the result in "dst". + +CASE imm8[0] OF +0: dst[255:0] := a[255:0] +1: dst[255:0] := a[511:256] +ESAC +dst[MAX:256] := 0 + + + AVX512DQ +
immintrin.h
+ Miscellaneous +
+ + + + + + + Extract 256 bits (composed of 8 packed single-precision (32-bit) floating-point elements) from "a", selected with "imm8", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +CASE imm8[0] OF +0: tmp[255:0] := a[255:0] +1: tmp[255:0] := a[511:256] +ESAC +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := tmp[i+31:i] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512DQ +
immintrin.h
+ Miscellaneous +
+ + + + + + Extract 256 bits (composed of 8 packed single-precision (32-bit) floating-point elements) from "a", selected with "imm8", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +CASE imm8[0] OF +0: tmp[255:0] := a[255:0] +1: tmp[255:0] := a[511:256] +ESAC +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := tmp[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512DQ +
immintrin.h
+ Miscellaneous +
+ + + + + Extract 128 bits (composed of 2 packed double-precision (64-bit) floating-point elements) from "a", selected with "imm8", and store the result in "dst". + +CASE imm8[1:0] OF +0: dst[127:0] := a[127:0] +1: dst[127:0] := a[255:128] +2: dst[127:0] := a[383:256] +3: dst[127:0] := a[511:384] +ESAC +dst[MAX:128] := 0 + + + AVX512DQ +
immintrin.h
+ Miscellaneous +
+ + + + + + + Extract 128 bits (composed of 2 packed double-precision (64-bit) floating-point elements) from "a", selected with "imm8", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +CASE imm8[1:0] OF +0: tmp[127:0] := a[127:0] +1: tmp[127:0] := a[255:128] +2: tmp[127:0] := a[383:256] +3: tmp[127:0] := a[511:384] +ESAC +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := tmp[i+63:i] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512DQ +
immintrin.h
+ Miscellaneous +
+ + + + + + Extract 128 bits (composed of 2 packed double-precision (64-bit) floating-point elements) from "a", selected with "imm8", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +CASE imm8[1:0] OF +0: tmp[127:0] := a[127:0] +1: tmp[127:0] := a[255:128] +2: tmp[127:0] := a[383:256] +3: tmp[127:0] := a[511:384] +ESAC +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := tmp[i+63:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512DQ +
immintrin.h
+ Miscellaneous +
+ + + + + Extract 256 bits (composed of 8 packed 32-bit integers) from "a", selected with "imm8", and store the result in "dst". + +CASE imm8[0] OF +0: dst[255:0] := a[255:0] +1: dst[255:0] := a[511:256] +ESAC +dst[MAX:256] := 0 + + + AVX512DQ +
immintrin.h
+ Miscellaneous +
+ + + + + + + Extract 256 bits (composed of 8 packed 32-bit integers) from "a", selected with "imm8", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +CASE imm8[0] OF +0: tmp[255:0] := a[255:0] +1: tmp[255:0] := a[511:256] +ESAC +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := tmp[i+31:i] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512DQ +
immintrin.h
+ Miscellaneous +
+ + + + + + Extract 256 bits (composed of 8 packed 32-bit integers) from "a", selected with "imm8", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +CASE imm8[0] OF +0: tmp[255:0] := a[255:0] +1: tmp[255:0] := a[511:256] +ESAC +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := tmp[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512DQ +
immintrin.h
+ Miscellaneous +
+ + + + + Extract 128 bits (composed of 2 packed 64-bit integers) from "a", selected with "imm8", and store the result in "dst". + +CASE imm8[1:0] OF +0: dst[127:0] := a[127:0] +1: dst[127:0] := a[255:128] +2: dst[127:0] := a[383:256] +3: dst[127:0] := a[511:384] +ESAC +dst[MAX:128] := 0 + + + AVX512DQ +
immintrin.h
+ Miscellaneous +
+ + + + + + + Extract 128 bits (composed of 2 packed 64-bit integers) from "a", selected with "imm8", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +CASE imm8[1:0] OF +0: tmp[127:0] := a[127:0] +1: tmp[127:0] := a[255:128] +2: tmp[127:0] := a[383:256] +3: tmp[127:0] := a[511:384] +ESAC +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := tmp[i+63:i] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512DQ +
immintrin.h
+ Miscellaneous +
+ + + + + + Extract 128 bits (composed of 2 packed 64-bit integers) from "a", selected with "imm8", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +CASE imm8[1:0] OF +0: tmp[127:0] := a[127:0] +1: tmp[127:0] := a[255:128] +2: tmp[127:0] := a[383:256] +3: tmp[127:0] := a[511:384] +ESAC +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := tmp[i+63:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512DQ +
immintrin.h
+ Miscellaneous +
+ + + + + Test packed double-precision (64-bit) floating-point elements in "a" for special categories specified by "imm8", and store the results in mask vector "k". + [fpclass_note] + FOR j := 0 to 7 + i := j*64 + k[j] := CheckFPClass_FP64(a[i+63:i], imm8[7:0]) +ENDFOR +k[MAX:8] := 0 + + + AVX512DQ +
immintrin.h
+ Miscellaneous +
+ + + + + + Test packed double-precision (64-bit) floating-point elements in "a" for special categories specified by "imm8", and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + [fpclass_note] + FOR j := 0 to 7 + i := j*64 + IF k1[j] + k[j] := CheckFPClass_FP64(a[i+63:i], imm8[7:0]) + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:8] := 0 + + + AVX512DQ +
immintrin.h
+ Miscellaneous +
+ + + + + Test packed single-precision (32-bit) floating-point elements in "a" for special categories specified by "imm8", and store the results in mask vector "k". + [fpclass_note] + FOR j := 0 to 15 + i := j*32 + k[j] := CheckFPClass_FP32(a[i+31:i], imm8[7:0]) +ENDFOR +k[MAX:16] := 0 + + + AVX512DQ +
immintrin.h
+ Miscellaneous +
+ + + + + + Test packed single-precision (32-bit) floating-point elements in "a" for special categories specified by "imm8", and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + [fpclass_note] + FOR j := 0 to 15 + i := j*32 + IF k1[j] + k[j] := CheckFPClass_FP32(a[i+31:i], imm8[7:0]) + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:16] := 0 + + + AVX512DQ +
immintrin.h
+ Miscellaneous +
+ + + + + Test the lower double-precision (64-bit) floating-point element in "a" for special categories specified by "imm8", and store the result in mask vector "k". + [fpclass_note] + k[0] := CheckFPClass_FP64(a[63:0], imm8[7:0]) +k[MAX:1] := 0 + + + AVX512DQ +
immintrin.h
+ Miscellaneous +
+ + + + + + Test the lower double-precision (64-bit) floating-point element in "a" for special categories specified by "imm8", and store the result in mask vector "k" using zeromask "k1" (the element is zeroed out when mask bit 0 is not set). + [fpclass_note] + IF k1[0] + k[0] := CheckFPClass_FP64(a[63:0], imm8[7:0]) +ELSE + k[0] := 0 +FI +k[MAX:1] := 0 + + + AVX512DQ +
immintrin.h
+ Miscellaneous +
+ + + + + Test the lower single-precision (32-bit) floating-point element in "a" for special categories specified by "imm8", and store the result in mask vector "k. + [fpclass_note] + k[0] := CheckFPClass_FP32(a[31:0], imm8[7:0]) +k[MAX:1] := 0 + + + AVX512DQ +
immintrin.h
+ Miscellaneous +
+ + + + + + Test the lower single-precision (32-bit) floating-point element in "a" for special categories specified by "imm8", and store the result in mask vector "k" using zeromask "k1" (the element is zeroed out when mask bit 0 is not set). + [fpclass_note] + IF k1[0] + k[0] := CheckFPClass_FP32(a[31:0], imm8[7:0]) +ELSE + k[0] := 0 +FI +k[MAX:1] := 0 + + + AVX512DQ +
immintrin.h
+ Miscellaneous +
+ + + + + + Copy "a" to "dst", then insert 256 bits (composed of 8 packed single-precision (32-bit) floating-point elements) from "b" into "dst" at the location specified by "imm8". + +dst[511:0] := a[511:0] +CASE (imm8[0]) OF +0: dst[255:0] := b[255:0] +1: dst[511:256] := b[255:0] +ESAC +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Miscellaneous +
+ + + + + + + + Copy "a" to "tmp", then insert 256 bits (composed of 8 packed single-precision (32-bit) floating-point elements) from "b" into "tmp" at the location specified by "imm8". Store "tmp" to "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +tmp[511:0] := a[511:0] +CASE (imm8[0]) OF +0: tmp[255:0] := b[255:0] +1: tmp[511:256] := b[255:0] +ESAC +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := tmp[i+31:i] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Miscellaneous +
+ + + + + + + Copy "a" to "tmp", then insert 256 bits (composed of 8 packed single-precision (32-bit) floating-point elements) from "b" into "tmp" at the location specified by "imm8". Store "tmp" to "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +tmp[511:0] := a[511:0] +CASE (imm8[0]) OF +0: tmp[255:0] := b[255:0] +1: tmp[511:256] := b[255:0] +ESAC +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := tmp[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Miscellaneous +
+ + + + + + Copy "a" to "dst", then insert 128 bits (composed of 2 packed double-precision (64-bit) floating-point elements) from "b" into "dst" at the location specified by "imm8". + +dst[511:0] := a[511:0] +CASE imm8[1:0] OF +0: dst[127:0] := b[127:0] +1: dst[255:128] := b[127:0] +2: dst[383:256] := b[127:0] +3: dst[511:384] := b[127:0] +ESAC +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Miscellaneous +
+ + + + + + + + Copy "a" to "tmp", then insert 128 bits (composed of 2 packed double-precision (64-bit) floating-point elements) from "b" into "tmp" at the location specified by "imm8". Store "tmp" to "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +tmp[511:0] := a[511:0] +CASE (imm8[1:0]) OF +0: tmp[127:0] := b[127:0] +1: tmp[255:128] := b[127:0] +2: tmp[383:256] := b[127:0] +3: tmp[511:384] := b[127:0] +ESAC +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := tmp[i+63:i] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Miscellaneous +
+ + + + + + + Copy "a" to "tmp", then insert 128 bits (composed of 2 packed double-precision (64-bit) floating-point elements) from "b" into "tmp" at the location specified by "imm8". Store "tmp" to "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +tmp[511:0] := a[511:0] +CASE (imm8[1:0]) OF +0: tmp[127:0] := b[127:0] +1: tmp[255:128] := b[127:0] +2: tmp[383:256] := b[127:0] +3: tmp[511:384] := b[127:0] +ESAC +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := tmp[i+63:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Miscellaneous +
+ + + + + + Copy "a" to "dst", then insert 256 bits (composed of 8 packed 32-bit integers) from "b" into "dst" at the location specified by "imm8". + +dst[511:0] := a[511:0] +CASE imm8[0] OF +0: dst[255:0] := b[255:0] +1: dst[511:256] := b[255:0] +ESAC +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Miscellaneous +
+ + + + + + + + Copy "a" to "tmp", then insert 256 bits (composed of 8 packed 32-bit integers) from "b" into "tmp" at the location specified by "imm8". Store "tmp" to "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +tmp[511:0] := a[511:0] +CASE (imm8[0]) OF +0: tmp[255:0] := b[255:0] +1: tmp[511:256] := b[255:0] +ESAC +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := tmp[i+31:i] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Miscellaneous +
+ + + + + + + Copy "a" to "tmp", then insert 256 bits (composed of 8 packed 32-bit integers) from "b" into "tmp" at the location specified by "imm8". Store "tmp" to "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +tmp[511:0] := a[511:0] +CASE (imm8[0]) OF +0: tmp[255:0] := b[255:0] +1: tmp[511:256] := b[255:0] +ESAC +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := tmp[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Miscellaneous +
+ + + + + + Copy "a" to "dst", then insert 128 bits (composed of 2 packed 64-bit integers) from "b" into "dst" at the location specified by "imm8". + +dst[511:0] := a[511:0] +CASE imm8[1:0] OF +0: dst[127:0] := b[127:0] +1: dst[255:128] := b[127:0] +2: dst[383:256] := b[127:0] +3: dst[511:384] := b[127:0] +ESAC +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Miscellaneous +
+ + + + + + + + Copy "a" to "tmp", then insert 128 bits (composed of 2 packed 64-bit integers) from "b" into "tmp" at the location specified by "imm8". Store "tmp" to "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +tmp[511:0] := a[511:0] +CASE (imm8[1:0]) OF +0: tmp[127:0] := b[127:0] +1: tmp[255:128] := b[127:0] +2: tmp[383:256] := b[127:0] +3: tmp[511:384] := b[127:0] +ESAC +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := tmp[i+63:i] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Miscellaneous +
+ + + + + + + Copy "a" to "tmp", then insert 128 bits (composed of 2 packed 64-bit integers) from "b" into "tmp" at the location specified by "imm8". Store "tmp" to "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +tmp[511:0] := a[511:0] +CASE (imm8[1:0]) OF +0: tmp[127:0] := b[127:0] +1: tmp[255:128] := b[127:0] +2: tmp[383:256] := b[127:0] +3: tmp[511:384] := b[127:0] +ESAC +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := tmp[i+63:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Miscellaneous +
+ + + + Set each bit of mask register "k" based on the most significant bit of the corresponding packed 32-bit integer in "a". + +FOR j := 0 to 15 + i := j*32 + IF a[i+31] + k[j] := 1 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:16] := 0 + + + AVX512DQ +
immintrin.h
+ Miscellaneous +
+ + + + Set each packed 32-bit integer in "dst" to all ones or all zeros based on the value of the corresponding bit in "k". + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := 0xFFFFFFFF + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Miscellaneous +
+ + + + Set each packed 64-bit integer in "dst" to all ones or all zeros based on the value of the corresponding bit in "k". + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := 0xFFFFFFFFFFFFFFFF + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Miscellaneous +
+ + + + Set each bit of mask register "k" based on the most significant bit of the corresponding packed 64-bit integer in "a". + +FOR j := 0 to 7 + i := j*64 + IF a[i+63] + k[j] := 1 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:8] := 0 + + + AVX512DQ +
immintrin.h
+ Miscellaneous +
+ + + + + + + + Calculate the max, min, absolute max, or absolute min (depending on control in "imm8") for packed double-precision (64-bit) floating-point elements in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + imm8[1:0] specifies the operation control: 00 = min, 01 = max, 10 = absolute min, 11 = absolute max. + imm8[3:2] specifies the sign control: 00 = sign from a, 01 = sign from compare result, 10 = clear sign bit, 11 = set sign bit. + +DEFINE RANGE(src1[63:0], src2[63:0], opCtl[1:0], signSelCtl[1:0]) { + CASE opCtl[1:0] OF + 0: tmp[63:0] := (src1[63:0] <= src2[63:0]) ? src1[63:0] : src2[63:0] + 1: tmp[63:0] := (src1[63:0] <= src2[63:0]) ? src2[63:0] : src1[63:0] + 2: tmp[63:0] := (ABS(src1[63:0]) <= ABS(src2[63:0])) ? src1[63:0] : src2[63:0] + 3: tmp[63:0] := (ABS(src1[63:0]) <= ABS(src2[63:0])) ? src2[63:0] : src1[63:0] + ESAC + + CASE signSelCtl[1:0] OF + 0: dst[63:0] := (src1[63] << 63) OR (tmp[62:0]) + 1: dst[63:0] := tmp[63:0] + 2: dst[63:0] := (0 << 63) OR (tmp[62:0]) + 3: dst[63:0] := (1 << 63) OR (tmp[62:0]) + ESAC + + RETURN dst +} +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := RANGE(a[i+63:i], b[i+63:i], imm8[1:0], imm8[3:2]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Miscellaneous +
+ + + + + + + + + Calculate the max, min, absolute max, or absolute min (depending on control in "imm8") for packed double-precision (64-bit) floating-point elements in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + imm8[1:0] specifies the operation control: 00 = min, 01 = max, 10 = absolute min, 11 = absolute max. + imm8[3:2] specifies the sign control: 00 = sign from a, 01 = sign from compare result, 10 = clear sign bit, 11 = set sign bit. [sae_note] + +DEFINE RANGE(src1[63:0], src2[63:0], opCtl[1:0], signSelCtl[1:0]) { + CASE opCtl[1:0] OF + 0: tmp[63:0] := (src1[63:0] <= src2[63:0]) ? src1[63:0] : src2[63:0] + 1: tmp[63:0] := (src1[63:0] <= src2[63:0]) ? src2[63:0] : src1[63:0] + 2: tmp[63:0] := (ABS(src1[63:0]) <= ABS(src2[63:0])) ? src1[63:0] : src2[63:0] + 3: tmp[63:0] := (ABS(src1[63:0]) <= ABS(src2[63:0])) ? src2[63:0] : src1[63:0] + ESAC + + CASE signSelCtl[1:0] OF + 0: dst[63:0] := (src1[63] << 63) OR (tmp[62:0]) + 1: dst[63:0] := tmp[63:0] + 2: dst[63:0] := (0 << 63) OR (tmp[62:0]) + 3: dst[63:0] := (1 << 63) OR (tmp[62:0]) + ESAC + + RETURN dst +} +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := RANGE(a[i+63:i], b[i+63:i], imm8[1:0], imm8[3:2]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Miscellaneous +
+ + + + + + + Calculate the max, min, absolute max, or absolute min (depending on control in "imm8") for packed double-precision (64-bit) floating-point elements in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + imm8[1:0] specifies the operation control: 00 = min, 01 = max, 10 = absolute min, 11 = absolute max. + imm8[3:2] specifies the sign control: 00 = sign from a, 01 = sign from compare result, 10 = clear sign bit, 11 = set sign bit. + +DEFINE RANGE(src1[63:0], src2[63:0], opCtl[1:0], signSelCtl[1:0]) { + CASE opCtl[1:0] OF + 0: tmp[63:0] := (src1[63:0] <= src2[63:0]) ? src1[63:0] : src2[63:0] + 1: tmp[63:0] := (src1[63:0] <= src2[63:0]) ? src2[63:0] : src1[63:0] + 2: tmp[63:0] := (ABS(src1[63:0]) <= ABS(src2[63:0])) ? src1[63:0] : src2[63:0] + 3: tmp[63:0] := (ABS(src1[63:0]) <= ABS(src2[63:0])) ? src2[63:0] : src1[63:0] + ESAC + + CASE signSelCtl[1:0] OF + 0: dst[63:0] := (src1[63] << 63) OR (tmp[62:0]) + 1: dst[63:0] := tmp[63:0] + 2: dst[63:0] := (0 << 63) OR (tmp[62:0]) + 3: dst[63:0] := (1 << 63) OR (tmp[62:0]) + ESAC + + RETURN dst +} +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := RANGE(a[i+63:i], b[i+63:i], imm8[1:0], imm8[3:2]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Miscellaneous +
+ + + + + + + + Calculate the max, min, absolute max, or absolute min (depending on control in "imm8") for packed double-precision (64-bit) floating-point elements in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + imm8[1:0] specifies the operation control: 00 = min, 01 = max, 10 = absolute min, 11 = absolute max. + imm8[3:2] specifies the sign control: 00 = sign from a, 01 = sign from compare result, 10 = clear sign bit, 11 = set sign bit. [sae_note] + +DEFINE RANGE(src1[63:0], src2[63:0], opCtl[1:0], signSelCtl[1:0]) { + CASE opCtl[1:0] OF + 0: tmp[63:0] := (src1[63:0] <= src2[63:0]) ? src1[63:0] : src2[63:0] + 1: tmp[63:0] := (src1[63:0] <= src2[63:0]) ? src2[63:0] : src1[63:0] + 2: tmp[63:0] := (ABS(src1[63:0]) <= ABS(src2[63:0])) ? src1[63:0] : src2[63:0] + 3: tmp[63:0] := (ABS(src1[63:0]) <= ABS(src2[63:0])) ? src2[63:0] : src1[63:0] + ESAC + + CASE signSelCtl[1:0] OF + 0: dst[63:0] := (src1[63] << 63) OR (tmp[62:0]) + 1: dst[63:0] := tmp[63:0] + 2: dst[63:0] := (0 << 63) OR (tmp[62:0]) + 3: dst[63:0] := (1 << 63) OR (tmp[62:0]) + ESAC + + RETURN dst +} +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := RANGE(a[i+63:i], b[i+63:i], imm8[1:0], imm8[3:2]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Miscellaneous +
+ + + + + + Calculate the max, min, absolute max, or absolute min (depending on control in "imm8") for packed double-precision (64-bit) floating-point elements in "a" and "b", and store the results in "dst". + imm8[1:0] specifies the operation control: 00 = min, 01 = max, 10 = absolute min, 11 = absolute max. + imm8[3:2] specifies the sign control: 00 = sign from a, 01 = sign from compare result, 10 = clear sign bit, 11 = set sign bit. + +DEFINE RANGE(src1[63:0], src2[63:0], opCtl[1:0], signSelCtl[1:0]) { + CASE opCtl[1:0] OF + 0: tmp[63:0] := (src1[63:0] <= src2[63:0]) ? src1[63:0] : src2[63:0] + 1: tmp[63:0] := (src1[63:0] <= src2[63:0]) ? src2[63:0] : src1[63:0] + 2: tmp[63:0] := (ABS(src1[63:0]) <= ABS(src2[63:0])) ? src1[63:0] : src2[63:0] + 3: tmp[63:0] := (ABS(src1[63:0]) <= ABS(src2[63:0])) ? src2[63:0] : src1[63:0] + ESAC + + CASE signSelCtl[1:0] OF + 0: dst[63:0] := (src1[63] << 63) OR (tmp[62:0]) + 1: dst[63:0] := tmp[63:0] + 2: dst[63:0] := (0 << 63) OR (tmp[62:0]) + 3: dst[63:0] := (1 << 63) OR (tmp[62:0]) + ESAC + + RETURN dst +} +FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := RANGE(a[i+63:i], b[i+63:i], imm8[1:0], imm8[3:2]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Miscellaneous +
+ + + + + + + Calculate the max, min, absolute max, or absolute min (depending on control in "imm8") for packed double-precision (64-bit) floating-point elements in "a" and "b", and store the results in "dst". + imm8[1:0] specifies the operation control: 00 = min, 01 = max, 10 = absolute min, 11 = absolute max. + imm8[3:2] specifies the sign control: 00 = sign from a, 01 = sign from compare result, 10 = clear sign bit, 11 = set sign bit. [sae_note] + +DEFINE RANGE(src1[63:0], src2[63:0], opCtl[1:0], signSelCtl[1:0]) { + CASE opCtl[1:0] OF + 0: tmp[63:0] := (src1[63:0] <= src2[63:0]) ? src1[63:0] : src2[63:0] + 1: tmp[63:0] := (src1[63:0] <= src2[63:0]) ? src2[63:0] : src1[63:0] + 2: tmp[63:0] := (ABS(src1[63:0]) <= ABS(src2[63:0])) ? src1[63:0] : src2[63:0] + 3: tmp[63:0] := (ABS(src1[63:0]) <= ABS(src2[63:0])) ? src2[63:0] : src1[63:0] + ESAC + + CASE signSelCtl[1:0] OF + 0: dst[63:0] := (src1[63] << 63) OR (tmp[62:0]) + 1: dst[63:0] := tmp[63:0] + 2: dst[63:0] := (0 << 63) OR (tmp[62:0]) + 3: dst[63:0] := (1 << 63) OR (tmp[62:0]) + ESAC + + RETURN dst +} +FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := RANGE(a[i+63:i], b[i+63:i], imm8[1:0], imm8[3:2]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Miscellaneous +
+ + + + + + + + Calculate the max, min, absolute max, or absolute min (depending on control in "imm8") for packed single-precision (32-bit) floating-point elements in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + imm8[1:0] specifies the operation control: 00 = min, 01 = max, 10 = absolute min, 11 = absolute max. + imm8[3:2] specifies the sign control: 00 = sign from a, 01 = sign from compare result, 10 = clear sign bit, 11 = set sign bit. + +DEFINE RANGE(src1[31:0], src2[31:0], opCtl[1:0], signSelCtl[1:0]) { + CASE opCtl[1:0] OF + 0: tmp[31:0] := (src1[31:0] <= src2[31:0]) ? src1[31:0] : src2[31:0] + 1: tmp[31:0] := (src1[31:0] <= src2[31:0]) ? src2[31:0] : src1[31:0] + 2: tmp[31:0] := (ABS(src1[31:0]) <= ABS(src2[31:0])) ? src1[31:0] : src2[31:0] + 3: tmp[31:0] := (ABS(src1[31:0]) <= ABS(src2[31:0])) ? src2[31:0] : src1[31:0] + ESAC + + CASE signSelCtl[1:0] OF + 0: dst[31:0] := (src1[31] << 31) OR (tmp[30:0]) + 1: dst[31:0] := tmp[63:0] + 2: dst[31:0] := (0 << 31) OR (tmp[30:0]) + 3: dst[31:0] := (1 << 31) OR (tmp[30:0]) + ESAC + + RETURN dst +} +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := RANGE(a[i+31:i], b[i+31:i], imm8[1:0], imm8[3:2]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Miscellaneous +
+ + + + + + + + + Calculate the max, min, absolute max, or absolute min (depending on control in "imm8") for packed single-precision (32-bit) floating-point elements in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + imm8[1:0] specifies the operation control: 00 = min, 01 = max, 10 = absolute min, 11 = absolute max. + imm8[3:2] specifies the sign control: 00 = sign from a, 01 = sign from compare result, 10 = clear sign bit, 11 = set sign bit. [sae_note] + +DEFINE RANGE(src1[31:0], src2[31:0], opCtl[1:0], signSelCtl[1:0]) { + CASE opCtl[1:0] OF + 0: tmp[31:0] := (src1[31:0] <= src2[31:0]) ? src1[31:0] : src2[31:0] + 1: tmp[31:0] := (src1[31:0] <= src2[31:0]) ? src2[31:0] : src1[31:0] + 2: tmp[31:0] := (ABS(src1[31:0]) <= ABS(src2[31:0])) ? src1[31:0] : src2[31:0] + 3: tmp[31:0] := (ABS(src1[31:0]) <= ABS(src2[31:0])) ? src2[31:0] : src1[31:0] + ESAC + + CASE signSelCtl[1:0] OF + 0: dst[31:0] := (src1[31] << 31) OR (tmp[30:0]) + 1: dst[31:0] := tmp[63:0] + 2: dst[31:0] := (0 << 31) OR (tmp[30:0]) + 3: dst[31:0] := (1 << 31) OR (tmp[30:0]) + ESAC + + RETURN dst +} +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := RANGE(a[i+31:i], b[i+31:i], imm8[1:0], imm8[3:2]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Miscellaneous +
+ + + + + + + Calculate the max, min, absolute max, or absolute min (depending on control in "imm8") for packed single-precision (32-bit) floating-point elements in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + imm8[1:0] specifies the operation control: 00 = min, 01 = max, 10 = absolute min, 11 = absolute max. + imm8[3:2] specifies the sign control: 00 = sign from a, 01 = sign from compare result, 10 = clear sign bit, 11 = set sign bit. + +DEFINE RANGE(src1[31:0], src2[31:0], opCtl[1:0], signSelCtl[1:0]) { + CASE opCtl[1:0] OF + 0: tmp[31:0] := (src1[31:0] <= src2[31:0]) ? src1[31:0] : src2[31:0] + 1: tmp[31:0] := (src1[31:0] <= src2[31:0]) ? src2[31:0] : src1[31:0] + 2: tmp[31:0] := (ABS(src1[31:0]) <= ABS(src2[31:0])) ? src1[31:0] : src2[31:0] + 3: tmp[31:0] := (ABS(src1[31:0]) <= ABS(src2[31:0])) ? src2[31:0] : src1[31:0] + ESAC + + CASE signSelCtl[1:0] OF + 0: dst[31:0] := (src1[31] << 31) OR (tmp[30:0]) + 1: dst[31:0] := tmp[63:0] + 2: dst[31:0] := (0 << 31) OR (tmp[30:0]) + 3: dst[31:0] := (1 << 31) OR (tmp[30:0]) + ESAC + + RETURN dst +} +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := RANGE(a[i+31:i], b[i+31:i], imm8[1:0], imm8[3:2]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Miscellaneous +
+ + + + + + + + Calculate the max, min, absolute max, or absolute min (depending on control in "imm8") for packed single-precision (32-bit) floating-point elements in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + imm8[1:0] specifies the operation control: 00 = min, 01 = max, 10 = absolute min, 11 = absolute max. + imm8[3:2] specifies the sign control: 00 = sign from a, 01 = sign from compare result, 10 = clear sign bit, 11 = set sign bit. [sae_note] + +DEFINE RANGE(src1[31:0], src2[31:0], opCtl[1:0], signSelCtl[1:0]) { + CASE opCtl[1:0] OF + 0: tmp[31:0] := (src1[31:0] <= src2[31:0]) ? src1[31:0] : src2[31:0] + 1: tmp[31:0] := (src1[31:0] <= src2[31:0]) ? src2[31:0] : src1[31:0] + 2: tmp[31:0] := (ABS(src1[31:0]) <= ABS(src2[31:0])) ? src1[31:0] : src2[31:0] + 3: tmp[31:0] := (ABS(src1[31:0]) <= ABS(src2[31:0])) ? src2[31:0] : src1[31:0] + ESAC + + CASE signSelCtl[1:0] OF + 0: dst[31:0] := (src1[31] << 31) OR (tmp[30:0]) + 1: dst[31:0] := tmp[63:0] + 2: dst[31:0] := (0 << 31) OR (tmp[30:0]) + 3: dst[31:0] := (1 << 31) OR (tmp[30:0]) + ESAC + + RETURN dst +} +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := RANGE(a[i+31:i], b[i+31:i], imm8[1:0], imm8[3:2]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Miscellaneous +
+ + + + + + Calculate the max, min, absolute max, or absolute min (depending on control in "imm8") for packed single-precision (32-bit) floating-point elements in "a" and "b", and store the results in "dst". + imm8[1:0] specifies the operation control: 00 = min, 01 = max, 10 = absolute min, 11 = absolute max. + imm8[3:2] specifies the sign control: 00 = sign from a, 01 = sign from compare result, 10 = clear sign bit, 11 = set sign bit. + +DEFINE RANGE(src1[31:0], src2[31:0], opCtl[1:0], signSelCtl[1:0]) { + CASE opCtl[1:0] OF + 0: tmp[31:0] := (src1[31:0] <= src2[31:0]) ? src1[31:0] : src2[31:0] + 1: tmp[31:0] := (src1[31:0] <= src2[31:0]) ? src2[31:0] : src1[31:0] + 2: tmp[31:0] := (ABS(src1[31:0]) <= ABS(src2[31:0])) ? src1[31:0] : src2[31:0] + 3: tmp[31:0] := (ABS(src1[31:0]) <= ABS(src2[31:0])) ? src2[31:0] : src1[31:0] + ESAC + + CASE signSelCtl[1:0] OF + 0: dst[31:0] := (src1[31] << 31) OR (tmp[30:0]) + 1: dst[31:0] := tmp[63:0] + 2: dst[31:0] := (0 << 31) OR (tmp[30:0]) + 3: dst[31:0] := (1 << 31) OR (tmp[30:0]) + ESAC + + RETURN dst +} +FOR j := 0 to 15 + i := j*32 + dst[i+31:i] := RANGE(a[i+31:i], b[i+31:i], imm8[1:0], imm8[3:2]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Miscellaneous +
+ + + + + + + Calculate the max, min, absolute max, or absolute min (depending on control in "imm8") for packed single-precision (32-bit) floating-point elements in "a" and "b", and store the results in "dst". + imm8[1:0] specifies the operation control: 00 = min, 01 = max, 10 = absolute min, 11 = absolute max. + imm8[3:2] specifies the sign control: 00 = sign from a, 01 = sign from compare result, 10 = clear sign bit, 11 = set sign bit. [sae_note] + +DEFINE RANGE(src1[31:0], src2[31:0], opCtl[1:0], signSelCtl[1:0]) { + CASE opCtl[1:0] OF + 0: tmp[31:0] := (src1[31:0] <= src2[31:0]) ? src1[31:0] : src2[31:0] + 1: tmp[31:0] := (src1[31:0] <= src2[31:0]) ? src2[31:0] : src1[31:0] + 2: tmp[31:0] := (ABS(src1[31:0]) <= ABS(src2[31:0])) ? src1[31:0] : src2[31:0] + 3: tmp[31:0] := (ABS(src1[31:0]) <= ABS(src2[31:0])) ? src2[31:0] : src1[31:0] + ESAC + + CASE signSelCtl[1:0] OF + 0: dst[31:0] := (src1[31] << 31) OR (tmp[30:0]) + 1: dst[31:0] := tmp[63:0] + 2: dst[31:0] := (0 << 31) OR (tmp[30:0]) + 3: dst[31:0] := (1 << 31) OR (tmp[30:0]) + ESAC + + RETURN dst +} +FOR j := 0 to 15 + i := j*32 + dst[i+31:i] := RANGE(a[i+31:i], b[i+31:i], imm8[1:0], imm8[3:2]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Miscellaneous +
+ + + + + + + + + Calculate the max, min, absolute max, or absolute min (depending on control in "imm8") for the lower double-precision (64-bit) floating-point element in "a" and "b", store the result in the lower element of "dst" using writemask "k" (the element is copied from "src" when mask bit 0 is not set), and copy the upper element from "a" to the upper element of "dst". + imm8[1:0] specifies the operation control: 00 = min, 01 = max, 10 = absolute min, 11 = absolute max. + imm8[3:2] specifies the sign control: 00 = sign from a, 01 = sign from compare result, 10 = clear sign bit, 11 = set sign bit. [sae_note] + +DEFINE RANGE(src1[63:0], src2[63:0], opCtl[1:0], signSelCtl[1:0]) { + CASE opCtl[1:0] OF + 0: tmp[63:0] := (src1[63:0] <= src2[63:0]) ? src1[63:0] : src2[63:0] + 1: tmp[63:0] := (src1[63:0] <= src2[63:0]) ? src2[63:0] : src1[63:0] + 2: tmp[63:0] := (ABS(src1[63:0]) <= ABS(src2[63:0])) ? src1[63:0] : src2[63:0] + 3: tmp[63:0] := (ABS(src1[63:0]) <= ABS(src2[63:0])) ? src2[63:0] : src1[63:0] + ESAC + + CASE signSelCtl[1:0] OF + 0: dst[63:0] := (src1[63] << 63) OR (tmp[62:0]) + 1: dst[63:0] := tmp[63:0] + 2: dst[63:0] := (0 << 63) OR (tmp[62:0]) + 3: dst[63:0] := (1 << 63) OR (tmp[62:0]) + ESAC + + RETURN dst +} +IF k[0] + dst[63:0] := RANGE(a[63:0], b[63:0], imm8[1:0], imm8[3:2]) +ELSE + dst[63:0] := src[63:0] +FI +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + AVX512DQ +
immintrin.h
+ Miscellaneous +
+ + + + + + + + Calculate the max, min, absolute max, or absolute min (depending on control in "imm8") for the lower double-precision (64-bit) floating-point element in "a" and "b", store the result in the lower element of "dst" using writemask "k" (the element is copied from "src" when mask bit 0 is not set), and copy the upper element from "a" to the upper element of "dst". + imm8[1:0] specifies the operation control: 00 = min, 01 = max, 10 = absolute min, 11 = absolute max. + imm8[3:2] specifies the sign control: 00 = sign from a, 01 = sign from compare result, 10 = clear sign bit, 11 = set sign bit. + +DEFINE RANGE(src1[63:0], src2[63:0], opCtl[1:0], signSelCtl[1:0]) { + CASE opCtl[1:0] OF + 0: tmp[63:0] := (src1[63:0] <= src2[63:0]) ? src1[63:0] : src2[63:0] + 1: tmp[63:0] := (src1[63:0] <= src2[63:0]) ? src2[63:0] : src1[63:0] + 2: tmp[63:0] := (ABS(src1[63:0]) <= ABS(src2[63:0])) ? src1[63:0] : src2[63:0] + 3: tmp[63:0] := (ABS(src1[63:0]) <= ABS(src2[63:0])) ? src2[63:0] : src1[63:0] + ESAC + + CASE signSelCtl[1:0] OF + 0: dst[63:0] := (src1[63] << 63) OR (tmp[62:0]) + 1: dst[63:0] := tmp[63:0] + 2: dst[63:0] := (0 << 63) OR (tmp[62:0]) + 3: dst[63:0] := (1 << 63) OR (tmp[62:0]) + ESAC + + RETURN dst +} +IF k[0] + dst[63:0] := RANGE(a[63:0], b[63:0], imm8[1:0], imm8[3:2]) +ELSE + dst[63:0] := src[63:0] +FI +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + AVX512DQ +
immintrin.h
+ Miscellaneous +
+ + + + + + + + Calculate the max, min, absolute max, or absolute min (depending on control in "imm8") for the lower double-precision (64-bit) floating-point element in "a" and "b", store the result in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper element from "a" to the upper element of "dst". + imm8[1:0] specifies the operation control: 00 = min, 01 = max, 10 = absolute min, 11 = absolute max. + imm8[3:2] specifies the sign control: 00 = sign from a, 01 = sign from compare result, 10 = clear sign bit, 11 = set sign bit. [sae_note] + +DEFINE RANGE(src1[63:0], src2[63:0], opCtl[1:0], signSelCtl[1:0]) { + CASE opCtl[1:0] OF + 0: tmp[63:0] := (src1[63:0] <= src2[63:0]) ? src1[63:0] : src2[63:0] + 1: tmp[63:0] := (src1[63:0] <= src2[63:0]) ? src2[63:0] : src1[63:0] + 2: tmp[63:0] := (ABS(src1[63:0]) <= ABS(src2[63:0])) ? src1[63:0] : src2[63:0] + 3: tmp[63:0] := (ABS(src1[63:0]) <= ABS(src2[63:0])) ? src2[63:0] : src1[63:0] + ESAC + + CASE signSelCtl[1:0] OF + 0: dst[63:0] := (src1[63] << 63) OR (tmp[62:0]) + 1: dst[63:0] := tmp[63:0] + 2: dst[63:0] := (0 << 63) OR (tmp[62:0]) + 3: dst[63:0] := (1 << 63) OR (tmp[62:0]) + ESAC + + RETURN dst +} +IF k[0] + dst[63:0] := RANGE(a[63:0], b[63:0], imm8[1:0], imm8[3:2]) +ELSE + dst[63:0] := 0 +FI +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + AVX512DQ +
immintrin.h
+ Miscellaneous +
+ + + + + + + Calculate the max, min, absolute max, or absolute min (depending on control in "imm8") for the lower double-precision (64-bit) floating-point element in "a" and "b", store the result in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper element from "a" to the upper element of "dst". + imm8[1:0] specifies the operation control: 00 = min, 01 = max, 10 = absolute min, 11 = absolute max. + imm8[3:2] specifies the sign control: 00 = sign from a, 01 = sign from compare result, 10 = clear sign bit, 11 = set sign bit. + +DEFINE RANGE(src1[63:0], src2[63:0], opCtl[1:0], signSelCtl[1:0]) { + CASE opCtl[1:0] OF + 0: tmp[63:0] := (src1[63:0] <= src2[63:0]) ? src1[63:0] : src2[63:0] + 1: tmp[63:0] := (src1[63:0] <= src2[63:0]) ? src2[63:0] : src1[63:0] + 2: tmp[63:0] := (ABS(src1[63:0]) <= ABS(src2[63:0])) ? src1[63:0] : src2[63:0] + 3: tmp[63:0] := (ABS(src1[63:0]) <= ABS(src2[63:0])) ? src2[63:0] : src1[63:0] + ESAC + + CASE signSelCtl[1:0] OF + 0: dst[63:0] := (src1[63] << 63) OR (tmp[62:0]) + 1: dst[63:0] := tmp[63:0] + 2: dst[63:0] := (0 << 63) OR (tmp[62:0]) + 3: dst[63:0] := (1 << 63) OR (tmp[62:0]) + ESAC + + RETURN dst +} +IF k[0] + dst[63:0] := RANGE(a[63:0], b[63:0], imm8[1:0], imm8[3:2]) +ELSE + dst[63:0] := 0 +FI +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + AVX512DQ +
immintrin.h
+ Miscellaneous +
+ + + + + + + Calculate the max, min, absolute max, or absolute min (depending on control in "imm8") for the lower double-precision (64-bit) floating-point element in "a" and "b", store the result in the lower element of "dst", and copy the upper element from "a" to the upper element of "dst". + imm8[1:0] specifies the operation control: 00 = min, 01 = max, 10 = absolute min, 11 = absolute max. + imm8[3:2] specifies the sign control: 00 = sign from a, 01 = sign from compare result, 10 = clear sign bit, 11 = set sign bit. [sae_note] + +DEFINE RANGE(src1[63:0], src2[63:0], opCtl[1:0], signSelCtl[1:0]) { + CASE opCtl[1:0] OF + 0: tmp[63:0] := (src1[63:0] <= src2[63:0]) ? src1[63:0] : src2[63:0] + 1: tmp[63:0] := (src1[63:0] <= src2[63:0]) ? src2[63:0] : src1[63:0] + 2: tmp[63:0] := (ABS(src1[63:0]) <= ABS(src2[63:0])) ? src1[63:0] : src2[63:0] + 3: tmp[63:0] := (ABS(src1[63:0]) <= ABS(src2[63:0])) ? src2[63:0] : src1[63:0] + ESAC + + CASE signSelCtl[1:0] OF + 0: dst[63:0] := (src1[63] << 63) OR (tmp[62:0]) + 1: dst[63:0] := tmp[63:0] + 2: dst[63:0] := (0 << 63) OR (tmp[62:0]) + 3: dst[63:0] := (1 << 63) OR (tmp[62:0]) + ESAC + + RETURN dst +} +dst[63:0] := RANGE(a[63:0], b[63:0], imm8[1:0], imm8[3:2]) +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + AVX512DQ +
immintrin.h
+ Miscellaneous +
+ + + + + + + + + Calculate the max, min, absolute max, or absolute min (depending on control in "imm8") for the lower single-precision (32-bit) floating-point element in "a" and "b", store the result in the lower element of "dst" using writemask "k" (the element is copied from "src" when mask bit 0 is not set), and copy the upper 3 packed elements from "a" to the upper elements of "dst". + imm8[1:0] specifies the operation control: 00 = min, 01 = max, 10 = absolute min, 11 = absolute max. + imm8[3:2] specifies the sign control: 00 = sign from a, 01 = sign from compare result, 10 = clear sign bit, 11 = set sign bit. [sae_note] + +DEFINE RANGE(src1[31:0], src2[31:0], opCtl[1:0], signSelCtl[1:0]) { + CASE opCtl[1:0] OF + 0: tmp[31:0] := (src1[31:0] <= src2[31:0]) ? src1[31:0] : src2[31:0] + 1: tmp[31:0] := (src1[31:0] <= src2[31:0]) ? src2[31:0] : src1[31:0] + 2: tmp[31:0] := (ABS(src1[31:0]) <= ABS(src2[31:0])) ? src1[31:0] : src2[31:0] + 3: tmp[31:0] := (ABS(src1[31:0]) <= ABS(src2[31:0])) ? src2[31:0] : src1[31:0] + ESAC + + CASE signSelCtl[1:0] OF + 0: dst[31:0] := (src1[31] << 31) OR (tmp[30:0]) + 1: dst[31:0] := tmp[31:0] + 2: dst[31:0] := (0 << 31) OR (tmp[30:0]) + 3: dst[31:0] := (1 << 31) OR (tmp[30:0]) + ESAC + + RETURN dst +} +IF k[0] + dst[31:0] := RANGE(a[31:0], b[31:0], imm8[1:0], imm8[3:2]) +ELSE + dst[31:0] := src[31:0] +FI +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512DQ +
immintrin.h
+ Miscellaneous +
+ + + + + + + + Calculate the max, min, absolute max, or absolute min (depending on control in "imm8") for the lower single-precision (32-bit) floating-point element in "a" and "b", store the result in the lower element of "dst" using writemask "k" (the element is copied from "src" when mask bit 0 is not set), and copy the upper 3 packed elements from "a" to the upper elements of "dst". + imm8[1:0] specifies the operation control: 00 = min, 01 = max, 10 = absolute min, 11 = absolute max. + imm8[3:2] specifies the sign control: 00 = sign from a, 01 = sign from compare result, 10 = clear sign bit, 11 = set sign bit. + +DEFINE RANGE(src1[31:0], src2[31:0], opCtl[1:0], signSelCtl[1:0]) { + CASE opCtl[1:0] OF + 0: tmp[31:0] := (src1[31:0] <= src2[31:0]) ? src1[31:0] : src2[31:0] + 1: tmp[31:0] := (src1[31:0] <= src2[31:0]) ? src2[31:0] : src1[31:0] + 2: tmp[31:0] := (ABS(src1[31:0]) <= ABS(src2[31:0])) ? src1[31:0] : src2[31:0] + 3: tmp[31:0] := (ABS(src1[31:0]) <= ABS(src2[31:0])) ? src2[31:0] : src1[31:0] + ESAC + + CASE signSelCtl[1:0] OF + 0: dst[31:0] := (src1[31] << 31) OR (tmp[30:0]) + 1: dst[31:0] := tmp[31:0] + 2: dst[31:0] := (0 << 31) OR (tmp[30:0]) + 3: dst[31:0] := (1 << 31) OR (tmp[30:0]) + ESAC + + RETURN dst +} +IF k[0] + dst[31:0] := RANGE(a[31:0], b[31:0], imm8[1:0], imm8[3:2]) +ELSE + dst[31:0] := src[31:0] +FI +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512DQ +
immintrin.h
+ Miscellaneous +
+ + + + + + + + Calculate the max, min, absolute max, or absolute min (depending on control in "imm8") for the lower single-precision (32-bit) floating-point element in "a" and "b", store the result in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper 3 packed elements from "a" to the upper elements of "dst". + imm8[1:0] specifies the operation control: 00 = min, 01 = max, 10 = absolute min, 11 = absolute max. + imm8[3:2] specifies the sign control: 00 = sign from a, 01 = sign from compare result, 10 = clear sign bit, 11 = set sign bit. [sae_note] + +DEFINE RANGE(src1[31:0], src2[31:0], opCtl[1:0], signSelCtl[1:0]) { + CASE opCtl[1:0] OF + 0: tmp[31:0] := (src1[31:0] <= src2[31:0]) ? src1[31:0] : src2[31:0] + 1: tmp[31:0] := (src1[31:0] <= src2[31:0]) ? src2[31:0] : src1[31:0] + 2: tmp[31:0] := (ABS(src1[31:0]) <= ABS(src2[31:0])) ? src1[31:0] : src2[31:0] + 3: tmp[31:0] := (ABS(src1[31:0]) <= ABS(src2[31:0])) ? src2[31:0] : src1[31:0] + ESAC + + CASE signSelCtl[1:0] OF + 0: dst[31:0] := (src1[31] << 31) OR (tmp[30:0]) + 1: dst[31:0] := tmp[31:0] + 2: dst[31:0] := (0 << 31) OR (tmp[30:0]) + 3: dst[31:0] := (1 << 31) OR (tmp[30:0]) + ESAC + + RETURN dst +} +IF k[0] + dst[31:0] := RANGE(a[31:0], b[31:0], imm8[1:0], imm8[3:2]) +ELSE + dst[31:0] := 0 +FI +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512DQ +
immintrin.h
+ Miscellaneous +
+ + + + + + + Calculate the max, min, absolute max, or absolute min (depending on control in "imm8") for the lower single-precision (32-bit) floating-point element in "a" and "b", store the result in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper 3 packed elements from "a" to the upper elements of "dst". + imm8[1:0] specifies the operation control: 00 = min, 01 = max, 10 = absolute min, 11 = absolute max. + imm8[3:2] specifies the sign control: 00 = sign from a, 01 = sign from compare result, 10 = clear sign bit, 11 = set sign bit. + +DEFINE RANGE(src1[31:0], src2[31:0], opCtl[1:0], signSelCtl[1:0]) { + CASE opCtl[1:0] OF + 0: tmp[31:0] := (src1[31:0] <= src2[31:0]) ? src1[31:0] : src2[31:0] + 1: tmp[31:0] := (src1[31:0] <= src2[31:0]) ? src2[31:0] : src1[31:0] + 2: tmp[31:0] := (ABS(src1[31:0]) <= ABS(src2[31:0])) ? src1[31:0] : src2[31:0] + 3: tmp[31:0] := (ABS(src1[31:0]) <= ABS(src2[31:0])) ? src2[31:0] : src1[31:0] + ESAC + + CASE signSelCtl[1:0] OF + 0: dst[31:0] := (src1[31] << 31) OR (tmp[30:0]) + 1: dst[31:0] := tmp[31:0] + 2: dst[31:0] := (0 << 31) OR (tmp[30:0]) + 3: dst[31:0] := (1 << 31) OR (tmp[30:0]) + ESAC + + RETURN dst +} +IF k[0] + dst[31:0] := RANGE(a[31:0], b[31:0], imm8[1:0], imm8[3:2]) +ELSE + dst[31:0] := 0 +FI +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512DQ +
immintrin.h
+ Miscellaneous +
+ + + + + + + Calculate the max, min, absolute max, or absolute min (depending on control in "imm8") for the lower single-precision (32-bit) floating-point element in "a" and "b", store the result in the lower element of "dst", and copy the upper 3 packed elements from "a" to the upper elements of "dst". + imm8[1:0] specifies the operation control: 00 = min, 01 = max, 10 = absolute min, 11 = absolute max. + imm8[3:2] specifies the sign control: 00 = sign from a, 01 = sign from compare result, 10 = clear sign bit, 11 = set sign bit. [sae_note] + +DEFINE RANGE(src1[31:0], src2[31:0], opCtl[1:0], signSelCtl[1:0]) { + CASE opCtl[1:0] OF + 0: tmp[31:0] := (src1[31:0] <= src2[31:0]) ? src1[31:0] : src2[31:0] + 1: tmp[31:0] := (src1[31:0] <= src2[31:0]) ? src2[31:0] : src1[31:0] + 2: tmp[31:0] := (ABS(src1[31:0]) <= ABS(src2[31:0])) ? src1[31:0] : src2[31:0] + 3: tmp[31:0] := (ABS(src1[31:0]) <= ABS(src2[31:0])) ? src2[31:0] : src1[31:0] + ESAC + + CASE signSelCtl[1:0] OF + 0: dst[31:0] := (src1[31] << 31) OR (tmp[30:0]) + 1: dst[31:0] := tmp[31:0] + 2: dst[31:0] := (0 << 31) OR (tmp[30:0]) + 3: dst[31:0] := (1 << 31) OR (tmp[30:0]) + ESAC + + RETURN dst +} +dst[31:0] := RANGE(a[31:0], b[31:0], imm8[1:0], imm8[3:2]) +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512DQ +
immintrin.h
+ Miscellaneous +
+ + + + + + + Extract the reduced argument of packed double-precision (64-bit) floating-point elements in "a" by the number of bits specified by "imm8", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). [round_imm_note] + +DEFINE ReduceArgumentPD(src1[63:0], imm8[7:0]) { + m[63:0] := FP64(imm8[7:4]) // number of fraction bits after the binary point to be preserved + tmp[63:0] := POW(2.0, -m) * ROUND(POW(2.0, m) * src1[63:0], imm8[3:0]) + tmp[63:0] := src1[63:0] - tmp[63:0] + IF IsInf(tmp[63:0]) + tmp[63:0] := FP64(0.0) + FI + RETURN tmp[63:0] +} +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := ReduceArgumentPD(a[i+63:i], imm8[7:0]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Miscellaneous +
+ + + + + + + + Extract the reduced argument of packed double-precision (64-bit) floating-point elements in "a" by the number of bits specified by "imm8", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). [round_imm_note][sae_note] + +DEFINE ReduceArgumentPD(src1[63:0], imm8[7:0]) { + m[63:0] := FP64(imm8[7:4]) // number of fraction bits after the binary point to be preserved + tmp[63:0] := POW(2.0, -m) * ROUND(POW(2.0, m) * src1[63:0], imm8[3:0]) + tmp[63:0] := src1[63:0] - tmp[63:0] + IF IsInf(tmp[63:0]) + tmp[63:0] := FP64(0.0) + FI + RETURN tmp[63:0] +} +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := ReduceArgumentPD(a[i+63:i], imm8[7:0]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Miscellaneous +
+ + + + + + Extract the reduced argument of packed double-precision (64-bit) floating-point elements in "a" by the number of bits specified by "imm8", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). [round_imm_note] + +DEFINE ReduceArgumentPD(src1[63:0], imm8[7:0]) { + m[63:0] := FP64(imm8[7:4]) // number of fraction bits after the binary point to be preserved + tmp[63:0] := POW(2.0, -m) * ROUND(POW(2.0, m) * src1[63:0], imm8[3:0]) + tmp[63:0] := src1[63:0] - tmp[63:0] + IF IsInf(tmp[63:0]) + tmp[63:0] := FP64(0.0) + FI + RETURN tmp[63:0] +} +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := ReduceArgumentPD(a[i+63:i], imm8[7:0]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Miscellaneous +
+ + + + + + + Extract the reduced argument of packed double-precision (64-bit) floating-point elements in "a" by the number of bits specified by "imm8", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). [round_imm_note][sae_note] + +DEFINE ReduceArgumentPD(src1[63:0], imm8[7:0]) { + m[63:0] := FP64(imm8[7:4]) // number of fraction bits after the binary point to be preserved + tmp[63:0] := POW(2.0, -m) * ROUND(POW(2.0, m) * src1[63:0], imm8[3:0]) + tmp[63:0] := src1[63:0] - tmp[63:0] + IF IsInf(tmp[63:0]) + tmp[63:0] := FP64(0.0) + FI + RETURN tmp[63:0] +} +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := ReduceArgumentPD(a[i+63:i], imm8[7:0]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Miscellaneous +
+ + + + + Extract the reduced argument of packed double-precision (64-bit) floating-point elements in "a" by the number of bits specified by "imm8", and store the results in "dst". [round_imm_note] + +DEFINE ReduceArgumentPD(src1[63:0], imm8[7:0]) { + m[63:0] := FP64(imm8[7:4]) // number of fraction bits after the binary point to be preserved + tmp[63:0] := POW(2.0, -m) * ROUND(POW(2.0, m) * src1[63:0], imm8[3:0]) + tmp[63:0] := src1[63:0] - tmp[63:0] + IF IsInf(tmp[63:0]) + tmp[63:0] := FP64(0.0) + FI + RETURN tmp[63:0] +} +FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := ReduceArgumentPD(a[i+63:i], imm8[7:0]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Miscellaneous +
+ + + + + + Extract the reduced argument of packed double-precision (64-bit) floating-point elements in "a" by the number of bits specified by "imm8", and store the results in "dst". [round_imm_note][sae_note] + +DEFINE ReduceArgumentPD(src1[63:0], imm8[7:0]) { + m[63:0] := FP64(imm8[7:4]) // number of fraction bits after the binary point to be preserved + tmp[63:0] := POW(2.0, -m) * ROUND(POW(2.0, m) * src1[63:0], imm8[3:0]) + tmp[63:0] := src1[63:0] - tmp[63:0] + IF IsInf(tmp[63:0]) + tmp[63:0] := FP64(0.0) + FI + RETURN tmp[63:0] +} +FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := ReduceArgumentPD(a[i+63:i], imm8[7:0]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Miscellaneous +
+ + + + + + + Extract the reduced argument of packed single-precision (32-bit) floating-point elements in "a" by the number of bits specified by "imm8", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). [round_imm_note] + +DEFINE ReduceArgumentPS(src1[31:0], imm8[7:0]) { + m[31:0] := FP32(imm8[7:4]) // number of fraction bits after the binary point to be preserved + tmp[31:0] := POW(FP32(2.0), -m) * ROUND(POW(FP32(2.0), m) * src1[31:0], imm8[3:0]) + tmp[31:0] := src1[31:0] - tmp[31:0] + IF IsInf(tmp[31:0]) + tmp[31:0] := FP32(0.0) + FI + RETURN tmp[31:0] +} +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := ReduceArgumentPS(a[i+31:i], imm8[7:0]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Miscellaneous +
+ + + + + + + + Extract the reduced argument of packed single-precision (32-bit) floating-point elements in "a" by the number of bits specified by "imm8", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). [round_imm_note][sae_note] + +DEFINE ReduceArgumentPS(src1[31:0], imm8[7:0]) { + m[31:0] := FP32(imm8[7:4]) // number of fraction bits after the binary point to be preserved + tmp[31:0] := POW(FP32(2.0), -m) * ROUND(POW(FP32(2.0), m) * src1[31:0], imm8[3:0]) + tmp[31:0] := src1[31:0] - tmp[31:0] + IF IsInf(tmp[31:0]) + tmp[31:0] := FP32(0.0) + FI + RETURN tmp[31:0] +} +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := ReduceArgumentPS(a[i+31:i], imm8[7:0]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Miscellaneous +
+ + + + + + Extract the reduced argument of packed single-precision (32-bit) floating-point elements in "a" by the number of bits specified by "imm8", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). [round_imm_note] + +DEFINE ReduceArgumentPS(src1[31:0], imm8[7:0]) { + m[31:0] := FP32(imm8[7:4]) // number of fraction bits after the binary point to be preserved + tmp[31:0] := POW(FP32(2.0), -m) * ROUND(POW(FP32(2.0), m) * src1[31:0], imm8[3:0]) + tmp[31:0] := src1[31:0] - tmp[31:0] + IF IsInf(tmp[31:0]) + tmp[31:0] := FP32(0.0) + FI + RETURN tmp[31:0] +} +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := ReduceArgumentPS(a[i+31:i], imm8[7:0]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Miscellaneous +
+ + + + + + + Extract the reduced argument of packed single-precision (32-bit) floating-point elements in "a" by the number of bits specified by "imm8", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). [round_imm_note][sae_note] + +DEFINE ReduceArgumentPS(src1[31:0], imm8[7:0]) { + m[31:0] := FP32(imm8[7:4]) // number of fraction bits after the binary point to be preserved + tmp[31:0] := POW(FP32(2.0), -m) * ROUND(POW(FP32(2.0), m) * src1[31:0], imm8[3:0]) + tmp[31:0] := src1[31:0] - tmp[31:0] + IF IsInf(tmp[31:0]) + tmp[31:0] := FP32(0.0) + FI + RETURN tmp[31:0] +} +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := ReduceArgumentPS(a[i+31:i], imm8[7:0]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Miscellaneous +
+ + + + + Extract the reduced argument of packed single-precision (32-bit) floating-point elements in "a" by the number of bits specified by "imm8", and store the results in "dst". [round_imm_note] + +DEFINE ReduceArgumentPS(src1[31:0], imm8[7:0]) { + m[31:0] := FP32(imm8[7:4]) // number of fraction bits after the binary point to be preserved + tmp[31:0] := POW(FP32(2.0), -m) * ROUND(POW(FP32(2.0), m) * src1[31:0], imm8[3:0]) + tmp[31:0] := src1[31:0] - tmp[31:0] + IF IsInf(tmp[31:0]) + tmp[31:0] := FP32(0.0) + FI + RETURN tmp[31:0] +} +FOR j := 0 to 15 + i := j*32 + dst[i+31:i] := ReduceArgumentPS(a[i+31:i], imm8[7:0]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Miscellaneous +
+ + + + + + Extract the reduced argument of packed single-precision (32-bit) floating-point elements in "a" by the number of bits specified by "imm8", and store the results in "dst". [round_imm_note][sae_note] + +DEFINE ReduceArgumentPS(src1[31:0], imm8[7:0]) { + m[31:0] := FP32(imm8[7:4]) // number of fraction bits after the binary point to be preserved + tmp[31:0] := POW(FP32(2.0), -m) * ROUND(POW(FP32(2.0), m) * src1[31:0], imm8[3:0]) + tmp[31:0] := src1[31:0] - tmp[31:0] + IF IsInf(tmp[31:0]) + tmp[31:0] := FP32(0.0) + FI + RETURN tmp[31:0] +} +FOR j := 0 to 15 + i := j*32 + dst[i+31:i] := ReduceArgumentPS(a[i+31:i], imm8[7:0]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Miscellaneous +
+ + + + + + + + Extract the reduced argument of the lower double-precision (64-bit) floating-point element in "b" by the number of bits specified by "imm8", store the result in the lower element of "dst" using writemask "k" (the element is copied from "src" when mask bit 0 is not set), and copy the upper element from "a" to the upper element of "dst". [round_imm_note] + +DEFINE ReduceArgumentPD(src1[63:0], imm8[7:0]) { + m[63:0] := FP64(imm8[7:4]) // number of fraction bits after the binary point to be preserved + tmp[63:0] := POW(2.0, -m) * ROUND(POW(2.0, m) * src1[63:0], imm8[3:0]) + tmp[63:0] := src1[63:0] - tmp[63:0] + IF IsInf(tmp[63:0]) + tmp[63:0] := FP64(0.0) + FI + RETURN tmp[63:0] +} +IF k[0] + dst[63:0] := ReduceArgumentPD(b[63:0], imm8[7:0]) +ELSE + dst[63:0] := src[63:0] +FI +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + AVX512DQ +
immintrin.h
+ Miscellaneous +
+ + + + + + + + + Extract the reduced argument of the lower double-precision (64-bit) floating-point element in "b" by the number of bits specified by "imm8", store the result in the lower element of "dst" using writemask "k" (the element is copied from "src" when mask bit 0 is not set), and copy the upper element from "a" to the upper element of "dst". [round_imm_note][sae_note] + +DEFINE ReduceArgumentPD(src1[63:0], imm8[7:0]) { + m[63:0] := FP64(imm8[7:4]) // number of fraction bits after the binary point to be preserved + tmp[63:0] := POW(2.0, -m) * ROUND(POW(2.0, m) * src1[63:0], imm8[3:0]) + tmp[63:0] := src1[63:0] - tmp[63:0] + IF IsInf(tmp[63:0]) + tmp[63:0] := FP64(0.0) + FI + RETURN tmp[63:0] +} +IF k[0] + dst[63:0] := ReduceArgumentPD(b[63:0], imm8[7:0]) +ELSE + dst[63:0] := src[63:0] +FI +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + AVX512DQ +
immintrin.h
+ Miscellaneous +
+ + + + + + + Extract the reduced argument of the lower double-precision (64-bit) floating-point element in "b" by the number of bits specified by "imm8", store the result in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper element from "a" to the upper element of "dst". [round_imm_note] + +DEFINE ReduceArgumentPD(src1[63:0], imm8[7:0]) { + m[63:0] := FP64(imm8[7:4]) // number of fraction bits after the binary point to be preserved + tmp[63:0] := POW(2.0, -m) * ROUND(POW(2.0, m) * src1[63:0], imm8[3:0]) + tmp[63:0] := src1[63:0] - tmp[63:0] + IF IsInf(tmp[63:0]) + tmp[63:0] := FP64(0.0) + FI + RETURN tmp[63:0] +} +IF k[0] + dst[63:0] := ReduceArgumentPD(b[63:0], imm8[7:0]) +ELSE + dst[63:0] := 0 +FI +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + AVX512DQ +
immintrin.h
+ Miscellaneous +
+ + + + + + + + Extract the reduced argument of the lower double-precision (64-bit) floating-point element in "b" by the number of bits specified by "imm8", store the result in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper element from "a" to the upper element of "dst". [round_imm_note][sae_note] + +DEFINE ReduceArgumentPD(src1[63:0], imm8[7:0]) { + m[63:0] := FP64(imm8[7:4]) // number of fraction bits after the binary point to be preserved + tmp[63:0] := POW(2.0, -m) * ROUND(POW(2.0, m) * src1[63:0], imm8[3:0]) + tmp[63:0] := src1[63:0] - tmp[63:0] + IF IsInf(tmp[63:0]) + tmp[63:0] := FP64(0.0) + FI + RETURN tmp[63:0] +} +IF k[0] + dst[63:0] := ReduceArgumentPD(b[63:0], imm8[7:0]) +ELSE + dst[63:0] := 0 +FI +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + AVX512DQ +
immintrin.h
+ Miscellaneous +
+ + + + + + Extract the reduced argument of the lower double-precision (64-bit) floating-point element in "b" by the number of bits specified by "imm8", store the result in the lower element of "dst", and copy the upper element from "a" to the upper element of "dst". [round_imm_note] + +DEFINE ReduceArgumentPD(src1[63:0], imm8[7:0]) { + m[63:0] := FP64(imm8[7:4]) // number of fraction bits after the binary point to be preserved + tmp[63:0] := POW(2.0, -m) * ROUND(POW(2.0, m) * src1[63:0], imm8[3:0]) + tmp[63:0] := src1[63:0] - tmp[63:0] + IF IsInf(tmp[63:0]) + tmp[63:0] := FP64(0.0) + FI + RETURN tmp[63:0] +} +dst[63:0] := ReduceArgumentPD(b[63:0], imm8[7:0]) +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + AVX512DQ +
immintrin.h
+ Miscellaneous +
+ + + + + + + Extract the reduced argument of the lower double-precision (64-bit) floating-point element in "b" by the number of bits specified by "imm8", store the result in the lower element of "dst", and copy the upper element from "a" to the upper element of "dst". [round_imm_note][sae_note] + +DEFINE ReduceArgumentPD(src1[63:0], imm8[7:0]) { + m[63:0] := FP64(imm8[7:4]) // number of fraction bits after the binary point to be preserved + tmp[63:0] := POW(2.0, -m) * ROUND(POW(2.0, m) * src1[63:0], imm8[3:0]) + tmp[63:0] := src1[63:0] - tmp[63:0] + IF IsInf(tmp[63:0]) + tmp[63:0] := FP64(0.0) + FI + RETURN tmp[63:0] +} +dst[63:0] := ReduceArgumentPD(b[63:0], imm8[7:0]) +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + AVX512DQ +
immintrin.h
+ Miscellaneous +
+ + + + + + + + Extract the reduced argument of the lower single-precision (32-bit) floating-point element in "b" by the number of bits specified by "imm8", store the result in the lower element of "dst" using writemask "k" (the element is copied from "src" when mask bit 0 is not set), and copy the upper 3 packed elements from "a" to the upper elements of "dst". [round_imm_note] + +DEFINE ReduceArgumentPS(src1[31:0], imm8[7:0]) { + m[31:0] := FP32(imm8[7:4]) // number of fraction bits after the binary point to be preserved + tmp[31:0] := POW(FP32(2.0), -m) * ROUND(POW(FP32(2.0), m) * src1[31:0], imm8[3:0]) + tmp[31:0] := src1[31:0] - tmp[31:0] + IF IsInf(tmp[31:0]) + tmp[31:0] := FP32(0.0) + FI + RETURN tmp[31:0] +} +IF k[0] + dst[31:0] := ReduceArgumentPS(b[31:0], imm8[7:0]) +ELSE + dst[31:0] := src[31:0] +FI +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512DQ +
immintrin.h
+ Miscellaneous +
+ + + + + + + + + Extract the reduced argument of the lower single-precision (32-bit) floating-point element in "b" by the number of bits specified by "imm8", store the result in the lower element of "dst" using writemask "k" (the element is copied from "src" when mask bit 0 is not set), and copy the upper 3 packed elements from "a" to the upper elements of "dst". [round_imm_note][sae_note] + +DEFINE ReduceArgumentPS(src1[31:0], imm8[7:0]) { + m[31:0] := FP32(imm8[7:4]) // number of fraction bits after the binary point to be preserved + tmp[31:0] := POW(FP32(2.0), -m) * ROUND(POW(FP32(2.0), m) * src1[31:0], imm8[3:0]) + tmp[31:0] := src1[31:0] - tmp[31:0] + IF IsInf(tmp[31:0]) + tmp[31:0] := FP32(0.0) + FI + RETURN tmp[31:0] +} +IF k[0] + dst[31:0] := ReduceArgumentPS(b[31:0], imm8[7:0]) +ELSE + dst[31:0] := src[31:0] +FI +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512DQ +
immintrin.h
+ Miscellaneous +
+ + + + + + + Extract the reduced argument of the lower single-precision (32-bit) floating-point element in "b" by the number of bits specified by "imm8", store the result in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper 3 packed elements from "a" to the upper elements of "dst". [round_imm_note] + +DEFINE ReduceArgumentPS(src1[31:0], imm8[7:0]) { + m[31:0] := FP32(imm8[7:4]) // number of fraction bits after the binary point to be preserved + tmp[31:0] := POW(FP32(2.0), -m) * ROUND(POW(FP32(2.0), m) * src1[31:0], imm8[3:0]) + tmp[31:0] := src1[31:0] - tmp[31:0] + IF IsInf(tmp[31:0]) + tmp[31:0] := FP32(0.0) + FI + RETURN tmp[31:0] +} +IF k[0] + dst[31:0] := ReduceArgumentPS(b[31:0], imm8[7:0]) +ELSE + dst[31:0] := 0 +FI +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512DQ +
immintrin.h
+ Miscellaneous +
+ + + + + + + + Extract the reduced argument of the lower single-precision (32-bit) floating-point element in "b" by the number of bits specified by "imm8", store the result in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper 3 packed elements from "a" to the upper elements of "dst". [round_imm_note][sae_note] + +DEFINE ReduceArgumentPS(src1[31:0], imm8[7:0]) { + m[31:0] := FP32(imm8[7:4]) // number of fraction bits after the binary point to be preserved + tmp[31:0] := POW(FP32(2.0), -m) * ROUND(POW(FP32(2.0), m) * src1[31:0], imm8[3:0]) + tmp[31:0] := src1[31:0] - tmp[31:0] + IF IsInf(tmp[31:0]) + tmp[31:0] := FP32(0.0) + FI + RETURN tmp[31:0] +} +IF k[0] + dst[31:0] := ReduceArgumentPS(b[31:0], imm8[7:0]) +ELSE + dst[31:0] := 0 +FI +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512DQ +
immintrin.h
+ Miscellaneous +
+ + + + + + Extract the reduced argument of the lower single-precision (32-bit) floating-point element in "b" by the number of bits specified by "imm8", store the result in the lower element of "dst", and copy the upper 3 packed elements from "a" to the upper elements of "dst". [round_imm_note] + +DEFINE ReduceArgumentPS(src1[31:0], imm8[7:0]) { + m[31:0] := FP32(imm8[7:4]) // number of fraction bits after the binary point to be preserved + tmp[31:0] := POW(FP32(2.0), -m) * ROUND(POW(FP32(2.0), m) * src1[31:0], imm8[3:0]) + tmp[31:0] := src1[31:0] - tmp[31:0] + IF IsInf(tmp[31:0]) + tmp[31:0] := FP32(0.0) + FI + RETURN tmp[31:0] +} +dst[31:0] := ReduceArgumentPS(b[31:0], imm8[7:0]) +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512DQ +
immintrin.h
+ Miscellaneous +
+ + + + + + + Extract the reduced argument of the lower single-precision (32-bit) floating-point element in "b" by the number of bits specified by "imm8", store the result in the lower element of "dst", and copy the upper 3 packed elements from "a" to the upper elements of "dst". [round_imm_note][sae_note] + +DEFINE ReduceArgumentPS(src1[31:0], imm8[7:0]) { + m[31:0] := FP32(imm8[7:4]) // number of fraction bits after the binary point to be preserved + tmp[31:0] := POW(FP32(2.0), -m) * ROUND(POW(FP32(2.0), m) * src1[31:0], imm8[3:0]) + tmp[31:0] := src1[31:0] - tmp[31:0] + IF IsInf(tmp[31:0]) + tmp[31:0] := FP32(0.0) + FI + RETURN tmp[31:0] +} +dst[31:0] := ReduceArgumentPS(b[31:0], imm8[7:0]) +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512DQ +
immintrin.h
+ Miscellaneous +
+ + + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed 64-bit integers, and store the results in "dst". + [round_note] + +FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := Convert_FP64_To_Int64(a[i+63:i]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Convert +
+ + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed 64-bit integers, and store the results in "dst". + +FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := Convert_FP64_To_Int64(a[i+63:i]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Convert +
+ + + + + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed 64-bit integers, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := Convert_FP64_To_Int64(a[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Convert +
+ + + + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed 64-bit integers, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := Convert_FP64_To_Int64(a[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Convert +
+ + + + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed 64-bit integers, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := Convert_FP64_To_Int64(a[i+63:i]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Convert +
+ + + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed 64-bit integers, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := Convert_FP64_To_Int64(a[i+63:i]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Convert +
+ + + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed unsigned 64-bit integers, and store the results in "dst". + [round_note] + +FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := Convert_FP64_To_UInt64(a[i+63:i]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Convert +
+ + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed unsigned 64-bit integers, and store the results in "dst". + +FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := Convert_FP64_To_UInt64(a[i+63:i]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Convert +
+ + + + + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed unsigned 64-bit integers, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := Convert_FP64_To_UInt64(a[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Convert +
+ + + + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed unsigned 64-bit integers, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := Convert_FP64_To_UInt64(a[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Convert +
+ + + + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed unsigned 64-bit integers, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := Convert_FP64_To_UInt64(a[i+63:i]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Convert +
+ + + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed unsigned 64-bit integers, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := Convert_FP64_To_UInt64(a[i+63:i]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Convert +
+ + + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed 64-bit integers, and store the results in "dst". + [round_note] + +FOR j := 0 to 7 + i := j*64 + l := j*32 + dst[i+63:i] := Convert_FP32_To_Int64(a[l+31:l]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Convert +
+ + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed 64-bit integers, and store the results in "dst". + +FOR j := 0 to 7 + i := j*64 + l := j*32 + dst[i+63:i] := Convert_FP32_To_Int64(a[l+31:l]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Convert +
+ + + + + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed 64-bit integers, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 to 7 + i := j*64 + l := j*32 + IF k[j] + dst[i+63:i] := Convert_FP32_To_Int64(a[l+31:l]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Convert +
+ + + + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed 64-bit integers, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + l := j*32 + IF k[j] + dst[i+63:i] := Convert_FP32_To_Int64(a[l+31:l]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Convert +
+ + + + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed 64-bit integers, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 to 7 + i := j*64 + l := j*32 + IF k[j] + dst[i+63:i] := Convert_FP32_To_Int64(a[l+31:l]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Convert +
+ + + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed 64-bit integers, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + l := j*32 + IF k[j] + dst[i+63:i] := Convert_FP32_To_Int64(a[l+31:l]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Convert +
+ + + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed unsigned 64-bit integers, and store the results in "dst". + [round_note] + +FOR j := 0 to 7 + i := j*64 + l := j*32 + dst[i+63:i] := Convert_FP32_To_UInt64(a[l+31:l]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Convert +
+ + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed unsigned 64-bit integers, and store the results in "dst". + +FOR j := 0 to 7 + i := j*64 + l := j*32 + dst[i+63:i] := Convert_FP32_To_UInt64(a[l+31:l]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Convert +
+ + + + + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed unsigned 64-bit integers, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 to 7 + i := j*64 + l := j*32 + IF k[j] + dst[i+63:i] := Convert_FP32_To_UInt64(a[l+31:l]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Convert +
+ + + + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed unsigned 64-bit integers, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + l := j*32 + IF k[j] + dst[i+63:i] := Convert_FP32_To_UInt64(a[l+31:l]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Convert +
+ + + + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed unsigned 64-bit integers, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 to 7 + i := j*64 + l := j*32 + IF k[j] + dst[i+63:i] := Convert_FP32_To_UInt64(a[l+31:l]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Convert +
+ + + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed unsigned 64-bit integers, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + l := j*32 + IF k[j] + dst[i+63:i] := Convert_FP32_To_UInt64(a[l+31:l]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Convert +
+ + + + + Convert packed signed 64-bit integers in "a" to packed double-precision (64-bit) floating-point elements, and store the results in "dst". + [round_note] + +FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := Convert_Int64_To_FP64(a[i+63:i]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Convert +
+ + + + Convert packed signed 64-bit integers in "a" to packed double-precision (64-bit) floating-point elements, and store the results in "dst". + +FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := Convert_Int64_To_FP64(a[i+63:i]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Convert +
+ + + + + + + Convert packed signed 64-bit integers in "a" to packed double-precision (64-bit) floating-point elements, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := Convert_Int64_To_FP64(a[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Convert +
+ + + + + + Convert packed signed 64-bit integers in "a" to packed double-precision (64-bit) floating-point elements, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := Convert_Int64_To_FP64(a[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Convert +
+ + + + + + Convert packed signed 64-bit integers in "a" to packed double-precision (64-bit) floating-point elements, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := Convert_Int64_To_FP64(a[i+63:i]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Convert +
+ + + + + Convert packed signed 64-bit integers in "a" to packed double-precision (64-bit) floating-point elements, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := Convert_Int64_To_FP64(a[i+63:i]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Convert +
+ + + + + Convert packed signed 64-bit integers in "a" to packed single-precision (32-bit) floating-point elements, and store the results in "dst". + [round_note] + +FOR j := 0 to 7 + i := j*64 + l := j*32 + dst[l+31:l] := Convert_Int64_To_FP32(a[i+63:i]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512DQ +
immintrin.h
+ Convert +
+ + + + Convert packed signed 64-bit integers in "a" to packed single-precision (32-bit) floating-point elements, and store the results in "dst". + +FOR j := 0 to 7 + i := j*64 + l := j*32 + dst[l+31:l] := Convert_Int64_To_FP32(a[i+63:i]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512DQ +
immintrin.h
+ Convert +
+ + + + + + + Convert packed signed 64-bit integers in "a" to packed single-precision (32-bit) floating-point elements, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 to 7 + i := j*64 + l := j*32 + IF k[j] + dst[l+31:l] := Convert_Int64_To_FP32(a[i+63:i]) + ELSE + dst[l+31:l] := src[l+31:l] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512DQ +
immintrin.h
+ Convert +
+ + + + + + Convert packed signed 64-bit integers in "a" to packed single-precision (32-bit) floating-point elements, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + l := j*32 + IF k[j] + dst[l+31:l] := Convert_Int64_To_FP32(a[i+63:i]) + ELSE + dst[l+31:l] := src[l+31:l] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512DQ +
immintrin.h
+ Convert +
+ + + + + + Convert packed signed 64-bit integers in "a" to packed single-precision (32-bit) floating-point elements, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 to 7 + i := j*64 + l := j*32 + IF k[j] + dst[l+31:l] := Convert_Int64_To_FP32(a[i+63:i]) + ELSE + dst[l+31:l] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512DQ +
immintrin.h
+ Convert +
+ + + + + Convert packed signed 64-bit integers in "a" to packed single-precision (32-bit) floating-point elements, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + l := j*32 + IF k[j] + dst[l+31:l] := Convert_Int64_To_FP32(a[i+63:i]) + ELSE + dst[l+31:l] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512DQ +
immintrin.h
+ Convert +
+ + + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed 64-bit integers with truncation, and store the results in "dst". [sae_note] + +FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := Convert_FP64_To_Int64_Truncate(a[i+63:i]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Convert +
+ + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed 64-bit integers with truncation, and store the results in "dst". + +FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := Convert_FP64_To_Int64_Truncate(a[i+63:i]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Convert +
+ + + + + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed 64-bit integers with truncation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). [sae_note] + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := Convert_FP64_To_Int64_Truncate(a[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Convert +
+ + + + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed 64-bit integers with truncation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := Convert_FP64_To_Int64_Truncate(a[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Convert +
+ + + + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed 64-bit integers with truncation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). [sae_note] + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := Convert_FP64_To_Int64_Truncate(a[i+63:i]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Convert +
+ + + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed 64-bit integers with truncation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := Convert_FP64_To_Int64_Truncate(a[i+63:i]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Convert +
+ + + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed unsigned 64-bit integers with truncation, and store the results in "dst". [sae_note] + +FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := Convert_FP64_To_UInt64_Truncate(a[i+63:i]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Convert +
+ + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed unsigned 64-bit integers with truncation, and store the results in "dst". + +FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := Convert_FP64_To_UInt64_Truncate(a[i+63:i]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Convert +
+ + + + + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed unsigned 64-bit integers with truncation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). [sae_note] + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := Convert_FP64_To_UInt64_Truncate(a[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Convert +
+ + + + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed unsigned 64-bit integers with truncation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := Convert_FP64_To_UInt64_Truncate(a[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Convert +
+ + + + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed unsigned 64-bit integers with truncation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). [sae_note] + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := Convert_FP64_To_UInt64_Truncate(a[i+63:i]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Convert +
+ + + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed unsigned 64-bit integers with truncation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := Convert_FP64_To_UInt64_Truncate(a[i+63:i]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Convert +
+ + + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed 64-bit integers with truncation, and store the results in "dst". [sae_note] + +FOR j := 0 to 7 + i := j*64 + l := j*32 + dst[i+63:i] := Convert_FP32_To_Int64_Truncate(a[l+31:l]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Convert +
+ + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed 64-bit integers with truncation, and store the results in "dst". + +FOR j := 0 to 7 + i := j*64 + l := j*32 + dst[i+63:i] := Convert_FP32_To_Int64_Truncate(a[l+31:l]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Convert +
+ + + + + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed 64-bit integers with truncation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). [sae_note] + +FOR j := 0 to 7 + i := j*64 + l := j*32 + IF k[j] + dst[i+63:i] := Convert_FP32_To_Int64_Truncate(a[l+31:l]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Convert +
+ + + + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed 64-bit integers with truncation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + l := j*32 + IF k[j] + dst[i+63:i] := Convert_FP32_To_Int64_Truncate(a[l+31:l]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Convert +
+ + + + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed 64-bit integers with truncation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). [sae_note] + +FOR j := 0 to 7 + i := j*64 + l := j*32 + IF k[j] + dst[i+63:i] := Convert_FP32_To_Int64_Truncate(a[l+31:l]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Convert +
+ + + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed 64-bit integers with truncation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + l := j*32 + IF k[j] + dst[i+63:i] := Convert_FP32_To_Int64_Truncate(a[l+31:l]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Convert +
+ + + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed unsigned 64-bit integers with truncation, and store the results in "dst". [sae_note] + +FOR j := 0 to 7 + i := j*64 + l := j*32 + dst[i+63:i] := Convert_FP32_To_UInt64_Truncate(a[l+31:l]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Convert +
+ + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed unsigned 64-bit integers with truncation, and store the results in "dst". + +FOR j := 0 to 7 + i := j*64 + l := j*32 + dst[i+63:i] := Convert_FP32_To_UInt64_Truncate(a[l+31:l]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Convert +
+ + + + + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed unsigned 64-bit integers with truncation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). [sae_note] + +FOR j := 0 to 7 + i := j*64 + l := j*32 + IF k[j] + dst[i+63:i] := Convert_FP32_To_UInt64_Truncate(a[l+31:l]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Convert +
+ + + + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed unsigned 64-bit integers with truncation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + l := j*32 + IF k[j] + dst[i+63:i] := Convert_FP32_To_UInt64_Truncate(a[l+31:l]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Convert +
+ + + + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed unsigned 64-bit integers with truncation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). [sae_note] + +FOR j := 0 to 7 + i := j*64 + l := j*32 + IF k[j] + dst[i+63:i] := Convert_FP32_To_UInt64_Truncate(a[l+31:l]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Convert +
+ + + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed unsigned 64-bit integers with truncation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + l := j*32 + IF k[j] + dst[i+63:i] := Convert_FP32_To_UInt64_Truncate(a[l+31:l]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Convert +
+ + + + + Convert packed unsigned 64-bit integers in "a" to packed double-precision (64-bit) floating-point elements, and store the results in "dst". + [round_note] + +FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := Convert_Int64_To_FP64(a[i+63:i]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Convert +
+ + + + Convert packed unsigned 64-bit integers in "a" to packed double-precision (64-bit) floating-point elements, and store the results in "dst". + +FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := Convert_Int64_To_FP64(a[i+63:i]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Convert +
+ + + + + + + Convert packed unsigned 64-bit integers in "a" to packed double-precision (64-bit) floating-point elements, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := Convert_Int64_To_FP64(a[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Convert +
+ + + + + + Convert packed unsigned 64-bit integers in "a" to packed double-precision (64-bit) floating-point elements, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := Convert_Int64_To_FP64(a[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Convert +
+ + + + + + Convert packed unsigned 64-bit integers in "a" to packed double-precision (64-bit) floating-point elements, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := Convert_Int64_To_FP64(a[i+63:i]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Convert +
+ + + + + Convert packed unsigned 64-bit integers in "a" to packed double-precision (64-bit) floating-point elements, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := Convert_Int64_To_FP64(a[i+63:i]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Convert +
+ + + + + Convert packed unsigned 64-bit integers in "a" to packed single-precision (32-bit) floating-point elements, and store the results in "dst". + [round_note] + +FOR j := 0 to 7 + i := j*64 + l := j*32 + dst[l+31:l] := Convert_Int64_To_FP32(a[i+63:i]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512DQ +
immintrin.h
+ Convert +
+ + + + Convert packed unsigned 64-bit integers in "a" to packed single-precision (32-bit) floating-point elements, and store the results in "dst". + +FOR j := 0 to 7 + i := j*64 + l := j*32 + dst[l+31:l] := Convert_Int64_To_FP32(a[i+63:i]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512DQ +
immintrin.h
+ Convert +
+ + + + + + + Convert packed unsigned 64-bit integers in "a" to packed single-precision (32-bit) floating-point elements, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 to 7 + i := j*64 + l := j*32 + IF k[j] + dst[l+31:l] := Convert_Int64_To_FP32(a[i+63:i]) + ELSE + dst[l+31:l] := src[l+31:l] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512DQ +
immintrin.h
+ Convert +
+ + + + + + Convert packed unsigned 64-bit integers in "a" to packed single-precision (32-bit) floating-point elements, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + l := j*32 + IF k[j] + dst[l+31:l] := Convert_Int64_To_FP32(a[i+63:i]) + ELSE + dst[l+31:l] := src[l+31:l] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512DQ +
immintrin.h
+ Convert +
+ + + + + + Convert packed unsigned 64-bit integers in "a" to packed single-precision (32-bit) floating-point elements, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 to 7 + i := j*64 + l := j*32 + IF k[j] + dst[l+31:l] := Convert_Int64_To_FP32(a[i+63:i]) + ELSE + dst[l+31:l] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512DQ +
immintrin.h
+ Convert +
+ + + + + Convert packed unsigned 64-bit integers in "a" to packed single-precision (32-bit) floating-point elements, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + l := j*32 + IF k[j] + dst[l+31:l] := Convert_Int64_To_FP32(a[i+63:i]) + ELSE + dst[l+31:l] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512DQ +
immintrin.h
+ Convert +
+ + + + + + + Multiply the packed 64-bit integers in "a" and "b", producing intermediate 128-bit integers, and store the low 64 bits of the intermediate integers in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + tmp[127:0] := a[i+63:i] * b[i+63:i] + dst[i+63:i] := tmp[63:0] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply the packed 64-bit integers in "a" and "b", producing intermediate 128-bit integers, and store the low 64 bits of the intermediate integers in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + tmp[127:0] := a[i+63:i] * b[i+63:i] + dst[i+63:i] := tmp[63:0] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Arithmetic +
+ + + + + Multiply the packed 64-bit integers in "a" and "b", producing intermediate 128-bit integers, and store the low 64 bits of the intermediate integers in "dst". + +FOR j := 0 to 7 + i := j*64 + tmp[127:0] := a[i+63:i] * b[i+63:i] + dst[i+63:i] := tmp[63:0] +ENDFOR +dst[MAX:512] := 0 + + + AVX512DQ +
immintrin.h
+ Arithmetic +
+ + + + + Add 8-bit masks in "a" and "b", and store the result in "k". + +k[7:0] := a[7:0] + b[7:0] +k[MAX:8] := 0 + + + AVX512DQ +
immintrin.h
+ Mask +
+ + + + + Add 16-bit masks in "a" and "b", and store the result in "k". + +k[15:0] := a[15:0] + b[15:0] +k[MAX:16] := 0 + + + AVX512DQ +
immintrin.h
+ Mask +
+ + + + + Compute the bitwise AND of 8-bit masks "a" and "b", and store the result in "k". + +k[7:0] := a[7:0] AND b[7:0] +k[MAX:8] := 0 + + + AVX512DQ +
immintrin.h
+ Mask +
+ + + + + Compute the bitwise NOT of 8-bit masks "a" and then AND with "b", and store the result in "k". + +k[7:0] := (NOT a[7:0]) AND b[7:0] +k[MAX:8] := 0 + + + AVX512DQ +
immintrin.h
+ Mask +
+ + + + Compute the bitwise NOT of 8-bit mask "a", and store the result in "k". + +k[7:0] := NOT a[7:0] +k[MAX:8] := 0 + + + AVX512DQ +
immintrin.h
+ Mask +
+ + + + + Compute the bitwise OR of 8-bit masks "a" and "b", and store the result in "k". + +k[7:0] := a[7:0] OR b[7:0] +k[MAX:8] := 0 + + + AVX512DQ +
immintrin.h
+ Mask +
+ + + + + Compute the bitwise XNOR of 8-bit masks "a" and "b", and store the result in "k". + +k[7:0] := NOT (a[7:0] XOR b[7:0]) +k[MAX:8] := 0 + + + AVX512DQ +
immintrin.h
+ Mask +
+ + + + + Compute the bitwise XOR of 8-bit masks "a" and "b", and store the result in "k". + +k[7:0] := a[7:0] XOR b[7:0] +k[MAX:8] := 0 + + + AVX512DQ +
immintrin.h
+ Mask +
+ + + + + Shift the bits of 8-bit mask "a" left by "count" while shifting in zeros, and store the least significant 8 bits of the result in "k". + +k[MAX:0] := 0 +IF count[7:0] <= 7 + k[7:0] := a[7:0] << count[7:0] +FI + + + AVX512DQ +
immintrin.h
+ Mask +
+ + + + + Shift the bits of 8-bit mask "a" right by "count" while shifting in zeros, and store the least significant 8 bits of the result in "k". + +k[MAX:0] := 0 +IF count[7:0] <= 7 + k[7:0] := a[7:0] >> count[7:0] +FI + + + AVX512DQ +
immintrin.h
+ Mask +
+ + + + + + Compute the bitwise OR of 8-bit masks "a" and "b". If the result is all zeros, store 1 in "dst", otherwise store 0 in "dst". If the result is all ones, store 1 in "all_ones", otherwise store 0 in "all_ones". + +tmp[7:0] := a[7:0] OR b[7:0] +IF tmp[7:0] == 0x0 + dst := 1 +ELSE + dst := 0 +FI +IF tmp[7:0] == 0xFF + MEM[all_ones+7:all_ones] := 1 +ELSE + MEM[all_ones+7:all_ones] := 0 +FI + + + AVX512DQ +
immintrin.h
+ Mask +
+ + + + + Compute the bitwise OR of 8-bit masks "a" and "b". If the result is all zeroes, store 1 in "dst", otherwise store 0 in "dst". + +tmp[7:0] := a[7:0] OR b[7:0] +IF tmp[7:0] == 0x0 + dst := 1 +ELSE + dst := 0 +FI + + + AVX512DQ +
immintrin.h
+ Mask +
+ + + + + Compute the bitwise OR of 8-bit masks "a" and "b". If the result is all ones, store 1 in "dst", otherwise store 0 in "dst". + +tmp[7:0] := a[7:0] OR b[7:0] +IF tmp[7:0] == 0xFF + dst := 1 +ELSE + dst := 0 +FI + + + AVX512DQ +
immintrin.h
+ Mask +
+ + + + + + Compute the bitwise AND of 8-bit masks "a" and "b", and if the result is all zeros, store 1 in "dst", otherwise store 0 in "dst". Compute the bitwise NOT of "a" and then AND with "b", if the result is all zeros, store 1 in "and_not", otherwise store 0 in "and_not". + +tmp1[7:0] := a[7:0] AND b[7:0] +IF tmp1[7:0] == 0x0 + dst := 1 +ELSE + dst := 0 +FI +tmp2[7:0] := (NOT a[7:0]) AND b[7:0] +IF tmp2[7:0] == 0x0 + MEM[and_not+7:and_not] := 1 +ELSE + MEM[and_not+7:and_not] := 0 +FI + + + AVX512DQ +
immintrin.h
+ Mask +
+ + + + + Compute the bitwise AND of 8-bit masks "a" and "b", and if the result is all zeros, store 1 in "dst", otherwise store 0 in "dst". + +tmp[7:0] := a[7:0] AND b[7:0] +IF tmp[7:0] == 0x0 + dst := 1 +ELSE + dst := 0 +FI + + + AVX512DQ +
immintrin.h
+ Mask +
+ + + + + Compute the bitwise NOT of 8-bit mask "a" and then AND with "b", if the result is all zeroes, store 1 in "dst", otherwise store 0 in "dst". + +tmp[7:0] := (NOT a[7:0]) AND b[7:0] +IF tmp[7:0] == 0x0 + dst := 1 +ELSE + dst := 0 +FI + + + AVX512DQ +
immintrin.h
+ Mask +
+ + + + + + Compute the bitwise AND of 16-bit masks "a" and "b", and if the result is all zeros, store 1 in "dst", otherwise store 0 in "dst". Compute the bitwise NOT of "a" and then AND with "b", if the result is all zeros, store 1 in "and_not", otherwise store 0 in "and_not". + +tmp1[15:0] := a[15:0] AND b[15:0] +IF tmp1[15:0] == 0x0 + dst := 1 +ELSE + dst := 0 +FI +tmp2[15:0] := (NOT a[15:0]) AND b[15:0] +IF tmp2[15:0] == 0x0 + MEM[and_not+7:and_not] := 1 +ELSE + MEM[and_not+7:and_not] := 0 +FI + + + AVX512DQ +
immintrin.h
+ Mask +
+ + + + + Compute the bitwise AND of 16-bit masks "a" and "b", and if the result is all zeros, store 1 in "dst", otherwise store 0 in "dst". + +tmp[15:0] := a[15:0] AND b[15:0] +IF tmp[15:0] == 0x0 + dst := 1 +ELSE + dst := 0 +FI + + + AVX512DQ +
immintrin.h
+ Mask +
+ + + + + Compute the bitwise NOT of 16-bit mask "a" and then AND with "b", if the result is all zeroes, store 1 in "dst", otherwise store 0 in "dst". + +tmp[15:0] := (NOT a[15:0]) AND b[15:0] +IF tmp[15:0] == 0x0 + dst := 1 +ELSE + dst := 0 +FI + + + AVX512DQ +
immintrin.h
+ Mask +
+ + + + Convert 8-bit mask "a" into an integer value, and store the result in "dst". + +dst := ZeroExtend32(a[7:0]) + + + AVX512DQ +
immintrin.h
+ Mask +
+ + + + Convert integer value "a" into an 8-bit mask, and store the result in "k". + +k := a[7:0] + + + AVX512DQ +
immintrin.h
+ Mask +
+ + + + Load 8-bit mask from memory into "k". + +k[7:0] := MEM[mem_addr+7:mem_addr] + + + AVX512DQ +
immintrin.h
+ Load +
+ + + + + Store 8-bit mask from "a" into memory. + +MEM[mem_addr+7:mem_addr] := a[7:0] + + + AVX512DQ +
immintrin.h
+ Store +
+ + + + + + Compute the inverse cosine of packed double-precision (64-bit) floating-point elements in "a" expressed in radians, and store the results in "dst". + +FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := ACOS(a[i+63:i]) +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Trigonometry +
+ + + + + + Compute the inverse cosine of packed double-precision (64-bit) floating-point elements in "a" expressed in radians, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := ACOS(a[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Trigonometry +
+ + + + Compute the inverse cosine of packed single-precision (32-bit) floating-point elements in "a" expressed in radians, and store the results in "dst". + +FOR j := 0 to 15 + i := j*32 + dst[i+31:i] := ACOS(a[i+31:i]) +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Trigonometry +
+ + + + + + Compute the inverse cosine of packed single-precision (32-bit) floating-point elements in "a" expressed in radians, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := ACOS(a[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Trigonometry +
+ + + + Compute the inverse hyperbolic cosine of packed double-precision (64-bit) floating-point elements in "a" expressed in radians, and store the results in "dst". + +FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := ACOSH(a[i+63:i]) +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Trigonometry +
+ + + + + + Compute the inverse hyperbolic cosine of packed double-precision (64-bit) floating-point elements in "a" expressed in radians, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := ACOSH(a[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Trigonometry +
+ + + + Compute the inverse hyperbolic cosine of packed single-precision (32-bit) floating-point elements in "a" expressed in radians, and store the results in "dst". + +FOR j := 0 to 15 + i := j*32 + dst[i+31:i] := ACOSH(a[i+31:i]) +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Trigonometry +
+ + + + + + Compute the inverse hyperbolic cosine of packed single-precision (32-bit) floating-point elements in "a" expressed in radians, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := ACOSH(a[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Trigonometry +
+ + + + Compute the inverse sine of packed double-precision (64-bit) floating-point elements in "a" expressed in radians, and store the results in "dst". + +FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := ASIN(a[i+63:i]) +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Trigonometry +
+ + + + + + Compute the inverse sine of packed double-precision (64-bit) floating-point elements in "a" expressed in radians, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := ASIN(a[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Trigonometry +
+ + + + Compute the inverse sine of packed single-precision (32-bit) floating-point elements in "a" expressed in radians, and store the results in "dst". + +FOR j := 0 to 15 + i := j*32 + dst[i+31:i] := ASIN(a[i+31:i]) +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Trigonometry +
+ + + + + + Compute the inverse sine of packed single-precision (32-bit) floating-point elements in "a" expressed in radians, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := ASIN(a[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Trigonometry +
+ + + + Compute the inverse hyperbolic sine of packed double-precision (64-bit) floating-point elements in "a" expressed in radians, and store the results in "dst". + +FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := ASINH(a[i+63:i]) +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Trigonometry +
+ + + + + + Compute the inverse hyperbolic sine of packed double-precision (64-bit) floating-point elements in "a" expressed in radians, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := ASINH(a[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Trigonometry +
+ + + + Compute the inverse hyperbolic sine of packed single-precision (32-bit) floating-point elements in "a" expressed in radians, and store the results in "dst". + +FOR j := 0 to 15 + i := j*32 + dst[i+31:i] := ASINH(a[i+31:i]) +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Trigonometry +
+ + + + + + Compute the inverse hyperbolic sine of packed single-precision (32-bit) floating-point elements in "a" expressed in radians, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := ASINH(a[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Trigonometry +
+ + + + + Compute the inverse tangent of packed double-precision (64-bit) floating-point elements in "a" divided by packed elements in "b", and store the results in "dst" expressed in radians. + +FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := ATAN2(a[i+63:i], b[i+63:i]) +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Trigonometry +
+ + + + + + + Compute the inverse tangent of packed double-precision (64-bit) floating-point elements in "a" divided by packed elements in "b", and store the results in "dst" expressed in radians using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := ATAN2(a[i+63:i], b[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Trigonometry +
+ + + + + Compute the inverse tangent of packed single-precision (32-bit) floating-point elements in "a" divided by packed elements in "b", and store the results in "dst" expressed in radians. + +FOR j := 0 to 15 + i := j*32 + dst[i+31:i] := ATAN2(a[i+31:i], b[i+31:i]) +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Trigonometry +
+ + + + + + + Compute the inverse tangent of packed single-precision (32-bit) floating-point elements in "a" divided by packed elements in "b", and store the results in "dst" expressed in radians using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := ATAN2(a[i+31:i], b[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Trigonometry +
+ + + + Compute the inverse tangent of packed double-precision (64-bit) floating-point elements in "a" and store the results in "dst" expressed in radians. + +FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := ATAN(a[i+63:i]) +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Trigonometry +
+ + + + + + Compute the inverse tangent of packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst" expressed in radians using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := ATAN(a[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Trigonometry +
+ + + + Compute the inverse tangent of packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst" expressed in radians. + +FOR j := 0 to 15 + i := j*32 + dst[i+31:i] := ATAN(a[i+31:i]) +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Trigonometry +
+ + + + + + Compute the inverse tangent of packed single-precision (32-bit) floating-point elements in "a" expressed in radians, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := ATAN(a[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Trigonometry +
+ + + + Compute the inverse hyperbolic tangent of packed double-precision (64-bit) floating-point elements in "a" and store the results in "dst" expressed in radians. + +FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := ATANH(a[i+63:i]) +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Trigonometry +
+ + + + + + Compute the inverse hyperbolic tangent of packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst" expressed in radians using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := ATANH(a[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Trigonometry +
+ + + + Compute the inverse hyperblic tangent of packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst" expressed in radians. + +FOR j := 0 to 15 + i := j*32 + dst[i+31:i] := ATANH(a[i+31:i]) +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Trigonometry +
+ + + + + + Compute the inverse hyperbolic tangent of packed single-precision (32-bit) floating-point elements in "a" expressed in radians, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := ATANH(a[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Trigonometry +
+ + + + Compute the cosine of packed double-precision (64-bit) floating-point elements in "a" expressed in radians, and store the results in "dst". + +FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := COS(a[i+63:i]) +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Trigonometry +
+ + + + + + Compute the cosine of packed double-precision (64-bit) floating-point elements in "a" expressed in radians, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := COS(a[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Trigonometry +
+ + + + Compute the cosine of packed single-precision (32-bit) floating-point elements in "a" expressed in radians, and store the results in "dst". + +FOR j := 0 to 15 + i := j*32 + dst[i+31:i] := COS(a[i+31:i]) +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Trigonometry +
+ + + + + + Compute the cosine of packed single-precision (32-bit) floating-point elements in "a" expressed in radians, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := COS(a[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Trigonometry +
+ + + + Compute the cosine of packed double-precision (64-bit) floating-point elements in "a" expressed in degrees, and store the results in "dst". + FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := COSD(a[i+63:i]) +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Trigonometry +
+ + + + + + Compute the cosine of packed double-precision (64-bit) floating-point elements in "a" expressed in degrees, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := COSD(a[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Trigonometry +
+ + + + Compute the cosine of packed single-precision (32-bit) floating-point elements in "a" expressed in degrees, and store the results in "dst". + FOR j := 0 to 15 + i := j*32 + dst[i+31:i] := COSD(a[i+31:i]) +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Trigonometry +
+ + + + + + Compute the cosine of packed single-precision (32-bit) floating-point elements in "a" expressed in degrees, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := COSD(a[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Trigonometry +
+ + + + Compute the hyperbolic cosine of packed double-precision (64-bit) floating-point elements in "a" expressed in radians, and store the results in "dst". + +FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := COSH(a[i+63:i]) +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Trigonometry +
+ + + + + + Compute the hyperbolic cosine of packed double-precision (64-bit) floating-point elements in "a" expressed in radians, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := COSH(a[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Trigonometry +
+ + + + Compute the hyperbolic cosine of packed single-precision (32-bit) floating-point elements in "a" expressed in radians, and store the results in "dst". + +FOR j := 0 to 15 + i := j*32 + dst[i+31:i] := COSH(a[i+31:i]) +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Trigonometry +
+ + + + + + Compute the hyperbolic cosine of packed single-precision (32-bit) floating-point elements in "a" expressed in radians, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := COSH(a[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Trigonometry +
+ + + + Compute the sine of packed double-precision (64-bit) floating-point elements in "a" expressed in radians, and store the results in "dst". + +FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := SIN(a[i+63:i]) +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Trigonometry +
+ + + + + + Compute the sine of packed double-precision (64-bit) floating-point elements in "a" expressed in radians, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := SIN(a[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Trigonometry +
+ + + + Compute the sine of packed single-precision (32-bit) floating-point elements in "a" expressed in radians, and store the results in "dst". + +FOR j := 0 to 15 + i := j*32 + dst[i+31:i] := SIN(a[i+31:i]) +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Trigonometry +
+ + + + + + Compute the sine of packed single-precision (32-bit) floating-point elements in "a" expressed in radians, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := SIN(a[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Trigonometry +
+ + + + Compute the hyperbolic sine of packed double-precision (64-bit) floating-point elements in "a" expressed in radians, and store the results in "dst". + +FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := SINH(a[i+63:i]) +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Trigonometry +
+ + + + + + Compute the hyperbolic sine of packed double-precision (64-bit) floating-point elements in "a" expressed in radians, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := SINH(a[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Trigonometry +
+ + + + Compute the hyperbolic sine of packed single-precision (32-bit) floating-point elements in "a" expressed in radians, and store the results in "dst". + +FOR j := 0 to 15 + i := j*32 + dst[i+31:i] := SINH(a[i+31:i]) +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Trigonometry +
+ + + + + + Compute the hyperbolic sine of packed single-precision (32-bit) floating-point elements in "a" expressed in radians, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := SINH(a[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Trigonometry +
+ + + + Compute the sine of packed double-precision (64-bit) floating-point elements in "a" expressed in degrees, and store the results in "dst". + FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := SIND(a[i+63:i]) +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Trigonometry +
+ + + + + + Compute the sine of packed double-precision (64-bit) floating-point elements in "a" expressed in degrees, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := SIND(a[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Trigonometry +
+ + + + Compute the sine of packed single-precision (32-bit) floating-point elements in "a" expressed in degrees, and store the results in "dst". + FOR j := 0 to 15 + i := j*32 + dst[i+31:i] := SIND(a[i+31:i]) +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Trigonometry +
+ + + + + + Compute the sine of packed single-precision (32-bit) floating-point elements in "a" expressed in degrees, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := SIND(a[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Trigonometry +
+ + + + Compute the tangent of packed double-precision (64-bit) floating-point elements in "a" expressed in radians, and store the results in "dst". + +FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := TAN(a[i+63:i]) +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Trigonometry +
+ + + + + + Compute the tangent of packed double-precision (64-bit) floating-point elements in "a" expressed in radians, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := TAN(a[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Trigonometry +
+ + + + Compute the tangent of packed single-precision (32-bit) floating-point elements in "a" expressed in radians, and store the results in "dst". + +FOR j := 0 to 15 + i := j*32 + dst[i+31:i] := TAN(a[i+31:i]) +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Trigonometry +
+ + + + + + Compute the tangent of packed single-precision (32-bit) floating-point elements in "a" expressed in radians, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := TAN(a[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Trigonometry +
+ + + + Compute the tangent of packed double-precision (64-bit) floating-point elements in "a" expressed in degrees, and store the results in "dst". + FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := TAND(a[i+63:i]) +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Trigonometry +
+ + + + + + Compute the tangent of packed double-precision (64-bit) floating-point elements in "a" expressed in degrees, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := TAND(a[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Trigonometry +
+ + + + Compute the tangent of packed single-precision (32-bit) floating-point elements in "a" expressed in degrees, and store the results in "dst". + FOR j := 0 to 15 + i := j*32 + dst[i+31:i] := TAND(a[i+31:i]) +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Trigonometry +
+ + + + + + Compute the tangent of packed single-precision (32-bit) floating-point elements in "a" expressed in degrees, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := TAND(a[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Trigonometry +
+ + + + Compute the hyperbolic tangent of packed double-precision (64-bit) floating-point elements in "a" expressed in radians, and store the results in "dst". + +FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := TANH(a[i+63:i]) +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Trigonometry +
+ + + + + + Compute the hyperbolic tangent of packed double-precision (64-bit) floating-point elements in "a" expressed in radians, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := TANH(a[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Trigonometry +
+ + + + Compute the hyperbolic tangent of packed single-precision (32-bit) floating-point elements in "a" expressed in radians, and store the results in "dst". + +FOR j := 0 to 15 + i := j*32 + dst[i+31:i] := TANH(a[i+31:i]) +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Trigonometry +
+ + + + + + Compute the hyperbolic tangent of packed single-precision (32-bit) floating-point elements in "a" expressed in radians, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := TANH(a[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Trigonometry +
+ + + + + Compute the sine and cosine of packed double-precision (64-bit) floating-point elements in "a" expressed in radians, store the sine in "dst", and store the cosine into memory at "mem_addr". + +FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := SIN(a[i+63:i]) + MEM[mem_addr+i+63:mem_addr+i] := COS(a[i+63:i]) +ENDFOR +dst[MAX:512] := 0 +cos_res[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Trigonometry +
+ + + + + + + + Compute the sine and cosine of packed double-precision (64-bit) floating-point elements in "a" expressed in radians, store the sine in "dst", store the cosine into memory at "mem_addr". Elements are written to their respective locations using writemask "k" (elements are copied from "sin_src" or "cos_src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := SIN(a[i+63:i]) + MEM[mem_addr+i+63:mem_addr+i] := COS(a[i+63:i]) + ELSE + dst[i+63:i] := sin_src[i+63:i] + MEM[mem_addr+i+63:mem_addr+i] := cos_src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 +cos_res[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Trigonometry +
+ + + + + Compute the sine and cosine of packed single-precision (32-bit) floating-point elements in "a" expressed in radians, store the sine in "dst", and store the cosine into memory at "mem_addr". + +FOR j := 0 to 15 + i := j*32 + dst[i+31:i] := SIN(a[i+31:i]) + MEM[mem_addr+i+31:mem_addr+i] := COS(a[i+31:i]) +ENDFOR +dst[MAX:512] := 0 +cos_res[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Trigonometry +
+ + + + + + + + Compute the sine and cosine of packed single-precision (32-bit) floating-point elements in "a" expressed in radians, store the sine in "dst", store the cosine into memory at "mem_addr". Elements are written to their respective locations using writemask "k" (elements are copied from "sin_src" or "cos_src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := SIN(a[i+31:i]) + MEM[mem_addr+i+31:mem_addr+i] := COS(a[i+31:i]) + ELSE + dst[i+31:i] := sin_src[i+31:i] + MEM[mem_addr+i+31:mem_addr+i] := cos_src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 +cos_res[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Trigonometry +
+ + + + Compute the cube root of packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst". + FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := CubeRoot(a[i+63:i]) +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Elementary Math Functions +
+ + + + + + Compute the cube root of packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := CubeRoot(a[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Elementary Math Functions +
+ + + + Compute the cube root of packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst". + FOR j := 0 to 15 + i := j*32 + dst[i+31:i] := CubeRoot(a[i+31:i]) +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Elementary Math Functions +
+ + + + + + Compute the cube root of packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := CubeRoot(a[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Elementary Math Functions +
+ + + + Compute the exponential value of 10 raised to the power of packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst". + +FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := POW(10.0, a[i+63:i]) +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Elementary Math Functions +
+ + + + + + Compute the exponential value of 10 raised to the power of packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := POW(10.0, a[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Elementary Math Functions +
+ + + + Compute the exponential value of 10 raised to the power of packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst". + +FOR j := 0 to 15 + i := j*32 + dst[i+31:i] := POW(FP32(10.0), a[i+31:i]) +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Elementary Math Functions +
+ + + + + + Compute the exponential value of 10 raised to the power of packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := POW(FP32(10.0), a[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Elementary Math Functions +
+ + + + Compute the exponential value of 2 raised to the power of packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst". + +FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := POW(2.0, a[i+63:i]) +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Elementary Math Functions +
+ + + + + + Compute the exponential value of 2 raised to the power of packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := POW(2.0, a[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Elementary Math Functions +
+ + + + Compute the exponential value of 2 raised to the power of packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst". + +FOR j := 0 to 15 + i := j*32 + dst[i+31:i] := POW(FP32(2.0), a[i+31:i]) +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Elementary Math Functions +
+ + + + + + Compute the exponential value of 2 raised to the power of packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := POW(FP32(2.0), a[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Elementary Math Functions +
+ + + + Compute the exponential value of "e" raised to the power of packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst". + +FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := POW(e, a[i+63:i]) +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Elementary Math Functions +
+ + + + + + Compute the exponential value of "e" raised to the power of packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := POW(e, a[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Elementary Math Functions +
+ + + + Compute the exponential value of "e" raised to the power of packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst". + +FOR j := 0 to 15 + i := j*32 + dst[i+31:i] := POW(FP32(e), a[i+31:i]) +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Elementary Math Functions +
+ + + + + + Compute the exponential value of "e" raised to the power of packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := POW(FP32(e), a[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Elementary Math Functions +
+ + + + Compute the exponential value of "e" raised to the power of packed double-precision (64-bit) floating-point elements in "a", subtract one from each element, and store the results in "dst". + +FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := POW(e, a[i+63:i]) - 1.0 +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Elementary Math Functions +
+ + + + + + Compute the exponential value of "e" raised to the power of packed double-precision (64-bit) floating-point elements in "a", subtract one from each element, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := POW(e, a[i+63:i]) - 1.0 + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Elementary Math Functions +
+ + + + Compute the exponential value of "e" raised to the power of packed single-precision (32-bit) floating-point elements in "a", subtract one from each element, and store the results in "dst". + +FOR j := 0 to 15 + i := j*32 + dst[i+31:i] := POW(FP32(e), a[i+31:i]) - 1.0 +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Elementary Math Functions +
+ + + + + + Compute the exponential value of "e" raised to the power of packed single-precision (32-bit) floating-point elements in "a", subtract one from each element, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := POW(FP32(e), a[i+31:i]) - 1.0 + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Elementary Math Functions +
+ + + + + Compute the length of the hypotenous of a right triangle, with the lengths of the other two sides of the triangle stored as packed double-precision (64-bit) floating-point elements in "a" and "b", and store the results in "dst". + +FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := SQRT(POW(a[i+63:i], 2.0) + POW(b[i+63:i], 2.0)) +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Elementary Math Functions +
+ + + + + + + Compute the length of the hypotenous of a right triangle, with the lengths of the other two sides of the triangle stored as packed double-precision (64-bit) floating-point elements in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := SQRT(POW(a[i+63:i], 2.0) + POW(b[i+63:i], 2.0)) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Elementary Math Functions +
+ + + + + Compute the length of the hypotenous of a right triangle, with the lengths of the other two sides of the triangle stored as packed single-precision (32-bit) floating-point elements in "a" and "b", and store the results in "dst". + +FOR j := 0 to 15 + i := j*32 + dst[i+31:i] := SQRT(POW(a[i+31:i], 2.0) + POW(b[i+31:i], 2.0)) +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Elementary Math Functions +
+ + + + + + + Compute the length of the hypotenous of a right triangle, with the lengths of the other two sides of the triangle stored as packed single-precision (32-bit) floating-point elements in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := SQRT(POW(a[i+31:i], 2.0) + POW(b[i+31:i], 2.0)) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Elementary Math Functions +
+ + + + Compute the inverse square root of packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst". + FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := InvSQRT(a[i+63:i]) +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Elementary Math Functions +
+ + + + + + Compute the inverse square root of packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := InvSQRT(a[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Elementary Math Functions +
+ + + + Compute the inverse square root of packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst". + FOR j := 0 to 15 + i := j*32 + dst[i+31:i] := InvSQRT(a[i+31:i]) +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Elementary Math Functions +
+ + + + + + Compute the inverse square root of packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := InvSQRT(a[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Elementary Math Functions +
+ + + + Compute the base-10 logarithm of packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst". + +FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := LOG(a[i+63:i]) / LOG(10.0) +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Elementary Math Functions +
+ + + + + + Compute the base-10 logarithm of packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := LOG(a[i+63:i]) / LOG(10.0) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Elementary Math Functions +
+ + + + Compute the base-10 logarithm of packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst". + +FOR j := 0 to 15 + i := j*32 + dst[i+31:i] := LOG(a[i+31:i]) / LOG(10.0) +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Elementary Math Functions +
+ + + + + + Compute the base-10 logarithm of packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := LOG(a[i+31:i]) / LOG(10.0) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Elementary Math Functions +
+ + + + Compute the natural logarithm of one plus packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst". + +FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := LOG(1.0 + a[i+63:i]) +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Elementary Math Functions +
+ + + + + + Compute the natural logarithm of one plus packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := LOG(1.0 + a[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Elementary Math Functions +
+ + + + Compute the natural logarithm of one plus packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst". + +FOR j := 0 to 15 + i := j*32 + dst[i+31:i] := LOG(1.0 + a[i+31:i]) +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Elementary Math Functions +
+ + + + + + Compute the natural logarithm of one plus packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := LOG(1.0 + a[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Elementary Math Functions +
+ + + + Compute the base-2 logarithm of packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst". + +FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := LOG(a[i+63:i]) / LOG(2.0) +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Elementary Math Functions +
+ + + + + + Compute the base-2 logarithm of packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := LOG(a[i+63:i]) / LOG(2.0) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Elementary Math Functions +
+ + + + Compute the natural logarithm of packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst". + +FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := LOG(a[i+63:i]) +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Elementary Math Functions +
+ + + + + + Compute the natural logarithm of packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := LOG(a[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Elementary Math Functions +
+ + + + Compute the natural logarithm of packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst". + +FOR j := 0 to 15 + i := j*32 + dst[i+31:i] := LOG(a[i+31:i]) +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Elementary Math Functions +
+ + + + + + Compute the natural logarithm of packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := LOG(a[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Elementary Math Functions +
+ + + + Convert the exponent of each packed double-precision (64-bit) floating-point element in "a" to a double-precision floating-point number representing the integer exponent, and store the results in "dst". This intrinsic essentially calculates "floor(log2(x))" for each element. + FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := ConvertExpFP64(a[i+63:i]) +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Elementary Math Functions +
+ + + + + + Convert the exponent of each packed double-precision (64-bit) floating-point element in "a" to a double-precision floating-point number representing the integer exponent, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). This intrinsic essentially calculates "floor(log2(x))" for each element. + FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := ConvertExpFP64(a[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Elementary Math Functions +
+ + + + Convert the exponent of each packed single-precision (32-bit) floating-point element in "a" to a single-precision floating-point number representing the integer exponent, and store the results in "dst". This intrinsic essentially calculates "floor(log2(x))" for each element. + FOR j := 0 to 15 + i := j*32 + dst[i+31:i] := ConvertExpFP32(a[i+31:i]) +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Elementary Math Functions +
+ + + + + + Convert the exponent of each packed single-precision (32-bit) floating-point element in "a" to a single-precision floating-point number representing the integer exponent, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). This intrinsic essentially calculates "floor(log2(x))" for each element. + FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := ConvertExpFP32(a[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Elementary Math Functions +
+ + + + + Compute the exponential value of packed double-precision (64-bit) floating-point elements in "a" raised by packed elements in "b", and store the results in "dst". + +FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := POW(a[i+63:i], b[i+63:i]) +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Elementary Math Functions +
+ + + + + + + Compute the exponential value of packed double-precision (64-bit) floating-point elements in "a" raised by packed elements in "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := POW(a[i+63:i], b[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Elementary Math Functions +
+ + + + + Compute the exponential value of packed single-precision (32-bit) floating-point elements in "a" raised by packed elements in "b", and store the results in "dst". + +FOR j := 0 to 15 + i := j*32 + dst[i+31:i] := POW(a[i+31:i], b[i+31:i]) +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Elementary Math Functions +
+ + + + + + + Compute the exponential value of packed single-precision (32-bit) floating-point elements in "a" raised by packed elements in "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := POW(a[i+31:i], b[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Elementary Math Functions +
+ + + + Computes the reciprocal of packed double-precision (64-bit) floating-point elements in "a", storing the results in "dst". + +FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := (1.0 / a[i+63:i]) +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Elementary Math Functions +
+ + + + + + Computes the reciprocal of packed double-precision (64-bit) floating-point elements in "a", storing the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := (1.0 / a[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Elementary Math Functions +
+ + + + Computes the reciprocal of packed single-precision (32-bit) floating-point elements in "a", storing the results in "dst". + +FOR j := 0 to 15 + i := j*32 + dst[i+31:i] := (1.0 / a[i+31:i]) +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Elementary Math Functions +
+ + + + + + Computes the reciprocal of packed single-precision (32-bit) floating-point elements in "a", storing the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := (1.0 / a[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Elementary Math Functions +
+ + + + Compute the cumulative distribution function of packed double-precision (64-bit) floating-point elements in "a" using the normal distribution, and store the results in "dst". + FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := CDFNormal(a[i+63:i]) +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Probability/Statistics +
+ + + + + + Compute the cumulative distribution function of packed double-precision (64-bit) floating-point elements in "a" using the normal distribution, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := CDFNormal(a[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Probability/Statistics +
+ + + + Compute the cumulative distribution function of packed single-precision (32-bit) floating-point elements in "a" using the normal distribution, and store the results in "dst". + FOR j := 0 to 15 + i := j*32 + dst[i+31:i] := CDFNormal(a[i+31:i]) +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Probability/Statistics +
+ + + + + + Compute the cumulative distribution function of packed single-precision (32-bit) floating-point elements in "a" using the normal distribution, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := CDFNormal(a[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Probability/Statistics +
+ + + + Compute the inverse cumulative distribution function of packed double-precision (64-bit) floating-point elements in "a" using the normal distribution, and store the results in "dst". + FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := InverseCDFNormal(a[i+63:i]) +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Probability/Statistics +
+ + + + + + Compute the inverse cumulative distribution function of packed double-precision (64-bit) floating-point elements in "a" using the normal distribution, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := InverseCDFNormal(a[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Probability/Statistics +
+ + + + Compute the inverse cumulative distribution function of packed single-precision (32-bit) floating-point elements in "a" using the normal distribution, and store the results in "dst". + FOR j := 0 to 15 + i := j*32 + dst[i+31:i] := InverseCDFNormal(a[i+31:i]) +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Probability/Statistics +
+ + + + + + Compute the inverse cumulative distribution function of packed single-precision (32-bit) floating-point elements in "a" using the normal distribution, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := InverseCDFNormal(a[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Probability/Statistics +
+ + + + Compute the error function of packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst". + FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := ERF(a[i+63:i]) +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Probability/Statistics +
+ + + + + + Compute the error function of packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := ERF(a[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Probability/Statistics +
+ + + + Compute the complementary error function of packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst". + FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := 1.0 - ERF(a[i+63:i]) +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Probability/Statistics +
+ + + + + + Compute the complementary error function of packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := 1.0 - ERF(a[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Probability/Statistics +
+ + + + Compute the error function of packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst". + FOR j := 0 to 15 + i := j*32 + dst[i+31:i] := ERF(a[i+31:i]) +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Probability/Statistics +
+ + + + + + Compute the error function of packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := ERF(a[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Probability/Statistics +
+ + + + Compute the complementary error function of packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst". + FOR j := 0 to 15 + i := j*32 + dst[i+63:i] := 1.0 - ERF(a[i+31:i]) +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Probability/Statistics +
+ + + + + + Compute the complementary error function of packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+63:i] := 1.0 - ERF(a[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Probability/Statistics +
+ + + + Compute the inverse error function of packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst". + FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := 1.0 / ERF(a[i+63:i]) +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Probability/Statistics +
+ + + + + + Compute the inverse error function of packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := 1.0 / ERF(a[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Probability/Statistics +
+ + + + Compute the inverse error function of packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst". + FOR j := 0 to 15 + i := j*32 + dst[i+63:i] := 1.0 / ERF(a[i+31:i]) +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Probability/Statistics +
+ + + + + + Compute the inverse error function of packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+63:i] := 1.0 / ERF(a[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Probability/Statistics +
+ + + + Compute the inverse complementary error function of packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst". + FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := 1.0 / (1.0 - ERF(a[i+63:i])) +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Probability/Statistics +
+ + + + + + Compute the inverse complementary error function of packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := 1.0 / (1.0 - ERF(a[i+63:i])) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Probability/Statistics +
+ + + + Compute the inverse complementary error function of packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst". + FOR j := 0 to 15 + i := j*32 + dst[i+63:i] := 1.0 / (1.0 - ERF(a[i+31:i])) +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Probability/Statistics +
+ + + + + + Compute the inverse complementary error function of packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+63:i] := 1.0 / (1.0 - ERF(a[i+31:i])) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Probability/Statistics +
+ + + + Round the packed double-precision (64-bit) floating-point elements in "a" up to an integer value, and store the results as packed double-precision floating-point elements in "dst". + +FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := CEIL(a[i+63:i]) +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + + + Round the packed double-precision (64-bit) floating-point elements in "a" up to an integer value, and store the results as packed double-precision floating-point elements in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := CEIL(a[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + Round the packed single-precision (32-bit) floating-point elements in "a" up to an integer value, and store the results as packed single-precision floating-point elements in "dst". + +FOR j := 0 to 15 + i := j*32 + dst[i+31:i] := CEIL(a[i+31:i]) +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + + + Round the packed single-precision (32-bit) floating-point elements in "a" up to an integer value, and store the results as packed single-precision floating-point elements in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := CEIL(a[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + Round the packed double-precision (64-bit) floating-point elements in "a" down to an integer value, and store the results as packed double-precision floating-point elements in "dst". + +FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := FLOOR(a[i+63:i]) +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + + + Round the packed double-precision (64-bit) floating-point elements in "a" down to an integer value, and store the results as packed double-precision floating-point elements in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := FLOOR(a[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + Round the packed single-precision (32-bit) floating-point elements in "a" down to an integer value, and store the results as packed single-precision floating-point elements in "dst". + +FOR j := 0 to 15 + i := j*32 + dst[i+31:i] := FLOOR(a[i+31:i]) +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + + + Round the packed single-precision (32-bit) floating-point elements in "a" down to an integer value, and store the results as packed single-precision floating-point elements in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := FLOOR(a[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + Rounds each packed double-precision (64-bit) floating-point element in "a" to the nearest integer value and stores the results as packed double-precision floating-point elements in "dst". + FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := NearbyInt(a[i+63:i]) +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + + + Rounds each packed double-precision (64-bit) floating-point element in "a" to the nearest integer value and stores the results as packed double-precision floating-point elements in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := NearbyInt(a[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + Rounds each packed single-precision (32-bit) floating-point element in "a" to the nearest integer value and stores the results as packed single-precision floating-point elements in "dst". + FOR j := 0 to 15 + i := j*32 + dst[i+31:i] := NearbyInt(a[i+31:i]) +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + + + Rounds each packed single-precision (32-bit) floating-point element in "a" to the nearest integer value and stores the results as packed single-precision floating-point elements in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := NearbyInt(a[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + Rounds the packed double-precision (64-bit) floating-point elements in "a" to the nearest even integer value and stores the results in "dst". + FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := RoundToNearestEven(a[i+63:i]) +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + + + Rounds the packed double-precision (64-bit) floating-point elements in "a" to the nearest even integer value and stores the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := RoundToNearestEven(a[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + Rounds the packed single-precision (32-bit) floating-point elements in "a" to the nearest even integer value and stores the results in "dst". + FOR j := 0 to 15 + i := j*32 + dst[i+31:i] := RoundToNearestEven(a[i+31:i]) +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + + + Rounds the packed single-precision (32-bit) floating-point elements in "a" to the nearest even integer value and stores the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := RoundToNearestEven(a[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + Round the packed double-precision (64-bit) floating-point elements in "a" to the nearest integer value, and store the results as packed double-precision floating-point elements in "dst". + +FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := ROUND(a[i+63:i]) +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + + + Round the packed double-precision (64-bit) floating-point elements in "a" to the nearest integer value, and store the results as packed double-precision floating-point elements in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := ROUND(a[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + Truncate the packed double-precision (64-bit) floating-point elements in "a", and store the results as packed double-precision floating-point elements in "dst". + FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := TRUNCATE(a[i+63:i]) +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + + + Truncate the packed double-precision (64-bit) floating-point elements in "a", and store the results as packed double-precision floating-point elements in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := TRUNCATE(a[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + Truncate the packed single-precision (32-bit) floating-point elements in "a", and store the results as packed single-precision floating-point elements in "dst". + FOR j := 0 to 15 + i := j*32 + dst[i+31:i] := TRUNCATE(a[i+31:i]) +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + + + Truncate the packed single-precision (32-bit) floating-point elements in "a", and store the results as packed single-precision floating-point elements in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := TRUNCATE(a[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + + Divide packed signed 32-bit integers in "a" by packed elements in "b", and store the truncated results in "dst". + +FOR j := 0 to 15 + i := 32*j + IF b[i+31:i] == 0 + #DE + FI + dst[i+31:i] := Truncate32(a[i+31:i] / b[i+31:i]) +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Divide packed signed 32-bit integers in "a" by packed elements in "b", and store the truncated results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := 32*j + IF k[j] + IF b[i+31:i] == 0 + #DE + FI + dst[i+31:i] := Truncate32(a[i+31:i] / b[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + Divide packed signed 8-bit integers in "a" by packed elements in "b", and store the truncated results in "dst". + +FOR j := 0 to 63 + i := 8*j + IF b[i+7:i] == 0 + #DE + FI + dst[i+7:i] := Truncate8(a[i+7:i] / b[i+7:i]) +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + Divide packed signed 16-bit integers in "a" by packed elements in "b", and store the truncated results in "dst". + +FOR j := 0 to 31 + i := 16*j + IF b[i+15:i] == 0 + #DE + FI + dst[i+15:i] := Truncate16(a[i+15:i] / b[i+15:i]) +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + Divide packed signed 64-bit integers in "a" by packed elements in "b", and store the truncated results in "dst". + +FOR j := 0 to 7 + i := 64*j + IF b[i+63:i] == 0 + #DE + FI + dst[i+63:i] := Truncate64(a[i+63:i] / b[i+63:i]) +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + Divide packed 32-bit integers in "a" by packed elements in "b", and store the remainders as packed 32-bit integers in "dst". + FOR j := 0 to 15 + i := 32*j + dst[i+31:i] := REMAINDER(a[i+31:i] / b[i+31:i]) +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Divide packed 32-bit integers in "a" by packed elements in "b", and store the remainders as packed 32-bit integers in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + FOR j := 0 to 15 + i := 32*j + IF k[j] + dst[i+31:i] := REMAINDER(a[i+31:i] / b[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + Divide packed 8-bit integers in "a" by packed elements in "b", and store the remainders as packed 32-bit integers in "dst". + FOR j := 0 to 63 + i := 8*j + dst[i+7:i] := REMAINDER(a[i+7:i] / b[i+7:i]) +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + Divide packed 16-bit integers in "a" by packed elements in "b", and store the remainders as packed 32-bit integers in "dst". + FOR j := 0 to 31 + i := 16*j + dst[i+15:i] := REMAINDER(a[i+15:i] / b[i+15:i]) +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + Divide packed 64-bit integers in "a" by packed elements in "b", and store the remainders as packed 32-bit integers in "dst". + FOR j := 0 to 7 + i := 64*j + dst[i+63:i] := REMAINDER(a[i+63:i] / b[i+63:i]) +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + Divide packed unsigned 32-bit integers in "a" by packed elements in "b", and store the truncated results in "dst". + +FOR j := 0 to 15 + i := 32*j + IF b[i+31:i] == 0 + #DE + FI + dst[i+31:i] := Truncate32(a[i+31:i] / b[i+31:i]) +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Divide packed unsigned 32-bit integers in "a" by packed elements in "b", and store the truncated results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := 32*j + IF k[j] + IF b[i+31:i] == 0 + #DE + FI + dst[i+31:i] := Truncate32(a[i+31:i] / b[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + Divide packed unsigned 8-bit integers in "a" by packed elements in "b", and store the truncated results in "dst". + +FOR j := 0 to 63 + i := 8*j + IF b[i+7:i] == 0 + #DE + FI + dst[i+7:i] := Truncate8(a[i+7:i] / b[i+7:i]) +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + Divide packed unsigned 16-bit integers in "a" by packed elements in "b", and store the truncated results in "dst". + +FOR j := 0 to 31 + i := 16*j + IF b[i+15:i] == 0 + #DE + FI + dst[i+15:i] := Truncate16(a[i+15:i] / b[i+15:i]) +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + Divide packed unsigned 64-bit integers in "a" by packed elements in "b", and store the truncated results in "dst". + +FOR j := 0 to 7 + i := 64*j + IF b[i+63:i] == 0 + #DE + FI + dst[i+63:i] := Truncate64(a[i+63:i] / b[i+63:i]) +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + Divide packed unsigned 32-bit integers in "a" by packed elements in "b", and store the remainders as packed unsigned 32-bit integers in "dst". + FOR j := 0 to 15 + i := 32*j + dst[i+31:i] := REMAINDER(a[i+31:i] / b[i+31:i]) +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Divide packed unsigned 32-bit integers in "a" by packed elements in "b", and store the remainders as packed unsigned 32-bit integers in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + FOR j := 0 to 15 + i := 32*j + IF k[j] + dst[i+31:i] := REMAINDER(a[i+31:i] / b[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + Divide packed unsigned 8-bit integers in "a" by packed elements in "b", and store the remainders as packed unsigned 32-bit integers in "dst". + FOR j := 0 to 63 + i := 8*j + dst[i+7:i] := REMAINDER(a[i+7:i] / b[i+7:i]) +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + Divide packed unsigned 16-bit integers in "a" by packed elements in "b", and store the remainders as packed unsigned 32-bit integers in "dst". + FOR j := 0 to 31 + i := 16*j + dst[i+15:i] := REMAINDER(a[i+15:i] / b[i+15:i]) +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + Divide packed unsigned 64-bit integers in "a" by packed elements in "b", and store the remainders as packed unsigned 32-bit integers in "dst". + FOR j := 0 to 7 + i := 64*j + dst[i+63:i] := REMAINDER(a[i+63:i] / b[i+63:i]) +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + Compute the base-2 logarithm of packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst". + +FOR j := 0 to 15 + i := j*32 + dst[i+31:i] := LOG(a[i+31:i]) / LOG(2.0) +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Elementary Math Functions +
+ + + + + + Compute the base-2 logarithm of packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := LOG(a[i+31:i]) / LOG(2.0) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Elementary Math Functions +
+ + + + + + + + + Add packed double-precision (64-bit) floating-point elements in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := a[i+63:i] + b[i+63:i] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Add packed double-precision (64-bit) floating-point elements in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := a[i+63:i] + b[i+63:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Add packed double-precision (64-bit) floating-point elements in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := a[i+63:i] + b[i+63:i] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Add packed double-precision (64-bit) floating-point elements in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := a[i+63:i] + b[i+63:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Add packed single-precision (32-bit) floating-point elements in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := a[i+31:i] + b[i+31:i] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Add packed single-precision (32-bit) floating-point elements in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := a[i+31:i] + b[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Add packed single-precision (32-bit) floating-point elements in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := a[i+31:i] + b[i+31:i] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Add packed single-precision (32-bit) floating-point elements in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := a[i+31:i] + b[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Divide packed double-precision (64-bit) floating-point elements in "a" by packed elements in "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := 64*j + IF k[j] + dst[i+63:i] := a[i+63:i] / b[i+63:i] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Divide packed double-precision (64-bit) floating-point elements in "a" by packed elements in "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := 64*j + IF k[j] + dst[i+63:i] := a[i+63:i] / b[i+63:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Divide packed double-precision (64-bit) floating-point elements in "a" by packed elements in "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := 64*j + IF k[j] + dst[i+63:i] := a[i+63:i] / b[i+63:i] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Divide packed double-precision (64-bit) floating-point elements in "a" by packed elements in "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := 64*j + IF k[j] + dst[i+63:i] := a[i+63:i] / b[i+63:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Divide packed single-precision (32-bit) floating-point elements in "a" by packed elements in "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := 32*j + IF k[j] + dst[i+31:i] := a[i+31:i] / b[i+31:i] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Divide packed single-precision (32-bit) floating-point elements in "a" by packed elements in "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := 32*j + IF k[j] + dst[i+31:i] := a[i+31:i] / b[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Divide packed single-precision (32-bit) floating-point elements in "a" by packed elements in "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := 32*j + IF k[j] + dst[i+31:i] := a[i+31:i] / b[i+31:i] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Divide packed single-precision (32-bit) floating-point elements in "a" by packed elements in "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := 32*j + IF k[j] + dst[i+31:i] := a[i+31:i] / b[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed double-precision (64-bit) floating-point elements in "a" and "b", add the intermediate result to packed elements in "c", and store the results in "dst" using writemask "k" (elements are copied from "c" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := (a[i+63:i] * b[i+63:i]) + c[i+63:i] + ELSE + dst[i+63:i] := c[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed double-precision (64-bit) floating-point elements in "a" and "b", add the intermediate result to packed elements in "c", and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := (a[i+63:i] * b[i+63:i]) + c[i+63:i] + ELSE + dst[i+63:i] := a[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed double-precision (64-bit) floating-point elements in "a" and "b", add the intermediate result to packed elements in "c", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := (a[i+63:i] * b[i+63:i]) + c[i+63:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed double-precision (64-bit) floating-point elements in "a" and "b", add the intermediate result to packed elements in "c", and store the results in "dst" using writemask "k" (elements are copied from "c" when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := (a[i+63:i] * b[i+63:i]) + c[i+63:i] + ELSE + dst[i+63:i] := c[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed double-precision (64-bit) floating-point elements in "a" and "b", add the intermediate result to packed elements in "c", and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := (a[i+63:i] * b[i+63:i]) + c[i+63:i] + ELSE + dst[i+63:i] := a[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed double-precision (64-bit) floating-point elements in "a" and "b", add the intermediate result to packed elements in "c", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := (a[i+63:i] * b[i+63:i]) + c[i+63:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed single-precision (32-bit) floating-point elements in "a" and "b", add the intermediate result to packed elements in "c", and store the results in "dst" using writemask "k" (elements are copied from "c" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := (a[i+31:i] * b[i+31:i]) + c[i+31:i] + ELSE + dst[i+31:i] := c[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed single-precision (32-bit) floating-point elements in "a" and "b", add the intermediate result to packed elements in "c", and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := (a[i+31:i] * b[i+31:i]) + c[i+31:i] + ELSE + dst[i+31:i] := a[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed single-precision (32-bit) floating-point elements in "a" and "b", add the intermediate result to packed elements in "c", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := (a[i+31:i] * b[i+31:i]) + c[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed single-precision (32-bit) floating-point elements in "a" and "b", add the intermediate result to packed elements in "c", and store the results in "dst" using writemask "k" (elements are copied from "c" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := (a[i+31:i] * b[i+31:i]) + c[i+31:i] + ELSE + dst[i+31:i] := c[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed single-precision (32-bit) floating-point elements in "a" and "b", add the intermediate result to packed elements in "c", and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := (a[i+31:i] * b[i+31:i]) + c[i+31:i] + ELSE + dst[i+31:i] := a[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed single-precision (32-bit) floating-point elements in "a" and "b", add the intermediate result to packed elements in "c", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := (a[i+31:i] * b[i+31:i]) + c[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed double-precision (64-bit) floating-point elements in "a" and "b", alternatively add and subtract packed elements in "c" to/from the intermediate result, and store the results in "dst" using writemask "k" (elements are copied from "c" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + IF ((j & 1) == 0) + dst[i+63:i] := (a[i+63:i] * b[i+63:i]) - c[i+63:i] + ELSE + dst[i+63:i] := (a[i+63:i] * b[i+63:i]) + c[i+63:i] + FI + ELSE + dst[i+63:i] := c[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed double-precision (64-bit) floating-point elements in "a" and "b", alternatively add and subtract packed elements in "c" to/from the intermediate result, and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + IF ((j & 1) == 0) + dst[i+63:i] := (a[i+63:i] * b[i+63:i]) - c[i+63:i] + ELSE + dst[i+63:i] := (a[i+63:i] * b[i+63:i]) + c[i+63:i] + FI + ELSE + dst[i+63:i] := a[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed double-precision (64-bit) floating-point elements in "a" and "b", alternatively add and subtract packed elements in "c" to/from the intermediate result, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + IF ((j & 1) == 0) + dst[i+63:i] := (a[i+63:i] * b[i+63:i]) - c[i+63:i] + ELSE + dst[i+63:i] := (a[i+63:i] * b[i+63:i]) + c[i+63:i] + FI + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed double-precision (64-bit) floating-point elements in "a" and "b", alternatively add and subtract packed elements in "c" to/from the intermediate result, and store the results in "dst" using writemask "k" (elements are copied from "c" when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + IF ((j & 1) == 0) + dst[i+63:i] := (a[i+63:i] * b[i+63:i]) - c[i+63:i] + ELSE + dst[i+63:i] := (a[i+63:i] * b[i+63:i]) + c[i+63:i] + FI + ELSE + dst[i+63:i] := c[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed double-precision (64-bit) floating-point elements in "a" and "b", alternatively add and subtract packed elements in "c" to/from the intermediate result, and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + IF ((j & 1) == 0) + dst[i+63:i] := (a[i+63:i] * b[i+63:i]) - c[i+63:i] + ELSE + dst[i+63:i] := (a[i+63:i] * b[i+63:i]) + c[i+63:i] + FI + ELSE + dst[i+63:i] := a[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed double-precision (64-bit) floating-point elements in "a" and "b", alternatively add and subtract packed elements in "c" to/from the intermediate result, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + IF ((j & 1) == 0) + dst[i+63:i] := (a[i+63:i] * b[i+63:i]) - c[i+63:i] + ELSE + dst[i+63:i] := (a[i+63:i] * b[i+63:i]) + c[i+63:i] + FI + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed single-precision (32-bit) floating-point elements in "a" and "b", alternatively add and subtract packed elements in "c" to/from the intermediate result, and store the results in "dst" using writemask "k" (elements are copied from "c" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k[j] + IF ((j & 1) == 0) + dst[i+31:i] := (a[i+31:i] * b[i+31:i]) - c[i+31:i] + ELSE + dst[i+31:i] := (a[i+31:i] * b[i+31:i]) + c[i+31:i] + FI + ELSE + dst[i+31:i] := c[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed single-precision (32-bit) floating-point elements in "a" and "b", alternatively add and subtract packed elements in "c" to/from the intermediate result, and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k[j] + IF ((j & 1) == 0) + dst[i+31:i] := (a[i+31:i] * b[i+31:i]) - c[i+31:i] + ELSE + dst[i+31:i] := (a[i+31:i] * b[i+31:i]) + c[i+31:i] + FI + ELSE + dst[i+31:i] := a[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed single-precision (32-bit) floating-point elements in "a" and "b", alternatively add and subtract packed elements in "c" to/from the intermediate result, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k[j] + IF ((j & 1) == 0) + dst[i+31:i] := (a[i+31:i] * b[i+31:i]) - c[i+31:i] + ELSE + dst[i+31:i] := (a[i+31:i] * b[i+31:i]) + c[i+31:i] + FI + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed single-precision (32-bit) floating-point elements in "a" and "b", alternatively add and subtract packed elements in "c" to/from the intermediate result, and store the results in "dst" using writemask "k" (elements are copied from "c" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k[j] + IF ((j & 1) == 0) + dst[i+31:i] := (a[i+31:i] * b[i+31:i]) - c[i+31:i] + ELSE + dst[i+31:i] := (a[i+31:i] * b[i+31:i]) + c[i+31:i] + FI + ELSE + dst[i+31:i] := c[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed single-precision (32-bit) floating-point elements in "a" and "b", alternatively add and subtract packed elements in "c" to/from the intermediate result, and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k[j] + IF ((j & 1) == 0) + dst[i+31:i] := (a[i+31:i] * b[i+31:i]) - c[i+31:i] + ELSE + dst[i+31:i] := (a[i+31:i] * b[i+31:i]) + c[i+31:i] + FI + ELSE + dst[i+31:i] := a[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed single-precision (32-bit) floating-point elements in "a" and "b", alternatively add and subtract packed elements in "c" to/from the intermediate result, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k[j] + IF ((j & 1) == 0) + dst[i+31:i] := (a[i+31:i] * b[i+31:i]) - c[i+31:i] + ELSE + dst[i+31:i] := (a[i+31:i] * b[i+31:i]) + c[i+31:i] + FI + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed double-precision (64-bit) floating-point elements in "a" and "b", subtract packed elements in "c" from the intermediate result, and store the results in "dst" using writemask "k" (elements are copied from "c" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := (a[i+63:i] * b[i+63:i]) - c[i+63:i] + ELSE + dst[i+63:i] := c[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed double-precision (64-bit) floating-point elements in "a" and "b", subtract packed elements in "c" from the intermediate result, and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := (a[i+63:i] * b[i+63:i]) - c[i+63:i] + ELSE + dst[i+63:i] := a[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed double-precision (64-bit) floating-point elements in "a" and "b", subtract packed elements in "c" from the intermediate result, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := (a[i+63:i] * b[i+63:i]) - c[i+63:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed double-precision (64-bit) floating-point elements in "a" and "b", subtract packed elements in "c" from the intermediate result, and store the results in "dst" using writemask "k" (elements are copied from "c" when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := (a[i+63:i] * b[i+63:i]) - c[i+63:i] + ELSE + dst[i+63:i] := c[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed double-precision (64-bit) floating-point elements in "a" and "b", subtract packed elements in "c" from the intermediate result, and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := (a[i+63:i] * b[i+63:i]) - c[i+63:i] + ELSE + dst[i+63:i] := a[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed double-precision (64-bit) floating-point elements in "a" and "b", subtract packed elements in "c" from the intermediate result, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := (a[i+63:i] * b[i+63:i]) - c[i+63:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed single-precision (32-bit) floating-point elements in "a" and "b", subtract packed elements in "c" from the intermediate result, and store the results in "dst" using writemask "k" (elements are copied from "c" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := (a[i+31:i] * b[i+31:i]) - c[i+31:i] + ELSE + dst[i+31:i] := c[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed single-precision (32-bit) floating-point elements in "a" and "b", subtract packed elements in "c" from the intermediate result, and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := (a[i+31:i] * b[i+31:i]) - c[i+31:i] + ELSE + dst[i+31:i] := a[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed single-precision (32-bit) floating-point elements in "a" and "b", subtract packed elements in "c" from the intermediate result, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := (a[i+31:i] * b[i+31:i]) - c[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed single-precision (32-bit) floating-point elements in "a" and "b", subtract packed elements in "c" from the intermediate result, and store the results in "dst" using writemask "k" (elements are copied from "c" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := (a[i+31:i] * b[i+31:i]) - c[i+31:i] + ELSE + dst[i+31:i] := c[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed single-precision (32-bit) floating-point elements in "a" and "b", subtract packed elements in "c" from the intermediate result, and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := (a[i+31:i] * b[i+31:i]) - c[i+31:i] + ELSE + dst[i+31:i] := a[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed single-precision (32-bit) floating-point elements in "a" and "b", subtract packed elements in "c" from the intermediate result, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := (a[i+31:i] * b[i+31:i]) - c[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed double-precision (64-bit) floating-point elements in "a" and "b", alternatively subtract and add packed elements in "c" from/to the intermediate result, and store the results in "dst" using writemask "k" (elements are copied from "c" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + IF ((j & 1) == 0) + dst[i+63:i] := (a[i+63:i] * b[i+63:i]) + c[i+63:i] + ELSE + dst[i+63:i] := (a[i+63:i] * b[i+63:i]) - c[i+63:i] + FI + ELSE + dst[i+63:i] := c[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed double-precision (64-bit) floating-point elements in "a" and "b", alternatively subtract and add packed elements in "c" from/to the intermediate result, and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + IF ((j & 1) == 0) + dst[i+63:i] := (a[i+63:i] * b[i+63:i]) + c[i+63:i] + ELSE + dst[i+63:i] := (a[i+63:i] * b[i+63:i]) - c[i+63:i] + FI + ELSE + dst[i+63:i] := a[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed double-precision (64-bit) floating-point elements in "a" and "b", alternatively subtract and add packed elements in "c" from/to the intermediate result, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + IF ((j & 1) == 0) + dst[i+63:i] := (a[i+63:i] * b[i+63:i]) + c[i+63:i] + ELSE + dst[i+63:i] := (a[i+63:i] * b[i+63:i]) - c[i+63:i] + FI + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed double-precision (64-bit) floating-point elements in "a" and "b", alternatively subtract and add packed elements in "c" from/to the intermediate result, and store the results in "dst" using writemask "k" (elements are copied from "c" when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + IF ((j & 1) == 0) + dst[i+63:i] := (a[i+63:i] * b[i+63:i]) + c[i+63:i] + ELSE + dst[i+63:i] := (a[i+63:i] * b[i+63:i]) - c[i+63:i] + FI + ELSE + dst[i+63:i] := c[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed double-precision (64-bit) floating-point elements in "a" and "b", alternatively subtract and add packed elements in "c" from/to the intermediate result, and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + IF ((j & 1) == 0) + dst[i+63:i] := (a[i+63:i] * b[i+63:i]) + c[i+63:i] + ELSE + dst[i+63:i] := (a[i+63:i] * b[i+63:i]) - c[i+63:i] + FI + ELSE + dst[i+63:i] := a[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed double-precision (64-bit) floating-point elements in "a" and "b", alternatively subtract and add packed elements in "c" from/to the intermediate result, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + IF ((j & 1) == 0) + dst[i+63:i] := (a[i+63:i] * b[i+63:i]) + c[i+63:i] + ELSE + dst[i+63:i] := (a[i+63:i] * b[i+63:i]) - c[i+63:i] + FI + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed single-precision (32-bit) floating-point elements in "a" and "b", alternatively subtract and add packed elements in "c" from/to the intermediate result, and store the results in "dst" using writemask "k" (elements are copied from "c" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k[j] + IF ((j & 1) == 0) + dst[i+31:i] := (a[i+31:i] * b[i+31:i]) + c[i+31:i] + ELSE + dst[i+31:i] := (a[i+31:i] * b[i+31:i]) - c[i+31:i] + FI + ELSE + dst[i+31:i] := c[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed single-precision (32-bit) floating-point elements in "a" and "b", alternatively subtract and add packed elements in "c" from/to the intermediate result, and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k[j] + IF ((j & 1) == 0) + dst[i+31:i] := (a[i+31:i] * b[i+31:i]) + c[i+31:i] + ELSE + dst[i+31:i] := (a[i+31:i] * b[i+31:i]) - c[i+31:i] + FI + ELSE + dst[i+31:i] := a[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed single-precision (32-bit) floating-point elements in "a" and "b", alternatively subtract and add packed elements in "c" from/to the intermediate result, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k[j] + IF ((j & 1) == 0) + dst[i+31:i] := (a[i+31:i] * b[i+31:i]) + c[i+31:i] + ELSE + dst[i+31:i] := (a[i+31:i] * b[i+31:i]) - c[i+31:i] + FI + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed single-precision (32-bit) floating-point elements in "a" and "b", alternatively subtract and add packed elements in "c" from/to the intermediate result, and store the results in "dst" using writemask "k" (elements are copied from "c" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k[j] + IF ((j & 1) == 0) + dst[i+31:i] := (a[i+31:i] * b[i+31:i]) + c[i+31:i] + ELSE + dst[i+31:i] := (a[i+31:i] * b[i+31:i]) - c[i+31:i] + FI + ELSE + dst[i+31:i] := c[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed single-precision (32-bit) floating-point elements in "a" and "b", alternatively subtract and add packed elements in "c" from/to the intermediate result, and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k[j] + IF ((j & 1) == 0) + dst[i+31:i] := (a[i+31:i] * b[i+31:i]) + c[i+31:i] + ELSE + dst[i+31:i] := (a[i+31:i] * b[i+31:i]) - c[i+31:i] + FI + ELSE + dst[i+31:i] := a[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed single-precision (32-bit) floating-point elements in "a" and "b", alternatively subtract and add packed elements in "c" from/to the intermediate result, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k[j] + IF ((j & 1) == 0) + dst[i+31:i] := (a[i+31:i] * b[i+31:i]) + c[i+31:i] + ELSE + dst[i+31:i] := (a[i+31:i] * b[i+31:i]) - c[i+31:i] + FI + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed double-precision (64-bit) floating-point elements in "a" and "b", add the negated intermediate result to packed elements in "c", and store the results in "dst" using writemask "k" (elements are copied from "c" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := -(a[i+63:i] * b[i+63:i]) + c[i+63:i] + ELSE + dst[i+63:i] := c[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed double-precision (64-bit) floating-point elements in "a" and "b", add the negated intermediate result to packed elements in "c", and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := -(a[i+63:i] * b[i+63:i]) + c[i+63:i] + ELSE + dst[i+63:i] := a[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed double-precision (64-bit) floating-point elements in "a" and "b", add the negated intermediate result to packed elements in "c", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := -(a[i+63:i] * b[i+63:i]) + c[i+63:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed double-precision (64-bit) floating-point elements in "a" and "b", add the negated intermediate result to packed elements in "c", and store the results in "dst" using writemask "k" (elements are copied from "c" when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := -(a[i+63:i] * b[i+63:i]) + c[i+63:i] + ELSE + dst[i+63:i] := c[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed double-precision (64-bit) floating-point elements in "a" and "b", add the negated intermediate result to packed elements in "c", and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := -(a[i+63:i] * b[i+63:i]) + c[i+63:i] + ELSE + dst[i+63:i] := a[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed double-precision (64-bit) floating-point elements in "a" and "b", add the negated intermediate result to packed elements in "c", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := -(a[i+63:i] * b[i+63:i]) + c[i+63:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed single-precision (32-bit) floating-point elements in "a" and "b", add the negated intermediate result to packed elements in "c", and store the results in "dst" using writemask "k" (elements are copied from "c" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := -(a[i+31:i] * b[i+31:i]) + c[i+31:i] + ELSE + dst[i+31:i] := c[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed single-precision (32-bit) floating-point elements in "a" and "b", add the negated intermediate result to packed elements in "c", and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := -(a[i+31:i] * b[i+31:i]) + c[i+31:i] + ELSE + dst[i+31:i] := a[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed single-precision (32-bit) floating-point elements in "a" and "b", add the negated intermediate result to packed elements in "c", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := -(a[i+31:i] * b[i+31:i]) + c[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed single-precision (32-bit) floating-point elements in "a" and "b", add the negated intermediate result to packed elements in "c", and store the results in "dst" using writemask "k" (elements are copied from "c" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := -(a[i+31:i] * b[i+31:i]) + c[i+31:i] + ELSE + dst[i+31:i] := c[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed single-precision (32-bit) floating-point elements in "a" and "b", add the negated intermediate result to packed elements in "c", and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := -(a[i+31:i] * b[i+31:i]) + c[i+31:i] + ELSE + dst[i+31:i] := a[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed single-precision (32-bit) floating-point elements in "a" and "b", add the negated intermediate result to packed elements in "c", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := -(a[i+31:i] * b[i+31:i]) + c[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed double-precision (64-bit) floating-point elements in "a" and "b", subtract packed elements in "c" from the negated intermediate result, and store the results in "dst" using writemask "k" (elements are copied from "c" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := -(a[i+63:i] * b[i+63:i]) - c[i+63:i] + ELSE + dst[i+63:i] := c[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed double-precision (64-bit) floating-point elements in "a" and "b", subtract packed elements in "c" from the negated intermediate result, and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := -(a[i+63:i] * b[i+63:i]) - c[i+63:i] + ELSE + dst[i+63:i] := a[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed double-precision (64-bit) floating-point elements in "a" and "b", subtract packed elements in "c" from the negated intermediate result, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := -(a[i+63:i] * b[i+63:i]) - c[i+63:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed double-precision (64-bit) floating-point elements in "a" and "b", subtract packed elements in "c" from the negated intermediate result, and store the results in "dst" using writemask "k" (elements are copied from "c" when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := -(a[i+63:i] * b[i+63:i]) - c[i+63:i] + ELSE + dst[i+63:i] := c[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed double-precision (64-bit) floating-point elements in "a" and "b", subtract packed elements in "c" from the negated intermediate result, and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := -(a[i+63:i] * b[i+63:i]) - c[i+63:i] + ELSE + dst[i+63:i] := a[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed double-precision (64-bit) floating-point elements in "a" and "b", subtract packed elements in "c" from the negated intermediate result, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := -(a[i+63:i] * b[i+63:i]) - c[i+63:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed single-precision (32-bit) floating-point elements in "a" and "b", subtract packed elements in "c" from the negated intermediate result, and store the results in "dst" using writemask "k" (elements are copied from "c" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := -(a[i+31:i] * b[i+31:i]) - c[i+31:i] + ELSE + dst[i+31:i] := c[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed single-precision (32-bit) floating-point elements in "a" and "b", subtract packed elements in "c" from the negated intermediate result, and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := -(a[i+31:i] * b[i+31:i]) - c[i+31:i] + ELSE + dst[i+31:i] := a[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed single-precision (32-bit) floating-point elements in "a" and "b", subtract packed elements in "c" from the negated intermediate result, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := -(a[i+31:i] * b[i+31:i]) - c[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed single-precision (32-bit) floating-point elements in "a" and "b", subtract packed elements in "c" from the negated intermediate result, and store the results in "dst" using writemask "k" (elements are copied from "c" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := -(a[i+31:i] * b[i+31:i]) - c[i+31:i] + ELSE + dst[i+31:i] := c[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed single-precision (32-bit) floating-point elements in "a" and "b", subtract packed elements in "c" from the negated intermediate result, and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := -(a[i+31:i] * b[i+31:i]) - c[i+31:i] + ELSE + dst[i+31:i] := a[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed single-precision (32-bit) floating-point elements in "a" and "b", subtract packed elements in "c" from the negated intermediate result, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := -(a[i+31:i] * b[i+31:i]) - c[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Compare packed double-precision (64-bit) floating-point elements in "a" and "b", and store packed maximum values in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). [max_float_note] + +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := MAX(a[i+63:i], b[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Compare packed double-precision (64-bit) floating-point elements in "a" and "b", and store packed maximum values in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). [max_float_note] + +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := MAX(a[i+63:i], b[i+63:i]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Compare packed double-precision (64-bit) floating-point elements in "a" and "b", and store packed maximum values in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). [max_float_note] + +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := MAX(a[i+63:i], b[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Compare packed double-precision (64-bit) floating-point elements in "a" and "b", and store packed maximum values in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). [max_float_note] + +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := MAX(a[i+63:i], b[i+63:i]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Compare packed single-precision (32-bit) floating-point elements in "a" and "b", and store packed maximum values in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). [max_float_note] + +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := MAX(a[i+31:i], b[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Compare packed single-precision (32-bit) floating-point elements in "a" and "b", and store packed maximum values in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). [max_float_note] + +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := MAX(a[i+31:i], b[i+31:i]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Compare packed single-precision (32-bit) floating-point elements in "a" and "b", and store packed maximum values in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). [max_float_note] + +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := MAX(a[i+31:i], b[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Compare packed single-precision (32-bit) floating-point elements in "a" and "b", and store packed maximum values in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). [max_float_note] + +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := MAX(a[i+31:i], b[i+31:i]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Compare packed double-precision (64-bit) floating-point elements in "a" and "b", and store packed minimum values in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). [min_float_note] + +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := MIN(a[i+63:i], b[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Compare packed double-precision (64-bit) floating-point elements in "a" and "b", and store packed minimum values in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). [min_float_note] + +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := MIN(a[i+63:i], b[i+63:i]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Compare packed double-precision (64-bit) floating-point elements in "a" and "b", and store packed minimum values in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). [min_float_note] + +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := MIN(a[i+63:i], b[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Compare packed double-precision (64-bit) floating-point elements in "a" and "b", and store packed minimum values in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). [min_float_note] + +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := MIN(a[i+63:i], b[i+63:i]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Compare packed single-precision (32-bit) floating-point elements in "a" and "b", and store packed minimum values in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). [min_float_note] + +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := MIN(a[i+31:i], b[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Compare packed single-precision (32-bit) floating-point elements in "a" and "b", and store packed minimum values in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). [min_float_note] + +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := MIN(a[i+31:i], b[i+31:i]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Compare packed single-precision (32-bit) floating-point elements in "a" and "b", and store packed minimum values in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). [min_float_note] + +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := MIN(a[i+31:i], b[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Compare packed single-precision (32-bit) floating-point elements in "a" and "b", and store packed minimum values in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). [min_float_note] + +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := MIN(a[i+31:i], b[i+31:i]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed double-precision (64-bit) floating-point elements in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := a[i+63:i] * b[i+63:i] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply packed double-precision (64-bit) floating-point elements in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := a[i+63:i] * b[i+63:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed double-precision (64-bit) floating-point elements in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := a[i+63:i] * b[i+63:i] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply packed double-precision (64-bit) floating-point elements in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := a[i+63:i] * b[i+63:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed single-precision (32-bit) floating-point elements in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). RM. + +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := a[i+31:i] * b[i+31:i] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply packed single-precision (32-bit) floating-point elements in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := a[i+31:i] * b[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed single-precision (32-bit) floating-point elements in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := a[i+31:i] * b[i+31:i] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply packed single-precision (32-bit) floating-point elements in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := a[i+31:i] * b[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Compute the absolute value of packed signed 32-bit integers in "a", and store the unsigned results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := ABS(a[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + Compute the absolute value of packed signed 32-bit integers in "a", and store the unsigned results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := ABS(a[i+31:i]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Compute the absolute value of packed signed 32-bit integers in "a", and store the unsigned results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := ABS(a[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + Compute the absolute value of packed signed 32-bit integers in "a", and store the unsigned results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := ABS(a[i+31:i]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + Compute the absolute value of packed signed 64-bit integers in "a", and store the unsigned results in "dst". + +FOR j := 0 to 3 + i := j*64 + dst[i+63:i] := ABS(a[i+63:i]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Compute the absolute value of packed signed 64-bit integers in "a", and store the unsigned results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := ABS(a[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + Compute the absolute value of packed signed 64-bit integers in "a", and store the unsigned results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := ABS(a[i+63:i]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + Compute the absolute value of packed signed 64-bit integers in "a", and store the unsigned results in "dst". + +FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := ABS(a[i+63:i]) +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Compute the absolute value of packed signed 64-bit integers in "a", and store the unsigned results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := ABS(a[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + Compute the absolute value of packed signed 64-bit integers in "a", and store the unsigned results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := ABS(a[i+63:i]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Add packed 32-bit integers in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := a[i+31:i] + b[i+31:i] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Add packed 32-bit integers in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := a[i+31:i] + b[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Add packed 32-bit integers in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := a[i+31:i] + b[i+31:i] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Add packed 32-bit integers in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := a[i+31:i] + b[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Add packed 64-bit integers in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := a[i+63:i] + b[i+63:i] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Add packed 64-bit integers in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := a[i+63:i] + b[i+63:i] + ELSE + dst[i+63:i] :=0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Add packed 64-bit integers in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := a[i+63:i] + b[i+63:i] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Add packed 64-bit integers in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := a[i+63:i] + b[i+63:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Compare packed signed 32-bit integers in "a" and "b", and store packed maximum values in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := MAX(a[i+31:i], b[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Compare packed signed 32-bit integers in "a" and "b", and store packed maximum values in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := MAX(a[i+31:i], b[i+31:i]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Compare packed signed 32-bit integers in "a" and "b", and store packed maximum values in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := MAX(a[i+31:i], b[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Compare packed signed 32-bit integers in "a" and "b", and store packed maximum values in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := MAX(a[i+31:i], b[i+31:i]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Compare packed signed 64-bit integers in "a" and "b", and store packed maximum values in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := MAX(a[i+63:i], b[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Compare packed signed 64-bit integers in "a" and "b", and store packed maximum values in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := MAX(a[i+63:i], b[i+63:i]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + Compare packed signed 64-bit integers in "a" and "b", and store packed maximum values in "dst". + +FOR j := 0 to 3 + i := j*64 + dst[i+63:i] := MAX(a[i+63:i], b[i+63:i]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Compare packed signed 64-bit integers in "a" and "b", and store packed maximum values in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := MAX(a[i+63:i], b[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Compare packed signed 64-bit integers in "a" and "b", and store packed maximum values in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := MAX(a[i+63:i], b[i+63:i]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + Compare packed signed 64-bit integers in "a" and "b", and store packed maximum values in "dst". + +FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := MAX(a[i+63:i], b[i+63:i]) +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Compare packed unsigned 32-bit integers in "a" and "b", and store packed maximum values in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := MAX(a[i+31:i], b[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Compare packed unsigned 32-bit integers in "a" and "b", and store packed maximum values in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := MAX(a[i+31:i], b[i+31:i]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Compare packed unsigned 32-bit integers in "a" and "b", and store packed maximum values in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := MAX(a[i+31:i], b[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Compare packed unsigned 32-bit integers in "a" and "b", and store packed maximum values in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := MAX(a[i+31:i], b[i+31:i]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Compare packed unsigned 64-bit integers in "a" and "b", and store packed maximum values in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := MAX(a[i+63:i], b[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Compare packed unsigned 64-bit integers in "a" and "b", and store packed maximum values in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := MAX(a[i+63:i], b[i+63:i]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + Compare packed unsigned 64-bit integers in "a" and "b", and store packed maximum values in "dst". + +FOR j := 0 to 3 + i := j*64 + dst[i+63:i] := MAX(a[i+63:i], b[i+63:i]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Compare packed unsigned 64-bit integers in "a" and "b", and store packed maximum values in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := MAX(a[i+63:i], b[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Compare packed unsigned 64-bit integers in "a" and "b", and store packed maximum values in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := MAX(a[i+63:i], b[i+63:i]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + Compare packed unsigned 64-bit integers in "a" and "b", and store packed maximum values in "dst". + +FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := MAX(a[i+63:i], b[i+63:i]) +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Compare packed signed 32-bit integers in "a" and "b", and store packed minimum values in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := MIN(a[i+31:i], b[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Compare packed signed 32-bit integers in "a" and "b", and store packed minimum values in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := MIN(a[i+31:i], b[i+31:i]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Compare packed signed 32-bit integers in "a" and "b", and store packed minimum values in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := MIN(a[i+31:i], b[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Compare packed signed 32-bit integers in "a" and "b", and store packed minimum values in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := MIN(a[i+31:i], b[i+31:i]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Compare packed signed 64-bit integers in "a" and "b", and store packed minimum values in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := MIN(a[i+63:i], b[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Compare packed signed 64-bit integers in "a" and "b", and store packed minimum values in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := MIN(a[i+63:i], b[i+63:i]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + Compare packed signed 64-bit integers in "a" and "b", and store packed minimum values in "dst". + +FOR j := 0 to 3 + i := j*64 + dst[i+63:i] := MIN(a[i+63:i], b[i+63:i]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Compare packed signed 64-bit integers in "a" and "b", and store packed minimum values in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := MIN(a[i+63:i], b[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Compare packed signed 64-bit integers in "a" and "b", and store packed minimum values in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := MIN(a[i+63:i], b[i+63:i]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + Compare packed signed 64-bit integers in "a" and "b", and store packed minimum values in "dst". + +FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := MIN(a[i+63:i], b[i+63:i]) +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Compare packed unsigned 32-bit integers in "a" and "b", and store packed minimum values in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := MIN(a[i+31:i], b[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Compare packed unsigned 32-bit integers in "a" and "b", and store packed minimum values in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := MIN(a[i+31:i], b[i+31:i]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Compare packed unsigned 32-bit integers in "a" and "b", and store packed minimum values in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := MIN(a[i+31:i], b[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Compare packed unsigned 32-bit integers in "a" and "b", and store packed minimum values in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := MIN(a[i+31:i], b[i+31:i]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Compare packed unsigned 64-bit integers in "a" and "b", and store packed minimum values in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := MIN(a[i+63:i], b[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Compare packed unsigned 64-bit integers in "a" and "b", and store packed minimum values in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := MIN(a[i+63:i], b[i+63:i]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + Compare packed unsigned 64-bit integers in "a" and "b", and store packed minimum values in "dst". + +FOR j := 0 to 3 + i := j*64 + dst[i+63:i] := MIN(a[i+63:i], b[i+63:i]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Compare packed unsigned 64-bit integers in "a" and "b", and store packed minimum values in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := MIN(a[i+63:i], b[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Compare packed unsigned 64-bit integers in "a" and "b", and store packed minimum values in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := MIN(a[i+63:i], b[i+63:i]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + Compare packed unsigned 64-bit integers in "a" and "b", and store packed minimum values in "dst". + +FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := MIN(a[i+63:i], b[i+63:i]) +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply the low signed 32-bit integers from each packed 64-bit element in "a" and "b", and store the signed 64-bit results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := SignExtend64(a[i+31:i]) * SignExtend64(b[i+31:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply the low signed 32-bit integers from each packed 64-bit element in "a" and "b", and store the signed 64-bit results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := SignExtend64(a[i+31:i]) * SignExtend64(b[i+31:i]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply the low signed 32-bit integers from each packed 64-bit element in "a" and "b", and store the signed 64-bit results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := SignExtend64(a[i+31:i]) * SignExtend64(b[i+31:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply the low signed 32-bit integers from each packed 64-bit element in "a" and "b", and store the signed 64-bit results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := SignExtend64(a[i+31:i]) * SignExtend64(b[i+31:i]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply the packed 32-bit integers in "a" and "b", producing intermediate 64-bit integers, and store the low 32 bits of the intermediate integers in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k[j] + tmp[63:0] := a[i+31:i] * b[i+31:i] + dst[i+31:i] := tmp[31:0] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply the packed 32-bit integers in "a" and "b", producing intermediate 64-bit integers, and store the low 32 bits of the intermediate integers in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k[j] + tmp[63:0] := a[i+31:i] * b[i+31:i] + dst[i+31:i] := tmp[31:0] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply the packed 32-bit integers in "a" and "b", producing intermediate 64-bit integers, and store the low 32 bits of the intermediate integers in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k[j] + tmp[63:0] := a[i+31:i] * b[i+31:i] + dst[i+31:i] := tmp[31:0] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply the packed 32-bit integers in "a" and "b", producing intermediate 64-bit integers, and store the low 32 bits of the intermediate integers in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k[j] + tmp[63:0] := a[i+31:i] * b[i+31:i] + dst[i+31:i] := tmp[31:0] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply the low unsigned 32-bit integers from each packed 64-bit element in "a" and "b", and store the unsigned 64-bit results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := a[i+31:i] * b[i+31:i] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply the low unsigned 32-bit integers from each packed 64-bit element in "a" and "b", and store the unsigned 64-bit results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := a[i+31:i] * b[i+31:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply the low unsigned 32-bit integers from each packed 64-bit element in "a" and "b", and store the unsigned 64-bit results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := a[i+31:i] * b[i+31:i] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply the low unsigned 32-bit integers from each packed 64-bit element in "a" and "b", and store the unsigned 64-bit results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := a[i+31:i] * b[i+31:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Subtract packed 32-bit integers in "b" from packed 32-bit integers in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := a[i+31:i] - b[i+31:i] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Subtract packed 32-bit integers in "b" from packed 32-bit integers in "a", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := a[i+31:i] - b[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Subtract packed 32-bit integers in "b" from packed 32-bit integers in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := a[i+31:i] - b[i+31:i] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Subtract packed 32-bit integers in "b" from packed 32-bit integers in "a", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := a[i+31:i] - b[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Subtract packed 64-bit integers in "b" from packed 64-bit integers in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := a[i+63:i] - b[i+63:i] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Subtract packed 64-bit integers in "b" from packed 64-bit integers in "a", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := a[i+63:i] - b[i+63:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Subtract packed 64-bit integers in "b" from packed 64-bit integers in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := a[i+63:i] - b[i+63:i] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Subtract packed 64-bit integers in "b" from packed 64-bit integers in "a", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := a[i+63:i] - b[i+63:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Compute the approximate reciprocal of packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). The maximum relative error for this approximation is less than 2^-14. + +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := (1.0 / a[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + Compute the approximate reciprocal of packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). The maximum relative error for this approximation is less than 2^-14. + +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := (1.0 / a[i+63:i]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + Compute the approximate reciprocal of packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst". The maximum relative error for this approximation is less than 2^-14. + +FOR j := 0 to 3 + i := j*64 + dst[i+63:i] := (1.0 / a[i+63:i]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Compute the approximate reciprocal of packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). The maximum relative error for this approximation is less than 2^-14. + +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := (1.0 / a[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + Compute the approximate reciprocal of packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). The maximum relative error for this approximation is less than 2^-14. + +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := (1.0 / a[i+63:i]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + Compute the approximate reciprocal of packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst". The maximum relative error for this approximation is less than 2^-14. + +FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := (1.0 / a[i+63:i]) +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Compute the approximate reciprocal of packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). The maximum relative error for this approximation is less than 2^-14. + +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := (1.0 / a[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + Compute the approximate reciprocal of packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). The maximum relative error for this approximation is less than 2^-14. + +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := (1.0 / a[i+31:i]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + Compute the approximate reciprocal of packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst". The maximum relative error for this approximation is less than 2^-14. + +FOR j := 0 to 7 + i := j*32 + dst[i+31:i] := (1.0 / a[i+31:i]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Compute the approximate reciprocal of packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). The maximum relative error for this approximation is less than 2^-14. + +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := (1.0 / a[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + Compute the approximate reciprocal of packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). The maximum relative error for this approximation is less than 2^-14. + +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := (1.0 / a[i+31:i]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + Compute the approximate reciprocal of packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst". The maximum relative error for this approximation is less than 2^-14. + +FOR j := 0 to 3 + i := j*32 + dst[i+31:i] := (1.0 / a[i+31:i]) +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + Compute the approximate reciprocal square root of packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst". The maximum relative error for this approximation is less than 2^-14. + +FOR j := 0 to 3 + i := j*64 + dst[i+63:i] := (1.0 / SQRT(a[i+63:i])) +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Compute the approximate reciprocal square root of packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). The maximum relative error for this approximation is less than 2^-14. + +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := (1.0 / SQRT(a[i+63:i])) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + Compute the approximate reciprocal square root of packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). The maximum relative error for this approximation is less than 2^-14. + +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := (1.0 / SQRT(a[i+63:i])) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + Compute the approximate reciprocal square root of packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst". The maximum relative error for this approximation is less than 2^-14. + +FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := (1.0 / SQRT(a[i+63:i])) +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Compute the approximate reciprocal square root of packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). The maximum relative error for this approximation is less than 2^-14. + +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := (1.0 / SQRT(a[i+63:i])) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + Compute the approximate reciprocal square root of packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). The maximum relative error for this approximation is less than 2^-14. + +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := (1.0 / SQRT(a[i+63:i])) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + Compute the approximate reciprocal square root of packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst". The maximum relative error for this approximation is less than 2^-14. + +FOR j := 0 to 7 + i := j*32 + dst[i+31:i] := (1.0 / SQRT(a[i+31:i])) +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Compute the approximate reciprocal square root of packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). The maximum relative error for this approximation is less than 2^-14. + +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := (1.0 / SQRT(a[i+31:i])) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + Compute the approximate reciprocal square root of packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). The maximum relative error for this approximation is less than 2^-14. + +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := (1.0 / SQRT(a[i+31:i])) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + Compute the approximate reciprocal square root of packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst". The maximum relative error for this approximation is less than 2^-14. + +FOR j := 0 to 3 + i := j*32 + dst[i+31:i] := (1.0 / SQRT(a[i+31:i])) +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Compute the approximate reciprocal square root of packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). The maximum relative error for this approximation is less than 2^-14. + +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := (1.0 / SQRT(a[i+31:i])) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + Compute the approximate reciprocal square root of packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). The maximum relative error for this approximation is less than 2^-14. + +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := (1.0 / SQRT(a[i+31:i])) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Subtract packed double-precision (64-bit) floating-point elements in "b" from packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := a[i+63:i] - b[i+63:i] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Subtract packed double-precision (64-bit) floating-point elements in "b" from packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := a[i+63:i] - b[i+63:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Subtract packed double-precision (64-bit) floating-point elements in "b" from packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := a[i+63:i] - b[i+63:i] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Subtract packed double-precision (64-bit) floating-point elements in "b" from packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := a[i+63:i] - b[i+63:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Subtract packed single-precision (32-bit) floating-point elements in "b" from packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := a[i+31:i] - b[i+31:i] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Subtract packed single-precision (32-bit) floating-point elements in "b" from packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := a[i+31:i] - b[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Subtract packed single-precision (32-bit) floating-point elements in "b" from packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := a[i+31:i] - b[i+31:i] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Subtract packed single-precision (32-bit) floating-point elements in "b" from packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := a[i+31:i] - b[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Concatenate "a" and "b" into a 64-byte immediate result, shift the result right by "imm8" 32-bit elements, and store the low 32 bytes (8 elements) in "dst". + +temp[511:256] := a[255:0] +temp[255:0] := b[255:0] +temp[511:0] := temp[511:0] >> (32*imm8[2:0]) +dst[255:0] := temp[255:0] +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + + Concatenate "a" and "b" into a 64-byte immediate result, shift the result right by "imm8" 32-bit elements, and store the low 32 bytes (8 elements) in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +temp[511:256] := a[255:0] +temp[255:0] := b[255:0] +temp[511:0] := temp[511:0] >> (32*imm8[2:0]) +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := temp[i+31:i] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Concatenate "a" and "b" into a 64-byte immediate result, shift the result right by "imm8" 32-bit elements, and store the low 32 bytes (8 elements) in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +temp[511:256] := a[255:0] +temp[255:0] := b[255:0] +temp[511:0] := temp[511:0] >> (32*imm8[2:0]) +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := temp[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Concatenate "a" and "b" into a 32-byte immediate result, shift the result right by "imm8" 32-bit elements, and store the low 16 bytes (4 elements) in "dst". + +temp[255:128] := a[127:0] +temp[127:0] := b[127:0] +temp[255:0] := temp[255:0] >> (32*imm8[1:0]) +dst[127:0] := temp[127:0] +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + + Concatenate "a" and "b" into a 32-byte immediate result, shift the result right by "imm8" 32-bit elements, and store the low 16 bytes (4 elements) in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +temp[255:128] := a[127:0] +temp[127:0] := b[127:0] +temp[255:0] := temp[255:0] >> (32*imm8[1:0]) +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := temp[i+31:i] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Concatenate "a" and "b" into a 32-byte immediate result, shift the result right by "imm8" 32-bit elements, and store the low 16 bytes (4 elements) in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +temp[255:128] := a[127:0] +temp[127:0] := b[127:0] +temp[255:0] := temp[255:0] >> (32*imm8[1:0]) +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := temp[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Concatenate "a" and "b" into a 64-byte immediate result, shift the result right by "imm8" 64-bit elements, and store the low 32 bytes (4 elements) in "dst". + +temp[511:256] := a[255:0] +temp[255:0] := b[255:0] +temp[511:0] := temp[511:0] >> (64*imm8[1:0]) +dst[255:0] := temp[255:0] +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + + Concatenate "a" and "b" into a 64-byte immediate result, shift the result right by "imm8" 64-bit elements, and store the low 32 bytes (4 elements) in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +temp[511:256] := a[255:0] +temp[255:0] := b[255:0] +temp[511:0] := temp[511:0] >> (64*imm8[1:0]) +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := temp[i+63:i] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Concatenate "a" and "b" into a 64-byte immediate result, shift the result right by "imm8" 64-bit elements, and store the low 32 bytes (4 elements) in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +temp[511:256] := a[255:0] +temp[255:0] := b[255:0] +temp[511:0] := temp[511:0] >> (64*imm8[1:0]) +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := temp[i+63:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Concatenate "a" and "b" into a 32-byte immediate result, shift the result right by "imm8" 64-bit elements, and store the low 16 bytes (2 elements) in "dst". + +temp[255:128] := a[127:0] +temp[127:0] := b[127:0] +temp[255:0] := temp[255:0] >> (64*imm8[0]) +dst[127:0] := temp[127:0] +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + + Concatenate "a" and "b" into a 32-byte immediate result, shift the result right by "imm8" 64-bit elements, and store the low 16 bytes (2 elements) in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +temp[255:128] := a[127:0] +temp[127:0] := b[127:0] +temp[255:0] := temp[255:0] >> (64*imm8[0]) +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := temp[i+63:i] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Concatenate "a" and "b" into a 32-byte immediate result, shift the result right by "imm8" 64-bit elements, and store the low 16 bytes (2 elements) in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +temp[255:128] := a[127:0] +temp[127:0] := b[127:0] +temp[255:0] := temp[255:0] >> (64*imm8[0]) +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := temp[i+63:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Blend packed double-precision (64-bit) floating-point elements from "a" and "b" using control mask "k", and store the results in "dst". + +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := b[i+63:i] + ELSE + dst[i+63:i] := a[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Blend packed double-precision (64-bit) floating-point elements from "a" and "b" using control mask "k", and store the results in "dst". + +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := b[i+63:i] + ELSE + dst[i+63:i] := a[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Blend packed single-precision (32-bit) floating-point elements from "a" and "b" using control mask "k", and store the results in "dst". + +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := b[i+31:i] + ELSE + dst[i+31:i] := a[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Blend packed single-precision (32-bit) floating-point elements from "a" and "b" using control mask "k", and store the results in "dst". + +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := b[i+31:i] + ELSE + dst[i+31:i] := a[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + Broadcast the 4 packed single-precision (32-bit) floating-point elements from "a" to all elements of "dst". + +FOR j := 0 to 7 + i := j*32 + n := (j % 4)*32 + dst[i+31:i] := a[n+31:n] +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Broadcast the 4 packed single-precision (32-bit) floating-point elements from "a" to all elements of "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + n := (j % 4)*32 + IF k[j] + dst[i+31:i] := a[n+31:n] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + Broadcast the 4 packed single-precision (32-bit) floating-point elements from "a" to all elements of "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + n := (j % 4)*32 + IF k[j] + dst[i+31:i] := a[n+31:n] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + Broadcast the 4 packed 32-bit integers from "a" to all elements of "dst". + +FOR j := 0 to 7 + i := j*32 + n := (j % 4)*32 + dst[i+31:i] := a[n+31:n] +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Broadcast the 4 packed 32-bit integers from "a" to all elements of "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + n := (j % 4)*32 + IF k[j] + dst[i+31:i] := a[n+31:n] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + Broadcast the 4 packed 32-bit integers from "a" to all elements of "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + n := (j % 4)*32 + IF k[j] + dst[i+31:i] := a[n+31:n] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Broadcast the low double-precision (64-bit) floating-point element from "a" to all elements of "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := a[63:0] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + Broadcast the low double-precision (64-bit) floating-point element from "a" to all elements of "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := a[63:0] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Broadcast the low single-precision (32-bit) floating-point element from "a" to all elements of "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := a[31:0] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + Broadcast the low single-precision (32-bit) floating-point element from "a" to all elements of "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := a[31:0] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Broadcast the low single-precision (32-bit) floating-point element from "a" to all elements of "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := a[31:0] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + Broadcast the low single-precision (32-bit) floating-point element from "a" to all elements of "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := a[31:0] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Contiguously store the active double-precision (64-bit) floating-point elements in "a" (those with their respective bit set in writemask "k") to "dst", and pass through the remaining elements from "src". + +size := 64 +m := 0 +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[m+size-1:m] := a[i+63:i] + m := m + size + FI +ENDFOR +dst[255:m] := src[255:m] +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + Contiguously store the active double-precision (64-bit) floating-point elements in "a" (those with their respective bit set in zeromask "k") to "dst", and set the remaining elements to zero. + +size := 64 +m := 0 +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[m+size-1:m] := a[i+63:i] + m := m + size + FI +ENDFOR +dst[255:m] := 0 +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Contiguously store the active double-precision (64-bit) floating-point elements in "a" (those with their respective bit set in writemask "k") to "dst", and pass through the remaining elements from "src". + +size := 64 +m := 0 +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[m+size-1:m] := a[i+63:i] + m := m + size + FI +ENDFOR +dst[127:m] := src[127:m] +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + Contiguously store the active double-precision (64-bit) floating-point elements in "a" (those with their respective bit set in zeromask "k") to "dst", and set the remaining elements to zero. + +size := 64 +m := 0 +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[m+size-1:m] := a[i+63:i] + m := m + size + FI +ENDFOR +dst[127:m] := 0 +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Contiguously store the active single-precision (32-bit) floating-point elements in "a" (those with their respective bit set in writemask "k") to "dst", and pass through the remaining elements from "src". + +size := 32 +m := 0 +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[m+size-1:m] := a[i+31:i] + m := m + size + FI +ENDFOR +dst[255:m] := src[255:m] +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + Contiguously store the active single-precision (32-bit) floating-point elements in "a" (those with their respective bit set in zeromask "k") to "dst", and set the remaining elements to zero. + +size := 32 +m := 0 +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[m+size-1:m] := a[i+31:i] + m := m + size + FI +ENDFOR +dst[255:m] := 0 +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Contiguously store the active single-precision (32-bit) floating-point elements in "a" (those with their respective bit set in writemask "k") to "dst", and pass through the remaining elements from "src". + +size := 32 +m := 0 +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[m+size-1:m] := a[i+31:i] + m := m + size + FI +ENDFOR +dst[127:m] := src[127:m] +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + Contiguously store the active single-precision (32-bit) floating-point elements in "a" (those with their respective bit set in zeromask "k") to "dst", and set the remaining elements to zero. + +size := 32 +m := 0 +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[m+size-1:m] := a[i+31:i] + m := m + size + FI +ENDFOR +dst[127:m] := 0 +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Load contiguous active double-precision (64-bit) floating-point elements from "a" (those with their respective bit set in mask "k"), and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +m := 0 +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := a[m+63:m] + m := m + 64 + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + Load contiguous active double-precision (64-bit) floating-point elements from "a" (those with their respective bit set in mask "k"), and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +m := 0 +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := a[m+63:m] + m := m + 64 + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Load contiguous active double-precision (64-bit) floating-point elements from "a" (those with their respective bit set in mask "k"), and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +m := 0 +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := a[m+63:m] + m := m + 64 + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + Load contiguous active double-precision (64-bit) floating-point elements from "a" (those with their respective bit set in mask "k"), and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +m := 0 +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := a[m+63:m] + m := m + 64 + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Load contiguous active single-precision (32-bit) floating-point elements from "a" (those with their respective bit set in mask "k"), and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +m := 0 +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := a[m+31:m] + m := m + 32 + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + Load contiguous active single-precision (32-bit) floating-point elements from "a" (those with their respective bit set in mask "k"), and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +m := 0 +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := a[m+31:m] + m := m + 32 + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Load contiguous active single-precision (32-bit) floating-point elements from "a" (those with their respective bit set in mask "k"), and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +m := 0 +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := a[m+31:m] + m := m + 32 + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + Load contiguous active single-precision (32-bit) floating-point elements from "a" (those with their respective bit set in mask "k"), and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +m := 0 +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := a[m+31:m] + m := m + 32 + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + Extract 128 bits (composed of 4 packed single-precision (32-bit) floating-point elements) from "a", selected with "imm8", and store the result in "dst". + +CASE imm8[0] OF +0: dst[127:0] := a[127:0] +1: dst[127:0] := a[255:128] +ESAC +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Extract 128 bits (composed of 4 packed single-precision (32-bit) floating-point elements) from "a", selected with "imm8", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +CASE imm8[0] OF +0: tmp[127:0] := a[127:0] +1: tmp[127:0] := a[255:128] +ESAC +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := tmp[i+31:i] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Extract 128 bits (composed of 4 packed single-precision (32-bit) floating-point elements) from "a", selected with "imm8", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +CASE imm8[0] OF +0: tmp[127:0] := a[127:0] +1: tmp[127:0] := a[255:128] +ESAC +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := tmp[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + Extract 128 bits (composed of 4 packed 32-bit integers) from "a", selected with "imm8", and store the result in "dst". + +CASE imm8[0] OF +0: dst[127:0] := a[127:0] +1: dst[127:0] := a[255:128] +ESAC +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Extract 128 bits (composed of 4 packed 32-bit integers) from "a", selected with "imm8", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +CASE imm8[0] OF +0: tmp[127:0] := a[127:0] +1: tmp[127:0] := a[255:128] +ESAC +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := tmp[i+31:i] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Extract 128 bits (composed of 4 packed 32-bit integers) from "a", selected with "imm8", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +CASE imm8[0] OF +0: tmp[127:0] := a[127:0] +1: tmp[127:0] := a[255:128] +ESAC +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := tmp[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Fix up packed double-precision (64-bit) floating-point elements in "a" and "b" using packed 64-bit integers in "c", and store the results in "dst". "imm8" is used to set the required flags reporting. + enum TOKEN_TYPE { + QNAN_TOKEN := 0, \ + SNAN_TOKEN := 1, \ + ZERO_VALUE_TOKEN := 2, \ + ONE_VALUE_TOKEN := 3, \ + NEG_INF_TOKEN := 4, \ + POS_INF_TOKEN := 5, \ + NEG_VALUE_TOKEN := 6, \ + POS_VALUE_TOKEN := 7 +} +DEFINE FIXUPIMMPD(src1[63:0], src2[63:0], src3[63:0], imm8[7:0]) { + tsrc[63:0] := ((src2[62:52] == 0) AND (MXCSR.DAZ == 1)) ? 0.0 : src2[63:0] + CASE(tsrc[63:0]) OF + QNAN_TOKEN: j := 0 + SNAN_TOKEN: j := 1 + ZERO_VALUE_TOKEN: j := 2 + ONE_VALUE_TOKEN: j := 3 + NEG_INF_TOKEN: j := 4 + POS_INF_TOKEN: j := 5 + NEG_VALUE_TOKEN: j := 6 + POS_VALUE_TOKEN: j := 7 + ESAC + + token_response[3:0] := src3[3+4*j:4*j] + + CASE(token_response[3:0]) OF + 0 : dest[63:0] := src1[63:0] + 1 : dest[63:0] := tsrc[63:0] + 2 : dest[63:0] := QNaN(tsrc[63:0]) + 3 : dest[63:0] := QNAN_Indefinite + 4 : dest[63:0] := -INF + 5 : dest[63:0] := +INF + 6 : dest[63:0] := tsrc.sign? -INF : +INF + 7 : dest[63:0] := -0 + 8 : dest[63:0] := +0 + 9 : dest[63:0] := -1 + 10: dest[63:0] := +1 + 11: dest[63:0] := 1/2 + 12: dest[63:0] := 90.0 + 13: dest[63:0] := PI/2 + 14: dest[63:0] := MAX_FLOAT + 15: dest[63:0] := -MAX_FLOAT + ESAC + + CASE(tsrc[31:0]) OF + ZERO_VALUE_TOKEN: + IF (imm8[0]) #ZE; FI + ZERO_VALUE_TOKEN: + IF (imm8[1]) #IE; FI + ONE_VALUE_TOKEN: + IF (imm8[2]) #ZE; FI + ONE_VALUE_TOKEN: + IF (imm8[3]) #IE; FI + SNAN_TOKEN: + IF (imm8[4]) #IE; FI + NEG_INF_TOKEN: + IF (imm8[5]) #IE; FI + NEG_VALUE_TOKEN: + IF (imm8[6]) #IE; FI + POS_INF_TOKEN: + IF (imm8[7]) #IE; FI + ESAC + RETURN dest[63:0] +} +FOR j := 0 to 3 + i := j*64 + dst[i+63:i] := FIXUPIMMPD(a[i+63:i], b[i+63:i], c[i+63:i], imm8[7:0]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + + Fix up packed double-precision (64-bit) floating-point elements in "a" and "b" using packed 64-bit integers in "c", and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). "imm8" is used to set the required flags reporting. + enum TOKEN_TYPE { + QNAN_TOKEN := 0, \ + SNAN_TOKEN := 1, \ + ZERO_VALUE_TOKEN := 2, \ + ONE_VALUE_TOKEN := 3, \ + NEG_INF_TOKEN := 4, \ + POS_INF_TOKEN := 5, \ + NEG_VALUE_TOKEN := 6, \ + POS_VALUE_TOKEN := 7 +} +DEFINE FIXUPIMMPD(src1[63:0], src2[63:0], src3[63:0], imm8[7:0]) { + tsrc[63:0] := ((src2[62:52] == 0) AND (MXCSR.DAZ == 1)) ? 0.0 : src2[63:0] + CASE(tsrc[63:0]) OF + QNAN_TOKEN:j := 0 + SNAN_TOKEN:j := 1 + ZERO_VALUE_TOKEN: j := 2 + ONE_VALUE_TOKEN: j := 3 + NEG_INF_TOKEN: j := 4 + POS_INF_TOKEN: j := 5 + NEG_VALUE_TOKEN: j := 6 + POS_VALUE_TOKEN: j := 7 + ESAC + + token_response[3:0] := src3[3+4*j:4*j] + + CASE(token_response[3:0]) OF + 0 : dest[63:0] := src1[63:0] + 1 : dest[63:0] := tsrc[63:0] + 2 : dest[63:0] := QNaN(tsrc[63:0]) + 3 : dest[63:0] := QNAN_Indefinite + 4 : dest[63:0] := -INF + 5 : dest[63:0] := +INF + 6 : dest[63:0] := tsrc.sign? -INF : +INF + 7 : dest[63:0] := -0 + 8 : dest[63:0] := +0 + 9 : dest[63:0] := -1 + 10: dest[63:0] := +1 + 11: dest[63:0] := 1/2 + 12: dest[63:0] := 90.0 + 13: dest[63:0] := PI/2 + 14: dest[63:0] := MAX_FLOAT + 15: dest[63:0] := -MAX_FLOAT + ESAC + + CASE(tsrc[31:0]) OF + ZERO_VALUE_TOKEN: + IF (imm8[0]) #ZE; FI + ZERO_VALUE_TOKEN: + IF (imm8[1]) #IE; FI + ONE_VALUE_TOKEN: + IF (imm8[2]) #ZE; FI + ONE_VALUE_TOKEN: + IF (imm8[3]) #IE; FI + SNAN_TOKEN: + IF (imm8[4]) #IE; FI + NEG_INF_TOKEN: + IF (imm8[5]) #IE; FI + NEG_VALUE_TOKEN: + IF (imm8[6]) #IE; FI + POS_INF_TOKEN: + IF (imm8[7]) #IE; FI + ESAC + RETURN dest[63:0] +} +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := FIXUPIMMPD(a[i+63:i], b[i+63:i], c[i+63:i], imm8[7:0]) + ELSE + dst[i+63:i] := a[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + + Fix up packed double-precision (64-bit) floating-point elements in "a" and "b" using packed 64-bit integers in "c", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). "imm8" is used to set the required flags reporting. + enum TOKEN_TYPE { + QNAN_TOKEN := 0, \ + SNAN_TOKEN := 1, \ + ZERO_VALUE_TOKEN := 2, \ + ONE_VALUE_TOKEN := 3, \ + NEG_INF_TOKEN := 4, \ + POS_INF_TOKEN := 5, \ + NEG_VALUE_TOKEN := 6, \ + POS_VALUE_TOKEN := 7 +} +DEFINE FIXUPIMMPD(src1[63:0], src2[63:0], src3[63:0], imm8[7:0]) { + tsrc[63:0] := ((src2[62:52] == 0) AND (MXCSR.DAZ == 1)) ? 0.0 : src2[63:0] + CASE(tsrc[63:0]) OF + QNAN_TOKEN:j := 0 + SNAN_TOKEN:j := 1 + ZERO_VALUE_TOKEN: j := 2 + ONE_VALUE_TOKEN: j := 3 + NEG_INF_TOKEN: j := 4 + POS_INF_TOKEN: j := 5 + NEG_VALUE_TOKEN: j := 6 + POS_VALUE_TOKEN: j := 7 + ESAC + + token_response[3:0] := src3[3+4*j:4*j] + + CASE(token_response[3:0]) OF + 0 : dest[63:0] := src1[63:0] + 1 : dest[63:0] := tsrc[63:0] + 2 : dest[63:0] := QNaN(tsrc[63:0]) + 3 : dest[63:0] := QNAN_Indefinite + 4 : dest[63:0] := -INF + 5 : dest[63:0] := +INF + 6 : dest[63:0] := tsrc.sign? -INF : +INF + 7 : dest[63:0] := -0 + 8 : dest[63:0] := +0 + 9 : dest[63:0] := -1 + 10: dest[63:0] := +1 + 11: dest[63:0] := 1/2 + 12: dest[63:0] := 90.0 + 13: dest[63:0] := PI/2 + 14: dest[63:0] := MAX_FLOAT + 15: dest[63:0] := -MAX_FLOAT + ESAC + + CASE(tsrc[31:0]) OF + ZERO_VALUE_TOKEN: + IF (imm8[0]) #ZE; FI + ZERO_VALUE_TOKEN: + IF (imm8[1]) #IE; FI + ONE_VALUE_TOKEN: + IF (imm8[2]) #ZE; FI + ONE_VALUE_TOKEN: + IF (imm8[3]) #IE; FI + SNAN_TOKEN: + IF (imm8[4]) #IE; FI + NEG_INF_TOKEN: + IF (imm8[5]) #IE; FI + NEG_VALUE_TOKEN: + IF (imm8[6]) #IE; FI + POS_INF_TOKEN: + IF (imm8[7]) #IE; FI + ESAC + RETURN dest[63:0] +} +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := FIXUPIMMPD(a[i+63:i], b[i+63:i], c[i+63:i], imm8[7:0]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Fix up packed double-precision (64-bit) floating-point elements in "a" and "b" using packed 64-bit integers in "c", and store the results in "dst". "imm8" is used to set the required flags reporting. + enum TOKEN_TYPE { + QNAN_TOKEN := 0, \ + SNAN_TOKEN := 1, \ + ZERO_VALUE_TOKEN := 2, \ + ONE_VALUE_TOKEN := 3, \ + NEG_INF_TOKEN := 4, \ + POS_INF_TOKEN := 5, \ + NEG_VALUE_TOKEN := 6, \ + POS_VALUE_TOKEN := 7 +} +DEFINE FIXUPIMMPD(src1[63:0], src2[63:0], src3[63:0], imm8[7:0]) { + tsrc[63:0] := ((src2[62:52] == 0) AND (MXCSR.DAZ == 1)) ? 0.0 : src2[63:0] + CASE(tsrc[63:0]) OF + QNAN_TOKEN:j := 0 + SNAN_TOKEN:j := 1 + ZERO_VALUE_TOKEN: j := 2 + ONE_VALUE_TOKEN: j := 3 + NEG_INF_TOKEN: j := 4 + POS_INF_TOKEN: j := 5 + NEG_VALUE_TOKEN: j := 6 + POS_VALUE_TOKEN: j := 7 + ESAC + + token_response[3:0] := src3[3+4*j:4*j] + + CASE(token_response[3:0]) OF + 0 : dest[63:0] := src1[63:0] + 1 : dest[63:0] := tsrc[63:0] + 2 : dest[63:0] := QNaN(tsrc[63:0]) + 3 : dest[63:0] := QNAN_Indefinite + 4 : dest[63:0] := -INF + 5 : dest[63:0] := +INF + 6 : dest[63:0] := tsrc.sign? -INF : +INF + 7 : dest[63:0] := -0 + 8 : dest[63:0] := +0 + 9 : dest[63:0] := -1 + 10: dest[63:0] := +1 + 11: dest[63:0] := 1/2 + 12: dest[63:0] := 90.0 + 13: dest[63:0] := PI/2 + 14: dest[63:0] := MAX_FLOAT + 15: dest[63:0] := -MAX_FLOAT + ESAC + + CASE(tsrc[31:0]) OF + ZERO_VALUE_TOKEN: + IF (imm8[0]) #ZE; FI + ZERO_VALUE_TOKEN: + IF (imm8[1]) #IE; FI + ONE_VALUE_TOKEN: + IF (imm8[2]) #ZE; FI + ONE_VALUE_TOKEN: + IF (imm8[3]) #IE; FI + SNAN_TOKEN: + IF (imm8[4]) #IE; FI + NEG_INF_TOKEN: + IF (imm8[5]) #IE; FI + NEG_VALUE_TOKEN: + IF (imm8[6]) #IE; FI + POS_INF_TOKEN: + IF (imm8[7]) #IE; FI + ESAC + RETURN dest[63:0] +} +FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := FIXUPIMMPD(a[i+63:i], b[i+63:i], c[i+63:i], imm8[7:0]) +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + + Fix up packed double-precision (64-bit) floating-point elements in "a" and "b" using packed 64-bit integers in "c", and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). "imm8" is used to set the required flags reporting. + enum TOKEN_TYPE { + QNAN_TOKEN := 0, \ + SNAN_TOKEN := 1, \ + ZERO_VALUE_TOKEN := 2, \ + ONE_VALUE_TOKEN := 3, \ + NEG_INF_TOKEN := 4, \ + POS_INF_TOKEN := 5, \ + NEG_VALUE_TOKEN := 6, \ + POS_VALUE_TOKEN := 7 +} +DEFINE FIXUPIMMPD(src1[63:0], src2[63:0], src3[63:0], imm8[7:0]) { + tsrc[63:0] := ((src2[62:52] == 0) AND (MXCSR.DAZ == 1)) ? 0.0 : src2[63:0] + CASE(tsrc[63:0]) OF + QNAN_TOKEN:j := 0 + SNAN_TOKEN:j := 1 + ZERO_VALUE_TOKEN: j := 2 + ONE_VALUE_TOKEN: j := 3 + NEG_INF_TOKEN: j := 4 + POS_INF_TOKEN: j := 5 + NEG_VALUE_TOKEN: j := 6 + POS_VALUE_TOKEN: j := 7 + ESAC + + token_response[3:0] := src3[3+4*j:4*j] + + CASE(token_response[3:0]) OF + 0 : dest[63:0] := src1[63:0] + 1 : dest[63:0] := tsrc[63:0] + 2 : dest[63:0] := QNaN(tsrc[63:0]) + 3 : dest[63:0] := QNAN_Indefinite + 4 : dest[63:0] := -INF + 5 : dest[63:0] := +INF + 6 : dest[63:0] := tsrc.sign? -INF : +INF + 7 : dest[63:0] := -0 + 8 : dest[63:0] := +0 + 9 : dest[63:0] := -1 + 10: dest[63:0] := +1 + 11: dest[63:0] := 1/2 + 12: dest[63:0] := 90.0 + 13: dest[63:0] := PI/2 + 14: dest[63:0] := MAX_FLOAT + 15: dest[63:0] := -MAX_FLOAT + ESAC + + CASE(tsrc[31:0]) OF + ZERO_VALUE_TOKEN: + IF (imm8[0]) #ZE; FI + ZERO_VALUE_TOKEN: + IF (imm8[1]) #IE; FI + ONE_VALUE_TOKEN: + IF (imm8[2]) #ZE; FI + ONE_VALUE_TOKEN: + IF (imm8[3]) #IE; FI + SNAN_TOKEN: + IF (imm8[4]) #IE; FI + NEG_INF_TOKEN: + IF (imm8[5]) #IE; FI + NEG_VALUE_TOKEN: + IF (imm8[6]) #IE; FI + POS_INF_TOKEN: + IF (imm8[7]) #IE; FI + ESAC + RETURN dest[63:0] +} +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := FIXUPIMMPD(a[i+63:i], b[i+63:i], c[i+63:i], imm8[7:0]) + ELSE + dst[i+63:i] := a[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + + Fix up packed double-precision (64-bit) floating-point elements in "a" and "b" using packed 64-bit integers in "c", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). "imm8" is used to set the required flags reporting. + enum TOKEN_TYPE { + QNAN_TOKEN := 0, \ + SNAN_TOKEN := 1, \ + ZERO_VALUE_TOKEN := 2, \ + ONE_VALUE_TOKEN := 3, \ + NEG_INF_TOKEN := 4, \ + POS_INF_TOKEN := 5, \ + NEG_VALUE_TOKEN := 6, \ + POS_VALUE_TOKEN := 7 +} +DEFINE FIXUPIMMPD(src1[63:0], src2[63:0], src3[63:0], imm8[7:0]) { + tsrc[63:0] := ((src2[62:52] == 0) AND (MXCSR.DAZ == 1)) ? 0.0 : src2[63:0] + CASE(tsrc[63:0]) OF + QNAN_TOKEN:j := 0 + SNAN_TOKEN:j := 1 + ZERO_VALUE_TOKEN: j := 2 + ONE_VALUE_TOKEN: j := 3 + NEG_INF_TOKEN: j := 4 + POS_INF_TOKEN: j := 5 + NEG_VALUE_TOKEN: j := 6 + POS_VALUE_TOKEN: j := 7 + ESAC + + token_response[3:0] := src3[3+4*j:4*j] + + CASE(token_response[3:0]) OF + 0 : dest[63:0] := src1[63:0] + 1 : dest[63:0] := tsrc[63:0] + 2 : dest[63:0] := QNaN(tsrc[63:0]) + 3 : dest[63:0] := QNAN_Indefinite + 4 : dest[63:0] := -INF + 5 : dest[63:0] := +INF + 6 : dest[63:0] := tsrc.sign? -INF : +INF + 7 : dest[63:0] := -0 + 8 : dest[63:0] := +0 + 9 : dest[63:0] := -1 + 10: dest[63:0] := +1 + 11: dest[63:0] := 1/2 + 12: dest[63:0] := 90.0 + 13: dest[63:0] := PI/2 + 14: dest[63:0] := MAX_FLOAT + 15: dest[63:0] := -MAX_FLOAT + ESAC + + CASE(tsrc[31:0]) OF + ZERO_VALUE_TOKEN: + IF (imm8[0]) #ZE; FI + ZERO_VALUE_TOKEN: + IF (imm8[1]) #IE; FI + ONE_VALUE_TOKEN: + IF (imm8[2]) #ZE; FI + ONE_VALUE_TOKEN: + IF (imm8[3]) #IE; FI + SNAN_TOKEN: + IF (imm8[4]) #IE; FI + NEG_INF_TOKEN: + IF (imm8[5]) #IE; FI + NEG_VALUE_TOKEN: + IF (imm8[6]) #IE; FI + POS_INF_TOKEN: + IF (imm8[7]) #IE; FI + ESAC + RETURN dest[63:0] +} +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := FIXUPIMMPD(a[i+63:i], b[i+63:i], c[i+63:i], imm8[7:0]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Fix up packed single-precision (32-bit) floating-point elements in "a" and "b" using packed 32-bit integers in "c", and store the results in "dst". "imm8" is used to set the required flags reporting. + enum TOKEN_TYPE { + QNAN_TOKEN := 0, \ + SNAN_TOKEN := 1, \ + ZERO_VALUE_TOKEN := 2, \ + ONE_VALUE_TOKEN := 3, \ + NEG_INF_TOKEN := 4, \ + POS_INF_TOKEN := 5, \ + NEG_VALUE_TOKEN := 6, \ + POS_VALUE_TOKEN := 7 +} +DEFINE FIXUPIMMPD(src1[31:0], src2[31:0], src3[31:0], imm8[7:0]) { + tsrc[31:0] := ((src2[30:23] == 0) AND (MXCSR.DAZ == 1)) ? 0.0 : src2[31:0] + CASE(tsrc[31:0]) OF + QNAN_TOKEN:j := 0 + SNAN_TOKEN:j := 1 + ZERO_VALUE_TOKEN: j := 2 + ONE_VALUE_TOKEN: j := 3 + NEG_INF_TOKEN: j := 4 + POS_INF_TOKEN: j := 5 + NEG_VALUE_TOKEN: j := 6 + POS_VALUE_TOKEN: j := 7 + ESAC + + token_response[3:0] := src3[3+4*j:4*j] + + CASE(token_response[3:0]) OF + 0 : dest[31:0] := src1[31:0] + 1 : dest[31:0] := tsrc[31:0] + 2 : dest[31:0] := QNaN(tsrc[31:0]) + 3 : dest[31:0] := QNAN_Indefinite + 4 : dest[31:0] := -INF + 5 : dest[31:0] := +INF + 6 : dest[31:0] := tsrc.sign? -INF : +INF + 7 : dest[31:0] := -0 + 8 : dest[31:0] := +0 + 9 : dest[31:0] := -1 + 10: dest[31:0] := +1 + 11: dest[31:0] := 1/2 + 12: dest[31:0] := 90.0 + 13: dest[31:0] := PI/2 + 14: dest[31:0] := MAX_FLOAT + 15: dest[31:0] := -MAX_FLOAT + ESAC + + CASE(tsrc[31:0]) OF + ZERO_VALUE_TOKEN: + IF (imm8[0]) #ZE; FI + ZERO_VALUE_TOKEN: + IF (imm8[1]) #IE; FI + ONE_VALUE_TOKEN: + IF (imm8[2]) #ZE; FI + ONE_VALUE_TOKEN: + IF (imm8[3]) #IE; FI + SNAN_TOKEN: + IF (imm8[4]) #IE; FI + NEG_INF_TOKEN: + IF (imm8[5]) #IE; FI + NEG_VALUE_TOKEN: + IF (imm8[6]) #IE; FI + POS_INF_TOKEN: + IF (imm8[7]) #IE; FI + ESAC + RETURN dest[31:0] +} +FOR j := 0 to 7 + i := j*32 + dst[i+31:i] := FIXUPIMMPD(a[i+31:i], b[i+31:i], c[i+31:i], imm8[7:0]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + + Fix up packed single-precision (32-bit) floating-point elements in "a" and "b" using packed 32-bit integers in "c", and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). "imm8" is used to set the required flags reporting. + enum TOKEN_TYPE { + QNAN_TOKEN := 0, \ + SNAN_TOKEN := 1, \ + ZERO_VALUE_TOKEN := 2, \ + ONE_VALUE_TOKEN := 3, \ + NEG_INF_TOKEN := 4, \ + POS_INF_TOKEN := 5, \ + NEG_VALUE_TOKEN := 6, \ + POS_VALUE_TOKEN := 7 +} +DEFINE FIXUPIMMPD(src1[31:0], src2[31:0], src3[31:0], imm8[7:0]) { + tsrc[31:0] := ((src2[30:23] == 0) AND (MXCSR.DAZ == 1)) ? 0.0 : src2[31:0] + CASE(tsrc[31:0]) OF + QNAN_TOKEN:j := 0 + SNAN_TOKEN:j := 1 + ZERO_VALUE_TOKEN: j := 2 + ONE_VALUE_TOKEN: j := 3 + NEG_INF_TOKEN: j := 4 + POS_INF_TOKEN: j := 5 + NEG_VALUE_TOKEN: j := 6 + POS_VALUE_TOKEN: j := 7 + ESAC + + token_response[3:0] := src3[3+4*j:4*j] + + CASE(token_response[3:0]) OF + 0 : dest[31:0] := src1[31:0] + 1 : dest[31:0] := tsrc[31:0] + 2 : dest[31:0] := QNaN(tsrc[31:0]) + 3 : dest[31:0] := QNAN_Indefinite + 4 : dest[31:0] := -INF + 5 : dest[31:0] := +INF + 6 : dest[31:0] := tsrc.sign? -INF : +INF + 7 : dest[31:0] := -0 + 8 : dest[31:0] := +0 + 9 : dest[31:0] := -1 + 10: dest[31:0] := +1 + 11: dest[31:0] := 1/2 + 12: dest[31:0] := 90.0 + 13: dest[31:0] := PI/2 + 14: dest[31:0] := MAX_FLOAT + 15: dest[31:0] := -MAX_FLOAT + ESAC + + CASE(tsrc[31:0]) OF + ZERO_VALUE_TOKEN: + IF (imm8[0]) #ZE; FI + ZERO_VALUE_TOKEN: + IF (imm8[1]) #IE; FI + ONE_VALUE_TOKEN: + IF (imm8[2]) #ZE; FI + ONE_VALUE_TOKEN: + IF (imm8[3]) #IE; FI + SNAN_TOKEN: + IF (imm8[4]) #IE; FI + NEG_INF_TOKEN: + IF (imm8[5]) #IE; FI + NEG_VALUE_TOKEN: + IF (imm8[6]) #IE; FI + POS_INF_TOKEN: + IF (imm8[7]) #IE; FI + ESAC + RETURN dest[31:0] +} +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := FIXUPIMMPD(a[i+31:i], b[i+31:i], c[i+31:i], imm8[7:0]) + ELSE + dst[i+31:i] := a[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + + Fix up packed single-precision (32-bit) floating-point elements in "a" and "b" using packed 32-bit integers in "c", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). "imm8" is used to set the required flags reporting. + enum TOKEN_TYPE { + QNAN_TOKEN := 0, \ + SNAN_TOKEN := 1, \ + ZERO_VALUE_TOKEN := 2, \ + ONE_VALUE_TOKEN := 3, \ + NEG_INF_TOKEN := 4, \ + POS_INF_TOKEN := 5, \ + NEG_VALUE_TOKEN := 6, \ + POS_VALUE_TOKEN := 7 +} +DEFINE FIXUPIMMPD(src1[31:0], src2[31:0], src3[31:0], imm8[7:0]) { + tsrc[31:0] := ((src2[30:23] == 0) AND (MXCSR.DAZ == 1)) ? 0.0 : src2[31:0] + CASE(tsrc[31:0]) OF + QNAN_TOKEN:j := 0 + SNAN_TOKEN:j := 1 + ZERO_VALUE_TOKEN: j := 2 + ONE_VALUE_TOKEN: j := 3 + NEG_INF_TOKEN: j := 4 + POS_INF_TOKEN: j := 5 + NEG_VALUE_TOKEN: j := 6 + POS_VALUE_TOKEN: j := 7 + ESAC + + token_response[3:0] := src3[3+4*j:4*j] + + CASE(token_response[3:0]) OF + 0 : dest[31:0] := src1[31:0] + 1 : dest[31:0] := tsrc[31:0] + 2 : dest[31:0] := QNaN(tsrc[31:0]) + 3 : dest[31:0] := QNAN_Indefinite + 4 : dest[31:0] := -INF + 5 : dest[31:0] := +INF + 6 : dest[31:0] := tsrc.sign? -INF : +INF + 7 : dest[31:0] := -0 + 8 : dest[31:0] := +0 + 9 : dest[31:0] := -1 + 10: dest[31:0] := +1 + 11: dest[31:0] := 1/2 + 12: dest[31:0] := 90.0 + 13: dest[31:0] := PI/2 + 14: dest[31:0] := MAX_FLOAT + 15: dest[31:0] := -MAX_FLOAT + ESAC + + CASE(tsrc[31:0]) OF + ZERO_VALUE_TOKEN: + IF (imm8[0]) #ZE; FI + ZERO_VALUE_TOKEN: + IF (imm8[1]) #IE; FI + ONE_VALUE_TOKEN: + IF (imm8[2]) #ZE; FI + ONE_VALUE_TOKEN: + IF (imm8[3]) #IE; FI + SNAN_TOKEN: + IF (imm8[4]) #IE; FI + NEG_INF_TOKEN: + IF (imm8[5]) #IE; FI + NEG_VALUE_TOKEN: + IF (imm8[6]) #IE; FI + POS_INF_TOKEN: + IF (imm8[7]) #IE; FI + ESAC + RETURN dest[31:0] +} +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := FIXUPIMMPD(a[i+31:i], b[i+31:i], c[i+31:i], imm8[7:0]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Fix up packed single-precision (32-bit) floating-point elements in "a" and "b" using packed 32-bit integers in "c", and store the results in "dst". "imm8" is used to set the required flags reporting. + enum TOKEN_TYPE { + QNAN_TOKEN := 0, \ + SNAN_TOKEN := 1, \ + ZERO_VALUE_TOKEN := 2, \ + ONE_VALUE_TOKEN := 3, \ + NEG_INF_TOKEN := 4, \ + POS_INF_TOKEN := 5, \ + NEG_VALUE_TOKEN := 6, \ + POS_VALUE_TOKEN := 7 +} +DEFINE FIXUPIMMPD(src1[31:0], src2[31:0], src3[31:0], imm8[7:0]) { + tsrc[31:0] := ((src2[30:23] == 0) AND (MXCSR.DAZ == 1)) ? 0.0 : src2[31:0] + CASE(tsrc[31:0]) OF + QNAN_TOKEN:j := 0 + SNAN_TOKEN:j := 1 + ZERO_VALUE_TOKEN: j := 2 + ONE_VALUE_TOKEN: j := 3 + NEG_INF_TOKEN: j := 4 + POS_INF_TOKEN: j := 5 + NEG_VALUE_TOKEN: j := 6 + POS_VALUE_TOKEN: j := 7 + ESAC + + token_response[3:0] := src3[3+4*j:4*j] + + CASE(token_response[3:0]) OF + 0 : dest[31:0] := src1[31:0] + 1 : dest[31:0] := tsrc[31:0] + 2 : dest[31:0] := QNaN(tsrc[31:0]) + 3 : dest[31:0] := QNAN_Indefinite + 4 : dest[31:0] := -INF + 5 : dest[31:0] := +INF + 6 : dest[31:0] := tsrc.sign? -INF : +INF + 7 : dest[31:0] := -0 + 8 : dest[31:0] := +0 + 9 : dest[31:0] := -1 + 10: dest[31:0] := +1 + 11: dest[31:0] := 1/2 + 12: dest[31:0] := 90.0 + 13: dest[31:0] := PI/2 + 14: dest[31:0] := MAX_FLOAT + 15: dest[31:0] := -MAX_FLOAT + ESAC + + CASE(tsrc[31:0]) OF + ZERO_VALUE_TOKEN: + IF (imm8[0]) #ZE; FI + ZERO_VALUE_TOKEN: + IF (imm8[1]) #IE; FI + ONE_VALUE_TOKEN: + IF (imm8[2]) #ZE; FI + ONE_VALUE_TOKEN: + IF (imm8[3]) #IE; FI + SNAN_TOKEN: + IF (imm8[4]) #IE; FI + NEG_INF_TOKEN: + IF (imm8[5]) #IE; FI + NEG_VALUE_TOKEN: + IF (imm8[6]) #IE; FI + POS_INF_TOKEN: + IF (imm8[7]) #IE; FI + ESAC + RETURN dest[31:0] +} +FOR j := 0 to 3 + i := j*32 + dst[i+31:i] := FIXUPIMMPD(a[i+31:i], b[i+31:i], c[i+31:i], imm8[7:0]) +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + + Fix up packed single-precision (32-bit) floating-point elements in "a" and "b" using packed 32-bit integers in "c", and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). "imm8" is used to set the required flags reporting. + enum TOKEN_TYPE { + QNAN_TOKEN := 0, \ + SNAN_TOKEN := 1, \ + ZERO_VALUE_TOKEN := 2, \ + ONE_VALUE_TOKEN := 3, \ + NEG_INF_TOKEN := 4, \ + POS_INF_TOKEN := 5, \ + NEG_VALUE_TOKEN := 6, \ + POS_VALUE_TOKEN := 7 +} +DEFINE FIXUPIMMPD(src1[31:0], src2[31:0], src3[31:0], imm8[7:0]) { + tsrc[31:0] := ((src2[30:23] == 0) AND (MXCSR.DAZ == 1)) ? 0.0 : src2[31:0] + CASE(tsrc[31:0]) OF + QNAN_TOKEN:j := 0 + SNAN_TOKEN:j := 1 + ZERO_VALUE_TOKEN: j := 2 + ONE_VALUE_TOKEN: j := 3 + NEG_INF_TOKEN: j := 4 + POS_INF_TOKEN: j := 5 + NEG_VALUE_TOKEN: j := 6 + POS_VALUE_TOKEN: j := 7 + ESAC + + token_response[3:0] := src3[3+4*j:4*j] + + CASE(token_response[3:0]) OF + 0 : dest[31:0] := src1[31:0] + 1 : dest[31:0] := tsrc[31:0] + 2 : dest[31:0] := QNaN(tsrc[31:0]) + 3 : dest[31:0] := QNAN_Indefinite + 4 : dest[31:0] := -INF + 5 : dest[31:0] := +INF + 6 : dest[31:0] := tsrc.sign? -INF : +INF + 7 : dest[31:0] := -0 + 8 : dest[31:0] := +0 + 9 : dest[31:0] := -1 + 10: dest[31:0] := +1 + 11: dest[31:0] := 1/2 + 12: dest[31:0] := 90.0 + 13: dest[31:0] := PI/2 + 14: dest[31:0] := MAX_FLOAT + 15: dest[31:0] := -MAX_FLOAT + ESAC + + CASE(tsrc[31:0]) OF + ZERO_VALUE_TOKEN: + IF (imm8[0]) #ZE; FI + ZERO_VALUE_TOKEN: + IF (imm8[1]) #IE; FI + ONE_VALUE_TOKEN: + IF (imm8[2]) #ZE; FI + ONE_VALUE_TOKEN: + IF (imm8[3]) #IE; FI + SNAN_TOKEN: + IF (imm8[4]) #IE; FI + NEG_INF_TOKEN: + IF (imm8[5]) #IE; FI + NEG_VALUE_TOKEN: + IF (imm8[6]) #IE; FI + POS_INF_TOKEN: + IF (imm8[7]) #IE; FI + ESAC + RETURN dest[31:0] +} +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := FIXUPIMMPD(a[i+31:i], b[i+31:i], c[i+31:i], imm8[7:0]) + ELSE + dst[i+31:i] := a[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + + Fix up packed single-precision (32-bit) floating-point elements in "a" and "b" using packed 32-bit integers in "c", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). "imm8" is used to set the required flags reporting. + enum TOKEN_TYPE { + QNAN_TOKEN := 0, \ + SNAN_TOKEN := 1, \ + ZERO_VALUE_TOKEN := 2, \ + ONE_VALUE_TOKEN := 3, \ + NEG_INF_TOKEN := 4, \ + POS_INF_TOKEN := 5, \ + NEG_VALUE_TOKEN := 6, \ + POS_VALUE_TOKEN := 7 +} +DEFINE FIXUPIMMPD(src1[31:0], src2[31:0], src3[31:0], imm8[7:0]) { + tsrc[31:0] := ((src2[30:23] == 0) AND (MXCSR.DAZ == 1)) ? 0.0 : src2[31:0] + CASE(tsrc[31:0]) OF + QNAN_TOKEN:j := 0 + SNAN_TOKEN:j := 1 + ZERO_VALUE_TOKEN: j := 2 + ONE_VALUE_TOKEN: j := 3 + NEG_INF_TOKEN: j := 4 + POS_INF_TOKEN: j := 5 + NEG_VALUE_TOKEN: j := 6 + POS_VALUE_TOKEN: j := 7 + ESAC + + token_response[3:0] := src3[3+4*j:4*j] + + CASE(token_response[3:0]) OF + 0 : dest[31:0] := src1[31:0] + 1 : dest[31:0] := tsrc[31:0] + 2 : dest[31:0] := QNaN(tsrc[31:0]) + 3 : dest[31:0] := QNAN_Indefinite + 4 : dest[31:0] := -INF + 5 : dest[31:0] := +INF + 6 : dest[31:0] := tsrc.sign? -INF : +INF + 7 : dest[31:0] := -0 + 8 : dest[31:0] := +0 + 9 : dest[31:0] := -1 + 10: dest[31:0] := +1 + 11: dest[31:0] := 1/2 + 12: dest[31:0] := 90.0 + 13: dest[31:0] := PI/2 + 14: dest[31:0] := MAX_FLOAT + 15: dest[31:0] := -MAX_FLOAT + ESAC + + CASE(tsrc[31:0]) OF + ZERO_VALUE_TOKEN: + IF (imm8[0]) #ZE; FI + ZERO_VALUE_TOKEN: + IF (imm8[1]) #IE; FI + ONE_VALUE_TOKEN: + IF (imm8[2]) #ZE; FI + ONE_VALUE_TOKEN: + IF (imm8[3]) #IE; FI + SNAN_TOKEN: + IF (imm8[4]) #IE; FI + NEG_INF_TOKEN: + IF (imm8[5]) #IE; FI + NEG_VALUE_TOKEN: + IF (imm8[6]) #IE; FI + POS_INF_TOKEN: + IF (imm8[7]) #IE; FI + ESAC + RETURN dest[31:0] +} +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := FIXUPIMMPD(a[i+31:i], b[i+31:i], c[i+31:i], imm8[7:0]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + Convert the exponent of each packed double-precision (64-bit) floating-point element in "a" to a double-precision (64-bit) floating-point number representing the integer exponent, and store the results in "dst". This intrinsic essentially calculates "floor(log2(x))" for each element. + FOR j := 0 to 3 + i := j*64 + dst[i+63:i] := ConvertExpFP64(a[i+63:i]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Convert the exponent of each packed double-precision (64-bit) floating-point element in "a" to a double-precision (64-bit) floating-point number representing the integer exponent, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). This intrinsic essentially calculates "floor(log2(x))" for each element. + FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := ConvertExpFP64(a[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + Convert the exponent of each packed double-precision (64-bit) floating-point element in "a" to a double-precision (64-bit) floating-point number representing the integer exponent, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). This intrinsic essentially calculates "floor(log2(x))" for each element. + FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := ConvertExpFP64(a[i+63:i]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + Convert the exponent of each packed double-precision (64-bit) floating-point element in "a" to a double-precision (64-bit) floating-point number representing the integer exponent, and store the results in "dst". This intrinsic essentially calculates "floor(log2(x))" for each element. + FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := ConvertExpFP64(a[i+63:i]) +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Convert the exponent of each packed double-precision (64-bit) floating-point element in "a" to a double-precision (64-bit) floating-point number representing the integer exponent, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). This intrinsic essentially calculates "floor(log2(x))" for each element. + FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := ConvertExpFP64(a[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + Convert the exponent of each packed double-precision (64-bit) floating-point element in "a" to a double-precision (64-bit) floating-point number representing the integer exponent, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). This intrinsic essentially calculates "floor(log2(x))" for each element. + FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := ConvertExpFP64(a[i+63:i]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + Convert the exponent of each packed single-precision (32-bit) floating-point element in "a" to a single-precision (32-bit) floating-point number representing the integer exponent, and store the results in "dst". This intrinsic essentially calculates "floor(log2(x))" for each element. + FOR j := 0 to 7 + i := j*32 + dst[i+31:i] := ConvertExpFP32(a[i+31:i]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Convert the exponent of each packed single-precision (32-bit) floating-point element in "a" to a single-precision (32-bit) floating-point number representing the integer exponent, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). This intrinsic essentially calculates "floor(log2(x))" for each element. + FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := ConvertExpFP32(a[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + Convert the exponent of each packed single-precision (32-bit) floating-point element in "a" to a single-precision (32-bit) floating-point number representing the integer exponent, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). This intrinsic essentially calculates "floor(log2(x))" for each element. + FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := ConvertExpFP32(a[i+31:i]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + Convert the exponent of each packed single-precision (32-bit) floating-point element in "a" to a single-precision (32-bit) floating-point number representing the integer exponent, and store the results in "dst". This intrinsic essentially calculates "floor(log2(x))" for each element. + FOR j := 0 to 3 + i := j*32 + dst[i+31:i] := ConvertExpFP32(a[i+31:i]) +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Convert the exponent of each packed single-precision (32-bit) floating-point element in "a" to a single-precision (32-bit) floating-point number representing the integer exponent, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). This intrinsic essentially calculates "floor(log2(x))" for each element. + FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := ConvertExpFP32(a[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + Convert the exponent of each packed single-precision (32-bit) floating-point element in "a" to a single-precision (32-bit) floating-point number representing the integer exponent, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). This intrinsic essentially calculates "floor(log2(x))" for each element. + FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := ConvertExpFP32(a[i+31:i]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Normalize the mantissas of packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst". This intrinsic essentially calculates "±(2^k)*|x.significand|", where "k" depends on the interval range defined by "interv" and the sign depends on "sc" and the source sign. + [getmant_note] + FOR j := 0 to 3 + i := j*64 + dst[i+63:i] := GetNormalizedMantissa(a[i+63:i], sc, interv) +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + + Normalize the mantissas of packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). This intrinsic essentially calculates "±(2^k)*|x.significand|", where "k" depends on the interval range defined by "interv" and the sign depends on "sc" and the source sign. + [getmant_note] + FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := GetNormalizedMantissa(a[i+63:i], sc, interv) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Normalize the mantissas of packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). This intrinsic essentially calculates "±(2^k)*|x.significand|", where "k" depends on the interval range defined by "interv" and the sign depends on "sc" and the source sign. + [getmant_note] + FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := GetNormalizedMantissa(a[i+63:i], sc, interv) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Normalize the mantissas of packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst". This intrinsic essentially calculates "±(2^k)*|x.significand|", where "k" depends on the interval range defined by "interv" and the sign depends on "sc" and the source sign. + [getmant_note] + FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := GetNormalizedMantissa(a[i+63:i], sc, interv) +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + + Normalize the mantissas of packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). This intrinsic essentially calculates "±(2^k)*|x.significand|", where "k" depends on the interval range defined by "interv" and the sign depends on "sc" and the source sign. + [getmant_note] + FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := GetNormalizedMantissa(a[i+63:i], sc, interv) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Normalize the mantissas of packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). This intrinsic essentially calculates "±(2^k)*|x.significand|", where "k" depends on the interval range defined by "interv" and the sign depends on "sc" and the source sign. + [getmant_note] + FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := GetNormalizedMantissa(a[i+63:i], sc, interv) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Normalize the mantissas of packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst". This intrinsic essentially calculates "±(2^k)*|x.significand|", where "k" depends on the interval range defined by "interv" and the sign depends on "sc" and the source sign. + [getmant_note] + FOR j := 0 to 7 + i := j*32 + dst[i+31:i] := GetNormalizedMantissa(a[i+31:i], sc, interv) +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + + Normalize the mantissas of packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). This intrinsic essentially calculates "±(2^k)*|x.significand|", where "k" depends on the interval range defined by "interv" and the sign depends on "sc" and the source sign. + [getmant_note] + FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := GetNormalizedMantissa(a[i+31:i], sc, interv) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Normalize the mantissas of packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). This intrinsic essentially calculates "±(2^k)*|x.significand|", where "k" depends on the interval range defined by "interv" and the sign depends on "sc" and the source sign. + [getmant_note] + FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := GetNormalizedMantissa(a[i+31:i], sc, interv) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Normalize the mantissas of packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst". This intrinsic essentially calculates "±(2^k)*|x.significand|", where "k" depends on the interval range defined by "interv" and the sign depends on "sc" and the source sign. + [getmant_note] + FOR j := 0 to 3 + i := j*32 + dst[i+31:i] := GetNormalizedMantissa(a[i+31:i], sc, interv) +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + + Normalize the mantissas of packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). This intrinsic essentially calculates "±(2^k)*|x.significand|", where "k" depends on the interval range defined by "interv" and the sign depends on "sc" and the source sign. + [getmant_note] + FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := GetNormalizedMantissa(a[i+31:i], sc, interv) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Normalize the mantissas of packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). This intrinsic essentially calculates "±(2^k)*|x.significand|", where "k" depends on the interval range defined by "interv" and the sign depends on "sc" and the source sign. + [getmant_note] + FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := GetNormalizedMantissa(a[i+31:i], sc, interv) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Copy "a" to "dst", then insert 128 bits (composed of 4 packed single-precision (32-bit) floating-point elements) from "b" into "dst" at the location specified by "imm8". + +dst[255:0] := a[255:0] +CASE (imm8[0]) OF +0: dst[127:0] := b[127:0] +1: dst[255:128] := b[127:0] +ESAC +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + + Copy "a" to "tmp", then insert 128 bits (composed of 4 packed single-precision (32-bit) floating-point elements) from "b" into "tmp" at the location specified by "imm8". Store "tmp" to "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +tmp[255:0] := a[255:0] +CASE (imm8[0]) OF +0: tmp[127:0] := b[127:0] +1: tmp[255:128] := b[127:0] +ESAC +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := tmp[i+31:i] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Copy "a" to "tmp", then insert 128 bits (composed of 4 packed single-precision (32-bit) floating-point elements) from "b" into "tmp" at the location specified by "imm8". Store "tmp" to "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +tmp[255:0] := a[255:0] +CASE (imm8[0]) OF +0: tmp[127:0] := b[127:0] +1: tmp[255:128] := b[127:0] +ESAC +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := tmp[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Copy "a" to "dst", then insert 128 bits (composed of 4 packed 32-bit integers) from "b" into "dst" at the location specified by "imm8". + +dst[255:0] := a[255:0] +CASE (imm8[0]) OF +0: dst[127:0] := b[127:0] +1: dst[255:128] := b[127:0] +ESAC +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + + Copy "a" to "tmp", then insert 128 bits (composed of 4 packed 32-bit integers) from "b" into "tmp" at the location specified by "imm8". Store "tmp" to "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +tmp[255:0] := a[255:0] +CASE (imm8[0]) OF +0: tmp[127:0] := b[127:0] +1: tmp[255:128] := b[127:0] +ESAC +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := tmp[i+31:i] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Copy "a" to "tmp", then insert 128 bits (composed of 4 packed 32-bit integers) from "b" into "tmp" at the location specified by "imm8". Store "tmp" to "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +tmp[255:0] := a[255:0] +CASE (imm8[0]) OF +0: tmp[127:0] := b[127:0] +1: tmp[255:128] := b[127:0] +ESAC +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := tmp[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Blend packed 32-bit integers from "a" and "b" using control mask "k", and store the results in "dst". + +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := b[i+31:i] + ELSE + dst[i+31:i] := a[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Blend packed 32-bit integers from "a" and "b" using control mask "k", and store the results in "dst". + +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := b[i+31:i] + ELSE + dst[i+31:i] := a[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Blend packed 64-bit integers from "a" and "b" using control mask "k", and store the results in "dst". + +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := b[i+63:i] + ELSE + dst[i+63:i] := a[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Blend packed 64-bit integers from "a" and "b" using control mask "k", and store the results in "dst". + +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := b[i+63:i] + ELSE + dst[i+63:i] := a[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Broadcast the low packed 32-bit integer from "a" to all elements of "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := a[31:0] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + Broadcast the low packed 32-bit integer from "a" to all elements of "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := a[31:0] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Broadcast the low packed 32-bit integer from "a" to all elements of "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := a[31:0] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + Broadcast the low packed 32-bit integer from "a" to all elements of "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := a[31:0] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Broadcast the low packed 64-bit integer from "a" to all elements of "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := a[63:0] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + Broadcast the low packed 64-bit integer from "a" to all elements of "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := a[63:0] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Broadcast the low packed 64-bit integer from "a" to all elements of "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := a[63:0] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + Broadcast the low packed 64-bit integer from "a" to all elements of "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := a[63:0] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Contiguously store the active 32-bit integers in "a" (those with their respective bit set in writemask "k") to "dst", and pass through the remaining elements from "src". + +size := 32 +m := 0 +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[m+size-1:m] := a[i+31:i] + m := m + size + FI +ENDFOR +dst[255:m] := src[255:m] +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + Contiguously store the active 32-bit integers in "a" (those with their respective bit set in zeromask "k") to "dst", and set the remaining elements to zero. + +size := 32 +m := 0 +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[m+size-1:m] := a[i+31:i] + m := m + size + FI +ENDFOR +dst[255:m] := 0 +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Contiguously store the active 32-bit integers in "a" (those with their respective bit set in writemask "k") to "dst", and pass through the remaining elements from "src". + +size := 32 +m := 0 +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[m+size-1:m] := a[i+31:i] + m := m + size + FI +ENDFOR +dst[127:m] := src[127:m] +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + Contiguously store the active 32-bit integers in "a" (those with their respective bit set in zeromask "k") to "dst", and set the remaining elements to zero. + +size := 32 +m := 0 +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[m+size-1:m] := a[i+31:i] + m := m + size + FI +ENDFOR +dst[127:m] := 0 +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Contiguously store the active 64-bit integers in "a" (those with their respective bit set in writemask "k") to "dst", and pass through the remaining elements from "src". + +size := 64 +m := 0 +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[m+size-1:m] := a[i+63:i] + m := m + size + FI +ENDFOR +dst[255:m] := src[255:m] +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + Contiguously store the active 64-bit integers in "a" (those with their respective bit set in zeromask "k") to "dst", and set the remaining elements to zero. + +size := 64 +m := 0 +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[m+size-1:m] := a[i+63:i] + m := m + size + FI +ENDFOR +dst[255:m] := 0 +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Contiguously store the active 64-bit integers in "a" (those with their respective bit set in writemask "k") to "dst", and pass through the remaining elements from "src". + +size := 64 +m := 0 +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[m+size-1:m] := a[i+63:i] + m := m + size + FI +ENDFOR +dst[127:m] := src[127:m] +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + Contiguously store the active 64-bit integers in "a" (those with their respective bit set in zeromask "k") to "dst", and set the remaining elements to zero. + +size := 64 +m := 0 +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[m+size-1:m] := a[i+63:i] + m := m + size + FI +ENDFOR +dst[127:m] := 0 +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Shuffle 32-bit integers in "a" across lanes using the corresponding index in "idx", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + id := idx[i+2:i]*32 + IF k[j] + dst[i+31:i] := a[id+31:id] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Shuffle 32-bit integers in "a" across lanes using the corresponding index in "idx", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + id := idx[i+2:i]*32 + IF k[j] + dst[i+31:i] := a[id+31:id] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + Shuffle 32-bit integers in "a" across lanes using the corresponding index in "idx", and store the results in "dst". + +FOR j := 0 to 7 + i := j*32 + id := idx[i+2:i]*32 + dst[i+31:i] := a[id+31:id] +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Shuffle 32-bit integers in "a" and "b" across lanes using the corresponding selector and index in "idx", and store the results in "dst" using writemask "k" (elements are copied from "idx" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + off := idx[i+2:i]*32 + IF k[j] + dst[i+31:i] := idx[i+3] ? b[off+31:off] : a[off+31:off] + ELSE + dst[i+31:i] := idx[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Shuffle 32-bit integers in "a" and "b" across lanes using the corresponding selector and index in "idx", and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + off := idx[i+2:i]*32 + IF k[j] + dst[i+31:i] := idx[i+3] ? b[off+31:off] : a[off+31:off] + ELSE + dst[i+31:i] := a[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Shuffle 32-bit integers in "a" and "b" across lanes using the corresponding selector and index in "idx", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + off := idx[i+2:i]*32 + IF k[j] + dst[i+31:i] := (idx[i+3]) ? b[off+31:off] : a[off+31:off] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Shuffle 32-bit integers in "a" and "b" across lanes using the corresponding selector and index in "idx", and store the results in "dst". + +FOR j := 0 to 7 + i := j*32 + off := idx[i+2:i]*32 + dst[i+31:i] := idx[i+3] ? b[off+31:off] : a[off+31:off] +ENDFOR +dst[MAX:256] := 0 + + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Shuffle 32-bit integers in "a" and "b" using the corresponding selector and index in "idx", and store the results in "dst" using writemask "k" (elements are copied from "idx" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + off := idx[i+1:i]*32 + IF k[j] + dst[i+31:i] := idx[i+2] ? b[off+31:off] : a[off+31:off] + ELSE + dst[i+31:i] := idx[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Shuffle 32-bit integers in "a" and "b" using the corresponding selector and index in "idx", and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + off := idx[i+1:i]*32 + IF k[j] + dst[i+31:i] := idx[i+2] ? b[off+31:off] : a[off+31:off] + ELSE + dst[i+31:i] := a[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Shuffle 32-bit integers in "a" and "b" using the corresponding selector and index in "idx", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + off := idx[i+1:i]*32 + IF k[j] + dst[i+31:i] := (idx[i+2]) ? b[off+31:off] : a[off+31:off] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Shuffle 32-bit integers in "a" and "b" using the corresponding selector and index in "idx", and store the results in "dst". + +FOR j := 0 to 3 + i := j*32 + off := idx[i+1:i]*32 + dst[i+31:i] := idx[i+2] ? b[off+31:off] : a[off+31:off] +ENDFOR +dst[MAX:128] := 0 + + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Shuffle double-precision (64-bit) floating-point elements in "a" and "b" across lanes using the corresponding selector and index in "idx", and store the results in "dst" using writemask "k" (elements are copied from "idx" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + off := idx[i+1:i]*64 + IF k[j] + dst[i+63:i] := idx[i+2] ? b[off+63:off] : a[off+63:off] + ELSE + dst[i+63:i] := idx[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Shuffle double-precision (64-bit) floating-point elements in "a" and "b" across lanes using the corresponding selector and index in "idx", and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + off := idx[i+1:i]*64 + IF k[j] + dst[i+63:i] := idx[i+2] ? b[off+63:off] : a[off+63:off] + ELSE + dst[i+63:i] := a[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Shuffle double-precision (64-bit) floating-point elements in "a" and "b" across lanes using the corresponding selector and index in "idx", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + off := idx[i+1:i]*64 + IF k[j] + dst[i+63:i] := (idx[i+2]) ? b[off+63:off] : a[off+63:off] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Shuffle double-precision (64-bit) floating-point elements in "a" and "b" across lanes using the corresponding selector and index in "idx", and store the results in "dst". + +FOR j := 0 to 3 + i := j*64 + off := idx[i+1:i]*64 + dst[i+63:i] := idx[i+2] ? b[off+63:off] : a[off+63:off] +ENDFOR +dst[MAX:256] := 0 + + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Shuffle double-precision (64-bit) floating-point elements in "a" and "b" using the corresponding selector and index in "idx", and store the results in "dst" using writemask "k" (elements are copied from "idx" when the corresponding mask bit is not set) + +FOR j := 0 to 1 + i := j*64 + off := idx[i]*64 + IF k[j] + dst[i+63:i] := idx[i+1] ? b[off+63:off] : a[off+63:off] + ELSE + dst[i+63:i] := idx[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Shuffle double-precision (64-bit) floating-point elements in "a" and "b" using the corresponding selector and index in "idx", and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + off := idx[i]*64 + IF k[j] + dst[i+63:i] := idx[i+1] ? b[off+63:off] : a[off+63:off] + ELSE + dst[i+63:i] := a[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Shuffle double-precision (64-bit) floating-point elements in "a" and "b" using the corresponding selector and index in "idx", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + off := idx[i]*64 + IF k[j] + dst[i+63:i] := (idx[i+1]) ? b[off+63:off] : a[off+63:off] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Shuffle double-precision (64-bit) floating-point elements in "a" and "b" using the corresponding selector and index in "idx", and store the results in "dst". + +FOR j := 0 to 1 + i := j*64 + off := idx[i]*64 + dst[i+63:i] := idx[i+1] ? b[off+63:off] : a[off+63:off] +ENDFOR +dst[MAX:128] := 0 + + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Shuffle single-precision (32-bit) floating-point elements in "a" and "b" across lanes using the corresponding selector and index in "idx", and store the results in "dst" using writemask "k" (elements are copied from "idx" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + off := idx[i+2:i]*32 + IF k[j] + dst[i+31:i] := idx[i+3] ? b[off+31:off] : a[off+31:off] + ELSE + dst[i+31:i] := idx[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Shuffle single-precision (32-bit) floating-point elements in "a" and "b" across lanes using the corresponding selector and index in "idx", and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + off := idx[i+2:i]*32 + IF k[j] + dst[i+31:i] := idx[i+3] ? b[off+31:off] : a[off+31:off] + ELSE + dst[i+31:i] := a[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Shuffle single-precision (32-bit) floating-point elements in "a" and "b" across lanes using the corresponding selector and index in "idx", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + off := idx[i+2:i]*32 + IF k[j] + dst[i+31:i] := (idx[i+3]) ? b[off+31:off] : a[off+31:off] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Shuffle single-precision (32-bit) floating-point elements in "a" and "b" across lanes using the corresponding selector and index in "idx", and store the results in "dst". + +FOR j := 0 to 7 + i := j*32 + off := idx[i+2:i]*32 + dst[i+31:i] := idx[i+3] ? b[off+31:off] : a[off+31:off] +ENDFOR +dst[MAX:256] := 0 + + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Shuffle single-precision (32-bit) floating-point elements in "a" and "b" using the corresponding selector and index in "idx", and store the results in "dst" using writemask "k" (elements are copied from "idx" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + off := idx[i+1:i]*32 + IF k[j] + dst[i+31:i] := idx[i+2] ? b[off+31:off] : a[off+31:off] + ELSE + dst[i+31:i] := idx[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Shuffle single-precision (32-bit) floating-point elements in "a" and "b" using the corresponding selector and index in "idx", and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + off := idx[i+1:i]*32 + IF k[j] + dst[i+31:i] := idx[i+2] ? b[off+31:off] : a[off+31:off] + ELSE + dst[i+31:i] := a[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Shuffle single-precision (32-bit) floating-point elements in "a" and "b" using the corresponding selector and index in "idx", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + off := idx[i+1:i]*32 + IF k[j] + dst[i+31:i] := (idx[i+2]) ? b[off+31:off] : a[off+31:off] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Shuffle single-precision (32-bit) floating-point elements in "a" and "b" using the corresponding selector and index in "idx", and store the results in "dst". + +FOR j := 0 to 3 + i := j*32 + off := idx[i+1:i]*32 + dst[i+31:i] := idx[i+2] ? b[off+31:off] : a[off+31:off] +ENDFOR +dst[MAX:128] := 0 + + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Shuffle 64-bit integers in "a" and "b" across lanes using the corresponding selector and index in "idx", and store the results in "dst" using writemask "k" (elements are copied from "idx" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + off := idx[i+1:i]*64 + IF k[j] + dst[i+63:i] := idx[i+2] ? b[off+63:off] : a[off+63:off] + ELSE + dst[i+63:i] := idx[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Shuffle 64-bit integers in "a" and "b" across lanes using the corresponding selector and index in "idx", and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + off := idx[i+1:i]*64 + IF k[j] + dst[i+63:i] := idx[i+2] ? b[off+63:off] : a[off+63:off] + ELSE + dst[i+63:i] := a[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Shuffle 64-bit integers in "a" and "b" across lanes using the corresponding selector and index in "idx", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + off := idx[i+1:i]*64 + IF k[j] + dst[i+63:i] := (idx[i+2]) ? b[off+63:off] : a[off+63:off] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Shuffle 64-bit integers in "a" and "b" across lanes using the corresponding selector and index in "idx", and store the results in "dst". + +FOR j := 0 to 3 + i := j*64 + off := idx[i+1:i]*64 + dst[i+63:i] := idx[i+2] ? b[off+63:off] : a[off+63:off] +ENDFOR +dst[MAX:256] := 0 + + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Shuffle 64-bit integers in "a" and "b" using the corresponding selector and index in "idx", and store the results in "dst" using writemask "k" (elements are copied from "idx" when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + off := idx[i]*64 + IF k[j] + dst[i+63:i] := idx[i+1] ? b[off+63:off] : a[off+63:off] + ELSE + dst[i+63:i] := idx[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Shuffle 64-bit integers in "a" and "b" using the corresponding selector and index in "idx", and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + off := idx[i]*64 + IF k[j] + dst[i+63:i] := idx[i+1] ? b[off+63:off] : a[off+63:off] + ELSE + dst[i+63:i] := a[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Shuffle 64-bit integers in "a" and "b" using the corresponding selector and index in "idx", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + off := idx[i]*64 + IF k[j] + dst[i+63:i] := (idx[i+1]) ? b[off+63:off] : a[off+63:off] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Shuffle 64-bit integers in "a" and "b" using the corresponding selector and index in "idx", and store the results in "dst". + +FOR j := 0 to 1 + i := j*64 + off := idx[i]*64 + dst[i+63:i] := idx[i+1] ? b[off+63:off] : a[off+63:off] +ENDFOR +dst[MAX:128] := 0 + + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Shuffle double-precision (64-bit) floating-point elements in "a" within 128-bit lanes using the control in "imm8", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +IF (imm8[0] == 0) tmp_dst[63:0] := a[63:0]; FI +IF (imm8[0] == 1) tmp_dst[63:0] := a[127:64]; FI +IF (imm8[1] == 0) tmp_dst[127:64] := a[63:0]; FI +IF (imm8[1] == 1) tmp_dst[127:64] := a[127:64]; FI +IF (imm8[2] == 0) tmp_dst[191:128] := a[191:128]; FI +IF (imm8[2] == 1) tmp_dst[191:128] := a[255:192]; FI +IF (imm8[3] == 0) tmp_dst[255:192] := a[191:128]; FI +IF (imm8[3] == 1) tmp_dst[255:192] := a[255:192]; FI +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := tmp_dst[i+63:i] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Shuffle double-precision (64-bit) floating-point elements in "a" within 128-bit lanes using the control in "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +IF (b[1] == 0) tmp_dst[63:0] := a[63:0]; FI +IF (b[1] == 1) tmp_dst[63:0] := a[127:64]; FI +IF (b[65] == 0) tmp_dst[127:64] := a[63:0]; FI +IF (b[65] == 1) tmp_dst[127:64] := a[127:64]; FI +IF (b[129] == 0) tmp_dst[191:128] := a[191:128]; FI +IF (b[129] == 1) tmp_dst[191:128] := a[255:192]; FI +IF (b[193] == 0) tmp_dst[255:192] := a[191:128]; FI +IF (b[193] == 1) tmp_dst[255:192] := a[255:192]; FI +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := tmp_dst[i+63:i] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Shuffle double-precision (64-bit) floating-point elements in "a" within 128-bit lanes using the control in "imm8", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +IF (imm8[0] == 0) tmp_dst[63:0] := a[63:0]; FI +IF (imm8[0] == 1) tmp_dst[63:0] := a[127:64]; FI +IF (imm8[1] == 0) tmp_dst[127:64] := a[63:0]; FI +IF (imm8[1] == 1) tmp_dst[127:64] := a[127:64]; FI +IF (imm8[2] == 0) tmp_dst[191:128] := a[191:128]; FI +IF (imm8[2] == 1) tmp_dst[191:128] := a[255:192]; FI +IF (imm8[3] == 0) tmp_dst[255:192] := a[191:128]; FI +IF (imm8[3] == 1) tmp_dst[255:192] := a[255:192]; FI +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := tmp_dst[i+63:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Shuffle double-precision (64-bit) floating-point elements in "a" within 128-bit lanes using the control in "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +IF (b[1] == 0) tmp_dst[63:0] := a[63:0]; FI +IF (b[1] == 1) tmp_dst[63:0] := a[127:64]; FI +IF (b[65] == 0) tmp_dst[127:64] := a[63:0]; FI +IF (b[65] == 1) tmp_dst[127:64] := a[127:64]; FI +IF (b[129] == 0) tmp_dst[191:128] := a[191:128]; FI +IF (b[129] == 1) tmp_dst[191:128] := a[255:192]; FI +IF (b[193] == 0) tmp_dst[255:192] := a[191:128]; FI +IF (b[193] == 1) tmp_dst[255:192] := a[255:192]; FI +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := tmp_dst[i+63:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Shuffle double-precision (64-bit) floating-point elements in "a" using the control in "imm8", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +IF (imm8[0] == 0) tmp_dst[63:0] := a[63:0]; FI +IF (imm8[0] == 1) tmp_dst[63:0] := a[127:64]; FI +IF (imm8[1] == 0) tmp_dst[127:64] := a[63:0]; FI +IF (imm8[1] == 1) tmp_dst[127:64] := a[127:64]; FI +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := tmp_dst[i+63:i] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Shuffle double-precision (64-bit) floating-point elements in "a" using the control in "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +IF (b[1] == 0) tmp_dst[63:0] := a[63:0]; FI +IF (b[1] == 1) tmp_dst[63:0] := a[127:64]; FI +IF (b[65] == 0) tmp_dst[127:64] := a[63:0]; FI +IF (b[65] == 1) tmp_dst[127:64] := a[127:64]; FI +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := tmp_dst[i+63:i] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Shuffle double-precision (64-bit) floating-point elements in "a" using the control in "imm8", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +IF (imm8[0] == 0) tmp_dst[63:0] := a[63:0]; FI +IF (imm8[0] == 1) tmp_dst[63:0] := a[127:64]; FI +IF (imm8[1] == 0) tmp_dst[127:64] := a[63:0]; FI +IF (imm8[1] == 1) tmp_dst[127:64] := a[127:64]; FI +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := tmp_dst[i+63:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Shuffle double-precision (64-bit) floating-point elements in "a" using the control in "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +IF (b[1] == 0) tmp_dst[63:0] := a[63:0]; FI +IF (b[1] == 1) tmp_dst[63:0] := a[127:64]; FI +IF (b[65] == 0) tmp_dst[127:64] := a[63:0]; FI +IF (b[65] == 1) tmp_dst[127:64] := a[127:64]; FI +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := tmp_dst[i+63:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Shuffle single-precision (32-bit) floating-point elements in "a" within 128-bit lanes using the control in "imm8", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +DEFINE SELECT4(src, control) { + CASE(control[1:0]) OF + 0: tmp[31:0] := src[31:0] + 1: tmp[31:0] := src[63:32] + 2: tmp[31:0] := src[95:64] + 3: tmp[31:0] := src[127:96] + ESAC + RETURN tmp[31:0] +} +tmp_dst[31:0] := SELECT4(a[127:0], imm8[1:0]) +tmp_dst[63:32] := SELECT4(a[127:0], imm8[3:2]) +tmp_dst[95:64] := SELECT4(a[127:0], imm8[5:4]) +tmp_dst[127:96] := SELECT4(a[127:0], imm8[7:6]) +tmp_dst[159:128] := SELECT4(a[255:128], imm8[1:0]) +tmp_dst[191:160] := SELECT4(a[255:128], imm8[3:2]) +tmp_dst[223:192] := SELECT4(a[255:128], imm8[5:4]) +tmp_dst[255:224] := SELECT4(a[255:128], imm8[7:6]) +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := tmp_dst[i+31:i] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Shuffle single-precision (32-bit) floating-point elements in "a" within 128-bit lanes using the control in "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +DEFINE SELECT4(src, control) { + CASE(control[1:0]) OF + 0: tmp[31:0] := src[31:0] + 1: tmp[31:0] := src[63:32] + 2: tmp[31:0] := src[95:64] + 3: tmp[31:0] := src[127:96] + ESAC + RETURN tmp[31:0] +} +tmp_dst[31:0] := SELECT4(a[127:0], b[1:0]) +tmp_dst[63:32] := SELECT4(a[127:0], b[33:32]) +tmp_dst[95:64] := SELECT4(a[127:0], b[65:64]) +tmp_dst[127:96] := SELECT4(a[127:0], b[97:96]) +tmp_dst[159:128] := SELECT4(a[255:128], b[129:128]) +tmp_dst[191:160] := SELECT4(a[255:128], b[161:160]) +tmp_dst[223:192] := SELECT4(a[255:128], b[193:192]) +tmp_dst[255:224] := SELECT4(a[255:128], b[225:224]) +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := tmp_dst[i+31:i] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Shuffle single-precision (32-bit) floating-point elements in "a" within 128-bit lanes using the control in "imm8", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +DEFINE SELECT4(src, control) { + CASE(control[1:0]) OF + 0: tmp[31:0] := src[31:0] + 1: tmp[31:0] := src[63:32] + 2: tmp[31:0] := src[95:64] + 3: tmp[31:0] := src[127:96] + ESAC + RETURN tmp[31:0] +} +tmp_dst[31:0] := SELECT4(a[127:0], imm8[1:0]) +tmp_dst[63:32] := SELECT4(a[127:0], imm8[3:2]) +tmp_dst[95:64] := SELECT4(a[127:0], imm8[5:4]) +tmp_dst[127:96] := SELECT4(a[127:0], imm8[7:6]) +tmp_dst[159:128] := SELECT4(a[255:128], imm8[1:0]) +tmp_dst[191:160] := SELECT4(a[255:128], imm8[3:2]) +tmp_dst[223:192] := SELECT4(a[255:128], imm8[5:4]) +tmp_dst[255:224] := SELECT4(a[255:128], imm8[7:6]) +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := tmp_dst[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Shuffle single-precision (32-bit) floating-point elements in "a" within 128-bit lanes using the control in "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +DEFINE SELECT4(src, control) { + CASE(control[1:0]) OF + 0: tmp[31:0] := src[31:0] + 1: tmp[31:0] := src[63:32] + 2: tmp[31:0] := src[95:64] + 3: tmp[31:0] := src[127:96] + ESAC + RETURN tmp[31:0] +} +tmp_dst[31:0] := SELECT4(a[127:0], b[1:0]) +tmp_dst[63:32] := SELECT4(a[127:0], b[33:32]) +tmp_dst[95:64] := SELECT4(a[127:0], b[65:64]) +tmp_dst[127:96] := SELECT4(a[127:0], b[97:96]) +tmp_dst[159:128] := SELECT4(a[255:128], b[129:128]) +tmp_dst[191:160] := SELECT4(a[255:128], b[161:160]) +tmp_dst[223:192] := SELECT4(a[255:128], b[193:192]) +tmp_dst[255:224] := SELECT4(a[255:128], b[225:224]) +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := tmp_dst[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Shuffle single-precision (32-bit) floating-point elements in "a" using the control in "imm8", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +DEFINE SELECT4(src, control) { + CASE(control[1:0]) OF + 0: tmp[31:0] := src[31:0] + 1: tmp[31:0] := src[63:32] + 2: tmp[31:0] := src[95:64] + 3: tmp[31:0] := src[127:96] + ESAC + RETURN tmp[31:0] +} +tmp_dst[31:0] := SELECT4(a[127:0], imm8[1:0]) +tmp_dst[63:32] := SELECT4(a[127:0], imm8[3:2]) +tmp_dst[95:64] := SELECT4(a[127:0], imm8[5:4]) +tmp_dst[127:96] := SELECT4(a[127:0], imm8[7:6]) +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := tmp_dst[i+31:i] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Shuffle single-precision (32-bit) floating-point elements in "a" using the control in "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +DEFINE SELECT4(src, control) { + CASE(control[1:0]) OF + 0: tmp[31:0] := src[31:0] + 1: tmp[31:0] := src[63:32] + 2: tmp[31:0] := src[95:64] + 3: tmp[31:0] := src[127:96] + ESAC + RETURN tmp[31:0] +} +tmp_dst[31:0] := SELECT4(a[127:0], b[1:0]) +tmp_dst[63:32] := SELECT4(a[127:0], b[33:32]) +tmp_dst[95:64] := SELECT4(a[127:0], b[65:64]) +tmp_dst[127:96] := SELECT4(a[127:0], b[97:96]) +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := tmp_dst[i+31:i] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Shuffle single-precision (32-bit) floating-point elements in "a" using the control in "imm8", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +DEFINE SELECT4(src, control) { + CASE(control[1:0]) OF + 0: tmp[31:0] := src[31:0] + 1: tmp[31:0] := src[63:32] + 2: tmp[31:0] := src[95:64] + 3: tmp[31:0] := src[127:96] + ESAC + RETURN tmp[31:0] +} +tmp_dst[31:0] := SELECT4(a[127:0], imm8[1:0]) +tmp_dst[63:32] := SELECT4(a[127:0], imm8[3:2]) +tmp_dst[95:64] := SELECT4(a[127:0], imm8[5:4]) +tmp_dst[127:96] := SELECT4(a[127:0], imm8[7:6]) +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := tmp_dst[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Shuffle single-precision (32-bit) floating-point elements in "a" using the control in "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +DEFINE SELECT4(src, control) { + CASE(control[1:0]) OF + 0: tmp[31:0] := src[31:0] + 1: tmp[31:0] := src[63:32] + 2: tmp[31:0] := src[95:64] + 3: tmp[31:0] := src[127:96] + ESAC + RETURN tmp[31:0] +} +tmp_dst[31:0] := SELECT4(a[127:0], b[1:0]) +tmp_dst[63:32] := SELECT4(a[127:0], b[33:32]) +tmp_dst[95:64] := SELECT4(a[127:0], b[65:64]) +tmp_dst[127:96] := SELECT4(a[127:0], b[97:96]) +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := tmp_dst[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Shuffle double-precision (64-bit) floating-point elements in "a" across lanes using the control in "imm8", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +DEFINE SELECT4(src, control) { + CASE(control[1:0]) OF + 0: tmp[63:0] := src[63:0] + 1: tmp[63:0] := src[127:64] + 2: tmp[63:0] := src[191:128] + 3: tmp[63:0] := src[255:192] + ESAC + RETURN tmp[63:0] +} +tmp_dst[63:0] := SELECT4(a[255:0], imm8[1:0]) +tmp_dst[127:64] := SELECT4(a[255:0], imm8[3:2]) +tmp_dst[191:128] := SELECT4(a[255:0], imm8[5:4]) +tmp_dst[255:192] := SELECT4(a[255:0], imm8[7:6]) +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := tmp_dst[i+63:i] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Shuffle double-precision (64-bit) floating-point elements in "a" across lanes using the corresponding index in "idx", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + id := idx[i+1:i]*64 + IF k[j] + dst[i+63:i] := a[id+63:id] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Shuffle double-precision (64-bit) floating-point elements in "a" across lanes using the control in "imm8", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +DEFINE SELECT4(src, control) { + CASE(control[1:0]) OF + 0: tmp[63:0] := src[63:0] + 1: tmp[63:0] := src[127:64] + 2: tmp[63:0] := src[191:128] + 3: tmp[63:0] := src[255:192] + ESAC + RETURN tmp[63:0] +} +tmp_dst[63:0] := SELECT4(a[255:0], imm8[1:0]) +tmp_dst[127:64] := SELECT4(a[255:0], imm8[3:2]) +tmp_dst[191:128] := SELECT4(a[255:0], imm8[5:4]) +tmp_dst[255:192] := SELECT4(a[255:0], imm8[7:6]) +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := tmp_dst[i+63:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Shuffle double-precision (64-bit) floating-point elements in "a" across lanes using the corresponding index in "idx", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + id := idx[i+1:i]*64 + IF k[j] + dst[i+63:i] := a[id+63:id] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + Shuffle double-precision (64-bit) floating-point elements in "a" across lanes using the control in "imm8", and store the results in "dst". + +DEFINE SELECT4(src, control) { + CASE(control[1:0]) OF + 0: tmp[63:0] := src[63:0] + 1: tmp[63:0] := src[127:64] + 2: tmp[63:0] := src[191:128] + 3: tmp[63:0] := src[255:192] + ESAC + RETURN tmp[63:0] +} +dst[63:0] := SELECT4(a[255:0], imm8[1:0]) +dst[127:64] := SELECT4(a[255:0], imm8[3:2]) +dst[191:128] := SELECT4(a[255:0], imm8[5:4]) +dst[255:192] := SELECT4(a[255:0], imm8[7:6]) +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + Shuffle double-precision (64-bit) floating-point elements in "a" across lanes using the corresponding index in "idx", and store the results in "dst". + +FOR j := 0 to 3 + i := j*64 + id := idx[i+1:i]*64 + dst[i+63:i] := a[id+63:id] +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Shuffle single-precision (32-bit) floating-point elements in "a" across lanes using the corresponding index in "idx", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + id := idx[i+2:i]*32 + IF k[j] + dst[i+31:i] := a[id+31:id] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Shuffle single-precision (32-bit) floating-point elements in "a" across lanes using the corresponding index in "idx", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + id := idx[i+2:i]*32 + IF k[j] + dst[i+31:i] := a[id+31:id] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + Shuffle single-precision (32-bit) floating-point elements in "a" across lanes using the corresponding index in "idx". + +FOR j := 0 to 7 + i := j*32 + id := idx[i+2:i]*32 + dst[i+31:i] := a[id+31:id] +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Shuffle 64-bit integers in "a" across lanes lanes using the control in "imm8", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +DEFINE SELECT4(src, control) { + CASE(control[1:0]) OF + 0: tmp[63:0] := src[63:0] + 1: tmp[63:0] := src[127:64] + 2: tmp[63:0] := src[191:128] + 3: tmp[63:0] := src[255:192] + ESAC + RETURN tmp[63:0] +} +tmp_dst[63:0] := SELECT4(a[255:0], imm8[1:0]) +tmp_dst[127:64] := SELECT4(a[255:0], imm8[3:2]) +tmp_dst[191:128] := SELECT4(a[255:0], imm8[5:4]) +tmp_dst[255:192] := SELECT4(a[255:0], imm8[7:6]) +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := tmp_dst[i+63:i] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Shuffle 64-bit integers in "a" across lanes using the corresponding index in "idx", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + id := idx[i+1:i]*64 + IF k[j] + dst[i+63:i] := a[id+63:id] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Shuffle 64-bit integers in "a" across lanes using the control in "imm8", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +DEFINE SELECT4(src, control) { + CASE(control[1:0]) OF + 0: tmp[63:0] := src[63:0] + 1: tmp[63:0] := src[127:64] + 2: tmp[63:0] := src[191:128] + 3: tmp[63:0] := src[255:192] + ESAC + RETURN tmp[63:0] +} +tmp_dst[63:0] := SELECT4(a[255:0], imm8[1:0]) +tmp_dst[127:64] := SELECT4(a[255:0], imm8[3:2]) +tmp_dst[191:128] := SELECT4(a[255:0], imm8[5:4]) +tmp_dst[255:192] := SELECT4(a[255:0], imm8[7:6]) +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := tmp_dst[i+63:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Shuffle 64-bit integers in "a" across lanes using the corresponding index in "idx", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + id := idx[i+1:i]*64 + IF k[j] + dst[i+63:i] := a[id+63:id] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + Shuffle 64-bit integers in "a" across lanes using the control in "imm8", and store the results in "dst". + +DEFINE SELECT4(src, control) { + CASE(control[1:0]) OF + 0: tmp[63:0] := src[63:0] + 1: tmp[63:0] := src[127:64] + 2: tmp[63:0] := src[191:128] + 3: tmp[63:0] := src[255:192] + ESAC + RETURN tmp[63:0] +} +dst[63:0] := SELECT4(a[255:0], imm8[1:0]) +dst[127:64] := SELECT4(a[255:0], imm8[3:2]) +dst[191:128] := SELECT4(a[255:0], imm8[5:4]) +dst[255:192] := SELECT4(a[255:0], imm8[7:6]) +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + Shuffle 64-bit integers in "a" across lanes using the corresponding index in "idx", and store the results in "dst". + +FOR j := 0 to 3 + i := j*64 + id := idx[i+1:i]*64 + dst[i+63:i] := a[id+63:id] +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Load contiguous active 32-bit integers from "a" (those with their respective bit set in mask "k"), and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +m := 0 +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := a[m+31:m] + m := m + 32 + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + Load contiguous active 32-bit integers from "a" (those with their respective bit set in mask "k"), and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +m := 0 +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := a[m+31:m] + m := m + 32 + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Load contiguous active 32-bit integers from "a" (those with their respective bit set in mask "k"), and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +m := 0 +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := a[m+31:m] + m := m + 32 + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + Load contiguous active 32-bit integers from "a" (those with their respective bit set in mask "k"), and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +m := 0 +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := a[m+31:m] + m := m + 32 + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Load contiguous active 64-bit integers from "a" (those with their respective bit set in mask "k"), and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +m := 0 +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := a[m+63:m] + m := m + 64 + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + Load contiguous active 64-bit integers from "a" (those with their respective bit set in mask "k"), and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +m := 0 +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := a[m+63:m] + m := m + 64 + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Load contiguous active 64-bit integers from "a" (those with their respective bit set in mask "k"), and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +m := 0 +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := a[m+63:m] + m := m + 64 + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + Load contiguous active 64-bit integers from "a" (those with their respective bit set in mask "k"), and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +m := 0 +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := a[m+63:m] + m := m + 64 + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Shuffle 32-bit integers in "a" within 128-bit lanes using the control in "imm8", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +DEFINE SELECT4(src, control) { + CASE(control[1:0]) OF + 0: tmp[31:0] := src[31:0] + 1: tmp[31:0] := src[63:32] + 2: tmp[31:0] := src[95:64] + 3: tmp[31:0] := src[127:96] + ESAC + RETURN tmp[31:0] +} +tmp_dst[31:0] := SELECT4(a[127:0], imm8[1:0]) +tmp_dst[63:32] := SELECT4(a[127:0], imm8[3:2]) +tmp_dst[95:64] := SELECT4(a[127:0], imm8[5:4]) +tmp_dst[127:96] := SELECT4(a[127:0], imm8[7:6]) +tmp_dst[159:128] := SELECT4(a[255:128], imm8[1:0]) +tmp_dst[191:160] := SELECT4(a[255:128], imm8[3:2]) +tmp_dst[223:192] := SELECT4(a[255:128], imm8[5:4]) +tmp_dst[255:224] := SELECT4(a[255:128], imm8[7:6]) +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := tmp_dst[i+31:i] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Shuffle 32-bit integers in "a" within 128-bit lanes using the control in "imm8", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +DEFINE SELECT4(src, control) { + CASE(control[1:0]) OF + 0: tmp[31:0] := src[31:0] + 1: tmp[31:0] := src[63:32] + 2: tmp[31:0] := src[95:64] + 3: tmp[31:0] := src[127:96] + ESAC + RETURN tmp[31:0] +} +tmp_dst[31:0] := SELECT4(a[127:0], imm8[1:0]) +tmp_dst[63:32] := SELECT4(a[127:0], imm8[3:2]) +tmp_dst[95:64] := SELECT4(a[127:0], imm8[5:4]) +tmp_dst[127:96] := SELECT4(a[127:0], imm8[7:6]) +tmp_dst[159:128] := SELECT4(a[255:128], imm8[1:0]) +tmp_dst[191:160] := SELECT4(a[255:128], imm8[3:2]) +tmp_dst[223:192] := SELECT4(a[255:128], imm8[5:4]) +tmp_dst[255:224] := SELECT4(a[255:128], imm8[7:6]) +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := tmp_dst[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Shuffle 32-bit integers in "a" using the control in "imm8", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +DEFINE SELECT4(src, control) { + CASE(control[1:0]) OF + 0: tmp[31:0] := src[31:0] + 1: tmp[31:0] := src[63:32] + 2: tmp[31:0] := src[95:64] + 3: tmp[31:0] := src[127:96] + ESAC + RETURN tmp[31:0] +} +tmp_dst[31:0] := SELECT4(a[127:0], imm8[1:0]) +tmp_dst[63:32] := SELECT4(a[127:0], imm8[3:2]) +tmp_dst[95:64] := SELECT4(a[127:0], imm8[5:4]) +tmp_dst[127:96] := SELECT4(a[127:0], imm8[7:6]) +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := tmp_dst[i+31:i] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Shuffle 32-bit integers in "a" using the control in "imm8", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +DEFINE SELECT4(src, control) { + CASE(control[1:0]) OF + 0: tmp[31:0] := src[31:0] + 1: tmp[31:0] := src[63:32] + 2: tmp[31:0] := src[95:64] + 3: tmp[31:0] := src[127:96] + ESAC + RETURN tmp[31:0] +} +tmp_dst[31:0] := SELECT4(a[127:0], imm8[1:0]) +tmp_dst[63:32] := SELECT4(a[127:0], imm8[3:2]) +tmp_dst[95:64] := SELECT4(a[127:0], imm8[5:4]) +tmp_dst[127:96] := SELECT4(a[127:0], imm8[7:6]) +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := tmp_dst[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Unpack and interleave 32-bit integers from the high half of each 128-bit lane in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +DEFINE INTERLEAVE_HIGH_DWORDS(src1[127:0], src2[127:0]) { + dst[31:0] := src1[95:64] + dst[63:32] := src2[95:64] + dst[95:64] := src1[127:96] + dst[127:96] := src2[127:96] + RETURN dst[127:0] +} +tmp_dst[127:0] := INTERLEAVE_HIGH_DWORDS(a[127:0], b[127:0]) +tmp_dst[255:128] := INTERLEAVE_HIGH_DWORDS(a[255:128], b[255:128]) +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := tmp_dst[i+31:i] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Unpack and interleave 32-bit integers from the high half of each 128-bit lane in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +DEFINE INTERLEAVE_HIGH_DWORDS(src1[127:0], src2[127:0]) { + dst[31:0] := src1[95:64] + dst[63:32] := src2[95:64] + dst[95:64] := src1[127:96] + dst[127:96] := src2[127:96] + RETURN dst[127:0] +} +tmp_dst[127:0] := INTERLEAVE_HIGH_DWORDS(a[127:0], b[127:0]) +tmp_dst[255:128] := INTERLEAVE_HIGH_DWORDS(a[255:128], b[255:128]) +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := tmp_dst[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Unpack and interleave 32-bit integers from the high half of "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +DEFINE INTERLEAVE_HIGH_DWORDS(src1[127:0], src2[127:0]) { + dst[31:0] := src1[95:64] + dst[63:32] := src2[95:64] + dst[95:64] := src1[127:96] + dst[127:96] := src2[127:96] + RETURN dst[127:0] +} +tmp_dst[127:0] := INTERLEAVE_HIGH_DWORDS(a[127:0], b[127:0]) +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := tmp_dst[i+31:i] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Unpack and interleave 32-bit integers from the high half of "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +DEFINE INTERLEAVE_HIGH_DWORDS(src1[127:0], src2[127:0]) { + dst[31:0] := src1[95:64] + dst[63:32] := src2[95:64] + dst[95:64] := src1[127:96] + dst[127:96] := src2[127:96] + RETURN dst[127:0] +} +tmp_dst[127:0] := INTERLEAVE_HIGH_DWORDS(a[127:0], b[127:0]) +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := tmp_dst[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Unpack and interleave 64-bit integers from the high half of each 128-bit lane in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +DEFINE INTERLEAVE_HIGH_QWORDS(src1[127:0], src2[127:0]) { + dst[63:0] := src1[127:64] + dst[127:64] := src2[127:64] + RETURN dst[127:0] +} +tmp_dst[127:0] := INTERLEAVE_HIGH_QWORDS(a[127:0], b[127:0]) +tmp_dst[255:128] := INTERLEAVE_HIGH_QWORDS(a[255:128], b[255:128]) +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := tmp_dst[i+63:i] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Unpack and interleave 64-bit integers from the high half of each 128-bit lane in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +DEFINE INTERLEAVE_HIGH_QWORDS(src1[127:0], src2[127:0]) { + dst[63:0] := src1[127:64] + dst[127:64] := src2[127:64] + RETURN dst[127:0] +} +tmp_dst[127:0] := INTERLEAVE_HIGH_QWORDS(a[127:0], b[127:0]) +tmp_dst[255:128] := INTERLEAVE_HIGH_QWORDS(a[255:128], b[255:128]) +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := tmp_dst[i+63:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Unpack and interleave 64-bit integers from the high half of "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +DEFINE INTERLEAVE_HIGH_QWORDS(src1[127:0], src2[127:0]) { + dst[63:0] := src1[127:64] + dst[127:64] := src2[127:64] + RETURN dst[127:0] +} +tmp_dst[127:0] := INTERLEAVE_HIGH_QWORDS(a[127:0], b[127:0]) +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := tmp_dst[i+63:i] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Unpack and interleave 64-bit integers from the high half of "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +DEFINE INTERLEAVE_HIGH_QWORDS(src1[127:0], src2[127:0]) { + dst[63:0] := src1[127:64] + dst[127:64] := src2[127:64] + RETURN dst[127:0] +} +tmp_dst[127:0] := INTERLEAVE_HIGH_QWORDS(a[127:0], b[127:0]) +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := tmp_dst[i+63:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Unpack and interleave 32-bit integers from the low half of each 128-bit lane in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +DEFINE INTERLEAVE_DWORDS(src1[127:0], src2[127:0]) { + dst[31:0] := src1[31:0] + dst[63:32] := src2[31:0] + dst[95:64] := src1[63:32] + dst[127:96] := src2[63:32] + RETURN dst[127:0] +} +tmp_dst[127:0] := INTERLEAVE_DWORDS(a[127:0], b[127:0]) +tmp_dst[255:128] := INTERLEAVE_DWORDS(a[255:128], b[255:128]) +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := tmp_dst[i+31:i] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Unpack and interleave 32-bit integers from the low half of each 128-bit lane in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +DEFINE INTERLEAVE_DWORDS(src1[127:0], src2[127:0]) { + dst[31:0] := src1[31:0] + dst[63:32] := src2[31:0] + dst[95:64] := src1[63:32] + dst[127:96] := src2[63:32] + RETURN dst[127:0] +} +tmp_dst[127:0] := INTERLEAVE_DWORDS(a[127:0], b[127:0]) +tmp_dst[255:128] := INTERLEAVE_DWORDS(a[255:128], b[255:128]) +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := tmp_dst[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Unpack and interleave 32-bit integers from the low half of "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +DEFINE INTERLEAVE_DWORDS(src1[127:0], src2[127:0]) { + dst[31:0] := src1[31:0] + dst[63:32] := src2[31:0] + dst[95:64] := src1[63:32] + dst[127:96] := src2[63:32] + RETURN dst[127:0] +} +tmp_dst[127:0] := INTERLEAVE_DWORDS(a[127:0], b[127:0]) +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := tmp_dst[i+31:i] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Unpack and interleave 32-bit integers from the low half of "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +DEFINE INTERLEAVE_DWORDS(src1[127:0], src2[127:0]) { + dst[31:0] := src1[31:0] + dst[63:32] := src2[31:0] + dst[95:64] := src1[63:32] + dst[127:96] := src2[63:32] + RETURN dst[127:0] +} +tmp_dst[127:0] := INTERLEAVE_DWORDS(a[127:0], b[127:0]) +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := tmp_dst[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Unpack and interleave 64-bit integers from the low half of each 128-bit lane in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +DEFINE INTERLEAVE_QWORDS(src1[127:0], src2[127:0]) { + dst[63:0] := src1[63:0] + dst[127:64] := src2[63:0] + RETURN dst[127:0] +} +tmp_dst[127:0] := INTERLEAVE_QWORDS(a[127:0], b[127:0]) +tmp_dst[255:128] := INTERLEAVE_QWORDS(a[255:128], b[255:128]) +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := tmp_dst[i+63:i] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Unpack and interleave 64-bit integers from the low half of each 128-bit lane in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +DEFINE INTERLEAVE_QWORDS(src1[127:0], src2[127:0]) { + dst[63:0] := src1[63:0] + dst[127:64] := src2[63:0] + RETURN dst[127:0] +} +tmp_dst[127:0] := INTERLEAVE_QWORDS(a[127:0], b[127:0]) +tmp_dst[255:128] := INTERLEAVE_QWORDS(a[255:128], b[255:128]) +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := tmp_dst[i+63:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Unpack and interleave 64-bit integers from the low half of "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +DEFINE INTERLEAVE_QWORDS(src1[127:0], src2[127:0]) { + dst[63:0] := src1[63:0] + dst[127:64] := src2[63:0] + RETURN dst[127:0] +} +tmp_dst[127:0] := INTERLEAVE_QWORDS(a[127:0], b[127:0]) +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := tmp_dst[i+63:i] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Unpack and interleave 64-bit integers from the low half of "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +DEFINE INTERLEAVE_QWORDS(src1[127:0], src2[127:0]) { + dst[63:0] := src1[63:0] + dst[127:64] := src2[63:0] + RETURN dst[127:0] +} +tmp_dst[127:0] := INTERLEAVE_QWORDS(a[127:0], b[127:0]) +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := tmp_dst[i+63:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Round packed double-precision (64-bit) floating-point elements in "a" to the number of fraction bits specified by "imm8", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). [round_imm_note] + +DEFINE RoundScaleFP64(src1[63:0], imm8[7:0]) { + m[63:0] := FP64(imm8[7:4]) // number of fraction bits after the binary point to be preserved + tmp[63:0] := POW(2.0, -m) * ROUND(POW(2.0, m) * src1[63:0], imm8[3:0]) + IF IsInf(tmp[63:0]) + tmp[63:0] := src1[63:0] + FI + RETURN tmp[63:0] +} +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := RoundScaleFP64(a[i+63:i], imm8[7:0]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Round packed double-precision (64-bit) floating-point elements in "a" to the number of fraction bits specified by "imm8", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). [round_imm_note] + +DEFINE RoundScaleFP64(src1[63:0], imm8[7:0]) { + m[63:0] := FP64(imm8[7:4]) // number of fraction bits after the binary point to be preserved + tmp[63:0] := POW(2.0, -m) * ROUND(POW(2.0, m) * src1[63:0], imm8[3:0]) + IF IsInf(tmp[63:0]) + tmp[63:0] := src1[63:0] + FI + RETURN tmp[63:0] +} +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := RoundScaleFP64(a[i+63:i], imm8[7:0]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + Round packed double-precision (64-bit) floating-point elements in "a" to the number of fraction bits specified by "imm8", and store the results in "dst". [round_imm_note] + +DEFINE RoundScaleFP64(src1[63:0], imm8[7:0]) { + m[63:0] := FP64(imm8[7:4]) // number of fraction bits after the binary point to be preserved + tmp[63:0] := POW(2.0, -m) * ROUND(POW(2.0, m) * src1[63:0], imm8[3:0]) + IF IsInf(tmp[63:0]) + tmp[63:0] := src1[63:0] + FI + RETURN tmp[63:0] +} +FOR j := 0 to 3 + i := j*64 + dst[i+63:i] := RoundScaleFP64(a[i+63:i], imm8[7:0]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Round packed double-precision (64-bit) floating-point elements in "a" to the number of fraction bits specified by "imm8", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). [round_imm_note] + +DEFINE RoundScaleFP64(src1[63:0], imm8[7:0]) { + m[63:0] := FP64(imm8[7:4]) // number of fraction bits after the binary point to be preserved + tmp[63:0] := POW(2.0, -m) * ROUND(POW(2.0, m) * src1[63:0], imm8[3:0]) + IF IsInf(tmp[63:0]) + tmp[63:0] := src1[63:0] + FI + RETURN tmp[63:0] +} +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := RoundScaleFP64(a[i+63:i], imm8[7:0]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Round packed double-precision (64-bit) floating-point elements in "a" to the number of fraction bits specified by "imm8", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). [round_imm_note] + +DEFINE RoundScaleFP64(src1[63:0], imm8[7:0]) { + m[63:0] := FP64(imm8[7:4]) // number of fraction bits after the binary point to be preserved + tmp[63:0] := POW(2.0, -m) * ROUND(POW(2.0, m) * src1[63:0], imm8[3:0]) + IF IsInf(tmp[63:0]) + tmp[63:0] := src1[63:0] + FI + RETURN tmp[63:0] +} +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := RoundScaleFP64(a[i+63:i], imm8[7:0]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + Round packed double-precision (64-bit) floating-point elements in "a" to the number of fraction bits specified by "imm8", and store the results in "dst". [round_imm_note] + +DEFINE RoundScaleFP64(src1[63:0], imm8[7:0]) { + m[63:0] := FP64(imm8[7:4]) // number of fraction bits after the binary point to be preserved + tmp[63:0] := POW(2.0, -m) * ROUND(POW(2.0, m) * src1[63:0], imm8[3:0]) + IF IsInf(tmp[63:0]) + tmp[63:0] := src1[63:0] + FI + RETURN tmp[63:0] +} +FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := RoundScaleFP64(a[i+63:i], imm8[7:0]) +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Round packed single-precision (32-bit) floating-point elements in "a" to the number of fraction bits specified by "imm8", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). [round_imm_note] + +DEFINE RoundScaleFP32(src1[31:0], imm8[7:0]) { + m[31:0] := FP32(imm8[7:4]) // number of fraction bits after the binary point to be preserved + tmp[31:0] := POW(FP32(2.0), -m) * ROUND(POW(FP32(2.0), m) * src1[31:0], imm8[3:0]) + IF IsInf(tmp[31:0]) + tmp[31:0] := src1[31:0] + FI + RETURN tmp[31:0] +} +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := RoundScaleFP32(a[i+31:i], imm8[7:0]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Round packed single-precision (32-bit) floating-point elements in "a" to the number of fraction bits specified by "imm8", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). [round_imm_note] + +DEFINE RoundScaleFP32(src1[31:0], imm8[7:0]) { + m[31:0] := FP32(imm8[7:4]) // number of fraction bits after the binary point to be preserved + tmp[31:0] := POW(FP32(2.0), -m) * ROUND(POW(FP32(2.0), m) * src1[31:0], imm8[3:0]) + IF IsInf(tmp[31:0]) + tmp[31:0] := src1[31:0] + FI + RETURN tmp[31:0] +} +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := RoundScaleFP32(a[i+31:i], imm8[7:0]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + Round packed single-precision (32-bit) floating-point elements in "a" to the number of fraction bits specified by "imm8", and store the results in "dst". [round_imm_note] + +DEFINE RoundScaleFP32(src1[31:0], imm8[7:0]) { + m[31:0] := FP32(imm8[7:4]) // number of fraction bits after the binary point to be preserved + tmp[31:0] := POW(FP32(2.0), -m) * ROUND(POW(FP32(2.0), m) * src1[31:0], imm8[3:0]) + IF IsInf(tmp[31:0]) + tmp[31:0] := src1[31:0] + FI + RETURN tmp[31:0] +} +FOR j := 0 to 7 + i := j*32 + dst[i+31:i] := RoundScaleFP32(a[i+31:i], imm8[7:0]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Round packed single-precision (32-bit) floating-point elements in "a" to the number of fraction bits specified by "imm8", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). [round_imm_note] + +DEFINE RoundScaleFP32(src1[31:0], imm8[7:0]) { + m[31:0] := FP32(imm8[7:4]) // number of fraction bits after the binary point to be preserved + tmp[31:0] := POW(FP32(2.0), -m) * ROUND(POW(FP32(2.0), m) * src1[31:0], imm8[3:0]) + IF IsInf(tmp[31:0]) + tmp[31:0] := src1[31:0] + FI + RETURN tmp[31:0] +} +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := RoundScaleFP32(a[i+31:i], imm8[7:0]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Round packed single-precision (32-bit) floating-point elements in "a" to the number of fraction bits specified by "imm8", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). [round_imm_note] + +DEFINE RoundScaleFP32(src1[31:0], imm8[7:0]) { + m[31:0] := FP32(imm8[7:4]) // number of fraction bits after the binary point to be preserved + tmp[31:0] := POW(FP32(2.0), -m) * ROUND(POW(FP32(2.0), m) * src1[31:0], imm8[3:0]) + IF IsInf(tmp[31:0]) + tmp[31:0] := src1[31:0] + FI + RETURN tmp[31:0] +} +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := RoundScaleFP32(a[i+31:i], imm8[7:0]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + Round packed single-precision (32-bit) floating-point elements in "a" to the number of fraction bits specified by "imm8", and store the results in "dst". [round_imm_note] + +DEFINE RoundScaleFP32(src1[31:0], imm8[7:0]) { + m[31:0] := FP32(imm8[7:4]) // number of fraction bits after the binary point to be preserved + tmp[31:0] := POW(FP32(2.0), -m) * ROUND(POW(FP32(2.0), m) * src1[31:0], imm8[3:0]) + IF IsInf(tmp[31:0]) + tmp[31:0] := src1[31:0] + FI + RETURN tmp[31:0] +} +FOR j := 0 to 3 + i := j*32 + dst[i+31:i] := RoundScaleFP32(a[i+31:i], imm8[7:0]) +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Scale the packed double-precision (64-bit) floating-point elements in "a" using values from "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + DEFINE SCALE(src1, src2) { + IF (src2 == NaN) + IF (src2 == SNaN) + RETURN QNAN(src2) + FI + ELSE IF (src1 == NaN) + IF (src1 == SNaN) + RETURN QNAN(src1) + FI + IF (src2 != INF) + RETURN QNAN(src1) + FI + ELSE + tmp_src2 := src2 + tmp_src1 := src1 + IF (IS_DENORMAL(src2) AND MXCSR.DAZ) + tmp_src2 := 0 + FI + IF (IS_DENORMAL(src1) AND MXCSR.DAZ) + tmp_src1 := 0 + FI + FI + dst[63:0] := tmp_src1[63:0] * POW(2.0, FLOOR(tmp_src2[63:0])) + RETURN dst[63:0] +} +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := SCALE(a[i+63:0], b[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Scale the packed double-precision (64-bit) floating-point elements in "a" using values from "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + DEFINE SCALE(src1, src2) { + IF (src2 == NaN) + IF (src2 == SNaN) + RETURN QNAN(src2) + FI + ELSE IF (src1 == NaN) + IF (src1 == SNaN) + RETURN QNAN(src1) + FI + IF (src2 != INF) + RETURN QNAN(src1) + FI + ELSE + tmp_src2 := src2 + tmp_src1 := src1 + IF (IS_DENORMAL(src2) AND MXCSR.DAZ) + tmp_src2 := 0 + FI + IF (IS_DENORMAL(src1) AND MXCSR.DAZ) + tmp_src1 := 0 + FI + FI + dst[63:0] := tmp_src1[63:0] * POW(2.0, FLOOR(tmp_src2[63:0])) + RETURN dst[63:0] +} +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := SCALE(a[i+63:0], b[i+63:i]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + Scale the packed double-precision (64-bit) floating-point elements in "a" using values from "b", and store the results in "dst". + DEFINE SCALE(src1, src2) { + IF (src2 == NaN) + IF (src2 == SNaN) + RETURN QNAN(src2) + FI + ELSE IF (src1 == NaN) + IF (src1 == SNaN) + RETURN QNAN(src1) + FI + IF (src2 != INF) + RETURN QNAN(src1) + FI + ELSE + tmp_src2 := src2 + tmp_src1 := src1 + IF (IS_DENORMAL(src2) AND MXCSR.DAZ) + tmp_src2 := 0 + FI + IF (IS_DENORMAL(src1) AND MXCSR.DAZ) + tmp_src1 := 0 + FI + FI + dst[63:0] := tmp_src1[63:0] * POW(2.0, FLOOR(tmp_src2[63:0])) + RETURN dst[63:0] +} +FOR j := 0 to 3 + i := j*64 + dst[i+63:i] := SCALE(a[i+63:0], b[i+63:i]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Scale the packed double-precision (64-bit) floating-point elements in "a" using values from "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + DEFINE SCALE(src1, src2) { + IF (src2 == NaN) + IF (src2 == SNaN) + RETURN QNAN(src2) + FI + ELSE IF (src1 == NaN) + IF (src1 == SNaN) + RETURN QNAN(src1) + FI + IF (src2 != INF) + RETURN QNAN(src1) + FI + ELSE + tmp_src2 := src2 + tmp_src1 := src1 + IF (IS_DENORMAL(src2) AND MXCSR.DAZ) + tmp_src2 := 0 + FI + IF (IS_DENORMAL(src1) AND MXCSR.DAZ) + tmp_src1 := 0 + FI + FI + dst[63:0] := tmp_src1[63:0] * POW(2.0, FLOOR(tmp_src2[63:0])) + RETURN dst[63:0] +} +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := SCALE(a[i+63:0], b[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Scale the packed double-precision (64-bit) floating-point elements in "a" using values from "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + DEFINE SCALE(src1, src2) { + IF (src2 == NaN) + IF (src2 == SNaN) + RETURN QNAN(src2) + FI + ELSE IF (src1 == NaN) + IF (src1 == SNaN) + RETURN QNAN(src1) + FI + IF (src2 != INF) + RETURN QNAN(src1) + FI + ELSE + tmp_src2 := src2 + tmp_src1 := src1 + IF (IS_DENORMAL(src2) AND MXCSR.DAZ) + tmp_src2 := 0 + FI + IF (IS_DENORMAL(src1) AND MXCSR.DAZ) + tmp_src1 := 0 + FI + FI + dst[63:0] := tmp_src1[63:0] * POW(2.0, FLOOR(tmp_src2[63:0])) + RETURN dst[63:0] +} +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := SCALE(a[i+63:0], b[i+63:i]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + Scale the packed double-precision (64-bit) floating-point elements in "a" using values from "b", and store the results in "dst". + DEFINE SCALE(src1, src2) { + IF (src2 == NaN) + IF (src2 == SNaN) + RETURN QNAN(src2) + FI + ELSE IF (src1 == NaN) + IF (src1 == SNaN) + RETURN QNAN(src1) + FI + IF (src2 != INF) + RETURN QNAN(src1) + FI + ELSE + tmp_src2 := src2 + tmp_src1 := src1 + IF (IS_DENORMAL(src2) AND MXCSR.DAZ) + tmp_src2 := 0 + FI + IF (IS_DENORMAL(src1) AND MXCSR.DAZ) + tmp_src1 := 0 + FI + FI + dst[63:0] := tmp_src1[63:0] * POW(2.0, FLOOR(tmp_src2[63:0])) + RETURN dst[63:0] +} +FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := SCALE(a[i+63:0], b[i+63:i]) +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Scale the packed single-precision (32-bit) floating-point elements in "a" using values from "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + DEFINE SCALE(src1, src2) { + IF (src2 == NaN) + IF (src2 == SNaN) + RETURN QNAN(src2) + FI + ELSE IF (src1 == NaN) + IF (src1 == SNaN) + RETURN QNAN(src1) + FI + IF (src2 != INF) + RETURN QNAN(src1) + FI + ELSE + tmp_src2 := src2 + tmp_src1 := src1 + IF (IS_DENORMAL(src2) AND MXCSR.DAZ) + tmp_src2 := 0 + FI + IF (IS_DENORMAL(src1) AND MXCSR.DAZ) + tmp_src1 := 0 + FI + FI + dst[31:0] := tmp_src1[31:0] * POW(2.0, FLOOR(tmp_src2[31:0])) + RETURN dst[31:0] +} +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := SCALE(a[i+31:0], b[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Scale the packed single-precision (32-bit) floating-point elements in "a" using values from "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + DEFINE SCALE(src1, src2) { + IF (src2 == NaN) + IF (src2 == SNaN) + RETURN QNAN(src2) + FI + ELSE IF (src1 == NaN) + IF (src1 == SNaN) + RETURN QNAN(src1) + FI + IF (src2 != INF) + RETURN QNAN(src1) + FI + ELSE + tmp_src2 := src2 + tmp_src1 := src1 + IF (IS_DENORMAL(src2) AND MXCSR.DAZ) + tmp_src2 := 0 + FI + IF (IS_DENORMAL(src1) AND MXCSR.DAZ) + tmp_src1 := 0 + FI + FI + dst[31:0] := tmp_src1[31:0] * POW(2.0, FLOOR(tmp_src2[31:0])) + RETURN dst[31:0] +} +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := SCALE(a[i+31:0], b[i+31:i]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + Scale the packed single-precision (32-bit) floating-point elements in "a" using values from "b", and store the results in "dst". + DEFINE SCALE(src1, src2) { + IF (src2 == NaN) + IF (src2 == SNaN) + RETURN QNAN(src2) + FI + ELSE IF (src1 == NaN) + IF (src1 == SNaN) + RETURN QNAN(src1) + FI + IF (src2 != INF) + RETURN QNAN(src1) + FI + ELSE + tmp_src2 := src2 + tmp_src1 := src1 + IF (IS_DENORMAL(src2) AND MXCSR.DAZ) + tmp_src2 := 0 + FI + IF (IS_DENORMAL(src1) AND MXCSR.DAZ) + tmp_src1 := 0 + FI + FI + dst[31:0] := tmp_src1[31:0] * POW(2.0, FLOOR(tmp_src2[31:0])) + RETURN dst[31:0] +} +FOR j := 0 to 7 + i := j*32 + dst[i+31:i] := SCALE(a[i+31:0], b[i+31:i]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Scale the packed single-precision (32-bit) floating-point elements in "a" using values from "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + DEFINE SCALE(src1, src2) { + IF (src2 == NaN) + IF (src2 == SNaN) + RETURN QNAN(src2) + FI + ELSE IF (src1 == NaN) + IF (src1 == SNaN) + RETURN QNAN(src1) + FI + IF (src2 != INF) + RETURN QNAN(src1) + FI + ELSE + tmp_src2 := src2 + tmp_src1 := src1 + IF (IS_DENORMAL(src2) AND MXCSR.DAZ) + tmp_src2 := 0 + FI + IF (IS_DENORMAL(src1) AND MXCSR.DAZ) + tmp_src1 := 0 + FI + FI + dst[31:0] := tmp_src1[31:0] * POW(2.0, FLOOR(tmp_src2[31:0])) + RETURN dst[31:0] +} +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := SCALE(a[i+31:0], b[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Scale the packed single-precision (32-bit) floating-point elements in "a" using values from "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + DEFINE SCALE(src1, src2) { + IF (src2 == NaN) + IF (src2 == SNaN) + RETURN QNAN(src2) + FI + ELSE IF (src1 == NaN) + IF (src1 == SNaN) + RETURN QNAN(src1) + FI + IF (src2 != INF) + RETURN QNAN(src1) + FI + ELSE + tmp_src2 := src2 + tmp_src1 := src1 + IF (IS_DENORMAL(src2) AND MXCSR.DAZ) + tmp_src2 := 0 + FI + IF (IS_DENORMAL(src1) AND MXCSR.DAZ) + tmp_src1 := 0 + FI + FI + dst[31:0] := tmp_src1[31:0] * POW(2.0, FLOOR(tmp_src2[31:0])) + RETURN dst[31:0] +} +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := SCALE(a[i+31:0], b[i+31:i]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + Scale the packed single-precision (32-bit) floating-point elements in "a" using values from "b", and store the results in "dst". + DEFINE SCALE(src1, src2) { + IF (src2 == NaN) + IF (src2 == SNaN) + RETURN QNAN(src2) + FI + ELSE IF (src1 == NaN) + IF (src1 == SNaN) + RETURN QNAN(src1) + FI + IF (src2 != INF) + RETURN QNAN(src1) + FI + ELSE + tmp_src2 := src2 + tmp_src1 := src1 + IF (IS_DENORMAL(src2) AND MXCSR.DAZ) + tmp_src2 := 0 + FI + IF (IS_DENORMAL(src1) AND MXCSR.DAZ) + tmp_src1 := 0 + FI + FI + dst[31:0] := tmp_src1[31:0] * POW(2.0, FLOOR(tmp_src2[31:0])) + RETURN dst[31:0] +} +FOR j := 0 to 3 + i := j*32 + dst[i+31:i] := SCALE(a[i+31:0], b[i+31:i]) +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + + Shuffle 128-bits (composed of 4 single-precision (32-bit) floating-point elements) selected by "imm8" from "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +tmp_dst.m128[0] := a.m128[imm8[0]] +tmp_dst.m128[1] := b.m128[imm8[1]] +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := tmp_dst[i+31:i] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Shuffle 128-bits (composed of 4 single-precision (32-bit) floating-point elements) selected by "imm8" from "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +tmp_dst.m128[0] := a.m128[imm8[0]] +tmp_dst.m128[1] := b.m128[imm8[1]] +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := tmp_dst[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Shuffle 128-bits (composed of 4 single-precision (32-bit) floating-point elements) selected by "imm8" from "a" and "b", and store the results in "dst". + +dst.m128[0] := a.m128[imm8[0]] +dst.m128[1] := b.m128[imm8[1]] +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + + Shuffle 128-bits (composed of 2 double-precision (64-bit) floating-point elements) selected by "imm8" from "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +tmp_dst.m128[0] := a.m128[imm8[0]] +tmp_dst.m128[1] := b.m128[imm8[1]] +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := tmp_dst[i+63:i] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Shuffle 128-bits (composed of 2 double-precision (64-bit) floating-point elements) selected by "imm8" from "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +tmp_dst.m128[0] := a.m128[imm8[0]] +tmp_dst.m128[1] := b.m128[imm8[1]] +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := tmp_dst[i+63:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Shuffle 128-bits (composed of 2 double-precision (64-bit) floating-point elements) selected by "imm8" from "a" and "b", and store the results in "dst". + +dst.m128[0] := a.m128[imm8[0]] +dst.m128[1] := b.m128[imm8[1]] +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + + Shuffle 128-bits (composed of 4 32-bit integers) selected by "imm8" from "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +tmp_dst.m128[0] := a.m128[imm8[0]] +tmp_dst.m128[1] := b.m128[imm8[1]] +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := tmp_dst[i+31:i] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Shuffle 128-bits (composed of 4 32-bit integers) selected by "imm8" from "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +tmp_dst.m128[0] := a.m128[imm8[0]] +tmp_dst.m128[1] := b.m128[imm8[1]] +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := tmp_dst[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Shuffle 128-bits (composed of 4 32-bit integers) selected by "imm8" from "a" and "b", and store the results in "dst". + +dst.m128[0] := a.m128[imm8[0]] +dst.m128[1] := b.m128[imm8[1]] +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + + Shuffle 128-bits (composed of 2 64-bit integers) selected by "imm8" from "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +tmp_dst.m128[0] := a.m128[imm8[0]] +tmp_dst.m128[1] := b.m128[imm8[1]] +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := tmp_dst[i+63:i] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Shuffle 128-bits (composed of 2 64-bit integers) selected by "imm8" from "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +tmp_dst.m128[0] := a.m128[imm8[0]] +tmp_dst.m128[1] := b.m128[imm8[1]] +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := tmp_dst[i+63:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Shuffle 128-bits (composed of 2 64-bit integers) selected by "imm8" from "a" and "b", and store the results in "dst". + +dst.m128[0] := a.m128[imm8[0]] +dst.m128[1] := b.m128[imm8[1]] +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + + Shuffle double-precision (64-bit) floating-point elements within 128-bit lanes using the control in "imm8", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +tmp_dst[63:0] := (imm8[0] == 0) ? a[63:0] : a[127:64] +tmp_dst[127:64] := (imm8[1] == 0) ? b[63:0] : b[127:64] +tmp_dst[191:128] := (imm8[2] == 0) ? a[191:128] : a[255:192] +tmp_dst[255:192] := (imm8[3] == 0) ? b[191:128] : b[255:192] +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := tmp_dst[i+63:i] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Shuffle double-precision (64-bit) floating-point elements within 128-bit lanes using the control in "imm8", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +tmp_dst[63:0] := (imm8[0] == 0) ? a[63:0] : a[127:64] +tmp_dst[127:64] := (imm8[1] == 0) ? b[63:0] : b[127:64] +tmp_dst[191:128] := (imm8[2] == 0) ? a[191:128] : a[255:192] +tmp_dst[255:192] := (imm8[3] == 0) ? b[191:128] : b[255:192] +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := tmp_dst[i+63:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + + Shuffle double-precision (64-bit) floating-point elements using the control in "imm8", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +tmp_dst[63:0] := (imm8[0] == 0) ? a[63:0] : a[127:64] +tmp_dst[127:64] := (imm8[1] == 0) ? b[63:0] : b[127:64] +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := tmp_dst[i+63:i] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Shuffle double-precision (64-bit) floating-point elements using the control in "imm8", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +tmp_dst[63:0] := (imm8[0] == 0) ? a[63:0] : a[127:64] +tmp_dst[127:64] := (imm8[1] == 0) ? b[63:0] : b[127:64] +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := tmp_dst[i+63:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + + Shuffle single-precision (32-bit) floating-point elements in "a" within 128-bit lanes using the control in "imm8", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +DEFINE SELECT4(src, control) { + CASE(control[1:0]) OF + 0: tmp[31:0] := src[31:0] + 1: tmp[31:0] := src[63:32] + 2: tmp[31:0] := src[95:64] + 3: tmp[31:0] := src[127:96] + ESAC + RETURN tmp[31:0] +} +tmp_dst[31:0] := SELECT4(a[127:0], imm8[1:0]) +tmp_dst[63:32] := SELECT4(a[127:0], imm8[3:2]) +tmp_dst[95:64] := SELECT4(b[127:0], imm8[5:4]) +tmp_dst[127:96] := SELECT4(b[127:0], imm8[7:6]) +tmp_dst[159:128] := SELECT4(a[255:128], imm8[1:0]) +tmp_dst[191:160] := SELECT4(a[255:128], imm8[3:2]) +tmp_dst[223:192] := SELECT4(b[255:128], imm8[5:4]) +tmp_dst[255:224] := SELECT4(b[255:128], imm8[7:6]) +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := tmp_dst[i+31:i] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Shuffle single-precision (32-bit) floating-point elements in "a" within 128-bit lanes using the control in "imm8", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +DEFINE SELECT4(src, control) { + CASE(control[1:0]) OF + 0: tmp[31:0] := src[31:0] + 1: tmp[31:0] := src[63:32] + 2: tmp[31:0] := src[95:64] + 3: tmp[31:0] := src[127:96] + ESAC + RETURN tmp[31:0] +} +tmp_dst[31:0] := SELECT4(a[127:0], imm8[1:0]) +tmp_dst[63:32] := SELECT4(a[127:0], imm8[3:2]) +tmp_dst[95:64] := SELECT4(b[127:0], imm8[5:4]) +tmp_dst[127:96] := SELECT4(b[127:0], imm8[7:6]) +tmp_dst[159:128] := SELECT4(a[255:128], imm8[1:0]) +tmp_dst[191:160] := SELECT4(a[255:128], imm8[3:2]) +tmp_dst[223:192] := SELECT4(b[255:128], imm8[5:4]) +tmp_dst[255:224] := SELECT4(b[255:128], imm8[7:6]) +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := tmp_dst[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + + Shuffle single-precision (32-bit) floating-point elements in "a" using the control in "imm8", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +DEFINE SELECT4(src, control) { + CASE(control[1:0]) OF + 0: tmp[31:0] := src[31:0] + 1: tmp[31:0] := src[63:32] + 2: tmp[31:0] := src[95:64] + 3: tmp[31:0] := src[127:96] + ESAC + RETURN tmp[31:0] +} +tmp_dst[31:0] := SELECT4(a[127:0], imm8[1:0]) +tmp_dst[63:32] := SELECT4(a[127:0], imm8[3:2]) +tmp_dst[95:64] := SELECT4(b[127:0], imm8[5:4]) +tmp_dst[127:96] := SELECT4(b[127:0], imm8[7:6]) +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := tmp_dst[i+31:i] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Shuffle single-precision (32-bit) floating-point elements in "a" using the control in "imm8", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +DEFINE SELECT4(src, control) { + CASE(control[1:0]) OF + 0: tmp[31:0] := src[31:0] + 1: tmp[31:0] := src[63:32] + 2: tmp[31:0] := src[95:64] + 3: tmp[31:0] := src[127:96] + ESAC + RETURN tmp[31:0] +} +tmp_dst[31:0] := SELECT4(a[127:0], imm8[1:0]) +tmp_dst[63:32] := SELECT4(a[127:0], imm8[3:2]) +tmp_dst[95:64] := SELECT4(b[127:0], imm8[5:4]) +tmp_dst[127:96] := SELECT4(b[127:0], imm8[7:6]) +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := tmp_dst[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Unpack and interleave double-precision (64-bit) floating-point elements from the high half of each 128-bit lane in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +DEFINE INTERLEAVE_HIGH_QWORDS(src1[127:0], src2[127:0]) { + dst[63:0] := src1[127:64] + dst[127:64] := src2[127:64] + RETURN dst[127:0] +} +tmp_dst[127:0] := INTERLEAVE_HIGH_QWORDS(a[127:0], b[127:0]) +tmp_dst[255:128] := INTERLEAVE_HIGH_QWORDS(a[255:128], b[255:128]) +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := tmp_dst[i+63:i] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Unpack and interleave double-precision (64-bit) floating-point elements from the high half of each 128-bit lane in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +DEFINE INTERLEAVE_HIGH_QWORDS(src1[127:0], src2[127:0]) { + dst[63:0] := src1[127:64] + dst[127:64] := src2[127:64] + RETURN dst[127:0] +} +tmp_dst[127:0] := INTERLEAVE_HIGH_QWORDS(a[127:0], b[127:0]) +tmp_dst[255:128] := INTERLEAVE_HIGH_QWORDS(a[255:128], b[255:128]) +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := tmp_dst[i+63:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Unpack and interleave double-precision (64-bit) floating-point elements from the high half of "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +DEFINE INTERLEAVE_HIGH_QWORDS(src1[127:0], src2[127:0]) { + dst[63:0] := src1[127:64] + dst[127:64] := src2[127:64] + RETURN dst[127:0] +} +tmp_dst[127:0] := INTERLEAVE_HIGH_QWORDS(a[127:0], b[127:0]) +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := tmp_dst[i+63:i] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Unpack and interleave double-precision (64-bit) floating-point elements from the high half of "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +DEFINE INTERLEAVE_HIGH_QWORDS(src1[127:0], src2[127:0]) { + dst[63:0] := src1[127:64] + dst[127:64] := src2[127:64] + RETURN dst[127:0] +} +tmp_dst[127:0] := INTERLEAVE_HIGH_QWORDS(a[127:0], b[127:0]) +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := tmp_dst[i+63:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Unpack and interleave single-precision (32-bit) floating-point elements from the high half of each 128-bit lane in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +DEFINE INTERLEAVE_HIGH_DWORDS(src1[127:0], src2[127:0]) { + dst[31:0] := src1[95:64] + dst[63:32] := src2[95:64] + dst[95:64] := src1[127:96] + dst[127:96] := src2[127:96] + RETURN dst[127:0] +} +tmp_dst[127:0] := INTERLEAVE_HIGH_DWORDS(a[127:0], b[127:0]) +tmp_dst[255:128] := INTERLEAVE_HIGH_DWORDS(a[255:128], b[255:128]) +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := tmp_dst[i+31:i] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Unpack and interleave single-precision (32-bit) floating-point elements from the high half of each 128-bit lane in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +DEFINE INTERLEAVE_HIGH_DWORDS(src1[127:0], src2[127:0]) { + dst[31:0] := src1[95:64] + dst[63:32] := src2[95:64] + dst[95:64] := src1[127:96] + dst[127:96] := src2[127:96] + RETURN dst[127:0] +} +tmp_dst[127:0] := INTERLEAVE_HIGH_DWORDS(a[127:0], b[127:0]) +tmp_dst[255:128] := INTERLEAVE_HIGH_DWORDS(a[255:128], b[255:128]) +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := tmp_dst[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Unpack and interleave single-precision (32-bit) floating-point elements from the high half of "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +DEFINE INTERLEAVE_HIGH_DWORDS(src1[127:0], src2[127:0]) { + dst[31:0] := src1[95:64] + dst[63:32] := src2[95:64] + dst[95:64] := src1[127:96] + dst[127:96] := src2[127:96] + RETURN dst[127:0] +} +tmp_dst[127:0] := INTERLEAVE_HIGH_DWORDS(a[127:0], b[127:0]) +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := tmp_dst[i+31:i] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Unpack and interleave single-precision (32-bit) floating-point elements from the high half of "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +DEFINE INTERLEAVE_HIGH_DWORDS(src1[127:0], src2[127:0]) { + dst[31:0] := src1[95:64] + dst[63:32] := src2[95:64] + dst[95:64] := src1[127:96] + dst[127:96] := src2[127:96] + RETURN dst[127:0] +} +tmp_dst[127:0] := INTERLEAVE_HIGH_DWORDS(a[127:0], b[127:0]) +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := tmp_dst[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Unpack and interleave double-precision (64-bit) floating-point elements from the low half of each 128-bit lane in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +DEFINE INTERLEAVE_QWORDS(src1[127:0], src2[127:0]) { + dst[63:0] := src1[63:0] + dst[127:64] := src2[63:0] + RETURN dst[127:0] +} +tmp_dst[127:0] := INTERLEAVE_QWORDS(a[127:0], b[127:0]) +tmp_dst[255:128] := INTERLEAVE_QWORDS(a[255:128], b[255:128]) +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := tmp_dst[i+63:i] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Unpack and interleave double-precision (64-bit) floating-point elements from the low half of each 128-bit lane in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +DEFINE INTERLEAVE_QWORDS(src1[127:0], src2[127:0]) { + dst[63:0] := src1[63:0] + dst[127:64] := src2[63:0] + RETURN dst[127:0] +} +tmp_dst[127:0] := INTERLEAVE_QWORDS(a[127:0], b[127:0]) +tmp_dst[255:128] := INTERLEAVE_QWORDS(a[255:128], b[255:128]) +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := tmp_dst[i+63:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Unpack and interleave double-precision (64-bit) floating-point elements from the low half of "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +DEFINE INTERLEAVE_QWORDS(src1[127:0], src2[127:0]) { + dst[63:0] := src1[63:0] + dst[127:64] := src2[63:0] + RETURN dst[127:0] +} +tmp_dst[127:0] := INTERLEAVE_QWORDS(a[127:0], b[127:0]) +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := tmp_dst[i+63:i] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Unpack and interleave double-precision (64-bit) floating-point elements from the low half of "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +DEFINE INTERLEAVE_QWORDS(src1[127:0], src2[127:0]) { + dst[63:0] := src1[63:0] + dst[127:64] := src2[63:0] + RETURN dst[127:0] +} +tmp_dst[127:0] := INTERLEAVE_QWORDS(a[127:0], b[127:0]) +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := tmp_dst[i+63:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Unpack and interleave single-precision (32-bit) floating-point elements from the low half of each 128-bit lane in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +DEFINE INTERLEAVE_DWORDS(src1[127:0], src2[127:0]) { + dst[31:0] := src1[31:0] + dst[63:32] := src2[31:0] + dst[95:64] := src1[63:32] + dst[127:96] := src2[63:32] + RETURN dst[127:0] +} +tmp_dst[127:0] := INTERLEAVE_DWORDS(a[127:0], b[127:0]) +tmp_dst[255:128] := INTERLEAVE_DWORDS(a[255:128], b[255:128]) +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := tmp_dst[i+31:i] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Unpack and interleave single-precision (32-bit) floating-point elements from the low half of each 128-bit lane in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +DEFINE INTERLEAVE_DWORDS(src1[127:0], src2[127:0]) { + dst[31:0] := src1[31:0] + dst[63:32] := src2[31:0] + dst[95:64] := src1[63:32] + dst[127:96] := src2[63:32] + RETURN dst[127:0] +} +tmp_dst[127:0] := INTERLEAVE_DWORDS(a[127:0], b[127:0]) +tmp_dst[255:128] := INTERLEAVE_DWORDS(a[255:128], b[255:128]) +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := tmp_dst[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Unpack and interleave single-precision (32-bit) floating-point elements from the low half of "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +DEFINE INTERLEAVE_DWORDS(src1[127:0], src2[127:0]) { + dst[31:0] := src1[31:0] + dst[63:32] := src2[31:0] + dst[95:64] := src1[63:32] + dst[127:96] := src2[63:32] + RETURN dst[127:0] +} +tmp_dst[127:0] := INTERLEAVE_DWORDS(a[127:0], b[127:0]) +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := tmp_dst[i+31:i] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Unpack and interleave single-precision (32-bit) floating-point elements from the low half of "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +DEFINE INTERLEAVE_DWORDS(src1[127:0], src2[127:0]) { + dst[31:0] := src1[31:0] + dst[63:32] := src2[31:0] + dst[95:64] := src1[63:32] + dst[127:96] := src2[63:32] + RETURN dst[127:0] +} +tmp_dst[127:0] := INTERLEAVE_DWORDS(a[127:0], b[127:0]) +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := tmp_dst[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Compare packed double-precision (64-bit) floating-point elements in "a" and "b" based on the comparison operand specified by "imm8", and store the results in mask vector "k". + CASE (imm8[4:0]) OF +0: OP := _CMP_EQ_OQ +1: OP := _CMP_LT_OS +2: OP := _CMP_LE_OS +3: OP := _CMP_UNORD_Q +4: OP := _CMP_NEQ_UQ +5: OP := _CMP_NLT_US +6: OP := _CMP_NLE_US +7: OP := _CMP_ORD_Q +8: OP := _CMP_EQ_UQ +9: OP := _CMP_NGE_US +10: OP := _CMP_NGT_US +11: OP := _CMP_FALSE_OQ +12: OP := _CMP_NEQ_OQ +13: OP := _CMP_GE_OS +14: OP := _CMP_GT_OS +15: OP := _CMP_TRUE_UQ +16: OP := _CMP_EQ_OS +17: OP := _CMP_LT_OQ +18: OP := _CMP_LE_OQ +19: OP := _CMP_UNORD_S +20: OP := _CMP_NEQ_US +21: OP := _CMP_NLT_UQ +22: OP := _CMP_NLE_UQ +23: OP := _CMP_ORD_S +24: OP := _CMP_EQ_US +25: OP := _CMP_NGE_UQ +26: OP := _CMP_NGT_UQ +27: OP := _CMP_FALSE_OS +28: OP := _CMP_NEQ_OS +29: OP := _CMP_GE_OQ +30: OP := _CMP_GT_OQ +31: OP := _CMP_TRUE_US +ESAC +FOR j := 0 to 3 + i := j*64 + k[j] := (a[i+63:i] OP b[i+63:i]) ? 1 : 0 +ENDFOR +k[MAX:4] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + + Compare packed double-precision (64-bit) floating-point elements in "a" and "b" based on the comparison operand specified by "imm8", and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + CASE (imm8[4:0]) OF +0: OP := _CMP_EQ_OQ +1: OP := _CMP_LT_OS +2: OP := _CMP_LE_OS +3: OP := _CMP_UNORD_Q +4: OP := _CMP_NEQ_UQ +5: OP := _CMP_NLT_US +6: OP := _CMP_NLE_US +7: OP := _CMP_ORD_Q +8: OP := _CMP_EQ_UQ +9: OP := _CMP_NGE_US +10: OP := _CMP_NGT_US +11: OP := _CMP_FALSE_OQ +12: OP := _CMP_NEQ_OQ +13: OP := _CMP_GE_OS +14: OP := _CMP_GT_OS +15: OP := _CMP_TRUE_UQ +16: OP := _CMP_EQ_OS +17: OP := _CMP_LT_OQ +18: OP := _CMP_LE_OQ +19: OP := _CMP_UNORD_S +20: OP := _CMP_NEQ_US +21: OP := _CMP_NLT_UQ +22: OP := _CMP_NLE_UQ +23: OP := _CMP_ORD_S +24: OP := _CMP_EQ_US +25: OP := _CMP_NGE_UQ +26: OP := _CMP_NGT_UQ +27: OP := _CMP_FALSE_OS +28: OP := _CMP_NEQ_OS +29: OP := _CMP_GE_OQ +30: OP := _CMP_GT_OQ +31: OP := _CMP_TRUE_US +ESAC +FOR j := 0 to 3 + i := j*64 + IF k1[j] + k[j] := ( a[i+63:i] OP b[i+63:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:4] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed double-precision (64-bit) floating-point elements in "a" and "b" based on the comparison operand specified by "imm8", and store the results in mask vector "k". + CASE (imm8[4:0]) OF +0: OP := _CMP_EQ_OQ +1: OP := _CMP_LT_OS +2: OP := _CMP_LE_OS +3: OP := _CMP_UNORD_Q +4: OP := _CMP_NEQ_UQ +5: OP := _CMP_NLT_US +6: OP := _CMP_NLE_US +7: OP := _CMP_ORD_Q +8: OP := _CMP_EQ_UQ +9: OP := _CMP_NGE_US +10: OP := _CMP_NGT_US +11: OP := _CMP_FALSE_OQ +12: OP := _CMP_NEQ_OQ +13: OP := _CMP_GE_OS +14: OP := _CMP_GT_OS +15: OP := _CMP_TRUE_UQ +16: OP := _CMP_EQ_OS +17: OP := _CMP_LT_OQ +18: OP := _CMP_LE_OQ +19: OP := _CMP_UNORD_S +20: OP := _CMP_NEQ_US +21: OP := _CMP_NLT_UQ +22: OP := _CMP_NLE_UQ +23: OP := _CMP_ORD_S +24: OP := _CMP_EQ_US +25: OP := _CMP_NGE_UQ +26: OP := _CMP_NGT_UQ +27: OP := _CMP_FALSE_OS +28: OP := _CMP_NEQ_OS +29: OP := _CMP_GE_OQ +30: OP := _CMP_GT_OQ +31: OP := _CMP_TRUE_US +ESAC +FOR j := 0 to 1 + i := j*64 + k[j] := ( a[i+63:i] OP b[i+63:i] ) ? 1 : 0 +ENDFOR +k[MAX:2] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + + Compare packed double-precision (64-bit) floating-point elements in "a" and "b" based on the comparison operand specified by "imm8", and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + CASE (imm8[4:0]) OF +0: OP := _CMP_EQ_OQ +1: OP := _CMP_LT_OS +2: OP := _CMP_LE_OS +3: OP := _CMP_UNORD_Q +4: OP := _CMP_NEQ_UQ +5: OP := _CMP_NLT_US +6: OP := _CMP_NLE_US +7: OP := _CMP_ORD_Q +8: OP := _CMP_EQ_UQ +9: OP := _CMP_NGE_US +10: OP := _CMP_NGT_US +11: OP := _CMP_FALSE_OQ +12: OP := _CMP_NEQ_OQ +13: OP := _CMP_GE_OS +14: OP := _CMP_GT_OS +15: OP := _CMP_TRUE_UQ +16: OP := _CMP_EQ_OS +17: OP := _CMP_LT_OQ +18: OP := _CMP_LE_OQ +19: OP := _CMP_UNORD_S +20: OP := _CMP_NEQ_US +21: OP := _CMP_NLT_UQ +22: OP := _CMP_NLE_UQ +23: OP := _CMP_ORD_S +24: OP := _CMP_EQ_US +25: OP := _CMP_NGE_UQ +26: OP := _CMP_NGT_UQ +27: OP := _CMP_FALSE_OS +28: OP := _CMP_NEQ_OS +29: OP := _CMP_GE_OQ +30: OP := _CMP_GT_OQ +31: OP := _CMP_TRUE_US +ESAC +FOR j := 0 to 1 + i := j*64 + IF k1[j] + k[j] := ( a[i+63:i] OP b[i+63:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:2] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed single-precision (32-bit) floating-point elements in "a" and "b" based on the comparison operand specified by "imm8", and store the results in mask vector "k". + CASE (imm8[4:0]) OF +0: OP := _CMP_EQ_OQ +1: OP := _CMP_LT_OS +2: OP := _CMP_LE_OS +3: OP := _CMP_UNORD_Q +4: OP := _CMP_NEQ_UQ +5: OP := _CMP_NLT_US +6: OP := _CMP_NLE_US +7: OP := _CMP_ORD_Q +8: OP := _CMP_EQ_UQ +9: OP := _CMP_NGE_US +10: OP := _CMP_NGT_US +11: OP := _CMP_FALSE_OQ +12: OP := _CMP_NEQ_OQ +13: OP := _CMP_GE_OS +14: OP := _CMP_GT_OS +15: OP := _CMP_TRUE_UQ +16: OP := _CMP_EQ_OS +17: OP := _CMP_LT_OQ +18: OP := _CMP_LE_OQ +19: OP := _CMP_UNORD_S +20: OP := _CMP_NEQ_US +21: OP := _CMP_NLT_UQ +22: OP := _CMP_NLE_UQ +23: OP := _CMP_ORD_S +24: OP := _CMP_EQ_US +25: OP := _CMP_NGE_UQ +26: OP := _CMP_NGT_UQ +27: OP := _CMP_FALSE_OS +28: OP := _CMP_NEQ_OS +29: OP := _CMP_GE_OQ +30: OP := _CMP_GT_OQ +31: OP := _CMP_TRUE_US +ESAC +FOR j := 0 to 7 + i := j*32 + k[j] := (a[i+31:i] OP b[i+31:i]) ? 1 : 0 +ENDFOR +k[MAX:8] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + + Compare packed single-precision (32-bit) floating-point elements in "a" and "b" based on the comparison operand specified by "imm8", and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + CASE (imm8[4:0]) OF +0: OP := _CMP_EQ_OQ +1: OP := _CMP_LT_OS +2: OP := _CMP_LE_OS +3: OP := _CMP_UNORD_Q +4: OP := _CMP_NEQ_UQ +5: OP := _CMP_NLT_US +6: OP := _CMP_NLE_US +7: OP := _CMP_ORD_Q +8: OP := _CMP_EQ_UQ +9: OP := _CMP_NGE_US +10: OP := _CMP_NGT_US +11: OP := _CMP_FALSE_OQ +12: OP := _CMP_NEQ_OQ +13: OP := _CMP_GE_OS +14: OP := _CMP_GT_OS +15: OP := _CMP_TRUE_UQ +16: OP := _CMP_EQ_OS +17: OP := _CMP_LT_OQ +18: OP := _CMP_LE_OQ +19: OP := _CMP_UNORD_S +20: OP := _CMP_NEQ_US +21: OP := _CMP_NLT_UQ +22: OP := _CMP_NLE_UQ +23: OP := _CMP_ORD_S +24: OP := _CMP_EQ_US +25: OP := _CMP_NGE_UQ +26: OP := _CMP_NGT_UQ +27: OP := _CMP_FALSE_OS +28: OP := _CMP_NEQ_OS +29: OP := _CMP_GE_OQ +30: OP := _CMP_GT_OQ +31: OP := _CMP_TRUE_US +ESAC +FOR j := 0 to 7 + i := j*32 + IF k1[j] + k[j] := ( a[i+31:i] OP b[i+31:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:8] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed single-precision (32-bit) floating-point elements in "a" and "b" based on the comparison operand specified by "imm8", and store the results in mask vector "k". + CASE (imm8[4:0]) OF +0: OP := _CMP_EQ_OQ +1: OP := _CMP_LT_OS +2: OP := _CMP_LE_OS +3: OP := _CMP_UNORD_Q +4: OP := _CMP_NEQ_UQ +5: OP := _CMP_NLT_US +6: OP := _CMP_NLE_US +7: OP := _CMP_ORD_Q +8: OP := _CMP_EQ_UQ +9: OP := _CMP_NGE_US +10: OP := _CMP_NGT_US +11: OP := _CMP_FALSE_OQ +12: OP := _CMP_NEQ_OQ +13: OP := _CMP_GE_OS +14: OP := _CMP_GT_OS +15: OP := _CMP_TRUE_UQ +16: OP := _CMP_EQ_OS +17: OP := _CMP_LT_OQ +18: OP := _CMP_LE_OQ +19: OP := _CMP_UNORD_S +20: OP := _CMP_NEQ_US +21: OP := _CMP_NLT_UQ +22: OP := _CMP_NLE_UQ +23: OP := _CMP_ORD_S +24: OP := _CMP_EQ_US +25: OP := _CMP_NGE_UQ +26: OP := _CMP_NGT_UQ +27: OP := _CMP_FALSE_OS +28: OP := _CMP_NEQ_OS +29: OP := _CMP_GE_OQ +30: OP := _CMP_GT_OQ +31: OP := _CMP_TRUE_US +ESAC +FOR j := 0 to 3 + i := j*32 + k[j] := ( a[i+31:i] OP b[i+31:i] ) ? 1 : 0 +ENDFOR +k[MAX:4] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + + Compare packed single-precision (32-bit) floating-point elements in "a" and "b" based on the comparison operand specified by "imm8", and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + CASE (imm8[4:0]) OF +0: OP := _CMP_EQ_OQ +1: OP := _CMP_LT_OS +2: OP := _CMP_LE_OS +3: OP := _CMP_UNORD_Q +4: OP := _CMP_NEQ_UQ +5: OP := _CMP_NLT_US +6: OP := _CMP_NLE_US +7: OP := _CMP_ORD_Q +8: OP := _CMP_EQ_UQ +9: OP := _CMP_NGE_US +10: OP := _CMP_NGT_US +11: OP := _CMP_FALSE_OQ +12: OP := _CMP_NEQ_OQ +13: OP := _CMP_GE_OS +14: OP := _CMP_GT_OS +15: OP := _CMP_TRUE_UQ +16: OP := _CMP_EQ_OS +17: OP := _CMP_LT_OQ +18: OP := _CMP_LE_OQ +19: OP := _CMP_UNORD_S +20: OP := _CMP_NEQ_US +21: OP := _CMP_NLT_UQ +22: OP := _CMP_NLE_UQ +23: OP := _CMP_ORD_S +24: OP := _CMP_EQ_US +25: OP := _CMP_NGE_UQ +26: OP := _CMP_NGT_UQ +27: OP := _CMP_FALSE_OS +28: OP := _CMP_NEQ_OS +29: OP := _CMP_GE_OQ +30: OP := _CMP_GT_OQ +31: OP := _CMP_TRUE_US +ESAC +FOR j := 0 to 3 + i := j*32 + IF k1[j] + k[j] := ( a[i+31:i] OP b[i+31:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:4] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed signed 32-bit integers in "a" and "b" based on the comparison operand specified by "imm8", and store the results in mask vector "k". + CASE (imm8[2:0]) OF +0: OP := _MM_CMPINT_EQ +1: OP := _MM_CMPINT_LT +2: OP := _MM_CMPINT_LE +3: OP := _MM_CMPINT_FALSE +4: OP := _MM_CMPINT_NE +5: OP := _MM_CMPINT_NLT +6: OP := _MM_CMPINT_NLE +7: OP := _MM_CMPINT_TRUE +ESAC +FOR j := 0 to 7 + i := j*32 + k[j] := ( a[i+31:i] OP b[i+31:i] ) ? 1 : 0 +ENDFOR +k[MAX:8] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compare packed signed 32-bit integers in "a" and "b" for equality, and store the results in mask vector "k". + +FOR j := 0 to 7 + i := j*32 + k[j] := ( a[i+31:i] == b[i+31:i] ) ? 1 : 0 +ENDFOR +k[MAX:8] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compare packed signed 32-bit integers in "a" and "b" for greater-than-or-equal, and store the results in mask vector "k". + +FOR j := 0 to 7 + i := j*32 + k[j] := ( a[i+31:i] >= b[i+31:i] ) ? 1 : 0 +ENDFOR +k[MAX:8] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compare packed signed 32-bit integers in "a" and "b" for greater-than, and store the results in mask vector "k". + +FOR j := 0 to 7 + i := j*32 + k[j] := ( a[i+31:i] > b[i+31:i] ) ? 1 : 0 +ENDFOR +k[MAX:8] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compare packed signed 32-bit integers in "a" and "b" for less-than-or-equal, and store the results in mask vector "k". + +FOR j := 0 to 7 + i := j*32 + k[j] := ( a[i+31:i] <= b[i+31:i] ) ? 1 : 0 +ENDFOR +k[MAX:8] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compare packed signed 32-bit integers in "a" and "b" for less-than, and store the results in mask vector "k". + +FOR j := 0 to 7 + i := j*32 + k[j] := ( a[i+31:i] < b[i+31:i] ) ? 1 : 0 +ENDFOR +k[MAX:8] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compare packed signed 32-bit integers in "a" and "b" for not-equal, and store the results in mask vector "k". + +FOR j := 0 to 7 + i := j*32 + k[j] := ( a[i+31:i] != b[i+31:i] ) ? 1 : 0 +ENDFOR +k[MAX:8] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + + Compare packed signed 32-bit integers in "a" and "b" based on the comparison operand specified by "imm8", and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + CASE (imm8[2:0]) OF +0: OP := _MM_CMPINT_EQ +1: OP := _MM_CMPINT_LT +2: OP := _MM_CMPINT_LE +3: OP := _MM_CMPINT_FALSE +4: OP := _MM_CMPINT_NE +5: OP := _MM_CMPINT_NLT +6: OP := _MM_CMPINT_NLE +7: OP := _MM_CMPINT_TRUE +ESAC +FOR j := 0 to 7 + i := j*32 + IF k1[j] + k[j] := ( a[i+31:i] OP b[i+31:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:8] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed signed 32-bit integers in "a" and "b" for equality, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k1[j] + k[j] := ( a[i+31:i] == b[i+31:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:8] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed signed 32-bit integers in "a" and "b" for greater-than-or-equal, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k1[j] + k[j] := ( a[i+31:i] >= b[i+31:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:8] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed signed 32-bit integers in "a" and "b" for greater-than, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k1[j] + k[j] := ( a[i+31:i] > b[i+31:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:8] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed signed 32-bit integers in "a" and "b" for less-than-or-equal, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k1[j] + k[j] := ( a[i+31:i] <= b[i+31:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:8] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed signed 32-bit integers in "a" and "b" for less-than, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k1[j] + k[j] := ( a[i+31:i] < b[i+31:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:8] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed signed 32-bit integers in "a" and "b" for not-equal, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k1[j] + k[j] := ( a[i+31:i] != b[i+31:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:8] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed signed 32-bit integers in "a" and "b" based on the comparison operand specified by "imm8", and store the results in mask vector "k". + CASE (imm8[2:0]) OF +0: OP := _MM_CMPINT_EQ +1: OP := _MM_CMPINT_LT +2: OP := _MM_CMPINT_LE +3: OP := _MM_CMPINT_FALSE +4: OP := _MM_CMPINT_NE +5: OP := _MM_CMPINT_NLT +6: OP := _MM_CMPINT_NLE +7: OP := _MM_CMPINT_TRUE +ESAC +FOR j := 0 to 3 + i := j*32 + k[j] := ( a[i+31:i] OP b[i+31:i] ) ? 1 : 0 +ENDFOR +k[MAX:4] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compare packed signed 32-bit integers in "a" and "b" for equality, and store the results in mask vector "k". + +FOR j := 0 to 3 + i := j*32 + k[j] := ( a[i+31:i] == b[i+31:i] ) ? 1 : 0 +ENDFOR +k[MAX:4] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compare packed signed 32-bit integers in "a" and "b" for greater-than-or-equal, and store the results in mask vector "k". + +FOR j := 0 to 3 + i := j*32 + k[j] := ( a[i+31:i] >= b[i+31:i] ) ? 1 : 0 +ENDFOR +k[MAX:4] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compare packed signed 32-bit integers in "a" and "b" for greater-than, and store the results in mask vector "k". + +FOR j := 0 to 3 + i := j*32 + k[j] := ( a[i+31:i] > b[i+31:i] ) ? 1 : 0 +ENDFOR +k[MAX:4] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compare packed signed 32-bit integers in "a" and "b" for less-than-or-equal, and store the results in mask vector "k". + +FOR j := 0 to 3 + i := j*32 + k[j] := ( a[i+31:i] <= b[i+31:i] ) ? 1 : 0 +ENDFOR +k[MAX:4] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compare packed signed 32-bit integers in "a" and "b" for less-than, and store the results in mask vector "k". + +FOR j := 0 to 3 + i := j*32 + k[j] := ( a[i+31:i] < b[i+31:i] ) ? 1 : 0 +ENDFOR +k[MAX:4] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compare packed signed 32-bit integers in "a" and "b" for not-equal, and store the results in mask vector "k". + +FOR j := 0 to 3 + i := j*32 + k[j] := ( a[i+31:i] != b[i+31:i] ) ? 1 : 0 +ENDFOR +k[MAX:4] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + + Compare packed signed 32-bit integers in "a" and "b" based on the comparison operand specified by "imm8", and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + CASE (imm8[2:0]) OF +0: OP := _MM_CMPINT_EQ +1: OP := _MM_CMPINT_LT +2: OP := _MM_CMPINT_LE +3: OP := _MM_CMPINT_FALSE +4: OP := _MM_CMPINT_NE +5: OP := _MM_CMPINT_NLT +6: OP := _MM_CMPINT_NLE +7: OP := _MM_CMPINT_TRUE +ESAC +FOR j := 0 to 3 + i := j*32 + IF k1[j] + k[j] := ( a[i+31:i] OP b[i+31:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:4] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed signed 32-bit integers in "a" and "b" for equality, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k1[j] + k[j] := ( a[i+31:i] == b[i+31:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:4] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed signed 32-bit integers in "a" and "b" for greater-than-or-equal, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k1[j] + k[j] := ( a[i+31:i] >= b[i+31:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:4] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed signed 32-bit integers in "a" and "b" for greater-than, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k1[j] + k[j] := ( a[i+31:i] > b[i+31:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:4] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed signed 32-bit integers in "a" and "b" for less-than-or-equal, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k1[j] + k[j] := ( a[i+31:i] <= b[i+31:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:4] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed signed 32-bit integers in "a" and "b" for less-than, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k1[j] + k[j] := ( a[i+31:i] < b[i+31:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:4] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed signed 32-bit integers in "a" and "b" for not-equal, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k1[j] + k[j] := ( a[i+31:i] != b[i+31:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:4] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed signed 64-bit integers in "a" and "b" based on the comparison operand specified by "imm8", and store the results in mask vector "k". + CASE (imm8[2:0]) OF +0: OP := _MM_CMPINT_EQ +1: OP := _MM_CMPINT_LT +2: OP := _MM_CMPINT_LE +3: OP := _MM_CMPINT_FALSE +4: OP := _MM_CMPINT_NE +5: OP := _MM_CMPINT_NLT +6: OP := _MM_CMPINT_NLE +7: OP := _MM_CMPINT_TRUE +ESAC +FOR j := 0 to 3 + i := j*64 + k[j] := ( a[i+63:i] OP b[i+63:i] ) ? 1 : 0 +ENDFOR +k[MAX:4] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compare packed signed 64-bit integers in "a" and "b" for equality, and store the results in mask vector "k". + +FOR j := 0 to 3 + i := j*64 + k[j] := ( a[i+63:i] == b[i+63:i] ) ? 1 : 0 +ENDFOR +k[MAX:4] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compare packed signed 64-bit integers in "a" and "b" for greater-than-or-equal, and store the results in mask vector "k". + +FOR j := 0 to 3 + i := j*64 + k[j] := ( a[i+63:i] >= b[i+63:i] ) ? 1 : 0 +ENDFOR +k[MAX:4] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compare packed signed 64-bit integers in "a" and "b" for greater-than, and store the results in mask vector "k". + +FOR j := 0 to 3 + i := j*64 + k[j] := ( a[i+63:i] > b[i+63:i] ) ? 1 : 0 +ENDFOR +k[MAX:4] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compare packed signed 64-bit integers in "a" and "b" for less-than-or-equal, and store the results in mask vector "k". + +FOR j := 0 to 3 + i := j*64 + k[j] := ( a[i+63:i] <= b[i+63:i] ) ? 1 : 0 +ENDFOR +k[MAX:4] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compare packed signed 64-bit integers in "a" and "b" for less-than, and store the results in mask vector "k". + +FOR j := 0 to 3 + i := j*64 + k[j] := ( a[i+63:i] < b[i+63:i] ) ? 1 : 0 +ENDFOR +k[MAX:4] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compare packed signed 64-bit integers in "a" and "b" for not-equal, and store the results in mask vector "k". + +FOR j := 0 to 3 + i := j*64 + k[j] := ( a[i+63:i] != b[i+63:i] ) ? 1 : 0 +ENDFOR +k[MAX:4] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + + Compare packed signed 64-bit integers in "a" and "b" based on the comparison operand specified by "imm8", and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + CASE (imm8[2:0]) OF +0: OP := _MM_CMPINT_EQ +1: OP := _MM_CMPINT_LT +2: OP := _MM_CMPINT_LE +3: OP := _MM_CMPINT_FALSE +4: OP := _MM_CMPINT_NE +5: OP := _MM_CMPINT_NLT +6: OP := _MM_CMPINT_NLE +7: OP := _MM_CMPINT_TRUE +ESAC +FOR j := 0 to 3 + i := j*64 + IF k1[j] + k[j] := ( a[i+63:i] OP b[i+63:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:4] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed signed 64-bit integers in "a" and "b" for equality, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k1[j] + k[j] := ( a[i+63:i] == b[i+63:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:4] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed signed 64-bit integers in "a" and "b" for greater-than-or-equal, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k1[j] + k[j] := ( a[i+63:i] >= b[i+63:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:4] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed signed 64-bit integers in "a" and "b" for greater-than, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k1[j] + k[j] := ( a[i+63:i] > b[i+63:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:4] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed signed 64-bit integers in "a" and "b" for less-than-or-equal, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k1[j] + k[j] := ( a[i+63:i] <= b[i+63:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:4] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed signed 64-bit integers in "a" and "b" for less-than, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k1[j] + k[j] := ( a[i+63:i] < b[i+63:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:4] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed signed 64-bit integers in "a" and "b" for not-equal, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k1[j] + k[j] := ( a[i+63:i] != b[i+63:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:4] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed signed 64-bit integers in "a" and "b" based on the comparison operand specified by "imm8", and store the results in mask vector "k". + CASE (imm8[2:0]) OF +0: OP := _MM_CMPINT_EQ +1: OP := _MM_CMPINT_LT +2: OP := _MM_CMPINT_LE +3: OP := _MM_CMPINT_FALSE +4: OP := _MM_CMPINT_NE +5: OP := _MM_CMPINT_NLT +6: OP := _MM_CMPINT_NLE +7: OP := _MM_CMPINT_TRUE +ESAC +FOR j := 0 to 1 + i := j*64 + k[j] := ( a[i+63:i] OP b[i+63:i] ) ? 1 : 0 +ENDFOR +k[MAX:2] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compare packed signed 64-bit integers in "a" and "b" for equality, and store the results in mask vector "k". + +FOR j := 0 to 1 + i := j*64 + k[j] := ( a[i+63:i] == b[i+63:i] ) ? 1 : 0 +ENDFOR +k[MAX:2] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compare packed signed 64-bit integers in "a" and "b" for greater-than-or-equal, and store the results in mask vector "k". + +FOR j := 0 to 1 + i := j*64 + k[j] := ( a[i+63:i] >= b[i+63:i] ) ? 1 : 0 +ENDFOR +k[MAX:2] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compare packed signed 64-bit integers in "a" and "b" for greater-than, and store the results in mask vector "k". + +FOR j := 0 to 1 + i := j*64 + k[j] := ( a[i+63:i] > b[i+63:i] ) ? 1 : 0 +ENDFOR +k[MAX:2] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compare packed signed 64-bit integers in "a" and "b" for less-than-or-equal, and store the results in mask vector "k". + +FOR j := 0 to 1 + i := j*64 + k[j] := ( a[i+63:i] <= b[i+63:i] ) ? 1 : 0 +ENDFOR +k[MAX:2] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compare packed signed 64-bit integers in "a" and "b" for less-than, and store the results in mask vector "k". + +FOR j := 0 to 1 + i := j*64 + k[j] := ( a[i+63:i] < b[i+63:i] ) ? 1 : 0 +ENDFOR +k[MAX:2] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compare packed signed 64-bit integers in "a" and "b" for not-equal, and store the results in mask vector "k". + +FOR j := 0 to 1 + i := j*64 + k[j] := ( a[i+63:i] != b[i+63:i] ) ? 1 : 0 +ENDFOR +k[MAX:2] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + + Compare packed signed 64-bit integers in "a" and "b" based on the comparison operand specified by "imm8", and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + CASE (imm8[2:0]) OF +0: OP := _MM_CMPINT_EQ +1: OP := _MM_CMPINT_LT +2: OP := _MM_CMPINT_LE +3: OP := _MM_CMPINT_FALSE +4: OP := _MM_CMPINT_NE +5: OP := _MM_CMPINT_NLT +6: OP := _MM_CMPINT_NLE +7: OP := _MM_CMPINT_TRUE +ESAC +FOR j := 0 to 1 + i := j*64 + IF k1[j] + k[j] := ( a[i+63:i] OP b[i+63:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:2] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed signed 64-bit integers in "a" and "b" for equality, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k1[j] + k[j] := ( a[i+63:i] == b[i+63:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:2] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed signed 64-bit integers in "a" and "b" for greater-than-or-equal, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k1[j] + k[j] := ( a[i+63:i] >= b[i+63:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:2] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed signed 64-bit integers in "a" and "b" for greater-than, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k1[j] + k[j] := ( a[i+63:i] > b[i+63:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:2] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed signed 64-bit integers in "a" and "b" for less-than-or-equal, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k1[j] + k[j] := ( a[i+63:i] <= b[i+63:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:2] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed signed 64-bit integers in "a" and "b" for less-than, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k1[j] + k[j] := ( a[i+63:i] < b[i+63:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:2] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed signed 64-bit integers in "a" and "b" for not-equal, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k1[j] + k[j] := ( a[i+63:i] != b[i+63:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:2] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed unsigned 32-bit integers in "a" and "b" based on the comparison operand specified by "imm8", and store the results in mask vector "k". + CASE (imm8[2:0]) OF +0: OP := _MM_CMPINT_EQ +1: OP := _MM_CMPINT_LT +2: OP := _MM_CMPINT_LE +3: OP := _MM_CMPINT_FALSE +4: OP := _MM_CMPINT_NE +5: OP := _MM_CMPINT_NLT +6: OP := _MM_CMPINT_NLE +7: OP := _MM_CMPINT_TRUE +ESAC +FOR j := 0 to 7 + i := j*32 + k[j] := ( a[i+31:i] OP b[i+31:i] ) ? 1 : 0 +ENDFOR +k[MAX:8] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compare packed unsigned 32-bit integers in "a" and "b" for equality, and store the results in mask vector "k". + +FOR j := 0 to 7 + i := j*32 + k[j] := ( a[i+31:i] == b[i+31:i] ) ? 1 : 0 +ENDFOR +k[MAX:8] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compare packed unsigned 32-bit integers in "a" and "b" for greater-than-or-equal, and store the results in mask vector "k". + +FOR j := 0 to 7 + i := j*32 + k[j] := ( a[i+31:i] >= b[i+31:i] ) ? 1 : 0 +ENDFOR +k[MAX:8] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compare packed unsigned 32-bit integers in "a" and "b" for greater-than, and store the results in mask vector "k". + +FOR j := 0 to 7 + i := j*32 + k[j] := ( a[i+31:i] > b[i+31:i] ) ? 1 : 0 +ENDFOR +k[MAX:8] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compare packed unsigned 32-bit integers in "a" and "b" for less-than-or-equal, and store the results in mask vector "k". + +FOR j := 0 to 7 + i := j*32 + k[j] := ( a[i+31:i] <= b[i+31:i] ) ? 1 : 0 +ENDFOR +k[MAX:8] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compare packed unsigned 32-bit integers in "a" and "b" for less-than, and store the results in mask vector "k". + +FOR j := 0 to 7 + i := j*32 + k[j] := ( a[i+31:i] < b[i+31:i] ) ? 1 : 0 +ENDFOR +k[MAX:8] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compare packed unsigned 32-bit integers in "a" and "b" for not-equal, and store the results in mask vector "k". + +FOR j := 0 to 7 + i := j*32 + k[j] := ( a[i+31:i] != b[i+31:i] ) ? 1 : 0 +ENDFOR +k[MAX:8] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + + Compare packed unsigned 32-bit integers in "a" and "b" based on the comparison operand specified by "imm8", and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + CASE (imm8[2:0]) OF +0: OP := _MM_CMPINT_EQ +1: OP := _MM_CMPINT_LT +2: OP := _MM_CMPINT_LE +3: OP := _MM_CMPINT_FALSE +4: OP := _MM_CMPINT_NE +5: OP := _MM_CMPINT_NLT +6: OP := _MM_CMPINT_NLE +7: OP := _MM_CMPINT_TRUE +ESAC +FOR j := 0 to 7 + i := j*32 + IF k1[j] + k[j] := ( a[i+31:i] OP b[i+31:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:8] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed unsigned 32-bit integers in "a" and "b" for equality, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k1[j] + k[j] := ( a[i+31:i] == b[i+31:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:8] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed unsigned 32-bit integers in "a" and "b" for greater-than-or-equal, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k1[j] + k[j] := ( a[i+31:i] >= b[i+31:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:8] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed unsigned 32-bit integers in "a" and "b" for greater-than, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k1[j] + k[j] := ( a[i+31:i] > b[i+31:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:8] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed unsigned 32-bit integers in "a" and "b" for less-than-or-equal, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k1[j] + k[j] := ( a[i+31:i] <= b[i+31:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:8] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed unsigned 32-bit integers in "a" and "b" for less-than, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k1[j] + k[j] := ( a[i+31:i] < b[i+31:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:8] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed unsigned 32-bit integers in "a" and "b" for not-equal, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k1[j] + k[j] := ( a[i+31:i] != b[i+31:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:8] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed unsigned 32-bit integers in "a" and "b" based on the comparison operand specified by "imm8", and store the results in mask vector "k". + CASE (imm8[2:0]) OF +0: OP := _MM_CMPINT_EQ +1: OP := _MM_CMPINT_LT +2: OP := _MM_CMPINT_LE +3: OP := _MM_CMPINT_FALSE +4: OP := _MM_CMPINT_NE +5: OP := _MM_CMPINT_NLT +6: OP := _MM_CMPINT_NLE +7: OP := _MM_CMPINT_TRUE +ESAC +FOR j := 0 to 3 + i := j*32 + k[j] := ( a[i+31:i] OP b[i+31:i] ) ? 1 : 0 +ENDFOR +k[MAX:4] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compare packed unsigned 32-bit integers in "a" and "b" for equality, and store the results in mask vector "k". + +FOR j := 0 to 3 + i := j*32 + k[j] := ( a[i+31:i] == b[i+31:i] ) ? 1 : 0 +ENDFOR +k[MAX:4] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compare packed unsigned 32-bit integers in "a" and "b" for greater-than-or-equal, and store the results in mask vector "k". + +FOR j := 0 to 3 + i := j*32 + k[j] := ( a[i+31:i] >= b[i+31:i] ) ? 1 : 0 +ENDFOR +k[MAX:4] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compare packed unsigned 32-bit integers in "a" and "b" for greater-than, and store the results in mask vector "k". + +FOR j := 0 to 3 + i := j*32 + k[j] := ( a[i+31:i] > b[i+31:i] ) ? 1 : 0 +ENDFOR +k[MAX:4] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compare packed unsigned 32-bit integers in "a" and "b" for less-than-or-equal, and store the results in mask vector "k". + +FOR j := 0 to 3 + i := j*32 + k[j] := ( a[i+31:i] <= b[i+31:i] ) ? 1 : 0 +ENDFOR +k[MAX:4] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compare packed unsigned 32-bit integers in "a" and "b" for less-than, and store the results in mask vector "k". + +FOR j := 0 to 3 + i := j*32 + k[j] := ( a[i+31:i] < b[i+31:i] ) ? 1 : 0 +ENDFOR +k[MAX:4] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compare packed unsigned 32-bit integers in "a" and "b" for not-equal, and store the results in mask vector "k". + +FOR j := 0 to 3 + i := j*32 + k[j] := ( a[i+31:i] != b[i+31:i] ) ? 1 : 0 +ENDFOR +k[MAX:4] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + + Compare packed unsigned 32-bit integers in "a" and "b" based on the comparison operand specified by "imm8", and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + CASE (imm8[2:0]) OF +0: OP := _MM_CMPINT_EQ +1: OP := _MM_CMPINT_LT +2: OP := _MM_CMPINT_LE +3: OP := _MM_CMPINT_FALSE +4: OP := _MM_CMPINT_NE +5: OP := _MM_CMPINT_NLT +6: OP := _MM_CMPINT_NLE +7: OP := _MM_CMPINT_TRUE +ESAC +FOR j := 0 to 3 + i := j*32 + IF k1[j] + k[j] := ( a[i+31:i] OP b[i+31:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:4] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed unsigned 32-bit integers in "a" and "b" for equality, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k1[j] + k[j] := ( a[i+31:i] == b[i+31:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:4] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed unsigned 32-bit integers in "a" and "b" for greater-than-or-equal, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k1[j] + k[j] := ( a[i+31:i] >= b[i+31:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:4] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed unsigned 32-bit integers in "a" and "b" for greater-than, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k1[j] + k[j] := ( a[i+31:i] > b[i+31:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:4] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed unsigned 32-bit integers in "a" and "b" for less-than-or-equal, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k1[j] + k[j] := ( a[i+31:i] <= b[i+31:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:4] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed unsigned 32-bit integers in "a" and "b" for less-than, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k1[j] + k[j] := ( a[i+31:i] < b[i+31:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:4] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed unsigned 32-bit integers in "a" and "b" for not-equal, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k1[j] + k[j] := ( a[i+31:i] != b[i+31:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:4] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed unsigned 64-bit integers in "a" and "b" based on the comparison operand specified by "imm8", and store the results in mask vector "k". + CASE (imm8[2:0]) OF +0: OP := _MM_CMPINT_EQ +1: OP := _MM_CMPINT_LT +2: OP := _MM_CMPINT_LE +3: OP := _MM_CMPINT_FALSE +4: OP := _MM_CMPINT_NE +5: OP := _MM_CMPINT_NLT +6: OP := _MM_CMPINT_NLE +7: OP := _MM_CMPINT_TRUE +ESAC +FOR j := 0 to 3 + i := j*64 + k[j] := ( a[i+63:i] OP b[i+63:i] ) ? 1 : 0 +ENDFOR +k[MAX:4] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compare packed unsigned 64-bit integers in "a" and "b" for equality, and store the results in mask vector "k". + +FOR j := 0 to 3 + i := j*64 + k[j] := ( a[i+63:i] == b[i+63:i] ) ? 1 : 0 +ENDFOR +k[MAX:4] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compare packed unsigned 64-bit integers in "a" and "b" for greater-than-or-equal, and store the results in mask vector "k". + +FOR j := 0 to 3 + i := j*64 + k[j] := ( a[i+63:i] >= b[i+63:i] ) ? 1 : 0 +ENDFOR +k[MAX:4] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compare packed unsigned 64-bit integers in "a" and "b" for greater-than, and store the results in mask vector "k". + +FOR j := 0 to 3 + i := j*64 + k[j] := ( a[i+63:i] > b[i+63:i] ) ? 1 : 0 +ENDFOR +k[MAX:4] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compare packed unsigned 64-bit integers in "a" and "b" for less-than-or-equal, and store the results in mask vector "k". + +FOR j := 0 to 3 + i := j*64 + k[j] := ( a[i+63:i] <= b[i+63:i] ) ? 1 : 0 +ENDFOR +k[MAX:4] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compare packed unsigned 64-bit integers in "a" and "b" for less-than, and store the results in mask vector "k". + +FOR j := 0 to 3 + i := j*64 + k[j] := ( a[i+63:i] < b[i+63:i] ) ? 1 : 0 +ENDFOR +k[MAX:4] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compare packed unsigned 64-bit integers in "a" and "b" for not-equal, and store the results in mask vector "k". + +FOR j := 0 to 3 + i := j*64 + k[j] := ( a[i+63:i] != b[i+63:i] ) ? 1 : 0 +ENDFOR +k[MAX:4] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + + Compare packed unsigned 64-bit integers in "a" and "b" based on the comparison operand specified by "imm8", and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + CASE (imm8[2:0]) OF +0: OP := _MM_CMPINT_EQ +1: OP := _MM_CMPINT_LT +2: OP := _MM_CMPINT_LE +3: OP := _MM_CMPINT_FALSE +4: OP := _MM_CMPINT_NE +5: OP := _MM_CMPINT_NLT +6: OP := _MM_CMPINT_NLE +7: OP := _MM_CMPINT_TRUE +ESAC +FOR j := 0 to 3 + i := j*64 + IF k1[j] + k[j] := ( a[i+63:i] OP b[i+63:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:4] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed unsigned 64-bit integers in "a" and "b" for equality, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k1[j] + k[j] := ( a[i+63:i] == b[i+63:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:4] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed unsigned 64-bit integers in "a" and "b" for greater-than-or-equal, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k1[j] + k[j] := ( a[i+63:i] >= b[i+63:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:4] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed unsigned 64-bit integers in "a" and "b" for greater-than, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k1[j] + k[j] := ( a[i+63:i] > b[i+63:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:4] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed unsigned 64-bit integers in "a" and "b" for less-than-or-equal, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k1[j] + k[j] := ( a[i+63:i] <= b[i+63:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:4] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed unsigned 64-bit integers in "a" and "b" for less-than, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k1[j] + k[j] := ( a[i+63:i] < b[i+63:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:4] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed unsigned 64-bit integers in "a" and "b" for not-equal, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k1[j] + k[j] := ( a[i+63:i] != b[i+63:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:4] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed unsigned 64-bit integers in "a" and "b" based on the comparison operand specified by "imm8", and store the results in mask vector "k". + CASE (imm8[2:0]) OF +0: OP := _MM_CMPINT_EQ +1: OP := _MM_CMPINT_LT +2: OP := _MM_CMPINT_LE +3: OP := _MM_CMPINT_FALSE +4: OP := _MM_CMPINT_NE +5: OP := _MM_CMPINT_NLT +6: OP := _MM_CMPINT_NLE +7: OP := _MM_CMPINT_TRUE +ESAC +FOR j := 0 to 1 + i := j*64 + k[j] := ( a[i+63:i] OP b[i+63:i] ) ? 1 : 0 +ENDFOR +k[MAX:2] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compare packed unsigned 64-bit integers in "a" and "b" for equality, and store the results in mask vector "k". + +FOR j := 0 to 1 + i := j*64 + k[j] := ( a[i+63:i] == b[i+63:i] ) ? 1 : 0 +ENDFOR +k[MAX:2] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compare packed unsigned 64-bit integers in "a" and "b" for greater-than-or-equal, and store the results in mask vector "k". + +FOR j := 0 to 1 + i := j*64 + k[j] := ( a[i+63:i] >= b[i+63:i] ) ? 1 : 0 +ENDFOR +k[MAX:2] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compare packed unsigned 64-bit integers in "a" and "b" for greater-than, and store the results in mask vector "k". + +FOR j := 0 to 1 + i := j*64 + k[j] := ( a[i+63:i] > b[i+63:i] ) ? 1 : 0 +ENDFOR +k[MAX:2] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compare packed unsigned 64-bit integers in "a" and "b" for less-than-or-equal, and store the results in mask vector "k". + +FOR j := 0 to 1 + i := j*64 + k[j] := ( a[i+63:i] <= b[i+63:i] ) ? 1 : 0 +ENDFOR +k[MAX:2] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compare packed unsigned 64-bit integers in "a" and "b" for less-than, and store the results in mask vector "k". + +FOR j := 0 to 1 + i := j*64 + k[j] := ( a[i+63:i] < b[i+63:i] ) ? 1 : 0 +ENDFOR +k[MAX:2] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compare packed unsigned 64-bit integers in "a" and "b" for not-equal, and store the results in mask vector "k". + +FOR j := 0 to 1 + i := j*64 + k[j] := ( a[i+63:i] != b[i+63:i] ) ? 1 : 0 +ENDFOR +k[MAX:2] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + + Compare packed unsigned 64-bit integers in "a" and "b" based on the comparison operand specified by "imm8", and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + CASE (imm8[2:0]) OF +0: OP := _MM_CMPINT_EQ +1: OP := _MM_CMPINT_LT +2: OP := _MM_CMPINT_LE +3: OP := _MM_CMPINT_FALSE +4: OP := _MM_CMPINT_NE +5: OP := _MM_CMPINT_NLT +6: OP := _MM_CMPINT_NLE +7: OP := _MM_CMPINT_TRUE +ESAC +FOR j := 0 to 1 + i := j*64 + IF k1[j] + k[j] := ( a[i+63:i] OP b[i+63:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:2] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed unsigned 64-bit integers in "a" and "b" for equality, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k1[j] + k[j] := ( a[i+63:i] == b[i+63:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:2] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed unsigned 64-bit integers in "a" and "b" for greater-than-or-equal, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k1[j] + k[j] := ( a[i+63:i] >= b[i+63:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:2] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed unsigned 64-bit integers in "a" and "b" for greater-than, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k1[j] + k[j] := ( a[i+63:i] > b[i+63:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:2] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed unsigned 64-bit integers in "a" and "b" for less-than-or-equal, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k1[j] + k[j] := ( a[i+63:i] <= b[i+63:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:2] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed unsigned 64-bit integers in "a" and "b" for less-than, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k1[j] + k[j] := ( a[i+63:i] < b[i+63:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:2] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed unsigned 64-bit integers in "a" and "b" for not-equal, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k1[j] + k[j] := ( a[i+63:i] != b[i+63:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:2] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compute the bitwise AND of packed 32-bit integers in "a" and "b", producing intermediate 32-bit values, and set the corresponding bit in result mask "k" (subject to writemask "k") if the intermediate value is non-zero. + +FOR j := 0 to 7 + i := j*32 + IF k1[j] + k[j] := ((a[i+31:i] AND b[i+31:i]) != 0) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:8] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compute the bitwise AND of packed 32-bit integers in "a" and "b", producing intermediate 32-bit values, and set the corresponding bit in result mask "k" if the intermediate value is non-zero. + +FOR j := 0 to 7 + i := j*32 + k[j] := ((a[i+31:i] AND b[i+31:i]) != 0) ? 1 : 0 +ENDFOR +k[MAX:8] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compute the bitwise AND of packed 32-bit integers in "a" and "b", producing intermediate 32-bit values, and set the corresponding bit in result mask "k" (subject to writemask "k") if the intermediate value is non-zero. + +FOR j := 0 to 3 + i := j*32 + IF k1[j] + k[j] := ((a[i+31:i] AND b[i+31:i]) != 0) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:4] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compute the bitwise AND of packed 32-bit integers in "a" and "b", producing intermediate 32-bit values, and set the corresponding bit in result mask "k" if the intermediate value is non-zero. + +FOR j := 0 to 3 + i := j*32 + k[j] := ((a[i+31:i] AND b[i+31:i]) != 0) ? 1 : 0 +ENDFOR +k[MAX:4] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compute the bitwise AND of packed 64-bit integers in "a" and "b", producing intermediate 64-bit values, and set the corresponding bit in result mask "k" (subject to writemask "k") if the intermediate value is non-zero. + +FOR j := 0 to 3 + i := j*64 + IF k1[j] + k[j] := ((a[i+63:i] AND b[i+63:i]) != 0) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:4] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compute the bitwise AND of packed 64-bit integers in "a" and "b", producing intermediate 64-bit values, and set the corresponding bit in result mask "k" if the intermediate value is non-zero. + +FOR j := 0 to 3 + i := j*64 + k[j] := ((a[i+63:i] AND b[i+63:i]) != 0) ? 1 : 0 +ENDFOR +k[MAX:4] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compute the bitwise AND of packed 64-bit integers in "a" and "b", producing intermediate 64-bit values, and set the corresponding bit in result mask "k" (subject to writemask "k") if the intermediate value is non-zero. + +FOR j := 0 to 1 + i := j*64 + IF k1[j] + k[j] := ((a[i+63:i] AND b[i+63:i]) != 0) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:2] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compute the bitwise AND of packed 64-bit integers in "a" and "b", producing intermediate 64-bit values, and set the corresponding bit in result mask "k" if the intermediate value is non-zero. + +FOR j := 0 to 1 + i := j*64 + k[j] := ((a[i+63:i] AND b[i+63:i]) != 0) ? 1 : 0 +ENDFOR +k[MAX:2] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compute the bitwise NAND of packed 32-bit integers in "a" and "b", producing intermediate 32-bit values, and set the corresponding bit in result mask "k" (subject to writemask "k") if the intermediate value is zero. + +FOR j := 0 to 7 + i := j*32 + IF k1[j] + k[j] := ((a[i+31:i] AND b[i+31:i]) == 0) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:8] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compute the bitwise NAND of packed 32-bit integers in "a" and "b", producing intermediate 32-bit values, and set the corresponding bit in result mask "k" if the intermediate value is zero. + +FOR j := 0 to 7 + i := j*32 + k[j] := ((a[i+31:i] AND b[i+31:i]) == 0) ? 1 : 0 +ENDFOR +k[MAX:8] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compute the bitwise NAND of packed 32-bit integers in "a" and "b", producing intermediate 32-bit values, and set the corresponding bit in result mask "k" (subject to writemask "k") if the intermediate value is zero. + +FOR j := 0 to 3 + i := j*32 + IF k1[j] + k[j] := ((a[i+31:i] AND b[i+31:i]) == 0) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:4] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compute the bitwise NAND of packed 32-bit integers in "a" and "b", producing intermediate 32-bit values, and set the corresponding bit in result mask "k" if the intermediate value is zero. + +FOR j := 0 to 3 + i := j*32 + k[j] := ((a[i+31:i] AND b[i+31:i]) == 0) ? 1 : 0 +ENDFOR +k[MAX:4] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compute the bitwise NAND of packed 64-bit integers in "a" and "b", producing intermediate 64-bit values, and set the corresponding bit in result mask "k" (subject to writemask "k") if the intermediate value is zero. + +FOR j := 0 to 3 + i := j*64 + IF k1[j] + k[j] := ((a[i+63:i] AND b[i+63:i]) == 0) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:4] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compute the bitwise NAND of packed 64-bit integers in "a" and "b", producing intermediate 64-bit values, and set the corresponding bit in result mask "k" if the intermediate value is zero. + +FOR j := 0 to 3 + i := j*64 + k[j] := ((a[i+63:i] AND b[i+63:i]) == 0) ? 1 : 0 +ENDFOR +k[MAX:4] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compute the bitwise NAND of packed 64-bit integers in "a" and "b", producing intermediate 64-bit values, and set the corresponding bit in result mask "k" (subject to writemask "k") if the intermediate value is zero. + +FOR j := 0 to 1 + i := j*64 + IF k1[j] + k[j] := ((a[i+63:i] AND b[i+63:i]) == 0) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:2] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + Compute the bitwise NAND of packed 64-bit integers in "a" and "b", producing intermediate 64-bit values, and set the corresponding bit in result mask "k" if the intermediate value is zero. + +FOR j := 0 to 1 + i := j*64 + k[j] := ((a[i+63:i] AND b[i+63:i]) == 0) ? 1 : 0 +ENDFOR +k[MAX:2] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Contiguously store the active double-precision (64-bit) floating-point elements in "a" (those with their respective bit set in writemask "k") to unaligned memory at "base_addr". + +size := 64 +m := base_addr +FOR j := 0 to 3 + i := j*64 + IF k[j] + MEM[m+size-1:m] := a[i+63:i] + m := m + size + FI +ENDFOR + + + AVX512F + AVX512VL +
immintrin.h
+ Store +
+ + + + + + Contiguously store the active double-precision (64-bit) floating-point elements in "a" (those with their respective bit set in writemask "k") to unaligned memory at "base_addr". + +size := 64 +m := base_addr +FOR j := 0 to 1 + i := j*64 + IF k[j] + MEM[m+size-1:m] := a[i+63:i] + m := m + size + FI +ENDFOR + + + AVX512F + AVX512VL +
immintrin.h
+ Store +
+ + + + + + Contiguously store the active single-precision (32-bit) floating-point elements in "a" (those with their respective bit set in writemask "k") to unaligned memory at "base_addr". + +size := 32 +m := base_addr +FOR j := 0 to 7 + i := j*32 + IF k[j] + MEM[m+size-1:m] := a[i+31:i] + m := m + size + FI +ENDFOR + + + AVX512F + AVX512VL +
immintrin.h
+ Store +
+ + + + + + Contiguously store the active single-precision (32-bit) floating-point elements in "a" (those with their respective bit set in writemask "k") to unaligned memory at "base_addr". + +size := 32 +m := base_addr +FOR j := 0 to 3 + i := j*32 + IF k[j] + MEM[m+size-1:m] := a[i+31:i] + m := m + size + FI +ENDFOR + + + AVX512F + AVX512VL +
immintrin.h
+ Store +
+ + + + + + Store packed double-precision (64-bit) floating-point elements from "a" into memory using writemask "k". + "mem_addr" must be aligned on a 32-byte boundary or a general-protection exception may be generated. + +FOR j := 0 to 3 + i := j*64 + IF k[j] + MEM[mem_addr+i+63:mem_addr+i] := a[i+63:i] + FI +ENDFOR + + + AVX512F + AVX512VL +
immintrin.h
+ Store +
+ + + + + + Store packed double-precision (64-bit) floating-point elements from "a" into memory using writemask "k". + "mem_addr" must be aligned on a 16-byte boundary or a general-protection exception may be generated. + +FOR j := 0 to 1 + i := j*64 + IF k[j] + MEM[mem_addr+i+63:mem_addr+i] := a[i+63:i] + FI +ENDFOR + + + AVX512F + AVX512VL +
immintrin.h
+ Store +
+ + + + + + Store packed single-precision (32-bit) floating-point elements from "a" into memory using writemask "k". + "mem_addr" must be aligned on a 32-byte boundary or a general-protection exception may be generated. + +FOR j := 0 to 7 + i := j*32 + IF k[j] + MEM[mem_addr+i+31:mem_addr+i] := a[i+31:i] + FI +ENDFOR + + + AVX512F + AVX512VL +
immintrin.h
+ Store +
+ + + + + + Store packed single-precision (32-bit) floating-point elements from "a" into memory using writemask "k". + "mem_addr" must be aligned on a 16-byte boundary or a general-protection exception may be generated. + +FOR j := 0 to 3 + i := j*32 + IF k[j] + MEM[mem_addr+i+31:mem_addr+i] := a[i+31:i] + FI +ENDFOR + + + AVX512F + AVX512VL +
immintrin.h
+ Store +
+ + + + + + Store packed 32-bit integers from "a" into memory using writemask "k". + "mem_addr" must be aligned on a 32-byte boundary or a general-protection exception may be generated. + +FOR j := 0 to 7 + i := j*32 + IF k[j] + MEM[mem_addr+i+31:mem_addr+i] := a[i+31:i] + FI +ENDFOR + + + AVX512F + AVX512VL +
immintrin.h
+ Store +
+ + + + + + Store packed 32-bit integers from "a" into memory using writemask "k". + "mem_addr" must be aligned on a 16-byte boundary or a general-protection exception may be generated. + +FOR j := 0 to 3 + i := j*32 + IF k[j] + MEM[mem_addr+i+31:mem_addr+i] := a[i+31:i] + FI +ENDFOR + + + AVX512F + AVX512VL +
immintrin.h
+ Store +
+ + + + + + Store packed 64-bit integers from "a" into memory using writemask "k". + "mem_addr" must be aligned on a 32-byte boundary or a general-protection exception may be generated. + +FOR j := 0 to 3 + i := j*64 + IF k[j] + MEM[mem_addr+i+63:mem_addr+i] := a[i+63:i] + FI +ENDFOR + + + AVX512F + AVX512VL +
immintrin.h
+ Store +
+ + + + + + Store packed 64-bit integers from "a" into memory using writemask "k". + "mem_addr" must be aligned on a 16-byte boundary or a general-protection exception may be generated. + +FOR j := 0 to 1 + i := j*64 + IF k[j] + MEM[mem_addr+i+63:mem_addr+i] := a[i+63:i] + FI +ENDFOR + + + AVX512F + AVX512VL +
immintrin.h
+ Store +
+ + + + + + Store packed 32-bit integers from "a" into memory using writemask "k". + "mem_addr" does not need to be aligned on any particular boundary. + +FOR j := 0 to 7 + i := j*32 + IF k[j] + MEM[mem_addr+i+31:mem_addr+i] := a[i+31:i] + FI +ENDFOR + + + AVX512F + AVX512VL +
immintrin.h
+ Store +
+ + + + + + Store packed 32-bit integers from "a" into memory using writemask "k". + "mem_addr" does not need to be aligned on any particular boundary. + +FOR j := 0 to 3 + i := j*32 + IF k[j] + MEM[mem_addr+i+31:mem_addr+i] := a[i+31:i] + FI +ENDFOR + + + AVX512F + AVX512VL +
immintrin.h
+ Store +
+ + + + + + Store packed 64-bit integers from "a" into memory using writemask "k". + "mem_addr" does not need to be aligned on any particular boundary. + +FOR j := 0 to 3 + i := j*64 + IF k[j] + MEM[mem_addr+i+63:mem_addr+i] := a[i+63:i] + FI +ENDFOR + + + AVX512F + AVX512VL +
immintrin.h
+ Store +
+ + + + + + Store packed 64-bit integers from "a" into memory using writemask "k". + "mem_addr" does not need to be aligned on any particular boundary. + +FOR j := 0 to 1 + i := j*64 + IF k[j] + MEM[mem_addr+i+63:mem_addr+i] := a[i+63:i] + FI +ENDFOR + + + AVX512F + AVX512VL +
immintrin.h
+ Store +
+ + + + + + Store packed double-precision (64-bit) floating-point elements from "a" into memory using writemask "k". + "mem_addr" does not need to be aligned on any particular boundary. + +FOR j := 0 to 3 + i := j*64 + IF k[j] + MEM[mem_addr+i+63:mem_addr+i] := a[i+63:i] + FI +ENDFOR + + + AVX512F + AVX512VL +
immintrin.h
+ Store +
+ + + + + + Store packed double-precision (64-bit) floating-point elements from "a" into memory using writemask "k". + "mem_addr" does not need to be aligned on any particular boundary. + +FOR j := 0 to 1 + i := j*64 + IF k[j] + MEM[mem_addr+i+63:mem_addr+i] := a[i+63:i] + FI +ENDFOR + + + AVX512F + AVX512VL +
immintrin.h
+ Store +
+ + + + + + Store packed single-precision (32-bit) floating-point elements from "a" into memory using writemask "k". + "mem_addr" does not need to be aligned on any particular boundary. + +FOR j := 0 to 7 + i := j*32 + IF k[j] + MEM[mem_addr+i+31:mem_addr+i] := a[i+31:i] + FI +ENDFOR + + + AVX512F + AVX512VL +
immintrin.h
+ Store +
+ + + + + + Store packed single-precision (32-bit) floating-point elements from "a" into memory using writemask "k". + "mem_addr" does not need to be aligned on any particular boundary. + +FOR j := 0 to 3 + i := j*32 + IF k[j] + MEM[mem_addr+i+31:mem_addr+i] := a[i+31:i] + FI +ENDFOR + + + AVX512F + AVX512VL +
immintrin.h
+ Store +
+ + + + + + Contiguously store the active 32-bit integers in "a" (those with their respective bit set in writemask "k") to unaligned memory at "base_addr". + +size := 32 +m := base_addr +FOR j := 0 to 7 + i := j*32 + IF k[j] + MEM[m+size-1:m] := a[i+31:i] + m := m + size + FI +ENDFOR + + + AVX512F + AVX512VL +
immintrin.h
+ Store +
+ + + + + + Contiguously store the active 32-bit integers in "a" (those with their respective bit set in writemask "k") to unaligned memory at "base_addr". + +size := 32 +m := base_addr +FOR j := 0 to 3 + i := j*32 + IF k[j] + MEM[m+size-1:m] := a[i+31:i] + m := m + size + FI +ENDFOR + + + AVX512F + AVX512VL +
immintrin.h
+ Store +
+ + + + + + Contiguously store the active 64-bit integers in "a" (those with their respective bit set in writemask "k") to unaligned memory at "base_addr". + +size := 64 +m := base_addr +FOR j := 0 to 3 + i := j*64 + IF k[j] + MEM[m+size-1:m] := a[i+63:i] + m := m + size + FI +ENDFOR + + + AVX512F + AVX512VL +
immintrin.h
+ Store +
+ + + + + + Contiguously store the active 64-bit integers in "a" (those with their respective bit set in writemask "k") to unaligned memory at "base_addr". + +size := 64 +m := base_addr +FOR j := 0 to 1 + i := j*64 + IF k[j] + MEM[m+size-1:m] := a[i+63:i] + m := m + size + FI +ENDFOR + + + AVX512F + AVX512VL +
immintrin.h
+ Store +
+ + + + + + + Scatter 32-bit integers from "a" into memory using 32-bit indices. 32-bit elements are stored at addresses starting at "base_addr" and offset by each 32-bit element in "vindex" (each index is scaled by the factor in "scale"). "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 7 + i := j*32 + m := j*32 + addr := base_addr + SignExtend64(vindex[m+31:m]) * ZeroExtend64(scale) * 8 + MEM[addr+31:addr] := a[i+31:i] +ENDFOR + + + AVX512F + AVX512VL +
immintrin.h
+ Store +
+ + + + + + + + Scatter 32-bit integers from "a" into memory using 32-bit indices. 32-bit elements are stored at addresses starting at "base_addr" and offset by each 32-bit element in "vindex" (each index is scaled by the factor in "scale") subject to mask "k" (elements are not stored when the corresponding mask bit is not set). "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 7 + i := j*32 + m := j*32 + IF k[j] + addr := base_addr + SignExtend64(vindex[m+31:m]) * ZeroExtend64(scale) * 8 + MEM[addr+31:addr] := a[i+31:i] + FI +ENDFOR + + + AVX512F + AVX512VL +
immintrin.h
+ Store +
+ + + + + + + Scatter 32-bit integers from "a" into memory using 32-bit indices. 32-bit elements are stored at addresses starting at "base_addr" and offset by each 32-bit element in "vindex" (each index is scaled by the factor in "scale"). "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 3 + i := j*32 + m := j*32 + addr := base_addr + SignExtend64(vindex[m+31:m]) * ZeroExtend64(scale) * 8 + MEM[addr+31:addr] := a[i+31:i] +ENDFOR + + + AVX512F + AVX512VL +
immintrin.h
+ Store +
+ + + + + + + + Scatter 32-bit integers from "a" into memory using 32-bit indices. 32-bit elements are stored at addresses starting at "base_addr" and offset by each 32-bit element in "vindex" (each index is scaled by the factor in "scale") subject to mask "k" (elements are not stored when the corresponding mask bit is not set). "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 3 + i := j*32 + m := j*32 + IF k[j] + addr := base_addr + SignExtend64(vindex[m+31:m]) * ZeroExtend64(scale) * 8 + MEM[addr+31:addr] := a[i+31:i] + FI +ENDFOR + + + AVX512F + AVX512VL +
immintrin.h
+ Store +
+ + + + + + + Scatter 64-bit integers from "a" into memory using 32-bit indices. 64-bit elements are stored at addresses starting at "base_addr" and offset by each 32-bit element in "vindex" (each index is scaled by the factor in "scale"). "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 3 + i := j*64 + m := j*32 + addr := base_addr + SignExtend64(vindex[m+31:m]) * ZeroExtend64(scale) * 8 + MEM[addr+63:addr] := a[i+63:i] +ENDFOR + + + AVX512F + AVX512VL +
immintrin.h
+ Store +
+ + + + + + + + Scatter 64-bit integers from "a" into memory using 32-bit indices. 64-bit elements are stored at addresses starting at "base_addr" and offset by each 32-bit element in "vindex" (each index is scaled by the factor in "scale") subject to mask "k" (elements are not stored when the corresponding mask bit is not set). "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 3 + i := j*64 + m := j*32 + IF k[j] + addr := base_addr + SignExtend64(vindex[m+31:m]) * ZeroExtend64(scale) * 8 + MEM[addr+63:addr] := a[i+63:i] + FI +ENDFOR + + + AVX512F + AVX512VL +
immintrin.h
+ Store +
+ + + + + + + Scatter 64-bit integers from "a" into memory using 32-bit indices. 64-bit elements are stored at addresses starting at "base_addr" and offset by each 32-bit element in "vindex" (each index is scaled by the factor in "scale"). "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 1 + i := j*64 + m := j*32 + addr := base_addr + SignExtend64(vindex[m+31:m]) * ZeroExtend64(scale) * 8 + MEM[addr+63:addr] := a[i+63:i] +ENDFOR + + + AVX512F + AVX512VL +
immintrin.h
+ Store +
+ + + + + + + + Scatter 64-bit integers from "a" into memory using 32-bit indices. 64-bit elements are stored at addresses starting at "base_addr" and offset by each 32-bit element in "vindex" (each index is scaled by the factor in "scale") subject to mask "k" (elements are not stored when the corresponding mask bit is not set). "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 1 + i := j*64 + m := j*32 + IF k[j] + addr := base_addr + SignExtend64(vindex[m+31:m]) * ZeroExtend64(scale) * 8 + MEM[addr+63:addr] := a[i+63:i] + FI +ENDFOR + + + AVX512F + AVX512VL +
immintrin.h
+ Store +
+ + + + + + + Scatter 32-bit integers from "a" into memory using 64-bit indices. 32-bit elements are stored at addresses starting at "base_addr" and offset by each 64-bit element in "vindex" (each index is scaled by the factor in "scale"). "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 3 + i := j*32 + m := j*64 + addr := base_addr + vindex[m+63:m] * ZeroExtend64(scale) * 8 + MEM[addr+31:addr] := a[i+31:i] +ENDFOR + + + AVX512F + AVX512VL +
immintrin.h
+ Store +
+ + + + + + + + Scatter 32-bit integers from "a" into memory using 64-bit indices. 32-bit elements are stored at addresses starting at "base_addr" and offset by each 64-bit element in "vindex" (each index is scaled by the factor in "scale") subject to mask "k" (elements are not stored when the corresponding mask bit is not set). "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 3 + i := j*32 + m := j*64 + IF k[j] + addr := base_addr + vindex[m+63:m] * ZeroExtend64(scale) * 8 + MEM[addr+31:addr] := a[i+31:i] + FI +ENDFOR + + + AVX512F + AVX512VL +
immintrin.h
+ Store +
+ + + + + + + Scatter 32-bit integers from "a" into memory using 64-bit indices. 32-bit elements are stored at addresses starting at "base_addr" and offset by each 64-bit element in "vindex" (each index is scaled by the factor in "scale"). "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 1 + i := j*32 + m := j*64 + addr := base_addr + vindex[m+63:m] * ZeroExtend64(scale) * 8 + MEM[addr+31:addr] := a[i+31:i] +ENDFOR + + + AVX512F + AVX512VL +
immintrin.h
+ Store +
+ + + + + + + + Scatter 32-bit integers from "a" into memory using 64-bit indices. 32-bit elements are stored at addresses starting at "base_addr" and offset by each 64-bit element in "vindex" (each index is scaled by the factor in "scale") subject to mask "k" (elements are not stored when the corresponding mask bit is not set). "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 1 + i := j*32 + m := j*64 + IF k[j] + addr := base_addr + vindex[m+63:m] * ZeroExtend64(scale) * 8 + MEM[addr+31:addr] := a[i+31:i] + FI +ENDFOR + + + AVX512F + AVX512VL +
immintrin.h
+ Store +
+ + + + + + + Scatter 64-bit integers from "a" into memory using 64-bit indices. 64-bit elements are stored at addresses starting at "base_addr" and offset by each 64-bit element in "vindex" (each index is scaled by the factor in "scale"). "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 3 + i := j*64 + m := j*64 + addr := base_addr + vindex[m+63:m] * ZeroExtend64(scale) * 8 + MEM[addr+63:addr] := a[i+63:i] +ENDFOR + + + AVX512F + AVX512VL +
immintrin.h
+ Store +
+ + + + + + + + Scatter 64-bit integers from "a" into memory using 64-bit indices. 64-bit elements are stored at addresses starting at "base_addr" and offset by each 64-bit element in "vindex" (each index is scaled by the factor in "scale") subject to mask "k" (elements are not stored when the corresponding mask bit is not set). "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 3 + i := j*64 + m := j*64 + IF k[j] + addr := base_addr + vindex[m+63:m] * ZeroExtend64(scale) * 8 + MEM[addr+63:addr] := a[i+63:i] + FI +ENDFOR + + + AVX512F + AVX512VL +
immintrin.h
+ Store +
+ + + + + + + Scatter 64-bit integers from "a" into memory using 64-bit indices. 64-bit elements are stored at addresses starting at "base_addr" and offset by each 64-bit element in "vindex" (each index is scaled by the factor in "scale"). "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 1 + i := j*64 + m := j*64 + addr := base_addr + vindex[m+63:m] * ZeroExtend64(scale) * 8 + MEM[addr+63:addr] := a[i+63:i] +ENDFOR + + + AVX512F + AVX512VL +
immintrin.h
+ Store +
+ + + + + + + + Scatter 64-bit integers from "a" into memory using 64-bit indices. 64-bit elements are stored at addresses starting at "base_addr" and offset by each 64-bit element in "vindex" (each index is scaled by the factor in "scale") subject to mask "k" (elements are not stored when the corresponding mask bit is not set). "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 1 + i := j*64 + m := j*64 + IF k[j] + addr := base_addr + vindex[m+63:m] * ZeroExtend64(scale) * 8 + MEM[addr+63:addr] := a[i+63:i] + FI +ENDFOR + + + AVX512F + AVX512VL +
immintrin.h
+ Store +
+ + + + + + + Scatter double-precision (64-bit) floating-point elements from "a" into memory using 32-bit indices. 64-bit elements are stored at addresses starting at "base_addr" and offset by each 32-bit element in "vindex" (each index is scaled by the factor in "scale"). "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 3 + i := j*64 + m := j*32 + addr := base_addr + SignExtend64(vindex[m+31:m]) * ZeroExtend64(scale) * 8 + MEM[addr+63:addr] := a[i+63:i] +ENDFOR + + + AVX512F + AVX512VL +
immintrin.h
+ Store +
+ + + + + + + + Scatter double-precision (64-bit) floating-point elements from "a" into memory using 32-bit indices. 64-bit elements are stored at addresses starting at "base_addr" and offset by each 32-bit element in "vindex" (each index is scaled by the factor in "scale") subject to mask "k" (elements are not stored when the corresponding mask bit is not set). "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 3 + i := j*64 + m := j*32 + IF k[j] + addr := base_addr + SignExtend64(vindex[m+31:m]) * ZeroExtend64(scale) * 8 + MEM[addr+63:addr] := a[i+63:i] + FI +ENDFOR + + + AVX512F + AVX512VL +
immintrin.h
+ Store +
+ + + + + + + Scatter double-precision (64-bit) floating-point elements from "a" into memory using 32-bit indices. 64-bit elements are stored at addresses starting at "base_addr" and offset by each 32-bit element in "vindex" (each index is scaled by the factor in "scale"). "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 1 + i := j*64 + m := j*32 + addr := base_addr + SignExtend64(vindex[m+31:m]) * ZeroExtend64(scale) * 8 + MEM[addr+63:addr] := a[i+63:i] +ENDFOR + + + AVX512F + AVX512VL +
immintrin.h
+ Store +
+ + + + + + + + Scatter double-precision (64-bit) floating-point elements from "a" into memory using 32-bit indices. 64-bit elements are stored at addresses starting at "base_addr" and offset by each 32-bit element in "vindex" (each index is scaled by the factor in "scale") subject to mask "k" (elements are not stored when the corresponding mask bit is not set). "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 1 + i := j*64 + m := j*32 + IF k[j] + addr := base_addr + SignExtend64(vindex[m+31:m]) * ZeroExtend64(scale) * 8 + MEM[addr+63:addr] := a[i+63:i] + FI +ENDFOR + + + AVX512F + AVX512VL +
immintrin.h
+ Store +
+ + + + + + + Scatter single-precision (32-bit) floating-point elements from "a" into memory using 32-bit indices. 32-bit elements are stored at addresses starting at "base_addr" and offset by each 32-bit element in "vindex" (each index is scaled by the factor in "scale"). "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 7 + i := j*32 + m := j*32 + addr := base_addr + SignExtend64(vindex[m+31:m]) * ZeroExtend64(scale) * 8 + MEM[addr+31:addr] := a[i+31:i] +ENDFOR + + + AVX512F + AVX512VL +
immintrin.h
+ Store +
+ + + + + + + + Scatter single-precision (32-bit) floating-point elements from "a" into memory using 32-bit indices. 32-bit elements are stored at addresses starting at "base_addr" and offset by each 32-bit element in "vindex" (each index is scaled by the factor in "scale") subject to mask "k" (elements are not stored when the corresponding mask bit is not set). "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 7 + i := j*32 + m := j*32 + IF k[j] + addr := base_addr + SignExtend64(vindex[m+31:m]) * ZeroExtend64(scale) * 8 + MEM[addr+31:addr] := a[i+31:i] + FI +ENDFOR + + + AVX512F + AVX512VL +
immintrin.h
+ Store +
+ + + + + + + Scatter single-precision (32-bit) floating-point elements from "a" into memory using 32-bit indices. 32-bit elements are stored at addresses starting at "base_addr" and offset by each 32-bit element in "vindex" (each index is scaled by the factor in "scale"). "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 3 + i := j*32 + m := j*32 + addr := base_addr + SignExtend64(vindex[m+31:m]) * ZeroExtend64(scale) * 8 + MEM[addr+31:addr] := a[i+31:i] +ENDFOR + + + AVX512F + AVX512VL +
immintrin.h
+ Store +
+ + + + + + + + Scatter single-precision (32-bit) floating-point elements from "a" into memory using 32-bit indices. 32-bit elements are stored at addresses starting at "base_addr" and offset by each 32-bit element in "vindex" (each index is scaled by the factor in "scale") subject to mask "k" (elements are not stored when the corresponding mask bit is not set). "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 3 + i := j*32 + m := j*32 + IF k[j] + addr := base_addr + SignExtend64(vindex[m+31:m]) * ZeroExtend64(scale) * 8 + MEM[addr+31:addr] := a[i+31:i] + FI +ENDFOR + + + AVX512F + AVX512VL +
immintrin.h
+ Store +
+ + + + + + + Scatter double-precision (64-bit) floating-point elements from "a" into memory using 64-bit indices. 64-bit elements are stored at addresses starting at "base_addr" and offset by each 64-bit element in "vindex" (each index is scaled by the factor in "scale"). "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 3 + i := j*64 + m := j*64 + addr := base_addr + vindex[m+63:m] * ZeroExtend64(scale) * 8 + MEM[addr+63:addr] := a[i+63:i] +ENDFOR + + + AVX512F + AVX512VL +
immintrin.h
+ Store +
+ + + + + + + + Scatter double-precision (64-bit) floating-point elements from "a" into memory using 64-bit indices. 64-bit elements are stored at addresses starting at "base_addr" and offset by each 64-bit element in "vindex" (each index is scaled by the factor in "scale") subject to mask "k" (elements are not stored when the corresponding mask bit is not set). "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 3 + i := j*64 + m := j*64 + IF k[j] + addr := base_addr + vindex[m+63:m] * ZeroExtend64(scale) * 8 + MEM[addr+63:addr] := a[i+63:i] + FI +ENDFOR + + + AVX512F + AVX512VL +
immintrin.h
+ Store +
+ + + + + + + Scatter double-precision (64-bit) floating-point elements from "a" into memory using 64-bit indices. 64-bit elements are stored at addresses starting at "base_addr" and offset by each 64-bit element in "vindex" (each index is scaled by the factor in "scale"). "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 1 + i := j*64 + m := j*64 + addr := base_addr + vindex[m+63:m] * ZeroExtend64(scale) * 8 + MEM[addr+63:addr] := a[i+63:i] +ENDFOR + + + AVX512F + AVX512VL +
immintrin.h
+ Store +
+ + + + + + + + Scatter double-precision (64-bit) floating-point elements from "a" into memory using 64-bit indices. 64-bit elements are stored at addresses starting at "base_addr" and offset by each 64-bit element in "vindex" (each index is scaled by the factor in "scale") subject to mask "k" (elements are not stored when the corresponding mask bit is not set). "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 1 + i := j*64 + m := j*64 + IF k[j] + addr := base_addr + vindex[m+63:m] * ZeroExtend64(scale) * 8 + MEM[addr+63:addr] := a[i+63:i] + FI +ENDFOR + + + AVX512F + AVX512VL +
immintrin.h
+ Store +
+ + + + + + + Scatter single-precision (32-bit) floating-point elements from "a" into memory using 64-bit indices. 32-bit elements are stored at addresses starting at "base_addr" and offset by each 64-bit element in "vindex" (each index is scaled by the factor in "scale") subject to mask "k" (elements are not stored when the corresponding mask bit is not set). "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 3 + i := j*32 + m := j*64 + addr := base_addr + vindex[m+63:m] * ZeroExtend64(scale) * 8 + MEM[addr+31:addr] := a[i+31:i] +ENDFOR + + + AVX512F + AVX512VL +
immintrin.h
+ Store +
+ + + + + + + + Scatter single-precision (32-bit) floating-point elements from "a" into memory using 64-bit indices. 32-bit elements are stored at addresses starting at "base_addr" and offset by each 64-bit element in "vindex" (each index is scaled by the factor in "scale") subject to mask "k" (elements are not stored when the corresponding mask bit is not set). "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 3 + i := j*32 + m := j*64 + IF k[j] + addr := base_addr + vindex[m+63:m] * ZeroExtend64(scale) * 8 + MEM[addr+31:addr] := a[i+31:i] + FI +ENDFOR + + + AVX512F + AVX512VL +
immintrin.h
+ Store +
+ + + + + + + Scatter single-precision (32-bit) floating-point elements from "a" into memory using 64-bit indices. 32-bit elements are stored at addresses starting at "base_addr" and offset by each 64-bit element in "vindex" (each index is scaled by the factor in "scale") subject to mask "k" (elements are not stored when the corresponding mask bit is not set). "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 1 + i := j*32 + m := j*64 + addr := base_addr + vindex[m+63:m] * ZeroExtend64(scale) * 8 + MEM[addr+31:addr] := a[i+31:i] +ENDFOR + + + AVX512F + AVX512VL +
immintrin.h
+ Store +
+ + + + + + + + Scatter single-precision (32-bit) floating-point elements from "a" into memory using 64-bit indices. 32-bit elements are stored at addresses starting at "base_addr" and offset by each 64-bit element in "vindex" (each index is scaled by the factor in "scale") subject to mask "k" (elements are not stored when the corresponding mask bit is not set). "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 1 + i := j*32 + m := j*64 + IF k[j] + addr := base_addr + vindex[m+63:m] * ZeroExtend64(scale) * 8 + MEM[addr+31:addr] := a[i+31:i] + FI +ENDFOR + + + AVX512F + AVX512VL +
immintrin.h
+ Store +
+ + + + + Store 256-bits (composed of 4 packed 64-bit integers) from "a" into memory. + "mem_addr" does not need to be aligned on any particular boundary. + +MEM[mem_addr+255:mem_addr] := a[255:0] + + + AVX512F + AVX512VL +
immintrin.h
+ Store +
+ + + + + Store 256-bits (composed of 8 packed 32-bit integers) from "a" into memory. + "mem_addr" does not need to be aligned on any particular boundary. + +MEM[mem_addr+255:mem_addr] := a[255:0] + + + AVX512F + AVX512VL +
immintrin.h
+ Store +
+ + + + + Store 128-bits (composed of 2 packed 64-bit integers) from "a" into memory. + "mem_addr" does not need to be aligned on any particular boundary. + +MEM[mem_addr+127:mem_addr] := a[127:0] + + + AVX512F + AVX512VL +
immintrin.h
+ Store +
+ + + + + Store 128-bits (composed of 4 packed 32-bit integers) from "a" into memory. + "mem_addr" does not need to be aligned on any particular boundary. + +MEM[mem_addr+127:mem_addr] := a[127:0] + + + AVX512F + AVX512VL +
immintrin.h
+ Store +
+ + + + + Store 256-bits (composed of 4 packed 64-bit integers) from "a" into memory. + "mem_addr" must be aligned on a 32-byte boundary or a general-protection exception may be generated. + +MEM[mem_addr+255:mem_addr] := a[255:0] + + + AVX512F + AVX512VL +
immintrin.h
+ Store +
+ + + + + Store 256-bits (composed of 8 packed 32-bit integers) from "a" into memory. + "mem_addr" must be aligned on a 32-byte boundary or a general-protection exception may be generated. + +MEM[mem_addr+255:mem_addr] := a[255:0] + + + AVX512F + AVX512VL +
immintrin.h
+ Store +
+ + + + + Store 128-bits (composed of 2 packed 64-bit integers) from "a" into memory. + "mem_addr" must be aligned on a 16-byte boundary or a general-protection exception may be generated. + +MEM[mem_addr+127:mem_addr] := a[127:0] + + + AVX512F + AVX512VL +
immintrin.h
+ Store +
+ + + + + Store 128-bits (composed of 4 packed 32-bit integers) from "a" into memory. + "mem_addr" must be aligned on a 16-byte boundary or a general-protection exception may be generated. + +MEM[mem_addr+127:mem_addr] := a[127:0] + + + AVX512F + AVX512VL +
immintrin.h
+ Store +
+ + + + + + Convert packed signed 32-bit integers in "a" to packed double-precision (64-bit) floating-point elements, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + m := j*64 + IF k[j] + dst[m+63:m] := Convert_Int32_To_FP64(a[i+31:i]) + ELSE + dst[m+63:m] := src[m+63:m] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed signed 32-bit integers in "a" to packed double-precision (64-bit) floating-point elements, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + m := j*64 + IF k[j] + dst[m+63:m] := Convert_Int32_To_FP64(a[i+31:i]) + ELSE + dst[m+63:m] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed signed 32-bit integers in "a" to packed double-precision (64-bit) floating-point elements, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*32 + m := j*64 + IF k[j] + dst[m+63:m] := Convert_Int32_To_FP64(a[i+31:i]) + ELSE + dst[m+63:m] := src[m+63:m] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed signed 32-bit integers in "a" to packed double-precision (64-bit) floating-point elements, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*32 + m := j*64 + IF k[j] + dst[m+63:m] := Convert_Int32_To_FP64(a[i+31:i]) + ELSE + dst[m+63:m] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed signed 32-bit integers in "a" to packed single-precision (32-bit) floating-point elements, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := Convert_Int32_To_FP32(a[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed signed 32-bit integers in "a" to packed single-precision (32-bit) floating-point elements, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := 32*j + IF k[j] + dst[i+31:i] := Convert_Int32_To_FP32(a[i+31:i]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed signed 32-bit integers in "a" to packed single-precision (32-bit) floating-point elements, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := Convert_Int32_To_FP32(a[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed signed 32-bit integers in "a" to packed single-precision (32-bit) floating-point elements, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := 32*j + IF k[j] + dst[i+31:i] := Convert_Int32_To_FP32(a[i+31:i]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed 32-bit integers, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + l := j*64 + IF k[j] + dst[i+31:i] := Convert_FP64_To_Int32(a[l+63:l]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed 32-bit integers, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := 32*j + l := 64*j + IF k[j] + dst[i+31:i] := Convert_FP64_To_Int32(a[l+63:l]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed 32-bit integers, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*32 + l := j*64 + IF k[j] + dst[i+31:i] := Convert_FP64_To_Int32(a[l+63:l]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:64] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed 32-bit integers, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := 32*j + l := 64*j + IF k[j] + dst[i+31:i] := Convert_FP64_To_Int32(a[l+63:l]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:64] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed single-precision (32-bit) floating-point elements, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := 32*j + l := 64*j + IF k[j] + dst[i+31:i] := Convert_FP64_To_FP32(a[l+63:l]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed single-precision (32-bit) floating-point elements, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + l := j*64 + IF k[j] + dst[i+31:i] := Convert_FP64_To_FP32(a[l+63:l]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed single-precision (32-bit) floating-point elements, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := 32*j + l := 64*j + IF k[j] + dst[i+31:i] := Convert_FP64_To_FP32(a[l+63:l]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:64] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed single-precision (32-bit) floating-point elements, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*32 + l := j*64 + IF k[j] + dst[i+31:i] := Convert_FP64_To_FP32(a[l+63:l]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:64] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed unsigned 32-bit integers, and store the results in "dst". + +FOR j := 0 to 3 + i := 32*j + k := 64*j + dst[i+31:i] := Convert_FP64_To_UInt32(a[k+63:k]) +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed unsigned 32-bit integers, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + l := j*64 + IF k[j] + dst[i+31:i] := Convert_FP64_To_UInt32(a[l+63:l]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed unsigned 32-bit integers, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := 32*j + l := 64*j + IF k[j] + dst[i+31:i] := Convert_FP64_To_UInt32(a[l+63:l]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed unsigned 32-bit integers, and store the results in "dst". + +FOR j := 0 to 1 + i := 32*j + k := 64*j + dst[i+31:i] := Convert_FP64_To_UInt32(a[k+63:k]) +ENDFOR +dst[MAX:64] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed unsigned 32-bit integers, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*32 + l := j*64 + IF k[j] + dst[i+31:i] := Convert_FP64_To_UInt32(a[l+63:l]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:64] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed unsigned 32-bit integers, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := 32*j + l := 64*j + IF k[j] + dst[i+31:i] := Convert_FP64_To_UInt32(a[l+63:l]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:64] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed single-precision (32-bit) floating-point elements, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + m := j*16 + IF k[j] + dst[i+31:i] := Convert_FP16_To_FP32(a[m+15:m]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed single-precision (32-bit) floating-point elements, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + m := j*16 + IF k[j] + dst[i+31:i] := Convert_FP16_To_FP32(a[m+15:m]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed single-precision (32-bit) floating-point elements, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + m := j*16 + IF k[j] + dst[i+31:i] := Convert_FP16_To_FP32(a[m+15:m]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed single-precision (32-bit) floating-point elements, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + m := j*16 + IF k[j] + dst[i+31:i] := Convert_FP16_To_FP32(a[m+15:m]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed 32-bit integers, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := Convert_FP32_To_Int32(a[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed 32-bit integers, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := 32*j + IF k[j] + dst[i+31:i] := Convert_FP32_To_Int32(a[i+31:i]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed 32-bit integers, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := Convert_FP32_To_Int32(a[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed 32-bit integers, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := 32*j + IF k[j] + dst[i+31:i] := Convert_FP32_To_Int32(a[i+31:i]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). [round_imm_note] + +FOR j := 0 to 7 + i := 16*j + l := 32*j + IF k[j] + dst[i+15:i] := Convert_FP32_To_FP16(a[l+31:l]) + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). [round_imm_note] + +FOR j := 0 to 7 + i := 16*j + l := 32*j + IF k[j] + dst[i+15:i] := Convert_FP32_To_FP16(a[l+31:l]) + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). [round_imm_note] + +FOR j := 0 to 7 + i := 16*j + l := 32*j + IF k[j] + dst[i+15:i] := Convert_FP32_To_FP16(a[l+31:l]) + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). [round_imm_note] + +FOR j := 0 to 7 + i := 16*j + l := 32*j + IF k[j] + dst[i+15:i] := Convert_FP32_To_FP16(a[l+31:l]) + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). [round_imm_note] + +FOR j := 0 to 3 + i := 16*j + l := 32*j + IF k[j] + dst[i+15:i] := Convert_FP32_To_FP16(a[l+31:l]) + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:64] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). [round_imm_note] + +FOR j := 0 to 3 + i := 16*j + l := 32*j + IF k[j] + dst[i+15:i] := Convert_FP32_To_FP16(a[l+31:l]) + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:64] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). [round_imm_note] + +FOR j := 0 to 3 + i := 16*j + l := 32*j + IF k[j] + dst[i+15:i] := Convert_FP32_To_FP16(a[l+31:l]) + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:64] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). [round_imm_note] + +FOR j := 0 to 3 + i := 16*j + l := 32*j + IF k[j] + dst[i+15:i] := Convert_FP32_To_FP16(a[l+31:l]) + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:64] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed unsigned 32-bit integers, and store the results in "dst". + +FOR j := 0 to 7 + i := 32*j + dst[i+31:i] := Convert_FP32_To_UInt32(a[i+31:i]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed unsigned 32-bit integers, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := 32*j + IF k[j] + dst[i+31:i] := Convert_FP32_To_UInt32(a[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed unsigned 32-bit integers, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := 32*j + IF k[j] + dst[i+31:i] := Convert_FP32_To_UInt32(a[i+31:i]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed unsigned 32-bit integers, and store the results in "dst". + +FOR j := 0 to 3 + i := 32*j + dst[i+31:i] := Convert_FP32_To_UInt32(a[i+31:i]) +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed unsigned 32-bit integers, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := 32*j + IF k[j] + dst[i+31:i] := Convert_FP32_To_UInt32(a[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed unsigned 32-bit integers, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := 32*j + IF k[j] + dst[i+31:i] := Convert_FP32_To_UInt32(a[i+31:i]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed 32-bit integers with truncation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := 32*j + l := 64*j + IF k[j] + dst[i+31:i] := Convert_FP64_To_Int32_Truncate(a[l+63:l]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed 32-bit integers with truncation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := 32*j + l := 64*j + IF k[j] + dst[i+31:i] := Convert_FP64_To_Int32_Truncate(a[l+63:l]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed 32-bit integers with truncation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := 32*j + l := 64*j + IF k[j] + dst[i+31:i] := Convert_FP64_To_Int32_Truncate(a[l+63:l]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:64] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed 32-bit integers with truncation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := 32*j + l := 64*j + IF k[j] + dst[i+31:i] := Convert_FP64_To_Int32_Truncate(a[l+63:l]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:64] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed unsigned 32-bit integers with truncation, and store the results in "dst". + +FOR j := 0 to 3 + i := 32*j + k := 64*j + dst[i+31:i] := Convert_FP64_To_UInt32_Truncate(a[k+63:k]) +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed unsigned 32-bit integers with truncation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := 32*j + l := 64*j + IF k[j] + dst[i+31:i] := Convert_FP64_To_UInt32_Truncate(a[l+63:l]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed unsigned 32-bit integers with truncation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := 32*j + l := 64*j + IF k[j] + dst[i+31:i] := Convert_FP64_To_UInt32_Truncate(a[l+63:l]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed unsigned 32-bit integers with truncation, and store the results in "dst". + +FOR j := 0 to 1 + i := 32*j + k := 64*j + dst[i+31:i] := Convert_FP64_To_UInt32_Truncate(a[k+63:k]) +ENDFOR +dst[MAX:64] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed unsigned 32-bit integers with truncation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := 32*j + l := 64*j + IF k[j] + dst[i+31:i] := Convert_FP64_To_UInt32_Truncate(a[l+63:l]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:64] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed unsigned 32-bit integers with truncation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := 32*j + l := 64*j + IF k[j] + dst[i+31:i] := Convert_FP64_To_UInt32_Truncate(a[l+63:l]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:64] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed 32-bit integers with truncation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := 32*j + IF k[j] + dst[i+31:i] := Convert_FP32_To_Int32_Truncate(a[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed 32-bit integers with truncation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := 32*j + IF k[j] + dst[i+31:i] := Convert_FP32_To_Int32_Truncate(a[i+31:i]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed 32-bit integers with truncation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := 32*j + IF k[j] + dst[i+31:i] := Convert_FP32_To_Int32_Truncate(a[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed 32-bit integers with truncation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := 32*j + IF k[j] + dst[i+31:i] := Convert_FP32_To_Int32_Truncate(a[i+31:i]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed unsigned 32-bit integers with truncation, and store the results in "dst". + +FOR j := 0 to 7 + i := 32*j + dst[i+31:i] := Convert_FP32_To_UInt32_Truncate(a[i+31:i]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed double-precision (32-bit) floating-point elements in "a" to packed unsigned 32-bit integers with truncation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := 32*j + IF k[j] + dst[i+31:i] := Convert_FP64_To_UInt32_Truncate(a[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed double-precision (32-bit) floating-point elements in "a" to packed unsigned 32-bit integers with truncation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := 32*j + IF k[j] + dst[i+31:i] := Convert_FP64_To_UInt32_Truncate(a[i+31:i]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed unsigned 32-bit integers with truncation, and store the results in "dst". + +FOR j := 0 to 3 + i := 32*j + dst[i+31:i] := Convert_FP32_To_UInt32_Truncate(a[i+31:i]) +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed double-precision (32-bit) floating-point elements in "a" to packed unsigned 32-bit integers with truncation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := 32*j + IF k[j] + dst[i+31:i] := Convert_FP64_To_UInt32_Truncate(a[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed double-precision (32-bit) floating-point elements in "a" to packed unsigned 32-bit integers with truncation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := 32*j + IF k[j] + dst[i+31:i] := Convert_FP64_To_UInt32_Truncate(a[i+31:i]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed unsigned 32-bit integers in "a" to packed double-precision (64-bit) floating-point elements, and store the results in "dst". + +FOR j := 0 to 3 + i := j*64 + l := j*32 + dst[i+63:i] := Convert_Int32_To_FP64(a[l+31:l]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed unsigned 32-bit integers in "a" to packed double-precision (64-bit) floating-point elements, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + l := j*32 + IF k[j] + dst[i+63:i] := Convert_Int32_To_FP64(a[l+31:l]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed unsigned 32-bit integers in "a" to packed double-precision (64-bit) floating-point elements, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + l := j*32 + IF k[j] + dst[i+63:i] := Convert_Int64_To_FP64(a[l+31:l]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed unsigned 32-bit integers in "a" to packed double-precision (64-bit) floating-point elements, and store the results in "dst". + +FOR j := 0 to 1 + i := j*64 + l := j*32 + dst[i+63:i] := Convert_Int64_To_FP64(a[l+31:l]) +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed unsigned 32-bit integers in "a" to packed double-precision (64-bit) floating-point elements, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + l := j*32 + IF k[j] + dst[i+63:i] := Convert_Int64_To_FP64(a[l+31:l]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed unsigned 32-bit integers in "a" to packed double-precision (64-bit) floating-point elements, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + l := j*32 + IF k[j] + dst[i+63:i] := Convert_Int64_To_FP64(a[l+31:l]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed 32-bit integers in "a" to packed 8-bit integers with truncation, and store the results in "dst". + +FOR j := 0 to 7 + i := 32*j + k := 8*j + dst[k+7:k] := Truncate8(a[i+31:i]) +ENDFOR +dst[MAX:64] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed 32-bit integers in "a" to packed 8-bit integers with truncation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := 32*j + l := 8*j + IF k[j] + dst[l+7:l] := Truncate8(a[i+31:i]) + ELSE + dst[l+7:l] := src[l+7:l] + FI +ENDFOR +dst[MAX:64] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + Store + + + + + Convert packed 32-bit integers in "a" to packed 8-bit integers with truncation, and store the active results (those with their respective bit set in writemask "k") to unaligned memory at "base_addr". + +FOR j := 0 to 7 + i := 32*j + l := 8*j + IF k[j] + MEM[base_addr+l+7:base_addr+l] := Truncate8(a[i+31:i]) + FI +ENDFOR + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed 32-bit integers in "a" to packed 8-bit integers with truncation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := 32*j + l := 8*j + IF k[j] + dst[l+7:l] := Truncate8(a[i+31:i]) + ELSE + dst[l+7:l] := 0 + FI +ENDFOR +dst[MAX:64] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed 32-bit integers in "a" to packed 8-bit integers with truncation, and store the results in "dst". + +FOR j := 0 to 3 + i := 32*j + k := 8*j + dst[k+7:k] := Truncate8(a[i+31:i]) +ENDFOR +dst[MAX:32] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed 32-bit integers in "a" to packed 8-bit integers with truncation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := 32*j + l := 8*j + IF k[j] + dst[l+7:l] := Truncate8(a[i+31:i]) + ELSE + dst[l+7:l] := src[l+7:l] + FI +ENDFOR +dst[MAX:32] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + Store + + + + + Convert packed 32-bit integers in "a" to packed 8-bit integers with truncation, and store the active results (those with their respective bit set in writemask "k") to unaligned memory at "base_addr". + +FOR j := 0 to 3 + i := 32*j + l := 8*j + IF k[j] + MEM[base_addr+l+7:base_addr+l] := Truncate8(a[i+31:i]) + FI +ENDFOR + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed 32-bit integers in "a" to packed 8-bit integers with truncation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := 32*j + l := 8*j + IF k[j] + dst[l+7:l] := Truncate8(a[i+31:i]) + ELSE + dst[l+7:l] := 0 + FI +ENDFOR +dst[MAX:32] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed 32-bit integers in "a" to packed 16-bit integers with truncation, and store the results in "dst". + +FOR j := 0 to 7 + i := 32*j + k := 16*j + dst[k+15:k] := Truncate16(a[i+31:i]) +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed 32-bit integers in "a" to packed 16-bit integers with truncation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := 32*j + l := 16*j + IF k[j] + dst[l+15:l] := Truncate16(a[i+31:i]) + ELSE + dst[l+15:l] := src[l+15:l] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + Store + + + + + Convert packed 32-bit integers in "a" to packed 16-bit integers with truncation, and store the active results (those with their respective bit set in writemask "k") to unaligned memory at "base_addr". + +FOR j := 0 to 7 + i := 32*j + l := 16*j + IF k[j] + MEM[base_addr+l+15:base_addr+l] := Truncate16(a[i+31:i]) + FI +ENDFOR + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed 32-bit integers in "a" to packed 16-bit integers with truncation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := 32*j + l := 16*j + IF k[j] + dst[l+15:l] := Truncate16(a[i+31:i]) + ELSE + dst[l+15:l] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed 32-bit integers in "a" to packed 16-bit integers with truncation, and store the results in "dst". + +FOR j := 0 to 3 + i := 32*j + k := 16*j + dst[k+15:k] := Truncate16(a[i+31:i]) +ENDFOR +dst[MAX:64] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed 32-bit integers in "a" to packed 16-bit integers with truncation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := 32*j + l := 16*j + IF k[j] + dst[l+15:l] := Truncate16(a[i+31:i]) + ELSE + dst[l+15:l] := src[l+15:l] + FI +ENDFOR +dst[MAX:64] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + Store + + + + + Convert packed 32-bit integers in "a" to packed 16-bit integers with truncation, and store the active results (those with their respective bit set in writemask "k") to unaligned memory at "base_addr". + +FOR j := 0 to 3 + i := 32*j + l := 16*j + IF k[j] + MEM[base_addr+l+15:base_addr+l] := Truncate16(a[i+31:i]) + FI +ENDFOR + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed 32-bit integers in "a" to packed 16-bit integers with truncation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := 32*j + l := 16*j + IF k[j] + dst[l+15:l] := Truncate16(a[i+31:i]) + ELSE + dst[l+15:l] := 0 + FI +ENDFOR +dst[MAX:64] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed 64-bit integers in "a" to packed 8-bit integers with truncation, and store the results in "dst". + +FOR j := 0 to 3 + i := 64*j + k := 8*j + dst[k+7:k] := Truncate8(a[i+63:i]) +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed 64-bit integers in "a" to packed 8-bit integers with truncation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := 64*j + l := 8*j + IF k[j] + dst[l+7:l] := Truncate8(a[i+63:i]) + ELSE + dst[l+7:l] := src[l+7:l] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + Store + + + + + Convert packed 64-bit integers in "a" to packed 8-bit integers with truncation, and store the active results (those with their respective bit set in writemask "k") to unaligned memory at "base_addr". + +FOR j := 0 to 3 + i := 64*j + l := 8*j + IF k[j] + MEM[base_addr+l+7:base_addr+l] := Truncate8(a[i+63:i]) + FI +ENDFOR + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed 64-bit integers in "a" to packed 8-bit integers with truncation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := 64*j + l := 8*j + IF k[j] + dst[l+7:l] := Truncate8(a[i+63:i]) + ELSE + dst[l+7:l] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed 64-bit integers in "a" to packed 8-bit integers with truncation, and store the results in "dst". + +FOR j := 0 to 1 + i := 64*j + k := 8*j + dst[k+7:k] := Truncate8(a[i+63:i]) +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed 64-bit integers in "a" to packed 8-bit integers with truncation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := 64*j + l := 8*j + IF k[j] + dst[l+7:l] := Truncate8(a[i+63:i]) + ELSE + dst[l+7:l] := src[l+7:l] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + Store + + + + + Convert packed 64-bit integers in "a" to packed 8-bit integers with truncation, and store the active results (those with their respective bit set in writemask "k") to unaligned memory at "base_addr". + +FOR j := 0 to 1 + i := 64*j + l := 8*j + IF k[j] + MEM[base_addr+l+7:base_addr+l] := Truncate8(a[i+63:i]) + FI +ENDFOR + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed 64-bit integers in "a" to packed 8-bit integers with truncation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := 64*j + l := 8*j + IF k[j] + dst[l+7:l] := Truncate8(a[i+63:i]) + ELSE + dst[l+7:l] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed 64-bit integers in "a" to packed 32-bit integers with truncation, and store the results in "dst". + +FOR j := 0 to 3 + i := 64*j + k := 32*j + dst[k+31:k] := Truncate32(a[i+63:i]) +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed 64-bit integers in "a" to packed 32-bit integers with truncation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := 64*j + l := 32*j + IF k[j] + dst[l+31:l] := Truncate32(a[i+63:i]) + ELSE + dst[l+31:l] := src[l+31:l] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + Store + + + + + Convert packed 64-bit integers in "a" to packed 32-bit integers with truncation, and store the active results (those with their respective bit set in writemask "k") to unaligned memory at "base_addr". + +FOR j := 0 to 3 + i := 64*j + l := 32*j + IF k[j] + MEM[base_addr+l+31:base_addr+l] := Truncate32(a[i+63:i]) + FI +ENDFOR + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed 64-bit integers in "a" to packed 32-bit integers with truncation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := 64*j + l := 32*j + IF k[j] + dst[l+31:l] := Truncate32(a[i+63:i]) + ELSE + dst[l+31:l] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed 64-bit integers in "a" to packed 32-bit integers with truncation, and store the results in "dst". + +FOR j := 0 to 1 + i := 64*j + k := 32*j + dst[k+31:k] := Truncate32(a[i+63:i]) +ENDFOR +dst[MAX:64] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed 64-bit integers in "a" to packed 32-bit integers with truncation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := 64*j + l := 32*j + IF k[j] + dst[l+31:l] := Truncate32(a[i+63:i]) + ELSE + dst[l+31:l] := src[l+31:l] + FI +ENDFOR +dst[MAX:64] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + Store + + + + + Convert packed 64-bit integers in "a" to packed 32-bit integers with truncation, and store the active results (those with their respective bit set in writemask "k") to unaligned memory at "base_addr". + +FOR j := 0 to 1 + i := 64*j + l := 32*j + IF k[j] + MEM[base_addr+l+31:base_addr+l] := Truncate32(a[i+63:i]) + FI +ENDFOR + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed 64-bit integers in "a" to packed 32-bit integers with truncation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := 64*j + l := 32*j + IF k[j] + dst[l+31:l] := Truncate32(a[i+63:i]) + ELSE + dst[l+31:l] := 0 + FI +ENDFOR +dst[MAX:64] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed 64-bit integers in "a" to packed 16-bit integers with truncation, and store the results in "dst". + +FOR j := 0 to 3 + i := 64*j + k := 16*j + dst[k+15:k] := Truncate16(a[i+63:i]) +ENDFOR +dst[MAX:64] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed 64-bit integers in "a" to packed 16-bit integers with truncation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := 64*j + l := 16*j + IF k[j] + dst[l+15:l] := Truncate16(a[i+63:i]) + ELSE + dst[l+15:l] := src[l+15:l] + FI +ENDFOR +dst[MAX:64] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + Store + + + + + Convert packed 64-bit integers in "a" to packed 16-bit integers with truncation, and store the active results (those with their respective bit set in writemask "k") to unaligned memory at "base_addr". + +FOR j := 0 to 3 + i := 64*j + l := 16*j + IF k[j] + MEM[base_addr+l+15:base_addr+l] := Truncate16(a[i+63:i]) + FI +ENDFOR + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed 64-bit integers in "a" to packed 16-bit integers with truncation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := 64*j + l := 16*j + IF k[j] + dst[l+15:l] := Truncate16(a[i+63:i]) + ELSE + dst[l+15:l] := 0 + FI +ENDFOR +dst[MAX:64] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed 64-bit integers in "a" to packed 16-bit integers with truncation, and store the results in "dst". + +FOR j := 0 to 1 + i := 64*j + k := 16*j + dst[k+15:k] := Truncate16(a[i+63:i]) +ENDFOR +dst[MAX:32] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed 64-bit integers in "a" to packed 16-bit integers with truncation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := 64*j + l := 16*j + IF k[j] + dst[l+15:l] := Truncate16(a[i+63:i]) + ELSE + dst[l+15:l] := src[l+15:l] + FI +ENDFOR +dst[MAX:32] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + Store + + + + + Convert packed 64-bit integers in "a" to packed 16-bit integers with truncation, and store the active results (those with their respective bit set in writemask "k") to unaligned memory at "base_addr". + +FOR j := 0 to 1 + i := 64*j + l := 16*j + IF k[j] + MEM[base_addr+l+15:base_addr+l] := Truncate16(a[i+63:i]) + FI +ENDFOR + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed 64-bit integers in "a" to packed 16-bit integers with truncation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := 64*j + l := 16*j + IF k[j] + dst[l+15:l] := Truncate16(a[i+63:i]) + ELSE + dst[l+15:l] := 0 + FI +ENDFOR +dst[MAX:32] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed signed 32-bit integers in "a" to packed 8-bit integers with signed saturation, and store the results in "dst". + +FOR j := 0 to 7 + i := 32*j + k := 8*j + dst[k+7:k] := Saturate8(a[i+31:i]) +ENDFOR +dst[MAX:64] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed signed 32-bit integers in "a" to packed 8-bit integers with signed saturation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := 32*j + l := 8*j + IF k[j] + dst[l+7:l] := Saturate8(a[i+31:i]) + ELSE + dst[l+7:l] := src[l+7:l] + FI +ENDFOR +dst[MAX:64] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + Store + + + + + Convert packed signed 32-bit integers in "a" to packed 8-bit integers with signed saturation, and store the active results (those with their respective bit set in writemask "k") to unaligned memory at "base_addr". + +FOR j := 0 to 7 + i := 32*j + l := 8*j + IF k[j] + MEM[base_addr+l+7:base_addr+l] := Saturate8(a[i+31:i]) + FI +ENDFOR + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed signed 32-bit integers in "a" to packed 8-bit integers with signed saturation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := 32*j + l := 8*j + IF k[j] + dst[l+7:l] := Saturate8(a[i+31:i]) + ELSE + dst[l+7:l] := 0 + FI +ENDFOR +dst[MAX:64] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed signed 32-bit integers in "a" to packed 8-bit integers with signed saturation, and store the results in "dst". + +FOR j := 0 to 3 + i := 32*j + k := 8*j + dst[k+7:k] := Saturate8(a[i+31:i]) +ENDFOR +dst[MAX:32] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed signed 32-bit integers in "a" to packed 8-bit integers with signed saturation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := 32*j + l := 8*j + IF k[j] + dst[l+7:l] := Saturate8(a[i+31:i]) + ELSE + dst[l+7:l] := src[l+7:l] + FI +ENDFOR +dst[MAX:32] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + Store + + + + + Convert packed signed 32-bit integers in "a" to packed 8-bit integers with signed saturation, and store the active results (those with their respective bit set in writemask "k") to unaligned memory at "base_addr". + +FOR j := 0 to 3 + i := 32*j + l := 8*j + IF k[j] + MEM[base_addr+l+7:base_addr+l] := Saturate8(a[i+31:i]) + FI +ENDFOR + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed signed 32-bit integers in "a" to packed 8-bit integers with signed saturation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := 32*j + l := 8*j + IF k[j] + dst[l+7:l] := Saturate8(a[i+31:i]) + ELSE + dst[l+7:l] := 0 + FI +ENDFOR +dst[MAX:32] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed signed 32-bit integers in "a" to packed 16-bit integers with signed saturation, and store the results in "dst". + +FOR j := 0 to 7 + i := 32*j + k := 16*j + dst[k+15:k] := Saturate16(a[i+31:i]) +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed signed 32-bit integers in "a" to packed 16-bit integers with signed saturation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := 32*j + l := 16*j + IF k[j] + dst[l+15:l] := Saturate16(a[i+31:i]) + ELSE + dst[l+15:l] := src[l+15:l] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + Store + + + + + Convert packed signed 32-bit integers in "a" to packed 16-bit integers with signed saturation, and store the active results (those with their respective bit set in writemask "k") to unaligned memory at "base_addr". + +FOR j := 0 to 7 + i := 32*j + l := 16*j + IF k[j] + MEM[base_addr+l+15:base_addr+l] := Saturate16(a[i+31:i]) + FI +ENDFOR + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed signed 32-bit integers in "a" to packed 16-bit integers with signed saturation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := 32*j + l := 16*j + IF k[j] + dst[l+15:l] := Saturate16(a[i+31:i]) + ELSE + dst[l+15:l] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed signed 32-bit integers in "a" to packed 16-bit integers with signed saturation, and store the results in "dst". + +FOR j := 0 to 3 + i := 32*j + k := 16*j + dst[k+15:k] := Saturate16(a[i+31:i]) +ENDFOR +dst[MAX:64] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed signed 32-bit integers in "a" to packed 16-bit integers with signed saturation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := 32*j + l := 16*j + IF k[j] + dst[l+15:l] := Saturate16(a[i+31:i]) + ELSE + dst[l+15:l] := src[l+15:l] + FI +ENDFOR +dst[MAX:64] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + Store + + + + + Convert packed signed 32-bit integers in "a" to packed 16-bit integers with signed saturation, and store the active results (those with their respective bit set in writemask "k") to unaligned memory at "base_addr". + +FOR j := 0 to 3 + i := 32*j + l := 16*j + IF k[j] + MEM[base_addr+l+15:base_addr+l] := Saturate16(a[i+31:i]) + FI +ENDFOR + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed signed 32-bit integers in "a" to packed 16-bit integers with signed saturation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := 32*j + l := 16*j + IF k[j] + dst[l+15:l] := Saturate16(a[i+31:i]) + ELSE + dst[l+15:l] := 0 + FI +ENDFOR +dst[MAX:64] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed signed 64-bit integers in "a" to packed 8-bit integers with signed saturation, and store the results in "dst". + +FOR j := 0 to 3 + i := 64*j + k := 8*j + dst[k+7:k] := Saturate8(a[i+63:i]) +ENDFOR +dst[MAX:32] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed signed 64-bit integers in "a" to packed 8-bit integers with signed saturation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := 64*j + l := 8*j + IF k[j] + dst[l+7:l] := Saturate8(a[i+63:i]) + ELSE + dst[l+7:l] := src[l+7:l] + FI +ENDFOR +dst[MAX:32] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + Store + + + + + Convert packed signed 64-bit integers in "a" to packed 8-bit integers with signed saturation, and store the active results (those with their respective bit set in writemask "k") to unaligned memory at "base_addr". + +FOR j := 0 to 3 + i := 64*j + l := 8*j + IF k[j] + MEM[base_addr+l+7:base_addr+l] := Saturate8(a[i+63:i]) + FI +ENDFOR + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed signed 64-bit integers in "a" to packed 8-bit integers with signed saturation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := 64*j + l := 8*j + IF k[j] + dst[l+7:l] := Saturate8(a[i+63:i]) + ELSE + dst[l+7:l] := 0 + FI +ENDFOR +dst[MAX:32] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed signed 64-bit integers in "a" to packed 8-bit integers with signed saturation, and store the results in "dst". + +FOR j := 0 to 1 + i := 64*j + k := 8*j + dst[k+7:k] := Saturate8(a[i+63:i]) +ENDFOR +dst[MAX:16] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed signed 64-bit integers in "a" to packed 8-bit integers with signed saturation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := 64*j + l := 8*j + IF k[j] + dst[l+7:l] := Saturate8(a[i+63:i]) + ELSE + dst[l+7:l] := src[l+7:l] + FI +ENDFOR +dst[MAX:16] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + Store + + + + + Convert packed signed 64-bit integers in "a" to packed 8-bit integers with signed saturation, and store the active results (those with their respective bit set in writemask "k") to unaligned memory at "base_addr". + +FOR j := 0 to 1 + i := 64*j + l := 8*j + IF k[j] + MEM[base_addr+l+7:base_addr+l] := Saturate8(a[i+63:i]) + FI +ENDFOR + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed signed 64-bit integers in "a" to packed 8-bit integers with signed saturation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := 64*j + l := 8*j + IF k[j] + dst[l+7:l] := Saturate8(a[i+63:i]) + ELSE + dst[l+7:l] := 0 + FI +ENDFOR +dst[MAX:16] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed signed 64-bit integers in "a" to packed 32-bit integers with signed saturation, and store the results in "dst". + +FOR j := 0 to 3 + i := 64*j + k := 32*j + dst[k+31:k] := Saturate32(a[i+63:i]) +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed signed 64-bit integers in "a" to packed 32-bit integers with signed saturation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := 64*j + l := 32*j + IF k[j] + dst[l+31:l] := Saturate32(a[i+63:i]) + ELSE + dst[l+31:l] := src[l+31:l] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + Store + + + + + Convert packed signed 64-bit integers in "a" to packed 32-bit integers with signed saturation, and store the active results (those with their respective bit set in writemask "k") to unaligned memory at "base_addr". + +FOR j := 0 to 3 + i := 64*j + l := 32*j + IF k[j] + MEM[base_addr+l+31:base_addr+l] := Saturate32(a[i+63:i]) + FI +ENDFOR + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed signed 64-bit integers in "a" to packed 32-bit integers with signed saturation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := 64*j + l := 32*j + IF k[j] + dst[l+31:l] := Saturate32(a[i+63:i]) + ELSE + dst[l+31:l] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed signed 64-bit integers in "a" to packed 32-bit integers with signed saturation, and store the results in "dst". + +FOR j := 0 to 1 + i := 64*j + k := 32*j + dst[k+31:k] := Saturate32(a[i+63:i]) +ENDFOR +dst[MAX:64] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed signed 64-bit integers in "a" to packed 32-bit integers with signed saturation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := 64*j + l := 32*j + IF k[j] + dst[l+31:l] := Saturate32(a[i+63:i]) + ELSE + dst[l+31:l] := src[l+31:l] + FI +ENDFOR +dst[MAX:64] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + Store + + + + + Convert packed signed 64-bit integers in "a" to packed 32-bit integers with signed saturation, and store the active results (those with their respective bit set in writemask "k") to unaligned memory at "base_addr". + +FOR j := 0 to 1 + i := 64*j + l := 32*j + IF k[j] + MEM[base_addr+l+31:base_addr+l] := Saturate32(a[i+63:i]) + FI +ENDFOR + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed signed 64-bit integers in "a" to packed 32-bit integers with signed saturation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := 64*j + l := 32*j + IF k[j] + dst[l+31:l] := Saturate32(a[i+63:i]) + ELSE + dst[l+31:l] := 0 + FI +ENDFOR +dst[MAX:64] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed signed 64-bit integers in "a" to packed 16-bit integers with signed saturation, and store the results in "dst". + +FOR j := 0 to 3 + i := 64*j + k := 16*j + dst[k+15:k] := Saturate16(a[i+63:i]) +ENDFOR +dst[MAX:64] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed signed 64-bit integers in "a" to packed 16-bit integers with signed saturation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := 64*j + l := 16*j + IF k[j] + dst[l+15:l] := Saturate16(a[i+63:i]) + ELSE + dst[l+15:l] := src[l+15:l] + FI +ENDFOR +dst[MAX:64] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + Store + + + + + Convert packed signed 64-bit integers in "a" to packed 16-bit integers with signed saturation, and store the active results (those with their respective bit set in writemask "k") to unaligned memory at "base_addr". + +FOR j := 0 to 3 + i := 64*j + l := 16*j + IF k[j] + MEM[base_addr+l+15:base_addr+l] := Saturate16(a[i+63:i]) + FI +ENDFOR + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed signed 64-bit integers in "a" to packed 16-bit integers with signed saturation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := 64*j + l := 16*j + IF k[j] + dst[l+15:l] := Saturate16(a[i+63:i]) + ELSE + dst[l+15:l] := 0 + FI +ENDFOR +dst[MAX:64] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed signed 64-bit integers in "a" to packed 16-bit integers with signed saturation, and store the results in "dst". + +FOR j := 0 to 1 + i := 64*j + k := 16*j + dst[k+15:k] := Saturate16(a[i+63:i]) +ENDFOR +dst[MAX:32] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed signed 64-bit integers in "a" to packed 16-bit integers with signed saturation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := 64*j + l := 16*j + IF k[j] + dst[l+15:l] := Saturate16(a[i+63:i]) + ELSE + dst[l+15:l] := src[l+15:l] + FI +ENDFOR +dst[MAX:32] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + Store + + + + + Convert packed signed 64-bit integers in "a" to packed 16-bit integers with signed saturation, and store the active results (those with their respective bit set in writemask "k") to unaligned memory at "base_addr". + +FOR j := 0 to 1 + i := 64*j + l := 16*j + IF k[j] + MEM[base_addr+l+15:base_addr+l] := Saturate16(a[i+63:i]) + FI +ENDFOR + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed signed 64-bit integers in "a" to packed 16-bit integers with signed saturation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := 64*j + l := 16*j + IF k[j] + dst[l+15:l] := Saturate16(a[i+63:i]) + ELSE + dst[l+15:l] := 0 + FI +ENDFOR +dst[MAX:32] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Sign extend packed 8-bit integers in the low 8 bytes of "a" to packed 32-bit integers, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := 32*j + l := 8*j + IF k[j] + dst[i+31:i] := SignExtend32(a[l+7:l]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Sign extend packed 8-bit integers in the low 8 bytes of "a" to packed 32-bit integers, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := 32*j + l := 8*j + IF k[j] + dst[i+31:i] := SignExtend32(a[l+7:l]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Sign extend packed 8-bit integers in the low 4 bytes of "a" to packed 32-bit integers, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := 32*j + l := 8*j + IF k[j] + dst[i+31:i] := SignExtend32(a[l+7:l]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Sign extend packed 8-bit integers in the low 4 bytes of "a" to packed 32-bit integers, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := 32*j + l := 8*j + IF k[j] + dst[i+31:i] := SignExtend32(a[l+7:l]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Sign extend packed 8-bit integers in the low 4 bytes of "a" to packed 64-bit integers, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := 64*j + l := 8*j + IF k[j] + dst[i+63:i] := SignExtend64(a[l+7:l]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Sign extend packed 8-bit integers in the low 4 bytes of "a" to packed 64-bit integers, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := 64*j + l := 8*j + IF k[j] + dst[i+63:i] := SignExtend64(a[l+7:l]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Sign extend packed 8-bit integers in the low 2 bytes of "a" to packed 64-bit integers, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := 64*j + l := 8*j + IF k[j] + dst[i+63:i] := SignExtend64(a[l+7:l]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Sign extend packed 8-bit integers in the low 2 bytes of "a" to packed 64-bit integers, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := 64*j + l := 8*j + IF k[j] + dst[i+63:i] := SignExtend64(a[l+7:l]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Sign extend packed 32-bit integers in "a" to packed 64-bit integers, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := 64*j + l := 32*j + IF k[j] + dst[i+63:i] := SignExtend64(a[l+31:l]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Sign extend packed 32-bit integers in "a" to packed 64-bit integers, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := 64*j + l := 32*j + IF k[j] + dst[i+63:i] := SignExtend64(a[l+31:l]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Sign extend packed 32-bit integers in "a" to packed 64-bit integers, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := 64*j + l := 32*j + IF k[j] + dst[i+63:i] := SignExtend64(a[l+31:l]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Sign extend packed 32-bit integers in "a" to packed 64-bit integers, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := 64*j + l := 32*j + IF k[j] + dst[i+63:i] := SignExtend64(a[l+31:l]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Sign extend packed 16-bit integers in "a" to packed 32-bit integers, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + l := j*16 + IF k[j] + dst[i+31:i] := SignExtend32(a[l+15:l]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Sign extend packed 16-bit integers in "a" to packed 32-bit integers, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := 32*j + l := 16*j + IF k[j] + dst[i+31:i] := SignExtend32(a[l+15:l]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Sign extend packed 16-bit integers in "a" to packed 32-bit integers, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + l := j*16 + IF k[j] + dst[i+31:i] := SignExtend32(a[l+15:l]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Sign extend packed 16-bit integers in "a" to packed 32-bit integers, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := 32*j + l := 16*j + IF k[j] + dst[i+31:i] := SignExtend32(a[l+15:l]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Sign extend packed 16-bit integers in the low 8 bytes of "a" to packed 64-bit integers, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := 64*j + l := 16*j + IF k[j] + dst[i+63:i] := SignExtend64(a[l+15:l]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Sign extend packed 16-bit integers in the low 8 bytes of "a" to packed 64-bit integers, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := 64*j + l := 16*j + IF k[j] + dst[i+63:i] := SignExtend64(a[l+15:l]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Sign extend packed 16-bit integers in the low 4 bytes of "a" to packed 64-bit integers, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := 64*j + l := 16*j + IF k[j] + dst[i+63:i] := SignExtend64(a[l+15:l]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Sign extend packed 16-bit integers in the low 4 bytes of "a" to packed 64-bit integers, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := 64*j + l := 16*j + IF k[j] + dst[i+63:i] := SignExtend64(a[l+15:l]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed unsigned 32-bit integers in "a" to packed unsigned 8-bit integers with unsigned saturation, and store the results in "dst". + +FOR j := 0 to 7 + i := 32*j + k := 8*j + dst[k+7:k] := SaturateU8(a[i+31:i]) +ENDFOR +dst[MAX:64] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed unsigned 32-bit integers in "a" to packed unsigned 8-bit integers with unsigned saturation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := 32*j + l := 8*j + IF k[j] + dst[l+7:l] := SaturateU8(a[i+31:i]) + ELSE + dst[l+7:l] := src[l+7:l] + FI +ENDFOR +dst[MAX:64] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + Store + + + + + Convert packed unsigned 32-bit integers in "a" to packed unsigned 8-bit integers with unsigned saturation, and store the active results (those with their respective bit set in writemask "k") to unaligned memory at "base_addr". + +FOR j := 0 to 7 + i := 32*j + l := 8*j + IF k[j] + MEM[base_addr+l+7:base_addr+l] := SaturateU8(a[i+31:i]) + FI +ENDFOR + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed unsigned 32-bit integers in "a" to packed unsigned 8-bit integers with unsigned saturation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := 32*j + l := 8*j + IF k[j] + dst[l+7:l] := SaturateU8(a[i+31:i]) + ELSE + dst[l+7:l] := 0 + FI +ENDFOR +dst[MAX:64] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed unsigned 32-bit integers in "a" to packed unsigned 8-bit integers with unsigned saturation, and store the results in "dst". + +FOR j := 0 to 3 + i := 32*j + k := 8*j + dst[k+7:k] := SaturateU8(a[i+31:i]) +ENDFOR +dst[MAX:32] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed unsigned 32-bit integers in "a" to packed unsigned 8-bit integers with unsigned saturation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := 32*j + l := 8*j + IF k[j] + dst[l+7:l] := SaturateU8(a[i+31:i]) + ELSE + dst[l+7:l] := src[l+7:l] + FI +ENDFOR +dst[MAX:32] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + Store + + + + + Convert packed unsigned 32-bit integers in "a" to packed unsigned 8-bit integers with unsigned saturation, and store the active results (those with their respective bit set in writemask "k") to unaligned memory at "base_addr". + +FOR j := 0 to 3 + i := 32*j + l := 8*j + IF k[j] + MEM[base_addr+l+7:base_addr+l] := SaturateU8(a[i+31:i]) + FI +ENDFOR + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed unsigned 32-bit integers in "a" to packed unsigned 8-bit integers with unsigned saturation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := 32*j + l := 8*j + IF k[j] + dst[l+7:l] := SaturateU8(a[i+31:i]) + ELSE + dst[l+7:l] := 0 + FI +ENDFOR +dst[MAX:32] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed unsigned 32-bit integers in "a" to packed unsigned 16-bit integers with unsigned saturation, and store the results in "dst". + +FOR j := 0 to 7 + i := 32*j + k := 16*j + dst[k+15:k] := SaturateU16(a[i+31:i]) +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed unsigned 32-bit integers in "a" to packed unsigned 16-bit integers with unsigned saturation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := 32*j + l := 16*j + IF k[j] + dst[l+15:l] := SaturateU16(a[i+31:i]) + ELSE + dst[l+15:l] := src[l+15:l] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + Store + + + + + Convert packed unsigned 32-bit integers in "a" to packed unsigned 16-bit integers with unsigned saturation, and store the active results (those with their respective bit set in writemask "k") to unaligned memory at "base_addr". + +FOR j := 0 to 7 + i := 32*j + l := 16*j + IF k[j] + MEM[base_addr+l+15:base_addr+l] := SaturateU16(a[i+31:i]) + FI +ENDFOR + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed unsigned 32-bit integers in "a" to packed unsigned 16-bit integers with unsigned saturation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := 32*j + l := 16*j + IF k[j] + dst[l+15:l] := SaturateU16(a[i+31:i]) + ELSE + dst[l+15:l] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed unsigned 32-bit integers in "a" to packed unsigned 16-bit integers with unsigned saturation, and store the results in "dst". + +FOR j := 0 to 3 + i := 32*j + k := 16*j + dst[k+15:k] := SaturateU16(a[i+31:i]) +ENDFOR +dst[MAX:64] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed unsigned 32-bit integers in "a" to packed unsigned 16-bit integers with unsigned saturation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := 32*j + l := 16*j + IF k[j] + dst[l+15:l] := SaturateU16(a[i+31:i]) + ELSE + dst[l+15:l] := src[l+15:l] + FI +ENDFOR +dst[MAX:64] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + Store + + + + + Convert packed unsigned 32-bit integers in "a" to packed unsigned 16-bit integers with unsigned saturation, and store the active results (those with their respective bit set in writemask "k") to unaligned memory at "base_addr". + +FOR j := 0 to 3 + i := 32*j + l := 16*j + IF k[j] + MEM[base_addr+l+15:base_addr+l] := SaturateU16(a[i+31:i]) + FI +ENDFOR + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed unsigned 32-bit integers in "a" to packed unsigned 16-bit integers with unsigned saturation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := 32*j + l := 16*j + IF k[j] + dst[l+15:l] := SaturateU16(a[i+31:i]) + ELSE + dst[l+15:l] := 0 + FI +ENDFOR +dst[MAX:64] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed unsigned 64-bit integers in "a" to packed unsigned 8-bit integers with unsigned saturation, and store the results in "dst". + +FOR j := 0 to 3 + i := 64*j + k := 8*j + dst[k+7:k] := SaturateU8(a[i+63:i]) +ENDFOR +dst[MAX:32] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed unsigned 64-bit integers in "a" to packed unsigned 8-bit integers with unsigned saturation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := 64*j + l := 8*j + IF k[j] + dst[l+7:l] := SaturateU8(a[i+63:i]) + ELSE + dst[l+7:l] := src[l+7:l] + FI +ENDFOR +dst[MAX:32] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + Store + + + + + Convert packed unsigned 64-bit integers in "a" to packed unsigned 8-bit integers with unsigned saturation, and store the active results (those with their respective bit set in writemask "k") to unaligned memory at "base_addr". + +FOR j := 0 to 3 + i := 64*j + l := 8*j + IF k[j] + MEM[base_addr+l+7:base_addr+l] := SaturateU8(a[i+63:i]) + FI +ENDFOR + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed unsigned 64-bit integers in "a" to packed unsigned 8-bit integers with unsigned saturation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := 64*j + l := 8*j + IF k[j] + dst[l+7:l] := SaturateU8(a[i+63:i]) + ELSE + dst[l+7:l] := 0 + FI +ENDFOR +dst[MAX:32] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed unsigned 64-bit integers in "a" to packed unsigned 8-bit integers with unsigned saturation, and store the results in "dst". + +FOR j := 0 to 1 + i := 64*j + k := 8*j + dst[k+7:k] := SaturateU8(a[i+63:i]) +ENDFOR +dst[MAX:16] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed unsigned 64-bit integers in "a" to packed unsigned 8-bit integers with unsigned saturation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := 64*j + l := 8*j + IF k[j] + dst[l+7:l] := SaturateU8(a[i+63:i]) + ELSE + dst[l+7:l] := src[l+7:l] + FI +ENDFOR +dst[MAX:16] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + Store + + + + + Convert packed unsigned 64-bit integers in "a" to packed unsigned 8-bit integers with unsigned saturation, and store the active results (those with their respective bit set in writemask "k") to unaligned memory at "base_addr". + +FOR j := 0 to 1 + i := 64*j + l := 8*j + IF k[j] + MEM[base_addr+l+7:base_addr+l] := SaturateU8(a[i+63:i]) + FI +ENDFOR + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed unsigned 64-bit integers in "a" to packed unsigned 8-bit integers with unsigned saturation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := 64*j + l := 8*j + IF k[j] + dst[l+7:l] := SaturateU8(a[i+63:i]) + ELSE + dst[l+7:l] := 0 + FI +ENDFOR +dst[MAX:16] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed unsigned 64-bit integers in "a" to packed unsigned 32-bit integers with unsigned saturation, and store the results in "dst". + +FOR j := 0 to 3 + i := 64*j + k := 32*j + dst[k+31:k] := SaturateU32(a[i+63:i]) +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed unsigned 64-bit integers in "a" to packed unsigned 32-bit integers with unsigned saturation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := 64*j + l := 32*j + IF k[j] + dst[l+31:l] := SaturateU32(a[i+63:i]) + ELSE + dst[l+31:l] := src[l+31:l] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + Store + + + + + Convert packed unsigned 64-bit integers in "a" to packed unsigned 32-bit integers with unsigned saturation, and store the active results (those with their respective bit set in writemask "k") to unaligned memory at "base_addr". + +FOR j := 0 to 3 + i := 64*j + l := 32*j + IF k[j] + MEM[base_addr+l+31:base_addr+l] := SaturateU32(a[i+63:i]) + FI +ENDFOR + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed unsigned 64-bit integers in "a" to packed unsigned 32-bit integers with unsigned saturation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := 64*j + l := 32*j + IF k[j] + dst[l+31:l] := SaturateU32(a[i+63:i]) + ELSE + dst[l+31:l] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed unsigned 64-bit integers in "a" to packed unsigned 32-bit integers with unsigned saturation, and store the results in "dst". + +FOR j := 0 to 1 + i := 64*j + k := 32*j + dst[k+31:k] := SaturateU32(a[i+63:i]) +ENDFOR +dst[MAX:64] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed unsigned 64-bit integers in "a" to packed unsigned 32-bit integers with unsigned saturation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := 64*j + l := 32*j + IF k[j] + dst[l+31:l] := SaturateU32(a[i+63:i]) + ELSE + dst[l+31:l] := src[l+31:l] + FI +ENDFOR +dst[MAX:64] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + Store + + + + + Convert packed unsigned 64-bit integers in "a" to packed unsigned 32-bit integers with unsigned saturation, and store the active results (those with their respective bit set in writemask "k") to unaligned memory at "base_addr". + +FOR j := 0 to 1 + i := 64*j + l := 32*j + IF k[j] + MEM[base_addr+l+31:base_addr+l] := SaturateU32(a[i+63:i]) + FI +ENDFOR + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed unsigned 64-bit integers in "a" to packed unsigned 32-bit integers with unsigned saturation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := 64*j + l := 32*j + IF k[j] + dst[l+31:l] := SaturateU32(a[i+63:i]) + ELSE + dst[l+31:l] := 0 + FI +ENDFOR +dst[MAX:64] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed unsigned 64-bit integers in "a" to packed unsigned 16-bit integers with unsigned saturation, and store the results in "dst". + +FOR j := 0 to 3 + i := 64*j + k := 16*j + dst[k+15:k] := SaturateU16(a[i+63:i]) +ENDFOR +dst[MAX:64] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed unsigned 64-bit integers in "a" to packed unsigned 16-bit integers with unsigned saturation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := 64*j + l := 16*j + IF k[j] + dst[l+15:l] := SaturateU16(a[i+63:i]) + ELSE + dst[l+15:l] := src[l+15:l] + FI +ENDFOR +dst[MAX:64] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + Store + + + + + Convert packed unsigned 64-bit integers in "a" to packed unsigned 16-bit integers with unsigned saturation, and store the active results (those with their respective bit set in writemask "k") to unaligned memory at "base_addr". + +FOR j := 0 to 3 + i := 64*j + l := 16*j + IF k[j] + MEM[base_addr+l+15:base_addr+l] := SaturateU16(a[i+63:i]) + FI +ENDFOR + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed unsigned 64-bit integers in "a" to packed unsigned 16-bit integers with unsigned saturation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := 64*j + l := 16*j + IF k[j] + dst[l+15:l] := SaturateU16(a[i+63:i]) + ELSE + dst[l+15:l] := 0 + FI +ENDFOR +dst[MAX:64] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed unsigned 64-bit integers in "a" to packed unsigned 16-bit integers with unsigned saturation, and store the results in "dst". + +FOR j := 0 to 1 + i := 64*j + k := 16*j + dst[k+15:k] := SaturateU16(a[i+63:i]) +ENDFOR +dst[MAX:32] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed unsigned 64-bit integers in "a" to packed unsigned 16-bit integers with unsigned saturation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := 64*j + l := 16*j + IF k[j] + dst[l+15:l] := SaturateU16(a[i+63:i]) + ELSE + dst[l+15:l] := src[l+15:l] + FI +ENDFOR +dst[MAX:32] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + Store + + + + + Convert packed unsigned 64-bit integers in "a" to packed unsigned 16-bit integers with unsigned saturation, and store the active results (those with their respective bit set in writemask "k") to unaligned memory at "base_addr". + +FOR j := 0 to 1 + i := 64*j + l := 16*j + IF k[j] + MEM[base_addr+l+15:base_addr+l] := SaturateU16(a[i+63:i]) + FI +ENDFOR + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed unsigned 64-bit integers in "a" to packed unsigned 16-bit integers with unsigned saturation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := 64*j + l := 16*j + IF k[j] + dst[l+15:l] := SaturateU16(a[i+63:i]) + ELSE + dst[l+15:l] := 0 + FI +ENDFOR +dst[MAX:32] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Zero extend packed unsigned 8-bit integers in the low 8 bytes of "a" to packed 32-bit integers, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := 32*j + l := 8*j + IF k[j] + dst[i+31:i] := ZeroExtend32(a[l+7:l]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Zero extend packed unsigned 8-bit integers in the low 8 bytes of "a" to packed 32-bit integers, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := 32*j + l := 8*j + IF k[j] + dst[i+31:i] := ZeroExtend32(a[l+7:l]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Zero extend packed unsigned 8-bit integers in the low 4 bytes of "a" to packed 32-bit integers, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := 32*j + l := 8*j + IF k[j] + dst[i+31:i] := ZeroExtend32(a[l+7:l]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Zero extend packed unsigned 8-bit integers in th elow 4 bytes of "a" to packed 32-bit integers, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := 32*j + l := 8*j + IF k[j] + dst[i+31:i] := ZeroExtend32(a[l+7:l]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Zero extend packed unsigned 8-bit integers in the low 4 bytes of "a" to packed 64-bit integers, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := 64*j + l := 8*j + IF k[j] + dst[i+63:i] := ZeroExtend64(a[l+7:l]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Zero extend packed unsigned 8-bit integers in the low 4 bytes of "a" to packed 64-bit integers, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := 64*j + l := 8*j + IF k[j] + dst[i+63:i] := ZeroExtend64(a[l+7:l]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Zero extend packed unsigned 8-bit integers in the low 2 bytes of "a" to packed 64-bit integers, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := 64*j + l := 8*j + IF k[j] + dst[i+63:i] := ZeroExtend64(a[l+7:l]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Zero extend packed unsigned 8-bit integers in the low 2 bytes of "a" to packed 64-bit integers, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := 64*j + l := 8*j + IF k[j] + dst[i+63:i] := ZeroExtend64(a[l+7:l]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Zero extend packed unsigned 32-bit integers in "a" to packed 64-bit integers, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := 64*j + l := 32*j + IF k[j] + dst[i+63:i] := ZeroExtend64(a[l+31:l]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Zero extend packed unsigned 32-bit integers in "a" to packed 64-bit integers, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := 64*j + l := 32*j + IF k[j] + dst[i+63:i] := ZeroExtend64(a[l+31:l]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Zero extend packed unsigned 32-bit integers in "a" to packed 64-bit integers, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := 64*j + l := 32*j + IF k[j] + dst[i+63:i] := ZeroExtend64(a[l+31:l]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Zero extend packed unsigned 32-bit integers in "a" to packed 64-bit integers, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := 64*j + l := 32*j + IF k[j] + dst[i+63:i] := ZeroExtend64(a[l+31:l]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Zero extend packed unsigned 16-bit integers in "a" to packed 32-bit integers, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := 32*j + l := 16*j + IF k[j] + dst[i+31:i] := ZeroExtend32(a[l+15:l]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Zero extend packed unsigned 16-bit integers in "a" to packed 32-bit integers, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := 32*j + l := 16*j + IF k[j] + dst[i+31:i] := ZeroExtend32(a[l+15:l]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Zero extend packed unsigned 16-bit integers in "a" to packed 32-bit integers, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := 32*j + l := 16*j + IF k[j] + dst[i+31:i] := ZeroExtend32(a[l+15:l]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Zero extend packed unsigned 16-bit integers in "a" to packed 32-bit integers, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := 32*j + l := 16*j + IF k[j] + dst[i+31:i] := ZeroExtend32(a[l+15:l]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Zero extend packed unsigned 16-bit integers in the low 8 bytes of "a" to packed 64-bit integers, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := 64*j + l := 16*j + IF k[j] + dst[i+63:i] := ZeroExtend64(a[l+15:l]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Zero extend packed unsigned 16-bit integers in the low 8 bytes of "a" to packed 64-bit integers, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := 64*j + l := 16*j + IF k[j] + dst[i+63:i] := ZeroExtend64(a[l+15:l]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Zero extend packed unsigned 16-bit integers in the low 4 bytes of "a" to packed 64-bit integers, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := 64*j + l := 16*j + IF k[j] + dst[i+63:i] := ZeroExtend64(a[l+15:l]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Zero extend packed unsigned 16-bit integers in the low 4 bytes of "a" to packed 64-bit integers, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := 64*j + l := 16*j + IF k[j] + dst[i+63:i] := ZeroExtend64(a[l+15:l]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Load contiguous active double-precision (64-bit) floating-point elements from unaligned memory at "mem_addr" (those with their respective bit set in mask "k"), and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +m := 0 +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := MEM[mem_addr+m+63:mem_addr+m] + m := m + 64 + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Load +
+ + + + + Load contiguous active double-precision (64-bit) floating-point elements from unaligned memory at "mem_addr" (those with their respective bit set in mask "k"), and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +m := 0 +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := MEM[mem_addr+m+63:mem_addr+m] + m := m + 64 + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Load +
+ + + + + + Load contiguous active double-precision (64-bit) floating-point elements from unaligned memory at "mem_addr" (those with their respective bit set in mask "k"), and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +m := 0 +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := MEM[mem_addr+m+63:mem_addr+m] + m := m + 64 + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Load +
+ + + + + Load contiguous active double-precision (64-bit) floating-point elements from unaligned memory at "mem_addr" (those with their respective bit set in mask "k"), and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +m := 0 +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := MEM[mem_addr+m+63:mem_addr+m] + m := m + 64 + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Load +
+ + + + + + Load contiguous active single-precision (32-bit) floating-point elements from unaligned memory at "mem_addr" (those with their respective bit set in mask "k"), and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +m := 0 +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := MEM[mem_addr+m+31:mem_addr+m] + m := m + 32 + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Load +
+ + + + + Load contiguous active single-precision (32-bit) floating-point elements from unaligned memory at "mem_addr" (those with their respective bit set in mask "k"), and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +m := 0 +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := MEM[mem_addr+m+31:mem_addr+m] + m := m + 32 + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Load +
+ + + + + + Load contiguous active single-precision (32-bit) floating-point elements from unaligned memory at "mem_addr" (those with their respective bit set in mask "k"), and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +m := 0 +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := MEM[mem_addr+m+31:mem_addr+m] + m := m + 32 + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Load +
+ + + + + Load contiguous active single-precision (32-bit) floating-point elements from unaligned memory at "mem_addr" (those with their respective bit set in mask "k"), and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +m := 0 +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := MEM[mem_addr+m+31:mem_addr+m] + m := m + 32 + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Load +
+ + + + + + + + Gather double-precision (64-bit) floating-point elements from memory using 32-bit indices. 64-bit elements are loaded from addresses starting at "base_addr" and offset by each 32-bit element in "vindex" (each index is scaled by the factor in "scale"). Gathered elements are merged into "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 3 + i := j*64 + m := j*32 + IF k[j] + addr := base_addr + SignExtend64(vindex[m+31:m]) * ZeroExtend64(scale) * 8 + dst[i+63:i] := MEM[addr+63:addr] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Load +
+ + + + + + + + Gather double-precision (64-bit) floating-point elements from memory using 32-bit indices. 64-bit elements are loaded from addresses starting at "base_addr" and offset by each 32-bit element in "vindex" (each index is scaled by the factor in "scale"). Gathered elements are merged into "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 1 + i := j*64 + m := j*32 + IF k[j] + addr := base_addr + SignExtend64(vindex[m+31:m]) * ZeroExtend64(scale) * 8 + dst[i+63:i] := MEM[addr+63:addr] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Load +
+ + + + + + + + Gather single-precision (32-bit) floating-point elements from memory using 32-bit indices. 32-bit elements are loaded from addresses starting at "base_addr" and offset by each 32-bit element in "vindex" (each index is scaled by the factor in "scale"). Gathered elements are merged into "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 7 + i := j*32 + m := j*32 + IF k[j] + addr := base_addr + SignExtend64(vindex[m+31:m]) * ZeroExtend64(scale) * 8 + dst[i+31:i] := MEM[addr+31:addr] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Load +
+ + + + + + + + Gather single-precision (32-bit) floating-point elements from memory using 32-bit indices. 32-bit elements are loaded from addresses starting at "base_addr" and offset by each 32-bit element in "vindex" (each index is scaled by the factor in "scale"). Gathered elements are merged into "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 3 + i := j*32 + m := j*32 + IF k[j] + addr := base_addr + SignExtend64(vindex[m+31:m]) * ZeroExtend64(scale) * 8 + dst[i+31:i] := MEM[addr+31:addr] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Load +
+ + + + + + + + Gather double-precision (64-bit) floating-point elements from memory using 64-bit indices. 64-bit elements are loaded from addresses starting at "base_addr" and offset by each 64-bit element in "vindex" (each index is scaled by the factor in "scale"). Gathered elements are merged into "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 3 + i := j*64 + m := j*64 + IF k[j] + addr := base_addr + vindex[m+63:m] * ZeroExtend64(scale) * 8 + dst[i+63:i] := MEM[addr+63:addr] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Load +
+ + + + + + + + Gather double-precision (64-bit) floating-point elements from memory using 64-bit indices. 64-bit elements are loaded from addresses starting at "base_addr" and offset by each 64-bit element in "vindex" (each index is scaled by the factor in "scale"). Gathered elements are merged into "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 1 + i := j*64 + m := j*64 + IF k[j] + addr := base_addr + vindex[m+63:m] * ZeroExtend64(scale) * 8 + dst[i+63:i] := MEM[addr+63:addr] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Load +
+ + + + + + + + Gather single-precision (32-bit) floating-point elements from memory using 64-bit indices. 32-bit elements are loaded from addresses starting at "base_addr" and offset by each 64-bit element in "vindex" (each index is scaled by the factor in "scale"). Gathered elements are merged into "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 3 + i := j*32 + m := j*64 + IF k[j] + addr := base_addr + vindex[m+63:m] * ZeroExtend64(scale) * 8 + dst[i+31:i] := MEM[addr+31:addr] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Load +
+ + + + + + + + Gather single-precision (32-bit) floating-point elements from memory using 64-bit indices. 32-bit elements are loaded from addresses starting at "base_addr" and offset by each 64-bit element in "vindex" (each index is scaled by the factor in "scale"). Gathered elements are merged into "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 1 + i := j*32 + m := j*64 + IF k[j] + addr := base_addr + vindex[m+63:m] * ZeroExtend64(scale) * 8 + dst[i+31:i] := MEM[addr+31:addr] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:64] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Load +
+ + + + + + Load packed double-precision (64-bit) floating-point elements from memory into "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). "mem_addr" must be aligned on a 32-byte boundary or a general-protection exception may be generated. + +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := MEM[mem_addr+i+63:mem_addr+i] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Load +
+ + + + + Load packed double-precision (64-bit) floating-point elements from memory into "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). "mem_addr" must be aligned on a 32-byte boundary or a general-protection exception may be generated. + +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := MEM[mem_addr+i+63:mem_addr+i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Load +
+ + + + + + Load packed double-precision (64-bit) floating-point elements from memory into "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). "mem_addr" must be aligned on a 16-byte boundary or a general-protection exception may be generated. + +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := MEM[mem_addr+i+63:mem_addr+i] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Load +
+ + + + + Load packed double-precision (64-bit) floating-point elements from memory into "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). "mem_addr" must be aligned on a 16-byte boundary or a general-protection exception may be generated. + +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := MEM[mem_addr+i+63:mem_addr+i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Load +
+ + + + + + Load packed single-precision (32-bit) floating-point elements from memory into "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). "mem_addr" must be aligned on a 32-byte boundary or a general-protection exception may be generated. + +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := MEM[mem_addr+i+31:mem_addr+i] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Load +
+ + + + + Load packed single-precision (32-bit) floating-point elements from memory into "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). "mem_addr" must be aligned on a 32-byte boundary or a general-protection exception may be generated. + +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := MEM[mem_addr+i+31:mem_addr+i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Load +
+ + + + + + Load packed single-precision (32-bit) floating-point elements from memory into "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). "mem_addr" must be aligned on a 16-byte boundary or a general-protection exception may be generated. + +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := MEM[mem_addr+i+31:mem_addr+i] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Load +
+ + + + + Load packed single-precision (32-bit) floating-point elements from memory into "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). "mem_addr" must be aligned on a 16-byte boundary or a general-protection exception may be generated. + +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := MEM[mem_addr+i+31:mem_addr+i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Load +
+ + + + + + Load packed 32-bit integers from memory into "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + "mem_addr" must be aligned on a 32-byte boundary or a general-protection exception may be generated. + +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := MEM[mem_addr+i+31:mem_addr+i] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Load +
+ + + + + Load packed 32-bit integers from memory into "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + "mem_addr" must be aligned on a 32-byte boundary or a general-protection exception may be generated. + +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := MEM[mem_addr+i+31:mem_addr+i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Load +
+ + + + + + Load packed 32-bit integers from memory into "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + "mem_addr" must be aligned on a 16-byte boundary or a general-protection exception may be generated. + +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := MEM[mem_addr+i+31:mem_addr+i] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Load +
+ + + + + Load packed 32-bit integers from memory into "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + "mem_addr" must be aligned on a 16-byte boundary or a general-protection exception may be generated. + +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := MEM[mem_addr+i+31:mem_addr+i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Load +
+ + + + + + Load packed 64-bit integers from memory into "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + "mem_addr" must be aligned on a 32-byte boundary or a general-protection exception may be generated. + +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := MEM[mem_addr+i+63:mem_addr+i] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Load +
+ + + + + Load packed 64-bit integers from memory into "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + "mem_addr" must be aligned on a 32-byte boundary or a general-protection exception may be generated. + +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := MEM[mem_addr+i+63:mem_addr+i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Load +
+ + + + + + Load packed 64-bit integers from memory into "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + "mem_addr" must be aligned on a 16-byte boundary or a general-protection exception may be generated. + +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := MEM[mem_addr+i+63:mem_addr+i] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Load +
+ + + + + Load packed 64-bit integers from memory into "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + "mem_addr" must be aligned on a 16-byte boundary or a general-protection exception may be generated. + +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := MEM[mem_addr+i+63:mem_addr+i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Load +
+ + + + + + Load packed 32-bit integers from memory into "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + "mem_addr" does not need to be aligned on any particular boundary. + +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := MEM[mem_addr+i+31:mem_addr+i] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Load +
+ + + + + Load packed 32-bit integers from memory into "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + "mem_addr" does not need to be aligned on any particular boundary. + +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := MEM[mem_addr+i+31:mem_addr+i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Load +
+ + + + + + Load packed 32-bit integers from memory into "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + "mem_addr" does not need to be aligned on any particular boundary. + +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := MEM[mem_addr+i+31:mem_addr+i] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Load +
+ + + + + Load packed 32-bit integers from memory into "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + "mem_addr" does not need to be aligned on any particular boundary. + +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := MEM[mem_addr+i+31:mem_addr+i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Load +
+ + + + + + Load packed 64-bit integers from memory into "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + "mem_addr" does not need to be aligned on any particular boundary. + +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := MEM[mem_addr+i+63:mem_addr+i] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Load +
+ + + + + Load packed 64-bit integers from memory into "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + "mem_addr" does not need to be aligned on any particular boundary. + +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := MEM[mem_addr+i+63:mem_addr+i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Load +
+ + + + + + Load packed 64-bit integers from memory into "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + "mem_addr" does not need to be aligned on any particular boundary. + +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := MEM[mem_addr+i+63:mem_addr+i] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Load +
+ + + + + Load packed 64-bit integers from memory into "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + "mem_addr" does not need to be aligned on any particular boundary. + +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := MEM[mem_addr+i+63:mem_addr+i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Load +
+ + + + + + Load packed double-precision (64-bit) floating-point elements from memoy into "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + "mem_addr" does not need to be aligned on any particular boundary. + +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := MEM[mem_addr+i+63:mem_addr+i] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Load +
+ + + + + Load packed double-precision (64-bit) floating-point elements from memoy into "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + "mem_addr" does not need to be aligned on any particular boundary. + +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := MEM[mem_addr+i+63:mem_addr+i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Load +
+ + + + + + Load packed double-precision (64-bit) floating-point elements from memoy into "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + "mem_addr" does not need to be aligned on any particular boundary. + +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := MEM[mem_addr+i+63:mem_addr+i] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Load +
+ + + + + Load packed double-precision (64-bit) floating-point elements from memoy into "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + "mem_addr" does not need to be aligned on any particular boundary. + +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := MEM[mem_addr+i+63:mem_addr+i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Load +
+ + + + + + Load packed single-precision (32-bit) floating-point elements from memory into "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + "mem_addr" does not need to be aligned on any particular boundary. + +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := MEM[mem_addr+i+31:mem_addr+i] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Load +
+ + + + + Load packed single-precision (32-bit) floating-point elements from memory into "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + "mem_addr" does not need to be aligned on any particular boundary. + +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := MEM[mem_addr+i+31:mem_addr+i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Load +
+ + + + + + Load packed single-precision (32-bit) floating-point elements from memory into "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + "mem_addr" does not need to be aligned on any particular boundary. + +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := MEM[mem_addr+i+31:mem_addr+i] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Load +
+ + + + + Load packed single-precision (32-bit) floating-point elements from memory into "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + "mem_addr" does not need to be aligned on any particular boundary. + +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := MEM[mem_addr+i+31:mem_addr+i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Load +
+ + + + + + Load contiguous active 32-bit integers from unaligned memory at "mem_addr" (those with their respective bit set in mask "k"), and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +m := 0 +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := MEM[mem_addr+m+31:mem_addr+m] + m := m + 32 + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Load +
+ + + + + Load contiguous active 32-bit integers from unaligned memory at "mem_addr" (those with their respective bit set in mask "k"), and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +m := 0 +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := MEM[mem_addr+m+31:mem_addr+m] + m := m + 32 + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Load +
+ + + + + + Load contiguous active 32-bit integers from unaligned memory at "mem_addr" (those with their respective bit set in mask "k"), and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +m := 0 +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := MEM[mem_addr+m+31:mem_addr+m] + m := m + 32 + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Load +
+ + + + + Load contiguous active 32-bit integers from unaligned memory at "mem_addr" (those with their respective bit set in mask "k"), and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +m := 0 +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := MEM[mem_addr+m+31:mem_addr+m] + m := m + 32 + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Load +
+ + + + + + Load contiguous active 64-bit integers from unaligned memory at "mem_addr" (those with their respective bit set in mask "k"), and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +m := 0 +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := MEM[mem_addr+m+63:mem_addr+m] + m := m + 64 + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Load +
+ + + + + Load contiguous active 64-bit integers from unaligned memory at "mem_addr" (those with their respective bit set in mask "k"), and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +m := 0 +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := MEM[mem_addr+m+63:mem_addr+m] + m := m + 64 + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Load +
+ + + + + + Load contiguous active 64-bit integers from unaligned memory at "mem_addr" (those with their respective bit set in mask "k"), and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +m := 0 +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := MEM[mem_addr+m+63:mem_addr+m] + m := m + 64 + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Load +
+ + + + + Load contiguous active 64-bit integers from unaligned memory at "mem_addr" (those with their respective bit set in mask "k"), and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +m := 0 +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := MEM[mem_addr+m+63:mem_addr+m] + m := m + 64 + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Load +
+ + + + + + + + Gather 32-bit integers from memory using 32-bit indices. 32-bit elements are loaded from addresses starting at "base_addr" and offset by each 32-bit element in "vindex" (each index is scaled by the factor in "scale"). Gathered elements are merged into "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 7 + i := j*32 + m := j*32 + IF k[j] + addr := base_addr + SignExtend64(vindex[m+31:m]) * ZeroExtend64(scale) * 8 + dst[i+31:i] := MEM[addr+31:addr] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Load +
+ + + + + + + + Gather 32-bit integers from memory using 32-bit indices. 32-bit elements are loaded from addresses starting at "base_addr" and offset by each 32-bit element in "vindex" (each index is scaled by the factor in "scale"). Gathered elements are merged into "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 3 + i := j*32 + m := j*32 + IF k[j] + addr := base_addr + SignExtend64(vindex[m+31:m]) * ZeroExtend64(scale) * 8 + dst[i+31:i] := MEM[addr+31:addr] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Load +
+ + + + + + + + Gather 64-bit integers from memory using 32-bit indices. 64-bit elements are loaded from addresses starting at "base_addr" and offset by each 32-bit element in "vindex" (each index is scaled by the factor in "scale"). Gathered elements are merged into "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 3 + i := j*64 + m := j*32 + IF k[j] + addr := base_addr + SignExtend64(vindex[m+31:m]) * ZeroExtend64(scale) * 8 + dst[i+63:i] := MEM[addr+63:addr] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Load +
+ + + + + + + + Gather 64-bit integers from memory using 32-bit indices. 64-bit elements are loaded from addresses starting at "base_addr" and offset by each 32-bit element in "vindex" (each index is scaled by the factor in "scale"). Gathered elements are merged into "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 1 + i := j*64 + m := j*32 + IF k[j] + addr := base_addr + SignExtend64(vindex[m+31:m]) * ZeroExtend64(scale) * 8 + dst[i+63:i] := MEM[addr+63:addr] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Load +
+ + + + + + + + Gather 32-bit integers from memory using 64-bit indices. 32-bit elements are loaded from addresses starting at "base_addr" and offset by each 64-bit element in "vindex" (each index is scaled by the factor in "scale"). Gathered elements are merged into "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 3 + i := j*32 + m := j*64 + IF k[j] + addr := base_addr + vindex[m+63:m] * ZeroExtend64(scale) * 8 + dst[i+31:i] := MEM[addr+31:addr] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Load +
+ + + + + + + + Gather 32-bit integers from memory using 64-bit indices. 32-bit elements are loaded from addresses starting at "base_addr" and offset by each 64-bit element in "vindex" (each index is scaled by the factor in "scale"). Gathered elements are merged into "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 1 + i := j*32 + m := j*64 + IF k[j] + addr := base_addr + vindex[m+63:m] * ZeroExtend64(scale) * 8 + dst[i+31:i] := MEM[addr+31:addr] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:64] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Load +
+ + + + + + + + Gather 64-bit integers from memory using 64-bit indices. 64-bit elements are loaded from addresses starting at "base_addr" and offset by each 64-bit element in "vindex" (each index is scaled by the factor in "scale"). Gathered elements are merged into "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 3 + i := j*64 + m := j*64 + IF k[j] + addr := base_addr + vindex[m+63:m] * ZeroExtend64(scale) * 8 + dst[i+63:i] := MEM[addr+63:addr] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Load +
+ + + + + + + + Gather 64-bit integers from memory using 64-bit indices. 64-bit elements are loaded from addresses starting at "base_addr" and offset by each 64-bit element in "vindex" (each index is scaled by the factor in "scale"). Gathered elements are merged into "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 1 + i := j*64 + m := j*64 + IF k[j] + addr := base_addr + vindex[m+63:m] * ZeroExtend64(scale) * 8 + dst[i+63:i] := MEM[addr+63:addr] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Load +
+ + + + Load 256-bits (composed of 4 packed 64-bit integers) from memory into "dst". + "mem_addr" does not need to be aligned on any particular boundary. + +dst[255:0] := MEM[mem_addr+255:mem_addr] +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Load +
+ + + + Load 256-bits (composed of 8 packed 32-bit integers) from memory into "dst". + "mem_addr" does not need to be aligned on any particular boundary. + +dst[255:0] := MEM[mem_addr+255:mem_addr] +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Load +
+ + + + Load 128-bits (composed of 2 packed 64-bit integers) from memory into "dst". + "mem_addr" does not need to be aligned on any particular boundary. + +dst[127:0] := MEM[mem_addr+127:mem_addr] +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Load +
+ + + + Load 128-bits (composed of 4 packed 32-bit integers) from memory into "dst". + "mem_addr" does not need to be aligned on any particular boundary. + +dst[127:0] := MEM[mem_addr+127:mem_addr] +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Load +
+ + + + Load 256-bits (composed of 4 packed 64-bit integers) from memory into "dst". + "mem_addr" must be aligned on a 32-byte boundary or a general-protection exception may be generated. + +dst[255:0] := MEM[mem_addr+255:mem_addr] +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Load +
+ + + + Load 256-bits (composed of 8 packed 32-bit integers) from memory into "dst". + "mem_addr" must be aligned on a 32-byte boundary or a general-protection exception may be generated. + +dst[255:0] := MEM[mem_addr+255:mem_addr] +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Load +
+ + + + Load 128-bits (composed of 2 packed 64-bit integers) from memory into "dst". + "mem_addr" must be aligned on a 16-byte boundary or a general-protection exception may be generated. + +dst[127:0] := MEM[mem_addr+127:mem_addr] +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Load +
+ + + + Load 128-bits (composed of 4 packed 32-bit integers) from memory into "dst". + "mem_addr" must be aligned on a 16-byte boundary or a general-protection exception may be generated. + +dst[127:0] := MEM[mem_addr+127:mem_addr] +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Load +
+ + + + + + Move packed double-precision (64-bit) floating-point elements from "a" to "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := a[i+63:i] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Move +
+ + + + + Move packed double-precision (64-bit) floating-point elements from "a" into "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := a[i+63:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Move +
+ + + + + + Move packed double-precision (64-bit) floating-point elements from "a" to "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := a[i+63:i] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Move +
+ + + + + Move packed double-precision (64-bit) floating-point elements from "a" into "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := a[i+63:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Move +
+ + + + + + Move packed single-precision (32-bit) floating-point elements from "a" to "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := a[i+31:i] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Move +
+ + + + + Move packed single-precision (32-bit) floating-point elements from "a" into "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := a[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Move +
+ + + + + + Move packed single-precision (32-bit) floating-point elements from "a" to "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := a[i+31:i] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Move +
+ + + + + Move packed single-precision (32-bit) floating-point elements from "a" into "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := a[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Move +
+ + + + + + Duplicate even-indexed double-precision (64-bit) floating-point elements from "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +tmp[63:0] := a[63:0] +tmp[127:64] := a[63:0] +tmp[191:128] := a[191:128] +tmp[255:192] := a[191:128] +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := tmp[i+63:i] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Move +
+ + + + + Duplicate even-indexed double-precision (64-bit) floating-point elements from "a", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +tmp[63:0] := a[63:0] +tmp[127:64] := a[63:0] +tmp[191:128] := a[191:128] +tmp[255:192] := a[191:128] +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := tmp[i+63:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Move +
+ + + + + + Duplicate even-indexed double-precision (64-bit) floating-point elements from "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +tmp[63:0] := a[63:0] +tmp[127:64] := a[63:0] +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := tmp[i+63:i] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Move +
+ + + + + Duplicate even-indexed double-precision (64-bit) floating-point elements from "a", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +tmp[63:0] := a[63:0] +tmp[127:64] := a[63:0] +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := tmp[i+63:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Move +
+ + + + + + Move packed 32-bit integers from "a" to "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := a[i+31:i] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Move +
+ + + + + Move packed 32-bit integers from "a" into "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := a[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Move +
+ + + + + + Move packed 32-bit integers from "a" to "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := a[i+31:i] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Move +
+ + + + + Move packed 32-bit integers from "a" into "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := a[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Move +
+ + + + + + Move packed 64-bit integers from "a" to "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := a[i+63:i] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Move +
+ + + + + Move packed 64-bit integers from "a" into "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := a[i+63:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Move +
+ + + + + + Move packed 64-bit integers from "a" to "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := a[i+63:i] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Move +
+ + + + + Move packed 64-bit integers from "a" into "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := a[i+63:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Move +
+ + + + + + Duplicate odd-indexed single-precision (32-bit) floating-point elements from "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +tmp[31:0] := a[63:32] +tmp[63:32] := a[63:32] +tmp[95:64] := a[127:96] +tmp[127:96] := a[127:96] +tmp[159:128] := a[191:160] +tmp[191:160] := a[191:160] +tmp[223:192] := a[255:224] +tmp[255:224] := a[255:224] +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := tmp[i+31:i] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Move +
+ + + + + Duplicate odd-indexed single-precision (32-bit) floating-point elements from "a", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +tmp[31:0] := a[63:32] +tmp[63:32] := a[63:32] +tmp[95:64] := a[127:96] +tmp[127:96] := a[127:96] +tmp[159:128] := a[191:160] +tmp[191:160] := a[191:160] +tmp[223:192] := a[255:224] +tmp[255:224] := a[255:224] +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := tmp[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Move +
+ + + + + + Duplicate odd-indexed single-precision (32-bit) floating-point elements from "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +tmp[31:0] := a[63:32] +tmp[63:32] := a[63:32] +tmp[95:64] := a[127:96] +tmp[127:96] := a[127:96] +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := tmp[i+31:i] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Move +
+ + + + + Duplicate odd-indexed single-precision (32-bit) floating-point elements from "a", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +tmp[31:0] := a[63:32] +tmp[63:32] := a[63:32] +tmp[95:64] := a[127:96] +tmp[127:96] := a[127:96] +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := tmp[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Move +
+ + + + + + Duplicate even-indexed single-precision (32-bit) floating-point elements from "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +tmp[31:0] := a[31:0] +tmp[63:32] := a[31:0] +tmp[95:64] := a[95:64] +tmp[127:96] := a[95:64] +tmp[159:128] := a[159:128] +tmp[191:160] := a[159:128] +tmp[223:192] := a[223:192] +tmp[255:224] := a[223:192] +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := tmp[i+31:i] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Move +
+ + + + + Duplicate even-indexed single-precision (32-bit) floating-point elements from "a", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +tmp[31:0] := a[31:0] +tmp[63:32] := a[31:0] +tmp[95:64] := a[95:64] +tmp[127:96] := a[95:64] +tmp[159:128] := a[159:128] +tmp[191:160] := a[159:128] +tmp[223:192] := a[223:192] +tmp[255:224] := a[223:192] +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := tmp[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Move +
+ + + + + + Duplicate even-indexed single-precision (32-bit) floating-point elements from "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +tmp[31:0] := a[31:0] +tmp[63:32] := a[31:0] +tmp[95:64] := a[95:64] +tmp[127:96] := a[95:64] +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := tmp[i+31:i] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Move +
+ + + + + Duplicate even-indexed single-precision (32-bit) floating-point elements from "a", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +tmp[31:0] := a[31:0] +tmp[63:32] := a[31:0] +tmp[95:64] := a[95:64] +tmp[127:96] := a[95:64] +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := tmp[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Move +
+ + + + + + + Compute the bitwise AND of packed 32-bit integers in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := a[i+31:i] AND b[i+31:i] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Logical +
+ + + + + + Compute the bitwise AND of packed 32-bit integers in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := a[i+31:i] AND b[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Logical +
+ + + + + + + Compute the bitwise AND of packed 32-bit integers in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := a[i+31:i] AND b[i+31:i] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Logical +
+ + + + + + Compute the bitwise AND of packed 32-bit integers in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := a[i+31:i] AND b[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Logical +
+ + + + + + + Compute the bitwise NOT of packed 32-bit integers in "a" and then AND with "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := ((NOT a[i+31:i]) AND b[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Logical +
+ + + + + + Compute the bitwise NOT of packed 32-bit integers in "a" and then AND with "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := (NOT a[i+31:i]) AND b[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Logical +
+ + + + + + + Compute the bitwise NOT of packed 32-bit integers in "a" and then AND with "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := ((NOT a[i+31:i]) AND b[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Logical +
+ + + + + + Compute the bitwise NOT of packed 32-bit integers in "a" and then AND with "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := (NOT a[i+31:i]) AND b[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Logical +
+ + + + + + + Compute the bitwise NOT of packed 64-bit integers in "a" and then AND with "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := ((NOT a[i+63:i]) AND b[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Logical +
+ + + + + + Compute the bitwise NOT of packed 64-bit integers in "a" and then AND with "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := (NOT a[i+63:i]) AND b[i+63:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Logical +
+ + + + + + + Compute the bitwise NOT of packed 64-bit integers in "a" and then AND with "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := ((NOT a[i+63:i]) AND b[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Logical +
+ + + + + + Compute the bitwise NOT of packed 64-bit integers in "a" and then AND with "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := (NOT a[i+63:i]) AND b[i+63:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Logical +
+ + + + + + + Compute the bitwise AND of packed 64-bit integers in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := a[i+63:i] AND b[i+63:i] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Logical +
+ + + + + + Compute the bitwise AND of packed 64-bit integers in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := a[i+63:i] AND b[i+63:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Logical +
+ + + + + + + Compute the bitwise AND of packed 64-bit integers in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := a[i+63:i] AND b[i+63:i] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Logical +
+ + + + + + Compute the bitwise AND of packed 64-bit integers in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := a[i+63:i] AND b[i+63:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Logical +
+ + + + + + + Compute the bitwise OR of packed 32-bit integers in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := a[i+31:i] OR b[i+31:i] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Logical +
+ + + + + + Compute the bitwise OR of packed 32-bit integers in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := a[i+31:i] OR b[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Logical +
+ + + + + + + Compute the bitwise OR of packed 32-bit integers in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := a[i+31:i] OR b[i+31:i] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Logical +
+ + + + + + Compute the bitwise OR of packed 32-bit integers in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := a[i+31:i] OR b[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Logical +
+ + + + + + + Compute the bitwise OR of packed 64-bit integers in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := a[i+63:i] OR b[i+63:i] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Logical +
+ + + + + + Compute the bitwise OR of packed 64-bit integers in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := a[i+63:i] OR b[i+63:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Logical +
+ + + + + + + Compute the bitwise OR of packed 64-bit integers in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := a[i+63:i] OR b[i+63:i] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Logical +
+ + + + + + Compute the bitwise OR of packed 64-bit integers in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := a[i+63:i] OR b[i+63:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Logical +
+ + + + + + + + Bitwise ternary logic that provides the capability to implement any three-operand binary function; the specific binary function is specified by value in "imm8". For each bit in each packed 32-bit integer, the corresponding bit from "a", "b", and "c" are used according to "imm8", and the result is written to the corresponding bit in "dst" using writemask "k" at 32-bit granularity (32-bit elements are copied from "a" when the corresponding mask bit is not set). + +DEFINE TernaryOP(imm8, a, b, c) { + CASE imm8[7:0] OF + 0: dst[0] := 0 // imm8[7:0] := 0 + 1: dst[0] := NOT (a OR b OR c) // imm8[7:0] := NOT (_MM_TERNLOG_A OR _MM_TERNLOG_B OR _MM_TERNLOG_C) + // ... + 254: dst[0] := a OR b OR c // imm8[7:0] := _MM_TERNLOG_A OR _MM_TERNLOG_B OR _MM_TERNLOG_C + 255: dst[0] := 1 // imm8[7:0] := 1 + ESAC +} +imm8[7:0] = LogicExp(_MM_TERNLOG_A, _MM_TERNLOG_B, _MM_TERNLOG_C) +FOR j := 0 to 7 + i := j*32 + IF k[j] + FOR h := 0 to 31 + dst[i+h] := TernaryOP(imm8[7:0], a[i+h], b[i+h], c[i+h]) + ENDFOR + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Logical +
+ + + + + + + + Bitwise ternary logic that provides the capability to implement any three-operand binary function; the specific binary function is specified by value in "imm8". For each bit in each packed 32-bit integer, the corresponding bit from "a", "b", and "c" are used according to "imm8", and the result is written to the corresponding bit in "dst" using zeromask "k" at 32-bit granularity (32-bit elements are zeroed out when the corresponding mask bit is not set). + +DEFINE TernaryOP(imm8, a, b, c) { + CASE imm8[7:0] OF + 0: dst[0] := 0 // imm8[7:0] := 0 + 1: dst[0] := NOT (a OR b OR c) // imm8[7:0] := NOT (_MM_TERNLOG_A OR _MM_TERNLOG_B OR _MM_TERNLOG_C) + // ... + 254: dst[0] := a OR b OR c // imm8[7:0] := _MM_TERNLOG_A OR _MM_TERNLOG_B OR _MM_TERNLOG_C + 255: dst[0] := 1 // imm8[7:0] := 1 + ESAC +} +imm8[7:0] = LogicExp(_MM_TERNLOG_A, _MM_TERNLOG_B, _MM_TERNLOG_C) +FOR j := 0 to 7 + i := j*32 + IF k[j] + FOR h := 0 to 31 + dst[i+h] := TernaryOP(imm8[7:0], a[i+h], b[i+h], c[i+h]) + ENDFOR + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Logical +
+ + + + + + + Bitwise ternary logic that provides the capability to implement any three-operand binary function; the specific binary function is specified by value in "imm8". For each bit in each packed 32-bit integer, the corresponding bit from "a", "b", and "c" are used according to "imm8", and the result is written to the corresponding bit in "dst". + +DEFINE TernaryOP(imm8, a, b, c) { + CASE imm8[7:0] OF + 0: dst[0] := 0 // imm8[7:0] := 0 + 1: dst[0] := NOT (a OR b OR c) // imm8[7:0] := NOT (_MM_TERNLOG_A OR _MM_TERNLOG_B OR _MM_TERNLOG_C) + // ... + 254: dst[0] := a OR b OR c // imm8[7:0] := _MM_TERNLOG_A OR _MM_TERNLOG_B OR _MM_TERNLOG_C + 255: dst[0] := 1 // imm8[7:0] := 1 + ESAC +} +imm8[7:0] = LogicExp(_MM_TERNLOG_A, _MM_TERNLOG_B, _MM_TERNLOG_C) +FOR j := 0 to 7 + i := j*32 + FOR h := 0 to 31 + dst[i+h] := TernaryOP(imm8[7:0], a[i+h], b[i+h], c[i+h]) + ENDFOR +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Logical +
+ + + + + + + + Bitwise ternary logic that provides the capability to implement any three-operand binary function; the specific binary function is specified by value in "imm8". For each bit in each packed 32-bit integer, the corresponding bit from "a", "b", and "c" are used according to "imm8", and the result is written to the corresponding bit in "dst" using writemask "k" at 32-bit granularity (32-bit elements are copied from "a" when the corresponding mask bit is not set). + +DEFINE TernaryOP(imm8, a, b, c) { + CASE imm8[7:0] OF + 0: dst[0] := 0 // imm8[7:0] := 0 + 1: dst[0] := NOT (a OR b OR c) // imm8[7:0] := NOT (_MM_TERNLOG_A OR _MM_TERNLOG_B OR _MM_TERNLOG_C) + // ... + 254: dst[0] := a OR b OR c // imm8[7:0] := _MM_TERNLOG_A OR _MM_TERNLOG_B OR _MM_TERNLOG_C + 255: dst[0] := 1 // imm8[7:0] := 1 + ESAC +} +imm8[7:0] = LogicExp(_MM_TERNLOG_A, _MM_TERNLOG_B, _MM_TERNLOG_C) +FOR j := 0 to 3 + i := j*32 + IF k[j] + FOR h := 0 to 31 + dst[i+h] := TernaryOP(imm8[7:0], a[i+h], b[i+h], c[i+h]) + ENDFOR + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Logical +
+ + + + + + + + Bitwise ternary logic that provides the capability to implement any three-operand binary function; the specific binary function is specified by value in "imm8". For each bit in each packed 32-bit integer, the corresponding bit from "a", "b", and "c" are used according to "imm8", and the result is written to the corresponding bit in "dst" using zeromask "k" at 32-bit granularity (32-bit elements are zeroed out when the corresponding mask bit is not set). + +DEFINE TernaryOP(imm8, a, b, c) { + CASE imm8[7:0] OF + 0: dst[0] := 0 // imm8[7:0] := 0 + 1: dst[0] := NOT (a OR b OR c) // imm8[7:0] := NOT (_MM_TERNLOG_A OR _MM_TERNLOG_B OR _MM_TERNLOG_C) + // ... + 254: dst[0] := a OR b OR c // imm8[7:0] := _MM_TERNLOG_A OR _MM_TERNLOG_B OR _MM_TERNLOG_C + 255: dst[0] := 1 // imm8[7:0] := 1 + ESAC +} +imm8[7:0] = LogicExp(_MM_TERNLOG_A, _MM_TERNLOG_B, _MM_TERNLOG_C) +FOR j := 0 to 3 + i := j*32 + IF k[j] + FOR h := 0 to 31 + dst[i+h] := TernaryOP(imm8[7:0], a[i+h], b[i+h], c[i+h]) + ENDFOR + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Logical +
+ + + + + + + Bitwise ternary logic that provides the capability to implement any three-operand binary function; the specific binary function is specified by value in "imm8". For each bit in each packed 32-bit integer, the corresponding bit from "a", "b", and "c" are used according to "imm8", and the result is written to the corresponding bit in "dst". + +DEFINE TernaryOP(imm8, a, b, c) { + CASE imm8[7:0] OF + 0: dst[0] := 0 // imm8[7:0] := 0 + 1: dst[0] := NOT (a OR b OR c) // imm8[7:0] := NOT (_MM_TERNLOG_A OR _MM_TERNLOG_B OR _MM_TERNLOG_C) + // ... + 254: dst[0] := a OR b OR c // imm8[7:0] := _MM_TERNLOG_A OR _MM_TERNLOG_B OR _MM_TERNLOG_C + 255: dst[0] := 1 // imm8[7:0] := 1 + ESAC +} +imm8[7:0] = LogicExp(_MM_TERNLOG_A, _MM_TERNLOG_B, _MM_TERNLOG_C) +FOR j := 0 to 3 + i := j*32 + FOR h := 0 to 31 + dst[i+h] := TernaryOP(imm8[7:0], a[i+h], b[i+h], c[i+h]) + ENDFOR +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Logical +
+ + + + + + + + Bitwise ternary logic that provides the capability to implement any three-operand binary function; the specific binary function is specified by value in "imm8". For each bit in each packed 64-bit integer, the corresponding bit from "a", "b", and "c" are used according to "imm8", and the result is written to the corresponding bit in "dst" using writemask "k" at 64-bit granularity (64-bit elements are copied from "a" when the corresponding mask bit is not set). + +DEFINE TernaryOP(imm8, a, b, c) { + CASE imm8[7:0] OF + 0: dst[0] := 0 // imm8[7:0] := 0 + 1: dst[0] := NOT (a OR b OR c) // imm8[7:0] := NOT (_MM_TERNLOG_A OR _MM_TERNLOG_B OR _MM_TERNLOG_C) + // ... + 254: dst[0] := a OR b OR c // imm8[7:0] := _MM_TERNLOG_A OR _MM_TERNLOG_B OR _MM_TERNLOG_C + 255: dst[0] := 1 // imm8[7:0] := 1 + ESAC +} +imm8[7:0] = LogicExp(_MM_TERNLOG_A, _MM_TERNLOG_B, _MM_TERNLOG_C) +FOR j := 0 to 3 + i := j*64 + IF k[j] + FOR h := 0 to 63 + dst[i+h] := TernaryOP(imm8[7:0], a[i+h], b[i+h], c[i+h]) + ENDFOR + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Logical +
+ + + + + + + + Bitwise ternary logic that provides the capability to implement any three-operand binary function; the specific binary function is specified by value in "imm8". For each bit in each packed 64-bit integer, the corresponding bit from "a", "b", and "c" are used according to "imm8", and the result is written to the corresponding bit in "dst" using zeromask "k" at 64-bit granularity (64-bit elements are zeroed out when the corresponding mask bit is not set). + +DEFINE TernaryOP(imm8, a, b, c) { + CASE imm8[7:0] OF + 0: dst[0] := 0 // imm8[7:0] := 0 + 1: dst[0] := NOT (a OR b OR c) // imm8[7:0] := NOT (_MM_TERNLOG_A OR _MM_TERNLOG_B OR _MM_TERNLOG_C) + // ... + 254: dst[0] := a OR b OR c // imm8[7:0] := _MM_TERNLOG_A OR _MM_TERNLOG_B OR _MM_TERNLOG_C + 255: dst[0] := 1 // imm8[7:0] := 1 + ESAC +} +imm8[7:0] = LogicExp(_MM_TERNLOG_A, _MM_TERNLOG_B, _MM_TERNLOG_C) +FOR j := 0 to 3 + i := j*64 + IF k[j] + FOR h := 0 to 63 + dst[i+h] := TernaryOP(imm8[7:0], a[i+h], b[i+h], c[i+h]) + ENDFOR + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Logical +
+ + + + + + + Bitwise ternary logic that provides the capability to implement any three-operand binary function; the specific binary function is specified by value in "imm8". For each bit in each packed 64-bit integer, the corresponding bit from "a", "b", and "c" are used according to "imm8", and the result is written to the corresponding bit in "dst". + +DEFINE TernaryOP(imm8, a, b, c) { + CASE imm8[7:0] OF + 0: dst[0] := 0 // imm8[7:0] := 0 + 1: dst[0] := NOT (a OR b OR c) // imm8[7:0] := NOT (_MM_TERNLOG_A OR _MM_TERNLOG_B OR _MM_TERNLOG_C) + // ... + 254: dst[0] := a OR b OR c // imm8[7:0] := _MM_TERNLOG_A OR _MM_TERNLOG_B OR _MM_TERNLOG_C + 255: dst[0] := 1 // imm8[7:0] := 1 + ESAC +} +imm8[7:0] = LogicExp(_MM_TERNLOG_A, _MM_TERNLOG_B, _MM_TERNLOG_C) +FOR j := 0 to 3 + i := j*64 + FOR h := 0 to 63 + dst[i+h] := TernaryOP(imm8[7:0], a[i+h], b[i+h], c[i+h]) + ENDFOR +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Logical +
+ + + + + + + + Bitwise ternary logic that provides the capability to implement any three-operand binary function; the specific binary function is specified by value in "imm8". For each bit in each packed 64-bit integer, the corresponding bit from "a", "b", and "c" are used according to "imm8", and the result is written to the corresponding bit in "dst" using writemask "k" at 64-bit granularity (64-bit elements are copied from "a" when the corresponding mask bit is not set). + +DEFINE TernaryOP(imm8, a, b, c) { + CASE imm8[7:0] OF + 0: dst[0] := 0 // imm8[7:0] := 0 + 1: dst[0] := NOT (a OR b OR c) // imm8[7:0] := NOT (_MM_TERNLOG_A OR _MM_TERNLOG_B OR _MM_TERNLOG_C) + // ... + 254: dst[0] := a OR b OR c // imm8[7:0] := _MM_TERNLOG_A OR _MM_TERNLOG_B OR _MM_TERNLOG_C + 255: dst[0] := 1 // imm8[7:0] := 1 + ESAC +} +imm8[7:0] = LogicExp(_MM_TERNLOG_A, _MM_TERNLOG_B, _MM_TERNLOG_C) +FOR j := 0 to 1 + i := j*64 + IF k[j] + FOR h := 0 to 63 + dst[i+h] := TernaryOP(imm8[7:0], a[i+h], b[i+h], c[i+h]) + ENDFOR + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Logical +
+ + + + + + + + Bitwise ternary logic that provides the capability to implement any three-operand binary function; the specific binary function is specified by value in "imm8". For each bit in each packed 64-bit integer, the corresponding bit from "a", "b", and "c" are used according to "imm8", and the result is written to the corresponding bit in "dst" using zeromask "k" at 64-bit granularity (64-bit elements are zeroed out when the corresponding mask bit is not set). + +DEFINE TernaryOP(imm8, a, b, c) { + CASE imm8[7:0] OF + 0: dst[0] := 0 // imm8[7:0] := 0 + 1: dst[0] := NOT (a OR b OR c) // imm8[7:0] := NOT (_MM_TERNLOG_A OR _MM_TERNLOG_B OR _MM_TERNLOG_C) + // ... + 254: dst[0] := a OR b OR c // imm8[7:0] := _MM_TERNLOG_A OR _MM_TERNLOG_B OR _MM_TERNLOG_C + 255: dst[0] := 1 // imm8[7:0] := 1 + ESAC +} +imm8[7:0] = LogicExp(_MM_TERNLOG_A, _MM_TERNLOG_B, _MM_TERNLOG_C) +FOR j := 0 to 1 + i := j*64 + IF k[j] + FOR h := 0 to 63 + dst[i+h] := TernaryOP(imm8[7:0], a[i+h], b[i+h], c[i+h]) + ENDFOR + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Logical +
+ + + + + + + Bitwise ternary logic that provides the capability to implement any three-operand binary function; the specific binary function is specified by value in "imm8". For each bit in each packed 64-bit integer, the corresponding bit from "a", "b", and "c" are used according to "imm8", and the result is written to the corresponding bit in "dst". + +DEFINE TernaryOP(imm8, a, b, c) { + CASE imm8[7:0] OF + 0: dst[0] := 0 // imm8[7:0] := 0 + 1: dst[0] := NOT (a OR b OR c) // imm8[7:0] := NOT (_MM_TERNLOG_A OR _MM_TERNLOG_B OR _MM_TERNLOG_C) + // ... + 254: dst[0] := a OR b OR c // imm8[7:0] := _MM_TERNLOG_A OR _MM_TERNLOG_B OR _MM_TERNLOG_C + 255: dst[0] := 1 // imm8[7:0] := 1 + ESAC +} +imm8[7:0] = LogicExp(_MM_TERNLOG_A, _MM_TERNLOG_B, _MM_TERNLOG_C) +FOR j := 0 to 1 + i := j*64 + FOR h := 0 to 63 + dst[i+h] := TernaryOP(imm8[7:0], a[i+h], b[i+h], c[i+h]) + ENDFOR +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Logical +
+ + + + + + + Compute the bitwise XOR of packed 32-bit integers in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := a[i+31:i] XOR b[i+31:i] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Logical +
+ + + + + + Compute the bitwise XOR of packed 32-bit integers in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := a[i+31:i] XOR b[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Logical +
+ + + + + + + Compute the bitwise XOR of packed 32-bit integers in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := a[i+31:i] XOR b[i+31:i] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Logical +
+ + + + + + Compute the bitwise XOR of packed 32-bit integers in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := a[i+31:i] XOR b[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Logical +
+ + + + + + + Compute the bitwise XOR of packed 64-bit integers in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := a[i+63:i] XOR b[i+63:i] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Logical +
+ + + + + + Compute the bitwise XOR of packed 64-bit integers in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := a[i+63:i] XOR b[i+63:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Logical +
+ + + + + + + Compute the bitwise XOR of packed 64-bit integers in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := a[i+63:i] XOR b[i+63:i] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Logical +
+ + + + + + Compute the bitwise XOR of packed 64-bit integers in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := a[i+63:i] XOR b[i+63:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Logical +
+ + + + + Compute the bitwise XOR of packed 64-bit integers in "a" and "b", and store the results in "dst". + +FOR j := 0 to 3 + i := j*64 + dst[i+63:i] := a[i+63:i] XOR b[i+63:i] +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Logical +
+ + + + + Compute the bitwise XOR of packed 32-bit integers in "a" and "b", and store the results in "dst". + +FOR j := 0 to 7 + i := j*32 + dst[i+31:i] := a[i+31:i] XOR b[i+31:i] +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Logical +
+ + + + + Compute the bitwise XOR of packed 64-bit integers in "a" and "b", and store the results in "dst". + +FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := a[i+63:i] XOR b[i+63:i] +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Logical +
+ + + + + Compute the bitwise XOR of packed 32-bit integers in "a" and "b", and store the results in "dst". + +FOR j := 0 to 3 + i := j*32 + dst[i+31:i] := a[i+31:i] XOR b[i+31:i] +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Logical +
+ + + + + Compute the bitwise OR of packed 64-bit integers in "a" and "b", and store the results in "dst". + +FOR j := 0 to 3 + i := j*64 + dst[i+63:i] := a[i+63:i] OR b[i+63:i] +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Logical +
+ + + + + Compute the bitwise OR of packed 32-bit integers in "a" and "b", and store the results in "dst". + +FOR j := 0 to 7 + i := j*32 + dst[i+31:i] := a[i+31:i] OR b[i+31:i] +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Logical +
+ + + + + Compute the bitwise OR of packed 64-bit integers in "a" and "b", and store the results in "dst". + +FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := a[i+63:i] OR b[i+63:i] +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Logical +
+ + + + + Compute the bitwise OR of packed 32-bit integers in "a" and "b", and store the results in "dst". + +FOR j := 0 to 3 + i := j*32 + dst[i+31:i] := a[i+31:i] OR b[i+31:i] +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Logical +
+ + + + + + Broadcast 32-bit integer "a" to all elements of "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := a[31:0] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Set +
+ + + + + Broadcast 32-bit integer "a" to all elements of "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := a[31:0] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Set +
+ + + + + + Broadcast 32-bit integer "a" to all elements of "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := a[31:0] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Set +
+ + + + + Broadcast 32-bit integer "a" to all elements of "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := a[31:0] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Set +
+ + + + + + Broadcast 64-bit integer "a" to all elements of "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := a[63:0] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Set +
+ + + + + Broadcast 64-bit integer "a" to all elements of "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := a[63:0] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Set +
+ + + + + + Broadcast 64-bit integer "a" to all elements of "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := a[63:0] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Set +
+ + + + + Broadcast 64-bit integer "a" to all elements of "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := a[63:0] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Set +
+ + + + + + + Rotate the bits in each packed 32-bit integer in "a" to the left by the number of bits specified in "imm8", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +DEFINE LEFT_ROTATE_DWORDS(src, count_src) { + count := count_src % 32 + RETURN (src << count) OR (src >> (32 - count)) +} +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := LEFT_ROTATE_DWORDS(a[i+31:i], imm8[7:0]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + Rotate the bits in each packed 32-bit integer in "a" to the left by the number of bits specified in "imm8", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +DEFINE LEFT_ROTATE_DWORDS(src, count_src) { + count := count_src % 32 + RETURN (src << count) OR (src >> (32 - count)) +} +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := LEFT_ROTATE_DWORDS(a[i+31:i], imm8[7:0]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + Rotate the bits in each packed 32-bit integer in "a" to the left by the number of bits specified in "imm8", and store the results in "dst". + +DEFINE LEFT_ROTATE_DWORDS(src, count_src) { + count := count_src % 32 + RETURN (src << count) OR (src >> (32 - count)) +} +FOR j := 0 to 7 + i := j*32 + dst[i+31:i] := LEFT_ROTATE_DWORDS(a[i+31:i], imm8[7:0]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + Rotate the bits in each packed 32-bit integer in "a" to the left by the number of bits specified in "imm8", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +DEFINE LEFT_ROTATE_DWORDS(src, count_src) { + count := count_src % 32 + RETURN (src << count) OR (src >> (32 - count)) +} +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := LEFT_ROTATE_DWORDS(a[i+31:i], imm8[7:0]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + Rotate the bits in each packed 32-bit integer in "a" to the left by the number of bits specified in "imm8", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +DEFINE LEFT_ROTATE_DWORDS(src, count_src) { + count := count_src % 32 + RETURN (src << count) OR (src >> (32 - count)) +} +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := LEFT_ROTATE_DWORDS(a[i+31:i], imm8[7:0]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + Rotate the bits in each packed 32-bit integer in "a" to the left by the number of bits specified in "imm8", and store the results in "dst". + +DEFINE LEFT_ROTATE_DWORDS(src, count_src) { + count := count_src % 32 + RETURN (src << count) OR (src >> (32 - count)) +} +FOR j := 0 to 3 + i := j*32 + dst[i+31:i] := LEFT_ROTATE_DWORDS(a[i+31:i], imm8[7:0]) +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + Rotate the bits in each packed 64-bit integer in "a" to the left by the number of bits specified in "imm8", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +DEFINE LEFT_ROTATE_QWORDS(src, count_src) { + count := count_src % 64 + RETURN (src << count) OR (src >> (64 - count)) +} +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := LEFT_ROTATE_QWORDS(a[i+63:i], imm8[7:0]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + Rotate the bits in each packed 64-bit integer in "a" to the left by the number of bits specified in "imm8", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +DEFINE LEFT_ROTATE_QWORDS(src, count_src) { + count := count_src % 64 + RETURN (src << count) OR (src >> (64 - count)) +} +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := LEFT_ROTATE_QWORDS(a[i+63:i], imm8[7:0]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + Rotate the bits in each packed 64-bit integer in "a" to the left by the number of bits specified in "imm8", and store the results in "dst". + +DEFINE LEFT_ROTATE_QWORDS(src, count_src) { + count := count_src % 64 + RETURN (src << count) OR (src >> (64 - count)) +} +FOR j := 0 to 3 + i := j*64 + dst[i+63:i] := LEFT_ROTATE_QWORDS(a[i+63:i], imm8[7:0]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + Rotate the bits in each packed 64-bit integer in "a" to the left by the number of bits specified in "imm8", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +DEFINE LEFT_ROTATE_QWORDS(src, count_src) { + count := count_src % 64 + RETURN (src << count) OR (src >> (64 - count)) +} +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := LEFT_ROTATE_QWORDS(a[i+63:i], imm8[7:0]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + Rotate the bits in each packed 64-bit integer in "a" to the left by the number of bits specified in "imm8", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +DEFINE LEFT_ROTATE_QWORDS(src, count_src) { + count := count_src % 64 + RETURN (src << count) OR (src >> (64 - count)) +} +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := LEFT_ROTATE_QWORDS(a[i+63:i], imm8[7:0]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + Rotate the bits in each packed 64-bit integer in "a" to the left by the number of bits specified in "imm8", and store the results in "dst". + +DEFINE LEFT_ROTATE_QWORDS(src, count_src) { + count := count_src % 64 + RETURN (src << count) OR (src >> (64 - count)) +} +FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := LEFT_ROTATE_QWORDS(a[i+63:i], imm8[7:0]) +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + Rotate the bits in each packed 32-bit integer in "a" to the left by the number of bits specified in the corresponding element of "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +DEFINE LEFT_ROTATE_DWORDS(src, count_src) { + count := count_src % 32 + RETURN (src << count) OR (src >> (32 - count)) +} +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := LEFT_ROTATE_DWORDS(a[i+31:i], b[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + Rotate the bits in each packed 32-bit integer in "a" to the left by the number of bits specified in the corresponding element of "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +DEFINE LEFT_ROTATE_DWORDS(src, count_src) { + count := count_src % 32 + RETURN (src << count) OR (src >> (32 - count)) +} +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := LEFT_ROTATE_DWORDS(a[i+31:i], b[i+31:i]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + Rotate the bits in each packed 32-bit integer in "a" to the left by the number of bits specified in the corresponding element of "b", and store the results in "dst". + +DEFINE LEFT_ROTATE_DWORDS(src, count_src) { + count := count_src % 32 + RETURN (src << count) OR (src >> (32 - count)) +} +FOR j := 0 to 7 + i := j*32 + dst[i+31:i] := LEFT_ROTATE_DWORDS(a[i+31:i], b[i+31:i]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + Rotate the bits in each packed 32-bit integer in "a" to the left by the number of bits specified in the corresponding element of "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +DEFINE LEFT_ROTATE_DWORDS(src, count_src) { + count := count_src % 32 + RETURN (src << count) OR (src >> (32 - count)) +} +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := LEFT_ROTATE_DWORDS(a[i+31:i], b[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + Rotate the bits in each packed 32-bit integer in "a" to the left by the number of bits specified in the corresponding element of "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +DEFINE LEFT_ROTATE_DWORDS(src, count_src) { + count := count_src % 32 + RETURN (src << count) OR (src >> (32 - count)) +} +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := LEFT_ROTATE_DWORDS(a[i+31:i], b[i+31:i]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + Rotate the bits in each packed 32-bit integer in "a" to the left by the number of bits specified in the corresponding element of "b", and store the results in "dst". + +DEFINE LEFT_ROTATE_DWORDS(src, count_src) { + count := count_src % 32 + RETURN (src << count) OR (src >> (32 - count)) +} +FOR j := 0 to 3 + i := j*32 + dst[i+31:i] := LEFT_ROTATE_DWORDS(a[i+31:i], b[i+31:i]) +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + Rotate the bits in each packed 64-bit integer in "a" to the left by the number of bits specified in the corresponding element of "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +DEFINE LEFT_ROTATE_QWORDS(src, count_src) { + count := count_src % 64 + RETURN (src << count) OR (src >> (64 - count)) +} +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := LEFT_ROTATE_QWORDS(a[i+63:i], b[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + Rotate the bits in each packed 64-bit integer in "a" to the left by the number of bits specified in the corresponding element of "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +DEFINE LEFT_ROTATE_QWORDS(src, count_src) { + count := count_src % 64 + RETURN (src << count) OR (src >> (64 - count)) +} +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := LEFT_ROTATE_QWORDS(a[i+63:i], b[i+63:i]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + Rotate the bits in each packed 64-bit integer in "a" to the left by the number of bits specified in the corresponding element of "b", and store the results in "dst". + +DEFINE LEFT_ROTATE_QWORDS(src, count_src) { + count := count_src % 64 + RETURN (src << count) OR (src >> (64 - count)) +} +FOR j := 0 to 3 + i := j*64 + dst[i+63:i] := LEFT_ROTATE_QWORDS(a[i+63:i], b[i+63:i]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + Rotate the bits in each packed 64-bit integer in "a" to the left by the number of bits specified in the corresponding element of "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +DEFINE LEFT_ROTATE_QWORDS(src, count_src) { + count := count_src % 64 + RETURN (src << count) OR (src >> (64 - count)) +} +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := LEFT_ROTATE_QWORDS(a[i+63:i], b[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + Rotate the bits in each packed 64-bit integer in "a" to the left by the number of bits specified in the corresponding element of "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +DEFINE LEFT_ROTATE_QWORDS(src, count_src) { + count := count_src % 64 + RETURN (src << count) OR (src >> (64 - count)) +} +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := LEFT_ROTATE_QWORDS(a[i+63:i], b[i+63:i]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + Rotate the bits in each packed 64-bit integer in "a" to the left by the number of bits specified in the corresponding element of "b", and store the results in "dst". + +DEFINE LEFT_ROTATE_QWORDS(src, count_src) { + count := count_src % 64 + RETURN (src << count) OR (src >> (64 - count)) +} +FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := LEFT_ROTATE_QWORDS(a[i+63:i], b[i+63:i]) +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + Rotate the bits in each packed 32-bit integer in "a" to the right by the number of bits specified in "imm8", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +DEFINE RIGHT_ROTATE_DWORDS(src, count_src) { + count := count_src % 32 + RETURN (src >>count) OR (src << (32 - count)) +} +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := RIGHT_ROTATE_DWORDS(a[i+31:i], imm8[7:0]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + Rotate the bits in each packed 32-bit integer in "a" to the right by the number of bits specified in "imm8", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +DEFINE RIGHT_ROTATE_DWORDS(src, count_src) { + count := count_src % 32 + RETURN (src >>count) OR (src << (32 - count)) +} +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := RIGHT_ROTATE_DWORDS(a[i+31:i], imm8[7:0]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + Rotate the bits in each packed 32-bit integer in "a" to the right by the number of bits specified in "imm8", and store the results in "dst". + +DEFINE RIGHT_ROTATE_DWORDS(src, count_src) { + count := count_src % 32 + RETURN (src >>count) OR (src << (32 - count)) +} +FOR j := 0 to 7 + i := j*32 + dst[i+31:i] := RIGHT_ROTATE_DWORDS(a[i+31:i], imm8[7:0]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + Rotate the bits in each packed 32-bit integer in "a" to the right by the number of bits specified in "imm8", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +DEFINE RIGHT_ROTATE_DWORDS(src, count_src) { + count := count_src % 32 + RETURN (src >>count) OR (src << (32 - count)) +} +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := RIGHT_ROTATE_DWORDS(a[i+31:i], imm8[7:0]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + Rotate the bits in each packed 32-bit integer in "a" to the right by the number of bits specified in "imm8", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +DEFINE RIGHT_ROTATE_DWORDS(src, count_src) { + count := count_src % 32 + RETURN (src >>count) OR (src << (32 - count)) +} +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := RIGHT_ROTATE_DWORDS(a[i+31:i], imm8[7:0]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + Rotate the bits in each packed 32-bit integer in "a" to the right by the number of bits specified in "imm8", and store the results in "dst". + +DEFINE RIGHT_ROTATE_DWORDS(src, count_src) { + count := count_src % 32 + RETURN (src >>count) OR (src << (32 - count)) +} +FOR j := 0 to 3 + i := j*32 + dst[i+31:i] := RIGHT_ROTATE_DWORDS(a[i+31:i], imm8[7:0]) +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + Rotate the bits in each packed 64-bit integer in "a" to the right by the number of bits specified in "imm8", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +DEFINE RIGHT_ROTATE_QWORDS(src, count_src) { + count := count_src % 64 + RETURN (src >> count) OR (src << (64 - count)) +} +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := RIGHT_ROTATE_QWORDS(a[i+63:i], imm8[7:0]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + Rotate the bits in each packed 64-bit integer in "a" to the right by the number of bits specified in "imm8", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +DEFINE RIGHT_ROTATE_QWORDS(src, count_src) { + count := count_src % 64 + RETURN (src >> count) OR (src << (64 - count)) +} +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := RIGHT_ROTATE_QWORDS(a[i+63:i], imm8[7:0]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + Rotate the bits in each packed 64-bit integer in "a" to the right by the number of bits specified in "imm8", and store the results in "dst". + +DEFINE RIGHT_ROTATE_QWORDS(src, count_src) { + count := count_src % 64 + RETURN (src >> count) OR (src << (64 - count)) +} +FOR j := 0 to 3 + i := j*64 + dst[i+63:i] := RIGHT_ROTATE_QWORDS(a[i+63:i], imm8[7:0]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + Rotate the bits in each packed 64-bit integer in "a" to the right by the number of bits specified in "imm8", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +DEFINE RIGHT_ROTATE_QWORDS(src, count_src) { + count := count_src % 64 + RETURN (src >> count) OR (src << (64 - count)) +} +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := RIGHT_ROTATE_QWORDS(a[i+63:i], imm8[7:0]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + Rotate the bits in each packed 64-bit integer in "a" to the right by the number of bits specified in "imm8", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +DEFINE RIGHT_ROTATE_QWORDS(src, count_src) { + count := count_src % 64 + RETURN (src >> count) OR (src << (64 - count)) +} +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := RIGHT_ROTATE_QWORDS(a[i+63:i], imm8[7:0]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + Rotate the bits in each packed 64-bit integer in "a" to the right by the number of bits specified in "imm8", and store the results in "dst". + +DEFINE RIGHT_ROTATE_QWORDS(src, count_src) { + count := count_src % 64 + RETURN (src >> count) OR (src << (64 - count)) +} +FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := RIGHT_ROTATE_QWORDS(a[i+63:i], imm8[7:0]) +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + Rotate the bits in each packed 32-bit integer in "a" to the right by the number of bits specified in the corresponding element of "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +DEFINE RIGHT_ROTATE_DWORDS(src, count_src) { + count := count_src % 32 + RETURN (src >>count) OR (src << (32 - count)) +} +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := RIGHT_ROTATE_DWORDS(a[i+31:i], b[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + Rotate the bits in each packed 32-bit integer in "a" to the right by the number of bits specified in the corresponding element of "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +DEFINE RIGHT_ROTATE_DWORDS(src, count_src) { + count := count_src % 32 + RETURN (src >>count) OR (src << (32 - count)) +} +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := RIGHT_ROTATE_DWORDS(a[i+31:i], b[i+31:i]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + Rotate the bits in each packed 32-bit integer in "a" to the right by the number of bits specified in the corresponding element of "b", and store the results in "dst". + +DEFINE RIGHT_ROTATE_DWORDS(src, count_src) { + count := count_src % 32 + RETURN (src >>count) OR (src << (32 - count)) +} +FOR j := 0 to 7 + i := j*32 + dst[i+31:i] := RIGHT_ROTATE_DWORDS(a[i+31:i], b[i+31:i]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + Rotate the bits in each packed 32-bit integer in "a" to the right by the number of bits specified in the corresponding element of "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +DEFINE RIGHT_ROTATE_DWORDS(src, count_src) { + count := count_src % 32 + RETURN (src >>count) OR (src << (32 - count)) +} +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := RIGHT_ROTATE_DWORDS(a[i+31:i], b[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + Rotate the bits in each packed 32-bit integer in "a" to the right by the number of bits specified in the corresponding element of "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +DEFINE RIGHT_ROTATE_DWORDS(src, count_src) { + count := count_src % 32 + RETURN (src >>count) OR (src << (32 - count)) +} +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := RIGHT_ROTATE_DWORDS(a[i+31:i], b[i+31:i]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + Rotate the bits in each packed 32-bit integer in "a" to the right by the number of bits specified in the corresponding element of "b", and store the results in "dst". + +DEFINE RIGHT_ROTATE_DWORDS(src, count_src) { + count := count_src % 32 + RETURN (src >>count) OR (src << (32 - count)) +} +FOR j := 0 to 3 + i := j*32 + dst[i+31:i] := RIGHT_ROTATE_DWORDS(a[i+31:i], b[i+31:i]) +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + Rotate the bits in each packed 64-bit integer in "a" to the right by the number of bits specified in the corresponding element of "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +DEFINE RIGHT_ROTATE_QWORDS(src, count_src) { + count := count_src % 64 + RETURN (src >> count) OR (src << (64 - count)) +} +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := RIGHT_ROTATE_QWORDS(a[i+63:i], b[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + Rotate the bits in each packed 64-bit integer in "a" to the right by the number of bits specified in the corresponding element of "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +DEFINE RIGHT_ROTATE_QWORDS(src, count_src) { + count := count_src % 64 + RETURN (src >> count) OR (src << (64 - count)) +} +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := RIGHT_ROTATE_QWORDS(a[i+63:i], b[i+63:i]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + Rotate the bits in each packed 64-bit integer in "a" to the right by the number of bits specified in the corresponding element of "b", and store the results in "dst". + +DEFINE RIGHT_ROTATE_QWORDS(src, count_src) { + count := count_src % 64 + RETURN (src >> count) OR (src << (64 - count)) +} +FOR j := 0 to 3 + i := j*64 + dst[i+63:i] := RIGHT_ROTATE_QWORDS(a[i+63:i], b[i+63:i]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + Rotate the bits in each packed 64-bit integer in "a" to the right by the number of bits specified in the corresponding element of "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +DEFINE RIGHT_ROTATE_QWORDS(src, count_src) { + count := count_src % 64 + RETURN (src >> count) OR (src << (64 - count)) +} +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := RIGHT_ROTATE_QWORDS(a[i+63:i], b[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + Rotate the bits in each packed 64-bit integer in "a" to the right by the number of bits specified in the corresponding element of "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +DEFINE RIGHT_ROTATE_QWORDS(src, count_src) { + count := count_src % 64 + RETURN (src >> count) OR (src << (64 - count)) +} +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := RIGHT_ROTATE_QWORDS(a[i+63:i], b[i+63:i]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + Rotate the bits in each packed 64-bit integer in "a" to the right by the number of bits specified in the corresponding element of "b", and store the results in "dst". + +DEFINE RIGHT_ROTATE_QWORDS(src, count_src) { + count := count_src % 64 + RETURN (src >> count) OR (src << (64 - count)) +} +FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := RIGHT_ROTATE_QWORDS(a[i+63:i], b[i+63:i]) +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + Shift packed 32-bit integers in "a" left by "count" while shifting in zeros, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k[j] + IF count[63:0] > 31 + dst[i+31:i] := 0 + ELSE + dst[i+31:i] := ZeroExtend32(a[i+31:i] << count[63:0]) + FI + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + Shift packed 32-bit integers in "a" left by "imm8" while shifting in zeros, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k[j] + IF imm8[7:0] > 31 + dst[i+31:i] := 0 + ELSE + dst[i+31:i] := ZeroExtend32(a[i+31:i] << imm8[7:0]) + FI + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + Shift packed 32-bit integers in "a" left by "count" while shifting in zeros, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k[j] + IF count[63:0] > 31 + dst[i+31:i] := 0 + ELSE + dst[i+31:i] := ZeroExtend32(a[i+31:i] << count[63:0]) + FI + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + Shift packed 32-bit integers in "a" left by "imm8" while shifting in zeros, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k[j] + IF imm8[7:0] > 31 + dst[i+31:i] := 0 + ELSE + dst[i+31:i] := ZeroExtend32(a[i+31:i] << imm8[7:0]) + FI + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + Shift packed 32-bit integers in "a" left by "count" while shifting in zeros, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k[j] + IF count[63:0] > 31 + dst[i+31:i] := 0 + ELSE + dst[i+31:i] := ZeroExtend32(a[i+31:i] << count[63:0]) + FI + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + Shift packed 32-bit integers in "a" left by "imm8" while shifting in zeros, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k[j] + IF imm8[7:0] > 31 + dst[i+31:i] := 0 + ELSE + dst[i+31:i] := ZeroExtend32(a[i+31:i] << imm8[7:0]) + FI + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + Shift packed 32-bit integers in "a" left by "count" while shifting in zeros, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k[j] + IF count[63:0] > 31 + dst[i+31:i] := 0 + ELSE + dst[i+31:i] := ZeroExtend32(a[i+31:i] << count[63:0]) + FI + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + Shift packed 32-bit integers in "a" left by "imm8" while shifting in zeros, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k[j] + IF imm8[7:0] > 31 + dst[i+31:i] := 0 + ELSE + dst[i+31:i] := ZeroExtend32(a[i+31:i] << imm8[7:0]) + FI + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + Shift packed 64-bit integers in "a" left by "count" while shifting in zeros, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + IF count[63:0] > 63 + dst[i+63:i] := 0 + ELSE + dst[i+63:i] := ZeroExtend64(a[i+63:i] << count[63:0]) + FI + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + Shift packed 64-bit integers in "a" left by "imm8" while shifting in zeros, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + IF imm8[7:0] > 63 + dst[i+63:i] := 0 + ELSE + dst[i+63:i] := ZeroExtend64(a[i+63:i] << imm8[7:0]) + FI + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + Shift packed 64-bit integers in "a" left by "count" while shifting in zeros, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + IF count[63:0] > 63 + dst[i+63:i] := 0 + ELSE + dst[i+63:i] := ZeroExtend64(a[i+63:i] << count[63:0]) + FI + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + Shift packed 64-bit integers in "a" left by "imm8" while shifting in zeros, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + IF imm8[7:0] > 63 + dst[i+63:i] := 0 + ELSE + dst[i+63:i] := ZeroExtend64(a[i+63:i] << imm8[7:0]) + FI + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + Shift packed 64-bit integers in "a" left by "count" while shifting in zeros, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + IF count[63:0] > 63 + dst[i+63:i] := 0 + ELSE + dst[i+63:i] := ZeroExtend64(a[i+63:i] << count[63:0]) + FI + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + Shift packed 64-bit integers in "a" left by "imm8" while shifting in zeros, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + IF imm8[7:0] > 63 + dst[i+63:i] := 0 + ELSE + dst[i+63:i] := ZeroExtend64(a[i+63:i] << imm8[7:0]) + FI + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + Shift packed 64-bit integers in "a" left by "count" while shifting in zeros, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + IF count[63:0] > 63 + dst[i+63:i] := 0 + ELSE + dst[i+63:i] := ZeroExtend64(a[i+63:i] << count[63:0]) + FI + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + Shift packed 64-bit integers in "a" left by "imm8" while shifting in zeros, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + IF imm8[7:0] > 63 + dst[i+63:i] := 0 + ELSE + dst[i+63:i] := ZeroExtend64(a[i+63:i] << imm8[7:0]) + FI + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + Shift packed 32-bit integers in "a" left by the amount specified by the corresponding element in "count" while shifting in zeros, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k[j] + IF count[i+31:i] < 32 + dst[i+31:i] := ZeroExtend32(a[i+31:i] << count[i+31:i]) + ELSE + dst[i+31:i] := 0 + FI + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + Shift packed 32-bit integers in "a" left by the amount specified by the corresponding element in "count" while shifting in zeros, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k[j] + IF count[i+31:i] < 32 + dst[i+31:i] := ZeroExtend32(a[i+31:i] << count[i+31:i]) + ELSE + dst[i+31:i] := 0 + FI + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + Shift packed 32-bit integers in "a" left by the amount specified by the corresponding element in "count" while shifting in zeros, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k[j] + IF count[i+31:i] < 32 + dst[i+31:i] := ZeroExtend32(a[i+31:i] << count[i+31:i]) + ELSE + dst[i+31:i] := 0 + FI + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + Shift packed 32-bit integers in "a" left by the amount specified by the corresponding element in "count" while shifting in zeros, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k[j] + IF count[i+31:i] < 32 + dst[i+31:i] := ZeroExtend32(a[i+31:i] << count[i+31:i]) + ELSE + dst[i+31:i] := 0 + FI + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + Shift packed 64-bit integers in "a" left by the amount specified by the corresponding element in "count" while shifting in zeros, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + IF count[i+63:i] < 64 + dst[i+63:i] := ZeroExtend64(a[i+63:i] << count[i+63:i]) + ELSE + dst[i+63:i] := 0 + FI + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + Shift packed 64-bit integers in "a" left by the amount specified by the corresponding element in "count" while shifting in zeros, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + IF count[i+63:i] < 64 + dst[i+63:i] := ZeroExtend64(a[i+63:i] << count[i+63:i]) + ELSE + dst[i+63:i] := 0 + FI + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + Shift packed 64-bit integers in "a" left by the amount specified by the corresponding element in "count" while shifting in zeros, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + IF count[i+63:i] < 64 + dst[i+63:i] := ZeroExtend64(a[i+63:i] << count[i+63:i]) + ELSE + dst[i+63:i] := 0 + FI + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + Shift packed 64-bit integers in "a" left by the amount specified by the corresponding element in "count" while shifting in zeros, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + IF count[i+63:i] < 64 + dst[i+63:i] := ZeroExtend64(a[i+63:i] << count[i+63:i]) + ELSE + dst[i+63:i] := 0 + FI + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + Shift packed 32-bit integers in "a" right by "count" while shifting in sign bits, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k[j] + IF count[63:0] > 31 + dst[i+31:i] := (a[i+31] ? 0xFFFFFFFF : 0x0) + ELSE + dst[i+31:i] := SignExtend32(a[i+31:i] >> count[63:0]) + FI + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + Shift packed 32-bit integers in "a" right by "imm8" while shifting in sign bits, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k[j] + IF imm8[7:0] > 31 + dst[i+31:i] := (a[i+31] ? 0xFFFFFFFF : 0x0) + ELSE + dst[i+31:i] := SignExtend32(a[i+31:i] >> imm8[7:0]) + FI + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + Shift packed 32-bit integers in "a" right by "count" while shifting in sign bits, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k[j] + IF count[63:0] > 31 + dst[i+31:i] := (a[i+31] ? 0xFFFFFFFF : 0x0) + ELSE + dst[i+31:i] := SignExtend32(a[i+31:i] >> count[63:0]) + FI + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + Shift packed 32-bit integers in "a" right by "imm8" while shifting in sign bits, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k[j] + IF imm8[7:0] > 31 + dst[i+31:i] := (a[i+31] ? 0xFFFFFFFF : 0x0) + ELSE + dst[i+31:i] := SignExtend32(a[i+31:i] >> imm8[7:0]) + FI + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + Shift packed 32-bit integers in "a" right by "count" while shifting in sign bits, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k[j] + IF count[63:0] > 31 + dst[i+31:i] := (a[i+31] ? 0xFFFFFFFF : 0x0) + ELSE + dst[i+31:i] := SignExtend32(a[i+31:i] >> count[63:0]) + FI + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + Shift packed 32-bit integers in "a" right by "imm8" while shifting in sign bits, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k[j] + IF imm8[7:0] > 31 + dst[i+31:i] := (a[i+31] ? 0xFFFFFFFF : 0x0) + ELSE + dst[i+31:i] := SignExtend32(a[i+31:i] >> imm8[7:0]) + FI + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + Shift packed 32-bit integers in "a" right by "count" while shifting in sign bits, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k[j] + IF count[63:0] > 31 + dst[i+31:i] := (a[i+31] ? 0xFFFFFFFF : 0x0) + ELSE + dst[i+31:i] := SignExtend32(a[i+31:i] >> count[63:0]) + FI + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + Shift packed 32-bit integers in "a" right by "imm8" while shifting in sign bits, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k[j] + IF imm8[7:0] > 31 + dst[i+31:i] := (a[i+31] ? 0xFFFFFFFF : 0x0) + ELSE + dst[i+31:i] := SignExtend32(a[i+31:i] >> imm8[7:0]) + FI + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + Shift packed 64-bit integers in "a" right by "count" while shifting in sign bits, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + IF count[63:0] > 63 + dst[i+63:i] := (a[i+63] ? 0xFFFFFFFFFFFFFFFF : 0x0) + ELSE + dst[i+63:i] := SignExtend64(a[i+63:i] >> count[63:0]) + FI + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + Shift packed 64-bit integers in "a" right by "imm8" while shifting in sign bits, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + IF imm8[7:0] > 63 + dst[i+63:i] := (a[i+63] ? 0xFFFFFFFFFFFFFFFF : 0x0) + ELSE + dst[i+63:i] := SignExtend64(a[i+63:i] >> imm8[7:0]) + FI + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + Shift packed 64-bit integers in "a" right by "count" while shifting in sign bits, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + IF count[63:0] > 63 + dst[i+63:i] := (a[i+63] ? 0xFFFFFFFFFFFFFFFF : 0x0) + ELSE + dst[i+63:i] := SignExtend64(a[i+63:i] >> count[63:0]) + FI + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + Shift packed 64-bit integers in "a" right by "imm8" while shifting in sign bits, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + IF imm8[7:0] > 63 + dst[i+63:i] := (a[i+63] ? 0xFFFFFFFFFFFFFFFF : 0x0) + ELSE + dst[i+63:i] := SignExtend64(a[i+63:i] >> imm8[7:0]) + FI + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + Shift packed 64-bit integers in "a" right by "count" while shifting in sign bits, and store the results in "dst". + +FOR j := 0 to 3 + i := j*64 + IF count[63:0] > 63 + dst[i+63:i] := (a[i+63] ? 0xFFFFFFFFFFFFFFFF : 0x0) + ELSE + dst[i+63:i] := SignExtend64(a[i+63:i] >> count[63:0]) + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + Shift packed 64-bit integers in "a" right by "imm8" while shifting in sign bits, and store the results in "dst". + +FOR j := 0 to 3 + i := j*64 + IF imm8[7:0] > 63 + dst[i+63:i] := (a[i+63] ? 0xFFFFFFFFFFFFFFFF : 0x0) + ELSE + dst[i+63:i] := SignExtend64(a[i+63:i] >> imm8[7:0]) + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + Shift packed 64-bit integers in "a" right by "count" while shifting in sign bits, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + IF count[63:0] > 63 + dst[i+63:i] := (a[i+63] ? 0xFFFFFFFFFFFFFFFF : 0x0) + ELSE + dst[i+63:i] := SignExtend64(a[i+63:i] >> count[63:0]) + FI + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + Shift packed 64-bit integers in "a" right by "imm8" while shifting in sign bits, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + IF imm8[7:0] > 63 + dst[i+63:i] := (a[i+63] ? 0xFFFFFFFFFFFFFFFF : 0x0) + ELSE + dst[i+63:i] := SignExtend64(a[i+63:i] >> imm8[7:0]) + FI + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + Shift packed 64-bit integers in "a" right by "count" while shifting in sign bits, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + IF count[63:0] > 63 + dst[i+63:i] := (a[i+63] ? 0xFFFFFFFFFFFFFFFF : 0x0) + ELSE + dst[i+63:i] := SignExtend64(a[i+63:i] >> count[63:0]) + FI + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + Shift packed 64-bit integers in "a" right by "imm8" while shifting in sign bits, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + IF imm8[7:0] > 63 + dst[i+63:i] := (a[i+63] ? 0xFFFFFFFFFFFFFFFF : 0x0) + ELSE + dst[i+63:i] := SignExtend64(a[i+63:i] >> imm8[7:0]) + FI + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + Shift packed 64-bit integers in "a" right by "count" while shifting in sign bits, and store the results in "dst". + +FOR j := 0 to 1 + i := j*64 + IF count[63:0] > 63 + dst[i+63:i] := (a[i+63] ? 0xFFFFFFFFFFFFFFFF : 0x0) + ELSE + dst[i+63:i] := SignExtend64(a[i+63:i] >> count[63:0]) + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + Shift packed 64-bit integers in "a" right by "imm8" while shifting in sign bits, and store the results in "dst". + +FOR j := 0 to 1 + i := j*64 + IF imm8[7:0] > 63 + dst[i+63:i] := (a[i+63] ? 0xFFFFFFFFFFFFFFFF : 0x0) + ELSE + dst[i+63:i] := SignExtend64(a[i+63:i] >> imm8[7:0]) + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + Shift packed 32-bit integers in "a" right by the amount specified by the corresponding element in "count" while shifting in sign bits, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k[j] + IF count[i+31:i] < 32 + dst[i+31:i] := SignExtend32(a[i+31:i] >> count[i+31:i]) + ELSE + dst[i+31:i] := (a[i+31] ? 0xFFFFFFFF : 0) + FI + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + Shift packed 32-bit integers in "a" right by the amount specified by the corresponding element in "count" while shifting in sign bits, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k[j] + IF count[i+31:i] < 32 + dst[i+31:i] := SignExtend32(a[i+31:i] >> count[i+31:i]) + ELSE + dst[i+31:i] := (a[i+31] ? 0xFFFFFFFF : 0) + FI + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + Shift packed 32-bit integers in "a" right by the amount specified by the corresponding element in "count" while shifting in sign bits, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k[j] + IF count[i+31:i] < 32 + dst[i+31:i] := SignExtend32(a[i+31:i] >> count[i+31:i]) + ELSE + dst[i+31:i] := (a[i+31] ? 0xFFFFFFFF : 0) + FI + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + Shift packed 32-bit integers in "a" right by the amount specified by the corresponding element in "count" while shifting in sign bits, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k[j] + IF count[i+31:i] < 32 + dst[i+31:i] := SignExtend32(a[i+31:i] >> count[i+31:i]) + ELSE + dst[i+31:i] := (a[i+31] ? 0xFFFFFFFF : 0) + FI + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + Shift packed 64-bit integers in "a" right by the amount specified by the corresponding element in "count" while shifting in sign bits, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + IF count[i+63:i] < 64 + dst[i+63:i] := SignExtend64(a[i+63:i] >> count[i+63:i]) + ELSE + dst[i+63:i] := (a[i+63] ? 0xFFFFFFFFFFFFFFFF : 0) + FI + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + Shift packed 64-bit integers in "a" right by the amount specified by the corresponding element in "count" while shifting in sign bits, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + IF count[i+63:i] < 64 + dst[i+63:i] := SignExtend64(a[i+63:i] >> count[i+63:i]) + ELSE + dst[i+63:i] := (a[i+63] ? 0xFFFFFFFFFFFFFFFF : 0) + FI + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + Shift packed 64-bit integers in "a" right by the amount specified by the corresponding element in "count" while shifting in sign bits, and store the results in "dst". + +FOR j := 0 to 3 + i := j*64 + IF count[i+63:i] < 64 + dst[i+63:i] := SignExtend64(a[i+63:i] >> count[i+63:i]) + ELSE + dst[i+63:i] := (a[i+63] ? 0xFFFFFFFFFFFFFFFF : 0) + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + Shift packed 64-bit integers in "a" right by the amount specified by the corresponding element in "count" while shifting in sign bits, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + IF count[i+63:i] < 64 + dst[i+63:i] := SignExtend64(a[i+63:i] >> count[i+63:i]) + ELSE + dst[i+63:i] := (a[i+63] ? 0xFFFFFFFFFFFFFFFF : 0) + FI + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + Shift packed 64-bit integers in "a" right by the amount specified by the corresponding element in "count" while shifting in sign bits, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + IF count[i+63:i] < 64 + dst[i+63:i] := SignExtend64(a[i+63:i] >> count[i+63:i]) + ELSE + dst[i+63:i] := (a[i+63] ? 0xFFFFFFFFFFFFFFFF : 0) + FI + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + Shift packed 64-bit integers in "a" right by the amount specified by the corresponding element in "count" while shifting in sign bits, and store the results in "dst". + +FOR j := 0 to 1 + i := j*64 + IF count[i+63:i] < 64 + dst[i+63:i] := SignExtend64(a[i+63:i] >> count[i+63:i]) + ELSE + dst[i+63:i] := (a[i+63] ? 0xFFFFFFFFFFFFFFFF : 0) + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + Shift packed 32-bit integers in "a" right by "count" while shifting in zeros, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k[j] + IF count[63:0] > 31 + dst[i+31:i] := 0 + ELSE + dst[i+31:i] := ZeroExtend32(a[i+31:i] >> count[63:0]) + FI + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + Shift packed 32-bit integers in "a" right by "imm8" while shifting in zeros, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k[j] + IF imm8[7:0] > 31 + dst[i+31:i] := 0 + ELSE + dst[i+31:i] := ZeroExtend32(a[i+31:i] >> imm8[7:0]) + FI + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + Shift packed 32-bit integers in "a" right by "count" while shifting in zeros, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k[j] + IF count[63:0] > 31 + dst[i+31:i] := 0 + ELSE + dst[i+31:i] := ZeroExtend32(a[i+31:i] >> count[63:0]) + FI + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + Shift packed 32-bit integers in "a" right by "imm8" while shifting in zeros, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k[j] + IF imm8[7:0] > 31 + dst[i+31:i] := 0 + ELSE + dst[i+31:i] := ZeroExtend32(a[i+31:i] >> imm8[7:0]) + FI + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + Shift packed 32-bit integers in "a" right by "count" while shifting in zeros, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k[j] + IF count[63:0] > 31 + dst[i+31:i] := 0 + ELSE + dst[i+31:i] := ZeroExtend32(a[i+31:i] >> count[63:0]) + FI + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + Shift packed 32-bit integers in "a" right by "imm8" while shifting in zeros, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k[j] + IF imm8[7:0] > 31 + dst[i+31:i] := 0 + ELSE + dst[i+31:i] := ZeroExtend32(a[i+31:i] >> imm8[7:0]) + FI + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + Shift packed 32-bit integers in "a" right by "count" while shifting in zeros, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k[j] + IF count[63:0] > 31 + dst[i+31:i] := 0 + ELSE + dst[i+31:i] := ZeroExtend32(a[i+31:i] >> count[63:0]) + FI + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + Shift packed 32-bit integers in "a" right by "imm8" while shifting in zeros, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k[j] + IF imm8[7:0] > 31 + dst[i+31:i] := 0 + ELSE + dst[i+31:i] := ZeroExtend32(a[i+31:i] >> imm8[7:0]) + FI + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + Shift packed 64-bit integers in "a" right by "count" while shifting in zeros, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + IF count[63:0] > 63 + dst[i+63:i] := 0 + ELSE + dst[i+63:i] := ZeroExtend64(a[i+63:i] >> count[63:0]) + FI + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + Shift packed 64-bit integers in "a" right by "imm8" while shifting in zeros, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + IF imm8[7:0] > 63 + dst[i+63:i] := 0 + ELSE + dst[i+63:i] := ZeroExtend64(a[i+63:i] >> imm8[7:0]) + FI + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + Shift packed 64-bit integers in "a" right by "count" while shifting in zeros, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + IF count[63:0] > 63 + dst[i+63:i] := 0 + ELSE + dst[i+63:i] := ZeroExtend64(a[i+63:i] >> count[63:0]) + FI + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + Shift packed 64-bit integers in "a" right by "imm8" while shifting in zeros, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + IF imm8[7:0] > 63 + dst[i+63:i] := 0 + ELSE + dst[i+63:i] := ZeroExtend64(a[i+63:i] >> imm8[7:0]) + FI + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + Shift packed 64-bit integers in "a" right by "count" while shifting in zeros, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + IF count[63:0] > 63 + dst[i+63:i] := 0 + ELSE + dst[i+63:i] := ZeroExtend64(a[i+63:i] >> count[63:0]) + FI + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + Shift packed 64-bit integers in "a" right by "imm8" while shifting in zeros, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + IF imm8[7:0] > 63 + dst[i+63:i] := 0 + ELSE + dst[i+63:i] := ZeroExtend64(a[i+63:i] >> imm8[7:0]) + FI + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + Shift packed 64-bit integers in "a" right by "count" while shifting in zeros, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + IF count[63:0] > 63 + dst[i+63:i] := 0 + ELSE + dst[i+63:i] := ZeroExtend64(a[i+63:i] >> count[63:0]) + FI + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + Shift packed 64-bit integers in "a" right by "imm8" while shifting in zeros, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + IF imm8[7:0] > 63 + dst[i+63:i] := 0 + ELSE + dst[i+63:i] := ZeroExtend64(a[i+63:i] >> imm8[7:0]) + FI + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + Shift packed 32-bit integers in "a" right by the amount specified by the corresponding element in "count" while shifting in zeros, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k[j] + IF count[i+31:i] < 32 + dst[i+31:i] := ZeroExtend32(a[i+31:i] >> count[i+31:i]) + ELSE + dst[i+31:i] := 0 + FI + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + Shift packed 32-bit integers in "a" right by the amount specified by the corresponding element in "count" while shifting in zeros, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k[j] + IF count[i+31:i] < 32 + dst[i+31:i] := ZeroExtend32(a[i+31:i] >> count[i+31:i]) + ELSE + dst[i+31:i] := 0 + FI + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + Shift packed 32-bit integers in "a" right by the amount specified by the corresponding element in "count" while shifting in zeros, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k[j] + IF count[i+31:i] < 32 + dst[i+31:i] := ZeroExtend32(a[i+31:i] >> count[i+31:i]) + ELSE + dst[i+31:i] := 0 + FI + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + Shift packed 32-bit integers in "a" right by the amount specified by the corresponding element in "count" while shifting in zeros, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k[j] + IF count[i+31:i] < 32 + dst[i+31:i] := ZeroExtend32(a[i+31:i] >> count[i+31:i]) + ELSE + dst[i+31:i] := 0 + FI + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + Shift packed 64-bit integers in "a" right by the amount specified by the corresponding element in "count" while shifting in zeros, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + IF count[i+63:i] < 64 + dst[i+63:i] := ZeroExtend64(a[i+63:i] >> count[i+63:i]) + ELSE + dst[i+63:i] := 0 + FI + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + Shift packed 64-bit integers in "a" right by the amount specified by the corresponding element in "count" while shifting in zeros, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + IF count[i+63:i] < 64 + dst[i+63:i] := ZeroExtend64(a[i+63:i] >> count[i+63:i]) + ELSE + dst[i+63:i] := 0 + FI + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + Shift packed 64-bit integers in "a" right by the amount specified by the corresponding element in "count" while shifting in zeros, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + IF count[i+63:i] < 64 + dst[i+63:i] := ZeroExtend64(a[i+63:i] >> count[i+63:i]) + ELSE + dst[i+63:i] := 0 + FI + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + Shift packed 64-bit integers in "a" right by the amount specified by the corresponding element in "count" while shifting in zeros, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + IF count[i+63:i] < 64 + dst[i+63:i] := ZeroExtend64(a[i+63:i] >> count[i+63:i]) + ELSE + dst[i+63:i] := 0 + FI + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + Compute the square root of packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := SQRT(a[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Elementary Math Functions +
+ + + + + Compute the square root of packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := SQRT(a[i+63:i]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Elementary Math Functions +
+ + + + + + Compute the square root of packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := SQRT(a[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Elementary Math Functions +
+ + + + + Compute the square root of packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := SQRT(a[i+63:i]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Elementary Math Functions +
+ + + + + + Compute the square root of packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := SQRT(a[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Elementary Math Functions +
+ + + + + Compute the square root of packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := SQRT(a[i+31:i]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Elementary Math Functions +
+ + + + + + Compute the square root of packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := SQRT(a[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Elementary Math Functions +
+ + + + + Compute the square root of packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := SQRT(a[i+31:i]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F + AVX512VL +
immintrin.h
+ Elementary Math Functions +
+ + + + + + + Perform the last round of an AES encryption flow on data (state) in "a" using the round key in "RoundKey", and store the results in "dst"." + FOR j := 0 to 3 + i := j*128 + a[i+127:i] := ShiftRows(a[i+127:i]) + a[i+127:i] := SubBytes(a[i+127:i]) + dst[i+127:i] := a[i+127:i] XOR RoundKey[i+127:i] +ENDFOR +dst[MAX:512] := 0 + + + AVX512F + VAES +
immintrin.h
+ Cryptography +
+ + + + + Perform one round of an AES encryption flow on data (state) in "a" using the round key in "RoundKey", and store the results in "dst"." + FOR j := 0 to 3 + i := j*128 + a[i+127:i] := ShiftRows(a[i+127:i]) + a[i+127:i] := SubBytes(a[i+127:i]) + a[i+127:i] := MixColumns(a[i+127:i]) + dst[i+127:i] := a[i+127:i] XOR RoundKey[i+127:i] +ENDFOR +dst[MAX:512] := 0 + + + AVX512F + VAES +
immintrin.h
+ Cryptography +
+ + + + + Perform the last round of an AES decryption flow on data (state) in "a" using the round key in "RoundKey", and store the results in "dst". + FOR j := 0 to 3 + i := j*128 + a[i+127:i] := InvShiftRows(a[i+127:i]) + a[i+127:i] := InvSubBytes(a[i+127:i]) + dst[i+127:i] := a[i+127:i] XOR RoundKey[i+127:i] +ENDFOR +dst[MAX:512] := 0 + + + AVX512F + VAES +
immintrin.h
+ Cryptography +
+ + + + + Perform one round of an AES decryption flow on data (state) in "a" using the round key in "RoundKey", and store the results in "dst". + FOR j := 0 to 3 + i := j*128 + a[i+127:i] := InvShiftRows(a[i+127:i]) + a[i+127:i] := InvSubBytes(a[i+127:i]) + a[i+127:i] := InvMixColumns(a[i+127:i]) + dst[i+127:i] := a[i+127:i] XOR RoundKey[i+127:i] +ENDFOR +dst[MAX:512] := 0 + + + AVX512F + VAES +
immintrin.h
+ Cryptography +
+ + + + + + + + Multiply the packed 32-bit integers in "a" and "b", producing intermediate 64-bit integers, and store the low 32 bits of the intermediate integers in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + tmp[63:0] := a[i+31:i] * b[i+31:i] + dst[i+31:i] := tmp[31:0] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + Add packed double-precision (64-bit) floating-point elements in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := a[i+63:i] + b[i+63:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Add packed double-precision (64-bit) floating-point elements in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := a[i+63:i] + b[i+63:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + Add packed single-precision (32-bit) floating-point elements in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := a[i+31:i] + b[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Add packed single-precision (32-bit) floating-point elements in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := a[i+31:i] + b[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + Add the lower double-precision (64-bit) floating-point element in "a" and "b", store the result in the lower element of "dst", and copy the upper element from "a" to the upper element of "dst". + [round_note] + +dst[63:0] := a[63:0] + b[63:0] +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + + Add the lower double-precision (64-bit) floating-point element in "a" and "b", store the result in the lower element of "dst" using writemask "k" (the element is copied from "src" when mask bit 0 is not set), and copy the upper element from "a" to the upper element of "dst". + [round_note] + +IF k[0] + dst[63:0] := a[63:0] + b[63:0] +ELSE + dst[63:0] := src[63:0] +FI +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Add the lower double-precision (64-bit) floating-point element in "a" and "b", store the result in the lower element of "dst" using writemask "k" (the element is copied from "src" when mask bit 0 is not set), and copy the upper element from "a" to the upper element of "dst". + +IF k[0] + dst[63:0] := a[63:0] + b[63:0] +ELSE + dst[63:0] := src[63:0] +FI +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Add the lower double-precision (64-bit) floating-point element in "a" and "b", store the result in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper element from "a" to the upper element of "dst". + [round_note] + +IF k[0] + dst[63:0] := a[63:0] + b[63:0] +ELSE + dst[63:0] := 0 +FI +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + Add the lower double-precision (64-bit) floating-point element in "a" and "b", store the result in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper element from "a" to the upper element of "dst". + +IF k[0] + dst[63:0] := a[63:0] + b[63:0] +ELSE + dst[63:0] := 0 +FI +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + Add the lower single-precision (32-bit) floating-point element in "a" and "b", store the result in the lower element of "dst", and copy the upper 3 packed elements from "a" to the upper elements of "dst". + [round_note] + +dst[31:0] := a[31:0] + b[31:0] +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + + Add the lower single-precision (32-bit) floating-point element in "a" and "b", store the result in the lower element of "dst" using writemask "k" (the element is copied from "src" when mask bit 0 is not set), and copy the upper 3 packed elements from "a" to the upper elements of "dst". + [round_note] + +IF k[0] + dst[31:0] := a[31:0] + b[31:0] +ELSE + dst[31:0] := src[31:0] +FI +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Add the lower single-precision (32-bit) floating-point element in "a" and "b", store the result in the lower element of "dst" using writemask "k" (the element is copied from "src" when mask bit 0 is not set), and copy the upper 3 packed elements from "a" to the upper elements of "dst". + +IF k[0] + dst[31:0] := a[31:0] + b[31:0] +ELSE + dst[31:0] := src[31:0] +FI +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Add the lower single-precision (32-bit) floating-point element in "a" and "b", store the result in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper 3 packed elements from "a" to the upper elements of "dst". + [round_note] + +IF k[0] + dst[31:0] := a[31:0] + b[31:0] +ELSE + dst[31:0] := 0 +FI +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + Add the lower single-precision (32-bit) floating-point element in "a" and "b", store the result in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper 3 packed elements from "a" to the upper elements of "dst". + +IF k[0] + dst[31:0] := a[31:0] + b[31:0] +ELSE + dst[31:0] := 0 +FI +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + Divide packed double-precision (64-bit) floating-point elements in "a" by packed elements in "b", and store the results in "dst". + +FOR j := 0 to 7 + i := 64*j + dst[i+63:i] := a[i+63:i] / b[i+63:i] +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + Divide packed double-precision (64-bit) floating-point elements in "a" by packed elements in "b", =and store the results in "dst". + [round_note] + +FOR j := 0 to 7 + i := 64*j + dst[i+63:i] := a[i+63:i] / b[i+63:i] +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Divide packed double-precision (64-bit) floating-point elements in "a" by packed elements in "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := 64*j + IF k[j] + dst[i+63:i] := a[i+63:i] / b[i+63:i] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + + Divide packed double-precision (64-bit) floating-point elements in "a" by packed elements in "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 to 7 + i := 64*j + IF k[j] + dst[i+63:i] := a[i+63:i] / b[i+63:i] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + Divide packed double-precision (64-bit) floating-point elements in "a" by packed elements in "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := 64*j + IF k[j] + dst[i+63:i] := a[i+63:i] / b[i+63:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Divide packed double-precision (64-bit) floating-point elements in "a" by packed elements in "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 to 7 + i := 64*j + IF k[j] + dst[i+63:i] := a[i+63:i] / b[i+63:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + Divide packed single-precision (32-bit) floating-point elements in "a" by packed elements in "b", and store the results in "dst". + +FOR j := 0 to 15 + i := 32*j + dst[i+31:i] := a[i+31:i] / b[i+31:i] +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + Divide packed single-precision (32-bit) floating-point elements in "a" by packed elements in "b", and store the results in "dst". + [round_note] + +FOR j := 0 to 15 + i := 32*j + dst[i+31:i] := a[i+31:i] / b[i+31:i] +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Divide packed single-precision (32-bit) floating-point elements in "a" by packed elements in "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := 32*j + IF k[j] + dst[i+31:i] := a[i+31:i] / b[i+31:i] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + + Divide packed single-precision (32-bit) floating-point elements in "a" by packed elements in "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 to 15 + i := 32*j + IF k[j] + dst[i+31:i] := a[i+31:i] / b[i+31:i] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + Divide packed single-precision (32-bit) floating-point elements in "a" by packed elements in "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := 32*j + IF k[j] + dst[i+31:i] := a[i+31:i] / b[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Divide packed single-precision (32-bit) floating-point elements in "a" by packed elements in "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 to 15 + i := 32*j + IF k[j] + dst[i+31:i] := a[i+31:i] / b[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + Divide the lower double-precision (64-bit) floating-point element in "a" by the lower double-precision (64-bit) floating-point element in "b", store the result in the lower element of "dst", and copy the upper element from "a" to the upper element of "dst". + [round_note] + +dst[63:0] := a[63:0] / b[63:0] +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + + Divide the lower double-precision (64-bit) floating-point element in "a" by the lower double-precision (64-bit) floating-point element in "b", store the result in the lower element of "dst" using writemask "k" (the element is copied from "src" when mask bit 0 is not set), and copy the upper element from "a" to the upper element of "dst". + [round_note] + +IF k[0] + dst[63:0] := a[63:0] / b[63:0] +ELSE + dst[63:0] := src[63:0] +FI +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Divide the lower double-precision (64-bit) floating-point element in "a" by the lower double-precision (64-bit) floating-point element in "b", store the result in the lower element of "dst" using writemask "k" (the element is copied from "src" when mask bit 0 is not set), and copy the upper element from "a" to the upper element of "dst". + +IF k[0] + dst[63:0] := a[63:0] / b[63:0] +ELSE + dst[63:0] := src[63:0] +FI +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Divide the lower double-precision (64-bit) floating-point element in "a" by the lower double-precision (64-bit) floating-point element in "b", store the result in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper element from "a" to the upper element of "dst". + [round_note] + +IF k[0] + dst[63:0] := a[63:0] / b[63:0] +ELSE + dst[63:0] := 0 +FI +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + Divide the lower double-precision (64-bit) floating-point element in "a" by the lower double-precision (64-bit) floating-point element in "b", store the result in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper element from "a" to the upper element of "dst". + +IF k[0] + dst[63:0] := a[63:0] / b[63:0] +ELSE + dst[63:0] := 0 +FI +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + Divide the lower single-precision (32-bit) floating-point element in "a" by the lower single-precision (32-bit) floating-point element in "b", store the result in the lower element of "dst", and copy the upper 3 packed elements from "a" to the upper elements of "dst". + [round_note] + +dst[31:0] := a[31:0] / b[31:0] +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + + Divide the lower single-precision (32-bit) floating-point element in "a" by the lower single-precision (32-bit) floating-point element in "b", store the result in the lower element of "dst" using writemask "k" (the element is copied from "src" when mask bit 0 is not set), and copy the upper 3 packed elements from "a" to the upper elements of "dst". + [round_note] + +IF k[0] + dst[31:0] := a[31:0] / b[31:0] +ELSE + dst[31:0] := src[31:0] +FI +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Divide the lower single-precision (32-bit) floating-point element in "a" by the lower single-precision (32-bit) floating-point element in "b", store the result in the lower element of "dst" using writemask "k" (the element is copied from "src" when mask bit 0 is not set), and copy the upper 3 packed elements from "a" to the upper elements of "dst". + +IF k[0] + dst[31:0] := a[31:0] / b[31:0] +ELSE + dst[31:0] := src[31:0] +FI +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Divide the lower single-precision (32-bit) floating-point element in "a" by the lower single-precision (32-bit) floating-point element in "b", store the result in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper 3 packed elements from "a" to the upper elements of "dst". + [round_note] + +IF k[0] + dst[31:0] := a[31:0] / b[31:0] +ELSE + dst[31:0] := 0 +FI +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + Divide the lower single-precision (32-bit) floating-point element in "a" by the lower single-precision (32-bit) floating-point element in "b", store the result in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper 3 packed elements from "a" to the upper elements of "dst". + +IF k[0] + dst[31:0] := a[31:0] / b[31:0] +ELSE + dst[31:0] := 0 +FI +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed double-precision (64-bit) floating-point elements in "a" and "b", add the intermediate result to packed elements in "c", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := (a[i+63:i] * b[i+63:i]) + c[i+63:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply packed double-precision (64-bit) floating-point elements in "a" and "b", add the intermediate result to packed elements in "c", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := (a[i+63:i] * b[i+63:i]) + c[i+63:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed single-precision (32-bit) floating-point elements in "a" and "b", add the intermediate result to packed elements in "c", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := (a[i+31:i] * b[i+31:i]) + c[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply packed single-precision (32-bit) floating-point elements in "a" and "b", add the intermediate result to packed elements in "c", and store the results in "a" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := (a[i+31:i] * b[i+31:i]) + c[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply the lower double-precision (64-bit) floating-point elements in "a" and "b", and add the intermediate result to the lower element in "c". Store the result in the lower element of "dst", and copy the upper element from "a" to the upper element of "dst". + [round_note] + +dst[63:0] := (a[63:0] * b[63:0]) + c[63:0] +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply the lower double-precision (64-bit) floating-point elements in "a" and "b", and add the intermediate result to the lower element in "c". Store the result in the lower element of "dst" using writemask "k" (the element is copied from "c" when mask bit 0 is not set), and copy the upper element from "c" to the upper element of "dst". + [round_note] + +IF k[0] + dst[63:0] := (a[63:0] * b[63:0]) + c[63:0] +ELSE + dst[63:0] := c[63:0] +FI +dst[127:64] := c[127:64] +dst[MAX:128] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply the lower double-precision (64-bit) floating-point elements in "a" and "b", and add the intermediate result to the lower element in "c". Store the result in the lower element of "dst" using writemask "k" (the element is copied from "c" when mask bit 0 is not set), and copy the upper element from "c" to the upper element of "dst". + +IF k[0] + dst[63:0] := (a[63:0] * b[63:0]) + c[63:0] +ELSE + dst[63:0] := c[63:0] +FI +dst[127:64] := c[127:64] +dst[MAX:128] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply the lower double-precision (64-bit) floating-point elements in "a" and "b", and add the intermediate result to the lower element in "c". Store the result in the lower element of "dst" using writemask "k" (the element is copied from "a" when mask bit 0 is not set), and copy the upper element from "a" to the upper element of "dst". + [round_note] + +IF k[0] + dst[63:0] := (a[63:0] * b[63:0]) + c[63:0] +ELSE + dst[63:0] := a[63:0] +FI +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply the lower double-precision (64-bit) floating-point elements in "a" and "b", and add the intermediate result to the lower element in "c". Store the result in the lower element of "dst" using writemask "k" (the element is copied from "a" when mask bit 0 is not set), and copy the upper element from "a" to the upper element of "dst". + +IF k[0] + dst[63:0] := (a[63:0] * b[63:0]) + c[63:0] +ELSE + dst[63:0] := a[63:0] +FI +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply the lower double-precision (64-bit) floating-point elements in "a" and "b", and add the intermediate result to the lower element in "c". Store the result in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper element from "a" to the upper element of "dst". + [round_note] + +IF k[0] + dst[63:0] := (a[63:0] * b[63:0]) + c[63:0] +ELSE + dst[63:0] := 0 +FI +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply the lower double-precision (64-bit) floating-point elements in "a" and "b", and add the intermediate result to the lower element in "c". Store the result in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper element from "a" to the upper element of "dst". + +IF k[0] + dst[63:0] := (a[63:0] * b[63:0]) + c[63:0] +ELSE + dst[63:0] := 0 +FI +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply the lower single-precision (32-bit) floating-point elements in "a" and "b", and add the intermediate result to the lower element in "c". Store the result in the lower element of "dst" using writemask "k" (the element is copied from "c" when mask bit 0 is not set), and copy the upper 3 packed elements from "c" to the upper elements of "dst". + [round_note] + +IF k[0] + dst[31:0] := (a[31:0] * b[31:0]) + c[31:0] +ELSE + dst[31:0] := c[31:0] +FI +dst[127:32] := c[127:32] +dst[MAX:128] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply the lower single-precision (32-bit) floating-point elements in "a" and "b", and add the intermediate result to the lower element in "c". Store the result in the lower element of "dst" using writemask "k" (the element is copied from "c" when mask bit 0 is not set), and copy the upper 3 packed elements from "c" to the upper elements of "dst". + +IF k[0] + dst[31:0] := (a[31:0] * b[31:0]) + c[31:0] +ELSE + dst[31:0] := c[31:0] +FI +dst[127:32] := c[127:32] +dst[MAX:128] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply the lower single-precision (32-bit) floating-point elements in "a" and "b", and add the intermediate result to the lower element in "c". Store the result in the lower element of "dst", and copy the upper 3 packed elements from "a" to the upper elements of "dst". + [round_note] + +dst[31:0] := (a[31:0] * b[31:0]) + c[31:0] +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply the lower single-precision (32-bit) floating-point elements in "a" and "b", and add the intermediate result to the lower element in "c". Store the result in the lower element of "dst" using writemask "k" (the element is copied from "a" when mask bit 0 is not set), and copy the upper 3 packed elements from "a" to the upper elements of "dst". + [round_note] + +IF k[0] + dst[31:0] := (a[31:0] * b[31:0]) + c[31:0] +ELSE + dst[31:0] := a[31:0] +FI +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply the lower single-precision (32-bit) floating-point elements in "a" and "b", and add the intermediate result to the lower element in "c". Store the result in the lower element of "dst" using writemask "k" (the element is copied from "a" when mask bit 0 is not set), and copy the upper 3 packed elements from "a" to the upper elements of "dst". + +IF k[0] + dst[31:0] := (a[31:0] * b[31:0]) + c[31:0] +ELSE + dst[31:0] := a[31:0] +FI +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply the lower single-precision (32-bit) floating-point elements in "a" and "b", and add the intermediate result to the lower element in "c". Store the result in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper 3 packed elements from "a" to the upper elements of "dst". + [round_note] + +IF k[0] + dst[31:0] := (a[31:0] * b[31:0]) + c[31:0] +ELSE + dst[31:0] := 0 +FI +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply the lower single-precision (32-bit) floating-point elements in "a" and "b", and add the intermediate result to the lower element in "c". Store the result in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper 3 packed elements from "a" to the upper elements of "dst". + +IF k[0] + dst[31:0] := (a[31:0] * b[31:0]) + c[31:0] +ELSE + dst[31:0] := 0 +FI +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply packed double-precision (64-bit) floating-point elements in "a" and "b", alternatively add and subtract packed elements in "c" to/from the intermediate result, and store the results in "dst". + +FOR j := 0 to 7 + i := j*64 + IF ((j & 1) == 0) + dst[i+63:i] := (a[i+63:i] * b[i+63:i]) - c[i+63:i] + ELSE + dst[i+63:i] := (a[i+63:i] * b[i+63:i]) + c[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed double-precision (64-bit) floating-point elements in "a" and "b", alternatively add and subtract packed elements in "c" to/from the intermediate result, and store the results in "dst". + [round_note] + +FOR j := 0 to 7 + i := j*64 + IF ((j & 1) == 0) + dst[i+63:i] := (a[i+63:i] * b[i+63:i]) - c[i+63:i] + ELSE + dst[i+63:i] := (a[i+63:i] * b[i+63:i]) + c[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed double-precision (64-bit) floating-point elements in "a" and "b", alternatively add and subtract packed elements in "c" to/from the intermediate result, and store the results in "dst" using writemask "k" (elements are copied from "c" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + IF ((j & 1) == 0) + dst[i+63:i] := (a[i+63:i] * b[i+63:i]) - c[i+63:i] + ELSE + dst[i+63:i] := (a[i+63:i] * b[i+63:i]) + c[i+63:i] + FI + ELSE + dst[i+63:i] := c[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply packed double-precision (64-bit) floating-point elements in "a" and "b", alternatively add and subtract packed elements in "c" to/from the intermediate result, and store the results in "dst" using writemask "k" (elements are copied from "c" when the corresponding mask bit is not set). [round_note] + +FOR j := 0 to 7 + i := j*64 + IF k[j] + IF ((j & 1) == 0) + dst[i+63:i] := (a[i+63:i] * b[i+63:i]) - c[i+63:i] + ELSE + dst[i+63:i] := (a[i+63:i] * b[i+63:i]) + c[i+63:i] + FI + ELSE + dst[i+63:i] := c[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed double-precision (64-bit) floating-point elements in "a" and "b", alternatively add and subtract packed elements in "c" to/from the intermediate result, and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + IF ((j & 1) == 0) + dst[i+63:i] := (a[i+63:i] * b[i+63:i]) - c[i+63:i] + ELSE + dst[i+63:i] := (a[i+63:i] * b[i+63:i]) + c[i+63:i] + FI + ELSE + dst[i+63:i] := a[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply packed double-precision (64-bit) floating-point elements in "a" and "b", alternatively add and subtract packed elements in "c" to/from the intermediate result, and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). [round_note] + +FOR j := 0 to 7 + i := j*64 + IF k[j] + IF ((j & 1) == 0) + dst[i+63:i] := (a[i+63:i] * b[i+63:i]) - c[i+63:i] + ELSE + dst[i+63:i] := (a[i+63:i] * b[i+63:i]) + c[i+63:i] + FI + ELSE + dst[i+63:i] := a[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed double-precision (64-bit) floating-point elements in "a" and "b", alternatively add and subtract packed elements in "c" to/from the intermediate result, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + IF ((j & 1) == 0) + dst[i+63:i] := (a[i+63:i] * b[i+63:i]) - c[i+63:i] + ELSE + dst[i+63:i] := (a[i+63:i] * b[i+63:i]) + c[i+63:i] + FI + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply packed double-precision (64-bit) floating-point elements in "a" and "b", alternatively add and subtract packed elements in "c" to/from the intermediate result, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 to 7 + i := j*64 + IF k[j] + IF ((j & 1) == 0) + dst[i+63:i] := (a[i+63:i] * b[i+63:i]) - c[i+63:i] + ELSE + dst[i+63:i] := (a[i+63:i] * b[i+63:i]) + c[i+63:i] + FI + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply packed single-precision (32-bit) floating-point elements in "a" and "b", alternatively add and subtract packed elements in "c" to/from the intermediate result, and store the results in "dst". + +FOR j := 0 to 15 + i := j*32 + IF ((j & 1) == 0) + dst[i+31:i] := (a[i+31:i] * b[i+31:i]) - c[i+31:i] + ELSE + dst[i+31:i] := (a[i+31:i] * b[i+31:i]) + c[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed single-precision (32-bit) floating-point elements in "a" and "b", alternatively add and subtract packed elements in "c" to/from the intermediate result, and store the results in "dst". + [round_note] + +FOR j := 0 to 15 + i := j*32 + IF ((j & 1) == 0) + dst[i+31:i] := (a[i+31:i] * b[i+31:i]) - c[i+31:i] + ELSE + dst[i+31:i] := (a[i+31:i] * b[i+31:i]) + c[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed single-precision (32-bit) floating-point elements in "a" and "b", alternatively add and subtract packed elements in "c" to/from the intermediate result, and store the results in "dst" using writemask "k" (elements are copied from "c" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + IF ((j & 1) == 0) + dst[i+31:i] := (a[i+31:i] * b[i+31:i]) - c[i+31:i] + ELSE + dst[i+31:i] := (a[i+31:i] * b[i+31:i]) + c[i+31:i] + FI + ELSE + dst[i+31:i] := c[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply packed single-precision (32-bit) floating-point elements in "a" and "b", alternatively add and subtract packed elements in "c" to/from the intermediate result, and store the results in "dst" using writemask "k" (elements are copied from "c" when the corresponding mask bit is not set). [round_note] + +FOR j := 0 to 15 + i := j*32 + IF k[j] + IF ((j & 1) == 0) + dst[i+31:i] := (a[i+31:i] * b[i+31:i]) - c[i+31:i] + ELSE + dst[i+31:i] := (a[i+31:i] * b[i+31:i]) + c[i+31:i] + FI + ELSE + dst[i+31:i] := c[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed single-precision (32-bit) floating-point elements in "a" and "b", alternatively add and subtract packed elements in "c" to/from the intermediate result, and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + IF ((j & 1) == 0) + dst[i+31:i] := (a[i+31:i] * b[i+31:i]) - c[i+31:i] + ELSE + dst[i+31:i] := (a[i+31:i] * b[i+31:i]) + c[i+31:i] + FI + ELSE + dst[i+31:i] := a[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply packed single-precision (32-bit) floating-point elements in "a" and "b", alternatively add and subtract packed elements in "c" to/from the intermediate result, and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). [round_note] + +FOR j := 0 to 15 + i := j*32 + IF k[j] + IF ((j & 1) == 0) + dst[i+31:i] := (a[i+31:i] * b[i+31:i]) - c[i+31:i] + ELSE + dst[i+31:i] := (a[i+31:i] * b[i+31:i]) + c[i+31:i] + FI + ELSE + dst[i+31:i] := a[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed single-precision (32-bit) floating-point elements in "a" and "b", alternatively add and subtract packed elements in "c" to/from the intermediate result, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + IF ((j & 1) == 0) + dst[i+31:i] := (a[i+31:i] * b[i+31:i]) - c[i+31:i] + ELSE + dst[i+31:i] := (a[i+31:i] * b[i+31:i]) + c[i+31:i] + FI + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply packed single-precision (32-bit) floating-point elements in "a" and "b", alternatively add and subtract packed elements in "c" to/from the intermediate result, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 to 15 + i := j*32 + IF k[j] + IF ((j & 1) == 0) + dst[i+31:i] := (a[i+31:i] * b[i+31:i]) - c[i+31:i] + ELSE + dst[i+31:i] := (a[i+31:i] * b[i+31:i]) + c[i+31:i] + FI + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed double-precision (64-bit) floating-point elements in "a" and "b", subtract packed elements in "c" from the intermediate result, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := (a[i+63:i] * b[i+63:i]) - c[i+63:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply packed double-precision (64-bit) floating-point elements in "a" and "b", subtract packed elements in "c" from the intermediate result, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := (a[i+63:i] * b[i+63:i]) - c[i+63:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed single-precision (32-bit) floating-point elements in "a" and "b", subtract packed elements in "c" from the intermediate result, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := (a[i+31:i] * b[i+31:i]) - c[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply packed single-precision (32-bit) floating-point elements in "a" and "b", subtract packed elements in "c" from the intermediate result, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := (a[i+31:i] * b[i+31:i]) - c[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply the lower double-precision (64-bit) floating-point elements in "a" and "b", and subtract the lower element in "c" from the intermediate result. Store the result in the lower element of "dst", and copy the upper element from "a" to the upper element of "dst". + [round_note] + +dst[63:0] := (a[63:0] * b[63:0]) - c[63:0] +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply the lower double-precision (64-bit) floating-point elements in "a" and "b", and subtract the lower element in "c" from the intermediate result. Store the result in the lower element of "dst" using writemask "k" (the element is copied from "c" when mask bit 0 is not set), and copy the upper element from "c" to the upper element of "dst". + [round_note] + +IF k[0] + dst[63:0] := (a[63:0] * b[63:0]) - c[63:0] +ELSE + dst[63:0] := c[63:0] +FI +dst[127:64] := c[127:64] +dst[MAX:128] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply the lower double-precision (64-bit) floating-point elements in "a" and "b", and subtract the lower element in "c" from the intermediate result. Store the result in the lower element of "dst" using writemask "k" (the element is copied from "c" when mask bit 0 is not set), and copy the upper element from "c" to the upper element of "dst". + +IF k[0] + dst[63:0] := (a[63:0] * b[63:0]) - c[63:0] +ELSE + dst[63:0] := c[63:0] +FI +dst[127:64] := c[127:64] +dst[MAX:128] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply the lower double-precision (64-bit) floating-point elements in "a" and "b", and subtract the lower element in "c" from the intermediate result. Store the result in the lower element of "dst" using writemask "k" (the element is copied from "a" when mask bit 0 is not set), and copy the upper element from "a" to the upper element of "dst". + [round_note] + +IF k[0] + dst[63:0] := (a[63:0] * b[63:0]) - c[63:0] +ELSE + dst[63:0] := a[63:0] +FI +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply the lower double-precision (64-bit) floating-point elements in "a" and "b", and subtract the lower element in "c" from the intermediate result. Store the result in the lower element of "dst" using writemask "k" (the element is copied from "a" when mask bit 0 is not set), and copy the upper element from "a" to the upper element of "dst". + +IF k[0] + dst[63:0] := (a[63:0] * b[63:0]) - c[63:0] +ELSE + dst[63:0] := a[63:0] +FI +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply the lower double-precision (64-bit) floating-point elements in "a" and "b", and subtract the lower element in "c" from the intermediate result. Store the result in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper element from "a" to the upper element of "dst". + [round_note] + +IF k[0] + dst[63:0] := (a[63:0] * b[63:0]) - c[63:0] +ELSE + dst[63:0] := 0 +FI +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply the lower double-precision (64-bit) floating-point elements in "a" and "b", and subtract the lower element in "c" from the intermediate result. Store the result in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper element from "a" to the upper element of "dst". + +IF k[0] + dst[63:0] := (a[63:0] * b[63:0]) - c[63:0] +ELSE + dst[63:0] := 0 +FI +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply the lower single-precision (32-bit) floating-point elements in "a" and "b", and subtract the lower element in "c" from the intermediate result. Store the result in the lower element of "dst", and copy the upper 3 packed elements from "a" to the upper elements of "dst". + [round_note] + +dst[31:0] := (a[31:0] * b[31:0]) - c[31:0] +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply the lower single-precision (32-bit) floating-point elements in "a" and "b", and subtract the lower element in "c" from the intermediate result. Store the result in the lower element of "dst" using writemask "k" (the element is copied from "c" when mask bit 0 is not set), and copy the upper 3 packed elements from "c" to the upper elements of "dst". + [round_note] + +IF k[0] + dst[31:0] := (a[31:0] * b[31:0]) - c[31:0] +ELSE + dst[31:0] := c[31:0] +FI +dst[127:32] := c[127:32] +dst[MAX:128] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply the lower single-precision (32-bit) floating-point elements in "a" and "b", and subtract the lower element in "c" from the intermediate result. Store the result in the lower element of "dst" using writemask "k" (the element is copied from "c" when mask bit 0 is not set), and copy the upper 3 packed elements from "c" to the upper elements of "dst". + +IF k[0] + dst[31:0] := (a[31:0] * b[31:0]) - c[31:0] +ELSE + dst[31:0] := c[31:0] +FI +dst[127:32] := c[127:32] +dst[MAX:128] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply the lower single-precision (32-bit) floating-point elements in "a" and "b", and subtract the lower element in "c" from the intermediate result. Store the result in the lower element of "dst" using writemask "k" (the element is copied from "a" when mask bit 0 is not set), and copy the upper 3 packed elements from "a" to the upper elements of "dst". + [round_note] + +IF k[0] + dst[31:0] := (a[31:0] * b[31:0]) - c[31:0] +ELSE + dst[31:0] := a[31:0] +FI +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply the lower single-precision (32-bit) floating-point elements in "a" and "b", and subtract the lower element in "c" from the intermediate result. Store the result in the lower element of "dst" using writemask "k" (the element is copied from "a" when mask bit 0 is not set), and copy the upper 3 packed elements from "a" to the upper elements of "dst". + +IF k[0] + dst[31:0] := (a[31:0] * b[31:0]) - c[31:0] +ELSE + dst[31:0] := a[31:0] +FI +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply the lower single-precision (32-bit) floating-point elements in "a" and "b", and subtract the lower element in "c" from the intermediate result. Store the result in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper 3 packed elements from "a" to the upper elements of "dst". + [round_note] + +IF k[0] + dst[31:0] := (a[31:0] * b[31:0]) - c[31:0] +ELSE + dst[31:0] := 0 +FI +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply the lower single-precision (32-bit) floating-point elements in "a" and "b", and subtract the lower element in "c" from the intermediate result. Store the result in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper 3 packed elements from "a" to the upper elements of "dst". + +IF k[0] + dst[31:0] := (a[31:0] * b[31:0]) - c[31:0] +ELSE + dst[31:0] := 0 +FI +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply packed double-precision (64-bit) floating-point elements in "a" and "b", alternatively subtract and add packed elements in "c" from/to the intermediate result, and store the results in "dst". + +FOR j := 0 to 7 + i := j*64 + IF ((j & 1) == 0) + dst[i+63:i] := (a[i+63:i] * b[i+63:i]) + c[i+63:i] + ELSE + dst[i+63:i] := (a[i+63:i] * b[i+63:i]) - c[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed double-precision (64-bit) floating-point elements in "a" and "b", alternatively subtract and add packed elements in "c" from/to the intermediate result, and store the results in "dst". + [round_note] + +FOR j := 0 to 7 + i := j*64 + IF ((j & 1) == 0) + dst[i+63:i] := (a[i+63:i] * b[i+63:i]) + c[i+63:i] + ELSE + dst[i+63:i] := (a[i+63:i] * b[i+63:i]) - c[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed double-precision (64-bit) floating-point elements in "a" and "b", alternatively subtract and add packed elements in "c" from/to the intermediate result, and store the results in "dst" using writemask "k" (elements are copied from "c" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + IF ((j & 1) == 0) + dst[i+63:i] := (a[i+63:i] * b[i+63:i]) + c[i+63:i] + ELSE + dst[i+63:i] := (a[i+63:i] * b[i+63:i]) - c[i+63:i] + FI + ELSE + dst[i+63:i] := c[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply packed double-precision (64-bit) floating-point elements in "a" and "b", alternatively subtract and add packed elements in "c" from/to the intermediate result, and store the results in "dst" using writemask "k" (elements are copied from "c" when the corresponding mask bit is not set). [round_note] + +FOR j := 0 to 7 + i := j*64 + IF k[j] + IF ((j & 1) == 0) + dst[i+63:i] := (a[i+63:i] * b[i+63:i]) + c[i+63:i] + ELSE + dst[i+63:i] := (a[i+63:i] * b[i+63:i]) - c[i+63:i] + FI + ELSE + dst[i+63:i] := c[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed double-precision (64-bit) floating-point elements in "a" and "b", alternatively subtract and add packed elements in "c" from/to the intermediate result, and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + IF ((j & 1) == 0) + dst[i+63:i] := (a[i+63:i] * b[i+63:i]) + c[i+63:i] + ELSE + dst[i+63:i] := (a[i+63:i] * b[i+63:i]) - c[i+63:i] + FI + ELSE + dst[i+63:i] := a[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply packed double-precision (64-bit) floating-point elements in "a" and "b", alternatively subtract and add packed elements in "c" from/to the intermediate result, and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). [round_note] + +FOR j := 0 to 7 + i := j*64 + IF k[j] + IF ((j & 1) == 0) + dst[i+63:i] := (a[i+63:i] * b[i+63:i]) + c[i+63:i] + ELSE + dst[i+63:i] := (a[i+63:i] * b[i+63:i]) - c[i+63:i] + FI + ELSE + dst[i+63:i] := a[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed double-precision (64-bit) floating-point elements in "a" and "b", alternatively subtract and add packed elements in "c" from/to the intermediate result, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + IF ((j & 1) == 0) + dst[i+63:i] := (a[i+63:i] * b[i+63:i]) + c[i+63:i] + ELSE + dst[i+63:i] := (a[i+63:i] * b[i+63:i]) - c[i+63:i] + FI + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply packed double-precision (64-bit) floating-point elements in "a" and "b", alternatively subtract and add packed elements in "c" from/to the intermediate result, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 to 7 + i := j*64 + IF k[j] + IF ((j & 1) == 0) + dst[i+63:i] := (a[i+63:i] * b[i+63:i]) + c[i+63:i] + ELSE + dst[i+63:i] := (a[i+63:i] * b[i+63:i]) - c[i+63:i] + FI + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply packed single-precision (32-bit) floating-point elements in "a" and "b", alternatively subtract and add packed elements in "c" from/to the intermediate result, and store the results in "dst". + +FOR j := 0 to 15 + i := j*32 + IF ((j & 1) == 0) + dst[i+31:i] := (a[i+31:i] * b[i+31:i]) + c[i+31:i] + ELSE + dst[i+31:i] := (a[i+31:i] * b[i+31:i]) - c[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed single-precision (32-bit) floating-point elements in "a" and "b", alternatively subtract and add packed elements in "c" from/to the intermediate result, and store the results in "dst". + [round_note] + +FOR j := 0 to 15 + i := j*32 + IF ((j & 1) == 0) + dst[i+31:i] := (a[i+31:i] * b[i+31:i]) + c[i+31:i] + ELSE + dst[i+31:i] := (a[i+31:i] * b[i+31:i]) - c[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed single-precision (32-bit) floating-point elements in "a" and "b", alternatively subtract and add packed elements in "c" from/to the intermediate result, and store the results in "dst" using writemask "k" (elements are copied from "c" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + IF ((j & 1) == 0) + dst[i+31:i] := (a[i+31:i] * b[i+31:i]) + c[i+31:i] + ELSE + dst[i+31:i] := (a[i+31:i] * b[i+31:i]) - c[i+31:i] + FI + ELSE + dst[i+31:i] := c[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply packed single-precision (32-bit) floating-point elements in "a" and "b", alternatively subtract and add packed elements in "c" from/to the intermediate result, and store the results in "dst" using writemask "k" (elements are copied from "c" when the corresponding mask bit is not set). [round_note] + +FOR j := 0 to 15 + i := j*32 + IF k[j] + IF ((j & 1) == 0) + dst[i+31:i] := (a[i+31:i] * b[i+31:i]) + c[i+31:i] + ELSE + dst[i+31:i] := (a[i+31:i] * b[i+31:i]) - c[i+31:i] + FI + ELSE + dst[i+31:i] := c[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed single-precision (32-bit) floating-point elements in "a" and "b", alternatively subtract and add packed elements in "c" from/to the intermediate result, and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + IF ((j & 1) == 0) + dst[i+31:i] := (a[i+31:i] * b[i+31:i]) + c[i+31:i] + ELSE + dst[i+31:i] := (a[i+31:i] * b[i+31:i]) - c[i+31:i] + FI + ELSE + dst[i+31:i] := a[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply packed single-precision (32-bit) floating-point elements in "a" and "b", alternatively subtract and add packed elements in "c" from/to the intermediate result, and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 to 15 + i := j*32 + IF k[j] + IF ((j & 1) == 0) + dst[i+31:i] := (a[i+31:i] * b[i+31:i]) + c[i+31:i] + ELSE + dst[i+31:i] := (a[i+31:i] * b[i+31:i]) - c[i+31:i] + FI + ELSE + dst[i+31:i] := a[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed single-precision (32-bit) floating-point elements in "a" and "b", alternatively subtract and add packed elements in "c" from/to the intermediate result, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + IF ((j & 1) == 0) + dst[i+31:i] := (a[i+31:i] * b[i+31:i]) + c[i+31:i] + ELSE + dst[i+31:i] := (a[i+31:i] * b[i+31:i]) - c[i+31:i] + FI + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply packed single-precision (32-bit) floating-point elements in "a" and "b", alternatively subtract and add packed elements in "c" from/to the intermediate result, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 to 15 + i := j*32 + IF k[j] + IF ((j & 1) == 0) + dst[i+31:i] := (a[i+31:i] * b[i+31:i]) + c[i+31:i] + ELSE + dst[i+31:i] := (a[i+31:i] * b[i+31:i]) - c[i+31:i] + FI + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed double-precision (64-bit) floating-point elements in "a" and "b", add the negated intermediate result to packed elements in "c", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := -(a[i+63:i] * b[i+63:i]) + c[i+63:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply packed double-precision (64-bit) floating-point elements in "a" and "b", add the negated intermediate result to packed elements in "c", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). [round_note] + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := -(a[i+63:i] * b[i+63:i]) + c[i+63:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed single-precision (32-bit) floating-point elements in "a" and "b", add the negated intermediate result to packed elements in "c", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := -(a[i+31:i] * b[i+31:i]) + c[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply packed single-precision (32-bit) floating-point elements in "a" and "b", add the negated intermediate result to packed elements in "c", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). [round_note] + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := -(a[i+31:i] * b[i+31:i]) + c[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply the lower double-precision (64-bit) floating-point elements in "a" and "b", and add the negated intermediate result to the lower element in "c". Store the result in the lower element of "dst", and copy the upper element from "a" to the upper element of "dst". + [round_note] + +dst[63:0] := -(a[63:0] * b[63:0]) + c[63:0] +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply the lower double-precision (64-bit) floating-point elements in "a" and "b", and add the negated intermediate result to the lower element in "c". Store the result in the lower element of "dst" using writemask "k" (the element is copied from "c" when mask bit 0 is not set), and copy the upper element from "c" to the upper element of "dst". + [round_note] + +IF k[0] + dst[63:0] := -(a[63:0] * b[63:0]) + c[63:0] +ELSE + dst[63:0] := c[63:0] +FI +dst[127:64] := c[127:64] +dst[MAX:128] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply the lower double-precision (64-bit) floating-point elements in "a" and "b", and add the negated intermediate result to the lower element in "c". Store the result in the lower element of "dst" using writemask "k" (the element is copied from "c" when mask bit 0 is not set), and copy the upper element from "c" to the upper element of "dst". + +IF k[0] + dst[63:0] := -(a[63:0] * b[63:0]) + c[63:0] +ELSE + dst[63:0] := c[63:0] +FI +dst[127:64] := c[127:64] +dst[MAX:128] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply the lower double-precision (64-bit) floating-point elements in "a" and "b", and add the negated intermediate result to the lower element in "c". Store the result in the lower element of "dst" using writemask "k" (the element is copied from "a" when mask bit 0 is not set), and copy the upper element from "a" to the upper element of "dst". + [round_note] + +IF k[0] + dst[63:0] := -(a[63:0] * b[63:0]) + c[63:0] +ELSE + dst[63:0] := a[63:0] +FI +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply the lower double-precision (64-bit) floating-point elements in "a" and "b", and add the negated intermediate result to the lower element in "c". Store the result in the lower element of "dst" using writemask "k" (the element is copied from "a" when mask bit 0 is not set), and copy the upper element from "a" to the upper element of "dst". + +IF k[0] + dst[63:0] := -(a[63:0] * b[63:0]) + c[63:0] +ELSE + dst[63:0] := a[63:0] +FI +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply the lower double-precision (64-bit) floating-point elements in "a" and "b", and add the negated intermediate result to the lower element in "c". Store the result in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper element from "a" to the upper element of "dst". + [round_note] + +IF k[0] + dst[63:0] := -(a[63:0] * b[63:0]) + c[63:0] +ELSE + dst[63:0] := 0 +FI +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply the lower double-precision (64-bit) floating-point elements in "a" and "b", and add the negated intermediate result to the lower element in "c". Store the result in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper element from "a" to the upper element of "dst". + +IF k[0] + dst[63:0] := -(a[63:0] * b[63:0]) + c[63:0] +ELSE + dst[63:0] := 0 +FI +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply the lower single-precision (32-bit) floating-point elements in "a" and "b", and add the negated intermediate result to the lower element in "c". Store the result in the lower element of "dst", and copy the upper 3 packed elements from "a" to the upper elements of "dst". + [round_note] + +dst[31:0] := -(a[31:0] * b[31:0]) + c[31:0] +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply the lower single-precision (32-bit) floating-point elements in "a" and "b", and add the negated intermediate result to the lower element in "c". Store the result in the lower element of "dst" using writemask "k" (the element is copied from "c" when mask bit 0 is not set), and copy the upper 3 packed elements from "c" to the upper elements of "dst". + [round_note] + +IF k[0] + dst[31:0] := -(a[31:0] * b[31:0]) + c[31:0] +ELSE + dst[31:0] := c[31:0] +FI +dst[127:32] := c[127:32] +dst[MAX:128] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply the lower single-precision (32-bit) floating-point elements in "a" and "b", and add the negated intermediate result to the lower element in "c". Store the result in the lower element of "dst" using writemask "k" (the element is copied from "c" when mask bit 0 is not set), and copy the upper 3 packed elements from "c" to the upper elements of "dst". + +IF k[0] + dst[31:0] := -(a[31:0] * b[31:0]) + c[31:0] +ELSE + dst[31:0] := c[31:0] +FI +dst[127:32] := c[127:32] +dst[MAX:128] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply the lower single-precision (32-bit) floating-point elements in "a" and "b", and add the negated intermediate result to the lower element in "c". Store the result in the lower element of "dst" using writemask "k" (the element is copied from "a" when mask bit 0 is not set), and copy the upper 3 packed elements from "a" to the upper elements of "dst". + [round_note] + +IF k[0] + dst[31:0] := -(a[31:0] * b[31:0]) + c[31:0] +ELSE + dst[31:0] := a[31:0] +FI +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply the lower single-precision (32-bit) floating-point elements in "a" and "b", and add the negated intermediate result to the lower element in "c". Store the result in the lower element of "dst" using writemask "k" (the element is copied from "a" when mask bit 0 is not set), and copy the upper 3 packed elements from "a" to the upper elements of "dst". + +IF k[0] + dst[31:0] := -(a[31:0] * b[31:0]) + c[31:0] +ELSE + dst[31:0] := a[31:0] +FI +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply the lower single-precision (32-bit) floating-point elements in "a" and "b", and add the negated intermediate result to the lower element in "c". Store the result in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper 3 packed elements from "a" to the upper elements of "dst". + [round_note] + +IF k[0] + dst[31:0] := -(a[31:0] * b[31:0]) + c[31:0] +ELSE + dst[31:0] := 0 +FI +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply the lower single-precision (32-bit) floating-point elements in "a" and "b", and add the negated intermediate result to the lower element in "c". Store the result in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper 3 packed elements from "a" to the upper elements of "dst". + +IF k[0] + dst[31:0] := -(a[31:0] * b[31:0]) + c[31:0] +ELSE + dst[31:0] := 0 +FI +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed double-precision (64-bit) floating-point elements in "a" and "b", subtract packed elements in "c" from the negated intermediate result, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := -(a[i+63:i] * b[i+63:i]) - c[i+63:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply packed double-precision (64-bit) floating-point elements in "a" and "b", subtract packed elements in "c" from the negated intermediate result, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). [round_note] + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := -(a[i+63:i] * b[i+63:i]) - c[i+63:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed single-precision (32-bit) floating-point elements in "a" and "b", subtract packed elements in "c" from the negated intermediate result, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := -(a[i+31:i] * b[i+31:i]) - c[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply packed single-precision (32-bit) floating-point elements in "a" and "b", subtract packed elements in "c" from the negated intermediate result, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := -(a[i+31:i] * b[i+31:i]) - c[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply the lower double-precision (64-bit) floating-point elements in "a" and "b", and subtract the lower element in "c" from the negated intermediate result. Store the result in the lower element of "dst", and copy the upper element from "a" to the upper element of "dst". + [round_note] + +dst[63:0] := -(a[63:0] * b[63:0]) - c[63:0] +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply the lower double-precision (64-bit) floating-point elements in "a" and "b", and subtract the lower element in "c" from the negated intermediate result. Store the result in the lower element of "dst" using writemask "k" (the element is copied from "c" when mask bit 0 is not set), and copy the upper element from "c" to the upper element of "dst". + [round_note] + +IF k[0] + dst[63:0] := -(a[63:0] * b[63:0]) - c[63:0] +ELSE + dst[63:0] := c[63:0] +FI +dst[127:64] := c[127:64] +dst[MAX:128] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply the lower double-precision (64-bit) floating-point elements in "a" and "b", and subtract the lower element in "c" from the negated intermediate result. Store the result in the lower element of "dst" using writemask "k" (the element is copied from "c" when mask bit 0 is not set), and copy the upper element from "c" to the upper element of "dst". + +IF k[0] + dst[63:0] := -(a[63:0] * b[63:0]) - c[63:0] +ELSE + dst[63:0] := c[63:0] +FI +dst[127:64] := c[127:64] +dst[MAX:128] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply the lower double-precision (64-bit) floating-point elements in "a" and "b", and subtract the lower element in "c" from the negated intermediate result. Store the result in the lower element of "dst" using writemask "k" (the element is copied from "c" when mask bit 0 is not set), and copy the upper element from "a" to the upper element of "dst". + [round_note] + +IF k[0] + dst[63:0] := -(a[63:0] * b[63:0]) - c[63:0] +ELSE + dst[63:0] := a[63:0] +FI +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply the lower double-precision (64-bit) floating-point elements in "a" and "b", and subtract the lower element in "c" from the negated intermediate result. Store the result in the lower element of "dst" using writemask "k" (the element is copied from "c" when mask bit 0 is not set), and copy the upper element from "a" to the upper element of "dst". + +IF k[0] + dst[63:0] := -(a[63:0] * b[63:0]) - c[63:0] +ELSE + dst[63:0] := a[63:0] +FI +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply the lower double-precision (64-bit) floating-point elements in "a" and "b", and subtract the lower element in "c" from the negated intermediate result. Store the result in "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper element from "a" to the upper element of "dst". + [round_note] + +IF k[0] + dst[63:0] := -(a[63:0] * b[63:0]) - c[63:0] +ELSE + dst[63:0] := 0 +FI +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply the lower double-precision (64-bit) floating-point elements in "a" and "b", and subtract the lower element in "c" from the negated intermediate result. Store the result in "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper element from "a" to the upper element of "dst". + +IF k[0] + dst[63:0] := -(a[63:0] * b[63:0]) - c[63:0] +ELSE + dst[63:0] := 0 +FI +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply the lower single-precision (32-bit) floating-point elements in "a" and "b", subtract the lower element in "c" from the negated intermediate result, store the result in the lower element of "dst", and copy the upper 3 packed elements from "a" to the upper elements of "dst". + [round_note] + +dst[31:0] := -(a[31:0] * b[31:0]) - c[31:0] +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply the lower single-precision (32-bit) floating-point elements in "a" and "b", subtract the lower element in "c" from the negated intermediate result. Store the result in the lower element of "dst" using writemask "k" (the element is copied from "c" when mask bit 0 is not set), and copy the upper 3 packed elements from "c" to the upper elements of "dst". + [round_note] + +IF k[0] + dst[31:0] := -(a[31:0] * b[31:0]) - c[31:0] +ELSE + dst[31:0] := c[31:0] +FI +dst[127:32] := c[127:32] +dst[MAX:128] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply the lower single-precision (32-bit) floating-point elements in "a" and "b", and subtract the lower element in "c" from the negated intermediate result. Store the result in the lower element of "dst" using writemask "k" (the element is copied from "c" when mask bit 0 is not set), and copy the upper 3 packed elements from "c" to the upper elements of "dst". + +IF k[0] + dst[31:0] := -(a[31:0] * b[31:0]) - c[31:0] +ELSE + dst[31:0] := c[31:0] +FI +dst[127:32] := c[127:32] +dst[MAX:128] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply the lower single-precision (32-bit) floating-point elements in "a" and "b", and subtract the lower element in "c" from the negated intermediate result. Store the result in the lower element of "dst" using writemask "k" (the element is copied from "c" when mask bit 0 is not set), and copy the upper 3 packed elements from "a" to the upper elements of "dst". + [round_note] + +IF k[0] + dst[31:0] := -(a[31:0] * b[31:0]) - c[31:0] +ELSE + dst[31:0] := a[31:0] +FI +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply the lower single-precision (32-bit) floating-point elements in "a" and "b", and subtract the lower element in "c" from the negated intermediate result. Store the result in the lower element of "dst" using writemask "k" (the element is copied from "c" when mask bit 0 is not set), and copy the upper 3 packed elements from "a" to the upper elements of "dst". + +IF k[0] + dst[31:0] := -(a[31:0] * b[31:0]) - c[31:0] +ELSE + dst[31:0] := a[31:0] +FI +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply the lower single-precision (32-bit) floating-point elements in "a" and "b", and subtract the lower element in "c" from the negated intermediate result. Store the result in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper 3 packed elements from "a" to the upper elements of "dst". + [round_note] + +IF k[0] + dst[31:0] := -(a[31:0] * b[31:0]) - c[31:0] +ELSE + dst[31:0] := 0 +FI +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply the lower single-precision (32-bit) floating-point elements in "a" and "b", and subtract the lower element in "c" from the negated intermediate result. Store the result in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper 3 packed elements from "a" to the upper elements of "dst". + +IF k[0] + dst[31:0] := -(a[31:0] * b[31:0]) - c[31:0] +ELSE + dst[31:0] := 0 +FI +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply packed double-precision (64-bit) floating-point elements in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := a[i+63:i] * b[i+63:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed double-precision (64-bit) floating-point elements in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := a[i+63:i] * b[i+63:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply packed single-precision (32-bit) floating-point elements in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := a[i+31:i] * b[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed single-precision (32-bit) floating-point elements in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := a[i+31:i] * b[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply the lower double-precision (64-bit) floating-point element in "a" and "b", store the result in the lower element of "dst" using writemask "k" (the element is copied from "src" when mask bit 0 is not set), and copy the upper element from "a" to the upper element of "dst". + [round_note] + +IF k[0] + dst[63:0] := a[63:0] * b[63:0] +ELSE + dst[63:0] := src[63:0] +FI +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply the lower double-precision (64-bit) floating-point element in "a" and "b", store the result in the lower element of "dst" using writemask "k" (the element is copied from "src" when mask bit 0 is not set), and copy the upper element from "a" to the upper element of "dst". + +IF k[0] + dst[63:0] := a[63:0] * b[63:0] +ELSE + dst[63:0] := src[63:0] +FI +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply the lower double-precision (64-bit) floating-point element in "a" and "b", store the result in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper element from "a" to the upper element of "dst". + [round_note] + +IF k[0] + dst[63:0] := a[63:0] * b[63:0] +ELSE + dst[63:0] := 0 +FI +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply the lower double-precision (64-bit) floating-point element in "a" and "b", store the result in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper element from "a" to the upper element of "dst". + +IF k[0] + dst[63:0] := a[63:0] * b[63:0] +ELSE + dst[63:0] := 0 +FI +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply the lower double-precision (64-bit) floating-point element in "a" and "b", store the result in the lower element of "dst", and copy the upper element from "a" to the upper element of "dst". + [round_note] + +dst[63:0] := a[63:0] * b[63:0] +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply the lower single-precision (32-bit) floating-point element in "a" and "b", store the result in the lower element of "dst" using writemask "k" (the element is copied from "src" when mask bit 0 is not set), and copy the upper 3 packed elements from "a" to the upper elements of "dst". + [round_note] + +IF k[0] + dst[31:0] := a[31:0] * b[31:0] +ELSE + dst[31:0] := src[31:0] +FI +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply the lower single-precision (32-bit) floating-point element in "a" and "b", store the result in the lower element of "dst" using writemask "k" (the element is copied from "src" when mask bit 0 is not set), and copy the upper 3 packed elements from "a" to the upper elements of "dst". + +IF k[0] + dst[31:0] := a[31:0] * b[31:0] +ELSE + dst[31:0] := src[31:0] +FI +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply the lower single-precision (32-bit) floating-point element in "a" and "b", store the result in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper 3 packed elements from "a" to the upper elements of "dst". + [round_note] + +IF k[0] + dst[31:0] := a[31:0] * b[31:0] +ELSE + dst[31:0] := 0 +FI +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply the lower single-precision (32-bit) floating-point element in "a" and "b", store the result in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper 3 packed elements from "a" to the upper elements of "dst". + +IF k[0] + dst[31:0] := a[31:0] * b[31:0] +ELSE + dst[31:0] := 0 +FI +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply the lower single-precision (32-bit) floating-point element in "a" and "b", store the result in the lower element of "dst", and copy the upper 3 packed elements from "a" to the upper elements of "dst". + [round_note] + +dst[31:0] := a[31:0] * b[31:0] +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + Add packed 32-bit integers in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := a[i+31:i] + b[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + Add packed 64-bit integers in "a" and "b", and store the results in "dst". + +FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := a[i+63:i] + b[i+63:i] +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Add packed 64-bit integers in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := a[i+63:i] + b[i+63:i] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + Add packed 64-bit integers in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := a[i+63:i] + b[i+63:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply the low signed 32-bit integers from each packed 64-bit element in "a" and "b", and store the signed 64-bit results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := SignExtend64(a[i+31:i]) * SignExtend64(b[i+31:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply the low signed 32-bit integers from each packed 64-bit element in "a" and "b", and store the signed 64-bit results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := SignExtend64(a[i+31:i]) * SignExtend64(b[i+31:i]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + Multiply the low signed 32-bit integers from each packed 64-bit element in "a" and "b", and store the signed 64-bit results in "dst". + +FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := SignExtend64(a[i+31:i]) * SignExtend64(b[i+31:i]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply the low unsigned 32-bit integers from each packed 64-bit element in "a" and "b", and store the unsigned 64-bit results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := a[i+31:i] * b[i+31:i] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply the low unsigned 32-bit integers from each packed 64-bit element in "a" and "b", and store the unsigned 64-bit results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := a[i+31:i] * b[i+31:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + Multiply the low unsigned 32-bit integers from each packed 64-bit element in "a" and "b", and store the unsigned 64-bit results in "dst". + +FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := a[i+31:i] * b[i+31:i] +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + Subtract packed 32-bit integers in "b" from packed 32-bit integers in "a", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := a[i+31:i] - b[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Subtract packed 64-bit integers in "b" from packed 64-bit integers in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := a[i+63:i] - b[i+63:i] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + Subtract packed 64-bit integers in "b" from packed 64-bit integers in "a", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := a[i+63:i] - b[i+63:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + Subtract packed 64-bit integers in "b" from packed 64-bit integers in "a", and store the results in "dst". + +FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := a[i+63:i] - b[i+63:i] +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + Subtract packed double-precision (64-bit) floating-point elements in "b" from packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := a[i+63:i] - b[i+63:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Subtract packed double-precision (64-bit) floating-point elements in "b" from packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := a[i+63:i] - b[i+63:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + Subtract packed single-precision (32-bit) floating-point elements in "b" from packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := a[i+31:i] - b[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Subtract packed single-precision (32-bit) floating-point elements in "b" from packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := a[i+31:i] - b[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + + Subtract the lower double-precision (64-bit) floating-point element in "b" from the lower double-precision (64-bit) floating-point element in "a", store the result in the lower element of "dst" using writemask "k" (the element is copied from "src" when mask bit 0 is not set), and copy the upper element from "a" to the upper element of "dst". + [round_note] + +IF k[0] + dst[63:0] := a[63:0] - b[63:0] +ELSE + dst[63:0] := src[63:0] +FI +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Subtract the lower double-precision (64-bit) floating-point element in "b" from the lower double-precision (64-bit) floating-point element in "a", store the result in the lower element of "dst" using writemask "k" (the element is copied from "src" when mask bit 0 is not set), and copy the upper element from "a" to the upper element of "dst". + +IF k[0] + dst[63:0] := a[63:0] - b[63:0] +ELSE + dst[63:0] := src[63:0] +FI +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Subtract the lower double-precision (64-bit) floating-point element in "b" from the lower double-precision (64-bit) floating-point element in "a", store the result in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper element from "a" to the upper element of "dst". + [round_note] + +IF k[0] + dst[63:0] := a[63:0] - b[63:0] +ELSE + dst[63:0] := 0 +FI +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + Subtract the lower double-precision (64-bit) floating-point element in "b" from the lower double-precision (64-bit) floating-point element in "a", store the result in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper element from "a" to the upper element of "dst". + +IF k[0] + dst[63:0] := a[63:0] - b[63:0] +ELSE + dst[63:0] := 0 +FI +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + Subtract the lower double-precision (64-bit) floating-point element in "b" from the lower double-precision (64-bit) floating-point element in "a", store the result in the lower element of "dst", and copy the upper element from "a" to the upper element of "dst". + [round_note] + +dst[63:0] := a[63:0] - b[63:0] +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + + Subtract the lower single-precision (32-bit) floating-point element in "b" from the lower single-precision (32-bit) floating-point element in "a", store the result in the lower element of "dst" using writemask "k" (the element is copied from "src" when mask bit 0 is not set), and copy the upper 3 packed elements from "a" to the upper elements of "dst". + [round_note] + +IF k[0] + dst[31:0] := a[31:0] - b[31:0] +ELSE + dst[31:0] := src[31:0] +FI +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Subtract the lower single-precision (32-bit) floating-point element in "b" from the lower single-precision (32-bit) floating-point element in "a", store the result in the lower element of "dst" using writemask "k" (the element is copied from "src" when mask bit 0 is not set), and copy the upper 3 packed elements from "a" to the upper elements of "dst". + +IF k[0] + dst[31:0] := a[31:0] - b[31:0] +ELSE + dst[31:0] := src[31:0] +FI +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Subtract the lower single-precision (32-bit) floating-point element in "b" from the lower single-precision (32-bit) floating-point element in "a", store the result in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper 3 packed elements from "a" to the upper elements of "dst". + [round_note] + +IF k[0] + dst[31:0] := a[31:0] - b[31:0] +ELSE + dst[31:0] := 0 +FI +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + Subtract the lower single-precision (32-bit) floating-point element in "b" from the lower single-precision (32-bit) floating-point element in "a", store the result in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper 3 packed elements from "a" to the upper elements of "dst". + +IF k[0] + dst[31:0] := a[31:0] - b[31:0] +ELSE + dst[31:0] := 0 +FI +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + Subtract the lower single-precision (32-bit) floating-point element in "b" from the lower single-precision (32-bit) floating-point element in "a", store the result in the lower element of "dst", and copy the upper 3 packed elements from "a" to the upper elements of "dst". + [round_note] + +dst[31:0] := a[31:0] - b[31:0] +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + Store 512-bits (composed of 8 packed 64-bit integers) from "a" into memory. + "mem_addr" does not need to be aligned on any particular boundary. + +MEM[mem_addr+511:mem_addr] := a[511:0] + + + AVX512F +
immintrin.h
+ Store +
+ + + + + Store 512-bits (composed of 16 packed 32-bit integers) from "a" into memory. + "mem_addr" does not need to be aligned on any particular boundary. + +MEM[mem_addr+511:mem_addr] := a[511:0] + + + AVX512F +
immintrin.h
+ Store +
+ + + + + Store 16-bit mask from "a" into memory. + +MEM[mem_addr+15:mem_addr] := a[15:0] + + + AVX512F +
immintrin.h
+ Store +
+ + Swizzle + + + + + Contiguously store the active double-precision (64-bit) floating-point elements in "a" (those with their respective bit set in writemask "k") to unaligned memory at "base_addr". + +size := 64 +m := base_addr +FOR j := 0 to 7 + i := j*64 + IF k[j] + MEM[m+size-1:m] := a[i+63:i] + m := m + size + FI +ENDFOR + + + AVX512F +
immintrin.h
+ Store +
+ + Swizzle + + + + + Contiguously store the active single-precision (32-bit) floating-point elements in "a" (those with their respective bit set in writemask "k") to unaligned memory at "base_addr". + +size := 32 +m := base_addr +FOR j := 0 to 15 + i := j*32 + IF k[j] + MEM[m+size-1:m] := a[i+31:i] + m := m + size + FI +ENDFOR + + + AVX512F +
immintrin.h
+ Store +
+ + + + + + Store packed 32-bit integers from "a" into memory using writemask "k". + "mem_addr" does not need to be aligned on any particular boundary. + +FOR j := 0 to 15 + i := j*32 + IF k[j] + MEM[mem_addr+i+31:mem_addr+i] := a[i+31:i] + FI +ENDFOR + + + AVX512F +
immintrin.h
+ Store +
+ + + + + Store 512-bits of integer data from "a" into memory. + "mem_addr" does not need to be aligned on any particular boundary. + +MEM[mem_addr+511:mem_addr] := a[511:0] + + + AVX512F +
immintrin.h
+ Store +
+ + + + + + Store packed 64-bit integers from "a" into memory using writemask "k". + "mem_addr" does not need to be aligned on any particular boundary. + +FOR j := 0 to 7 + i := j*64 + IF k[j] + MEM[mem_addr+i+63:mem_addr+i] := a[i+63:i] + FI +ENDFOR + + + AVX512F +
immintrin.h
+ Store +
+ + + + + Store 512-bits of integer data from "a" into memory using a non-temporal memory hint. + "mem_addr" must be aligned on a 64-byte boundary or a general-protection exception may be generated. + +MEM[mem_addr+511:mem_addr] := a[511:0] + + + AVX512F +
immintrin.h
+ Store +
+ + + + + Store 512-bits (composed of 8 packed double-precision (64-bit) floating-point elements) from "a" into memory using a non-temporal memory hint. + "mem_addr" must be aligned on a 64-byte boundary or a general-protection exception may be generated. + +MEM[mem_addr+511:mem_addr] := a[511:0] + + + AVX512F +
immintrin.h
+ Store +
+ + + + + Store 512-bits (composed of 16 packed single-precision (32-bit) floating-point elements) from "a" into memory using a non-temporal memory hint. + "mem_addr" must be aligned on a 64-byte boundary or a general-protection exception may be generated. + +MEM[mem_addr+511:mem_addr] := a[511:0] + + + AVX512F +
immintrin.h
+ Store +
+ + + + + + Store the lower double-precision (64-bit) floating-point element from "a" into memory using writemask "k". + "mem_addr" must be aligned on a 16-byte boundary or a general-protection exception may be generated. + +IF k[0] + MEM[mem_addr+63:mem_addr] := a[63:0] +FI + + + AVX512F +
immintrin.h
+ Store +
+ + + + + + Store the lower single-precision (32-bit) floating-point element from "a" into memory using writemask "k". + "mem_addr" must be aligned on a 16-byte boundary or a general-protection exception may be generated. + +IF k[0] + MEM[mem_addr+31:mem_addr] := a[31:0] +FI + + + AVX512F +
immintrin.h
+ Store +
+ + + + + + Store packed double-precision (64-bit) floating-point elements from "a" into memory using writemask "k". + "mem_addr" does not need to be aligned on any particular boundary. + +FOR j := 0 to 7 + i := j*64 + IF k[j] + MEM[mem_addr+i+63:mem_addr+i] := a[i+63:i] + FI +ENDFOR + + + AVX512F +
immintrin.h
+ Store +
+ + + + + Store 512-bits (composed of 8 packed double-precision (64-bit) floating-point elements) from "a" into memory. + "mem_addr" does not need to be aligned on any particular boundary. + +MEM[mem_addr+511:mem_addr] := a[511:0] + + + AVX512F +
immintrin.h
+ Store +
+ + + + + + Store packed single-precision (32-bit) floating-point elements from "a" into memory using writemask "k". + "mem_addr" does not need to be aligned on any particular boundary. + +FOR j := 0 to 15 + i := j*32 + IF k[j] + MEM[mem_addr+i+31:mem_addr+i] := a[i+31:i] + FI +ENDFOR + + + AVX512F +
immintrin.h
+ Store +
+ + + + + Store 512-bits (composed of 16 packed single-precision (32-bit) floating-point elements) from "a" into memory. + "mem_addr" does not need to be aligned on any particular boundary. + +MEM[mem_addr+511:mem_addr] := a[511:0] + + + AVX512F +
immintrin.h
+ Store +
+ + Swizzle + + + + + Contiguously store the active 32-bit integers in "a" (those with their respective bit set in writemask "k") to unaligned memory at "base_addr". + +size := 32 +m := base_addr +FOR j := 0 to 15 + i := j*32 + IF k[j] + MEM[m+size-1:m] := a[i+31:i] + m := m + size + FI +ENDFOR + + + AVX512F +
immintrin.h
+ Store +
+ + Swizzle + + + + + Contiguously store the active 64-bit integers in "a" (those with their respective bit set in writemask "k") to unaligned memory at "base_addr". + +size := 64 +m := base_addr +FOR j := 0 to 7 + i := j*64 + IF k[j] + MEM[m+size-1:m] := a[i+63:i] + m := m + size + FI +ENDFOR + + + AVX512F +
immintrin.h
+ Store +
+ + + + + + + Scatter 64-bit integers from "a" into memory using 32-bit indices. 64-bit elements are stored at addresses starting at "base_addr" and offset by each 32-bit element in "vindex" (each index is scaled by the factor in "scale"). "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 7 + i := j*64 + m := j*32 + addr := base_addr + SignExtend64(vindex[m+31:m]) * ZeroExtend64(scale) * 8 + MEM[addr+63:addr] := a[i+63:i] +ENDFOR + + + AVX512F +
immintrin.h
+ Store +
+ + + + + + + + Scatter 64-bit integers from "a" into memory using 32-bit indices. 64-bit elements are stored at addresses starting at "base_addr" and offset by each 32-bit element in "vindex" (each index is scaled by the factor in "scale") subject to mask "k" (elements are not stored when the corresponding mask bit is not set). "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 7 + i := j*64 + m := j*32 + IF k[j] + addr := base_addr + SignExtend64(vindex[m+31:m]) * ZeroExtend64(scale) * 8 + MEM[addr+63:addr] := a[i+63:i] + FI +ENDFOR + + + AVX512F +
immintrin.h
+ Store +
+ + + + + + + Scatter 32-bit integers from "a" into memory using 64-bit indices. 32-bit elements are stored at addresses starting at "base_addr" and offset by each 64-bit element in "vindex" (each index is scaled by the factor in "scale"). "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 7 + i := j*32 + m := j*64 + addr := base_addr + vindex[m+63:m] * ZeroExtend64(scale) * 8 + MEM[addr+31:addr] := a[i+31:i] +ENDFOR + + + AVX512F +
immintrin.h
+ Store +
+ + + + + + + + Scatter 32-bit integers from "a" into memory using 64-bit indices. 32-bit elements are stored at addresses starting at "base_addr" and offset by each 64-bit element in "vindex" (each index is scaled by the factor in "scale") subject to mask "k" (elements are not stored when the corresponding mask bit is not set). "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 7 + i := j*32 + m := j*64 + IF k[j] + addr := base_addr + vindex[m+63:m] * ZeroExtend64(scale) * 8 + MEM[addr+31:addr] := a[i+31:i] + FI +ENDFOR + + + AVX512F +
immintrin.h
+ Store +
+ + + + + + + Scatter 64-bit integers from "a" into memory using 64-bit indices. 64-bit elements are stored at addresses starting at "base_addr" and offset by each 64-bit element in "vindex" (each index is scaled by the factor in "scale"). "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 7 + i := j*64 + m := j*64 + addr := base_addr + vindex[m+63:m] * ZeroExtend64(scale) * 8 + MEM[addr+63:addr] := a[i+63:i] +ENDFOR + + + AVX512F +
immintrin.h
+ Store +
+ + + + + + + + Scatter 64-bit integers from "a" into memory using 64-bit indices. 64-bit elements are stored at addresses starting at "base_addr" and offset by each 64-bit element in "vindex" (each index is scaled by the factor in "scale") subject to mask "k" (elements are not stored when the corresponding mask bit is not set). "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 7 + i := j*64 + m := j*64 + IF k[j] + addr := base_addr + vindex[m+63:m] * ZeroExtend64(scale) * 8 + MEM[addr+63:addr] := a[i+63:i] + FI +ENDFOR + + + AVX512F +
immintrin.h
+ Store +
+ + + + + + + Scatter double-precision (64-bit) floating-point elements from "a" into memory using 32-bit indices. 64-bit elements are stored at addresses starting at "base_addr" and offset by each 32-bit element in "vindex" (each index is scaled by the factor in "scale"). "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 7 + i := j*64 + m := j*32 + addr := base_addr + SignExtend64(vindex[m+31:m]) * ZeroExtend64(scale) * 8 + MEM[addr+63:addr] := a[i+63:i] +ENDFOR + + + AVX512F +
immintrin.h
+ Store +
+ + + + + + + + Scatter double-precision (64-bit) floating-point elements from "a" into memory using 32-bit indices. 64-bit elements are stored at addresses starting at "base_addr" and offset by each 32-bit element in "vindex" (each index is scaled by the factor in "scale") subject to mask "k" (elements are not stored when the corresponding mask bit is not set). "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 7 + i := j*64 + m := j*32 + IF k[j] + addr := base_addr + SignExtend64(vindex[m+31:m]) * ZeroExtend64(scale) * 8 + MEM[addr+63:addr] := a[i+63:i] + FI +ENDFOR + + + AVX512F +
immintrin.h
+ Store +
+ + + + + + + Scatter double-precision (64-bit) floating-point elements from "a" into memory using 64-bit indices. 64-bit elements are stored at addresses starting at "base_addr" and offset by each 64-bit element in "vindex" (each index is scaled by the factor in "scale"). "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 7 + i := j*64 + m := j*64 + addr := base_addr + vindex[m+63:m] * ZeroExtend64(scale) * 8 + MEM[addr+63:addr] := a[i+63:i] +ENDFOR + + + AVX512F +
immintrin.h
+ Store +
+ + + + + + + + Scatter double-precision (64-bit) floating-point elements from "a" into memory using 64-bit indices. 64-bit elements are stored at addresses starting at "base_addr" and offset by each 64-bit element in "vindex" (each index is scaled by the factor in "scale") subject to mask "k" (elements are not stored when the corresponding mask bit is not set). "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 7 + i := j*64 + m := j*64 + IF k[j] + addr := base_addr + vindex[m+63:m] * ZeroExtend64(scale) * 8 + MEM[addr+63:addr] := a[i+63:i] + FI +ENDFOR + + + AVX512F +
immintrin.h
+ Store +
+ + + + + + + Scatter single-precision (32-bit) floating-point elements from "a" into memory using 64-bit indices. 32-bit elements are stored at addresses starting at "base_addr" and offset by each 64-bit element in "vindex" (each index is scaled by the factor in "scale") subject to mask "k" (elements are not stored when the corresponding mask bit is not set). "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 7 + i := j*32 + m := j*64 + addr := base_addr + vindex[m+63:m] * ZeroExtend64(scale) * 8 + MEM[addr+31:addr] := a[i+31:i] +ENDFOR + + + AVX512F +
immintrin.h
+ Store +
+ + + + + + + + Scatter single-precision (32-bit) floating-point elements from "a" into memory using 64-bit indices. 32-bit elements are stored at addresses starting at "base_addr" and offset by each 64-bit element in "vindex" (each index is scaled by the factor in "scale") subject to mask "k" (elements are not stored when the corresponding mask bit is not set). "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 7 + i := j*32 + m := j*64 + IF k[j] + addr := base_addr + vindex[m+63:m] * ZeroExtend64(scale) * 8 + MEM[addr+31:addr] := a[i+31:i] + FI +ENDFOR + + + AVX512F +
immintrin.h
+ Store +
+ + + + + Multiplies elements in packed 64-bit integer vectors "a" and "b" together, storing the lower 64 bits of the result in "dst". + +FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := a[i+63:i] * b[i+63:i] +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Store +
+ + + + + + + Multiplies elements in packed 64-bit integer vectors "a" and "b" together, storing the lower 64 bits of the result in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := a[i+63:i] * b[i+63:i] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Store +
+ + + + Load 512-bits (composed of 8 packed 64-bit integers) from memory into "dst". + "mem_addr" does not need to be aligned on any particular boundary. + +dst[511:0] := MEM[mem_addr+511:mem_addr] +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Load +
+ + + + Load 512-bits (composed of 16 packed 32-bit integers) from memory into "dst". + "mem_addr" does not need to be aligned on any particular boundary. + +dst[511:0] := MEM[mem_addr+511:mem_addr] +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Load +
+ + + + Load 16-bit mask from memory into "k". + +k[15:0] := MEM[mem_addr+15:mem_addr] + + + AVX512F +
immintrin.h
+ Load +
+ + Swizzle + + + + + Load contiguous active double-precision (64-bit) floating-point elements from unaligned memory at "mem_addr" (those with their respective bit set in mask "k"), and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +m := 0 +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := MEM[mem_addr+m+63:mem_addr+m] + m := m + 64 + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Load +
+ + Swizzle + + + + Load contiguous active double-precision (64-bit) floating-point elements from unaligned memory at "mem_addr" (those with their respective bit set in mask "k"), and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +m := 0 +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := MEM[mem_addr+m+63:mem_addr+m] + m := m + 64 + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Load +
+ + Swizzle + + + + + Load contiguous active single-precision (32-bit) floating-point elements from unaligned memory at "mem_addr" (those with their respective bit set in mask "k"), and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +m := 0 +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := MEM[mem_addr+m+31:mem_addr+m] + m := m + 32 + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Load +
+ + Swizzle + + + + Load contiguous active single-precision (32-bit) floating-point elements from unaligned memory at "mem_addr" (those with their respective bit set in mask "k"), and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +m := 0 +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := MEM[mem_addr+m+31:mem_addr+m] + m := m + 32 + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Load +
+ + + + + + Gather double-precision (64-bit) floating-point elements from memory using 32-bit indices. 64-bit elements are loaded from addresses starting at "base_addr" and offset by each 32-bit element in "vindex" (each index is scaled by the factor in "scale"). Gathered elements are merged into "dst". "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 7 + i := j*64 + m := j*32 + addr := base_addr + SignExtend64(vindex[m+31:m]) * ZeroExtend64(scale) * 8 + dst[i+63:i] := MEM[addr+63:addr] +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Load +
+ + + + + + + + Gather double-precision (64-bit) floating-point elements from memory using 32-bit indices. 64-bit elements are loaded from addresses starting at "base_addr" and offset by each 32-bit element in "vindex" (each index is scaled by the factor in "scale"). Gathered elements are merged into "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 7 + i := j*64 + m := j*32 + IF k[j] + addr := base_addr + SignExtend64(vindex[m+31:m]) * ZeroExtend64(scale) * 8 + dst[i+63:i] := MEM[addr+63:addr] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Load +
+ + + + + + Gather double-precision (64-bit) floating-point elements from memory using 64-bit indices. 64-bit elements are loaded from addresses starting at "base_addr" and offset by each 64-bit element in "vindex" (each index is scaled by the factor in "scale"). Gathered elements are merged into "dst". "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 7 + i := j*64 + m := j*64 + addr := base_addr + vindex[m+63:m] * ZeroExtend64(scale) * 8 + dst[i+63:i] := MEM[addr+63:addr] +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Load +
+ + + + + + + + Gather double-precision (64-bit) floating-point elements from memory using 64-bit indices. 64-bit elements are loaded from addresses starting at "base_addr" and offset by each 64-bit element in "vindex" (each index is scaled by the factor in "scale"). Gathered elements are merged into "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 7 + i := j*64 + m := j*64 + IF k[j] + addr := base_addr + vindex[m+63:m] * ZeroExtend64(scale) * 8 + dst[i+63:i] := MEM[addr+63:addr] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Load +
+ + + + + + Gather single-precision (32-bit) floating-point elements from memory using 64-bit indices. 32-bit elements are loaded from addresses starting at "base_addr" and offset by each 64-bit element in "vindex" (each index is scaled by the factor in "scale"). Gathered elements are merged into "dst". "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 7 + i := j*32 + m := j*64 + addr := base_addr + vindex[m+63:m] * ZeroExtend64(scale) * 8 + dst[i+31:i] := MEM[addr+31:addr] +ENDFOR +dst[MAX:256] := 0 + + + AVX512F +
immintrin.h
+ Load +
+ + + + + + + + Gather single-precision (32-bit) floating-point elements from memory using 64-bit indices. 32-bit elements are loaded from addresses starting at "base_addr" and offset by each 64-bit element in "vindex" (each index is scaled by the factor in "scale"). Gathered elements are merged into "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 7 + i := j*32 + m := j*64 + IF k[j] + addr := base_addr + vindex[m+63:m] * ZeroExtend64(scale) * 8 + dst[i+31:i] := MEM[addr+31:addr] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F +
immintrin.h
+ Load +
+ + + + + Load packed double-precision (64-bit) floating-point elements from memory into "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). "mem_addr" must be aligned on a 64-byte boundary or a general-protection exception may be generated. + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := MEM[mem_addr+i+63:mem_addr+i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Load +
+ + + + + Load packed single-precision (32-bit) floating-point elements from memory into "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). "mem_addr" must be aligned on a 64-byte boundary or a general-protection exception may be generated. + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := MEM[mem_addr+i+31:mem_addr+i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Load +
+ + + + + Load packed 32-bit integers from memory into "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + "mem_addr" must be aligned on a 64-byte boundary or a general-protection exception may be generated. + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := MEM[mem_addr+i+31:mem_addr+i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Load +
+ + + + + Load packed 64-bit integers from memory into "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + "mem_addr" must be aligned on a 64-byte boundary or a general-protection exception may be generated. + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := MEM[mem_addr+i+63:mem_addr+i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Load +
+ + + + Load 512-bits of integer data from memory into "dst". + "mem_addr" does not need to be aligned on any particular boundary. + +dst[511:0] := MEM[mem_addr+511:mem_addr] +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Load +
+ + + + + + Load packed 32-bit integers from memory into "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + "mem_addr" does not need to be aligned on any particular boundary. + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := MEM[mem_addr+i+31:mem_addr+i] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Load +
+ + + + + Load packed 32-bit integers from memory into "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + "mem_addr" does not need to be aligned on any particular boundary. + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := MEM[mem_addr+i+31:mem_addr+i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Load +
+ + + + + + Load packed 64-bit integers from memory into "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + "mem_addr" does not need to be aligned on any particular boundary. + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := MEM[mem_addr+i+63:mem_addr+i] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Load +
+ + + + + Load packed 64-bit integers from memory into "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + "mem_addr" does not need to be aligned on any particular boundary. + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := MEM[mem_addr+i+63:mem_addr+i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Load +
+ + + + Load 512-bits of integer data from memory into "dst" using a non-temporal memory hint. + "mem_addr" must be aligned on a 64-byte boundary or a general-protection exception may be generated. + +dst[511:0] := MEM[mem_addr+511:mem_addr] +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Load +
+ + + + + + Load a double-precision (64-bit) floating-point element from memory into the lower element of "dst" using writemask "k" (the element is copied from "src" when mask bit 0 is not set), and set the upper element of "dst" to zero. "mem_addr" must be aligned on a 16-byte boundary or a general-protection exception may be generated. + +IF k[0] + dst[63:0] := MEM[mem_addr+63:mem_addr] +ELSE + dst[63:0] := src[63:0] +FI +dst[MAX:64] := 0 + + + AVX512F +
immintrin.h
+ Load +
+ + + + + Load a double-precision (64-bit) floating-point element from memory into the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and set the upper element of "dst" to zero. "mem_addr" must be aligned on a 16-byte boundary or a general-protection exception may be generated. + +IF k[0] + dst[63:0] := MEM[mem_addr+63:mem_addr] +ELSE + dst[63:0] := 0 +FI +dst[MAX:64] := 0 + + + AVX512F +
immintrin.h
+ Load +
+ + + + + + Load a single-precision (32-bit) floating-point element from memory into the lower element of "dst" using writemask "k" (the element is copied from "src" when mask bit 0 is not set), and set the upper elements of "dst" to zero. "mem_addr" must be aligned on a 16-byte boundary or a general-protection exception may be generated. + +IF k[0] + dst[31:0] := MEM[mem_addr+31:mem_addr] +ELSE + dst[31:0] := src[31:0] +FI +dst[MAX:32] := 0 + + + AVX512F +
immintrin.h
+ Load +
+ + + + + Load a single-precision (32-bit) floating-point element from memory into the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and set the upper elements of "dst" to zero. "mem_addr" must be aligned on a 16-byte boundary or a general-protection exception may be generated. + +IF k[0] + dst[31:0] := MEM[mem_addr+31:mem_addr] +ELSE + dst[31:0] := 0 +FI +dst[MAX:32] := 0 + + + AVX512F +
immintrin.h
+ Load +
+ + + + Load 512-bits (composed of 8 packed double-precision (64-bit) floating-point elements) from memory into "dst". + "mem_addr" does not need to be aligned on any particular boundary. + +dst[511:0] := MEM[mem_addr+511:mem_addr] +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Load +
+ + + + + + Load packed double-precision (64-bit) floating-point elements from memoy into "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + "mem_addr" does not need to be aligned on any particular boundary. + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := MEM[mem_addr+i+63:mem_addr+i] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Load +
+ + + + + Load packed double-precision (64-bit) floating-point elements from memoy into "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + "mem_addr" does not need to be aligned on any particular boundary. + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := MEM[mem_addr+i+63:mem_addr+i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Load +
+ + + + Load 512-bits (composed of 16 packed single-precision (32-bit) floating-point elements) from memory into "dst". + "mem_addr" does not need to be aligned on any particular boundary. + +dst[511:0] := MEM[mem_addr+511:mem_addr] +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Load +
+ + + + + + Load packed single-precision (32-bit) floating-point elements from memory into "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + "mem_addr" does not need to be aligned on any particular boundary. + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := MEM[mem_addr+i+31:mem_addr+i] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Load +
+ + + + + Load packed single-precision (32-bit) floating-point elements from memory into "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + "mem_addr" does not need to be aligned on any particular boundary. + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := MEM[mem_addr+i+31:mem_addr+i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Load +
+ + Swizzle + + + + + Load contiguous active 32-bit integers from unaligned memory at "mem_addr" (those with their respective bit set in mask "k"), and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +m := 0 +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := MEM[mem_addr+m+31:mem_addr+m] + m := m + 32 + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Load +
+ + Swizzle + + + + Load contiguous active 32-bit integers from unaligned memory at "mem_addr" (those with their respective bit set in mask "k"), and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +m := 0 +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := MEM[mem_addr+m+31:mem_addr+m] + m := m + 32 + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Load +
+ + Swizzle + + + + + Load contiguous active 64-bit integers from unaligned memory at "mem_addr" (those with their respective bit set in mask "k"), and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +m := 0 +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := MEM[mem_addr+m+63:mem_addr+m] + m := m + 64 + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Load +
+ + Swizzle + + + + Load contiguous active 64-bit integers from unaligned memory at "mem_addr" (those with their respective bit set in mask "k"), and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +m := 0 +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := MEM[mem_addr+m+63:mem_addr+m] + m := m + 64 + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Load +
+ + + + + + Gather 64-bit integers from memory using 32-bit indices. 64-bit elements are loaded from addresses starting at "base_addr" and offset by each 32-bit element in "vindex" (each index is scaled by the factor in "scale"). Gathered elements are merged into "dst". "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 7 + i := j*64 + m := j*32 + addr := base_addr + SignExtend64(vindex[m+31:m]) * ZeroExtend64(scale) * 8 + dst[i+63:i] := MEM[addr+63:addr] +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Load +
+ + + + + + + + Gather 64-bit integers from memory using 32-bit indices. 64-bit elements are loaded from addresses starting at "base_addr" and offset by each 32-bit element in "vindex" (each index is scaled by the factor in "scale"). Gathered elements are merged into "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 7 + i := j*64 + m := j*32 + IF k[j] + addr := base_addr + SignExtend64(vindex[m+31:m]) * ZeroExtend64(scale) * 8 + dst[i+63:i] := MEM[addr+63:addr] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Load +
+ + + + + + Gather 32-bit integers from memory using 64-bit indices. 32-bit elements are loaded from addresses starting at "base_addr" and offset by each 64-bit element in "vindex" (each index is scaled by the factor in "scale"). Gathered elements are merged into "dst". "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 7 + i := j*32 + m := j*64 + addr := base_addr + vindex[m+63:m] * ZeroExtend64(scale) * 8 + dst[i+31:i] := MEM[addr+31:addr] +ENDFOR +dst[MAX:256] := 0 + + + AVX512F +
immintrin.h
+ Load +
+ + + + + + + + Gather 32-bit integers from memory using 64-bit indices. 32-bit elements are loaded from addresses starting at "base_addr" and offset by each 64-bit element in "vindex" (each index is scaled by the factor in "scale"). Gathered elements are merged into "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 7 + i := j*32 + m := j*64 + IF k[j] + addr := base_addr + vindex[m+63:m] * ZeroExtend64(scale) * 8 + dst[i+31:i] := MEM[addr+31:addr] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F +
immintrin.h
+ Load +
+ + + + + + Gather 64-bit integers from memory using 64-bit indices. 64-bit elements are loaded from addresses starting at "base_addr" and offset by each 64-bit element in "vindex" (each index is scaled by the factor in "scale"). Gathered elements are merged into "dst". "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 7 + i := j*64 + m := j*64 + addr := base_addr + vindex[m+63:m] * ZeroExtend64(scale) * 8 + dst[i+63:i] := MEM[addr+63:addr] +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Load +
+ + + + + + + + Gather 64-bit integers from memory using 64-bit indices. 64-bit elements are loaded from addresses starting at "base_addr" and offset by each 64-bit element in "vindex" (each index is scaled by the factor in "scale"). Gathered elements are merged into "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 7 + i := j*64 + m := j*64 + IF k[j] + addr := base_addr + vindex[m+63:m] * ZeroExtend64(scale) * 8 + dst[i+63:i] := MEM[addr+63:addr] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Load +
+ + + + + Compute the bitwise AND of 16-bit masks "a" and "b", and store the result in "k". + +k[15:0] := a[15:0] AND b[15:0] +k[MAX:16] := 0 + + + AVX512F +
immintrin.h
+ Mask +
+ + + + + Compute the bitwise NOT of 16-bit masks "a" and then AND with "b", and store the result in "k". + +k[15:0] := (NOT a[15:0]) AND b[15:0] +k[MAX:16] := 0 + + + AVX512F +
immintrin.h
+ Mask +
+ + + + Compute the bitwise NOT of 16-bit mask "a", and store the result in "k". + +k[15:0] := NOT a[15:0] +k[MAX:16] := 0 + + + AVX512F +
immintrin.h
+ Mask +
+ + + + + Compute the bitwise OR of 16-bit masks "a" and "b", and store the result in "k". + +k[15:0] := a[15:0] OR b[15:0] +k[MAX:16] := 0 + + + AVX512F +
immintrin.h
+ Mask +
+ + + + + Compute the bitwise XNOR of 16-bit masks "a" and "b", and store the result in "k". + +k[15:0] := NOT (a[15:0] XOR b[15:0]) +k[MAX:16] := 0 + + + AVX512F +
immintrin.h
+ Mask +
+ + + + + Compute the bitwise XOR of 16-bit masks "a" and "b", and store the result in "k". + +k[15:0] := a[15:0] XOR b[15:0] +k[MAX:16] := 0 + + + AVX512F +
immintrin.h
+ Mask +
+ + + + + Shift the bits of 16-bit mask "a" left by "count" while shifting in zeros, and store the least significant 16 bits of the result in "k". + +k[MAX:0] := 0 +IF count[7:0] <= 15 + k[15:0] := a[15:0] << count[7:0] +FI + + + AVX512F +
immintrin.h
+ Mask +
+ + + + + Shift the bits of 16-bit mask "a" right by "count" while shifting in zeros, and store the least significant 16 bits of the result in "k". + +k[MAX:0] := 0 +IF count[7:0] <= 15 + k[15:0] := a[15:0] >> count[7:0] +FI + + + AVX512F +
immintrin.h
+ Mask +
+ + + + + + Compute the bitwise OR of 16-bit masks "a" and "b". If the result is all zeros, store 1 in "dst", otherwise store 0 in "dst". If the result is all ones, store 1 in "all_ones", otherwise store 0 in "all_ones". + +tmp[15:0] := a[15:0] OR b[15:0] +IF tmp[15:0] == 0x0 + dst := 1 +ELSE + dst := 0 +FI +IF tmp[15:0] == 0xFFFF + MEM[all_ones+7:all_ones] := 1 +ELSE + MEM[all_ones+7:all_ones] := 0 +FI + + + AVX512F +
immintrin.h
+ Mask +
+ + + + + Compute the bitwise OR of 16-bit masks "a" and "b". If the result is all zeroes, store 1 in "dst", otherwise store 0 in "dst". + +tmp[15:0] := a[15:0] OR b[15:0] +IF tmp[15:0] == 0x0 + dst := 1 +ELSE + dst := 0 +FI + + + AVX512F +
immintrin.h
+ Mask +
+ + + + + Compute the bitwise OR of 16-bit masks "a" and "b". If the result is all ones, store 1 in "dst", otherwise store 0 in "dst". + +tmp[15:0] := a[15:0] OR b[15:0] +IF tmp[15:0] == 0xFFFF + dst := 1 +ELSE + dst := 0 +FI + + + AVX512F +
immintrin.h
+ Mask +
+ + + + Convert 16-bit mask "a" into an integer value, and store the result in "dst". + +dst := ZeroExtend32(a[15:0]) + + + AVX512F +
immintrin.h
+ Mask +
+ + + + Convert integer value "a" into an 16-bit mask, and store the result in "k". + +k := ZeroExtend16(a[15:0]) + + + AVX512F +
immintrin.h
+ Mask +
+ + + + + Compute the bitwise NOT of 16-bit masks "a" and then AND with "b", and store the result in "k". + +k[15:0] := (NOT a[15:0]) AND b[15:0] +k[MAX:16] := 0 + + + AVX512F +
immintrin.h
+ Mask +
+ + + + + Compute the bitwise AND of 16-bit masks "a" and "b", and store the result in "k". + +k[15:0] := a[15:0] AND b[15:0] +k[MAX:16] := 0 + + + AVX512F +
immintrin.h
+ Mask +
+ + + + Copy 16-bit mask "a" to "k". + +k[15:0] := a[15:0] +k[MAX:16] := 0 + + + AVX512F +
immintrin.h
+ Mask +
+ + + + Compute the bitwise NOT of 16-bit mask "a", and store the result in "k". + +k[15:0] := NOT a[15:0] +k[MAX:16] := 0 + + + AVX512F +
immintrin.h
+ Mask +
+ + + + + Compute the bitwise OR of 16-bit masks "a" and "b", and store the result in "k". + +k[15:0] := a[15:0] OR b[15:0] +k[MAX:16] := 0 + + + AVX512F +
immintrin.h
+ Mask +
+ + + + + Unpack and interleave 8 bits from masks "a" and "b", and store the 16-bit result in "k". + +k[7:0] := b[7:0] +k[15:8] := a[7:0] +k[MAX:16] := 0 + + + AVX512F +
immintrin.h
+ Mask +
+ + + + + Compute the bitwise XNOR of 16-bit masks "a" and "b", and store the result in "k". + +k[15:0] := NOT (a[15:0] XOR b[15:0]) +k[MAX:16] := 0 + + + AVX512F +
immintrin.h
+ Mask +
+ + + + + Compute the bitwise XOR of 16-bit masks "a" and "b", and store the result in "k". + +k[15:0] := a[15:0] XOR b[15:0] +k[MAX:16] := 0 + + + AVX512F +
immintrin.h
+ Mask +
+ + + + + Performs bitwise OR between "k1" and "k2", storing the result in "dst". ZF flag is set if "dst" is 0. + dst[15:0] := k1[15:0] | k2[15:0] +IF dst == 0 + SetZF() +FI + + + AVX512F +
immintrin.h
+ Mask +
+ + + + + Performs bitwise OR between "k1" and "k2", storing the result in "dst". CF flag is set if "dst" consists of all 1's. + dst[15:0] := k1[15:0] | k2[15:0] +IF PopCount(dst[15:0]) == 16 + SetCF() +FI + + + AVX512F +
immintrin.h
+ Mask +
+ + + + Converts bit mask "k1" into an integer value, storing the results in "dst". + +dst := ZeroExtend32(k1) + + + AVX512F +
immintrin.h
+ Mask +
+ + + + Converts integer "mask" into bitmask, storing the result in "dst". + +dst := mask[15:0] + + + AVX512F +
immintrin.h
+ Mask +
+ + + + + + + Concatenate "a" and "b" into a 128-byte immediate result, shift the result right by "imm8" 32-bit elements, and stores the low 64 bytes (16 elements) in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +temp[1023:512] := a[511:0] +temp[511:0] := b[511:0] +temp[1023:0] := temp[1023:0] >> (32*imm8[3:0]) +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := temp[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + Concatenate "a" and "b" into a 128-byte immediate result, shift the result right by "imm8" 64-bit elements, and store the low 64 bytes (8 elements) in "dst". + +temp[1023:512] := a[511:0] +temp[511:0] := b[511:0] +temp[1023:0] := temp[1023:0] >> (64*imm8[2:0]) +dst[511:0] := temp[511:0] +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + + + Concatenate "a" and "b" into a 128-byte immediate result, shift the result right by "imm8" 64-bit elements, and store the low 64 bytes (8 elements) in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +temp[1023:512] := a[511:0] +temp[511:0] := b[511:0] +temp[1023:0] := temp[1023:0] >> (64*imm8[2:0]) +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := temp[i+63:i] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + + Concatenate "a" and "b" into a 128-byte immediate result, shift the result right by "imm8" 64-bit elements, and stores the low 64 bytes (8 elements) in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +temp[1023:512] := a[511:0] +temp[511:0] := b[511:0] +temp[1023:0] := temp[1023:0] >> (64*imm8[2:0]) +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := temp[i+63:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + + Fix up packed double-precision (64-bit) floating-point elements in "a" and "b" using packed 64-bit integers in "c", and store the results in "dst". "imm8" is used to set the required flags reporting. + enum TOKEN_TYPE { + QNAN_TOKEN := 0, \ + SNAN_TOKEN := 1, \ + ZERO_VALUE_TOKEN := 2, \ + ONE_VALUE_TOKEN := 3, \ + NEG_INF_TOKEN := 4, \ + POS_INF_TOKEN := 5, \ + NEG_VALUE_TOKEN := 6, \ + POS_VALUE_TOKEN := 7 +} +DEFINE FIXUPIMMPD(src1[63:0], src2[63:0], src3[63:0], imm8[7:0]) { + tsrc[63:0] := ((src2[62:52] == 0) AND (MXCSR.DAZ == 1)) ? 0.0 : src2[63:0] + CASE(tsrc[63:0]) OF + QNAN_TOKEN:j := 0 + SNAN_TOKEN:j := 1 + ZERO_VALUE_TOKEN: j := 2 + ONE_VALUE_TOKEN: j := 3 + NEG_INF_TOKEN: j := 4 + POS_INF_TOKEN: j := 5 + NEG_VALUE_TOKEN: j := 6 + POS_VALUE_TOKEN: j := 7 + ESAC + + token_response[3:0] := src3[3+4*j:4*j] + + CASE(token_response[3:0]) OF + 0 : dest[63:0] := src1[63:0] + 1 : dest[63:0] := tsrc[63:0] + 2 : dest[63:0] := QNaN(tsrc[63:0]) + 3 : dest[63:0] := QNAN_Indefinite + 4 : dest[63:0] := -INF + 5 : dest[63:0] := +INF + 6 : dest[63:0] := tsrc.sign? -INF : +INF + 7 : dest[63:0] := -0 + 8 : dest[63:0] := +0 + 9 : dest[63:0] := -1 + 10: dest[63:0] := +1 + 11: dest[63:0] := 1/2 + 12: dest[63:0] := 90.0 + 13: dest[63:0] := PI/2 + 14: dest[63:0] := MAX_FLOAT + 15: dest[63:0] := -MAX_FLOAT + ESAC + + CASE(tsrc[31:0]) OF + ZERO_VALUE_TOKEN: + IF (imm8[0]) #ZE; FI + ZERO_VALUE_TOKEN: + IF (imm8[1]) #IE; FI + ONE_VALUE_TOKEN: + IF (imm8[2]) #ZE; FI + ONE_VALUE_TOKEN: + IF (imm8[3]) #IE; FI + SNAN_TOKEN: + IF (imm8[4]) #IE; FI + NEG_INF_TOKEN: + IF (imm8[5]) #IE; FI + NEG_VALUE_TOKEN: + IF (imm8[6]) #IE; FI + POS_INF_TOKEN: + IF (imm8[7]) #IE; FI + ESAC + RETURN dest[63:0] +} +FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := FIXUPIMMPD(a[i+63:i], b[i+63:i], c[i+63:i], imm8[7:0]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + + + Fix up packed double-precision (64-bit) floating-point elements in "a" and "b" using packed 64-bit integers in "c", and store the results in "dst". "imm8" is used to set the required flags reporting. + [sae_note] + enum TOKEN_TYPE { + QNAN_TOKEN := 0, \ + SNAN_TOKEN := 1, \ + ZERO_VALUE_TOKEN := 2, \ + ONE_VALUE_TOKEN := 3, \ + NEG_INF_TOKEN := 4, \ + POS_INF_TOKEN := 5, \ + NEG_VALUE_TOKEN := 6, \ + POS_VALUE_TOKEN := 7 +} +DEFINE FIXUPIMMPD(src1[63:0], src2[63:0], src3[63:0], imm8[7:0]) { + tsrc[63:0] := ((src2[62:52] == 0) AND (MXCSR.DAZ == 1)) ? 0.0 : src2[63:0] + CASE(tsrc[63:0]) OF + QNAN_TOKEN:j := 0 + SNAN_TOKEN:j := 1 + ZERO_VALUE_TOKEN: j := 2 + ONE_VALUE_TOKEN: j := 3 + NEG_INF_TOKEN: j := 4 + POS_INF_TOKEN: j := 5 + NEG_VALUE_TOKEN: j := 6 + POS_VALUE_TOKEN: j := 7 + ESAC + + token_response[3:0] := src3[3+4*j:4*j] + + CASE(token_response[3:0]) OF + 0 : dest[63:0] := src1[63:0] + 1 : dest[63:0] := tsrc[63:0] + 2 : dest[63:0] := QNaN(tsrc[63:0]) + 3 : dest[63:0] := QNAN_Indefinite + 4 : dest[63:0] := -INF + 5 : dest[63:0] := +INF + 6 : dest[63:0] := tsrc.sign? -INF : +INF + 7 : dest[63:0] := -0 + 8 : dest[63:0] := +0 + 9 : dest[63:0] := -1 + 10: dest[63:0] := +1 + 11: dest[63:0] := 1/2 + 12: dest[63:0] := 90.0 + 13: dest[63:0] := PI/2 + 14: dest[63:0] := MAX_FLOAT + 15: dest[63:0] := -MAX_FLOAT + ESAC + + CASE(tsrc[31:0]) OF + ZERO_VALUE_TOKEN: + IF (imm8[0]) #ZE; FI + ZERO_VALUE_TOKEN: + IF (imm8[1]) #IE; FI + ONE_VALUE_TOKEN: + IF (imm8[2]) #ZE; FI + ONE_VALUE_TOKEN: + IF (imm8[3]) #IE; FI + SNAN_TOKEN: + IF (imm8[4]) #IE; FI + NEG_INF_TOKEN: + IF (imm8[5]) #IE; FI + NEG_VALUE_TOKEN: + IF (imm8[6]) #IE; FI + POS_INF_TOKEN: + IF (imm8[7]) #IE; FI + ESAC + RETURN dest[63:0] +} +FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := FIXUPIMMPD(a[i+63:i], b[i+63:i], c[i+63:i], imm8[7:0]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + + + Fix up packed double-precision (64-bit) floating-point elements in "a" and "b" using packed 64-bit integers in "c", and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). "imm8" is used to set the required flags reporting. + enum TOKEN_TYPE { + QNAN_TOKEN := 0, \ + SNAN_TOKEN := 1, \ + ZERO_VALUE_TOKEN := 2, \ + ONE_VALUE_TOKEN := 3, \ + NEG_INF_TOKEN := 4, \ + POS_INF_TOKEN := 5, \ + NEG_VALUE_TOKEN := 6, \ + POS_VALUE_TOKEN := 7 +} +DEFINE FIXUPIMMPD(src1[63:0], src2[63:0], src3[63:0], imm8[7:0]) { + tsrc[63:0] := ((src2[62:52] == 0) AND (MXCSR.DAZ == 1)) ? 0.0 : src2[63:0] + CASE(tsrc[63:0]) OF + QNAN_TOKEN:j := 0 + SNAN_TOKEN:j := 1 + ZERO_VALUE_TOKEN: j := 2 + ONE_VALUE_TOKEN: j := 3 + NEG_INF_TOKEN: j := 4 + POS_INF_TOKEN: j := 5 + NEG_VALUE_TOKEN: j := 6 + POS_VALUE_TOKEN: j := 7 + ESAC + + token_response[3:0] := src3[3+4*j:4*j] + + CASE(token_response[3:0]) OF + 0 : dest[63:0] := src1[63:0] + 1 : dest[63:0] := tsrc[63:0] + 2 : dest[63:0] := QNaN(tsrc[63:0]) + 3 : dest[63:0] := QNAN_Indefinite + 4 : dest[63:0] := -INF + 5 : dest[63:0] := +INF + 6 : dest[63:0] := tsrc.sign? -INF : +INF + 7 : dest[63:0] := -0 + 8 : dest[63:0] := +0 + 9 : dest[63:0] := -1 + 10: dest[63:0] := +1 + 11: dest[63:0] := 1/2 + 12: dest[63:0] := 90.0 + 13: dest[63:0] := PI/2 + 14: dest[63:0] := MAX_FLOAT + 15: dest[63:0] := -MAX_FLOAT + ESAC + + CASE(tsrc[31:0]) OF + ZERO_VALUE_TOKEN: + IF (imm8[0]) #ZE; FI + ZERO_VALUE_TOKEN: + IF (imm8[1]) #IE; FI + ONE_VALUE_TOKEN: + IF (imm8[2]) #ZE; FI + ONE_VALUE_TOKEN: + IF (imm8[3]) #IE; FI + SNAN_TOKEN: + IF (imm8[4]) #IE; FI + NEG_INF_TOKEN: + IF (imm8[5]) #IE; FI + NEG_VALUE_TOKEN: + IF (imm8[6]) #IE; FI + POS_INF_TOKEN: + IF (imm8[7]) #IE; FI + ESAC + RETURN dest[63:0] +} +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := FIXUPIMMPD(a[i+63:i], b[i+63:i], c[i+63:i], imm8[7:0]) + ELSE + dst[i+63:i] := a[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + + + + Fix up packed double-precision (64-bit) floating-point elements in "a" and "b" using packed 64-bit integers in "c", and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). "imm8" is used to set the required flags reporting. + [sae_note] + enum TOKEN_TYPE { + QNAN_TOKEN := 0, \ + SNAN_TOKEN := 1, \ + ZERO_VALUE_TOKEN := 2, \ + ONE_VALUE_TOKEN := 3, \ + NEG_INF_TOKEN := 4, \ + POS_INF_TOKEN := 5, \ + NEG_VALUE_TOKEN := 6, \ + POS_VALUE_TOKEN := 7 +} +DEFINE FIXUPIMMPD(src1[63:0], src2[63:0], src3[63:0], imm8[7:0]) { + tsrc[63:0] := ((src2[62:52] == 0) AND (MXCSR.DAZ == 1)) ? 0.0 : src2[63:0] + CASE(tsrc[63:0]) OF + QNAN_TOKEN:j := 0 + SNAN_TOKEN:j := 1 + ZERO_VALUE_TOKEN: j := 2 + ONE_VALUE_TOKEN: j := 3 + NEG_INF_TOKEN: j := 4 + POS_INF_TOKEN: j := 5 + NEG_VALUE_TOKEN: j := 6 + POS_VALUE_TOKEN: j := 7 + ESAC + + token_response[3:0] := src3[3+4*j:4*j] + + CASE(token_response[3:0]) OF + 0 : dest[63:0] := src1[63:0] + 1 : dest[63:0] := tsrc[63:0] + 2 : dest[63:0] := QNaN(tsrc[63:0]) + 3 : dest[63:0] := QNAN_Indefinite + 4 : dest[63:0] := -INF + 5 : dest[63:0] := +INF + 6 : dest[63:0] := tsrc.sign? -INF : +INF + 7 : dest[63:0] := -0 + 8 : dest[63:0] := +0 + 9 : dest[63:0] := -1 + 10: dest[63:0] := +1 + 11: dest[63:0] := 1/2 + 12: dest[63:0] := 90.0 + 13: dest[63:0] := PI/2 + 14: dest[63:0] := MAX_FLOAT + 15: dest[63:0] := -MAX_FLOAT + ESAC + + CASE(tsrc[31:0]) OF + ZERO_VALUE_TOKEN: + IF (imm8[0]) #ZE; FI + ZERO_VALUE_TOKEN: + IF (imm8[1]) #IE; FI + ONE_VALUE_TOKEN: + IF (imm8[2]) #ZE; FI + ONE_VALUE_TOKEN: + IF (imm8[3]) #IE; FI + SNAN_TOKEN: + IF (imm8[4]) #IE; FI + NEG_INF_TOKEN: + IF (imm8[5]) #IE; FI + NEG_VALUE_TOKEN: + IF (imm8[6]) #IE; FI + POS_INF_TOKEN: + IF (imm8[7]) #IE; FI + ESAC + RETURN dest[63:0] +} +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := FIXUPIMMPD(a[i+63:i], b[i+63:i], c[i+63:i], imm8[7:0]) + ELSE + dst[i+63:i] := a[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + + + Fix up packed double-precision (64-bit) floating-point elements in "a" and "b" using packed 64-bit integers in "c", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). "imm8" is used to set the required flags reporting. + enum TOKEN_TYPE { + QNAN_TOKEN := 0, \ + SNAN_TOKEN := 1, \ + ZERO_VALUE_TOKEN := 2, \ + ONE_VALUE_TOKEN := 3, \ + NEG_INF_TOKEN := 4, \ + POS_INF_TOKEN := 5, \ + NEG_VALUE_TOKEN := 6, \ + POS_VALUE_TOKEN := 7 +} +DEFINE FIXUPIMMPD(src1[63:0], src2[63:0], src3[63:0], imm8[7:0]) { + tsrc[63:0] := ((src2[62:52] == 0) AND (MXCSR.DAZ == 1)) ? 0.0 : src2[63:0] + CASE(tsrc[63:0]) OF + QNAN_TOKEN:j := 0 + SNAN_TOKEN:j := 1 + ZERO_VALUE_TOKEN: j := 2 + ONE_VALUE_TOKEN: j := 3 + NEG_INF_TOKEN: j := 4 + POS_INF_TOKEN: j := 5 + NEG_VALUE_TOKEN: j := 6 + POS_VALUE_TOKEN: j := 7 + ESAC + + token_response[3:0] := src3[3+4*j:4*j] + + CASE(token_response[3:0]) OF + 0 : dest[63:0] := src1[63:0] + 1 : dest[63:0] := tsrc[63:0] + 2 : dest[63:0] := QNaN(tsrc[63:0]) + 3 : dest[63:0] := QNAN_Indefinite + 4 : dest[63:0] := -INF + 5 : dest[63:0] := +INF + 6 : dest[63:0] := tsrc.sign? -INF : +INF + 7 : dest[63:0] := -0 + 8 : dest[63:0] := +0 + 9 : dest[63:0] := -1 + 10: dest[63:0] := +1 + 11: dest[63:0] := 1/2 + 12: dest[63:0] := 90.0 + 13: dest[63:0] := PI/2 + 14: dest[63:0] := MAX_FLOAT + 15: dest[63:0] := -MAX_FLOAT + ESAC + + CASE(tsrc[31:0]) OF + ZERO_VALUE_TOKEN: + IF (imm8[0]) #ZE; FI + ZERO_VALUE_TOKEN: + IF (imm8[1]) #IE; FI + ONE_VALUE_TOKEN: + IF (imm8[2]) #ZE; FI + ONE_VALUE_TOKEN: + IF (imm8[3]) #IE; FI + SNAN_TOKEN: + IF (imm8[4]) #IE; FI + NEG_INF_TOKEN: + IF (imm8[5]) #IE; FI + NEG_VALUE_TOKEN: + IF (imm8[6]) #IE; FI + POS_INF_TOKEN: + IF (imm8[7]) #IE; FI + ESAC + RETURN dest[63:0] +} +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := FIXUPIMMPD(a[i+63:i], b[i+63:i], c[i+63:i], imm8[7:0]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + + + + Fix up packed double-precision (64-bit) floating-point elements in "a" and "b" using packed 64-bit integers in "c", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). "imm8" is used to set the required flags reporting. + [sae_note] + enum TOKEN_TYPE { + QNAN_TOKEN := 0, \ + SNAN_TOKEN := 1, \ + ZERO_VALUE_TOKEN := 2, \ + ONE_VALUE_TOKEN := 3, \ + NEG_INF_TOKEN := 4, \ + POS_INF_TOKEN := 5, \ + NEG_VALUE_TOKEN := 6, \ + POS_VALUE_TOKEN := 7 +} +DEFINE FIXUPIMMPD(src1[63:0], src2[63:0], src3[63:0], imm8[7:0]) { + tsrc[63:0] := ((src2[62:52] == 0) AND (MXCSR.DAZ == 1)) ? 0.0 : src2[63:0] + CASE(tsrc[63:0]) OF + QNAN_TOKEN:j := 0 + SNAN_TOKEN:j := 1 + ZERO_VALUE_TOKEN: j := 2 + ONE_VALUE_TOKEN: j := 3 + NEG_INF_TOKEN: j := 4 + POS_INF_TOKEN: j := 5 + NEG_VALUE_TOKEN: j := 6 + POS_VALUE_TOKEN: j := 7 + ESAC + + token_response[3:0] := src3[3+4*j:4*j] + + CASE(token_response[3:0]) OF + 0 : dest[63:0] := src1[63:0] + 1 : dest[63:0] := tsrc[63:0] + 2 : dest[63:0] := QNaN(tsrc[63:0]) + 3 : dest[63:0] := QNAN_Indefinite + 4 : dest[63:0] := -INF + 5 : dest[63:0] := +INF + 6 : dest[63:0] := tsrc.sign? -INF : +INF + 7 : dest[63:0] := -0 + 8 : dest[63:0] := +0 + 9 : dest[63:0] := -1 + 10: dest[63:0] := +1 + 11: dest[63:0] := 1/2 + 12: dest[63:0] := 90.0 + 13: dest[63:0] := PI/2 + 14: dest[63:0] := MAX_FLOAT + 15: dest[63:0] := -MAX_FLOAT + ESAC + + CASE(tsrc[31:0]) OF + ZERO_VALUE_TOKEN: + IF (imm8[0]) #ZE; FI + ZERO_VALUE_TOKEN: + IF (imm8[1]) #IE; FI + ONE_VALUE_TOKEN: + IF (imm8[2]) #ZE; FI + ONE_VALUE_TOKEN: + IF (imm8[3]) #IE; FI + SNAN_TOKEN: + IF (imm8[4]) #IE; FI + NEG_INF_TOKEN: + IF (imm8[5]) #IE; FI + NEG_VALUE_TOKEN: + IF (imm8[6]) #IE; FI + POS_INF_TOKEN: + IF (imm8[7]) #IE; FI + ESAC + RETURN dest[63:0] +} +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := FIXUPIMMPD(a[i+63:i], b[i+63:i], c[i+63:i], imm8[7:0]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + + Fix up packed single-precision (32-bit) floating-point elements in "a" and "b" using packed 32-bit integers in "c", and store the results in "dst". "imm8" is used to set the required flags reporting. + enum TOKEN_TYPE { + QNAN_TOKEN := 0, \ + SNAN_TOKEN := 1, \ + ZERO_VALUE_TOKEN := 2, \ + ONE_VALUE_TOKEN := 3, \ + NEG_INF_TOKEN := 4, \ + POS_INF_TOKEN := 5, \ + NEG_VALUE_TOKEN := 6, \ + POS_VALUE_TOKEN := 7 +} +DEFINE FIXUPIMMPD(src1[31:0], src2[31:0], src3[31:0], imm8[7:0]) { + tsrc[31:0] := ((src2[30:23] == 0) AND (MXCSR.DAZ == 1)) ? 0.0 : src2[31:0] + CASE(tsrc[31:0]) OF + QNAN_TOKEN:j := 0 + SNAN_TOKEN:j := 1 + ZERO_VALUE_TOKEN: j := 2 + ONE_VALUE_TOKEN: j := 3 + NEG_INF_TOKEN: j := 4 + POS_INF_TOKEN: j := 5 + NEG_VALUE_TOKEN: j := 6 + POS_VALUE_TOKEN: j := 7 + ESAC + + token_response[3:0] := src3[3+4*j:4*j] + + CASE(token_response[3:0]) OF + 0 : dest[31:0] := src1[31:0] + 1 : dest[31:0] := tsrc[31:0] + 2 : dest[31:0] := QNaN(tsrc[31:0]) + 3 : dest[31:0] := QNAN_Indefinite + 4 : dest[31:0] := -INF + 5 : dest[31:0] := +INF + 6 : dest[31:0] := tsrc.sign? -INF : +INF + 7 : dest[31:0] := -0 + 8 : dest[31:0] := +0 + 9 : dest[31:0] := -1 + 10: dest[31:0] := +1 + 11: dest[31:0] := 1/2 + 12: dest[31:0] := 90.0 + 13: dest[31:0] := PI/2 + 14: dest[31:0] := MAX_FLOAT + 15: dest[31:0] := -MAX_FLOAT + ESAC + + CASE(tsrc[31:0]) OF + ZERO_VALUE_TOKEN: + IF (imm8[0]) #ZE; FI + ZERO_VALUE_TOKEN: + IF (imm8[1]) #IE; FI + ONE_VALUE_TOKEN: + IF (imm8[2]) #ZE; FI + ONE_VALUE_TOKEN: + IF (imm8[3]) #IE; FI + SNAN_TOKEN: + IF (imm8[4]) #IE; FI + NEG_INF_TOKEN: + IF (imm8[5]) #IE; FI + NEG_VALUE_TOKEN: + IF (imm8[6]) #IE; FI + POS_INF_TOKEN: + IF (imm8[7]) #IE; FI + ESAC + RETURN dest[31:0] +} +FOR j := 0 to 15 + i := j*32 + dst[i+31:i] := FIXUPIMMPD(a[i+31:i], b[i+31:i], c[i+31:i], imm8[7:0]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + + + Fix up packed single-precision (32-bit) floating-point elements in "a" and "b" using packed 32-bit integers in "c", and store the results in "dst". "imm8" is used to set the required flags reporting. + [sae_note] + enum TOKEN_TYPE { + QNAN_TOKEN := 0, \ + SNAN_TOKEN := 1, \ + ZERO_VALUE_TOKEN := 2, \ + ONE_VALUE_TOKEN := 3, \ + NEG_INF_TOKEN := 4, \ + POS_INF_TOKEN := 5, \ + NEG_VALUE_TOKEN := 6, \ + POS_VALUE_TOKEN := 7 +} +DEFINE FIXUPIMMPD(src1[31:0], src2[31:0], src3[31:0], imm8[7:0]) { + tsrc[31:0] := ((src2[30:23] == 0) AND (MXCSR.DAZ == 1)) ? 0.0 : src2[31:0] + CASE(tsrc[31:0]) OF + QNAN_TOKEN:j := 0 + SNAN_TOKEN:j := 1 + ZERO_VALUE_TOKEN: j := 2 + ONE_VALUE_TOKEN: j := 3 + NEG_INF_TOKEN: j := 4 + POS_INF_TOKEN: j := 5 + NEG_VALUE_TOKEN: j := 6 + POS_VALUE_TOKEN: j := 7 + ESAC + + token_response[3:0] := src3[3+4*j:4*j] + + CASE(token_response[3:0]) OF + 0 : dest[31:0] := src1[31:0] + 1 : dest[31:0] := tsrc[31:0] + 2 : dest[31:0] := QNaN(tsrc[31:0]) + 3 : dest[31:0] := QNAN_Indefinite + 4 : dest[31:0] := -INF + 5 : dest[31:0] := +INF + 6 : dest[31:0] := tsrc.sign? -INF : +INF + 7 : dest[31:0] := -0 + 8 : dest[31:0] := +0 + 9 : dest[31:0] := -1 + 10: dest[31:0] := +1 + 11: dest[31:0] := 1/2 + 12: dest[31:0] := 90.0 + 13: dest[31:0] := PI/2 + 14: dest[31:0] := MAX_FLOAT + 15: dest[31:0] := -MAX_FLOAT + ESAC + + CASE(tsrc[31:0]) OF + ZERO_VALUE_TOKEN: + IF (imm8[0]) #ZE; FI + ZERO_VALUE_TOKEN: + IF (imm8[1]) #IE; FI + ONE_VALUE_TOKEN: + IF (imm8[2]) #ZE; FI + ONE_VALUE_TOKEN: + IF (imm8[3]) #IE; FI + SNAN_TOKEN: + IF (imm8[4]) #IE; FI + NEG_INF_TOKEN: + IF (imm8[5]) #IE; FI + NEG_VALUE_TOKEN: + IF (imm8[6]) #IE; FI + POS_INF_TOKEN: + IF (imm8[7]) #IE; FI + ESAC + RETURN dest[31:0] +} +FOR j := 0 to 15 + i := j*32 + dst[i+31:i] := FIXUPIMMPD(a[i+31:i], b[i+31:i], c[i+31:i], imm8[7:0]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + + + Fix up packed single-precision (32-bit) floating-point elements in "a" and "b" using packed 32-bit integers in "c", and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). "imm8" is used to set the required flags reporting. + enum TOKEN_TYPE { + QNAN_TOKEN := 0, \ + SNAN_TOKEN := 1, \ + ZERO_VALUE_TOKEN := 2, \ + ONE_VALUE_TOKEN := 3, \ + NEG_INF_TOKEN := 4, \ + POS_INF_TOKEN := 5, \ + NEG_VALUE_TOKEN := 6, \ + POS_VALUE_TOKEN := 7 +} +DEFINE FIXUPIMMPD(src1[31:0], src2[31:0], src3[31:0], imm8[7:0]) { + tsrc[31:0] := ((src2[30:23] == 0) AND (MXCSR.DAZ == 1)) ? 0.0 : src2[31:0] + CASE(tsrc[31:0]) OF + QNAN_TOKEN:j := 0 + SNAN_TOKEN:j := 1 + ZERO_VALUE_TOKEN: j := 2 + ONE_VALUE_TOKEN: j := 3 + NEG_INF_TOKEN: j := 4 + POS_INF_TOKEN: j := 5 + NEG_VALUE_TOKEN: j := 6 + POS_VALUE_TOKEN: j := 7 + ESAC + + token_response[3:0] := src3[3+4*j:4*j] + + CASE(token_response[3:0]) OF + 0 : dest[31:0] := src1[31:0] + 1 : dest[31:0] := tsrc[31:0] + 2 : dest[31:0] := QNaN(tsrc[31:0]) + 3 : dest[31:0] := QNAN_Indefinite + 4 : dest[31:0] := -INF + 5 : dest[31:0] := +INF + 6 : dest[31:0] := tsrc.sign? -INF : +INF + 7 : dest[31:0] := -0 + 8 : dest[31:0] := +0 + 9 : dest[31:0] := -1 + 10: dest[31:0] := +1 + 11: dest[31:0] := 1/2 + 12: dest[31:0] := 90.0 + 13: dest[31:0] := PI/2 + 14: dest[31:0] := MAX_FLOAT + 15: dest[31:0] := -MAX_FLOAT + ESAC + + CASE(tsrc[31:0]) OF + ZERO_VALUE_TOKEN: + IF (imm8[0]) #ZE; FI + ZERO_VALUE_TOKEN: + IF (imm8[1]) #IE; FI + ONE_VALUE_TOKEN: + IF (imm8[2]) #ZE; FI + ONE_VALUE_TOKEN: + IF (imm8[3]) #IE; FI + SNAN_TOKEN: + IF (imm8[4]) #IE; FI + NEG_INF_TOKEN: + IF (imm8[5]) #IE; FI + NEG_VALUE_TOKEN: + IF (imm8[6]) #IE; FI + POS_INF_TOKEN: + IF (imm8[7]) #IE; FI + ESAC + RETURN dest[31:0] +} +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := FIXUPIMMPD(a[i+31:i], b[i+31:i], c[i+31:i], imm8[7:0]) + ELSE + dst[i+31:i] := a[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + + + + Fix up packed single-precision (32-bit) floating-point elements in "a" and "b" using packed 32-bit integers in "c", and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). "imm8" is used to set the required flags reporting. + [sae_note] + enum TOKEN_TYPE { + QNAN_TOKEN := 0, \ + SNAN_TOKEN := 1, \ + ZERO_VALUE_TOKEN := 2, \ + ONE_VALUE_TOKEN := 3, \ + NEG_INF_TOKEN := 4, \ + POS_INF_TOKEN := 5, \ + NEG_VALUE_TOKEN := 6, \ + POS_VALUE_TOKEN := 7 +} +DEFINE FIXUPIMMPD(src1[31:0], src2[31:0], src3[31:0], imm8[7:0]) { + tsrc[31:0] := ((src2[30:23] == 0) AND (MXCSR.DAZ == 1)) ? 0.0 : src2[31:0] + CASE(tsrc[31:0]) OF + QNAN_TOKEN:j := 0 + SNAN_TOKEN:j := 1 + ZERO_VALUE_TOKEN: j := 2 + ONE_VALUE_TOKEN: j := 3 + NEG_INF_TOKEN: j := 4 + POS_INF_TOKEN: j := 5 + NEG_VALUE_TOKEN: j := 6 + POS_VALUE_TOKEN: j := 7 + ESAC + + token_response[3:0] := src3[3+4*j:4*j] + + CASE(token_response[3:0]) OF + 0 : dest[31:0] := src1[31:0] + 1 : dest[31:0] := tsrc[31:0] + 2 : dest[31:0] := QNaN(tsrc[31:0]) + 3 : dest[31:0] := QNAN_Indefinite + 4 : dest[31:0] := -INF + 5 : dest[31:0] := +INF + 6 : dest[31:0] := tsrc.sign? -INF : +INF + 7 : dest[31:0] := -0 + 8 : dest[31:0] := +0 + 9 : dest[31:0] := -1 + 10: dest[31:0] := +1 + 11: dest[31:0] := 1/2 + 12: dest[31:0] := 90.0 + 13: dest[31:0] := PI/2 + 14: dest[31:0] := MAX_FLOAT + 15: dest[31:0] := -MAX_FLOAT + ESAC + + CASE(tsrc[31:0]) OF + ZERO_VALUE_TOKEN: + IF (imm8[0]) #ZE; FI + ZERO_VALUE_TOKEN: + IF (imm8[1]) #IE; FI + ONE_VALUE_TOKEN: + IF (imm8[2]) #ZE; FI + ONE_VALUE_TOKEN: + IF (imm8[3]) #IE; FI + SNAN_TOKEN: + IF (imm8[4]) #IE; FI + NEG_INF_TOKEN: + IF (imm8[5]) #IE; FI + NEG_VALUE_TOKEN: + IF (imm8[6]) #IE; FI + POS_INF_TOKEN: + IF (imm8[7]) #IE; FI + ESAC + RETURN dest[31:0] +} +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := FIXUPIMMPD(a[i+31:i], b[i+31:i], c[i+31:i], imm8[7:0]) + ELSE + dst[i+31:i] := a[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + + + Fix up packed single-precision (32-bit) floating-point elements in "a" and "b" using packed 32-bit integers in "c", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). "imm8" is used to set the required flags reporting. + enum TOKEN_TYPE { + QNAN_TOKEN := 0, \ + SNAN_TOKEN := 1, \ + ZERO_VALUE_TOKEN := 2, \ + ONE_VALUE_TOKEN := 3, \ + NEG_INF_TOKEN := 4, \ + POS_INF_TOKEN := 5, \ + NEG_VALUE_TOKEN := 6, \ + POS_VALUE_TOKEN := 7 +} +DEFINE FIXUPIMMPD(src1[31:0], src2[31:0], src3[31:0], imm8[7:0]) { + tsrc[31:0] := ((src2[30:23] == 0) AND (MXCSR.DAZ == 1)) ? 0.0 : src2[31:0] + CASE(tsrc[31:0]) OF + QNAN_TOKEN:j := 0 + SNAN_TOKEN:j := 1 + ZERO_VALUE_TOKEN: j := 2 + ONE_VALUE_TOKEN: j := 3 + NEG_INF_TOKEN: j := 4 + POS_INF_TOKEN: j := 5 + NEG_VALUE_TOKEN: j := 6 + POS_VALUE_TOKEN: j := 7 + ESAC + + token_response[3:0] := src3[3+4*j:4*j] + + CASE(token_response[3:0]) OF + 0 : dest[31:0] := src1[31:0] + 1 : dest[31:0] := tsrc[31:0] + 2 : dest[31:0] := QNaN(tsrc[31:0]) + 3 : dest[31:0] := QNAN_Indefinite + 4 : dest[31:0] := -INF + 5 : dest[31:0] := +INF + 6 : dest[31:0] := tsrc.sign? -INF : +INF + 7 : dest[31:0] := -0 + 8 : dest[31:0] := +0 + 9 : dest[31:0] := -1 + 10: dest[31:0] := +1 + 11: dest[31:0] := 1/2 + 12: dest[31:0] := 90.0 + 13: dest[31:0] := PI/2 + 14: dest[31:0] := MAX_FLOAT + 15: dest[31:0] := -MAX_FLOAT + ESAC + + CASE(tsrc[31:0]) OF + ZERO_VALUE_TOKEN: + IF (imm8[0]) #ZE; FI + ZERO_VALUE_TOKEN: + IF (imm8[1]) #IE; FI + ONE_VALUE_TOKEN: + IF (imm8[2]) #ZE; FI + ONE_VALUE_TOKEN: + IF (imm8[3]) #IE; FI + SNAN_TOKEN: + IF (imm8[4]) #IE; FI + NEG_INF_TOKEN: + IF (imm8[5]) #IE; FI + NEG_VALUE_TOKEN: + IF (imm8[6]) #IE; FI + POS_INF_TOKEN: + IF (imm8[7]) #IE; FI + ESAC + RETURN dest[31:0] +} +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := FIXUPIMMPD(a[i+31:i], b[i+31:i], c[i+31:i], imm8[7:0]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + + + + Fix up packed single-precision (32-bit) floating-point elements in "a" and "b" using packed 32-bit integers in "c", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). "imm8" is used to set the required flags reporting. + [sae_note] + enum TOKEN_TYPE { + QNAN_TOKEN := 0, \ + SNAN_TOKEN := 1, \ + ZERO_VALUE_TOKEN := 2, \ + ONE_VALUE_TOKEN := 3, \ + NEG_INF_TOKEN := 4, \ + POS_INF_TOKEN := 5, \ + NEG_VALUE_TOKEN := 6, \ + POS_VALUE_TOKEN := 7 +} +DEFINE FIXUPIMMPD(src1[31:0], src2[31:0], src3[31:0], imm8[7:0]) { + tsrc[31:0] := ((src2[30:23] == 0) AND (MXCSR.DAZ == 1)) ? 0.0 : src2[31:0] + CASE(tsrc[31:0]) OF + QNAN_TOKEN:j := 0 + SNAN_TOKEN:j := 1 + ZERO_VALUE_TOKEN: j := 2 + ONE_VALUE_TOKEN: j := 3 + NEG_INF_TOKEN: j := 4 + POS_INF_TOKEN: j := 5 + NEG_VALUE_TOKEN: j := 6 + POS_VALUE_TOKEN: j := 7 + ESAC + + token_response[3:0] := src3[3+4*j:4*j] + + CASE(token_response[3:0]) OF + 0 : dest[31:0] := src1[31:0] + 1 : dest[31:0] := tsrc[31:0] + 2 : dest[31:0] := QNaN(tsrc[31:0]) + 3 : dest[31:0] := QNAN_Indefinite + 4 : dest[31:0] := -INF + 5 : dest[31:0] := +INF + 6 : dest[31:0] := tsrc.sign? -INF : +INF + 7 : dest[31:0] := -0 + 8 : dest[31:0] := +0 + 9 : dest[31:0] := -1 + 10: dest[31:0] := +1 + 11: dest[31:0] := 1/2 + 12: dest[31:0] := 90.0 + 13: dest[31:0] := PI/2 + 14: dest[31:0] := MAX_FLOAT + 15: dest[31:0] := -MAX_FLOAT + ESAC + + CASE(tsrc[31:0]) OF + ZERO_VALUE_TOKEN: + IF (imm8[0]) #ZE; FI + ZERO_VALUE_TOKEN: + IF (imm8[1]) #IE; FI + ONE_VALUE_TOKEN: + IF (imm8[2]) #ZE; FI + ONE_VALUE_TOKEN: + IF (imm8[3]) #IE; FI + SNAN_TOKEN: + IF (imm8[4]) #IE; FI + NEG_INF_TOKEN: + IF (imm8[5]) #IE; FI + NEG_VALUE_TOKEN: + IF (imm8[6]) #IE; FI + POS_INF_TOKEN: + IF (imm8[7]) #IE; FI + ESAC + RETURN dest[31:0] +} +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := FIXUPIMMPD(a[i+31:i], b[i+31:i], c[i+31:i], imm8[7:0]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + + + Fix up the lower double-precision (64-bit) floating-point elements in "a" and "b" using the lower 64-bit integer in "c", store the result in the lower element of "dst", and copy the upper element from "b" to the upper element of "dst". "imm8" is used to set the required flags reporting. + [sae_note] + enum TOKEN_TYPE { + QNAN_TOKEN := 0, \ + SNAN_TOKEN := 1, \ + ZERO_VALUE_TOKEN := 2, \ + ONE_VALUE_TOKEN := 3, \ + NEG_INF_TOKEN := 4, \ + POS_INF_TOKEN := 5, \ + NEG_VALUE_TOKEN := 6, \ + POS_VALUE_TOKEN := 7 +} +DEFINE FIXUPIMMPD(src1[63:0], src2[63:0], src3[63:0], imm8[7:0]) { + tsrc[63:0] := ((src2[62:52] == 0) AND (MXCSR.DAZ == 1)) ? 0.0 : src2[63:0] + CASE(tsrc[63:0]) OF + QNAN_TOKEN:j := 0 + SNAN_TOKEN:j := 1 + ZERO_VALUE_TOKEN: j := 2 + ONE_VALUE_TOKEN: j := 3 + NEG_INF_TOKEN: j := 4 + POS_INF_TOKEN: j := 5 + NEG_VALUE_TOKEN: j := 6 + POS_VALUE_TOKEN: j := 7 + ESAC + + token_response[3:0] := src3[3+4*j:4*j] + + CASE(token_response[3:0]) OF + 0 : dest[63:0] := src1[63:0] + 1 : dest[63:0] := tsrc[63:0] + 2 : dest[63:0] := QNaN(tsrc[63:0]) + 3 : dest[63:0] := QNAN_Indefinite + 4 : dest[63:0] := -INF + 5 : dest[63:0] := +INF + 6 : dest[63:0] := tsrc.sign? -INF : +INF + 7 : dest[63:0] := -0 + 8 : dest[63:0] := +0 + 9 : dest[63:0] := -1 + 10: dest[63:0] := +1 + 11: dest[63:0] := 1/2 + 12: dest[63:0] := 90.0 + 13: dest[63:0] := PI/2 + 14: dest[63:0] := MAX_FLOAT + 15: dest[63:0] := -MAX_FLOAT + ESAC + + CASE(tsrc[31:0]) OF + ZERO_VALUE_TOKEN: + IF (imm8[0]) #ZE; FI + ZERO_VALUE_TOKEN: + IF (imm8[1]) #IE; FI + ONE_VALUE_TOKEN: + IF (imm8[2]) #ZE; FI + ONE_VALUE_TOKEN: + IF (imm8[3]) #IE; FI + SNAN_TOKEN: + IF (imm8[4]) #IE; FI + NEG_INF_TOKEN: + IF (imm8[5]) #IE; FI + NEG_VALUE_TOKEN: + IF (imm8[6]) #IE; FI + POS_INF_TOKEN: + IF (imm8[7]) #IE; FI + ESAC + RETURN dest[63:0] +} +dst[63:0] := FIXUPIMMPD(a[63:0], b[63:0], c[63:0], imm8[7:0]) +dst[127:64] := b[127:64] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + + Fix up the lower double-precision (64-bit) floating-point elements in "a" and "b" using the lower 64-bit integer in "c", store the result in the lower element of "dst", and copy the upper element from "b" to the upper element of "dst". "imm8" is used to set the required flags reporting. + enum TOKEN_TYPE { + QNAN_TOKEN := 0, \ + SNAN_TOKEN := 1, \ + ZERO_VALUE_TOKEN := 2, \ + ONE_VALUE_TOKEN := 3, \ + NEG_INF_TOKEN := 4, \ + POS_INF_TOKEN := 5, \ + NEG_VALUE_TOKEN := 6, \ + POS_VALUE_TOKEN := 7 +} +DEFINE FIXUPIMMPD(src1[63:0], src2[63:0], src3[63:0], imm8[7:0]) { + tsrc[63:0] := ((src2[62:52] == 0) AND (MXCSR.DAZ == 1)) ? 0.0 : src2[63:0] + CASE(tsrc[63:0]) OF + QNAN_TOKEN:j := 0 + SNAN_TOKEN:j := 1 + ZERO_VALUE_TOKEN: j := 2 + ONE_VALUE_TOKEN: j := 3 + NEG_INF_TOKEN: j := 4 + POS_INF_TOKEN: j := 5 + NEG_VALUE_TOKEN: j := 6 + POS_VALUE_TOKEN: j := 7 + ESAC + + token_response[3:0] := src3[3+4*j:4*j] + + CASE(token_response[3:0]) OF + 0 : dest[63:0] := src1[63:0] + 1 : dest[63:0] := tsrc[63:0] + 2 : dest[63:0] := QNaN(tsrc[63:0]) + 3 : dest[63:0] := QNAN_Indefinite + 4 : dest[63:0] := -INF + 5 : dest[63:0] := +INF + 6 : dest[63:0] := tsrc.sign? -INF : +INF + 7 : dest[63:0] := -0 + 8 : dest[63:0] := +0 + 9 : dest[63:0] := -1 + 10: dest[63:0] := +1 + 11: dest[63:0] := 1/2 + 12: dest[63:0] := 90.0 + 13: dest[63:0] := PI/2 + 14: dest[63:0] := MAX_FLOAT + 15: dest[63:0] := -MAX_FLOAT + ESAC + + CASE(tsrc[31:0]) OF + ZERO_VALUE_TOKEN: + IF (imm8[0]) #ZE; FI + ZERO_VALUE_TOKEN: + IF (imm8[1]) #IE; FI + ONE_VALUE_TOKEN: + IF (imm8[2]) #ZE; FI + ONE_VALUE_TOKEN: + IF (imm8[3]) #IE; FI + SNAN_TOKEN: + IF (imm8[4]) #IE; FI + NEG_INF_TOKEN: + IF (imm8[5]) #IE; FI + NEG_VALUE_TOKEN: + IF (imm8[6]) #IE; FI + POS_INF_TOKEN: + IF (imm8[7]) #IE; FI + ESAC + RETURN dest[63:0] +} +dst[63:0] := FIXUPIMMPD(a[63:0], b[63:0], c[63:0], imm8[7:0]) +dst[127:64] := b[127:64] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + + + + Fix up the lower double-precision (64-bit) floating-point elements in "a" and "b" using the lower 64-bit integer in "c", store the result in the lower element of "dst" using writemask "k" (the element is copied from "a" when mask bit 0 is not set), and copy the upper element from "b" to the upper element of "dst". "imm8" is used to set the required flags reporting. + [sae_note] + enum TOKEN_TYPE { + QNAN_TOKEN := 0, \ + SNAN_TOKEN := 1, \ + ZERO_VALUE_TOKEN := 2, \ + ONE_VALUE_TOKEN := 3, \ + NEG_INF_TOKEN := 4, \ + POS_INF_TOKEN := 5, \ + NEG_VALUE_TOKEN := 6, \ + POS_VALUE_TOKEN := 7 +} +DEFINE FIXUPIMMPD(src1[63:0], src2[63:0], src3[63:0], imm8[7:0]) { + tsrc[63:0] := ((src2[62:52] == 0) AND (MXCSR.DAZ == 1)) ? 0.0 : src2[63:0] + CASE(tsrc[63:0]) OF + QNAN_TOKEN:j := 0 + SNAN_TOKEN:j := 1 + ZERO_VALUE_TOKEN: j := 2 + ONE_VALUE_TOKEN: j := 3 + NEG_INF_TOKEN: j := 4 + POS_INF_TOKEN: j := 5 + NEG_VALUE_TOKEN: j := 6 + POS_VALUE_TOKEN: j := 7 + ESAC + + token_response[3:0] := src3[3+4*j:4*j] + + CASE(token_response[3:0]) OF + 0 : dest[63:0] := src1[63:0] + 1 : dest[63:0] := tsrc[63:0] + 2 : dest[63:0] := QNaN(tsrc[63:0]) + 3 : dest[63:0] := QNAN_Indefinite + 4 : dest[63:0] := -INF + 5 : dest[63:0] := +INF + 6 : dest[63:0] := tsrc.sign? -INF : +INF + 7 : dest[63:0] := -0 + 8 : dest[63:0] := +0 + 9 : dest[63:0] := -1 + 10: dest[63:0] := +1 + 11: dest[63:0] := 1/2 + 12: dest[63:0] := 90.0 + 13: dest[63:0] := PI/2 + 14: dest[63:0] := MAX_FLOAT + 15: dest[63:0] := -MAX_FLOAT + ESAC + + CASE(tsrc[31:0]) OF + ZERO_VALUE_TOKEN: + IF (imm8[0]) #ZE; FI + ZERO_VALUE_TOKEN: + IF (imm8[1]) #IE; FI + ONE_VALUE_TOKEN: + IF (imm8[2]) #ZE; FI + ONE_VALUE_TOKEN: + IF (imm8[3]) #IE; FI + SNAN_TOKEN: + IF (imm8[4]) #IE; FI + NEG_INF_TOKEN: + IF (imm8[5]) #IE; FI + NEG_VALUE_TOKEN: + IF (imm8[6]) #IE; FI + POS_INF_TOKEN: + IF (imm8[7]) #IE; FI + ESAC + RETURN dest[63:0] +} +IF k[0] + dst[63:0] := FIXUPIMMPD(a[63:0], b[63:0], c[63:0], imm8[7:0]) +ELSE + dst[63:0] := a[63:0] +FI +dst[127:64] := b[127:64] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + + + Fix up the lower double-precision (64-bit) floating-point elements in "a" and "b" using the lower 64-bit integer in "c", store the result in the lower element of "dst" using writemask "k" (the element is copied from "a" when mask bit 0 is not set), and copy the upper element from "b" to the upper element of "dst". "imm8" is used to set the required flags reporting. + enum TOKEN_TYPE { + QNAN_TOKEN := 0, \ + SNAN_TOKEN := 1, \ + ZERO_VALUE_TOKEN := 2, \ + ONE_VALUE_TOKEN := 3, \ + NEG_INF_TOKEN := 4, \ + POS_INF_TOKEN := 5, \ + NEG_VALUE_TOKEN := 6, \ + POS_VALUE_TOKEN := 7 +} +DEFINE FIXUPIMMPD(src1[63:0], src2[63:0], src3[63:0], imm8[7:0]) { + tsrc[63:0] := ((src2[62:52] == 0) AND (MXCSR.DAZ == 1)) ? 0.0 : src2[63:0] + CASE(tsrc[63:0]) OF + QNAN_TOKEN:j := 0 + SNAN_TOKEN:j := 1 + ZERO_VALUE_TOKEN: j := 2 + ONE_VALUE_TOKEN: j := 3 + NEG_INF_TOKEN: j := 4 + POS_INF_TOKEN: j := 5 + NEG_VALUE_TOKEN: j := 6 + POS_VALUE_TOKEN: j := 7 + ESAC + + token_response[3:0] := src3[3+4*j:4*j] + + CASE(token_response[3:0]) OF + 0 : dest[63:0] := src1[63:0] + 1 : dest[63:0] := tsrc[63:0] + 2 : dest[63:0] := QNaN(tsrc[63:0]) + 3 : dest[63:0] := QNAN_Indefinite + 4 : dest[63:0] := -INF + 5 : dest[63:0] := +INF + 6 : dest[63:0] := tsrc.sign? -INF : +INF + 7 : dest[63:0] := -0 + 8 : dest[63:0] := +0 + 9 : dest[63:0] := -1 + 10: dest[63:0] := +1 + 11: dest[63:0] := 1/2 + 12: dest[63:0] := 90.0 + 13: dest[63:0] := PI/2 + 14: dest[63:0] := MAX_FLOAT + 15: dest[63:0] := -MAX_FLOAT + ESAC + + CASE(tsrc[31:0]) OF + ZERO_VALUE_TOKEN: + IF (imm8[0]) #ZE; FI + ZERO_VALUE_TOKEN: + IF (imm8[1]) #IE; FI + ONE_VALUE_TOKEN: + IF (imm8[2]) #ZE; FI + ONE_VALUE_TOKEN: + IF (imm8[3]) #IE; FI + SNAN_TOKEN: + IF (imm8[4]) #IE; FI + NEG_INF_TOKEN: + IF (imm8[5]) #IE; FI + NEG_VALUE_TOKEN: + IF (imm8[6]) #IE; FI + POS_INF_TOKEN: + IF (imm8[7]) #IE; FI + ESAC + RETURN dest[63:0] +} +IF k[0] + dst[63:0] := FIXUPIMMPD(a[63:0], b[63:0], c[63:0], imm8[7:0]) +ELSE + dst[63:0] := a[63:0] +FI +dst[127:64] := b[127:64] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + + + + Fix up the lower double-precision (64-bit) floating-point elements in "a" and "b" using the lower 64-bit integer in "c", store the result in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper element from "b" to the upper element of "dst". "imm8" is used to set the required flags reporting. + [sae_note] + enum TOKEN_TYPE { + QNAN_TOKEN := 0, \ + SNAN_TOKEN := 1, \ + ZERO_VALUE_TOKEN := 2, \ + ONE_VALUE_TOKEN := 3, \ + NEG_INF_TOKEN := 4, \ + POS_INF_TOKEN := 5, \ + NEG_VALUE_TOKEN := 6, \ + POS_VALUE_TOKEN := 7 +} +DEFINE FIXUPIMMPD(src1[63:0], src2[63:0], src3[63:0], imm8[7:0]) { + tsrc[63:0] := ((src2[62:52] == 0) AND (MXCSR.DAZ == 1)) ? 0.0 : src2[63:0] + CASE(tsrc[63:0]) OF + QNAN_TOKEN:j := 0 + SNAN_TOKEN:j := 1 + ZERO_VALUE_TOKEN: j := 2 + ONE_VALUE_TOKEN: j := 3 + NEG_INF_TOKEN: j := 4 + POS_INF_TOKEN: j := 5 + NEG_VALUE_TOKEN: j := 6 + POS_VALUE_TOKEN: j := 7 + ESAC + + token_response[3:0] := src3[3+4*j:4*j] + + CASE(token_response[3:0]) OF + 0 : dest[63:0] := src1[63:0] + 1 : dest[63:0] := tsrc[63:0] + 2 : dest[63:0] := QNaN(tsrc[63:0]) + 3 : dest[63:0] := QNAN_Indefinite + 4 : dest[63:0] := -INF + 5 : dest[63:0] := +INF + 6 : dest[63:0] := tsrc.sign? -INF : +INF + 7 : dest[63:0] := -0 + 8 : dest[63:0] := +0 + 9 : dest[63:0] := -1 + 10: dest[63:0] := +1 + 11: dest[63:0] := 1/2 + 12: dest[63:0] := 90.0 + 13: dest[63:0] := PI/2 + 14: dest[63:0] := MAX_FLOAT + 15: dest[63:0] := -MAX_FLOAT + ESAC + + CASE(tsrc[31:0]) OF + ZERO_VALUE_TOKEN: + IF (imm8[0]) #ZE; FI + ZERO_VALUE_TOKEN: + IF (imm8[1]) #IE; FI + ONE_VALUE_TOKEN: + IF (imm8[2]) #ZE; FI + ONE_VALUE_TOKEN: + IF (imm8[3]) #IE; FI + SNAN_TOKEN: + IF (imm8[4]) #IE; FI + NEG_INF_TOKEN: + IF (imm8[5]) #IE; FI + NEG_VALUE_TOKEN: + IF (imm8[6]) #IE; FI + POS_INF_TOKEN: + IF (imm8[7]) #IE; FI + ESAC + RETURN dest[63:0] +} +IF k[0] + dst[63:0] := FIXUPIMMPD(a[63:0], b[63:0], c[63:0], imm8[7:0]) +ELSE + dst[63:0] := 0 +FI +dst[127:64] := b[127:64] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + + + Fix up the lower double-precision (64-bit) floating-point elements in "a" and "b" using the lower 64-bit integer in "c", store the result in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper element from "b" to the upper element of "dst". "imm8" is used to set the required flags reporting. + enum TOKEN_TYPE { + QNAN_TOKEN := 0, \ + SNAN_TOKEN := 1, \ + ZERO_VALUE_TOKEN := 2, \ + ONE_VALUE_TOKEN := 3, \ + NEG_INF_TOKEN := 4, \ + POS_INF_TOKEN := 5, \ + NEG_VALUE_TOKEN := 6, \ + POS_VALUE_TOKEN := 7 +} +DEFINE FIXUPIMMPD(src1[63:0], src2[63:0], src3[63:0], imm8[7:0]) { + tsrc[63:0] := ((src2[62:52] == 0) AND (MXCSR.DAZ == 1)) ? 0.0 : src2[63:0] + CASE(tsrc[63:0]) OF + QNAN_TOKEN:j := 0 + SNAN_TOKEN:j := 1 + ZERO_VALUE_TOKEN: j := 2 + ONE_VALUE_TOKEN: j := 3 + NEG_INF_TOKEN: j := 4 + POS_INF_TOKEN: j := 5 + NEG_VALUE_TOKEN: j := 6 + POS_VALUE_TOKEN: j := 7 + ESAC + + token_response[3:0] := src3[3+4*j:4*j] + + CASE(token_response[3:0]) OF + 0 : dest[63:0] := src1[63:0] + 1 : dest[63:0] := tsrc[63:0] + 2 : dest[63:0] := QNaN(tsrc[63:0]) + 3 : dest[63:0] := QNAN_Indefinite + 4 : dest[63:0] := -INF + 5 : dest[63:0] := +INF + 6 : dest[63:0] := tsrc.sign? -INF : +INF + 7 : dest[63:0] := -0 + 8 : dest[63:0] := +0 + 9 : dest[63:0] := -1 + 10: dest[63:0] := +1 + 11: dest[63:0] := 1/2 + 12: dest[63:0] := 90.0 + 13: dest[63:0] := PI/2 + 14: dest[63:0] := MAX_FLOAT + 15: dest[63:0] := -MAX_FLOAT + ESAC + + CASE(tsrc[31:0]) OF + ZERO_VALUE_TOKEN: + IF (imm8[0]) #ZE; FI + ZERO_VALUE_TOKEN: + IF (imm8[1]) #IE; FI + ONE_VALUE_TOKEN: + IF (imm8[2]) #ZE; FI + ONE_VALUE_TOKEN: + IF (imm8[3]) #IE; FI + SNAN_TOKEN: + IF (imm8[4]) #IE; FI + NEG_INF_TOKEN: + IF (imm8[5]) #IE; FI + NEG_VALUE_TOKEN: + IF (imm8[6]) #IE; FI + POS_INF_TOKEN: + IF (imm8[7]) #IE; FI + ESAC + RETURN dest[63:0] +} +IF k[0] + dst[63:0] := FIXUPIMMPD(a[63:0], b[63:0], c[63:0], imm8[7:0]) +ELSE + dst[63:0] := 0 +FI +dst[127:64] := b[127:64] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + + + Fix up the lower single-precision (32-bit) floating-point elements in "a" and "b" using the lower 32-bit integer in "c", store the result in the lower element of "dst", and copy the upper 3 packed elements from "b" to the upper elements of "dst". "imm8" is used to set the required flags reporting. + [sae_note] + enum TOKEN_TYPE { + QNAN_TOKEN := 0, \ + SNAN_TOKEN := 1, \ + ZERO_VALUE_TOKEN := 2, \ + ONE_VALUE_TOKEN := 3, \ + NEG_INF_TOKEN := 4, \ + POS_INF_TOKEN := 5, \ + NEG_VALUE_TOKEN := 6, \ + POS_VALUE_TOKEN := 7 +} +DEFINE FIXUPIMMPD(src1[31:0], src2[31:0], src3[31:0], imm8[7:0]) { + tsrc[31:0] := ((src2[30:23] == 0) AND (MXCSR.DAZ == 1)) ? 0.0 : src2[31:0] + CASE(tsrc[31:0]) OF + QNAN_TOKEN:j := 0 + SNAN_TOKEN:j := 1 + ZERO_VALUE_TOKEN: j := 2 + ONE_VALUE_TOKEN: j := 3 + NEG_INF_TOKEN: j := 4 + POS_INF_TOKEN: j := 5 + NEG_VALUE_TOKEN: j := 6 + POS_VALUE_TOKEN: j := 7 + ESAC + + token_response[3:0] := src3[3+4*j:4*j] + + CASE(token_response[3:0]) OF + 0 : dest[31:0] := src1[31:0] + 1 : dest[31:0] := tsrc[31:0] + 2 : dest[31:0] := QNaN(tsrc[31:0]) + 3 : dest[31:0] := QNAN_Indefinite + 4 : dest[31:0] := -INF + 5 : dest[31:0] := +INF + 6 : dest[31:0] := tsrc.sign? -INF : +INF + 7 : dest[31:0] := -0 + 8 : dest[31:0] := +0 + 9 : dest[31:0] := -1 + 10: dest[31:0] := +1 + 11: dest[31:0] := 1/2 + 12: dest[31:0] := 90.0 + 13: dest[31:0] := PI/2 + 14: dest[31:0] := MAX_FLOAT + 15: dest[31:0] := -MAX_FLOAT + ESAC + + CASE(tsrc[31:0]) OF + ZERO_VALUE_TOKEN: + IF (imm8[0]) #ZE; FI + ZERO_VALUE_TOKEN: + IF (imm8[1]) #IE; FI + ONE_VALUE_TOKEN: + IF (imm8[2]) #ZE; FI + ONE_VALUE_TOKEN: + IF (imm8[3]) #IE; FI + SNAN_TOKEN: + IF (imm8[4]) #IE; FI + NEG_INF_TOKEN: + IF (imm8[5]) #IE; FI + NEG_VALUE_TOKEN: + IF (imm8[6]) #IE; FI + POS_INF_TOKEN: + IF (imm8[7]) #IE; FI + ESAC + RETURN dest[31:0] +} +dst[31:0] := FIXUPIMMPD(a[31:0], b[31:0], c[31:0], imm8[7:0]) +dst[127:32] := b[127:32] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + + Fix up the lower single-precision (32-bit) floating-point elements in "a" and "b" using the lower 32-bit integer in "c", store the result in the lower element of "dst", and copy the upper 3 packed elements from "b" to the upper elements of "dst". "imm8" is used to set the required flags reporting. + enum TOKEN_TYPE { + QNAN_TOKEN := 0, \ + SNAN_TOKEN := 1, \ + ZERO_VALUE_TOKEN := 2, \ + ONE_VALUE_TOKEN := 3, \ + NEG_INF_TOKEN := 4, \ + POS_INF_TOKEN := 5, \ + NEG_VALUE_TOKEN := 6, \ + POS_VALUE_TOKEN := 7 +} +DEFINE FIXUPIMMPD(src1[31:0], src2[31:0], src3[31:0], imm8[7:0]) { + tsrc[31:0] := ((src2[30:23] == 0) AND (MXCSR.DAZ == 1)) ? 0.0 : src2[31:0] + CASE(tsrc[31:0]) OF + QNAN_TOKEN:j := 0 + SNAN_TOKEN:j := 1 + ZERO_VALUE_TOKEN: j := 2 + ONE_VALUE_TOKEN: j := 3 + NEG_INF_TOKEN: j := 4 + POS_INF_TOKEN: j := 5 + NEG_VALUE_TOKEN: j := 6 + POS_VALUE_TOKEN: j := 7 + ESAC + + token_response[3:0] := src3[3+4*j:4*j] + + CASE(token_response[3:0]) OF + 0 : dest[31:0] := src1[31:0] + 1 : dest[31:0] := tsrc[31:0] + 2 : dest[31:0] := QNaN(tsrc[31:0]) + 3 : dest[31:0] := QNAN_Indefinite + 4 : dest[31:0] := -INF + 5 : dest[31:0] := +INF + 6 : dest[31:0] := tsrc.sign? -INF : +INF + 7 : dest[31:0] := -0 + 8 : dest[31:0] := +0 + 9 : dest[31:0] := -1 + 10: dest[31:0] := +1 + 11: dest[31:0] := 1/2 + 12: dest[31:0] := 90.0 + 13: dest[31:0] := PI/2 + 14: dest[31:0] := MAX_FLOAT + 15: dest[31:0] := -MAX_FLOAT + ESAC + + CASE(tsrc[31:0]) OF + ZERO_VALUE_TOKEN: + IF (imm8[0]) #ZE; FI + ZERO_VALUE_TOKEN: + IF (imm8[1]) #IE; FI + ONE_VALUE_TOKEN: + IF (imm8[2]) #ZE; FI + ONE_VALUE_TOKEN: + IF (imm8[3]) #IE; FI + SNAN_TOKEN: + IF (imm8[4]) #IE; FI + NEG_INF_TOKEN: + IF (imm8[5]) #IE; FI + NEG_VALUE_TOKEN: + IF (imm8[6]) #IE; FI + POS_INF_TOKEN: + IF (imm8[7]) #IE; FI + ESAC + RETURN dest[31:0] +} +dst[31:0] := FIXUPIMMPD(a[31:0], b[31:0], c[31:0], imm8[7:0]) +dst[127:32] := b[127:32] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + + + + Fix up the lower single-precision (32-bit) floating-point elements in "a" and "b" using the lower 32-bit integer in "c", store the result in the lower element of "dst" using writemask "k" (the element is copied from "a" when mask bit 0 is not set), and copy the upper 3 packed elements from "b" to the upper elements of "dst". "imm8" is used to set the required flags reporting. + [sae_note] + enum TOKEN_TYPE { + QNAN_TOKEN := 0, \ + SNAN_TOKEN := 1, \ + ZERO_VALUE_TOKEN := 2, \ + ONE_VALUE_TOKEN := 3, \ + NEG_INF_TOKEN := 4, \ + POS_INF_TOKEN := 5, \ + NEG_VALUE_TOKEN := 6, \ + POS_VALUE_TOKEN := 7 +} +DEFINE FIXUPIMMPD(src1[31:0], src2[31:0], src3[31:0], imm8[7:0]) { + tsrc[31:0] := ((src2[30:23] == 0) AND (MXCSR.DAZ == 1)) ? 0.0 : src2[31:0] + CASE(tsrc[31:0]) OF + QNAN_TOKEN:j := 0 + SNAN_TOKEN:j := 1 + ZERO_VALUE_TOKEN: j := 2 + ONE_VALUE_TOKEN: j := 3 + NEG_INF_TOKEN: j := 4 + POS_INF_TOKEN: j := 5 + NEG_VALUE_TOKEN: j := 6 + POS_VALUE_TOKEN: j := 7 + ESAC + + token_response[3:0] := src3[3+4*j:4*j] + + CASE(token_response[3:0]) OF + 0 : dest[31:0] := src1[31:0] + 1 : dest[31:0] := tsrc[31:0] + 2 : dest[31:0] := QNaN(tsrc[31:0]) + 3 : dest[31:0] := QNAN_Indefinite + 4 : dest[31:0] := -INF + 5 : dest[31:0] := +INF + 6 : dest[31:0] := tsrc.sign? -INF : +INF + 7 : dest[31:0] := -0 + 8 : dest[31:0] := +0 + 9 : dest[31:0] := -1 + 10: dest[31:0] := +1 + 11: dest[31:0] := 1/2 + 12: dest[31:0] := 90.0 + 13: dest[31:0] := PI/2 + 14: dest[31:0] := MAX_FLOAT + 15: dest[31:0] := -MAX_FLOAT + ESAC + + CASE(tsrc[31:0]) OF + ZERO_VALUE_TOKEN: + IF (imm8[0]) #ZE; FI + ZERO_VALUE_TOKEN: + IF (imm8[1]) #IE; FI + ONE_VALUE_TOKEN: + IF (imm8[2]) #ZE; FI + ONE_VALUE_TOKEN: + IF (imm8[3]) #IE; FI + SNAN_TOKEN: + IF (imm8[4]) #IE; FI + NEG_INF_TOKEN: + IF (imm8[5]) #IE; FI + NEG_VALUE_TOKEN: + IF (imm8[6]) #IE; FI + POS_INF_TOKEN: + IF (imm8[7]) #IE; FI + ESAC + RETURN dest[31:0] +} +IF k[0] + dst[31:0] := FIXUPIMMPD(a[31:0], b[31:0], c[31:0], imm8[7:0]) +ELSE + dst[31:0] := a[31:0] +FI +dst[127:32] := b[127:32] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + + + Fix up the lower single-precision (32-bit) floating-point elements in "a" and "b" using the lower 32-bit integer in "c", store the result in the lower element of "dst" using writemask "k" (the element is copied from "a" when mask bit 0 is not set), and copy the upper 3 packed elements from "b" to the upper elements of "dst". "imm8" is used to set the required flags reporting. + enum TOKEN_TYPE { + QNAN_TOKEN := 0, \ + SNAN_TOKEN := 1, \ + ZERO_VALUE_TOKEN := 2, \ + ONE_VALUE_TOKEN := 3, \ + NEG_INF_TOKEN := 4, \ + POS_INF_TOKEN := 5, \ + NEG_VALUE_TOKEN := 6, \ + POS_VALUE_TOKEN := 7 +} +DEFINE FIXUPIMMPD(src1[31:0], src2[31:0], src3[31:0], imm8[7:0]) { + tsrc[31:0] := ((src2[30:23] == 0) AND (MXCSR.DAZ == 1)) ? 0.0 : src2[31:0] + CASE(tsrc[31:0]) OF + QNAN_TOKEN:j := 0 + SNAN_TOKEN:j := 1 + ZERO_VALUE_TOKEN: j := 2 + ONE_VALUE_TOKEN: j := 3 + NEG_INF_TOKEN: j := 4 + POS_INF_TOKEN: j := 5 + NEG_VALUE_TOKEN: j := 6 + POS_VALUE_TOKEN: j := 7 + ESAC + + token_response[3:0] := src3[3+4*j:4*j] + + CASE(token_response[3:0]) OF + 0 : dest[31:0] := src1[31:0] + 1 : dest[31:0] := tsrc[31:0] + 2 : dest[31:0] := QNaN(tsrc[31:0]) + 3 : dest[31:0] := QNAN_Indefinite + 4 : dest[31:0] := -INF + 5 : dest[31:0] := +INF + 6 : dest[31:0] := tsrc.sign? -INF : +INF + 7 : dest[31:0] := -0 + 8 : dest[31:0] := +0 + 9 : dest[31:0] := -1 + 10: dest[31:0] := +1 + 11: dest[31:0] := 1/2 + 12: dest[31:0] := 90.0 + 13: dest[31:0] := PI/2 + 14: dest[31:0] := MAX_FLOAT + 15: dest[31:0] := -MAX_FLOAT + ESAC + + CASE(tsrc[31:0]) OF + ZERO_VALUE_TOKEN: + IF (imm8[0]) #ZE; FI + ZERO_VALUE_TOKEN: + IF (imm8[1]) #IE; FI + ONE_VALUE_TOKEN: + IF (imm8[2]) #ZE; FI + ONE_VALUE_TOKEN: + IF (imm8[3]) #IE; FI + SNAN_TOKEN: + IF (imm8[4]) #IE; FI + NEG_INF_TOKEN: + IF (imm8[5]) #IE; FI + NEG_VALUE_TOKEN: + IF (imm8[6]) #IE; FI + POS_INF_TOKEN: + IF (imm8[7]) #IE; FI + ESAC + RETURN dest[31:0] +} +IF k[0] + dst[31:0] := FIXUPIMMPD(a[31:0], b[31:0], c[31:0], imm8[7:0]) +ELSE + dst[31:0] := a[31:0] +FI +dst[127:32] := b[127:32] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + + + + Fix up the lower single-precision (32-bit) floating-point elements in "a" and "b" using the lower 32-bit integer in "c", store the result in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper 3 packed elements from "b" to the upper elements of "dst". "imm8" is used to set the required flags reporting. + [sae_note] + enum TOKEN_TYPE { + QNAN_TOKEN := 0, \ + SNAN_TOKEN := 1, \ + ZERO_VALUE_TOKEN := 2, \ + ONE_VALUE_TOKEN := 3, \ + NEG_INF_TOKEN := 4, \ + POS_INF_TOKEN := 5, \ + NEG_VALUE_TOKEN := 6, \ + POS_VALUE_TOKEN := 7 +} +DEFINE FIXUPIMMPD(src1[31:0], src2[31:0], src3[31:0], imm8[7:0]) { + tsrc[31:0] := ((src2[30:23] == 0) AND (MXCSR.DAZ == 1)) ? 0.0 : src2[31:0] + CASE(tsrc[31:0]) OF + QNAN_TOKEN:j := 0 + SNAN_TOKEN:j := 1 + ZERO_VALUE_TOKEN: j := 2 + ONE_VALUE_TOKEN: j := 3 + NEG_INF_TOKEN: j := 4 + POS_INF_TOKEN: j := 5 + NEG_VALUE_TOKEN: j := 6 + POS_VALUE_TOKEN: j := 7 + ESAC + + token_response[3:0] := src3[3+4*j:4*j] + + CASE(token_response[3:0]) OF + 0 : dest[31:0] := src1[31:0] + 1 : dest[31:0] := tsrc[31:0] + 2 : dest[31:0] := QNaN(tsrc[31:0]) + 3 : dest[31:0] := QNAN_Indefinite + 4 : dest[31:0] := -INF + 5 : dest[31:0] := +INF + 6 : dest[31:0] := tsrc.sign? -INF : +INF + 7 : dest[31:0] := -0 + 8 : dest[31:0] := +0 + 9 : dest[31:0] := -1 + 10: dest[31:0] := +1 + 11: dest[31:0] := 1/2 + 12: dest[31:0] := 90.0 + 13: dest[31:0] := PI/2 + 14: dest[31:0] := MAX_FLOAT + 15: dest[31:0] := -MAX_FLOAT + ESAC + + CASE(tsrc[31:0]) OF + ZERO_VALUE_TOKEN: + IF (imm8[0]) #ZE; FI + ZERO_VALUE_TOKEN: + IF (imm8[1]) #IE; FI + ONE_VALUE_TOKEN: + IF (imm8[2]) #ZE; FI + ONE_VALUE_TOKEN: + IF (imm8[3]) #IE; FI + SNAN_TOKEN: + IF (imm8[4]) #IE; FI + NEG_INF_TOKEN: + IF (imm8[5]) #IE; FI + NEG_VALUE_TOKEN: + IF (imm8[6]) #IE; FI + POS_INF_TOKEN: + IF (imm8[7]) #IE; FI + ESAC + RETURN dest[31:0] +} +IF k[0] + dst[31:0] := FIXUPIMMPD(a[31:0], b[31:0], c[31:0], imm8[7:0]) +ELSE + dst[31:0] := 0 +FI +dst[127:32] := b[127:32] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + + + Fix up the lower single-precision (32-bit) floating-point elements in "a" and "b" using the lower 32-bit integer in "c", store the result in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper 3 packed elements from "b" to the upper elements of "dst". "imm8" is used to set the required flags reporting. + enum TOKEN_TYPE { + QNAN_TOKEN := 0, \ + SNAN_TOKEN := 1, \ + ZERO_VALUE_TOKEN := 2, \ + ONE_VALUE_TOKEN := 3, \ + NEG_INF_TOKEN := 4, \ + POS_INF_TOKEN := 5, \ + NEG_VALUE_TOKEN := 6, \ + POS_VALUE_TOKEN := 7 +} +DEFINE FIXUPIMMPD(src1[31:0], src2[31:0], src3[31:0], imm8[7:0]) { + tsrc[31:0] := ((src2[30:23] == 0) AND (MXCSR.DAZ == 1)) ? 0.0 : src2[31:0] + CASE(tsrc[31:0]) OF + QNAN_TOKEN:j := 0 + SNAN_TOKEN:j := 1 + ZERO_VALUE_TOKEN: j := 2 + ONE_VALUE_TOKEN: j := 3 + NEG_INF_TOKEN: j := 4 + POS_INF_TOKEN: j := 5 + NEG_VALUE_TOKEN: j := 6 + POS_VALUE_TOKEN: j := 7 + ESAC + + token_response[3:0] := src3[3+4*j:4*j] + + CASE(token_response[3:0]) OF + 0 : dest[31:0] := src1[31:0] + 1 : dest[31:0] := tsrc[31:0] + 2 : dest[31:0] := QNaN(tsrc[31:0]) + 3 : dest[31:0] := QNAN_Indefinite + 4 : dest[31:0] := -INF + 5 : dest[31:0] := +INF + 6 : dest[31:0] := tsrc.sign? -INF : +INF + 7 : dest[31:0] := -0 + 8 : dest[31:0] := +0 + 9 : dest[31:0] := -1 + 10: dest[31:0] := +1 + 11: dest[31:0] := 1/2 + 12: dest[31:0] := 90.0 + 13: dest[31:0] := PI/2 + 14: dest[31:0] := MAX_FLOAT + 15: dest[31:0] := -MAX_FLOAT + ESAC + + CASE(tsrc[31:0]) OF + ZERO_VALUE_TOKEN: + IF (imm8[0]) #ZE; FI + ZERO_VALUE_TOKEN: + IF (imm8[1]) #IE; FI + ONE_VALUE_TOKEN: + IF (imm8[2]) #ZE; FI + ONE_VALUE_TOKEN: + IF (imm8[3]) #IE; FI + SNAN_TOKEN: + IF (imm8[4]) #IE; FI + NEG_INF_TOKEN: + IF (imm8[5]) #IE; FI + NEG_VALUE_TOKEN: + IF (imm8[6]) #IE; FI + POS_INF_TOKEN: + IF (imm8[7]) #IE; FI + ESAC + RETURN dest[31:0] +} +IF k[0] + dst[31:0] := FIXUPIMMPD(a[31:0], b[31:0], c[31:0], imm8[7:0]) +ELSE + dst[31:0] := 0 +FI +dst[127:32] := b[127:32] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + Convert the exponent of each packed double-precision (64-bit) floating-point element in "a" to a double-precision (64-bit) floating-point number representing the integer exponent, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). This intrinsic essentially calculates "floor(log2(x))" for each element. + FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := ConvertExpFP64(a[i+63:i]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + Convert the exponent of each packed double-precision (64-bit) floating-point element in "a" to a double-precision (64-bit) floating-point number representing the integer exponent, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). This intrinsic essentially calculates "floor(log2(x))" for each element. + [sae_note] + FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := ConvertExpFP64(a[i+63:i]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + Convert the exponent of each packed single-precision (32-bit) floating-point element in "a" to a single-precision (32-bit) floating-point number representing the integer exponent, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). This intrinsic essentially calculates "floor(log2(x))" for each element. + FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := ConvertExpFP32(a[i+31:i]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + Convert the exponent of each packed single-precision (32-bit) floating-point element in "a" to a single-precision (32-bit) floating-point number representing the integer exponent, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). This intrinsic essentially calculates "floor(log2(x))" for each element. + [sae_note] + FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := ConvertExpFP32(a[i+31:i]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + Convert the exponent of the lower double-precision (64-bit) floating-point element in "b" to a double-precision (64-bit) floating-point number representing the integer exponent, store the result in the lower element of "dst", and copy the upper element from "a" to the upper element of "dst". This intrinsic essentially calculates "floor(log2(x))" for the lower element. + [sae_note] + dst[63:0] := ConvertExpFP64(b[63:0]) +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + Convert the exponent of the lower double-precision (64-bit) floating-point element in "b" to a double-precision (64-bit) floating-point number representing the integer exponent, store the result in the lower element of "dst", and copy the upper element from "a" to the upper element of "dst". This intrinsic essentially calculates "floor(log2(x))" for the lower element. + dst[63:0] := ConvertExpFP64(b[63:0]) +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + + + Convert the exponent of the lower double-precision (64-bit) floating-point element in "b" to a double-precision (64-bit) floating-point number representing the integer exponent, store the result in the lower element of "dst" using writemask "k" (the element is copied from "src" when mask bit 0 is not set), and copy the upper element from "a" to the upper element of "dst". This intrinsic essentially calculates "floor(log2(x))" for the lower element. + [sae_note] + IF k[0] + dst[63:0] := ConvertExpFP64(b[63:0]) +ELSE + dst[63:0] := src[63:0] +FI +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + + Convert the exponent of the lower double-precision (64-bit) floating-point element in "b" to a double-precision (64-bit) floating-point number representing the integer exponent, store the result in the lower element of "dst" using writemask "k" (the element is copied from "src" when mask bit 0 is not set), and copy the upper element from "a" to the upper element of "dst". This intrinsic essentially calculates "floor(log2(x))" for the lower element. + IF k[0] + dst[63:0] := ConvertExpFP64(b[63:0]) +ELSE + dst[63:0] := src[63:0] +FI +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + + Convert the exponent of the lower double-precision (64-bit) floating-point element in "b" to a double-precision (64-bit) floating-point number representing the integer exponent, store the result in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper element from "a" to the upper element of "dst". This intrinsic essentially calculates "floor(log2(x))" for the lower element. + [sae_note] + IF k[0] + dst[63:0] := ConvertExpFP64(b[63:0]) +ELSE + dst[63:0] := 0 +FI +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + Convert the exponent of the lower double-precision (64-bit) floating-point element in "b" to a double-precision (64-bit) floating-point number representing the integer exponent, store the result in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper element from "a" to the upper element of "dst". This intrinsic essentially calculates "floor(log2(x))" for the lower element. + IF k[0] + dst[63:0] := ConvertExpFP64(b[63:0]) +ELSE + dst[63:0] := 0 +FI +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + Convert the exponent of the lower single-precision (32-bit) floating-point element in "b" to a single-precision (32-bit) floating-point number representing the integer exponent, store the result in the lower element of "dst", and copy the upper 3 packed elements from "a" to the upper elements of "dst". This intrinsic essentially calculates "floor(log2(x))" for the lower element. + [sae_note] + dst[31:0] := ConvertExpFP32(b[31:0]) +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + Convert the exponent of the lower single-precision (32-bit) floating-point element in "b" to a single-precision (32-bit) floating-point number representing the integer exponent, store the result in the lower element of "dst", and copy the upper 3 packed elements from "a" to the upper elements of "dst". This intrinsic essentially calculates "floor(log2(x))" for the lower element. + dst[31:0] := ConvertExpFP32(b[31:0]) +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + + + Convert the exponent of the lower single-precision (32-bit) floating-point element in "b" to a single-precision (32-bit) floating-point number representing the integer exponent, store the result in the lower element of "dst" using writemask "k" (the element is copied from "src" when mask bit 0 is not set), and copy the upper 3 packed elements from "a" to the upper elements of "dst". This intrinsic essentially calculates "floor(log2(x))" for the lower element. + [sae_note] + IF k[0] + dst[31:0] := ConvertExpFP32(b[31:0]) +ELSE + dst[31:0] := src[31:0] +FI +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + + Convert the exponent of the lower single-precision (32-bit) floating-point element in "b" to a single-precision (32-bit) floating-point number representing the integer exponent, store the result in the lower element of "dst" using writemask "k" (the element is copied from "src" when mask bit 0 is not set), and copy the upper 3 packed elements from "a" to the upper elements of "dst". This intrinsic essentially calculates "floor(log2(x))" for the lower element. + IF k[0] + dst[31:0] := ConvertExpFP32(b[31:0]) +ELSE + dst[31:0] := src[31:0] +FI +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + + Convert the exponent of the lower single-precision (32-bit) floating-point element in "b" to a single-precision (32-bit) floating-point number representing the integer exponent, store the result in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper 3 packed elements from "a" to the upper elements of "dst". This intrinsic essentially calculates "floor(log2(x))" for the lower element. + [sae_note] + IF k[0] + dst[31:0] := ConvertExpFP32(b[31:0]) +ELSE + dst[31:0] := 0 +FI +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + Convert the exponent of the lower single-precision (32-bit) floating-point element in "b" to a single-precision (32-bit) floating-point number representing the integer exponent, store the result in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper 3 packed elements from "a" to the upper elements of "dst". This intrinsic essentially calculates "floor(log2(x))" for the lower element. + IF k[0] + dst[31:0] := ConvertExpFP32(b[31:0]) +ELSE + dst[31:0] := 0 +FI +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + + Normalize the mantissas of packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). This intrinsic essentially calculates "±(2^k)*|x.significand|", where "k" depends on the interval range defined by "interv" and the sign depends on "sc" and the source sign. + [getmant_note] + FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := GetNormalizedMantissa(a[i+63:i], sc, interv) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + + + Normalize the mantissas of packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). This intrinsic essentially calculates "±(2^k)*|x.significand|", where "k" depends on the interval range defined by "interv" and the sign depends on "sc" and the source sign. + [getmant_note][sae_note] + FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := GetNormalizedMantissa(a[i+63:i], sc, interv) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + + Normalize the mantissas of packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). This intrinsic essentially calculates "±(2^k)*|x.significand|", where "k" depends on the interval range defined by "interv" and the sign depends on "sc" and the source sign. + [getmant_note] + FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := GetNormalizedMantissa(a[i+31:i], sc, interv) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + + + Normalize the mantissas of packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). This intrinsic essentially calculates "±(2^k)*|x.significand|", where "k" depends on the interval range defined by "interv" and the sign depends on "sc" and the source sign. + [getmant_note][sae_note] + FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := GetNormalizedMantissa(a[i+31:i], sc, interv) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + + + Normalize the mantissas of the lower double-precision (64-bit) floating-point element in "b", store the result in the lower element of "dst", and copy the upper element from "a" to the upper element of "dst". This intrinsic essentially calculates "±(2^k)*|x.significand|", where "k" depends on the interval range defined by "interv" and the sign depends on "sc" and the source sign. + [getmant_note][sae_note] + dst[63:0] := GetNormalizedMantissa(b[63:0], sc, interv) +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + + Normalize the mantissas of the lower double-precision (64-bit) floating-point element in "b", store the result in the lower element of "dst", and copy the upper element from "a" to the upper element of "dst". This intrinsic essentially calculates "±(2^k)*|x.significand|", where "k" depends on the interval range defined by "interv" and the sign depends on "sc" and the source sign. + [getmant_note] + dst[63:0] := GetNormalizedMantissa(b[63:0], sc, interv) +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + + + + + Normalize the mantissas of the lower double-precision (64-bit) floating-point element in "b", store the result in the lower element of "dst" using writemask "k" (the element is copied from "src" when mask bit 0 is not set), and copy the upper element from "a" to the upper element of "dst". This intrinsic essentially calculates "±(2^k)*|x.significand|", where "k" depends on the interval range defined by "interv" and the sign depends on "sc" and the source sign. + [getmant_note][sae_note] + IF k[0] + dst[63:0] := GetNormalizedMantissa(b[63:0], sc, interv) +ELSE + dst[63:0] := src[63:0] +FI +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + + + + Normalize the mantissas of the lower double-precision (64-bit) floating-point element in "b", store the result in the lower element of "dst" using writemask "k" (the element is copied from "src" when mask bit 0 is not set), and copy the upper element from "a" to the upper element of "dst". This intrinsic essentially calculates "±(2^k)*|x.significand|", where "k" depends on the interval range defined by "interv" and the sign depends on "sc" and the source sign. + [getmant_note] + IF k[0] + dst[63:0] := GetNormalizedMantissa(b[63:0], sc, interv) +ELSE + dst[63:0] := src[63:0] +FI +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + + + + Normalize the mantissas of the lower double-precision (64-bit) floating-point element in "b", store the result in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper element from "a" to the upper element of "dst". This intrinsic essentially calculates "±(2^k)*|x.significand|", where "k" depends on the interval range defined by "interv" and the sign depends on "sc" and the source sign. + [getmant_note][sae_note] + IF k[0] + dst[63:0] := GetNormalizedMantissa(b[63:0], sc, interv) +ELSE + dst[63:0] := 0 +FI +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + + + Normalize the mantissas of the lower double-precision (64-bit) floating-point element in "b", store the result in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper element from "a" to the upper element of "dst". This intrinsic essentially calculates "±(2^k)*|x.significand|", where "k" depends on the interval range defined by "interv" and the sign depends on "sc" and the source sign. + [getmant_note] + IF k[0] + dst[63:0] := GetNormalizedMantissa(b[63:0], sc, interv) +ELSE + dst[63:0] := 0 +FI +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + + + Normalize the mantissas of the lower single-precision (32-bit) floating-point element in "b", store the result in the lower element of "dst", and copy the upper 3 packed elements from "a" to the upper elements of "dst". This intrinsic essentially calculates "±(2^k)*|x.significand|", where "k" depends on the interval range defined by "interv" and the sign depends on "sc" and the source sign. + [getmant_note][sae_note] + dst[31:0] := GetNormalizedMantissa(b[31:0], sc, interv) +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + + Normalize the mantissas of the lower single-precision (32-bit) floating-point element in "b", store the result in the lower element of "dst", and copy the upper 3 packed elements from "a" to the upper elements of "dst". This intrinsic essentially calculates "±(2^k)*|x.significand|", where "k" depends on the interval range defined by "interv" and the sign depends on "sc" and the source sign. + [getmant_note] + dst[31:0] := GetNormalizedMantissa(b[31:0], sc, interv) +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + + + + + Normalize the mantissas of the lower single-precision (32-bit) floating-point element in "b", store the result in the lower element of "dst" using writemask "k" (the element is copied from "src" when mask bit 0 is not set), and copy the upper 3 packed elements from "a" to the upper elements of "dst". This intrinsic essentially calculates "±(2^k)*|x.significand|", where "k" depends on the interval range defined by "interv" and the sign depends on "sc" and the source sign. + [getmant_note][sae_note] + IF k[0] + dst[31:0] := GetNormalizedMantissa(b[31:0], sc, interv) +ELSE + dst[31:0] := src[31:0] +FI +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + + + + Normalize the mantissas of the lower single-precision (32-bit) floating-point element in "b", store the result in the lower element of "dst" using writemask "k" (the element is copied from "src" when mask bit 0 is not set), and copy the upper 3 packed elements from "a" to the upper elements of "dst". This intrinsic essentially calculates "±(2^k)*|x.significand|", where "k" depends on the interval range defined by "interv" and the sign depends on "sc" and the source sign. + [getmant_note] + IF k[0] + dst[31:0] := GetNormalizedMantissa(b[31:0], sc, interv) +ELSE + dst[31:0] := src[31:0] +FI +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + + + + Normalize the mantissas of the lower single-precision (32-bit) floating-point element in "b", store the result in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper 3 packed elements from "a" to the upper elements of "dst". This intrinsic essentially calculates "±(2^k)*|x.significand|", where "k" depends on the interval range defined by "interv" and the sign depends on "sc" and the source sign. + [getmant_note][sae_note] + IF k[0] + dst[31:0] := GetNormalizedMantissa(b[31:0], sc, interv) +ELSE + dst[31:0] := 0 +FI +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + + + Normalize the mantissas of the lower single-precision (32-bit) floating-point element in "b", store the result in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper 3 packed elements from "a" to the upper elements of "dst". This intrinsic essentially calculates "±(2^k)*|x.significand|", where "k" depends on the interval range defined by "interv" and the sign depends on "sc" and the source sign. + [getmant_note] + IF k[0] + dst[31:0] := GetNormalizedMantissa(b[31:0], sc, interv) +ELSE + dst[31:0] := 0 +FI +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + Rotate the bits in each packed 32-bit integer in "a" to the right by the number of bits specified in the corresponding element of "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +DEFINE RIGHT_ROTATE_DWORDS(src, count_src) { + count := count_src % 32 + RETURN (src >>count) OR (src << (32 - count)) +} +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := RIGHT_ROTATE_DWORDS(a[i+31:i], b[i+31:i]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + + Round packed double-precision (64-bit) floating-point elements in "a" to the number of fraction bits specified by "imm8", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). [round_imm_note] + +DEFINE RoundScaleFP64(src1[63:0], imm8[7:0]) { + m[63:0] := FP64(imm8[7:4]) // number of fraction bits after the binary point to be preserved + tmp[63:0] := POW(2.0, -m) * ROUND(POW(2.0, m) * src1[63:0], imm8[3:0]) + IF IsInf(tmp[63:0]) + tmp[63:0] := src1[63:0] + FI + RETURN tmp[63:0] +} +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := RoundScaleFP64(a[i+63:i], imm8[7:0]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + + + Round packed double-precision (64-bit) floating-point elements in "a" to the number of fraction bits specified by "imm8", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). [round_imm_note][sae_note] + +DEFINE RoundScaleFP64(src1[63:0], imm8[7:0]) { + m[63:0] := FP64(imm8[7:4]) // number of fraction bits after the binary point to be preserved + tmp[63:0] := POW(2.0, -m) * ROUND(POW(2.0, m) * src1[63:0], imm8[3:0]) + IF IsInf(tmp[63:0]) + tmp[63:0] := src1[63:0] + FI + RETURN tmp[63:0] +} +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := RoundScaleFP64(a[i+63:i], imm8[7:0]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + Round packed double-precision (64-bit) floating-point elements in "a" to the number of fraction bits specified by "imm8", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). [round_imm_note] + +DEFINE RoundScaleFP64(src1[63:0], imm8[7:0]) { + m[63:0] := FP64(imm8[7:4]) // number of fraction bits after the binary point to be preserved + tmp[63:0] := POW(2.0, -m) * ROUND(POW(2.0, m) * src1[63:0], imm8[3:0]) + IF IsInf(tmp[63:0]) + tmp[63:0] := src1[63:0] + FI + RETURN tmp[63:0] +} +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := RoundScaleFP64(a[i+63:i], imm8[7:0]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + + Round packed double-precision (64-bit) floating-point elements in "a" to the number of fraction bits specified by "imm8", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). [round_imm_note][sae_note] + +DEFINE RoundScaleFP64(src1[63:0], imm8[7:0]) { + m[63:0] := FP64(imm8[7:4]) // number of fraction bits after the binary point to be preserved + tmp[63:0] := POW(2.0, -m) * ROUND(POW(2.0, m) * src1[63:0], imm8[3:0]) + IF IsInf(tmp[63:0]) + tmp[63:0] := src1[63:0] + FI + RETURN tmp[63:0] +} +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := RoundScaleFP64(a[i+63:i], imm8[7:0]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + Round packed double-precision (64-bit) floating-point elements in "a" to the number of fraction bits specified by "imm8", and store the results in "dst". [round_imm_note] + +DEFINE RoundScaleFP64(src1[63:0], imm8[7:0]) { + m[63:0] := FP64(imm8[7:4]) // number of fraction bits after the binary point to be preserved + tmp[63:0] := POW(2.0, -m) * ROUND(POW(2.0, m) * src1[63:0], imm8[3:0]) + IF IsInf(tmp[63:0]) + tmp[63:0] := src1[63:0] + FI + RETURN tmp[63:0] +} +FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := RoundScaleFP64(a[i+63:i], imm8[7:0]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + Round packed double-precision (64-bit) floating-point elements in "a" to the number of fraction bits specified by "imm8", and store the results in "dst". [round_imm_note][sae_note] + +DEFINE RoundScaleFP64(src1[63:0], imm8[7:0]) { + m[63:0] := FP64(imm8[7:4]) // number of fraction bits after the binary point to be preserved + tmp[63:0] := POW(2.0, -m) * ROUND(POW(2.0, m) * src1[63:0], imm8[3:0]) + IF IsInf(tmp[63:0]) + tmp[63:0] := src1[63:0] + FI + RETURN tmp[63:0] +} +FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := RoundScaleFP64(a[i+63:i], imm8[7:0]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + + Round packed single-precision (32-bit) floating-point elements in "a" to the number of fraction bits specified by "imm8", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). [round_imm_note] + +DEFINE RoundScaleFP32(src1[31:0], imm8[7:0]) { + m[31:0] := FP32(imm8[7:4]) // number of fraction bits after the binary point to be preserved + tmp[31:0] := POW(FP32(2.0), -m) * ROUND(POW(FP32(2.0), m) * src1[31:0], imm8[3:0]) + IF IsInf(tmp[31:0]) + tmp[31:0] := src1[31:0] + FI + RETURN tmp[31:0] +} +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := RoundScaleFP32(a[i+31:i], imm8[7:0]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + + + Round packed single-precision (32-bit) floating-point elements in "a" to the number of fraction bits specified by "imm8", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). [round_imm_note][sae_note] + +DEFINE RoundScaleFP32(src1[31:0], imm8[7:0]) { + m[31:0] := FP32(imm8[7:4]) // number of fraction bits after the binary point to be preserved + tmp[31:0] := POW(FP32(2.0), -m) * ROUND(POW(FP32(2.0), m) * src1[31:0], imm8[3:0]) + IF IsInf(tmp[31:0]) + tmp[31:0] := src1[31:0] + FI + RETURN tmp[31:0] +} +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := RoundScaleFP32(a[i+31:i], imm8[7:0]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + Round packed single-precision (32-bit) floating-point elements in "a" to the number of fraction bits specified by "imm8", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). [round_imm_note] + +DEFINE RoundScaleFP32(src1[31:0], imm8[7:0]) { + m[31:0] := FP32(imm8[7:4]) // number of fraction bits after the binary point to be preserved + tmp[31:0] := POW(FP32(2.0), -m) * ROUND(POW(FP32(2.0), m) * src1[31:0], imm8[3:0]) + IF IsInf(tmp[31:0]) + tmp[31:0] := src1[31:0] + FI + RETURN tmp[31:0] +} +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := RoundScaleFP32(a[i+31:i], imm8[7:0]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + + Round packed single-precision (32-bit) floating-point elements in "a" to the number of fraction bits specified by "imm8", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). [round_imm_note][sae_note] + +DEFINE RoundScaleFP32(src1[31:0], imm8[7:0]) { + m[31:0] := FP32(imm8[7:4]) // number of fraction bits after the binary point to be preserved + tmp[31:0] := POW(FP32(2.0), -m) * ROUND(POW(FP32(2.0), m) * src1[31:0], imm8[3:0]) + IF IsInf(tmp[31:0]) + tmp[31:0] := src1[31:0] + FI + RETURN tmp[31:0] +} +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := RoundScaleFP32(a[i+31:i], imm8[7:0]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + Round packed single-precision (32-bit) floating-point elements in "a" to the number of fraction bits specified by "imm8", and store the results in "dst". [round_imm_note] + +DEFINE RoundScaleFP32(src1[31:0], imm8[7:0]) { + m[31:0] := FP32(imm8[7:4]) // number of fraction bits after the binary point to be preserved + tmp[31:0] := POW(FP32(2.0), -m) * ROUND(POW(FP32(2.0), m) * src1[31:0], imm8[3:0]) + IF IsInf(tmp[31:0]) + tmp[31:0] := src1[31:0] + FI + RETURN tmp[31:0] +} +FOR j := 0 to 15 + i := j*32 + dst[i+31:i] := RoundScaleFP32(a[i+31:i], imm8[7:0]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + Round packed single-precision (32-bit) floating-point elements in "a" to the number of fraction bits specified by "imm8", and store the results in "dst". [round_imm_note][sae_note] + +DEFINE RoundScaleFP32(src1[31:0], imm8[7:0]) { + m[31:0] := FP32(imm8[7:4]) // number of fraction bits after the binary point to be preserved + tmp[31:0] := POW(FP32(2.0), -m) * ROUND(POW(FP32(2.0), m) * src1[31:0], imm8[3:0]) + IF IsInf(tmp[31:0]) + tmp[31:0] := src1[31:0] + FI + RETURN tmp[31:0] +} +FOR j := 0 to 15 + i := j*32 + dst[i+31:i] := RoundScaleFP32(a[i+31:i], imm8[7:0]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + + + + Round the lower double-precision (64-bit) floating-point element in "b" to the number of fraction bits specified by "imm8", store the result in the lower element of "dst" using writemask "k" (the element is copied from "src" when mask bit 0 is not set), and copy the upper element from "a" to the upper element of "dst". [round_imm_note][sae_note] + +DEFINE RoundScaleFP64(src1[63:0], imm8[7:0]) { + m[63:0] := FP64(imm8[7:4]) // number of fraction bits after the binary point to be preserved + tmp[63:0] := POW(2.0, -m) * ROUND(POW(2.0, m) * src1[63:0], imm8[3:0]) + IF IsInf(tmp[63:0]) + tmp[63:0] := src1[63:0] + FI + RETURN tmp[63:0] +} +IF k[0] + dst[63:0] := RoundScaleFP64(b[63:0], imm8[7:0]) +ELSE + dst[63:0] := src[63:0] +FI +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + + + Round the lower double-precision (64-bit) floating-point element in "b" to the number of fraction bits specified by "imm8", store the result in the lower element of "dst" using writemask "k" (the element is copied from "src" when mask bit 0 is not set), and copy the upper element from "a" to the upper element of "dst". [round_imm_note] + +DEFINE RoundScaleFP64(src1[63:0], imm8[7:0]) { + m[63:0] := FP64(imm8[7:4]) // number of fraction bits after the binary point to be preserved + tmp[63:0] := POW(2.0, -m) * ROUND(POW(2.0, m) * src1[63:0], imm8[3:0]) + IF IsInf(tmp[63:0]) + tmp[63:0] := src1[63:0] + FI + RETURN tmp[63:0] +} +IF k[0] + dst[63:0] := RoundScaleFP64(b[63:0], imm8[7:0]) +ELSE + dst[63:0] := src[63:0] +FI +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + + + Round the lower double-precision (64-bit) floating-point element in "b" to the number of fraction bits specified by "imm8", store the result in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper element from "a" to the upper element of "dst". [round_imm_note][sae_note] + +DEFINE RoundScaleFP64(src1[63:0], imm8[7:0]) { + m[63:0] := FP64(imm8[7:4]) // number of fraction bits after the binary point to be preserved + tmp[63:0] := POW(2.0, -m) * ROUND(POW(2.0, m) * src1[63:0], imm8[3:0]) + IF IsInf(tmp[63:0]) + tmp[63:0] := src1[63:0] + FI + RETURN tmp[63:0] +} +IF k[0] + dst[63:0] := RoundScaleFP64(b[63:0], imm8[7:0]) +ELSE + dst[63:0] := 0 +FI +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + + Round the lower double-precision (64-bit) floating-point element in "b" to the number of fraction bits specified by "imm8", store the result in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper element from "a" to the upper element of "dst". [round_imm_note] + +DEFINE RoundScaleFP64(src1[63:0], imm8[7:0]) { + m[63:0] := FP64(imm8[7:4]) // number of fraction bits after the binary point to be preserved + tmp[63:0] := POW(2.0, -m) * ROUND(POW(2.0, m) * src1[63:0], imm8[3:0]) + IF IsInf(tmp[63:0]) + tmp[63:0] := src1[63:0] + FI + RETURN tmp[63:0] +} +IF k[0] + dst[63:0] := RoundScaleFP64(b[63:0], imm8[7:0]) +ELSE + dst[63:0] := 0 +FI +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + + Round the lower double-precision (64-bit) floating-point element in "b" to the number of fraction bits specified by "imm8", store the result in the lower element of "dst", and copy the upper element from "a" to the upper element of "dst". [round_imm_note][sae_note] + +DEFINE RoundScaleFP64(src1[63:0], imm8[7:0]) { + m[63:0] := FP64(imm8[7:4]) // number of fraction bits after the binary point to be preserved + tmp[63:0] := POW(2.0, -m) * ROUND(POW(2.0, m) * src1[63:0], imm8[3:0]) + IF IsInf(tmp[63:0]) + tmp[63:0] := src1[63:0] + FI + RETURN tmp[63:0] +} +dst[63:0] := RoundScaleFP64(b[63:0], imm8[7:0]) +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + Round the lower double-precision (64-bit) floating-point element in "b" to the number of fraction bits specified by "imm8", store the result in the lower element of "dst", and copy the upper element from "a" to the upper element of "dst". [round_imm_note] + +DEFINE RoundScaleFP64(src1[63:0], imm8[7:0]) { + m[63:0] := FP64(imm8[7:4]) // number of fraction bits after the binary point to be preserved + tmp[63:0] := POW(2.0, -m) * ROUND(POW(2.0, m) * src1[63:0], imm8[3:0]) + IF IsInf(tmp[63:0]) + tmp[63:0] := src1[63:0] + FI + RETURN tmp[63:0] +} +dst[63:0] := RoundScaleFP64(b[63:0], imm8[7:0]) +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + + + + Round the lower single-precision (32-bit) floating-point element in "b" to the number of fraction bits specified by "imm8", store the result in the lower element of "dst" using writemask "k" (the element is copied from "src" when mask bit 0 is not set), and copy the upper 3 packed elements from "a" to the upper elements of "dst". [round_imm_note][sae_note] + +DEFINE RoundScaleFP32(src1[31:0], imm8[7:0]) { + m[31:0] := FP32(imm8[7:4]) // number of fraction bits after the binary point to be preserved + tmp[31:0] := POW(FP32(2.0), -m) * ROUND(POW(FP32(2.0), m) * src1[31:0], imm8[3:0]) + IF IsInf(tmp[31:0]) + tmp[31:0] := src1[31:0] + FI + RETURN tmp[31:0] +} +IF k[0] + dst[31:0] := RoundScaleFP32(b[31:0], imm8[7:0]) +ELSE + dst[31:0] := src[31:0] +FI +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + + + Round the lower single-precision (32-bit) floating-point element in "b" to the number of fraction bits specified by "imm8", store the result in the lower element of "dst" using writemask "k" (the element is copied from "src" when mask bit 0 is not set), and copy the upper 3 packed elements from "a" to the upper elements of "dst". [round_imm_note] + +DEFINE RoundScaleFP32(src1[31:0], imm8[7:0]) { + m[31:0] := FP32(imm8[7:4]) // number of fraction bits after the binary point to be preserved + tmp[31:0] := POW(FP32(2.0), -m) * ROUND(POW(FP32(2.0), m) * src1[31:0], imm8[3:0]) + IF IsInf(tmp[31:0]) + tmp[31:0] := src1[31:0] + FI + RETURN tmp[31:0] +} +IF k[0] + dst[31:0] := RoundScaleFP32(b[31:0], imm8[7:0]) +ELSE + dst[31:0] := src[31:0] +FI +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + + + Round the lower single-precision (32-bit) floating-point element in "b" to the number of fraction bits specified by "imm8", store the result in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper 3 packed elements from "a" to the upper elements of "dst". [round_imm_note][sae_note] + +DEFINE RoundScaleFP32(src1[31:0], imm8[7:0]) { + m[31:0] := FP32(imm8[7:4]) // number of fraction bits after the binary point to be preserved + tmp[31:0] := POW(FP32(2.0), -m) * ROUND(POW(FP32(2.0), m) * src1[31:0], imm8[3:0]) + IF IsInf(tmp[31:0]) + tmp[31:0] := src1[31:0] + FI + RETURN tmp[31:0] +} +IF k[0] + dst[31:0] := RoundScaleFP32(b[31:0], imm8[7:0]) +ELSE + dst[31:0] := 0 +FI +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + + Round the lower single-precision (32-bit) floating-point element in "b" to the number of fraction bits specified by "imm8", store the result in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper 3 packed elements from "a" to the upper elements of "dst". [round_imm_note] + +DEFINE RoundScaleFP32(src1[31:0], imm8[7:0]) { + m[31:0] := FP32(imm8[7:4]) // number of fraction bits after the binary point to be preserved + tmp[31:0] := POW(FP32(2.0), -m) * ROUND(POW(FP32(2.0), m) * src1[31:0], imm8[3:0]) + IF IsInf(tmp[31:0]) + tmp[31:0] := src1[31:0] + FI + RETURN tmp[31:0] +} +IF k[0] + dst[31:0] := RoundScaleFP32(b[31:0], imm8[7:0]) +ELSE + dst[31:0] := 0 +FI +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + + Round the lower single-precision (32-bit) floating-point element in "b" to the number of fraction bits specified by "imm8", store the result in the lower element of "dst", and copy the upper 3 packed elements from "a" to the upper elements of "dst". [round_imm_note][sae_note] + +DEFINE RoundScaleFP32(src1[31:0], imm8[7:0]) { + m[31:0] := FP32(imm8[7:4]) // number of fraction bits after the binary point to be preserved + tmp[31:0] := POW(FP32(2.0), -m) * ROUND(POW(FP32(2.0), m) * src1[31:0], imm8[3:0]) + IF IsInf(tmp[31:0]) + tmp[31:0] := src1[31:0] + FI + RETURN tmp[31:0] +} +dst[31:0] := RoundScaleFP32(b[31:0], imm8[7:0]) +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + Round the lower single-precision (32-bit) floating-point element in "b" to the number of fraction bits specified by "imm8", store the result in the lower element of "dst", and copy the upper 3 packed elements from "a" to the upper elements of "dst". [round_imm_note] + +DEFINE RoundScaleFP32(src1[31:0], imm8[7:0]) { + m[31:0] := FP32(imm8[7:4]) // number of fraction bits after the binary point to be preserved + tmp[31:0] := POW(FP32(2.0), -m) * ROUND(POW(FP32(2.0), m) * src1[31:0], imm8[3:0]) + IF IsInf(tmp[31:0]) + tmp[31:0] := src1[31:0] + FI + RETURN tmp[31:0] +} +dst[31:0] := RoundScaleFP32(b[31:0], imm8[7:0]) +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + + Scale the packed double-precision (64-bit) floating-point elements in "a" using values from "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + DEFINE SCALE(src1, src2) { + IF (src2 == NaN) + IF (src2 == SNaN) + RETURN QNAN(src2) + FI + ELSE IF (src1 == NaN) + IF (src1 == SNaN) + RETURN QNAN(src1) + FI + IF (src2 != INF) + RETURN QNAN(src1) + FI + ELSE + tmp_src2 := src2 + tmp_src1 := src1 + IF (IS_DENORMAL(src2) AND MXCSR.DAZ) + tmp_src2 := 0 + FI + IF (IS_DENORMAL(src1) AND MXCSR.DAZ) + tmp_src1 := 0 + FI + FI + dst[63:0] := tmp_src1[63:0] * POW(2.0, FLOOR(tmp_src2[63:0])) + RETURN dst[63:0] +} +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := SCALE(a[i+63:0], b[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + + + Scale the packed double-precision (64-bit) floating-point elements in "a" using values from "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + [round_note] + DEFINE SCALE(src1, src2) { + IF (src2 == NaN) + IF (src2 == SNaN) + RETURN QNAN(src2) + FI + ELSE IF (src1 == NaN) + IF (src1 == SNaN) + RETURN QNAN(src1) + FI + IF (src2 != INF) + RETURN QNAN(src1) + FI + ELSE + tmp_src2 := src2 + tmp_src1 := src1 + IF (IS_DENORMAL(src2) AND MXCSR.DAZ) + tmp_src2 := 0 + FI + IF (IS_DENORMAL(src1) AND MXCSR.DAZ) + tmp_src1 := 0 + FI + FI + dst[63:0] := tmp_src1[63:0] * POW(2.0, FLOOR(tmp_src2[63:0])) + RETURN dst[63:0] +} +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := SCALE(a[i+63:0], b[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + Scale the packed double-precision (64-bit) floating-point elements in "a" using values from "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + DEFINE SCALE(src1, src2) { + IF (src2 == NaN) + IF (src2 == SNaN) + RETURN QNAN(src2) + FI + ELSE IF (src1 == NaN) + IF (src1 == SNaN) + RETURN QNAN(src1) + FI + IF (src2 != INF) + RETURN QNAN(src1) + FI + ELSE + tmp_src2 := src2 + tmp_src1 := src1 + IF (IS_DENORMAL(src2) AND MXCSR.DAZ) + tmp_src2 := 0 + FI + IF (IS_DENORMAL(src1) AND MXCSR.DAZ) + tmp_src1 := 0 + FI + FI + dst[63:0] := tmp_src1[63:0] * POW(2.0, FLOOR(tmp_src2[63:0])) + RETURN dst[63:0] +} +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := SCALE(a[i+63:0], b[i+63:i]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + + Scale the packed double-precision (64-bit) floating-point elements in "a" using values from "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + [round_note] + DEFINE SCALE(src1, src2) { + IF (src2 == NaN) + IF (src2 == SNaN) + RETURN QNAN(src2) + FI + ELSE IF (src1 == NaN) + IF (src1 == SNaN) + RETURN QNAN(src1) + FI + IF (src2 != INF) + RETURN QNAN(src1) + FI + ELSE + tmp_src2 := src2 + tmp_src1 := src1 + IF (IS_DENORMAL(src2) AND MXCSR.DAZ) + tmp_src2 := 0 + FI + IF (IS_DENORMAL(src1) AND MXCSR.DAZ) + tmp_src1 := 0 + FI + FI + dst[63:0] := tmp_src1[63:0] * POW(2.0, FLOOR(tmp_src2[63:0])) + RETURN dst[63:0] +} +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := SCALE(a[i+63:0], b[i+63:i]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + Scale the packed double-precision (64-bit) floating-point elements in "a" using values from "b", and store the results in "dst". + DEFINE SCALE(src1, src2) { + IF (src2 == NaN) + IF (src2 == SNaN) + RETURN QNAN(src2) + FI + ELSE IF (src1 == NaN) + IF (src1 == SNaN) + RETURN QNAN(src1) + FI + IF (src2 != INF) + RETURN QNAN(src1) + FI + ELSE + tmp_src2 := src2 + tmp_src1 := src1 + IF (IS_DENORMAL(src2) AND MXCSR.DAZ) + tmp_src2 := 0 + FI + IF (IS_DENORMAL(src1) AND MXCSR.DAZ) + tmp_src1 := 0 + FI + FI + dst[63:0] := tmp_src1[63:0] * POW(2.0, FLOOR(tmp_src2[63:0])) + RETURN dst[63:0] +} +FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := SCALE(a[i+63:0], b[i+63:i]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + Scale the packed double-precision (64-bit) floating-point elements in "a" using values from "b", and store the results in "dst". + [round_note] + DEFINE SCALE(src1, src2) { + IF (src2 == NaN) + IF (src2 == SNaN) + RETURN QNAN(src2) + FI + ELSE IF (src1 == NaN) + IF (src1 == SNaN) + RETURN QNAN(src1) + FI + IF (src2 != INF) + RETURN QNAN(src1) + FI + ELSE + tmp_src2 := src2 + tmp_src1 := src1 + IF (IS_DENORMAL(src2) AND MXCSR.DAZ) + tmp_src2 := 0 + FI + IF (IS_DENORMAL(src1) AND MXCSR.DAZ) + tmp_src1 := 0 + FI + FI + dst[63:0] := tmp_src1[63:0] * POW(2.0, FLOOR(tmp_src2[63:0])) + RETURN dst[63:0] +} +FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := SCALE(a[i+63:0], b[i+63:i]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + + Scale the packed single-precision (32-bit) floating-point elements in "a" using values from "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + DEFINE SCALE(src1, src2) { + IF (src2 == NaN) + IF (src2 == SNaN) + RETURN QNAN(src2) + FI + ELSE IF (src1 == NaN) + IF (src1 == SNaN) + RETURN QNAN(src1) + FI + IF (src2 != INF) + RETURN QNAN(src1) + FI + ELSE + tmp_src2 := src2 + tmp_src1 := src1 + IF (IS_DENORMAL(src2) AND MXCSR.DAZ) + tmp_src2 := 0 + FI + IF (IS_DENORMAL(src1) AND MXCSR.DAZ) + tmp_src1 := 0 + FI + FI + dst[31:0] := tmp_src1[31:0] * POW(2.0, FLOOR(tmp_src2[31:0])) + RETURN dst[31:0] +} +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := SCALE(a[i+31:0], b[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + + + Scale the packed single-precision (32-bit) floating-point elements in "a" using values from "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + [round_note] + DEFINE SCALE(src1, src2) { + IF (src2 == NaN) + IF (src2 == SNaN) + RETURN QNAN(src2) + FI + ELSE IF (src1 == NaN) + IF (src1 == SNaN) + RETURN QNAN(src1) + FI + IF (src2 != INF) + RETURN QNAN(src1) + FI + ELSE + tmp_src2 := src2 + tmp_src1 := src1 + IF (IS_DENORMAL(src2) AND MXCSR.DAZ) + tmp_src2 := 0 + FI + IF (IS_DENORMAL(src1) AND MXCSR.DAZ) + tmp_src1 := 0 + FI + FI + dst[31:0] := tmp_src1[31:0] * POW(2.0, FLOOR(tmp_src2[31:0])) + RETURN dst[31:0] +} +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := SCALE(a[i+31:0], b[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + Scale the packed single-precision (32-bit) floating-point elements in "a" using values from "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + DEFINE SCALE(src1, src2) { + IF (src2 == NaN) + IF (src2 == SNaN) + RETURN QNAN(src2) + FI + ELSE IF (src1 == NaN) + IF (src1 == SNaN) + RETURN QNAN(src1) + FI + IF (src2 != INF) + RETURN QNAN(src1) + FI + ELSE + tmp_src2 := src2 + tmp_src1 := src1 + IF (IS_DENORMAL(src2) AND MXCSR.DAZ) + tmp_src2 := 0 + FI + IF (IS_DENORMAL(src1) AND MXCSR.DAZ) + tmp_src1 := 0 + FI + FI + dst[31:0] := tmp_src1[31:0] * POW(2.0, FLOOR(tmp_src2[31:0])) + RETURN dst[31:0] +} +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := SCALE(a[i+31:0], b[i+31:i]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + + Scale the packed single-precision (32-bit) floating-point elements in "a" using values from "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + [round_note] + DEFINE SCALE(src1, src2) { + IF (src2 == NaN) + IF (src2 == SNaN) + RETURN QNAN(src2) + FI + ELSE IF (src1 == NaN) + IF (src1 == SNaN) + RETURN QNAN(src1) + FI + IF (src2 != INF) + RETURN QNAN(src1) + FI + ELSE + tmp_src2 := src2 + tmp_src1 := src1 + IF (IS_DENORMAL(src2) AND MXCSR.DAZ) + tmp_src2 := 0 + FI + IF (IS_DENORMAL(src1) AND MXCSR.DAZ) + tmp_src1 := 0 + FI + FI + dst[31:0] := tmp_src1[31:0] * POW(2.0, FLOOR(tmp_src2[31:0])) + RETURN dst[31:0] +} +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := SCALE(a[i+31:0], b[i+31:i]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + Scale the packed single-precision (32-bit) floating-point elements in "a" using values from "b", and store the results in "dst". + DEFINE SCALE(src1, src2) { + IF (src2 == NaN) + IF (src2 == SNaN) + RETURN QNAN(src2) + FI + ELSE IF (src1 == NaN) + IF (src1 == SNaN) + RETURN QNAN(src1) + FI + IF (src2 != INF) + RETURN QNAN(src1) + FI + ELSE + tmp_src2 := src2 + tmp_src1 := src1 + IF (IS_DENORMAL(src2) AND MXCSR.DAZ) + tmp_src2 := 0 + FI + IF (IS_DENORMAL(src1) AND MXCSR.DAZ) + tmp_src1 := 0 + FI + FI + dst[31:0] := tmp_src1[31:0] * POW(2.0, FLOOR(tmp_src2[31:0])) + RETURN dst[31:0] +} +FOR j := 0 to 15 + i := j*32 + dst[i+31:i] := SCALE(a[i+31:0], b[i+31:i]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + Scale the packed single-precision (32-bit) floating-point elements in "a" using values from "b", and store the results in "dst". + [round_note] + DEFINE SCALE(src1, src2) { + IF (src2 == NaN) + IF (src2 == SNaN) + RETURN QNAN(src2) + FI + ELSE IF (src1 == NaN) + IF (src1 == SNaN) + RETURN QNAN(src1) + FI + IF (src2 != INF) + RETURN QNAN(src1) + FI + ELSE + tmp_src2 := src2 + tmp_src1 := src1 + IF (IS_DENORMAL(src2) AND MXCSR.DAZ) + tmp_src2 := 0 + FI + IF (IS_DENORMAL(src1) AND MXCSR.DAZ) + tmp_src1 := 0 + FI + FI + dst[31:0] := tmp_src1[31:0] * POW(2.0, FLOOR(tmp_src2[31:0])) + RETURN dst[31:0] +} +FOR j := 0 to 15 + i := j*32 + dst[i+31:i] := SCALE(a[i+31:0], b[i+31:i]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + + + Scale the packed double-precision (64-bit) floating-point elements in "a" using values from "b", store the result in the lower element of "dst" using writemask "k" (the element is copied from "src" when mask bit 0 is not set), and copy the upper element from "a" to the upper element of "dst". + [round_note] + DEFINE SCALE(src1, src2) { + IF (src2 == NaN) + IF (src2 == SNaN) + RETURN QNAN(src2) + FI + ELSE IF (src1 == NaN) + IF (src1 == SNaN) + RETURN QNAN(src1) + FI + IF (src2 != INF) + RETURN QNAN(src1) + FI + ELSE + tmp_src2 := src2 + tmp_src1 := src1 + IF (IS_DENORMAL(src2) AND MXCSR.DAZ) + tmp_src2 := 0 + FI + IF (IS_DENORMAL(src1) AND MXCSR.DAZ) + tmp_src1 := 0 + FI + FI + dst[63:0] := tmp_src1[63:0] * POW(2.0, FLOOR(tmp_src2[63:0])) + RETURN dst[63:0] +} +IF k[0] + dst[63:0] := SCALE(a[63:0], b[63:0]) +ELSE + dst[63:0] := src[63:0] +FI +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + + Scale the packed double-precision (64-bit) floating-point elements in "a" using values from "b", store the result in the lower element of "dst" using writemask "k" (the element is copied from "src" when mask bit 0 is not set), and copy the upper element from "a" to the upper element of "dst". + DEFINE SCALE(src1, src2) { + IF (src2 == NaN) + IF (src2 == SNaN) + RETURN QNAN(src2) + FI + ELSE IF (src1 == NaN) + IF (src1 == SNaN) + RETURN QNAN(src1) + FI + IF (src2 != INF) + RETURN QNAN(src1) + FI + ELSE + tmp_src2 := src2 + tmp_src1 := src1 + IF (IS_DENORMAL(src2) AND MXCSR.DAZ) + tmp_src2 := 0 + FI + IF (IS_DENORMAL(src1) AND MXCSR.DAZ) + tmp_src1 := 0 + FI + FI + dst[63:0] := tmp_src1[63:0] * POW(2.0, FLOOR(tmp_src2[63:0])) + RETURN dst[63:0] +} +IF k[0] + dst[63:0] := SCALE(a[63:0], b[63:0]) +ELSE + dst[63:0] := src[63:0] +FI +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + + Scale the packed double-precision (64-bit) floating-point elements in "a" using values from "b", store the result in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper element from "a" to the upper element of "dst". + [round_note] + DEFINE SCALE(src1, src2) { + IF (src2 == NaN) + IF (src2 == SNaN) + RETURN QNAN(src2) + FI + ELSE IF (src1 == NaN) + IF (src1 == SNaN) + RETURN QNAN(src1) + FI + IF (src2 != INF) + RETURN QNAN(src1) + FI + ELSE + tmp_src2 := src2 + tmp_src1 := src1 + IF (IS_DENORMAL(src2) AND MXCSR.DAZ) + tmp_src2 := 0 + FI + IF (IS_DENORMAL(src1) AND MXCSR.DAZ) + tmp_src1 := 0 + FI + FI + dst[63:0] := tmp_src1[63:0] * POW(2.0, FLOOR(tmp_src2[63:0])) + RETURN dst[63:0] +} +IF k[0] + dst[63:0] := SCALE(a[63:0], b[63:0]) +ELSE + dst[63:0] := 0 +FI +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + Scale the packed double-precision (64-bit) floating-point elements in "a" using values from "b", store the result in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper element from "a" to the upper element of "dst". + DEFINE SCALE(src1, src2) { + IF (src2 == NaN) + IF (src2 == SNaN) + RETURN QNAN(src2) + FI + ELSE IF (src1 == NaN) + IF (src1 == SNaN) + RETURN QNAN(src1) + FI + IF (src2 != INF) + RETURN QNAN(src1) + FI + ELSE + tmp_src2 := src2 + tmp_src1 := src1 + IF (IS_DENORMAL(src2) AND MXCSR.DAZ) + tmp_src2 := 0 + FI + IF (IS_DENORMAL(src1) AND MXCSR.DAZ) + tmp_src1 := 0 + FI + FI + dst[63:0] := tmp_src1[63:0] * POW(2.0, FLOOR(tmp_src2[63:0])) + RETURN dst[63:0] +} +IF k[0] + dst[63:0] := SCALE(a[63:0], b[63:0]) +ELSE + dst[63:0] := 0 +FI +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + Scale the packed double-precision (64-bit) floating-point elements in "a" using values from "b", store the result in the lower element of "dst", and copy the upper element from "a" to the upper element of "dst". + [round_note] + DEFINE SCALE(src1, src2) { + IF (src2 == NaN) + IF (src2 == SNaN) + RETURN QNAN(src2) + FI + ELSE IF (src1 == NaN) + IF (src1 == SNaN) + RETURN QNAN(src1) + FI + IF (src2 != INF) + RETURN QNAN(src1) + FI + ELSE + tmp_src2 := src2 + tmp_src1 := src1 + IF (IS_DENORMAL(src2) AND MXCSR.DAZ) + tmp_src2 := 0 + FI + IF (IS_DENORMAL(src1) AND MXCSR.DAZ) + tmp_src1 := 0 + FI + FI + dst[63:0] := tmp_src1[63:0] * POW(2.0, FLOOR(tmp_src2[63:0])) + RETURN dst[63:0] +} +dst[63:0] := SCALE(a[63:0], b[63:0]) +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + Scale the packed double-precision (64-bit) floating-point elements in "a" using values from "b", store the result in the lower element of "dst", and copy the upper element from "a" to the upper element of "dst". + DEFINE SCALE(src1, src2) { + IF (src2 == NaN) + IF (src2 == SNaN) + RETURN QNAN(src2) + FI + ELSE IF (src1 == NaN) + IF (src1 == SNaN) + RETURN QNAN(src1) + FI + IF (src2 != INF) + RETURN QNAN(src1) + FI + ELSE + tmp_src2 := src2 + tmp_src1 := src1 + IF (IS_DENORMAL(src2) AND MXCSR.DAZ) + tmp_src2 := 0 + FI + IF (IS_DENORMAL(src1) AND MXCSR.DAZ) + tmp_src1 := 0 + FI + FI + dst[63:0] := tmp_src1[63:0] * POW(2.0, FLOOR(tmp_src2[63:0])) + RETURN dst[63:0] +} +dst[63:0] := SCALE(a[63:0], b[63:0]) +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + + + Scale the packed single-precision (32-bit) floating-point elements in "a" using values from "b", store the result in the lower element of "dst" using writemask "k" (the element is copied from "src" when mask bit 0 is not set), and copy the upper 3 packed elements from "a" to the upper elements of "dst". + [round_note] + DEFINE SCALE(src1, src2) { + IF (src2 == NaN) + IF (src2 == SNaN) + RETURN QNAN(src2) + FI + ELSE IF (src1 == NaN) + IF (src1 == SNaN) + RETURN QNAN(src1) + FI + IF (src2 != INF) + RETURN QNAN(src1) + FI + ELSE + tmp_src2 := src2 + tmp_src1 := src1 + IF (IS_DENORMAL(src2) AND MXCSR.DAZ) + tmp_src2 := 0 + FI + IF (IS_DENORMAL(src1) AND MXCSR.DAZ) + tmp_src1 := 0 + FI + FI + dst[31:0] := tmp_src1[31:0] * POW(2.0, FLOOR(tmp_src2[31:0])) + RETURN dst[63:0] +} +IF k[0] + dst[31:0] := SCALE(a[31:0], b[31:0]) +ELSE + dst[31:0] := src[31:0] +FI +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + + Scale the packed single-precision (32-bit) floating-point elements in "a" using values from "b", store the result in the lower element of "dst" using writemask "k" (the element is copied from "src" when mask bit 0 is not set), and copy the upper 3 packed elements from "a" to the upper elements of "dst". + DEFINE SCALE(src1, src2) { + IF (src2 == NaN) + IF (src2 == SNaN) + RETURN QNAN(src2) + FI + ELSE IF (src1 == NaN) + IF (src1 == SNaN) + RETURN QNAN(src1) + FI + IF (src2 != INF) + RETURN QNAN(src1) + FI + ELSE + tmp_src2 := src2 + tmp_src1 := src1 + IF (IS_DENORMAL(src2) AND MXCSR.DAZ) + tmp_src2 := 0 + FI + IF (IS_DENORMAL(src1) AND MXCSR.DAZ) + tmp_src1 := 0 + FI + FI + dst[31:0] := tmp_src1[31:0] * POW(2.0, FLOOR(tmp_src2[31:0])) + RETURN dst[63:0] +} +IF k[0] + dst[31:0] := SCALE(a[31:0], b[31:0]) +ELSE + dst[31:0] := src[31:0] +FI +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + + Scale the packed single-precision (32-bit) floating-point elements in "a" using values from "b", store the result in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper 3 packed elements from "a" to the upper elements of "dst". + [round_note] + DEFINE SCALE(src1, src2) { + IF (src2 == NaN) + IF (src2 == SNaN) + RETURN QNAN(src2) + FI + ELSE IF (src1 == NaN) + IF (src1 == SNaN) + RETURN QNAN(src1) + FI + IF (src2 != INF) + RETURN QNAN(src1) + FI + ELSE + tmp_src2 := src2 + tmp_src1 := src1 + IF (IS_DENORMAL(src2) AND MXCSR.DAZ) + tmp_src2 := 0 + FI + IF (IS_DENORMAL(src1) AND MXCSR.DAZ) + tmp_src1 := 0 + FI + FI + dst[31:0] := tmp_src1[31:0] * POW(2.0, FLOOR(tmp_src2[31:0])) + RETURN dst[63:0] +} +IF k[0] + dst[31:0] := SCALE(a[31:0], b[31:0]) +ELSE + dst[31:0] := 0 +FI +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + Scale the packed single-precision (32-bit) floating-point elements in "a" using values from "b", store the result in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper 3 packed elements from "a" to the upper elements of "dst". + DEFINE SCALE(src1, src2) { + IF (src2 == NaN) + IF (src2 == SNaN) + RETURN QNAN(src2) + FI + ELSE IF (src1 == NaN) + IF (src1 == SNaN) + RETURN QNAN(src1) + FI + IF (src2 != INF) + RETURN QNAN(src1) + FI + ELSE + tmp_src2 := src2 + tmp_src1 := src1 + IF (IS_DENORMAL(src2) AND MXCSR.DAZ) + tmp_src2 := 0 + FI + IF (IS_DENORMAL(src1) AND MXCSR.DAZ) + tmp_src1 := 0 + FI + FI + dst[31:0] := tmp_src1[31:0] * POW(2.0, FLOOR(tmp_src2[31:0])) + RETURN dst[63:0] +} +IF k[0] + dst[31:0] := SCALE(a[31:0], b[31:0]) +ELSE + dst[31:0] := 0 +FI +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + Scale the packed single-precision (32-bit) floating-point elements in "a" using values from "b", store the result in the lower element of "dst", and copy the upper 3 packed elements from "a" to the upper elements of "dst". + [round_note] + DEFINE SCALE(src1, src2) { + IF (src2 == NaN) + IF (src2 == SNaN) + RETURN QNAN(src2) + FI + ELSE IF (src1 == NaN) + IF (src1 == SNaN) + RETURN QNAN(src1) + FI + IF (src2 != INF) + RETURN QNAN(src1) + FI + ELSE + tmp_src2 := src2 + tmp_src1 := src1 + IF (IS_DENORMAL(src2) AND MXCSR.DAZ) + tmp_src2 := 0 + FI + IF (IS_DENORMAL(src1) AND MXCSR.DAZ) + tmp_src1 := 0 + FI + FI + dst[31:0] := tmp_src1[31:0] * POW(2.0, FLOOR(tmp_src2[31:0])) + RETURN dst[63:0] +} +dst[31:0] := SCALE(a[31:0], b[31:0]) +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + Scale the packed single-precision (32-bit) floating-point elements in "a" using values from "b", store the result in the lower element of "dst", and copy the upper 3 packed elements from "a" to the upper elements of "dst". + DEFINE SCALE(src1, src2) { + IF (src2 == NaN) + IF (src2 == SNaN) + RETURN QNAN(src2) + FI + ELSE IF (src1 == NaN) + IF (src1 == SNaN) + RETURN QNAN(src1) + FI + IF (src2 != INF) + RETURN QNAN(src1) + FI + ELSE + tmp_src2 := src2 + tmp_src1 := src1 + IF (IS_DENORMAL(src2) AND MXCSR.DAZ) + tmp_src2 := 0 + FI + IF (IS_DENORMAL(src1) AND MXCSR.DAZ) + tmp_src1 := 0 + FI + FI + dst[31:0] := tmp_src1[31:0] * POW(2.0, FLOOR(tmp_src2[31:0])) + RETURN dst[63:0] +} +dst[31:0] := SCALE(a[31:0], b[31:0]) +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + Broadcast the 4 packed single-precision (32-bit) floating-point elements from "a" to all elements of "dst". + +FOR j := 0 to 15 + i := j*32 + n := (j % 4)*32 + dst[i+31:i] := a[n+31:n] +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + Broadcast the 4 packed single-precision (32-bit) floating-point elements from "a" to all elements of "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + n := (j % 4)*32 + IF k[j] + dst[i+31:i] := a[n+31:n] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + Broadcast the 4 packed single-precision (32-bit) floating-point elements from "a" to all elements of "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + n := (j % 4)*32 + IF k[j] + dst[i+31:i] := a[n+31:n] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + Broadcast the 4 packed double-precision (64-bit) floating-point elements from "a" to all elements of "dst". + +FOR j := 0 to 7 + i := j*64 + n := (j % 4)*64 + dst[i+63:i] := a[n+63:n] +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + Broadcast the 4 packed double-precision (64-bit) floating-point elements from "a" to all elements of "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + n := (j % 4)*64 + IF k[j] + dst[i+63:i] := a[n+63:n] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + Broadcast the 4 packed double-precision (64-bit) floating-point elements from "a" to all elements of "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + n := (j % 4)*64 + IF k[j] + dst[i+63:i] := a[n+63:n] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + Broadcast the 4 packed 32-bit integers from "a" to all elements of "dst". + +FOR j := 0 to 15 + i := j*32 + n := (j % 4)*32 + dst[i+31:i] := a[n+31:n] +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + Broadcast the 4 packed 32-bit integers from "a" to all elements of "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + n := (j % 4)*32 + IF k[j] + dst[i+31:i] := a[n+31:n] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + Broadcast the 4 packed 32-bit integers from "a" to all elements of "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + n := (j % 4)*32 + IF k[j] + dst[i+31:i] := a[n+31:n] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + Broadcast the 4 packed 64-bit integers from "a" to all elements of "dst". + +FOR j := 0 to 7 + i := j*64 + n := (j % 4)*64 + dst[i+63:i] := a[n+63:n] +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + Broadcast the 4 packed 64-bit integers from "a" to all elements of "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + n := (j % 4)*64 + IF k[j] + dst[i+63:i] := a[n+63:n] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + Broadcast the 4 packed 64-bit integers from "a" to all elements of "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + n := (j % 4)*64 + IF k[j] + dst[i+63:i] := a[n+63:n] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + Broadcast the low double-precision (64-bit) floating-point element from "a" to all elements of "dst". + +FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := a[63:0] +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + Broadcast the low double-precision (64-bit) floating-point element from "a" to all elements of "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := a[63:0] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + Broadcast the low double-precision (64-bit) floating-point element from "a" to all elements of "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := a[63:0] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + Broadcast the low single-precision (32-bit) floating-point element from "a" to all elements of "dst". + +FOR j := 0 to 15 + i := j*32 + dst[i+31:i] := a[31:0] +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + Broadcast the low single-precision (32-bit) floating-point element from "a" to all elements of "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := a[31:0] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + Broadcast the low single-precision (32-bit) floating-point element from "a" to all elements of "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := a[31:0] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + Contiguously store the active double-precision (64-bit) floating-point elements in "a" (those with their respective bit set in writemask "k") to "dst", and pass through the remaining elements from "src". + +size := 64 +m := 0 +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[m+size-1:m] := a[i+63:i] + m := m + size + FI +ENDFOR +dst[511:m] := src[511:m] +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + Contiguously store the active double-precision (64-bit) floating-point elements in "a" (those with their respective bit set in zeromask "k") to "dst", and set the remaining elements to zero. + +size := 64 +m := 0 +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[m+size-1:m] := a[i+63:i] + m := m + size + FI +ENDFOR +dst[511:m] := 0 +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + Contiguously store the active single-precision (32-bit) floating-point elements in "a" (those with their respective bit set in writemask "k") to "dst", and pass through the remaining elements from "src". + +size := 32 +m := 0 +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[m+size-1:m] := a[i+31:i] + m := m + size + FI +ENDFOR +dst[511:m] := src[511:m] +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + Contiguously store the active single-precision (32-bit) floating-point elements in "a" (those with their respective bit set in zeromask "k") to "dst", and set the remaining elements to zero. + +size := 32 +m := 0 +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[m+size-1:m] := a[i+31:i] + m := m + size + FI +ENDFOR +dst[511:m] := 0 +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + Load contiguous active double-precision (64-bit) floating-point elements from "a" (those with their respective bit set in mask "k"), and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +m := 0 +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := a[m+63:m] + m := m + 64 + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + Load contiguous active double-precision (64-bit) floating-point elements from "a" (those with their respective bit set in mask "k"), and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +m := 0 +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := a[m+63:m] + m := m + 64 + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + Load contiguous active single-precision (32-bit) floating-point elements from "a" (those with their respective bit set in mask "k"), and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +m := 0 +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := a[m+31:m] + m := m + 32 + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + Load contiguous active single-precision (32-bit) floating-point elements from "a" (those with their respective bit set in mask "k"), and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +m := 0 +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := a[m+31:m] + m := m + 32 + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + Extract 128 bits (composed of 4 packed single-precision (32-bit) floating-point elements) from "a", selected with "imm8", and store the result in "dst". + +CASE imm8[1:0] OF +0: dst[127:0] := a[127:0] +1: dst[127:0] := a[255:128] +2: dst[127:0] := a[383:256] +3: dst[127:0] := a[511:384] +ESAC +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + + Extract 128 bits (composed of 4 packed single-precision (32-bit) floating-point elements) from "a", selected with "imm8", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +CASE imm8[1:0] OF +0: tmp[127:0] := a[127:0] +1: tmp[127:0] := a[255:128] +2: tmp[127:0] := a[383:256] +3: tmp[127:0] := a[511:384] +ESAC +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := tmp[i+31:i] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + Extract 128 bits (composed of 4 packed single-precision (32-bit) floating-point elements) from "a", selected with "imm8", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +CASE imm8[1:0] OF +0: tmp[127:0] := a[127:0] +1: tmp[127:0] := a[255:128] +2: tmp[127:0] := a[383:256] +3: tmp[127:0] := a[511:384] +ESAC +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := tmp[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + Extract 256 bits (composed of 4 packed double-precision (64-bit) floating-point elements) from "a", selected with "imm8", and store the result in "dst". + +CASE imm8[0] OF +0: dst[255:0] := a[255:0] +1: dst[255:0] := a[511:256] +ESAC +dst[MAX:256] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + + Extract 256 bits (composed of 4 packed double-precision (64-bit) floating-point elements) from "a", selected with "imm8", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +CASE imm8[0] OF +0: tmp[255:0] := a[255:0] +1: tmp[255:0] := a[511:256] +ESAC +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := tmp[i+63:i] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + Extract 256 bits (composed of 4 packed double-precision (64-bit) floating-point elements) from "a", selected with "imm8", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +CASE imm8[0] OF +0: tmp[255:0] := a[255:0] +1: tmp[255:0] := a[511:256] +ESAC +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := tmp[i+63:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + Extract 128 bits (composed of 4 packed 32-bit integers) from "a", selected with "imm8", and store the result in "dst". + +CASE imm8[1:0] OF +0: dst[127:0] := a[127:0] +1: dst[127:0] := a[255:128] +2: dst[127:0] := a[383:256] +3: dst[127:0] := a[511:384] +ESAC +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + + Extract 128 bits (composed of 4 packed 32-bit integers) from "a", selected with "imm8", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +CASE imm8[1:0] OF +0: tmp[127:0] := a[127:0] +1: tmp[127:0] := a[255:128] +2: tmp[127:0] := a[383:256] +3: tmp[127:0] := a[511:384] +ESAC +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := tmp[i+31:i] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + Extract 128 bits (composed of 4 packed 32-bit integers) from "a", selected with "imm8", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +CASE imm8[1:0] OF +0: tmp[127:0] := a[127:0] +1: tmp[127:0] := a[255:128] +2: tmp[127:0] := a[383:256] +3: tmp[127:0] := a[511:384] +ESAC +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := tmp[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + Extract 256 bits (composed of 4 packed 64-bit integers) from "a", selected with "imm8", and store the result in "dst". + +CASE imm8[0] OF +0: dst[255:0] := a[255:0] +1: dst[255:0] := a[511:256] +ESAC +dst[MAX:256] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + + Extract 256 bits (composed of 4 packed 64-bit integers) from "a", selected with "imm8", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +CASE imm8[0] OF +0: tmp[255:0] := a[255:0] +1: tmp[255:0] := a[511:256] +ESAC +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := tmp[i+63:i] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + Extract 256 bits (composed of 4 packed 64-bit integers) from "a", selected with "imm8", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +CASE imm8[0] OF +0: tmp[255:0] := a[255:0] +1: tmp[255:0] := a[511:256] +ESAC +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := tmp[i+63:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + Copy "a" to "dst", then insert 128 bits (composed of 4 packed single-precision (32-bit) floating-point elements) from "b" into "dst" at the location specified by "imm8". + +dst[511:0] := a[511:0] +CASE (imm8[1:0]) OF +0: dst[127:0] := b[127:0] +1: dst[255:128] := b[127:0] +2: dst[383:256] := b[127:0] +3: dst[511:384] := b[127:0] +ESAC +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + + + Copy "a" to "tmp", then insert 128 bits (composed of 4 packed single-precision (32-bit) floating-point elements) from "b" into "tmp" at the location specified by "imm8". Store "tmp" to "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +tmp[511:0] := a[511:0] +CASE (imm8[1:0]) OF +0: tmp[127:0] := b[127:0] +1: tmp[255:128] := b[127:0] +2: tmp[383:256] := b[127:0] +3: tmp[511:384] := b[127:0] +ESAC +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := tmp[i+31:i] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + + Copy "a" to "tmp", then insert 128 bits (composed of 4 packed single-precision (32-bit) floating-point elements) from "b" into "tmp" at the location specified by "imm8". Store "tmp" to "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +tmp[511:0] := a[511:0] +CASE (imm8[1:0]) OF +0: tmp[127:0] := b[127:0] +1: tmp[255:128] := b[127:0] +2: tmp[383:256] := b[127:0] +3: tmp[511:384] := b[127:0] +ESAC +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := tmp[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + Copy "a" to "dst", then insert 256 bits (composed of 4 packed double-precision (64-bit) floating-point elements) from "b" into "dst" at the location specified by "imm8". + +dst[511:0] := a[511:0] +CASE (imm8[0]) OF +0: dst[255:0] := b[255:0] +1: dst[511:256] := b[255:0] +ESAC +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + + + Copy "a" to "tmp", then insert 256 bits (composed of 4 packed double-precision (64-bit) floating-point elements) from "b" into "tmp" at the location specified by "imm8". Store "tmp" to "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +tmp[511:0] := a[511:0] +CASE (imm8[0]) OF +0: tmp[255:0] := b[255:0] +1: tmp[511:256] := b[255:0] +ESAC +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := tmp[i+63:i] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + + Copy "a" to "tmp", then insert 256 bits (composed of 4 packed double-precision (64-bit) floating-point elements) from "b" into "tmp" at the location specified by "imm8". Store "tmp" to "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +tmp[511:0] := a[511:0] +CASE (imm8[0]) OF +0: tmp[255:0] := b[255:0] +1: tmp[511:256] := b[255:0] +ESAC +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := tmp[i+63:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + Copy "a" to "dst", then insert 128 bits (composed of 4 packed 32-bit integers) from "b" into "dst" at the location specified by "imm8". + +dst[511:0] := a[511:0] +CASE (imm8[1:0]) OF +0: dst[127:0] := b[127:0] +1: dst[255:128] := b[127:0] +2: dst[383:256] := b[127:0] +3: dst[511:384] := b[127:0] +ESAC +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + + + Copy "a" to "tmp", then insert 128 bits (composed of 4 packed 32-bit integers) from "b" into "tmp" at the location specified by "imm8". Store "tmp" to "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +tmp[511:0] := a[511:0] +CASE (imm8[1:0]) OF +0: tmp[127:0] := b[127:0] +1: tmp[255:128] := b[127:0] +2: tmp[383:256] := b[127:0] +3: tmp[511:384] := b[127:0] +ESAC +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := tmp[i+31:i] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + + Copy "a" to "tmp", then insert 128 bits (composed of 4 packed 32-bit integers) from "b" into "tmp" at the location specified by "imm8". Store "tmp" to "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +tmp[511:0] := a[511:0] +CASE (imm8[1:0]) OF +0: tmp[127:0] := b[127:0] +1: tmp[255:128] := b[127:0] +2: tmp[383:256] := b[127:0] +3: tmp[511:384] := b[127:0] +ESAC +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := tmp[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + Copy "a" to "dst", then insert 256 bits (composed of 4 packed 64-bit integers) from "b" into "dst" at the location specified by "imm8". + +dst[511:0] := a[511:0] +CASE (imm8[0]) OF +0: dst[255:0] := b[255:0] +1: dst[511:256] := b[255:0] +ESAC +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + + + Copy "a" to "tmp", then insert 256 bits (composed of 4 packed 64-bit integers) from "b" into "tmp" at the location specified by "imm8". Store "tmp" to "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +tmp[511:0] := a[511:0] +CASE (imm8[0]) OF +0: tmp[255:0] := b[255:0] +1: tmp[511:256] := b[255:0] +ESAC +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := tmp[i+63:i] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + + Copy "a" to "tmp", then insert 256 bits (composed of 4 packed 64-bit integers) from "b" into "tmp" at the location specified by "imm8". Store "tmp" to "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +tmp[511:0] := a[511:0] +CASE (imm8[0]) OF +0: tmp[255:0] := b[255:0] +1: tmp[511:256] := b[255:0] +ESAC +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := tmp[i+63:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + Broadcast the low packed 32-bit integer from "a" to all elements of "dst". + +FOR j := 0 to 15 + i := j*32 + dst[i+31:i] := a[31:0] +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + Broadcast the low packed 32-bit integer from "a" to all elements of "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := a[31:0] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + Broadcast the low packed 32-bit integer from "a" to all elements of "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := a[31:0] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + Broadcast the low packed 64-bit integer from "a" to all elements of "dst". + +FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := a[63:0] +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + Broadcast the low packed 64-bit integer from "a" to all elements of "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := a[63:0] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + Broadcast the low packed 64-bit integer from "a" to all elements of "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := a[63:0] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + Contiguously store the active 32-bit integers in "a" (those with their respective bit set in writemask "k") to "dst", and pass through the remaining elements from "src". + +size := 32 +m := 0 +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[m+size-1:m] := a[i+31:i] + m := m + size + FI +ENDFOR +dst[511:m] := src[511:m] +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + Contiguously store the active 32-bit integers in "a" (those with their respective bit set in zeromask "k") to "dst", and set the remaining elements to zero. + +size := 32 +m := 0 +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[m+size-1:m] := a[i+31:i] + m := m + size + FI +ENDFOR +dst[511:m] := 0 +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + Contiguously store the active 64-bit integers in "a" (those with their respective bit set in writemask "k") to "dst", and pass through the remaining elements from "src". + +size := 64 +m := 0 +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[m+size-1:m] := a[i+63:i] + m := m + size + FI +ENDFOR +dst[511:m] := src[511:m] +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + Contiguously store the active 64-bit integers in "a" (those with their respective bit set in zeromask "k") to "dst", and set the remaining elements to zero. + +size := 64 +m := 0 +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[m+size-1:m] := a[i+63:i] + m := m + size + FI +ENDFOR +dst[511:m] := 0 +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + + Shuffle 32-bit integers in "a" across lanes using the corresponding index in "idx", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + id := idx[i+3:i]*32 + IF k[j] + dst[i+31:i] := a[id+31:id] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + Shuffle 32-bit integers in "a" across lanes using the corresponding index in "idx", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + id := idx[i+3:i]*32 + IF k[j] + dst[i+31:i] := a[id+31:id] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + Shuffle 32-bit integers in "a" across lanes using the corresponding index in "idx", and store the results in "dst". + +FOR j := 0 to 15 + i := j*32 + id := idx[i+3:i]*32 + dst[i+31:i] := a[id+31:id] +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + + Shuffle 32-bit integers in "a" and "b" across lanes using the corresponding selector and index in "idx", and store the results in "dst" using writemask "k" (elements are copied from "idx" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + off := idx[i+3:i]*32 + IF k[j] + dst[i+31:i] := idx[i+4] ? b[off+31:off] : a[off+31:off] + ELSE + dst[i+31:i] := idx[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + + Shuffle 32-bit integers in "a" and "b" across lanes using the corresponding selector and index in "idx", and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + off := idx[i+3:i]*32 + IF k[j] + dst[i+31:i] := idx[i+4] ? b[off+31:off] : a[off+31:off] + ELSE + dst[i+31:i] := a[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + + Shuffle 32-bit integers in "a" and "b" across lanes using the corresponding selector and index in "idx", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + off := idx[i+3:i]*32 + IF k[j] + dst[i+31:i] := (idx[i+4]) ? b[off+31:off] : a[off+31:off] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + Shuffle 32-bit integers in "a" and "b" across lanes using the corresponding selector and index in "idx", and store the results in "dst". + +FOR j := 0 to 15 + i := j*32 + off := idx[i+3:i]*32 + dst[i+31:i] := idx[i+4] ? b[off+31:off] : a[off+31:off] +ENDFOR +dst[MAX:512] := 0 + + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + + Shuffle double-precision (64-bit) floating-point elements in "a" and "b" across lanes using the corresponding selector and index in "idx", and store the results in "dst" using writemask "k" (elements are copied from "idx" when the corresponding mask bit is not set) + +FOR j := 0 to 7 + i := j*64 + off := idx[i+2:i]*64 + IF k[j] + dst[i+63:i] := idx[i+3] ? b[off+63:off] : a[off+63:off] + ELSE + dst[i+63:i] := idx[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + + Shuffle double-precision (64-bit) floating-point elements in "a" and "b" across lanes using the corresponding selector and index in "idx", and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + off := idx[i+2:i]*64 + IF k[j] + dst[i+63:i] := idx[i+3] ? b[off+63:off] : a[off+63:off] + ELSE + dst[i+63:i] := a[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + + Shuffle double-precision (64-bit) floating-point elements in "a" and "b" across lanes using the corresponding selector and index in "idx", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + off := idx[i+2:i]*64 + IF k[j] + dst[i+63:i] := (idx[i+3]) ? b[off+63:off] : a[off+63:off] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + Shuffle double-precision (64-bit) floating-point elements in "a" and "b" across lanes using the corresponding selector and index in "idx", and store the results in "dst". + +FOR j := 0 to 7 + i := j*64 + off := idx[i+2:i]*64 + dst[i+63:i] := idx[i+3] ? b[off+63:off] : a[off+63:off] +ENDFOR +dst[MAX:512] := 0 + + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + + Shuffle single-precision (32-bit) floating-point elements in "a" and "b" across lanes using the corresponding selector and index in "idx", and store the results in "dst" using writemask "k" (elements are copied from "idx" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + off := idx[i+3:i]*32 + IF k[j] + dst[i+31:i] := idx[i+4] ? b[off+31:off] : a[off+31:off] + ELSE + dst[i+31:i] := idx[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + + Shuffle single-precision (32-bit) floating-point elements in "a" and "b" across lanes using the corresponding selector and index in "idx", and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + off := idx[i+3:i]*32 + IF k[j] + dst[i+31:i] := idx[i+4] ? b[off+31:off] : a[off+31:off] + ELSE + dst[i+31:i] := a[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + + Shuffle single-precision (32-bit) floating-point elements in "a" and "b" across lanes using the corresponding selector and index in "idx", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + off := idx[i+3:i]*32 + IF k[j] + dst[i+31:i] := (idx[i+4]) ? b[off+31:off] : a[off+31:off] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + Shuffle single-precision (32-bit) floating-point elements in "a" and "b" across lanes using the corresponding selector and index in "idx", and store the results in "dst". + +FOR j := 0 to 15 + i := j*32 + off := idx[i+3:i]*32 + dst[i+31:i] := idx[i+4] ? b[off+31:off] : a[off+31:off] +ENDFOR +dst[MAX:512] := 0 + + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + + Shuffle 64-bit integers in "a" and "b" across lanes using the corresponding selector and index in "idx", and store the results in "dst" using writemask "k" (elements are copied from "idx" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + off := idx[i+2:i]*64 + IF k[j] + dst[i+63:i] := idx[i+3] ? b[off+63:off] : a[off+63:off] + ELSE + dst[i+63:i] := idx[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + + Shuffle 64-bit integers in "a" and "b" across lanes using the corresponding selector and index in "idx", and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + off := idx[i+2:i]*64 + IF k[j] + dst[i+63:i] := idx[i+3] ? b[off+63:off] : a[off+63:off] + ELSE + dst[i+63:i] := a[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + + Shuffle 64-bit integers in "a" and "b" across lanes using the corresponding selector and index in "idx", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + off := idx[i+2:i]*64 + IF k[j] + dst[i+63:i] := (idx[i+3]) ? b[off+63:off] : a[off+63:off] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + Shuffle 64-bit integers in "a" and "b" across lanes using the corresponding selector and index in "idx", and store the results in "dst". + +FOR j := 0 to 7 + i := j*64 + off := idx[i+2:i]*64 + dst[i+63:i] := idx[i+3] ? b[off+63:off] : a[off+63:off] +ENDFOR +dst[MAX:512] := 0 + + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + + Shuffle double-precision (64-bit) floating-point elements in "a" within 128-bit lanes using the control in "imm8", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +IF (imm8[0] == 0) tmp_dst[63:0] := a[63:0]; FI +IF (imm8[0] == 1) tmp_dst[63:0] := a[127:64]; FI +IF (imm8[1] == 0) tmp_dst[127:64] := a[63:0]; FI +IF (imm8[1] == 1) tmp_dst[127:64] := a[127:64]; FI +IF (imm8[2] == 0) tmp_dst[191:128] := a[191:128]; FI +IF (imm8[2] == 1) tmp_dst[191:128] := a[255:192]; FI +IF (imm8[3] == 0) tmp_dst[255:192] := a[191:128]; FI +IF (imm8[3] == 1) tmp_dst[255:192] := a[255:192]; FI +IF (imm8[4] == 0) tmp_dst[319:256] := a[319:256]; FI +IF (imm8[4] == 1) tmp_dst[319:256] := a[383:320]; FI +IF (imm8[5] == 0) tmp_dst[383:320] := a[319:256]; FI +IF (imm8[5] == 1) tmp_dst[383:320] := a[383:320]; FI +IF (imm8[6] == 0) tmp_dst[447:384] := a[447:384]; FI +IF (imm8[6] == 1) tmp_dst[447:384] := a[511:448]; FI +IF (imm8[7] == 0) tmp_dst[511:448] := a[447:384]; FI +IF (imm8[7] == 1) tmp_dst[511:448] := a[511:448]; FI +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := tmp_dst[i+63:i] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + + Shuffle double-precision (64-bit) floating-point elements in "a" within 128-bit lanes using the control in "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +IF (b[1] == 0) tmp_dst[63:0] := a[63:0]; FI +IF (b[1] == 1) tmp_dst[63:0] := a[127:64]; FI +IF (b[65] == 0) tmp_dst[127:64] := a[63:0]; FI +IF (b[65] == 1) tmp_dst[127:64] := a[127:64]; FI +IF (b[129] == 0) tmp_dst[191:128] := a[191:128]; FI +IF (b[129] == 1) tmp_dst[191:128] := a[255:192]; FI +IF (b[193] == 0) tmp_dst[255:192] := a[191:128]; FI +IF (b[193] == 1) tmp_dst[255:192] := a[255:192]; FI +IF (b[257] == 0) tmp_dst[319:256] := a[319:256]; FI +IF (b[257] == 1) tmp_dst[319:256] := a[383:320]; FI +IF (b[321] == 0) tmp_dst[383:320] := a[319:256]; FI +IF (b[321] == 1) tmp_dst[383:320] := a[383:320]; FI +IF (b[385] == 0) tmp_dst[447:384] := a[447:384]; FI +IF (b[385] == 1) tmp_dst[447:384] := a[511:448]; FI +IF (b[449] == 0) tmp_dst[511:448] := a[447:384]; FI +IF (b[449] == 1) tmp_dst[511:448] := a[511:448]; FI +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := tmp_dst[i+63:i] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + Shuffle double-precision (64-bit) floating-point elements in "a" within 128-bit lanes using the control in "imm8", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +IF (imm8[0] == 0) tmp_dst[63:0] := a[63:0]; FI +IF (imm8[0] == 1) tmp_dst[63:0] := a[127:64]; FI +IF (imm8[1] == 0) tmp_dst[127:64] := a[63:0]; FI +IF (imm8[1] == 1) tmp_dst[127:64] := a[127:64]; FI +IF (imm8[2] == 0) tmp_dst[191:128] := a[191:128]; FI +IF (imm8[2] == 1) tmp_dst[191:128] := a[255:192]; FI +IF (imm8[3] == 0) tmp_dst[255:192] := a[191:128]; FI +IF (imm8[3] == 1) tmp_dst[255:192] := a[255:192]; FI +IF (imm8[4] == 0) tmp_dst[319:256] := a[319:256]; FI +IF (imm8[4] == 1) tmp_dst[319:256] := a[383:320]; FI +IF (imm8[5] == 0) tmp_dst[383:320] := a[319:256]; FI +IF (imm8[5] == 1) tmp_dst[383:320] := a[383:320]; FI +IF (imm8[6] == 0) tmp_dst[447:384] := a[447:384]; FI +IF (imm8[6] == 1) tmp_dst[447:384] := a[511:448]; FI +IF (imm8[7] == 0) tmp_dst[511:448] := a[447:384]; FI +IF (imm8[7] == 1) tmp_dst[511:448] := a[511:448]; FI +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := tmp_dst[i+63:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + Shuffle double-precision (64-bit) floating-point elements in "a" within 128-bit lanes using the control in "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +IF (b[1] == 0) tmp_dst[63:0] := a[63:0]; FI +IF (b[1] == 1) tmp_dst[63:0] := a[127:64]; FI +IF (b[65] == 0) tmp_dst[127:64] := a[63:0]; FI +IF (b[65] == 1) tmp_dst[127:64] := a[127:64]; FI +IF (b[129] == 0) tmp_dst[191:128] := a[191:128]; FI +IF (b[129] == 1) tmp_dst[191:128] := a[255:192]; FI +IF (b[193] == 0) tmp_dst[255:192] := a[191:128]; FI +IF (b[193] == 1) tmp_dst[255:192] := a[255:192]; FI +IF (b[257] == 0) tmp_dst[319:256] := a[319:256]; FI +IF (b[257] == 1) tmp_dst[319:256] := a[383:320]; FI +IF (b[321] == 0) tmp_dst[383:320] := a[319:256]; FI +IF (b[321] == 1) tmp_dst[383:320] := a[383:320]; FI +IF (b[385] == 0) tmp_dst[447:384] := a[447:384]; FI +IF (b[385] == 1) tmp_dst[447:384] := a[511:448]; FI +IF (b[449] == 0) tmp_dst[511:448] := a[447:384]; FI +IF (b[449] == 1) tmp_dst[511:448] := a[511:448]; FI +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := tmp_dst[i+63:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + Shuffle double-precision (64-bit) floating-point elements in "a" within 128-bit lanes using the control in "imm8", and store the results in "dst". + +IF (imm8[0] == 0) dst[63:0] := a[63:0]; FI +IF (imm8[0] == 1) dst[63:0] := a[127:64]; FI +IF (imm8[1] == 0) dst[127:64] := a[63:0]; FI +IF (imm8[1] == 1) dst[127:64] := a[127:64]; FI +IF (imm8[2] == 0) dst[191:128] := a[191:128]; FI +IF (imm8[2] == 1) dst[191:128] := a[255:192]; FI +IF (imm8[3] == 0) dst[255:192] := a[191:128]; FI +IF (imm8[3] == 1) dst[255:192] := a[255:192]; FI +IF (imm8[4] == 0) dst[319:256] := a[319:256]; FI +IF (imm8[4] == 1) dst[319:256] := a[383:320]; FI +IF (imm8[5] == 0) dst[383:320] := a[319:256]; FI +IF (imm8[5] == 1) dst[383:320] := a[383:320]; FI +IF (imm8[6] == 0) dst[447:384] := a[447:384]; FI +IF (imm8[6] == 1) dst[447:384] := a[511:448]; FI +IF (imm8[7] == 0) dst[511:448] := a[447:384]; FI +IF (imm8[7] == 1) dst[511:448] := a[511:448]; FI +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + Shuffle double-precision (64-bit) floating-point elements in "a" within 128-bit lanes using the control in "b", and store the results in "dst". + +IF (b[1] == 0) dst[63:0] := a[63:0]; FI +IF (b[1] == 1) dst[63:0] := a[127:64]; FI +IF (b[65] == 0) dst[127:64] := a[63:0]; FI +IF (b[65] == 1) dst[127:64] := a[127:64]; FI +IF (b[129] == 0) dst[191:128] := a[191:128]; FI +IF (b[129] == 1) dst[191:128] := a[255:192]; FI +IF (b[193] == 0) dst[255:192] := a[191:128]; FI +IF (b[193] == 1) dst[255:192] := a[255:192]; FI +IF (b[257] == 0) dst[319:256] := a[319:256]; FI +IF (b[257] == 1) dst[319:256] := a[383:320]; FI +IF (b[321] == 0) dst[383:320] := a[319:256]; FI +IF (b[321] == 1) dst[383:320] := a[383:320]; FI +IF (b[385] == 0) dst[447:384] := a[447:384]; FI +IF (b[385] == 1) dst[447:384] := a[511:448]; FI +IF (b[449] == 0) dst[511:448] := a[447:384]; FI +IF (b[449] == 1) dst[511:448] := a[511:448]; FI +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + + Shuffle single-precision (32-bit) floating-point elements in "a" within 128-bit lanes using the control in "imm8", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +DEFINE SELECT4(src, control) { + CASE(control[1:0]) OF + 0: tmp[31:0] := src[31:0] + 1: tmp[31:0] := src[63:32] + 2: tmp[31:0] := src[95:64] + 3: tmp[31:0] := src[127:96] + ESAC + RETURN tmp[31:0] +} +tmp_dst[31:0] := SELECT4(a[127:0], imm8[1:0]) +tmp_dst[63:32] := SELECT4(a[127:0], imm8[3:2]) +tmp_dst[95:64] := SELECT4(a[127:0], imm8[5:4]) +tmp_dst[127:96] := SELECT4(a[127:0], imm8[7:6]) +tmp_dst[159:128] := SELECT4(a[255:128], imm8[1:0]) +tmp_dst[191:160] := SELECT4(a[255:128], imm8[3:2]) +tmp_dst[223:192] := SELECT4(a[255:128], imm8[5:4]) +tmp_dst[255:224] := SELECT4(a[255:128], imm8[7:6]) +tmp_dst[287:256] := SELECT4(a[383:256], imm8[1:0]) +tmp_dst[319:288] := SELECT4(a[383:256], imm8[3:2]) +tmp_dst[351:320] := SELECT4(a[383:256], imm8[5:4]) +tmp_dst[383:352] := SELECT4(a[383:256], imm8[7:6]) +tmp_dst[415:384] := SELECT4(a[511:384], imm8[1:0]) +tmp_dst[447:416] := SELECT4(a[511:384], imm8[3:2]) +tmp_dst[479:448] := SELECT4(a[511:384], imm8[5:4]) +tmp_dst[511:480] := SELECT4(a[511:384], imm8[7:6]) +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := tmp_dst[i+31:i] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + + Shuffle single-precision (32-bit) floating-point elements in "a" within 128-bit lanes using the control in "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +DEFINE SELECT4(src, control) { + CASE(control[1:0]) OF + 0: tmp[31:0] := src[31:0] + 1: tmp[31:0] := src[63:32] + 2: tmp[31:0] := src[95:64] + 3: tmp[31:0] := src[127:96] + ESAC + RETURN tmp[31:0] +} +tmp_dst[31:0] := SELECT4(a[127:0], b[1:0]) +tmp_dst[63:32] := SELECT4(a[127:0], b[33:32]) +tmp_dst[95:64] := SELECT4(a[127:0], b[65:64]) +tmp_dst[127:96] := SELECT4(a[127:0], b[97:96]) +tmp_dst[159:128] := SELECT4(a[255:128], b[129:128]) +tmp_dst[191:160] := SELECT4(a[255:128], b[161:160]) +tmp_dst[223:192] := SELECT4(a[255:128], b[193:192]) +tmp_dst[255:224] := SELECT4(a[255:128], b[225:224]) +tmp_dst[287:256] := SELECT4(a[383:256], b[257:256]) +tmp_dst[319:288] := SELECT4(a[383:256], b[289:288]) +tmp_dst[351:320] := SELECT4(a[383:256], b[321:320]) +tmp_dst[383:352] := SELECT4(a[383:256], b[353:352]) +tmp_dst[415:384] := SELECT4(a[511:384], b[385:384]) +tmp_dst[447:416] := SELECT4(a[511:384], b[417:416]) +tmp_dst[479:448] := SELECT4(a[511:384], b[449:448]) +tmp_dst[511:480] := SELECT4(a[511:384], b[481:480]) +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := tmp_dst[i+31:i] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + Shuffle single-precision (32-bit) floating-point elements in "a" within 128-bit lanes using the control in "imm8", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +DEFINE SELECT4(src, control) { + CASE(control[1:0]) OF + 0: tmp[31:0] := src[31:0] + 1: tmp[31:0] := src[63:32] + 2: tmp[31:0] := src[95:64] + 3: tmp[31:0] := src[127:96] + ESAC + RETURN tmp[31:0] +} +tmp_dst[31:0] := SELECT4(a[127:0], imm8[1:0]) +tmp_dst[63:32] := SELECT4(a[127:0], imm8[3:2]) +tmp_dst[95:64] := SELECT4(a[127:0], imm8[5:4]) +tmp_dst[127:96] := SELECT4(a[127:0], imm8[7:6]) +tmp_dst[159:128] := SELECT4(a[255:128], imm8[1:0]) +tmp_dst[191:160] := SELECT4(a[255:128], imm8[3:2]) +tmp_dst[223:192] := SELECT4(a[255:128], imm8[5:4]) +tmp_dst[255:224] := SELECT4(a[255:128], imm8[7:6]) +tmp_dst[287:256] := SELECT4(a[383:256], imm8[1:0]) +tmp_dst[319:288] := SELECT4(a[383:256], imm8[3:2]) +tmp_dst[351:320] := SELECT4(a[383:256], imm8[5:4]) +tmp_dst[383:352] := SELECT4(a[383:256], imm8[7:6]) +tmp_dst[415:384] := SELECT4(a[511:384], imm8[1:0]) +tmp_dst[447:416] := SELECT4(a[511:384], imm8[3:2]) +tmp_dst[479:448] := SELECT4(a[511:384], imm8[5:4]) +tmp_dst[511:480] := SELECT4(a[511:384], imm8[7:6]) +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := tmp_dst[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + Shuffle single-precision (32-bit) floating-point elements in "a" within 128-bit lanes using the control in "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +DEFINE SELECT4(src, control) { + CASE(control[1:0]) OF + 0: tmp[31:0] := src[31:0] + 1: tmp[31:0] := src[63:32] + 2: tmp[31:0] := src[95:64] + 3: tmp[31:0] := src[127:96] + ESAC + RETURN tmp[31:0] +} +tmp_dst[31:0] := SELECT4(a[127:0], b[1:0]) +tmp_dst[63:32] := SELECT4(a[127:0], b[33:32]) +tmp_dst[95:64] := SELECT4(a[127:0], b[65:64]) +tmp_dst[127:96] := SELECT4(a[127:0], b[97:96]) +tmp_dst[159:128] := SELECT4(a[255:128], b[129:128]) +tmp_dst[191:160] := SELECT4(a[255:128], b[161:160]) +tmp_dst[223:192] := SELECT4(a[255:128], b[193:192]) +tmp_dst[255:224] := SELECT4(a[255:128], b[225:224]) +tmp_dst[287:256] := SELECT4(a[383:256], b[257:256]) +tmp_dst[319:288] := SELECT4(a[383:256], b[289:288]) +tmp_dst[351:320] := SELECT4(a[383:256], b[321:320]) +tmp_dst[383:352] := SELECT4(a[383:256], b[353:352]) +tmp_dst[415:384] := SELECT4(a[511:384], b[385:384]) +tmp_dst[447:416] := SELECT4(a[511:384], b[417:416]) +tmp_dst[479:448] := SELECT4(a[511:384], b[449:448]) +tmp_dst[511:480] := SELECT4(a[511:384], b[481:480]) +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := tmp_dst[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + Shuffle single-precision (32-bit) floating-point elements in "a" within 128-bit lanes using the control in "imm8", and store the results in "dst". + +DEFINE SELECT4(src, control) { + CASE(control[1:0]) OF + 0: tmp[31:0] := src[31:0] + 1: tmp[31:0] := src[63:32] + 2: tmp[31:0] := src[95:64] + 3: tmp[31:0] := src[127:96] + ESAC + RETURN tmp[31:0] +} +dst[31:0] := SELECT4(a[127:0], imm8[1:0]) +dst[63:32] := SELECT4(a[127:0], imm8[3:2]) +dst[95:64] := SELECT4(a[127:0], imm8[5:4]) +dst[127:96] := SELECT4(a[127:0], imm8[7:6]) +dst[159:128] := SELECT4(a[255:128], imm8[1:0]) +dst[191:160] := SELECT4(a[255:128], imm8[3:2]) +dst[223:192] := SELECT4(a[255:128], imm8[5:4]) +dst[255:224] := SELECT4(a[255:128], imm8[7:6]) +dst[287:256] := SELECT4(a[383:256], imm8[1:0]) +dst[319:288] := SELECT4(a[383:256], imm8[3:2]) +dst[351:320] := SELECT4(a[383:256], imm8[5:4]) +dst[383:352] := SELECT4(a[383:256], imm8[7:6]) +dst[415:384] := SELECT4(a[511:384], imm8[1:0]) +dst[447:416] := SELECT4(a[511:384], imm8[3:2]) +dst[479:448] := SELECT4(a[511:384], imm8[5:4]) +dst[511:480] := SELECT4(a[511:384], imm8[7:6]) +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + Shuffle single-precision (32-bit) floating-point elements in "a" within 128-bit lanes using the control in "b", and store the results in "dst". + +DEFINE SELECT4(src, control) { + CASE(control[1:0]) OF + 0: tmp[31:0] := src[31:0] + 1: tmp[31:0] := src[63:32] + 2: tmp[31:0] := src[95:64] + 3: tmp[31:0] := src[127:96] + ESAC + RETURN tmp[31:0] +} +dst[31:0] := SELECT4(a[127:0], b[1:0]) +dst[63:32] := SELECT4(a[127:0], b[33:32]) +dst[95:64] := SELECT4(a[127:0], b[65:64]) +dst[127:96] := SELECT4(a[127:0], b[97:96]) +dst[159:128] := SELECT4(a[255:128], b[129:128]) +dst[191:160] := SELECT4(a[255:128], b[161:160]) +dst[223:192] := SELECT4(a[255:128], b[193:192]) +dst[255:224] := SELECT4(a[255:128], b[225:224]) +dst[287:256] := SELECT4(a[383:256], b[257:256]) +dst[319:288] := SELECT4(a[383:256], b[289:288]) +dst[351:320] := SELECT4(a[383:256], b[321:320]) +dst[383:352] := SELECT4(a[383:256], b[353:352]) +dst[415:384] := SELECT4(a[511:384], b[385:384]) +dst[447:416] := SELECT4(a[511:384], b[417:416]) +dst[479:448] := SELECT4(a[511:384], b[449:448]) +dst[511:480] := SELECT4(a[511:384], b[481:480]) +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + + Shuffle double-precision (64-bit) floating-point elements in "a" within 256-bit lanes using the control in "imm8", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +DEFINE SELECT4(src, control) { + CASE(control[1:0]) OF + 0: tmp[63:0] := src[63:0] + 1: tmp[63:0] := src[127:64] + 2: tmp[63:0] := src[191:128] + 3: tmp[63:0] := src[255:192] + ESAC + RETURN tmp[63:0] +} +tmp_dst[63:0] := SELECT4(a[255:0], imm8[1:0]) +tmp_dst[127:64] := SELECT4(a[255:0], imm8[3:2]) +tmp_dst[191:128] := SELECT4(a[255:0], imm8[5:4]) +tmp_dst[255:192] := SELECT4(a[255:0], imm8[7:6]) +tmp_dst[319:256] := SELECT4(a[511:256], imm8[1:0]) +tmp_dst[383:320] := SELECT4(a[511:256], imm8[3:2]) +tmp_dst[447:384] := SELECT4(a[511:256], imm8[5:4]) +tmp_dst[511:448] := SELECT4(a[511:256], imm8[7:6]) +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := tmp_dst[i+63:i] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + + Shuffle double-precision (64-bit) floating-point elements in "a" across lanes using the corresponding index in "idx", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + id := idx[i+2:i]*64 + IF k[j] + dst[i+63:i] := a[id+63:id] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + Shuffle double-precision (64-bit) floating-point elements in "a" within 256-bit lanes using the control in "imm8", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +DEFINE SELECT4(src, control) { + CASE(control[1:0]) OF + 0: tmp[63:0] := src[63:0] + 1: tmp[63:0] := src[127:64] + 2: tmp[63:0] := src[191:128] + 3: tmp[63:0] := src[255:192] + ESAC + RETURN tmp[63:0] +} +tmp_dst[63:0] := SELECT4(a[255:0], imm8[1:0]) +tmp_dst[127:64] := SELECT4(a[255:0], imm8[3:2]) +tmp_dst[191:128] := SELECT4(a[255:0], imm8[5:4]) +tmp_dst[255:192] := SELECT4(a[255:0], imm8[7:6]) +tmp_dst[319:256] := SELECT4(a[511:256], imm8[1:0]) +tmp_dst[383:320] := SELECT4(a[511:256], imm8[3:2]) +tmp_dst[447:384] := SELECT4(a[511:256], imm8[5:4]) +tmp_dst[511:448] := SELECT4(a[511:256], imm8[7:6]) +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := tmp_dst[i+63:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + Shuffle double-precision (64-bit) floating-point elements in "a" across lanes using the corresponding index in "idx", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + id := idx[i+2:i]*64 + IF k[j] + dst[i+63:i] := a[id+63:id] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + Shuffle double-precision (64-bit) floating-point elements in "a" within 256-bit lanes using the control in "imm8", and store the results in "dst". + +DEFINE SELECT4(src, control) { + CASE(control[1:0]) OF + 0: tmp[63:0] := src[63:0] + 1: tmp[63:0] := src[127:64] + 2: tmp[63:0] := src[191:128] + 3: tmp[63:0] := src[255:192] + ESAC + RETURN tmp[63:0] +} +dst[63:0] := SELECT4(a[255:0], imm8[1:0]) +dst[127:64] := SELECT4(a[255:0], imm8[3:2]) +dst[191:128] := SELECT4(a[255:0], imm8[5:4]) +dst[255:192] := SELECT4(a[255:0], imm8[7:6]) +dst[319:256] := SELECT4(a[511:256], imm8[1:0]) +dst[383:320] := SELECT4(a[511:256], imm8[3:2]) +dst[447:384] := SELECT4(a[511:256], imm8[5:4]) +dst[511:448] := SELECT4(a[511:256], imm8[7:6]) +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + Shuffle double-precision (64-bit) floating-point elements in "a" across lanes using the corresponding index in "idx", and store the results in "dst". + +FOR j := 0 to 7 + i := j*64 + id := idx[i+2:i]*64 + dst[i+63:i] := a[id+63:id] +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + + Shuffle single-precision (32-bit) floating-point elements in "a" across lanes using the corresponding index in "idx", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + id := idx[i+3:i]*32 + IF k[j] + dst[i+31:i] := a[id+31:id] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + Shuffle single-precision (32-bit) floating-point elements in "a" across lanes using the corresponding index in "idx", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + id := idx[i+3:i]*32 + IF k[j] + dst[i+31:i] := a[id+31:id] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + Shuffle single-precision (32-bit) floating-point elements in "a" across lanes using the corresponding index in "idx". + +FOR j := 0 to 15 + i := j*32 + id := idx[i+3:i]*32 + dst[i+31:i] := a[id+31:id] +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + + Shuffle 64-bit integers in "a" within 256-bit lanes using the control in "imm8", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +DEFINE SELECT4(src, control) { + CASE(control[1:0]) OF + 0: tmp[63:0] := src[63:0] + 1: tmp[63:0] := src[127:64] + 2: tmp[63:0] := src[191:128] + 3: tmp[63:0] := src[255:192] + ESAC + RETURN tmp[63:0] +} +tmp_dst[63:0] := SELECT4(a[255:0], imm8[1:0]) +tmp_dst[127:64] := SELECT4(a[255:0], imm8[3:2]) +tmp_dst[191:128] := SELECT4(a[255:0], imm8[5:4]) +tmp_dst[255:192] := SELECT4(a[255:0], imm8[7:6]) +tmp_dst[319:256] := SELECT4(a[511:256], imm8[1:0]) +tmp_dst[383:320] := SELECT4(a[511:256], imm8[3:2]) +tmp_dst[447:384] := SELECT4(a[511:256], imm8[5:4]) +tmp_dst[511:448] := SELECT4(a[511:256], imm8[7:6]) +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := tmp_dst[i+63:i] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + + Shuffle 64-bit integers in "a" across lanes using the corresponding index in "idx", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + id := idx[i+2:i]*64 + IF k[j] + dst[i+63:i] := a[id+63:id] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + Shuffle 64-bit integers in "a" within 256-bit lanes using the control in "imm8", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +DEFINE SELECT4(src, control) { + CASE(control[1:0]) OF + 0: tmp[63:0] := src[63:0] + 1: tmp[63:0] := src[127:64] + 2: tmp[63:0] := src[191:128] + 3: tmp[63:0] := src[255:192] + ESAC + RETURN tmp[63:0] +} +tmp_dst[63:0] := SELECT4(a[255:0], imm8[1:0]) +tmp_dst[127:64] := SELECT4(a[255:0], imm8[3:2]) +tmp_dst[191:128] := SELECT4(a[255:0], imm8[5:4]) +tmp_dst[255:192] := SELECT4(a[255:0], imm8[7:6]) +tmp_dst[319:256] := SELECT4(a[511:256], imm8[1:0]) +tmp_dst[383:320] := SELECT4(a[511:256], imm8[3:2]) +tmp_dst[447:384] := SELECT4(a[511:256], imm8[5:4]) +tmp_dst[511:448] := SELECT4(a[511:256], imm8[7:6]) +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := tmp_dst[i+63:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + Shuffle 64-bit integers in "a" across lanes using the corresponding index in "idx", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + id := idx[i+2:i]*64 + IF k[j] + dst[i+63:i] := a[id+63:id] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + Shuffle 64-bit integers in "a" within 256-bit lanes using the control in "imm8", and store the results in "dst". + +DEFINE SELECT4(src, control) { + CASE(control[1:0]) OF + 0: tmp[63:0] := src[63:0] + 1: tmp[63:0] := src[127:64] + 2: tmp[63:0] := src[191:128] + 3: tmp[63:0] := src[255:192] + ESAC + RETURN tmp[63:0] +} +dst[63:0] := SELECT4(a[255:0], imm8[1:0]) +dst[127:64] := SELECT4(a[255:0], imm8[3:2]) +dst[191:128] := SELECT4(a[255:0], imm8[5:4]) +dst[255:192] := SELECT4(a[255:0], imm8[7:6]) +dst[319:256] := SELECT4(a[511:256], imm8[1:0]) +dst[383:320] := SELECT4(a[511:256], imm8[3:2]) +dst[447:384] := SELECT4(a[511:256], imm8[5:4]) +dst[511:448] := SELECT4(a[511:256], imm8[7:6]) +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + Shuffle 64-bit integers in "a" across lanes using the corresponding index in "idx", and store the results in "dst". + +FOR j := 0 to 7 + i := j*64 + id := idx[i+2:i]*64 + dst[i+63:i] := a[id+63:id] +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + Load contiguous active 32-bit integers from "a" (those with their respective bit set in mask "k"), and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +m := 0 +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := a[m+31:m] + m := m + 32 + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + Load contiguous active 32-bit integers from "a" (those with their respective bit set in mask "k"), and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +m := 0 +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := a[m+31:m] + m := m + 32 + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + Load contiguous active 64-bit integers from "a" (those with their respective bit set in mask "k"), and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +m := 0 +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := a[m+63:m] + m := m + 64 + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + Load contiguous active 64-bit integers from "a" (those with their respective bit set in mask "k"), and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +m := 0 +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := a[m+63:m] + m := m + 64 + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + Shuffle 32-bit integers in "a" within 128-bit lanes using the control in "imm8", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +DEFINE SELECT4(src, control) { + CASE(control[1:0]) OF + 0: tmp[31:0] := src[31:0] + 1: tmp[31:0] := src[63:32] + 2: tmp[31:0] := src[95:64] + 3: tmp[31:0] := src[127:96] + ESAC + RETURN tmp[31:0] +} +tmp_dst[31:0] := SELECT4(a[127:0], imm8[1:0]) +tmp_dst[63:32] := SELECT4(a[127:0], imm8[3:2]) +tmp_dst[95:64] := SELECT4(a[127:0], imm8[5:4]) +tmp_dst[127:96] := SELECT4(a[127:0], imm8[7:6]) +tmp_dst[159:128] := SELECT4(a[255:128], imm8[1:0]) +tmp_dst[191:160] := SELECT4(a[255:128], imm8[3:2]) +tmp_dst[223:192] := SELECT4(a[255:128], imm8[5:4]) +tmp_dst[255:224] := SELECT4(a[255:128], imm8[7:6]) +tmp_dst[287:256] := SELECT4(a[383:256], imm8[1:0]) +tmp_dst[319:288] := SELECT4(a[383:256], imm8[3:2]) +tmp_dst[351:320] := SELECT4(a[383:256], imm8[5:4]) +tmp_dst[383:352] := SELECT4(a[383:256], imm8[7:6]) +tmp_dst[415:384] := SELECT4(a[511:384], imm8[1:0]) +tmp_dst[447:416] := SELECT4(a[511:384], imm8[3:2]) +tmp_dst[479:448] := SELECT4(a[511:384], imm8[5:4]) +tmp_dst[511:480] := SELECT4(a[511:384], imm8[7:6]) +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := tmp_dst[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + + Unpack and interleave 32-bit integers from the high half of each 128-bit lane in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +DEFINE INTERLEAVE_HIGH_DWORDS(src1[127:0], src2[127:0]) { + dst[31:0] := src1[95:64] + dst[63:32] := src2[95:64] + dst[95:64] := src1[127:96] + dst[127:96] := src2[127:96] + RETURN dst[127:0] +} +tmp_dst[127:0] := INTERLEAVE_HIGH_DWORDS(a[127:0], b[127:0]) +tmp_dst[255:128] := INTERLEAVE_HIGH_DWORDS(a[255:128], b[255:128]) +tmp_dst[383:256] := INTERLEAVE_HIGH_DWORDS(a[383:256], b[383:256]) +tmp_dst[511:384] := INTERLEAVE_HIGH_DWORDS(a[511:384], b[511:384]) +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := tmp_dst[i+31:i] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + Unpack and interleave 32-bit integers from the high half of each 128-bit lane in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +DEFINE INTERLEAVE_HIGH_DWORDS(src1[127:0], src2[127:0]) { + dst[31:0] := src1[95:64] + dst[63:32] := src2[95:64] + dst[95:64] := src1[127:96] + dst[127:96] := src2[127:96] + RETURN dst[127:0] +} +tmp_dst[127:0] := INTERLEAVE_HIGH_DWORDS(a[127:0], b[127:0]) +tmp_dst[255:128] := INTERLEAVE_HIGH_DWORDS(a[255:128], b[255:128]) +tmp_dst[383:256] := INTERLEAVE_HIGH_DWORDS(a[383:256], b[383:256]) +tmp_dst[511:384] := INTERLEAVE_HIGH_DWORDS(a[511:384], b[511:384]) +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := tmp_dst[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + Unpack and interleave 32-bit integers from the high half of each 128-bit lane in "a" and "b", and store the results in "dst". + +DEFINE INTERLEAVE_HIGH_DWORDS(src1[127:0], src2[127:0]) { + dst[31:0] := src1[95:64] + dst[63:32] := src2[95:64] + dst[95:64] := src1[127:96] + dst[127:96] := src2[127:96] + RETURN dst[127:0] +} +dst[127:0] := INTERLEAVE_HIGH_DWORDS(a[127:0], b[127:0]) +dst[255:128] := INTERLEAVE_HIGH_DWORDS(a[255:128], b[255:128]) +dst[383:256] := INTERLEAVE_HIGH_DWORDS(a[383:256], b[383:256]) +dst[511:384] := INTERLEAVE_HIGH_DWORDS(a[511:384], b[511:384]) +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + + Unpack and interleave 64-bit integers from the high half of each 128-bit lane in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +DEFINE INTERLEAVE_HIGH_QWORDS(src1[127:0], src2[127:0]) { + dst[63:0] := src1[127:64] + dst[127:64] := src2[127:64] + RETURN dst[127:0] +} +tmp_dst[127:0] := INTERLEAVE_HIGH_QWORDS(a[127:0], b[127:0]) +tmp_dst[255:128] := INTERLEAVE_HIGH_QWORDS(a[255:128], b[255:128]) +tmp_dst[383:256] := INTERLEAVE_HIGH_QWORDS(a[383:256], b[383:256]) +tmp_dst[511:384] := INTERLEAVE_HIGH_QWORDS(a[511:384], b[511:384]) +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := tmp_dst[i+63:i] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + Unpack and interleave 64-bit integers from the high half of each 128-bit lane in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +DEFINE INTERLEAVE_HIGH_QWORDS(src1[127:0], src2[127:0]) { + dst[63:0] := src1[127:64] + dst[127:64] := src2[127:64] + RETURN dst[127:0] +} +tmp_dst[127:0] := INTERLEAVE_HIGH_QWORDS(a[127:0], b[127:0]) +tmp_dst[255:128] := INTERLEAVE_HIGH_QWORDS(a[255:128], b[255:128]) +tmp_dst[383:256] := INTERLEAVE_HIGH_QWORDS(a[383:256], b[383:256]) +tmp_dst[511:384] := INTERLEAVE_HIGH_QWORDS(a[511:384], b[511:384]) +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := tmp_dst[i+63:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + Unpack and interleave 64-bit integers from the high half of each 128-bit lane in "a" and "b", and store the results in "dst". + +DEFINE INTERLEAVE_HIGH_QWORDS(src1[127:0], src2[127:0]) { + dst[63:0] := src1[127:64] + dst[127:64] := src2[127:64] + RETURN dst[127:0] +} +dst[127:0] := INTERLEAVE_HIGH_QWORDS(a[127:0], b[127:0]) +dst[255:128] := INTERLEAVE_HIGH_QWORDS(a[255:128], b[255:128]) +dst[383:256] := INTERLEAVE_HIGH_QWORDS(a[383:256], b[383:256]) +dst[511:384] := INTERLEAVE_HIGH_QWORDS(a[511:384], b[511:384]) +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + + Unpack and interleave 32-bit integers from the low half of each 128-bit lane in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +DEFINE INTERLEAVE_DWORDS(src1[127:0], src2[127:0]) { + dst[31:0] := src1[31:0] + dst[63:32] := src2[31:0] + dst[95:64] := src1[63:32] + dst[127:96] := src2[63:32] + RETURN dst[127:0] +} +tmp_dst[127:0] := INTERLEAVE_DWORDS(a[127:0], b[127:0]) +tmp_dst[255:128] := INTERLEAVE_DWORDS(a[255:128], b[255:128]) +tmp_dst[383:256] := INTERLEAVE_DWORDS(a[383:256], b[383:256]) +tmp_dst[511:384] := INTERLEAVE_DWORDS(a[511:384], b[511:384]) +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := tmp_dst[i+31:i] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + Unpack and interleave 32-bit integers from the low half of each 128-bit lane in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +DEFINE INTERLEAVE_DWORDS(src1[127:0], src2[127:0]) { + dst[31:0] := src1[31:0] + dst[63:32] := src2[31:0] + dst[95:64] := src1[63:32] + dst[127:96] := src2[63:32] + RETURN dst[127:0] +} +tmp_dst[127:0] := INTERLEAVE_DWORDS(a[127:0], b[127:0]) +tmp_dst[255:128] := INTERLEAVE_DWORDS(a[255:128], b[255:128]) +tmp_dst[383:256] := INTERLEAVE_DWORDS(a[383:256], b[383:256]) +tmp_dst[511:384] := INTERLEAVE_DWORDS(a[511:384], b[511:384]) +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := tmp_dst[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + Unpack and interleave 32-bit integers from the low half of each 128-bit lane in "a" and "b", and store the results in "dst". + +DEFINE INTERLEAVE_DWORDS(src1[127:0], src2[127:0]) { + dst[31:0] := src1[31:0] + dst[63:32] := src2[31:0] + dst[95:64] := src1[63:32] + dst[127:96] := src2[63:32] + RETURN dst[127:0] +} +dst[127:0] := INTERLEAVE_DWORDS(a[127:0], b[127:0]) +dst[255:128] := INTERLEAVE_DWORDS(a[255:128], b[255:128]) +dst[383:256] := INTERLEAVE_DWORDS(a[383:256], b[383:256]) +dst[511:384] := INTERLEAVE_DWORDS(a[511:384], b[511:384]) +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + + Unpack and interleave 64-bit integers from the low half of each 128-bit lane in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +DEFINE INTERLEAVE_QWORDS(src1[127:0], src2[127:0]) { + dst[63:0] := src1[63:0] + dst[127:64] := src2[63:0] + RETURN dst[127:0] +} +tmp_dst[127:0] := INTERLEAVE_QWORDS(a[127:0], b[127:0]) +tmp_dst[255:128] := INTERLEAVE_QWORDS(a[255:128], b[255:128]) +tmp_dst[383:256] := INTERLEAVE_QWORDS(a[383:256], b[383:256]) +tmp_dst[511:384] := INTERLEAVE_QWORDS(a[511:384], b[511:384]) +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := tmp_dst[i+63:i] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + Unpack and interleave 64-bit integers from the low half of each 128-bit lane in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +DEFINE INTERLEAVE_QWORDS(src1[127:0], src2[127:0]) { + dst[63:0] := src1[63:0] + dst[127:64] := src2[63:0] + RETURN dst[127:0] +} +tmp_dst[127:0] := INTERLEAVE_QWORDS(a[127:0], b[127:0]) +tmp_dst[255:128] := INTERLEAVE_QWORDS(a[255:128], b[255:128]) +tmp_dst[383:256] := INTERLEAVE_QWORDS(a[383:256], b[383:256]) +tmp_dst[511:384] := INTERLEAVE_QWORDS(a[511:384], b[511:384]) +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := tmp_dst[i+63:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + Unpack and interleave 64-bit integers from the low half of each 128-bit lane in "a" and "b", and store the results in "dst". + +DEFINE INTERLEAVE_QWORDS(src1[127:0], src2[127:0]) { + dst[63:0] := src1[63:0] + dst[127:64] := src2[63:0] + RETURN dst[127:0] +} +dst[127:0] := INTERLEAVE_QWORDS(a[127:0], b[127:0]) +dst[255:128] := INTERLEAVE_QWORDS(a[255:128], b[255:128]) +dst[383:256] := INTERLEAVE_QWORDS(a[383:256], b[383:256]) +dst[511:384] := INTERLEAVE_QWORDS(a[511:384], b[511:384]) +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + + + Shuffle 128-bits (composed of 4 single-precision (32-bit) floating-point elements) selected by "imm8" from "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +DEFINE SELECT4(src, control) { + CASE(control[1:0]) OF + 0: tmp[127:0] := src[127:0] + 1: tmp[127:0] := src[255:128] + 2: tmp[127:0] := src[383:256] + 3: tmp[127:0] := src[511:384] + ESAC + RETURN tmp[127:0] +} +tmp_dst[127:0] := SELECT4(a[511:0], imm8[1:0]) +tmp_dst[255:128] := SELECT4(a[511:0], imm8[3:2]) +tmp_dst[383:256] := SELECT4(b[511:0], imm8[5:4]) +tmp_dst[511:384] := SELECT4(b[511:0], imm8[7:6]) +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := tmp_dst[i+31:i] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + + Shuffle 128-bits (composed of 4 single-precision (32-bit) floating-point elements) selected by "imm8" from "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +DEFINE SELECT4(src, control) { + CASE(control[1:0]) OF + 0: tmp[127:0] := src[127:0] + 1: tmp[127:0] := src[255:128] + 2: tmp[127:0] := src[383:256] + 3: tmp[127:0] := src[511:384] + ESAC + RETURN tmp[127:0] +} +tmp_dst[127:0] := SELECT4(a[511:0], imm8[1:0]) +tmp_dst[255:128] := SELECT4(a[511:0], imm8[3:2]) +tmp_dst[383:256] := SELECT4(b[511:0], imm8[5:4]) +tmp_dst[511:384] := SELECT4(b[511:0], imm8[7:6]) +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := tmp_dst[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + Shuffle 128-bits (composed of 4 single-precision (32-bit) floating-point elements) selected by "imm8" from "a" and "b", and store the results in "dst". + +DEFINE SELECT4(src, control) { + CASE(control[1:0]) OF + 0: tmp[127:0] := src[127:0] + 1: tmp[127:0] := src[255:128] + 2: tmp[127:0] := src[383:256] + 3: tmp[127:0] := src[511:384] + ESAC + RETURN tmp[127:0] +} +dst[127:0] := SELECT4(a[511:0], imm8[1:0]) +dst[255:128] := SELECT4(a[511:0], imm8[3:2]) +dst[383:256] := SELECT4(b[511:0], imm8[5:4]) +dst[511:384] := SELECT4(b[511:0], imm8[7:6]) +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + + + Shuffle 128-bits (composed of 2 double-precision (64-bit) floating-point elements) selected by "imm8" from "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +DEFINE SELECT4(src, control) { + CASE(control[1:0]) OF + 0: tmp[127:0] := src[127:0] + 1: tmp[127:0] := src[255:128] + 2: tmp[127:0] := src[383:256] + 3: tmp[127:0] := src[511:384] + ESAC + RETURN tmp[127:0] +} +tmp_dst[127:0] := SELECT4(a[511:0], imm8[1:0]) +tmp_dst[255:128] := SELECT4(a[511:0], imm8[3:2]) +tmp_dst[383:256] := SELECT4(b[511:0], imm8[5:4]) +tmp_dst[511:384] := SELECT4(b[511:0], imm8[7:6]) +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := tmp_dst[i+63:i] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + + Shuffle 128-bits (composed of 2 double-precision (64-bit) floating-point elements) selected by "imm8" from "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +DEFINE SELECT4(src, control) { + CASE(control[1:0]) OF + 0: tmp[127:0] := src[127:0] + 1: tmp[127:0] := src[255:128] + 2: tmp[127:0] := src[383:256] + 3: tmp[127:0] := src[511:384] + ESAC + RETURN tmp[127:0] +} +tmp_dst[127:0] := SELECT4(a[511:0], imm8[1:0]) +tmp_dst[255:128] := SELECT4(a[511:0], imm8[3:2]) +tmp_dst[383:256] := SELECT4(b[511:0], imm8[5:4]) +tmp_dst[511:384] := SELECT4(b[511:0], imm8[7:6]) +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := tmp_dst[i+63:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + Shuffle 128-bits (composed of 2 double-precision (64-bit) floating-point elements) selected by "imm8" from "a" and "b", and store the results in "dst". + +DEFINE SELECT4(src, control) { + CASE(control[1:0]) OF + 0: tmp[127:0] := src[127:0] + 1: tmp[127:0] := src[255:128] + 2: tmp[127:0] := src[383:256] + 3: tmp[127:0] := src[511:384] + ESAC + RETURN tmp[127:0] +} +dst[127:0] := SELECT4(a[511:0], imm8[1:0]) +dst[255:128] := SELECT4(a[511:0], imm8[3:2]) +dst[383:256] := SELECT4(b[511:0], imm8[5:4]) +dst[511:384] := SELECT4(b[511:0], imm8[7:6]) +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + + + Shuffle 128-bits (composed of 4 32-bit integers) selected by "imm8" from "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +DEFINE SELECT4(src, control) { + CASE(control[1:0]) OF + 0: tmp[127:0] := src[127:0] + 1: tmp[127:0] := src[255:128] + 2: tmp[127:0] := src[383:256] + 3: tmp[127:0] := src[511:384] + ESAC + RETURN tmp[127:0] +} +tmp_dst[127:0] := SELECT4(a[511:0], imm8[1:0]) +tmp_dst[255:128] := SELECT4(a[511:0], imm8[3:2]) +tmp_dst[383:256] := SELECT4(b[511:0], imm8[5:4]) +tmp_dst[511:384] := SELECT4(b[511:0], imm8[7:6]) +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := tmp_dst[i+31:i] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + + Shuffle 128-bits (composed of 4 32-bit integers) selected by "imm8" from "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +DEFINE SELECT4(src, control) { + CASE(control[1:0]) OF + 0: tmp[127:0] := src[127:0] + 1: tmp[127:0] := src[255:128] + 2: tmp[127:0] := src[383:256] + 3: tmp[127:0] := src[511:384] + ESAC + RETURN tmp[127:0] +} +tmp_dst[127:0] := SELECT4(a[511:0], imm8[1:0]) +tmp_dst[255:128] := SELECT4(a[511:0], imm8[3:2]) +tmp_dst[383:256] := SELECT4(b[511:0], imm8[5:4]) +tmp_dst[511:384] := SELECT4(b[511:0], imm8[7:6]) +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := tmp_dst[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + Shuffle 128-bits (composed of 4 32-bit integers) selected by "imm8" from "a" and "b", and store the results in "dst". + +DEFINE SELECT4(src, control) { + CASE(control[1:0]) OF + 0: tmp[127:0] := src[127:0] + 1: tmp[127:0] := src[255:128] + 2: tmp[127:0] := src[383:256] + 3: tmp[127:0] := src[511:384] + ESAC + RETURN tmp[127:0] +} +dst[127:0] := SELECT4(a[511:0], imm8[1:0]) +dst[255:128] := SELECT4(a[511:0], imm8[3:2]) +dst[383:256] := SELECT4(b[511:0], imm8[5:4]) +dst[511:384] := SELECT4(b[511:0], imm8[7:6]) +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + + + Shuffle 128-bits (composed of 2 64-bit integers) selected by "imm8" from "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +DEFINE SELECT4(src, control) { + CASE(control[1:0]) OF + 0: tmp[127:0] := src[127:0] + 1: tmp[127:0] := src[255:128] + 2: tmp[127:0] := src[383:256] + 3: tmp[127:0] := src[511:384] + ESAC + RETURN tmp[127:0] +} +tmp_dst[127:0] := SELECT4(a[511:0], imm8[1:0]) +tmp_dst[255:128] := SELECT4(a[511:0], imm8[3:2]) +tmp_dst[383:256] := SELECT4(b[511:0], imm8[5:4]) +tmp_dst[511:384] := SELECT4(b[511:0], imm8[7:6]) +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := tmp_dst[i+63:i] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + + Shuffle 128-bits (composed of 2 64-bit integers) selected by "imm8" from "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +DEFINE SELECT4(src, control) { + CASE(control[1:0]) OF + 0: tmp[127:0] := src[127:0] + 1: tmp[127:0] := src[255:128] + 2: tmp[127:0] := src[383:256] + 3: tmp[127:0] := src[511:384] + ESAC + RETURN tmp[127:0] +} +tmp_dst[127:0] := SELECT4(a[511:0], imm8[1:0]) +tmp_dst[255:128] := SELECT4(a[511:0], imm8[3:2]) +tmp_dst[383:256] := SELECT4(b[511:0], imm8[5:4]) +tmp_dst[511:384] := SELECT4(b[511:0], imm8[7:6]) +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := tmp_dst[i+63:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + Shuffle 128-bits (composed of 2 64-bit integers) selected by "imm8" from "a" and "b", and store the results in "dst". + +DEFINE SELECT4(src, control) { + CASE(control[1:0]) OF + 0: tmp[127:0] := src[127:0] + 1: tmp[127:0] := src[255:128] + 2: tmp[127:0] := src[383:256] + 3: tmp[127:0] := src[511:384] + ESAC + RETURN tmp[127:0] +} +dst[127:0] := SELECT4(a[511:0], imm8[1:0]) +dst[255:128] := SELECT4(a[511:0], imm8[3:2]) +dst[383:256] := SELECT4(b[511:0], imm8[5:4]) +dst[511:384] := SELECT4(b[511:0], imm8[7:6]) +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + + + Shuffle double-precision (64-bit) floating-point elements within 128-bit lanes using the control in "imm8", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +tmp_dst[63:0] := (imm8[0] == 0) ? a[63:0] : a[127:64] +tmp_dst[127:64] := (imm8[1] == 0) ? b[63:0] : b[127:64] +tmp_dst[191:128] := (imm8[2] == 0) ? a[191:128] : a[255:192] +tmp_dst[255:192] := (imm8[3] == 0) ? b[191:128] : b[255:192] +tmp_dst[319:256] := (imm8[4] == 0) ? a[319:256] : a[383:320] +tmp_dst[383:320] := (imm8[5] == 0) ? b[319:256] : b[383:320] +tmp_dst[447:384] := (imm8[6] == 0) ? a[447:384] : a[511:448] +tmp_dst[511:448] := (imm8[7] == 0) ? b[447:384] : b[511:448] +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := tmp_dst[i+63:i] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + + Shuffle double-precision (64-bit) floating-point elements within 128-bit lanes using the control in "imm8", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +tmp_dst[63:0] := (imm8[0] == 0) ? a[63:0] : a[127:64] +tmp_dst[127:64] := (imm8[1] == 0) ? b[63:0] : b[127:64] +tmp_dst[191:128] := (imm8[2] == 0) ? a[191:128] : a[255:192] +tmp_dst[255:192] := (imm8[3] == 0) ? b[191:128] : b[255:192] +tmp_dst[319:256] := (imm8[4] == 0) ? a[319:256] : a[383:320] +tmp_dst[383:320] := (imm8[5] == 0) ? b[319:256] : b[383:320] +tmp_dst[447:384] := (imm8[6] == 0) ? a[447:384] : a[511:448] +tmp_dst[511:448] := (imm8[7] == 0) ? b[447:384] : b[511:448] +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := tmp_dst[i+63:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + Shuffle double-precision (64-bit) floating-point elements within 128-bit lanes using the control in "imm8", and store the results in "dst". + +dst[63:0] := (imm8[0] == 0) ? a[63:0] : a[127:64] +dst[127:64] := (imm8[1] == 0) ? b[63:0] : b[127:64] +dst[191:128] := (imm8[2] == 0) ? a[191:128] : a[255:192] +dst[255:192] := (imm8[3] == 0) ? b[191:128] : b[255:192] +dst[319:256] := (imm8[4] == 0) ? a[319:256] : a[383:320] +dst[383:320] := (imm8[5] == 0) ? b[319:256] : b[383:320] +dst[447:384] := (imm8[6] == 0) ? a[447:384] : a[511:448] +dst[511:448] := (imm8[7] == 0) ? b[447:384] : b[511:448] +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + + + Shuffle single-precision (32-bit) floating-point elements in "a" within 128-bit lanes using the control in "imm8", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +DEFINE SELECT4(src, control) { + CASE(control[1:0]) OF + 0: tmp[31:0] := src[31:0] + 1: tmp[31:0] := src[63:32] + 2: tmp[31:0] := src[95:64] + 3: tmp[31:0] := src[127:96] + ESAC + RETURN tmp[31:0] +} +tmp_dst[31:0] := SELECT4(a[127:0], imm8[1:0]) +tmp_dst[63:32] := SELECT4(a[127:0], imm8[3:2]) +tmp_dst[95:64] := SELECT4(b[127:0], imm8[5:4]) +tmp_dst[127:96] := SELECT4(b[127:0], imm8[7:6]) +tmp_dst[159:128] := SELECT4(a[255:128], imm8[1:0]) +tmp_dst[191:160] := SELECT4(a[255:128], imm8[3:2]) +tmp_dst[223:192] := SELECT4(b[255:128], imm8[5:4]) +tmp_dst[255:224] := SELECT4(b[255:128], imm8[7:6]) +tmp_dst[287:256] := SELECT4(a[383:256], imm8[1:0]) +tmp_dst[319:288] := SELECT4(a[383:256], imm8[3:2]) +tmp_dst[351:320] := SELECT4(b[383:256], imm8[5:4]) +tmp_dst[383:352] := SELECT4(b[383:256], imm8[7:6]) +tmp_dst[415:384] := SELECT4(a[511:384], imm8[1:0]) +tmp_dst[447:416] := SELECT4(a[511:384], imm8[3:2]) +tmp_dst[479:448] := SELECT4(b[511:384], imm8[5:4]) +tmp_dst[511:480] := SELECT4(b[511:384], imm8[7:6]) +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := tmp_dst[i+31:i] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + + Shuffle single-precision (32-bit) floating-point elements in "a" within 128-bit lanes using the control in "imm8", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +DEFINE SELECT4(src, control) { + CASE(control[1:0]) OF + 0: tmp[31:0] := src[31:0] + 1: tmp[31:0] := src[63:32] + 2: tmp[31:0] := src[95:64] + 3: tmp[31:0] := src[127:96] + ESAC + RETURN tmp[31:0] +} +tmp_dst[31:0] := SELECT4(a[127:0], imm8[1:0]) +tmp_dst[63:32] := SELECT4(a[127:0], imm8[3:2]) +tmp_dst[95:64] := SELECT4(b[127:0], imm8[5:4]) +tmp_dst[127:96] := SELECT4(b[127:0], imm8[7:6]) +tmp_dst[159:128] := SELECT4(a[255:128], imm8[1:0]) +tmp_dst[191:160] := SELECT4(a[255:128], imm8[3:2]) +tmp_dst[223:192] := SELECT4(b[255:128], imm8[5:4]) +tmp_dst[255:224] := SELECT4(b[255:128], imm8[7:6]) +tmp_dst[287:256] := SELECT4(a[383:256], imm8[1:0]) +tmp_dst[319:288] := SELECT4(a[383:256], imm8[3:2]) +tmp_dst[351:320] := SELECT4(b[383:256], imm8[5:4]) +tmp_dst[383:352] := SELECT4(b[383:256], imm8[7:6]) +tmp_dst[415:384] := SELECT4(a[511:384], imm8[1:0]) +tmp_dst[447:416] := SELECT4(a[511:384], imm8[3:2]) +tmp_dst[479:448] := SELECT4(b[511:384], imm8[5:4]) +tmp_dst[511:480] := SELECT4(b[511:384], imm8[7:6]) +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := tmp_dst[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + Shuffle single-precision (32-bit) floating-point elements in "a" within 128-bit lanes using the control in "imm8", and store the results in "dst". + +DEFINE SELECT4(src, control) { + CASE(control[1:0]) OF + 0: tmp[31:0] := src[31:0] + 1: tmp[31:0] := src[63:32] + 2: tmp[31:0] := src[95:64] + 3: tmp[31:0] := src[127:96] + ESAC + RETURN tmp[31:0] +} +dst[31:0] := SELECT4(a[127:0], imm8[1:0]) +dst[63:32] := SELECT4(a[127:0], imm8[3:2]) +dst[95:64] := SELECT4(b[127:0], imm8[5:4]) +dst[127:96] := SELECT4(b[127:0], imm8[7:6]) +dst[159:128] := SELECT4(a[255:128], imm8[1:0]) +dst[191:160] := SELECT4(a[255:128], imm8[3:2]) +dst[223:192] := SELECT4(b[255:128], imm8[5:4]) +dst[255:224] := SELECT4(b[255:128], imm8[7:6]) +dst[287:256] := SELECT4(a[383:256], imm8[1:0]) +dst[319:288] := SELECT4(a[383:256], imm8[3:2]) +dst[351:320] := SELECT4(b[383:256], imm8[5:4]) +dst[383:352] := SELECT4(b[383:256], imm8[7:6]) +dst[415:384] := SELECT4(a[511:384], imm8[1:0]) +dst[447:416] := SELECT4(a[511:384], imm8[3:2]) +dst[479:448] := SELECT4(b[511:384], imm8[5:4]) +dst[511:480] := SELECT4(b[511:384], imm8[7:6]) +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + + Unpack and interleave double-precision (64-bit) floating-point elements from the high half of each 128-bit lane in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +DEFINE INTERLEAVE_HIGH_QWORDS(src1[127:0], src2[127:0]) { + dst[63:0] := src1[127:64] + dst[127:64] := src2[127:64] + RETURN dst[127:0] +} +tmp_dst[127:0] := INTERLEAVE_HIGH_QWORDS(a[127:0], b[127:0]) +tmp_dst[255:128] := INTERLEAVE_HIGH_QWORDS(a[255:128], b[255:128]) +tmp_dst[383:256] := INTERLEAVE_HIGH_QWORDS(a[383:256], b[383:256]) +tmp_dst[511:384] := INTERLEAVE_HIGH_QWORDS(a[511:384], b[511:384]) +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := tmp_dst[i+63:i] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + Unpack and interleave double-precision (64-bit) floating-point elements from the high half of each 128-bit lane in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +DEFINE INTERLEAVE_HIGH_QWORDS(src1[127:0], src2[127:0]) { + dst[63:0] := src1[127:64] + dst[127:64] := src2[127:64] + RETURN dst[127:0] +} +tmp_dst[127:0] := INTERLEAVE_HIGH_QWORDS(a[127:0], b[127:0]) +tmp_dst[255:128] := INTERLEAVE_HIGH_QWORDS(a[255:128], b[255:128]) +tmp_dst[383:256] := INTERLEAVE_HIGH_QWORDS(a[383:256], b[383:256]) +tmp_dst[511:384] := INTERLEAVE_HIGH_QWORDS(a[511:384], b[511:384]) +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := tmp_dst[i+63:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + Unpack and interleave double-precision (64-bit) floating-point elements from the high half of each 128-bit lane in "a" and "b", and store the results in "dst". + +DEFINE INTERLEAVE_HIGH_QWORDS(src1[127:0], src2[127:0]) { + dst[63:0] := src1[127:64] + dst[127:64] := src2[127:64] + RETURN dst[127:0] +} +dst[127:0] := INTERLEAVE_HIGH_QWORDS(a[127:0], b[127:0]) +dst[255:128] := INTERLEAVE_HIGH_QWORDS(a[255:128], b[255:128]) +dst[383:256] := INTERLEAVE_HIGH_QWORDS(a[383:256], b[383:256]) +dst[511:384] := INTERLEAVE_HIGH_QWORDS(a[511:384], b[511:384]) +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + + Unpack and interleave single-precision (32-bit) floating-point elements from the high half of each 128-bit lane in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +DEFINE INTERLEAVE_HIGH_DWORDS(src1[127:0], src2[127:0]) { + dst[31:0] := src1[95:64] + dst[63:32] := src2[95:64] + dst[95:64] := src1[127:96] + dst[127:96] := src2[127:96] + RETURN dst[127:0] +} +tmp_dst[127:0] := INTERLEAVE_HIGH_DWORDS(a[127:0], b[127:0]) +tmp_dst[255:128] := INTERLEAVE_HIGH_DWORDS(a[255:128], b[255:128]) +tmp_dst[383:256] := INTERLEAVE_HIGH_DWORDS(a[383:256], b[383:256]) +tmp_dst[511:384] := INTERLEAVE_HIGH_DWORDS(a[511:384], b[511:384]) +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := tmp_dst[i+31:i] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + Unpack and interleave single-precision (32-bit) floating-point elements from the high half of each 128-bit lane in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +DEFINE INTERLEAVE_HIGH_DWORDS(src1[127:0], src2[127:0]) { + dst[31:0] := src1[95:64] + dst[63:32] := src2[95:64] + dst[95:64] := src1[127:96] + dst[127:96] := src2[127:96] + RETURN dst[127:0] +} +tmp_dst[127:0] := INTERLEAVE_HIGH_DWORDS(a[127:0], b[127:0]) +tmp_dst[255:128] := INTERLEAVE_HIGH_DWORDS(a[255:128], b[255:128]) +tmp_dst[383:256] := INTERLEAVE_HIGH_DWORDS(a[383:256], b[383:256]) +tmp_dst[511:384] := INTERLEAVE_HIGH_DWORDS(a[511:384], b[511:384]) +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := tmp_dst[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + Unpack and interleave single-precision (32-bit) floating-point elements from the high half of each 128-bit lane in "a" and "b", and store the results in "dst". + +DEFINE INTERLEAVE_HIGH_DWORDS(src1[127:0], src2[127:0]) { + dst[31:0] := src1[95:64] + dst[63:32] := src2[95:64] + dst[95:64] := src1[127:96] + dst[127:96] := src2[127:96] + RETURN dst[127:0] +} +dst[127:0] := INTERLEAVE_HIGH_DWORDS(a[127:0], b[127:0]) +dst[255:128] := INTERLEAVE_HIGH_DWORDS(a[255:128], b[255:128]) +dst[383:256] := INTERLEAVE_HIGH_DWORDS(a[383:256], b[383:256]) +dst[511:384] := INTERLEAVE_HIGH_DWORDS(a[511:384], b[511:384]) +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + + Unpack and interleave double-precision (64-bit) floating-point elements from the low half of each 128-bit lane in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +DEFINE INTERLEAVE_QWORDS(src1[127:0], src2[127:0]) { + dst[63:0] := src1[63:0] + dst[127:64] := src2[63:0] + RETURN dst[127:0] +} +tmp_dst[127:0] := INTERLEAVE_QWORDS(a[127:0], b[127:0]) +tmp_dst[255:128] := INTERLEAVE_QWORDS(a[255:128], b[255:128]) +tmp_dst[383:256] := INTERLEAVE_QWORDS(a[383:256], b[383:256]) +tmp_dst[511:384] := INTERLEAVE_QWORDS(a[511:384], b[511:384]) +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := tmp_dst[i+63:i] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + Unpack and interleave double-precision (64-bit) floating-point elements from the low half of each 128-bit lane in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +DEFINE INTERLEAVE_QWORDS(src1[127:0], src2[127:0]) { + dst[63:0] := src1[63:0] + dst[127:64] := src2[63:0] + RETURN dst[127:0] +} +tmp_dst[127:0] := INTERLEAVE_QWORDS(a[127:0], b[127:0]) +tmp_dst[255:128] := INTERLEAVE_QWORDS(a[255:128], b[255:128]) +tmp_dst[383:256] := INTERLEAVE_QWORDS(a[383:256], b[383:256]) +tmp_dst[511:384] := INTERLEAVE_QWORDS(a[511:384], b[511:384]) +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := tmp_dst[i+63:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + Unpack and interleave double-precision (64-bit) floating-point elements from the low half of each 128-bit lane in "a" and "b", and store the results in "dst". + +DEFINE INTERLEAVE_QWORDS(src1[127:0], src2[127:0]) { + dst[63:0] := src1[63:0] + dst[127:64] := src2[63:0] + RETURN dst[127:0] +} +dst[127:0] := INTERLEAVE_QWORDS(a[127:0], b[127:0]) +dst[255:128] := INTERLEAVE_QWORDS(a[255:128], b[255:128]) +dst[383:256] := INTERLEAVE_QWORDS(a[383:256], b[383:256]) +dst[511:384] := INTERLEAVE_QWORDS(a[511:384], b[511:384]) +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + + Unpack and interleave single-precision (32-bit) floating-point elements from the low half of each 128-bit lane in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +DEFINE INTERLEAVE_DWORDS(src1[127:0], src2[127:0]) { + dst[31:0] := src1[31:0] + dst[63:32] := src2[31:0] + dst[95:64] := src1[63:32] + dst[127:96] := src2[63:32] + RETURN dst[127:0] +} +tmp_dst[127:0] := INTERLEAVE_DWORDS(a[127:0], b[127:0]) +tmp_dst[255:128] := INTERLEAVE_DWORDS(a[255:128], b[255:128]) +tmp_dst[383:256] := INTERLEAVE_DWORDS(a[383:256], b[383:256]) +tmp_dst[511:384] := INTERLEAVE_DWORDS(a[511:384], b[511:384]) +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := tmp_dst[i+31:i] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + Unpack and interleave single-precision (32-bit) floating-point elements from the low half of each 128-bit lane in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +DEFINE INTERLEAVE_DWORDS(src1[127:0], src2[127:0]) { + dst[31:0] := src1[31:0] + dst[63:32] := src2[31:0] + dst[95:64] := src1[63:32] + dst[127:96] := src2[63:32] + RETURN dst[127:0] +} +tmp_dst[127:0] := INTERLEAVE_DWORDS(a[127:0], b[127:0]) +tmp_dst[255:128] := INTERLEAVE_DWORDS(a[255:128], b[255:128]) +tmp_dst[383:256] := INTERLEAVE_DWORDS(a[383:256], b[383:256]) +tmp_dst[511:384] := INTERLEAVE_DWORDS(a[511:384], b[511:384]) +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := tmp_dst[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + Unpack and interleave single-precision (32-bit) floating-point elements from the low half of each 128-bit lane in "a" and "b", and store the results in "dst". + +DEFINE INTERLEAVE_DWORDS(src1[127:0], src2[127:0]) { + dst[31:0] := src1[31:0] + dst[63:32] := src2[31:0] + dst[95:64] := src1[63:32] + dst[127:96] := src2[63:32] + RETURN dst[127:0] +} +dst[127:0] := INTERLEAVE_DWORDS(a[127:0], b[127:0]) +dst[255:128] := INTERLEAVE_DWORDS(a[255:128], b[255:128]) +dst[383:256] := INTERLEAVE_DWORDS(a[383:256], b[383:256]) +dst[511:384] := INTERLEAVE_DWORDS(a[511:384], b[511:384]) +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + + Compare the lower double-precision (64-bit) floating-point element in "a" and "b" based on the comparison operand specified by "imm8", and store the result in mask vector "k". [sae_note] + CASE (imm8[4:0]) OF +0: OP := _CMP_EQ_OQ +1: OP := _CMP_LT_OS +2: OP := _CMP_LE_OS +3: OP := _CMP_UNORD_Q +4: OP := _CMP_NEQ_UQ +5: OP := _CMP_NLT_US +6: OP := _CMP_NLE_US +7: OP := _CMP_ORD_Q +8: OP := _CMP_EQ_UQ +9: OP := _CMP_NGE_US +10: OP := _CMP_NGT_US +11: OP := _CMP_FALSE_OQ +12: OP := _CMP_NEQ_OQ +13: OP := _CMP_GE_OS +14: OP := _CMP_GT_OS +15: OP := _CMP_TRUE_UQ +16: OP := _CMP_EQ_OS +17: OP := _CMP_LT_OQ +18: OP := _CMP_LE_OQ +19: OP := _CMP_UNORD_S +20: OP := _CMP_NEQ_US +21: OP := _CMP_NLT_UQ +22: OP := _CMP_NLE_UQ +23: OP := _CMP_ORD_S +24: OP := _CMP_EQ_US +25: OP := _CMP_NGE_UQ +26: OP := _CMP_NGT_UQ +27: OP := _CMP_FALSE_OS +28: OP := _CMP_NEQ_OS +29: OP := _CMP_GE_OQ +30: OP := _CMP_GT_OQ +31: OP := _CMP_TRUE_US +ESAC +k[0] := ( a[63:0] OP b[63:0] ) ? 1 : 0 +k[MAX:1] := 0 + + + AVX512F +
immintrin.h
+ Compare +
+ + + + + + Compare the lower double-precision (64-bit) floating-point element in "a" and "b" based on the comparison operand specified by "imm8", and store the result in mask vector "k". + CASE (imm8[4:0]) OF +0: OP := _CMP_EQ_OQ +1: OP := _CMP_LT_OS +2: OP := _CMP_LE_OS +3: OP := _CMP_UNORD_Q +4: OP := _CMP_NEQ_UQ +5: OP := _CMP_NLT_US +6: OP := _CMP_NLE_US +7: OP := _CMP_ORD_Q +8: OP := _CMP_EQ_UQ +9: OP := _CMP_NGE_US +10: OP := _CMP_NGT_US +11: OP := _CMP_FALSE_OQ +12: OP := _CMP_NEQ_OQ +13: OP := _CMP_GE_OS +14: OP := _CMP_GT_OS +15: OP := _CMP_TRUE_UQ +16: OP := _CMP_EQ_OS +17: OP := _CMP_LT_OQ +18: OP := _CMP_LE_OQ +19: OP := _CMP_UNORD_S +20: OP := _CMP_NEQ_US +21: OP := _CMP_NLT_UQ +22: OP := _CMP_NLE_UQ +23: OP := _CMP_ORD_S +24: OP := _CMP_EQ_US +25: OP := _CMP_NGE_UQ +26: OP := _CMP_NGT_UQ +27: OP := _CMP_FALSE_OS +28: OP := _CMP_NEQ_OS +29: OP := _CMP_GE_OQ +30: OP := _CMP_GT_OQ +31: OP := _CMP_TRUE_US +ESAC +k[0] := ( a[63:0] OP b[63:0] ) ? 1 : 0 +k[MAX:1] := 0 + + + AVX512F +
immintrin.h
+ Compare +
+ + + + + + + + Compare the lower double-precision (64-bit) floating-point element in "a" and "b" based on the comparison operand specified by "imm8", and store the result in mask vector "k" using zeromask "k1" (the element is zeroed out when mask bit 0 is not set). [sae_note] + CASE (imm8[4:0]) OF +0: OP := _CMP_EQ_OQ +1: OP := _CMP_LT_OS +2: OP := _CMP_LE_OS +3: OP := _CMP_UNORD_Q +4: OP := _CMP_NEQ_UQ +5: OP := _CMP_NLT_US +6: OP := _CMP_NLE_US +7: OP := _CMP_ORD_Q +8: OP := _CMP_EQ_UQ +9: OP := _CMP_NGE_US +10: OP := _CMP_NGT_US +11: OP := _CMP_FALSE_OQ +12: OP := _CMP_NEQ_OQ +13: OP := _CMP_GE_OS +14: OP := _CMP_GT_OS +15: OP := _CMP_TRUE_UQ +16: OP := _CMP_EQ_OS +17: OP := _CMP_LT_OQ +18: OP := _CMP_LE_OQ +19: OP := _CMP_UNORD_S +20: OP := _CMP_NEQ_US +21: OP := _CMP_NLT_UQ +22: OP := _CMP_NLE_UQ +23: OP := _CMP_ORD_S +24: OP := _CMP_EQ_US +25: OP := _CMP_NGE_UQ +26: OP := _CMP_NGT_UQ +27: OP := _CMP_FALSE_OS +28: OP := _CMP_NEQ_OS +29: OP := _CMP_GE_OQ +30: OP := _CMP_GT_OQ +31: OP := _CMP_TRUE_US +ESAC +IF k1[0] + k[0] := ( a[63:0] OP b[63:0] ) ? 1 : 0 +ELSE + k[0] := 0 +FI +k[MAX:1] := 0 + + + AVX512F +
immintrin.h
+ Compare +
+ + + + + + + Compare the lower double-precision (64-bit) floating-point element in "a" and "b" based on the comparison operand specified by "imm8", and store the result in mask vector "k" using zeromask "k1" (the element is zeroed out when mask bit 0 is not set). + CASE (imm8[4:0]) OF +0: OP := _CMP_EQ_OQ +1: OP := _CMP_LT_OS +2: OP := _CMP_LE_OS +3: OP := _CMP_UNORD_Q +4: OP := _CMP_NEQ_UQ +5: OP := _CMP_NLT_US +6: OP := _CMP_NLE_US +7: OP := _CMP_ORD_Q +8: OP := _CMP_EQ_UQ +9: OP := _CMP_NGE_US +10: OP := _CMP_NGT_US +11: OP := _CMP_FALSE_OQ +12: OP := _CMP_NEQ_OQ +13: OP := _CMP_GE_OS +14: OP := _CMP_GT_OS +15: OP := _CMP_TRUE_UQ +16: OP := _CMP_EQ_OS +17: OP := _CMP_LT_OQ +18: OP := _CMP_LE_OQ +19: OP := _CMP_UNORD_S +20: OP := _CMP_NEQ_US +21: OP := _CMP_NLT_UQ +22: OP := _CMP_NLE_UQ +23: OP := _CMP_ORD_S +24: OP := _CMP_EQ_US +25: OP := _CMP_NGE_UQ +26: OP := _CMP_NGT_UQ +27: OP := _CMP_FALSE_OS +28: OP := _CMP_NEQ_OS +29: OP := _CMP_GE_OQ +30: OP := _CMP_GT_OQ +31: OP := _CMP_TRUE_US +ESAC +IF k1[0] + k[0] := ( a[63:0] OP b[63:0] ) ? 1 : 0 +ELSE + k[0] := 0 +FI +k[MAX:1] := 0 + + + AVX512F +
immintrin.h
+ Compare +
+ + + + + + + Compare the lower single-precision (32-bit) floating-point element in "a" and "b" based on the comparison operand specified by "imm8", and store the result in mask vector "k". [sae_note] + CASE (imm8[4:0]) OF +0: OP := _CMP_EQ_OQ +1: OP := _CMP_LT_OS +2: OP := _CMP_LE_OS +3: OP := _CMP_UNORD_Q +4: OP := _CMP_NEQ_UQ +5: OP := _CMP_NLT_US +6: OP := _CMP_NLE_US +7: OP := _CMP_ORD_Q +8: OP := _CMP_EQ_UQ +9: OP := _CMP_NGE_US +10: OP := _CMP_NGT_US +11: OP := _CMP_FALSE_OQ +12: OP := _CMP_NEQ_OQ +13: OP := _CMP_GE_OS +14: OP := _CMP_GT_OS +15: OP := _CMP_TRUE_UQ +16: OP := _CMP_EQ_OS +17: OP := _CMP_LT_OQ +18: OP := _CMP_LE_OQ +19: OP := _CMP_UNORD_S +20: OP := _CMP_NEQ_US +21: OP := _CMP_NLT_UQ +22: OP := _CMP_NLE_UQ +23: OP := _CMP_ORD_S +24: OP := _CMP_EQ_US +25: OP := _CMP_NGE_UQ +26: OP := _CMP_NGT_UQ +27: OP := _CMP_FALSE_OS +28: OP := _CMP_NEQ_OS +29: OP := _CMP_GE_OQ +30: OP := _CMP_GT_OQ +31: OP := _CMP_TRUE_US +ESAC +k[0] := ( a[31:0] OP b[31:0] ) ? 1 : 0 +k[MAX:1] := 0 + + + AVX512F +
immintrin.h
+ Compare +
+ + + + + + Compare the lower single-precision (32-bit) floating-point element in "a" and "b" based on the comparison operand specified by "imm8", and store the result in mask vector "k". + CASE (imm8[4:0]) OF +0: OP := _CMP_EQ_OQ +1: OP := _CMP_LT_OS +2: OP := _CMP_LE_OS +3: OP := _CMP_UNORD_Q +4: OP := _CMP_NEQ_UQ +5: OP := _CMP_NLT_US +6: OP := _CMP_NLE_US +7: OP := _CMP_ORD_Q +8: OP := _CMP_EQ_UQ +9: OP := _CMP_NGE_US +10: OP := _CMP_NGT_US +11: OP := _CMP_FALSE_OQ +12: OP := _CMP_NEQ_OQ +13: OP := _CMP_GE_OS +14: OP := _CMP_GT_OS +15: OP := _CMP_TRUE_UQ +16: OP := _CMP_EQ_OS +17: OP := _CMP_LT_OQ +18: OP := _CMP_LE_OQ +19: OP := _CMP_UNORD_S +20: OP := _CMP_NEQ_US +21: OP := _CMP_NLT_UQ +22: OP := _CMP_NLE_UQ +23: OP := _CMP_ORD_S +24: OP := _CMP_EQ_US +25: OP := _CMP_NGE_UQ +26: OP := _CMP_NGT_UQ +27: OP := _CMP_FALSE_OS +28: OP := _CMP_NEQ_OS +29: OP := _CMP_GE_OQ +30: OP := _CMP_GT_OQ +31: OP := _CMP_TRUE_US +ESAC +k[0] := ( a[31:0] OP b[31:0] ) ? 1 : 0 +k[MAX:1] := 0 + + + AVX512F +
immintrin.h
+ Compare +
+ + + + + + + + Compare the lower single-precision (32-bit) floating-point element in "a" and "b" based on the comparison operand specified by "imm8", and store the result in mask vector "k" using zeromask "k1" (the element is zeroed out when mask bit 0 is not set). [sae_note] + CASE (imm8[4:0]) OF +0: OP := _CMP_EQ_OQ +1: OP := _CMP_LT_OS +2: OP := _CMP_LE_OS +3: OP := _CMP_UNORD_Q +4: OP := _CMP_NEQ_UQ +5: OP := _CMP_NLT_US +6: OP := _CMP_NLE_US +7: OP := _CMP_ORD_Q +8: OP := _CMP_EQ_UQ +9: OP := _CMP_NGE_US +10: OP := _CMP_NGT_US +11: OP := _CMP_FALSE_OQ +12: OP := _CMP_NEQ_OQ +13: OP := _CMP_GE_OS +14: OP := _CMP_GT_OS +15: OP := _CMP_TRUE_UQ +16: OP := _CMP_EQ_OS +17: OP := _CMP_LT_OQ +18: OP := _CMP_LE_OQ +19: OP := _CMP_UNORD_S +20: OP := _CMP_NEQ_US +21: OP := _CMP_NLT_UQ +22: OP := _CMP_NLE_UQ +23: OP := _CMP_ORD_S +24: OP := _CMP_EQ_US +25: OP := _CMP_NGE_UQ +26: OP := _CMP_NGT_UQ +27: OP := _CMP_FALSE_OS +28: OP := _CMP_NEQ_OS +29: OP := _CMP_GE_OQ +30: OP := _CMP_GT_OQ +31: OP := _CMP_TRUE_US +ESAC +IF k1[0] + k[0] := ( a[31:0] OP b[31:0] ) ? 1 : 0 +ELSE + k[0] := 0 +FI +k[MAX:1] := 0 + + + AVX512F +
immintrin.h
+ Compare +
+ + + + + + + Compare the lower single-precision (32-bit) floating-point element in "a" and "b" based on the comparison operand specified by "imm8", and store the result in mask vector "k" using zeromask "k1" (the element is zeroed out when mask bit 0 is not set). + CASE (imm8[4:0]) OF +0: OP := _CMP_EQ_OQ +1: OP := _CMP_LT_OS +2: OP := _CMP_LE_OS +3: OP := _CMP_UNORD_Q +4: OP := _CMP_NEQ_UQ +5: OP := _CMP_NLT_US +6: OP := _CMP_NLE_US +7: OP := _CMP_ORD_Q +8: OP := _CMP_EQ_UQ +9: OP := _CMP_NGE_US +10: OP := _CMP_NGT_US +11: OP := _CMP_FALSE_OQ +12: OP := _CMP_NEQ_OQ +13: OP := _CMP_GE_OS +14: OP := _CMP_GT_OS +15: OP := _CMP_TRUE_UQ +16: OP := _CMP_EQ_OS +17: OP := _CMP_LT_OQ +18: OP := _CMP_LE_OQ +19: OP := _CMP_UNORD_S +20: OP := _CMP_NEQ_US +21: OP := _CMP_NLT_UQ +22: OP := _CMP_NLE_UQ +23: OP := _CMP_ORD_S +24: OP := _CMP_EQ_US +25: OP := _CMP_NGE_UQ +26: OP := _CMP_NGT_UQ +27: OP := _CMP_FALSE_OS +28: OP := _CMP_NEQ_OS +29: OP := _CMP_GE_OQ +30: OP := _CMP_GT_OQ +31: OP := _CMP_TRUE_US +ESAC +IF k1[0] + k[0] := ( a[31:0] OP b[31:0] ) ? 1 : 0 +ELSE + k[0] := 0 +FI +k[MAX:1] := 0 + + + AVX512F +
immintrin.h
+ Compare +
+ + + + + + + Compare the lower double-precision (64-bit) floating-point element in "a" and "b" based on the comparison operand specified by "imm8", and return the boolean result (0 or 1). [sae_note] + CASE (imm8[4:0]) OF +0: OP := _CMP_EQ_OQ +1: OP := _CMP_LT_OS +2: OP := _CMP_LE_OS +3: OP := _CMP_UNORD_Q +4: OP := _CMP_NEQ_UQ +5: OP := _CMP_NLT_US +6: OP := _CMP_NLE_US +7: OP := _CMP_ORD_Q +8: OP := _CMP_EQ_UQ +9: OP := _CMP_NGE_US +10: OP := _CMP_NGT_US +11: OP := _CMP_FALSE_OQ +12: OP := _CMP_NEQ_OQ +13: OP := _CMP_GE_OS +14: OP := _CMP_GT_OS +15: OP := _CMP_TRUE_UQ +16: OP := _CMP_EQ_OS +17: OP := _CMP_LT_OQ +18: OP := _CMP_LE_OQ +19: OP := _CMP_UNORD_S +20: OP := _CMP_NEQ_US +21: OP := _CMP_NLT_UQ +22: OP := _CMP_NLE_UQ +23: OP := _CMP_ORD_S +24: OP := _CMP_EQ_US +25: OP := _CMP_NGE_UQ +26: OP := _CMP_NGT_UQ +27: OP := _CMP_FALSE_OS +28: OP := _CMP_NEQ_OS +29: OP := _CMP_GE_OQ +30: OP := _CMP_GT_OQ +31: OP := _CMP_TRUE_US +ESAC +RETURN ( a[63:0] OP b[63:0] ) ? 1 : 0 + + + AVX512F +
immintrin.h
+ Compare +
+ + + + + + + Compare the lower single-precision (32-bit) floating-point element in "a" and "b" based on the comparison operand specified by "imm8", and return the boolean result (0 or 1). [sae_note] + CASE (imm8[4:0]) OF +0: OP := _CMP_EQ_OQ +1: OP := _CMP_LT_OS +2: OP := _CMP_LE_OS +3: OP := _CMP_UNORD_Q +4: OP := _CMP_NEQ_UQ +5: OP := _CMP_NLT_US +6: OP := _CMP_NLE_US +7: OP := _CMP_ORD_Q +8: OP := _CMP_EQ_UQ +9: OP := _CMP_NGE_US +10: OP := _CMP_NGT_US +11: OP := _CMP_FALSE_OQ +12: OP := _CMP_NEQ_OQ +13: OP := _CMP_GE_OS +14: OP := _CMP_GT_OS +15: OP := _CMP_TRUE_UQ +16: OP := _CMP_EQ_OS +17: OP := _CMP_LT_OQ +18: OP := _CMP_LE_OQ +19: OP := _CMP_UNORD_S +20: OP := _CMP_NEQ_US +21: OP := _CMP_NLT_UQ +22: OP := _CMP_NLE_UQ +23: OP := _CMP_ORD_S +24: OP := _CMP_EQ_US +25: OP := _CMP_NGE_UQ +26: OP := _CMP_NGT_UQ +27: OP := _CMP_FALSE_OS +28: OP := _CMP_NEQ_OS +29: OP := _CMP_GE_OQ +30: OP := _CMP_GT_OQ +31: OP := _CMP_TRUE_US +ESAC +RETURN ( a[31:0] OP b[31:0] ) ? 1 : 0 + + + + AVX512F +
immintrin.h
+ Compare +
+ + + + + Compare packed signed 32-bit integers in "a" and "b" for less-than, and store the results in mask vector "k". + +FOR j := 0 to 15 + i := j*32 + k[j] := ( a[i+31:i] < b[i+31:i] ) ? 1 : 0 +ENDFOR +k[MAX:16] := 0 + + + AVX512F +
immintrin.h
+ Compare +
+ + + + + + Compare packed signed 32-bit integers in "a" and "b" for less-than-or-equal, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k1[j] + k[j] := ( a[i+31:i] < b[i+31:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:16] := 0 + + + AVX512F +
immintrin.h
+ Compare +
+ + + + + + Compare packed signed 64-bit integers in "a" and "b" based on the comparison operand specified by "imm8", and store the results in mask vector "k". + CASE (imm8[2:0]) OF +0: OP := _MM_CMPINT_EQ +1: OP := _MM_CMPINT_LT +2: OP := _MM_CMPINT_LE +3: OP := _MM_CMPINT_FALSE +4: OP := _MM_CMPINT_NE +5: OP := _MM_CMPINT_NLT +6: OP := _MM_CMPINT_NLE +7: OP := _MM_CMPINT_TRUE +ESAC +FOR j := 0 to 7 + i := j*64 + k[j] := ( a[i+63:i] OP b[i+63:i] ) ? 1 : 0 +ENDFOR +k[MAX:8] := 0 + + + AVX512F +
immintrin.h
+ Compare +
+ + + + + Compare packed 64-bit integers in "a" and "b" for equality, and store the results in mask vector "k". + +FOR j := 0 to 7 + i := j*64 + k[j] := ( a[i+63:i] == b[i+63:i] ) ? 1 : 0 +ENDFOR +k[MAX:8] := 0 + + + AVX512F +
immintrin.h
+ Compare +
+ + + + + Compare packed signed 64-bit integers in "a" and "b" for greater-than-or-equal, and store the results in mask vector "k". + +FOR j := 0 to 7 + i := j*64 + k[j] := ( a[i+63:i] >= b[i+63:i] ) ? 1 : 0 +ENDFOR +k[MAX:8] := 0 + + + AVX512F +
immintrin.h
+ Compare +
+ + + + + Compare packed signed 64-bit integers in "a" and "b" for greater-than, and store the results in mask vector "k". + +FOR j := 0 to 7 + i := j*64 + k[j] := ( a[i+63:i] > b[i+63:i] ) ? 1 : 0 +ENDFOR +k[MAX:8] := 0 + + + AVX512F +
immintrin.h
+ Compare +
+ + + + + Compare packed signed 64-bit integers in "a" and "b" for less-than-or-equal, and store the results in mask vector "k". + +FOR j := 0 to 7 + i := j*64 + k[j] := ( a[i+63:i] <= b[i+63:i] ) ? 1 : 0 +ENDFOR +k[MAX:8] := 0 + + + AVX512F +
immintrin.h
+ Compare +
+ + + + + Compare packed signed 64-bit integers in "a" and "b" for less-than, and store the results in mask vector "k". + +FOR j := 0 to 7 + i := j*64 + k[j] := ( a[i+63:i] < b[i+63:i] ) ? 1 : 0 +ENDFOR +k[MAX:8] := 0 + + + AVX512F +
immintrin.h
+ Compare +
+ + + + + Compare packed signed 64-bit integers in "a" and "b" for not-equal, and store the results in mask vector "k". + +FOR j := 0 to 7 + i := j*64 + k[j] := ( a[i+63:i] != b[i+63:i] ) ? 1 : 0 +ENDFOR +k[MAX:8] := 0 + + + AVX512F +
immintrin.h
+ Compare +
+ + + + + + + Compare packed signed 64-bit integers in "a" and "b" based on the comparison operand specified by "imm8", and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + CASE (imm8[2:0]) OF +0: OP := _MM_CMPINT_EQ +1: OP := _MM_CMPINT_LT +2: OP := _MM_CMPINT_LE +3: OP := _MM_CMPINT_FALSE +4: OP := _MM_CMPINT_NE +5: OP := _MM_CMPINT_NLT +6: OP := _MM_CMPINT_NLE +7: OP := _MM_CMPINT_TRUE +ESAC +FOR j := 0 to 7 + i := j*64 + IF k1[j] + k[j] := ( a[i+63:i] OP b[i+63:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:8] := 0 + + + AVX512F +
immintrin.h
+ Compare +
+ + + + + + Compare packed 64-bit integers in "a" and "b" for equality, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k1[j] + k[j] := ( a[i+63:i] == b[i+63:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:8] := 0 + + + AVX512F +
immintrin.h
+ Compare +
+ + + + + + Compare packed signed 64-bit integers in "a" and "b" for greater-than-or-equal, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k1[j] + k[j] := ( a[i+63:i] >= b[i+63:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:8] := 0 + + + AVX512F +
immintrin.h
+ Compare +
+ + + + + + Compare packed signed 64-bit integers in "a" and "b" for greater-than, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k1[j] + k[j] := ( a[i+63:i] > b[i+63:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:8] := 0 + + + AVX512F +
immintrin.h
+ Compare +
+ + + + + + Compare packed signed 64-bit integers in "a" and "b" for less-than-or-equal, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k1[j] + k[j] := ( a[i+63:i] <= b[i+63:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:8] := 0 + + + AVX512F +
immintrin.h
+ Compare +
+ + + + + + Compare packed signed 64-bit integers in "a" and "b" for less-than, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k1[j] + k[j] := ( a[i+63:i] < b[i+63:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:8] := 0 + + + AVX512F +
immintrin.h
+ Compare +
+ + + + + + Compare packed signed 64-bit integers in "a" and "b" for not-equal, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k1[j] + k[j] := ( a[i+63:i] != b[i+63:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:8] := 0 + + + AVX512F +
immintrin.h
+ Compare +
+ + + + + + Compare packed unsigned 64-bit integers in "a" and "b" based on the comparison operand specified by "imm8", and store the results in mask vector "k". + CASE (imm8[2:0]) OF +0: OP := _MM_CMPINT_EQ +1: OP := _MM_CMPINT_LT +2: OP := _MM_CMPINT_LE +3: OP := _MM_CMPINT_FALSE +4: OP := _MM_CMPINT_NE +5: OP := _MM_CMPINT_NLT +6: OP := _MM_CMPINT_NLE +7: OP := _MM_CMPINT_TRUE +ESAC +FOR j := 0 to 7 + i := j*64 + k[j] := ( a[i+63:i] OP b[i+63:i] ) ? 1 : 0 +ENDFOR +k[MAX:8] := 0 + + + AVX512F +
immintrin.h
+ Compare +
+ + + + + Compare packed unsigned 64-bit integers in "a" and "b" for equality, and store the results in mask vector "k". + +FOR j := 0 to 7 + i := j*64 + k[j] := ( a[i+63:i] == b[i+63:i] ) ? 1 : 0 +ENDFOR +k[MAX:8] := 0 + + + AVX512F +
immintrin.h
+ Compare +
+ + + + + Compare packed unsigned 64-bit integers in "a" and "b" for greater-than-or-equal, and store the results in mask vector "k". + +FOR j := 0 to 7 + i := j*64 + k[j] := ( a[i+63:i] >= b[i+63:i] ) ? 1 : 0 +ENDFOR +k[MAX:8] := 0 + + + AVX512F +
immintrin.h
+ Compare +
+ + + + + Compare packed unsigned 64-bit integers in "a" and "b" for greater-than, and store the results in mask vector "k". + +FOR j := 0 to 7 + i := j*64 + k[j] := ( a[i+63:i] > b[i+63:i] ) ? 1 : 0 +ENDFOR +k[MAX:8] := 0 + + + AVX512F +
immintrin.h
+ Compare +
+ + + + + Compare packed unsigned 64-bit integers in "a" and "b" for less-than-or-equal, and store the results in mask vector "k". + +FOR j := 0 to 7 + i := j*64 + k[j] := ( a[i+63:i] <= b[i+63:i] ) ? 1 : 0 +ENDFOR +k[MAX:8] := 0 + + + AVX512F +
immintrin.h
+ Compare +
+ + + + + Compare packed unsigned 64-bit integers in "a" and "b" for less-than, and store the results in mask vector "k". + +FOR j := 0 to 7 + i := j*64 + k[j] := ( a[i+63:i] < b[i+63:i] ) ? 1 : 0 +ENDFOR +k[MAX:8] := 0 + + + AVX512F +
immintrin.h
+ Compare +
+ + + + + Compare packed unsigned 64-bit integers in "a" and "b" for not-equal, and store the results in mask vector "k". + +FOR j := 0 to 7 + i := j*64 + k[j] := ( a[i+63:i] != b[i+63:i] ) ? 1 : 0 +ENDFOR +k[MAX:8] := 0 + + + AVX512F +
immintrin.h
+ Compare +
+ + + + + + + Compare packed unsigned 64-bit integers in "a" and "b" based on the comparison operand specified by "imm8", and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + CASE (imm8[2:0]) OF +0: OP := _MM_CMPINT_EQ +1: OP := _MM_CMPINT_LT +2: OP := _MM_CMPINT_LE +3: OP := _MM_CMPINT_FALSE +4: OP := _MM_CMPINT_NE +5: OP := _MM_CMPINT_NLT +6: OP := _MM_CMPINT_NLE +7: OP := _MM_CMPINT_TRUE +ESAC +FOR j := 0 to 7 + i := j*64 + IF k1[j] + k[j] := ( a[i+63:i] OP b[i+63:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:8] := 0 + + + AVX512F +
immintrin.h
+ Compare +
+ + + + + + Compare packed unsigned 64-bit integers in "a" and "b" for equality, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k1[j] + k[j] := ( a[i+63:i] == b[i+63:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:8] := 0 + + + AVX512F +
immintrin.h
+ Compare +
+ + + + + + Compare packed unsigned 64-bit integers in "a" and "b" for greater-than-or-equal, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k1[j] + k[j] := ( a[i+63:i] >= b[i+63:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:8] := 0 + + + AVX512F +
immintrin.h
+ Compare +
+ + + + + + Compare packed unsigned 64-bit integers in "a" and "b" for greater-than, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k1[j] + k[j] := ( a[i+63:i] > b[i+63:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:8] := 0 + + + AVX512F +
immintrin.h
+ Compare +
+ + + + + + Compare packed unsigned 64-bit integers in "a" and "b" for less-than-or-equal, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k1[j] + k[j] := ( a[i+63:i] <= b[i+63:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:8] := 0 + + + AVX512F +
immintrin.h
+ Compare +
+ + + + + + Compare packed unsigned 64-bit integers in "a" and "b" for less-than, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k1[j] + k[j] := ( a[i+63:i] < b[i+63:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:8] := 0 + + + AVX512F +
immintrin.h
+ Compare +
+ + + + + + Compare packed unsigned 64-bit integers in "a" and "b" for not-equal, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k1[j] + k[j] := ( a[i+63:i] != b[i+63:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:8] := 0 + + + AVX512F +
immintrin.h
+ Compare +
+ + + + Convert packed signed 32-bit integers in "a" to packed double-precision (64-bit) floating-point elements, and store the results in "dst". + +FOR j := 0 to 7 + i := j*32 + m := j*64 + dst[m+63:m] := Convert_Int32_To_FP64(a[i+31:i]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + + Convert packed signed 32-bit integers in "a" to packed double-precision (64-bit) floating-point elements, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + m := j*64 + IF k[j] + dst[m+63:m] := Convert_Int32_To_FP64(a[i+31:i]) + ELSE + dst[m+63:m] := src[m+63:m] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + Convert packed signed 32-bit integers in "a" to packed double-precision (64-bit) floating-point elements, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + m := j*64 + IF k[j] + dst[m+63:m] := Convert_Int32_To_FP64(a[i+31:i]) + ELSE + dst[m+63:m] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + Convert packed signed 32-bit integers in "a" to packed single-precision (32-bit) floating-point elements, and store the results in "dst". + [round_note] + +FOR j := 0 to 15 + i := 32*j + dst[i+31:i] := Convert_Int32_To_FP32(a[i+31:i]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + Convert packed signed 32-bit integers in "a" to packed single-precision (32-bit) floating-point elements, and store the results in "dst". + +FOR j := 0 to 15 + i := 32*j + dst[i+31:i] := Convert_Int32_To_FP32(a[i+31:i]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + + + Convert packed signed 32-bit integers in "a" to packed single-precision (32-bit) floating-point elements, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := Convert_Int32_To_FP32(a[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + + Convert packed signed 32-bit integers in "a" to packed single-precision (32-bit) floating-point elements, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := Convert_Int32_To_FP32(a[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + + Convert packed signed 32-bit integers in "a" to packed single-precision (32-bit) floating-point elements, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 to 15 + i := 32*j + IF k[j] + dst[i+31:i] := Convert_Int32_To_FP32(a[i+31:i]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + Convert packed signed 32-bit integers in "a" to packed single-precision (32-bit) floating-point elements, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := 32*j + IF k[j] + dst[i+31:i] := Convert_Int32_To_FP32(a[i+31:i]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed 32-bit integers, and store the results in "dst". + [round_note] + +FOR j := 0 to 7 + i := 32*j + k := 64*j + dst[i+31:i] := Convert_FP64_To_Int32(a[k+63:k]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed 32-bit integers, and store the results in "dst". + +FOR j := 0 to 7 + i := 32*j + k := 64*j + dst[i+31:i] := Convert_FP64_To_Int32(a[k+63:k]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed 32-bit integers, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 to 7 + i := j*32 + l := j*64 + IF k[j] + dst[i+31:i] := Convert_FP64_To_Int32(a[l+63:l]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed 32-bit integers, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + l := j*64 + IF k[j] + dst[i+31:i] := Convert_FP64_To_Int32(a[l+63:l]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed 32-bit integers, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 to 7 + i := 32*j + l := 64*j + IF k[j] + dst[i+31:i] := Convert_FP64_To_Int32(a[l+63:l]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed 32-bit integers, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := 32*j + l := 64*j + IF k[j] + dst[i+31:i] := Convert_FP64_To_Int32(a[l+63:l]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed single-precision (32-bit) floating-point elements, and store the results in "dst". + [round_note] + +FOR j := 0 to 7 + i := 32*j + k := 64*j + dst[i+31:i] := Convert_FP64_To_FP32(a[k+63:k]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed single-precision (32-bit) floating-point elements, and store the results in "dst". + +FOR j := 0 to 7 + i := 32*j + k := 64*j + dst[i+31:i] := Convert_FP64_To_FP32(a[k+63:k]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed single-precision (32-bit) floating-point elements, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 to 7 + i := j*32 + l := j*64 + IF k[j] + dst[i+31:i] := Convert_FP64_To_FP32(a[l+63:l]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed single-precision (32-bit) floating-point elements, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := 32*j + l := 64*j + IF k[j] + dst[i+31:i] := Convert_FP64_To_FP32(a[l+63:l]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed single-precision (32-bit) floating-point elements, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 to 7 + i := j*32 + l := j*64 + IF k[j] + dst[i+31:i] := Convert_FP64_To_FP32(a[l+63:l]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed single-precision (32-bit) floating-point elements, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + l := j*64 + IF k[j] + dst[i+31:i] := Convert_FP64_To_FP32(a[l+63:l]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed unsigned 32-bit integers, and store the results in "dst". + [round_note] + +FOR j := 0 to 7 + i := 32*j + k := 64*j + dst[i+31:i] := Convert_FP64_To_UInt32(a[k+63:k]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed unsigned 32-bit integers, and store the results in "dst". + +FOR j := 0 to 7 + i := 32*j + k := 64*j + dst[i+31:i] := Convert_FP64_To_UInt32(a[k+63:k]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed unsigned 32-bit integers, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 to 7 + i := j*32 + l := j*64 + IF k[j] + dst[i+31:i] := Convert_FP64_To_UInt32(a[l+63:l]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed unsigned 32-bit integers, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + l := j*64 + IF k[j] + dst[i+31:i] := Convert_FP64_To_UInt32(a[l+63:l]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed unsigned 32-bit integers, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 to 7 + i := 32*j + l := 64*j + IF k[j] + dst[i+31:i] := Convert_FP64_To_UInt32(a[l+63:l]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed unsigned 32-bit integers, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := 32*j + l := 64*j + IF k[j] + dst[i+31:i] := Convert_FP64_To_UInt32(a[l+63:l]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed single-precision (32-bit) floating-point elements, and store the results in "dst". [sae_note] + +FOR j := 0 to 15 + i := j*32 + m := j*16 + dst[i+31:i] := Convert_FP16_To_FP32(a[m+15:m]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed single-precision (32-bit) floating-point elements, and store the results in "dst". + +FOR j := 0 to 15 + i := j*32 + m := j*16 + dst[i+31:i] := Convert_FP16_To_FP32(a[m+15:m]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed single-precision (32-bit) floating-point elements, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). [sae_note] + +FOR j := 0 to 15 + i := j*32 + m := j*16 + IF k[j] + dst[i+31:i] := Convert_FP16_To_FP32(a[m+15:m]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed single-precision (32-bit) floating-point elements, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + m := j*16 + IF k[j] + dst[i+31:i] := Convert_FP16_To_FP32(a[m+15:m]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed single-precision (32-bit) floating-point elements, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). [sae_note] + +FOR j := 0 to 15 + i := j*32 + m := j*16 + IF k[j] + dst[i+31:i] := Convert_FP16_To_FP32(a[m+15:m]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed single-precision (32-bit) floating-point elements, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + m := j*16 + IF k[j] + dst[i+31:i] := Convert_FP16_To_FP32(a[m+15:m]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed 32-bit integers, and store the results in "dst". + [round_note] + +FOR j := 0 to 15 + i := 32*j + dst[i+31:i] := Convert_FP32_To_Int32(a[i+31:i]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed 32-bit integers, and store the results in "dst". + +FOR j := 0 to 15 + i := 32*j + dst[i+31:i] := Convert_FP32_To_Int32(a[i+31:i]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed 32-bit integers, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := Convert_FP32_To_Int32(a[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed 32-bit integers, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := Convert_FP32_To_Int32(a[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed 32-bit integers, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 to 15 + i := 32*j + IF k[j] + dst[i+31:i] := Convert_FP32_To_Int32(a[i+31:i]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed 32-bit integers, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := 32*j + IF k[j] + dst[i+31:i] := Convert_FP32_To_Int32(a[i+31:i]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed double-precision (64-bit) floating-point elements, and store the results in "dst". [sae_note] + +FOR j := 0 to 7 + i := 64*j + k := 32*j + dst[i+63:i] := Convert_FP32_To_FP64(a[k+31:k]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed double-precision (64-bit) floating-point elements, and store the results in "dst". + +FOR j := 0 to 7 + i := 64*j + k := 32*j + dst[i+63:i] := Convert_FP32_To_FP64(a[k+31:k]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed double-precision (64-bit) floating-point elements, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). [sae_note] + +FOR j := 0 to 7 + i := 64*j + l := 32*j + IF k[j] + dst[i+63:i] := Convert_FP32_To_FP64(a[l+31:l]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed double-precision (64-bit) floating-point elements, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := 64*j + l := 32*j + IF k[j] + dst[i+63:i] := Convert_FP32_To_FP64(a[l+31:l]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed double-precision (64-bit) floating-point elements, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). [sae_note] + +FOR j := 0 to 7 + i := 64*j + l := 32*j + IF k[j] + dst[i+63:i] := Convert_FP32_To_FP64(a[l+31:l]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed double-precision (64-bit) floating-point elements, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := 64*j + l := 32*j + IF k[j] + dst[i+63:i] := Convert_FP32_To_FP64(a[l+31:l]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst". [round2_note] + +FOR j := 0 to 15 + i := 16*j + l := 32*j + dst[i+15:i] := Convert_FP32_To_FP16(a[l+31:l]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst". [round2_note] + +FOR j := 0 to 15 + i := 16*j + l := 32*j + dst[i+15:i] := Convert_FP32_To_FP16(a[l+31:l]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). [round2_note] + +FOR j := 0 to 15 + i := 16*j + l := 32*j + IF k[j] + dst[i+15:i] := Convert_FP32_To_FP16(a[l+31:l]) + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). [round2_note] + +FOR j := 0 to 15 + i := 16*j + l := 32*j + IF k[j] + dst[i+15:i] := Convert_FP32_To_FP16(a[l+31:l]) + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). [round2_note] + +FOR j := 0 to 15 + i := 16*j + l := 32*j + IF k[j] + dst[i+15:i] := Convert_FP32_To_FP16(a[l+31:l]) + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). [round2_note] + +FOR j := 0 to 15 + i := 16*j + l := 32*j + IF k[j] + dst[i+15:i] := Convert_FP32_To_FP16(a[l+31:l]) + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed unsigned 32-bit integers, and store the results in "dst". + [round_note] + +FOR j := 0 to 15 + i := 32*j + dst[i+31:i] := Convert_FP32_To_UInt32(a[i+31:i]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed unsigned 32-bit integers, and store the results in "dst". + +FOR j := 0 to 15 + i := 32*j + dst[i+31:i] := Convert_FP32_To_UInt32(a[i+31:i]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed unsigned 32-bit integers, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := Convert_FP32_To_UInt32(a[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed unsigned 32-bit integers, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := 32*j + IF k[j] + dst[i+31:i] := Convert_FP32_To_UInt32(a[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed unsigned 32-bit integers, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 to 15 + i := 32*j + IF k[j] + dst[i+31:i] := Convert_FP32_To_UInt32(a[i+31:i]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed unsigned 32-bit integers, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := 32*j + IF k[j] + dst[i+31:i] := Convert_FP32_To_UInt32(a[i+31:i]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + Convert the lower double-precision (64-bit) floating-point element in "a" to a 32-bit integer, and store the result in "dst". + [round_note] + +dst[31:0] := Convert_FP64_To_Int32(a[63:0]) + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + Convert the lower double-precision (64-bit) floating-point element in "a" to a 64-bit integer, and store the result in "dst". + [round_note] + +dst[63:0] := Convert_FP64_To_Int64(a[63:0]) + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + Convert the lower double-precision (64-bit) floating-point element in "a" to a 32-bit integer, and store the result in "dst". + [round_note] + +dst[31:0] := Convert_FP64_To_Int32(a[63:0]) + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + Convert the lower double-precision (64-bit) floating-point element in "a" to a 64-bit integer, and store the result in "dst". + [round_note] + +dst[63:0] := Convert_FP64_To_Int64(a[63:0]) + + + AVX512F +
immintrin.h
+ Convert +
+ + + + Convert the lower double-precision (64-bit) floating-point element in "a" to a 32-bit integer, and store the result in "dst". + +dst[31:0] := Convert_FP64_To_Int32(a[63:0]) + + + AVX512F +
immintrin.h
+ Convert +
+ + + + Convert the lower double-precision (64-bit) floating-point element in "a" to a 64-bit integer, and store the result in "dst". + +dst[63:0] := Convert_FP64_To_Int64(a[63:0]) + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + + Convert the lower double-precision (64-bit) floating-point element in "b" to a single-precision (32-bit) floating-point element, store the result in the lower element of "dst", and copy the upper 3 packed elements from "a" to the upper elements of "dst". + [round_note] + +dst[31:0] := Convert_FP64_To_FP32(b[63:0]) +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + + + + Convert the lower double-precision (64-bit) floating-point element in "b" to a single-precision (32-bit) floating-point element, store the result in the lower element of "dst" using writemask "k" (the element is copied from "src" when mask bit 0 is not set), and copy the upper 3 packed elements from "a" to the upper elements of "dst". + [round_note] + +IF k[0] + dst[31:0] := Convert_FP64_To_FP32(b[63:0]) +ELSE + dst[31:0] := src[31:0] +FI +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + + + Convert the lower double-precision (64-bit) floating-point element in "b" to a single-precision (32-bit) floating-point element, store the result in the lower element of "dst" using writemask "k" (the element is copied from "src" when mask bit 0 is not set), and copy the upper 3 packed elements from "a" to the upper elements of "dst". + +IF k[0] + dst[31:0] := Convert_FP64_To_FP32(b[63:0]) +ELSE + dst[31:0] := src[31:0] +FI +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + + + Convert the lower double-precision (64-bit) floating-point element in "b" to a single-precision (32-bit) floating-point element, store the result in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper 3 packed elements from "a" to the upper elements of "dst". + [round_note] + +IF k[0] + dst[31:0] := Convert_FP64_To_FP32(b[63:0]) +ELSE + dst[31:0] := 0 +FI +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + + Convert the lower double-precision (64-bit) floating-point element in "b" to a single-precision (32-bit) floating-point element, store the result in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper 3 packed elements from "a" to the upper elements of "dst". + +IF k[0] + dst[31:0] := Convert_FP64_To_FP32(b[63:0]) +ELSE + dst[31:0] := 0 +FI +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + Convert the lower double-precision (64-bit) floating-point element in "a" to an unsigned 32-bit integer, and store the result in "dst". + [round_note] + +dst[31:0] := Convert_FP64_To_UInt32(a[63:0]) + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + Convert the lower double-precision (64-bit) floating-point element in "a" to an unsigned 64-bit integer, and store the result in "dst". + [round_note] + +dst[63:0] := Convert_FP64_To_UInt64(a[63:0]) + + + AVX512F +
immintrin.h
+ Convert +
+ + + + Convert the lower double-precision (64-bit) floating-point element in "a" to an unsigned 32-bit integer, and store the result in "dst". + +dst[31:0] := Convert_FP64_To_UInt32(a[63:0]) + + + AVX512F +
immintrin.h
+ Convert +
+ + + + Convert the lower double-precision (64-bit) floating-point element in "a" to an unsigned 64-bit integer, and store the result in "dst". + +dst[63:0] := Convert_FP64_To_UInt64(a[63:0]) + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + + Convert the signed 64-bit integer "b" to a double-precision (64-bit) floating-point element, store the result in the lower element of "dst", and copy the upper element from "a" to the upper element of "dst". + [round_note] + +dst[63:0] := Convert_Int64_To_FP64(b[63:0]) +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + + Convert the signed 64-bit integer "b" to a double-precision (64-bit) floating-point element, store the result in the lower element of "dst", and copy the upper element from "a" to the upper element of "dst". + [round_note] + +dst[63:0] := Convert_Int64_To_FP64(b[63:0]) +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + Convert the signed 32-bit integer "b" to a double-precision (64-bit) floating-point element, store the result in the lower element of "dst", and copy the upper element from "a" to the upper element of "dst". + +dst[63:0] := Convert_Int32_To_FP64(b[31:0]) +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + Convert the signed 64-bit integer "b" to a double-precision (64-bit) floating-point element, store the result in the lower element of "dst", and copy the upper element from "a" to the upper element of "dst". + +dst[63:0] := Convert_Int64_To_FP64(b[63:0]) +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + + Convert the signed 32-bit integer "b" to a single-precision (32-bit) floating-point element, store the result in the lower element of "dst", and copy the upper 3 packed elements from "a" to the upper elements of "dst". + [round_note] + +dst[31:0] := Convert_Int32_To_FP32(b[31:0]) +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + + Convert the signed 64-bit integer "b" to a single-precision (32-bit) floating-point element, store the result in the lower element of "dst", and copy the upper 3 packed elements from "a" to the upper elements of "dst". + [round_note] + +dst[31:0] := Convert_Int64_To_FP32(b[63:0]) +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + + Convert the signed 32-bit integer "b" to a single-precision (32-bit) floating-point element, store the result in the lower element of "dst", and copy the upper 3 packed elements from "a" to the upper elements of "dst". + [round_note] + +dst[31:0] := Convert_Int32_To_FP32(b[31:0]) +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + + Convert the signed 64-bit integer "b" to a single-precision (32-bit) floating-point element, store the result in the lower element of "dst", and copy the upper 3 packed elements from "a" to the upper elements of "dst". + [round_note] + +dst[31:0] := Convert_Int64_To_FP32(b[63:0]) +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + Convert the signed 32-bit integer "b" to a single-precision (32-bit) floating-point element, store the result in the lower element of "dst", and copy the upper 3 packed elements from "a" to the upper elements of "dst". + +dst[31:0] := Convert_Int32_To_FP32(b[31:0]) +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + Convert the signed 64-bit integer "b" to a single-precision (32-bit) floating-point element, store the result in the lower element of "dst", and copy the upper 3 packed elements from "a" to the upper elements of "dst". + +dst[31:0] := Convert_Int64_To_FP32(b[63:0]) +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + + Convert the lower single-precision (32-bit) floating-point element in "b" to a double-precision (64-bit) floating-point element, store the result in the lower element of "dst", and copy the upper element from "a" to the upper element of "dst". + [sae_note] + +dst[63:0] := Convert_FP32_To_FP64(b[31:0]) +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + + + + Convert the lower single-precision (32-bit) floating-point element in "b" to a double-precision (64-bit) floating-point element, store the result in the lower element of "dst" using writemask "k" (the element is copied from "src" when mask bit 0 is not set), and copy the upper element from "a" to the upper element of "dst". + [sae_note] + +IF k[0] + dst[63:0] := Convert_FP32_To_FP64(b[31:0]) +ELSE + dst[63:0] := src[63:0] +FI +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + + + Convert the lower single-precision (32-bit) floating-point element in "b" to a double-precision (64-bit) floating-point element, store the result in the lower element of "dst" using writemask "k" (the element is copied from "src" when mask bit 0 is not set), and copy the upper element from "a" to the upper element of "dst". + +IF k[0] + dst[63:0] := Convert_FP32_To_FP64(b[31:0]) +ELSE + dst[63:0] := src[63:0] +FI +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + + + Convert the lower single-precision (32-bit) floating-point element in "b" to a double-precision (64-bit) floating-point element, store the result in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper element from "a" to the upper element of "dst". + [sae_note] + +IF k[0] + dst[63:0] := Convert_FP32_To_FP64(b[31:0]) +ELSE + dst[63:0] := 0 +FI +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + + Convert the lower single-precision (32-bit) floating-point element in "b" to a double-precision (64-bit) floating-point element, store the result in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper element from "a" to the upper element of "dst". + +IF k[0] + dst[63:0] := Convert_FP32_To_FP64(b[31:0]) +ELSE + dst[63:0] := 0 +FI +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + Convert the lower single-precision (32-bit) floating-point element in "a" to a 32-bit integer, and store the result in "dst". + [round_note] + +dst[31:0] := Convert_FP32_To_Int32(a[31:0]) + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + Convert the lower single-precision (32-bit) floating-point element in "a" to a 64-bit integer, and store the result in "dst". + [round_note] + +dst[63:0] := Convert_FP32_To_Int64(a[31:0]) + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + Convert the lower single-precision (32-bit) floating-point element in "a" to a 32-bit integer, and store the result in "dst". + [round_note] + +dst[31:0] := Convert_FP32_To_Int32(a[31:0]) + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + Convert the lower single-precision (32-bit) floating-point element in "a" to a 64-bit integer, and store the result in "dst". + [round_note] + +dst[63:0] := Convert_FP32_To_Int64(a[31:0]) + + + AVX512F +
immintrin.h
+ Convert +
+ + + + Convert the lower single-precision (32-bit) floating-point element in "a" to a 32-bit integer, and store the result in "dst". + +dst[31:0] := Convert_FP32_To_Int32(a[31:0]) + + + AVX512F +
immintrin.h
+ Convert +
+ + + + Convert the lower single-precision (32-bit) floating-point element in "a" to a 64-bit integer, and store the result in "dst". + +dst[63:0] := Convert_FP32_To_Int64(a[31:0]) + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + Convert the lower single-precision (32-bit) floating-point element in "a" to an unsigned 32-bit integer, and store the result in "dst". + [round_note] + +dst[31:0] := Convert_FP32_To_UInt32(a[31:0]) + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + Convert the lower single-precision (32-bit) floating-point element in "a" to an unsigned 64-bit integer, and store the result in "dst". + [round_note] + +dst[63:0] := Convert_FP32_To_UInt64(a[31:0]) + + + AVX512F +
immintrin.h
+ Convert +
+ + + + Convert the lower single-precision (32-bit) floating-point element in "a" to an unsigned 32-bit integer, and store the result in "dst". + +dst[31:0] := Convert_FP32_To_UInt32(a[31:0]) + + + AVX512F +
immintrin.h
+ Convert +
+ + + + Convert the lower single-precision (32-bit) floating-point element in "a" to an unsigned 64-bit integer, and store the result in "dst". + +dst[63:0] := Convert_FP32_To_UInt64(a[31:0]) + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed 32-bit integers with truncation, and store the results in "dst". [sae_note] + +FOR j := 0 to 7 + i := 32*j + k := 64*j + dst[i+31:i] := Convert_FP64_To_Int32_Truncate(a[k+63:k]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed 32-bit integers with truncation, and store the results in "dst". + +FOR j := 0 to 7 + i := 32*j + k := 64*j + dst[i+31:i] := Convert_FP64_To_Int32_Truncate(a[k+63:k]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed 32-bit integers with truncation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). [sae_note] + +FOR j := 0 to 7 + i := 32*j + l := 64*j + IF k[j] + dst[i+31:i] := Convert_FP64_To_Int32_Truncate(a[l+63:l]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed 32-bit integers with truncation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := 32*j + l := 64*j + IF k[j] + dst[i+31:i] := Convert_FP64_To_Int32_Truncate(a[l+63:l]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed 32-bit integers with truncation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). [sae_note] + +FOR j := 0 to 7 + i := 32*j + l := 64*j + IF k[j] + dst[i+31:i] := Convert_FP64_To_Int32_Truncate(a[l+63:l]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed 32-bit integers with truncation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := 32*j + l := 64*j + IF k[j] + dst[i+31:i] := Convert_FP64_To_Int32_Truncate(a[l+63:l]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed unsigned 32-bit integers with truncation, and store the results in "dst". [sae_note] + +FOR j := 0 to 7 + i := 32*j + k := 64*j + dst[i+31:i] := Convert_FP64_To_UInt32_Truncate(a[k+63:k]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed unsigned 32-bit integers with truncation, and store the results in "dst". + +FOR j := 0 to 7 + i := 32*j + k := 64*j + dst[i+31:i] := Convert_FP64_To_UInt32_Truncate(a[k+63:k]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed unsigned 32-bit integers with truncation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). [sae_note] + +FOR j := 0 to 7 + i := 32*j + l := 64*j + IF k[j] + dst[i+31:i] := Convert_FP64_To_UInt32_Truncate(a[l+63:l]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed unsigned 32-bit integers with truncation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := 32*j + l := 64*j + IF k[j] + dst[i+31:i] := Convert_FP64_To_UInt32_Truncate(a[l+63:l]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed unsigned 32-bit integers with truncation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). [sae_note] + +FOR j := 0 to 7 + i := 32*j + l := 64*j + IF k[j] + dst[i+31:i] := Convert_FP64_To_UInt32_Truncate(a[l+63:l]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed unsigned 32-bit integers with truncation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := 32*j + l := 64*j + IF k[j] + dst[i+31:i] := Convert_FP64_To_UInt32_Truncate(a[l+63:l]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed 32-bit integers with truncation, and store the results in "dst". [sae_note] + +FOR j := 0 to 15 + i := 32*j + dst[i+31:i] := Convert_FP32_To_Int32_Truncate(a[i+31:i]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed 32-bit integers with truncation, and store the results in "dst". + +FOR j := 0 to 15 + i := 32*j + dst[i+31:i] := Convert_FP32_To_Int32_Truncate(a[i+31:i]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed 32-bit integers with truncation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). [sae_note] + +FOR j := 0 to 15 + i := 32*j + IF k[j] + dst[i+31:i] := Convert_FP32_To_Int32_Truncate(a[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed 32-bit integers with truncation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := 32*j + IF k[j] + dst[i+31:i] := Convert_FP32_To_Int32_Truncate(a[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed 32-bit integers with truncation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). [sae_note] + +FOR j := 0 to 15 + i := 32*j + IF k[j] + dst[i+31:i] := Convert_FP32_To_Int32_Truncate(a[i+31:i]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed 32-bit integers with truncation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := 32*j + IF k[j] + dst[i+31:i] := Convert_FP32_To_Int32_Truncate(a[i+31:i]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed unsigned 32-bit integers with truncation, and store the results in "dst". [sae_note] + +FOR j := 0 to 15 + i := 32*j + dst[i+31:i] := Convert_FP32_To_UInt32_Truncate(a[i+31:i]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed unsigned 32-bit integers with truncation, and store the results in "dst". + +FOR j := 0 to 15 + i := 32*j + dst[i+31:i] := Convert_FP32_To_UInt32_Truncate(a[i+31:i]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed unsigned 32-bit integers with truncation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). [sae_note] + +FOR j := 0 to 15 + i := 32*j + IF k[j] + dst[i+31:i] := Convert_FP32_To_UInt32_Truncate(a[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + + Convert packed double-precision (32-bit) floating-point elements in "a" to packed unsigned 32-bit integers with truncation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := 32*j + IF k[j] + dst[i+31:i] := Convert_FP64_To_UInt32_Truncate(a[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed unsigned 32-bit integers with truncation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). [sae_note] + +FOR j := 0 to 15 + i := 32*j + IF k[j] + dst[i+31:i] := Convert_FP32_To_UInt32_Truncate(a[i+31:i]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + Convert packed double-precision (32-bit) floating-point elements in "a" to packed unsigned 32-bit integers with truncation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := 32*j + IF k[j] + dst[i+31:i] := Convert_FP64_To_UInt32_Truncate(a[i+31:i]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + Convert the lower double-precision (64-bit) floating-point element in "a" to a 32-bit integer with truncation, and store the result in "dst". + [sae_note] + +dst[31:0] := Convert_FP64_To_Int32_Truncate(a[63:0]) + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + Convert the lower double-precision (64-bit) floating-point element in "a" to a 64-bit integer with truncation, and store the result in "dst". + [sae_note] + +dst[63:0] := Convert_FP64_To_Int64_Truncate(a[63:0]) + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + Convert the lower double-precision (64-bit) floating-point element in "a" to a 32-bit integer with truncation, and store the result in "dst". + [sae_note] + +dst[31:0] := Convert_FP64_To_Int32_Truncate(a[63:0]) + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + Convert the lower double-precision (64-bit) floating-point element in "a" to a 64-bit integer with truncation, and store the result in "dst". + [sae_note] + +dst[63:0] := Convert_FP64_To_Int64_Truncate(a[63:0]) + + + AVX512F +
immintrin.h
+ Convert +
+ + + + Convert the lower double-precision (64-bit) floating-point element in "a" to a 32-bit integer with truncation, and store the result in "dst". + +dst[31:0] := Convert_FP64_To_Int32_Truncate(a[63:0]) + + + AVX512F +
immintrin.h
+ Convert +
+ + + + Convert the lower double-precision (64-bit) floating-point element in "a" to a 64-bit integer with truncation, and store the result in "dst". + +dst[63:0] := Convert_FP64_To_Int64_Truncate(a[63:0]) + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + Convert the lower double-precision (64-bit) floating-point element in "a" to an unsigned 32-bit integer with truncation, and store the result in "dst". + [sae_note] + +dst[31:0] := Convert_FP64_To_UInt32_Truncate(a[63:0]) + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + Convert the lower double-precision (64-bit) floating-point element in "a" to an unsigned 64-bit integer with truncation, and store the result in "dst". + [sae_note] + +dst[63:0] := Convert_FP64_To_UInt64_Truncate(a[63:0]) + + + AVX512F +
immintrin.h
+ Convert +
+ + + + Convert the lower double-precision (64-bit) floating-point element in "a" to an unsigned 32-bit integer with truncation, and store the result in "dst". + +dst[31:0] := Convert_FP64_To_UInt32_Truncate(a[63:0]) + + + AVX512F +
immintrin.h
+ Convert +
+ + + + Convert the lower double-precision (64-bit) floating-point element in "a" to an unsigned 64-bit integer with truncation, and store the result in "dst". + +dst[63:0] := Convert_FP64_To_UInt64_Truncate(a[63:0]) + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + Convert the lower single-precision (32-bit) floating-point element in "a" to a 32-bit integer with truncation, and store the result in "dst". + [sae_note] + +dst[31:0] := Convert_FP32_To_Int32_Truncate(a[31:0]) + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + Convert the lower single-precision (32-bit) floating-point element in "a" to a 64-bit integer with truncation, and store the result in "dst". + [sae_note] + +dst[63:0] := Convert_FP32_To_Int64_Truncate(a[31:0]) + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + Convert the lower single-precision (32-bit) floating-point element in "a" to a 32-bit integer with truncation, and store the result in "dst". + [sae_note] + +dst[31:0] := Convert_FP32_To_Int32_Truncate(a[31:0]) + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + Convert the lower single-precision (32-bit) floating-point element in "a" to a 64-bit integer with truncation, and store the result in "dst". + [sae_note] + +dst[63:0] := Convert_FP32_To_Int64_Truncate(a[31:0]) + + + AVX512F +
immintrin.h
+ Convert +
+ + + + Convert the lower single-precision (32-bit) floating-point element in "a" to a 32-bit integer with truncation, and store the result in "dst". + +dst[31:0] := Convert_FP32_To_Int32_Truncate(a[31:0]) + + + AVX512F +
immintrin.h
+ Convert +
+ + + + Convert the lower single-precision (32-bit) floating-point element in "a" to a 64-bit integer with truncation, and store the result in "dst". + +dst[63:0] := Convert_FP32_To_Int64_Truncate(a[31:0]) + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + Convert the lower single-precision (32-bit) floating-point element in "a" to an unsigned 32-bit integer with truncation, and store the result in "dst". + [sae_note] + +dst[31:0] := Convert_FP32_To_UInt32_Truncate(a[31:0]) + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + Convert the lower single-precision (32-bit) floating-point element in "a" to an unsigned 64-bit integer with truncation, and store the result in "dst". + [sae_note] + +dst[63:0] := Convert_FP32_To_UInt64_Truncate(a[31:0]) + + + AVX512F +
immintrin.h
+ Convert +
+ + + + Convert the lower single-precision (32-bit) floating-point element in "a" to an unsigned 32-bit integer with truncation, and store the result in "dst". + +dst[31:0] := Convert_FP32_To_UInt32_Truncate(a[31:0]) + + + AVX512F +
immintrin.h
+ Convert +
+ + + + Convert the lower single-precision (32-bit) floating-point element in "a" to an unsigned 64-bit integer with truncation, and store the result in "dst". + +dst[63:0] := Convert_FP32_To_UInt64_Truncate(a[31:0]) + + + AVX512F +
immintrin.h
+ Convert +
+ + + + Convert packed unsigned 32-bit integers in "a" to packed double-precision (64-bit) floating-point elements, and store the results in "dst". + +FOR j := 0 to 7 + i := j*64 + l := j*32 + dst[i+63:i] := Convert_Int64_To_FP64(a[l+31:l]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + + Convert packed unsigned 32-bit integers in "a" to packed double-precision (64-bit) floating-point elements, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + l := j*32 + IF k[j] + dst[i+63:i] := Convert_Int64_To_FP64(a[l+31:l]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + Convert packed unsigned 32-bit integers in "a" to packed double-precision (64-bit) floating-point elements, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + l := j*32 + IF k[j] + dst[i+63:i] := Convert_Int64_To_FP64(a[l+31:l]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + Convert packed unsigned 32-bit integers in "a" to packed single-precision (32-bit) floating-point elements, and store the results in "dst". + [round_note] + +FOR j := 0 to 15 + i := 32*j + dst[i+31:i] := Convert_Int32_To_FP32(a[i+31:i]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + Convert packed unsigned 32-bit integers in "a" to packed single-precision (32-bit) floating-point elements, and store the results in "dst". + +FOR j := 0 to 15 + i := 32*j + dst[i+31:i] := Convert_Int32_To_FP32(a[i+31:i]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + + + Convert packed unsigned 32-bit integers in "a" to packed single-precision (32-bit) floating-point elements, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := Convert_Int32_To_FP32(a[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + + Convert packed unsigned 32-bit integers in "a" to packed single-precision (32-bit) floating-point elements, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := Convert_Int32_To_FP32(a[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + + Convert packed unsigned 32-bit integers in "a" to packed single-precision (32-bit) floating-point elements, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 to 15 + i := 32*j + IF k[j] + dst[i+31:i] := Convert_Int32_To_FP32(a[i+31:i]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + Convert packed unsigned 32-bit integers in "a" to packed single-precision (32-bit) floating-point elements, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := 32*j + IF k[j] + dst[i+31:i] := Convert_Int32_To_FP32(a[i+31:i]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + + Convert the unsigned 64-bit integer "b" to a double-precision (64-bit) floating-point element, store the result in the lower element of "dst", and copy the upper element from "a" to the upper element of "dst". + [round_note] + +dst[63:0] := Convert_Int64_To_FP64(b[63:0]) +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + Convert the unsigned 32-bit integer "b" to a double-precision (64-bit) floating-point element, store the result in the lower element of "dst", and copy the upper element from "a" to the upper element of "dst". + +dst[63:0] := Convert_Int32_To_FP64(b[31:0]) +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + Convert the unsigned 64-bit integer "b" to a double-precision (64-bit) floating-point element, store the result in the lower element of "dst", and copy the upper element from "a" to the upper element of "dst". + +dst[63:0] := Convert_Int64_To_FP64(b[63:0]) +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + + Convert the unsigned 32-bit integer "b" to a single-precision (32-bit) floating-point element, store the result in the lower element of "dst", and copy the upper 3 packed elements from "a" to the upper elements of "dst". + [round_note] + +dst[31:0] := Convert_Int32_To_FP32(b[31:0]) +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + + Convert the unsigned 64-bit integer "b" to a single-precision (32-bit) floating-point element, store the result in the lower element of "dst", and copy the upper 3 packed elements from "a" to the upper elements of "dst". + [round_note] + +dst[31:0] := Convert_Int64_To_FP32(b[63:0]) +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + Convert the unsigned 32-bit integer "b" to a single-precision (32-bit) floating-point element, store the result in the lower element of "dst", and copy the upper 3 packed elements from "a" to the upper elements of "dst". + +dst[31:0] := Convert_Int32_To_FP32(b[31:0]) +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + Convert the unsigned 64-bit integer "b" to a single-precision (32-bit) floating-point element, store the result in the lower element of "dst", and copy the upper 3 packed elements from "a" to the upper elements of "dst". + +dst[31:0] := Convert_Int64_To_FP32(b[63:0]) +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + Convert packed 32-bit integers in "a" to packed 8-bit integers with truncation, and store the results in "dst". + +FOR j := 0 to 15 + i := 32*j + k := 8*j + dst[k+7:k] := Truncate8(a[i+31:i]) +ENDFOR +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + + Convert packed 32-bit integers in "a" to packed 8-bit integers with truncation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := 32*j + l := 8*j + IF k[j] + dst[l+7:l] := Truncate8(a[i+31:i]) + ELSE + dst[l+7:l] := src[l+7:l] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + Store + + + + + Convert packed 32-bit integers in "a" to packed 8-bit integers with truncation, and store the active results (those with their respective bit set in writemask "k") to unaligned memory at "base_addr". + +FOR j := 0 to 15 + i := 32*j + l := 8*j + IF k[j] + MEM[base_addr+l+7:base_addr+l] := Truncate8(a[i+31:i]) + FI +ENDFOR + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + Convert packed 32-bit integers in "a" to packed 8-bit integers with truncation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := 32*j + l := 8*j + IF k[j] + dst[l+7:l] := Truncate8(a[i+31:i]) + ELSE + dst[l+7:l] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + Convert packed 32-bit integers in "a" to packed 16-bit integers with truncation, and store the results in "dst". + +FOR j := 0 to 15 + i := 32*j + k := 16*j + dst[k+15:k] := Truncate16(a[i+31:i]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + + Convert packed 32-bit integers in "a" to packed 16-bit integers with truncation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := 32*j + l := 16*j + IF k[j] + dst[l+15:l] := Truncate16(a[i+31:i]) + ELSE + dst[l+15:l] := src[l+15:l] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + Store + + + + + Convert packed 32-bit integers in "a" to packed 16-bit integers with truncation, and store the active results (those with their respective bit set in writemask "k") to unaligned memory at "base_addr". + +FOR j := 0 to 15 + i := 32*j + l := 16*j + IF k[j] + MEM[base_addr+l+15:base_addr+l] := Truncate16(a[i+31:i]) + FI +ENDFOR + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + Convert packed 32-bit integers in "a" to packed 16-bit integers with truncation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := 32*j + l := 16*j + IF k[j] + dst[l+15:l] := Truncate16(a[i+31:i]) + ELSE + dst[l+15:l] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + Convert packed 64-bit integers in "a" to packed 8-bit integers with truncation, and store the results in "dst". + +FOR j := 0 to 7 + i := 64*j + k := 8*j + dst[k+7:k] := Truncate8(a[i+63:i]) +ENDFOR +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + + Convert packed 64-bit integers in "a" to packed 8-bit integers with truncation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := 64*j + l := 8*j + IF k[j] + dst[l+7:l] := Truncate8(a[i+63:i]) + ELSE + dst[l+7:l] := src[l+7:l] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + Store + + + + + Convert packed 64-bit integers in "a" to packed 8-bit integers with truncation, and store the active results (those with their respective bit set in writemask "k") to unaligned memory at "base_addr". + +FOR j := 0 to 7 + i := 64*j + l := 8*j + IF k[j] + MEM[base_addr+l+7:base_addr+l] := Truncate8(a[i+63:i]) + FI +ENDFOR + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + Convert packed 64-bit integers in "a" to packed 8-bit integers with truncation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := 64*j + l := 8*j + IF k[j] + dst[l+7:l] := Truncate8(a[i+63:i]) + ELSE + dst[l+7:l] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + Convert packed 64-bit integers in "a" to packed 32-bit integers with truncation, and store the results in "dst". + +FOR j := 0 to 7 + i := 64*j + k := 32*j + dst[k+31:k] := Truncate32(a[i+63:i]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + + Convert packed 64-bit integers in "a" to packed 32-bit integers with truncation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := 64*j + l := 32*j + IF k[j] + dst[l+31:l] := Truncate32(a[i+63:i]) + ELSE + dst[l+31:l] := src[l+31:l] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + Store + + + + + Convert packed 64-bit integers in "a" to packed 32-bit integers with truncation, and store the active results (those with their respective bit set in writemask "k") to unaligned memory at "base_addr". + +FOR j := 0 to 7 + i := 64*j + l := 32*j + IF k[j] + MEM[base_addr+l+31:base_addr+l] := Truncate32(a[i+63:i]) + FI +ENDFOR + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + Convert packed 64-bit integers in "a" to packed 32-bit integers with truncation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := 64*j + l := 32*j + IF k[j] + dst[l+31:l] := Truncate32(a[i+63:i]) + ELSE + dst[l+31:l] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + Convert packed 64-bit integers in "a" to packed 16-bit integers with truncation, and store the results in "dst". + +FOR j := 0 to 7 + i := 64*j + k := 16*j + dst[k+15:k] := Truncate16(a[i+63:i]) +ENDFOR +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + + Convert packed 64-bit integers in "a" to packed 16-bit integers with truncation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := 64*j + l := 16*j + IF k[j] + dst[l+15:l] := Truncate16(a[i+63:i]) + ELSE + dst[l+15:l] := src[l+15:l] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + Store + + + + + Convert packed 64-bit integers in "a" to packed 16-bit integers with truncation, and store the active results (those with their respective bit set in writemask "k") to unaligned memory at "base_addr". + +FOR j := 0 to 7 + i := 64*j + l := 16*j + IF k[j] + MEM[base_addr+l+15:base_addr+l] := Truncate16(a[i+63:i]) + FI +ENDFOR + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + Convert packed 64-bit integers in "a" to packed 16-bit integers with truncation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := 64*j + l := 16*j + IF k[j] + dst[l+15:l] := Truncate16(a[i+63:i]) + ELSE + dst[l+15:l] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + Convert packed signed 32-bit integers in "a" to packed 8-bit integers with signed saturation, and store the results in "dst". + +FOR j := 0 to 15 + i := 32*j + k := 8*j + dst[k+7:k] := Saturate8(a[i+31:i]) +ENDFOR +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + + Convert packed signed 32-bit integers in "a" to packed 8-bit integers with signed saturation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := 32*j + l := 8*j + IF k[j] + dst[l+7:l] := Saturate8(a[i+31:i]) + ELSE + dst[l+7:l] := src[l+7:l] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + Store + + + + + Convert packed signed 32-bit integers in "a" to packed 8-bit integers with signed saturation, and store the active results (those with their respective bit set in writemask "k") to unaligned memory at "base_addr". + +FOR j := 0 to 15 + i := 32*j + l := 8*j + IF k[j] + MEM[base_addr+l+7:base_addr+l] := Saturate8(a[i+31:i]) + FI +ENDFOR + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + Convert packed signed 32-bit integers in "a" to packed 8-bit integers with signed saturation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := 32*j + l := 8*j + IF k[j] + dst[l+7:l] := Saturate8(a[i+31:i]) + ELSE + dst[l+7:l] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + Convert packed signed 32-bit integers in "a" to packed 16-bit integers with signed saturation, and store the results in "dst". + +FOR j := 0 to 15 + i := 32*j + k := 16*j + dst[k+15:k] := Saturate16(a[i+31:i]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + + Convert packed signed 32-bit integers in "a" to packed 16-bit integers with signed saturation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := 32*j + l := 16*j + IF k[j] + dst[l+15:l] := Saturate16(a[i+31:i]) + ELSE + dst[l+15:l] := src[l+15:l] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + Store + + + + + Convert packed signed 32-bit integers in "a" to packed 16-bit integers with signed saturation, and store the active results (those with their respective bit set in writemask "k") to unaligned memory at "base_addr". + +FOR j := 0 to 15 + i := 32*j + l := 16*j + IF k[j] + MEM[base_addr+l+15:base_addr+l] := Saturate16(a[i+31:i]) + FI +ENDFOR + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + Convert packed signed 32-bit integers in "a" to packed 16-bit integers with signed saturation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := 32*j + l := 16*j + IF k[j] + dst[l+15:l] := Saturate16(a[i+31:i]) + ELSE + dst[l+15:l] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + Convert packed signed 64-bit integers in "a" to packed 8-bit integers with signed saturation, and store the results in "dst". + +FOR j := 0 to 7 + i := 64*j + k := 8*j + dst[k+7:k] := Saturate8(a[i+63:i]) +ENDFOR +dst[MAX:64] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + + Convert packed signed 64-bit integers in "a" to packed 8-bit integers with signed saturation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := 64*j + l := 8*j + IF k[j] + dst[l+7:l] := Saturate8(a[i+63:i]) + ELSE + dst[l+7:l] := src[l+7:l] + FI +ENDFOR +dst[MAX:64] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + Store + + + + + Convert packed signed 64-bit integers in "a" to packed 8-bit integers with signed saturation, and store the active results (those with their respective bit set in writemask "k") to unaligned memory at "base_addr". + +FOR j := 0 to 7 + i := 64*j + l := 8*j + IF k[j] + MEM[base_addr+l+7:base_addr+l] := Saturate8(a[i+63:i]) + FI +ENDFOR + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + Convert packed signed 64-bit integers in "a" to packed 8-bit integers with signed saturation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := 64*j + l := 8*j + IF k[j] + dst[l+7:l] := Saturate8(a[i+63:i]) + ELSE + dst[l+7:l] := 0 + FI +ENDFOR +dst[MAX:64] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + Convert packed signed 64-bit integers in "a" to packed 32-bit integers with signed saturation, and store the results in "dst". + +FOR j := 0 to 7 + i := 64*j + k := 32*j + dst[k+31:k] := Saturate32(a[i+63:i]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + + Convert packed signed 64-bit integers in "a" to packed 32-bit integers with signed saturation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := 64*j + l := 32*j + IF k[j] + dst[l+31:l] := Saturate32(a[i+63:i]) + ELSE + dst[l+31:l] := src[l+31:l] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + Store + + + + + Convert packed signed 64-bit integers in "a" to packed 32-bit integers with signed saturation, and store the active results (those with their respective bit set in writemask "k") to unaligned memory at "base_addr". + +FOR j := 0 to 7 + i := 64*j + l := 32*j + IF k[j] + MEM[base_addr+l+31:base_addr+l] := Saturate32(a[i+63:i]) + FI +ENDFOR + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + Convert packed signed 64-bit integers in "a" to packed 32-bit integers with signed saturation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := 64*j + l := 32*j + IF k[j] + dst[l+31:l] := Saturate32(a[i+63:i]) + ELSE + dst[l+31:l] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + Convert packed signed 64-bit integers in "a" to packed 16-bit integers with signed saturation, and store the results in "dst". + +FOR j := 0 to 7 + i := 64*j + k := 16*j + dst[k+15:k] := Saturate16(a[i+63:i]) +ENDFOR +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + + Convert packed signed 64-bit integers in "a" to packed 16-bit integers with signed saturation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := 64*j + l := 16*j + IF k[j] + dst[l+15:l] := Saturate16(a[i+63:i]) + ELSE + dst[l+15:l] := src[l+15:l] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + Store + + + + + Convert packed signed 64-bit integers in "a" to packed 16-bit integers with signed saturation, and store the active results (those with their respective bit set in writemask "k") to unaligned memory at "base_addr". + +FOR j := 0 to 7 + i := 64*j + l := 16*j + IF k[j] + MEM[base_addr+l+15:base_addr+l] := Saturate16(a[i+63:i]) + FI +ENDFOR + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + Convert packed signed 64-bit integers in "a" to packed 16-bit integers with signed saturation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := 64*j + l := 16*j + IF k[j] + dst[l+15:l] := Saturate16(a[i+63:i]) + ELSE + dst[l+15:l] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + Sign extend packed 8-bit integers in "a" to packed 32-bit integers, and store the results in "dst". + +FOR j := 0 to 15 + i := 32*j + k := 8*j + dst[i+31:i] := SignExtend32(a[k+7:k]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + + Sign extend packed 8-bit integers in "a" to packed 32-bit integers, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := 32*j + l := 8*j + IF k[j] + dst[i+31:i] := SignExtend32(a[l+7:l]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + Sign extend packed 8-bit integers in "a" to packed 32-bit integers, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := 32*j + l := 8*j + IF k[j] + dst[i+31:i] := SignExtend32(a[l+7:l]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + Sign extend packed 8-bit integers in the low 8 bytes of "a" to packed 64-bit integers, and store the results in "dst". + +FOR j := 0 to 7 + i := 64*j + k := 8*j + dst[i+63:i] := SignExtend64(a[k+7:k]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + + Sign extend packed 8-bit integers in the low 8 bytes of "a" to packed 64-bit integers, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := 64*j + l := 8*j + IF k[j] + dst[i+63:i] := SignExtend64(a[l+7:l]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + Sign extend packed 8-bit integers in the low 8 bytes of "a" to packed 64-bit integers, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := 64*j + l := 8*j + IF k[j] + dst[i+63:i] := SignExtend64(a[l+7:l]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + Sign extend packed 32-bit integers in "a" to packed 64-bit integers, and store the results in "dst". + +FOR j := 0 to 7 + i := 64*j + k := 32*j + dst[i+63:i] := SignExtend64(a[k+31:k]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + + Sign extend packed 32-bit integers in "a" to packed 64-bit integers, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := 64*j + l := 32*j + IF k[j] + dst[i+63:i] := SignExtend64(a[l+31:l]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + Sign extend packed 32-bit integers in "a" to packed 64-bit integers, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := 64*j + l := 32*j + IF k[j] + dst[i+63:i] := SignExtend64(a[l+31:l]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + Sign extend packed 16-bit integers in "a" to packed 32-bit integers, and store the results in "dst". + +FOR j := 0 to 15 + i := 32*j + k := 16*j + dst[i+31:i] := SignExtend32(a[k+15:k]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + + Sign extend packed 16-bit integers in "a" to packed 32-bit integers, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + l := j*16 + IF k[j] + dst[i+31:i] := SignExtend32(a[l+15:l]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + Sign extend packed 16-bit integers in "a" to packed 32-bit integers, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := 32*j + l := 16*j + IF k[j] + dst[i+31:i] := SignExtend32(a[l+15:l]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + Sign extend packed 16-bit integers in "a" to packed 64-bit integers, and store the results in "dst". + +FOR j := 0 to 7 + i := 64*j + k := 16*j + dst[i+63:i] := SignExtend64(a[k+15:k]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + + Sign extend packed 16-bit integers in "a" to packed 64-bit integers, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := 64*j + l := 16*j + IF k[j] + dst[i+63:i] := SignExtend64(a[l+15:l]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + Sign extend packed 16-bit integers in "a" to packed 64-bit integers, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := 64*j + l := 16*j + IF k[j] + dst[i+63:i] := SignExtend64(a[l+15:l]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + Convert packed unsigned 32-bit integers in "a" to packed unsigned 8-bit integers with unsigned saturation, and store the results in "dst". + +FOR j := 0 to 15 + i := 32*j + k := 8*j + dst[k+7:k] := SaturateU8(a[i+31:i]) +ENDFOR +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + + Convert packed unsigned 32-bit integers in "a" to packed unsigned 8-bit integers with unsigned saturation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := 32*j + l := 8*j + IF k[j] + dst[l+7:l] := SaturateU8(a[i+31:i]) + ELSE + dst[l+7:l] := src[l+7:l] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + Store + + + + + Convert packed unsigned 32-bit integers in "a" to packed 8-bit integers with unsigned saturation, and store the active results (those with their respective bit set in writemask "k") to unaligned memory at "base_addr". + +FOR j := 0 to 15 + i := 32*j + l := 8*j + IF k[j] + MEM[base_addr+l+7:base_addr+l] := SaturateU8(a[i+31:i]) + FI +ENDFOR + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + Convert packed unsigned 32-bit integers in "a" to packed unsigned 8-bit integers with unsigned saturation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := 32*j + l := 8*j + IF k[j] + dst[l+7:l] := SaturateU8(a[i+31:i]) + ELSE + dst[l+7:l] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + Convert packed unsigned 32-bit integers in "a" to packed unsigned 16-bit integers with unsigned saturation, and store the results in "dst". + +FOR j := 0 to 15 + i := 32*j + k := 16*j + dst[k+15:k] := SaturateU16(a[i+31:i]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + + Convert packed unsigned 32-bit integers in "a" to packed unsigned 16-bit integers with unsigned saturation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := 32*j + l := 16*j + IF k[j] + dst[l+15:l] := SaturateU16(a[i+31:i]) + ELSE + dst[l+15:l] := src[l+15:l] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + Store + + + + + Convert packed unsigned 32-bit integers in "a" to packed 16-bit integers with unsigned saturation, and store the active results (those with their respective bit set in writemask "k") to unaligned memory at "base_addr". + +FOR j := 0 to 15 + i := 32*j + l := 16*j + IF k[j] + MEM[base_addr+l+15:base_addr+l] := SaturateU16(a[i+31:i]) + FI +ENDFOR + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + Convert packed unsigned 32-bit integers in "a" to packed unsigned 16-bit integers with unsigned saturation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := 32*j + l := 16*j + IF k[j] + dst[l+15:l] := SaturateU16(a[i+31:i]) + ELSE + dst[l+15:l] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + Convert packed unsigned 64-bit integers in "a" to packed unsigned 8-bit integers with unsigned saturation, and store the results in "dst". + +FOR j := 0 to 7 + i := 64*j + k := 8*j + dst[k+7:k] := SaturateU8(a[i+63:i]) +ENDFOR +dst[MAX:64] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + + Convert packed unsigned 64-bit integers in "a" to packed unsigned 8-bit integers with unsigned saturation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := 64*j + l := 8*j + IF k[j] + dst[l+7:l] := SaturateU8(a[i+63:i]) + ELSE + dst[l+7:l] := src[l+7:l] + FI +ENDFOR +dst[MAX:64] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + Store + + + + + Convert packed unsigned 64-bit integers in "a" to packed 8-bit integers with unsigned saturation, and store the active results (those with their respective bit set in writemask "k") to unaligned memory at "base_addr". + +FOR j := 0 to 7 + i := 64*j + l := 8*j + IF k[j] + MEM[base_addr+l+7:base_addr+l] := SaturateU8(a[i+63:i]) + FI +ENDFOR + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + Convert packed unsigned 64-bit integers in "a" to packed unsigned 8-bit integers with unsigned saturation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := 64*j + l := 8*j + IF k[j] + dst[l+7:l] := SaturateU8(a[i+63:i]) + ELSE + dst[l+7:l] := 0 + FI +ENDFOR +dst[MAX:64] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + Convert packed unsigned 64-bit integers in "a" to packed unsigned 32-bit integers with unsigned saturation, and store the results in "dst". + +FOR j := 0 to 7 + i := 64*j + k := 32*j + dst[k+31:k] := SaturateU32(a[i+63:i]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + + Convert packed unsigned 64-bit integers in "a" to packed unsigned 32-bit integers with unsigned saturation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := 64*j + l := 32*j + IF k[j] + dst[l+31:l] := SaturateU32(a[i+63:i]) + ELSE + dst[l+31:l] := src[l+31:l] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + Store + + + + + Convert packed unsigned 64-bit integers in "a" to packed 32-bit integers with unsigned saturation, and store the active results (those with their respective bit set in writemask "k") to unaligned memory at "base_addr". + +FOR j := 0 to 7 + i := 64*j + l := 32*j + IF k[j] + MEM[base_addr+l+31:base_addr+l] := SaturateU32(a[i+63:i]) + FI +ENDFOR + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + Convert packed unsigned 64-bit integers in "a" to packed unsigned 32-bit integers with unsigned saturation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := 64*j + l := 32*j + IF k[j] + dst[l+31:l] := SaturateU32(a[i+63:i]) + ELSE + dst[l+31:l] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + Convert packed unsigned 64-bit integers in "a" to packed unsigned 16-bit integers with unsigned saturation, and store the results in "dst". + +FOR j := 0 to 7 + i := 64*j + k := 16*j + dst[k+15:k] := SaturateU16(a[i+63:i]) +ENDFOR +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + + Convert packed unsigned 64-bit integers in "a" to packed unsigned 16-bit integers with unsigned saturation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := 64*j + l := 16*j + IF k[j] + dst[l+15:l] := SaturateU16(a[i+63:i]) + ELSE + dst[l+15:l] := src[l+15:l] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + Store + + + + + Convert packed unsigned 64-bit integers in "a" to packed 16-bit integers with unsigned saturation, and store the active results (those with their respective bit set in writemask "k") to unaligned memory at "base_addr". + +FOR j := 0 to 7 + i := 64*j + l := 16*j + IF k[j] + MEM[base_addr+l+15:base_addr+l] := SaturateU16(a[i+63:i]) + FI +ENDFOR + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + Convert packed unsigned 64-bit integers in "a" to packed unsigned 16-bit integers with unsigned saturation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := 64*j + l := 16*j + IF k[j] + dst[l+15:l] := SaturateU16(a[i+63:i]) + ELSE + dst[l+15:l] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + Zero extend packed unsigned 8-bit integers in "a" to packed 32-bit integers, and store the results in "dst". + +FOR j := 0 to 15 + i := 32*j + k := 8*j + dst[i+31:i] := ZeroExtend32(a[k+7:k]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + + Zero extend packed unsigned 8-bit integers in "a" to packed 32-bit integers, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := 32*j + l := 8*j + IF k[j] + dst[i+31:i] := ZeroExtend32(a[l+7:l]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + Zero extend packed unsigned 8-bit integers in "a" to packed 32-bit integers, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := 32*j + l := 8*j + IF k[j] + dst[i+31:i] := ZeroExtend32(a[l+7:l]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + Zero extend packed unsigned 8-bit integers in the low 8 byte sof "a" to packed 64-bit integers, and store the results in "dst". + +FOR j := 0 to 7 + i := 64*j + k := 8*j + dst[i+63:i] := ZeroExtend64(a[k+7:k]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + + Zero extend packed unsigned 8-bit integers in the low 8 bytes of "a" to packed 64-bit integers, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := 64*j + l := 8*j + IF k[j] + dst[i+63:i] := ZeroExtend64(a[l+7:l]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + Zero extend packed unsigned 8-bit integers in the low 8 bytes of "a" to packed 64-bit integers, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := 64*j + l := 8*j + IF k[j] + dst[i+63:i] := ZeroExtend64(a[l+7:l]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + Zero extend packed unsigned 32-bit integers in "a" to packed 64-bit integers, and store the results in "dst". + +FOR j := 0 to 7 + i := 64*j + k := 32*j + dst[i+63:i] := ZeroExtend64(a[k+31:k]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + + Zero extend packed unsigned 32-bit integers in "a" to packed 64-bit integers, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := 64*j + l := 32*j + IF k[j] + dst[i+63:i] := ZeroExtend64(a[l+31:l]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + Zero extend packed unsigned 32-bit integers in "a" to packed 64-bit integers, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := 64*j + l := 32*j + IF k[j] + dst[i+63:i] := ZeroExtend64(a[l+31:l]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + Zero extend packed unsigned 16-bit integers in "a" to packed 32-bit integers, and store the results in "dst". + +FOR j := 0 to 15 + i := 32*j + k := 16*j + dst[i+31:i] := ZeroExtend32(a[k+15:k]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + + Zero extend packed unsigned 16-bit integers in "a" to packed 32-bit integers, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := 32*j + l := 16*j + IF k[j] + dst[i+31:i] := ZeroExtend32(a[l+15:l]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + Zero extend packed unsigned 16-bit integers in "a" to packed 32-bit integers, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := 32*j + l := 16*j + IF k[j] + dst[i+31:i] := ZeroExtend32(a[l+15:l]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + Zero extend packed unsigned 16-bit integers in "a" to packed 64-bit integers, and store the results in "dst". + +FOR j := 0 to 7 + i := 64*j + k := 16*j + dst[i+63:i] := ZeroExtend64(a[k+15:k]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + + Zero extend packed unsigned 16-bit integers in "a" to packed 64-bit integers, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := 64*j + l := 16*j + IF k[j] + dst[i+63:i] := ZeroExtend64(a[l+15:l]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + Zero extend packed unsigned 16-bit integers in "a" to packed 64-bit integers, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := 64*j + l := 16*j + IF k[j] + dst[i+63:i] := ZeroExtend64(a[l+15:l]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + Copy the lower single-precision (32-bit) floating-point element of "a" to "dst". + +dst[31:0] := a[31:0] + + + AVX512F +
immintrin.h
+ Convert +
+ + + + Copy the lower double-precision (64-bit) floating-point element of "a" to "dst". + +dst[63:0] := a[63:0] + + + AVX512F +
immintrin.h
+ Convert +
+ + + + Copy the lower 32-bit integer in "a" to "dst". + +dst[31:0] := a[31:0] + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + + + Compare packed double-precision (64-bit) floating-point elements in "a" and "b", and store packed maximum values in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). [max_float_note] + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := MAX(a[i+63:i], b[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + + + + + Compare packed double-precision (64-bit) floating-point elements in "a" and "b", and store packed maximum values in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). [sae_note][max_float_note] + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := MAX(a[i+63:i], b[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + + + Compare packed double-precision (64-bit) floating-point elements in "a" and "b", and store packed maximum values in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). [max_float_note] + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := MAX(a[i+63:i], b[i+63:i]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + + + + Compare packed double-precision (64-bit) floating-point elements in "a" and "b", and store packed maximum values in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). [sae_note][max_float_note] + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := MAX(a[i+63:i], b[i+63:i]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + + Compare packed double-precision (64-bit) floating-point elements in "a" and "b", and store packed maximum values in "dst". [max_float_note] + +FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := MAX(a[i+63:i], b[i+63:i]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + + + Compare packed double-precision (64-bit) floating-point elements in "a" and "b", and store packed maximum values in "dst". [sae_note][max_float_note] + +FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := MAX(a[i+63:i], b[i+63:i]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + + + + Compare packed single-precision (32-bit) floating-point elements in "a" and "b", and store packed maximum values in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). [max_float_note] + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := MAX(a[i+31:i], b[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + + + + + Compare packed single-precision (32-bit) floating-point elements in "a" and "b", and store packed maximum values in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). [sae_note][max_float_note] + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := MAX(a[i+31:i], b[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + + + Compare packed single-precision (32-bit) floating-point elements in "a" and "b", and store packed maximum values in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). [max_float_note] + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := MAX(a[i+31:i], b[i+31:i]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + + + + Compare packed single-precision (32-bit) floating-point elements in "a" and "b", and store packed maximum values in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). [sae_note][max_float_note] + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := MAX(a[i+31:i], b[i+31:i]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + + Compare packed single-precision (32-bit) floating-point elements in "a" and "b", and store packed maximum values in "dst". [max_float_note] + +FOR j := 0 to 15 + i := j*32 + dst[i+31:i] := MAX(a[i+31:i], b[i+31:i]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + + + Compare packed single-precision (32-bit) floating-point elements in "a" and "b", and store packed maximum values in "dst". [sae_note][max_float_note] + +FOR j := 0 to 15 + i := j*32 + dst[i+31:i] := MAX(a[i+31:i], b[i+31:i]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + + + + + Compare the lower double-precision (64-bit) floating-point elements in "a" and "b", store the maximum value in the lower element of "dst" using writemask "k" (the element is copied from "src" when mask bit 0 is not set), and copy the upper element from "a" to the upper element of "dst". [sae_note][max_float_note] + +IF k[0] + dst[63:0] := MAX(a[63:0], b[63:0]) +ELSE + dst[63:0] := src[63:0] +FI +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + + + + Compare the lower double-precision (64-bit) floating-point elements in "a" and "b", store the maximum value in the lower element of "dst" using writemask "k" (the element is copied from "src" when mask bit 0 is not set), and copy the upper element from "a" to the upper element of "dst". + +IF k[0] + dst[63:0] := MAX(a[63:0], b[63:0]) +ELSE + dst[63:0] := src[63:0] +FI +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + + + + Compare the lower double-precision (64-bit) floating-point elements in "a" and "b", store the maximum value in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper element from "a" to the upper element of "dst". [sae_note][max_float_note] + +IF k[0] + dst[63:0] := MAX(a[63:0], b[63:0]) +ELSE + dst[63:0] := 0 +FI +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + + + Compare the lower double-precision (64-bit) floating-point elements in "a" and "b", store the maximum value in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper element from "a" to the upper element of "dst". + +IF k[0] + dst[63:0] := MAX(a[63:0], b[63:0]) +ELSE + dst[63:0] := 0 +FI +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + + + Compare the lower double-precision (64-bit) floating-point elements in "a" and "b", store the maximum value in the lower element of "dst", and copy the upper element from "a" to the upper element of "dst". [sae_note][max_float_note] + +dst[63:0] := MAX(a[63:0], b[63:0]) +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + + + + + Compare the lower single-precision (32-bit) floating-point elements in "a" and "b", store the maximum value in the lower element of "dst" using writemask "k" (the element is copied from "src" when mask bit 0 is not set), and copy the upper 3 packed elements from "a" to the upper elements of "dst". [sae_note][max_float_note] + +IF k[0] + dst[31:0] := MAX(a[31:0], b[31:0]) +ELSE + dst[31:0] := src[31:0] +FI +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + + + + Compare the lower single-precision (32-bit) floating-point elements in "a" and "b", store the maximum value in the lower element of "dst" using writemask "k" (the element is copied from "src" when mask bit 0 is not set), and copy the upper 3 packed elements from "a" to the upper elements of "dst". + +IF k[0] + dst[31:0] := MAX(a[31:0], b[31:0]) +ELSE + dst[31:0] := src[31:0] +FI +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + + + + Compare the lower single-precision (32-bit) floating-point elements in "a" and "b", store the maximum value in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper 3 packed elements from "a" to the upper elements of "dst". [sae_note][max_float_note] + +IF k[0] + dst[31:0] := MAX(a[31:0], b[31:0]) +ELSE + dst[31:0] := 0 +FI +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + + + Compare the lower single-precision (32-bit) floating-point elements in "a" and "b", store the maximum value in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper 3 packed elements from "a" to the upper elements of "dst". + +IF k[0] + dst[31:0] := MAX(a[31:0], b[31:0]) +ELSE + dst[31:0] := 0 +FI +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + + + Compare the lower single-precision (32-bit) floating-point elements in "a" and "b", store the maximum value in the lower element of "dst", and copy the upper 3 packed elements from "a" to the upper elements of "dst". [sae_note][max_float_note] + +dst[31:0] := MAX(a[31:0], b[31:0]) +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + + + + Compare packed double-precision (64-bit) floating-point elements in "a" and "b", and store packed minimum values in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). [min_float_note] + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := MIN(a[i+63:i], b[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + + + + + Compare packed double-precision (64-bit) floating-point elements in "a" and "b", and store packed minimum values in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). [sae_note][min_float_note] + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := MIN(a[i+63:i], b[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + + + Compare packed double-precision (64-bit) floating-point elements in "a" and "b", and store packed minimum values in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). [min_float_note] + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := MIN(a[i+63:i], b[i+63:i]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + + + + Compare packed double-precision (64-bit) floating-point elements in "a" and "b", and store packed minimum values in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). [sae_note][min_float_note] + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := MIN(a[i+63:i], b[i+63:i]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + + Compare packed double-precision (64-bit) floating-point elements in "a" and "b", and store packed minimum values in "dst". [min_float_note] + +FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := MIN(a[i+63:i], b[i+63:i]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + + + Compare packed double-precision (64-bit) floating-point elements in "a" and "b", and store packed minimum values in "dst". [sae_note][min_float_note] + +FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := MIN(a[i+63:i], b[i+63:i]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + + + + Compare packed single-precision (32-bit) floating-point elements in "a" and "b", and store packed minimum values in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). [min_float_note] + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := MIN(a[i+31:i], b[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + + + + + Compare packed single-precision (32-bit) floating-point elements in "a" and "b", and store packed minimum values in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). [sae_note][min_float_note] + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := MIN(a[i+31:i], b[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + + + Compare packed single-precision (32-bit) floating-point elements in "a" and "b", and store packed minimum values in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). [min_float_note] + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := MIN(a[i+31:i], b[i+31:i]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + + + + Compare packed single-precision (32-bit) floating-point elements in "a" and "b", and store packed minimum values in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). [sae_note][min_float_note] + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := MIN(a[i+31:i], b[i+31:i]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + + Compare packed single-precision (32-bit) floating-point elements in "a" and "b", and store packed minimum values in "dst". [min_float_note] + +FOR j := 0 to 15 + i := j*32 + dst[i+31:i] := MIN(a[i+31:i], b[i+31:i]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + + + Compare packed single-precision (32-bit) floating-point elements in "a" and "b", and store packed minimum values in "dst". [sae_note][min_float_note] + +FOR j := 0 to 15 + i := j*32 + dst[i+31:i] := MIN(a[i+31:i], b[i+31:i]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + + + + + Compare the lower double-precision (64-bit) floating-point elements in "a" and "b", store the minimum value in the lower element of "dst" using writemask "k" (the element is copied from "src" when mask bit 0 is not set), and copy the upper element from "a" to the upper element of "dst". [sae_note][min_float_note] + +IF k[0] + dst[63:0] := MIN(a[63:0], b[63:0]) +ELSE + dst[63:0] := src[63:0] +FI +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + + + + Compare the lower double-precision (64-bit) floating-point elements in "a" and "b", store the minimum value in the lower element of "dst" using writemask "k" (the element is copied from "src" when mask bit 0 is not set), and copy the upper element from "a" to the upper element of "dst". + +IF k[0] + dst[63:0] := MIN(a[63:0], b[63:0]) +ELSE + dst[63:0] := src[63:0] +FI +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + + + + Compare the lower double-precision (64-bit) floating-point elements in "a" and "b", store the minimum value in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper element from "a" to the upper element of "dst". [sae_note][min_float_note] + +IF k[0] + dst[63:0] := MIN(a[63:0], b[63:0]) +ELSE + dst[63:0] := 0 +FI +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + + + Compare the lower double-precision (64-bit) floating-point elements in "a" and "b", store the minimum value in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper element from "a" to the upper element of "dst". + +IF k[0] + dst[63:0] := MIN(a[63:0], b[63:0]) +ELSE + dst[63:0] := 0 +FI +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + + + Compare the lower double-precision (64-bit) floating-point elements in "a" and "b", store the minimum value in the lower element of "dst" , and copy the upper element from "a" to the upper element of "dst". [sae_note][min_float_note] + +dst[63:0] := MIN(a[63:0], b[63:0]) +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + + + + + Compare the lower single-precision (32-bit) floating-point elements in "a" and "b", store the minimum value in the lower element of "dst" using writemask "k" (the element is copied from "src" when mask bit 0 is not set), and copy the upper 3 packed elements from "a" to the upper elements of "dst". [sae_note][min_float_note] + +IF k[0] + dst[31:0] := MIN(a[31:0], b[31:0]) +ELSE + dst[31:0] := src[31:0] +FI +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + + + + Compare the lower single-precision (32-bit) floating-point elements in "a" and "b", store the minimum value in the lower element of "dst" using writemask "k" (the element is copied from "src" when mask bit 0 is not set), and copy the upper 3 packed elements from "a" to the upper elements of "dst". + +IF k[0] + dst[31:0] := MIN(a[31:0], b[31:0]) +ELSE + dst[31:0] := src[31:0] +FI +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + + + + Compare the lower single-precision (32-bit) floating-point elements in "a" and "b", store the minimum value in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper 3 packed elements from "a" to the upper elements of "dst". [sae_note][min_float_note] + +IF k[0] + dst[31:0] := MIN(a[31:0], b[31:0]) +ELSE + dst[31:0] := 0 +FI +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + + + Compare the lower single-precision (32-bit) floating-point elements in "a" and "b", store the minimum value in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper 3 packed elements from "a" to the upper elements of "dst". + +IF k[0] + dst[31:0] := MIN(a[31:0], b[31:0]) +ELSE + dst[31:0] := 0 +FI +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + + + Compare the lower single-precision (32-bit) floating-point elements in "a" and "b", store the minimum value in the lower element of "dst", and copy the upper 3 packed elements from "a" to the upper elements of "dst". [sae_note][min_float_note] + +dst[31:0] := MIN(a[31:0], b[31:0]) +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + Compute the absolute value of packed signed 32-bit integers in "a", and store the unsigned results in "dst". + +FOR j := 0 to 15 + i := j*32 + dst[i+31:i] := ABS(a[i+31:i]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + + + Compute the absolute value of packed signed 32-bit integers in "a", and store the unsigned results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := ABS(a[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + + Compute the absolute value of packed signed 32-bit integers in "a", and store the unsigned results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := ABS(a[i+31:i]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + Compute the absolute value of packed signed 64-bit integers in "a", and store the unsigned results in "dst". + +FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := ABS(a[i+63:i]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + + + Compute the absolute value of packed signed 64-bit integers in "a", and store the unsigned results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := ABS(a[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + + Compute the absolute value of packed signed 64-bit integers in "a", and store the unsigned results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := ABS(a[i+63:i]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + + + Compare packed signed 32-bit integers in "a" and "b", and store packed maximum values in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := MAX(a[i+31:i], b[i+31:i]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + + + + Compare packed signed 64-bit integers in "a" and "b", and store packed maximum values in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := MAX(a[i+63:i], b[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + + + Compare packed signed 64-bit integers in "a" and "b", and store packed maximum values in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := MAX(a[i+63:i], b[i+63:i]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + + Compare packed signed 64-bit integers in "a" and "b", and store packed maximum values in "dst". + +FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := MAX(a[i+63:i], b[i+63:i]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + + + Compare packed unsigned 32-bit integers in "a" and "b", and store packed maximum values in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := MAX(a[i+31:i], b[i+31:i]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + + + + Compare packed unsigned 64-bit integers in "a" and "b", and store packed maximum values in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := MAX(a[i+63:i], b[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + + + Compare packed unsigned 64-bit integers in "a" and "b", and store packed maximum values in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := MAX(a[i+63:i], b[i+63:i]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + + Compare packed unsigned 64-bit integers in "a" and "b", and store packed maximum values in "dst". + +FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := MAX(a[i+63:i], b[i+63:i]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + + + Compare packed signed 32-bit integers in "a" and "b", and store packed minimum values in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := MIN(a[i+31:i], b[i+31:i]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + + + + Compare packed signed 64-bit integers in "a" and "b", and store packed minimum values in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := MIN(a[i+63:i], b[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + + + Compare packed signed 64-bit integers in "a" and "b", and store packed minimum values in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := MIN(a[i+63:i], b[i+63:i]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + + Compare packed signed 64-bit integers in "a" and "b", and store packed minimum values in "dst". + +FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := MIN(a[i+63:i], b[i+63:i]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + + + Compare packed unsigned 32-bit integers in "a" and "b", and store packed minimum values in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := MIN(a[i+31:i], b[i+31:i]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + + + + Compare packed unsigned 64-bit integers in "a" and "b", and store packed minimum values in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := MIN(a[i+63:i], b[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + + + Compare packed unsigned 64-bit integers in "a" and "b", and store packed minimum values in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := MIN(a[i+63:i], b[i+63:i]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + + Compare packed unsigned 64-bit integers in "a" and "b", and store packed minimum values in "dst". + +FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := MIN(a[i+63:i], b[i+63:i]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + + Move packed double-precision (64-bit) floating-point elements from "a" into "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := a[i+63:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Move +
+ + + + + Move packed single-precision (32-bit) floating-point elements from "a" into "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := a[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Move +
+ + + + + + Duplicate even-indexed double-precision (64-bit) floating-point elements from "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +tmp[63:0] := a[63:0] +tmp[127:64] := a[63:0] +tmp[191:128] := a[191:128] +tmp[255:192] := a[191:128] +tmp[319:256] := a[319:256] +tmp[383:320] := a[319:256] +tmp[447:384] := a[447:384] +tmp[511:448] := a[447:384] +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := tmp[i+63:i] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Move +
+ + + + + Duplicate even-indexed double-precision (64-bit) floating-point elements from "a", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +tmp[63:0] := a[63:0] +tmp[127:64] := a[63:0] +tmp[191:128] := a[191:128] +tmp[255:192] := a[191:128] +tmp[319:256] := a[319:256] +tmp[383:320] := a[319:256] +tmp[447:384] := a[447:384] +tmp[511:448] := a[447:384] +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := tmp[i+63:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Move +
+ + + + Duplicate even-indexed double-precision (64-bit) floating-point elements from "a", and store the results in "dst". + +dst[63:0] := a[63:0] +dst[127:64] := a[63:0] +dst[191:128] := a[191:128] +dst[255:192] := a[191:128] +dst[319:256] := a[319:256] +dst[383:320] := a[319:256] +dst[447:384] := a[447:384] +dst[511:448] := a[447:384] +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Move +
+ + + + + Move packed 32-bit integers from "a" into "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := a[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Move +
+ + + + + Move packed 64-bit integers from "a" into "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := a[i+63:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Move +
+ + + + + + + Move the lower double-precision (64-bit) floating-point element from "b" to the lower element of "dst" using writemask "k" (the element is copied from "src" when mask bit 0 is not set), and copy the upper element from "a" to the upper element of "dst". + +IF k[0] + dst[63:0] := b[63:0] +ELSE + dst[63:0] := src[63:0] +FI +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Move +
+ + + + + + Move the lower double-precision (64-bit) floating-point element from "b" to the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper element from "a" to the upper element of "dst". + +IF k[0] + dst[63:0] := b[63:0] +ELSE + dst[63:0] := 0 +FI +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Move +
+ + + + + + Duplicate odd-indexed single-precision (32-bit) floating-point elements from "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +tmp[31:0] := a[63:32] +tmp[63:32] := a[63:32] +tmp[95:64] := a[127:96] +tmp[127:96] := a[127:96] +tmp[159:128] := a[191:160] +tmp[191:160] := a[191:160] +tmp[223:192] := a[255:224] +tmp[255:224] := a[255:224] +tmp[287:256] := a[319:288] +tmp[319:288] := a[319:288] +tmp[351:320] := a[383:352] +tmp[383:352] := a[383:352] +tmp[415:384] := a[447:416] +tmp[447:416] := a[447:416] +tmp[479:448] := a[511:480] +tmp[511:480] := a[511:480] +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := tmp[i+31:i] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Move +
+ + + + + Duplicate odd-indexed single-precision (32-bit) floating-point elements from "a", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +tmp[31:0] := a[63:32] +tmp[63:32] := a[63:32] +tmp[95:64] := a[127:96] +tmp[127:96] := a[127:96] +tmp[159:128] := a[191:160] +tmp[191:160] := a[191:160] +tmp[223:192] := a[255:224] +tmp[255:224] := a[255:224] +tmp[287:256] := a[319:288] +tmp[319:288] := a[319:288] +tmp[351:320] := a[383:352] +tmp[383:352] := a[383:352] +tmp[415:384] := a[447:416] +tmp[447:416] := a[447:416] +tmp[479:448] := a[511:480] +tmp[511:480] := a[511:480] +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := tmp[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Move +
+ + + + Duplicate odd-indexed single-precision (32-bit) floating-point elements from "a", and store the results in "dst". + +dst[31:0] := a[63:32] +dst[63:32] := a[63:32] +dst[95:64] := a[127:96] +dst[127:96] := a[127:96] +dst[159:128] := a[191:160] +dst[191:160] := a[191:160] +dst[223:192] := a[255:224] +dst[255:224] := a[255:224] +dst[287:256] := a[319:288] +dst[319:288] := a[319:288] +dst[351:320] := a[383:352] +dst[383:352] := a[383:352] +dst[415:384] := a[447:416] +dst[447:416] := a[447:416] +dst[479:448] := a[511:480] +dst[511:480] := a[511:480] +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Move +
+ + + + + + Duplicate even-indexed single-precision (32-bit) floating-point elements from "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +tmp[31:0] := a[31:0] +tmp[63:32] := a[31:0] +tmp[95:64] := a[95:64] +tmp[127:96] := a[95:64] +tmp[159:128] := a[159:128] +tmp[191:160] := a[159:128] +tmp[223:192] := a[223:192] +tmp[255:224] := a[223:192] +tmp[287:256] := a[287:256] +tmp[319:288] := a[287:256] +tmp[351:320] := a[351:320] +tmp[383:352] := a[351:320] +tmp[415:384] := a[415:384] +tmp[447:416] := a[415:384] +tmp[479:448] := a[479:448] +tmp[511:480] := a[479:448] +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := tmp[i+31:i] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Move +
+ + + + + Duplicate even-indexed single-precision (32-bit) floating-point elements from "a", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +tmp[31:0] := a[31:0] +tmp[63:32] := a[31:0] +tmp[95:64] := a[95:64] +tmp[127:96] := a[95:64] +tmp[159:128] := a[159:128] +tmp[191:160] := a[159:128] +tmp[223:192] := a[223:192] +tmp[255:224] := a[223:192] +tmp[287:256] := a[287:256] +tmp[319:288] := a[287:256] +tmp[351:320] := a[351:320] +tmp[383:352] := a[351:320] +tmp[415:384] := a[415:384] +tmp[447:416] := a[415:384] +tmp[479:448] := a[479:448] +tmp[511:480] := a[479:448] +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := tmp[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Move +
+ + + + Duplicate even-indexed single-precision (32-bit) floating-point elements from "a", and store the results in "dst". + +dst[31:0] := a[31:0] +dst[63:32] := a[31:0] +dst[95:64] := a[95:64] +dst[127:96] := a[95:64] +dst[159:128] := a[159:128] +dst[191:160] := a[159:128] +dst[223:192] := a[223:192] +dst[255:224] := a[223:192] +dst[287:256] := a[287:256] +dst[319:288] := a[287:256] +dst[351:320] := a[351:320] +dst[383:352] := a[351:320] +dst[415:384] := a[415:384] +dst[447:416] := a[415:384] +dst[479:448] := a[479:448] +dst[511:480] := a[479:448] +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Move +
+ + + + + + + Move the lower single-precision (32-bit) floating-point element from "b" to the lower element of "dst" using writemask "k" (the element is copied from "src" when mask bit 0 is not set), and copy the upper 3 packed elements from "a" to the upper elements of "dst". + +IF k[0] + dst[31:0] := b[31:0] +ELSE + dst[31:0] := src[31:0] +FI +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Move +
+ + + + + + Move the lower single-precision (32-bit) floating-point element from "b" to the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper 3 packed elements from "a" to the upper elements of "dst". + +IF k[0] + dst[31:0] := b[31:0] +ELSE + dst[31:0] := 0 +FI +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Move +
+ + + + + + Compute the bitwise AND of packed 32-bit integers in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := a[i+31:i] AND b[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Logical +
+ + + + + + Compute the bitwise NOT of packed 32-bit integers in "a" and then AND with "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := (NOT a[i+31:i]) AND b[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Logical +
+ + + + + + Compute the bitwise NOT of packed 64-bit integers in "a" and then AND with "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := (NOT a[i+63:i]) AND b[i+63:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Logical +
+ + + + + + Compute the bitwise AND of packed 64-bit integers in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := a[i+63:i] AND b[i+63:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Logical +
+ + + + + + Compute the bitwise OR of packed 32-bit integers in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := a[i+31:i] OR b[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Logical +
+ + + + + + Compute the bitwise OR of packed 64-bit integers in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := a[i+63:i] OR b[i+63:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Logical +
+ + + + + + + + Bitwise ternary logic that provides the capability to implement any three-operand binary function; the specific binary function is specified by value in "imm8". For each bit in each packed 32-bit integer, the corresponding bit from "a", "b", and "c" are used according to "imm8", and the result is written to the corresponding bit in "dst" using writemask "k" at 32-bit granularity (32-bit elements are copied from "a" when the corresponding mask bit is not set). + +DEFINE TernaryOP(imm8, a, b, c) { + CASE imm8[7:0] OF + 0: dst[0] := 0 // imm8[7:0] := 0 + 1: dst[0] := NOT (a OR b OR c) // imm8[7:0] := NOT (_MM_TERNLOG_A OR _MM_TERNLOG_B OR _MM_TERNLOG_C) + // ... + 254: dst[0] := a OR b OR c // imm8[7:0] := _MM_TERNLOG_A OR _MM_TERNLOG_B OR _MM_TERNLOG_C + 255: dst[0] := 1 // imm8[7:0] := 1 + ESAC +} +imm8[7:0] = LogicExp(_MM_TERNLOG_A, _MM_TERNLOG_B, _MM_TERNLOG_C) +FOR j := 0 to 15 + i := j*32 + IF k[j] + FOR h := 0 to 31 + dst[i+h] := TernaryOP(imm8[7:0], a[i+h], b[i+h], c[i+h]) + ENDFOR + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Logical +
+ + + + + + + + Bitwise ternary logic that provides the capability to implement any three-operand binary function; the specific binary function is specified by value in "imm8". For each bit in each packed 32-bit integer, the corresponding bit from "a", "b", and "c" are used according to "imm8", and the result is written to the corresponding bit in "dst" using zeromask "k" at 32-bit granularity (32-bit elements are zeroed out when the corresponding mask bit is not set). + +DEFINE TernaryOP(imm8, a, b, c) { + CASE imm8[7:0] OF + 0: dst[0] := 0 // imm8[7:0] := 0 + 1: dst[0] := NOT (a OR b OR c) // imm8[7:0] := NOT (_MM_TERNLOG_A OR _MM_TERNLOG_B OR _MM_TERNLOG_C) + // ... + 254: dst[0] := a OR b OR c // imm8[7:0] := _MM_TERNLOG_A OR _MM_TERNLOG_B OR _MM_TERNLOG_C + 255: dst[0] := 1 // imm8[7:0] := 1 + ESAC +} +imm8[7:0] = LogicExp(_MM_TERNLOG_A, _MM_TERNLOG_B, _MM_TERNLOG_C) +FOR j := 0 to 15 + i := j*32 + IF k[j] + FOR h := 0 to 31 + dst[i+h] := TernaryOP(imm8[7:0], a[i+h], b[i+h], c[i+h]) + ENDFOR + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Logical +
+ + + + + + + Bitwise ternary logic that provides the capability to implement any three-operand binary function; the specific binary function is specified by value in "imm8". For each bit in each packed 32-bit integer, the corresponding bit from "a", "b", and "c" are used according to "imm8", and the result is written to the corresponding bit in "dst". + +DEFINE TernaryOP(imm8, a, b, c) { + CASE imm8[7:0] OF + 0: dst[0] := 0 // imm8[7:0] := 0 + 1: dst[0] := NOT (a OR b OR c) // imm8[7:0] := NOT (_MM_TERNLOG_A OR _MM_TERNLOG_B OR _MM_TERNLOG_C) + // ... + 254: dst[0] := a OR b OR c // imm8[7:0] := _MM_TERNLOG_A OR _MM_TERNLOG_B OR _MM_TERNLOG_C + 255: dst[0] := 1 // imm8[7:0] := 1 + ESAC +} +imm8[7:0] = LogicExp(_MM_TERNLOG_A, _MM_TERNLOG_B, _MM_TERNLOG_C) +FOR j := 0 to 15 + i := j*32 + FOR h := 0 to 31 + dst[i+h] := TernaryOP(imm8[7:0], a[i+h], b[i+h], c[i+h]) + ENDFOR +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Logical +
+ + + + + + + + Bitwise ternary logic that provides the capability to implement any three-operand binary function; the specific binary function is specified by value in "imm8". For each bit in each packed 64-bit integer, the corresponding bit from "a", "b", and "c" are used according to "imm8", and the result is written to the corresponding bit in "dst" using writemask "k" at 64-bit granularity (64-bit elements are copied from "a" when the corresponding mask bit is not set). + +DEFINE TernaryOP(imm8, a, b, c) { + CASE imm8[7:0] OF + 0: dst[0] := 0 // imm8[7:0] := 0 + 1: dst[0] := NOT (a OR b OR c) // imm8[7:0] := NOT (_MM_TERNLOG_A OR _MM_TERNLOG_B OR _MM_TERNLOG_C) + // ... + 254: dst[0] := a OR b OR c // imm8[7:0] := _MM_TERNLOG_A OR _MM_TERNLOG_B OR _MM_TERNLOG_C + 255: dst[0] := 1 // imm8[7:0] := 1 + ESAC +} +imm8[7:0] = LogicExp(_MM_TERNLOG_A, _MM_TERNLOG_B, _MM_TERNLOG_C) +FOR j := 0 to 7 + i := j*64 + IF k[j] + FOR h := 0 to 63 + dst[i+h] := TernaryOP(imm8[7:0], a[i+h], b[i+h], c[i+h]) + ENDFOR + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Logical +
+ + + + + + + + Bitwise ternary logic that provides the capability to implement any three-operand binary function; the specific binary function is specified by value in "imm8". For each bit in each packed 64-bit integer, the corresponding bit from "a", "b", and "c" are used according to "imm8", and the result is written to the corresponding bit in "dst" using zeromask "k" at 64-bit granularity (64-bit elements are zeroed out when the corresponding mask bit is not set). + +DEFINE TernaryOP(imm8, a, b, c) { + CASE imm8[7:0] OF + 0: dst[0] := 0 // imm8[7:0] := 0 + 1: dst[0] := NOT (a OR b OR c) // imm8[7:0] := NOT (_MM_TERNLOG_A OR _MM_TERNLOG_B OR _MM_TERNLOG_C) + // ... + 254: dst[0] := a OR b OR c // imm8[7:0] := _MM_TERNLOG_A OR _MM_TERNLOG_B OR _MM_TERNLOG_C + 255: dst[0] := 1 // imm8[7:0] := 1 + ESAC +} +imm8[7:0] = LogicExp(_MM_TERNLOG_A, _MM_TERNLOG_B, _MM_TERNLOG_C) +FOR j := 0 to 7 + i := j*64 + IF k[j] + FOR h := 0 to 63 + dst[i+h] := TernaryOP(imm8[7:0], a[i+h], b[i+h], c[i+h]) + ENDFOR + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Logical +
+ + + + + + + Bitwise ternary logic that provides the capability to implement any three-operand binary function; the specific binary function is specified by value in "imm8". For each bit in each packed 64-bit integer, the corresponding bit from "a", "b", and "c" are used according to "imm8", and the result is written to the corresponding bit in "dst". + +DEFINE TernaryOP(imm8, a, b, c) { + CASE imm8[7:0] OF + 0: dst[0] := 0 // imm8[7:0] := 0 + 1: dst[0] := NOT (a OR b OR c) // imm8[7:0] := NOT (_MM_TERNLOG_A OR _MM_TERNLOG_B OR _MM_TERNLOG_C) + // ... + 254: dst[0] := a OR b OR c // imm8[7:0] := _MM_TERNLOG_A OR _MM_TERNLOG_B OR _MM_TERNLOG_C + 255: dst[0] := 1 // imm8[7:0] := 1 + ESAC +} +imm8[7:0] = LogicExp(_MM_TERNLOG_A, _MM_TERNLOG_B, _MM_TERNLOG_C) +FOR j := 0 to 7 + i := j*64 + FOR h := 0 to 63 + dst[i+h] := TernaryOP(imm8[7:0], a[i+h], b[i+h], c[i+h]) + ENDFOR +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Logical +
+ + + + + + Compute the bitwise AND of packed 64-bit integers in "a" and "b", producing intermediate 64-bit values, and set the corresponding bit in result mask "k" (subject to writemask "k") if the intermediate value is non-zero. + +FOR j := 0 to 7 + i := j*64 + IF k1[j] + k[j] := ((a[i+63:i] AND b[i+63:i]) != 0) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:8] := 0 + + + AVX512F +
immintrin.h
+ Logical +
+ + + + + Compute the bitwise AND of packed 64-bit integers in "a" and "b", producing intermediate 64-bit values, and set the corresponding bit in result mask "k" if the intermediate value is non-zero. + +FOR j := 0 to 7 + i := j*64 + k[j] := ((a[i+63:i] AND b[i+63:i]) != 0) ? 1 : 0 +ENDFOR +k[MAX:8] := 0 + + + AVX512F +
immintrin.h
+ Logical +
+ + + + + + Compute the bitwise NAND of packed 32-bit integers in "a" and "b", producing intermediate 32-bit values, and set the corresponding bit in result mask "k" (subject to writemask "k") if the intermediate value is zero. + +FOR j := 0 to 15 + i := j*32 + IF k1[j] + k[j] := ((a[i+31:i] AND b[i+31:i]) == 0) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:16] := 0 + + + AVX512F +
immintrin.h
+ Logical +
+ + + + + Compute the bitwise NAND of packed 32-bit integers in "a" and "b", producing intermediate 32-bit values, and set the corresponding bit in result mask "k" if the intermediate value is zero. + +FOR j := 0 to 15 + i := j*32 + k[j] := ((a[i+31:i] AND b[i+31:i]) == 0) ? 1 : 0 +ENDFOR +k[MAX:16] := 0 + + + AVX512F +
immintrin.h
+ Logical +
+ + + + + + Compute the bitwise NAND of packed 64-bit integers in "a" and "b", producing intermediate 64-bit values, and set the corresponding bit in result mask "k" (subject to writemask "k") if the intermediate value is zero. + +FOR j := 0 to 7 + i := j*64 + IF k1[j] + k[j] := ((a[i+63:i] AND b[i+63:i]) == 0) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:8] := 0 + + + AVX512F +
immintrin.h
+ Logical +
+ + + + + Compute the bitwise NAND of packed 64-bit integers in "a" and "b", producing intermediate 64-bit values, and set the corresponding bit in result mask "k" if the intermediate value is zero. + +FOR j := 0 to 7 + i := j*64 + k[j] := ((a[i+63:i] AND b[i+63:i]) == 0) ? 1 : 0 +ENDFOR +k[MAX:8] := 0 + + + AVX512F +
immintrin.h
+ Logical +
+ + + + + + Compute the bitwise XOR of packed 32-bit integers in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := a[i+31:i] XOR b[i+31:i] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Logical +
+ + + + + + Compute the bitwise XOR of packed 64-bit integers in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := a[i+63:i] XOR b[i+63:i] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Logical +
+ + + + Broadcast 8-bit integer "a" to all elements of "dst". + +FOR j := 0 to 63 + i := j*8 + dst[i+7:i] := a[7:0] +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Set +
+ + + + + + Broadcast 32-bit integer "a" to all elements of "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := a[31:0] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Set +
+ + + + + Broadcast 32-bit integer "a" to all elements of "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := a[31:0] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Set +
+ + + + Broadcast 32-bit integer "a" to all elements of "dst". + +FOR j := 0 to 15 + i := j*32 + dst[i+31:i] := a[31:0] +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Set +
+ + + + + + Broadcast 64-bit integer "a" to all elements of "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := a[63:0] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Set +
+ + + + + Broadcast 64-bit integer "a" to all elements of "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := a[63:0] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Set +
+ + + + Broadcast 64-bit integer "a" to all elements of "dst". + +FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := a[63:0] +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Set +
+ + + + Broadcast the low packed 16-bit integer from "a" to all all elements of "dst". + +FOR j := 0 to 31 + i := j*16 + dst[i+15:i] := a[15:0] +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Set +
+ + + + Broadcast double-precision (64-bit) floating-point value "a" to all elements of "dst". + +FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := a[63:0] +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Set +
+ + + + Broadcast single-precision (32-bit) floating-point value "a" to all elements of "dst". + +FOR j := 0 to 15 + i := j*32 + dst[i+31:i] := a[31:0] +ENDFOR +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Set +
+ + + + + + + Set packed 32-bit integers in "dst" with the repeated 4 element sequence. + +dst[31:0] := a +dst[63:32] := b +dst[95:64] := c +dst[127:96] := d +dst[159:128] := a +dst[191:160] := b +dst[223:192] := c +dst[255:224] := d +dst[287:256] := a +dst[319:288] := b +dst[351:320] := c +dst[383:352] := d +dst[415:384] := a +dst[447:416] := b +dst[479:448] := c +dst[511:480] := d +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Set +
+ + + + + + + Set packed 64-bit integers in "dst" with the repeated 4 element sequence. + +dst[63:0] := a +dst[127:64] := b +dst[191:128] := c +dst[255:192] := d +dst[319:256] := a +dst[383:320] := b +dst[447:384] := c +dst[511:448] := d +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Set +
+ + + + + + + Set packed double-precision (64-bit) floating-point elements in "dst" with the repeated 4 element sequence. + +dst[63:0] := a +dst[127:64] := b +dst[191:128] := c +dst[255:192] := d +dst[319:256] := a +dst[383:320] := b +dst[447:384] := c +dst[511:448] := d +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Set +
+ + + + + + + Set packed single-precision (32-bit) floating-point elements in "dst" with the repeated 4 element sequence. + +dst[31:0] := a +dst[63:32] := b +dst[95:64] := c +dst[127:96] := d +dst[159:128] := a +dst[191:160] := b +dst[223:192] := c +dst[255:224] := d +dst[287:256] := a +dst[319:288] := b +dst[351:320] := c +dst[383:352] := d +dst[415:384] := a +dst[447:416] := b +dst[479:448] := c +dst[511:480] := d +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Set +
+ + + + + + + + + + + + + + + + + + + + + + + + + + + + + + + + + + + + + + + + + + + + + + + + + + + + + + + + + + + + + + + + + + + Set packed 8-bit integers in "dst" with the supplied values. + +dst[7:0] := e0 +dst[15:8] := e1 +dst[23:16] := e2 +dst[31:24] := e3 +dst[39:32] := e4 +dst[47:40] := e5 +dst[55:48] := e6 +dst[63:56] := e7 +dst[71:64] := e8 +dst[79:72] := e9 +dst[87:80] := e10 +dst[95:88] := e11 +dst[103:96] := e12 +dst[111:104] := e13 +dst[119:112] := e14 +dst[127:120] := e15 +dst[135:128] := e16 +dst[143:136] := e17 +dst[151:144] := e18 +dst[159:152] := e19 +dst[167:160] := e20 +dst[175:168] := e21 +dst[183:176] := e22 +dst[191:184] := e23 +dst[199:192] := e24 +dst[207:200] := e25 +dst[215:208] := e26 +dst[223:216] := e27 +dst[231:224] := e28 +dst[239:232] := e29 +dst[247:240] := e30 +dst[255:248] := e31 +dst[263:256] := e32 +dst[271:264] := e33 +dst[279:272] := e34 +dst[287:280] := e35 +dst[295:288] := e36 +dst[303:296] := e37 +dst[311:304] := e38 +dst[319:312] := e39 +dst[327:320] := e40 +dst[335:328] := e41 +dst[343:336] := e42 +dst[351:344] := e43 +dst[359:352] := e44 +dst[367:360] := e45 +dst[375:368] := e46 +dst[383:376] := e47 +dst[391:384] := e48 +dst[399:392] := e49 +dst[407:400] := e50 +dst[415:408] := e51 +dst[423:416] := e52 +dst[431:424] := e53 +dst[439:432] := e54 +dst[447:440] := e55 +dst[455:448] := e56 +dst[463:456] := e57 +dst[471:464] := e58 +dst[479:472] := e59 +dst[487:480] := e60 +dst[495:488] := e61 +dst[503:496] := e62 +dst[511:504] := e63 +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Set +
+ + + + + + + + + + + + + + + + + + + + + + + + + + + + + + + + + + + Set packed 16-bit integers in "dst" with the supplied values. + +dst[15:0] := e0 +dst[31:16] := e1 +dst[47:32] := e2 +dst[63:48] := e3 +dst[79:64] := e4 +dst[95:80] := e5 +dst[111:96] := e6 +dst[127:112] := e7 +dst[143:128] := e8 +dst[159:144] := e9 +dst[175:160] := e10 +dst[191:176] := e11 +dst[207:192] := e12 +dst[223:208] := e13 +dst[239:224] := e14 +dst[255:240] := e15 +dst[271:256] := e16 +dst[287:272] := e17 +dst[303:288] := e18 +dst[319:304] := e19 +dst[335:320] := e20 +dst[351:336] := e21 +dst[367:352] := e22 +dst[383:368] := e23 +dst[399:384] := e24 +dst[415:400] := e25 +dst[431:416] := e26 +dst[447:432] := e27 +dst[463:448] := e28 +dst[479:464] := e29 +dst[495:480] := e30 +dst[511:496] := e31 +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Set +
+ + + + + + + + + + + + + + + + + + + Set packed 32-bit integers in "dst" with the supplied values. + +dst[31:0] := e0 +dst[63:32] := e1 +dst[95:64] := e2 +dst[127:96] := e3 +dst[159:128] := e4 +dst[191:160] := e5 +dst[223:192] := e6 +dst[255:224] := e7 +dst[287:256] := e8 +dst[319:288] := e9 +dst[351:320] := e10 +dst[383:352] := e11 +dst[415:384] := e12 +dst[447:416] := e13 +dst[479:448] := e14 +dst[511:480] := e15 +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Set +
+ + + + + + + + + + + Set packed 64-bit integers in "dst" with the supplied values. + +dst[63:0] := e0 +dst[127:64] := e1 +dst[191:128] := e2 +dst[255:192] := e3 +dst[319:256] := e4 +dst[383:320] := e5 +dst[447:384] := e6 +dst[511:448] := e7 +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Set +
+ + + + + + + + + + + Set packed double-precision (64-bit) floating-point elements in "dst" with the supplied values. + +dst[63:0] := e0 +dst[127:64] := e1 +dst[191:128] := e2 +dst[255:192] := e3 +dst[319:256] := e4 +dst[383:320] := e5 +dst[447:384] := e6 +dst[511:448] := e7 +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Set +
+ + + + + + + + + + + + + + + + + + + Set packed single-precision (32-bit) floating-point elements in "dst" with the supplied values. + +dst[31:0] := e0 +dst[63:32] := e1 +dst[95:64] := e2 +dst[127:96] := e3 +dst[159:128] := e4 +dst[191:160] := e5 +dst[223:192] := e6 +dst[255:224] := e7 +dst[287:256] := e8 +dst[319:288] := e9 +dst[351:320] := e10 +dst[383:352] := e11 +dst[415:384] := e12 +dst[447:416] := e13 +dst[479:448] := e14 +dst[511:480] := e15 +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Set +
+ + + + + + + Set packed 32-bit integers in "dst" with the repeated 4 element sequence in reverse order. + +dst[31:0] := d +dst[63:32] := c +dst[95:64] := b +dst[127:96] := a +dst[159:128] := d +dst[191:160] := c +dst[223:192] := b +dst[255:224] := a +dst[287:256] := d +dst[319:288] := c +dst[351:320] := b +dst[383:352] := a +dst[415:384] := d +dst[447:416] := c +dst[479:448] := b +dst[511:480] := a +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Set +
+ + + + + + + Set packed 64-bit integers in "dst" with the repeated 4 element sequence in reverse order. + +dst[63:0] := d +dst[127:64] := c +dst[191:128] := b +dst[255:192] := a +dst[319:256] := d +dst[383:320] := c +dst[447:384] := b +dst[511:448] := a +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Set +
+ + + + + + + Set packed double-precision (64-bit) floating-point elements in "dst" with the repeated 4 element sequence in reverse order. + +dst[63:0] := d +dst[127:64] := c +dst[191:128] := b +dst[255:192] := a +dst[319:256] := d +dst[383:320] := c +dst[447:384] := b +dst[511:448] := a +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Set +
+ + + + + + + Set packed single-precision (32-bit) floating-point elements in "dst" with the repeated 4 element sequence in reverse order. + +dst[31:0] := d +dst[63:32] := c +dst[95:64] := b +dst[127:96] := a +dst[159:128] := d +dst[191:160] := c +dst[223:192] := b +dst[255:224] := a +dst[287:256] := d +dst[319:288] := c +dst[351:320] := b +dst[383:352] := a +dst[415:384] := d +dst[447:416] := c +dst[479:448] := b +dst[511:480] := a +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Set +
+ + + + + + + + + + + + + + + + + + + Set packed 32-bit integers in "dst" with the supplied values in reverse order. + +dst[31:0] := e15 +dst[63:32] := e14 +dst[95:64] := e13 +dst[127:96] := e12 +dst[159:128] := e11 +dst[191:160] := e10 +dst[223:192] := e9 +dst[255:224] := e8 +dst[287:256] := e7 +dst[319:288] := e6 +dst[351:320] := e5 +dst[383:352] := e4 +dst[415:384] := e3 +dst[447:416] := e2 +dst[479:448] := e1 +dst[511:480] := e0 +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Set +
+ + + + + + + + + + + Set packed 64-bit integers in "dst" with the supplied values in reverse order. + +dst[63:0] := e7 +dst[127:64] := e6 +dst[191:128] := e5 +dst[255:192] := e4 +dst[319:256] := e3 +dst[383:320] := e2 +dst[447:384] := e1 +dst[511:448] := e0 +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Set +
+ + + + + + + + + + + Set packed double-precision (64-bit) floating-point elements in "dst" with the supplied values in reverse order. + +dst[63:0] := e7 +dst[127:64] := e6 +dst[191:128] := e5 +dst[255:192] := e4 +dst[319:256] := e3 +dst[383:320] := e2 +dst[447:384] := e1 +dst[511:448] := e0 +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Set +
+ + + + + + + + + + + + + + + + + + + Set packed single-precision (32-bit) floating-point elements in "dst" with the supplied values in reverse order. + +dst[31:0] := e15 +dst[63:32] := e14 +dst[95:64] := e13 +dst[127:96] := e12 +dst[159:128] := e11 +dst[191:160] := e10 +dst[223:192] := e9 +dst[255:224] := e8 +dst[287:256] := e7 +dst[319:288] := e6 +dst[351:320] := e5 +dst[383:352] := e4 +dst[415:384] := e3 +dst[447:416] := e2 +dst[479:448] := e1 +dst[511:480] := e0 +dst[MAX:512] := 0 + + AVX512F +
immintrin.h
+ Set +
+ + + + Return vector of type __m512 with all elements set to zero. + +dst[MAX:0] := 0 + + + AVX512F +
immintrin.h
+ Set +
+ + + Return vector of type __m512i with all elements set to zero. + +dst[MAX:0] := 0 + + + AVX512F +
immintrin.h
+ Set +
+ + + Return vector of type __m512d with all elements set to zero. + +dst[MAX:0] := 0 + + + AVX512F +
immintrin.h
+ Set +
+ + + Return vector of type __m512 with all elements set to zero. + +dst[MAX:0] := 0 + + + AVX512F +
immintrin.h
+ Set +
+ + + Return vector of type __m512i with all elements set to zero. + +dst[MAX:0] := 0 + + + AVX512F +
immintrin.h
+ Set +
+ + + + + + + Rotate the bits in each packed 32-bit integer in "a" to the left by the number of bits specified in "imm8", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +DEFINE LEFT_ROTATE_DWORDS(src, count_src) { + count := count_src % 32 + RETURN (src << count) OR (src >> (32 - count)) +} +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := LEFT_ROTATE_DWORDS(a[i+31:i], imm8[7:0]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Shift +
+ + + + + + Rotate the bits in each packed 32-bit integer in "a" to the left by the number of bits specified in "imm8", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +DEFINE LEFT_ROTATE_DWORDS(src, count_src) { + count := count_src % 32 + RETURN (src << count) OR (src >> (32 - count)) +} +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := LEFT_ROTATE_DWORDS(a[i+31:i], imm8[7:0]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Shift +
+ + + + + Rotate the bits in each packed 32-bit integer in "a" to the left by the number of bits specified in "imm8", and store the results in "dst". + +DEFINE LEFT_ROTATE_DWORDS(src, count_src) { + count := count_src % 32 + RETURN (src << count) OR (src >> (32 - count)) +} +FOR j := 0 to 15 + i := j*32 + dst[i+31:i] := LEFT_ROTATE_DWORDS(a[i+31:i], imm8[7:0]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Shift +
+ + + + + + + Rotate the bits in each packed 64-bit integer in "a" to the left by the number of bits specified in "imm8", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +DEFINE LEFT_ROTATE_QWORDS(src, count_src) { + count := count_src % 64 + RETURN (src << count) OR (src >> (64 - count)) +} +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := LEFT_ROTATE_QWORDS(a[i+63:i], imm8[7:0]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Shift +
+ + + + + + Rotate the bits in each packed 64-bit integer in "a" to the left by the number of bits specified in "imm8", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +DEFINE LEFT_ROTATE_QWORDS(src, count_src) { + count := count_src % 64 + RETURN (src << count) OR (src >> (64 - count)) +} +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := LEFT_ROTATE_QWORDS(a[i+63:i], imm8[7:0]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Shift +
+ + + + + Rotate the bits in each packed 64-bit integer in "a" to the left by the number of bits specified in "imm8", and store the results in "dst". + +DEFINE LEFT_ROTATE_QWORDS(src, count_src) { + count := count_src % 64 + RETURN (src << count) OR (src >> (64 - count)) +} +FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := LEFT_ROTATE_QWORDS(a[i+63:i], imm8[7:0]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Shift +
+ + + + + + + Rotate the bits in each packed 32-bit integer in "a" to the left by the number of bits specified in the corresponding element of "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +DEFINE LEFT_ROTATE_DWORDS(src, count_src) { + count := count_src % 32 + RETURN (src << count) OR (src >> (32 - count)) +} +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := LEFT_ROTATE_DWORDS(a[i+31:i], b[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Shift +
+ + + + + + Rotate the bits in each packed 32-bit integer in "a" to the left by the number of bits specified in the corresponding element of "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +DEFINE LEFT_ROTATE_DWORDS(src, count_src) { + count := count_src % 32 + RETURN (src << count) OR (src >> (32 - count)) +} +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := LEFT_ROTATE_DWORDS(a[i+31:i], b[i+31:i]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Shift +
+ + + + + Rotate the bits in each packed 32-bit integer in "a" to the left by the number of bits specified in the corresponding element of "b", and store the results in "dst". + +DEFINE LEFT_ROTATE_DWORDS(src, count_src) { + count := count_src % 32 + RETURN (src << count) OR (src >> (32 - count)) +} +FOR j := 0 to 15 + i := j*32 + dst[i+31:i] := LEFT_ROTATE_DWORDS(a[i+31:i], b[i+31:i]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Shift +
+ + + + + + + Rotate the bits in each packed 64-bit integer in "a" to the left by the number of bits specified in the corresponding element of "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +DEFINE LEFT_ROTATE_QWORDS(src, count_src) { + count := count_src % 64 + RETURN (src << count) OR (src >> (64 - count)) +} +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := LEFT_ROTATE_QWORDS(a[i+63:i], b[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Shift +
+ + + + + + Rotate the bits in each packed 64-bit integer in "a" to the left by the number of bits specified in the corresponding element of "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +DEFINE LEFT_ROTATE_QWORDS(src, count_src) { + count := count_src % 64 + RETURN (src << count) OR (src >> (64 - count)) +} +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := LEFT_ROTATE_QWORDS(a[i+63:i], b[i+63:i]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Shift +
+ + + + + Rotate the bits in each packed 64-bit integer in "a" to the left by the number of bits specified in the corresponding element of "b", and store the results in "dst". + +DEFINE LEFT_ROTATE_QWORDS(src, count_src) { + count := count_src % 64 + RETURN (src << count) OR (src >> (64 - count)) +} +FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := LEFT_ROTATE_QWORDS(a[i+63:i], b[i+63:i]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Shift +
+ + + + + + + Rotate the bits in each packed 32-bit integer in "a" to the right by the number of bits specified in "imm8", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +DEFINE RIGHT_ROTATE_DWORDS(src, count_src) { + count := count_src % 32 + RETURN (src >>count) OR (src << (32 - count)) +} +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := RIGHT_ROTATE_DWORDS(a[i+31:i], imm8[7:0]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Shift +
+ + + + + + Rotate the bits in each packed 32-bit integer in "a" to the right by the number of bits specified in "imm8", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +DEFINE RIGHT_ROTATE_DWORDS(src, count_src) { + count := count_src % 32 + RETURN (src >>count) OR (src << (32 - count)) +} +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := RIGHT_ROTATE_DWORDS(a[i+31:i], imm8[7:0]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Shift +
+ + + + + Rotate the bits in each packed 32-bit integer in "a" to the right by the number of bits specified in "imm8", and store the results in "dst". + +DEFINE RIGHT_ROTATE_DWORDS(src, count_src) { + count := count_src % 32 + RETURN (src >>count) OR (src << (32 - count)) +} +FOR j := 0 to 15 + i := j*32 + dst[i+31:i] := RIGHT_ROTATE_DWORDS(a[i+31:i], imm8[7:0]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Shift +
+ + + + + + + Rotate the bits in each packed 64-bit integer in "a" to the right by the number of bits specified in "imm8", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +DEFINE RIGHT_ROTATE_QWORDS(src, count_src) { + count := count_src % 64 + RETURN (src >> count) OR (src << (64 - count)) +} +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := RIGHT_ROTATE_QWORDS(a[i+63:i], imm8[7:0]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Shift +
+ + + + + + Rotate the bits in each packed 64-bit integer in "a" to the right by the number of bits specified in "imm8", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +DEFINE RIGHT_ROTATE_QWORDS(src, count_src) { + count := count_src % 64 + RETURN (src >> count) OR (src << (64 - count)) +} +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := RIGHT_ROTATE_QWORDS(a[i+63:i], imm8[7:0]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Shift +
+ + + + + Rotate the bits in each packed 64-bit integer in "a" to the right by the number of bits specified in "imm8", and store the results in "dst". + +DEFINE RIGHT_ROTATE_QWORDS(src, count_src) { + count := count_src % 64 + RETURN (src >> count) OR (src << (64 - count)) +} +FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := RIGHT_ROTATE_QWORDS(a[i+63:i], imm8[7:0]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Shift +
+ + + + + + + Rotate the bits in each packed 32-bit integer in "a" to the right by the number of bits specified in the corresponding element of "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +DEFINE RIGHT_ROTATE_DWORDS(src, count_src) { + count := count_src % 32 + RETURN (src >>count) OR (src << (32 - count)) +} +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := RIGHT_ROTATE_DWORDS(a[i+31:i], b[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Shift +
+ + + + + Rotate the bits in each packed 32-bit integer in "a" to the right by the number of bits specified in the corresponding element of "b", and store the results in "dst". + +DEFINE RIGHT_ROTATE_DWORDS(src, count_src) { + count := count_src % 32 + RETURN (src >>count) OR (src << (32 - count)) +} +FOR j := 0 to 15 + i := j*32 + dst[i+31:i] := RIGHT_ROTATE_DWORDS(a[i+31:i], b[i+31:i]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Shift +
+ + + + + + + Rotate the bits in each packed 64-bit integer in "a" to the right by the number of bits specified in the corresponding element of "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +DEFINE RIGHT_ROTATE_QWORDS(src, count_src) { + count := count_src % 64 + RETURN (src >> count) OR (src << (64 - count)) +} +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := RIGHT_ROTATE_QWORDS(a[i+63:i], b[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Shift +
+ + + + + + Rotate the bits in each packed 64-bit integer in "a" to the right by the number of bits specified in the corresponding element of "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +DEFINE RIGHT_ROTATE_QWORDS(src, count_src) { + count := count_src % 64 + RETURN (src >> count) OR (src << (64 - count)) +} +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := RIGHT_ROTATE_QWORDS(a[i+63:i], b[i+63:i]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Shift +
+ + + + + Rotate the bits in each packed 64-bit integer in "a" to the right by the number of bits specified in the corresponding element of "b", and store the results in "dst". + +DEFINE RIGHT_ROTATE_QWORDS(src, count_src) { + count := count_src % 64 + RETURN (src >> count) OR (src << (64 - count)) +} +FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := RIGHT_ROTATE_QWORDS(a[i+63:i], b[i+63:i]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Shift +
+ + + + + + + Shift packed 32-bit integers in "a" left by "count" while shifting in zeros, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + IF count[63:0] > 31 + dst[i+31:i] := 0 + ELSE + dst[i+31:i] := ZeroExtend32(a[i+31:i] << count[63:0]) + FI + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Shift +
+ + + + + + Shift packed 32-bit integers in "a" left by "count" while shifting in zeros, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + IF count[63:0] > 31 + dst[i+31:i] := 0 + ELSE + dst[i+31:i] := ZeroExtend32(a[i+31:i] << count[63:0]) + FI + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Shift +
+ + + + + + Shift packed 32-bit integers in "a" left by "imm8" while shifting in zeros, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + IF imm8[7:0] > 31 + dst[i+31:i] := 0 + ELSE + dst[i+31:i] := ZeroExtend32(a[i+31:i] << imm8[7:0]) + FI + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Shift +
+ + + + + Shift packed 32-bit integers in "a" left by "count" while shifting in zeros, and store the results in "dst". + +FOR j := 0 to 15 + i := j*32 + IF count[63:0] > 31 + dst[i+31:i] := 0 + ELSE + dst[i+31:i] := ZeroExtend32(a[i+31:i] << count[63:0]) + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Shift +
+ + + + + + + Shift packed 64-bit integers in "a" left by "count" while shifting in zeros, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + IF count[63:0] > 63 + dst[i+63:i] := 0 + ELSE + dst[i+63:i] := ZeroExtend64(a[i+63:i] << count[63:0]) + FI + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Shift +
+ + + + + + + Shift packed 64-bit integers in "a" left by "imm8" while shifting in zeros, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + IF imm8[7:0] > 63 + dst[i+63:i] := 0 + ELSE + dst[i+63:i] := ZeroExtend64(a[i+63:i] << imm8[7:0]) + FI + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Shift +
+ + + + + + Shift packed 64-bit integers in "a" left by "count" while shifting in zeros, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + IF count[63:0] > 63 + dst[i+63:i] := 0 + ELSE + dst[i+63:i] := ZeroExtend64(a[i+63:i] << count[63:0]) + FI + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Shift +
+ + + + + + Shift packed 64-bit integers in "a" left by "imm8" while shifting in zeros, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + IF imm8[7:0] > 63 + dst[i+63:i] := 0 + ELSE + dst[i+63:i] := ZeroExtend64(a[i+63:i] << imm8[7:0]) + FI + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Shift +
+ + + + + Shift packed 64-bit integers in "a" left by "count" while shifting in zeros, and store the results in "dst". + +FOR j := 0 to 7 + i := j*64 + IF count[63:0] > 63 + dst[i+63:i] := 0 + ELSE + dst[i+63:i] := ZeroExtend64(a[i+63:i] << count[63:0]) + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Shift +
+ + + + + Shift packed 64-bit integers in "a" left by "imm8" while shifting in zeros, and store the results in "dst". + +FOR j := 0 to 7 + i := j*64 + IF imm8[7:0] > 63 + dst[i+63:i] := 0 + ELSE + dst[i+63:i] := ZeroExtend64(a[i+63:i] << imm8[7:0]) + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Shift +
+ + + + + + Shift packed 32-bit integers in "a" left by the amount specified by the corresponding element in "count" while shifting in zeros, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + IF count[i+31:i] < 32 + dst[i+31:i] := ZeroExtend32(a[i+31:i] << count[i+31:i]) + ELSE + dst[i+31:i] := 0 + FI + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Shift +
+ + + + + + + Shift packed 64-bit integers in "a" left by the amount specified by the corresponding element in "count" while shifting in zeros, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + IF count[i+63:i] < 64 + dst[i+63:i] := ZeroExtend64(a[i+63:i] << count[i+63:i]) + ELSE + dst[i+63:i] := 0 + FI + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Shift +
+ + + + + + Shift packed 64-bit integers in "a" left by the amount specified by the corresponding element in "count" while shifting in zeros, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + IF count[i+63:i] < 64 + dst[i+63:i] := ZeroExtend64(a[i+63:i] << count[i+63:i]) + ELSE + dst[i+63:i] := 0 + FI + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Shift +
+ + + + + Shift packed 64-bit integers in "a" left by the amount specified by the corresponding element in "count" while shifting in zeros, and store the results in "dst". + +FOR j := 0 to 7 + i := j*64 + IF count[i+63:i] < 64 + dst[i+63:i] := ZeroExtend64(a[i+63:i] << count[i+63:i]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Shift +
+ + + + + + + Shift packed 32-bit integers in "a" right by "count" while shifting in sign bits, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + IF count[63:0] > 31 + dst[i+31:i] := (a[i+31] ? 0xFFFFFFFF : 0x0) + ELSE + dst[i+31:i] := SignExtend32(a[i+31:i] >> count[63:0]) + FI + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Shift +
+ + + + + + Shift packed 32-bit integers in "a" right by "count" while shifting in sign bits, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + IF count[63:0] > 31 + dst[i+31:i] := (a[i+31] ? 0xFFFFFFFF : 0x0) + ELSE + dst[i+31:i] := SignExtend32(a[i+31:i] >> count[63:0]) + FI + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Shift +
+ + + + + + Shift packed 32-bit integers in "a" right by "imm8" while shifting in sign bits, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + IF imm8[7:0] > 31 + dst[i+31:i] := (a[i+31] ? 0xFFFFFFFF : 0x0) + ELSE + dst[i+31:i] := SignExtend32(a[i+31:i] >> imm8[7:0]) + FI + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Shift +
+ + + + + Shift packed 32-bit integers in "a" right by "count" while shifting in sign bits, and store the results in "dst". + +FOR j := 0 to 15 + i := j*32 + IF count[63:0] > 31 + dst[i+31:i] := (a[i+31] ? 0xFFFFFFFF : 0x0) + ELSE + dst[i+31:i] := SignExtend32(a[i+31:i] >> count[63:0]) + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Shift +
+ + + + + + + Shift packed 64-bit integers in "a" right by "count" while shifting in sign bits, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + IF count[63:0] > 63 + dst[i+63:i] := (a[i+63] ? 0xFFFFFFFFFFFFFFFF : 0x0) + ELSE + dst[i+63:i] := SignExtend64(a[i+63:i] >> count[63:0]) + FI + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Shift +
+ + + + + + + Shift packed 64-bit integers in "a" right by "imm8" while shifting in sign bits, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + IF imm8[7:0] > 63 + dst[i+63:i] := (a[i+63] ? 0xFFFFFFFFFFFFFFFF : 0x0) + ELSE + dst[i+63:i] := SignExtend64(a[i+63:i] >> imm8[7:0]) + FI + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Shift +
+ + + + + + Shift packed 64-bit integers in "a" right by "count" while shifting in sign bits, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + IF count[63:0] > 63 + dst[i+63:i] := (a[i+63] ? 0xFFFFFFFFFFFFFFFF : 0x0) + ELSE + dst[i+63:i] := SignExtend64(a[i+63:i] >> count[63:0]) + FI + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Shift +
+ + + + + + Shift packed 64-bit integers in "a" right by "imm8" while shifting in sign bits, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + IF imm8[7:0] > 63 + dst[i+63:i] := (a[i+63] ? 0xFFFFFFFFFFFFFFFF : 0x0) + ELSE + dst[i+63:i] := SignExtend64(a[i+63:i] >> imm8[7:0]) + FI + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Shift +
+ + + + + Shift packed 64-bit integers in "a" right by "count" while shifting in sign bits, and store the results in "dst". + +FOR j := 0 to 7 + i := j*64 + IF count[63:0] > 63 + dst[i+63:i] := (a[i+63] ? 0xFFFFFFFFFFFFFFFF : 0x0) + ELSE + dst[i+63:i] := SignExtend64(a[i+63:i] >> count[63:0]) + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Shift +
+ + + + + Shift packed 64-bit integers in "a" right by "imm8" while shifting in sign bits, and store the results in "dst". + +FOR j := 0 to 7 + i := j*64 + IF imm8[7:0] > 63 + dst[i+63:i] := (a[i+63] ? 0xFFFFFFFFFFFFFFFF : 0x0) + ELSE + dst[i+63:i] := SignExtend64(a[i+63:i] >> imm8[7:0]) + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Shift +
+ + + + + + Shift packed 32-bit integers in "a" right by the amount specified by the corresponding element in "count" while shifting in sign bits, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + IF count[i+31:i] < 32 + dst[i+31:i] := SignExtend32(a[i+31:i] >> count[i+31:i]) + ELSE + dst[i+31:i] := (a[i+31] ? 0xFFFFFFFF : 0) + FI + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Shift +
+ + + + + + + Shift packed 64-bit integers in "a" right by the amount specified by the corresponding element in "count" while shifting in sign bits, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + IF count[i+63:i] < 64 + dst[i+63:i] := SignExtend64(a[i+63:i] >> count[i+63:i]) + ELSE + dst[i+63:i] := (a[i+63] ? 0xFFFFFFFFFFFFFFFF : 0) + FI + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Shift +
+ + + + + + Shift packed 64-bit integers in "a" right by the amount specified by the corresponding element in "count" while shifting in sign bits, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + IF count[i+63:i] < 64 + dst[i+63:i] := SignExtend64(a[i+63:i] >> count[i+63:i]) + ELSE + dst[i+63:i] := (a[i+63] ? 0xFFFFFFFFFFFFFFFF : 0) + FI + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Shift +
+ + + + + Shift packed 64-bit integers in "a" right by the amount specified by the corresponding element in "count" while shifting in sign bits, and store the results in "dst". + +FOR j := 0 to 7 + i := j*64 + IF count[i+63:i] < 64 + dst[i+63:i] := SignExtend64(a[i+63:i] >> count[i+63:i]) + ELSE + dst[i+63:i] := (a[i+63] ? 0xFFFFFFFFFFFFFFFF : 0) + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Shift +
+ + + + + + + Shift packed 32-bit integers in "a" right by "count" while shifting in zeros, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + IF count[63:0] > 31 + dst[i+31:i] := 0 + ELSE + dst[i+31:i] := ZeroExtend32(a[i+31:i] >> count[63:0]) + FI + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Shift +
+ + + + + + Shift packed 32-bit integers in "a" right by "count" while shifting in zeros, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + IF count[63:0] > 31 + dst[i+31:i] := 0 + ELSE + dst[i+31:i] := ZeroExtend32(a[i+31:i] >> count[63:0]) + FI + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Shift +
+ + + + + + Shift packed 32-bit integers in "a" right by "imm8" while shifting in zeros, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + IF imm8[7:0] > 31 + dst[i+31:i] := 0 + ELSE + dst[i+31:i] := ZeroExtend32(a[i+31:i] >> imm8[7:0]) + FI + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Shift +
+ + + + + Shift packed 32-bit integers in "a" right by "count" while shifting in zeros, and store the results in "dst". + +FOR j := 0 to 15 + i := j*32 + IF count[63:0] > 31 + dst[i+31:i] := 0 + ELSE + dst[i+31:i] := ZeroExtend32(a[i+31:i] >> count[63:0]) + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Shift +
+ + + + + + + Shift packed 64-bit integers in "a" right by "count" while shifting in zeros, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + IF count[63:0] > 63 + dst[i+63:i] := 0 + ELSE + dst[i+63:i] := ZeroExtend64(a[i+63:i] >> count[63:0]) + FI + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Shift +
+ + + + + + + Shift packed 64-bit integers in "a" right by "imm8" while shifting in zeros, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + IF imm8[7:0] > 63 + dst[i+63:i] := 0 + ELSE + dst[i+63:i] := ZeroExtend64(a[i+63:i] >> imm8[7:0]) + FI + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Shift +
+ + + + + + Shift packed 64-bit integers in "a" right by "count" while shifting in zeros, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + IF count[63:0] > 63 + dst[i+63:i] := 0 + ELSE + dst[i+63:i] := ZeroExtend64(a[i+63:i] >> count[63:0]) + FI + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Shift +
+ + + + + + Shift packed 64-bit integers in "a" right by "imm8" while shifting in zeros, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + IF imm8[7:0] > 63 + dst[i+63:i] := 0 + ELSE + dst[i+63:i] := ZeroExtend64(a[i+63:i] >> imm8[7:0]) + FI + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Shift +
+ + + + + Shift packed 64-bit integers in "a" right by "count" while shifting in zeros, and store the results in "dst". + +FOR j := 0 to 7 + i := j*64 + IF count[63:0] > 63 + dst[i+63:i] := 0 + ELSE + dst[i+63:i] := ZeroExtend64(a[i+63:i] >> count[63:0]) + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Shift +
+ + + + + Shift packed 64-bit integers in "a" right by "imm8" while shifting in zeros, and store the results in "dst". + +FOR j := 0 to 7 + i := j*64 + IF imm8[7:0] > 63 + dst[i+63:i] := 0 + ELSE + dst[i+63:i] := ZeroExtend64(a[i+63:i] >> imm8[7:0]) + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Shift +
+ + + + + + Shift packed 32-bit integers in "a" right by the amount specified by the corresponding element in "count" while shifting in zeros, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + IF count[i+31:i] < 32 + dst[i+31:i] := ZeroExtend32(a[i+31:i] >> count[i+31:i]) + ELSE + dst[i+31:i] := 0 + FI + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Shift +
+ + + + + + + Shift packed 64-bit integers in "a" right by the amount specified by the corresponding element in "count" while shifting in zeros, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + IF count[i+63:i] < 64 + dst[i+63:i] := ZeroExtend64(a[i+63:i] >> count[i+63:i]) + ELSE + dst[i+63:i] := 0 + FI + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Shift +
+ + + + + + Shift packed 64-bit integers in "a" right by the amount specified by the corresponding element in "count" while shifting in zeros, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + IF count[i+63:i] < 64 + dst[i+63:i] := ZeroExtend64(a[i+63:i] >> count[i+63:i]) + ELSE + dst[i+63:i] := 0 + FI + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Shift +
+ + + + + Shift packed 64-bit integers in "a" right by the amount specified by the corresponding element in "count" while shifting in zeros, and store the results in "dst". + +FOR j := 0 to 7 + i := j*64 + IF count[i+63:i] < 64 + dst[i+63:i] := ZeroExtend64(a[i+63:i] >> count[i+63:i]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Shift +
+ + + + + + Compute the approximate reciprocal of packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). The maximum relative error for this approximation is less than 2^-14. + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := (1.0 / a[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Elementary Math Functions +
+ + + + + Compute the approximate reciprocal of packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). The maximum relative error for this approximation is less than 2^-14. + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := (1.0 / a[i+63:i]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Elementary Math Functions +
+ + + + Compute the approximate reciprocal of packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst". The maximum relative error for this approximation is less than 2^-14. + +FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := (1.0 / a[i+63:i]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Elementary Math Functions +
+ + + + + + Compute the approximate reciprocal of packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). The maximum relative error for this approximation is less than 2^-14. + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := (1.0 / a[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Elementary Math Functions +
+ + + + + Compute the approximate reciprocal of packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). The maximum relative error for this approximation is less than 2^-14. + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := (1.0 / a[i+31:i]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Elementary Math Functions +
+ + + + Compute the approximate reciprocal of packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst". The maximum relative error for this approximation is less than 2^-14. + +FOR j := 0 to 15 + i := j*32 + dst[i+31:i] := (1.0 / a[i+31:i]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Elementary Math Functions +
+ + + + + + + Compute the approximate reciprocal of the lower double-precision (64-bit) floating-point element in "b", store the result in the lower element of "dst" using writemask "k" (the element is copied from "src" when mask bit 0 is not set), and copy the upper element from "a" to the upper element of "dst". The maximum relative error for this approximation is less than 2^-14. + +IF k[0] + dst[63:0] := (1.0 / b[63:0]) +ELSE + dst[63:0] := src[63:0] +FI +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Elementary Math Functions +
+ + + + + + Compute the approximate reciprocal of the lower double-precision (64-bit) floating-point element in "b", store the result in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper element from "a" to the upper element of "dst". The maximum relative error for this approximation is less than 2^-14. + +IF k[0] + dst[63:0] := (1.0 / b[63:0]) +ELSE + dst[63:0] := 0 +FI +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Elementary Math Functions +
+ + + + + Compute the approximate reciprocal of the lower double-precision (64-bit) floating-point element in "b", store the result in the lower element of "dst", and copy the upper element from "a" to the upper element of "dst". The maximum relative error for this approximation is less than 2^-14. + +dst[63:0] := (1.0 / b[63:0]) +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Elementary Math Functions +
+ + + + + + + Compute the approximate reciprocal of the lower single-precision (32-bit) floating-point element in "b", store the result in the lower element of "dst" using writemask "k" (the element is copied from "src" when mask bit 0 is not set), and copy the upper 3 packed elements from "a" to the upper elements of "dst". The maximum relative error for this approximation is less than 2^-14. + +IF k[0] + dst[31:0] := (1.0 / b[31:0]) +ELSE + dst[31:0] := src[31:0] +FI +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Elementary Math Functions +
+ + + + + + Compute the approximate reciprocal of the lower single-precision (32-bit) floating-point element in "b", store the result in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper 3 packed elements from "a" to the upper elements of "dst". The maximum relative error for this approximation is less than 2^-14. + +IF k[0] + dst[31:0] := (1.0 / b[31:0]) +ELSE + dst[31:0] := 0 +FI +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Elementary Math Functions +
+ + + + + Compute the approximate reciprocal of the lower single-precision (32-bit) floating-point element in "b", store the result in the lower element of "dst", and copy the upper 3 packed elements from "a" to the upper elements of "dst". The maximum relative error for this approximation is less than 2^-14. + +dst[31:0] := (1.0 / b[31:0]) +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Elementary Math Functions +
+ + + + + + Compute the approximate reciprocal square root of packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). The maximum relative error for this approximation is less than 2^-14. + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := (1.0 / SQRT(a[i+63:i])) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Elementary Math Functions +
+ + + + + Compute the approximate reciprocal square root of packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). The maximum relative error for this approximation is less than 2^-14. + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := (1.0 / SQRT(a[i+63:i])) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Elementary Math Functions +
+ + + + Compute the approximate reciprocal square root of packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst". The maximum relative error for this approximation is less than 2^-14. + +FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := (1.0 / SQRT(a[i+63:i])) +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Elementary Math Functions +
+ + + + + + Compute the approximate reciprocal square root of packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). The maximum relative error for this approximation is less than 2^-14. + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := (1.0 / SQRT(a[i+31:i])) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Elementary Math Functions +
+ + + + + Compute the approximate reciprocal square root of packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). The maximum relative error for this approximation is less than 2^-14. + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := (1.0 / SQRT(a[i+31:i])) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Elementary Math Functions +
+ + + + Compute the approximate reciprocal square root of packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst". The maximum relative error for this approximation is less than 2^-14. + +FOR j := 0 to 15 + i := j*32 + dst[i+31:i] := (1.0 / SQRT(a[i+31:i])) +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Elementary Math Functions +
+ + + + + + + Compute the approximate reciprocal square root of the lower double-precision (64-bit) floating-point element in "b", store the result in the lower element of "dst" using writemask "k" (the element is copied from "src" when mask bit 0 is not set), and copy the upper element from "a" to the upper element of "dst". The maximum relative error for this approximation is less than 2^-14. + +IF k[0] + dst[63:0] := (1.0 / SQRT(b[63:0])) +ELSE + dst[63:0] := src[63:0] +FI +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Elementary Math Functions +
+ + + + + + Compute the approximate reciprocal square root of the lower double-precision (64-bit) floating-point element in "b", store the result in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper element from "a" to the upper element of "dst". The maximum relative error for this approximation is less than 2^-14. + +IF k[0] + dst[63:0] := (1.0 / SQRT(b[63:0])) +ELSE + dst[63:0] := 0 +FI +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Elementary Math Functions +
+ + + + + Compute the approximate reciprocal square root of the lower double-precision (64-bit) floating-point element in "b", store the result in the lower element of "dst", and copy the upper element from "a" to the upper element of "dst". The maximum relative error for this approximation is less than 2^-14. + +dst[63:0] := (1.0 / SQRT(b[63:0])) +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Elementary Math Functions +
+ + + + + + + Compute the approximate reciprocal square root of the lower single-precision (32-bit) floating-point element in "b", store the result in the lower element of "dst" using writemask "k" (the element is copied from "src" when mask bit 0 is not set), and copy the upper 3 packed elements from "a" to the upper elements of "dst". The maximum relative error for this approximation is less than 2^-14. + +IF k[0] + dst[31:0] := (1.0 / SQRT(b[31:0])) +ELSE + dst[31:0] := src[31:0] +FI +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Elementary Math Functions +
+ + + + + + Compute the approximate reciprocal square root of the lower single-precision (32-bit) floating-point element in "b", store the result in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper 3 packed elements from "a" to the upper elements of "dst". The maximum relative error for this approximation is less than 2^-14. + +IF k[0] + dst[31:0] := (1.0 / SQRT(b[31:0])) +ELSE + dst[31:0] := 0 +FI +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Elementary Math Functions +
+ + + + + Compute the approximate reciprocal square root of the lower single-precision (32-bit) floating-point element in "b", store the result in the lower element of "dst", and copy the upper 3 packed elements from "a" to the upper elements of "dst". The maximum relative error for this approximation is less than 2^-14. + +dst[31:0] := (1.0 / SQRT(b[31:0])) +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Elementary Math Functions +
+ + + + + + Compute the square root of packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := SQRT(a[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Elementary Math Functions +
+ + + + + + + Compute the square root of packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := SQRT(a[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Elementary Math Functions +
+ + + + + Compute the square root of packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := SQRT(a[i+63:i]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Elementary Math Functions +
+ + + + + + Compute the square root of packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + [round_note]. + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := SQRT(a[i+63:i]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Elementary Math Functions +
+ + + + Compute the square root of packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst". + +FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := SQRT(a[i+63:i]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Elementary Math Functions +
+ + + + + Compute the square root of packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst". + [round_note]. + +FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := SQRT(a[i+63:i]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Elementary Math Functions +
+ + + + + + Compute the square root of packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := SQRT(a[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Elementary Math Functions +
+ + + + + + + Compute the square root of packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := SQRT(a[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Elementary Math Functions +
+ + + + + Compute the square root of packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := SQRT(a[i+31:i]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Elementary Math Functions +
+ + + + + + Compute the square root of packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := SQRT(a[i+31:i]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Elementary Math Functions +
+ + + + Compute the square root of packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst". + +FOR j := 0 to 15 + i := j*32 + dst[i+31:i] := SQRT(a[i+31:i]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Elementary Math Functions +
+ + + + + Compute the square root of packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst". + [round_note]. + +FOR j := 0 to 15 + i := j*32 + dst[i+31:i] := SQRT(a[i+31:i]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Elementary Math Functions +
+ + + + + + + + Compute the square root of the lower double-precision (64-bit) floating-point element in "b", store the result in the lower element of "dst" using writemask "k" (the element is copied from "src" when mask bit 0 is not set), and copy the upper element from "a" to the upper element of "dst". + [round_note] + +IF k[0] + dst[63:0] := SQRT(b[63:0]) +ELSE + dst[63:0] := src[63:0] +FI +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Elementary Math Functions +
+ + + + + + + Compute the square root of the lower double-precision (64-bit) floating-point element in "b", store the result in the lower element of "dst" using writemask "k" (the element is copied from "src" when mask bit 0 is not set), and copy the upper element from "a" to the upper element of "dst". + +IF k[0] + dst[63:0] := SQRT(b[63:0]) +ELSE + dst[63:0] := src[63:0] +FI +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Elementary Math Functions +
+ + + + + + + Compute the square root of the lower double-precision (64-bit) floating-point element in "b", store the result in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper element from "a" to the upper element of "dst". + [round_note] + +IF k[0] + dst[63:0] := SQRT(b[63:0]) +ELSE + dst[63:0] := 0 +FI +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Elementary Math Functions +
+ + + + + + Compute the square root of the lower double-precision (64-bit) floating-point element in "b", store the result in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper element from "a" to the upper element of "dst". + +IF k[0] + dst[63:0] := SQRT(b[63:0]) +ELSE + dst[63:0] := 0 +FI +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Elementary Math Functions +
+ + + + + + Compute the square root of the lower double-precision (64-bit) floating-point element in "b", store the result in the lower element of "dst", and copy the upper element from "a" to the upper element of "dst". + [round_note] + +dst[63:0] := SQRT(b[63:0]) +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Elementary Math Functions +
+ + + + + + + + Compute the square root of the lower single-precision (32-bit) floating-point element in "b", store the result in the lower element of "dst" using writemask "k" (the element is copied from "src" when mask bit 0 is not set), and copy the upper 3 packed elements from "a" to the upper elements of "dst". + [round_note] + +IF k[0] + dst[31:0] := SQRT(b[31:0]) +ELSE + dst[31:0] := src[31:0] +FI +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Elementary Math Functions +
+ + + + + + + Compute the square root of the lower single-precision (32-bit) floating-point element in "b", store the result in the lower element of "dst" using writemask "k" (the element is copied from "src" when mask bit 0 is not set), and copy the upper 3 packed elements from "a" to the upper elements of "dst". + +IF k[0] + dst[31:0] := SQRT(b[31:0]) +ELSE + dst[31:0] := src[31:0] +FI +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Elementary Math Functions +
+ + + + + + + Compute the square root of the lower single-precision (32-bit) floating-point element in "b", store the result in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper 3 packed elements from "a" to the upper elements of "dst". + [round_note] + +IF k[0] + dst[31:0] := SQRT(b[31:0]) +ELSE + dst[31:0] := 0 +FI +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Elementary Math Functions +
+ + + + + + Compute the square root of the lower single-precision (32-bit) floating-point element in "b", store the result in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper 3 packed elements from "a" to the upper elements of "dst". + +IF k[0] + dst[31:0] := SQRT(b[31:0]) +ELSE + dst[31:0] := 0 +FI +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Elementary Math Functions +
+ + + + + + Compute the square root of the lower single-precision (32-bit) floating-point element in "b", store the result in the lower element of "dst", and copy the upper 3 packed elements from "a" to the upper elements of "dst". + [round_note] + +dst[31:0] := SQRT(b[31:0]) +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512F +
immintrin.h
+ Elementary Math Functions +
+ + + + Cast vector of type __m128d to type __m512d; the upper 384 bits of the result are undefined. + This intrinsic is only used for compilation and does not generate any instructions, thus it has zero latency. + AVX512F +
immintrin.h
+ Cast +
+ + + + Cast vector of type __m256d to type __m512d; the upper 256 bits of the result are undefined. + This intrinsic is only used for compilation and does not generate any instructions, thus it has zero latency. + AVX512F +
immintrin.h
+ Cast +
+ + + + Cast vector of type __m512d to type __m128d. + This intrinsic is only used for compilation and does not generate any instructions, thus it has zero latency. + AVX512F +
immintrin.h
+ Cast +
+ + + + Cast vector of type __m512 to type __m128. + This intrinsic is only used for compilation and does not generate any instructions, thus it has zero latency. + AVX512F +
immintrin.h
+ Cast +
+ + + + Cast vector of type __m512d to type __m256d. + This intrinsic is only used for compilation and does not generate any instructions, thus it has zero latency. + AVX512F +
immintrin.h
+ Cast +
+ + + + Cast vector of type __m128 to type __m512; the upper 384 bits of the result are undefined. + This intrinsic is only used for compilation and does not generate any instructions, thus it has zero latency. + AVX512F +
immintrin.h
+ Cast +
+ + + + Cast vector of type __m256 to type __m512; the upper 256 bits of the result are undefined. + This intrinsic is only used for compilation and does not generate any instructions, thus it has zero latency. + AVX512F +
immintrin.h
+ Cast +
+ + + + Cast vector of type __m512 to type __m256. + This intrinsic is only used for compilation and does not generate any instructions, thus it has zero latency. + AVX512F +
immintrin.h
+ Cast +
+ + + + Cast vector of type __m128i to type __m512i; the upper 384 bits of the result are undefined. + This intrinsic is only used for compilation and does not generate any instructions, thus it has zero latency. + AVX512F +
immintrin.h
+ Cast +
+ + + + Cast vector of type __m256i to type __m512i; the upper 256 bits of the result are undefined. + This intrinsic is only used for compilation and does not generate any instructions, thus it has zero latency. + AVX512F +
immintrin.h
+ Cast +
+ + + + Cast vector of type __m512i to type __m128i. + This intrinsic is only used for compilation and does not generate any instructions, thus it has zero latency. + AVX512F +
immintrin.h
+ Cast +
+ + + + Cast vector of type __m512i to type __m256i. + This intrinsic is only used for compilation and does not generate any instructions, thus it has zero latency. + AVX512F +
immintrin.h
+ Cast +
+ + + + Cast vector of type __m128d to type __m512d; the upper 384 bits of the result are zeroed. This intrinsic is only used for compilation and does not generate any instructions, thus it has zero latency. + AVX512F +
immintrin.h
+ Cast +
+ + + + Cast vector of type __m128 to type __m512; the upper 384 bits of the result are zeroed. This intrinsic is only used for compilation and does not generate any instructions, thus it has zero latency. + AVX512F +
immintrin.h
+ Cast +
+ + + + Cast vector of type __m128i to type __m512i; the upper 384 bits of the result are zeroed. This intrinsic is only used for compilation and does not generate any instructions, thus it has zero latency. + AVX512F +
immintrin.h
+ Cast +
+ + + + Cast vector of type __m256d to type __m512d; the upper 256 bits of the result are zeroed. This intrinsic is only used for compilation and does not generate any instructions, thus it has zero latency. + AVX512F +
immintrin.h
+ Cast +
+ + + + Cast vector of type __m256 to type __m512; the upper 256 bits of the result are zeroed. This intrinsic is only used for compilation and does not generate any instructions, thus it has zero latency. + AVX512F +
immintrin.h
+ Cast +
+ + + + Cast vector of type __m256i to type __m512i; the upper 256 bits of the result are zeroed. This intrinsic is only used for compilation and does not generate any instructions, thus it has zero latency. + AVX512F +
immintrin.h
+ Cast +
+ + + + Return vector of type __m512 with undefined elements. + AVX512F +
immintrin.h
+ General Support +
+ + + Return vector of type __m512i with undefined elements. + AVX512F +
immintrin.h
+ General Support +
+ + + Return vector of type __m512d with undefined elements. + AVX512F +
immintrin.h
+ General Support +
+ + + Return vector of type __m512 with undefined elements. + AVX512F +
immintrin.h
+ General Support +
+ + + + + Add packed double-precision (64-bit) floating-point elements in "a" and "b", and store the results in "dst". + +FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := a[i+63:i] + b[i+63:i] +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + Add packed double-precision (64-bit) floating-point elements in "a" and "b", and store the results in "dst". + [round_note] + +FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := a[i+63:i] + b[i+63:i] +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Add packed double-precision (64-bit) floating-point elements in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := a[i+63:i] + b[i+63:i] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + + Add packed double-precision (64-bit) floating-point elements in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := a[i+63:i] + b[i+63:i] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + Add packed single-precision (32-bit) floating-point elements in "a" and "b", and store the results in "dst". + +FOR j := 0 to 15 + i := j*32 + dst[i+31:i] := a[i+31:i] + b[i+31:i] +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + Add packed single-precision (32-bit) floating-point elements in "a" and "b", and store the results in "dst". + [round_note] + +FOR j := 0 to 15 + i := j*32 + dst[i+31:i] := a[i+31:i] + b[i+31:i] +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Add packed single-precision (32-bit) floating-point elements in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := a[i+31:i] + b[i+31:i] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + + Add packed single-precision (32-bit) floating-point elements in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := a[i+31:i] + b[i+31:i] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply packed double-precision (64-bit) floating-point elements in "a" and "b", add the intermediate result to packed elements in "c", and store the results in "dst". + +FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := (a[i+63:i] * b[i+63:i]) + c[i+63:i] +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed double-precision (64-bit) floating-point elements in "a" and "b", add the intermediate result to packed elements in "c", and store the results in "dst". + [round_note] + +FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := (a[i+63:i] * b[i+63:i]) + c[i+63:i] +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed double-precision (64-bit) floating-point elements in "a" and "b", add the intermediate result to packed elements in "c", and store the results in "dst" using writemask "k" (elements are copied from "c" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := (a[i+63:i] * b[i+63:i]) + c[i+63:i] + ELSE + dst[i+63:i] := c[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply packed double-precision (64-bit) floating-point elements in "a" and "b", add the intermediate result to packed elements in "c", and store the results in "dst" using writemask "k" (elements are copied from "c" when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := (a[i+63:i] * b[i+63:i]) + c[i+63:i] + ELSE + dst[i+63:i] := c[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed double-precision (64-bit) floating-point elements in "a" and "b", add the intermediate result to packed elements in "c", and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := (a[i+63:i] * b[i+63:i]) + c[i+63:i] + ELSE + dst[i+63:i] := a[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply packed double-precision (64-bit) floating-point elements in "a" and "b", add the intermediate result to packed elements in "c", and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := (a[i+63:i] * b[i+63:i]) + c[i+63:i] + ELSE + dst[i+63:i] := a[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply packed single-precision (32-bit) floating-point elements in "a" and "b", add the intermediate result to packed elements in "c", and store the results in "dst". + +FOR j := 0 to 15 + i := j*32 + dst[i+31:i] := (a[i+31:i] * b[i+31:i]) + c[i+31:i] +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed single-precision (32-bit) floating-point elements in "a" and "b", add the intermediate result to packed elements in "c", and store the results in "dst". + [round_note] + +FOR j := 0 to 15 + i := j*32 + dst[i+31:i] := (a[i+31:i] * b[i+31:i]) + c[i+31:i] +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed single-precision (32-bit) floating-point elements in "a" and "b", add the intermediate result to packed elements in "c", and store the results in "dst" using writemask "k" (elements are copied from "c" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := (a[i+31:i] * b[i+31:i]) + c[i+31:i] + ELSE + dst[i+31:i] := c[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply packed single-precision (32-bit) floating-point elements in "a" and "b", add the intermediate result to packed elements in "c", and store the results in "dst" using writemask "k" (elements are copied from "c" when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := (a[i+31:i] * b[i+31:i]) + c[i+31:i] + ELSE + dst[i+31:i] := c[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed single-precision (32-bit) floating-point elements in "a" and "b", add the intermediate result to packed elements in "c", and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := (a[i+31:i] * b[i+31:i]) + c[i+31:i] + ELSE + dst[i+31:i] := a[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply packed single-precision (32-bit) floating-point elements in "a" and "b", add the intermediate result to packed elements in "c", and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := (a[i+31:i] * b[i+31:i]) + c[i+31:i] + ELSE + dst[i+31:i] := a[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply packed double-precision (64-bit) floating-point elements in "a" and "b", subtract packed elements in "c" from the intermediate result, and store the results in "dst". + +FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := (a[i+63:i] * b[i+63:i]) - c[i+63:i] +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed double-precision (64-bit) floating-point elements in "a" and "b", subtract packed elements in "c" from the intermediate result, and store the results in "dst". + [round_note] + +FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := (a[i+63:i] * b[i+63:i]) - c[i+63:i] +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed double-precision (64-bit) floating-point elements in "a" and "b", subtract packed elements in "c" from the intermediate result, and store the results in "dst" using writemask "k" (elements are copied from "c" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := (a[i+63:i] * b[i+63:i]) - c[i+63:i] + ELSE + dst[i+63:i] := c[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply packed double-precision (64-bit) floating-point elements in "a" and "b", subtract packed elements in "c" from the intermediate result, and store the results in "dst" using writemask "k" (elements are copied from "c" when the corresponding mask bit is not set). [round_note] + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := (a[i+63:i] * b[i+63:i]) - c[i+63:i] + ELSE + dst[i+63:i] := c[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed double-precision (64-bit) floating-point elements in "a" and "b", subtract packed elements in "c" from the intermediate result, and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := (a[i+63:i] * b[i+63:i]) - c[i+63:i] + ELSE + dst[i+63:i] := a[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply packed double-precision (64-bit) floating-point elements in "a" and "b", subtract packed elements in "c" from the intermediate result, and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). [round_note] + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := (a[i+63:i] * b[i+63:i]) - c[i+63:i] + ELSE + dst[i+63:i] := a[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply packed single-precision (32-bit) floating-point elements in "a" and "b", subtract packed elements in "c" from the intermediate result, and store the results in "dst". + +FOR j := 0 to 15 + i := j*32 + dst[i+31:i] := (a[i+31:i] * b[i+31:i]) - c[i+31:i] +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed single-precision (32-bit) floating-point elements in "a" and "b", subtract packed elements in "c" from the intermediate result, and store the results in "dst". + [round_note] + +FOR j := 0 to 15 + i := j*32 + dst[i+31:i] := (a[i+31:i] * b[i+31:i]) - c[i+31:i] +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed single-precision (32-bit) floating-point elements in "a" and "b", subtract packed elements in "c" from the intermediate result, and store the results in "dst" using writemask "k" (elements are copied from "c" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := (a[i+31:i] * b[i+31:i]) - c[i+31:i] + ELSE + dst[i+31:i] := c[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply packed single-precision (32-bit) floating-point elements in "a" and "b", subtract packed elements in "c" from the intermediate result, and store the results in "dst" using writemask "k" (elements are copied from "c" when the corresponding mask bit is not set). [round_note] + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := (a[i+31:i] * b[i+31:i]) - c[i+31:i] + ELSE + dst[i+31:i] := c[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed single-precision (32-bit) floating-point elements in "a" and "b", subtract packed elements in "c" from the intermediate result, and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := (a[i+31:i] * b[i+31:i]) - c[i+31:i] + ELSE + dst[i+31:i] := a[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply packed single-precision (32-bit) floating-point elements in "a" and "b", subtract packed elements in "c" from the intermediate result, and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). [round_note] + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := (a[i+31:i] * b[i+31:i]) - c[i+31:i] + ELSE + dst[i+31:i] := a[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply packed double-precision (64-bit) floating-point elements in "a" and "b", add the negated intermediate result to packed elements in "c", and store the results in "dst". + +FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := -(a[i+63:i] * b[i+63:i]) + c[i+63:i] +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed double-precision (64-bit) floating-point elements in "a" and "b", add the negated intermediate result to packed elements in "c", and store the results in "dst". + [round_note] + +FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := -(a[i+63:i] * b[i+63:i]) + c[i+63:i] +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed double-precision (64-bit) floating-point elements in "a" and "b", add the negated intermediate result to packed elements in "c", and store the results in "dst" using writemask "k" (elements are copied from "c" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := -(a[i+63:i] * b[i+63:i]) + c[i+63:i] + ELSE + dst[i+63:i] := c[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply packed double-precision (64-bit) floating-point elements in "a" and "b", add the negated intermediate result to packed elements in "c", and store the results in "dst" using writemask "k" (elements are copied from "c" when the corresponding mask bit is not set). [round_note] + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := -(a[i+63:i] * b[i+63:i]) + c[i+63:i] + ELSE + dst[i+63:i] := c[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed double-precision (64-bit) floating-point elements in "a" and "b", add the negated intermediate result to packed elements in "c", and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := -(a[i+63:i] * b[i+63:i]) + c[i+63:i] + ELSE + dst[i+63:i] := a[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply packed double-precision (64-bit) floating-point elements in "a" and "b", add the negated intermediate result to packed elements in "c", and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). [round_note] + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := -(a[i+63:i] * b[i+63:i]) + c[i+63:i] + ELSE + dst[i+63:i] := a[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply packed single-precision (32-bit) floating-point elements in "a" and "b", add the negated intermediate result to packed elements in "c", and store the results in "dst". + +FOR j := 0 to 15 + i := j*32 + dst[i+31:i] := -(a[i+31:i] * b[i+31:i]) + c[i+31:i] +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed single-precision (32-bit) floating-point elements in "a" and "b", add the negated intermediate result to packed elements in "c", and store the results in "dst". + [round_note] + +FOR j := 0 to 15 + i := j*32 + dst[i+31:i] := -(a[i+31:i] * b[i+31:i]) + c[i+31:i] +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed single-precision (32-bit) floating-point elements in "a" and "b", add the negated intermediate result to packed elements in "c", and store the results in "dst" using writemask "k" (elements are copied from "c" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := -(a[i+31:i] * b[i+31:i]) + c[i+31:i] + ELSE + dst[i+31:i] := c[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply packed single-precision (32-bit) floating-point elements in "a" and "b", add the negated intermediate result to packed elements in "c", and store the results in "dst" using writemask "k" (elements are copied from "c" when the corresponding mask bit is not set). [round_note] + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := -(a[i+31:i] * b[i+31:i]) + c[i+31:i] + ELSE + dst[i+31:i] := c[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed single-precision (32-bit) floating-point elements in "a" and "b", add the negated intermediate result to packed elements in "c", and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := -(a[i+31:i] * b[i+31:i]) + c[i+31:i] + ELSE + dst[i+31:i] := a[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply packed single-precision (32-bit) floating-point elements in "a" and "b", add the negated intermediate result to packed elements in "c", and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). [round_note] + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := -(a[i+31:i] * b[i+31:i]) + c[i+31:i] + ELSE + dst[i+31:i] := a[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply packed double-precision (64-bit) floating-point elements in "a" and "b", subtract packed elements in "c" from the negated intermediate result, and store the results in "dst". + +FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := -(a[i+63:i] * b[i+63:i]) - c[i+63:i] +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed double-precision (64-bit) floating-point elements in "a" and "b", subtract packed elements in "c" from the negated intermediate result, and store the results in "dst". + [round_note] + +FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := -(a[i+63:i] * b[i+63:i]) - c[i+63:i] +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed double-precision (64-bit) floating-point elements in "a" and "b", subtract packed elements in "c" from the negated intermediate result, and store the results in "dst" using writemask "k" (elements are copied from "c" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := -(a[i+63:i] * b[i+63:i]) - c[i+63:i] + ELSE + dst[i+63:i] := c[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply packed double-precision (64-bit) floating-point elements in "a" and "b", subtract packed elements in "c" from the negated intermediate result, and store the results in "dst" using writemask "k" (elements are copied from "c" when the corresponding mask bit is not set). [round_note] + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := -(a[i+63:i] * b[i+63:i]) - c[i+63:i] + ELSE + dst[i+63:i] := c[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed double-precision (64-bit) floating-point elements in "a" and "b", subtract packed elements in "c" from the negated intermediate result, and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := -(a[i+63:i] * b[i+63:i]) - c[i+63:i] + ELSE + dst[i+63:i] := a[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply packed double-precision (64-bit) floating-point elements in "a" and "b", subtract packed elements in "c" from the negated intermediate result, and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := -(a[i+63:i] * b[i+63:i]) - c[i+63:i] + ELSE + dst[i+63:i] := a[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply packed single-precision (32-bit) floating-point elements in "a" and "b", subtract packed elements in "c" from the negated intermediate result, and store the results in "dst". + +FOR j := 0 to 15 + i := j*32 + dst[i+31:i] := -(a[i+31:i] * b[i+31:i]) - c[i+31:i] +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed single-precision (32-bit) floating-point elements in "a" and "b", subtract packed elements in "c" from the negated intermediate result, and store the results in "dst". + [round_note] + +FOR j := 0 to 15 + i := j*32 + dst[i+31:i] := -(a[i+31:i] * b[i+31:i]) - c[i+31:i] +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed single-precision (32-bit) floating-point elements in "a" and "b", subtract packed elements in "c" from the negated intermediate result, and store the results in "dst" using writemask "k" (elements are copied from "c" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := -(a[i+31:i] * b[i+31:i]) - c[i+31:i] + ELSE + dst[i+31:i] := c[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply packed single-precision (32-bit) floating-point elements in "a" and "b", subtract packed elements in "c" from the negated intermediate result, and store the results in "dst" using writemask "k" (elements are copied from "c" when the corresponding mask bit is not set). [round_note] + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := -(a[i+31:i] * b[i+31:i]) - c[i+31:i] + ELSE + dst[i+31:i] := c[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed single-precision (32-bit) floating-point elements in "a" and "b", subtract packed elements in "c" from the negated intermediate result, and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := -(a[i+31:i] * b[i+31:i]) - c[i+31:i] + ELSE + dst[i+31:i] := a[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply packed single-precision (32-bit) floating-point elements in "a" and "b", subtract packed elements in "c" from the negated intermediate result, and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := -(a[i+31:i] * b[i+31:i]) - c[i+31:i] + ELSE + dst[i+31:i] := a[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed double-precision (64-bit) floating-point elements in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). RM. + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := a[i+63:i] * b[i+63:i] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply packed double-precision (64-bit) floating-point elements in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := a[i+63:i] * b[i+63:i] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + Multiply packed double-precision (64-bit) floating-point elements in "a" and "b", and store the results in "dst". + +FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := a[i+63:i] * b[i+63:i] +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply packed double-precision (64-bit) floating-point elements in "a" and "b", and store the results in "dst". + [round_note] + +FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := a[i+63:i] * b[i+63:i] +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed single-precision (32-bit) floating-point elements in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). RM. + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := a[i+31:i] * b[i+31:i] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply packed single-precision (32-bit) floating-point elements in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := a[i+31:i] * b[i+31:i] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + Multiply packed single-precision (32-bit) floating-point elements in "a" and "b", and store the results in "dst". + +FOR j := 0 to 15 + i := j*32 + dst[i+31:i] := a[i+31:i] * b[i+31:i] +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply packed single-precision (32-bit) floating-point elements in "a" and "b", and store the results in "dst". + [round_note] + +FOR j := 0 to 15 + i := j*32 + dst[i+31:i] := a[i+31:i] * b[i+31:i] +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + Add packed 32-bit integers in "a" and "b", and store the results in "dst". + +FOR j := 0 to 15 + i := j*32 + dst[i+31:i] := a[i+31:i] + b[i+31:i] +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Add packed 32-bit integers in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := a[i+31:i] + b[i+31:i] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply the packed 32-bit integers in "a" and "b", producing intermediate 64-bit integers, and store the low 32 bits of the intermediate integers in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + tmp[63:0] := a[i+31:i] * b[i+31:i] + dst[i+31:i] := tmp[31:0] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + Multiply the packed 32-bit integers in "a" and "b", producing intermediate 64-bit integers, and store the low 32 bits of the intermediate integers in "dst". + +FOR j := 0 to 15 + i := j*32 + tmp[63:0] := a[i+31:i] * b[i+31:i] + dst[i+31:i] := tmp[31:0] +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Subtract packed 32-bit integers in "b" from packed 32-bit integers in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := a[i+31:i] - b[i+31:i] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + Subtract packed 32-bit integers in "b" from packed 32-bit integers in "a", and store the results in "dst". + +FOR j := 0 to 15 + i := j*32 + dst[i+31:i] := a[i+31:i] - b[i+31:i] +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Subtract packed double-precision (64-bit) floating-point elements in "b" from packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := a[i+63:i] - b[i+63:i] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + + Subtract packed double-precision (64-bit) floating-point elements in "b" from packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := a[i+63:i] - b[i+63:i] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + Subtract packed double-precision (64-bit) floating-point elements in "b" from packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst". + +FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := a[i+63:i] - b[i+63:i] +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + Subtract packed double-precision (64-bit) floating-point elements in "b" from packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst". + [round_note] + +FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := a[i+63:i] - b[i+63:i] +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Subtract packed single-precision (32-bit) floating-point elements in "b" from packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := a[i+31:i] - b[i+31:i] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + + Subtract packed single-precision (32-bit) floating-point elements in "b" from packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := a[i+31:i] - b[i+31:i] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + Subtract packed single-precision (32-bit) floating-point elements in "b" from packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst". + +FOR j := 0 to 15 + i := j*32 + dst[i+31:i] := a[i+31:i] - b[i+31:i] +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + Subtract packed single-precision (32-bit) floating-point elements in "b" from packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst". + [round_note] + +FOR j := 0 to 15 + i := j*32 + dst[i+31:i] := a[i+31:i] - b[i+31:i] +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + Reduce the packed 32-bit integers in "a" by addition using mask "k". Returns the sum of all active elements in "a". + +DEFINE REDUCE_ADD(src, len) { + IF len == 2 + RETURN src[31:0] + src[63:32] + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*32 + src[i+31:i] := src[i+31:i] + src[i+32*len+31:i+32*len] + ENDFOR + RETURN REDUCE_ADD(src[32*len-1:0], len) +} +tmp := a +FOR j := 0 to 15 + i := j*32 + IF k[j] + tmp[i+31:i] := a[i+31:i] + ELSE + tmp[i+31:i] := 0 + FI +ENDFOR +dst[31:0] := REDUCE_ADD(tmp, 16) + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + Reduce the packed 64-bit integers in "a" by addition using mask "k". Returns the sum of all active elements in "a". + +DEFINE REDUCE_ADD(src, len) { + IF len == 2 + RETURN src[63:0] + src[127:64] + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*64 + src[i+63:i] := src[i+63:i] + src[i+64*len+63:i+64*len] + ENDFOR + RETURN REDUCE_ADD(src[64*len-1:0], len) +} +tmp := a +FOR j := 0 to 8 + i := j*64 + IF k[j] + tmp[i+63:i] := a[i+63:i] + ELSE + tmp[i+63:i] := 0 + FI +ENDFOR +dst[63:0] := REDUCE_ADD(tmp, 8) + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + Reduce the packed double-precision (64-bit) floating-point elements in "a" by addition using mask "k". Returns the sum of all active elements in "a". + +DEFINE REDUCE_ADD(src, len) { + IF len == 2 + RETURN src[63:0] + src[127:64] + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*64 + src[i+63:i] := src[i+63:i] + src[i+64*len+63:i+64*len] + ENDFOR + RETURN REDUCE_ADD(src[64*len-1:0], len) +} +tmp := a +FOR j := 0 to 8 + i := j*64 + IF k[j] + tmp[i+63:i] := a[i+63:i] + ELSE + tmp[i+63:i] := 0 + FI +ENDFOR +dst[63:0] := REDUCE_ADD(tmp, 8) + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + Reduce the packed single-precision (32-bit) floating-point elements in "a" by addition using mask "k". Returns the sum of all active elements in "a". + +DEFINE REDUCE_ADD(src, len) { + IF len == 2 + RETURN src[31:0] + src[63:32] + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*32 + src[i+31:i] := src[i+31:i] + src[i+32*len+31:i+32*len] + ENDFOR + RETURN REDUCE_ADD(src[32*len-1:0], len) +} +tmp := a +FOR j := 0 to 16 + i := j*32 + IF k[j] + tmp[i+31:i] := a[i+31:i] + ELSE + tmp[i+31:i] := 0 + FI +ENDFOR +dst[31:0] := REDUCE_ADD(tmp, 16) + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + Reduce the packed 32-bit integers in "a" by multiplication using mask "k". Returns the product of all active elements in "a". + +DEFINE REDUCE_MUL(src, len) { + IF len == 2 + RETURN src[31:0] * src[63:32] + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*32 + src[i+31:i] := src[i+31:i] * src[i+32*len+31:i+32*len] + ENDFOR + RETURN REDUCE_MUL(src[32*len-1:0], len) +} +tmp := a +FOR j := 0 to 16 + i := j*32 + IF k[j] + tmp[i+31:i] := a[i+31:i] + ELSE + tmp[i+31:i] := 1 + FI +ENDFOR +dst[31:0] := REDUCE_MUL(tmp, 16) + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + Reduce the packed 64-bit integers in "a" by multiplication using mask "k". Returns the product of all active elements in "a". + +DEFINE REDUCE_MUL(src, len) { + IF len == 2 + RETURN src[63:0] * src[127:64] + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*64 + src[i+63:i] := src[i+63:i] * src[i+64*len+63:i+64*len] + ENDFOR + RETURN REDUCE_MUL(src[64*len-1:0], len) +} +tmp := a +FOR j := 0 to 8 + i := j*64 + IF k[j] + tmp[i+63:i] := a[i+63:i] + ELSE + tmp[i+63:i] := 1 + FI +ENDFOR +dst[63:0] := REDUCE_MUL(tmp, 8) + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + Reduce the packed double-precision (64-bit) floating-point elements in "a" by multiplication using mask "k". Returns the product of all active elements in "a". + +DEFINE REDUCE_MUL(src, len) { + IF len == 2 + RETURN src[63:0] * src[127:64] + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*64 + src[i+63:i] := src[i+63:i] * src[i+64*len+63:i+64*len] + ENDFOR + RETURN REDUCE_MUL(src[64*len-1:0], len) +} +tmp := a +FOR j := 0 to 8 + i := j*64 + IF k[j] + tmp[i+63:i] := a[i+63:i] + ELSE + tmp[i+63:i] := 1.0 + FI +ENDFOR +dst[63:0] := REDUCE_MUL(tmp, 8) + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + Reduce the packed single-precision (32-bit) floating-point elements in "a" by multiplication using mask "k". Returns the product of all active elements in "a". + +DEFINE REDUCE_MUL(src, len) { + IF len == 2 + RETURN src[31:0] * src[63:32] + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*32 + src[i+31:i] := src[i+31:i] * src[i+32*len+31:i+32*len] + ENDFOR + RETURN REDUCE_MUL(src[32*len-1:0], len) +} +tmp := a +FOR j := 0 to 16 + i := j*32 + IF k[j] + tmp[i+31:i] := a[i+31:i] + ELSE + tmp[i+31:i] := FP32(1.0) + FI +ENDFOR +dst[31:0] := REDUCE_MUL(tmp, 16) + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + Reduce the packed 32-bit integers in "a" by addition. Returns the sum of all elements in "a". + +DEFINE REDUCE_ADD(src, len) { + IF len == 2 + RETURN src[31:0] + src[63:32] + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*32 + src[i+31:i] := src[i+31:i] + src[i+32*len+31:i+32*len] + ENDFOR + RETURN REDUCE_ADD(src[32*len-1:0], len) +} +dst[31:0] := REDUCE_ADD(a, 16) + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + Reduce the packed 64-bit integers in "a" by addition. Returns the sum of all elements in "a". + +DEFINE REDUCE_ADD(src, len) { + IF len == 2 + RETURN src[63:0] + src[127:64] + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*64 + src[i+63:i] := src[i+63:i] + src[i+64*len+63:i+64*len] + ENDFOR + RETURN REDUCE_ADD(src[64*len-1:0], len) +} +dst[63:0] := REDUCE_ADD(a, 8) + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + Reduce the packed double-precision (64-bit) floating-point elements in "a" by addition. Returns the sum of all elements in "a". + +DEFINE REDUCE_ADD(src, len) { + IF len == 2 + RETURN src[63:0] + src[127:64] + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*64 + src[i+63:i] := src[i+63:i] + src[i+64*len+63:i+64*len] + ENDFOR + RETURN REDUCE_ADD(src[64*len-1:0], len) +} +dst[63:0] := REDUCE_ADD(a, 8) + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + Reduce the packed single-precision (32-bit) floating-point elements in "a" by addition. Returns the sum of all elements in "a". + +DEFINE REDUCE_ADD(src, len) { + IF len == 2 + RETURN src[31:0] + src[63:32] + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*32 + src[i+31:i] := src[i+31:i] + src[i+32*len+31:i+32*len] + ENDFOR + RETURN REDUCE_ADD(src[32*len-1:0], len) +} +dst[31:0] := REDUCE_ADD(a, 16) + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + Reduce the packed 32-bit integers in "a" by multiplication. Returns the product of all elements in "a". + +DEFINE REDUCE_MUL(src, len) { + IF len == 2 + RETURN src[31:0] * src[63:32] + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*32 + src[i+31:i] := src[i+31:i] * src[i+32*len+31:i+32*len] + ENDFOR + RETURN REDUCE_MUL(src[32*len-1:0], len) +} +dst[31:0] := REDUCE_MUL(a, 16) + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + Reduce the packed 64-bit integers in "a" by multiplication. Returns the product of all elements in "a". + +DEFINE REDUCE_MUL(src, len) { + IF len == 2 + RETURN src[63:0] * src[127:64] + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*64 + src[i+63:i] := src[i+63:i] * src[i+64*len+63:i+64*len] + ENDFOR + RETURN REDUCE_MUL(src[64*len-1:0], len) +} +dst[63:0] := REDUCE_MUL(a, 8) + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + Reduce the packed double-precision (64-bit) floating-point elements in "a" by multiplication. Returns the product of all elements in "a". + +DEFINE REDUCE_MUL(src, len) { + IF len == 2 + RETURN src[63:0] * src[127:64] + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*64 + src[i+63:i] := src[i+63:i] * src[i+64*len+63:i+64*len] + ENDFOR + RETURN REDUCE_MUL(src[64*len-1:0], len) +} +dst[63:0] := REDUCE_MUL(a, 8) + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + Reduce the packed single-precision (32-bit) floating-point elements in "a" by multiplication. Returns the product of all elements in "a". + +DEFINE REDUCE_MUL(src, len) { + IF len == 2 + RETURN src[31:0] * src[63:32] + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*32 + src[i+31:i] := src[i+31:i] * src[i+32*len+31:i+32*len] + ENDFOR + RETURN REDUCE_MUL(src[32*len-1:0], len) +} +dst[31:0] := REDUCE_MUL(a, 16) + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + Finds the absolute value of each packed single-precision (32-bit) floating-point element in "v2", storing the results in "dst". + +FOR j := 0 to 15 + i := j*32 + dst[i+31:i] := ABS(v2[i+31:i]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + Finds the absolute value of each packed single-precision (32-bit) floating-point element in "v2", storing the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := ABS(v2[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + Finds the absolute value of each packed double-precision (64-bit) floating-point element in "v2", storing the results in "dst". + +FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := ABS(v2[i+63:i]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + Finds the absolute value of each packed double-precision (64-bit) floating-point element in "v2", storing the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := ABS(v2[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + Concatenate "a" and "b" into a 128-byte immediate result, shift the result right by "imm8" 32-bit elements, and store the low 64 bytes (16 elements) in "dst". + +temp[1023:512] := a[511:0] +temp[511:0] := b[511:0] +temp[1023:0] := temp[1023:0] >> (32*imm8[3:0]) +dst[511:0] := temp[511:0] +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + + + Concatenate "a" and "b" into a 128-byte immediate result, shift the result right by "imm8" 32-bit elements, and store the low 64 bytes (16 elements) in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +temp[1023:512] := a[511:0] +temp[511:0] := b[511:0] +temp[1023:0] := temp[1023:0] >> (32*imm8[3:0]) +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := temp[i+31:i] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + Convert the exponent of each packed double-precision (64-bit) floating-point element in "a" to a double-precision (64-bit) floating-point number representing the integer exponent, and store the results in "dst". This intrinsic essentially calculates "floor(log2(x))" for each element. + FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := ConvertExpFP64(a[i+63:i]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + Convert the exponent of each packed double-precision (64-bit) floating-point element in "a" to a double-precision (64-bit) floating-point number representing the integer exponent, and store the results in "dst". This intrinsic essentially calculates "floor(log2(x))" for each element. + [sae_note] + FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := ConvertExpFP64(a[i+63:i]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + Convert the exponent of each packed double-precision (64-bit) floating-point element in "a" to a double-precision (64-bit) floating-point number representing the integer exponent, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). This intrinsic essentially calculates "floor(log2(x))" for each element. + FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := ConvertExpFP64(a[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + + Convert the exponent of each packed double-precision (64-bit) floating-point element in "a" to a double-precision (64-bit) floating-point number representing the integer exponent, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). This intrinsic essentially calculates "floor(log2(x))" for each element. + [sae_note] + FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := ConvertExpFP64(a[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + Convert the exponent of each packed single-precision (32-bit) floating-point element in "a" to a single-precision (32-bit) floating-point number representing the integer exponent, and store the results in "dst". This intrinsic essentially calculates "floor(log2(x))" for each element. + FOR j := 0 to 15 + i := j*32 + dst[i+31:i] := ConvertExpFP32(a[i+31:i]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + Convert the exponent of each packed single-precision (32-bit) floating-point element in "a" to a single-precision (32-bit) floating-point number representing the integer exponent, and store the results in "dst". This intrinsic essentially calculates "floor(log2(x))" for each element. + [sae_note] + FOR j := 0 to 15 + i := j*32 + dst[i+31:i] := ConvertExpFP32(a[i+31:i]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + Convert the exponent of each packed single-precision (32-bit) floating-point element in "a" to a single-precision (32-bit) floating-point number representing the integer exponent, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). This intrinsic essentially calculates "floor(log2(x))" for each element. + FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := ConvertExpFP32(a[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + + Convert the exponent of each packed single-precision (32-bit) floating-point element in "a" to a single-precision (32-bit) floating-point number representing the integer exponent, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). This intrinsic essentially calculates "floor(log2(x))" for each element. + [sae_note] + FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := ConvertExpFP32(a[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + Normalize the mantissas of packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst". This intrinsic essentially calculates "±(2^k)*|x.significand|", where "k" depends on the interval range defined by "interv" and the sign depends on "sc" and the source sign. + [getmant_note] + FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := GetNormalizedMantissa(a[i+63:i], sc, interv) +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + + Normalize the mantissas of packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst". This intrinsic essentially calculates "±(2^k)*|x.significand|", where "k" depends on the interval range defined by "interv" and the sign depends on "sc" and the source sign. + [getmant_note][sae_note] + FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := GetNormalizedMantissa(a[i+63:i], sc, interv) +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + + + Normalize the mantissas of packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). This intrinsic essentially calculates "±(2^k)*|x.significand|", where "k" depends on the interval range defined by "interv" and the sign depends on "sc" and the source sign. + [getmant_note] + FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := GetNormalizedMantissa(a[i+63:i], sc, interv) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + + + + Normalize the mantissas of packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). This intrinsic essentially calculates "±(2^k)*|x.significand|", where "k" depends on the interval range defined by "interv" and the sign depends on "sc" and the source sign. + [getmant_note][sae_note] + FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := GetNormalizedMantissa(a[i+63:i], sc, interv) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + Normalize the mantissas of packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst". This intrinsic essentially calculates "±(2^k)*|x.significand|", where "k" depends on the interval range defined by "interv" and the sign depends on "sc" and the source sign. + [getmant_note] + FOR j := 0 to 15 + i := j*32 + dst[i+31:i] := GetNormalizedMantissa(a[i+31:i], sc, interv) +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + + Normalize the mantissas of packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst". This intrinsic essentially calculates "±(2^k)*|x.significand|", where "k" depends on the interval range defined by "interv" and the sign depends on "sc" and the source sign. + [getmant_note][sae_note] + FOR j := 0 to 15 + i := j*32 + dst[i+31:i] := GetNormalizedMantissa(a[i+31:i], sc, interv) +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + + + Normalize the mantissas of packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). This intrinsic essentially calculates "±(2^k)*|x.significand|", where "k" depends on the interval range defined by "interv" and the sign depends on "sc" and the source sign. + [getmant_note] + FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := GetNormalizedMantissa(a[i+31:i], sc, interv) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + + + + Normalize the mantissas of packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). This intrinsic essentially calculates "±(2^k)*|x.significand|", where "k" depends on the interval range defined by "interv" and the sign depends on "sc" and the source sign. + [getmant_note][sae_note] + FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := GetNormalizedMantissa(a[i+31:i], sc, interv) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Miscellaneous +
+ + + + + + Blend packed double-precision (64-bit) floating-point elements from "a" and "b" using control mask "k", and store the results in "dst". + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := b[i+63:i] + ELSE + dst[i+63:i] := a[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + Blend packed single-precision (32-bit) floating-point elements from "a" and "b" using control mask "k", and store the results in "dst". + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := b[i+31:i] + ELSE + dst[i+31:i] := a[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + Blend packed 32-bit integers from "a" and "b" using control mask "k", and store the results in "dst". + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := b[i+31:i] + ELSE + dst[i+31:i] := a[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + Blend packed 64-bit integers from "a" and "b" using control mask "k", and store the results in "dst". + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := b[i+63:i] + ELSE + dst[i+63:i] := a[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + + Shuffle 32-bit integers in "a" across lanes using the corresponding index in "idx", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). Note that this intrinsic shuffles across 128-bit lanes, unlike past intrinsics that use the "permutevar" name. This intrinsic is identical to "_mm512_mask_permutexvar_epi32", and it is recommended that you use that intrinsic name. + +FOR j := 0 to 15 + i := j*32 + id := idx[i+3:i]*32 + IF k[j] + dst[i+31:i] := a[id+31:id] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + Shuffle 32-bit integers in "a" across lanes using the corresponding index in "idx", and store the results in "dst". Note that this intrinsic shuffles across 128-bit lanes, unlike past intrinsics that use the "permutevar" name. This intrinsic is identical to "_mm512_permutexvar_epi32", and it is recommended that you use that intrinsic name. + +FOR j := 0 to 15 + i := j*32 + id := idx[i+3:i]*32 + dst[i+31:i] := a[id+31:id] +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + + Shuffle 32-bit integers in "a" within 128-bit lanes using the control in "imm8", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +DEFINE SELECT4(src, control) { + CASE(control[1:0]) OF + 0: tmp[31:0] := src[31:0] + 1: tmp[31:0] := src[63:32] + 2: tmp[31:0] := src[95:64] + 3: tmp[31:0] := src[127:96] + ESAC + RETURN tmp[31:0] +} +tmp_dst[31:0] := SELECT4(a[127:0], imm8[1:0]) +tmp_dst[63:32] := SELECT4(a[127:0], imm8[3:2]) +tmp_dst[95:64] := SELECT4(a[127:0], imm8[5:4]) +tmp_dst[127:96] := SELECT4(a[127:0], imm8[7:6]) +tmp_dst[159:128] := SELECT4(a[255:128], imm8[1:0]) +tmp_dst[191:160] := SELECT4(a[255:128], imm8[3:2]) +tmp_dst[223:192] := SELECT4(a[255:128], imm8[5:4]) +tmp_dst[255:224] := SELECT4(a[255:128], imm8[7:6]) +tmp_dst[287:256] := SELECT4(a[383:256], imm8[1:0]) +tmp_dst[319:288] := SELECT4(a[383:256], imm8[3:2]) +tmp_dst[351:320] := SELECT4(a[383:256], imm8[5:4]) +tmp_dst[383:352] := SELECT4(a[383:256], imm8[7:6]) +tmp_dst[415:384] := SELECT4(a[511:384], imm8[1:0]) +tmp_dst[447:416] := SELECT4(a[511:384], imm8[3:2]) +tmp_dst[479:448] := SELECT4(a[511:384], imm8[5:4]) +tmp_dst[511:480] := SELECT4(a[511:384], imm8[7:6]) +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := tmp_dst[i+31:i] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + Shuffle 32-bit integers in "a" within 128-bit lanes using the control in "imm8", and store the results in "dst". + +DEFINE SELECT4(src, control) { + CASE(control[1:0]) OF + 0: tmp[31:0] := src[31:0] + 1: tmp[31:0] := src[63:32] + 2: tmp[31:0] := src[95:64] + 3: tmp[31:0] := src[127:96] + ESAC + RETURN tmp[31:0] +} +dst[31:0] := SELECT4(a[127:0], imm8[1:0]) +dst[63:32] := SELECT4(a[127:0], imm8[3:2]) +dst[95:64] := SELECT4(a[127:0], imm8[5:4]) +dst[127:96] := SELECT4(a[127:0], imm8[7:6]) +dst[159:128] := SELECT4(a[255:128], imm8[1:0]) +dst[191:160] := SELECT4(a[255:128], imm8[3:2]) +dst[223:192] := SELECT4(a[255:128], imm8[5:4]) +dst[255:224] := SELECT4(a[255:128], imm8[7:6]) +dst[287:256] := SELECT4(a[383:256], imm8[1:0]) +dst[319:288] := SELECT4(a[383:256], imm8[3:2]) +dst[351:320] := SELECT4(a[383:256], imm8[5:4]) +dst[383:352] := SELECT4(a[383:256], imm8[7:6]) +dst[415:384] := SELECT4(a[511:384], imm8[1:0]) +dst[447:416] := SELECT4(a[511:384], imm8[3:2]) +dst[479:448] := SELECT4(a[511:384], imm8[5:4]) +dst[511:480] := SELECT4(a[511:384], imm8[7:6]) +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Swizzle +
+ + + + + + Compare packed double-precision (64-bit) floating-point elements in "a" and "b" based on the comparison operand specified by "imm8", and store the results in mask vector "k". + CASE (imm8[4:0]) OF +0: OP := _CMP_EQ_OQ +1: OP := _CMP_LT_OS +2: OP := _CMP_LE_OS +3: OP := _CMP_UNORD_Q +4: OP := _CMP_NEQ_UQ +5: OP := _CMP_NLT_US +6: OP := _CMP_NLE_US +7: OP := _CMP_ORD_Q +8: OP := _CMP_EQ_UQ +9: OP := _CMP_NGE_US +10: OP := _CMP_NGT_US +11: OP := _CMP_FALSE_OQ +12: OP := _CMP_NEQ_OQ +13: OP := _CMP_GE_OS +14: OP := _CMP_GT_OS +15: OP := _CMP_TRUE_UQ +16: OP := _CMP_EQ_OS +17: OP := _CMP_LT_OQ +18: OP := _CMP_LE_OQ +19: OP := _CMP_UNORD_S +20: OP := _CMP_NEQ_US +21: OP := _CMP_NLT_UQ +22: OP := _CMP_NLE_UQ +23: OP := _CMP_ORD_S +24: OP := _CMP_EQ_US +25: OP := _CMP_NGE_UQ +26: OP := _CMP_NGT_UQ +27: OP := _CMP_FALSE_OS +28: OP := _CMP_NEQ_OS +29: OP := _CMP_GE_OQ +30: OP := _CMP_GT_OQ +31: OP := _CMP_TRUE_US +ESAC +FOR j := 0 to 7 + i := j*64 + k[j] := (a[i+63:i] OP b[i+63:i]) ? 1 : 0 +ENDFOR +k[MAX:8] := 0 + + + AVX512F +
immintrin.h
+ Compare +
+ + + + + + + Compare packed double-precision (64-bit) floating-point elements in "a" and "b" based on the comparison operand specified by "imm8", and store the results in mask vector "k". [sae_note] + CASE (imm8[4:0]) OF +0: OP := _CMP_EQ_OQ +1: OP := _CMP_LT_OS +2: OP := _CMP_LE_OS +3: OP := _CMP_UNORD_Q +4: OP := _CMP_NEQ_UQ +5: OP := _CMP_NLT_US +6: OP := _CMP_NLE_US +7: OP := _CMP_ORD_Q +8: OP := _CMP_EQ_UQ +9: OP := _CMP_NGE_US +10: OP := _CMP_NGT_US +11: OP := _CMP_FALSE_OQ +12: OP := _CMP_NEQ_OQ +13: OP := _CMP_GE_OS +14: OP := _CMP_GT_OS +15: OP := _CMP_TRUE_UQ +16: OP := _CMP_EQ_OS +17: OP := _CMP_LT_OQ +18: OP := _CMP_LE_OQ +19: OP := _CMP_UNORD_S +20: OP := _CMP_NEQ_US +21: OP := _CMP_NLT_UQ +22: OP := _CMP_NLE_UQ +23: OP := _CMP_ORD_S +24: OP := _CMP_EQ_US +25: OP := _CMP_NGE_UQ +26: OP := _CMP_NGT_UQ +27: OP := _CMP_FALSE_OS +28: OP := _CMP_NEQ_OS +29: OP := _CMP_GE_OQ +30: OP := _CMP_GT_OQ +31: OP := _CMP_TRUE_US +ESAC +FOR j := 0 to 7 + i := j*64 + k[j] := (a[i+63:i] OP b[i+63:i]) ? 1 : 0 +ENDFOR +k[MAX:8] := 0 + + + AVX512F +
immintrin.h
+ Compare +
+ + + + + Compare packed double-precision (64-bit) floating-point elements in "a" and "b" for equality, and store the results in mask vector "k". + +FOR j := 0 to 7 + i := j*64 + k[j] := (a[i+63:i] == b[i+63:i]) ? 1 : 0 +ENDFOR +k[MAX:8] := 0 + + + AVX512F +
immintrin.h
+ Compare +
+ + + + + Compare packed double-precision (64-bit) floating-point elements in "a" and "b" for less-than-or-equal, and store the results in mask vector "k". + +FOR j := 0 to 7 + i := j*64 + k[j] := (a[i+63:i] <= b[i+63:i]) ? 1 : 0 +ENDFOR +k[MAX:8] := 0 + + + AVX512F +
immintrin.h
+ Compare +
+ + + + + Compare packed double-precision (64-bit) floating-point elements in "a" and "b" for less-than, and store the results in mask vector "k". + +FOR j := 0 to 7 + i := j*64 + k[j] := (a[i+63:i] < b[i+63:i]) ? 1 : 0 +ENDFOR +k[MAX:8] := 0 + + + AVX512F +
immintrin.h
+ Compare +
+ + + + + Compare packed double-precision (64-bit) floating-point elements in "a" and "b" for not-equal, and store the results in mask vector "k". + +FOR j := 0 to 7 + i := j*64 + k[j] := (a[i+63:i] != b[i+63:i]) ? 1 : 0 +ENDFOR +k[MAX:8] := 0 + + + AVX512F +
immintrin.h
+ Compare +
+ + + + + Compare packed double-precision (64-bit) floating-point elements in "a" and "b" for not-less-than-or-equal, and store the results in mask vector "k". + +FOR j := 0 to 7 + i := j*64 + k[j] := (!(a[i+63:i] <= b[i+63:i])) ? 1 : 0 +ENDFOR +k[MAX:8] := 0 + + + AVX512F +
immintrin.h
+ Compare +
+ + + + + Compare packed double-precision (64-bit) floating-point elements in "a" and "b" for not-less-than, and store the results in mask vector "k". + +FOR j := 0 to 7 + i := j*64 + k[j] := (!(a[i+63:i] < b[i+63:i])) ? 1 : 0 +ENDFOR +k[MAX:8] := 0 + + + AVX512F +
immintrin.h
+ Compare +
+ + + + + Compare packed double-precision (64-bit) floating-point elements in "a" and "b" to see if neither is NaN, and store the results in mask vector "k". + FOR j := 0 to 7 + i := j*64 + k[j] := (a[i+63:i] != NaN AND b[i+63:i] != NaN) ? 1 : 0 +ENDFOR +k[MAX:8] := 0 + + + AVX512F +
immintrin.h
+ Compare +
+ + + + + Compare packed double-precision (64-bit) floating-point elements in "a" and "b" to see if either is NaN, and store the results in mask vector "k". + FOR j := 0 to 7 + i := j*64 + k[j] := (a[i+63:i] == NaN OR b[i+63:i] == NaN) ? 1 : 0 +ENDFOR +k[MAX:8] := 0 + + + AVX512F +
immintrin.h
+ Compare +
+ + + + + + + Compare packed double-precision (64-bit) floating-point elements in "a" and "b" based on the comparison operand specified by "imm8", and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + CASE (imm8[4:0]) OF +0: OP := _CMP_EQ_OQ +1: OP := _CMP_LT_OS +2: OP := _CMP_LE_OS +3: OP := _CMP_UNORD_Q +4: OP := _CMP_NEQ_UQ +5: OP := _CMP_NLT_US +6: OP := _CMP_NLE_US +7: OP := _CMP_ORD_Q +8: OP := _CMP_EQ_UQ +9: OP := _CMP_NGE_US +10: OP := _CMP_NGT_US +11: OP := _CMP_FALSE_OQ +12: OP := _CMP_NEQ_OQ +13: OP := _CMP_GE_OS +14: OP := _CMP_GT_OS +15: OP := _CMP_TRUE_UQ +16: OP := _CMP_EQ_OS +17: OP := _CMP_LT_OQ +18: OP := _CMP_LE_OQ +19: OP := _CMP_UNORD_S +20: OP := _CMP_NEQ_US +21: OP := _CMP_NLT_UQ +22: OP := _CMP_NLE_UQ +23: OP := _CMP_ORD_S +24: OP := _CMP_EQ_US +25: OP := _CMP_NGE_UQ +26: OP := _CMP_NGT_UQ +27: OP := _CMP_FALSE_OS +28: OP := _CMP_NEQ_OS +29: OP := _CMP_GE_OQ +30: OP := _CMP_GT_OQ +31: OP := _CMP_TRUE_US +ESAC +FOR j := 0 to 7 + i := j*64 + IF k1[j] + k[j] := ( a[i+63:i] OP b[i+63:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:8] := 0 + + + AVX512F +
immintrin.h
+ Compare +
+ + + + + + + + Compare packed double-precision (64-bit) floating-point elements in "a" and "b" based on the comparison operand specified by "imm8", and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). [sae_note] + CASE (imm8[4:0]) OF +0: OP := _CMP_EQ_OQ +1: OP := _CMP_LT_OS +2: OP := _CMP_LE_OS +3: OP := _CMP_UNORD_Q +4: OP := _CMP_NEQ_UQ +5: OP := _CMP_NLT_US +6: OP := _CMP_NLE_US +7: OP := _CMP_ORD_Q +8: OP := _CMP_EQ_UQ +9: OP := _CMP_NGE_US +10: OP := _CMP_NGT_US +11: OP := _CMP_FALSE_OQ +12: OP := _CMP_NEQ_OQ +13: OP := _CMP_GE_OS +14: OP := _CMP_GT_OS +15: OP := _CMP_TRUE_UQ +16: OP := _CMP_EQ_OS +17: OP := _CMP_LT_OQ +18: OP := _CMP_LE_OQ +19: OP := _CMP_UNORD_S +20: OP := _CMP_NEQ_US +21: OP := _CMP_NLT_UQ +22: OP := _CMP_NLE_UQ +23: OP := _CMP_ORD_S +24: OP := _CMP_EQ_US +25: OP := _CMP_NGE_UQ +26: OP := _CMP_NGT_UQ +27: OP := _CMP_FALSE_OS +28: OP := _CMP_NEQ_OS +29: OP := _CMP_GE_OQ +30: OP := _CMP_GT_OQ +31: OP := _CMP_TRUE_US +ESAC +FOR j := 0 to 7 + i := j*64 + IF k1[j] + k[j] := ( a[i+63:i] OP b[i+63:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:8] := 0 + + + AVX512F +
immintrin.h
+ Compare +
+ + + + + + Compare packed double-precision (64-bit) floating-point elements in "a" and "b" for equality, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k1[j] + k[j] := (a[i+63:i] == b[i+63:i]) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:8] := 0 + + + AVX512F +
immintrin.h
+ Compare +
+ + + + + + Compare packed double-precision (64-bit) floating-point elements in "a" and "b" for less-than-or-equal, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k1[j] + k[j] := (a[i+63:i] <= b[i+63:i]) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:8] := 0 + + + AVX512F +
immintrin.h
+ Compare +
+ + + + + + Compare packed double-precision (64-bit) floating-point elements in "a" and "b" for less-than, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k1[j] + k[j] := (a[i+63:i] < b[i+63:i]) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:8] := 0 + + + AVX512F +
immintrin.h
+ Compare +
+ + + + + + Compare packed double-precision (64-bit) floating-point elements in "a" and "b" for not-equal, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k1[j] + k[j] := (a[i+63:i] != b[i+63:i]) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:8] := 0 + + + AVX512F +
immintrin.h
+ Compare +
+ + + + + + Compare packed double-precision (64-bit) floating-point elements in "a" and "b" for not-less-than-or-equal, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k1[j] + k[j] := (!(a[i+63:i] <= b[i+63:i])) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:8] := 0 + + + AVX512F +
immintrin.h
+ Compare +
+ + + + + + Compare packed double-precision (64-bit) floating-point elements in "a" and "b" for not-less-than, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k1[j] + k[j] := (!(a[i+63:i] < b[i+63:i])) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:8] := 0 + + + AVX512F +
immintrin.h
+ Compare +
+ + + + + + Compare packed double-precision (64-bit) floating-point elements in "a" and "b" to see if neither is NaN, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + FOR j := 0 to 7 + i := j*64 + IF k1[j] + k[j] := (a[i+63:i] != NaN AND b[i+63:i] != NaN) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:8] := 0 + + + AVX512F +
immintrin.h
+ Compare +
+ + + + + + Compare packed double-precision (64-bit) floating-point elements in "a" and "b" to see if either is NaN, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + FOR j := 0 to 7 + i := j*64 + IF k1[j] + k[j] := (a[i+63:i] == NaN OR b[i+63:i] == NaN) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:8] := 0 + + + AVX512F +
immintrin.h
+ Compare +
+ + + + + + Compare packed single-precision (32-bit) floating-point elements in "a" and "b" based on the comparison operand specified by "imm8", and store the results in mask vector "k". + CASE (imm8[4:0]) OF +0: OP := _CMP_EQ_OQ +1: OP := _CMP_LT_OS +2: OP := _CMP_LE_OS +3: OP := _CMP_UNORD_Q +4: OP := _CMP_NEQ_UQ +5: OP := _CMP_NLT_US +6: OP := _CMP_NLE_US +7: OP := _CMP_ORD_Q +8: OP := _CMP_EQ_UQ +9: OP := _CMP_NGE_US +10: OP := _CMP_NGT_US +11: OP := _CMP_FALSE_OQ +12: OP := _CMP_NEQ_OQ +13: OP := _CMP_GE_OS +14: OP := _CMP_GT_OS +15: OP := _CMP_TRUE_UQ +16: OP := _CMP_EQ_OS +17: OP := _CMP_LT_OQ +18: OP := _CMP_LE_OQ +19: OP := _CMP_UNORD_S +20: OP := _CMP_NEQ_US +21: OP := _CMP_NLT_UQ +22: OP := _CMP_NLE_UQ +23: OP := _CMP_ORD_S +24: OP := _CMP_EQ_US +25: OP := _CMP_NGE_UQ +26: OP := _CMP_NGT_UQ +27: OP := _CMP_FALSE_OS +28: OP := _CMP_NEQ_OS +29: OP := _CMP_GE_OQ +30: OP := _CMP_GT_OQ +31: OP := _CMP_TRUE_US +ESAC +FOR j := 0 to 15 + i := j*32 + k[j] := (a[i+31:i] OP b[i+31:i]) ? 1 : 0 +ENDFOR +k[MAX:16] := 0 + + + AVX512F +
immintrin.h
+ Compare +
+ + + + + + + Compare packed single-precision (32-bit) floating-point elements in "a" and "b" based on the comparison operand specified by "imm8", and store the results in mask vector "k". [sae_note] + CASE (imm8[4:0]) OF +0: OP := _CMP_EQ_OQ +1: OP := _CMP_LT_OS +2: OP := _CMP_LE_OS +3: OP := _CMP_UNORD_Q +4: OP := _CMP_NEQ_UQ +5: OP := _CMP_NLT_US +6: OP := _CMP_NLE_US +7: OP := _CMP_ORD_Q +8: OP := _CMP_EQ_UQ +9: OP := _CMP_NGE_US +10: OP := _CMP_NGT_US +11: OP := _CMP_FALSE_OQ +12: OP := _CMP_NEQ_OQ +13: OP := _CMP_GE_OS +14: OP := _CMP_GT_OS +15: OP := _CMP_TRUE_UQ +16: OP := _CMP_EQ_OS +17: OP := _CMP_LT_OQ +18: OP := _CMP_LE_OQ +19: OP := _CMP_UNORD_S +20: OP := _CMP_NEQ_US +21: OP := _CMP_NLT_UQ +22: OP := _CMP_NLE_UQ +23: OP := _CMP_ORD_S +24: OP := _CMP_EQ_US +25: OP := _CMP_NGE_UQ +26: OP := _CMP_NGT_UQ +27: OP := _CMP_FALSE_OS +28: OP := _CMP_NEQ_OS +29: OP := _CMP_GE_OQ +30: OP := _CMP_GT_OQ +31: OP := _CMP_TRUE_US +ESAC +FOR j := 0 to 15 + i := j*32 + k[j] := (a[i+31:i] OP b[i+31:i]) ? 1 : 0 +ENDFOR +k[MAX:16] := 0 + + + AVX512F +
immintrin.h
+ Compare +
+ + + + + Compare packed single-precision (32-bit) floating-point elements in "a" and "b" for equality, and store the results in mask vector "k". + +FOR j := 0 to 15 + i := j*32 + k[j] := (a[i+31:i] == b[i+31:i]) ? 1 : 0 +ENDFOR +k[MAX:16] := 0 + + + AVX512F +
immintrin.h
+ Compare +
+ + + + + Compare packed single-precision (32-bit) floating-point elements in "a" and "b" for less-than-or-equal, and store the results in mask vector "k". + +FOR j := 0 to 15 + i := j*32 + k[j] := (a[i+31:i] <= b[i+31:i]) ? 1 : 0 +ENDFOR +k[MAX:16] := 0 + + + AVX512F +
immintrin.h
+ Compare +
+ + + + + Compare packed single-precision (32-bit) floating-point elements in "a" and "b" for less-than, and store the results in mask vector "k". + +FOR j := 0 to 15 + i := j*32 + k[j] := (a[i+31:i] < b[i+31:i]) ? 1 : 0 +ENDFOR +k[MAX:16] := 0 + + + AVX512F +
immintrin.h
+ Compare +
+ + + + + Compare packed single-precision (32-bit) floating-point elements in "a" and "b" for not-equal, and store the results in mask vector "k". + +FOR j := 0 to 15 + i := j*32 + k[j] := (a[i+31:i] != b[i+31:i]) ? 1 : 0 +ENDFOR +k[MAX:16] := 0 + + + AVX512F +
immintrin.h
+ Compare +
+ + + + + Compare packed single-precision (32-bit) floating-point elements in "a" and "b" for not-less-than-or-equal, and store the results in mask vector "k". + +FOR j := 0 to 15 + i := j*32 + k[j] := (!(a[i+31:i] <= b[i+31:i])) ? 1 : 0 +ENDFOR +k[MAX:16] := 0 + + + AVX512F +
immintrin.h
+ Compare +
+ + + + + Compare packed single-precision (32-bit) floating-point elements in "a" and "b" for not-less-than, and store the results in mask vector "k". + +FOR j := 0 to 15 + i := j*32 + k[j] := (!(a[i+31:i] < b[i+31:i])) ? 1 : 0 +ENDFOR +k[MAX:16] := 0 + + + AVX512F +
immintrin.h
+ Compare +
+ + + + + Compare packed single-precision (32-bit) floating-point elements in "a" and "b" to see if neither is NaN, and store the results in mask vector "k". + FOR j := 0 to 15 + i := j*32 + k[j] := ((a[i+31:i] != NaN) AND (b[i+31:i] != NaN)) ? 1 : 0 +ENDFOR +k[MAX:16] := 0 + + + AVX512F +
immintrin.h
+ Compare +
+ + + + + Compare packed single-precision (32-bit) floating-point elements in "a" and "b" to see if either is NaN, and store the results in mask vector "k". + FOR j := 0 to 15 + i := j*32 + k[j] := ((a[i+31:i] == NaN) OR (b[i+31:i] == NaN)) ? 1 : 0 +ENDFOR +k[MAX:16] := 0 + + + AVX512F +
immintrin.h
+ Compare +
+ + + + + + + Compare packed single-precision (32-bit) floating-point elements in "a" and "b" based on the comparison operand specified by "imm8", and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + CASE (imm8[4:0]) OF +0: OP := _CMP_EQ_OQ +1: OP := _CMP_LT_OS +2: OP := _CMP_LE_OS +3: OP := _CMP_UNORD_Q +4: OP := _CMP_NEQ_UQ +5: OP := _CMP_NLT_US +6: OP := _CMP_NLE_US +7: OP := _CMP_ORD_Q +8: OP := _CMP_EQ_UQ +9: OP := _CMP_NGE_US +10: OP := _CMP_NGT_US +11: OP := _CMP_FALSE_OQ +12: OP := _CMP_NEQ_OQ +13: OP := _CMP_GE_OS +14: OP := _CMP_GT_OS +15: OP := _CMP_TRUE_UQ +16: OP := _CMP_EQ_OS +17: OP := _CMP_LT_OQ +18: OP := _CMP_LE_OQ +19: OP := _CMP_UNORD_S +20: OP := _CMP_NEQ_US +21: OP := _CMP_NLT_UQ +22: OP := _CMP_NLE_UQ +23: OP := _CMP_ORD_S +24: OP := _CMP_EQ_US +25: OP := _CMP_NGE_UQ +26: OP := _CMP_NGT_UQ +27: OP := _CMP_FALSE_OS +28: OP := _CMP_NEQ_OS +29: OP := _CMP_GE_OQ +30: OP := _CMP_GT_OQ +31: OP := _CMP_TRUE_US +ESAC +FOR j := 0 to 15 + i := j*32 + IF k1[j] + k[j] := ( a[i+31:i] OP b[i+31:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:16] := 0 + + + AVX512F +
immintrin.h
+ Compare +
+ + + + + + + + Compare packed single-precision (32-bit) floating-point elements in "a" and "b" based on the comparison operand specified by "imm8", and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). [sae_note] + CASE (imm8[4:0]) OF +0: OP := _CMP_EQ_OQ +1: OP := _CMP_LT_OS +2: OP := _CMP_LE_OS +3: OP := _CMP_UNORD_Q +4: OP := _CMP_NEQ_UQ +5: OP := _CMP_NLT_US +6: OP := _CMP_NLE_US +7: OP := _CMP_ORD_Q +8: OP := _CMP_EQ_UQ +9: OP := _CMP_NGE_US +10: OP := _CMP_NGT_US +11: OP := _CMP_FALSE_OQ +12: OP := _CMP_NEQ_OQ +13: OP := _CMP_GE_OS +14: OP := _CMP_GT_OS +15: OP := _CMP_TRUE_UQ +16: OP := _CMP_EQ_OS +17: OP := _CMP_LT_OQ +18: OP := _CMP_LE_OQ +19: OP := _CMP_UNORD_S +20: OP := _CMP_NEQ_US +21: OP := _CMP_NLT_UQ +22: OP := _CMP_NLE_UQ +23: OP := _CMP_ORD_S +24: OP := _CMP_EQ_US +25: OP := _CMP_NGE_UQ +26: OP := _CMP_NGT_UQ +27: OP := _CMP_FALSE_OS +28: OP := _CMP_NEQ_OS +29: OP := _CMP_GE_OQ +30: OP := _CMP_GT_OQ +31: OP := _CMP_TRUE_US +ESAC +FOR j := 0 to 15 + i := j*32 + IF k1[j] + k[j] := ( a[i+31:i] OP b[i+31:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:16] := 0 + + + AVX512F +
immintrin.h
+ Compare +
+ + + + + + Compare packed single-precision (32-bit) floating-point elements in "a" and "b" for equality, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k1[j] + k[j] := (a[i+31:i] == b[i+31:i]) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:16] := 0 + + + AVX512F +
immintrin.h
+ Compare +
+ + + + + + Compare packed single-precision (32-bit) floating-point elements in "a" and "b" for less-than-or-equal, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k1[j] + k[j] := (a[i+31:i] <= b[i+31:i]) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:16] := 0 + + + AVX512F +
immintrin.h
+ Compare +
+ + + + + + Compare packed single-precision (32-bit) floating-point elements in "a" and "b" for less-than, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k1[j] + k[j] := (a[i+31:i] < b[i+31:i]) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:16] := 0 + + + AVX512F +
immintrin.h
+ Compare +
+ + + + + + Compare packed single-precision (32-bit) floating-point elements in "a" and "b" for not-equal, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k1[j] + k[j] := (a[i+31:i] != b[i+31:i]) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:16] := 0 + + + AVX512F +
immintrin.h
+ Compare +
+ + + + + + Compare packed single-precision (32-bit) floating-point elements in "a" and "b" for not-less-than-or-equal, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k1[j] + k[j] := (!(a[i+31:i] <= b[i+31:i])) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:16] := 0 + + + AVX512F +
immintrin.h
+ Compare +
+ + + + + + Compare packed single-precision (32-bit) floating-point elements in "a" and "b" for not-less-than, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k1[j] + k[j] := (!(a[i+31:i] < b[i+31:i])) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:16] := 0 + + + AVX512F +
immintrin.h
+ Compare +
+ + + + + + Compare packed single-precision (32-bit) floating-point elements in "a" and "b" to see if neither is NaN, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + FOR j := 0 to 15 + i := j*32 + IF k1[j] + k[j] := ((a[i+31:i] != NaN) AND (b[i+31:i] != NaN)) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:16] := 0 + + + AVX512F +
immintrin.h
+ Compare +
+ + + + + + Compare packed single-precision (32-bit) floating-point elements in "a" and "b" to see if either is NaN, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + FOR j := 0 to 15 + i := j*32 + IF k1[j] + k[j] := ((a[i+31:i] == NaN) OR (b[i+31:i] == NaN)) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:16] := 0 + + + AVX512F +
immintrin.h
+ Compare +
+ + + + + + Compare packed signed 32-bit integers in "a" and "b" based on the comparison operand specified by "imm8", and store the results in mask vector "k". + CASE (imm8[2:0]) OF +0: OP := _MM_CMPINT_EQ +1: OP := _MM_CMPINT_LT +2: OP := _MM_CMPINT_LE +3: OP := _MM_CMPINT_FALSE +4: OP := _MM_CMPINT_NE +5: OP := _MM_CMPINT_NLT +6: OP := _MM_CMPINT_NLE +7: OP := _MM_CMPINT_TRUE +ESAC +FOR j := 0 to 15 + i := j*32 + k[j] := ( a[i+31:i] OP b[i+31:i] ) ? 1 : 0 +ENDFOR +k[MAX:16] := 0 + + + AVX512F +
immintrin.h
+ Compare +
+ + + + + Compare packed 32-bit integers in "a" and "b" for equality, and store the results in mask vector "k". + +FOR j := 0 to 15 + i := j*32 + k[j] := ( a[i+31:i] == b[i+31:i] ) ? 1 : 0 +ENDFOR +k[MAX:16] := 0 + + + AVX512F +
immintrin.h
+ Compare +
+ + + + + Compare packed signed 32-bit integers in "a" and "b" for greater-than-or-equal, and store the results in mask vector "k". + +FOR j := 0 to 15 + i := j*32 + k[j] := ( a[i+31:i] >= b[i+31:i] ) ? 1 : 0 +ENDFOR +k[MAX:16] := 0 + + + AVX512F +
immintrin.h
+ Compare +
+ + + + + Compare packed signed 32-bit integers in "a" and "b" for greater-than, and store the results in mask vector "k". + +FOR j := 0 to 15 + i := j*32 + k[j] := ( a[i+31:i] > b[i+31:i] ) ? 1 : 0 +ENDFOR +k[MAX:16] := 0 + + + AVX512F +
immintrin.h
+ Compare +
+ + + + + Compare packed signed 32-bit integers in "a" and "b" for less-than-or-equal, and store the results in mask vector "k". + +FOR j := 0 to 15 + i := j*32 + k[j] := ( a[i+31:i] <= b[i+31:i] ) ? 1 : 0 +ENDFOR +k[MAX:16] := 0 + + + AVX512F +
immintrin.h
+ Compare +
+ + + + + Compare packed 32-bit integers in "a" and "b" for not-equal, and store the results in mask vector "k". + +FOR j := 0 to 15 + i := j*32 + k[j] := ( a[i+31:i] != b[i+31:i] ) ? 1 : 0 +ENDFOR +k[MAX:16] := 0 + + + AVX512F +
immintrin.h
+ Compare +
+ + + + + + + Compare packed signed 32-bit integers in "a" and "b" based on the comparison operand specified by "imm8", and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + CASE (imm8[2:0]) OF +0: OP := _MM_CMPINT_EQ +1: OP := _MM_CMPINT_LT +2: OP := _MM_CMPINT_LE +3: OP := _MM_CMPINT_FALSE +4: OP := _MM_CMPINT_NE +5: OP := _MM_CMPINT_NLT +6: OP := _MM_CMPINT_NLE +7: OP := _MM_CMPINT_TRUE +ESAC +FOR j := 0 to 15 + i := j*32 + IF k1[j] + k[j] := ( a[i+31:i] OP b[i+31:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:16] := 0 + + + AVX512F +
immintrin.h
+ Compare +
+ + + + + + Compare packed 32-bit integers in "a" and "b" for equality, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k1[j] + k[j] := ( a[i+31:i] == b[i+31:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:16] := 0 + + + AVX512F +
immintrin.h
+ Compare +
+ + + + + + Compare packed signed 32-bit integers in "a" and "b" for greater-than-or-equal, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k1[j] + k[j] := ( a[i+31:i] >= b[i+31:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:16] := 0 + + + AVX512F +
immintrin.h
+ Compare +
+ + + + + + Compare packed signed 32-bit integers in "a" and "b" for greater-than, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k1[j] + k[j] := ( a[i+31:i] > b[i+31:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:16] := 0 + + + AVX512F +
immintrin.h
+ Compare +
+ + + + + + Compare packed signed 32-bit integers in "a" and "b" for less-than, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k1[j] + k[j] := ( a[i+31:i] <= b[i+31:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:16] := 0 + + + AVX512F +
immintrin.h
+ Compare +
+ + + + + + Compare packed 32-bit integers in "a" and "b" for not-equal, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k1[j] + k[j] := ( a[i+31:i] != b[i+31:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:16] := 0 + + + AVX512F +
immintrin.h
+ Compare +
+ + + + + + Compare packed unsigned 32-bit integers in "a" and "b" based on the comparison operand specified by "imm8", and store the results in mask vector "k". + CASE (imm8[2:0]) OF +0: OP := _MM_CMPINT_EQ +1: OP := _MM_CMPINT_LT +2: OP := _MM_CMPINT_LE +3: OP := _MM_CMPINT_FALSE +4: OP := _MM_CMPINT_NE +5: OP := _MM_CMPINT_NLT +6: OP := _MM_CMPINT_NLE +7: OP := _MM_CMPINT_TRUE +ESAC +FOR j := 0 to 15 + i := j*32 + k[j] := ( a[i+31:i] OP b[i+31:i] ) ? 1 : 0 +ENDFOR +k[MAX:16] := 0 + + + AVX512F +
immintrin.h
+ Compare +
+ + + + + Compare packed unsigned 32-bit integers in "a" and "b" for equality, and store the results in mask vector "k". + +FOR j := 0 to 15 + i := j*32 + k[j] := ( a[i+31:i] == b[i+31:i] ) ? 1 : 0 +ENDFOR +k[MAX:16] := 0 + + + AVX512F +
immintrin.h
+ Compare +
+ + + + + Compare packed unsigned 32-bit integers in "a" and "b" for greater-than-or-equal, and store the results in mask vector "k". + +FOR j := 0 to 15 + i := j*32 + k[j] := ( a[i+31:i] >= b[i+31:i] ) ? 1 : 0 +ENDFOR +k[MAX:16] := 0 + + + AVX512F +
immintrin.h
+ Compare +
+ + + + + Compare packed unsigned 32-bit integers in "a" and "b" for greater-than, and store the results in mask vector "k". + +FOR j := 0 to 15 + i := j*32 + k[j] := ( a[i+31:i] > b[i+31:i] ) ? 1 : 0 +ENDFOR +k[MAX:16] := 0 + + + AVX512F +
immintrin.h
+ Compare +
+ + + + + Compare packed unsigned 32-bit integers in "a" and "b" for less-than-or-equal, and store the results in mask vector "k". + +FOR j := 0 to 15 + i := j*32 + k[j] := ( a[i+31:i] <= b[i+31:i] ) ? 1 : 0 +ENDFOR +k[MAX:16] := 0 + + + AVX512F +
immintrin.h
+ Compare +
+ + + + + Compare packed unsigned 32-bit integers in "a" and "b" for less-than, and store the results in mask vector "k". + +FOR j := 0 to 15 + i := j*32 + k[j] := ( a[i+31:i] < b[i+31:i] ) ? 1 : 0 +ENDFOR +k[MAX:16] := 0 + + + AVX512F +
immintrin.h
+ Compare +
+ + + + + Compare packed unsigned 32-bit integers in "a" and "b" for not-equal, and store the results in mask vector "k". + +FOR j := 0 to 15 + i := j*32 + k[j] := ( a[i+31:i] != b[i+31:i] ) ? 1 : 0 +ENDFOR +k[MAX:16] := 0 + + + AVX512F +
immintrin.h
+ Compare +
+ + + + + + + Compare packed unsigned 32-bit integers in "a" and "b" based on the comparison operand specified by "imm8", and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + CASE (imm8[2:0]) OF +0: OP := _MM_CMPINT_EQ +1: OP := _MM_CMPINT_LT +2: OP := _MM_CMPINT_LE +3: OP := _MM_CMPINT_FALSE +4: OP := _MM_CMPINT_NE +5: OP := _MM_CMPINT_NLT +6: OP := _MM_CMPINT_NLE +7: OP := _MM_CMPINT_TRUE +ESAC +FOR j := 0 to 15 + i := j*32 + IF k1[j] + k[j] := ( a[i+31:i] OP b[i+31:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:16] := 0 + + + AVX512F +
immintrin.h
+ Compare +
+ + + + + + Compare packed unsigned 32-bit integers in "a" and "b" for equality, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k1[j] + k[j] := ( a[i+31:i] == b[i+31:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:16] := 0 + + + AVX512F +
immintrin.h
+ Compare +
+ + + + + + Compare packed unsigned 32-bit integers in "a" and "b" for greater-than-or-equal, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k1[j] + k[j] := ( a[i+31:i] >= b[i+31:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:16] := 0 + + + AVX512F +
immintrin.h
+ Compare +
+ + + + + + Compare packed unsigned 32-bit integers in "a" and "b" for greater-than, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k1[j] + k[j] := ( a[i+31:i] > b[i+31:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:16] := 0 + + + AVX512F +
immintrin.h
+ Compare +
+ + + + + + Compare packed unsigned 32-bit integers in "a" and "b" for less-than, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k1[j] + k[j] := ( a[i+31:i] <= b[i+31:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:16] := 0 + + + AVX512F +
immintrin.h
+ Compare +
+ + + + + + Compare packed unsigned 32-bit integers in "a" and "b" for less-than-or-equal, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k1[j] + k[j] := ( a[i+31:i] < b[i+31:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:16] := 0 + + + AVX512F +
immintrin.h
+ Compare +
+ + + + + + Compare packed unsigned 32-bit integers in "a" and "b" for not-equal, and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k1[j] + k[j] := ( a[i+31:i] != b[i+31:i] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:16] := 0 + + + AVX512F +
immintrin.h
+ Compare +
+ + + + + + Gather single-precision (32-bit) floating-point elements from memory using 32-bit indices. 32-bit elements are loaded from addresses starting at "base_addr" and offset by each 32-bit element in "vindex" (each index is scaled by the factor in "scale"). Gathered elements are merged into "dst". "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 15 + i := j*32 + m := j*32 + addr := base_addr + SignExtend64(vindex[m+31:m]) * ZeroExtend64(scale) * 8 + dst[i+31:i] := MEM[addr+31:addr] +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Load +
+ + + + + + + + Gather single-precision (32-bit) floating-point elements from memory using 32-bit indices. 32-bit elements are loaded from addresses starting at "base_addr" and offset by each 32-bit element in "vindex" (each index is scaled by the factor in "scale"). Gathered elements are merged into "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 15 + i := j*32 + m := j*32 + IF k[j] + addr := base_addr + SignExtend64(vindex[m+31:m]) * ZeroExtend64(scale) * 8 + dst[i+31:i] := MEM[addr+31:addr] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Load +
+ + + + Load 512-bits (composed of 8 packed double-precision (64-bit) floating-point elements) from memory into "dst". + "mem_addr" must be aligned on a 64-byte boundary or a general-protection exception may be generated. + +dst[511:0] := MEM[mem_addr+511:mem_addr] +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Load +
+ + + + + + Load packed double-precision (64-bit) floating-point elements from memory into "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). "mem_addr" must be aligned on a 64-byte boundary or a general-protection exception may be generated. + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := MEM[mem_addr+i+63:mem_addr+i] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Load +
+ + + + Load 512-bits (composed of 16 packed single-precision (32-bit) floating-point elements) from memory into "dst". + "mem_addr" must be aligned on a 64-byte boundary or a general-protection exception may be generated. + +dst[511:0] := MEM[mem_addr+511:mem_addr] +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Load +
+ + + + + + Load packed single-precision (32-bit) floating-point elements from memory into "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). "mem_addr" must be aligned on a 64-byte boundary or a general-protection exception may be generated. + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := MEM[mem_addr+i+31:mem_addr+i] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Load +
+ + + + Load 512-bits (composed of 16 packed 32-bit integers) from memory into "dst". + "mem_addr" must be aligned on a 64-byte boundary or a general-protection exception may be generated. + +dst[511:0] := MEM[mem_addr+511:mem_addr] +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Load +
+ + + + Load 512-bits of integer data from memory into "dst". + "mem_addr" must be aligned on a 64-byte boundary or a general-protection exception may be generated. + +dst[511:0] := MEM[mem_addr+511:mem_addr] +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Load +
+ + + + + + Load packed 32-bit integers from memory into "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + "mem_addr" must be aligned on a 64-byte boundary or a general-protection exception may be generated. + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := MEM[mem_addr+i+31:mem_addr+i] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Load +
+ + + + Load 512-bits (composed of 8 packed 64-bit integers) from memory into "dst". + "mem_addr" must be aligned on a 64-byte boundary or a general-protection exception may be generated. + +dst[511:0] := MEM[mem_addr+511:mem_addr] +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Load +
+ + + + + + Load packed 64-bit integers from memory into "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + "mem_addr" must be aligned on a 64-byte boundary or a general-protection exception may be generated. + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := MEM[mem_addr+i+63:mem_addr+i] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Load +
+ + + + + + Gather 32-bit integers from memory using 32-bit indices. 32-bit elements are loaded from addresses starting at "base_addr" and offset by each 32-bit element in "vindex" (each index is scaled by the factor in "scale"). Gathered elements are merged into "dst". "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 15 + i := j*32 + m := j*32 + addr := base_addr + SignExtend64(vindex[m+31:m]) * ZeroExtend64(scale) * 8 + dst[i+31:i] := MEM[addr+31:addr] +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Load +
+ + + + + + + + Gather 32-bit integers from memory using 32-bit indices. 32-bit elements are loaded from addresses starting at "base_addr" and offset by each 32-bit element in "vindex" (each index is scaled by the factor in "scale"). Gathered elements are merged into "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 15 + i := j*32 + m := j*32 + IF k[j] + addr := base_addr + SignExtend64(vindex[m+31:m]) * ZeroExtend64(scale) * 8 + dst[i+31:i] := MEM[addr+31:addr] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Load +
+ + + + + + Loads 8 64-bit integer elements from memory starting at location "base_addr" at packed 32-bit integer indices stored in the lower half of "vindex" scaled by "scale" and stores them in "dst". + +FOR j := 0 to 7 + i := j*64 + m := j*32 + addr := base_addr + SignExtend64(vindex[m+31:m]) * ZeroExtend64(scale) * 8 + dst[i+63:i] := MEM[addr+63:addr] +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Load +
+ + + + + + + + Loads 8 64-bit integer elements from memory starting at location "base_addr" at packed 32-bit integer indices stored in the lower half of "vindex" scaled by "scale" and stores them in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + m := j*32 + IF k[j] + addr := base_addr + SignExtend64(vindex[m+31:m]) * ZeroExtend64(scale) * 8 + dst[i+63:i] := MEM[addr+63:addr] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Load +
+ + + + + + Loads 8 double-precision (64-bit) floating-point elements stored at memory locations starting at location "base_addr" at packed 32-bit integer indices stored in the lower half of "vindex" scaled by "scale" them in "dst". + +FOR j := 0 to 7 + i := j*64 + m := j*32 + addr := base_addr + SignExtend64(vindex[m+31:m]) * ZeroExtend64(scale) * 8 + dst[i+63:i] := MEM[addr+63:addr] +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Load +
+ + + + + + + + Loads 8 double-precision (64-bit) floating-point elements from memory starting at location "base_addr" at packed 32-bit integer indices stored in the lower half of "vindex" scaled by "scale" into "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + m := j*32 + IF k[j] + addr := base_addr + SignExtend64(vindex[m+31:m]) * ZeroExtend64(scale) * 8 + dst[i+63:i] := MEM[addr+63:addr] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Load +
+ + + + + + Move packed double-precision (64-bit) floating-point elements from "a" to "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := a[i+63:i] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Move +
+ + + + + + Move packed single-precision (32-bit) floating-point elements from "a" to "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := a[i+31:i] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Move +
+ + + + + + Move packed 32-bit integers from "a" to "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := a[i+31:i] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Move +
+ + + + + + Move packed 64-bit integers from "a" to "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := a[i+63:i] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Move +
+ + + + + + Store packed double-precision (64-bit) floating-point elements from "a" into memory using writemask "k". + "mem_addr" must be aligned on a 64-byte boundary or a general-protection exception may be generated. + +FOR j := 0 to 7 + i := j*64 + IF k[j] + MEM[mem_addr+i+63:mem_addr+i] := a[i+63:i] + FI +ENDFOR + + + AVX512F +
immintrin.h
+ Store +
+ + + + + Store 512-bits (composed of 8 packed double-precision (64-bit) floating-point elements) from "a" into memory. + "mem_addr" must be aligned on a 64-byte boundary or a general-protection exception may be generated. + +MEM[mem_addr+511:mem_addr] := a[511:0] + + + AVX512F +
immintrin.h
+ Store +
+ + + + + + Store packed single-precision (32-bit) floating-point elements from "a" into memory using writemask "k". + "mem_addr" must be aligned on a 64-byte boundary or a general-protection exception may be generated. + +FOR j := 0 to 15 + i := j*32 + IF k[j] + MEM[mem_addr+i+31:mem_addr+i] := a[i+31:i] + FI +ENDFOR + + + AVX512F +
immintrin.h
+ Store +
+ + + + + Store 512-bits (composed of 16 packed single-precision (32-bit) floating-point elements) from "a" into memory. + "mem_addr" must be aligned on a 64-byte boundary or a general-protection exception may be generated. + +MEM[mem_addr+511:mem_addr] := a[511:0] + + + AVX512F +
immintrin.h
+ Store +
+ + + + + + Store packed 32-bit integers from "a" into memory using writemask "k". + "mem_addr" must be aligned on a 64-byte boundary or a general-protection exception may be generated. + +FOR j := 0 to 15 + i := j*32 + IF k[j] + MEM[mem_addr+i+31:mem_addr+i] := a[i+31:i] + FI +ENDFOR + + + AVX512F +
immintrin.h
+ Store +
+ + + + + Store 512-bits (composed of 16 packed 32-bit integers) from "a" into memory. + "mem_addr" must be aligned on a 64-byte boundary or a general-protection exception may be generated. + +MEM[mem_addr+511:mem_addr] := a[511:0] + + + AVX512F +
immintrin.h
+ Store +
+ + + + + Store 512-bits of integer data from "a" into memory. + "mem_addr" must be aligned on a 64-byte boundary or a general-protection exception may be generated. + +MEM[mem_addr+511:mem_addr] := a[511:0] + + + AVX512F +
immintrin.h
+ Store +
+ + + + + + Store packed 64-bit integers from "a" into memory using writemask "k". + "mem_addr" must be aligned on a 64-byte boundary or a general-protection exception may be generated. + +FOR j := 0 to 7 + i := j*64 + IF k[j] + MEM[mem_addr+i+63:mem_addr+i] := a[i+63:i] + FI +ENDFOR + + + AVX512F +
immintrin.h
+ Store +
+ + + + + Store 512-bits (composed of 8 packed 64-bit integers) from "a" into memory. + "mem_addr" must be aligned on a 64-byte boundary or a general-protection exception may be generated. + +MEM[mem_addr+511:mem_addr] := a[511:0] + + + AVX512F +
immintrin.h
+ Store +
+ + + + + + + Scatter 32-bit integers from "a" into memory using 32-bit indices. 32-bit elements are stored at addresses starting at "base_addr" and offset by each 32-bit element in "vindex" (each index is scaled by the factor in "scale"). "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 15 + i := j*32 + m := j*32 + addr := base_addr + SignExtend64(vindex[m+31:m]) * ZeroExtend64(scale) * 8 + MEM[addr+31:addr] := a[i+31:i] +ENDFOR + + + AVX512F +
immintrin.h
+ Store +
+ + + + + + + + Scatter 32-bit integers from "a" into memory using 32-bit indices. 32-bit elements are stored at addresses starting at "base_addr" and offset by each 32-bit element in "vindex" (each index is scaled by the factor in "scale") subject to mask "k" (elements are not stored when the corresponding mask bit is not set). "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 15 + i := j*32 + m := j*32 + IF k[j] + addr := base_addr + SignExtend64(vindex[m+31:m]) * ZeroExtend64(scale) * 8 + MEM[addr+31:addr] := a[i+31:i] + FI +ENDFOR + + + AVX512F +
immintrin.h
+ Store +
+ + + + + + + Scatter single-precision (32-bit) floating-point elements from "a" into memory using 32-bit indices. 32-bit elements are stored at addresses starting at "base_addr" and offset by each 32-bit element in "vindex" (each index is scaled by the factor in "scale"). "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 15 + i := j*32 + m := j*32 + addr := base_addr + SignExtend64(vindex[m+31:m]) * ZeroExtend64(scale) * 8 + MEM[addr+31:addr] := a[i+31:i] +ENDFOR + + + AVX512F +
immintrin.h
+ Store +
+ + + + + + + + Scatter single-precision (32-bit) floating-point elements from "a" into memory using 32-bit indices. 32-bit elements are stored at addresses starting at "base_addr" and offset by each 32-bit element in "vindex" (each index is scaled by the factor in "scale") subject to mask "k" (elements are not stored when the corresponding mask bit is not set). "scale" should be 1, 2, 4 or 8. + +FOR j := 0 to 15 + i := j*32 + m := j*32 + IF k[j] + addr := base_addr + SignExtend64(vindex[m+31:m]) * ZeroExtend64(scale) * 8 + MEM[addr+31:addr] := a[i+31:i] + FI +ENDFOR + + + AVX512F +
immintrin.h
+ Store +
+ + + + + + + Stores 8 packed double-precision (64-bit) floating-point elements in "a" and to memory locations starting at location "base_addr" at packed 32-bit integer indices stored in "vindex" scaled by "scale". + +FOR j := 0 to 7 + i := j*64 + m := j*32 + addr := base_addr + SignExtend64(vindex[m+31:m]) * ZeroExtend64(scale) * 8 + MEM[addr+63:addr] := a[i+63:i] +ENDFOR + + + AVX512F +
immintrin.h
+ Store +
+ + + + + + + + Stores 8 packed double-precision (64-bit) floating-point elements in "a" to memory locations starting at location "base_addr" at packed 32-bit integer indices stored in "vindex" scaled by "scale". Only those elements whose corresponding mask bit is set in writemask "k" are written to memory. + +FOR j := 0 to 7 + i := j*64 + m := j*32 + IF k[j] + addr := base_addr + SignExtend64(vindex[m+31:m]) * ZeroExtend64(scale) * 8 + MEM[addr+63:addr] := a[i+63:i] + FI +ENDFOR + + + AVX512F +
immintrin.h
+ Store +
+ + + + + Compute the bitwise AND of packed 32-bit integers in "a" and "b", and store the results in "dst". + +FOR j := 0 to 15 + i := j*32 + dst[i+31:i] := a[i+31:i] AND b[i+31:i] +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Logical +
+ + + + + Compute the bitwise AND of 512 bits (representing integer data) in "a" and "b", and store the result in "dst". + +dst[511:0] := (a[511:0] AND b[511:0]) +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Logical +
+ + + + + Compute the bitwise NOT of packed 32-bit integers in "a" and then AND with "b", and store the results in "dst". + +FOR j := 0 to 15 + i := j*32 + dst[i+31:i] := (NOT a[i+31:i]) AND b[i+31:i] +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Logical +
+ + + + + Compute the bitwise NOT of 512 bits (representing integer data) in "a" and then AND with "b", and store the result in "dst". + +dst[511:0] := ((NOT a[511:0]) AND b[511:0]) +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Logical +
+ + + + + + + Compute the bitwise NOT of packed 32-bit integers in "a" and then AND with "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := ((NOT a[i+31:i]) AND b[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Logical +
+ + + + + Compute the bitwise NOT of 512 bits (composed of packed 64-bit integers) in "a" and then AND with "b", and store the results in "dst". + +dst[511:0] := ((NOT a[511:0]) AND b[511:0]) +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Logical +
+ + + + + + + Compute the bitwise NOT of packed 64-bit integers in "a" and then AND with "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := ((NOT a[i+63:i]) AND b[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Logical +
+ + + + + Compute the bitwise AND of 512 bits (composed of packed 64-bit integers) in "a" and "b", and store the results in "dst". + +dst[511:0] := (a[511:0] AND b[511:0]) +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Logical +
+ + + + + + + Compute the bitwise AND of packed 64-bit integers in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := a[i+63:i] AND b[i+63:i] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Logical +
+ + + + + + + Compute the bitwise OR of packed 32-bit integers in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := a[i+31:i] OR b[i+31:i] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Logical +
+ + + + + Compute the bitwise OR of packed 32-bit integers in "a" and "b", and store the results in "dst". + +FOR j := 0 to 15 + i := j*32 + dst[i+31:i] := a[i+31:i] OR b[i+31:i] +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Logical +
+ + + + + Compute the bitwise OR of 512 bits (representing integer data) in "a" and "b", and store the result in "dst". + +dst[511:0] := (a[511:0] OR b[511:0]) +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Logical +
+ + + + + + + Compute the bitwise OR of packed 64-bit integers in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := a[i+63:i] OR b[i+63:i] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Logical +
+ + + + + Compute the bitwise OR of packed 64-bit integers in "a" and "b", and store the resut in "dst". + +FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := a[i+63:i] OR b[i+63:i] +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Logical +
+ + + + + + Compute the bitwise AND of packed 32-bit integers in "a" and "b", producing intermediate 32-bit values, and set the corresponding bit in result mask "k" (subject to writemask "k") if the intermediate value is non-zero. + +FOR j := 0 to 15 + i := j*32 + IF k1[j] + k[j] := ((a[i+31:i] AND b[i+31:i]) != 0) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:16] := 0 + + + AVX512F +
immintrin.h
+ Logical +
+ + + + + Compute the bitwise AND of packed 32-bit integers in "a" and "b", producing intermediate 32-bit values, and set the corresponding bit in result mask "k" if the intermediate value is non-zero. + +FOR j := 0 to 15 + i := j*32 + k[j] := ((a[i+31:i] AND b[i+31:i]) != 0) ? 1 : 0 +ENDFOR +k[MAX:16] := 0 + + + AVX512F +
immintrin.h
+ Logical +
+ + + + + + + Compute the bitwise XOR of packed 32-bit integers in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := a[i+31:i] XOR b[i+31:i] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Logical +
+ + + + + Compute the bitwise XOR of packed 32-bit integers in "a" and "b", and store the results in "dst". + +FOR j := 0 to 15 + i := j*32 + dst[i+31:i] := a[i+31:i] XOR b[i+31:i] +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Logical +
+ + + + + Compute the bitwise XOR of 512 bits (representing integer data) in "a" and "b", and store the result in "dst". + +dst[511:0] := (a[511:0] XOR b[511:0]) +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Logical +
+ + + + + + + Compute the bitwise XOR of packed 64-bit integers in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := a[i+63:i] XOR b[i+63:i] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Logical +
+ + + + + Compute the bitwise XOR of packed 64-bit integers in "a" and "b", and store the results in "dst". + +FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := a[i+63:i] XOR b[i+63:i] +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Logical +
+ + + + + Reduce the packed 32-bit integers in "a" by bitwise AND using mask "k". Returns the bitwise AND of all active elements in "a". + +DEFINE REDUCE_AND(src, len) { + IF len == 2 + RETURN src[31:0] AND src[63:32] + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*32 + src[i+31:i] := src[i+31:i] AND src[i+32*len+31:i+32*len] + ENDFOR + RETURN REDUCE_AND(src[32*len-1:0], len) +} +tmp := a +FOR j := 0 to 16 + i := j*32 + IF k[j] + tmp[i+31:i] := a[i+31:i] + ELSE + tmp[i+31:i] := 0xFFFFFFFF + FI +ENDFOR +dst[31:0] := REDUCE_AND(tmp, 16) + + AVX512F +
immintrin.h
+ Logical +
+ + + + + Reduce the packed 64-bit integers in "a" by bitwise AND using mask "k". Returns the bitwise AND of all active elements in "a". + +DEFINE REDUCE_AND(src, len) { + IF len == 2 + RETURN src[63:0] AND src[127:64] + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*64 + src[i+63:i] := src[i+63:i] AND src[i+64*len+63:i+64*len] + ENDFOR + RETURN REDUCE_AND(src[64*len-1:0], len) +} +tmp := a +FOR j := 0 to 8 + i := j*64 + IF k[j] + tmp[i+63:i] := a[i+63:i] + ELSE + tmp[i+63:i] := 0xFFFFFFFFFFFFFFFF + FI +ENDFOR +dst[63:0] := REDUCE_AND(tmp, 8) + + AVX512F +
immintrin.h
+ Logical +
+ + + + + Reduce the packed 32-bit integers in "a" by bitwise OR using mask "k". Returns the bitwise OR of all active elements in "a". + +DEFINE REDUCE_OR(src, len) { + IF len == 2 + RETURN src[31:0] OR src[63:32] + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*32 + src[i+31:i] := src[i+31:i] OR src[i+32*len+31:i+32*len] + ENDFOR + RETURN REDUCE_OR(src[32*len-1:0], len) +} +tmp := a +FOR j := 0 to 16 + i := j*32 + IF k[j] + tmp[i+31:i] := a[i+31:i] + ELSE + tmp[i+31:i] := 0 + FI +ENDFOR +dst[31:0] := REDUCE_OR(tmp, 16) + + AVX512F +
immintrin.h
+ Logical +
+ + + + + Reduce the packed 64-bit integers in "a" by bitwise OR using mask "k". Returns the bitwise OR of all active elements in "a". + +DEFINE REDUCE_OR(src, len) { + IF len == 2 + RETURN src[63:0] OR src[127:64] + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*64 + src[i+63:i] := src[i+63:i] OR src[i+64*len+63:i+64*len] + ENDFOR + RETURN REDUCE_OR(src[64*len-1:0], len) +} +tmp := a +FOR j := 0 to 8 + i := j*64 + IF k[j] + tmp[i+63:i] := a[i+63:i] + ELSE + tmp[i+63:i] := 0 + FI +ENDFOR +dst[63:0] := REDUCE_OR(tmp, 8) + + AVX512F +
immintrin.h
+ Logical +
+ + + + Reduce the packed 32-bit integers in "a" by bitwise AND. Returns the bitwise AND of all elements in "a". + +DEFINE REDUCE_AND(src, len) { + IF len == 2 + RETURN src[31:0] AND src[63:32] + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*32 + src[i+31:i] := src[i+31:i] AND src[i+32*len+31:i+32*len] + ENDFOR + RETURN REDUCE_AND(src[32*len-1:0], len) +} +dst[31:0] := REDUCE_AND(a, 16) + + AVX512F +
immintrin.h
+ Logical +
+ + + + Reduce the packed 64-bit integers in "a" by bitwise AND. Returns the bitwise AND of all elements in "a". + +DEFINE REDUCE_AND(src, len) { + IF len == 2 + RETURN src[63:0] AND src[127:64] + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*64 + src[i+63:i] := src[i+63:i] AND src[i+64*len+63:i+64*len] + ENDFOR + RETURN REDUCE_AND(src[64*len-1:0], len) +} +dst[63:0] := REDUCE_AND(a, 8) + + AVX512F +
immintrin.h
+ Logical +
+ + + + Reduce the packed 32-bit integers in "a" by bitwise OR. Returns the bitwise OR of all elements in "a". + +DEFINE REDUCE_OR(src, len) { + IF len == 2 + RETURN src[31:0] OR src[63:32] + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*32 + src[i+31:i] := src[i+31:i] OR src[i+32*len+31:i+32*len] + ENDFOR + RETURN REDUCE_OR(src[32*len-1:0], len) +} +dst[31:0] := REDUCE_OR(a, 16) + + AVX512F +
immintrin.h
+ Logical +
+ + + + Reduce the packed 64-bit integers in "a" by bitwise OR. Returns the bitwise OR of all elements in "a". + +DEFINE REDUCE_OR(src, len) { + IF len == 2 + RETURN src[63:0] OR src[127:64] + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*64 + src[i+63:i] := src[i+63:i] OR src[i+64*len+63:i+64*len] + ENDFOR + RETURN REDUCE_OR(src[64*len-1:0], len) +} +dst[63:0] := REDUCE_OR(a, 8) + + AVX512F +
immintrin.h
+ Logical +
+ + + + + + + Performs element-by-element bitwise AND between packed 32-bit integer elements of "v2" and "v3", storing the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := v2[i+31:i] & v3[i+31:i] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Logical +
+ + + + + + + Compare packed signed 32-bit integers in "a" and "b", and store packed maximum values in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := MAX(a[i+31:i], b[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + + Compare packed signed 32-bit integers in "a" and "b", and store packed maximum values in "dst". + +FOR j := 0 to 15 + i := j*32 + dst[i+31:i] := MAX(a[i+31:i], b[i+31:i]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + + + + Compare packed unsigned 32-bit integers in "a" and "b", and store packed maximum values in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := MAX(a[i+31:i], b[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + + Compare packed unsigned 32-bit integers in "a" and "b", and store packed maximum values in "dst". + +FOR j := 0 to 15 + i := j*32 + dst[i+31:i] := MAX(a[i+31:i], b[i+31:i]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + + + + Compare packed signed 32-bit integers in "a" and "b", and store packed minimum values in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := MIN(a[i+31:i], b[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + + Compare packed signed 32-bit integers in "a" and "b", and store packed minimum values in "dst". + +FOR j := 0 to 15 + i := j*32 + dst[i+31:i] := MIN(a[i+31:i], b[i+31:i]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + + + + Compare packed unsigned 32-bit integers in "a" and "b", and store packed minimum values in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := MIN(a[i+31:i], b[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + + Compare packed unsigned 32-bit integers in "a" and "b", and store packed minimum values in "dst". + +FOR j := 0 to 15 + i := j*32 + dst[i+31:i] := MIN(a[i+31:i], b[i+31:i]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + + Reduce the packed signed 32-bit integers in "a" by maximum using mask "k". Returns the maximum of all active elements in "a". + +DEFINE REDUCE_MAX(src, len) { + IF len == 2 + RETURN (src[31:0] > src[63:32] ? src[31:0] : src[63:32]) + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*32 + src[i+31:i] := (src[i+31:i] > src[i+32*len+31:i+32*len] ? src[i+31:i] : src[i+32*len+31:i+32*len]) + ENDFOR + RETURN REDUCE_MAX(src[32*len-1:0], len) +} +tmp := a +FOR j := 0 to 16 + i := j*32 + IF k[j] + tmp[i+31:i] := a[i+31:i] + ELSE + tmp[i+31:i] := Int32(-0x80000000) + FI +ENDFOR +dst[31:0] := REDUCE_MAX(tmp, 16) + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + + Reduce the packed signed 64-bit integers in "a" by maximum using mask "k". Returns the maximum of all active elements in "a". + +DEFINE REDUCE_MAX(src, len) { + IF len == 2 + RETURN (src[63:0] > src[127:64] ? src[63:0] : src[127:64]) + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*64 + src[i+63:i] := (src[i+63:i] > src[i+64*len+63:i+64*len] ? src[i+63:i] : src[i+64*len+63:i+64*len]) + ENDFOR + RETURN REDUCE_MAX(src[64*len-1:0], len) +} +tmp := a +FOR j := 0 to 8 + i := j*64 + IF k[j] + tmp[i+63:i] := a[i+63:i] + ELSE + tmp[i+63:i] := Int64(-0x8000000000000000) + FI +ENDFOR +dst[63:0] := REDUCE_MAX(tmp, 8) + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + + Reduce the packed unsigned 32-bit integers in "a" by maximum using mask "k". Returns the maximum of all active elements in "a". + +DEFINE REDUCE_MAX(src, len) { + IF len == 2 + RETURN (src[31:0] > src[63:32] ? src[31:0] : src[63:32]) + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*32 + src[i+31:i] := (src[i+31:i] > src[i+32*len+31:i+32*len] ? src[i+31:i] : src[i+32*len+31:i+32*len]) + ENDFOR + RETURN REDUCE_MAX(src[32*len-1:0], len) +} +tmp := a +FOR j := 0 to 16 + i := j*32 + IF k[j] + tmp[i+31:i] := a[i+31:i] + ELSE + tmp[i+31:i] := 0 + FI +ENDFOR +dst[31:0] := REDUCE_MAX(tmp, 16) + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + + Reduce the packed unsigned 64-bit integers in "a" by maximum using mask "k". Returns the maximum of all active elements in "a". + +DEFINE REDUCE_MAX(src, len) { + IF len == 2 + RETURN (src[63:0] > src[127:64] ? src[63:0] : src[127:64]) + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*64 + src[i+63:i] := (src[i+63:i] > src[i+64*len+63:i+64*len] ? src[i+63:i] : src[i+64*len+63:i+64*len]) + ENDFOR + RETURN REDUCE_MAX(src[64*len-1:0], len) +} +tmp := a +FOR j := 0 to 8 + i := j*64 + IF k[j] + tmp[i+63:i] := a[i+63:i] + ELSE + tmp[i+63:i] := 0 + FI +ENDFOR +dst[63:0] := REDUCE_MAX(tmp, 8) + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + + Reduce the packed double-precision (64-bit) floating-point elements in "a" by maximum using mask "k". Returns the maximum of all active elements in "a". + +DEFINE REDUCE_MAX(src, len) { + IF len == 2 + RETURN (src[63:0] > src[127:64] ? src[63:0] : src[127:64]) + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*64 + src[i+63:i] := (src[i+63:i] > src[i+64*len+63:i+64*len] ? src[i+63:i] : src[i+64*len+63:i+64*len]) + ENDFOR + RETURN REDUCE_MAX(src[64*len-1:0], len) +} +tmp := a +FOR j := 0 to 8 + i := j*64 + IF k[j] + tmp[i+63:i] := a[i+63:i] + ELSE + tmp[i+63:i] := Cast_FP64(0xFFEFFFFFFFFFFFFF) + FI +ENDFOR +dst[63:0] := REDUCE_MAX(tmp, 8) + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + + Reduce the packed single-precision (32-bit) floating-point elements in "a" by maximum using mask "k". Returns the maximum of all active elements in "a". + +DEFINE REDUCE_MAX(src, len) { + IF len == 2 + RETURN (src[31:0] > src[63:32] ? src[31:0] : src[63:32]) + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*32 + src[i+31:i] := (src[i+31:i] > src[i+32*len+31:i+32*len] ? src[i+31:i] : src[i+32*len+31:i+32*len]) + ENDFOR + RETURN REDUCE_MAX(src[32*len-1:0], len) +} +tmp := a +FOR j := 0 to 16 + i := j*32 + IF k[j] + tmp[i+31:i] := a[i+31:i] + ELSE + tmp[i+31:i] := Cast_FP32(0xFF7FFFFF) + FI +ENDFOR +dst[31:0] := REDUCE_MAX(tmp, 16) + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + + Reduce the packed signed 32-bit integers in "a" by maximum using mask "k". Returns the minimum of all active elements in "a". + +DEFINE REDUCE_MIN(src, len) { + IF len == 2 + RETURN (src[31:0] < src[63:32] ? src[31:0] : src[63:32]) + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*32 + src[i+31:i] := (src[i+31:i] < src[i+32*len+31:i+32*len] ? src[i+31:i] : src[i+32*len+31:i+32*len]) + ENDFOR + RETURN REDUCE_MIN(src[32*len-1:0], len) +} +tmp := a +FOR j := 0 to 16 + i := j*32 + IF k[j] + tmp[i+31:i] := a[i+31:i] + ELSE + tmp[i+31:i] := Int32(0x7FFFFFFF) + FI +ENDFOR +dst[31:0] := REDUCE_MIN(tmp, 16) + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + + Reduce the packed signed 64-bit integers in "a" by maximum using mask "k". Returns the minimum of all active elements in "a". + +DEFINE REDUCE_MIN(src, len) { + IF len == 2 + RETURN (src[63:0] < src[127:64] ? src[63:0] : src[127:64]) + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*64 + src[i+63:i] := (src[i+63:i] < src[i+64*len+63:i+64*len] ? src[i+63:i] : src[i+64*len+63:i+64*len]) + ENDFOR + RETURN REDUCE_MIN(src[64*len-1:0], len) +} +tmp := a +FOR j := 0 to 8 + i := j*64 + IF k[j] + tmp[i+63:i] := a[i+63:i] + ELSE + tmp[i+63:i] := Int64(0x7FFFFFFFFFFFFFFF) + FI +ENDFOR +dst[63:0] := REDUCE_MIN(tmp, 8) + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + + Reduce the packed unsigned 32-bit integers in "a" by maximum using mask "k". Returns the minimum of all active elements in "a". + +DEFINE REDUCE_MIN(src, len) { + IF len == 2 + RETURN (src[31:0] < src[63:32] ? src[31:0] : src[63:32]) + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*32 + src[i+31:i] := (src[i+31:i] < src[i+32*len+31:i+32*len] ? src[i+31:i] : src[i+32*len+31:i+32*len]) + ENDFOR + RETURN REDUCE_MIN(src[32*len-1:0], len) +} +tmp := a +FOR j := 0 to 16 + i := j*32 + IF k[j] + tmp[i+31:i] := a[i+31:i] + ELSE + tmp[i+31:i] := 0xFFFFFFFF + FI +ENDFOR +dst[31:0] := REDUCE_MIN(tmp, 16) + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + + Reduce the packed unsigned 64-bit integers in "a" by minimum using mask "k". Returns the minimum of all active elements in "a". + +DEFINE REDUCE_MIN(src, len) { + IF len == 2 + RETURN (src[63:0] < src[127:64] ? src[63:0] : src[127:64]) + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*64 + src[i+63:i] := (src[i+63:i] < src[i+64*len+63:i+64*len] ? src[i+63:i] : src[i+64*len+63:i+64*len]) + ENDFOR + RETURN REDUCE_MIN(src[64*len-1:0], len) +} +tmp := a +FOR j := 0 to 8 + i := j*64 + IF k[j] + tmp[i+63:i] := a[i+63:i] + ELSE + tmp[i+63:i] := 0xFFFFFFFFFFFFFFFF + FI +ENDFOR +dst[63:0] := REDUCE_MIN(tmp, 8) + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + + Reduce the packed double-precision (64-bit) floating-point elements in "a" by maximum using mask "k". Returns the minimum of all active elements in "a". [min_float_note] + +DEFINE REDUCE_MIN(src, len) { + IF len == 2 + RETURN (src[63:0] < src[127:64] ? src[63:0] : src[127:64]) + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*64 + src[i+63:i] := (src[i+63:i] < src[i+64*len+63:i+64*len] ? src[i+63:i] : src[i+64*len+63:i+64*len]) + ENDFOR + RETURN REDUCE_MIN(src[64*len-1:0], len) +} +tmp := a +FOR j := 0 to 8 + i := j*64 + IF k[j] + tmp[i+63:i] := a[i+63:i] + ELSE + tmp[i+63:i] := Cast_FP64(0x7FEFFFFFFFFFFFFF) + FI +ENDFOR +dst[63:0] := REDUCE_MIN(tmp, 8) + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + + Reduce the packed single-precision (32-bit) floating-point elements in "a" by maximum using mask "k". Returns the minimum of all active elements in "a". [min_float_note] + +DEFINE REDUCE_MIN(src, len) { + IF len == 2 + RETURN (src[31:0] < src[63:32] ? src[31:0] : src[63:32]) + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*32 + src[i+31:i] := (src[i+31:i] < src[i+32*len+31:i+32*len] ? src[i+31:i] : src[i+32*len+31:i+32*len]) + ENDFOR + RETURN REDUCE_MIN(src[32*len-1:0], len) +} +tmp := a +FOR j := 0 to 16 + i := j*32 + IF k[j] + tmp[i+31:i] := a[i+31:i] + ELSE + tmp[i+31:i] := Cast_FP32(0x7F7FFFFF) + FI +ENDFOR +dst[31:0] := REDUCE_MIN(tmp, 16) + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + Reduce the packed signed 32-bit integers in "a" by maximum. Returns the maximum of all elements in "a". + +DEFINE REDUCE_MAX(src, len) { + IF len == 2 + RETURN (src[31:0] > src[63:32] ? src[31:0] : src[63:32]) + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*32 + src[i+31:i] := (src[i+31:i] > src[i+32*len+31:i+32*len] ? src[i+31:i] : src[i+32*len+31:i+32*len]) + ENDFOR + RETURN REDUCE_MAX(src[32*len-1:0], len) +} +dst[31:0] := REDUCE_MAX(a, 16) + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + Reduce the packed signed 64-bit integers in "a" by maximum. Returns the maximum of all elements in "a". + +DEFINE REDUCE_MAX(src, len) { + IF len == 2 + RETURN (src[63:0] > src[127:64] ? src[63:0] : src[127:64]) + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*64 + src[i+63:i] := (src[i+63:i] > src[i+64*len+63:i+64*len] ? src[i+63:i] : src[i+64*len+63:i+64*len]) + ENDFOR + RETURN REDUCE_MAX(src[64*len-1:0], len) +} +dst[63:0] := REDUCE_MAX(a, 8) + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + Reduce the packed unsigned 32-bit integers in "a" by maximum. Returns the maximum of all elements in "a". + +DEFINE REDUCE_MAX(src, len) { + IF len == 2 + RETURN (src[31:0] > src[63:32] ? src[31:0] : src[63:32]) + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*32 + src[i+31:i] := (src[i+31:i] > src[i+32*len+31:i+32*len] ? src[i+31:i] : src[i+32*len+31:i+32*len]) + ENDFOR + RETURN REDUCE_MAX(src[32*len-1:0], len) +} +dst[31:0] := REDUCE_MAX(a, 16) + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + Reduce the packed unsigned 64-bit integers in "a" by maximum. Returns the maximum of all elements in "a". + +DEFINE REDUCE_MAX(src, len) { + IF len == 2 + RETURN (src[63:0] > src[127:64] ? src[63:0] : src[127:64]) + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*64 + src[i+63:i] := (src[i+63:i] > src[i+64*len+63:i+64*len] ? src[i+63:i] : src[i+64*len+63:i+64*len]) + ENDFOR + RETURN REDUCE_MAX(src[64*len-1:0], len) +} +dst[63:0] := REDUCE_MAX(a, 8) + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + Reduce the packed double-precision (64-bit) floating-point elements in "a" by maximum. Returns the maximum of all elements in "a". + +DEFINE REDUCE_MAX(src, len) { + IF len == 2 + RETURN (src[63:0] > src[127:64] ? src[63:0] : src[127:64]) + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*64 + src[i+63:i] := (src[i+63:i] > src[i+64*len+63:i+64*len] ? src[i+63:i] : src[i+64*len+63:i+64*len]) + ENDFOR + RETURN REDUCE_MAX(src[64*len-1:0], len) +} +dst[63:0] := REDUCE_MAX(a, 8) + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + Reduce the packed single-precision (32-bit) floating-point elements in "a" by maximum. Returns the maximum of all elements in "a". + +DEFINE REDUCE_MAX(src, len) { + IF len == 2 + RETURN (src[31:0] > src[63:32] ? src[31:0] : src[63:32]) + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*32 + src[i+31:i] := (src[i+31:i] > src[i+32*len+31:i+32*len] ? src[i+31:i] : src[i+32*len+31:i+32*len]) + ENDFOR + RETURN REDUCE_MAX(src[32*len-1:0], len) +} +dst[31:0] := REDUCE_MAX(a, 16) + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + Reduce the packed signed 32-bit integers in "a" by minimum. Returns the minimum of all elements in "a". + +DEFINE REDUCE_MIN(src, len) { + IF len == 2 + RETURN (src[31:0] < src[63:32] ? src[31:0] : src[63:32]) + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*32 + src[i+31:i] := (src[i+31:i] < src[i+32*len+31:i+32*len] ? src[i+31:i] : src[i+32*len+31:i+32*len]) + ENDFOR + RETURN REDUCE_MIN(src[32*len-1:0], len) +} +dst[31:0] := REDUCE_MIN(a, 16) + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + Reduce the packed signed 64-bit integers in "a" by minimum. Returns the minimum of all elements in "a". + +DEFINE REDUCE_MIN(src, len) { + IF len == 2 + RETURN (src[63:0] < src[127:64] ? src[63:0] : src[127:64]) + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*64 + src[i+63:i] := (src[i+63:i] < src[i+64*len+63:i+64*len] ? src[i+63:i] : src[i+64*len+63:i+64*len]) + ENDFOR + RETURN REDUCE_MIN(src[64*len-1:0], len) +} +dst[63:0] := REDUCE_MIN(a, 8) + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + Reduce the packed unsigned 32-bit integers in "a" by minimum. Returns the minimum of all elements in "a". + +DEFINE REDUCE_MIN(src, len) { + IF len == 2 + RETURN (src[31:0] < src[63:32] ? src[31:0] : src[63:32]) + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*32 + src[i+31:i] := (src[i+31:i] < src[i+32*len+31:i+32*len] ? src[i+31:i] : src[i+32*len+31:i+32*len]) + ENDFOR + RETURN REDUCE_MIN(src[32*len-1:0], len) +} +dst[31:0] := REDUCE_MIN(a, 16) + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + Reduce the packed unsigned 64-bit integers in "a" by minimum. Returns the minimum of all elements in "a". + +DEFINE REDUCE_MIN(src, len) { + IF len == 2 + RETURN (src[63:0] < src[127:64] ? src[63:0] : src[127:64]) + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*64 + src[i+63:i] := (src[i+63:i] < src[i+64*len+63:i+64*len] ? src[i+63:i] : src[i+64*len+63:i+64*len]) + ENDFOR + RETURN REDUCE_MIN(src[64*len-1:0], len) +} +dst[63:0] := REDUCE_MIN(a, 8) + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + Reduce the packed double-precision (64-bit) floating-point elements in "a" by minimum. Returns the minimum of all elements in "a". [min_float_note] + +DEFINE REDUCE_MIN(src, len) { + IF len == 2 + RETURN (src[63:0] < src[127:64] ? src[63:0] : src[127:64]) + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*64 + src[i+63:i] := (src[i+63:i] < src[i+64*len+63:i+64*len] ? src[i+63:i] : src[i+64*len+63:i+64*len]) + ENDFOR + RETURN REDUCE_MIN(src[64*len-1:0], len) +} +dst[63:0] := REDUCE_MIN(a, 8) + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + Reduce the packed single-precision (32-bit) floating-point elements in "a" by minimum. Returns the minimum of all elements in "a". [min_float_note] + +DEFINE REDUCE_MIN(src, len) { + IF len == 2 + RETURN (src[31:0] < src[63:32] ? src[31:0] : src[63:32]) + FI + len := len / 2 + FOR j:= 0 to (len-1) + i := j*32 + src[i+31:i] := (src[i+31:i] < src[i+32*len+31:i+32*len] ? src[i+31:i] : src[i+32*len+31:i+32*len]) + ENDFOR + RETURN REDUCE_MIN(src[32*len-1:0], len) +} +dst[31:0] := REDUCE_MIN(a, 16) + + AVX512F +
immintrin.h
+ Special Math Functions +
+ + + + + + + Shift packed 32-bit integers in "a" left by "imm8" while shifting in zeros, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + IF imm8[7:0] > 31 + dst[i+31:i] := 0 + ELSE + dst[i+31:i] := ZeroExtend32(a[i+31:i] << imm8[7:0]) + FI + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Shift +
+ + + + + Shift packed 32-bit integers in "a" left by "imm8" while shifting in zeros, and store the results in "dst". + +FOR j := 0 to 15 + i := j*32 + IF imm8[7:0] > 31 + dst[i+31:i] := 0 + ELSE + dst[i+31:i] := ZeroExtend32(a[i+31:i] << imm8[7:0]) + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Shift +
+ + + + + + + Shift packed 32-bit integers in "a" left by the amount specified by the corresponding element in "count" while shifting in zeros, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + IF count[i+31:i] < 32 + dst[i+31:i] := ZeroExtend32(a[i+31:i] << count[i+31:i]) + ELSE + dst[i+31:i] := 0 + FI + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Shift +
+ + + + + Shift packed 32-bit integers in "a" left by the amount specified by the corresponding element in "count" while shifting in zeros, and store the results in "dst". + +FOR j := 0 to 15 + i := j*32 + IF count[i+31:i] < 32 + dst[i+31:i] := ZeroExtend32(a[i+31:i] << count[i+31:i]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Shift +
+ + + + + + + Shift packed 32-bit integers in "a" right by "imm8" while shifting in sign bits, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + IF imm8[7:0] > 31 + dst[i+31:i] := (a[i+31] ? 0xFFFFFFFF : 0x0) + ELSE + dst[i+31:i] := SignExtend32(a[i+31:i] >> imm8[7:0]) + FI + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Shift +
+ + + + + Shift packed 32-bit integers in "a" right by "imm8" while shifting in sign bits, and store the results in "dst". + +FOR j := 0 to 15 + i := j*32 + IF imm8[7:0] > 31 + dst[i+31:i] := (a[i+31] ? 0xFFFFFFFF : 0x0) + ELSE + dst[i+31:i] := SignExtend32(a[i+31:i] >> imm8[7:0]) + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Shift +
+ + + + + + + Shift packed 32-bit integers in "a" right by the amount specified by the corresponding element in "count" while shifting in sign bits, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + IF count[i+31:i] < 32 + dst[i+31:i] := SignExtend32(a[i+31:i] >> count[i+31:i]) + ELSE + dst[i+31:i] := (a[i+31] ? 0xFFFFFFFF : 0) + FI + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Shift +
+ + + + + Shift packed 32-bit integers in "a" right by the amount specified by the corresponding element in "count" while shifting in sign bits, and store the results in "dst". + +FOR j := 0 to 15 + i := j*32 + IF count[i+31:i] < 32 + dst[i+31:i] := SignExtend32(a[i+31:i] >> count[i+31:i]) + ELSE + dst[i+31:i] := (a[i+31] ? 0xFFFFFFFF : 0) + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Shift +
+ + + + + + + Shift packed 32-bit integers in "a" right by "imm8" while shifting in zeros, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + IF imm8[7:0] > 31 + dst[i+31:i] := 0 + ELSE + dst[i+31:i] := ZeroExtend32(a[i+31:i] >> imm8[7:0]) + FI + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Shift +
+ + + + + Shift packed 32-bit integers in "a" right by "imm8" while shifting in zeros, and store the results in "dst". + +FOR j := 0 to 15 + i := j*32 + IF imm8[7:0] > 31 + dst[i+31:i] := 0 + ELSE + dst[i+31:i] := ZeroExtend32(a[i+31:i] >> imm8[7:0]) + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Shift +
+ + + + + + + Shift packed 32-bit integers in "a" right by the amount specified by the corresponding element in "count" while shifting in zeros, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + IF count[i+31:i] < 32 + dst[i+31:i] := ZeroExtend32(a[i+31:i] >> count[i+31:i]) + ELSE + dst[i+31:i] := 0 + FI + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Shift +
+ + + + + Shift packed 32-bit integers in "a" right by the amount specified by the corresponding element in "count" while shifting in zeros, and store the results in "dst". + +FOR j := 0 to 15 + i := j*32 + IF count[i+31:i] < 32 + dst[i+31:i] := ZeroExtend32(a[i+31:i] >> count[i+31:i]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Shift +
+ + + + Cast vector of type __m512d to type __m512. + This intrinsic is only used for compilation and does not generate any instructions, thus it has zero latency. + AVX512F +
immintrin.h
+ Cast +
+ + + + Cast vector of type __m512d to type __m512i. + This intrinsic is only used for compilation and does not generate any instructions, thus it has zero latency. + AVX512F +
immintrin.h
+ Cast +
+ + + + Cast vector of type __m512 to type __m512d. + This intrinsic is only used for compilation and does not generate any instructions, thus it has zero latency. + AVX512F +
immintrin.h
+ Cast +
+ + + + Cast vector of type __m512 to type __m512i. + This intrinsic is only used for compilation and does not generate any instructions, thus it has zero latency. + AVX512F +
immintrin.h
+ Cast +
+ + + + Cast vector of type __m512i to type __m512d. + This intrinsic is only used for compilation and does not generate any instructions, thus it has zero latency. + AVX512F +
immintrin.h
+ Cast +
+ + + + Cast vector of type __m512i to type __m512. + This intrinsic is only used for compilation and does not generate any instructions, thus it has zero latency. + AVX512F +
immintrin.h
+ Cast +
+ + + + Performs element-by-element conversion of the lower half of packed single-precision (32-bit) floating-point elements in "v2" to packed double-precision (64-bit) floating-point elements, storing the results in "dst". + +FOR j := 0 to 7 + i := j*32 + n := j*64 + dst[n+63:n] := Convert_FP32_To_FP64(v2[i+31:i]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + + Performs element-by-element conversion of the lower half of packed single-precision (32-bit) floating-point elements in "v2" to packed double-precision (64-bit) floating-point elements, storing the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + l := j*64 + IF k[j] + dst[l+63:l] := Convert_FP32_To_FP64(v2[i+31:i]) + ELSE + dst[l+63:l] := src[l+63:l] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + Performs element-by-element conversion of the lower half of packed 32-bit integer elements in "v2" to packed double-precision (64-bit) floating-point elements, storing the results in "dst". + +FOR j := 0 to 7 + i := j*32 + l := j*64 + dst[l+63:l] := Convert_Int32_To_FP64(v2[i+31:i]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + + Performs element-by-element conversion of the lower half of packed 32-bit integer elements in "v2" to packed double-precision (64-bit) floating-point elements, storing the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + n := j*64 + IF k[j] + dst[n+63:n] := Convert_Int32_To_FP64(v2[i+31:i]) + ELSE + dst[n+63:n] := src[n+63:n] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + Performs element-by-element conversion of the lower half of packed 32-bit unsigned integer elements in "v2" to packed double-precision (64-bit) floating-point elements, storing the results in "dst". + +FOR j := 0 to 7 + i := j*32 + n := j*64 + dst[n+63:n] := Convert_Int32_To_FP64(v2[i+31:i]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + + Performs element-by-element conversion of the lower half of 32-bit unsigned integer elements in "v2" to packed double-precision (64-bit) floating-point elements, storing the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + l := j*64 + IF k[j] + dst[l+63:l] := Convert_Int32_To_FP64(v2[i+31:i]) + ELSE + dst[l+63:l] := src[l+63:l] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + Performs an element-by-element conversion of packed double-precision (64-bit) floating-point elements in "v2" to single-precision (32-bit) floating-point elements and stores them in "dst". The elements are stored in the lower half of the results vector, while the remaining upper half locations are set to 0. + +FOR j := 0 to 7 + i := j*64 + k := j*32 + dst[k+31:k] := Convert_FP64_To_FP32(v2[i+63:i]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + + Performs an element-by-element conversion of packed double-precision (64-bit) floating-point elements in "v2" to single-precision (32-bit) floating-point elements and stores them in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). The elements are stored in the lower half of the results vector, while the remaining upper half locations are set to 0. + +FOR j := 0 to 7 + i := j*64 + l := j*32 + IF k[j] + dst[l+31:l] := Convert_FP64_To_FP32(v2[i+63:i]) + ELSE + dst[l+31:l] := src[l+31:l] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512F +
immintrin.h
+ Convert +
+ + + + + + + Stores 8 packed 64-bit integer elements located in "a" and stores them in memory locations starting at location "base_addr" at packed 32-bit integer indices stored in "vindex" scaled by "scale". + +FOR j := 0 to 7 + i := j*64 + m := j*32 + addr := base_addr + SignExtend64(vindex[m+31:m]) * ZeroExtend64(scale) * 8 + MEM[addr+63:addr] := a[i+63:i] +ENDFOR + + + AVX512F +
immintrin.h
+ Store +
+ + + + + + + + Stores 8 packed 64-bit integer elements located in "a" and stores them in memory locations starting at location "base_addr" at packed 32-bit integer indices stored in "vindex" scaled by "scale" using writemask "k" (elements whose corresponding mask bit is not set are not written to memory). + +FOR j := 0 to 7 + i := j*64 + m := j*32 + IF k[j] + addr := base_addr + SignExtend64(vindex[m+31:m]) * ZeroExtend64(scale) * 8 + MEM[addr+63:addr] := a[i+63:i] + FI +ENDFOR + + + AVX512F +
immintrin.h
+ Store +
+ + + + + + + Multiply packed unsigned 52-bit integers in each 64-bit element of "b" and "c" to form a 104-bit intermediate result. Add the low 52-bit unsigned integer from the intermediate result with the corresponding unsigned 64-bit integer in "a", and store the results in "dst". + +FOR j := 0 to 3 + i := j*64 + tmp[127:0] := ZeroExtend64(b[i+51:i]) * ZeroExtend64(c[i+51:i]) + dst[i+63:i] := a[i+63:i] + ZeroExtend64(tmp[51:0]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512IFMA52 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed unsigned 52-bit integers in each 64-bit element of "b" and "c" to form a 104-bit intermediate result. Add the low 52-bit unsigned integer from the intermediate result with the corresponding unsigned 64-bit integer in "a", and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + tmp[127:0] := ZeroExtend64(b[i+51:i]) * ZeroExtend64(c[i+51:i]) + dst[i+63:i] := a[i+63:i] + ZeroExtend64(tmp[51:0]) + ELSE + dst[i+63:i] := a[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512IFMA52 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed unsigned 52-bit integers in each 64-bit element of "b" and "c" to form a 104-bit intermediate result. Add the low 52-bit unsigned integer from the intermediate result with the corresponding unsigned 64-bit integer in "a", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + tmp[127:0] := ZeroExtend64(b[i+51:i]) * ZeroExtend64(c[i+51:i]) + dst[i+63:i] := a[i+63:i] + ZeroExtend64(tmp[51:0]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512IFMA52 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply packed unsigned 52-bit integers in each 64-bit element of "b" and "c" to form a 104-bit intermediate result. Add the low 52-bit unsigned integer from the intermediate result with the corresponding unsigned 64-bit integer in "a", and store the results in "dst". + +FOR j := 0 to 1 + i := j*64 + tmp[127:0] := ZeroExtend64(b[i+51:i]) * ZeroExtend64(c[i+51:i]) + dst[i+63:i] := a[i+63:i] + ZeroExtend64(tmp[51:0]) +ENDFOR +dst[MAX:128] := 0 + + + AVX512IFMA52 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed unsigned 52-bit integers in each 64-bit element of "b" and "c" to form a 104-bit intermediate result. Add the low 52-bit unsigned integer from the intermediate result with the corresponding unsigned 64-bit integer in "a", and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + tmp[127:0] := ZeroExtend64(b[i+51:i]) * ZeroExtend64(c[i+51:i]) + dst[i+63:i] := a[i+63:i] + ZeroExtend64(tmp[51:0]) + ELSE + dst[i+63:i] := a[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512IFMA52 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed unsigned 52-bit integers in each 64-bit element of "b" and "c" to form a 104-bit intermediate result. Add the low 52-bit unsigned integer from the intermediate result with the corresponding unsigned 64-bit integer in "a", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + tmp[127:0] := ZeroExtend64(b[i+51:i]) * ZeroExtend64(c[i+51:i]) + dst[i+63:i] := a[i+63:i] + ZeroExtend64(tmp[51:0]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512IFMA52 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply packed unsigned 52-bit integers in each 64-bit element of "b" and "c" to form a 104-bit intermediate result. Add the high 52-bit unsigned integer from the intermediate result with the corresponding unsigned 64-bit integer in "a", and store the results in "dst". + +FOR j := 0 to 3 + i := j*64 + tmp[127:0] := ZeroExtend64(b[i+51:i]) * ZeroExtend64(c[i+51:i]) + dst[i+63:i] := a[i+63:i] + ZeroExtend64(tmp[103:52]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512IFMA52 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed unsigned 52-bit integers in each 64-bit element of "b" and "c" to form a 104-bit intermediate result. Add the high 52-bit unsigned integer from the intermediate result with the corresponding unsigned 64-bit integer in "a", and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + tmp[127:0] := ZeroExtend64(b[i+51:i]) * ZeroExtend64(c[i+51:i]) + dst[i+63:i] := a[i+63:i] + ZeroExtend64(tmp[103:52]) + ELSE + dst[i+63:i] := a[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512IFMA52 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed unsigned 52-bit integers in each 64-bit element of "b" and "c" to form a 104-bit intermediate result. Add the high 52-bit unsigned integer from the intermediate result with the corresponding unsigned 64-bit integer in "a", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + tmp[127:0] := ZeroExtend64(b[i+51:i]) * ZeroExtend64(c[i+51:i]) + dst[i+63:i] := a[i+63:i] + ZeroExtend64(tmp[103:52]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512IFMA52 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply packed unsigned 52-bit integers in each 64-bit element of "b" and "c" to form a 104-bit intermediate result. Add the high 52-bit unsigned integer from the intermediate result with the corresponding unsigned 64-bit integer in "a", and store the results in "dst". + +FOR j := 0 to 1 + i := j*64 + tmp[127:0] := ZeroExtend64(b[i+51:i]) * ZeroExtend64(c[i+51:i]) + dst[i+63:i] := a[i+63:i] + ZeroExtend64(tmp[103:52]) +ENDFOR +dst[MAX:128] := 0 + + + AVX512IFMA52 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed unsigned 52-bit integers in each 64-bit element of "b" and "c" to form a 104-bit intermediate result. Add the high 52-bit unsigned integer from the intermediate result with the corresponding unsigned 64-bit integer in "a", and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + tmp[127:0] := ZeroExtend64(b[i+51:i]) * ZeroExtend64(c[i+51:i]) + dst[i+63:i] := a[i+63:i] + ZeroExtend64(tmp[103:52]) + ELSE + dst[i+63:i] := a[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512IFMA52 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed unsigned 52-bit integers in each 64-bit element of "b" and "c" to form a 104-bit intermediate result. Add the high 52-bit unsigned integer from the intermediate result with the corresponding unsigned 64-bit integer in "a", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + tmp[127:0] := ZeroExtend64(b[i+51:i]) * ZeroExtend64(c[i+51:i]) + dst[i+63:i] := a[i+63:i] + ZeroExtend64(tmp[103:52]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512IFMA52 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply packed unsigned 52-bit integers in each 64-bit element of "b" and "c" to form a 104-bit intermediate result. Add the low 52-bit unsigned integer from the intermediate result with the corresponding unsigned 64-bit integer in "a", and store the results in "dst". + +FOR j := 0 to 7 + i := j*64 + tmp[127:0] := ZeroExtend64(b[i+51:i]) * ZeroExtend64(c[i+51:i]) + dst[i+63:i] := a[i+63:i] + ZeroExtend64(tmp[51:0]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512IFMA52 +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed unsigned 52-bit integers in each 64-bit element of "b" and "c" to form a 104-bit intermediate result. Add the low 52-bit unsigned integer from the intermediate result with the corresponding unsigned 64-bit integer in "a", and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + tmp[127:0] := ZeroExtend64(b[i+51:i]) * ZeroExtend64(c[i+51:i]) + dst[i+63:i] := a[i+63:i] + ZeroExtend64(tmp[51:0]) + ELSE + dst[i+63:i] := a[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512IFMA52 +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed unsigned 52-bit integers in each 64-bit element of "b" and "c" to form a 104-bit intermediate result. Add the low 52-bit unsigned integer from the intermediate result with the corresponding unsigned 64-bit integer in "a", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + tmp[127:0] := ZeroExtend64(b[i+51:i]) * ZeroExtend64(c[i+51:i]) + dst[i+63:i] := a[i+63:i] + ZeroExtend64(tmp[51:0]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512IFMA52 +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply packed unsigned 52-bit integers in each 64-bit element of "b" and "c" to form a 104-bit intermediate result. Add the high 52-bit unsigned integer from the intermediate result with the corresponding unsigned 64-bit integer in "a", and store the results in "dst". + +FOR j := 0 to 7 + i := j*64 + tmp[127:0] := ZeroExtend64(b[i+51:i]) * ZeroExtend64(c[i+51:i]) + dst[i+63:i] := a[i+63:i] + ZeroExtend64(tmp[103:52]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512IFMA52 +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed unsigned 52-bit integers in each 64-bit element of "b" and "c" to form a 104-bit intermediate result. Add the high 52-bit unsigned integer from the intermediate result with the corresponding unsigned 64-bit integer in "a", and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + tmp[127:0] := ZeroExtend64(b[i+51:i]) * ZeroExtend64(c[i+51:i]) + dst[i+63:i] := a[i+63:i] + ZeroExtend64(tmp[103:52]) + ELSE + dst[i+63:i] := a[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512IFMA52 +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed unsigned 52-bit integers in each 64-bit element of "b" and "c" to form a 104-bit intermediate result. Add the high 52-bit unsigned integer from the intermediate result with the corresponding unsigned 64-bit integer in "a", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + tmp[127:0] := ZeroExtend64(b[i+51:i]) * ZeroExtend64(c[i+51:i]) + dst[i+63:i] := a[i+63:i] + ZeroExtend64(tmp[103:52]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512IFMA52 +
immintrin.h
+ Arithmetic +
+ + + + + + + Count the number of logical 1 bits in packed 64-bit integers in "a", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +DEFINE POPCNT(a) { + count := 0 + DO WHILE a > 0 + count += a[0] + a >>= 1 + OD + RETURN count +} +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := POPCNT(a[i+63:i]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512VPOPCNTDQ + AVX512VL +
immintrin.h
+ Bit Manipulation +
+ + + + + + Count the number of logical 1 bits in packed 64-bit integers in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +DEFINE POPCNT(a) { + count := 0 + DO WHILE a > 0 + count += a[0] + a >>= 1 + OD + RETURN count +} +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := POPCNT(a[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512VPOPCNTDQ + AVX512VL +
immintrin.h
+ Bit Manipulation +
+ + + + Count the number of logical 1 bits in packed 64-bit integers in "a", and store the results in "dst". + +DEFINE POPCNT(a) { + count := 0 + DO WHILE a > 0 + count += a[0] + a >>= 1 + OD + RETURN count +} +FOR j := 0 to 3 + i := j*64 + dst[i+63:i] := POPCNT(a[i+63:i]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512VPOPCNTDQ + AVX512VL +
immintrin.h
+ Bit Manipulation +
+ + + + + Count the number of logical 1 bits in packed 64-bit integers in "a", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +DEFINE POPCNT(a) { + count := 0 + DO WHILE a > 0 + count += a[0] + a >>= 1 + OD + RETURN count +} +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := POPCNT(a[i+63:i]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512VPOPCNTDQ + AVX512VL +
immintrin.h
+ Bit Manipulation +
+ + + + + + Count the number of logical 1 bits in packed 64-bit integers in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +DEFINE POPCNT(a) { + count := 0 + DO WHILE a > 0 + count += a[0] + a >>= 1 + OD + RETURN count +} +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := POPCNT(a[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512VPOPCNTDQ + AVX512VL +
immintrin.h
+ Bit Manipulation +
+ + + + Count the number of logical 1 bits in packed 64-bit integers in "a", and store the results in "dst". + +DEFINE POPCNT(a) { + count := 0 + DO WHILE a > 0 + count += a[0] + a >>= 1 + OD + RETURN count +} +FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := POPCNT(a[i+63:i]) +ENDFOR +dst[MAX:128] := 0 + + + AVX512VPOPCNTDQ + AVX512VL +
immintrin.h
+ Bit Manipulation +
+ + + + Count the number of logical 1 bits in packed 32-bit integers in "a", and store the results in "dst". + +DEFINE POPCNT(a) { + count := 0 + DO WHILE a > 0 + count += a[0] + a >>= 1 + OD + RETURN count +} +FOR j := 0 to 7 + i := j*32 + dst[i+31:i] := POPCNT(a[i+31:i]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512VPOPCNTDQ + AVX512VL +
immintrin.h
+ Bit Manipulation +
+ + + + + + Count the number of logical 1 bits in packed 32-bit integers in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +DEFINE POPCNT(a) { + count := 0 + DO WHILE a > 0 + count += a[0] + a >>= 1 + OD + RETURN count +} +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := POPCNT(a[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512VPOPCNTDQ + AVX512VL +
immintrin.h
+ Bit Manipulation +
+ + + + + Count the number of logical 1 bits in packed 32-bit integers in "a", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +DEFINE POPCNT(a) { + count := 0 + DO WHILE a > 0 + count += a[0] + a >>= 1 + OD + RETURN count +} +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := POPCNT(a[i+31:i]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512VPOPCNTDQ + AVX512VL +
immintrin.h
+ Bit Manipulation +
+ + + + Count the number of logical 1 bits in packed 32-bit integers in "a", and store the results in "dst". + +DEFINE POPCNT(a) { + count := 0 + DO WHILE a > 0 + count += a[0] + a >>= 1 + OD + RETURN count +} +FOR j := 0 to 3 + i := j*32 + dst[i+31:i] := POPCNT(a[i+31:i]) +ENDFOR +dst[MAX:128] := 0 + + + AVX512VPOPCNTDQ + AVX512VL +
immintrin.h
+ Bit Manipulation +
+ + + + + + Count the number of logical 1 bits in packed 32-bit integers in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +DEFINE POPCNT(a) { + count := 0 + DO WHILE a > 0 + count += a[0] + a >>= 1 + OD + RETURN count +} +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := POPCNT(a[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512VPOPCNTDQ + AVX512VL +
immintrin.h
+ Bit Manipulation +
+ + + + + Count the number of logical 1 bits in packed 32-bit integers in "a", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +DEFINE POPCNT(a) { + count := 0 + DO WHILE a > 0 + count += a[0] + a >>= 1 + OD + RETURN count +} +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := POPCNT(a[i+31:i]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512VPOPCNTDQ + AVX512VL +
immintrin.h
+ Bit Manipulation +
+ + + + + + Count the number of logical 1 bits in packed 32-bit integers in "a", and store the results in "dst". + +DEFINE POPCNT(a) { + count := 0 + DO WHILE a > 0 + count += a[0] + a >>= 1 + OD + RETURN count +} +FOR j := 0 to 15 + i := j*32 + dst[i+31:i] := POPCNT(a[i+31:i]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512VPOPCNTDQ +
immintrin.h
+ Bit Manipulation +
+ + + + + + Count the number of logical 1 bits in packed 32-bit integers in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +DEFINE POPCNT(a) { + count := 0 + DO WHILE a > 0 + count += a[0] + a >>= 1 + OD + RETURN count +} +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := POPCNT(a[i+31:i]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512VPOPCNTDQ +
immintrin.h
+ Bit Manipulation +
+ + + + + Count the number of logical 1 bits in packed 32-bit integers in "a", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +DEFINE POPCNT(a) { + count := 0 + DO WHILE a > 0 + count += a[0] + a >>= 1 + OD + RETURN count +} +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := POPCNT(a[i+31:i]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512VPOPCNTDQ +
immintrin.h
+ Bit Manipulation +
+ + + + Count the number of logical 1 bits in packed 64-bit integers in "a", and store the results in "dst". + +DEFINE POPCNT(a) { + count := 0 + DO WHILE a > 0 + count += a[0] + a >>= 1 + OD + RETURN count +} +FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := POPCNT(a[i+63:i]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512VPOPCNTDQ +
immintrin.h
+ Bit Manipulation +
+ + + + + + Count the number of logical 1 bits in packed 64-bit integers in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +DEFINE POPCNT(a) { + count := 0 + DO WHILE a > 0 + count += a[0] + a >>= 1 + OD + RETURN count +} +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := POPCNT(a[i+63:i]) + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512VPOPCNTDQ +
immintrin.h
+ Bit Manipulation +
+ + + + + Count the number of logical 1 bits in packed 64-bit integers in "a", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +DEFINE POPCNT(a) { + count := 0 + DO WHILE a > 0 + count += a[0] + a >>= 1 + OD + RETURN count +} +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := POPCNT(a[i+63:i]) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512VPOPCNTDQ +
immintrin.h
+ Bit Manipulation +
+ + + + + + Convert packed BF16 (16-bit) floating-point elements in "a" to packed single-precision (32-bit) floating-point elements, and store the results in "dst". This intrinsic neither raises any floating point exceptions nor turns sNAN into qNAN. + +FOR j := 0 to 15 + i := j*32 + m := j*16 + dst[i+31:i] := Convert_BF16_To_FP32(a[m+15:m]) +ENDFOR +dst[MAX:512] := 0 + + AVX512_BF16 + AVX512F +
immintrin.h
+ Convert +
+ + + + + Convert packed BF16 (16-bit) floating-point elements in "a" to packed single-precision (32-bit) floating-point elements, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). This intrinsic neither raises any floating point exceptions nor turns sNAN into qNAN. + +FOR j := 0 to 15 + i := j*32 + m := j*16 + IF k[j] + dst[i+31:i] := Convert_BF16_To_FP32(a[m+15:m]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + AVX512_BF16 + AVX512F +
immintrin.h
+ Convert +
+ + + + + + Convert packed BF16 (16-bit) floating-point elements in "a" to packed single-precision (32-bit) floating-point elements, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). This intrinsic neither raises any floating point exceptions nor turns sNAN into qNAN. + +FOR j := 0 to 15 + i := j*32 + m := j*16 + IF k[j] + dst[i+31:i] := Convert_BF16_To_FP32(a[m+15:m]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + AVX512_BF16 + AVX512F +
immintrin.h
+ Convert +
+ + + + Convert the BF16 (16-bit) floating-point element in "a" to a floating-point element, and store the result in "dst". This intrinsic neither raises any floating point exceptions nor turns sNAN into qNAN. + +dst[31:0] := Convert_BF16_To_FP32(a[15:0]) + + AVX512_BF16 + AVX512F +
immintrin.h
+ Convert +
+ + + + + Convert packed single-precision (32-bit) floating-point elements in two vectors "a" and "b" to packed BF16 (16-bit) floating-point elements, and store the results in single vector "dst". + +FOR j := 0 to 31 + IF j < 16 + t := b.fp32[j] + ELSE + t := a.fp32[j-16] + FI + dst.word[j] := Convert_FP32_To_BF16(t) +ENDFOR +dst[MAX:512] := 0 + + + AVX512_BF16 + AVX512F +
immintrin.h
+ Convert +
+ + + + + + + Convert packed single-precision (32-bit) floating-point elements in two vectors "a" and "b" to packed BF16 (16-bit) floating-point elements, and store the results in single vector "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 31 + IF k[j] + IF j < 16 + t := b.fp32[j] + ELSE + t := a.fp32[j-16] + FI + dst.word[j] := Convert_FP32_To_BF16(t) + ELSE + dst.word[j] := src.word[j] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_BF16 + AVX512F +
immintrin.h
+ Convert +
+ + + + + + Convert packed single-precision (32-bit) floating-point elements in two vectors "a" and "b" to packed BF16 (16-bit) floating-point elements, and store the results in single vector "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 31 + IF k[j] + IF j < 16 + t := b.fp32[j] + ELSE + t := a.fp32[j-16] + FI + dst.word[j] := Convert_FP32_To_BF16(t) + ELSE + dst.word[j] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_BF16 + AVX512F +
immintrin.h
+ Convert +
+ + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed BF16 (16-bit) floating-point elements, and store the results in "dst". + +FOR j := 0 to 15 + dst.word[j] := Convert_FP32_To_BF16(a.fp32[j]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512_BF16 + AVX512F +
immintrin.h
+ Convert +
+ + + + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed BF16 (16-bit) floating-point elements, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + IF k[j] + dst.word[j] := Convert_FP32_To_BF16(a.fp32[j]) + ELSE + dst.word[j] := src.word[j] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_BF16 + AVX512F +
immintrin.h
+ Convert +
+ + + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed BF16 (16-bit) floating-point elements, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + IF k[j] + dst.word[j] := Convert_FP32_To_BF16(a.fp32[j]) + ELSE + dst.word[j] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_BF16 + AVX512F +
immintrin.h
+ Convert +
+ + + + + + Compute dot-product of BF16 (16-bit) floating-point pairs in "a" and "b", accumulating the intermediate single-precision (32-bit) floating-point elements with elements in "src", and store the results in "dst". + +DEFINE make_fp32(x[15:0]) { + y.fp32 := 0.0 + y[31:16] := x[15:0] + RETURN y +} +dst := src +FOR j := 0 to 15 + dst.fp32[j] += make_fp32(a.bf16[2*j+1]) * make_fp32(b.bf16[2*j+1]) + dst.fp32[j] += make_fp32(a.bf16[2*j+0]) * make_fp32(b.bf16[2*j+0]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512_BF16 + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Compute dot-product of BF16 (16-bit) floating-point pairs in "a" and "b", accumulating the intermediate single-precision (32-bit) floating-point elements with elements in "src", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +DEFINE make_fp32(x[15:0]) { + y.fp32 := 0.0 + y[31:16] := x[15:0] + RETURN y +} +dst := src +FOR j := 0 to 15 + IF k[j] + dst.fp32[j] += make_fp32(a.bf16[2*j+1]) * make_fp32(b.bf16[2*j+1]) + dst.fp32[j] += make_fp32(a.bf16[2*j+0]) * make_fp32(b.bf16[2*j+0]) + ELSE + dst.dword[j] := src.dword[j] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_BF16 + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Compute dot-product of BF16 (16-bit) floating-point pairs in "a" and "b", accumulating the intermediate single-precision (32-bit) floating-point elements with elements in "src", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +DEFINE make_fp32(x[15:0]) { + y.fp32 := 0.0 + y[31:16] := x[15:0] + RETURN y +} +dst := src +FOR j := 0 to 15 + IF k[j] + dst.fp32[j] += make_fp32(a.bf16[2*j+1]) * make_fp32(b.bf16[2*j+1]) + dst.fp32[j] += make_fp32(a.bf16[2*j+0]) * make_fp32(b.bf16[2*j+0]) + ELSE + dst.dword[j] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_BF16 + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + Convert packed BF16 (16-bit) floating-point elements in "a" to packed single-precision (32-bit) floating-point elements, and store the results in "dst". This intrinsic neither raises any floating point exceptions nor turns sNAN into qNAN. + +FOR j := 0 to 3 + i := j*32 + m := j*16 + dst[i+31:i] := Convert_BF16_To_FP32(a[m+15:m]) +ENDFOR +dst[MAX:128] := 0 + + AVX512_BF16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed BF16 (16-bit) floating-point elements in "a" to packed single-precision (32-bit) floating-point elements, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). This intrinsic neither raises any floating point exceptions nor turns sNAN into qNAN. + +FOR j := 0 to 3 + i := j*32 + m := j*16 + IF k[j] + dst[i+31:i] := Convert_BF16_To_FP32(a[m+15:m]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + AVX512_BF16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed BF16 (16-bit) floating-point elements in "a" to packed single-precision (32-bit) floating-point elements, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). This intrinsic neither raises any floating point exceptions nor turns sNAN into qNAN. + +FOR j := 0 to 3 + i := j*32 + m := j*16 + IF k[j] + dst[i+31:i] := Convert_BF16_To_FP32(a[m+15:m]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + AVX512_BF16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed BF16 (16-bit) floating-point elements in "a" to packed single-precision (32-bit) floating-point elements, and store the results in "dst". This intrinsic neither raises any floating point exceptions nor turns sNAN into qNAN. + +FOR j := 0 to 7 + i := j*32 + m := j*16 + dst[i+31:i] := Convert_BF16_To_FP32(a[m+15:m]) +ENDFOR +dst[MAX:256] := 0 + + AVX512_BF16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed BF16 (16-bit) floating-point elements in "a" to packed single-precision (32-bit) floating-point elements, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). This intrinsic neither raises any floating point exceptions nor turns sNAN into qNAN. + +FOR j := 0 to 7 + i := j*32 + m := j*16 + IF k[j] + dst[i+31:i] := Convert_BF16_To_FP32(a[m+15:m]) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + AVX512_BF16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed BF16 (16-bit) floating-point elements in "a" to packed single-precision (32-bit) floating-point elements, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). This intrinsic neither raises any floating point exceptions nor turns sNAN into qNAN. + +FOR j := 0 to 7 + i := j*32 + m := j*16 + IF k[j] + dst[i+31:i] := Convert_BF16_To_FP32(a[m+15:m]) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + AVX512_BF16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert the single-precision (32-bit) floating-point element in "a" to a BF16 (16-bit) floating-point element, and store the result in "dst". + +dst[15:0] := Convert_FP32_To_BF16(a[31:0]) + + AVX512_BF16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed single-precision (32-bit) floating-point elements in two vectors "a" and "b" to packed BF16 (16-bit) floating-point elements, and store the results in single vector "dst". + +FOR j := 0 to 7 + IF j < 4 + t := b.fp32[j] + ELSE + t := a.fp32[j-4] + FI + dst.word[j] := Convert_FP32_To_BF16(t) +ENDFOR +dst[MAX:128] := 0 + + + AVX512_BF16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + + Convert packed single-precision (32-bit) floating-point elements in two vectors "a" and "b" to packed BF16 (16-bit) floating-point elements, and store the results in single vector "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + IF k[j] + IF j < 4 + t := b.fp32[j] + ELSE + t := a.fp32[j-4] + FI + dst.word[j] := Convert_FP32_To_BF16(t) + ELSE + dst.word[j] := src.word[j] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_BF16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed single-precision (32-bit) floating-point elements in two vectors "a" and "b" to packed BF16 (16-bit) floating-point elements, and store the results in single vector "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + IF k[j] + IF j < 4 + t := b.fp32[j] + ELSE + t := a.fp32[j-4] + FI + dst.word[j] := Convert_FP32_To_BF16(t) + ELSE + dst.word[j] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_BF16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed single-precision (32-bit) floating-point elements in two vectors "a" and "b" to packed BF16 (16-bit) floating-point elements, and store the results in single vector "dst". + +FOR j := 0 to 15 + IF j < 8 + t := b.fp32[j] + ELSE + t := a.fp32[j-8] + FI + dst.word[j] := Convert_FP32_To_BF16(t) +ENDFOR +dst[MAX:256] := 0 + + + AVX512_BF16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + + Convert packed single-precision (32-bit) floating-point elements in two vectors "a" and "b" to packed BF16 (16-bit) floating-point elements, and store the results in single vector "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + IF k[j] + IF j < 8 + t := b.fp32[j] + ELSE + t := a.fp32[j-8] + FI + dst.word[j] := Convert_FP32_To_BF16(t) + ELSE + dst.word[j] := src.word[j] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_BF16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed single-precision (32-bit) floating-point elements in two vectors "a" and "b" to packed BF16 (16-bit) floating-point elements, and store the results in single vector "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + IF k[j] + IF j < 8 + t := b.fp32[j] + ELSE + t := a.fp32[j-8] + FI + dst.word[j] := Convert_FP32_To_BF16(t) + ELSE + dst.word[j] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_BF16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed BF16 (16-bit) floating-point elements, and store the results in "dst". + +FOR j := 0 to 3 + dst.word[j] := Convert_FP32_To_BF16(a.fp32[j]) +ENDFOR +dst[MAX:128] := 0 + + + AVX512_BF16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed BF16 (16-bit) floating-point elements, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + IF k[j] + dst.word[j] := Convert_FP32_To_BF16(a.fp32[j]) + ELSE + dst.word[j] := src.word[j] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_BF16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed BF16 (16-bit) floating-point elements, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + IF k[j] + dst.word[j] := Convert_FP32_To_BF16(a.fp32[j]) + ELSE + dst.word[j] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_BF16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed BF16 (16-bit) floating-point elements, and store the results in "dst". + +FOR j := 0 to 7 + dst.word[j] := Convert_FP32_To_BF16(a.fp32[j]) +ENDFOR +dst[MAX:128] := 0 + + + AVX512_BF16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed BF16 (16-bit) floating-point elements, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + IF k[j] + dst.word[j] := Convert_FP32_To_BF16(a.fp32[j]) + ELSE + dst.word[j] := src.word[j] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_BF16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed BF16 (16-bit) floating-point elements, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + IF k[j] + dst.word[j] := Convert_FP32_To_BF16(a.fp32[j]) + ELSE + dst.word[j] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_BF16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Compute dot-product of BF16 (16-bit) floating-point pairs in "a" and "b", accumulating the intermediate single-precision (32-bit) floating-point elements with elements in "src", and store the results in "dst". + +DEFINE make_fp32(x[15:0]) { + y.fp32 := 0.0 + y[31:16] := x[15:0] + RETURN y +} +dst := src +FOR j := 0 to 3 + dst.fp32[j] += make_fp32(a.bf16[2*j+1]) * make_fp32(b.bf16[2*j+1]) + dst.fp32[j] += make_fp32(a.bf16[2*j+0]) * make_fp32(b.bf16[2*j+0]) +ENDFOR +dst[MAX:128] := 0 + + + AVX512_BF16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Compute dot-product of BF16 (16-bit) floating-point pairs in "a" and "b", accumulating the intermediate single-precision (32-bit) floating-point elements with elements in "src", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +DEFINE make_fp32(x[15:0]) { + y.fp32 := 0.0 + y[31:16] := x[15:0] + RETURN y +} +dst := src +FOR j := 0 to 3 + IF k[j] + dst.fp32[j] += make_fp32(a.bf16[2*j+1]) * make_fp32(b.bf16[2*j+1]) + dst.fp32[j] += make_fp32(a.bf16[2*j+0]) * make_fp32(b.bf16[2*j+0]) + ELSE + dst.dword[j] := src.dword[j] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_BF16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Compute dot-product of BF16 (16-bit) floating-point pairs in "a" and "b", accumulating the intermediate single-precision (32-bit) floating-point elements with elements in "src", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +DEFINE make_fp32(x[15:0]) { + y.fp32 := 0.0 + y[31:16] := x[15:0] + RETURN y +} +dst := src +FOR j := 0 to 3 + IF k[j] + dst.fp32[j] += make_fp32(a.bf16[2*j+1]) * make_fp32(b.bf16[2*j+1]) + dst.fp32[j] += make_fp32(a.bf16[2*j+0]) * make_fp32(b.bf16[2*j+0]) + ELSE + dst.dword[j] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_BF16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Compute dot-product of BF16 (16-bit) floating-point pairs in "a" and "b", accumulating the intermediate single-precision (32-bit) floating-point elements with elements in "src", and store the results in "dst". + +DEFINE make_fp32(x[15:0]) { + y.fp32 := 0.0 + y[31:16] := x[15:0] + RETURN y +} +dst := src +FOR j := 0 to 7 + dst.fp32[j] += make_fp32(a.bf16[2*j+1]) * make_fp32(b.bf16[2*j+1]) + dst.fp32[j] += make_fp32(a.bf16[2*j+0]) * make_fp32(b.bf16[2*j+0]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512_BF16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Compute dot-product of BF16 (16-bit) floating-point pairs in "a" and "b", accumulating the intermediate single-precision (32-bit) floating-point elements with elements in "src", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +DEFINE make_fp32(x[15:0]) { + y.fp32 := 0.0 + y[31:16] := x[15:0] + RETURN y +} +dst := src +FOR j := 0 to 7 + IF k[j] + dst.fp32[j] += make_fp32(a.bf16[2*j+1]) * make_fp32(b.bf16[2*j+1]) + dst.fp32[j] += make_fp32(a.bf16[2*j+0]) * make_fp32(b.bf16[2*j+0]) + ELSE + dst.dword[j] := src.dword[j] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_BF16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Compute dot-product of BF16 (16-bit) floating-point pairs in "a" and "b", accumulating the intermediate single-precision (32-bit) floating-point elements with elements in "src", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +DEFINE make_fp32(x[15:0]) { + y.fp32 := 0.0 + y[31:16] := x[15:0] + RETURN y +} +dst := src +FOR j := 0 to 7 + IF k[j] + dst.fp32[j] += make_fp32(a.bf16[2*j+1]) * make_fp32(b.bf16[2*j+1]) + dst.fp32[j] += make_fp32(a.bf16[2*j+0]) * make_fp32(b.bf16[2*j+0]) + ELSE + dst.dword[j] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_BF16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + + Gather 64 bits from "b" using selection bits in "c". For each 64-bit element in "b", gather 8 bits from the 64-bit element in "b" at 8 bit position controlled by the 8 corresponding 8-bit elements of "c", and store the result in the corresponding 8-bit element of "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR i := 0 to 3 //Qword + FOR j := 0 to 7 // Byte + IF k[i*8+j] + m := c.qword[i].byte[j] & 0x3F + dst[i*8+j] := b.qword[i].bit[m] + ELSE + dst[i*8+j] := 0 + FI + ENDFOR +ENDFOR +dst[MAX:32] := 0 + + + AVX512_BITALG + AVX512VL +
immintrin.h
+ Bit Manipulation +
+ + + + + Gather 64 bits from "b" using selection bits in "c". For each 64-bit element in "b", gather 8 bits from the 64-bit element in "b" at 8 bit position controlled by the 8 corresponding 8-bit elements of "c", and store the result in the corresponding 8-bit element of "dst". + +FOR i := 0 to 3 //Qword + FOR j := 0 to 7 // Byte + m := c.qword[i].byte[j] & 0x3F + dst[i*8+j] := b.qword[i].bit[m] + ENDFOR +ENDFOR +dst[MAX:32] := 0 + + + AVX512_BITALG + AVX512VL +
immintrin.h
+ Bit Manipulation +
+ + + + + + Gather 64 bits from "b" using selection bits in "c". For each 64-bit element in "b", gather 8 bits from the 64-bit element in "b" at 8 bit position controlled by the 8 corresponding 8-bit elements of "c", and store the result in the corresponding 8-bit element of "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR i := 0 to 1 //Qword + FOR j := 0 to 7 // Byte + IF k[i*8+j] + m := c.qword[i].byte[j] & 0x3F + dst[i*8+j] := b.qword[i].bit[m] + ELSE + dst[i*8+j] := 0 + FI + ENDFOR +ENDFOR +dst[MAX:16] := 0 + + + AVX512_BITALG + AVX512VL +
immintrin.h
+ Bit Manipulation +
+ + + + + Gather 64 bits from "b" using selection bits in "c". For each 64-bit element in "b", gather 8 bits from the 64-bit element in "b" at 8 bit position controlled by the 8 corresponding 8-bit elements of "c", and store the result in the corresponding 8-bit element of "dst". + +FOR i := 0 to 1 //Qword + FOR j := 0 to 7 // Byte + m := c.qword[i].byte[j] & 0x3F + dst[i*8+j] := b.qword[i].bit[m] + ENDFOR +ENDFOR +dst[MAX:16] := 0 + + + AVX512_BITALG + AVX512VL +
immintrin.h
+ Bit Manipulation +
+ + + + Count the number of logical 1 bits in packed 16-bit integers in "a", and store the results in "dst". + +DEFINE POPCNT(a) { + count := 0 + DO WHILE a > 0 + count += a[0] + a >>= 1 + OD + RETURN count +} +FOR j := 0 to 15 + i := j*16 + dst[i+15:i] := POPCNT(a[i+15:i]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512_BITALG + AVX512VL +
immintrin.h
+ Bit Manipulation +
+ + + + + + Count the number of logical 1 bits in packed 16-bit integers in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +DEFINE POPCNT(a) { + count := 0 + DO WHILE a > 0 + count += a[0] + a >>= 1 + OD + RETURN count +} +FOR j := 0 to 15 + i := j*16 + IF k[j] + dst[i+15:i] := POPCNT(a[i+15:i]) + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_BITALG + AVX512VL +
immintrin.h
+ Bit Manipulation +
+ + + + + Count the number of logical 1 bits in packed 16-bit integers in "a", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +DEFINE POPCNT(a) { + count := 0 + DO WHILE a > 0 + count += a[0] + a >>= 1 + OD + RETURN count +} +FOR j := 0 to 15 + i := j*16 + IF k[j] + dst[i+15:i] := POPCNT(a[i+15:i]) + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_BITALG + AVX512VL +
immintrin.h
+ Bit Manipulation +
+ + + + Count the number of logical 1 bits in packed 16-bit integers in "a", and store the results in "dst". + +DEFINE POPCNT(a) { + count := 0 + DO WHILE a > 0 + count += a[0] + a >>= 1 + OD + RETURN count +} +FOR j := 0 to 7 + i := j*16 + dst[i+15:i] := POPCNT(a[i+15:i]) +ENDFOR +dst[MAX:128] := 0 + + + AVX512_BITALG + AVX512VL +
immintrin.h
+ Bit Manipulation +
+ + + + + + Count the number of logical 1 bits in packed 16-bit integers in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +DEFINE POPCNT(a) { + count := 0 + DO WHILE a > 0 + count += a[0] + a >>= 1 + OD + RETURN count +} +FOR j := 0 to 7 + i := j*16 + IF k[j] + dst[i+15:i] := POPCNT(a[i+15:i]) + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_BITALG + AVX512VL +
immintrin.h
+ Bit Manipulation +
+ + + + + Count the number of logical 1 bits in packed 16-bit integers in "a", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +DEFINE POPCNT(a) { + count := 0 + DO WHILE a > 0 + count += a[0] + a >>= 1 + OD + RETURN count +} +FOR j := 0 to 7 + i := j*16 + IF k[j] + dst[i+15:i] := POPCNT(a[i+15:i]) + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_BITALG + AVX512VL +
immintrin.h
+ Bit Manipulation +
+ + + + Count the number of logical 1 bits in packed 8-bit integers in "a", and store the results in "dst". + +DEFINE POPCNT(a) { + count := 0 + DO WHILE a > 0 + count += a[0] + a >>= 1 + OD + RETURN count +} +FOR j := 0 to 31 + i := j*8 + dst[i+7:i] := POPCNT(a[i+7:i]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512_BITALG + AVX512VL +
immintrin.h
+ Bit Manipulation +
+ + + + + + Count the number of logical 1 bits in packed 8-bit integers in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +DEFINE POPCNT(a) { + count := 0 + DO WHILE a > 0 + count += a[0] + a >>= 1 + OD + RETURN count +} +FOR j := 0 to 31 + i := j*8 + IF k[j] + dst[i+7:i] := POPCNT(a[i+7:i]) + ELSE + dst[i+7:i] := src[i+7:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_BITALG + AVX512VL +
immintrin.h
+ Bit Manipulation +
+ + + + + Count the number of logical 1 bits in packed 8-bit integers in "a", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +DEFINE POPCNT(a) { + count := 0 + DO WHILE a > 0 + count += a[0] + a >>= 1 + OD + RETURN count +} +FOR j := 0 to 31 + i := j*8 + IF k[j] + dst[i+7:i] := POPCNT(a[i+7:i]) + ELSE + dst[i+7:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_BITALG + AVX512VL +
immintrin.h
+ Bit Manipulation +
+ + + + Count the number of logical 1 bits in packed 8-bit integers in "a", and store the results in "dst". + +DEFINE POPCNT(a) { + count := 0 + DO WHILE a > 0 + count += a[0] + a >>= 1 + OD + RETURN count +} +FOR j := 0 to 15 + i := j*8 + dst[i+7:i] := POPCNT(a[i+7:i]) +ENDFOR +dst[MAX:128] := 0 + + + AVX512_BITALG + AVX512VL +
immintrin.h
+ Bit Manipulation +
+ + + + + + Count the number of logical 1 bits in packed 8-bit integers in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +DEFINE POPCNT(a) { + count := 0 + DO WHILE a > 0 + count += a[0] + a >>= 1 + OD + RETURN count +} +FOR j := 0 to 15 + i := j*8 + IF k[j] + dst[i+7:i] := POPCNT(a[i+7:i]) + ELSE + dst[i+7:i] := src[i+7:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_BITALG + AVX512VL +
immintrin.h
+ Bit Manipulation +
+ + + + + Count the number of logical 1 bits in packed 8-bit integers in "a", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +DEFINE POPCNT(a) { + count := 0 + DO WHILE a > 0 + count += a[0] + a >>= 1 + OD + RETURN count +} +FOR j := 0 to 15 + i := j*8 + IF k[j] + dst[i+7:i] := POPCNT(a[i+7:i]) + ELSE + dst[i+7:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_BITALG + AVX512VL +
immintrin.h
+ Bit Manipulation +
+ + + + + + + + Gather 64 bits from "b" using selection bits in "c". For each 64-bit element in "b", gather 8 bits from the 64-bit element in "b" at 8 bit position controlled by the 8 corresponding 8-bit elements of "c", and store the result in the corresponding 8-bit element of "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR i := 0 to 7 //Qword + FOR j := 0 to 7 // Byte + IF k[i*8+j] + m := c.qword[i].byte[j] & 0x3F + dst[i*8+j] := b.qword[i].bit[m] + ELSE + dst[i*8+j] := 0 + FI + ENDFOR +ENDFOR +dst[MAX:64] := 0 + + + AVX512_BITALG +
immintrin.h
+ Bit Manipulation +
+ + + + + Gather 64 bits from "b" using selection bits in "c". For each 64-bit element in "b", gather 8 bits from the 64-bit element in "b" at 8 bit position controlled by the 8 corresponding 8-bit elements of "c", and store the result in the corresponding 8-bit element of "dst". + +FOR i := 0 to 7 //Qword + FOR j := 0 to 7 // Byte + m := c.qword[i].byte[j] & 0x3F + dst[i*8+j] := b.qword[i].bit[m] + ENDFOR +ENDFOR +dst[MAX:64] := 0 + + + AVX512_BITALG +
immintrin.h
+ Bit Manipulation +
+ + + + Count the number of logical 1 bits in packed 16-bit integers in "a", and store the results in "dst". + +DEFINE POPCNT(a) { + count := 0 + DO WHILE a > 0 + count += a[0] + a >>= 1 + OD + RETURN count +} +FOR j := 0 to 31 + i := j*16 + dst[i+15:i] := POPCNT(a[i+15:i]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512_BITALG +
immintrin.h
+ Bit Manipulation +
+ + + + + + Count the number of logical 1 bits in packed 16-bit integers in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +DEFINE POPCNT(a) { + count := 0 + DO WHILE a > 0 + count += a[0] + a >>= 1 + OD + RETURN count +} +FOR j := 0 to 31 + i := j*16 + IF k[j] + dst[i+15:i] := POPCNT(a[i+15:i]) + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_BITALG +
immintrin.h
+ Bit Manipulation +
+ + + + + Count the number of logical 1 bits in packed 16-bit integers in "a", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +DEFINE POPCNT(a) { + count := 0 + DO WHILE a > 0 + count += a[0] + a >>= 1 + OD + RETURN count +} +FOR j := 0 to 31 + i := j*16 + IF k[j] + dst[i+15:i] := POPCNT(a[i+15:i]) + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_BITALG +
immintrin.h
+ Bit Manipulation +
+ + + + Count the number of logical 1 bits in packed 8-bit integers in "a", and store the results in "dst". + +DEFINE POPCNT(a) { + count := 0 + DO WHILE a > 0 + count += a[0] + a >>= 1 + OD + RETURN count +} +FOR j := 0 to 63 + i := j*8 + dst[i+7:i] := POPCNT(a[i+7:i]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512_BITALG +
immintrin.h
+ Bit Manipulation +
+ + + + + + Count the number of logical 1 bits in packed 8-bit integers in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +DEFINE POPCNT(a) { + count := 0 + DO WHILE a > 0 + count += a[0] + a >>= 1 + OD + RETURN count +} +FOR j := 0 to 63 + i := j*8 + IF k[j] + dst[i+7:i] := POPCNT(a[i+7:i]) + ELSE + dst[i+7:i] := src[i+7:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_BITALG +
immintrin.h
+ Bit Manipulation +
+ + + + + Count the number of logical 1 bits in packed 8-bit integers in "a", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +DEFINE POPCNT(a) { + count := 0 + DO WHILE a > 0 + count += a[0] + a >>= 1 + OD + RETURN count +} +FOR j := 0 to 63 + i := j*8 + IF k[j] + dst[i+7:i] := POPCNT(a[i+7:i]) + ELSE + dst[i+7:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_BITALG +
immintrin.h
+ Bit Manipulation +
+ + + + + Compute the inverse cosine of packed half-precision (16-bit) floating-point elements in "a" expressed in radians, and store the results in "dst". + + Trigonometry +FOR j := 0 to 15 + i := j*16 + dst[i+15:i] := ACOS(a[i+15:i]) +ENDFOR +dst[MAX:256] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the inverse hyperbolic cosine of packed half-precision (16-bit) floating-point elements in "a" expressed in radians, and store the results in "dst". + + Trigonometry +FOR j := 0 to 15 + i := j*16 + dst[i+15:i] := ACOSH(a[i+15:i]) +ENDFOR +dst[MAX:256] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the inverse sine of packed half-precision (16-bit) floating-point elements in "a" expressed in radians, and store the results in "dst". + + Trigonometry +FOR j := 0 to 15 + i := j*16 + dst[i+15:i] := ASIN(a[i+15:i]) +ENDFOR +dst[MAX:256] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the inverse hyperbolic sine of packed half-precision (16-bit) floating-point elements in "a" expressed in radians, and store the results in "dst". + + Trigonometry +FOR j := 0 to 15 + i := j*16 + dst[i+15:i] := ASINH(a[i+15:i]) +ENDFOR +dst[MAX:256] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the inverse tangent of packed half-precision (16-bit) floating-point elements in "a" divided by packed elements in "b", and store the results in "dst" expressed in radians. + + + Trigonometry +FOR j := 0 to 15 + i := j*16 + dst[i+15:i] := ATAN2(a[i+15:i], b[i+15:i]) +ENDFOR +dst[MAX:256] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the inverse tangent of packed half-precision (16-bit) floating-point elements in "a" expressed in radians, and store the results in "dst". + + Trigonometry +FOR j := 0 to 15 + i := j*16 + dst[i+15:i] := ATAN(a[i+15:i]) +ENDFOR +dst[MAX:256] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the inverse hyperbolic tangent of packed half-precision (16-bit) floating-point elements in "a" expressed in radians, and store the results in "dst". + + Trigonometry +FOR j := 0 to 15 + i := j*16 + dst[i+15:i] := ATANH(a[i+15:i]) +ENDFOR +dst[MAX:256] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the cube root of packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst". + + Elementary Math FunctionsFOR j := 0 to 15 + i := j*16 + dst[i+15:i] := CubeRoot(a[i+15:i]) +ENDFOR +dst[MAX:256] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the cumulative distribution function of packed half-precision (16-bit) floating-point elements in "a" using the normal distribution, and store the results in "dst". + + Probability/StatisticsFOR j := 0 to 15 + i := j*16 + dst[i+15:i] := CDFNormal(a[i+15:i]) +ENDFOR +dst[MAX:256] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the inverse cumulative distribution function of packed half-precision (16-bit) floating-point elements in "a" using the normal distribution, and store the results in "dst". + + Probability/StatisticsFOR j := 0 to 15 + i := j*16 + dst[i+15:i] := InverseCDFNormal(a[i+15:i]) +ENDFOR +dst[MAX:256] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the cosine of packed half-precision (16-bit) floating-point elements in "a" expressed in radians, and store the results in "dst". + + Trigonometry +FOR j := 0 to 15 + i := j*16 + dst[i+15:i] := COS(a[i+15:i]) +ENDFOR +dst[MAX:256] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the cosine of packed half-precision (16-bit) floating-point elements in "a" expressed in degrees, and store the results in "dst". + + TrigonometryFOR j := 0 to 15 + i := j*16 + dst[i+15:i] := COSD(a[i+15:i]) +ENDFOR +dst[MAX:256] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the hyperbolic cosine of packed half-precision (16-bit) floating-point elements in "a" expressed in radians, and store the results in "dst". + + Trigonometry +FOR j := 0 to 15 + i := j*16 + dst[i+15:i] := COSH(a[i+15:i]) +ENDFOR +dst[MAX:256] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the error function of packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst". + + Probability/StatisticsFOR j := 0 to 15 + i := j*16 + dst[i+15:i] := ERF(a[i+15:i]) +ENDFOR +dst[MAX:256] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the complementary error function of packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst". + + Probability/StatisticsFOR j := 0 to 15 + i := j*16 + dst[i+15:i] := 1.0 - ERF(a[i+15:i]) +ENDFOR +dst[MAX:256] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the inverse complementary error function of packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst". + + Probability/StatisticsFOR j := 0 to 15 + i := j*16 + dst[i+15:i] := 1.0 / (1.0 - ERF(a[i+15:i])) +ENDFOR +dst[MAX:256] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the inverse error function of packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst". + + Probability/StatisticsFOR j := 0 to 15 + i := j*16 + dst[i+15:i] := 1.0 / ERF(a[i+15:i]) +ENDFOR +dst[MAX:256] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the exponential value of 10 raised to the power of packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst". + + Elementary Math Functions +FOR j := 0 to 15 + i := j*16 + dst[i+15:i] := POW(FP16(10.0), a[i+15:i]) +ENDFOR +dst[MAX:256] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the exponential value of 2 raised to the power of packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst". + + Elementary Math Functions +FOR j := 0 to 15 + i := j*16 + dst[i+15:i] := POW(FP16(2.0), a[i+15:i]) +ENDFOR +dst[MAX:256] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the exponential value of "e" raised to the power of packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst". + + Elementary Math Functions +FOR j := 0 to 15 + i := j*16 + dst[i+15:i] := POW(FP16(e), a[i+15:i]) +ENDFOR +dst[MAX:256] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the exponential value of "e" raised to the power of packed half-precision (16-bit) floating-point elements in "a", subtract one from each element, and store the results in "dst". + + Elementary Math Functions +FOR j := 0 to 15 + i := j*16 + dst[i+15:i] := POW(FP16(e), a[i+15:i]) - 1.0 +ENDFOR +dst[MAX:256] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the length of the hypotenous of a right triangle, with the lengths of the other two sides of the triangle stored as packed half-precision (16-bit) floating-point elements in "a" and "b", and store the results in "dst". + + + Elementary Math Functions +FOR j := 0 to 15 + i := j*16 + dst[i+15:i] := SQRT(POW(a[i+15:i], 2.0) + POW(b[i+15:i], 2.0)) +ENDFOR +dst[MAX:256] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the inverse cube root of packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst". + + Elementary Math FunctionsFOR j := 0 to 15 + i := j*16 + dst[i+15:i] := InvCubeRoot(a[i+15:i]) +ENDFOR +dst[MAX:256] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the inverse square root of packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst". + + Elementary Math FunctionsFOR j := 0 to 15 + i := j*16 + dst[i+15:i] := InvSQRT(a[i+15:i]) +ENDFOR +dst[MAX:256] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the base-10 logarithm of packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst". + + Elementary Math Functions +FOR j := 0 to 15 + i := j*16 + dst[i+15:i] := LOG(a[i+15:i]) / LOG(10.0) +ENDFOR +dst[MAX:256] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the natural logarithm of one plus packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst". + + Elementary Math Functions +FOR j := 0 to 15 + i := j*16 + dst[i+15:i] := LOG(1.0 + a[i+15:i]) +ENDFOR +dst[MAX:256] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the base-2 logarithm of packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst". + + Elementary Math Functions +FOR j := 0 to 15 + i := j*16 + dst[i+15:i] := LOG(a[i+15:i]) / LOG(2.0) +ENDFOR +dst[MAX:256] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the natural logarithm of packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst". + + Elementary Math Functions +FOR j := 0 to 15 + i := j*16 + dst[i+15:i] := LOG(a[i+15:i]) +ENDFOR +dst[MAX:256] := 0 +
immintrin.h
AVX512_FP16
+ + + Convert the exponent of each packed half-precision (16-bit) floating-point element in "a" to a half-precision floating-point number representing the integer exponent, and store the results in "dst". This intrinsic essentially calculates "floor(log2(x))" for each element. + + Elementary Math FunctionsFOR j := 0 to 15 + i := j*16 + dst[i+15:i] := ConvertExpFP16(a[i+15:i]) +ENDFOR +dst[MAX:256] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the exponential value of packed half-precision (16-bit) floating-point elements in "a" raised by packed elements in "b", and store the results in "dst". + + + Elementary Math Functions +FOR j := 0 to 15 + i := j*16 + dst[i+15:i] := POW(a[i+15:i], b[i+15:i]) +ENDFOR +dst[MAX:256] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the sine of packed half-precision (16-bit) floating-point elements in "a" expressed in radians, and store the results in "dst". + + Trigonometry +FOR j := 0 to 15 + i := j*16 + dst[i+15:i] := SIN(a[i+15:i]) +ENDFOR +dst[MAX:256] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the sine and cosine of packed half-precision (16-bit) floating-point elements in "a" expressed in radians, store the sine in "dst", and store the cosine into memory at "mem_addr". + + + Trigonometry +FOR j := 0 to 15 + i := j*16 + dst[i+15:i] := SIN(a[i+15:i]) + MEM[mem_addr+i+15:mem_addr+i] := COS(a[i+15:i]) +ENDFOR +dst[MAX:256] := 0 +cos_res[MAX:256] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the sine of packed half-precision (16-bit) floating-point elements in "a" expressed in degrees, and store the results in "dst". + + TrigonometryFOR j := 0 to 15 + i := j*16 + dst[i+15:i] := SIND(a[i+15:i]) +ENDFOR +dst[MAX:256] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the hyperbolic sine of packed half-precision (16-bit) floating-point elements in "a" expressed in radians, and store the results in "dst". + + Trigonometry +FOR j := 0 to 15 + i := j*16 + dst[i+15:i] := SINH(a[i+15:i]) +ENDFOR +dst[MAX:256] := 0 +
immintrin.h
AVX512_FP16
+ + + Round the packed half-precision (16-bit) floating-point elements in "a" up to an integer value, and store the results as packed half-precision floating-point elements in "dst". + + Special Math Functions +FOR j := 0 to 15 + i := j*16 + dst[i+15:i] := CEIL(a[i+15:i]) +ENDFOR +dst[MAX:256] := 0 +
immintrin.h
AVX512_FP16
+ + + Round the packed half-precision (16-bit) floating-point elements in "a" down to an integer value, and store the results as packed half-precision floating-point elements in "dst". + + Special Math Functions +FOR j := 0 to 15 + i := j*16 + dst[i+15:i] := FLOOR(a[i+15:i]) +ENDFOR +dst[MAX:256] := 0 +
immintrin.h
AVX512_FP16
+ + + Round the packed half-precision (16-bit) floating-point elements in "a" to the nearest integer value, and store the results as packed half-precision floating-point elements in "dst". + + Special Math Functions +FOR j := 0 to 15 + i := j*16 + dst[i+15:i] := ROUND(a[i+15:i]) +ENDFOR +dst[MAX:256] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the square root of packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst". Note that this intrinsic is less efficient than "_mm_sqrt_ps". + + Elementary Math Functions +FOR j := 0 to 15 + i := j*16 + dst[i+15:i] := SQRT(a[i+15:i]) +ENDFOR +dst[MAX:256] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the tangent of packed half-precision (16-bit) floating-point elements in "a" expressed in radians, and store the results in "dst". + + Trigonometry +FOR j := 0 to 15 + i := j*16 + dst[i+15:i] := TAN(a[i+15:i]) +ENDFOR +dst[MAX:256] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the tangent of packed half-precision (16-bit) floating-point elements in "a" expressed in degrees, and store the results in "dst". + + TrigonometryFOR j := 0 to 15 + i := j*16 + dst[i+15:i] := TAND(a[i+15:i]) +ENDFOR +dst[MAX:256] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the hyperbolic tangent of packed half-precision (16-bit) floating-point elements in "a" expressed in radians, and store the results in "dst". + + Trigonometry +FOR j := 0 to 15 + i := j*16 + dst[i+15:i] := TANH(a[i+15:i]) +ENDFOR +dst[MAX:256] := 0 +
immintrin.h
AVX512_FP16
+ + + Truncate the packed half-precision (16-bit) floating-point elements in "a", and store the results as packed half-precision floating-point elements in "dst" + + Special Math FunctionsFOR j := 0 to 15 + i := j*16 + dst[i+15:i] := TRUNCATE(a[i+15:i]) +ENDFOR +dst[MAX:256] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the inverse cosine of packed half-precision (16-bit) floating-point elements in "a" expressed in radians, and store the results in "dst". + + Trigonometry +FOR j := 0 to 31 + i := j*16 + dst[i+15:i] := ACOS(a[i+15:i]) +ENDFOR +dst[MAX:512] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the inverse hyperbolic cosine of packed half-precision (16-bit) floating-point elements in "a" expressed in radians, and store the results in "dst". + + Trigonometry +FOR j := 0 to 31 + i := j*16 + dst[i+15:i] := ACOSH(a[i+15:i]) +ENDFOR +dst[MAX:512] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the inverse sine of packed half-precision (16-bit) floating-point elements in "a" expressed in radians, and store the results in "dst". + + Trigonometry +FOR j := 0 to 31 + i := j*16 + dst[i+15:i] := ASIN(a[i+15:i]) +ENDFOR +dst[MAX:512] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the inverse hyperbolic sine of packed half-precision (16-bit) floating-point elements in "a" expressed in radians, and store the results in "dst". + + Trigonometry +FOR j := 0 to 31 + i := j*16 + dst[i+15:i] := ASINH(a[i+15:i]) +ENDFOR +dst[MAX:512] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the inverse tangent of packed half-precision (16-bit) floating-point elements in "a" divided by packed elements in "b", and store the results in "dst" expressed in radians. + + + Trigonometry +FOR j := 0 to 31 + i := j*16 + dst[i+15:i] := ATAN2(a[i+15:i], b[i+15:i]) +ENDFOR +dst[MAX:512] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the inverse tangent of packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst" expressed in radians. + + Trigonometry +FOR j := 0 to 31 + i := j*16 + dst[i+15:i] := ATAN(a[i+15:i]) +ENDFOR +dst[MAX:512] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the inverse hyperblic tangent of packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst" expressed in radians. + + Trigonometry +FOR j := 0 to 31 + i := j*16 + dst[i+15:i] := ATANH(a[i+15:i]) +ENDFOR +dst[MAX:512] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the cube root of packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst". + + Elementary Math FunctionsFOR j := 0 to 31 + i := j*16 + dst[i+15:i] := CubeRoot(a[i+15:i]) +ENDFOR +dst[MAX:512] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the cumulative distribution function of packed half-precision (16-bit) floating-point elements in "a" using the normal distribution, and store the results in "dst". + + Probability/StatisticsFOR j := 0 to 31 + i := j*16 + dst[i+15:i] := CDFNormal(a[i+15:i]) +ENDFOR +dst[MAX:512] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the inverse cumulative distribution function of packed half-precision (16-bit) floating-point elements in "a" using the normal distribution, and store the results in "dst". + + Probability/StatisticsFOR j := 0 to 31 + i := j*16 + dst[i+15:i] := InverseCDFNormal(a[i+15:i]) +ENDFOR +dst[MAX:512] := 0 +
immintrin.h
AVX512_FP16
+ + + Round the packed half-precision (16-bit) floating-point elements in "a" up to an integer value, and store the results as packed half-precision floating-point elements in "dst". + + Special Math Functions +FOR j := 0 to 31 + i := j*16 + dst[i+15:i] := CEIL(a[i+15:i]) +ENDFOR +dst[MAX:512] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the cosine of packed half-precision (16-bit) floating-point elements in "a" expressed in radians, and store the results in "dst". + + Trigonometry +FOR j := 0 to 31 + i := j*16 + dst[i+15:i] := COS(a[i+15:i]) +ENDFOR +dst[MAX:512] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the cosine of packed half-precision (16-bit) floating-point elements in "a" expressed in degrees, and store the results in "dst". + + TrigonometryFOR j := 0 to 31 + i := j*16 + dst[i+15:i] := COSD(a[i+15:i]) +ENDFOR +dst[MAX:512] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the hyperbolic cosine of packed half-precision (16-bit) floating-point elements in "a" expressed in radians, and store the results in "dst". + + Trigonometry +FOR j := 0 to 31 + i := j*16 + dst[i+15:i] := COSH(a[i+15:i]) +ENDFOR +dst[MAX:512] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the error function of packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst". + + Probability/StatisticsFOR j := 0 to 31 + i := j*16 + dst[i+15:i] := ERF(a[i+15:i]) +ENDFOR +dst[MAX:512] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the complementary error function of packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst". + + Probability/StatisticsFOR j := 0 to 31 + i := j*16 + dst[i+15:i] := 1.0 - ERF(a[i+15:i]) +ENDFOR +dst[MAX:512] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the inverse complementary error function of packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst". + + Probability/StatisticsFOR j := 0 to 31 + i := j*16 + dst[i+15:i] := 1.0 / (1.0 - ERF(a[i+15:i])) +ENDFOR +dst[MAX:512] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the inverse error function of packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst". + + Probability/StatisticsFOR j := 0 to 31 + i := j*16 + dst[i+15:i] := 1.0 / ERF(a[i+15:i]) +ENDFOR +dst[MAX:512] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the exponential value of 10 raised to the power of packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst". + + Elementary Math Functions +FOR j := 0 to 31 + i := j*16 + dst[i+15:i] := POW(FP16(10.0), a[i+15:i]) +ENDFOR +dst[MAX:512] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the exponential value of 2 raised to the power of packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst". + + Elementary Math Functions +FOR j := 0 to 31 + i := j*16 + dst[i+15:i] := POW(FP16(2.0), a[i+15:i]) +ENDFOR +dst[MAX:512] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the exponential value of "e" raised to the power of packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst". + + Elementary Math Functions +FOR j := 0 to 31 + i := j*16 + dst[i+15:i] := POW(FP16(e), a[i+15:i]) +ENDFOR +dst[MAX:512] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the exponential value of "e" raised to the power of packed half-precision (16-bit) floating-point elements in "a", subtract one from each element, and store the results in "dst". + + Elementary Math Functions +FOR j := 0 to 31 + i := j*16 + dst[i+15:i] := POW(FP16(e), a[i+15:i]) - 1.0 +ENDFOR +dst[MAX:512] := 0 +
immintrin.h
AVX512_FP16
+ + + Round the packed half-precision (16-bit) floating-point elements in "a" down to an integer value, and store the results as packed half-precision floating-point elements in "dst". + + Special Math Functions +FOR j := 0 to 31 + i := j*16 + dst[i+15:i] := FLOOR(a[i+15:i]) +ENDFOR +dst[MAX:512] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the length of the hypotenous of a right triangle, with the lengths of the other two sides of the triangle stored as packed half-precision (16-bit) floating-point elements in "a" and "b", and store the results in "dst". + + + Elementary Math Functions +FOR j := 0 to 31 + i := j*16 + dst[i+15:i] := SQRT(POW(a[i+15:i], 2.0) + POW(b[i+15:i], 2.0)) +ENDFOR +dst[MAX:512] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the inverse square root of packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst". + + Elementary Math FunctionsFOR j := 0 to 31 + i := j*16 + dst[i+15:i] := InvSQRT(a[i+15:i]) +ENDFOR +dst[MAX:512] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the base-10 logarithm of packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst". + + Elementary Math Functions +FOR j := 0 to 31 + i := j*16 + dst[i+15:i] := LOG(a[i+15:i]) / LOG(10.0) +ENDFOR +dst[MAX:512] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the natural logarithm of one plus packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst". + + Elementary Math Functions +FOR j := 0 to 31 + i := j*16 + dst[i+15:i] := LOG(1.0 + a[i+15:i]) +ENDFOR +dst[MAX:512] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the base-2 logarithm of packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst". + + Elementary Math Functions +FOR j := 0 to 31 + i := j*16 + dst[i+15:i] := LOG(a[i+15:i]) / LOG(2.0) +ENDFOR +dst[MAX:512] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the natural logarithm of packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst". + + Elementary Math Functions +FOR j := 0 to 31 + i := j*16 + dst[i+15:i] := LOG(a[i+15:i]) +ENDFOR +dst[MAX:512] := 0 +
immintrin.h
AVX512_FP16
+ + + Convert the exponent of each packed half-precision (16-bit) floating-point element in "a" to a half-precision floating-point number representing the integer exponent, and store the results in "dst". This intrinsic essentially calculates "floor(log2(x))" for each element. + + Elementary Math FunctionsFOR j := 0 to 31 + i := j*16 + dst[i+15:i] := ConvertExpFP16(a[i+15:i]) +ENDFOR +dst[MAX:512] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the inverse cosine of packed half-precision (16-bit) floating-point elements in "a" expressed in radians, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + + + + Trigonometry +FOR j := 0 to 31 + i := j*16 + IF k[j] + dst[i+15:i] := ACOS(a[i+15:i]) + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:512] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the inverse hyperbolic cosine of packed half-precision (16-bit) floating-point elements in "a" expressed in radians, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + + + + Trigonometry +FOR j := 0 to 31 + i := j*16 + IF k[j] + dst[i+15:i] := ACOSH(a[i+15:i]) + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:512] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the inverse sine of packed half-precision (16-bit) floating-point elements in "a" expressed in radians, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + + + + Trigonometry +FOR j := 0 to 31 + i := j*16 + IF k[j] + dst[i+15:i] := ASIN(a[i+15:i]) + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:512] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the inverse hyperbolic sine of packed half-precision (16-bit) floating-point elements in "a" expressed in radians, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + + + + Trigonometry +FOR j := 0 to 31 + i := j*16 + IF k[j] + dst[i+15:i] := ASINH(a[i+15:i]) + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:512] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the inverse tangent of packed half-precision (16-bit) floating-point elements in "a" expressed in radians, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + + + + Trigonometry +FOR j := 0 to 31 + i := j*16 + IF k[j] + dst[i+15:i] := ATAN(a[i+15:i]) + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:512] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the inverse hyperbolic tangent of packed half-precision (16-bit) floating-point elements in "a" expressed in radians, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + + + + Trigonometry +FOR j := 0 to 31 + i := j*16 + IF k[j] + dst[i+15:i] := ATANH(a[i+15:i]) + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:512] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the cube root of packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + + + + Elementary Math FunctionsFOR j := 0 to 31 + i := j*16 + IF k[j] + dst[i+15:i] := CubeRoot(a[i+15:i]) + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:512] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the cumulative distribution function of packed half-precision (16-bit) floating-point elements in "a" using the normal distribution, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + + + + Probability/StatisticsFOR j := 0 to 31 + i := j*16 + IF k[j] + dst[i+15:i] := CDFNormal(a[i+15:i]) + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:512] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the inverse cumulative distribution function of packed half-precision (16-bit) floating-point elements in "a" using the normal distribution, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + + + + Probability/StatisticsFOR j := 0 to 31 + i := j*16 + IF k[j] + dst[i+15:i] := InverseCDFNormal(a[i+15:i]) + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:512] := 0 +
immintrin.h
AVX512_FP16
+ + + Round the packed half-precision (16-bit) floating-point elements in "a" up to an integer value, and store the results as packed half-precision floating-point elements in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + + + + Special Math Functions +FOR j := 0 to 31 + i := j*16 + IF k[j] + dst[i+15:i] := CEIL(a[i+15:i]) + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:512] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the cosine of packed half-precision (16-bit) floating-point elements in "a" expressed in radians, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + + + + Trigonometry +FOR j := 0 to 31 + i := j*16 + IF k[j] + dst[i+15:i] := COS(a[i+15:i]) + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:512] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the cosine of packed half-precision (16-bit) floating-point elements in "a" expressed in degrees, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + + + + TrigonometryFOR j := 0 to 31 + i := j*16 + IF k[j] + dst[i+15:i] := COSD(a[i+15:i]) + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:512] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the hyperbolic cosine of packed half-precision (16-bit) floating-point elements in "a" expressed in radians, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + + + + Trigonometry +FOR j := 0 to 31 + i := j*16 + IF k[j] + dst[i+15:i] := COSH(a[i+15:i]) + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:512] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the error function of packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + + + + Probability/StatisticsFOR j := 0 to 31 + i := j*16 + IF k[j] + dst[i+15:i] := ERF(a[i+15:i]) + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:512] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the complementary error function of packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + + + + Probability/StatisticsFOR j := 0 to 31 + i := j*16 + IF k[j] + dst[i+15:i] := 1.0 - ERF(a[i+15:i]) + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:512] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the inverse complementary error function of packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + + + + Probability/StatisticsFOR j := 0 to 31 + i := j*16 + IF k[j] + dst[i+15:i] := 1.0 / (1.0 - ERF(a[i+15:i])) + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:512] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the inverse error function of packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + + + + Probability/StatisticsFOR j := 0 to 31 + i := j*16 + IF k[j] + dst[i+15:i] := 1.0 / ERF(a[i+15:i]) + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:512] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the exponential value of 10 raised to the power of packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + + + + Elementary Math Functions +FOR j := 0 to 31 + i := j*16 + IF k[j] + dst[i+15:i] := POW(FP16(10.0), a[i+15:i]) + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:512] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the exponential value of 2 raised to the power of packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + + + + Elementary Math Functions +FOR j := 0 to 31 + i := j*16 + IF k[j] + dst[i+15:i] := POW(FP16(2.0), a[i+15:i]) + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:512] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the exponential value of "e" raised to the power of packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + + + + Elementary Math Functions +FOR j := 0 to 31 + i := j*16 + IF k[j] + dst[i+15:i] := POW(FP16(e), a[i+15:i]) + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:512] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the exponential value of "e" raised to the power of packed half-precision (16-bit) floating-point elements in "a", subtract one from each element, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + + + + Elementary Math Functions +FOR j := 0 to 31 + i := j*16 + IF k[j] + dst[i+15:i] := POW(FP16(e), a[i+15:i]) - 1.0 + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:512] := 0 +
immintrin.h
AVX512_FP16
+ + + Round the packed half-precision (16-bit) floating-point elements in "a" down to an integer value, and store the results as packed half-precision floating-point elements in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + + + + Special Math Functions +FOR j := 0 to 31 + i := j*16 + IF k[j] + dst[i+15:i] := FLOOR(a[i+15:i]) + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:512] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the inverse square root of packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + + + + Elementary Math FunctionsFOR j := 0 to 31 + i := j*16 + IF k[j] + dst[i+15:i] := InvSQRT(a[i+15:i]) + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:512] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the base-10 logarithm of packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + + + + Elementary Math Functions +FOR j := 0 to 31 + i := j*16 + IF k[j] + dst[i+15:i] := LOG(a[i+15:i]) / LOG(10.0) + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:512] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the natural logarithm of one plus packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + + + + Elementary Math Functions +FOR j := 0 to 31 + i := j*16 + IF k[j] + dst[i+15:i] := LOG(1.0 + a[i+15:i]) + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:512] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the base-2 logarithm of packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + + + + Elementary Math Functions +FOR j := 0 to 31 + i := j*16 + IF k[j] + dst[i+15:i] := LOG(a[i+15:i]) / LOG(2.0) + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:512] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the natural logarithm of packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + + + + Elementary Math Functions +FOR j := 0 to 31 + i := j*16 + IF k[j] + dst[i+15:i] := LOG(a[i+15:i]) + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:512] := 0 +
immintrin.h
AVX512_FP16
+ + + Convert the exponent of each packed half-precision (16-bit) floating-point element in "a" to a half-precision floating-point number representing the integer exponent, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). This intrinsic essentially calculates "floor(log2(x))" for each element. + + + + Elementary Math FunctionsFOR j := 0 to 31 + i := j*16 + IF k[j] + dst[i+15:i] := ConvertExpFP16(a[i+15:i]) + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:512] := 0 +
immintrin.h
AVX512_FP16
+ + + Rounds each packed half-precision (16-bit) floating-point element in "a" to the nearest integer value and stores the results as packed half-precision floating-point elements in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + + + + Special Math FunctionsFOR j := 0 to 31 + i := j*16 + IF k[j] + dst[i+15:i] := NearbyInt(a[i+15:i]) + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:512] := 0 +
immintrin.h
AVX512_FP16
+ + + Computes the reciprocal of packed half-precision (16-bit) floating-point elements in "a", storing the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + + + + Elementary Math Functions +FOR j := 0 to 31 + i := j*16 + IF k[j] + dst[i+15:i] := (1.0 / a[i+15:i]) + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:512] := 0 +
immintrin.h
AVX512_FP16
+ + + Rounds the packed half-precision (16-bit) floating-point elements in "a" to the nearest even integer value and stores the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + + + + Special Math FunctionsFOR j := 0 to 31 + i := j*16 + IF k[j] + dst[i+15:i] := RoundToNearestEven(a[i+15:i]) + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:512] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the sine of packed half-precision (16-bit) floating-point elements in "a" expressed in radians, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + + + + Trigonometry +FOR j := 0 to 31 + i := j*16 + IF k[j] + dst[i+15:i] := SIN(a[i+15:i]) + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:512] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the sine and cosine of packed half-precision (16-bit) floating-point elements in "a" expressed in radians, store the sine in "dst", store the cosine into memory at "mem_addr". Elements are written to their respective locations using writemask "k" (elements are copied from "sin_src" or "cos_src" when the corresponding mask bit is not set). + + + + + + Trigonometry +FOR j := 0 to 31 + i := j*16 + IF k[j] + dst[i+15:i] := SIN(a[i+15:i]) + MEM[mem_addr+i+15:mem_addr+i] := COS(a[i+15:i]) + ELSE + dst[i+15:i] := sin_src[i+15:i] + MEM[mem_addr+i+15:mem_addr+i] := cos_src[i+15:i] + FI +ENDFOR +dst[MAX:512] := 0 +cos_res[MAX:512] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the sine of packed half-precision (16-bit) floating-point elements in "a" expressed in degrees, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + + + + TrigonometryFOR j := 0 to 31 + i := j*16 + IF k[j] + dst[i+15:i] := SIND(a[i+15:i]) + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:512] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the hyperbolic sine of packed half-precision (16-bit) floating-point elements in "a" expressed in radians, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + + + + Trigonometry +FOR j := 0 to 31 + i := j*16 + IF k[j] + dst[i+15:i] := SINH(a[i+15:i]) + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:512] := 0 +
immintrin.h
AVX512_FP16
+ + + Round the packed half-precision (16-bit) floating-point elements in "a" to the nearest integer value, and store the results as packed half-precision floating-point elements in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + + + + Special Math Functions +FOR j := 0 to 31 + i := j*16 + IF k[j] + dst[i+15:i] := ROUND(a[i+15:i]) + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:512] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the tangent of packed half-precision (16-bit) floating-point elements in "a" expressed in radians, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + + + + Trigonometry +FOR j := 0 to 31 + i := j*16 + IF k[j] + dst[i+15:i] := TAN(a[i+15:i]) + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:512] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the tangent of packed half-precision (16-bit) floating-point elements in "a" expressed in degrees, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + + + + TrigonometryFOR j := 0 to 31 + i := j*16 + IF k[j] + dst[i+15:i] := TAND(a[i+15:i]) + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:512] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the hyperbolic tangent of packed half-precision (16-bit) floating-point elements in "a" expressed in radians, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + + + + Trigonometry +FOR j := 0 to 31 + i := j*16 + IF k[j] + dst[i+15:i] := TANH(a[i+15:i]) + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:512] := 0 +
immintrin.h
AVX512_FP16
+ + + Truncate the packed half-precision (16-bit) floating-point elements in "a", and store the results as packed half-precision floating-point elements in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + + + + Special Math FunctionsFOR j := 0 to 31 + i := j*16 + IF k[j] + dst[i+15:i] := TRUNCATE(a[i+15:i]) + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:512] := 0 +
immintrin.h
AVX512_FP16
+ + + Rounds each packed half-precision (16-bit) floating-point element in "a" to the nearest integer value and stores the results as packed half-precision floating-point elements in "dst". + + Special Math FunctionsFOR j := 0 to 31 + i := j*16 + dst[i+15:i] := NearbyInt(a[i+15:i]) +ENDFOR +dst[MAX:512] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the exponential value of packed half-precision (16-bit) floating-point elements in "a" raised by packed elements in "b", and store the results in "dst". + + + Elementary Math Functions +FOR j := 0 to 31 + i := j*16 + dst[i+15:i] := POW(a[i+15:i], b[i+15:i]) +ENDFOR +dst[MAX:512] := 0 +
immintrin.h
AVX512_FP16
+ + + Computes the reciprocal of packed half-precision (16-bit) floating-point elements in "a", storing the results in "dst". + + Elementary Math Functions +FOR j := 0 to 31 + i := j*16 + dst[i+15:i] := (1.0 / a[i+15:i]) +ENDFOR +dst[MAX:512] := 0 +
immintrin.h
AVX512_FP16
+ + + Rounds the packed half-precision (16-bit) floating-point elements in "a" to the nearest even integer value and stores the results in "dst". + + Special Math FunctionsFOR j := 0 to 31 + i := j*16 + dst[i+15:i] := RoundToNearestEven(a[i+15:i]) +ENDFOR +dst[MAX:512] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the sine of packed half-precision (16-bit) floating-point elements in "a" expressed in radians, and store the results in "dst". + + Trigonometry +FOR j := 0 to 31 + i := j*16 + dst[i+15:i] := SIN(a[i+15:i]) +ENDFOR +dst[MAX:512] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the sine and cosine of packed half-precision (16-bit) floating-point elements in "a" expressed in radians, store the sine in "dst", and store the cosine into memory at "mem_addr". + + + Trigonometry +FOR j := 0 to 31 + i := j*16 + dst[i+15:i] := SIN(a[i+15:i]) + MEM[mem_addr+i+15:mem_addr+i] := COS(a[i+15:i]) +ENDFOR +dst[MAX:512] := 0 +cos_res[MAX:512] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the sine of packed half-precision (16-bit) floating-point elements in "a" expressed in degrees, and store the results in "dst". + + TrigonometryFOR j := 0 to 31 + i := j*16 + dst[i+15:i] := SIND(a[i+15:i]) +ENDFOR +dst[MAX:512] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the hyperbolic sine of packed half-precision (16-bit) floating-point elements in "a" expressed in radians, and store the results in "dst". + + Trigonometry +FOR j := 0 to 31 + i := j*16 + dst[i+15:i] := SINH(a[i+15:i]) +ENDFOR +dst[MAX:512] := 0 +
immintrin.h
AVX512_FP16
+ + + Round the packed half-precision (16-bit) floating-point elements in "a" to the nearest integer value, and store the results as packed half-precision floating-point elements in "dst". + + Special Math Functions +FOR j := 0 to 31 + i := j*16 + dst[i+15:i] := ROUND(a[i+15:i]) +ENDFOR +dst[MAX:512] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the tangent of packed half-precision (16-bit) floating-point elements in "a" expressed in radians, and store the results in "dst". + + Trigonometry +FOR j := 0 to 31 + i := j*16 + dst[i+15:i] := TAN(a[i+15:i]) +ENDFOR +dst[MAX:512] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the tangent of packed half-precision (16-bit) floating-point elements in "a" expressed in degrees, and store the results in "dst". + + TrigonometryFOR j := 0 to 31 + i := j*16 + dst[i+15:i] := TAND(a[i+15:i]) +ENDFOR +dst[MAX:512] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the hyperbolic tangent of packed half-precision (16-bit) floating-point elements in "a" expressed in radians, and store the results in "dst". + + Trigonometry +FOR j := 0 to 31 + i := j*16 + dst[i+15:i] := TANH(a[i+15:i]) +ENDFOR +dst[MAX:512] := 0 +
immintrin.h
AVX512_FP16
+ + + Truncate the packed half-precision (16-bit) floating-point elements in "a", and store the results as packed half-precision floating-point elements in "dst". + + Special Math FunctionsFOR j := 0 to 31 + i := j*16 + dst[i+15:i] := TRUNCATE(a[i+15:i]) +ENDFOR +dst[MAX:512] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the inverse cosine of packed half-precision (16-bit) floating-point elements in "a" expressed in radians, and store the results in "dst". + + Trigonometry +FOR j := 0 to 7 + i := j*16 + dst[i+15:i] := ACOS(a[i+15:i]) +ENDFOR +dst[MAX:128] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the inverse hyperbolic cosine of packed half-precision (16-bit) floating-point elements in "a" expressed in radians, and store the results in "dst". + + Trigonometry +FOR j := 0 to 7 + i := j*16 + dst[i+15:i] := ACOSH(a[i+15:i]) +ENDFOR +dst[MAX:128] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the inverse sine of packed half-precision (16-bit) floating-point elements in "a" expressed in radians, and store the results in "dst". + + Trigonometry +FOR j := 0 to 7 + i := j*16 + dst[i+15:i] := ASIN(a[i+15:i]) +ENDFOR +dst[MAX:128] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the inverse hyperbolic sine of packed half-precision (16-bit) floating-point elements in "a" expressed in radians, and store the results in "dst". + + Trigonometry +FOR j := 0 to 7 + i := j*16 + dst[i+15:i] := ASINH(a[i+15:i]) +ENDFOR +dst[MAX:128] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the inverse tangent of packed half-precision (16-bit) floating-point elements in "a" divided by packed elements in "b", and store the results in "dst" expressed in radians. + + + Trigonometry +FOR j := 0 to 7 + i := j*16 + dst[i+15:i] := ATAN2(a[i+15:i], b[i+15:i]) +ENDFOR +dst[MAX:128] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the inverse tangent of packed half-precision (16-bit) floating-point elements in "a" expressed in radians, and store the results in "dst". + + Trigonometry +FOR j := 0 to 7 + i := j*16 + dst[i+15:i] := ATAN(a[i+15:i]) +ENDFOR +dst[MAX:128] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the inverse hyperbolic tangent of packed half-precision (16-bit) floating-point elements in "a" expressed in radians, and store the results in "dst". + + Trigonometry +FOR j := 0 to 7 + i := j*16 + dst[i+15:i] := ATANH(a[i+15:i]) +ENDFOR +dst[MAX:128] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the cube root of packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst". + + Elementary Math FunctionsFOR j := 0 to 7 + i := j*16 + dst[i+15:i] := CubeRoot(a[i+15:i]) +ENDFOR +dst[MAX:128] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the cumulative distribution function of packed half-precision (16-bit) floating-point elements in "a" using the normal distribution, and store the results in "dst". + + Probability/StatisticsFOR j := 0 to 7 + i := j*16 + dst[i+15:i] := CDFNormal(a[i+15:i]) +ENDFOR +dst[MAX:128] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the inverse cumulative distribution function of packed half-precision (16-bit) floating-point elements in "a" using the normal distribution, and store the results in "dst". + + Probability/StatisticsFOR j := 0 to 7 + i := j*16 + dst[i+15:i] := InverseCDFNormal(a[i+15:i]) +ENDFOR +dst[MAX:128] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the cosine of packed half-precision (16-bit) floating-point elements in "a" expressed in radians, and store the results in "dst". + + Trigonometry +FOR j := 0 to 7 + i := j*16 + dst[i+15:i] := COS(a[i+15:i]) +ENDFOR +dst[MAX:128] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the cosine of packed half-precision (16-bit) floating-point elements in "a" expressed in degrees, and store the results in "dst". + + TrigonometryFOR j := 0 to 7 + i := j*16 + dst[i+15:i] := COSD(a[i+15:i]) +ENDFOR +dst[MAX:128] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the hyperbolic cosine of packed half-precision (16-bit) floating-point elements in "a" expressed in radians, and store the results in "dst". + + Trigonometry +FOR j := 0 to 7 + i := j*16 + dst[i+15:i] := COSH(a[i+15:i]) +ENDFOR +dst[MAX:128] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the error function of packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst". + + Probability/StatisticsFOR j := 0 to 7 + i := j*16 + dst[i+15:i] := ERF(a[i+15:i]) +ENDFOR +dst[MAX:128] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the complementary error function of packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst". + + Probability/StatisticsFOR j := 0 to 7 + i := j*16 + dst[i+15:i] := 1.0 - ERF(a[i+15:i]) +ENDFOR +dst[MAX:128] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the inverse complementary error function of packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst". + + Probability/StatisticsFOR j := 0 to 7 + i := j*16 + dst[i+15:i] := 1.0 / (1.0 - ERF(a[i+15:i])) +ENDFOR +dst[MAX:128] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the inverse error function of packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst". + + Probability/StatisticsFOR j := 0 to 7 + i := j*16 + dst[i+15:i] := 1.0 / ERF(a[i+15:i]) +ENDFOR +dst[MAX:128] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the exponential value of 10 raised to the power of packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst". + + Elementary Math Functions +FOR j := 0 to 7 + i := j*16 + dst[i+15:i] := POW(FP16(10.0), a[i+15:i]) +ENDFOR +dst[MAX:128] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the exponential value of 2 raised to the power of packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst". + + Elementary Math Functions +FOR j := 0 to 7 + i := j*16 + dst[i+15:i] := POW(FP16(2.0), a[i+15:i]) +ENDFOR +dst[MAX:128] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the exponential value of "e" raised to the power of packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst". + + Elementary Math Functions +FOR j := 0 to 7 + i := j*16 + dst[i+15:i] := POW(FP16(e), a[i+15:i]) +ENDFOR +dst[MAX:128] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the exponential value of "e" raised to the power of packed half-precision (16-bit) floating-point elements in "a", subtract one from each element, and store the results in "dst". + + Elementary Math Functions +FOR j := 0 to 7 + i := j*16 + dst[i+15:i] := POW(FP16(e), a[i+15:i]) - 1.0 +ENDFOR +dst[MAX:128] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the length of the hypotenous of a right triangle, with the lengths of the other two sides of the triangle stored as packed half-precision (16-bit) floating-point elements in "a" and "b", and store the results in "dst". + + + Elementary Math Functions +FOR j := 0 to 7 + i := j*16 + dst[i+15:i] := SQRT(POW(a[i+15:i], 2.0) + POW(b[i+15:i], 2.0)) +ENDFOR +dst[MAX:128] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the inverse cube root of packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst". + + Elementary Math FunctionsFOR j := 0 to 7 + i := j*16 + dst[i+15:i] := InvCubeRoot(a[i+15:i]) +ENDFOR +dst[MAX:128] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the inverse square root of packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst". + + Elementary Math FunctionsFOR j := 0 to 7 + i := j*16 + dst[i+15:i] := InvSQRT(a[i+15:i]) +ENDFOR +dst[MAX:128] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the base-10 logarithm of packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst". + + Elementary Math Functions +FOR j := 0 to 7 + i := j*16 + dst[i+15:i] := LOG(a[i+15:i]) / LOG(10.0) +ENDFOR +dst[MAX:128] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the natural logarithm of one plus packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst". + + Elementary Math Functions +FOR j := 0 to 7 + i := j*16 + dst[i+15:i] := LOG(1.0 + a[i+15:i]) +ENDFOR +dst[MAX:128] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the base-2 logarithm of packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst". + + Elementary Math Functions +FOR j := 0 to 7 + i := j*16 + dst[i+15:i] := LOG(a[i+15:i]) / LOG(2.0) +ENDFOR +dst[MAX:128] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the natural logarithm of packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst". + + Elementary Math Functions +FOR j := 0 to 7 + i := j*16 + dst[i+15:i] := LOG(a[i+15:i]) +ENDFOR +dst[MAX:128] := 0 +
immintrin.h
AVX512_FP16
+ + + Convert the exponent of each packed half-precision (16-bit) floating-point element in "a" to a half-precision floating-point number representing the integer exponent, and store the results in "dst". This intrinsic essentially calculates "floor(log2(x))" for each element. + + Elementary Math FunctionsFOR j := 0 to 7 + i := j*16 + dst[i+15:i] := ConvertExpFP16(a[i+15:i]) +ENDFOR +dst[MAX:128] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the exponential value of packed half-precision (16-bit) floating-point elements in "a" raised by packed elements in "b", and store the results in "dst". + + + Elementary Math Functions +FOR j := 0 to 7 + i := j*16 + dst[i+15:i] := POW(a[i+15:i], b[i+15:i]) +ENDFOR +dst[MAX:128] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the sine of packed half-precision (16-bit) floating-point elements in "a" expressed in radians, and store the results in "dst". + + Trigonometry +FOR j := 0 to 7 + i := j*16 + dst[i+15:i] := SIN(a[i+15:i]) +ENDFOR +dst[MAX:128] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the sine and cosine of packed half-precision (16-bit) floating-point elements in "a" expressed in radians, store the sine in "dst", and store the cosine into memory at "mem_addr". + + + Trigonometry +FOR j := 0 to 7 + i := j*16 + dst[i+15:i] := SIN(a[i+15:i]) + MEM[mem_addr+i+15:mem_addr+i] := COS(a[i+15:i]) +ENDFOR +dst[MAX:128] := 0 +cos_res[MAX:128] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the sine of packed half-precision (16-bit) floating-point elements in "a" expressed in degrees, and store the results in "dst". + + TrigonometryFOR j := 0 to 7 + i := j*16 + dst[i+15:i] := SIND(a[i+15:i]) +ENDFOR +dst[MAX:128] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the hyperbolic sine of packed half-precision (16-bit) floating-point elements in "a" expressed in radians, and store the results in "dst". + + Trigonometry +FOR j := 0 to 7 + i := j*16 + dst[i+15:i] := SINH(a[i+15:i]) +ENDFOR +dst[MAX:128] := 0 +
immintrin.h
AVX512_FP16
+ + + Round the packed half-precision (16-bit) floating-point elements in "a" up to an integer value, and store the results as packed half-precision floating-point elements in "dst". + + Special Math Functions +FOR j := 0 to 7 + i := j*16 + dst[i+15:i] := CEIL(a[i+15:i]) +ENDFOR +dst[MAX:128] := 0 +
immintrin.h
AVX512_FP16
+ + + Round the packed half-precision (16-bit) floating-point elements in "a" down to an integer value, and store the results as packed half-precision floating-point elements in "dst". + + Special Math Functions +FOR j := 0 to 7 + i := j*16 + dst[i+15:i] := FLOOR(a[i+15:i]) +ENDFOR +dst[MAX:128] := 0 +
immintrin.h
AVX512_FP16
+ + + Round the packed half-precision (16-bit) floating-point elements in "a" to the nearest integer value, and store the results as packed half-precision floating-point elements in "dst". + + Special Math Functions +FOR j := 0 to 7 + i := j*16 + dst[i+15:i] := ROUND(a[i+15:i]) +ENDFOR +dst[MAX:128] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the square root of packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst". Note that this intrinsic is less efficient than "_mm_sqrt_ps". + + Elementary Math Functions +FOR j := 0 to 7 + i := j*16 + dst[i+15:i] := SQRT(a[i+15:i]) +ENDFOR +dst[MAX:128] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the tangent of packed half-precision (16-bit) floating-point elements in "a" expressed in radians, and store the results in "dst". + + Trigonometry +FOR j := 0 to 7 + i := j*16 + dst[i+15:i] := TAN(a[i+15:i]) +ENDFOR +dst[MAX:128] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the tangent of packed half-precision (16-bit) floating-point elements in "a" expressed in degrees, and store the results in "dst". + + TrigonometryFOR j := 0 to 7 + i := j*16 + dst[i+15:i] := TAND(a[i+15:i]) +ENDFOR +dst[MAX:128] := 0 +
immintrin.h
AVX512_FP16
+ + + Compute the hyperbolic tangent of packed half-precision (16-bit) floating-point elements in "a" expressed in radians, and store the results in "dst". + + Trigonometry +FOR j := 0 to 7 + i := j*16 + dst[i+15:i] := TANH(a[i+15:i]) +ENDFOR +dst[MAX:128] := 0 +
immintrin.h
AVX512_FP16
+ + + Truncate the packed half-precision (16-bit) floating-point elements in "a", and store the results as packed half-precision floating-point elements in "dst". + + Special Math FunctionsFOR j := 0 to 7 + i := j*16 + dst[i+15:i] := TRUNCATE(a[i+15:i]) +ENDFOR +dst[MAX:128] := 0 +
immintrin.h
AVX512_FP16
+ + + + + Add packed half-precision (16-bit) floating-point elements in "a" and "b", and store the results in "dst". + +FOR j := 0 TO 7 + dst.fp16[j] := a.fp16[j] + b.fp16[j] +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Add packed half-precision (16-bit) floating-point elements in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 TO 7 + IF k[j] + dst.fp16[j] := a.fp16[j] + b.fp16[j] + ELSE + dst.fp16[j] := src.fp16[j] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Add packed half-precision (16-bit) floating-point elements in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 TO 7 + IF k[j] + dst.fp16[j] := a.fp16[j] + b.fp16[j] + ELSE + dst.fp16[j] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + Add packed half-precision (16-bit) floating-point elements in "a" and "b", and store the results in "dst". + +FOR j := 0 TO 15 + dst.fp16[j] := a.fp16[j] + b.fp16[j] +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Add packed half-precision (16-bit) floating-point elements in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 TO 15 + IF k[j] + dst.fp16[j] := a.fp16[j] + b.fp16[j] + ELSE + dst.fp16[j] := src.fp16[j] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Add packed half-precision (16-bit) floating-point elements in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 TO 15 + IF k[j] + dst.fp16[j] := a.fp16[j] + b.fp16[j] + ELSE + dst.fp16[j] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + Divide packed half-precision (16-bit) floating-point elements in "a" by packed elements in "b", and store the results in "dst". + +FOR j := 0 to 7 + dst.fp16[j] := a.fp16[j] / b.fp16[j] +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Divide packed half-precision (16-bit) floating-point elements in "a" by packed elements in "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + IF k[j] + dst.fp16[j] := a.fp16[j] / b.fp16[j] + ELSE + dst.fp16[j] := src.fp16[j] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Divide packed half-precision (16-bit) floating-point elements in "a" by packed elements in "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + IF k[j] + dst.fp16[j] := a.fp16[j] / b.fp16[j] + ELSE + dst.fp16[j] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + Divide packed half-precision (16-bit) floating-point elements in "a" by packed elements in "b", and store the results in "dst". + +FOR j := 0 to 15 + dst.fp16[j] := a.fp16[j] / b.fp16[j] +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Divide packed half-precision (16-bit) floating-point elements in "a" by packed elements in "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + IF k[j] + dst.fp16[j] := a.fp16[j] / b.fp16[j] + ELSE + dst.fp16[j] := src.fp16[j] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Divide packed half-precision (16-bit) floating-point elements in "a" by packed elements in "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + IF k[j] + dst.fp16[j] := a.fp16[j] / b.fp16[j] + ELSE + dst.fp16[j] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply packed half-precision (16-bit) floating-point elements in "a" and "b", add the intermediate result to packed elements in "c", and store the results in "dst". + +FOR j := 0 to 7 + dst.fp16[j] := (a.fp16[j] * b.fp16[j]) + c.fp16[j] +ENDFOR +dst[MAX:128] := 0 + + + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed half-precision (16-bit) floating-point elements in "a" and "b", add the intermediate result to packed elements in "c", and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + IF k[j] + dst.fp16[j] := (a.fp16[j] * b.fp16[j]) + c.fp16[j] + ELSE + dst.fp16[j] := a.fp16[j] + FI +ENDFOR +dst[MAX:128] := 0 + + + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed half-precision (16-bit) floating-point elements in "a" and "b", add the intermediate result to packed elements in "c", and store the results in "dst" using writemask "k" (elements are copied from "c" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + IF k[j] + dst.fp16[j] := (a.fp16[j] * b.fp16[j]) + c.fp16[j] + ELSE + dst.fp16[j] := c.fp16[j] + FI +ENDFOR +dst[MAX:128] := 0 + + + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed half-precision (16-bit) floating-point elements in "a" and "b", add the intermediate result to packed elements in "c", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + IF k[j] + dst.fp16[j] := (a.fp16[j] * b.fp16[j]) + c.fp16[j] + ELSE + dst.fp16[j] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply packed half-precision (16-bit) floating-point elements in "a" and "b", add the intermediate result to packed elements in "c", and store the results in "dst". + +FOR j := 0 to 15 + dst.fp16[j] := (a.fp16[j] * b.fp16[j]) + c.fp16[j] +ENDFOR +dst[MAX:256] := 0 + + + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed half-precision (16-bit) floating-point elements in "a" and "b", add the intermediate result to packed elements in "c", and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + IF k[j] + dst.fp16[j] := (a.fp16[j] * b.fp16[j]) + c.fp16[j] + ELSE + dst.fp16[j] := a.fp16[j] + FI +ENDFOR +dst[MAX:256] := 0 + + + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed half-precision (16-bit) floating-point elements in "a" and "b", add the intermediate result to packed elements in "c", and store the results in "dst" using writemask "k" (elements are copied from "c" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + IF k[j] + dst.fp16[j] := (a.fp16[j] * b.fp16[j]) + c.fp16[j] + ELSE + dst.fp16[j] := c.fp16[j] + FI +ENDFOR +dst[MAX:256] := 0 + + + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed half-precision (16-bit) floating-point elements in "a" and "b", add the intermediate result to packed elements in "c", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + IF k[j] + dst.fp16[j] := (a.fp16[j] * b.fp16[j]) + c.fp16[j] + ELSE + dst.fp16[j] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply packed half-precision (16-bit) floating-point elements in "a" and "b", add the negated intermediate result to packed elements in "c", and store the results in "dst". + +FOR j := 0 to 7 + dst.fp16[j] := -(a.fp16[j] * b.fp16[j]) + c.fp16[j] +ENDFOR +dst[MAX:128] := 0 + + + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed half-precision (16-bit) floating-point elements in "a" and "b", add the negated intermediate result to packed elements in "c", and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + IF k[j] + dst.fp16[j] := -(a.fp16[j] * b.fp16[j]) + c.fp16[j] + ELSE + dst.fp16[j] := a.fp16[j] + FI +ENDFOR +dst[MAX:128] := 0 + + + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed half-precision (16-bit) floating-point elements in "a" and "b", add the negated intermediate result to packed elements in "c", and store the results in "dst" using writemask "k" (elements are copied from "c" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + IF k[j] + dst.fp16[j] := -(a.fp16[j] * b.fp16[j]) + c.fp16[j] + ELSE + dst.fp16[j] := c.fp16[j] + FI +ENDFOR +dst[MAX:128] := 0 + + + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed half-precision (16-bit) floating-point elements in "a" and "b", add the negated intermediate result to packed elements in "c", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + IF k[j] + dst.fp16[j] := -(a.fp16[j] * b.fp16[j]) + c.fp16[j] + ELSE + dst.fp16[j] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply packed half-precision (16-bit) floating-point elements in "a" and "b", add the negated intermediate result to packed elements in "c", and store the results in "dst". + +FOR j := 0 to 15 + dst.fp16[j] := -(a.fp16[j] * b.fp16[j]) + c.fp16[j] +ENDFOR +dst[MAX:256] := 0 + + + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed half-precision (16-bit) floating-point elements in "a" and "b", add the negated intermediate result to packed elements in "c", and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + IF k[j] + dst.fp16[j] := -(a.fp16[j] * b.fp16[j]) + c.fp16[j] + ELSE + dst.fp16[j] := a.fp16[j] + FI +ENDFOR +dst[MAX:256] := 0 + + + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed half-precision (16-bit) floating-point elements in "a" and "b", add the negated intermediate result to packed elements in "c", and store the results in "dst" using writemask "k" (elements are copied from "c" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + IF k[j] + dst.fp16[j] := -(a.fp16[j] * b.fp16[j]) + c.fp16[j] + ELSE + dst.fp16[j] := c.fp16[j] + FI +ENDFOR +dst[MAX:256] := 0 + + + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed half-precision (16-bit) floating-point elements in "a" and "b", add the negated intermediate result to packed elements in "c", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + IF k[j] + dst.fp16[j] := -(a.fp16[j] * b.fp16[j]) + c.fp16[j] + ELSE + dst.fp16[j] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply packed half-precision (16-bit) floating-point elements in "a" and "b", subtract packed elements in "c" from the intermediate result, and store the results in "dst". + +FOR j := 0 to 7 + dst.fp16[j] := (a.fp16[j] * b.fp16[j]) - c.fp16[j] +ENDFOR +dst[MAX:128] := 0 + + + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed half-precision (16-bit) floating-point elements in "a" and "b", subtract packed elements in "c" from the intermediate result, and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + IF k[j] + dst.fp16[j] := (a.fp16[j] * b.fp16[j]) - c.fp16[j] + ELSE + dst.fp16[j] := a.fp16[j] + FI +ENDFOR +dst[MAX:128] := 0 + + + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed half-precision (16-bit) floating-point elements in "a" and "b", subtract packed elements in "c" from the intermediate result, and store the results in "dst" using writemask "k" (elements are copied from "c" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + IF k[j] + dst.fp16[j] := (a.fp16[j] * b.fp16[j]) - c.fp16[j] + ELSE + dst.fp16[j] := c.fp16[j] + FI +ENDFOR +dst[MAX:128] := 0 + + + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed half-precision (16-bit) floating-point elements in "a" and "b", subtract packed elements in "c" from the intermediate result, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + IF k[j] + dst.fp16[j] := (a.fp16[j] * b.fp16[j]) - c.fp16[j] + ELSE + dst.fp16[j] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply packed half-precision (16-bit) floating-point elements in "a" and "b", subtract packed elements in "c" from the intermediate result, and store the results in "dst". + +FOR j := 0 to 15 + dst.fp16[j] := (a.fp16[j] * b.fp16[j]) - c.fp16[j] +ENDFOR +dst[MAX:256] := 0 + + + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed half-precision (16-bit) floating-point elements in "a" and "b", subtract packed elements in "c" from the intermediate result, and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + IF k[j] + dst.fp16[j] := (a.fp16[j] * b.fp16[j]) - c.fp16[j] + ELSE + dst.fp16[j] := a.fp16[j] + FI +ENDFOR +dst[MAX:256] := 0 + + + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed half-precision (16-bit) floating-point elements in "a" and "b", subtract packed elements in "c" from the intermediate result, and store the results in "dst" using writemask "k" (elements are copied from "c" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + IF k[j] + dst.fp16[j] := (a.fp16[j] * b.fp16[j]) - c.fp16[j] + ELSE + dst.fp16[j] := c.fp16[j] + FI +ENDFOR +dst[MAX:256] := 0 + + + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed half-precision (16-bit) floating-point elements in "a" and "b", subtract packed elements in "c" from the intermediate result, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + IF k[j] + dst.fp16[j] := (a.fp16[j] * b.fp16[j]) - c.fp16[j] + ELSE + dst.fp16[j] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply packed half-precision (16-bit) floating-point elements in "a" and "b", subtract packed elements in "c" from the negated intermediate result, and store the results in "dst". + +FOR j := 0 to 7 + dst.fp16[j] := -(a.fp16[j] * b.fp16[j]) - c.fp16[j] +ENDFOR +dst[MAX:128] := 0 + + + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed half-precision (16-bit) floating-point elements in "a" and "b", subtract packed elements in "c" from the negated intermediate result, and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + IF k[j] + dst.fp16[j] := -(a.fp16[j] * b.fp16[j]) - c.fp16[j] + ELSE + dst.fp16[j] := a.fp16[j] + FI +ENDFOR +dst[MAX:128] := 0 + + + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed half-precision (16-bit) floating-point elements in "a" and "b", subtract packed elements in "c" from the negated intermediate result, and store the results in "dst" using writemask "k" (elements are copied from "c" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + IF k[j] + dst.fp16[j] := -(a.fp16[j] * b.fp16[j]) - c.fp16[j] + ELSE + dst.fp16[j] := c.fp16[j] + FI +ENDFOR +dst[MAX:128] := 0 + + + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed half-precision (16-bit) floating-point elements in "a" and "b", subtract packed elements in "c" from the negated intermediate result, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + IF k[j] + dst.fp16[j] := -(a.fp16[j] * b.fp16[j]) - c.fp16[j] + ELSE + dst.fp16[j] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply packed half-precision (16-bit) floating-point elements in "a" and "b", subtract packed elements in "c" from the negated intermediate result, and store the results in "dst". + +FOR j := 0 to 15 + dst.fp16[j] := -(a.fp16[j] * b.fp16[j]) - c.fp16[j] +ENDFOR +dst[MAX:256] := 0 + + + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed half-precision (16-bit) floating-point elements in "a" and "b", subtract packed elements in "c" from the negated intermediate result, and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + IF k[j] + dst.fp16[j] := -(a.fp16[j] * b.fp16[j]) - c.fp16[j] + ELSE + dst.fp16[j] := a.fp16[j] + FI +ENDFOR +dst[MAX:256] := 0 + + + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed half-precision (16-bit) floating-point elements in "a" and "b", subtract packed elements in "c" from the negated intermediate result, and store the results in "dst" using writemask "k" (elements are copied from "c" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + IF k[j] + dst.fp16[j] := -(a.fp16[j] * b.fp16[j]) - c.fp16[j] + ELSE + dst.fp16[j] := c.fp16[j] + FI +ENDFOR +dst[MAX:256] := 0 + + + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed half-precision (16-bit) floating-point elements in "a" and "b", subtract packed elements in "c" from the negated intermediate result, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + IF k[j] + dst.fp16[j] := -(a.fp16[j] * b.fp16[j]) - c.fp16[j] + ELSE + dst.fp16[j] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply packed half-precision (16-bit) floating-point elements in "a" and "b", alternatively add and subtract packed elements in "c" to/from the intermediate result, and store the results in "dst". + +FOR j := 0 to 7 + IF ((j & 1) == 0) + dst.fp16[j] := (a.fp16[j] * b.fp16[j]) - c.fp16[j] + ELSE + dst.fp16[j] := (a.fp16[j] * b.fp16[j]) + c.fp16[j] + FI +ENDFOR +dst[MAX:128] := 0 + + + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed half-precision (16-bit) floating-point elements in "a" and "b", alternatively add and subtract packed elements in "c" to/from the intermediate result, and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + IF k[j] + IF ((j & 1) == 0) + dst.fp16[j] := (a.fp16[j] * b.fp16[j]) - c.fp16[j] + ELSE + dst.fp16[j] := (a.fp16[j] * b.fp16[j]) + c.fp16[j] + FI + ELSE + dst.fp16[j] := a.fp16[j] + FI +ENDFOR +dst[MAX:128] := 0 + + + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed half-precision (16-bit) floating-point elements in "a" and "b", alternatively add and subtract packed elements in "c" to/from the intermediate result, and store the results in "dst" using writemask "k" (elements are copied from "c" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + IF k[j] + IF ((j & 1) == 0) + dst.fp16[j] := (a.fp16[j] * b.fp16[j]) - c.fp16[j] + ELSE + dst.fp16[j] := (a.fp16[j] * b.fp16[j]) + c.fp16[j] + FI + ELSE + dst.fp16[j] := c.fp16[j] + FI +ENDFOR +dst[MAX:128] := 0 + + + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed half-precision (16-bit) floating-point elements in "a" and "b", alternatively add and subtract packed elements in "c" to/from the intermediate result, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + IF k[j] + IF ((j & 1) == 0) + dst.fp16[j] := (a.fp16[j] * b.fp16[j]) - c.fp16[j] + ELSE + dst.fp16[j] := (a.fp16[j] * b.fp16[j]) + c.fp16[j] + FI + ELSE + dst.fp16[j] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply packed half-precision (16-bit) floating-point elements in "a" and "b", alternatively add and subtract packed elements in "c" to/from the intermediate result, and store the results in "dst". + +FOR j := 0 to 15 + IF ((j & 1) == 0) + dst.fp16[j] := (a.fp16[j] * b.fp16[j]) - c.fp16[j] + ELSE + dst.fp16[j] := (a.fp16[j] * b.fp16[j]) + c.fp16[j] + FI +ENDFOR +dst[MAX:256] := 0 + + + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed half-precision (16-bit) floating-point elements in "a" and "b", alternatively add and subtract packed elements in "c" to/from the intermediate result, and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + IF k[j] + IF ((j & 1) == 0) + dst.fp16[j] := (a.fp16[j] * b.fp16[j]) - c.fp16[j] + ELSE + dst.fp16[j] := (a.fp16[j] * b.fp16[j]) + c.fp16[j] + FI + ELSE + dst.fp16[j] := a.fp16[j] + FI +ENDFOR +dst[MAX:256] := 0 + + + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed half-precision (16-bit) floating-point elements in "a" and "b", alternatively add and subtract packed elements in "c" to/from the intermediate result, and store the results in "dst" using writemask "k" (elements are copied from "c" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + IF k[j] + IF ((j & 1) == 0) + dst.fp16[j] := (a.fp16[j] * b.fp16[j]) - c.fp16[j] + ELSE + dst.fp16[j] := (a.fp16[j] * b.fp16[j]) + c.fp16[j] + FI + ELSE + dst.fp16[j] := c.fp16[j] + FI +ENDFOR +dst[MAX:256] := 0 + + + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed half-precision (16-bit) floating-point elements in "a" and "b", alternatively add and subtract packed elements in "c" to/from the intermediate result, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + IF k[j] + IF ((j & 1) == 0) + dst.fp16[j] := (a.fp16[j] * b.fp16[j]) - c.fp16[j] + ELSE + dst.fp16[j] := (a.fp16[j] * b.fp16[j]) + c.fp16[j] + FI + ELSE + dst.fp16[j] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply packed half-precision (16-bit) floating-point elements in "a" and "b", alternatively subtract and add packed elements in "c" to/from the intermediate result, and store the results in "dst". + +FOR j := 0 to 7 + IF ((j & 1) == 0) + dst.fp16[j] := (a.fp16[j] * b.fp16[j]) + c.fp16[j] + ELSE + dst.fp16[j] := (a.fp16[j] * b.fp16[j]) - c.fp16[j] + FI +ENDFOR +dst[MAX:128] := 0 + + + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed half-precision (16-bit) floating-point elements in "a" and "b", alternatively subtract and add packed elements in "c" to/from the intermediate result, and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + IF k[j] + IF ((j & 1) == 0) + dst.fp16[j] := (a.fp16[j] * b.fp16[j]) + c.fp16[j] + ELSE + dst.fp16[j] := (a.fp16[j] * b.fp16[j]) - c.fp16[j] + FI + ELSE + dst.fp16[j] := a.fp16[j] + FI +ENDFOR +dst[MAX:128] := 0 + + + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed half-precision (16-bit) floating-point elements in "a" and "b", alternatively subtract and add packed elements in "c" to/from the intermediate result, and store the results in "dst" using writemask "k" (elements are copied from "c" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + IF k[j] + IF ((j & 1) == 0) + dst.fp16[j] := (a.fp16[j] * b.fp16[j]) + c.fp16[j] + ELSE + dst.fp16[j] := (a.fp16[j] * b.fp16[j]) - c.fp16[j] + FI + ELSE + dst.fp16[j] := c.fp16[j] + FI +ENDFOR +dst[MAX:128] := 0 + + + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed half-precision (16-bit) floating-point elements in "a" and "b", alternatively subtract and add packed elements in "c" to/from the intermediate result, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + IF k[j] + IF ((j & 1) == 0) + dst.fp16[j] := (a.fp16[j] * b.fp16[j]) + c.fp16[j] + ELSE + dst.fp16[j] := (a.fp16[j] * b.fp16[j]) - c.fp16[j] + FI + ELSE + dst.fp16[j] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply packed half-precision (16-bit) floating-point elements in "a" and "b", alternatively subtract and add packed elements in "c" to/from the intermediate result, and store the results in "dst". + +FOR j := 0 to 15 + IF ((j & 1) == 0) + dst.fp16[j] := (a.fp16[j] * b.fp16[j]) + c.fp16[j] + ELSE + dst.fp16[j] := (a.fp16[j] * b.fp16[j]) - c.fp16[j] + FI +ENDFOR +dst[MAX:256] := 0 + + + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed half-precision (16-bit) floating-point elements in "a" and "b", alternatively subtract and add packed elements in "c" to/from the intermediate result, and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + IF k[j] + IF ((j & 1) == 0) + dst.fp16[j] := (a.fp16[j] * b.fp16[j]) + c.fp16[j] + ELSE + dst.fp16[j] := (a.fp16[j] * b.fp16[j]) - c.fp16[j] + FI + ELSE + dst.fp16[j] := a.fp16[j] + FI +ENDFOR +dst[MAX:256] := 0 + + + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed half-precision (16-bit) floating-point elements in "a" and "b", alternatively subtract and add packed elements in "c" to/from the intermediate result, and store the results in "dst" using writemask "k" (elements are copied from "c" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + IF k[j] + IF ((j & 1) == 0) + dst.fp16[j] := (a.fp16[j] * b.fp16[j]) + c.fp16[j] + ELSE + dst.fp16[j] := (a.fp16[j] * b.fp16[j]) - c.fp16[j] + FI + ELSE + dst.fp16[j] := c.fp16[j] + FI +ENDFOR +dst[MAX:256] := 0 + + + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed half-precision (16-bit) floating-point elements in "a" and "b", alternatively subtract and add packed elements in "c" to/from the intermediate result, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + IF k[j] + IF ((j & 1) == 0) + dst.fp16[j] := (a.fp16[j] * b.fp16[j]) + c.fp16[j] + ELSE + dst.fp16[j] := (a.fp16[j] * b.fp16[j]) - c.fp16[j] + FI + ELSE + dst.fp16[j] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + Subtract packed half-precision (16-bit) floating-point elements in "b" from packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst". + +FOR j := 0 TO 7 + dst.fp16[j] := a.fp16[j] - b.fp16[j] +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Subtract packed half-precision (16-bit) floating-point elements in "b" from packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 TO 7 + IF k[j] + dst.fp16[j] := a.fp16[j] - b.fp16[j] + ELSE + dst.fp16[j] := src.fp16[j] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Subtract packed half-precision (16-bit) floating-point elements in "b" from packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 TO 7 + IF k[j] + dst.fp16[j] := a.fp16[j] - b.fp16[j] + ELSE + dst.fp16[j] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + Subtract packed half-precision (16-bit) floating-point elements in "b" from packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst". + +FOR j := 0 TO 15 + dst.fp16[j] := a.fp16[j] - b.fp16[j] +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Subtract packed half-precision (16-bit) floating-point elements in "b" from packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 TO 15 + IF k[j] + dst.fp16[j] := a.fp16[j] - b.fp16[j] + ELSE + dst.fp16[j] := src.fp16[j] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Subtract packed half-precision (16-bit) floating-point elements in "b" from packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 TO 15 + IF k[j] + dst.fp16[j] := a.fp16[j] - b.fp16[j] + ELSE + dst.fp16[j] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + Multiply packed half-precision (16-bit) floating-point elements in "a" and "b", and store the results in "dst". + +FOR i := 0 TO 7 + dst.fp16[i] := a.fp16[i] * b.fp16[i] +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed half-precision (16-bit) floating-point elements in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR i := 0 TO 7 + IF k[i] + dst.fp16[i] := a.fp16[i] * b.fp16[i] + ELSE + dst.fp16[i] := src.fp16[i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply packed half-precision (16-bit) floating-point elements in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR i := 0 TO 7 + IF k[i] + dst.fp16[i] := a.fp16[i] * b.fp16[i] + ELSE + dst.fp16[i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + Multiply packed half-precision (16-bit) floating-point elements in "a" and "b", and store the results in "dst". + +FOR i := 0 TO 15 + dst.fp16[i] := a.fp16[i] * b.fp16[i] +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed half-precision (16-bit) floating-point elements in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR i := 0 TO 15 + IF k[i] + dst.fp16[i] := a.fp16[i] * b.fp16[i] + ELSE + dst.fp16[i] := src.fp16[i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply packed half-precision (16-bit) floating-point elements in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR i := 0 TO 15 + IF k[i] + dst.fp16[i] := a.fp16[i] * b.fp16[i] + ELSE + dst.fp16[i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + Multiply packed complex numbers in "a" and "b", and store the results in "dst". Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]". + +FOR i := 0 to 3 + dst.fp16[2*i+0] := (a.fp16[2*i+0] * b.fp16[2*i+0]) - (a.fp16[2*i+1] * b.fp16[2*i+1]) + dst.fp16[2*i+1] := (a.fp16[2*i+1] * b.fp16[2*i+0]) + (a.fp16[2*i+0] * b.fp16[2*i+1]) +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + Multiply packed complex numbers in "a" and "b", and store the results in "dst". Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]". + +FOR i := 0 to 3 + dst.fp16[2*i+0] := (a.fp16[2*i+0] * b.fp16[2*i+0]) - (a.fp16[2*i+1] * b.fp16[2*i+1]) + dst.fp16[2*i+1] := (a.fp16[2*i+1] * b.fp16[2*i+0]) + (a.fp16[2*i+0] * b.fp16[2*i+1]) +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed complex numbers in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]". + +FOR i := 0 to 3 + IF k[i] + dst.fp16[2*i+0] := (a.fp16[2*i+0] * b.fp16[2*i+0]) - (a.fp16[2*i+1] * b.fp16[2*i+1]) + dst.fp16[2*i+1] := (a.fp16[2*i+1] * b.fp16[2*i+0]) + (a.fp16[2*i+0] * b.fp16[2*i+1]) + ELSE + dst.fp16[2*i+0] := src.fp16[2*i+0] + dst.fp16[2*i+1] := src.fp16[2*i+1] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed complex numbers in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]". + +FOR i := 0 to 3 + IF k[i] + dst.fp16[2*i+0] := (a.fp16[2*i+0] * b.fp16[2*i+0]) - (a.fp16[2*i+1] * b.fp16[2*i+1]) + dst.fp16[2*i+1] := (a.fp16[2*i+1] * b.fp16[2*i+0]) + (a.fp16[2*i+0] * b.fp16[2*i+1]) + ELSE + dst.fp16[2*i+0] := src.fp16[2*i+0] + dst.fp16[2*i+1] := src.fp16[2*i+1] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply packed complex numbers in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]". + +FOR i := 0 to 3 + IF k[i] + dst.fp16[2*i+0] := (a.fp16[2*i+0] * b.fp16[2*i+0]) - (a.fp16[2*i+1] * b.fp16[2*i+1]) + dst.fp16[2*i+1] := (a.fp16[2*i+1] * b.fp16[2*i+0]) + (a.fp16[2*i+0] * b.fp16[2*i+1]) + ELSE + dst.fp16[2*i+0] := 0 + dst.fp16[2*i+1] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply packed complex numbers in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]". + +FOR i := 0 to 3 + IF k[i] + dst.fp16[2*i+0] := (a.fp16[2*i+0] * b.fp16[2*i+0]) - (a.fp16[2*i+1] * b.fp16[2*i+1]) + dst.fp16[2*i+1] := (a.fp16[2*i+1] * b.fp16[2*i+0]) + (a.fp16[2*i+0] * b.fp16[2*i+1]) + ELSE + dst.fp16[2*i+0] := 0 + dst.fp16[2*i+1] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + Multiply packed complex numbers in "a" and "b", and store the results in "dst". Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]". + +FOR i := 0 to 7 + dst.fp16[2*i+0] := (a.fp16[2*i+0] * b.fp16[2*i+0]) - (a.fp16[2*i+1] * b.fp16[2*i+1]) + dst.fp16[2*i+1] := (a.fp16[2*i+1] * b.fp16[2*i+0]) + (a.fp16[2*i+0] * b.fp16[2*i+1]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + Multiply packed complex numbers in "a" and "b", and store the results in "dst". Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]". + +FOR i := 0 to 7 + dst.fp16[2*i+0] := (a.fp16[2*i+0] * b.fp16[2*i+0]) - (a.fp16[2*i+1] * b.fp16[2*i+1]) + dst.fp16[2*i+1] := (a.fp16[2*i+1] * b.fp16[2*i+0]) + (a.fp16[2*i+0] * b.fp16[2*i+1]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed complex numbers in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]". + +FOR i := 0 to 7 + IF k[i] + dst.fp16[2*i+0] := (a.fp16[2*i+0] * b.fp16[2*i+0]) - (a.fp16[2*i+1] * b.fp16[2*i+1]) + dst.fp16[2*i+1] := (a.fp16[2*i+1] * b.fp16[2*i+0]) + (a.fp16[2*i+0] * b.fp16[2*i+1]) + ELSE + dst.fp16[2*i+0] := src.fp16[2*i+0] + dst.fp16[2*i+1] := src.fp16[2*i+1] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed complex numbers in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]". + +FOR i := 0 to 7 + IF k[i] + dst.fp16[2*i+0] := (a.fp16[2*i+0] * b.fp16[2*i+0]) - (a.fp16[2*i+1] * b.fp16[2*i+1]) + dst.fp16[2*i+1] := (a.fp16[2*i+1] * b.fp16[2*i+0]) + (a.fp16[2*i+0] * b.fp16[2*i+1]) + ELSE + dst.fp16[2*i+0] := src.fp16[2*i+0] + dst.fp16[2*i+1] := src.fp16[2*i+1] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply packed complex numbers in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]". + +FOR i := 0 to 7 + IF k[i] + dst.fp16[2*i+0] := (a.fp16[2*i+0] * b.fp16[2*i+0]) - (a.fp16[2*i+1] * b.fp16[2*i+1]) + dst.fp16[2*i+1] := (a.fp16[2*i+1] * b.fp16[2*i+0]) + (a.fp16[2*i+0] * b.fp16[2*i+1]) + ELSE + dst.fp16[2*i+0] := 0 + dst.fp16[2*i+1] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply packed complex numbers in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]". + +FOR i := 0 to 7 + IF k[i] + dst.fp16[2*i+0] := (a.fp16[2*i+0] * b.fp16[2*i+0]) - (a.fp16[2*i+1] * b.fp16[2*i+1]) + dst.fp16[2*i+1] := (a.fp16[2*i+1] * b.fp16[2*i+0]) + (a.fp16[2*i+0] * b.fp16[2*i+1]) + ELSE + dst.fp16[2*i+0] := 0 + dst.fp16[2*i+1] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + Multiply packed complex numbers in "a" by the complex conjugates of packed complex numbers in "b", and store the results in "dst". Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]", or the complex conjugate "conjugate = vec.fp16[0] - i * vec.fp16[1]". + +FOR i := 0 to 3 + dst.fp16[2*i+0] := (a.fp16[2*i+0] * b.fp16[2*i+0]) + (a.fp16[2*i+1] * b.fp16[2*i+1]) + dst.fp16[2*i+1] := (a.fp16[2*i+1] * b.fp16[2*i+0]) - (a.fp16[2*i+0] * b.fp16[2*i+1]) +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + Multiply packed complex numbers in "a" by the complex conjugates of packed complex numbers in "b", and store the results in "dst". Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]", or the complex conjugate "conjugate = vec.fp16[0] - i * vec.fp16[1]". + +FOR i := 0 to 3 + dst.fp16[2*i+0] := (a.fp16[2*i+0] * b.fp16[2*i+0]) + (a.fp16[2*i+1] * b.fp16[2*i+1]) + dst.fp16[2*i+1] := (a.fp16[2*i+1] * b.fp16[2*i+0]) - (a.fp16[2*i+0] * b.fp16[2*i+1]) +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed complex numbers in "a" by the complex conjugates of packed complex numbers in "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]", or the complex conjugate "conjugate = vec.fp16[0] - i * vec.fp16[1]". + +FOR i := 0 to 3 + IF k[i] + dst.fp16[2*i+0] := (a.fp16[2*i+0] * b.fp16[2*i+0]) + (a.fp16[2*i+1] * b.fp16[2*i+1]) + dst.fp16[2*i+1] := (a.fp16[2*i+1] * b.fp16[2*i+0]) - (a.fp16[2*i+0] * b.fp16[2*i+1]) + ELSE + dst.fp16[2*i+0] := src.fp16[2*i+0] + dst.fp16[2*i+1] := src.fp16[2*i+1] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed complex numbers in "a" by the complex conjugates of packed complex numbers in "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]", or the complex conjugate "conjugate = vec.fp16[0] - i * vec.fp16[1]". + +FOR i := 0 to 3 + IF k[i] + dst.fp16[2*i+0] := (a.fp16[2*i+0] * b.fp16[2*i+0]) + (a.fp16[2*i+1] * b.fp16[2*i+1]) + dst.fp16[2*i+1] := (a.fp16[2*i+1] * b.fp16[2*i+0]) - (a.fp16[2*i+0] * b.fp16[2*i+1]) + ELSE + dst.fp16[2*i+0] := src.fp16[2*i+0] + dst.fp16[2*i+1] := src.fp16[2*i+1] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply packed complex numbers in "a" by the complex conjugates of packed complex numbers in "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]", or the complex conjugate "conjugate = vec.fp16[0] - i * vec.fp16[1]". + +FOR i := 0 to 3 + IF k[i] + dst.fp16[2*i+0] := (a.fp16[2*i+0] * b.fp16[2*i+0]) + (a.fp16[2*i+1] * b.fp16[2*i+1]) + dst.fp16[2*i+1] := (a.fp16[2*i+1] * b.fp16[2*i+0]) - (a.fp16[2*i+0] * b.fp16[2*i+1]) + ELSE + dst.fp16[2*i+0] := 0 + dst.fp16[2*i+1] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply packed complex numbers in "a" by the complex conjugates of packed complex numbers in "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]", or the complex conjugate "conjugate = vec.fp16[0] - i * vec.fp16[1]". + +FOR i := 0 to 3 + IF k[i] + dst.fp16[2*i+0] := (a.fp16[2*i+0] * b.fp16[2*i+0]) + (a.fp16[2*i+1] * b.fp16[2*i+1]) + dst.fp16[2*i+1] := (a.fp16[2*i+1] * b.fp16[2*i+0]) - (a.fp16[2*i+0] * b.fp16[2*i+1]) + ELSE + dst.fp16[2*i+0] := 0 + dst.fp16[2*i+1] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + Multiply packed complex numbers in "a" by the complex conjugates of packed complex numbers in "b", and store the results in "dst". Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]", or the complex conjugate "conjugate = vec.fp16[0] - i * vec.fp16[1]". + +FOR i := 0 to 7 + dst.fp16[2*i+0] := (a.fp16[2*i+0] * b.fp16[2*i+0]) + (a.fp16[2*i+1] * b.fp16[2*i+1]) + dst.fp16[2*i+1] := (a.fp16[2*i+1] * b.fp16[2*i+0]) - (a.fp16[2*i+0] * b.fp16[2*i+1]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + Multiply packed complex numbers in "a" by the complex conjugates of packed complex numbers in "b", and store the results in "dst". Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]", or the complex conjugate "conjugate = vec.fp16[0] - i * vec.fp16[1]". + +FOR i := 0 to 7 + dst.fp16[2*i+0] := (a.fp16[2*i+0] * b.fp16[2*i+0]) + (a.fp16[2*i+1] * b.fp16[2*i+1]) + dst.fp16[2*i+1] := (a.fp16[2*i+1] * b.fp16[2*i+0]) - (a.fp16[2*i+0] * b.fp16[2*i+1]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed complex numbers in "a" by the complex conjugates of packed complex numbers in "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]", or the complex conjugate "conjugate = vec.fp16[0] - i * vec.fp16[1]". + +FOR i := 0 to 7 + IF k[i] + dst.fp16[2*i+0] := (a.fp16[2*i+0] * b.fp16[2*i+0]) + (a.fp16[2*i+1] * b.fp16[2*i+1]) + dst.fp16[2*i+1] := (a.fp16[2*i+1] * b.fp16[2*i+0]) - (a.fp16[2*i+0] * b.fp16[2*i+1]) + ELSE + dst.fp16[2*i+0] := src.fp16[2*i+0] + dst.fp16[2*i+1] := src.fp16[2*i+1] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed complex numbers in "a" by the complex conjugates of packed complex numbers in "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]", or the complex conjugate "conjugate = vec.fp16[0] - i * vec.fp16[1]". + +FOR i := 0 to 7 + IF k[i] + dst.fp16[2*i+0] := (a.fp16[2*i+0] * b.fp16[2*i+0]) + (a.fp16[2*i+1] * b.fp16[2*i+1]) + dst.fp16[2*i+1] := (a.fp16[2*i+1] * b.fp16[2*i+0]) - (a.fp16[2*i+0] * b.fp16[2*i+1]) + ELSE + dst.fp16[2*i+0] := src.fp16[2*i+0] + dst.fp16[2*i+1] := src.fp16[2*i+1] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply packed complex numbers in "a" by the complex conjugates of packed complex numbers in "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]", or the complex conjugate "conjugate = vec.fp16[0] - i * vec.fp16[1]". + +FOR i := 0 to 7 + IF k[i] + dst.fp16[2*i+0] := (a.fp16[2*i+0] * b.fp16[2*i+0]) + (a.fp16[2*i+1] * b.fp16[2*i+1]) + dst.fp16[2*i+1] := (a.fp16[2*i+1] * b.fp16[2*i+0]) - (a.fp16[2*i+0] * b.fp16[2*i+1]) + ELSE + dst.fp16[2*i+0] := 0 + dst.fp16[2*i+1] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply packed complex numbers in "a" by the complex conjugates of packed complex numbers in "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]", or the complex conjugate "conjugate = vec.fp16[0] - i * vec.fp16[1]". + +FOR i := 0 to 7 + IF k[i] + dst.fp16[2*i+0] := (a.fp16[2*i+0] * b.fp16[2*i+0]) + (a.fp16[2*i+1] * b.fp16[2*i+1]) + dst.fp16[2*i+1] := (a.fp16[2*i+1] * b.fp16[2*i+0]) - (a.fp16[2*i+0] * b.fp16[2*i+1]) + ELSE + dst.fp16[2*i+0] := 0 + dst.fp16[2*i+1] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply packed complex numbers in "a" and "b", accumulate to the corresponding complex numbers in "c", and store the results in "dst". Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]". + +FOR i := 0 to 3 + dst.fp16[2*i+0] := (a.fp16[2*i+0] * b.fp16[2*i+0]) - (a.fp16[2*i+1] * b.fp16[2*i+1]) + c.fp16[2*i+0] + dst.fp16[2*i+1] := (a.fp16[2*i+1] * b.fp16[2*i+0]) + (a.fp16[2*i+0] * b.fp16[2*i+1]) + c.fp16[2*i+1] +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed complex numbers in "a" and "b", accumulate to the corresponding complex numbers in "c", and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]". + +FOR i := 0 to 3 + IF k[i] + dst.fp16[2*i+0] := (a.fp16[2*i+0] * b.fp16[2*i+0]) - (a.fp16[2*i+1] * b.fp16[2*i+1]) + c.fp16[2*i+0] + dst.fp16[2*i+1] := (a.fp16[2*i+1] * b.fp16[2*i+0]) + (a.fp16[2*i+0] * b.fp16[2*i+1]) + c.fp16[2*i+1] + ELSE + dst.fp16[2*i+0] := a.fp16[2*i+0] + dst.fp16[2*i+1] := a.fp16[2*i+1] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed complex numbers in "a" and "b", accumulate to the corresponding complex numbers in "c", and store the results in "dst" using writemask "k" (elements are copied from "c" when the corresponding mask bit is not set). Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]". + +FOR i := 0 to 3 + IF k[i] + dst.fp16[2*i+0] := (a.fp16[2*i+0] * b.fp16[2*i+0]) - (a.fp16[2*i+1] * b.fp16[2*i+1]) + c.fp16[2*i+0] + dst.fp16[2*i+1] := (a.fp16[2*i+1] * b.fp16[2*i+0]) + (a.fp16[2*i+0] * b.fp16[2*i+1]) + c.fp16[2*i+1] + ELSE + dst.fp16[2*i+0] := c.fp16[2*i+0] + dst.fp16[2*i+1] := c.fp16[2*i+1] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed complex numbers in "a" and "b", accumulate to the corresponding complex numbers in "c", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]". + +FOR i := 0 to 3 + IF k[i] + dst.fp16[2*i+0] := (a.fp16[2*i+0] * b.fp16[2*i+0]) - (a.fp16[2*i+1] * b.fp16[2*i+1]) + c.fp16[2*i+0] + dst.fp16[2*i+1] := (a.fp16[2*i+1] * b.fp16[2*i+0]) + (a.fp16[2*i+0] * b.fp16[2*i+1]) + c.fp16[2*i+1] + ELSE + dst.fp16[2*i+0] := 0 + dst.fp16[2*i+1] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply packed complex numbers in "a" and "b", accumulate to the corresponding complex numbers in "c", and store the results in "dst". Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]". + +FOR i := 0 to 7 + dst.fp16[2*i+0] := (a.fp16[2*i+0] * b.fp16[2*i+0]) - (a.fp16[2*i+1] * b.fp16[2*i+1]) + c.fp16[2*i+0] + dst.fp16[2*i+1] := (a.fp16[2*i+1] * b.fp16[2*i+0]) + (a.fp16[2*i+0] * b.fp16[2*i+1]) + c.fp16[2*i+1] +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed complex numbers in "a" and "b", accumulate to the corresponding complex numbers in "c", and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]". + +FOR i := 0 to 7 + IF k[i] + dst.fp16[2*i+0] := (a.fp16[2*i+0] * b.fp16[2*i+0]) - (a.fp16[2*i+1] * b.fp16[2*i+1]) + c.fp16[2*i+0] + dst.fp16[2*i+1] := (a.fp16[2*i+1] * b.fp16[2*i+0]) + (a.fp16[2*i+0] * b.fp16[2*i+1]) + c.fp16[2*i+1] + ELSE + dst.fp16[2*i+0] := a.fp16[2*i+0] + dst.fp16[2*i+1] := a.fp16[2*i+1] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed complex numbers in "a" and "b", accumulate to the corresponding complex numbers in "c", and store the results in "dst" using writemask "k" (elements are copied from "c" when the corresponding mask bit is not set). Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]". + +FOR i := 0 to 7 + IF k[i] + dst.fp16[2*i+0] := (a.fp16[2*i+0] * b.fp16[2*i+0]) - (a.fp16[2*i+1] * b.fp16[2*i+1]) + c.fp16[2*i+0] + dst.fp16[2*i+1] := (a.fp16[2*i+1] * b.fp16[2*i+0]) + (a.fp16[2*i+0] * b.fp16[2*i+1]) + c.fp16[2*i+1] + ELSE + dst.fp16[2*i+0] := c.fp16[2*i+0] + dst.fp16[2*i+1] := c.fp16[2*i+1] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed complex numbers in "a" and "b", accumulate to the corresponding complex numbers in "c", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]". + +FOR i := 0 to 7 + IF k[i] + dst.fp16[2*i+0] := (a.fp16[2*i+0] * b.fp16[2*i+0]) - (a.fp16[2*i+1] * b.fp16[2*i+1]) + c.fp16[2*i+0] + dst.fp16[2*i+1] := (a.fp16[2*i+1] * b.fp16[2*i+0]) + (a.fp16[2*i+0] * b.fp16[2*i+1]) + c.fp16[2*i+1] + ELSE + dst.fp16[2*i+0] := 0 + dst.fp16[2*i+1] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply packed complex numbers in "a" by the complex conjugates of packed complex numbers in "b", accumulate to the corresponding complex numbers in "c", and store the results in "dst". Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]", or the complex conjugate "conjugate = vec.fp16[0] - i * vec.fp16[1]". + +FOR i := 0 to 3 + dst.fp16[2*i+0] := (a.fp16[2*i+0] * b.fp16[2*i+0]) + (a.fp16[2*i+1] * b.fp16[2*i+1]) + c.fp16[2*i+0] + dst.fp16[2*i+1] := (a.fp16[2*i+1] * b.fp16[2*i+0]) - (a.fp16[2*i+0] * b.fp16[2*i+1]) + c.fp16[2*i+1] +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed complex numbers in "a" by the complex conjugates of packed complex numbers in "b", accumulate to the corresponding complex numbers in "c", and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]", or the complex conjugate "conjugate = vec.fp16[0] - i * vec.fp16[1]". + +FOR i := 0 to 3 + IF k[i] + dst.fp16[2*i+0] := (a.fp16[2*i+0] * b.fp16[2*i+0]) + (a.fp16[2*i+1] * b.fp16[2*i+1]) + c.fp16[2*i+0] + dst.fp16[2*i+1] := (a.fp16[2*i+1] * b.fp16[2*i+0]) - (a.fp16[2*i+0] * b.fp16[2*i+1]) + c.fp16[2*i+1] + ELSE + dst.fp16[2*i+0] := a.fp16[2*i+0] + dst.fp16[2*i+1] := a.fp16[2*i+1] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed complex numbers in "a" by the complex conjugates of packed complex numbers in "b", accumulate to the corresponding complex numbers in "c", and store the results in "dst" using writemask "k" (elements are copied from "c" when the corresponding mask bit is not set). Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]", or the complex conjugate "conjugate = vec.fp16[0] - i * vec.fp16[1]". + +FOR i := 0 to 3 + IF k[i] + dst.fp16[2*i+0] := (a.fp16[2*i+0] * b.fp16[2*i+0]) + (a.fp16[2*i+1] * b.fp16[2*i+1]) + c.fp16[2*i+0] + dst.fp16[2*i+1] := (a.fp16[2*i+1] * b.fp16[2*i+0]) - (a.fp16[2*i+0] * b.fp16[2*i+1]) + c.fp16[2*i+1] + ELSE + dst.fp16[2*i+0] := c.fp16[2*i+0] + dst.fp16[2*i+1] := c.fp16[2*i+1] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed complex numbers in "a" by the complex conjugates of packed complex numbers in "b", accumulate to the corresponding complex numbers in "c", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]", or the complex conjugate "conjugate = vec.fp16[0] - i * vec.fp16[1]". + +FOR i := 0 to 3 + IF k[i] + dst.fp16[2*i+0] := (a.fp16[2*i+0] * b.fp16[2*i+0]) + (a.fp16[2*i+1] * b.fp16[2*i+1]) + c.fp16[2*i+0] + dst.fp16[2*i+1] := (a.fp16[2*i+1] * b.fp16[2*i+0]) - (a.fp16[2*i+0] * b.fp16[2*i+1]) + c.fp16[2*i+1] + ELSE + dst.fp16[2*i+0] := 0 + dst.fp16[2*i+1] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply packed complex numbers in "a" by the complex conjugates of packed complex numbers in "b", accumulate to the corresponding complex numbers in "c", and store the results in "dst". Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]", or the complex conjugate "conjugate = vec.fp16[0] - i * vec.fp16[1]". + +FOR i := 0 to 7 + dst.fp16[2*i+0] := (a.fp16[2*i+0] * b.fp16[2*i+0]) + (a.fp16[2*i+1] * b.fp16[2*i+1]) + c.fp16[2*i+0] + dst.fp16[2*i+1] := (a.fp16[2*i+1] * b.fp16[2*i+0]) - (a.fp16[2*i+0] * b.fp16[2*i+1]) + c.fp16[2*i+1] +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed complex numbers in "a" by the complex conjugates of packed complex numbers in "b", accumulate to the corresponding complex numbers in "c", and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]", or the complex conjugate "conjugate = vec.fp16[0] - i * vec.fp16[1]". + +FOR i := 0 to 7 + IF k[i] + dst.fp16[2*i+0] := (a.fp16[2*i+0] * b.fp16[2*i+0]) + (a.fp16[2*i+1] * b.fp16[2*i+1]) + c.fp16[2*i+0] + dst.fp16[2*i+1] := (a.fp16[2*i+1] * b.fp16[2*i+0]) - (a.fp16[2*i+0] * b.fp16[2*i+1]) + c.fp16[2*i+1] + ELSE + dst.fp16[2*i+0] := a.fp16[2*i+0] + dst.fp16[2*i+1] := a.fp16[2*i+1] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed complex numbers in "a" by the complex conjugates of packed complex numbers in "b", accumulate to the corresponding complex numbers in "c", and store the results in "dst" using writemask "k" (elements are copied from "c" when the corresponding mask bit is not set). Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]", or the complex conjugate "conjugate = vec.fp16[0] - i * vec.fp16[1]". + +FOR i := 0 to 7 + IF k[i] + dst.fp16[2*i+0] := (a.fp16[2*i+0] * b.fp16[2*i+0]) + (a.fp16[2*i+1] * b.fp16[2*i+1]) + c.fp16[2*i+0] + dst.fp16[2*i+1] := (a.fp16[2*i+1] * b.fp16[2*i+0]) - (a.fp16[2*i+0] * b.fp16[2*i+1]) + c.fp16[2*i+1] + ELSE + dst.fp16[2*i+0] := c.fp16[2*i+0] + dst.fp16[2*i+1] := c.fp16[2*i+1] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed complex numbers in "a" by the complex conjugates of packed complex numbers in "b", accumulate to the corresponding complex numbers in "c", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]", or the complex conjugate "conjugate = vec.fp16[0] - i * vec.fp16[1]". + +FOR i := 0 to 7 + IF k[i] + dst.fp16[2*i+0] := (a.fp16[2*i+0] * b.fp16[2*i+0]) + (a.fp16[2*i+1] * b.fp16[2*i+1]) + c.fp16[2*i+0] + dst.fp16[2*i+1] := (a.fp16[2*i+1] * b.fp16[2*i+0]) - (a.fp16[2*i+0] * b.fp16[2*i+1]) + c.fp16[2*i+1] + ELSE + dst.fp16[2*i+0] := 0 + dst.fp16[2*i+1] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + Reduce the packed half-precision (16-bit) floating-point elements in "a" by addition. Returns the sum of all elements in "a". + +tmp := a +FOR i := 0 to 7 + tmp.fp16[i] := tmp.fp16[i] + tmp.fp16[i+8] +ENDFOR +FOR i := 0 to 3 + tmp.fp16[i] := tmp.fp16[i] + tmp.fp16[i+4] +ENDFOR +FOR i := 0 to 1 + tmp.fp16[i] := tmp.fp16[i] + tmp.fp16[i+2] +ENDFOR +dst.fp16[0] := tmp.fp16[0] + tmp.fp16[1] + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + Reduce the packed half-precision (316-bit) floating-point elements in "a" by multiplication. Returns the product of all elements in "a". + +tmp := a +FOR i := 0 to 7 + tmp.fp16[i] := tmp.fp16[i] * tmp.fp16[i+8] +ENDFOR +FOR i := 0 to 3 + tmp.fp16[i] := tmp.fp16[i] * tmp.fp16[i+4] +ENDFOR +FOR i := 0 to 1 + tmp.fp16[i] := tmp.fp16[i] * tmp.fp16[i+2] +ENDFOR +dst.fp16[0] := tmp.fp16[0] * tmp.fp16[1] + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + Reduce the packed half-precision (16-bit) floating-point elements in "a" by maximum. Returns the maximum of all elements in "a". + +tmp := a +FOR i := 0 to 7 + tmp.fp16[i] := (tmp.fp16[i] > tmp.fp16[i+8] ? tmp.fp16[i] : tmp.fp16[i+8]) +ENDFOR +FOR i := 0 to 3 + tmp.fp16[i] := (tmp.fp16[i] > tmp.fp16[i+4] ? tmp.fp16[i] : tmp.fp16[i+4]) +ENDFOR +FOR i := 0 to 1 + tmp.fp16[i] := (tmp.fp16[i] > tmp.fp16[i+2] ? tmp.fp16[i] : tmp.fp16[i+2]) +ENDFOR +dst.fp16[0] := (tmp.fp16[0] > tmp.fp16[1] ? tmp.fp16[0] : tmp.fp16[1]) + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + Reduce the packed half-precision (16-bit) floating-point elements in "a" by minimum. Returns the minimum of all elements in "a". + +tmp := a +FOR i := 0 to 7 + tmp.fp16[i] := (tmp.fp16[i] < tmp.fp16[i+8] ? tmp.fp16[i] : tmp.fp16[i+8]) +ENDFOR +FOR i := 0 to 3 + tmp.fp16[i] := (tmp.fp16[i] < tmp.fp16[i+4] ? tmp.fp16[i] : tmp.fp16[i+4]) +ENDFOR +FOR i := 0 to 1 + tmp.fp16[i] := (tmp.fp16[i] < tmp.fp16[i+2] ? tmp.fp16[i] : tmp.fp16[i+2]) +ENDFOR +dst.fp16[0] := (tmp.fp16[0] < tmp.fp16[1] ? tmp.fp16[0] : tmp.fp16[1]) + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + Reduce the packed half-precision (16-bit) floating-point elements in "a" by addition. Returns the sum of all elements in "a". + +tmp := a +FOR i := 0 to 3 + tmp.fp16[i] := tmp.fp16[i] + tmp.fp16[i+4] +ENDFOR +FOR i := 0 to 1 + tmp.fp16[i] := tmp.fp16[i] + tmp.fp16[i+2] +ENDFOR +dst.fp16[0] := tmp.fp16[0] + tmp.fp16[1] + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + Reduce the packed half-precision (16-bit) floating-point elements in "a" by multiplication. Returns the product of all elements in "a". + +tmp := a +FOR i := 0 to 3 + tmp.fp16[i] := tmp.fp16[i] * tmp.fp16[i+4] +ENDFOR +FOR i := 0 to 1 + tmp.fp16[i] := tmp.fp16[i] * tmp.fp16[i+2] +ENDFOR +dst.fp16[0] := tmp.fp16[0] * tmp.fp16[1] + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + Reduce the packed half-precision (16-bit) floating-point elements in "a" by maximum. Returns the maximum of all elements in "a". + +tmp := a +FOR i := 0 to 3 + tmp.fp16[i] := (tmp.fp16[i] > tmp.fp16[i+4] ? tmp.fp16[i] : tmp.fp16[i+4]) +ENDFOR +FOR i := 0 to 1 + tmp.fp16[i] := (tmp.fp16[i] > tmp.fp16[i+2] ? tmp.fp16[i] : tmp.fp16[i+2]) +ENDFOR +dst.fp16[0] := (tmp.fp16[0] > tmp.fp16[1] ? tmp.fp16[0] : tmp.fp16[1]) + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + Reduce the packed half-precision (16-bit) floating-point elements in "a" by minimum. Returns the minimum of all elements in "a". + +tmp := a +FOR i := 0 to 3 + tmp.fp16[i] := (tmp.fp16[i] < tmp.fp16[i+4] ? tmp.fp16[i] : tmp.fp16[i+4]) +ENDFOR +FOR i := 0 to 1 + tmp.fp16[i] := (tmp.fp16[i] < tmp.fp16[i+2] ? tmp.fp16[i] : tmp.fp16[i+2]) +ENDFOR +dst.fp16[0] := (tmp.fp16[0] < tmp.fp16[1] ? tmp.fp16[0] : tmp.fp16[1]) + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + Finds the absolute value of each packed half-precision (16-bit) floating-point element in "v2", storing the results in "dst". + +FOR j := 0 to 15 + dst.fp16[j] := ABS(v2.fp16[j]) +ENDFOR +dst[MAX:256] := 0 + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + Finds the absolute value of each packed half-precision (16-bit) floating-point element in "v2", storing the results in "dst". + +FOR j := 0 to 7 + dst.fp16[j] := ABS(v2.fp16[j]) +ENDFOR +dst[MAX:128] := 0 + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + Compute the complex conjugates of complex numbers in "a", and store the results in "dst". Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]", or the complex conjugate "conjugate = vec.fp16[0] - i * vec.fp16[1]". + +FOR j := 0 to 7 + i := j*32 + dst[i+31:i] := a[i+31:i] XOR FP32(-0.0) +ENDFOR +dst[MAX:256] := 0 + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + Compute the complex conjugates of complex numbers in "a", and store the results in "dst". Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]", or the complex conjugate "conjugate = vec.fp16[0] - i * vec.fp16[1]". + +FOR j := 0 to 3 + i := j*32 + dst[i+31:i] := a[i+31:i] XOR FP32(-0.0) +ENDFOR +dst[MAX:128] := 0 + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Compute the complex conjugates of complex numbers in "a", and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]", or the complex conjugate "conjugate = vec.fp16[0] - i * vec.fp16[1]". + +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := a[i+31:i] XOR FP32(-0.0) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Compute the complex conjugates of complex numbers in "a", and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]", or the complex conjugate "conjugate = vec.fp16[0] - i * vec.fp16[1]". + +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := a[i+31:i] XOR FP32(-0.0) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + Compute the complex conjugates of complex numbers in "a", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]", or the complex conjugate "conjugate = vec.fp16[0] - i * vec.fp16[1]". + +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := a[i+31:i] XOR FP32(-0.0) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + Compute the complex conjugates of complex numbers in "a", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]", or the complex conjugate "conjugate = vec.fp16[0] - i * vec.fp16[1]". + +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := a[i+31:i] XOR FP32(-0.0) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Compare packed half-precision (16-bit) floating-point elements in "a" and "b" based on the comparison operand specified by "imm8", and store the results in mask vector "k". + CASE (imm8[4:0]) OF +0: OP := _CMP_EQ_OQ +1: OP := _CMP_LT_OS +2: OP := _CMP_LE_OS +3: OP := _CMP_UNORD_Q +4: OP := _CMP_NEQ_UQ +5: OP := _CMP_NLT_US +6: OP := _CMP_NLE_US +7: OP := _CMP_ORD_Q +8: OP := _CMP_EQ_UQ +9: OP := _CMP_NGE_US +10: OP := _CMP_NGT_US +11: OP := _CMP_FALSE_OQ +12: OP := _CMP_NEQ_OQ +13: OP := _CMP_GE_OS +14: OP := _CMP_GT_OS +15: OP := _CMP_TRUE_UQ +16: OP := _CMP_EQ_OS +17: OP := _CMP_LT_OQ +18: OP := _CMP_LE_OQ +19: OP := _CMP_UNORD_S +20: OP := _CMP_NEQ_US +21: OP := _CMP_NLT_UQ +22: OP := _CMP_NLE_UQ +23: OP := _CMP_ORD_S +24: OP := _CMP_EQ_US +25: OP := _CMP_NGE_UQ +26: OP := _CMP_NGT_UQ +27: OP := _CMP_FALSE_OS +28: OP := _CMP_NEQ_OS +29: OP := _CMP_GE_OQ +30: OP := _CMP_GT_OQ +31: OP := _CMP_TRUE_US +ESAC +FOR j := 0 to 7 + k[j] := (a.fp16[j] OP b.fp16[j]) ? 1 : 0 +ENDFOR +k[MAX:8] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + + Compare packed half-precision (16-bit) floating-point elements in "a" and "b" based on the comparison operand specified by "imm8", and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + CASE (imm8[4:0]) OF +0: OP := _CMP_EQ_OQ +1: OP := _CMP_LT_OS +2: OP := _CMP_LE_OS +3: OP := _CMP_UNORD_Q +4: OP := _CMP_NEQ_UQ +5: OP := _CMP_NLT_US +6: OP := _CMP_NLE_US +7: OP := _CMP_ORD_Q +8: OP := _CMP_EQ_UQ +9: OP := _CMP_NGE_US +10: OP := _CMP_NGT_US +11: OP := _CMP_FALSE_OQ +12: OP := _CMP_NEQ_OQ +13: OP := _CMP_GE_OS +14: OP := _CMP_GT_OS +15: OP := _CMP_TRUE_UQ +16: OP := _CMP_EQ_OS +17: OP := _CMP_LT_OQ +18: OP := _CMP_LE_OQ +19: OP := _CMP_UNORD_S +20: OP := _CMP_NEQ_US +21: OP := _CMP_NLT_UQ +22: OP := _CMP_NLE_UQ +23: OP := _CMP_ORD_S +24: OP := _CMP_EQ_US +25: OP := _CMP_NGE_UQ +26: OP := _CMP_NGT_UQ +27: OP := _CMP_FALSE_OS +28: OP := _CMP_NEQ_OS +29: OP := _CMP_GE_OQ +30: OP := _CMP_GT_OQ +31: OP := _CMP_TRUE_US +ESAC +FOR j := 0 to 7 + IF k1[j] + k[j] := ( a.fp16[j] OP b.fp16[j] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:8] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + Compare packed half-precision (16-bit) floating-point elements in "a" and "b" based on the comparison operand specified by "imm8", and store the results in mask vector "k". + CASE (imm8[4:0]) OF +0: OP := _CMP_EQ_OQ +1: OP := _CMP_LT_OS +2: OP := _CMP_LE_OS +3: OP := _CMP_UNORD_Q +4: OP := _CMP_NEQ_UQ +5: OP := _CMP_NLT_US +6: OP := _CMP_NLE_US +7: OP := _CMP_ORD_Q +8: OP := _CMP_EQ_UQ +9: OP := _CMP_NGE_US +10: OP := _CMP_NGT_US +11: OP := _CMP_FALSE_OQ +12: OP := _CMP_NEQ_OQ +13: OP := _CMP_GE_OS +14: OP := _CMP_GT_OS +15: OP := _CMP_TRUE_UQ +16: OP := _CMP_EQ_OS +17: OP := _CMP_LT_OQ +18: OP := _CMP_LE_OQ +19: OP := _CMP_UNORD_S +20: OP := _CMP_NEQ_US +21: OP := _CMP_NLT_UQ +22: OP := _CMP_NLE_UQ +23: OP := _CMP_ORD_S +24: OP := _CMP_EQ_US +25: OP := _CMP_NGE_UQ +26: OP := _CMP_NGT_UQ +27: OP := _CMP_FALSE_OS +28: OP := _CMP_NEQ_OS +29: OP := _CMP_GE_OQ +30: OP := _CMP_GT_OQ +31: OP := _CMP_TRUE_US +ESAC +FOR j := 0 to 15 + k[j] := (a.fp16[j] OP b.fp16[j]) ? 1 : 0 +ENDFOR +k[MAX:16] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Compare +
+ + + + + + + Compare packed half-precision (16-bit) floating-point elements in "a" and "b" based on the comparison operand specified by "imm8", and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + CASE (imm8[4:0]) OF +0: OP := _CMP_EQ_OQ +1: OP := _CMP_LT_OS +2: OP := _CMP_LE_OS +3: OP := _CMP_UNORD_Q +4: OP := _CMP_NEQ_UQ +5: OP := _CMP_NLT_US +6: OP := _CMP_NLE_US +7: OP := _CMP_ORD_Q +8: OP := _CMP_EQ_UQ +9: OP := _CMP_NGE_US +10: OP := _CMP_NGT_US +11: OP := _CMP_FALSE_OQ +12: OP := _CMP_NEQ_OQ +13: OP := _CMP_GE_OS +14: OP := _CMP_GT_OS +15: OP := _CMP_TRUE_UQ +16: OP := _CMP_EQ_OS +17: OP := _CMP_LT_OQ +18: OP := _CMP_LE_OQ +19: OP := _CMP_UNORD_S +20: OP := _CMP_NEQ_US +21: OP := _CMP_NLT_UQ +22: OP := _CMP_NLE_UQ +23: OP := _CMP_ORD_S +24: OP := _CMP_EQ_US +25: OP := _CMP_NGE_UQ +26: OP := _CMP_NGT_UQ +27: OP := _CMP_FALSE_OS +28: OP := _CMP_NEQ_OS +29: OP := _CMP_GE_OQ +30: OP := _CMP_GT_OQ +31: OP := _CMP_TRUE_US +ESAC +FOR j := 0 to 15 + IF k1[j] + k[j] := ( a.fp16[j] OP b.fp16[j] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:16] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Compare +
+ + + + Convert packed signed 16-bit integers in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst". + +FOR j := 0 TO 7 + dst.fp16[j] := Convert_Int16_To_FP16(a.word[j]) +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed signed 16-bit integers in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 TO 7 + IF k[j] + dst.fp16[j] := Convert_Int16_To_FP16(a.word[j]) + ELSE + dst.fp16[j] := src.fp16[j] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed signed 16-bit integers in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 TO 7 + IF k[j] + dst.fp16[j] := Convert_Int16_To_FP16(a.word[j]) + ELSE + dst.fp16[j] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed signed 16-bit integers in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst". + +FOR j := 0 TO 15 + dst.fp16[j] := Convert_Int16_To_FP16(a.word[j]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed signed 16-bit integers in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 TO 15 + IF k[j] + dst.fp16[j] := Convert_Int16_To_FP16(a.word[j]) + ELSE + dst.fp16[j] := src.fp16[j] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed signed 16-bit integers in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 TO 15 + IF k[j] + dst.fp16[j] := Convert_Int16_To_FP16(a.word[j]) + ELSE + dst.fp16[j] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed unsigned 16-bit integers in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst". + +FOR j := 0 TO 7 + dst.fp16[j] := Convert_Int16_To_FP16(a.word[j]) +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed unsigned 16-bit integers in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 TO 7 + IF k[j] + dst.fp16[j] := Convert_Int16_To_FP16(a.word[j]) + ELSE + dst.fp16[j] := src.fp16[j] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed unsigned 16-bit integers in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 TO 7 + IF k[j] + dst.fp16[j] := Convert_Int16_To_FP16(a.word[j]) + ELSE + dst.fp16[j] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed unsigned 16-bit integers in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst". + +FOR j := 0 TO 15 + dst.fp16[j] := Convert_Int16_To_FP16(a.word[j]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed unsigned 16-bit integers in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 TO 15 + IF k[j] + dst.fp16[j] := Convert_Int16_To_FP16(a.word[j]) + ELSE + dst.fp16[j] := src.fp16[j] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed unsigned 16-bit integers in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 TO 15 + IF k[j] + dst.fp16[j] := Convert_Int16_To_FP16(a.word[j]) + ELSE + dst.fp16[j] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed signed 32-bit integers in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst". The upper 64 bits of "dst" are zeroed out. + +FOR j := 0 TO 3 + dst.fp16[j] := Convert_Int32_To_FP16(a.dword[j]) +ENDFOR +dst[MAX:64] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed signed 32-bit integers in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). The upper 64 bits of "dst" are zeroed out. + +FOR j := 0 TO 3 + IF k[j] + dst.fp16[j] := Convert_Int32_To_FP16(a.dword[j]) + ELSE + dst.fp16[j] := src.fp16[j] + FI +ENDFOR +dst[MAX:64] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed signed 32-bit integers in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). The upper 64 bits of "dst" are zeroed out. + +FOR j := 0 TO 3 + IF k[j] + dst.fp16[j] := Convert_Int32_To_FP16(a.dword[j]) + ELSE + dst.fp16[j] := 0 + FI +ENDFOR +dst[MAX:64] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed signed 32-bit integers in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst". + +FOR j := 0 TO 7 + dst.fp16[j] := Convert_Int32_To_FP16(a.dword[j]) +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed signed 32-bit integers in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 TO 7 + IF k[j] + dst.fp16[j] := Convert_Int32_To_FP16(a.dword[j]) + ELSE + dst.fp16[j] := src.fp16[j] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed signed 32-bit integers in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 TO 7 + IF k[j] + dst.fp16[j] := Convert_Int32_To_FP16(a.dword[j]) + ELSE + dst.fp16[j] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed unsigned 32-bit integers in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst". The upper 64 bits of "dst" are zeroed out. + +FOR j := 0 TO 3 + dst.fp16[j] := Convert_Int32_To_FP16(a.dword[j]) +ENDFOR +dst[MAX:64] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed unsigned 32-bit integers in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). The upper 64 bits of "dst" are zeroed out. + +FOR j := 0 TO 3 + IF k[j] + dst.fp16[j] := Convert_Int32_To_FP16(a.dword[j]) + ELSE + dst.fp16[j] := src.fp16[j] + FI +ENDFOR +dst[MAX:64] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed unsigned 32-bit integers in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). The upper 64 bits of "dst" are zeroed out. + +FOR j := 0 TO 3 + IF k[j] + dst.fp16[j] := Convert_Int32_To_FP16(a.dword[j]) + ELSE + dst.fp16[j] := 0 + FI +ENDFOR +dst[MAX:64] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed unsigned 32-bit integers in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst". + +FOR j := 0 TO 7 + dst.fp16[j] := Convert_Int32_To_FP16(a.dword[j]) +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed unsigned 32-bit integers in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 TO 7 + IF k[j] + dst.fp16[j] := Convert_Int32_To_FP16(a.dword[j]) + ELSE + dst.fp16[j] := src.fp16[j] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed unsigned 32-bit integers in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 TO 7 + IF k[j] + dst.fp16[j] := Convert_Int32_To_FP16(a.dword[j]) + ELSE + dst.fp16[j] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed signed 64-bit integers in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst". The upper 96 bits of "dst" are zeroed out. + +FOR j := 0 TO 1 + dst.fp16[j] := Convert_Int64_To_FP16(a.qword[j]) +ENDFOR +dst[MAX:32] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed signed 64-bit integers in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). The upper 96 bits of "dst" are zeroed out. + +FOR j := 0 TO 1 + IF k[j] + dst.fp16[j] := Convert_Int64_To_FP16(a.qword[j]) + ELSE + dst.fp16[j] := src.fp16[j] + FI +ENDFOR +dst[MAX:32] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed signed 64-bit integers in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). The upper 96 bits of "dst" are zeroed out. + +FOR j := 0 TO 1 + IF k[j] + dst.fp16[j] := Convert_Int64_To_FP16(a.qword[j]) + ELSE + dst.fp16[j] := 0 + FI +ENDFOR +dst[MAX:32] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed signed 64-bit integers in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst". The upper 64 bits of "dst" are zeroed out. + +FOR j := 0 TO 3 + dst.fp16[j] := Convert_Int64_To_FP16(a.qword[j]) +ENDFOR +dst[MAX:64] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed signed 64-bit integers in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). The upper 64 bits of "dst" are zeroed out. + +FOR j := 0 TO 3 + IF k[j] + dst.fp16[j] := Convert_Int64_To_FP16(a.qword[j]) + ELSE + dst.fp16[j] := src.fp16[j] + FI +ENDFOR +dst[MAX:64] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed signed 64-bit integers in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). The upper 64 bits of "dst" are zeroed out. + +FOR j := 0 TO 3 + IF k[j] + dst.fp16[j] := Convert_Int64_To_FP16(a.qword[j]) + ELSE + dst.fp16[j] := 0 + FI +ENDFOR +dst[MAX:64] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed unsigned 64-bit integers in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst". The upper 96 bits of "dst" are zeroed out. + +FOR j := 0 TO 1 + dst.fp16[j] := Convert_Int64_To_FP16(a.qword[j]) +ENDFOR +dst[MAX:32] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed unsigned 64-bit integers in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). The upper 96 bits of "dst" are zeroed out. + +FOR j := 0 TO 1 + IF k[j] + dst.fp16[j] := Convert_Int64_To_FP16(a.qword[j]) + ELSE + dst.fp16[j] := src.fp16[j] + FI +ENDFOR +dst[MAX:32] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed unsigned 64-bit integers in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). The upper 96 bits of "dst" are zeroed out. + +FOR j := 0 TO 1 + IF k[j] + dst.fp16[j] := Convert_Int64_To_FP16(a.qword[j]) + ELSE + dst.fp16[j] := 0 + FI +ENDFOR +dst[MAX:32] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed unsigned 64-bit integers in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst". The upper 64 bits of "dst" are zeroed out. + +FOR j := 0 TO 3 + dst.fp16[j] := Convert_Int64_To_FP16(a.qword[j]) +ENDFOR +dst[MAX:64] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed unsigned 64-bit integers in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). The upper 64 bits of "dst" are zeroed out. + +FOR j := 0 TO 3 + IF k[j] + dst.fp16[j] := Convert_Int64_To_FP16(a.qword[j]) + ELSE + dst.fp16[j] := src.fp16[j] + FI +ENDFOR +dst[MAX:64] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed unsigned 64-bit integers in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). The upper 64 bits of "dst" are zeroed out. + +FOR j := 0 TO 3 + IF k[j] + dst.fp16[j] := Convert_Int64_To_FP16(a.qword[j]) + ELSE + dst.fp16[j] := 0 + FI +ENDFOR +dst[MAX:64] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst". The upper 96 bits of "dst" are zeroed out. + +FOR j := 0 TO 1 + dst.fp16[j] := Convert_FP64_To_FP16(a.fp64[j]) +ENDFOR +dst[MAX:32] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). The upper 96 bits of "dst" are zeroed out. + +FOR j := 0 TO 1 + IF k[j] + dst.fp16[j] := Convert_FP64_To_FP16(a.fp64[j]) + ELSE + dst.fp16[j] := src.fp16[j] + FI +ENDFOR +dst[MAX:32] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). The upper 96 bits of "dst" are zeroed out. + +FOR j := 0 TO 1 + IF k[j] + dst.fp16[j] := Convert_FP64_To_FP16(a.fp64[j]) + ELSE + dst.fp16[j] := 0 + FI +ENDFOR +dst[MAX:32] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst". The upper 64 bits of "dst" are zeroed out. + +FOR j := 0 TO 3 + dst.fp16[j] := Convert_FP64_To_FP16(a.fp64[j]) +ENDFOR +dst[MAX:64] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). The upper 64 bits of "dst" are zeroed out. + +FOR j := 0 TO 3 + IF k[j] + dst.fp16[j] := Convert_FP64_To_FP16(a.fp64[j]) + ELSE + dst.fp16[j] := src.fp16[j] + FI +ENDFOR +dst[MAX:64] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). The upper 64 bits of "dst" are zeroed out. + +FOR j := 0 TO 3 + IF k[j] + dst.fp16[j] := Convert_FP64_To_FP16(a.fp64[j]) + ELSE + dst.fp16[j] := 0 + FI +ENDFOR +dst[MAX:64] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst". The upper 64 bits of "dst" are zeroed out. + +FOR j := 0 to 3 + dst.fp16[j] := Convert_FP32_To_FP16(a.fp32[j]) +ENDFOR +dst[MAX:64] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). The upper 64 bits of "dst" are zeroed out. + +FOR j := 0 to 3 + IF k[j] + dst.fp16[j] := Convert_FP32_To_FP16(a.fp32[j]) + ELSE + dst.fp16[j] := src.fp16[j] + FI +ENDFOR +dst[MAX:64] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). The upper 64 bits of "dst" are zeroed out. + +FOR j := 0 to 3 + IF k[j] + dst.fp16[j] := Convert_FP32_To_FP16(a.fp32[j]) + ELSE + dst.fp16[j] := 0 + FI +ENDFOR +dst[MAX:64] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst". + +FOR j := 0 to 7 + dst.fp16[j] := Convert_FP32_To_FP16(a.fp32[j]) +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + IF k[j] + dst.fp16[j] := Convert_FP32_To_FP16(a.fp32[j]) + ELSE + dst.fp16[j] := src.fp16[j] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + IF k[j] + dst.fp16[j] := Convert_FP32_To_FP16(a.fp32[j]) + ELSE + dst.fp16[j] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed 32-bit integers, and store the results in "dst". + +FOR j := 0 TO 3 + dst.dword[j] := Convert_FP16_To_Int32(a.fp16[j]) +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed 32-bit integers, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 TO 3 + IF k[j] + dst.dword[j] := Convert_FP16_To_Int32(a.fp16[j]) + ELSE + dst.dword[j] := src.dword[j] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed 32-bit integers, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 TO 3 + IF k[j] + dst.dword[j] := Convert_FP16_To_Int32(a.fp16[j]) + ELSE + dst.dword[j] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed 32-bit integers, and store the results in "dst". + +FOR j := 0 TO 7 + dst.dword[j] := Convert_FP16_To_Int32(a.fp16[j]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed 32-bit integers, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 TO 7 + IF k[j] + dst.dword[j] := Convert_FP16_To_Int32(a.fp16[j]) + ELSE + dst.dword[j] := src.dword[j] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed 32-bit integers, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 TO 7 + IF k[j] + dst.dword[j] := Convert_FP16_To_Int32(a.fp16[j]) + ELSE + dst.dword[j] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed 32-bit integers with truncation, and store the results in "dst". + +FOR j := 0 TO 3 + dst.dword[j] := Convert_FP16_To_Int32_Truncate(a.fp16[j]) +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed 32-bit integers with truncation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 TO 3 + IF k[j] + dst.dword[j] := Convert_FP16_To_Int32_Truncate(a.fp16[j]) + ELSE + dst.dword[j] := src.dword[j] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed 32-bit integers with truncation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 TO 3 + IF k[j] + dst.dword[j] := Convert_FP16_To_Int32_Truncate(a.fp16[j]) + ELSE + dst.dword[j] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed 32-bit integers with truncation, and store the results in "dst". + +FOR j := 0 TO 7 + dst.dword[j] := Convert_FP16_To_Int32_Truncate(a.fp16[j]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed 32-bit integers with truncation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 TO 7 + IF k[j] + dst.dword[j] := Convert_FP16_To_Int32_Truncate(a.fp16[j]) + ELSE + dst.dword[j] := src.dword[j] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed 32-bit integers with truncation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 TO 7 + IF k[j] + dst.dword[j] := Convert_FP16_To_Int32_Truncate(a.fp16[j]) + ELSE + dst.dword[j] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed unsigned 32-bit integers, and store the results in "dst". + +FOR j := 0 TO 3 + dst.dword[j] := Convert_FP16_To_UInt32(a.fp16[j]) +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed unsigned 32-bit integers, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 TO 3 + IF k[j] + dst.dword[j] := Convert_FP16_To_UInt32(a.fp16[j]) + ELSE + dst.dword[j] := src.dword[j] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed unsigned 32-bit integers, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 TO 3 + IF k[j] + dst.dword[j] := Convert_FP16_To_UInt32(a.fp16[j]) + ELSE + dst.dword[j] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed unsigned 32-bit integers, and store the results in "dst". + +FOR j := 0 TO 7 + dst.dword[j] := Convert_FP16_To_UInt32(a.fp16[j]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed unsigned 32-bit integers, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 TO 7 + IF k[j] + dst.dword[j] := Convert_FP16_To_UInt32(a.fp16[j]) + ELSE + dst.dword[j] := src.dword[j] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed unsigned 32-bit integers, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 TO 7 + IF k[j] + dst.dword[j] := Convert_FP16_To_UInt32(a.fp16[j]) + ELSE + dst.dword[j] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed unsigned 32-bit integers with truncation, and store the results in "dst". + +FOR j := 0 TO 3 + dst.dword[j] := Convert_FP16_To_UInt32_Truncate(a.fp16[j]) +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed unsigned 32-bit integers with truncation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 TO 3 + IF k[j] + dst.dword[j] := Convert_FP16_To_UInt32_Truncate(a.fp16[j]) + ELSE + dst.dword[j] := src.dword[j] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed unsigned 32-bit integers with truncation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 TO 3 + IF k[j] + dst.dword[j] := Convert_FP16_To_UInt32_Truncate(a.fp16[j]) + ELSE + dst.dword[j] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed unsigned 32-bit integers with truncation, and store the results in "dst". + +FOR j := 0 TO 7 + dst.dword[j] := Convert_FP16_To_UInt32_Truncate(a.fp16[j]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed unsigned 32-bit integers with truncation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 TO 7 + IF k[j] + dst.dword[j] := Convert_FP16_To_UInt32_Truncate(a.fp16[j]) + ELSE + dst.dword[j] := src.dword[j] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed unsigned 32-bit integers with truncation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 TO 7 + IF k[j] + dst.dword[j] := Convert_FP16_To_UInt32_Truncate(a.fp16[j]) + ELSE + dst.dword[j] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed 64-bit integers, and store the results in "dst". + +FOR j := 0 TO 1 + dst.qword[j] := Convert_FP16_To_Int64(a.fp16[j]) +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed 64-bit integers, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 TO 1 + IF k[j] + dst.qword[j] := Convert_FP16_To_Int64(a.fp16[j]) + ELSE + dst.qword[j] := src.qword[j] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed 64-bit integers, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 TO 1 + IF k[j] + dst.qword[j] := Convert_FP16_To_Int64(a.fp16[j]) + ELSE + dst.qword[j] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed 64-bit integers, and store the results in "dst". + +FOR j := 0 TO 3 + dst.qword[j] := Convert_FP16_To_Int64(a.fp16[j]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed 64-bit integers, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 TO 3 + IF k[j] + dst.qword[j] := Convert_FP16_To_Int64(a.fp16[j]) + ELSE + dst.qword[j] := src.qword[j] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed 64-bit integers, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 TO 3 + IF k[j] + dst.qword[j] := Convert_FP16_To_Int64(a.fp16[j]) + ELSE + dst.qword[j] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed 64-bit integers with truncation, and store the results in "dst". + +FOR j := 0 TO 1 + dst.qword[j] := Convert_FP16_To_Int64_Truncate(a.fp16[j]) +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed 64-bit integers with truncation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 TO 1 + IF k[j] + dst.qword[j] := Convert_FP16_To_Int64_Truncate(a.fp16[j]) + ELSE + dst.qword[j] := src.qword[j] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed 64-bit integers with truncation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 TO 1 + IF k[j] + dst.qword[j] := Convert_FP16_To_Int64_Truncate(a.fp16[j]) + ELSE + dst.qword[j] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed 64-bit integers with truncation, and store the results in "dst". + +FOR j := 0 TO 3 + dst.qword[j] := Convert_FP16_To_Int64_Truncate(a.fp16[j]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed 64-bit integers with truncation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 TO 3 + IF k[j] + dst.qword[j] := Convert_FP16_To_Int64_Truncate(a.fp16[j]) + ELSE + dst.qword[j] := src.qword[j] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed 64-bit integers with truncation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 TO 3 + IF k[j] + dst.qword[j] := Convert_FP16_To_Int64_Truncate(a.fp16[j]) + ELSE + dst.qword[j] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed unsigned 64-bit integers, and store the results in "dst". + +FOR j := 0 TO 1 + dst.qword[j] := Convert_FP16_To_UInt64(a.fp16[j]) +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed unsigned 64-bit integers, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 TO 1 + IF k[j] + dst.qword[j] := Convert_FP16_To_UInt64(a.fp16[j]) + ELSE + dst.qword[j] := src.qword[j] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed unsigned 64-bit integers, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 TO 1 + IF k[j] + dst.qword[j] := Convert_FP16_To_UInt64(a.fp16[j]) + ELSE + dst.qword[j] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed unsigned 64-bit integers, and store the results in "dst". + +FOR j := 0 TO 3 + dst.qword[j] := Convert_FP16_To_UInt64(a.fp16[j]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed unsigned 64-bit integers, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 TO 3 + IF k[j] + dst.qword[j] := Convert_FP16_To_UInt64(a.fp16[j]) + ELSE + dst.qword[j] := src.qword[j] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed unsigned 64-bit integers, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 TO 3 + IF k[j] + dst.qword[j] := Convert_FP16_To_UInt64(a.fp16[j]) + ELSE + dst.qword[j] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed unsigned 64-bit integers with truncation, and store the results in "dst". + +FOR j := 0 TO 1 + dst.qword[j] := Convert_FP16_To_UInt64_Truncate(a.fp16[j]) +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed unsigned 64-bit integers with truncation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 TO 1 + IF k[j] + dst.qword[j] := Convert_FP16_To_UInt64_Truncate(a.fp16[j]) + ELSE + dst.qword[j] := src.qword[j] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed unsigned 64-bit integers with truncation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 TO 1 + IF k[j] + dst.qword[j] := Convert_FP16_To_UInt64_Truncate(a.fp16[j]) + ELSE + dst.qword[j] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed unsigned 64-bit integers with truncation, and store the results in "dst". + +FOR j := 0 TO 3 + dst.qword[j] := Convert_FP16_To_UInt64_Truncate(a.fp16[j]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed unsigned 64-bit integers with truncation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 TO 3 + IF k[j] + dst.qword[j] := Convert_FP16_To_UInt64_Truncate(a.fp16[j]) + ELSE + dst.qword[j] := src.qword[j] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed unsigned 64-bit integers with truncation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 TO 3 + IF k[j] + dst.qword[j] := Convert_FP16_To_UInt64_Truncate(a.fp16[j]) + ELSE + dst.qword[j] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed 16-bit integers, and store the results in "dst". + +FOR j := 0 TO 7 + dst.word[j] := Convert_FP16_To_Int16(a.fp16[j]) +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed 16-bit integers, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 TO 7 + IF k[j] + dst.word[j] := Convert_FP16_To_Int16(a.fp16[j]) + ELSE + dst.word[j] := src.word[j] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed 16-bit integers, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 TO 7 + IF k[j] + dst.word[j] := Convert_FP16_To_Int16(a.fp16[j]) + ELSE + dst.word[j] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed 16-bit integers, and store the results in "dst". + +FOR j := 0 TO 15 + dst.word[j] := Convert_FP16_To_Int16(a.fp16[j]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed 16-bit integers, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 TO 15 + IF k[j] + dst.word[j] := Convert_FP16_To_Int16(a.fp16[j]) + ELSE + dst.word[j] := src.word[j] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed 16-bit integers, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 TO 15 + IF k[j] + dst.word[j] := Convert_FP16_To_Int16(a.fp16[j]) + ELSE + dst.word[j] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed 16-bit integers with truncation, and store the results in "dst". + +FOR j := 0 TO 7 + dst.word[j] := Convert_FP16_To_Int16_Truncate(a.fp16[j]) +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed 16-bit integers with truncation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 TO 7 + IF k[j] + dst.word[j] := Convert_FP16_To_Int16_Truncate(a.fp16[j]) + ELSE + dst.word[j] := src.word[j] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed 16-bit integers with truncation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 TO 7 + IF k[j] + dst.word[j] := Convert_FP16_To_Int16_Truncate(a.fp16[j]) + ELSE + dst.word[j] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed 16-bit integers with truncation, and store the results in "dst". + +FOR j := 0 TO 15 + dst.word[j] := Convert_FP16_To_Int16_Truncate(a.fp16[j]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed 16-bit integers with truncation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 TO 15 + IF k[j] + dst.word[j] := Convert_FP16_To_Int16_Truncate(a.fp16[j]) + ELSE + dst.word[j] := src.word[j] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed 16-bit integers with truncation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 TO 15 + IF k[j] + dst.word[j] := Convert_FP16_To_Int16_Truncate(a.fp16[j]) + ELSE + dst.word[j] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed unsigned 16-bit integers, and store the results in "dst". + +FOR j := 0 TO 7 + dst.word[j] := Convert_FP16_To_UInt16(a.fp16[j]) +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed unsigned 16-bit integers, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 TO 7 + IF k[j] + dst.word[j] := Convert_FP16_To_UInt16(a.fp16[j]) + ELSE + dst.word[j] := src.word[j] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed unsigned 16-bit integers, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 TO 7 + IF k[j] + dst.word[j] := Convert_FP16_To_UInt16(a.fp16[j]) + ELSE + dst.word[j] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed unsigned 16-bit integers, and store the results in "dst". + +FOR j := 0 TO 15 + dst.word[j] := Convert_FP16_To_UInt16(a.fp16[j]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed unsigned 16-bit integers, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 TO 15 + IF k[j] + dst.word[j] := Convert_FP16_To_UInt16(a.fp16[j]) + ELSE + dst.word[j] := src.word[j] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed unsigned 16-bit integers, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 TO 15 + IF k[j] + dst.word[j] := Convert_FP16_To_UInt16(a.fp16[j]) + ELSE + dst.word[j] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed unsigned 16-bit integers with truncation, and store the results in "dst". + +FOR j := 0 TO 7 + dst.word[j] := Convert_FP16_To_UInt16_Truncate(a.fp16[j]) +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed unsigned 16-bit integers with truncation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 TO 7 + IF k[j] + dst.word[j] := Convert_FP16_To_UInt16_Truncate(a.fp16[j]) + ELSE + dst.word[j] := src.word[j] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed unsigned 16-bit integers with truncation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 TO 7 + IF k[j] + dst.word[j] := Convert_FP16_To_UInt16_Truncate(a.fp16[j]) + ELSE + dst.word[j] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed unsigned 16-bit integers with truncation, and store the results in "dst". + +FOR j := 0 TO 15 + dst.word[j] := Convert_FP16_To_UInt16_Truncate(a.fp16[j]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed unsigned 16-bit integers with truncation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 TO 15 + IF k[j] + dst.word[j] := Convert_FP16_To_UInt16_Truncate(a.fp16[j]) + ELSE + dst.word[j] := src.word[j] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed unsigned 16-bit integers with truncation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 TO 15 + IF k[j] + dst.word[j] := Convert_FP16_To_UInt16_Truncate(a.fp16[j]) + ELSE + dst.word[j] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed double-precision (64-bit) floating-point elements, and store the results in "dst". + +FOR j := 0 to 1 + dst.fp64[j] := Convert_FP16_To_FP64(a.fp16[j]) +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed double-precision (64-bit) floating-point elements, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 1 + IF k[j] + dst.fp64[j] := Convert_FP16_To_FP64(a.fp16[j]) + ELSE + dst.fp64[j] := src.fp64[j] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed double-precision (64-bit) floating-point elements, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 1 + IF k[j] + dst.fp64[j] := Convert_FP16_To_FP64(a.fp16[j]) + ELSE + dst.fp64[j] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed double-precision (64-bit) floating-point elements, and store the results in "dst". + +FOR j := 0 to 3 + dst.fp64[j] := Convert_FP16_To_FP64(a.fp16[j]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed double-precision (64-bit) floating-point elements, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + IF k[j] + dst.fp64[j] := Convert_FP16_To_FP64(a.fp16[j]) + ELSE + dst.fp64[j] := src.fp64[j] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed double-precision (64-bit) floating-point elements, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + IF k[j] + dst.fp64[j] := Convert_FP16_To_FP64(a.fp16[j]) + ELSE + dst.fp64[j] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed single-precision (32-bit) floating-point elements, and store the results in "dst". + +FOR j := 0 to 3 + dst.fp32[j] := Convert_FP16_To_FP32(a.fp16[j]) +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed single-precision (32-bit) floating-point elements, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + IF k[j] + dst.fp32[j] := Convert_FP16_To_FP32(a.fp16[j]) + ELSE + dst.fp32[j] := src.fp32[j] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed single-precision (32-bit) floating-point elements, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + IF k[j] + dst.fp32[j] := Convert_FP16_To_FP32(a.fp16[j]) + ELSE + dst.fp32[j] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed single-precision (32-bit) floating-point elements, and store the results in "dst". + +FOR j := 0 to 7 + dst.fp32[j] := Convert_FP16_To_FP32(a.fp16[j]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed single-precision (32-bit) floating-point elements, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + IF k[j] + dst.fp32[j] := Convert_FP16_To_FP32(a.fp16[j]) + ELSE + dst.fp32[j] := src.fp32[j] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed single-precision (32-bit) floating-point elements, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + IF k[j] + dst.fp32[j] := Convert_FP16_To_FP32(a.fp16[j]) + ELSE + dst.fp32[j] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Convert +
+ + + + + Compare packed half-precision (16-bit) floating-point elements in "a" and "b", and store packed maximum values in "dst". [max_float_note] + +FOR j := 0 to 7 + dst.fp16[j] := (a.fp16[j] > b.fp16[j] ? a.fp16[j] : b.fp16[j]) +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Special Math Functions +
+ + + + + + + Compare packed half-precision (16-bit) floating-point elements in "a" and "b", and store packed maximum values in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). [max_float_note] + +FOR j := 0 to 7 + IF k[j] + dst.fp16[j] := (a.fp16[j] > b.fp16[j] ? a.fp16[j] : b.fp16[j]) + ELSE + dst.fp16[j] := src.fp16[j] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Special Math Functions +
+ + + + + + Compare packed half-precision (16-bit) floating-point elements in "a" and "b", and store packed maximum values in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). [max_float_note] + +FOR j := 0 to 7 + IF k[j] + dst.fp16[j] := (a.fp16[j] > b.fp16[j] ? a.fp16[j] : b.fp16[j]) + ELSE + dst.fp16[j] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Special Math Functions +
+ + + + + Compare packed half-precision (16-bit) floating-point elements in "a" and "b", and store packed maximum values in "dst". [max_float_note] + +FOR j := 0 to 15 + dst.fp16[j] := (a.fp16[j] > b.fp16[j] ? a.fp16[j] : b.fp16[j]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Special Math Functions +
+ + + + + + + Compare packed half-precision (16-bit) floating-point elements in "a" and "b", and store packed maximum values in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). [max_float_note] + +FOR j := 0 to 15 + IF k[j] + dst.fp16[j] := (a.fp16[j] > b.fp16[j] ? a.fp16[j] : b.fp16[j]) + ELSE + dst.fp16[j] := src.fp16[j] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Special Math Functions +
+ + + + + + Compare packed half-precision (16-bit) floating-point elements in "a" and "b", and store packed maximum values in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). [max_float_note] + +FOR j := 0 to 15 + IF k[j] + dst.fp16[j] := (a.fp16[j] > b.fp16[j] ? a.fp16[j] : b.fp16[j]) + ELSE + dst.fp16[j] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Special Math Functions +
+ + + + + Compare the lower half-precision (16-bit) floating-point elements in "a" and "b", store the maximum value in the lower element of "dst", and copy the upper 7 packed elements from "a" to the upper elements of "dst". [max_float_note] + +dst.fp16[0] := (a.fp16[0] > b.fp16[0] ? a.fp16[0] : b.fp16[0]) +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Special Math Functions +
+ + + + + + + Compare the lower half-precision (16-bit) floating-point elements in "a" and "b", store the maximum value in the lower element of "dst" using writemask "k" (the element is copied from "src" when mask bit 0 is not set), and copy the upper 7 packed elements from "a" to the upper elements of "dst". + +IF k[0] + dst.fp16[0] := (a.fp16[0] > b.fp16[0] ? a.fp16[0] : b.fp16[0]) +ELSE + dst.fp16[0] := src.fp16[0] +FI +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Special Math Functions +
+ + + + + + Compare the lower half-precision (16-bit) floating-point elements in "a" and "b", store the maximum value in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper 7 packed elements from "a" to the upper elements of "dst". + +IF k[0] + dst.fp16[0] := (a.fp16[0] > b.fp16[0] ? a.fp16[0] : b.fp16[0]) +ELSE + dst.fp16[0] := 0 +FI +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Special Math Functions +
+ + + + + + Compare the lower half-precision (16-bit) floating-point elements in "a" and "b", store the maximum value in the lower element of "dst", and copy the upper 7 packed elements from "a" to the upper elements of "dst". [sae_note][max_float_note] + +dst.fp16[0] := (a.fp16[0] > b.fp16[0] ? a.fp16[0] : b.fp16[0]) +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Special Math Functions +
+ + + + + + + + Compare the lower half-precision (16-bit) floating-point elements in "a" and "b", store the maximum value in the lower element of "dst" using writemask "k" (the element is copied from "src" when mask bit 0 is not set), and copy the upper 7 packed elements from "a" to the upper elements of "dst". [sae_note][max_float_note] + +IF k[0] + dst.fp16[0] := (a.fp16[0] > b.fp16[0] ? a.fp16[0] : b.fp16[0]) +ELSE + dst.fp16[0] := src.fp16[0] +FI +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Special Math Functions +
+ + + + + + + Compare the lower half-precision (16-bit) floating-point elements in "a" and "b", store the maximum value in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper 7 packed elements from "a" to the upper elements of "dst". [sae_note][max_float_note] + +IF k[0] + dst.fp16[0] := (a.fp16[0] > b.fp16[0] ? a.fp16[0] : b.fp16[0]) +ELSE + dst.fp16[0] := 0 +FI +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Special Math Functions +
+ + + + + Compare packed half-precision (16-bit) floating-point elements in "a" and "b", and store packed minimum values in "dst". [min_float_note] + +FOR j := 0 to 7 + dst.fp16[j] := (a.fp16[j] < b.fp16[j] ? a.fp16[j] : b.fp16[j]) +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Special Math Functions +
+ + + + + + + Compare packed half-precision (16-bit) floating-point elements in "a" and "b", and store packed minimum values in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). [min_float_note] + +FOR j := 0 to 7 + IF k[j] + dst.fp16[j] := (a.fp16[j] < b.fp16[j] ? a.fp16[j] : b.fp16[j]) + ELSE + dst.fp16[j] := src.fp16[j] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Special Math Functions +
+ + + + + + Compare packed half-precision (16-bit) floating-point elements in "a" and "b", and store packed minimum values in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). [min_float_note] + +FOR j := 0 to 7 + IF k[j] + dst.fp16[j] := (a.fp16[j] < b.fp16[j] ? a.fp16[j] : b.fp16[j]) + ELSE + dst.fp16[j] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Special Math Functions +
+ + + + + Compare packed half-precision (16-bit) floating-point elements in "a" and "b", and store packed minimum values in "dst". [min_float_note] + +FOR j := 0 to 15 + dst.fp16[j] := (a.fp16[j] < b.fp16[j] ? a.fp16[j] : b.fp16[j]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Special Math Functions +
+ + + + + + + Compare packed half-precision (16-bit) floating-point elements in "a" and "b", and store packed minimum values in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). [min_float_note] + +FOR j := 0 to 15 + IF k[j] + dst.fp16[j] := (a.fp16[j] < b.fp16[j] ? a.fp16[j] : b.fp16[j]) + ELSE + dst.fp16[j] := src.fp16[j] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Special Math Functions +
+ + + + + + Compare packed half-precision (16-bit) floating-point elements in "a" and "b", and store packed minimum values in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). [min_float_note] + +FOR j := 0 to 15 + IF k[j] + dst.fp16[j] := (a.fp16[j] < b.fp16[j] ? a.fp16[j] : b.fp16[j]) + ELSE + dst.fp16[j] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Special Math Functions +
+ + + + + Compare the lower half-precision (16-bit) floating-point elements in "a" and "b", store the minimum value in the lower element of "dst", and copy the upper 7 packed elements from "a" to the upper elements of "dst". [min_float_note] + +dst.fp16[0] := (a.fp16[0] < b.fp16[0] ? a.fp16[0] : b.fp16[0]) +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Special Math Functions +
+ + + + + + + Compare the lower half-precision (16-bit) floating-point elements in "a" and "b", store the minimum value in the lower element of "dst" using writemask "k" (the element is copied from "src" when mask bit 0 is not set), and copy the upper 7 packed elements from "a" to the upper elements of "dst". + +IF k[0] + dst.fp16[0] := (a.fp16[0] < b.fp16[0] ? a.fp16[0] : b.fp16[0]) +ELSE + dst.fp16[0] := src.fp16[0] +FI +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Special Math Functions +
+ + + + + + Compare the lower half-precision (16-bit) floating-point elements in "a" and "b", store the minimum value in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper 7 packed elements from "a" to the upper elements of "dst". + +IF k[0] + dst.fp16[0] := (a.fp16[0] < b.fp16[0] ? a.fp16[0] : b.fp16[0]) +ELSE + dst.fp16[0] := 0 +FI +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Special Math Functions +
+ + + + + + Compare the lower half-precision (16-bit) floating-point elements in "a" and "b", store the minimum value in the lower element of "dst", and copy the upper 7 packed elements from "a" to the upper elements of "dst". [sae_note][min_float_note] + +dst.fp16[0] := (a.fp16[0] < b.fp16[0] ? a.fp16[0] : b.fp16[0]) +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Special Math Functions +
+ + + + + + + + Compare the lower half-precision (16-bit) floating-point elements in "a" and "b", store the minimum value in the lower element of "dst" using writemask "k" (the element is copied from "src" when mask bit 0 is not set), and copy the upper 7 packed elements from "a" to the upper elements of "dst". [sae_note][min_float_note] + +IF k[0] + dst.fp16[0] := (a.fp16[0] < b.fp16[0] ? a.fp16[0] : b.fp16[0]) +ELSE + dst.fp16[0] := src.fp16[0] +FI +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Special Math Functions +
+ + + + + + + Compare the lower half-precision (16-bit) floating-point elements in "a" and "b", store the minimum value in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper 7 packed elements from "a" to the upper elements of "dst". [sae_note][min_float_note] + +IF k[0] + dst.fp16[0] := (a.fp16[0] < b.fp16[0] ? a.fp16[0] : b.fp16[0]) +ELSE + dst.fp16[0] := 0 +FI +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Special Math Functions +
+ + + + + Round packed half-precision (16-bit) floating-point elements in "a" to the number of fraction bits specified by "imm8", and store the results in "dst". [round_imm_note] + +DEFINE RoundScaleFP16(src.fp16, imm8[7:0]) { + m.fp16 := FP16(imm8[7:4]) // number of fraction bits after the binary point to be preserved + tmp.fp16 := POW(FP16(2.0), -m) * ROUND(POW(FP16(2.0), m) * src.fp16, imm8[3:0]) + RETURN tmp.fp16 +} +FOR i := 0 to 7 + dst.fp16[i] := RoundScaleFP16(a.fp16[i], imm8) +ENDFOR +dest[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Round packed half-precision (16-bit) floating-point elements in "a" to the number of fraction bits specified by "imm8", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). [round_imm_note] + +DEFINE RoundScaleFP16(src.fp16, imm8[7:0]) { + m.fp16 := FP16(imm8[7:4]) // number of fraction bits after the binary point to be preserved + tmp.fp16 := POW(FP16(2.0), -m) * ROUND(POW(FP16(2.0), m) * src.fp16, imm8[3:0]) + RETURN tmp.fp16 +} +FOR i := 0 to 7 + IF k[i] + dst.fp16[i] := RoundScaleFP16(a.fp16[i], imm8) + ELSE + dst.fp16[i] := src.fp16[i] + FI +ENDFOR +dest[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Round packed half-precision (16-bit) floating-point elements in "a" to the number of fraction bits specified by "imm8", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). [round_imm_note] + +DEFINE RoundScaleFP16(src.fp16, imm8[7:0]) { + m.fp16 := FP16(imm8[7:4]) // number of fraction bits after the binary point to be preserved + tmp.fp16 := POW(FP16(2.0), -m) * ROUND(POW(FP16(2.0), m) * src.fp16, imm8[3:0]) + RETURN tmp.fp16 +} +FOR i := 0 to 7 + IF k[i] + dst.fp16[i] := RoundScaleFP16(a.fp16[i], imm8) + ELSE + dst.fp16[i] := 0 + FI +ENDFOR +dest[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + Round packed half-precision (16-bit) floating-point elements in "a" to the number of fraction bits specified by "imm8", and store the results in "dst". [round_imm_note] + +DEFINE RoundScaleFP16(src.fp16, imm8[7:0]) { + m.fp16 := FP16(imm8[7:4]) // number of fraction bits after the binary point to be preserved + tmp.fp16 := POW(FP16(2.0), -m) * ROUND(POW(FP16(2.0), m) * src.fp16, imm8[3:0]) + RETURN tmp.fp16 +} +FOR i := 0 to 15 + dst.fp16[i] := RoundScaleFP16(a.fp16[i], imm8) +ENDFOR +dest[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Round packed half-precision (16-bit) floating-point elements in "a" to the number of fraction bits specified by "imm8", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). [round_imm_note] + +DEFINE RoundScaleFP16(src.fp16, imm8[7:0]) { + m.fp16 := FP16(imm8[7:4]) // number of fraction bits after the binary point to be preserved + tmp.fp16 := POW(FP16(2.0), -m) * ROUND(POW(FP16(2.0), m) * src.fp16, imm8[3:0]) + RETURN tmp.fp16 +} +FOR i := 0 to 15 + IF k[i] + dst.fp16[i] := RoundScaleFP16(a.fp16[i], imm8) + ELSE + dst.fp16[i] := src.fp16[i] + FI +ENDFOR +dest[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Round packed half-precision (16-bit) floating-point elements in "a" to the number of fraction bits specified by "imm8", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). [round_imm_note] + +DEFINE RoundScaleFP16(src.fp16, imm8[7:0]) { + m.fp16 := FP16(imm8[7:4]) // number of fraction bits after the binary point to be preserved + tmp.fp16 := POW(FP16(2.0), -m) * ROUND(POW(FP16(2.0), m) * src.fp16, imm8[3:0]) + RETURN tmp.fp16 +} +FOR i := 0 to 15 + IF k[i] + dst.fp16[i] := RoundScaleFP16(a.fp16[i], imm8) + ELSE + dst.fp16[i] := 0 + FI +ENDFOR +dest[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + Convert the exponent of each packed half-precision (16-bit) floating-point element in "a" to a half-precision (16-bit) floating-point number representing the integer exponent, and store the results in "dst". This intrinsic essentially calculates "floor(log2(x))" for each element. + FOR i := 0 to 7 + dst.fp16[i] := ConvertExpFP16(a.fp16[i]) +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Convert the exponent of each packed half-precision (16-bit) floating-point element in "a" to a half-precision (16-bit) floating-point number representing the integer exponent, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). This intrinsic essentially calculates "floor(log2(x))" for each element. + FOR i := 0 to 7 + IF k[i] + dst.fp16[i] := ConvertExpFP16(a.fp16[i]) + ELSE + dst.fp16[i] := src.fp16[i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + Convert the exponent of each packed half-precision (16-bit) floating-point element in "a" to a half-precision (16-bit) floating-point number representing the integer exponent, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). This intrinsic essentially calculates "floor(log2(x))" for each element. + FOR i := 0 to 7 + IF k[i] + dst.fp16[i] := ConvertExpFP16(a.fp16[i]) + ELSE + dst.fp16[i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + Convert the exponent of each packed half-precision (16-bit) floating-point element in "a" to a half-precision (16-bit) floating-point number representing the integer exponent, and store the results in "dst". This intrinsic essentially calculates "floor(log2(x))" for each element. + FOR i := 0 to 15 + dst.fp16[i] := ConvertExpFP16(a.fp16[i]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Convert the exponent of each packed half-precision (16-bit) floating-point element in "a" to a half-precision (16-bit) floating-point number representing the integer exponent, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). This intrinsic essentially calculates "floor(log2(x))" for each element. + FOR i := 0 to 15 + IF k[i] + dst.fp16[i] := ConvertExpFP16(a.fp16[i]) + ELSE + dst.fp16[i] := src.fp16[i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + Convert the exponent of each packed half-precision (16-bit) floating-point element in "a" to a half-precision (16-bit) floating-point number representing the integer exponent, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). This intrinsic essentially calculates "floor(log2(x))" for each element. + FOR i := 0 to 15 + IF k[i] + dst.fp16[i] := ConvertExpFP16(a.fp16[i]) + ELSE + dst.fp16[i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Normalize the mantissas of packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst". This intrinsic essentially calculates "±(2^k)*|x.significand|", where "k" depends on the interval range defined by "norm" and the sign depends on "sign" and the source sign. + [getmant_note] + FOR i := 0 TO 7 + dst.fp16[i] := GetNormalizedMantissaFP16(a.fp16[i], norm, sign) +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + + Normalize the mantissas of packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). This intrinsic essentially calculates "±(2^k)*|x.significand|", where "k" depends on the interval range defined by "norm" and the sign depends on "sign" and the source sign. + [getmant_note] + FOR i := 0 TO 7 + IF k[i] + dst.fp16[i] := GetNormalizedMantissaFP16(a.fp16[i], norm, sign) + ELSE + dst.fp16[i] := src.fp16[i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Normalize the mantissas of packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). This intrinsic essentially calculates "±(2^k)*|x.significand|", where "k" depends on the interval range defined by "norm" and the sign depends on "sign" and the source sign. + [getmant_note] + FOR i := 0 TO 7 + IF k[i] + dst.fp16[i] := GetNormalizedMantissaFP16(a.fp16[i], norm, sign) + ELSE + dst.fp16[i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Normalize the mantissas of packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst". This intrinsic essentially calculates "±(2^k)*|x.significand|", where "k" depends on the interval range defined by "norm" and the sign depends on "sign" and the source sign. + [getmant_note] + FOR i := 0 TO 15 + dst.fp16[i] := GetNormalizedMantissaFP16(a.fp16[i], norm, sign) +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + + Normalize the mantissas of packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). This intrinsic essentially calculates "±(2^k)*|x.significand|", where "k" depends on the interval range defined by "norm" and the sign depends on "sign" and the source sign. + [getmant_note] + FOR i := 0 TO 15 + IF k[i] + dst.fp16[i] := GetNormalizedMantissaFP16(a.fp16[i], norm, sign) + ELSE + dst.fp16[i] := src.fp16[i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Normalize the mantissas of packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). This intrinsic essentially calculates "±(2^k)*|x.significand|", where "k" depends on the interval range defined by "norm" and the sign depends on "sign" and the source sign. + [getmant_note] + FOR i := 0 TO 15 + IF k[i] + dst.fp16[i] := GetNormalizedMantissaFP16(a.fp16[i], norm, sign) + ELSE + dst.fp16[i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + Extract the reduced argument of packed half-precision (16-bit) floating-point elements in "a" by the number of bits specified by "imm8", and store the results in "dst". [round_imm_note] + +DEFINE ReduceArgumentFP16(src[15:0], imm8[7:0]) { + m[15:0] := FP16(imm8[7:4]) // number of fraction bits after the binary point to be preserved + tmp[15:0] := POW(2.0, FP16(-m)) * ROUND(POW(2.0, FP16(m)) * src[15:0], imm8[3:0]) + tmp[15:0] := src[15:0] - tmp[15:0] + IF IsInf(tmp[15:0]) + tmp[15:0] := FP16(0.0) + FI + RETURN tmp[15:0] +} +FOR i := 0 to 7 + dst.fp16[i] := ReduceArgumentFP16(a.fp16[i], imm8) +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Extract the reduced argument of packed half-precision (16-bit) floating-point elements in "a" by the number of bits specified by "imm8", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). [round_imm_note] + +DEFINE ReduceArgumentFP16(src[15:0], imm8[7:0]) { + m[15:0] := FP16(imm8[7:4]) // number of fraction bits after the binary point to be preserved + tmp[15:0] := POW(2.0, FP16(-m)) * ROUND(POW(2.0, FP16(m)) * src[15:0], imm8[3:0]) + tmp[15:0] := src[15:0] - tmp[15:0] + IF IsInf(tmp[15:0]) + tmp[15:0] := FP16(0.0) + FI + RETURN tmp[15:0] +} +FOR i := 0 to 7 + IF k[i] + dst.fp16[i] := ReduceArgumentFP16(a.fp16[i], imm8) + ELSE + dst.fp16[i] := src.fp16[i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Extract the reduced argument of packed half-precision (16-bit) floating-point elements in "a" by the number of bits specified by "imm8", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). [round_imm_note] + +DEFINE ReduceArgumentFP16(src[15:0], imm8[7:0]) { + m[15:0] := FP16(imm8[7:4]) // number of fraction bits after the binary point to be preserved + tmp[15:0] := POW(2.0, FP16(-m)) * ROUND(POW(2.0, FP16(m)) * src[15:0], imm8[3:0]) + tmp[15:0] := src[15:0] - tmp[15:0] + IF IsInf(tmp[15:0]) + tmp[15:0] := FP16(0.0) + FI + RETURN tmp[15:0] +} +FOR i := 0 to 7 + IF k[i] + dst.fp16[i] := ReduceArgumentFP16(a.fp16[i], imm8) + ELSE + dst.fp16[i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + Extract the reduced argument of packed half-precision (16-bit) floating-point elements in "a" by the number of bits specified by "imm8", and store the results in "dst". [round_imm_note] + +DEFINE ReduceArgumentFP16(src[15:0], imm8[7:0]) { + m[15:0] := FP16(imm8[7:4]) // number of fraction bits after the binary point to be preserved + tmp[15:0] := POW(2.0, FP16(-m)) * ROUND(POW(2.0, FP16(m)) * src[15:0], imm8[3:0]) + tmp[15:0] := src[15:0] - tmp[15:0] + IF IsInf(tmp[15:0]) + tmp[15:0] := FP16(0.0) + FI + RETURN tmp[15:0] +} +FOR i := 0 to 15 + dst.fp16[i] := ReduceArgumentFP16(a.fp16[i], imm8) +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Extract the reduced argument of packed half-precision (16-bit) floating-point elements in "a" by the number of bits specified by "imm8", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). [round_imm_note] + +DEFINE ReduceArgumentFP16(src[15:0], imm8[7:0]) { + m[15:0] := FP16(imm8[7:4]) // number of fraction bits after the binary point to be preserved + tmp[15:0] := POW(2.0, FP16(-m)) * ROUND(POW(2.0, FP16(m)) * src[15:0], imm8[3:0]) + tmp[15:0] := src[15:0] - tmp[15:0] + IF IsInf(tmp[15:0]) + tmp[15:0] := FP16(0.0) + FI + RETURN tmp[15:0] +} +FOR i := 0 to 15 + IF k[i] + dst.fp16[i] := ReduceArgumentFP16(a.fp16[i], imm8) + ELSE + dst.fp16[i] := src.fp16[i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Extract the reduced argument of packed half-precision (16-bit) floating-point elements in "a" by the number of bits specified by "imm8", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). [round_imm_note] + +DEFINE ReduceArgumentFP16(src[15:0], imm8[7:0]) { + m[15:0] := FP16(imm8[7:4]) // number of fraction bits after the binary point to be preserved + tmp[15:0] := POW(2.0, FP16(-m)) * ROUND(POW(2.0, FP16(m)) * src[15:0], imm8[3:0]) + tmp[15:0] := src[15:0] - tmp[15:0] + IF IsInf(tmp[15:0]) + tmp[15:0] := FP16(0.0) + FI + RETURN tmp[15:0] +} +FOR i := 0 to 15 + IF k[i] + dst.fp16[i] := ReduceArgumentFP16(a.fp16[i], imm8) + ELSE + dst.fp16[i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + Scale the packed half-precision (16-bit) floating-point elements in "a" using values from "b", and store the results in "dst". + DEFINE ScaleFP16(src1, src2) { + denormal1 := (a.exp == 0) and (a.fraction != 0) + denormal2 := (b.exp == 0) and (b.fraction != 0) + tmp1 := src1 + tmp2 := src2 + IF MXCSR.DAZ + IF denormal1 + tmp1 := 0 + FI + IF denormal2 + tmp2 := 0 + FI + FI + RETURN tmp1 * POW(2.0, FLOOR(tmp2)) +} +FOR i := 0 to 7 + dst.fp16[i] := ScaleFP16(a.fp16[i], b.fp16[i]) +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Scale the packed half-precision (16-bit) floating-point elements in "a" using values from "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + DEFINE ScaleFP16(src1, src2) { + denormal1 := (a.exp == 0) and (a.fraction != 0) + denormal2 := (b.exp == 0) and (b.fraction != 0) + tmp1 := src1 + tmp2 := src2 + IF MXCSR.DAZ + IF denormal1 + tmp1 := 0 + FI + IF denormal2 + tmp2 := 0 + FI + FI + RETURN tmp1 * POW(2.0, FLOOR(tmp2)) +} +FOR i := 0 to 7 + IF k[i] + dst.fp16[i] := ScaleFP16(a.fp16[i], b.fp16[i]) + ELSE + dst.fp16[i] := src.fp16[i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Scale the packed half-precision (16-bit) floating-point elements in "a" using values from "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + DEFINE ScaleFP16(src1, src2) { + denormal1 := (a.exp == 0) and (a.fraction != 0) + denormal2 := (b.exp == 0) and (b.fraction != 0) + tmp1 := src1 + tmp2 := src2 + IF MXCSR.DAZ + IF denormal1 + tmp1 := 0 + FI + IF denormal2 + tmp2 := 0 + FI + FI + RETURN tmp1 * POW(2.0, FLOOR(tmp2)) +} +FOR i := 0 to 7 + IF k[i] + dst.fp16[i] := ScaleFP16(a.fp16[i], b.fp16[i]) + ELSE + dst.fp16[i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + Scale the packed half-precision (16-bit) floating-point elements in "a" using values from "b", and store the results in "dst". + DEFINE ScaleFP16(src1, src2) { + denormal1 := (a.exp == 0) and (a.fraction != 0) + denormal2 := (b.exp == 0) and (b.fraction != 0) + tmp1 := src1 + tmp2 := src2 + IF MXCSR.DAZ + IF denormal1 + tmp1 := 0 + FI + IF denormal2 + tmp2 := 0 + FI + FI + RETURN tmp1 * POW(2.0, FLOOR(tmp2)) +} +FOR i := 0 to 15 + dst.fp16[i] := ScaleFP16(a.fp16[i], b.fp16[i]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + + Scale the packed half-precision (16-bit) floating-point elements in "a" using values from "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + DEFINE ScaleFP16(src1, src2) { + denormal1 := (a.exp == 0) and (a.fraction != 0) + denormal2 := (b.exp == 0) and (b.fraction != 0) + tmp1 := src1 + tmp2 := src2 + IF MXCSR.DAZ + IF denormal1 + tmp1 := 0 + FI + IF denormal2 + tmp2 := 0 + FI + FI + RETURN tmp1 * POW(2.0, FLOOR(tmp2)) +} +FOR i := 0 to 15 + IF k[i] + dst.fp16[i] := ScaleFP16(a.fp16[i], b.fp16[i]) + ELSE + dst.fp16[i] := src.fp16[i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Scale the packed half-precision (16-bit) floating-point elements in "a" using values from "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + DEFINE ScaleFP16(src1, src2) { + denormal1 := (a.exp == 0) and (a.fraction != 0) + denormal2 := (b.exp == 0) and (b.fraction != 0) + tmp1 := src1 + tmp2 := src2 + IF MXCSR.DAZ + IF denormal1 + tmp1 := 0 + FI + IF denormal2 + tmp2 := 0 + FI + FI + RETURN tmp1 * POW(2.0, FLOOR(tmp2)) +} +FOR i := 0 to 15 + IF k[i] + dst.fp16[i] := ScaleFP16(a.fp16[i], b.fp16[i]) + ELSE + dst.fp16[i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + Test packed half-precision (16-bit) floating-point elements in "a" for special categories specified by "imm8", and store the results in mask vector "k". + [fpclass_note] + FOR i := 0 to 7 + k[i] := CheckFPClass_FP16(a.fp16[i], imm8[7:0]) +ENDFOR +k[MAX:8] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Test packed half-precision (16-bit) floating-point elements in "a" for special categories specified by "imm8", and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + [fpclass_note] + FOR i := 0 to 7 + IF k1[i] + k[i] := CheckFPClass_FP16(a.fp16[i], imm8[7:0]) + ELSE + k[i] := 0 + FI +ENDFOR +k[MAX:8] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + Test packed half-precision (16-bit) floating-point elements in "a" for special categories specified by "imm8", and store the results in mask vector "k". + [fpclass_note] + FOR i := 0 to 15 + k[i] := CheckFPClass_FP16(a.fp16[i], imm8[7:0]) +ENDFOR +k[MAX:16] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Test packed half-precision (16-bit) floating-point elements in "a" for special categories specified by "imm8", and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + [fpclass_note] + FOR i := 0 to 15 + IF k1[i] + k[i] := CheckFPClass_FP16(a.fp16[i], imm8[7:0]) + ELSE + k[i] := 0 + FI +ENDFOR +k[MAX:16] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Shuffle half-precision (16-bit) floating-point elements in "a" and "b" using the corresponding selector and index in "idx", and store the results in "dst". + +FOR j := 0 to 7 + i := j*16 + off := idx[i+2:i] + dst.fp16[j] := idx[i+3] ? b.fp16[off] : a.fp16[off] +ENDFOR +dst[MAX:128] := 0 + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Shuffle half-precision (16-bit) floating-point elements in "a" and "b" across lanes using the corresponding selector and index in "idx", and store the results in "dst". + +FOR j := 0 to 15 + i := j*16 + off := idx[i+3:i] + dst.fp16[j] := idx[i+4] ? b.fp16[off] : a.fp16[off] +ENDFOR +dst[MAX:256] := 0 + + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Blend packed half-precision (16-bit) floating-point elements from "a" and "b" using control mask "k", and store the results in "dst". + +FOR j := 0 to 15 + IF k[j] + dst.fp16[j] := b.fp16[j] + ELSE + dst.fp16[j] := a.fp16[j] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + + Blend packed half-precision (16-bit) floating-point elements from "a" and "b" using control mask "k", and store the results in "dst". + +FOR j := 0 to 7 + IF k[j] + dst.fp16[j] := b.fp16[j] + ELSE + dst.fp16[j] := a.fp16[j] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + Shuffle half-precision (16-bit) floating-point elements in "a" across lanes using the corresponding index in "idx", and store the results in "dst". + +FOR j := 0 to 15 + i := j*16 + id := idx[i+3:i] + dst.fp16[j] := a.fp16[id] +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + + Shuffle half-precision (16-bit) floating-point elements in "a" using the corresponding index in "idx", and store the results in "dst". + +FOR j := 0 to 7 + i := j*16 + id := idx[i+2:i] + dst.fp16[j] := a.fp16[id] +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Miscellaneous +
+ + + + Compute the approximate reciprocal square root of packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst". The maximum relative error for this approximation is less than 1.5*2^-12. + +FOR i := 0 to 7 + dst.fp16[i] := (1.0 / SQRT(a.fp16[i])) +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Elementary Math Functions +
+ + + + + + Compute the approximate reciprocal square root of packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). The maximum relative error for this approximation is less than 1.5*2^-12. + +FOR i := 0 to 7 + IF k[i] + dst.fp16[i] := (1.0 / SQRT(a.fp16[i])) + ELSE + dst.fp16[i] := src.fp16[i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Elementary Math Functions +
+ + + + + Compute the approximate reciprocal square root of packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). The maximum relative error for this approximation is less than 1.5*2^-12. + +FOR i := 0 to 7 + IF k[i] + dst.fp16[i] := (1.0 / SQRT(a.fp16[i])) + ELSE + dst.fp16[i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Elementary Math Functions +
+ + + + Compute the approximate reciprocal square root of packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst". The maximum relative error for this approximation is less than 1.5*2^-12. + +FOR i := 0 to 15 + dst.fp16[i] := (1.0 / SQRT(a.fp16[i])) +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Elementary Math Functions +
+ + + + + + Compute the approximate reciprocal square root of packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). The maximum relative error for this approximation is less than 1.5*2^-12. + +FOR i := 0 to 15 + IF k[i] + dst.fp16[i] := (1.0 / SQRT(a.fp16[i])) + ELSE + dst.fp16[i] := src.fp16[i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Elementary Math Functions +
+ + + + + Compute the approximate reciprocal square root of packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). The maximum relative error for this approximation is less than 1.5*2^-12. + +FOR i := 0 to 15 + IF k[i] + dst.fp16[i] := (1.0 / SQRT(a.fp16[i])) + ELSE + dst.fp16[i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Elementary Math Functions +
+ + + + Compute the square root of packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst". + +FOR i := 0 to 7 + dst.fp16[i] := SQRT(a.fp16[i]) +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Elementary Math Functions +
+ + + + + + Compute the square root of packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR i := 0 to 7 + IF k[i] + dst.fp16[i] := SQRT(a.fp16[i]) + ELSE + dst.fp16[i] := src.fp16[i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Elementary Math Functions +
+ + + + + Compute the square root of packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR i := 0 to 7 + IF k[i] + dst.fp16[i] := SQRT(a.fp16[i]) + ELSE + dst.fp16[i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Elementary Math Functions +
+ + + + Compute the square root of packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst". + +FOR i := 0 to 15 + dst.fp16[i] := SQRT(a.fp16[i]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Elementary Math Functions +
+ + + + + + Compute the square root of packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR i := 0 to 15 + IF k[i] + dst.fp16[i] := SQRT(a.fp16[i]) + ELSE + dst.fp16[i] := src.fp16[i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Elementary Math Functions +
+ + + + + Compute the square root of packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR i := 0 to 15 + IF k[i] + dst.fp16[i] := SQRT(a.fp16[i]) + ELSE + dst.fp16[i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Elementary Math Functions +
+ + + + Compute the approximate reciprocal of packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst". The maximum relative error for this approximation is less than 1.5*2^-12. + +FOR i := 0 to 7 + dst.fp16[i] := (1.0 / a.fp16[i]) +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Elementary Math Functions +
+ + + + + + Compute the approximate reciprocal of packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). The maximum relative error for this approximation is less than 1.5*2^-12. + +FOR i := 0 to 7 + IF k[i] + dst.fp16[i] := (1.0 / a.fp16[i]) + ELSE + dst.fp16[i] := src.fp16[i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Elementary Math Functions +
+ + + + + Compute the approximate reciprocal of packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). The maximum relative error for this approximation is less than 1.5*2^-12. + +FOR i := 0 to 7 + IF k[i] + dst.fp16[i] := (1.0 / a.fp16[i]) + ELSE + dst.fp16[i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Elementary Math Functions +
+ + + + Compute the approximate reciprocal of packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst". The maximum relative error for this approximation is less than 1.5*2^-12. + +FOR i := 0 to 15 + dst.fp16[i] := (1.0 / a.fp16[i]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Elementary Math Functions +
+ + + + + + Compute the approximate reciprocal of packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). The maximum relative error for this approximation is less than 1.5*2^-12. + +FOR i := 0 to 15 + IF k[i] + dst.fp16[i] := (1.0 / a.fp16[i]) + ELSE + dst.fp16[i] := src.fp16[i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Elementary Math Functions +
+ + + + + Compute the approximate reciprocal of packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). The maximum relative error for this approximation is less than 1.5*2^-12. + +FOR i := 0 to 15 + IF k[i] + dst.fp16[i] := (1.0 / a.fp16[i]) + ELSE + dst.fp16[i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Elementary Math Functions +
+ + + + Load 256-bits (composed of 16 packed half-precision (16-bit) floating-point elements) from memory into "dst". + "mem_addr" must be aligned on a 32-byte boundary or a general-protection exception may be generated. + +dst[255:0] := MEM[mem_addr+255:mem_addr] +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Load +
+ + + + Load 128-bits (composed of 8 packed half-precision (16-bit) floating-point elements) from memory into "dst". + "mem_addr" must be aligned on a 16-byte boundary or a general-protection exception may be generated. + +dst[127:0] := MEM[mem_addr+127:mem_addr] +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Load +
+ + + + Load 256-bits (composed of 16 packed half-precision (16-bit) floating-point elements) from memory into "dst". + "mem_addr" does not need to be aligned on any particular boundary. + +dst[255:0] := MEM[mem_addr+255:mem_addr] +dst[MAX:256] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Load +
+ + + + Load 128-bits (composed of 8 packed half-precision (16-bit) floating-point elements) from memory into "dst". + "mem_addr" does not need to be aligned on any particular boundary. + +dst[127:0] := MEM[mem_addr+127:mem_addr] +dst[MAX:128] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Load +
+ + + + + Store 256-bits (composed of 16 packed half-precision (16-bit) floating-point elements) from "a" into memory. + "mem_addr" must be aligned on a 32-byte boundary or a general-protection exception may be generated. + +MEM[mem_addr+255:mem_addr] := a[255:0] + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Store +
+ + + + + Store 128-bits (composed of 8 packed half-precision (16-bit) floating-point elements) from "a" into memory. + "mem_addr" must be aligned on a 16-byte boundary or a general-protection exception may be generated. + +MEM[mem_addr+127:mem_addr] := a[127:0] + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Store +
+ + + + + Store 256-bits (composed of 16 packed half-precision (16-bit) floating-point elements) from "a" into memory. + "mem_addr" does not need to be aligned on any particular boundary. + +MEM[mem_addr+255:mem_addr] := a[255:0] + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Store +
+ + + + + Store 128-bits (composed of 8 packed half-precision (16-bit) floating-point elements) from "a" into memory. + "mem_addr" does not need to be aligned on any particular boundary. + +MEM[mem_addr+127:mem_addr] := a[127:0] + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Store +
+ + + + Return vector of type __m256h with undefined elements. + AVX512_FP16 + AVX512VL +
immintrin.h
+ General Support +
+ + + + Return vector of type __m128h with undefined elements. + AVX512_FP16 + AVX512VL +
immintrin.h
+ General Support +
+ + + + Return vector of type __m256h with all elements set to zero. + +dst[MAX:0] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Set +
+ + + + Return vector of type __m128h with all elements set to zero. + +dst[MAX:0] := 0 + + + AVX512_FP16 + AVX512VL +
immintrin.h
+ Set +
+ + + + + + + Add packed half-precision (16-bit) floating-point elements in "a" and "b", and store the results in "dst". + +FOR j := 0 TO 31 + dst.fp16[j] := a.fp16[j] + b.fp16[j] +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + Add packed half-precision (16-bit) floating-point elements in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 TO 31 + IF k[j] + dst.fp16[j] := a.fp16[j] + b.fp16[j] + ELSE + dst.fp16[j] := src.fp16[j] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + Add packed half-precision (16-bit) floating-point elements in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 TO 31 + IF k[j] + dst.fp16[j] := a.fp16[j] + b.fp16[j] + ELSE + dst.fp16[j] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + Add packed half-precision (16-bit) floating-point elements in "a" and "b", and store the results in "dst". + [round_note] + +FOR j := 0 TO 31 + dst.fp16[j] := a.fp16[j] + b.fp16[j] +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + + Add packed half-precision (16-bit) floating-point elements in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 TO 31 + IF k[j] + dst.fp16[j] := a.fp16[j] + b.fp16[j] + ELSE + dst.fp16[j] := src.fp16[j] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + Add packed half-precision (16-bit) floating-point elements in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 TO 31 + IF k[j] + dst.fp16[j] := a.fp16[j] + b.fp16[j] + ELSE + dst.fp16[j] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + Add the lower half-precision (16-bit) floating-point elements in "a" and "b", store the result in the lower element of "dst", and copy the upper 7 packed elements from "a" to the upper elements of "dst". + +dst.fp16[0] := a.fp16[0] + b.fp16[0] +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + Add the lower half-precision (16-bit) floating-point elements in "a" and "b", store the result in the lower element of "dst", and copy the upper 7 packed elements from "a" to the upper elements of "dst". + [round_note] + +dst.fp16[0] := a.fp16[0] + b.fp16[0] +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + Add the lower half-precision (16-bit) floating-point elements in "a" and "b", store the result in the lower element of "dst" using writemask "k" (the element is copied from "src" when mask bit 0 is not set), and copy the upper 7 packed elements from "a" to the upper elements of "dst". + +IF k[0] + dst.fp16[0] := a.fp16[0] + b.fp16[0] +ELSE + dst.fp16[0] := src.fp16[0] +FI +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + + Add the lower half-precision (16-bit) floating-point elements in "a" and "b", store the result in the lower element of "dst" using writemask "k" (the element is copied from "src" when mask bit 0 is not set), and copy the upper 7 packed elements from "a" to the upper elements of "dst". + [round_note] + +IF k[0] + dst.fp16[0] := a.fp16[0] + b.fp16[0] +ELSE + dst.fp16[0] := src.fp16[0] +FI +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + Add the lower half-precision (16-bit) floating-point elements in "a" and "b", store the result in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper 7 packed elements from "a" to the upper elements of "dst". + +IF k[0] + dst.fp16[0] := a.fp16[0] + b.fp16[0] +ELSE + dst.fp16[0] := 0 +FI +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + Add the lower half-precision (16-bit) floating-point elements in "a" and "b", store the result in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper 7 packed elements from "a" to the upper elements of "dst". + [round_note] + +IF k[0] + dst.fp16[0] := a.fp16[0] + b.fp16[0] +ELSE + dst.fp16[0] := 0 +FI +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + Divide packed half-precision (16-bit) floating-point elements in "a" by packed elements in "b", and store the results in "dst". + +FOR j := 0 to 31 + dst.fp16[j] := a.fp16[j] / b.fp16[j] +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + Divide packed half-precision (16-bit) floating-point elements in "a" by packed elements in "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 31 + IF k[j] + dst.fp16[j] := a.fp16[j] / b.fp16[j] + ELSE + dst.fp16[j] := src.fp16[j] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + Divide packed half-precision (16-bit) floating-point elements in "a" by packed elements in "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 31 + IF k[j] + dst.fp16[j] := a.fp16[j] / b.fp16[j] + ELSE + dst.fp16[j] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + Divide packed half-precision (16-bit) floating-point elements in "a" by packed elements in "b", and store the results in "dst". + [round_note] + +FOR j := 0 to 31 + dst.fp16[j] := a.fp16[j] / b.fp16[j] +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + + Divide packed half-precision (16-bit) floating-point elements in "a" by packed elements in "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 to 31 + IF k[j] + dst.fp16[j] := a.fp16[j] / b.fp16[j] + ELSE + dst.fp16[j] := src.fp16[j] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + Divide packed half-precision (16-bit) floating-point elements in "a" by packed elements in "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 to 31 + IF k[j] + dst.fp16[j] := a.fp16[j] / b.fp16[j] + ELSE + dst.fp16[j] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + Divide the lower half-precision (16-bit) floating-point element in "a" by the lower half-precision (16-bit) floating-point element in "b", store the result in the lower element of "dst", and copy the upper 7 packed elements from "a" to the upper elements of "dst". + +dst.fp16[0] := a.fp16[0] / b.fp16[0] +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + Divide the lower half-precision (16-bit) floating-point element in "a" by the lower half-precision (16-bit) floating-point element in "b", store the result in the lower element of "dst" using writemask "k" (the element is copied from "src" when mask bit 0 is not set), and copy the upper 7 packed elements from "a" to the upper elements of "dst". + +IF k[0] + dst.fp16[0] := a.fp16[0] / b.fp16[0] +ELSE + dst.fp16[0] := src.fp16[0] +FI +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + Divide the lower half-precision (16-bit) floating-point element in "a" by the lower half-precision (16-bit) floating-point element in "b", store the result in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper 7 packed elements from "a" to the upper elements of "dst". + +IF k[0] + dst.fp16[0] := a.fp16[0] / b.fp16[0] +ELSE + dst.fp16[0] := 0 +FI +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + Divide the lower half-precision (16-bit) floating-point element in "a" by the lower half-precision (16-bit) floating-point element in "b", store the result in the lower element of "dst", and copy the upper 7 packed elements from "a" to the upper elements of "dst". + [round_note] + +dst.fp16[0] := a.fp16[0] / b.fp16[0] +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + + Divide the lower half-precision (16-bit) floating-point element in "a" by the lower half-precision (16-bit) floating-point element in "b", store the result in the lower element of "dst" using writemask "k" (the element is copied from "src" when mask bit 0 is not set), and copy the upper 7 packed elements from "a" to the upper elements of "dst". + [round_note] + +IF k[0] + dst.fp16[0] := a.fp16[0] / b.fp16[0] +ELSE + dst.fp16[0] := src.fp16[0] +FI +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + Divide the lower half-precision (16-bit) floating-point element in "a" by the lower half-precision (16-bit) floating-point element in "b", store the result in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper 7 packed elements from "a" to the upper elements of "dst". + [round_note] + +IF k[0] + dst.fp16[0] := a.fp16[0] / b.fp16[0] +ELSE + dst.fp16[0] := 0 +FI +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply packed half-precision (16-bit) floating-point elements in "a" and "b", add the intermediate result to packed elements in "c", and store the results in "dst". + +FOR j := 0 to 31 + dst.fp16[j] := (a.fp16[j] * b.fp16[j]) + c.fp16[j] +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed half-precision (16-bit) floating-point elements in "a" and "b", add the intermediate result to packed elements in "c", and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + +FOR j := 0 to 31 + IF k[j] + dst.fp16[j] := (a.fp16[j] * b.fp16[j]) + c.fp16[j] + ELSE + dst.fp16[j] := a.fp16[j] + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed half-precision (16-bit) floating-point elements in "a" and "b", add the intermediate result to packed elements in "c", and store the results in "dst" using writemask "k" (elements are copied from "c" when the corresponding mask bit is not set). + +FOR j := 0 to 31 + IF k[j] + dst.fp16[j] := (a.fp16[j] * b.fp16[j]) + c.fp16[j] + ELSE + dst.fp16[j] := c.fp16[j] + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed half-precision (16-bit) floating-point elements in "a" and "b", add the intermediate result to packed elements in "c", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 31 + IF k[j] + dst.fp16[j] := (a.fp16[j] * b.fp16[j]) + c.fp16[j] + ELSE + dst.fp16[j] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed half-precision (16-bit) floating-point elements in "a" and "b", add the intermediate result to packed elements in "c", and store the results in "dst". + [round_note] + +FOR j := 0 to 31 + dst.fp16[j] := (a.fp16[j] * b.fp16[j]) + c.fp16[j] +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply packed half-precision (16-bit) floating-point elements in "a" and "b", add the intermediate result to packed elements in "c", and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 to 31 + IF k[j] + dst.fp16[j] := (a.fp16[j] * b.fp16[j]) + c.fp16[j] + ELSE + dst.fp16[j] := a.fp16[j] + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply packed half-precision (16-bit) floating-point elements in "a" and "b", add the intermediate result to packed elements in "c", and store the results in "dst" using writemask "k" (elements are copied from "c" when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 to 31 + IF k[j] + dst.fp16[j] := (a.fp16[j] * b.fp16[j]) + c.fp16[j] + ELSE + dst.fp16[j] := c.fp16[j] + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply packed half-precision (16-bit) floating-point elements in "a" and "b", add the intermediate result to packed elements in "c", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 to 31 + IF k[j] + dst.fp16[j] := (a.fp16[j] * b.fp16[j]) + c.fp16[j] + ELSE + dst.fp16[j] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply the lower half-precision (16-bit) floating-point elements in "a" and "b", and add the intermediate result to the lower element in "c". Store the result in the lower element of "dst", and copy the upper 7 packed elements from "a" to the upper elements of "dst". + +dst.fp16[0] := (a.fp16[0] * b.fp16[0]) + c.fp16[0] +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply the lower half-precision (16-bit) floating-point elements in "a" and "b", and add the intermediate result to the lower element in "c". Store the result in the lower element of "dst" using writemask "k" (the element is copied from "a" when mask bit 0 is not set), and copy the upper 7 packed elements from "a" to the upper elements of "dst". + +IF k[0] + dst.fp16[0] := (a.fp16[0] * b.fp16[0]) + c.fp16[0] +ELSE + dst.fp16[0] := a.fp16[0] +FI +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply the lower half-precision (16-bit) floating-point elements in "a" and "b", and add the intermediate result to the lower element in "c". Store the result in the lower element of "dst" using writemask "k" (the element is copied from "c" when mask bit 0 is not set), and copy the upper 7 packed elements from "c" to the upper elements of "dst". + +IF k[0] + dst.fp16[0] := (a.fp16[0] * b.fp16[0]) + c.fp16[0] +ELSE + dst.fp16[0] := c.fp16[0] +FI +dst[127:16] := c[127:16] +dst[MAX:128] := 0 + + + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply the lower half-precision (16-bit) floating-point elements in "a" and "b", and add the intermediate result to the lower element in "c". Store the result in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper 7 packed elements from "a" to the upper elements of "dst". + +IF k[0] + dst.fp16[0] := (a.fp16[0] * b.fp16[0]) + c.fp16[0] +ELSE + dst.fp16[0] := 0 +FI +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply the lower half-precision (16-bit) floating-point elements in "a" and "b", and add the intermediate result to the lower element in "c". Store the result in the lower element of "dst", and copy the upper 7 packed elements from "a" to the upper elements of "dst". + [round_note] + +dst.fp16[0] := (a.fp16[0] * b.fp16[0]) + c.fp16[0] +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply the lower half-precision (16-bit) floating-point elements in "a" and "b", and add the intermediate result to the lower element in "c". Store the result in the lower element of "dst" using writemask "k" (the element is copied from "a" when mask bit 0 is not set), and copy the upper 7 packed elements from "a" to the upper elements of "dst". + [round_note] + +IF k[0] + dst.fp16[0] := (a.fp16[0] * b.fp16[0]) + c.fp16[0] +ELSE + dst.fp16[0] := a.fp16[0] +FI +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply the lower half-precision (16-bit) floating-point elements in "a" and "b", and add the intermediate result to the lower element in "c". Store the result in the lower element of "dst" using writemask "k" (the element is copied from "c" when mask bit 0 is not set), and copy the upper 7 packed elements from "c" to the upper elements of "dst". + [round_note] + +IF k[0] + dst.fp16[0] := (a.fp16[0] * b.fp16[0]) + c.fp16[0] +ELSE + dst.fp16[0] := c.fp16[0] +FI +dst[127:16] := c[127:16] +dst[MAX:128] := 0 + + + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply the lower half-precision (16-bit) floating-point elements in "a" and "b", and add the intermediate result to the lower element in "c". Store the result in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper 7 packed elements from "a" to the upper elements of "dst". + [round_note] + +IF k[0] + dst.fp16[0] := (a.fp16[0] * b.fp16[0]) + c.fp16[0] +ELSE + dst.fp16[0] := 0 +FI +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply packed half-precision (16-bit) floating-point elements in "a" and "b", add the negated intermediate result to packed elements in "c", and store the results in "dst". + +FOR j := 0 to 31 + dst.fp16[j] := -(a.fp16[j] * b.fp16[j]) + c.fp16[j] +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed half-precision (16-bit) floating-point elements in "a" and "b", add the negated intermediate result to packed elements in "c", and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + +FOR j := 0 to 31 + IF k[j] + dst.fp16[j] := -(a.fp16[j] * b.fp16[j]) + c.fp16[j] + ELSE + dst.fp16[j] := a.fp16[j] + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed half-precision (16-bit) floating-point elements in "a" and "b", add the negated intermediate result to packed elements in "c", and store the results in "dst" using writemask "k" (elements are copied from "c" when the corresponding mask bit is not set). + +FOR j := 0 to 31 + IF k[j] + dst.fp16[j] := -(a.fp16[j] * b.fp16[j]) + c.fp16[j] + ELSE + dst.fp16[j] := c.fp16[j] + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed half-precision (16-bit) floating-point elements in "a" and "b", add the negated intermediate result to packed elements in "c", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 31 + IF k[j] + dst.fp16[j] := -(a.fp16[j] * b.fp16[j]) + c.fp16[j] + ELSE + dst.fp16[j] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed half-precision (16-bit) floating-point elements in "a" and "b", add the negated intermediate result to packed elements in "c", and store the results in "dst". + [round_note] + +FOR j := 0 to 31 + dst.fp16[j] := -(a.fp16[j] * b.fp16[j]) + c.fp16[j] +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply packed half-precision (16-bit) floating-point elements in "a" and "b", add the negated intermediate result to packed elements in "c", and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 to 31 + IF k[j] + dst.fp16[j] := -(a.fp16[j] * b.fp16[j]) + c.fp16[j] + ELSE + dst.fp16[j] := a.fp16[j] + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply packed half-precision (16-bit) floating-point elements in "a" and "b", add the negated intermediate result to packed elements in "c", and store the results in "dst" using writemask "k" (elements are copied from "c" when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 to 31 + IF k[j] + dst.fp16[j] := -(a.fp16[j] * b.fp16[j]) + c.fp16[j] + ELSE + dst.fp16[j] := c.fp16[j] + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply packed half-precision (16-bit) floating-point elements in "a" and "b", add the negated intermediate result to packed elements in "c", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 to 31 + IF k[j] + dst.fp16[j] := -(a.fp16[j] * b.fp16[j]) + c.fp16[j] + ELSE + dst.fp16[j] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply the lower half-precision (16-bit) floating-point elements in "a" and "b", and add the negated intermediate result to the lower element in "c". Store the result in the lower element of "dst", and copy the upper 7 packed elements from "a" to the upper elements of "dst". + +dst.fp16[0] := -(a.fp16[0] * b.fp16[0]) + c.fp16[0] +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply the lower half-precision (16-bit) floating-point elements in "a" and "b", and add the negated intermediate result to the lower element in "c". Store the result in the lower element of "dst" using writemask "k" (the element is copied from "a" when mask bit 0 is not set), and copy the upper 7 packed elements from "a" to the upper elements of "dst". + +IF k[0] + dst.fp16[0] := -(a.fp16[0] * b.fp16[0]) + c.fp16[0] +ELSE + dst.fp16[0] := a.fp16[0] +FI +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply the lower half-precision (16-bit) floating-point elements in "a" and "b", and add the negated intermediate result to the lower element in "c". Store the result in the lower element of "dst" using writemask "k" (the element is copied from "c" when mask bit 0 is not set), and copy the upper 7 packed elements from "c" to the upper elements of "dst". + +IF k[0] + dst.fp16[0] := -(a.fp16[0] * b.fp16[0]) + c.fp16[0] +ELSE + dst.fp16[0] := c.fp16[0] +FI +dst[127:16] := c[127:16] +dst[MAX:128] := 0 + + + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply the lower half-precision (16-bit) floating-point elements in "a" and "b", and add the negated intermediate result to the lower element in "c". Store the result in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper 7 packed elements from "a" to the upper elements of "dst". + +IF k[0] + dst.fp16[0] := -(a.fp16[0] * b.fp16[0]) + c.fp16[0] +ELSE + dst.fp16[0] := 0 +FI +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply the lower half-precision (16-bit) floating-point elements in "a" and "b", and add the negated intermediate result to the lower element in "c". Store the result in the lower element of "dst", and copy the upper 7 packed elements from "a" to the upper elements of "dst". + [round_note] + +dst.fp16[0] := -(a.fp16[0] * b.fp16[0]) + c.fp16[0] +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply the lower half-precision (16-bit) floating-point elements in "a" and "b", and add the negated intermediate result to the lower element in "c". Store the result in the lower element of "dst" using writemask "k" (the element is copied from "a" when mask bit 0 is not set), and copy the upper 7 packed elements from "a" to the upper elements of "dst". + [round_note] + +IF k[0] + dst.fp16[0] := -(a.fp16[0] * b.fp16[0]) + c.fp16[0] +ELSE + dst.fp16[0] := a.fp16[0] +FI +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply the lower half-precision (16-bit) floating-point elements in "a" and "b", and add the negated intermediate result to the lower element in "c". Store the result in the lower element of "dst" using writemask "k" (the element is copied from "c" when mask bit 0 is not set), and copy the upper 7 packed elements from "c" to the upper elements of "dst". + [round_note] + +IF k[0] + dst.fp16[0] := -(a.fp16[0] * b.fp16[0]) + c.fp16[0] +ELSE + dst.fp16[0] := c.fp16[0] +FI +dst[127:16] := c[127:16] +dst[MAX:128] := 0 + + + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply the lower half-precision (16-bit) floating-point elements in "a" and "b", and add the negated intermediate result to the lower element in "c". Store the result in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper 7 packed elements from "a" to the upper elements of "dst". + [round_note] + +IF k[0] + dst.fp16[0] := -(a.fp16[0] * b.fp16[0]) + c.fp16[0] +ELSE + dst.fp16[0] := 0 +FI +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply packed half-precision (16-bit) floating-point elements in "a" and "b", subtract packed elements in "c" from the intermediate result, and store the results in "dst". + +FOR j := 0 to 31 + dst.fp16[j] := (a.fp16[j] * b.fp16[j]) - c.fp16[j] +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed half-precision (16-bit) floating-point elements in "a" and "b", subtract packed elements in "c" from the intermediate result, and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + +FOR j := 0 to 31 + IF k[j] + dst.fp16[j] := (a.fp16[j] * b.fp16[j]) - c.fp16[j] + ELSE + dst.fp16[j] := a.fp16[j] + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed half-precision (16-bit) floating-point elements in "a" and "b", subtract packed elements in "c" from the intermediate result, and store the results in "dst" using writemask "k" (elements are copied from "c" when the corresponding mask bit is not set). + +FOR j := 0 to 31 + IF k[j] + dst.fp16[j] := (a.fp16[j] * b.fp16[j]) - c.fp16[j] + ELSE + dst.fp16[j] := c.fp16[j] + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed half-precision (16-bit) floating-point elements in "a" and "b", subtract packed elements in "c" from the intermediate result, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 31 + IF k[j] + dst.fp16[j] := (a.fp16[j] * b.fp16[j]) - c.fp16[j] + ELSE + dst.fp16[j] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed half-precision (16-bit) floating-point elements in "a" and "b", subtract packed elements in "c" from the intermediate result, and store the results in "dst". + [round_note] + +FOR j := 0 to 31 + dst.fp16[j] := (a.fp16[j] * b.fp16[j]) - c.fp16[j] +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply packed half-precision (16-bit) floating-point elements in "a" and "b", subtract packed elements in "c" from the intermediate result, and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 to 31 + IF k[j] + dst.fp16[j] := (a.fp16[j] * b.fp16[j]) - c.fp16[j] + ELSE + dst.fp16[j] := a.fp16[j] + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply packed half-precision (16-bit) floating-point elements in "a" and "b", subtract packed elements in "c" from the intermediate result, and store the results in "dst" using writemask "k" (elements are copied from "c" when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 to 31 + IF k[j] + dst.fp16[j] := (a.fp16[j] * b.fp16[j]) - c.fp16[j] + ELSE + dst.fp16[j] := c.fp16[j] + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply packed half-precision (16-bit) floating-point elements in "a" and "b", subtract packed elements in "c" from the intermediate result, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 to 31 + IF k[j] + dst.fp16[j] := (a.fp16[j] * b.fp16[j]) - c.fp16[j] + ELSE + dst.fp16[j] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply the lower half-precision (16-bit) floating-point elements in "a" and "b", and subtract the lower element in "c" from the intermediate result. Store the result in the lower element of "dst", and copy the upper 7 packed elements from "a" to the upper elements of "dst". + +dst.fp16[0] := (a.fp16[0] * b.fp16[0]) - c.fp16[0] +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply the lower half-precision (16-bit) floating-point elements in "a" and "b", and subtract the lower element in "c" from the intermediate result. Store the result in the lower element of "dst" using writemask "k" (the element is copied from "a" when mask bit 0 is not set), and copy the upper 7 packed elements from "a" to the upper elements of "dst". + +IF k[0] + dst.fp16[0] := (a.fp16[0] * b.fp16[0]) - c.fp16[0] +ELSE + dst.fp16[0] := a.fp16[0] +FI +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply the lower half-precision (16-bit) floating-point elements in "a" and "b", and subtract the lower element in "c" from the intermediate result. Store the result in the lower element of "dst" using writemask "k" (the element is copied from "c" when mask bit 0 is not set), and copy the upper 7 packed elements from "c" to the upper elements of "dst". + +IF k[0] + dst.fp16[0] := (a.fp16[0] * b.fp16[0]) - c.fp16[0] +ELSE + dst.fp16[0] := c.fp16[0] +FI +dst[127:16] := c[127:16] +dst[MAX:128] := 0 + + + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply the lower half-precision (16-bit) floating-point elements in "a" and "b", and subtract the lower element in "c" from the intermediate result. Store the result in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper 7 packed elements from "a" to the upper elements of "dst". + +IF k[0] + dst.fp16[0] := (a.fp16[0] * b.fp16[0]) - c.fp16[0] +ELSE + dst.fp16[0] := 0 +FI +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply the lower half-precision (16-bit) floating-point elements in "a" and "b", and subtract the lower element in "c" from the intermediate result. Store the result in the lower element of "dst", and copy the upper 7 packed elements from "a" to the upper elements of "dst". + [round_note] + +dst.fp16[0] := (a.fp16[0] * b.fp16[0]) - c.fp16[0] +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply the lower half-precision (16-bit) floating-point elements in "a" and "b", and subtract the lower element in "c" from the intermediate result. Store the result in the lower element of "dst" using writemask "k" (the element is copied from "a" when mask bit 0 is not set), and copy the upper 7 packed elements from "a" to the upper elements of "dst". + [round_note] + +IF k[0] + dst.fp16[0] := (a.fp16[0] * b.fp16[0]) - c.fp16[0] +ELSE + dst.fp16[0] := a.fp16[0] +FI +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply the lower half-precision (16-bit) floating-point elements in "a" and "b", and subtract the lower element in "c" from the intermediate result. Store the result in the lower element of "dst" using writemask "k" (the element is copied from "c" when mask bit 0 is not set), and copy the upper 7 packed elements from "c" to the upper elements of "dst". + [round_note] + +IF k[0] + dst.fp16[0] := (a.fp16[0] * b.fp16[0]) - c.fp16[0] +ELSE + dst.fp16[0] := c.fp16[0] +FI +dst[127:16] := c[127:16] +dst[MAX:128] := 0 + + + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply the lower half-precision (16-bit) floating-point elements in "a" and "b", and subtract the lower element in "c" from the intermediate result. Store the result in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper 7 packed elements from "a" to the upper elements of "dst". + [round_note] + +IF k[0] + dst.fp16[0] := (a.fp16[0] * b.fp16[0]) - c.fp16[0] +ELSE + dst.fp16[0] := 0 +FI +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply packed half-precision (16-bit) floating-point elements in "a" and "b", subtract packed elements in "c" from the negated intermediate result, and store the results in "dst". + +FOR j := 0 to 31 + dst.fp16[j] := -(a.fp16[j] * b.fp16[j]) - c.fp16[j] +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed half-precision (16-bit) floating-point elements in "a" and "b", subtract packed elements in "c" from the negated intermediate result, and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + +FOR j := 0 to 31 + IF k[j] + dst.fp16[j] := -(a.fp16[j] * b.fp16[j]) - c.fp16[j] + ELSE + dst.fp16[j] := a.fp16[j] + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed half-precision (16-bit) floating-point elements in "a" and "b", subtract packed elements in "c" from the negated intermediate result, and store the results in "dst" using writemask "k" (elements are copied from "c" when the corresponding mask bit is not set). + +FOR j := 0 to 31 + IF k[j] + dst.fp16[j] := -(a.fp16[j] * b.fp16[j]) - c.fp16[j] + ELSE + dst.fp16[j] := c.fp16[j] + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed half-precision (16-bit) floating-point elements in "a" and "b", subtract packed elements in "c" from the negated intermediate result, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 31 + IF k[j] + dst.fp16[j] := -(a.fp16[j] * b.fp16[j]) - c.fp16[j] + ELSE + dst.fp16[j] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed half-precision (16-bit) floating-point elements in "a" and "b", subtract packed elements in "c" from the negated intermediate result, and store the results in "dst". + [round_note] + +FOR j := 0 to 31 + dst.fp16[j] := -(a.fp16[j] * b.fp16[j]) - c.fp16[j] +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply packed half-precision (16-bit) floating-point elements in "a" and "b", subtract packed elements in "c" from the negated intermediate result, and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 to 31 + IF k[j] + dst.fp16[j] := -(a.fp16[j] * b.fp16[j]) - c.fp16[j] + ELSE + dst.fp16[j] := a.fp16[j] + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply packed half-precision (16-bit) floating-point elements in "a" and "b", subtract packed elements in "c" from the negated intermediate result, and store the results in "dst" using writemask "k" (elements are copied from "c" when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 to 31 + IF k[j] + dst.fp16[j] := -(a.fp16[j] * b.fp16[j]) - c.fp16[j] + ELSE + dst.fp16[j] := c.fp16[j] + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply packed half-precision (16-bit) floating-point elements in "a" and "b", subtract packed elements in "c" from the negated intermediate result, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 to 31 + IF k[j] + dst.fp16[j] := -(a.fp16[j] * b.fp16[j]) - c.fp16[j] + ELSE + dst.fp16[j] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply the lower half-precision (16-bit) floating-point elements in "a" and "b", and subtract the lower element in "c" from the negated intermediate result. Store the result in the lower element of "dst", and copy the upper 7 packed elements from "a" to the upper elements of "dst". + +dst.fp16[0] := -(a.fp16[0] * b.fp16[0]) - c.fp16[0] +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply the lower half-precision (16-bit) floating-point elements in "a" and "b", and subtract the lower element in "c" from the negated intermediate result. Store the result in the lower element of "dst" using writemask "k" (the element is copied from "a" when mask bit 0 is not set), and copy the upper 7 packed elements from "a" to the upper elements of "dst". + +IF k[0] + dst.fp16[0] := -(a.fp16[0] * b.fp16[0]) - c.fp16[0] +ELSE + dst.fp16[0] := a.fp16[0] +FI +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply the lower half-precision (16-bit) floating-point elements in "a" and "b", and subtract the lower element in "c" from the negated intermediate result. Store the result in the lower element of "dst" using writemask "k" (the element is copied from "c" when mask bit 0 is not set), and copy the upper 7 packed elements from "c" to the upper elements of "dst". + +IF k[0] + dst.fp16[0] := -(a.fp16[0] * b.fp16[0]) - c.fp16[0] +ELSE + dst.fp16[0] := c.fp16[0] +FI +dst[127:16] := c[127:16] +dst[MAX:128] := 0 + + + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply the lower half-precision (16-bit) floating-point elements in "a" and "b", and subtract the lower element in "c" from the negated intermediate result. Store the result in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper 7 packed elements from "a" to the upper elements of "dst". + +IF k[0] + dst.fp16[0] := -(a.fp16[0] * b.fp16[0]) - c.fp16[0] +ELSE + dst.fp16[0] := 0 +FI +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply the lower half-precision (16-bit) floating-point elements in "a" and "b", and subtract the lower element in "c" from the negated intermediate result. Store the result in the lower element of "dst", and copy the upper 7 packed elements from "a" to the upper elements of "dst". + [round_note] + +dst.fp16[0] := -(a.fp16[0] * b.fp16[0]) - c.fp16[0] +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply the lower half-precision (16-bit) floating-point elements in "a" and "b", and subtract the lower element in "c" from the negated intermediate result. Store the result in the lower element of "dst" using writemask "k" (the element is copied from "a" when mask bit 0 is not set), and copy the upper 7 packed elements from "a" to the upper elements of "dst". + [round_note] + +IF k[0] + dst.fp16[0] := -(a.fp16[0] * b.fp16[0]) - c.fp16[0] +ELSE + dst.fp16[0] := a.fp16[0] +FI +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply the lower half-precision (16-bit) floating-point elements in "a" and "b", and subtract the lower element in "c" from the negated intermediate result. Store the result in the lower element of "dst" using writemask "k" (the element is copied from "c" when mask bit 0 is not set), and copy the upper 7 packed elements from "c" to the upper elements of "dst". + [round_note] + +IF k[0] + dst.fp16[0] := -(a.fp16[0] * b.fp16[0]) - c.fp16[0] +ELSE + dst.fp16[0] := c.fp16[0] +FI +dst[127:16] := c[127:16] +dst[MAX:128] := 0 + + + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply the lower half-precision (16-bit) floating-point elements in "a" and "b", and subtract the lower element in "c" from the negated intermediate result. Store the result in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper 7 packed elements from "a" to the upper elements of "dst". + [round_note] + +IF k[0] + dst.fp16[0] := -(a.fp16[0] * b.fp16[0]) - c.fp16[0] +ELSE + dst.fp16[0] := 0 +FI +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply packed half-precision (16-bit) floating-point elements in "a" and "b", alternatively add and subtract packed elements in "c" to/from the intermediate result, and store the results in "dst". + +FOR j := 0 to 31 + IF ((j & 1) == 0) + dst.fp16[j] := (a.fp16[j] * b.fp16[j]) - c.fp16[j] + ELSE + dst.fp16[j] := (a.fp16[j] * b.fp16[j]) + c.fp16[j] + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed half-precision (16-bit) floating-point elements in "a" and "b", alternatively add and subtract packed elements in "c" to/from the intermediate result, and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + +FOR j := 0 to 31 + IF k[j] + IF ((j & 1) == 0) + dst.fp16[j] := (a.fp16[j] * b.fp16[j]) - c.fp16[j] + ELSE + dst.fp16[j] := (a.fp16[j] * b.fp16[j]) + c.fp16[j] + FI + ELSE + dst.fp16[j] := a.fp16[j] + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed half-precision (16-bit) floating-point elements in "a" and "b", alternatively add and subtract packed elements in "c" to/from the intermediate result, and store the results in "dst" using writemask "k" (elements are copied from "c" when the corresponding mask bit is not set). + +FOR j := 0 to 31 + IF k[j] + IF ((j & 1) == 0) + dst.fp16[j] := (a.fp16[j] * b.fp16[j]) - c.fp16[j] + ELSE + dst.fp16[j] := (a.fp16[j] * b.fp16[j]) + c.fp16[j] + FI + ELSE + dst.fp16[j] := c.fp16[j] + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed half-precision (16-bit) floating-point elements in "a" and "b", alternatively add and subtract packed elements in "c" to/from the intermediate result, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 31 + IF k[j] + IF ((j & 1) == 0) + dst.fp16[j] := (a.fp16[j] * b.fp16[j]) - c.fp16[j] + ELSE + dst.fp16[j] := (a.fp16[j] * b.fp16[j]) + c.fp16[j] + FI + ELSE + dst.fp16[j] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed half-precision (16-bit) floating-point elements in "a" and "b", alternatively add and subtract packed elements in "c" to/from the intermediate result, and store the results in "dst". + [round_note] + +FOR j := 0 to 31 + IF ((j & 1) == 0) + dst.fp16[j] := (a.fp16[j] * b.fp16[j]) - c.fp16[j] + ELSE + dst.fp16[j] := (a.fp16[j] * b.fp16[j]) + c.fp16[j] + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply packed half-precision (16-bit) floating-point elements in "a" and "b", alternatively add and subtract packed elements in "c" to/from the intermediate result, and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 to 31 + IF k[j] + IF ((j & 1) == 0) + dst.fp16[j] := (a.fp16[j] * b.fp16[j]) - c.fp16[j] + ELSE + dst.fp16[j] := (a.fp16[j] * b.fp16[j]) + c.fp16[j] + FI + ELSE + dst.fp16[j] := a.fp16[j] + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply packed half-precision (16-bit) floating-point elements in "a" and "b", alternatively add and subtract packed elements in "c" to/from the intermediate result, and store the results in "dst" using writemask "k" (elements are copied from "c" when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 to 31 + IF k[j] + IF ((j & 1) == 0) + dst.fp16[j] := (a.fp16[j] * b.fp16[j]) - c.fp16[j] + ELSE + dst.fp16[j] := (a.fp16[j] * b.fp16[j]) + c.fp16[j] + FI + ELSE + dst.fp16[j] := c.fp16[j] + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply packed half-precision (16-bit) floating-point elements in "a" and "b", alternatively add and subtract packed elements in "c" to/from the intermediate result, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 to 31 + IF k[j] + IF ((j & 1) == 0) + dst.fp16[j] := (a.fp16[j] * b.fp16[j]) - c.fp16[j] + ELSE + dst.fp16[j] := (a.fp16[j] * b.fp16[j]) + c.fp16[j] + FI + ELSE + dst.fp16[j] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply packed half-precision (16-bit) floating-point elements in "a" and "b", alternatively subtract and add packed elements in "c" to/from the intermediate result, and store the results in "dst". + +FOR j := 0 to 31 + IF ((j & 1) == 0) + dst.fp16[j] := (a.fp16[j] * b.fp16[j]) + c.fp16[j] + ELSE + dst.fp16[j] := (a.fp16[j] * b.fp16[j]) - c.fp16[j] + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed half-precision (16-bit) floating-point elements in "a" and "b", alternatively subtract and add packed elements in "c" to/from the intermediate result, and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + +FOR j := 0 to 31 + IF k[j] + IF ((j & 1) == 0) + dst.fp16[j] := (a.fp16[j] * b.fp16[j]) + c.fp16[j] + ELSE + dst.fp16[j] := (a.fp16[j] * b.fp16[j]) - c.fp16[j] + FI + ELSE + dst.fp16[j] := a.fp16[j] + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed half-precision (16-bit) floating-point elements in "a" and "b", alternatively subtract and add packed elements in "c" to/from the intermediate result, and store the results in "dst" using writemask "k" (elements are copied from "c" when the corresponding mask bit is not set). + +FOR j := 0 to 31 + IF k[j] + IF ((j & 1) == 0) + dst.fp16[j] := (a.fp16[j] * b.fp16[j]) + c.fp16[j] + ELSE + dst.fp16[j] := (a.fp16[j] * b.fp16[j]) - c.fp16[j] + FI + ELSE + dst.fp16[j] := c.fp16[j] + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed half-precision (16-bit) floating-point elements in "a" and "b", alternatively subtract and add packed elements in "c" to/from the intermediate result, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 31 + IF k[j] + IF ((j & 1) == 0) + dst.fp16[j] := (a.fp16[j] * b.fp16[j]) + c.fp16[j] + ELSE + dst.fp16[j] := (a.fp16[j] * b.fp16[j]) - c.fp16[j] + FI + ELSE + dst.fp16[j] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed half-precision (16-bit) floating-point elements in "a" and "b", alternatively subtract and add packed elements in "c" to/from the intermediate result, and store the results in "dst". + [round_note] + +FOR j := 0 to 31 + IF ((j & 1) == 0) + dst.fp16[j] := (a.fp16[j] * b.fp16[j]) + c.fp16[j] + ELSE + dst.fp16[j] := (a.fp16[j] * b.fp16[j]) - c.fp16[j] + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply packed half-precision (16-bit) floating-point elements in "a" and "b", alternatively subtract and add packed elements in "c" to/from the intermediate result, and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 to 31 + IF k[j] + IF ((j & 1) == 0) + dst.fp16[j] := (a.fp16[j] * b.fp16[j]) + c.fp16[j] + ELSE + dst.fp16[j] := (a.fp16[j] * b.fp16[j]) - c.fp16[j] + FI + ELSE + dst.fp16[j] := a.fp16[j] + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply packed half-precision (16-bit) floating-point elements in "a" and "b", alternatively subtract and add packed elements in "c" to/from the intermediate result, and store the results in "dst" using writemask "k" (elements are copied from "c" when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 to 31 + IF k[j] + IF ((j & 1) == 0) + dst.fp16[j] := (a.fp16[j] * b.fp16[j]) + c.fp16[j] + ELSE + dst.fp16[j] := (a.fp16[j] * b.fp16[j]) - c.fp16[j] + FI + ELSE + dst.fp16[j] := c.fp16[j] + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply packed half-precision (16-bit) floating-point elements in "a" and "b", alternatively subtract and add packed elements in "c" to/from the intermediate result, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 to 31 + IF k[j] + IF ((j & 1) == 0) + dst.fp16[j] := (a.fp16[j] * b.fp16[j]) + c.fp16[j] + ELSE + dst.fp16[j] := (a.fp16[j] * b.fp16[j]) - c.fp16[j] + FI + ELSE + dst.fp16[j] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + Subtract packed half-precision (16-bit) floating-point elements in "b" from packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst". + +FOR j := 0 TO 31 + dst.fp16[j] := a.fp16[j] - b.fp16[j] +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + Subtract packed half-precision (16-bit) floating-point elements in "b" from packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst". + [round_note] + +FOR j := 0 TO 31 + dst.fp16[j] := a.fp16[j] - b.fp16[j] +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + Subtract packed half-precision (16-bit) floating-point elements in "b" from packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 TO 31 + IF k[j] + dst.fp16[j] := a.fp16[j] - b.fp16[j] + ELSE + dst.fp16[j] := src.fp16[j] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + + Subtract packed half-precision (16-bit) floating-point elements in "b" from packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 TO 31 + IF k[j] + dst.fp16[j] := a.fp16[j] - b.fp16[j] + ELSE + dst.fp16[j] := src.fp16[j] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + Subtract packed half-precision (16-bit) floating-point elements in "b" from packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 TO 31 + IF k[j] + dst.fp16[j] := a.fp16[j] - b.fp16[j] + ELSE + dst.fp16[j] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + Subtract packed half-precision (16-bit) floating-point elements in "b" from packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 TO 31 + IF k[j] + dst.fp16[j] := a.fp16[j] - b.fp16[j] + ELSE + dst.fp16[j] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + Subtract the lower half-precision (16-bit) floating-point element in "b" from the lower half-precision (16-bit) floating-point element in "a", store the result in the lower element of "dst", and copy the upper 7 packed elements from "a" to the upper elements of "dst". + +dst.fp16[0] := a.fp16[0] - b.fp16[0] +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + Subtract the lower half-precision (16-bit) floating-point element in "b" from the lower half-precision (16-bit) floating-point element in "a", store the result in the lower element of "dst", and copy the upper 7 packed elements from "a" to the upper elements of "dst". + [round_note] + +dst.fp16[0] := a.fp16[0] - b.fp16[0] +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + Subtract the lower half-precision (16-bit) floating-point element in "b" from the lower half-precision (16-bit) floating-point element in "a", store the result in the lower element of "dst" using writemask "k" (the element is copied from "src" when mask bit 0 is not set), and copy the upper 7 packed elements from "a" to the upper elements of "dst". + +IF k[0] + dst.fp16[0] := a.fp16[0] - b.fp16[0] +ELSE + dst.fp16[0] := src.fp16[0] +FI +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + + Subtract the lower half-precision (16-bit) floating-point element in "b" from the lower half-precision (16-bit) floating-point element in "a", store the result in the lower element of "dst" using writemask "k" (the element is copied from "src" when mask bit 0 is not set), and copy the upper 7 packed elements from "a" to the upper elements of "dst". + [round_note] + +IF k[0] + dst.fp16[0] := a.fp16[0] - b.fp16[0] +ELSE + dst.fp16[0] := src.fp16[0] +FI +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + Subtract the lower half-precision (16-bit) floating-point element in "b" from the lower half-precision (16-bit) floating-point element in "a", store the result in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper 7 packed elements from "a" to the upper elements of "dst". + +IF k[0] + dst.fp16[0] := a.fp16[0] - b.fp16[0] +ELSE + dst.fp16[0] := 0 +FI +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + Subtract the lower half-precision (16-bit) floating-point element in "b" from the lower half-precision (16-bit) floating-point element in "a", store the result in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper 7 packed elements from "a" to the upper elements of "dst". + [round_note] + +IF k[0] + dst.fp16[0] := a.fp16[0] - b.fp16[0] +ELSE + dst.fp16[0] := 0 +FI +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + Multiply packed half-precision (16-bit) floating-point elements in "a" and "b", and store the results in "dst". + +FOR i := 0 TO 31 + dst.fp16[i] := a.fp16[i] * b.fp16[i] +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply packed half-precision (16-bit) floating-point elements in "a" and "b", and store the results in "dst". + [round_note] + +FOR i := 0 TO 31 + dst.fp16[i] := a.fp16[i] * b.fp16[i] +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed half-precision (16-bit) floating-point elements in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR i := 0 TO 31 + IF k[i] + dst.fp16[i] := a.fp16[i] * b.fp16[i] + ELSE + dst.fp16[i] := src.fp16[i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply packed half-precision (16-bit) floating-point elements in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + [round_note] + +FOR i := 0 TO 31 + IF k[i] + dst.fp16[i] := a.fp16[i] * b.fp16[i] + ELSE + dst.fp16[i] := src.fp16[i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply packed half-precision (16-bit) floating-point elements in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR i := 0 TO 31 + IF k[i] + dst.fp16[i] := a.fp16[i] * b.fp16[i] + ELSE + dst.fp16[i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed half-precision (16-bit) floating-point elements in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + [round_note] + +FOR i := 0 TO 31 + IF k[i] + dst.fp16[i] := a.fp16[i] * b.fp16[i] + ELSE + dst.fp16[i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + Multiply the lower half-precision (16-bit) floating-point element in "a" and "b", store the result in the lower element of "dst", and copy the upper 7 packed elements from "a" to the upper elements of "dst". + +dst.fp16[0] := a.fp16[0] * b.fp16[0] +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply the lower half-precision (16-bit) floating-point element in "a" and "b", store the result in the lower element of "dst", and copy the upper 7 packed elements from "a" to the upper elements of "dst". + [round_note] + +dst.fp16[0] := a.fp16[0] * b.fp16[0] +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply the lower half-precision (16-bit) floating-point element in "a" and "b", store the result in the lower element of "dst" using writemask "k" (the element is copied from "src" when mask bit 0 is not set), and copy the upper 7 packed elements from "a" to the upper elements of "dst". + +IF k[0] + dst.fp16[0] := a.fp16[0] * b.fp16[0] +ELSE + dst.fp16[0] := src.fp16[0] +FI +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply the lower half-precision (16-bit) floating-point element in "a" and "b", store the result in the lower element of "dst" using writemask "k" (the element is copied from "src" when mask bit 0 is not set), and copy the upper 7 packed elements from "a" to the upper elements of "dst". + [round_note] + +IF k[0] + dst.fp16[0] := a.fp16[0] * b.fp16[0] +ELSE + dst.fp16[0] := src.fp16[0] +FI +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply the lower half-precision (16-bit) floating-point element in "a" and "b", store the result in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper 7 packed elements from "a" to the upper elements of "dst". + +IF k[0] + dst.fp16[0] := a.fp16[0] * b.fp16[0] +ELSE + dst.fp16[0] := 0 +FI +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply the lower half-precision (16-bit) floating-point element in "a" and "b", store the result in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper 7 packed elements from "a" to the upper elements of "dst". + [round_note] + +IF k[0] + dst.fp16[0] := a.fp16[0] * b.fp16[0] +ELSE + dst.fp16[0] := 0 +FI +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + Multiply packed complex numbers in "a" and "b", and store the results in "dst". Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]". + +FOR i := 0 to 15 + dst.fp16[2*i+0] := (a.fp16[2*i+0] * b.fp16[2*i+0]) - (a.fp16[2*i+1] * b.fp16[2*i+1]) + dst.fp16[2*i+1] := (a.fp16[2*i+1] * b.fp16[2*i+0]) + (a.fp16[2*i+0] * b.fp16[2*i+1]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + Multiply packed complex numbers in "a" and "b", and store the results in "dst". Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]". + +FOR i := 0 to 15 + dst.fp16[2*i+0] := (a.fp16[2*i+0] * b.fp16[2*i+0]) - (a.fp16[2*i+1] * b.fp16[2*i+1]) + dst.fp16[2*i+1] := (a.fp16[2*i+1] * b.fp16[2*i+0]) + (a.fp16[2*i+0] * b.fp16[2*i+1]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed complex numbers in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]". + +FOR i := 0 to 15 + IF k[i] + dst.fp16[2*i+0] := (a.fp16[2*i+0] * b.fp16[2*i+0]) - (a.fp16[2*i+1] * b.fp16[2*i+1]) + dst.fp16[2*i+1] := (a.fp16[2*i+1] * b.fp16[2*i+0]) + (a.fp16[2*i+0] * b.fp16[2*i+1]) + ELSE + dst.fp16[2*i+0] := src.fp16[2*i+0] + dst.fp16[2*i+1] := src.fp16[2*i+1] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed complex numbers in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]". + +FOR i := 0 to 15 + IF k[i] + dst.fp16[2*i+0] := (a.fp16[2*i+0] * b.fp16[2*i+0]) - (a.fp16[2*i+1] * b.fp16[2*i+1]) + dst.fp16[2*i+1] := (a.fp16[2*i+1] * b.fp16[2*i+0]) + (a.fp16[2*i+0] * b.fp16[2*i+1]) + ELSE + dst.fp16[2*i+0] := src.fp16[2*i+0] + dst.fp16[2*i+1] := src.fp16[2*i+1] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply packed complex numbers in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]". + +FOR i := 0 to 15 + IF k[i] + dst.fp16[2*i+0] := (a.fp16[2*i+0] * b.fp16[2*i+0]) - (a.fp16[2*i+1] * b.fp16[2*i+1]) + dst.fp16[2*i+1] := (a.fp16[2*i+1] * b.fp16[2*i+0]) + (a.fp16[2*i+0] * b.fp16[2*i+1]) + ELSE + dst.fp16[2*i+0] := 0 + dst.fp16[2*i+1] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply packed complex numbers in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]". + +FOR i := 0 to 15 + IF k[i] + dst.fp16[2*i+0] := (a.fp16[2*i+0] * b.fp16[2*i+0]) - (a.fp16[2*i+1] * b.fp16[2*i+1]) + dst.fp16[2*i+1] := (a.fp16[2*i+1] * b.fp16[2*i+0]) + (a.fp16[2*i+0] * b.fp16[2*i+1]) + ELSE + dst.fp16[2*i+0] := 0 + dst.fp16[2*i+1] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply packed complex numbers in "a" and "b", and store the results in "dst". Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]". + [round_note] + +FOR i := 0 to 15 + dst.fp16[2*i+0] := (a.fp16[2*i+0] * b.fp16[2*i+0]) - (a.fp16[2*i+1] * b.fp16[2*i+1]) + dst.fp16[2*i+1] := (a.fp16[2*i+1] * b.fp16[2*i+0]) + (a.fp16[2*i+0] * b.fp16[2*i+1]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply packed complex numbers in "a" and "b", and store the results in "dst". Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]". + [round_note] + +FOR i := 0 to 15 + dst.fp16[2*i+0] := (a.fp16[2*i+0] * b.fp16[2*i+0]) - (a.fp16[2*i+1] * b.fp16[2*i+1]) + dst.fp16[2*i+1] := (a.fp16[2*i+1] * b.fp16[2*i+0]) + (a.fp16[2*i+0] * b.fp16[2*i+1]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply packed complex numbers in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]". + [round_note] + +FOR i := 0 to 15 + IF k[i] + dst.fp16[2*i+0] := (a.fp16[2*i+0] * b.fp16[2*i+0]) - (a.fp16[2*i+1] * b.fp16[2*i+1]) + dst.fp16[2*i+1] := (a.fp16[2*i+1] * b.fp16[2*i+0]) + (a.fp16[2*i+0] * b.fp16[2*i+1]) + ELSE + dst.fp16[2*i+0] := src.fp16[2*i+0] + dst.fp16[2*i+1] := src.fp16[2*i+1] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply packed complex numbers in "a" and "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]". + [round_note] + +FOR i := 0 to 15 + IF k[i] + dst.fp16[2*i+0] := (a.fp16[2*i+0] * b.fp16[2*i+0]) - (a.fp16[2*i+1] * b.fp16[2*i+1]) + dst.fp16[2*i+1] := (a.fp16[2*i+1] * b.fp16[2*i+0]) + (a.fp16[2*i+0] * b.fp16[2*i+1]) + ELSE + dst.fp16[2*i+0] := src.fp16[2*i+0] + dst.fp16[2*i+1] := src.fp16[2*i+1] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed complex numbers in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]". + [round_note] + +FOR i := 0 to 15 + IF k[i] + dst.fp16[2*i+0] := (a.fp16[2*i+0] * b.fp16[2*i+0]) - (a.fp16[2*i+1] * b.fp16[2*i+1]) + dst.fp16[2*i+1] := (a.fp16[2*i+1] * b.fp16[2*i+0]) + (a.fp16[2*i+0] * b.fp16[2*i+1]) + ELSE + dst.fp16[2*i+0] := 0 + dst.fp16[2*i+1] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed complex numbers in "a" and "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]". + [round_note] + +FOR i := 0 to 15 + IF k[i] + dst.fp16[2*i+0] := (a.fp16[2*i+0] * b.fp16[2*i+0]) - (a.fp16[2*i+1] * b.fp16[2*i+1]) + dst.fp16[2*i+1] := (a.fp16[2*i+1] * b.fp16[2*i+0]) + (a.fp16[2*i+0] * b.fp16[2*i+1]) + ELSE + dst.fp16[2*i+0] := 0 + dst.fp16[2*i+1] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + Multiply the lower complex numbers in "a" and "b", and store the result in the lower elements of "dst", and copy the upper 6 packed elements from "a" to the upper elements of "dst". Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]". + +dst.fp16[0] := (a.fp16[0] * b.fp16[0]) - (a.fp16[1] * b.fp16[1]) +dst.fp16[1] := (a.fp16[1] * b.fp16[0]) + (a.fp16[0] * b.fp16[1]) +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + Multiply the lower complex numbers in "a" and "b", and store the result in the lower elements of "dst", and copy the upper 6 packed elements from "a" to the upper elements of "dst". Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]". + +dst.fp16[0] := (a.fp16[0] * b.fp16[0]) - (a.fp16[1] * b.fp16[1]) +dst.fp16[1] := (a.fp16[1] * b.fp16[0]) + (a.fp16[0] * b.fp16[1]) +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply the lower complex numbers in "a" and "b", and store the result in the lower elements of "dst" using writemask "k" (elements are copied from "src" when mask bit 0 is not set), and copy the upper 6 packed elements from "a" to the upper elements of "dst". Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]". + +IF k[0] + dst.fp16[0] := (a.fp16[0] * b.fp16[0]) - (a.fp16[1] * b.fp16[1]) + dst.fp16[1] := (a.fp16[1] * b.fp16[0]) + (a.fp16[0] * b.fp16[1]) +ELSE + dst.fp16[0] := src.fp16[0] + dst.fp16[1] := src.fp16[1] +FI +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply the lower complex numbers in "a" and "b", and store the result in the lower elements of "dst" using writemask "k" (elements are copied from "src" when mask bit 0 is not set), and copy the upper 6 packed elements from "a" to the upper elements of "dst". Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]". + +IF k[0] + dst.fp16[0] := (a.fp16[0] * b.fp16[0]) - (a.fp16[1] * b.fp16[1]) + dst.fp16[1] := (a.fp16[1] * b.fp16[0]) + (a.fp16[0] * b.fp16[1]) +ELSE + dst.fp16[0] := src.fp16[0] + dst.fp16[1] := src.fp16[1] +FI +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply the lower complex numbers in "a" and "b", and store the result in the lower elements of "dst" using zeromask "k" (elements are zeroed out when mask bit 0 is not set), and copy the upper 6 packed elements from "a" to the upper elements of "dst". Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]". + +IF k[0] + dst.fp16[0] := (a.fp16[0] * b.fp16[0]) - (a.fp16[1] * b.fp16[1]) + dst.fp16[1] := (a.fp16[1] * b.fp16[0]) + (a.fp16[0] * b.fp16[1]) +ELSE + dst.fp16[0] := 0 + dst.fp16[1] := 0 +FI +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply the lower complex numbers in "a" and "b", and store the result in the lower elements of "dst" using zeromask "k" (elements are zeroed out when mask bit 0 is not set), and copy the upper 6 packed elements from "a" to the upper elements of "dst". Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]". + +IF k[0] + dst.fp16[0] := (a.fp16[0] * b.fp16[0]) - (a.fp16[1] * b.fp16[1]) + dst.fp16[1] := (a.fp16[1] * b.fp16[0]) + (a.fp16[0] * b.fp16[1]) +ELSE + dst.fp16[0] := 0 + dst.fp16[1] := 0 +FI +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply the lower complex numbers in "a" and "b", and store the result in the lower elements of "dst", and copy the upper 6 packed elements from "a" to the upper elements of "dst". Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]". + [round_note] + +dst.fp16[0] := (a.fp16[0] * b.fp16[0]) - (a.fp16[1] * b.fp16[1]) +dst.fp16[1] := (a.fp16[1] * b.fp16[0]) + (a.fp16[0] * b.fp16[1]) +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply the lower complex numbers in "a" and "b", and store the result in the lower elements of "dst", and copy the upper 6 packed elements from "a" to the upper elements of "dst". Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]". + [round_note] + +dst.fp16[0] := (a.fp16[0] * b.fp16[0]) - (a.fp16[1] * b.fp16[1]) +dst.fp16[1] := (a.fp16[1] * b.fp16[0]) + (a.fp16[0] * b.fp16[1]) +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply the lower complex numbers in "a" and "b", and store the result in the lower elements of "dst" using writemask "k" (elements are copied from "src" when mask bit 0 is not set), and copy the upper 6 packed elements from "a" to the upper elements of "dst". Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]". + [round_note] + +IF k[0] + dst.fp16[0] := (a.fp16[0] * b.fp16[0]) - (a.fp16[1] * b.fp16[1]) + dst.fp16[1] := (a.fp16[1] * b.fp16[0]) + (a.fp16[0] * b.fp16[1]) +ELSE + dst.fp16[0] := src.fp16[0] + dst.fp16[1] := src.fp16[1] +FI +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply the lower complex numbers in "a" and "b", and store the result in the lower elements of "dst" using writemask "k" (elements are copied from "src" when mask bit 0 is not set), and copy the upper 6 packed elements from "a" to the upper elements of "dst". Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]". + [round_note] + +IF k[0] + dst.fp16[0] := (a.fp16[0] * b.fp16[0]) - (a.fp16[1] * b.fp16[1]) + dst.fp16[1] := (a.fp16[1] * b.fp16[0]) + (a.fp16[0] * b.fp16[1]) +ELSE + dst.fp16[0] := src.fp16[0] + dst.fp16[1] := src.fp16[1] +FI +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply the lower complex numbers in "a" and "b", and store the result in the lower elements of "dst" using zeromask "k" (elements are zeroed out when mask bit 0 is not set), and copy the upper 6 packed elements from "a" to the upper elements of "dst". Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]". + [round_note] + +IF k[0] + dst.fp16[0] := (a.fp16[0] * b.fp16[0]) - (a.fp16[1] * b.fp16[1]) + dst.fp16[1] := (a.fp16[1] * b.fp16[0]) + (a.fp16[0] * b.fp16[1]) +ELSE + dst.fp16[0] := 0 + dst.fp16[1] := 0 +FI +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply the lower complex numbers in "a" and "b", and store the result in the lower elements of "dst" using zeromask "k" (elements are zeroed out when mask bit 0 is not set), and copy the upper 6 packed elements from "a" to the upper elements of "dst". Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]". + [round_note] + +IF k[0] + dst.fp16[0] := (a.fp16[0] * b.fp16[0]) - (a.fp16[1] * b.fp16[1]) + dst.fp16[1] := (a.fp16[1] * b.fp16[0]) + (a.fp16[0] * b.fp16[1]) +ELSE + dst.fp16[0] := 0 + dst.fp16[1] := 0 +FI +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + Multiply packed complex numbers in "a" by the complex conjugates of packed complex numbers in "b", and store the results in "dst". Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]", or the complex conjugate "conjugate = vec.fp16[0] - i * vec.fp16[1]". + +FOR i := 0 to 15 + dst.fp16[2*i+0] := (a.fp16[2*i+0] * b.fp16[2*i+0]) + (a.fp16[2*i+1] * b.fp16[2*i+1]) + dst.fp16[2*i+1] := (a.fp16[2*i+1] * b.fp16[2*i+0]) - (a.fp16[2*i+0] * b.fp16[2*i+1]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + Multiply packed complex numbers in "a" by the complex conjugates of packed complex numbers in "b", and store the results in "dst". Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]", or the complex conjugate "conjugate = vec.fp16[0] - i * vec.fp16[1]". + +FOR i := 0 to 15 + dst.fp16[2*i+0] := (a.fp16[2*i+0] * b.fp16[2*i+0]) + (a.fp16[2*i+1] * b.fp16[2*i+1]) + dst.fp16[2*i+1] := (a.fp16[2*i+1] * b.fp16[2*i+0]) - (a.fp16[2*i+0] * b.fp16[2*i+1]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed complex numbers in "a" by the complex conjugates of packed complex numbers in "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]", or the complex conjugate "conjugate = vec.fp16[0] - i * vec.fp16[1]". + +FOR i := 0 to 15 + IF k[i] + dst.fp16[2*i+0] := (a.fp16[2*i+0] * b.fp16[2*i+0]) + (a.fp16[2*i+1] * b.fp16[2*i+1]) + dst.fp16[2*i+1] := (a.fp16[2*i+1] * b.fp16[2*i+0]) - (a.fp16[2*i+0] * b.fp16[2*i+1]) + ELSE + dst.fp16[2*i+0] := src.fp16[2*i+0] + dst.fp16[2*i+1] := src.fp16[2*i+1] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed complex numbers in "a" by the complex conjugates of packed complex numbers in "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]", or the complex conjugate "conjugate = vec.fp16[0] - i * vec.fp16[1]". + +FOR i := 0 to 15 + IF k[i] + dst.fp16[2*i+0] := (a.fp16[2*i+0] * b.fp16[2*i+0]) + (a.fp16[2*i+1] * b.fp16[2*i+1]) + dst.fp16[2*i+1] := (a.fp16[2*i+1] * b.fp16[2*i+0]) - (a.fp16[2*i+0] * b.fp16[2*i+1]) + ELSE + dst.fp16[2*i+0] := src.fp16[2*i+0] + dst.fp16[2*i+1] := src.fp16[2*i+1] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply packed complex numbers in "a" by the complex conjugates of packed complex numbers in "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]", or the complex conjugate "conjugate = vec.fp16[0] - i * vec.fp16[1]". + +FOR i := 0 to 15 + IF k[i] + dst.fp16[2*i+0] := (a.fp16[2*i+0] * b.fp16[2*i+0]) + (a.fp16[2*i+1] * b.fp16[2*i+1]) + dst.fp16[2*i+1] := (a.fp16[2*i+1] * b.fp16[2*i+0]) - (a.fp16[2*i+0] * b.fp16[2*i+1]) + ELSE + dst.fp16[2*i+0] := 0 + dst.fp16[2*i+1] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply packed complex numbers in "a" by the complex conjugates of packed complex numbers in "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]", or the complex conjugate "conjugate = vec.fp16[0] - i * vec.fp16[1]". + +FOR i := 0 to 15 + IF k[i] + dst.fp16[2*i+0] := (a.fp16[2*i+0] * b.fp16[2*i+0]) + (a.fp16[2*i+1] * b.fp16[2*i+1]) + dst.fp16[2*i+1] := (a.fp16[2*i+1] * b.fp16[2*i+0]) - (a.fp16[2*i+0] * b.fp16[2*i+1]) + ELSE + dst.fp16[2*i+0] := 0 + dst.fp16[2*i+1] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply packed complex numbers in "a" by the complex conjugates of packed complex numbers in "b", and store the results in "dst". Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]", or the complex conjugate "conjugate = vec.fp16[0] - i * vec.fp16[1]". + [round_note] + +FOR i := 0 to 15 + dst.fp16[2*i+0] := (a.fp16[2*i+0] * b.fp16[2*i+0]) + (a.fp16[2*i+1] * b.fp16[2*i+1]) + dst.fp16[2*i+1] := (a.fp16[2*i+1] * b.fp16[2*i+0]) - (a.fp16[2*i+0] * b.fp16[2*i+1]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply packed complex numbers in "a" by the complex conjugates of packed complex numbers in "b", and store the results in "dst". Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]", or the complex conjugate "conjugate = vec.fp16[0] - i * vec.fp16[1]". + [round_note] + +FOR i := 0 to 15 + dst.fp16[2*i+0] := (a.fp16[2*i+0] * b.fp16[2*i+0]) + (a.fp16[2*i+1] * b.fp16[2*i+1]) + dst.fp16[2*i+1] := (a.fp16[2*i+1] * b.fp16[2*i+0]) - (a.fp16[2*i+0] * b.fp16[2*i+1]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply packed complex numbers in "a" by the complex conjugates of packed complex numbers in "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]", or the complex conjugate "conjugate = vec.fp16[0] - i * vec.fp16[1]". + [round_note] + +FOR i := 0 to 15 + IF k[i] + dst.fp16[2*i+0] := (a.fp16[2*i+0] * b.fp16[2*i+0]) + (a.fp16[2*i+1] * b.fp16[2*i+1]) + dst.fp16[2*i+1] := (a.fp16[2*i+1] * b.fp16[2*i+0]) - (a.fp16[2*i+0] * b.fp16[2*i+1]) + ELSE + dst.fp16[2*i+0] := src.fp16[2*i+0] + dst.fp16[2*i+1] := src.fp16[2*i+1] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply packed complex numbers in "a" by the complex conjugates of packed complex numbers in "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]", or the complex conjugate "conjugate = vec.fp16[0] - i * vec.fp16[1]". + [round_note] + +FOR i := 0 to 15 + IF k[i] + dst.fp16[2*i+0] := (a.fp16[2*i+0] * b.fp16[2*i+0]) + (a.fp16[2*i+1] * b.fp16[2*i+1]) + dst.fp16[2*i+1] := (a.fp16[2*i+1] * b.fp16[2*i+0]) - (a.fp16[2*i+0] * b.fp16[2*i+1]) + ELSE + dst.fp16[2*i+0] := src.fp16[2*i+0] + dst.fp16[2*i+1] := src.fp16[2*i+1] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed complex numbers in "a" by the complex conjugates of packed complex numbers in "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]", or the complex conjugate "conjugate = vec.fp16[0] - i * vec.fp16[1]". + [round_note] + +FOR i := 0 to 15 + IF k[i] + dst.fp16[2*i+0] := (a.fp16[2*i+0] * b.fp16[2*i+0]) + (a.fp16[2*i+1] * b.fp16[2*i+1]) + dst.fp16[2*i+1] := (a.fp16[2*i+1] * b.fp16[2*i+0]) - (a.fp16[2*i+0] * b.fp16[2*i+1]) + ELSE + dst.fp16[2*i+0] := 0 + dst.fp16[2*i+1] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed complex numbers in "a" by the complex conjugates of packed complex numbers in "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]", or the complex conjugate "conjugate = vec.fp16[0] - i * vec.fp16[1]". + [round_note] + +FOR i := 0 to 15 + IF k[i] + dst.fp16[2*i+0] := (a.fp16[2*i+0] * b.fp16[2*i+0]) + (a.fp16[2*i+1] * b.fp16[2*i+1]) + dst.fp16[2*i+1] := (a.fp16[2*i+1] * b.fp16[2*i+0]) - (a.fp16[2*i+0] * b.fp16[2*i+1]) + ELSE + dst.fp16[2*i+0] := 0 + dst.fp16[2*i+1] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + Multiply the lower complex number in "a" by the complex conjugate of the lower complex number in "b", and store the result in the lower elements of "dst", and copy the upper 6 packed elements from "a" to the upper elements of "dst". Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]", or the complex conjugate "conjugate = vec.fp16[0] - i * vec.fp16[1]". + +dst.fp16[0] := (a.fp16[0] * b.fp16[0]) + (a.fp16[1] * b.fp16[1]) +dst.fp16[1] := (a.fp16[1] * b.fp16[0]) - (a.fp16[0] * b.fp16[1]) +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + Multiply the lower complex number in "a" by the complex conjugate of the lower complex number in "b", and store the result in the lower elements of "dst", and copy the upper 6 packed elements from "a" to the upper elements of "dst". Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]", or the complex conjugate "conjugate = vec.fp16[0] - i * vec.fp16[1]". + +dst.fp16[0] := (a.fp16[0] * b.fp16[0]) + (a.fp16[1] * b.fp16[1]) +dst.fp16[1] := (a.fp16[1] * b.fp16[0]) - (a.fp16[0] * b.fp16[1]) +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply the lower complex number in "a" by the complex conjugate of the lower complex number in "b", and store the result in the lower elements of "dst" using writemask "k" (elements are copied from "src" when mask bit 0 is not set), and copy the upper 6 packed elements from "a" to the upper elements of "dst". Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]", or the complex conjugate "conjugate = vec.fp16[0] - i * vec.fp16[1]". + +IF k[0] + dst.fp16[0] := (a.fp16[0] * b.fp16[0]) + (a.fp16[1] * b.fp16[1]) + dst.fp16[1] := (a.fp16[1] * b.fp16[0]) - (a.fp16[0] * b.fp16[1]) +ELSE + dst.fp16[0] := src.fp16[0] + dst.fp16[1] := src.fp16[1] +FI +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply the lower complex number in "a" by the complex conjugate of the lower complex number in "b", and store the result in the lower elements of "dst" using writemask "k" (elements are copied from "src" when mask bit 0 is not set), and copy the upper 6 packed elements from "a" to the upper elements of "dst". Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]", or the complex conjugate "conjugate = vec.fp16[0] - i * vec.fp16[1]". + +IF k[0] + dst.fp16[0] := (a.fp16[0] * b.fp16[0]) + (a.fp16[1] * b.fp16[1]) + dst.fp16[1] := (a.fp16[1] * b.fp16[0]) - (a.fp16[0] * b.fp16[1]) +ELSE + dst.fp16[0] := src.fp16[0] + dst.fp16[1] := src.fp16[1] +FI +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply the lower complex number in "a" by the complex conjugate of the lower complex number in "b", and store the result in the lower elements of "dst" using zeromask "k" (elements are zeroed out when mask bit 0 is not set), and copy the upper 6 packed elements from "a" to the upper elements of "dst". Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]", or the complex conjugate "conjugate = vec.fp16[0] - i * vec.fp16[1]". + +IF k[0] + dst.fp16[0] := (a.fp16[0] * b.fp16[0]) + (a.fp16[1] * b.fp16[1]) + dst.fp16[1] := (a.fp16[1] * b.fp16[0]) - (a.fp16[0] * b.fp16[1]) +ELSE + dst.fp16[0] := 0 + dst.fp16[1] := 0 +FI +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply the lower complex number in "a" by the complex conjugate of the lower complex number in "b", and store the result in the lower elements of "dst" using zeromask "k" (elements are zeroed out when mask bit 0 is not set), and copy the upper 6 packed elements from "a" to the upper elements of "dst". Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]", or the complex conjugate "conjugate = vec.fp16[0] - i * vec.fp16[1]". + +IF k[0] + dst.fp16[0] := (a.fp16[0] * b.fp16[0]) + (a.fp16[1] * b.fp16[1]) + dst.fp16[1] := (a.fp16[1] * b.fp16[0]) - (a.fp16[0] * b.fp16[1]) +ELSE + dst.fp16[0] := 0 + dst.fp16[1] := 0 +FI +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply the lower complex number in "a" by the complex conjugate of the lower complex number in "b", and store the result in the lower elements of "dst", and copy the upper 6 packed elements from "a" to the upper elements of "dst". Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]", or the complex conjugate "conjugate = vec.fp16[0] - i * vec.fp16[1]". + [round_note] + +dst.fp16[0] := (a.fp16[0] * b.fp16[0]) + (a.fp16[1] * b.fp16[1]) +dst.fp16[1] := (a.fp16[1] * b.fp16[0]) - (a.fp16[0] * b.fp16[1]) +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply the lower complex number in "a" by the complex conjugate of the lower complex number in "b", and store the result in the lower elements of "dst", and copy the upper 6 packed elements from "a" to the upper elements of "dst". Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]", or the complex conjugate "conjugate = vec.fp16[0] - i * vec.fp16[1]". + [round_note] + +dst.fp16[0] := (a.fp16[0] * b.fp16[0]) + (a.fp16[1] * b.fp16[1]) +dst.fp16[1] := (a.fp16[1] * b.fp16[0]) - (a.fp16[0] * b.fp16[1]) +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply the lower complex number in "a" by the complex conjugate of the lower complex number in "b", and store the result in the lower elements of "dst" using writemask "k" (elements are copied from "src" when mask bit 0 is not set), and copy the upper 6 packed elements from "a" to the upper elements of "dst". Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]", or the complex conjugate "conjugate = vec.fp16[0] - i * vec.fp16[1]". + [round_note] + +IF k[0] + dst.fp16[0] := (a.fp16[0] * b.fp16[0]) + (a.fp16[1] * b.fp16[1]) + dst.fp16[1] := (a.fp16[1] * b.fp16[0]) - (a.fp16[0] * b.fp16[1]) +ELSE + dst.fp16[0] := src.fp16[0] + dst.fp16[1] := src.fp16[1] +FI +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply the lower complex number in "a" by the complex conjugate of the lower complex number in "b", and store the result in the lower elements of "dst" using writemask "k" (elements are copied from "src" when mask bit 0 is not set), and copy the upper 6 packed elements from "a" to the upper elements of "dst". Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]", or the complex conjugate "conjugate = vec.fp16[0] - i * vec.fp16[1]". + [round_note] + +IF k[0] + dst.fp16[0] := (a.fp16[0] * b.fp16[0]) + (a.fp16[1] * b.fp16[1]) + dst.fp16[1] := (a.fp16[1] * b.fp16[0]) - (a.fp16[0] * b.fp16[1]) +ELSE + dst.fp16[0] := src.fp16[0] + dst.fp16[1] := src.fp16[1] +FI +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply the lower complex number in "a" by the complex conjugate of the lower complex number in "b", and store the result in the lower elements of "dst" using zeromask "k" (elements are zeroed out when mask bit 0 is not set), and copy the upper 6 packed elements from "a" to the upper elements of "dst". Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]", or the complex conjugate "conjugate = vec.fp16[0] - i * vec.fp16[1]". + [round_note] + +IF k[0] + dst.fp16[0] := (a.fp16[0] * b.fp16[0]) + (a.fp16[1] * b.fp16[1]) + dst.fp16[1] := (a.fp16[1] * b.fp16[0]) - (a.fp16[0] * b.fp16[1]) +ELSE + dst.fp16[0] := 0 + dst.fp16[1] := 0 +FI +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply the lower complex number in "a" by the complex conjugate of the lower complex number in "b", and store the result in the lower elements of "dst" using zeromask "k" (elements are zeroed out when mask bit 0 is not set), and copy the upper 6 packed elements from "a" to the upper elements of "dst". Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]", or the complex conjugate "conjugate = vec.fp16[0] - i * vec.fp16[1]". + [round_note] + +IF k[0] + dst.fp16[0] := (a.fp16[0] * b.fp16[0]) + (a.fp16[1] * b.fp16[1]) + dst.fp16[1] := (a.fp16[1] * b.fp16[0]) - (a.fp16[0] * b.fp16[1]) +ELSE + dst.fp16[0] := 0 + dst.fp16[1] := 0 +FI +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply packed complex numbers in "a" and "b", accumulate to the corresponding complex numbers in "c", and store the results in "dst". Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]". + +FOR i := 0 to 15 + dst.fp16[2*i+0] := (a.fp16[2*i+0] * b.fp16[2*i+0]) - (a.fp16[2*i+1] * b.fp16[2*i+1]) + c.fp16[2*i+0] + dst.fp16[2*i+1] := (a.fp16[2*i+1] * b.fp16[2*i+0]) + (a.fp16[2*i+0] * b.fp16[2*i+1]) + c.fp16[2*i+1] +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed complex numbers in "a" and "b", accumulate to the corresponding complex numbers in "src", and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]". + +FOR i := 0 to 15 + IF k[i] + dst.fp16[2*i+0] := (a.fp16[2*i+0] * b.fp16[2*i+0]) - (a.fp16[2*i+1] * b.fp16[2*i+1]) + c.fp16[2*i+0] + dst.fp16[2*i+1] := (a.fp16[2*i+1] * b.fp16[2*i+0]) + (a.fp16[2*i+0] * b.fp16[2*i+1]) + c.fp16[2*i+1] + ELSE + dst.fp16[2*i+0] := a.fp16[2*i+0] + dst.fp16[2*i+1] := a.fp16[2*i+1] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed complex numbers in "a" and "b", accumulate to the corresponding complex numbers in "src", and store the results in "dst" using writemask "k" (elements are copied from "c" when the corresponding mask bit is not set). Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]". + +FOR i := 0 to 15 + IF k[i] + dst.fp16[2*i+0] := (a.fp16[2*i+0] * b.fp16[2*i+0]) - (a.fp16[2*i+1] * b.fp16[2*i+1]) + c.fp16[2*i+0] + dst.fp16[2*i+1] := (a.fp16[2*i+1] * b.fp16[2*i+0]) + (a.fp16[2*i+0] * b.fp16[2*i+1]) + c.fp16[2*i+1] + ELSE + dst.fp16[2*i+0] := c.fp16[2*i+0] + dst.fp16[2*i+1] := c.fp16[2*i+1] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed complex numbers in "a" and "b", accumulate to the corresponding complex numbers in "c", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]". + +FOR i := 0 to 15 + IF k[i] + dst.fp16[2*i+0] := (a.fp16[2*i+0] * b.fp16[2*i+0]) - (a.fp16[2*i+1] * b.fp16[2*i+1]) + c.fp16[2*i+0] + dst.fp16[2*i+1] := (a.fp16[2*i+1] * b.fp16[2*i+0]) + (a.fp16[2*i+0] * b.fp16[2*i+1]) + c.fp16[2*i+1] + ELSE + dst.fp16[2*i+0] := 0 + dst.fp16[2*i+1] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed complex numbers in "a" and "b", accumulate to the corresponding complex numbers in "c", and store the results in "dst". Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]". + [round_note] + +FOR i := 0 to 15 + dst.fp16[2*i+0] := (a.fp16[2*i+0] * b.fp16[2*i+0]) - (a.fp16[2*i+1] * b.fp16[2*i+1]) + c.fp16[2*i+0] + dst.fp16[2*i+1] := (a.fp16[2*i+1] * b.fp16[2*i+0]) + (a.fp16[2*i+0] * b.fp16[2*i+1]) + c.fp16[2*i+1] +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply packed complex numbers in "a" and "b", accumulate to the corresponding complex numbers in "c", and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]". + [round_note] + +FOR i := 0 to 15 + IF k[i] + dst.fp16[2*i+0] := (a.fp16[2*i+0] * b.fp16[2*i+0]) - (a.fp16[2*i+1] * b.fp16[2*i+1]) + c.fp16[2*i+0] + dst.fp16[2*i+1] := (a.fp16[2*i+1] * b.fp16[2*i+0]) + (a.fp16[2*i+0] * b.fp16[2*i+1]) + c.fp16[2*i+1] + ELSE + dst.fp16[2*i+0] := a.fp16[2*i+0] + dst.fp16[2*i+1] := a.fp16[2*i+1] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply packed complex numbers in "a" and "b", accumulate to the corresponding complex numbers in "c", and store the results in "dst" using writemask "k" (elements are copied from "c" when the corresponding mask bit is not set). Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]". + [round_note] + +FOR i := 0 to 15 + IF k[i] + dst.fp16[2*i+0] := (a.fp16[2*i+0] * b.fp16[2*i+0]) - (a.fp16[2*i+1] * b.fp16[2*i+1]) + c.fp16[2*i+0] + dst.fp16[2*i+1] := (a.fp16[2*i+1] * b.fp16[2*i+0]) + (a.fp16[2*i+0] * b.fp16[2*i+1]) + c.fp16[2*i+1] + ELSE + dst.fp16[2*i+0] := c.fp16[2*i+0] + dst.fp16[2*i+1] := c.fp16[2*i+1] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply packed complex numbers in "a" and "b", accumulate to the corresponding complex numbers in "c", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]". + [round_note] + +FOR i := 0 to 15 + IF k[i] + dst.fp16[2*i+0] := (a.fp16[2*i+0] * b.fp16[2*i+0]) - (a.fp16[2*i+1] * b.fp16[2*i+1]) + c.fp16[2*i+0] + dst.fp16[2*i+1] := (a.fp16[2*i+1] * b.fp16[2*i+0]) + (a.fp16[2*i+0] * b.fp16[2*i+1]) + c.fp16[2*i+1] + ELSE + dst.fp16[2*i+0] := 0 + dst.fp16[2*i+1] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply the lower complex numbers in "a" and "b", accumulate to the lower complex number in "c", and store the result in the lower elements of "dst", and copy the upper 6 packed elements from "a" to the upper elements of "dst". Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]". + +dst.fp16[0] := (a.fp16[0] * b.fp16[0]) - (a.fp16[1] * b.fp16[1]) + c.fp16[0] +dst.fp16[1] := (a.fp16[1] * b.fp16[0]) + (a.fp16[0] * b.fp16[1]) + c.fp16[1] +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply the lower complex numbers in "a" and "b", accumulate to the lower complex number in "c", and store the result in the lower elements of "dst" using writemask "k" (elements are copied from "a" when mask bit 0 is not set), and copy the upper 6 packed elements from "a" to the upper elements of "dst". Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]". + +IF k[0] + dst.fp16[0] := (a.fp16[0] * b.fp16[0]) - (a.fp16[1] * b.fp16[1]) + c.fp16[0] + dst.fp16[1] := (a.fp16[1] * b.fp16[0]) + (a.fp16[0] * b.fp16[1]) + c.fp16[1] +ELSE + dst.fp16[0] := a.fp16[0] + dst.fp16[1] := a.fp16[1] +FI +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply the lower complex number in "a" and "b", accumulate to the lower complex number in "c", and store the result in the lower elements of "dst" using writemask "k" (elements are copied from "c" when mask bit 0 is not set), and copy the upper 6 packed elements from "c" to the upper elements of "dst". Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]". + +IF k[0] + dst.fp16[0] := (a.fp16[0] * b.fp16[0]) - (a.fp16[1] * b.fp16[1]) + c.fp16[0] + dst.fp16[1] := (a.fp16[1] * b.fp16[0]) + (a.fp16[0] * b.fp16[1]) + c.fp16[1] +ELSE + dst.fp16[0] := c.fp16[0] + dst.fp16[1] := c.fp16[1] +FI +dst[127:32] := c[127:32] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply the lower complex numbers in "a" and "b", accumulate to the lower complex number in "c", and store the result in the lower elements of "dst" using zeromask "k" (elements are zeroed out when mask bit 0 is not set), and copy the upper 6 packed elements from "a" to the upper elements of "dst". Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]". + +IF k[0] + dst.fp16[0] := (a.fp16[0] * b.fp16[0]) - (a.fp16[1] * b.fp16[1]) + c.fp16[0] + dst.fp16[1] := (a.fp16[1] * b.fp16[0]) + (a.fp16[0] * b.fp16[1]) + c.fp16[1] +ELSE + dst.fp16[0] := 0 + dst.fp16[1] := 0 +FI +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply the lower complex numbers in "a" and "b", accumulate to the lower complex number in "c", and store the result in the lower elements of "dst", and copy the upper 6 packed elements from "a" to the upper elements of "dst". Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]". + [round_note] + +dst.fp16[0] := (a.fp16[0] * b.fp16[0]) - (a.fp16[1] * b.fp16[1]) + c.fp16[0] +dst.fp16[1] := (a.fp16[1] * b.fp16[0]) + (a.fp16[0] * b.fp16[1]) + c.fp16[1] +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply the lower complex numbers in "a" and "b", accumulate to the lower complex number in "c", and store the result in the lower elements of "dst" using writemask "k" (elements are copied from "a" when mask bit 0 is not set), and copy the upper 6 packed elements from "a" to the upper elements of "dst". Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]". + [round_note] + +IF k[0] + dst.fp16[0] := (a.fp16[0] * b.fp16[0]) - (a.fp16[1] * b.fp16[1]) + c.fp16[0] + dst.fp16[1] := (a.fp16[1] * b.fp16[0]) + (a.fp16[0] * b.fp16[1]) + c.fp16[1] +ELSE + dst.fp16[0] := a.fp16[0] + dst.fp16[1] := a.fp16[1] +FI +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply the lower complex numbers in "a" and "b", accumulate to the lower complex number in "c", and store the result in the lower elements of "dst" using writemask "k" (elements are copied from "c" when mask bit 0 is not set), and copy the upper 6 packed elements from "c" to the upper elements of "dst". Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]". + [round_note] + +IF k[0] + dst.fp16[0] := (a.fp16[0] * b.fp16[0]) - (a.fp16[1] * b.fp16[1]) + c.fp16[0] + dst.fp16[1] := (a.fp16[1] * b.fp16[0]) + (a.fp16[0] * b.fp16[1]) + c.fp16[1] +ELSE + dst.fp16[0] := c.fp16[0] + dst.fp16[1] := c.fp16[1] +FI +dst[127:32] := c[127:32] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply the lower complex numbers in "a" and "b", accumulate to the lower complex number in "c", and store the result in the lower elements of "dst" using zeromask "k" (elements are zeroed out when mask bit 0 is not set), and copy the upper 6 packed elements from "a" to the upper elements of "dst". Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]". + [round_note] + +IF k[0] + dst.fp16[0] := (a.fp16[0] * b.fp16[0]) - (a.fp16[1] * b.fp16[1]) + c.fp16[0] + dst.fp16[1] := (a.fp16[1] * b.fp16[0]) + (a.fp16[0] * b.fp16[1]) + c.fp16[1] +ELSE + dst.fp16[0] := 0 + dst.fp16[1] := 0 +FI +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply packed complex numbers in "a" by the complex conjugates of packed complex numbers in "b", accumulate to the corresponding complex numbers in "c", and store the results in "dst". Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]", or the complex conjugate "conjugate = vec.fp16[0] - i * vec.fp16[1]". + +FOR i := 0 to 15 + dst.fp16[2*i+0] := (a.fp16[2*i+0] * b.fp16[2*i+0]) + (a.fp16[2*i+1] * b.fp16[2*i+1]) + c.fp16[2*i+0] + dst.fp16[2*i+1] := (a.fp16[2*i+1] * b.fp16[2*i+0]) - (a.fp16[2*i+0] * b.fp16[2*i+1]) + c.fp16[2*i+1] +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed complex numbers in "a" by the complex conjugates of packed complex numbers in "b", accumulate to the corresponding complex numbers in "c", and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]", or the complex conjugate "conjugate = vec.fp16[0] - i * vec.fp16[1]". + +FOR i := 0 to 15 + IF k[i] + dst.fp16[2*i+0] := (a.fp16[2*i+0] * b.fp16[2*i+0]) + (a.fp16[2*i+1] * b.fp16[2*i+1]) + c.fp16[2*i+0] + dst.fp16[2*i+1] := (a.fp16[2*i+1] * b.fp16[2*i+0]) - (a.fp16[2*i+0] * b.fp16[2*i+1]) + c.fp16[2*i+1] + ELSE + dst.fp16[2*i+0] := a.fp16[2*i+0] + dst.fp16[2*i+1] := a.fp16[2*i+1] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed complex numbers in "a" by the complex conjugates of packed complex numbers in "b", accumulate to the corresponding complex numbers in "c", and store the results in "dst" using writemask "k" (elements are copied from "c" when the corresponding mask bit is not set). Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]", or the complex conjugate "conjugate = vec.fp16[0] - i * vec.fp16[1]". + +FOR i := 0 to 15 + IF k[i] + dst.fp16[2*i+0] := (a.fp16[2*i+0] * b.fp16[2*i+0]) + (a.fp16[2*i+1] * b.fp16[2*i+1]) + c.fp16[2*i+0] + dst.fp16[2*i+1] := (a.fp16[2*i+1] * b.fp16[2*i+0]) - (a.fp16[2*i+0] * b.fp16[2*i+1]) + c.fp16[2*i+1] + ELSE + dst.fp16[2*i+0] := c.fp16[2*i+0] + dst.fp16[2*i+1] := c.fp16[2*i+1] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed complex numbers in "a" by the complex conjugates of packed complex numbers in "b", accumulate to the corresponding complex numbers in "c", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]", or the complex conjugate "conjugate = vec.fp16[0] - i * vec.fp16[1]". + +FOR i := 0 to 15 + IF k[i] + dst.fp16[2*i+0] := (a.fp16[2*i+0] * b.fp16[2*i+0]) + (a.fp16[2*i+1] * b.fp16[2*i+1]) + c.fp16[2*i+0] + dst.fp16[2*i+1] := (a.fp16[2*i+1] * b.fp16[2*i+0]) - (a.fp16[2*i+0] * b.fp16[2*i+1]) + c.fp16[2*i+1] + ELSE + dst.fp16[2*i+0] := 0 + dst.fp16[2*i+1] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply packed complex numbers in "a" by the complex conjugates of packed complex numbers in "b", accumulate to the corresponding complex numbers in "c", and store the results in "dst". Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]", or the complex conjugate "conjugate = vec.fp16[0] - i * vec.fp16[1]". + [round_note] + +FOR i := 0 to 15 + dst.fp16[2*i+0] := (a.fp16[2*i+0] * b.fp16[2*i+0]) + (a.fp16[2*i+1] * b.fp16[2*i+1]) + c.fp16[2*i+0] + dst.fp16[2*i+1] := (a.fp16[2*i+1] * b.fp16[2*i+0]) - (a.fp16[2*i+0] * b.fp16[2*i+1]) + c.fp16[2*i+1] +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply packed complex numbers in "a" by the complex conjugates of packed complex numbers in "b", accumulate to the corresponding complex numbers in "c", and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]", or the complex conjugate "conjugate = vec.fp16[0] - i * vec.fp16[1]". + [round_note] + +FOR i := 0 to 15 + IF k[i] + dst.fp16[2*i+0] := (a.fp16[2*i+0] * b.fp16[2*i+0]) + (a.fp16[2*i+1] * b.fp16[2*i+1]) + c.fp16[2*i+0] + dst.fp16[2*i+1] := (a.fp16[2*i+1] * b.fp16[2*i+0]) - (a.fp16[2*i+0] * b.fp16[2*i+1]) + c.fp16[2*i+1] + ELSE + dst.fp16[2*i+0] := a.fp16[2*i+0] + dst.fp16[2*i+1] := a.fp16[2*i+1] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply packed complex numbers in "a" by the complex conjugates of packed complex numbers in "b", accumulate to the corresponding complex numbers in "c", and store the results in "dst" using writemask "k" (elements are copied from "c" when the corresponding mask bit is not set). Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]", or the complex conjugate "conjugate = vec.fp16[0] - i * vec.fp16[1]". + [round_note] + +FOR i := 0 to 15 + IF k[i] + dst.fp16[2*i+0] := (a.fp16[2*i+0] * b.fp16[2*i+0]) + (a.fp16[2*i+1] * b.fp16[2*i+1]) + c.fp16[2*i+0] + dst.fp16[2*i+1] := (a.fp16[2*i+1] * b.fp16[2*i+0]) - (a.fp16[2*i+0] * b.fp16[2*i+1]) + c.fp16[2*i+1] + ELSE + dst.fp16[2*i+0] := c.fp16[2*i+0] + dst.fp16[2*i+1] := c.fp16[2*i+1] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply packed complex numbers in "a" by the complex conjugates of packed complex numbers in "b", accumulate to the corresponding complex numbers in "c", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]", or the complex conjugate "conjugate = vec.fp16[0] - i * vec.fp16[1]". + [round_note] + +FOR i := 0 to 15 + IF k[i] + dst.fp16[2*i+0] := (a.fp16[2*i+0] * b.fp16[2*i+0]) + (a.fp16[2*i+1] * b.fp16[2*i+1]) + c.fp16[2*i+0] + dst.fp16[2*i+1] := (a.fp16[2*i+1] * b.fp16[2*i+0]) - (a.fp16[2*i+0] * b.fp16[2*i+1]) + c.fp16[2*i+1] + ELSE + dst.fp16[2*i+0] := 0 + dst.fp16[2*i+1] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply the lower complex number in "a" by the complex conjugate of the lower complex number in "b", accumulate to the lower complex number in "c", and store the result in the lower elements of "dst", and copy the upper 6 packed elements from "a" to the upper elements of "dst". Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]", or the complex conjugate "conjugate = vec.fp16[0] - i * vec.fp16[1]". + +dst.fp16[0] := (a.fp16[0] * b.fp16[0]) + (a.fp16[1] * b.fp16[1]) + c.fp16[0] +dst.fp16[1] := (a.fp16[1] * b.fp16[0]) - (a.fp16[0] * b.fp16[1]) + c.fp16[1] +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply the lower complex number in "a" by the complex conjugate of the lower complex number in "b", accumulate to the lower complex number in "c", and store the result in the lower elements of "dst" using writemask "k" (elements are copied from "a" when mask bit 0 is not set), and copy the upper 6 packed elements from "a" to the upper elements of "dst". Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]", or the complex conjugate "conjugate = vec.fp16[0] - i * vec.fp16[1]". + +IF k[0] + dst.fp16[0] := (a.fp16[0] * b.fp16[0]) + (a.fp16[1] * b.fp16[1]) + c.fp16[0] + dst.fp16[1] := (a.fp16[1] * b.fp16[0]) - (a.fp16[0] * b.fp16[1]) + c.fp16[1] +ELSE + dst.fp16[0] := a.fp16[0] + dst.fp16[1] := a.fp16[1] +FI +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply the lower complex number in "a" by the complex conjugate of the lower complex number in "b", accumulate to the lower complex number in "c", and store the result in the lower elements of "dst" using writemask "k" (elements are copied from "c" when mask bit 0 is not set), and copy the upper 6 packed elements from "c" to the upper elements of "dst". Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]", or the complex conjugate "conjugate = vec.fp16[0] - i * vec.fp16[1]". + +IF k[0] + dst.fp16[0] := (a.fp16[0] * b.fp16[0]) + (a.fp16[1] * b.fp16[1]) + c.fp16[0] + dst.fp16[1] := (a.fp16[1] * b.fp16[0]) - (a.fp16[0] * b.fp16[1]) + c.fp16[1] +ELSE + dst.fp16[0] := c.fp16[0] + dst.fp16[1] := c.fp16[1] +FI +dst[127:32] := c[127:32] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply the lower complex number in "a" by the complex conjugate of the lower complex number in "b", accumulate to the lower complex number in "c", and store the result in the lower elements of "dst" using zeromask "k" (elements are zeroed out when mask bit 0 is not set), and copy the upper 6 packed elements from "a" to the upper elements of "dst". Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]", or the complex conjugate "conjugate = vec.fp16[0] - i * vec.fp16[1]". + +IF k[0] + dst.fp16[0] := (a.fp16[0] * b.fp16[0]) + (a.fp16[1] * b.fp16[1]) + c.fp16[0] + dst.fp16[1] := (a.fp16[1] * b.fp16[0]) - (a.fp16[0] * b.fp16[1]) + c.fp16[1] +ELSE + dst.fp16[0] := 0 + dst.fp16[1] := 0 +FI +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply the lower complex number in "a" by the complex conjugate of the lower complex number in "b", accumulate to the lower complex number in "c", and store the result in the lower elements of "dst", and copy the upper 6 packed elements from "a" to the upper elements of "dst". Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]", or the complex conjugate "conjugate = vec.fp16[0] - i * vec.fp16[1]". + [round_note] + +dst.fp16[0] := (a.fp16[0] * b.fp16[0]) + (a.fp16[1] * b.fp16[1]) + c.fp16[0] +dst.fp16[1] := (a.fp16[1] * b.fp16[0]) - (a.fp16[0] * b.fp16[1]) + c.fp16[1] +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply the lower complex number in "a" by the complex conjugate of the lower complex number in "b", accumulate to the lower complex number in "c", and store the result in the lower elements of "dst" using writemask "k" (elements are copied from "a" when mask bit 0 is not set), and copy the upper 6 packed elements from "a" to the upper elements of "dst". Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]", or the complex conjugate "conjugate = vec.fp16[0] - i * vec.fp16[1]". + [round_note] + +IF k[0] + dst.fp16[0] := (a.fp16[0] * b.fp16[0]) + (a.fp16[1] * b.fp16[1]) + c.fp16[0] + dst.fp16[1] := (a.fp16[1] * b.fp16[0]) - (a.fp16[0] * b.fp16[1]) + c.fp16[1] +ELSE + dst.fp16[0] := a.fp16[0] + dst.fp16[1] := a.fp16[1] +FI +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply the lower complex number in "a" by the complex conjugate of the lower complex number in "b", accumulate to the lower complex number in "c", and store the result in the lower elements of "dst" using writemask "k" (elements are copied from "c" when mask bit 0 is not set), and copy the upper 6 packed elements from "c" to the upper elements of "dst". Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]", or the complex conjugate "conjugate = vec.fp16[0] - i * vec.fp16[1]". + [round_note] + +IF k[0] + dst.fp16[0] := (a.fp16[0] * b.fp16[0]) + (a.fp16[1] * b.fp16[1]) + c.fp16[0] + dst.fp16[1] := (a.fp16[1] * b.fp16[0]) - (a.fp16[0] * b.fp16[1]) + c.fp16[1] +ELSE + dst.fp16[0] := c.fp16[0] + dst.fp16[1] := c.fp16[1] +FI +dst[127:32] := c[127:32] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply the lower complex number in "a" by the complex conjugate of the lower complex number in "b", accumulate to the lower complex number in "c", and store the result in the lower elements of "dst" using zeromask "k" (elements are zeroed out when mask bit 0 is not set), and copy the upper 6 packed elements from "a" to the upper elements of "dst". Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]", or the complex conjugate "conjugate = vec.fp16[0] - i * vec.fp16[1]". + [round_note] + +IF k[0] + dst.fp16[0] := (a.fp16[0] * b.fp16[0]) + (a.fp16[1] * b.fp16[1]) + c.fp16[0] + dst.fp16[1] := (a.fp16[1] * b.fp16[0]) - (a.fp16[0] * b.fp16[1]) + c.fp16[1] +ELSE + dst.fp16[0] := 0 + dst.fp16[1] := 0 +FI +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + Reduce the packed half-precision (16-bit) floating-point elements in "a" by addition. Returns the sum of all elements in "a". + +tmp := a +FOR i := 0 to 15 + tmp.fp16[i] := tmp.fp16[i] + a.fp16[i+16] +ENDFOR +FOR i := 0 to 7 + tmp.fp16[i] := tmp.fp16[i] + tmp.fp16[i+8] +ENDFOR +FOR i := 0 to 3 + tmp.fp16[i] := tmp.fp16[i] + tmp.fp16[i+4] +ENDFOR +FOR i := 0 to 1 + tmp.fp16[i] := tmp.fp16[i] + tmp.fp16[i+2] +ENDFOR +dst.fp16[0] := tmp.fp16[0] + tmp.fp16[1] + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + Reduce the packed half-precision (16-bit) floating-point elements in "a" by multiplication. Returns the product of all elements in "a". + +tmp := a +FOR i := 0 to 15 + tmp.fp16[i] := tmp.fp16[i] * a.fp16[i+16] +ENDFOR +FOR i := 0 to 7 + tmp.fp16[i] := tmp.fp16[i] * tmp.fp16[i+8] +ENDFOR +FOR i := 0 to 3 + tmp.fp16[i] := tmp.fp16[i] * tmp.fp16[i+4] +ENDFOR +FOR i := 0 to 1 + tmp.fp16[i] := tmp.fp16[i] * tmp.fp16[i+2] +ENDFOR +dst.fp16[0] := tmp.fp16[0] * tmp.fp16[1] + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + Reduce the packed half-precision (16-bit) floating-point elements in "a" by maximum. Returns the maximum of all elements in "a". [max_float_note] + +tmp := a +FOR i := 0 to 15 + tmp.fp16[i] := (a.fp16[i] > a.fp16[i+16] ? a.fp16[i] : a.fp16[i+16]) +ENDFOR +FOR i := 0 to 7 + tmp.fp16[i] := (tmp.fp16[i] > tmp.fp16[i+8] ? tmp.fp16[i] : tmp.fp16[i+8]) +ENDFOR +FOR i := 0 to 3 + tmp.fp16[i] := (tmp.fp16[i] > tmp.fp16[i+4] ? tmp.fp16[i] : tmp.fp16[i+4]) +ENDFOR +FOR i := 0 to 1 + tmp.fp16[i] := (tmp.fp16[i] > tmp.fp16[i+2] ? tmp.fp16[i] : tmp.fp16[i+2]) +ENDFOR +dst.fp16[0] := (tmp.fp16[0] > tmp.fp16[1] ? tmp.fp16[0] : tmp.fp16[1]) + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + Reduce the packed half-precision (16-bit) floating-point elements in "a" by minimum. Returns the minimum of all elements in "a". [min_float_note] + +tmp := a +FOR i := 0 to 15 + tmp.fp16[i] := (a.fp16[i] < a.fp16[i+16] ? tmp.fp16[i] : a.fp16[i+16]) +ENDFOR +FOR i := 0 to 7 + tmp.fp16[i] := (tmp.fp16[i] < tmp.fp16[i+8] ? tmp.fp16[i] : tmp.fp16[i+8]) +ENDFOR +FOR i := 0 to 3 + tmp.fp16[i] := (tmp.fp16[i] < tmp.fp16[i+4] ? tmp.fp16[i] : tmp.fp16[i+4]) +ENDFOR +FOR i := 0 to 1 + tmp.fp16[i] := (tmp.fp16[i] < tmp.fp16[i+2] ? tmp.fp16[i] : tmp.fp16[i+2]) +ENDFOR +dst.fp16[0] := (tmp.fp16[0] < tmp.fp16[1] ? tmp.fp16[0] : tmp.fp16[1]) + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + Finds the absolute value of each packed half-precision (16-bit) floating-point element in "v2", storing the results in "dst". + +FOR j := 0 to 31 + dst.fp16[j] := ABS(v2.fp16[j]) +ENDFOR +dst[MAX:512] := 0 + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + Compute the complex conjugates of complex numbers in "a", and store the results in "dst". Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]", or the complex conjugate "conjugate = vec.fp16[0] - i * vec.fp16[1]". + +FOR j := 0 to 15 + i := j*32 + dst[i+31:i] := a[i+31:i] XOR FP32(-0.0) +ENDFOR +dst[MAX:512] := 0 + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + Compute the complex conjugates of complex numbers in "a", and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]", or the complex conjugate "conjugate = vec.fp16[0] - i * vec.fp16[1]". + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := a[i+31:i] XOR FP32(-0.0) + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + Compute the complex conjugates of complex numbers in "a", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). Each complex number is composed of two adjacent half-precision (16-bit) floating-point elements, which defines the complex number "complex = vec.fp16[0] + i * vec.fp16[1]", or the complex conjugate "conjugate = vec.fp16[0] - i * vec.fp16[1]". + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := a[i+31:i] XOR FP32(-0.0) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + AVX512_FP16 +
immintrin.h
+ Arithmetic +
+ + + + + + Compare packed half-precision (16-bit) floating-point elements in "a" and "b" based on the comparison operand specified by "imm8", and store the results in mask vector "k". + CASE (imm8[4:0]) OF +0: OP := _CMP_EQ_OQ +1: OP := _CMP_LT_OS +2: OP := _CMP_LE_OS +3: OP := _CMP_UNORD_Q +4: OP := _CMP_NEQ_UQ +5: OP := _CMP_NLT_US +6: OP := _CMP_NLE_US +7: OP := _CMP_ORD_Q +8: OP := _CMP_EQ_UQ +9: OP := _CMP_NGE_US +10: OP := _CMP_NGT_US +11: OP := _CMP_FALSE_OQ +12: OP := _CMP_NEQ_OQ +13: OP := _CMP_GE_OS +14: OP := _CMP_GT_OS +15: OP := _CMP_TRUE_UQ +16: OP := _CMP_EQ_OS +17: OP := _CMP_LT_OQ +18: OP := _CMP_LE_OQ +19: OP := _CMP_UNORD_S +20: OP := _CMP_NEQ_US +21: OP := _CMP_NLT_UQ +22: OP := _CMP_NLE_UQ +23: OP := _CMP_ORD_S +24: OP := _CMP_EQ_US +25: OP := _CMP_NGE_UQ +26: OP := _CMP_NGT_UQ +27: OP := _CMP_FALSE_OS +28: OP := _CMP_NEQ_OS +29: OP := _CMP_GE_OQ +30: OP := _CMP_GT_OQ +31: OP := _CMP_TRUE_US +ESAC +FOR j := 0 to 31 + k[j] := (a.fp16[j] OP b.fp16[j]) ? 1 : 0 +ENDFOR +k[MAX:32] := 0 + + + AVX512_FP16 +
immintrin.h
+ Compare +
+ + + + + + + Compare packed half-precision (16-bit) floating-point elements in "a" and "b" based on the comparison operand specified by "imm8", and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + CASE (imm8[4:0]) OF +0: OP := _CMP_EQ_OQ +1: OP := _CMP_LT_OS +2: OP := _CMP_LE_OS +3: OP := _CMP_UNORD_Q +4: OP := _CMP_NEQ_UQ +5: OP := _CMP_NLT_US +6: OP := _CMP_NLE_US +7: OP := _CMP_ORD_Q +8: OP := _CMP_EQ_UQ +9: OP := _CMP_NGE_US +10: OP := _CMP_NGT_US +11: OP := _CMP_FALSE_OQ +12: OP := _CMP_NEQ_OQ +13: OP := _CMP_GE_OS +14: OP := _CMP_GT_OS +15: OP := _CMP_TRUE_UQ +16: OP := _CMP_EQ_OS +17: OP := _CMP_LT_OQ +18: OP := _CMP_LE_OQ +19: OP := _CMP_UNORD_S +20: OP := _CMP_NEQ_US +21: OP := _CMP_NLT_UQ +22: OP := _CMP_NLE_UQ +23: OP := _CMP_ORD_S +24: OP := _CMP_EQ_US +25: OP := _CMP_NGE_UQ +26: OP := _CMP_NGT_UQ +27: OP := _CMP_FALSE_OS +28: OP := _CMP_NEQ_OS +29: OP := _CMP_GE_OQ +30: OP := _CMP_GT_OQ +31: OP := _CMP_TRUE_US +ESAC +FOR j := 0 to 31 + IF k1[j] + k[j] := ( a.fp16[j] OP b.fp16[j] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:32] := 0 + + + AVX512_FP16 +
immintrin.h
+ Compare +
+ + + + + + + Compare packed half-precision (16-bit) floating-point elements in "a" and "b" based on the comparison operand specified by "imm8", and store the results in mask vector "k". [sae_note] + CASE (imm8[4:0]) OF +0: OP := _CMP_EQ_OQ +1: OP := _CMP_LT_OS +2: OP := _CMP_LE_OS +3: OP := _CMP_UNORD_Q +4: OP := _CMP_NEQ_UQ +5: OP := _CMP_NLT_US +6: OP := _CMP_NLE_US +7: OP := _CMP_ORD_Q +8: OP := _CMP_EQ_UQ +9: OP := _CMP_NGE_US +10: OP := _CMP_NGT_US +11: OP := _CMP_FALSE_OQ +12: OP := _CMP_NEQ_OQ +13: OP := _CMP_GE_OS +14: OP := _CMP_GT_OS +15: OP := _CMP_TRUE_UQ +16: OP := _CMP_EQ_OS +17: OP := _CMP_LT_OQ +18: OP := _CMP_LE_OQ +19: OP := _CMP_UNORD_S +20: OP := _CMP_NEQ_US +21: OP := _CMP_NLT_UQ +22: OP := _CMP_NLE_UQ +23: OP := _CMP_ORD_S +24: OP := _CMP_EQ_US +25: OP := _CMP_NGE_UQ +26: OP := _CMP_NGT_UQ +27: OP := _CMP_FALSE_OS +28: OP := _CMP_NEQ_OS +29: OP := _CMP_GE_OQ +30: OP := _CMP_GT_OQ +31: OP := _CMP_TRUE_US +ESAC +FOR j := 0 to 31 + k[j] := (a.fp16[j] OP b.fp16[j]) ? 1 : 0 +ENDFOR +k[MAX:32] := 0 + + + AVX512_FP16 +
immintrin.h
+ Compare +
+ + + + + + + + Compare packed half-precision (16-bit) floating-point elements in "a" and "b" based on the comparison operand specified by "imm8", and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). [sae_note] + CASE (imm8[3:0]) OF +0: OP := _CMP_EQ_OQ +1: OP := _CMP_LT_OS +2: OP := _CMP_LE_OS +3: OP := _CMP_UNORD_Q +4: OP := _CMP_NEQ_UQ +5: OP := _CMP_NLT_US +6: OP := _CMP_NLE_US +7: OP := _CMP_ORD_Q +8: OP := _CMP_EQ_UQ +9: OP := _CMP_NGE_US +10: OP := _CMP_NGT_US +11: OP := _CMP_FALSE_OQ +12: OP := _CMP_NEQ_OQ +13: OP := _CMP_GE_OS +14: OP := _CMP_GT_OS +15: OP := _CMP_TRUE_UQ +16: OP := _CMP_EQ_OS +17: OP := _CMP_LT_OQ +18: OP := _CMP_LE_OQ +19: OP := _CMP_UNORD_S +20: OP := _CMP_NEQ_US +21: OP := _CMP_NLT_UQ +22: OP := _CMP_NLE_UQ +23: OP := _CMP_ORD_S +24: OP := _CMP_EQ_US +25: OP := _CMP_NGE_UQ +26: OP := _CMP_NGT_UQ +27: OP := _CMP_FALSE_OS +28: OP := _CMP_NEQ_OS +29: OP := _CMP_GE_OQ +30: OP := _CMP_GT_OQ +31: OP := _CMP_TRUE_US +ESAC +FOR j := 0 to 31 + IF k1[j] + k[j] := ( a.fp16[j] OP b.fp16[j] ) ? 1 : 0 + ELSE + k[j] := 0 + FI +ENDFOR +k[MAX:32] := 0 + + + AVX512_FP16 +
immintrin.h
+ Compare +
+ + + + + + Compare packed half-precision (16-bit) floating-point elements in "a" and "b" based on the comparison operand specified by "imm8", and store the results in mask vector "k". + CASE (imm8[4:0]) OF +0: OP := _CMP_EQ_OQ +1: OP := _CMP_LT_OS +2: OP := _CMP_LE_OS +3: OP := _CMP_UNORD_Q +4: OP := _CMP_NEQ_UQ +5: OP := _CMP_NLT_US +6: OP := _CMP_NLE_US +7: OP := _CMP_ORD_Q +8: OP := _CMP_EQ_UQ +9: OP := _CMP_NGE_US +10: OP := _CMP_NGT_US +11: OP := _CMP_FALSE_OQ +12: OP := _CMP_NEQ_OQ +13: OP := _CMP_GE_OS +14: OP := _CMP_GT_OS +15: OP := _CMP_TRUE_UQ +16: OP := _CMP_EQ_OS +17: OP := _CMP_LT_OQ +18: OP := _CMP_LE_OQ +19: OP := _CMP_UNORD_S +20: OP := _CMP_NEQ_US +21: OP := _CMP_NLT_UQ +22: OP := _CMP_NLE_UQ +23: OP := _CMP_ORD_S +24: OP := _CMP_EQ_US +25: OP := _CMP_NGE_UQ +26: OP := _CMP_NGT_UQ +27: OP := _CMP_FALSE_OS +28: OP := _CMP_NEQ_OS +29: OP := _CMP_GE_OQ +30: OP := _CMP_GT_OQ +31: OP := _CMP_TRUE_US +ESAC +k[0] := (a.fp16[0] OP b.fp16[0]) ? 1 : 0 +k[MAX:1] := 0 + + + AVX512_FP16 +
immintrin.h
+ Compare +
+ + + + + + + Compare packed half-precision (16-bit) floating-point elements in "a" and "b" based on the comparison operand specified by "imm8", and store the results in mask vector "k". [sae_note] + CASE (imm8[4:0]) OF +0: OP := _CMP_EQ_OQ +1: OP := _CMP_LT_OS +2: OP := _CMP_LE_OS +3: OP := _CMP_UNORD_Q +4: OP := _CMP_NEQ_UQ +5: OP := _CMP_NLT_US +6: OP := _CMP_NLE_US +7: OP := _CMP_ORD_Q +8: OP := _CMP_EQ_UQ +9: OP := _CMP_NGE_US +10: OP := _CMP_NGT_US +11: OP := _CMP_FALSE_OQ +12: OP := _CMP_NEQ_OQ +13: OP := _CMP_GE_OS +14: OP := _CMP_GT_OS +15: OP := _CMP_TRUE_UQ +16: OP := _CMP_EQ_OS +17: OP := _CMP_LT_OQ +18: OP := _CMP_LE_OQ +19: OP := _CMP_UNORD_S +20: OP := _CMP_NEQ_US +21: OP := _CMP_NLT_UQ +22: OP := _CMP_NLE_UQ +23: OP := _CMP_ORD_S +24: OP := _CMP_EQ_US +25: OP := _CMP_NGE_UQ +26: OP := _CMP_NGT_UQ +27: OP := _CMP_FALSE_OS +28: OP := _CMP_NEQ_OS +29: OP := _CMP_GE_OQ +30: OP := _CMP_GT_OQ +31: OP := _CMP_TRUE_US +ESAC +k[0] := (a.fp16[0] OP b.fp16[0]) ? 1 : 0 +k[MAX:1] := 0 + + + AVX512_FP16 +
immintrin.h
+ Compare +
+ + + + + + + Compare packed half-precision (16-bit) floating-point elements in "a" and "b" based on the comparison operand specified by "imm8", and store the results in mask vector "k" using zeromask "k1" (the element is zeroed out when mask bit 0 is not set). + CASE (imm8[4:0]) OF +0: OP := _CMP_EQ_OQ +1: OP := _CMP_LT_OS +2: OP := _CMP_LE_OS +3: OP := _CMP_UNORD_Q +4: OP := _CMP_NEQ_UQ +5: OP := _CMP_NLT_US +6: OP := _CMP_NLE_US +7: OP := _CMP_ORD_Q +8: OP := _CMP_EQ_UQ +9: OP := _CMP_NGE_US +10: OP := _CMP_NGT_US +11: OP := _CMP_FALSE_OQ +12: OP := _CMP_NEQ_OQ +13: OP := _CMP_GE_OS +14: OP := _CMP_GT_OS +15: OP := _CMP_TRUE_UQ +16: OP := _CMP_EQ_OS +17: OP := _CMP_LT_OQ +18: OP := _CMP_LE_OQ +19: OP := _CMP_UNORD_S +20: OP := _CMP_NEQ_US +21: OP := _CMP_NLT_UQ +22: OP := _CMP_NLE_UQ +23: OP := _CMP_ORD_S +24: OP := _CMP_EQ_US +25: OP := _CMP_NGE_UQ +26: OP := _CMP_NGT_UQ +27: OP := _CMP_FALSE_OS +28: OP := _CMP_NEQ_OS +29: OP := _CMP_GE_OQ +30: OP := _CMP_GT_OQ +31: OP := _CMP_TRUE_US +ESAC +IF k1[0] + k[0] := ( a.fp16[0] OP b.fp16[0] ) ? 1 : 0 +ELSE + k[0] := 0 +FI +k[MAX:1] := 0 + + + AVX512_FP16 +
immintrin.h
+ Compare +
+ + + + + + + + Compare packed half-precision (16-bit) floating-point elements in "a" and "b" based on the comparison operand specified by "imm8", and store the results in mask vector "k" using zeromask "k1" (the element is zeroed out when mask bit 0 is not set). [sae_note] + CASE (imm8[4:0]) OF +0: OP := _CMP_EQ_OQ +1: OP := _CMP_LT_OS +2: OP := _CMP_LE_OS +3: OP := _CMP_UNORD_Q +4: OP := _CMP_NEQ_UQ +5: OP := _CMP_NLT_US +6: OP := _CMP_NLE_US +7: OP := _CMP_ORD_Q +8: OP := _CMP_EQ_UQ +9: OP := _CMP_NGE_US +10: OP := _CMP_NGT_US +11: OP := _CMP_FALSE_OQ +12: OP := _CMP_NEQ_OQ +13: OP := _CMP_GE_OS +14: OP := _CMP_GT_OS +15: OP := _CMP_TRUE_UQ +16: OP := _CMP_EQ_OS +17: OP := _CMP_LT_OQ +18: OP := _CMP_LE_OQ +19: OP := _CMP_UNORD_S +20: OP := _CMP_NEQ_US +21: OP := _CMP_NLT_UQ +22: OP := _CMP_NLE_UQ +23: OP := _CMP_ORD_S +24: OP := _CMP_EQ_US +25: OP := _CMP_NGE_UQ +26: OP := _CMP_NGT_UQ +27: OP := _CMP_FALSE_OS +28: OP := _CMP_NEQ_OS +29: OP := _CMP_GE_OQ +30: OP := _CMP_GT_OQ +31: OP := _CMP_TRUE_US +ESAC +IF k1[0] + k[0] := ( a.fp16[0] OP b.fp16[0] ) ? 1 : 0 +ELSE + k[0] := 0 +FI +k[MAX:1] := 0 + + + AVX512_FP16 +
immintrin.h
+ Compare +
+ + + + + + Compare the lower half-precision (16-bit) floating-point elements in "a" and "b" based on the comparison operand specified by "imm8", and return the boolean result (0 or 1). + CASE (imm8[4:0]) OF +0: OP := _CMP_EQ_OQ +1: OP := _CMP_LT_OS +2: OP := _CMP_LE_OS +3: OP := _CMP_UNORD_Q +4: OP := _CMP_NEQ_UQ +5: OP := _CMP_NLT_US +6: OP := _CMP_NLE_US +7: OP := _CMP_ORD_Q +8: OP := _CMP_EQ_UQ +9: OP := _CMP_NGE_US +10: OP := _CMP_NGT_US +11: OP := _CMP_FALSE_OQ +12: OP := _CMP_NEQ_OQ +13: OP := _CMP_GE_OS +14: OP := _CMP_GT_OS +15: OP := _CMP_TRUE_UQ +16: OP := _CMP_EQ_OS +17: OP := _CMP_LT_OQ +18: OP := _CMP_LE_OQ +19: OP := _CMP_UNORD_S +20: OP := _CMP_NEQ_US +21: OP := _CMP_NLT_UQ +22: OP := _CMP_NLE_UQ +23: OP := _CMP_ORD_S +24: OP := _CMP_EQ_US +25: OP := _CMP_NGE_UQ +26: OP := _CMP_NGT_UQ +27: OP := _CMP_FALSE_OS +28: OP := _CMP_NEQ_OS +29: OP := _CMP_GE_OQ +30: OP := _CMP_GT_OQ +31: OP := _CMP_TRUE_US +ESAC +RETURN ( a.fp16[0] OP b.fp16[0] ) ? 1 : 0 + + + AVX512_FP16 +
immintrin.h
+ Compare +
+ + + + + + + Compare the lower half-precision (16-bit) floating-point elements in "a" and "b" based on the comparison operand specified by "imm8", and return the boolean result (0 or 1). [sae_note] + CASE (imm8[4:0]) OF +0: OP := _CMP_EQ_OQ +1: OP := _CMP_LT_OS +2: OP := _CMP_LE_OS +3: OP := _CMP_UNORD_Q +4: OP := _CMP_NEQ_UQ +5: OP := _CMP_NLT_US +6: OP := _CMP_NLE_US +7: OP := _CMP_ORD_Q +8: OP := _CMP_EQ_UQ +9: OP := _CMP_NGE_US +10: OP := _CMP_NGT_US +11: OP := _CMP_FALSE_OQ +12: OP := _CMP_NEQ_OQ +13: OP := _CMP_GE_OS +14: OP := _CMP_GT_OS +15: OP := _CMP_TRUE_UQ +16: OP := _CMP_EQ_OS +17: OP := _CMP_LT_OQ +18: OP := _CMP_LE_OQ +19: OP := _CMP_UNORD_S +20: OP := _CMP_NEQ_US +21: OP := _CMP_NLT_UQ +22: OP := _CMP_NLE_UQ +23: OP := _CMP_ORD_S +24: OP := _CMP_EQ_US +25: OP := _CMP_NGE_UQ +26: OP := _CMP_NGT_UQ +27: OP := _CMP_FALSE_OS +28: OP := _CMP_NEQ_OS +29: OP := _CMP_GE_OQ +30: OP := _CMP_GT_OQ +31: OP := _CMP_TRUE_US +ESAC +RETURN ( a.fp16[0] OP b.fp16[0] ) ? 1 : 0 + + + AVX512_FP16 +
immintrin.h
+ Compare +
+ + + + + Compare the lower half-precision (16-bit) floating-point elements in "a" and "b" for equality, and return the boolean result (0 or 1). + RETURN ( a.fp16[0] !=NaN AND b.fp16[0] !=NaN AND a.fp16[0] == b.fp16[0] ) ? 1 : 0 + + + AVX512_FP16 +
immintrin.h
+ Compare +
+ + + + + Compare the lower half-precision (16-bit) floating-point elements in "a" and "b" for less-than, and return the boolean result (0 or 1). + RETURN ( a.fp16[0] !=NaN AND b.fp16[0] !=NaN AND a.fp16[0] < b.fp16[0] ) ? 1 : 0 + + + AVX512_FP16 +
immintrin.h
+ Compare +
+ + + + + Compare the lower half-precision (16-bit) floating-point elements in "a" and "b" for less-than-or-equal, and return the boolean result (0 or 1). + RETURN ( a.fp16[0] !=NaN AND b.fp16[0] !=NaN AND a.fp16[0] <= b.fp16[0] ) ? 1 : 0 + + + AVX512_FP16 +
immintrin.h
+ Compare +
+ + + + + Compare the lower half-precision (16-bit) floating-point elements in "a" and "b" for greater-than, and return the boolean result (0 or 1). + RETURN ( a.fp16[0] !=NaN AND b.fp16[0] !=NaN AND a.fp16[0] > b.fp16[0] ) ? 1 : 0 + + + AVX512_FP16 +
immintrin.h
+ Compare +
+ + + + + Compare the lower half-precision (16-bit) floating-point elements in "a" and "b" for greater-than-or-equal, and return the boolean result (0 or 1). + RETURN ( a.fp16[0] !=NaN AND b.fp16[0] !=NaN AND a.fp16[0] >= b.fp16[0] ) ? 1 : 0 + + + AVX512_FP16 +
immintrin.h
+ Compare +
+ + + + + Compare the lower half-precision (16-bit) floating-point elements in "a" and "b" for not-equal, and return the boolean result (0 or 1). + RETURN ( a.fp16[0] ==NaN OR b.fp16[0] ==NaN OR a.fp16[0] != b.fp16[0] ) ? 1 : 0 + + + AVX512_FP16 +
immintrin.h
+ Compare +
+ + + + + Compare the lower half-precision (16-bit) floating-point elements in "a" and "b" for equality, and return the boolean result (0 or 1). This instruction will not signal an exception for QNaNs. + RETURN ( a.fp16[0] !=NaN AND b.fp16[0] !=NaN AND a.fp16[0] == b.fp16[0] ) ? 1 : 0 + + + AVX512_FP16 +
immintrin.h
+ Compare +
+ + + + + Compare the lower half-precision (16-bit) floating-point elements in "a" and "b" for less-than, and return the boolean result (0 or 1). This instruction will not signal an exception for QNaNs. + RETURN ( a.fp16[0] !=NaN AND b.fp16[0] !=NaN AND a.fp16[0] < b.fp16[0] ) ? 1 : 0 + + + AVX512_FP16 +
immintrin.h
+ Compare +
+ + + + + Compare the lower half-precision (16-bit) floating-point elements in "a" and "b" for less-than-or-equal, and return the boolean result (0 or 1). This instruction will not signal an exception for QNaNs. + RETURN ( a.fp16[0] !=NaN AND b.fp16[0] !=NaN AND a.fp16[0] <= b.fp16[0] ) ? 1 : 0 + + + AVX512_FP16 +
immintrin.h
+ Compare +
+ + + + + Compare the lower half-precision (16-bit) floating-point elements in "a" and "b" for greater-than, and return the boolean result (0 or 1). This instruction will not signal an exception for QNaNs. + RETURN ( a.fp16[0] !=NaN AND b.fp16[0] !=NaN AND a.fp16[0] > b.fp16[0] ) ? 1 : 0 + + + AVX512_FP16 +
immintrin.h
+ Compare +
+ + + + + Compare the lower half-precision (16-bit) floating-point elements in "a" and "b" for greater-than-or-equal, and return the boolean result (0 or 1). This instruction will not signal an exception for QNaNs. + RETURN ( a.fp16[0] !=NaN AND b.fp16[0] !=NaN AND a.fp16[0] >= b.fp16[0] ) ? 1 : 0 + + + AVX512_FP16 +
immintrin.h
+ Compare +
+ + + + + Compare the lower half-precision (16-bit) floating-point elements in "a" and "b" for not-equal, and return the boolean result (0 or 1). This instruction will not signal an exception for QNaNs. + RETURN ( a.fp16[0] ==NaN OR b.fp16[0] ==NaN OR a.fp16[0] != b.fp16[0] ) ? 1 : 0 + + + AVX512_FP16 +
immintrin.h
+ Compare +
+ + + + Convert packed signed 16-bit integers in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst". + +FOR j := 0 TO 31 + dst.fp16[j] := Convert_Int16_To_FP16(a.word[j]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + Convert packed signed 16-bit integers in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst". + [round_note] + +FOR j := 0 TO 31 + dst.fp16[j] := Convert_Int16_To_FP16(a.word[j]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + + Convert packed signed 16-bit integers in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 TO 31 + IF k[j] + dst.fp16[j] := Convert_Int16_To_FP16(a.word[j]) + ELSE + dst.fp16[j] := src.fp16[j] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + + + Convert packed signed 16-bit integers in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 TO 31 + IF k[j] + dst.fp16[j] := Convert_Int16_To_FP16(a.word[j]) + ELSE + dst.fp16[j] := src.fp16[j] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + Convert packed signed 16-bit integers in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 TO 31 + IF k[j] + dst.fp16[j] := Convert_Int16_To_FP16(a.word[j]) + ELSE + dst.fp16[j] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + + Convert packed signed 16-bit integers in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 TO 31 + IF k[j] + dst.fp16[j] := Convert_Int16_To_FP16(a.word[j]) + ELSE + dst.fp16[j] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + Convert packed unsigned 16-bit integers in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst". + +FOR j := 0 TO 31 + dst.fp16[j] := Convert_Int16_To_FP16(a.word[j]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + Convert packed unsigned 16-bit integers in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst". + [round_note] + +FOR j := 0 TO 31 + dst.fp16[j] := Convert_Int16_To_FP16(a.word[j]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + + Convert packed unsigned 16-bit integers in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 TO 31 + IF k[j] + dst.fp16[j] := Convert_Int16_To_FP16(a.word[j]) + ELSE + dst.fp16[j] := src.fp16[j] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + + + Convert packed unsigned 16-bit integers in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 TO 31 + IF k[j] + dst.fp16[j] := Convert_Int16_To_FP16(a.word[j]) + ELSE + dst.fp16[j] := src.fp16[j] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + Convert packed unsigned 16-bit integers in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 TO 31 + IF k[j] + dst.fp16[j] := Convert_Int16_To_FP16(a.word[j]) + ELSE + dst.fp16[j] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + + Convert packed unsigned 16-bit integers in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 TO 31 + IF k[j] + dst.fp16[j] := Convert_Int16_To_FP16(a.word[j]) + ELSE + dst.fp16[j] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + Convert packed signed 32-bit integers in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst". + +FOR j := 0 TO 15 + dst.fp16[j] := Convert_Int32_To_FP16(a.dword[j]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + Convert packed signed 32-bit integers in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst". + [round_note] + +FOR j := 0 TO 15 + dst.fp16[j] := Convert_Int32_To_FP16(a.dword[j]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + + Convert packed signed 32-bit integers in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 TO 15 + IF k[j] + dst.fp16[j] := Convert_Int32_To_FP16(a.dword[j]) + ELSE + dst.fp16[j] := src.fp16[j] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + + + Convert packed signed 32-bit integers in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 TO 15 + IF k[j] + dst.fp16[j] := Convert_Int32_To_FP16(a.dword[j]) + ELSE + dst.fp16[j] := src.fp16[j] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + Convert packed signed 32-bit integers in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 TO 15 + IF k[j] + dst.fp16[j] := Convert_Int32_To_FP16(a.dword[j]) + ELSE + dst.fp16[j] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + + Convert packed signed 32-bit integers in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 TO 15 + IF k[j] + dst.fp16[j] := Convert_Int32_To_FP16(a.dword[j]) + ELSE + dst.fp16[j] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + Convert packed unsigned 32-bit integers in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst". + +FOR j := 0 TO 15 + dst.fp16[j] := Convert_Int32_To_FP16(a.dword[j]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + Convert packed unsigned 32-bit integers in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst". + [round_note] + +FOR j := 0 TO 15 + dst.fp16[j] := Convert_Int32_To_FP16(a.dword[j]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + + Convert packed unsigned 32-bit integers in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 TO 15 + IF k[j] + dst.fp16[j] := Convert_Int32_To_FP16(a.dword[j]) + ELSE + dst.fp16[j] := src.fp16[j] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + + + Convert packed unsigned 32-bit integers in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 TO 15 + IF k[j] + dst.fp16[j] := Convert_Int32_To_FP16(a.dword[j]) + ELSE + dst.fp16[j] := src.fp16[j] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + Convert packed unsigned 32-bit integers in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 TO 15 + IF k[j] + dst.fp16[j] := Convert_Int32_To_FP16(a.dword[j]) + ELSE + dst.fp16[j] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + + Convert packed unsigned 32-bit integers in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 TO 15 + IF k[j] + dst.fp16[j] := Convert_Int32_To_FP16(a.dword[j]) + ELSE + dst.fp16[j] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + Convert packed signed 64-bit integers in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst". + +FOR j := 0 TO 7 + dst.fp16[j] := Convert_Int64_To_FP16(a.qword[j]) +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + Convert packed signed 64-bit integers in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst". + [round_note] + +FOR j := 0 TO 7 + dst.fp16[j] := Convert_Int64_To_FP16(a.qword[j]) +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + + Convert packed signed 64-bit integers in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 TO 7 + IF k[j] + dst.fp16[j] := Convert_Int64_To_FP16(a.qword[j]) + ELSE + dst.fp16[j] := src.fp16[j] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + + + Convert packed signed 64-bit integers in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 TO 7 + IF k[j] + dst.fp16[j] := Convert_Int64_To_FP16(a.qword[j]) + ELSE + dst.fp16[j] := src.fp16[j] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + Convert packed signed 64-bit integers in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 TO 7 + IF k[j] + dst.fp16[j] := Convert_Int64_To_FP16(a.qword[j]) + ELSE + dst.fp16[j] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + + Convert packed signed 64-bit integers in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 TO 7 + IF k[j] + dst.fp16[j] := Convert_Int64_To_FP16(a.qword[j]) + ELSE + dst.fp16[j] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + Convert packed unsigned 64-bit integers in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst". + +FOR j := 0 TO 7 + dst.fp16[j] := Convert_Int64_To_FP16(a.qword[j]) +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + Convert packed unsigned 64-bit integers in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst". + [round_note] + +FOR j := 0 TO 7 + dst.fp16[j] := Convert_Int64_To_FP16(a.qword[j]) +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + + Convert packed unsigned 64-bit integers in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 TO 7 + IF k[j] + dst.fp16[j] := Convert_Int64_To_FP16(a.qword[j]) + ELSE + dst.fp16[j] := src.fp16[j] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + + + Convert packed unsigned 64-bit integers in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 TO 7 + IF k[j] + dst.fp16[j] := Convert_Int64_To_FP16(a.qword[j]) + ELSE + dst.fp16[j] := src.fp16[j] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + Convert packed unsigned 64-bit integers in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 TO 7 + IF k[j] + dst.fp16[j] := Convert_Int64_To_FP16(a.qword[j]) + ELSE + dst.fp16[j] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + + Convert packed unsigned 64-bit integers in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 TO 7 + IF k[j] + dst.fp16[j] := Convert_Int64_To_FP16(a.qword[j]) + ELSE + dst.fp16[j] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst". + +FOR j := 0 TO 7 + dst.fp16[j] := Convert_FP64_To_FP16(a.fp64[j]) +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst". + [round_note] + +FOR j := 0 TO 7 + dst.fp16[j] := Convert_FP64_To_FP16(a.fp64[j]) +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 TO 7 + IF k[j] + dst.fp16[j] := Convert_FP64_To_FP16(a.fp64[j]) + ELSE + dst.fp16[j] := src.fp16[j] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 TO 7 + IF k[j] + dst.fp16[j] := Convert_FP64_To_FP16(a.fp64[j]) + ELSE + dst.fp16[j] := src.fp16[j] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 TO 7 + IF k[j] + dst.fp16[j] := Convert_FP64_To_FP16(a.fp64[j]) + ELSE + dst.fp16[j] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 TO 7 + IF k[j] + dst.fp16[j] := Convert_FP64_To_FP16(a.fp64[j]) + ELSE + dst.fp16[j] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + Convert the lower double-precision (64-bit) floating-point element in "b" to a half-precision (16-bit) floating-point elements, store the result in the lower element of "dst", and copy the upper 7 packed elements from "a" to the upper element of "dst". + +dst.fp16[0] := Convert_FP64_To_FP16(b.fp64[0]) +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + + Convert the lower double-precision (64-bit) floating-point element in "b" to a half-precision (16-bit) floating-point elements, store the result in the lower element of "dst", and copy the upper 7 packed elements from "a" to the upper element of "dst". + [round_note] + +dst.fp16[0] := Convert_FP64_To_FP16(b.fp64[0]) +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + + + Convert the lower double-precision (64-bit) floating-point element in "b" to a half-precision (16-bit) floating-point elements, store the result in the lower element of "dst" using writemask "k" (the element is copied from "src" when mask bit 0 is not set), and copy the upper 7 packed elements from "a" to the upper element of "dst". + +IF k[0] + dst.fp16[0] := Convert_FP64_To_FP16(b.fp64[0]) +ELSE + dst.fp16[0] := src.fp16[0] +FI +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + + + + Convert the lower double-precision (64-bit) floating-point element in "b" to a half-precision (16-bit) floating-point elements, store the result in the lower element of "dst" using writemask "k" (the element is copied from "src" when mask bit 0 is not set), and copy the upper 7 packed elements from "a" to the upper element of "dst". + [round_note] + +IF k[0] + dst.fp16[0] := Convert_FP64_To_FP16(b.fp64[0]) +ELSE + dst.fp16[0] := src.fp16[0] +FI +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + + Convert the lower double-precision (64-bit) floating-point element in "b" to a half-precision (16-bit) floating-point elements, store the result in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper 7 packed elements from "a" to the upper element of "dst". + +IF k[0] + dst.fp16[0] := Convert_FP64_To_FP16(b.fp64[0]) +ELSE + dst.fp16[0] := 0 +FI +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + + + Convert the lower double-precision (64-bit) floating-point element in "b" to a half-precision (16-bit) floating-point elements, store the result in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper 7 packed elements from "a" to the upper element of "dst". + [round_note] + +IF k[0] + dst.fp16[0] := Convert_FP64_To_FP16(b.fp64[0]) +ELSE + dst.fp16[0] := 0 +FI +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst". + +FOR j := 0 to 15 + dst.fp16[j] := Convert_FP32_To_FP16(a.fp32[j]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst". + [round_note] + +FOR j := 0 to 15 + dst.fp16[j] := Convert_FP32_To_FP16(a.fp32[j]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + IF k[j] + dst.fp16[j] := Convert_FP32_To_FP16(a.fp32[j]) + ELSE + dst.fp16[j] := src.fp16[j] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 to 15 + IF k[j] + dst.fp16[j] := Convert_FP32_To_FP16(a.fp32[j]) + ELSE + dst.fp16[j] := src.fp16[j] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + IF k[j] + dst.fp16[j] := Convert_FP32_To_FP16(a.fp32[j]) + ELSE + dst.fp16[j] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 to 15 + IF k[j] + dst.fp16[j] := Convert_FP32_To_FP16(a.fp32[j]) + ELSE + dst.fp16[j] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + Convert the lower single-precision (32-bit) floating-point element in "b" to a half-precision (16-bit) floating-point elements, store the result in the lower element of "dst", and copy the upper 7 packed elements from "a" to the upper elements of "dst". + +dst.fp16[0] := Convert_FP32_To_FP16(b.fp32[0]) +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + + Convert the lower single-precision (32-bit) floating-point element in "b" to a half-precision (16-bit) floating-point elements, store the result in the lower element of "dst", and copy the upper 7 packed elements from "a" to the upper elements of "dst". + [round_note] + +dst.fp16[0] := Convert_FP32_To_FP16(b.fp32[0]) +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + + + Convert the lower single-precision (32-bit) floating-point element in "b" to a half-precision (16-bit) floating-point elements, store the result in the lower element of "dst" using writemask "k" (the element is copied from "src" when mask bit 0 is not set), and copy the upper 7 packed elements from "a" to the upper elements of "dst". + +IF k[0] + dst.fp16[0] := Convert_FP32_To_FP16(b.fp32[0]) +ELSE + dst.fp16[0] := src.fp16[0] +FI +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + + + + Convert the lower single-precision (32-bit) floating-point element in "b" to a half-precision (16-bit) floating-point elements, store the result in the lower element of "dst" using writemask "k" (the element is copied from "src" when mask bit 0 is not set), and copy the upper 7 packed elements from "a" to the upper elements of "dst". + [round_note] + +IF k[0] + dst.fp16[0] := Convert_FP32_To_FP16(b.fp32[0]) +ELSE + dst.fp16[0] := src.fp16[0] +FI +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + + Convert the lower single-precision (32-bit) floating-point element in "b" to a half-precision (16-bit) floating-point elements, store the result in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper 7 packed elements from "a" to the upper elements of "dst". + +IF k[0] + dst.fp16[0] := Convert_FP32_To_FP16(b.fp32[0]) +ELSE + dst.fp16[0] := 0 +FI +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + + + Convert the lower single-precision (32-bit) floating-point element in "b" to a half-precision (16-bit) floating-point elements, store the result in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper 7 packed elements from "a" to the upper elements of "dst". + [round_note] + +IF k[0] + dst.fp16[0] := Convert_FP32_To_FP16(b.fp32[0]) +ELSE + dst.fp16[0] := 0 +FI +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed 32-bit integers, and store the results in "dst". + +FOR j := 0 TO 15 + dst.dword[j] := Convert_FP16_To_Int32(a.fp16[j]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed 32-bit integers, and store the results in "dst". + [round_note] + +FOR j := 0 TO 15 + dst.dword[j] := Convert_FP16_To_Int32(a.fp16[j]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed 32-bit integers, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 TO 15 + IF k[j] + dst.dword[j] := Convert_FP16_To_Int32(a.fp16[j]) + ELSE + dst.dword[j] := src.dword[j] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed 32-bit integers, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 TO 15 + IF k[j] + dst.dword[j] := Convert_FP16_To_Int32(a.fp16[j]) + ELSE + dst.dword[j] := src.dword[j] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed 32-bit integers, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 TO 15 + IF k[j] + dst.dword[j] := Convert_FP16_To_Int32(a.fp16[j]) + ELSE + dst.dword[j] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed 32-bit integers, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 TO 15 + IF k[j] + dst.dword[j] := Convert_FP16_To_Int32(a.fp16[j]) + ELSE + dst.dword[j] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed 32-bit integers with truncation, and store the results in "dst". + +FOR j := 0 TO 15 + dst.dword[j] := Convert_FP16_To_Int32_Truncate(a.fp16[j]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed 32-bit integers with truncation, and store the results in "dst". [sae_note] + +FOR j := 0 TO 15 + dst.dword[j] := Convert_FP16_To_Int32_Truncate(a.fp16[j]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed 32-bit integers with truncation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 TO 15 + IF k[j] + dst.dword[j] := Convert_FP16_To_Int32_Truncate(a.fp16[j]) + ELSE + dst.dword[j] := src.dword[j] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed 32-bit integers with truncation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). [sae_note] + +FOR j := 0 TO 15 + IF k[j] + dst.dword[j] := Convert_FP16_To_Int32_Truncate(a.fp16[j]) + ELSE + dst.dword[j] := src.dword[j] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed 32-bit integers with truncation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 TO 15 + IF k[j] + dst.dword[j] := Convert_FP16_To_Int32_Truncate(a.fp16[j]) + ELSE + dst.dword[j] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed 32-bit integers with truncation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). [sae_note] + +FOR j := 0 TO 15 + IF k[j] + dst.dword[j] := Convert_FP16_To_Int32_Truncate(a.fp16[j]) + ELSE + dst.dword[j] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed unsigned 32-bit integers, and store the results in "dst". + +FOR j := 0 TO 15 + dst.dword[j] := Convert_FP16_To_UInt32(a.fp16[j]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed unsigned 32-bit integers, and store the results in "dst". + [round_note] + +FOR j := 0 TO 15 + dst.dword[j] := Convert_FP16_To_UInt32(a.fp16[j]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed unsigned 32-bit integers, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 TO 15 + IF k[j] + dst.dword[j] := Convert_FP16_To_UInt32(a.fp16[j]) + ELSE + dst.dword[j] := src.dword[j] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed unsigned 32-bit integers, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 TO 15 + IF k[j] + dst.dword[j] := Convert_FP16_To_UInt32(a.fp16[j]) + ELSE + dst.dword[j] := src.dword[j] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed unsigned 32-bit integers, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 TO 15 + IF k[j] + dst.dword[j] := Convert_FP16_To_UInt32(a.fp16[j]) + ELSE + dst.dword[j] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed unsigned 32-bit integers, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 TO 15 + IF k[j] + dst.dword[j] := Convert_FP16_To_UInt32(a.fp16[j]) + ELSE + dst.dword[j] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed unsigned 32-bit integers with truncation, and store the results in "dst". + +FOR j := 0 TO 15 + dst.dword[j] := Convert_FP16_To_UInt32_Truncate(a.fp16[j]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed unsigned 32-bit integers with truncation, and store the results in "dst". [sae_note] + +FOR j := 0 TO 15 + dst.dword[j] := Convert_FP16_To_UInt32_Truncate(a.fp16[j]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed unsigned 32-bit integers with truncation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 TO 15 + IF k[j] + dst.dword[j] := Convert_FP16_To_UInt32_Truncate(a.fp16[j]) + ELSE + dst.dword[j] := src.dword[j] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed unsigned 32-bit integers with truncation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). [sae_note] + +FOR j := 0 TO 15 + IF k[j] + dst.dword[j] := Convert_FP16_To_UInt32_Truncate(a.fp16[j]) + ELSE + dst.dword[j] := src.dword[j] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed unsigned 32-bit integers with truncation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 TO 15 + IF k[j] + dst.dword[j] := Convert_FP16_To_UInt32_Truncate(a.fp16[j]) + ELSE + dst.dword[j] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed unsigned 32-bit integers with truncation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). [sae_note] + +FOR j := 0 TO 15 + IF k[j] + dst.dword[j] := Convert_FP16_To_UInt32_Truncate(a.fp16[j]) + ELSE + dst.dword[j] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed 64-bit integers, and store the results in "dst". + +FOR j := 0 TO 7 + dst.qword[j] := Convert_FP16_To_Int64(a.fp16[j]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed 64-bit integers, and store the results in "dst". + [round_note] + +FOR j := 0 TO 7 + dst.qword[j] := Convert_FP16_To_Int64(a.fp16[j]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed 64-bit integers, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 TO 7 + IF k[j] + dst.qword[j] := Convert_FP16_To_Int64(a.fp16[j]) + ELSE + dst.qword[j] := src.qword[j] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed 64-bit integers, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 TO 7 + IF k[j] + dst.qword[j] := Convert_FP16_To_Int64(a.fp16[j]) + ELSE + dst.qword[j] := src.qword[j] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed 64-bit integers, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 TO 7 + IF k[j] + dst.qword[j] := Convert_FP16_To_Int64(a.fp16[j]) + ELSE + dst.qword[j] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed 64-bit integers, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 TO 7 + IF k[j] + dst.qword[j] := Convert_FP16_To_Int64(a.fp16[j]) + ELSE + dst.qword[j] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed 64-bit integers with truncation, and store the results in "dst". + +FOR j := 0 TO 7 + dst.qword[j] := Convert_FP16_To_Int64_Truncate(a.fp16[j]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed 64-bit integers with truncation, and store the results in "dst". [sae_note] + +FOR j := 0 TO 7 + dst.qword[j] := Convert_FP16_To_Int64_Truncate(a.fp16[j]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed 64-bit integers with truncation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 TO 7 + IF k[j] + dst.qword[j] := Convert_FP16_To_Int64_Truncate(a.fp16[j]) + ELSE + dst.qword[j] := src.qword[j] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed 64-bit integers with truncation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). [sae_note] + +FOR j := 0 TO 7 + IF k[j] + dst.qword[j] := Convert_FP16_To_Int64_Truncate(a.fp16[j]) + ELSE + dst.qword[j] := src.qword[j] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed 64-bit integers with truncation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 TO 7 + IF k[j] + dst.qword[j] := Convert_FP16_To_Int64_Truncate(a.fp16[j]) + ELSE + dst.qword[j] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed 64-bit integers with truncation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). [sae_note] + +FOR j := 0 TO 7 + IF k[j] + dst.qword[j] := Convert_FP16_To_Int64_Truncate(a.fp16[j]) + ELSE + dst.qword[j] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed unsigned 64-bit integers, and store the results in "dst". + +FOR j := 0 TO 7 + dst.qword[j] := Convert_FP16_To_UInt64(a.fp16[j]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed unsigned 64-bit integers, and store the results in "dst". + [round_note] + +FOR j := 0 TO 7 + dst.qword[j] := Convert_FP16_To_UInt64(a.fp16[j]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed unsigned 64-bit integers, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 TO 7 + IF k[j] + dst.qword[j] := Convert_FP16_To_UInt64(a.fp16[j]) + ELSE + dst.qword[j] := src.qword[j] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed unsigned 64-bit integers, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 TO 7 + IF k[j] + dst.qword[j] := Convert_FP16_To_UInt64(a.fp16[j]) + ELSE + dst.qword[j] := src.qword[j] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed unsigned 64-bit integers, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 TO 7 + IF k[j] + dst.qword[j] := Convert_FP16_To_UInt64(a.fp16[j]) + ELSE + dst.qword[j] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed unsigned 64-bit integers, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 TO 7 + IF k[j] + dst.qword[j] := Convert_FP16_To_UInt64(a.fp16[j]) + ELSE + dst.qword[j] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed unsigned 64-bit integers with truncation, and store the results in "dst". + +FOR j := 0 TO 7 + dst.qword[j] := Convert_FP16_To_UInt64_Truncate(a.fp16[j]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed unsigned 64-bit integers with truncation, and store the results in "dst". [sae_note] + +FOR j := 0 TO 7 + dst.qword[j] := Convert_FP16_To_UInt64_Truncate(a.fp16[j]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed unsigned 64-bit integers with truncation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 TO 7 + IF k[j] + dst.qword[j] := Convert_FP16_To_UInt64_Truncate(a.fp16[j]) + ELSE + dst.qword[j] := src.qword[j] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed unsigned 64-bit integers with truncation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). [sae_note] + +FOR j := 0 TO 7 + IF k[j] + dst.qword[j] := Convert_FP16_To_UInt64_Truncate(a.fp16[j]) + ELSE + dst.qword[j] := src.qword[j] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed unsigned 64-bit integers with truncation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 TO 7 + IF k[j] + dst.qword[j] := Convert_FP16_To_UInt64_Truncate(a.fp16[j]) + ELSE + dst.qword[j] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed unsigned 64-bit integers with truncation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). [sae_note] + +FOR j := 0 TO 7 + IF k[j] + dst.qword[j] := Convert_FP16_To_UInt64_Truncate(a.fp16[j]) + ELSE + dst.qword[j] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed 16-bit integers, and store the results in "dst". + +FOR j := 0 TO 31 + dst.word[j] := Convert_FP16_To_Int16(a.fp16[j]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed 16-bit integers, and store the results in "dst". + [round_note] + +FOR j := 0 TO 31 + dst.word[j] := Convert_FP16_To_Int16(a.fp16[j]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed 16-bit integers, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 TO 31 + IF k[j] + dst.word[j] := Convert_FP16_To_Int16(a.fp16[j]) + ELSE + dst.word[j] := src.word[j] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed 16-bit integers, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 TO 31 + IF k[j] + dst.word[j] := Convert_FP16_To_Int16(a.fp16[j]) + ELSE + dst.word[j] := src.word[j] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed 16-bit integers, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 TO 31 + IF k[j] + dst.word[j] := Convert_FP16_To_Int16(a.fp16[j]) + ELSE + dst.word[j] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed 16-bit integers, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + [round_note] + +FOR j := 0 TO 31 + IF k[j] + dst.word[j] := Convert_FP16_To_Int16(a.fp16[j]) + ELSE + dst.word[j] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed 16-bit integers with truncation, and store the results in "dst". + +FOR j := 0 TO 31 + dst.word[j] := Convert_FP16_To_Int16_Truncate(a.fp16[j]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed 16-bit integers with truncation, and store the results in "dst". [sae_note] + +FOR j := 0 TO 31 + dst.word[j] := Convert_FP16_To_Int16_Truncate(a.fp16[j]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed 16-bit integers with truncation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 TO 31 + IF k[j] + dst.word[j] := Convert_FP16_To_Int16_Truncate(a.fp16[j]) + ELSE + dst.word[j] := src.word[j] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed 16-bit integers with truncation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). [sae_note] + +FOR j := 0 TO 31 + IF k[j] + dst.word[j] := Convert_FP16_To_Int16_Truncate(a.fp16[j]) + ELSE + dst.word[j] := src.word[j] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed 16-bit integers with truncation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 TO 31 + IF k[j] + dst.word[j] := Convert_FP16_To_Int16_Truncate(a.fp16[j]) + ELSE + dst.word[j] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed 16-bit integers with truncation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). [sae_note] + +FOR j := 0 TO 31 + IF k[j] + dst.word[j] := Convert_FP16_To_Int16_Truncate(a.fp16[j]) + ELSE + dst.word[j] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed unsigned 16-bit integers, and store the results in "dst". + +FOR j := 0 TO 31 + dst.word[j] := Convert_FP16_To_UInt16(a.fp16[j]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed unsigned 16-bit integers, and store the results in "dst". [sae_note] + +FOR j := 0 TO 31 + dst.word[j] := Convert_FP16_To_UInt16(a.fp16[j]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed unsigned 16-bit integers, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 TO 31 + IF k[j] + dst.word[j] := Convert_FP16_To_UInt16(a.fp16[j]) + ELSE + dst.word[j] := src.word[j] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed unsigned 16-bit integers, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). [sae_note] + +FOR j := 0 TO 31 + IF k[j] + dst.word[j] := Convert_FP16_To_UInt16(a.fp16[j]) + ELSE + dst.word[j] := src.word[j] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed unsigned 16-bit integers, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 TO 31 + IF k[j] + dst.word[j] := Convert_FP16_To_UInt16(a.fp16[j]) + ELSE + dst.word[j] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed unsigned 16-bit integers, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). [sae_note] + +FOR j := 0 TO 31 + IF k[j] + dst.word[j] := Convert_FP16_To_UInt16(a.fp16[j]) + ELSE + dst.word[j] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed unsigned 16-bit integers with truncation, and store the results in "dst". + +FOR j := 0 TO 31 + dst.word[j] := Convert_FP16_To_UInt16_Truncate(a.fp16[j]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed unsigned 16-bit integers with truncation, and store the results in "dst". [sae_note] + +FOR j := 0 TO 31 + dst.word[j] := Convert_FP16_To_UInt16_Truncate(a.fp16[j]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed unsigned 16-bit integers with truncation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 TO 31 + IF k[j] + dst.word[j] := Convert_FP16_To_UInt16_Truncate(a.fp16[j]) + ELSE + dst.word[j] := src.word[j] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed unsigned 16-bit integers with truncation, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). [sae_note] + +FOR j := 0 TO 31 + IF k[j] + dst.word[j] := Convert_FP16_To_UInt16_Truncate(a.fp16[j]) + ELSE + dst.word[j] := src.word[j] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed unsigned 16-bit integers with truncation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 TO 31 + IF k[j] + dst.word[j] := Convert_FP16_To_UInt16_Truncate(a.fp16[j]) + ELSE + dst.word[j] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed unsigned 16-bit integers with truncation, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). [sae_note] + +FOR j := 0 TO 31 + IF k[j] + dst.word[j] := Convert_FP16_To_UInt16_Truncate(a.fp16[j]) + ELSE + dst.word[j] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed double-precision (64-bit) floating-point elements, and store the results in "dst". + +FOR j := 0 to 7 + dst.fp64[j] := Convert_FP16_To_FP64(a.fp16[j]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed double-precision (64-bit) floating-point elements, and store the results in "dst". [sae_note] + +FOR j := 0 to 7 + dst.fp64[j] := Convert_FP16_To_FP64(a.fp16[j]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed double-precision (64-bit) floating-point elements, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + IF k[j] + dst.fp64[j] := Convert_FP16_To_FP64(a.fp16[j]) + ELSE + dst.fp64[j] := src.fp64[j] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed double-precision (64-bit) floating-point elements, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). [sae_note] + +FOR j := 0 to 7 + IF k[j] + dst.fp64[j] := Convert_FP16_To_FP64(a.fp16[j]) + ELSE + dst.fp64[j] := src.fp64[j] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed double-precision (64-bit) floating-point elements, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + IF k[j] + dst.fp64[j] := Convert_FP16_To_FP64(a.fp16[j]) + ELSE + dst.fp64[j] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed double-precision (64-bit) floating-point elements, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). [sae_note] + +FOR j := 0 to 7 + IF k[j] + dst.fp64[j] := Convert_FP16_To_FP64(a.fp16[j]) + ELSE + dst.fp64[j] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed single-precision (32-bit) floating-point elements, and store the results in "dst". + +FOR j := 0 to 15 + dst.fp32[j] := Convert_FP16_To_FP32(a.fp16[j]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed single-precision (32-bit) floating-point elements, and store the results in "dst". [sae_note] + +FOR j := 0 to 15 + dst.fp32[j] := Convert_FP16_To_FP32(a.fp16[j]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed single-precision (32-bit) floating-point elements, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + IF k[j] + dst.fp32[j] := Convert_FP16_To_FP32(a.fp16[j]) + ELSE + dst.fp32[j] := src.fp32[j] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed single-precision (32-bit) floating-point elements, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). [sae_note] + +FOR j := 0 to 15 + IF k[j] + dst.fp32[j] := Convert_FP16_To_FP32(a.fp16[j]) + ELSE + dst.fp32[j] := src.fp32[j] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed single-precision (32-bit) floating-point elements, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + IF k[j] + dst.fp32[j] := Convert_FP16_To_FP32(a.fp16[j]) + ELSE + dst.fp32[j] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed single-precision (32-bit) floating-point elements, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). [sae_note] + +FOR j := 0 to 15 + IF k[j] + dst.fp32[j] := Convert_FP16_To_FP32(a.fp16[j]) + ELSE + dst.fp32[j] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + Convert the lower half-precision (16-bit) floating-point element in "b" to a double-precision (64-bit) floating-point element, store the result in the lower element of "dst", and copy the upper element from "a" to the upper element of "dst". + +dst.fp64[0] := Convert_FP16_To_FP64(b.fp16[0]) +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + + Convert the lower half-precision (16-bit) floating-point element in "b" to a double-precision (64-bit) floating-point element, store the result in the lower element of "dst", and copy the upper element from "a" to the upper element of "dst". [sae_note] + +dst.fp64[0] := Convert_FP16_To_FP64(b.fp16[0]) +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + + + Convert the lower half-precision (16-bit) floating-point element in "b" to a double-precision (64-bit) floating-point element, store the result in the lower element of "dst" using writemask "k" (the element is copied from "src" when mask bit 0 is not set), and copy the upper element from "a" to the upper element of "dst". + +IF k[0] + dst.fp64[0] := Convert_FP16_To_FP64(b.fp16[0]) +ELSE + dst.fp64[0] := src.fp64[0] +FI +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + + + + Convert the lower half-precision (16-bit) floating-point element in "b" to a double-precision (64-bit) floating-point element, store the result in the lower element of "dst" using writemask "k" (the element is copied from "src" when mask bit 0 is not set), and copy the upper element from "a" to the upper element of "dst". [sae_note] + +IF k[0] + dst.fp64[0] := Convert_FP16_To_FP64(b.fp16[0]) +ELSE + dst.fp64[0] := src.fp64[0] +FI +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + + Convert the lower half-precision (16-bit) floating-point element in "b" to a double-precision (64-bit) floating-point element, store the result in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper element from "a" to the upper element of "dst". + +IF k[0] + dst.fp64[0] := Convert_FP16_To_FP64(b.fp16[0]) +ELSE + dst.fp64[0] := 0 +FI +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + + + Convert the lower half-precision (16-bit) floating-point element in "b" to a double-precision (64-bit) floating-point element, store the result in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper element from "a" to the upper element of "dst". [sae_note] + +IF k[0] + dst.fp64[0] := Convert_FP16_To_FP64(b.fp16[0]) +ELSE + dst.fp64[0] := 0 +FI +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + Convert the lower half-precision (16-bit) floating-point element in "b" to a single-precision (32-bit) floating-point element, store the result in the lower element of "dst", and copy the upper 3 packed elements from "a" to the upper elements of "dst". + +dst.fp32[0] := Convert_FP16_To_FP32(b.fp16[0]) +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + + Convert the lower half-precision (16-bit) floating-point element in "b" to a single-precision (32-bit) floating-point element, store the result in the lower element of "dst", and copy the upper 3 packed elements from "a" to the upper elements of "dst". [sae_note] + +dst.fp32[0] := Convert_FP16_To_FP32(b.fp16[0]) +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + + + Convert the lower half-precision (16-bit) floating-point element in "b" to a single-precision (32-bit) floating-point element, store the result in the lower element of "dst" using writemask "k" (the element is copied from "src" when mask bit 0 is not set), and copy the upper 3 packed elements from "a" to the upper elements of "dst". + +IF k[0] + dst.fp32[0] := Convert_FP16_To_FP32(b.fp16[0]) +ELSE + dst.fp32[0] := src.fp32[0] +FI +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + + + + Convert the lower half-precision (16-bit) floating-point element in "b" to a single-precision (32-bit) floating-point element, store the result in the lower element of "dst" using writemask "k" (the element is copied from "src" when mask bit 0 is not set), and copy the upper 3 packed elements from "a" to the upper elements of "dst". [sae_note] + +IF k[0] + dst.fp32[0] := Convert_FP16_To_FP32(b.fp16[0]) +ELSE + dst.fp32[0] := src.fp32[0] +FI +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + + Convert the lower half-precision (16-bit) floating-point element in "b" to a single-precision (32-bit) floating-point element, store the result in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper 3 packed elements from "a" to the upper elements of "dst". + +IF k[0] + dst.fp32[0] := Convert_FP16_To_FP32(b.fp16[0]) +ELSE + dst.fp32[0] := 0 +FI +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + + + Convert the lower half-precision (16-bit) floating-point element in "b" to a single-precision (32-bit) floating-point element, store the result in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper 3 packed elements from "a" to the upper elements of "dst". [sae_note] + +IF k[0] + dst.fp32[0] := Convert_FP16_To_FP32(b.fp16[0]) +ELSE + dst.fp32[0] := 0 +FI +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + Convert the lower half-precision (16-bit) floating-point element in "a" to a 32-bit integer, and store the result in "dst". + +dst.dword := Convert_FP16_To_Int32(a.fp16[0]) + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + Convert the lower half-precision (16-bit) floating-point element in "a" to a 32-bit integer, and store the result in "dst". + [round_note] + +dst.dword := Convert_FP16_To_Int32(a.fp16[0]) + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + Convert the lower half-precision (16-bit) floating-point element in "a" to a 64-bit integer, and store the result in "dst". + +dst.qword := Convert_FP16_To_Int64(a.fp16[0]) + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + Convert the lower half-precision (16-bit) floating-point element in "a" to a 64-bit integer, and store the result in "dst". + [round_note] + +dst.qword := Convert_FP16_To_Int64(a.fp16[0]) + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + Convert the lower half-precision (16-bit) floating-point element in "a" to a 32-bit integer with truncation, and store the result in "dst". + +dst.dword := Convert_FP16_To_Int32_Truncate(a.fp16[0]) + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + Convert the lower half-precision (16-bit) floating-point element in "a" to a 32-bit integer with truncation, and store the result in "dst". [sae_note] + +dst.dword := Convert_FP16_To_Int32_Truncate(a.fp16[0]) + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + Convert the lower half-precision (16-bit) floating-point element in "a" to a 64-bit integer with truncation, and store the result in "dst". + +dst.qword := Convert_FP16_To_Int64_Truncate(a.fp16[0]) + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + Convert the lower half-precision (16-bit) floating-point element in "a" to a 64-bit integer with truncation, and store the result in "dst". [sae_note] + +dst.qword := Convert_FP16_To_Int64_Truncate(a.fp16[0]) + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + Convert the lower half-precision (16-bit) floating-point element in "a" to an unsigned 32-bit integer, and store the result in "dst". + +dst.dword := Convert_FP16_To_UInt32(a.fp16[0]) + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + Convert the lower half-precision (16-bit) floating-point element in "a" to an unsigned 32-bit integer, and store the result in "dst". [sae_note] + +dst.dword := Convert_FP16_To_UInt32(a.fp16[0]) + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + Convert the lower half-precision (16-bit) floating-point element in "a" to an unsigned 64-bit integer, and store the result in "dst". + +dst.qword := Convert_FP16_To_UInt64(a.fp16[0]) + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + Convert the lower half-precision (16-bit) floating-point element in "a" to an unsigned 64-bit integer, and store the result in "dst". [round_note] + +dst.qword := Convert_FP16_To_UInt64(a.fp16[0]) + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + Convert the lower half-precision (16-bit) floating-point element in "a" to an unsigned 32-bit integer with truncation, and store the result in "dst". + +dst.dword := Convert_FP16_To_UInt32_Truncate(a.fp16[0]) + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + Convert the lower half-precision (16-bit) floating-point element in "a" to an unsigned 32-bit integer with truncation, and store the result in "dst". [sae_note] + +dst.dword := Convert_FP16_To_UInt32_Truncate(a.fp16[0]) + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + Convert the lower half-precision (16-bit) floating-point element in "a" to an unsigned 64-bit integer with truncation, and store the result in "dst". + +dst.qword := Convert_FP16_To_UInt64_Truncate(a.fp16[0]) + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + Convert the lower half-precision (16-bit) floating-point element in "a" to an unsigned 64-bit integer with truncation, and store the result in "dst". [sae_note] + +dst.qword := Convert_FP16_To_UInt64_Truncate(a.fp16[0]) + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + Convert the signed 32-bit integer "b" to a half-precision (16-bit) floating-point element, store the result in the lower element of "dst", and copy the upper 7 packed elements from "a" to the upper elements of "dst". + +dst.fp16[0] := Convert_Int32_To_FP16(b.fp32[0]) +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + + Convert the signed 32-bit integer "b" to a half-precision (16-bit) floating-point element, store the result in the lower element of "dst", and copy the upper 7 packed elements from "a" to the upper elements of "dst". + [round_note] + +dst.fp16[0] := Convert_Int32_To_FP16(b.fp32[0]) +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + Convert the unsigned 32-bit integer "b" to a half-precision (16-bit) floating-point element, store the result in the lower element of "dst", and copy the upper 7 packed elements from "a" to the upper elements of "dst". + +dst.fp16[0] := Convert_Int32_To_FP16(b.fp32[0]) +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + + Convert the unsigned 32-bit integer "b" to a half-precision (16-bit) floating-point element, store the result in the lower element of "dst", and copy the upper 7 packed elements from "a" to the upper elements of "dst". + [round_note] + +dst.fp16[0] := Convert_Int32_To_FP16(b.fp32[0]) +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + Convert the signed 64-bit integer "b" to a half-precision (16-bit) floating-point element, store the result in the lower element of "dst", and copy the upper 7 packed elements from "a" to the upper elements of "dst". + +dst.fp16[0] := Convert_Int64_To_FP16(b.fp64[0]) +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + + Convert the signed 64-bit integer "b" to a half-precision (16-bit) floating-point element, store the result in the lower element of "dst", and copy the upper 7 packed elements from "a" to the upper elements of "dst". + [round_note] + +dst.fp16[0] := Convert_Int64_To_FP16(b.fp64[0]) +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + Convert the unsigned 64-bit integer "b" to a half-precision (16-bit) floating-point element, store the result in the lower element of "dst", and copy the upper 7 packed elements from "a" to the upper elements of "dst". + +dst.fp16[0] := Convert_Int64_To_FP16(b.fp64[0]) +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + + Convert the unsigned 64-bit integer "b" to a half-precision (16-bit) floating-point element, store the result in the lower element of "dst", and copy the upper 7 packed elements from "a" to the upper elements of "dst". + [round_note] + +dst.fp16[0] := Convert_Int64_To_FP16(b.fp64[0]) +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + Copy 16-bit integer "a" to the lower elements of "dst", and zero the upper elements of "dst". + +dst.fp16[0] := a.fp16[0] +dst[MAX:16] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + Copy the lower 16-bit integer in "a" to "dst". + +dst.fp16[0] := a.fp16[0] +dst[MAX:16] := 0 + + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + Copy the lower half-precision (16-bit) floating-point element of "a" to "dst". + +dst[15:0] := a.fp16[0] + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + Copy the lower half-precision (16-bit) floating-point element of "a" to "dst". + +dst[15:0] := a.fp16[0] + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + Copy the lower half-precision (16-bit) floating-point element of "a" to "dst". + +dst[15:0] := a.fp16[0] + + AVX512_FP16 +
immintrin.h
+ Convert +
+ + + + + Compare packed half-precision (16-bit) floating-point elements in "a" and "b", and store packed maximum values in "dst". [max_float_note] + +FOR j := 0 to 31 + dst.fp16[j] := (a.fp16[j] > b.fp16[j] ? a.fp16[j] : b.fp16[j]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Special Math Functions +
+ + + + + + + Compare packed half-precision (16-bit) floating-point elements in "a" and "b", and store packed maximum values in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). [max_float_note] + +FOR j := 0 to 31 + IF k[j] + dst.fp16[j] := (a.fp16[j] > b.fp16[j] ? a.fp16[j] : b.fp16[j]) + ELSE + dst.fp16[j] := src.fp16[j] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Special Math Functions +
+ + + + + + Compare packed half-precision (16-bit) floating-point elements in "a" and "b", and store packed maximum values in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). [max_float_note] + +FOR j := 0 to 31 + IF k[j] + dst.fp16[j] := (a.fp16[j] > b.fp16[j] ? a.fp16[j] : b.fp16[j]) + ELSE + dst.fp16[j] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Special Math Functions +
+ + + + + + Compare packed half-precision (16-bit) floating-point elements in "a" and "b", and store packed maximum values in "dst". [sae_note][max_float_note] + +FOR j := 0 to 31 + dst.fp16[j] := (a.fp16[j] > b.fp16[j] ? a.fp16[j] : b.fp16[j]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Special Math Functions +
+ + + + + + + + Compare packed half-precision (16-bit) floating-point elements in "a" and "b", and store packed maximum values in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). [sae_note][max_float_note] + +FOR j := 0 to 31 + IF k[j] + dst.fp16[j] := (a.fp16[j] > b.fp16[j] ? a.fp16[j] : b.fp16[j]) + ELSE + dst.fp16[j] := src.fp16[j] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Special Math Functions +
+ + + + + + + Compare packed half-precision (16-bit) floating-point elements in "a" and "b", and store packed maximum values in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). [sae_note][max_float_note] + +FOR j := 0 to 31 + IF k[j] + dst.fp16[j] := (a.fp16[j] > b.fp16[j] ? a.fp16[j] : b.fp16[j]) + ELSE + dst.fp16[j] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Special Math Functions +
+ + + + + Compare packed half-precision (16-bit) floating-point elements in "a" and "b", and store packed minimum values in "dst". [min_float_note] + +FOR j := 0 to 31 + dst.fp16[j] := (a.fp16[j] < b.fp16[j] ? a.fp16[j] : b.fp16[j]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Special Math Functions +
+ + + + + + + Compare packed half-precision (16-bit) floating-point elements in "a" and "b", and store packed minimum values in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). [min_float_note] + +FOR j := 0 to 31 + IF k[j] + dst.fp16[j] := (a.fp16[j] < b.fp16[j] ? a.fp16[j] : b.fp16[j]) + ELSE + dst.fp16[j] := src.fp16[j] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Special Math Functions +
+ + + + + + Compare packed half-precision (16-bit) floating-point elements in "a" and "b", and store packed minimum values in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). [min_float_note] + +FOR j := 0 to 31 + IF k[j] + dst.fp16[j] := (a.fp16[j] < b.fp16[j] ? a.fp16[j] : b.fp16[j]) + ELSE + dst.fp16[j] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Special Math Functions +
+ + + + + + Compare packed half-precision (16-bit) floating-point elements in "a" and "b", and store packed minimum values in "dst". [sae_note] [min_float_note] + +FOR j := 0 to 31 + dst.fp16[j] := (a.fp16[j] < b.fp16[j] ? a.fp16[j] : b.fp16[j]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Special Math Functions +
+ + + + + + + + Compare packed half-precision (16-bit) floating-point elements in "a" and "b", and store packed minimum values in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). [sae_note][min_float_note] + +FOR j := 0 to 31 + IF k[j] + dst.fp16[j] := (a.fp16[j] < b.fp16[j] ? a.fp16[j] : b.fp16[j]) + ELSE + dst.fp16[j] := src.fp16[j] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Special Math Functions +
+ + + + + + + Compare packed half-precision (16-bit) floating-point elements in "a" and "b", and store packed minimum values in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). [sae_note][min_float_note] + +FOR j := 0 to 31 + IF k[j] + dst.fp16[j] := (a.fp16[j] < b.fp16[j] ? a.fp16[j] : b.fp16[j]) + ELSE + dst.fp16[j] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Special Math Functions +
+ + + + + + Extract the reduced argument of the lower half-precision (16-bit) floating-point element in "b" by the number of bits specified by "imm8", store the result in the lower element of "dst", and copy the upper 7 packed elements from "a" to the upper elements of "dst". [round_imm_note] + +DEFINE ReduceArgumentFP16(src[15:0], imm8[7:0]) { + m[15:0] := FP16(imm8[7:4]) // number of fraction bits after the binary point to be preserved + tmp[15:0] := POW(2.0, FP16(-m)) * ROUND(POW(2.0, FP16(m)) * src[15:0], imm8[3:0]) + tmp[15:0] := src[15:0] - tmp[15:0] + IF IsInf(tmp[15:0]) + tmp[15:0] := FP16(0.0) + FI + RETURN tmp[15:0] +} +dst.fp16[0] := ReduceArgumentFP16(b.fp16[0], imm8) +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Special Math Functions +
+ + + + + + + Extract the reduced argument of the lower half-precision (16-bit) floating-point element in "b" by the number of bits specified by "imm8", store the result in the lower element of "dst", and copy the upper 7 packed elements from "a" to the upper elements of "dst". [round_imm_note][sae_note] + +DEFINE ReduceArgumentFP16(src[15:0], imm8[7:0]) { + m[15:0] := FP16(imm8[7:4]) // number of fraction bits after the binary point to be preserved + tmp[15:0] := POW(2.0, FP16(-m)) * ROUND(POW(2.0, FP16(m)) * src[15:0], imm8[3:0]) + tmp[15:0] := src[15:0] - tmp[15:0] + IF IsInf(tmp[15:0]) + tmp[15:0] := FP16(0.0) + FI + RETURN tmp[15:0] +} +dst.fp16[0] := ReduceArgumentFP16(b.fp16[0], imm8) +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Special Math Functions +
+ + + + + + + + Extract the reduced argument of the lower half-precision (16-bit) floating-point element in "b" by the number of bits specified by "imm8", store the result in the lower element of "dst" using writemask "k" (the element is copied from "src" when mask bit 0 is not set), and copy the upper 7 packed elements from "a" to the upper elements of "dst". [round_imm_note] + +DEFINE ReduceArgumentFP16(src[15:0], imm8[7:0]) { + m[15:0] := FP16(imm8[7:4]) // number of fraction bits after the binary point to be preserved + tmp[15:0] := POW(2.0, FP16(-m)) * ROUND(POW(2.0, FP16(m)) * src[15:0], imm8[3:0]) + tmp[15:0] := src[15:0] - tmp[15:0] + IF IsInf(tmp[15:0]) + tmp[15:0] := FP16(0.0) + FI + RETURN tmp[15:0] +} +IF k[0] + dst.fp16[0] := ReduceArgumentFP16(b.fp16[0], imm8) +ELSE + dst.fp16[0] := src.fp16[0] +FI +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Special Math Functions +
+ + + + + + + + + Extract the reduced argument of the lower half-precision (16-bit) floating-point element in "b" by the number of bits specified by "imm8", store the result in the lower element of "dst" using writemask "k" (the element is copied from "src" when mask bit 0 is not set), and copy the upper 7 packed elements from "a" to the upper elements of "dst". [round_imm_note][sae_note] + +DEFINE ReduceArgumentFP16(src[15:0], imm8[7:0]) { + m[15:0] := FP16(imm8[7:4]) // number of fraction bits after the binary point to be preserved + tmp[15:0] := POW(2.0, FP16(-m)) * ROUND(POW(2.0, FP16(m)) * src[15:0], imm8[3:0]) + tmp[15:0] := src[15:0] - tmp[15:0] + IF IsInf(tmp[15:0]) + tmp[15:0] := FP16(0.0) + FI + RETURN tmp[15:0] +} +IF k[0] + dst.fp16[0] := ReduceArgumentFP16(b.fp16[0], imm8) +ELSE + dst.fp16[0] := src.fp16[0] +FI +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Special Math Functions +
+ + + + + + + Extract the reduced argument of the lower half-precision (16-bit) floating-point element in "b" by the number of bits specified by "imm8", store the result in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper 7 packed elements from "a" to the upper elements of "dst". [round_imm_note] + +DEFINE ReduceArgumentFP16(src[15:0], imm8[7:0]) { + m[15:0] := FP16(imm8[7:4]) // number of fraction bits after the binary point to be preserved + tmp[15:0] := POW(2.0, FP16(-m)) * ROUND(POW(2.0, FP16(m)) * src[15:0], imm8[3:0]) + tmp[15:0] := src[15:0] - tmp[15:0] + IF IsInf(tmp[15:0]) + tmp[15:0] := FP16(0.0) + FI + RETURN tmp[15:0] +} +IF k[0] + dst.fp16[0] := ReduceArgumentFP16(b.fp16[0], imm8) +ELSE + dst.fp16[0] := 0 +FI +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Special Math Functions +
+ + + + + + + + Extract the reduced argument of the lower half-precision (16-bit) floating-point element in "b" by the number of bits specified by "imm8", store the result in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper 7 packed elements from "a" to the upper elements of "dst". [round_imm_note][sae_note] + +DEFINE ReduceArgumentFP16(src[15:0], imm8[7:0]) { + m[15:0] := FP16(imm8[7:4]) // number of fraction bits after the binary point to be preserved + tmp[15:0] := POW(2.0, FP16(-m)) * ROUND(POW(2.0, FP16(m)) * src[15:0], imm8[3:0]) + tmp[15:0] := src[15:0] - tmp[15:0] + IF IsInf(tmp[15:0]) + tmp[15:0] := FP16(0.0) + FI + RETURN tmp[15:0] +} +IF k[0] + dst.fp16[0] := ReduceArgumentFP16(b.fp16[0], imm8) +ELSE + dst.fp16[0] := 0 +FI +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Special Math Functions +
+ + + + Load a half-precision (16-bit) floating-point element from memory into the lower element of "dst", and zero the upper elements. + +dst.fp16[0] := MEM[mem_addr].fp16[0] +dst[MAX:16] := 0 + + + AVX512_FP16 +
immintrin.h
+ Load +
+ + + + + + Load a half-precision (16-bit) floating-point element from memory into the lower element of "dst" using writemask "k" (the element is copied from "src" when mask bit 0 is not set), and set the upper elements of "dst" to zero. + +IF k[0] + dst.fp16[0] := MEM[mem_addr].fp16[0] +ELSE + dst.fp16[0] := src.fp16[0] +FI +dst[MAX:16] := 0 + + + AVX512_FP16 +
immintrin.h
+ Load +
+ + + + + Load a half-precision (16-bit) floating-point element from memory into the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and set the upper elements of "dst" to zero. + +IF k[0] + dst.fp16[0] := MEM[mem_addr].fp16[0] +ELSE + dst.fp16[0] := 0 +FI +dst[MAX:16] := 0 + + + AVX512_FP16 +
immintrin.h
+ Load +
+ + + + Load 512-bits (composed of 32 packed half-precision (16-bit) floating-point elements) from memory into "dst". + "mem_addr" must be aligned on a 64-byte boundary or a general-protection exception may be generated. + +dst[511:0] := MEM[mem_addr+511:mem_addr] +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Load +
+ + + + Load 512-bits (composed of 32 packed half-precision (16-bit) floating-point elements) from memory into "dst". + "mem_addr" does not need to be aligned on any particular boundary. + +dst[511:0] := MEM[mem_addr+511:mem_addr] +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Load +
+ + + + + Store the lower half-precision (16-bit) floating-point element from "a" into memory. + +MEM[mem_addr].fp16[0] := a.fp16[0] + + + AVX512_FP16 +
immintrin.h
+ Store +
+ + + + + + Store the lower half-precision (16-bit) floating-point element from "a" into memory using writemask "k". + +IF k[0] + MEM[mem_addr].fp16[0] := a.fp16[0] +FI + + + AVX512_FP16 +
immintrin.h
+ Store +
+ + + + + Store 512-bits (composed of 32 packed half-precision (16-bit) floating-point elements) from "a" into memory. + "mem_addr" must be aligned on a 64-byte boundary or a general-protection exception may be generated. + +MEM[mem_addr+511:mem_addr] := a[511:0] + + + AVX512_FP16 +
immintrin.h
+ Store +
+ + + + + Store 512-bits (composed of 32 packed half-precision (16-bit) floating-point elements) from "a" into memory. + "mem_addr" does not need to be aligned on any particular boundary. + +MEM[mem_addr+511:mem_addr] := a[511:0] + + + AVX512_FP16 +
immintrin.h
+ Store +
+ + + + + Move the lower half-precision (16-bit) floating-point element from "b" to the lower element of "dst", and copy the upper 7 packed elements from "a" to the upper elements of "dst". + +dst.fp16[0] := b.fp16[0] +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Move +
+ + + + + + + Move the lower half-precision (16-bit) floating-point element from "b" to the lower element of "dst" using writemask "k" (the element is copied from "src" when mask bit 0 is not set), and copy the upper 7 packed elements from "a" to the upper elements of "dst". + +IF k[0] + dst.fp16[0] := b.fp16[0] +ELSE + dst.fp16[0] := src.fp16[0] +FI +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Move +
+ + + + + + Move the lower half-precision (16-bit) floating-point element from "b" to the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper 7 packed elements from "a" to the upper elements of "dst". + +IF k[0] + dst.fp16[0] := b.fp16[0] +ELSE + dst.fp16[0] := 0 +FI +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Move +
+ + + + + Round packed half-precision (16-bit) floating-point elements in "a" to the number of fraction bits specified by "imm8", and store the results in "dst". [round_imm_note] + +DEFINE RoundScaleFP16(src.fp16, imm8[7:0]) { + m.fp16 := FP16(imm8[7:4]) // number of fraction bits after the binary point to be preserved + tmp.fp16 := POW(FP16(2.0), -m) * ROUND(POW(FP16(2.0), m) * src.fp16, imm8[3:0]) + RETURN tmp.fp16 +} +FOR i := 0 to 31 + dst.fp16[i] := RoundScaleFP16(a.fp16[i], imm8) +ENDFOR +dest[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Miscellaneous +
+ + + + + + Round packed half-precision (16-bit) floating-point elements in "a" to the number of fraction bits specified by "imm8", and store the results in "dst". [round_imm_note][sae_note] + +DEFINE RoundScaleFP16(src.fp16, imm8[7:0]) { + m.fp16 := FP16(imm8[7:4]) // number of fraction bits after the binary point to be preserved + tmp.fp16 := POW(FP16(2.0), -m) * ROUND(POW(FP16(2.0), m) * src.fp16, imm8[3:0]) + RETURN tmp.fp16 +} +FOR i := 0 to 31 + dst.fp16[i] := RoundScaleFP16(a.fp16[i], imm8) +ENDFOR +dest[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Miscellaneous +
+ + + + + + + Round packed half-precision (16-bit) floating-point elements in "a" to the number of fraction bits specified by "imm8", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). [round_imm_note] + +DEFINE RoundScaleFP16(src.fp16, imm8[7:0]) { + m.fp16 := FP16(imm8[7:4]) // number of fraction bits after the binary point to be preserved + tmp.fp16 := POW(FP16(2.0), -m) * ROUND(POW(FP16(2.0), m) * src.fp16, imm8[3:0]) + RETURN tmp.fp16 +} +FOR i := 0 to 31 + IF k[i] + dst.fp16[i] := RoundScaleFP16(a.fp16[i], imm8) + ELSE + dst.fp16[i] := src.fp16[i] + FI +ENDFOR +dest[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Miscellaneous +
+ + + + + + + + Round packed half-precision (16-bit) floating-point elements in "a" to the number of fraction bits specified by "imm8", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). [round_imm_note][sae_note] + +DEFINE RoundScaleFP16(src.fp16, imm8[7:0]) { + m.fp16 := FP16(imm8[7:4]) // number of fraction bits after the binary point to be preserved + tmp.fp16 := POW(FP16(2.0), -m) * ROUND(POW(FP16(2.0), m) * src.fp16, imm8[3:0]) + RETURN tmp.fp16 +} +FOR i := 0 to 31 + IF k[i] + dst.fp16[i] := RoundScaleFP16(a.fp16[i], imm8) + ELSE + dst.fp16[i] := src.fp16[i] + FI +ENDFOR +dest[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Miscellaneous +
+ + + + + + Round packed half-precision (16-bit) floating-point elements in "a" to the number of fraction bits specified by "imm8", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). [round_imm_note] + +DEFINE RoundScaleFP16(src.fp16, imm8[7:0]) { + m.fp16 := FP16(imm8[7:4]) // number of fraction bits after the binary point to be preserved + tmp.fp16 := POW(FP16(2.0), -m) * ROUND(POW(FP16(2.0), m) * src.fp16, imm8[3:0]) + RETURN tmp.fp16 +} +FOR i := 0 to 31 + IF k[i] + dst.fp16[i] := RoundScaleFP16(a.fp16[i], imm8) + ELSE + dst.fp16[i] := 0 + FI +ENDFOR +dest[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Miscellaneous +
+ + + + + + + Round packed half-precision (16-bit) floating-point elements in "a" to the number of fraction bits specified by "imm8", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). [round_imm_note][sae_note] + +DEFINE RoundScaleFP16(src.fp16, imm8[7:0]) { + m.fp16 := FP16(imm8[7:4]) // number of fraction bits after the binary point to be preserved + tmp.fp16 := POW(FP16(2.0), -m) * ROUND(POW(FP16(2.0), m) * src.fp16, imm8[3:0]) + RETURN tmp.fp16 +} +FOR i := 0 to 31 + IF k[i] + dst.fp16[i] := RoundScaleFP16(a.fp16[i], imm8) + ELSE + dst.fp16[i] := 0 + FI +ENDFOR +dest[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Miscellaneous +
+ + + + + + Round the lower half-precision (16-bit) floating-point element in "b" to the number of fraction bits specified by "imm8", store the result in the lower element of "dst", and copy the upper 7 packed elements from "a" to the upper elements of "dst". [round_imm_note] + +DEFINE RoundScaleFP16(src.fp16, imm8[7:0]) { + m.fp16 := FP16(imm8[7:4]) // number of fraction bits after the binary point to be preserved + tmp.fp16 := POW(FP16(2.0), -m) * ROUND(POW(FP16(2.0), m) * src.fp16, imm8[3:0]) + RETURN tmp.fp16 +} +dst.fp16[0] := RoundScaleFP16(b.fp16[0], imm8) +dst[127:16] := a[127:16] +dest[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Miscellaneous +
+ + + + + + + Round the lower half-precision (16-bit) floating-point element in "b" to the number of fraction bits specified by "imm8", store the result in the lower element of "dst", and copy the upper 7 packed elements from "a" to the upper elements of "dst". [round_imm_note][sae_note] + +DEFINE RoundScaleFP16(src.fp16, imm8[7:0]) { + m.fp16 := FP16(imm8[7:4]) // number of fraction bits after the binary point to be preserved + tmp.fp16 := POW(FP16(2.0), -m) * ROUND(POW(FP16(2.0), m) * src.fp16, imm8[3:0]) + RETURN tmp.fp16 +} +dst.fp16[0] := RoundScaleFP16(b.fp16[0], imm8) +dst[127:16] := a[127:16] +dest[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Miscellaneous +
+ + + + + + + + Round the lower half-precision (16-bit) floating-point element in "b" to the number of fraction bits specified by "imm8", store the result in the lower element of "dst" using writemask "k" (the element is copied from "src" when mask bit 0 is not set), and copy the upper 7 packed elements from "a" to the upper elements of "dst". [round_imm_note] + +DEFINE RoundScaleFP16(src.fp16, imm8[7:0]) { + m.fp16 := FP16(imm8[7:4]) // number of fraction bits after the binary point to be preserved + tmp.fp16 := POW(FP16(2.0), -m) * ROUND(POW(FP16(2.0), m) * src.fp16, imm8[3:0]) + RETURN tmp.fp16 +} +IF k[0] + dst.fp16[0] := RoundScaleFP16(b.fp16[0], imm8) +ELSE + dst.fp16[0] := src.fp16[0] +FI +dst[127:16] := a[127:16] +dest[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Miscellaneous +
+ + + + + + + + + Round the lower half-precision (16-bit) floating-point element in "b" to the number of fraction bits specified by "imm8", store the result in the lower element of "dst" using writemask "k" (the element is copied from "src" when mask bit 0 is not set), and copy the upper 7 packed elements from "a" to the upper elements of "dst". [round_imm_note][sae_note] + +DEFINE RoundScaleFP16(src.fp16, imm8[7:0]) { + m.fp16 := FP16(imm8[7:4]) // number of fraction bits after the binary point to be preserved + tmp.fp16 := POW(FP16(2.0), -m) * ROUND(POW(FP16(2.0), m) * src.fp16, imm8[3:0]) + RETURN tmp.fp16 +} +IF k[0] + dst.fp16[0] := RoundScaleFP16(b.fp16[0], imm8) +ELSE + dst.fp16[0] := src.fp16[0] +FI +dst[127:16] := a[127:16] +dest[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Miscellaneous +
+ + + + + + + Round the lower half-precision (16-bit) floating-point element in "b" to the number of fraction bits specified by "imm8", store the result in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper 7 packed elements from "a" to the upper elements of "dst". [round_imm_note] + +DEFINE RoundScaleFP16(src.fp16, imm8[7:0]) { + m.fp16 := FP16(imm8[7:4]) // number of fraction bits after the binary point to be preserved + tmp.fp16 := POW(FP16(2.0), -m) * ROUND(POW(FP16(2.0), m) * src.fp16, imm8[3:0]) + RETURN tmp.fp16 +} +IF k[0] + dst.fp16[0] := RoundScaleFP16(b.fp16[0], imm8) +ELSE + dst.fp16[0] := 0 +FI +dst[127:16] := a[127:16] +dest[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Miscellaneous +
+ + + + + + + + Round the lower half-precision (16-bit) floating-point element in "b" to the number of fraction bits specified by "imm8", store the result in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper 7 packed elements from "a" to the upper elements of "dst". [round_imm_note][sae_note] + +DEFINE RoundScaleFP16(src.fp16, imm8[7:0]) { + m.fp16 := FP16(imm8[7:4]) // number of fraction bits after the binary point to be preserved + tmp.fp16 := POW(FP16(2.0), -m) * ROUND(POW(FP16(2.0), m) * src.fp16, imm8[3:0]) + RETURN tmp.fp16 +} +IF k[0] + dst.fp16[0] := RoundScaleFP16(b.fp16[0], imm8) +ELSE + dst.fp16[0] := 0 +FI +dst[127:16] := a[127:16] +dest[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Miscellaneous +
+ + + + Convert the exponent of each packed half-precision (16-bit) floating-point element in "a" to a half-precision (16-bit) floating-point number representing the integer exponent, and store the results in "dst". This intrinsic essentially calculates "floor(log2(x))" for each element. + FOR i := 0 to 31 + dst.fp16[i] := ConvertExpFP16(a.fp16[i]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Miscellaneous +
+ + + + + Convert the exponent of each packed half-precision (16-bit) floating-point element in "a" to a half-precision (16-bit) floating-point number representing the integer exponent, and store the results in "dst". This intrinsic essentially calculates "floor(log2(x))" for each element. [sae_note] + FOR i := 0 to 31 + dst.fp16[i] := ConvertExpFP16(a.fp16[i]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Miscellaneous +
+ + + + + + Convert the exponent of each packed half-precision (16-bit) floating-point element in "a" to a half-precision (16-bit) floating-point number representing the integer exponent, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). This intrinsic essentially calculates "floor(log2(x))" for each element. + FOR i := 0 to 31 + IF k[i] + dst.fp16[i] := ConvertExpFP16(a.fp16[i]) + ELSE + dst.fp16[i] := src.fp16[i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Miscellaneous +
+ + + + + + + Convert the exponent of each packed half-precision (16-bit) floating-point element in "a" to a half-precision (16-bit) floating-point number representing the integer exponent, and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). This intrinsic essentially calculates "floor(log2(x))" for each element. [sae_note] + FOR i := 0 to 31 + IF k[i] + dst.fp16[i] := ConvertExpFP16(a.fp16[i]) + ELSE + dst.fp16[i] := src.fp16[i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Miscellaneous +
+ + + + + Convert the exponent of each packed half-precision (16-bit) floating-point element in "a" to a half-precision (16-bit) floating-point number representing the integer exponent, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). This intrinsic essentially calculates "floor(log2(x))" for each element. + FOR i := 0 to 31 + IF k[i] + dst.fp16[i] := ConvertExpFP16(a.fp16[i]) + ELSE + dst.fp16[i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Miscellaneous +
+ + + + + + Convert the exponent of each packed half-precision (16-bit) floating-point element in "a" to a half-precision (16-bit) floating-point number representing the integer exponent, and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). This intrinsic essentially calculates "floor(log2(x))" for each element. [sae_note] + FOR i := 0 to 31 + IF k[i] + dst.fp16[i] := ConvertExpFP16(a.fp16[i]) + ELSE + dst.fp16[i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Miscellaneous +
+ + + + + Convert the exponent of the lower half-precision (16-bit) floating-point element in "b" to a half-precision (16-bit) floating-point number representing the integer exponent, store the result in the lower element of "dst", and copy the upper 7 packed elements from "a" to the upper elements of "dst". This intrinsic essentially calculates "floor(log2(x))" for the lower element. + dst.fp16[0] := ConvertExpFP16(b.fp16[0]) +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Miscellaneous +
+ + + + + + Convert the exponent of the lower half-precision (16-bit) floating-point element in "b" to a half-precision (16-bit) floating-point number representing the integer exponent, store the result in the lower element of "dst", and copy the upper 7 packed elements from "a" to the upper elements of "dst". This intrinsic essentially calculates "floor(log2(x))" for the lower element. [sae_note] + dst.fp16[0] := ConvertExpFP16(b.fp16[0]) +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Miscellaneous +
+ + + + + + + Convert the exponent of the lower half-precision (16-bit) floating-point element in "b" to a half-precision (16-bit) floating-point number representing the integer exponent, store the result in the lower element of "dst" using writemask "k" (the element is copied from "src" when mask bit 0 is not set), and copy the upper 7 packed elements from "a" to the upper elements of "dst". This intrinsic essentially calculates "floor(log2(x))" for the lower element. + IF k[0] + dst.fp16[0] := ConvertExpFP16(b.fp16[0]) +ELSE + dst.fp16[0] := src.fp16[0] +FI +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Miscellaneous +
+ + + + + + + + Convert the exponent of the lower half-precision (16-bit) floating-point element in "b" to a half-precision (16-bit) floating-point number representing the integer exponent, store the result in the lower element of "dst" using writemask "k" (the element is copied from "src" when mask bit 0 is not set), and copy the upper 7 packed elements from "a" to the upper elements of "dst". This intrinsic essentially calculates "floor(log2(x))" for the lower element. [sae_note] + IF k[0] + dst.fp16[0] := ConvertExpFP16(b.fp16[0]) +ELSE + dst.fp16[0] := src.fp16[0] +FI +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Miscellaneous +
+ + + + + + Convert the exponent of the lower half-precision (16-bit) floating-point element in "b" to a half-precision (16-bit) floating-point number representing the integer exponent, store the result in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper 7 packed elements from "a" to the upper elements of "dst". This intrinsic essentially calculates "floor(log2(x))" for the lower element. + IF k[0] + dst.fp16[0] := ConvertExpFP16(b.fp16[0]) +ELSE + dst.fp16[0] := 0 +FI +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Miscellaneous +
+ + + + + + + Convert the exponent of the lower half-precision (16-bit) floating-point element in "b" to a half-precision (16-bit) floating-point number representing the integer exponent, store the result in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper 7 packed elements from "a" to the upper elements of "dst". This intrinsic essentially calculates "floor(log2(x))" for the lower element. [sae_note] + IF k[0] + dst.fp16[0] := ConvertExpFP16(b.fp16[0]) +ELSE + dst.fp16[0] := 0 +FI +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Miscellaneous +
+ + + + + + Normalize the mantissas of packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst". This intrinsic essentially calculates "±(2^k)*|x.significand|", where "k" depends on the interval range defined by "norm" and the sign depends on "sign" and the source sign. + [getmant_note] + FOR i := 0 TO 31 + dst.fp16[i] := GetNormalizedMantissaFP16(a.fp16[i], norm, sign) +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Miscellaneous +
+ + + + + + + Normalize the mantissas of packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst". This intrinsic essentially calculates "±(2^k)*|x.significand|", where "k" depends on the interval range defined by "norm" and the sign depends on "sign" and the source sign. + [getmant_note][sae_note] + FOR i := 0 TO 31 + dst.fp16[i] := GetNormalizedMantissaFP16(a.fp16[i], norm, sign) +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Miscellaneous +
+ + + + + + + + Normalize the mantissas of packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). This intrinsic essentially calculates "±(2^k)*|x.significand|", where "k" depends on the interval range defined by "norm" and the sign depends on "sign" and the source sign. + [getmant_note] + FOR i := 0 TO 31 + IF k[i] + dst.fp16[i] := GetNormalizedMantissaFP16(a.fp16[i], norm, sign) + ELSE + dst.fp16[i] := src.fp16[i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Miscellaneous +
+ + + + + + + + + Normalize the mantissas of packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). This intrinsic essentially calculates "±(2^k)*|x.significand|", where "k" depends on the interval range defined by "norm" and the sign depends on "sign" and the source sign. + [getmant_note][sae_note] + FOR i := 0 TO 31 + IF k[i] + dst.fp16[i] := GetNormalizedMantissaFP16(a.fp16[i], norm, sign) + ELSE + dst.fp16[i] := src.fp16[i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Miscellaneous +
+ + + + + + + Normalize the mantissas of packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). This intrinsic essentially calculates "±(2^k)*|x.significand|", where "k" depends on the interval range defined by "norm" and the sign depends on "sign" and the source sign. + [getmant_note] + FOR i := 0 TO 31 + IF k[i] + dst.fp16[i] := GetNormalizedMantissaFP16(a.fp16[i], norm, sign) + ELSE + dst.fp16[i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Miscellaneous +
+ + + + + + + + Normalize the mantissas of packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). This intrinsic essentially calculates "±(2^k)*|x.significand|", where "k" depends on the interval range defined by "norm" and the sign depends on "sign" and the source sign. + [getmant_note][sae_note] + FOR i := 0 TO 31 + IF k[i] + dst.fp16[i] := GetNormalizedMantissaFP16(a.fp16[i], norm, sign) + ELSE + dst.fp16[i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Miscellaneous +
+ + + + + + + Normalize the mantissas of the lower half-precision (16-bit) floating-point element in "b", store the result in the lower element of "dst", and copy the upper 7 packed elements from "a" to the upper elements of "dst". This intrinsic essentially calculates "±(2^k)*|x.significand|", where "k" depends on the interval range defined by "norm" and the sign depends on "sign" and the source sign. + [getmant_note] + dst.fp16[0] := GetNormalizedMantissaFP16(b.fp16[0], norm, sign) +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Miscellaneous +
+ + + + + + + + Normalize the mantissas of the lower half-precision (16-bit) floating-point element in "b", store the result in the lower element of "dst", and copy the upper 7 packed elements from "a" to the upper elements of "dst". This intrinsic essentially calculates "±(2^k)*|x.significand|", where "k" depends on the interval range defined by "norm" and the sign depends on "sign" and the source sign. + [getmant_note][sae_note] + dst.fp16[0] := GetNormalizedMantissaFP16(b.fp16[0], norm, sign) +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Miscellaneous +
+ + + + + + + + + Normalize the mantissas of the lower half-precision (16-bit) floating-point element in "b", store the result in the lower element of "dst" using writemask "k" (the element is copied from "src" when mask bit 0 is not set), and copy the upper 7 packed elements from "a" to the upper elements of "dst". This intrinsic essentially calculates "±(2^k)*|x.significand|", where "k" depends on the interval range defined by "norm" and the sign depends on "sign" and the source sign. + [getmant_note] + IF k[0] + dst.fp16[0] := GetNormalizedMantissaFP16(b.fp16[0], norm, sign) +ELSE + dst.fp16[0] := src.fp16[0] +FI +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Miscellaneous +
+ + + + + + + + + + Normalize the mantissas of the lower half-precision (16-bit) floating-point element in "b", store the result in the lower element of "dst" using writemask "k" (the element is copied from "src" when mask bit 0 is not set), and copy the upper 7 packed elements from "a" to the upper elements of "dst". This intrinsic essentially calculates "±(2^k)*|x.significand|", where "k" depends on the interval range defined by "norm" and the sign depends on "sign" and the source sign. + [getmant_note][sae_note] + IF k[0] + dst.fp16[0] := GetNormalizedMantissaFP16(b.fp16[0], norm, sign) +ELSE + dst.fp16[0] := src.fp16[0] +FI +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Miscellaneous +
+ + + + + + + + Normalize the mantissas of the lower half-precision (16-bit) floating-point element in "b", store the result in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper 7 packed elements from "a" to the upper elements of "dst". This intrinsic essentially calculates "±(2^k)*|x.significand|", where "k" depends on the interval range defined by "norm" and the sign depends on "sign" and the source sign. + [getmant_note] + IF k[0] + dst.fp16[0] := GetNormalizedMantissaFP16(b.fp16[0], norm, sign) +ELSE + dst.fp16[0] := 0 +FI +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Miscellaneous +
+ + + + + + + + + Normalize the mantissas of the lower half-precision (16-bit) floating-point element in "b", store the result in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper 7 packed elements from "a" to the upper elements of "dst". This intrinsic essentially calculates "±(2^k)*|x.significand|", where "k" depends on the interval range defined by "norm" and the sign depends on "sign" and the source sign. + [getmant_note][sae_note] + IF k[0] + dst.fp16[0] := GetNormalizedMantissaFP16(b.fp16[0], norm, sign) +ELSE + dst.fp16[0] := 0 +FI +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Miscellaneous +
+ + + + + Extract the reduced argument of packed half-precision (16-bit) floating-point elements in "a" by the number of bits specified by "imm8", and store the results in "dst". [round_imm_note] + +DEFINE ReduceArgumentFP16(src[15:0], imm8[7:0]) { + m[15:0] := FP16(imm8[7:4]) // number of fraction bits after the binary point to be preserved + tmp[15:0] := POW(2.0, FP16(-m)) * ROUND(POW(2.0, FP16(m)) * src[15:0], imm8[3:0]) + tmp[15:0] := src[15:0] - tmp[15:0] + IF IsInf(tmp[15:0]) + tmp[15:0] := FP16(0.0) + FI + RETURN tmp[15:0] +} +FOR i := 0 to 31 + dst.fp16[i] := ReduceArgumentFP16(a.fp16[i], imm8) +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Miscellaneous +
+ + + + + + Extract the reduced argument of packed half-precision (16-bit) floating-point elements in "a" by the number of bits specified by "imm8", and store the results in "dst". [round_imm_note][sae_note] + +DEFINE ReduceArgumentFP16(src[15:0], imm8[7:0]) { + m[15:0] := FP16(imm8[7:4]) // number of fraction bits after the binary point to be preserved + tmp[15:0] := POW(2.0, FP16(-m)) * ROUND(POW(2.0, FP16(m)) * src[15:0], imm8[3:0]) + tmp[15:0] := src[15:0] - tmp[15:0] + IF IsInf(tmp[15:0]) + tmp[15:0] := FP16(0.0) + FI + RETURN tmp[15:0] +} +FOR i := 0 to 31 + dst.fp16[i] := ReduceArgumentFP16(a.fp16[i], imm8) +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Miscellaneous +
+ + + + + + + Extract the reduced argument of packed half-precision (16-bit) floating-point elements in "a" by the number of bits specified by "imm8", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). [round_imm_note] + +DEFINE ReduceArgumentFP16(src[15:0], imm8[7:0]) { + m[15:0] := FP16(imm8[7:4]) // number of fraction bits after the binary point to be preserved + tmp[15:0] := POW(2.0, FP16(-m)) * ROUND(POW(2.0, FP16(m)) * src[15:0], imm8[3:0]) + tmp[15:0] := src[15:0] - tmp[15:0] + IF IsInf(tmp[15:0]) + tmp[15:0] := FP16(0.0) + FI + RETURN tmp[15:0] +} +FOR i := 0 to 31 + IF k[i] + dst.fp16[i] := ReduceArgumentFP16(a.fp16[i], imm8) + ELSE + dst.fp16[i] := src.fp16[i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Miscellaneous +
+ + + + + + + + Extract the reduced argument of packed half-precision (16-bit) floating-point elements in "a" by the number of bits specified by "imm8", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). [round_imm_note][sae_note] + +DEFINE ReduceArgumentFP16(src[15:0], imm8[7:0]) { + m[15:0] := FP16(imm8[7:4]) // number of fraction bits after the binary point to be preserved + tmp[15:0] := POW(2.0, FP16(-m)) * ROUND(POW(2.0, FP16(m)) * src[15:0], imm8[3:0]) + tmp[15:0] := src[15:0] - tmp[15:0] + IF IsInf(tmp[15:0]) + tmp[15:0] := FP16(0.0) + FI + RETURN tmp[15:0] +} +FOR i := 0 to 31 + IF k[i] + dst.fp16[i] := ReduceArgumentFP16(a.fp16[i], imm8) + ELSE + dst.fp16[i] := src.fp16[i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Miscellaneous +
+ + + + + + Extract the reduced argument of packed half-precision (16-bit) floating-point elements in "a" by the number of bits specified by "imm8", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). [round_imm_note] + +DEFINE ReduceArgumentFP16(src[15:0], imm8[7:0]) { + m[15:0] := FP16(imm8[7:4]) // number of fraction bits after the binary point to be preserved + tmp[15:0] := POW(2.0, FP16(-m)) * ROUND(POW(2.0, FP16(m)) * src[15:0], imm8[3:0]) + tmp[15:0] := src[15:0] - tmp[15:0] + IF IsInf(tmp[15:0]) + tmp[15:0] := FP16(0.0) + FI + RETURN tmp[15:0] +} +FOR i := 0 to 31 + IF k[i] + dst.fp16[i] := ReduceArgumentFP16(a.fp16[i], imm8) + ELSE + dst.fp16[i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Miscellaneous +
+ + + + + + + Extract the reduced argument of packed half-precision (16-bit) floating-point elements in "a" by the number of bits specified by "imm8", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). [round_imm_note][sae_note] + +DEFINE ReduceArgumentFP16(src[15:0], imm8[7:0]) { + m[15:0] := FP16(imm8[7:4]) // number of fraction bits after the binary point to be preserved + tmp[15:0] := POW(2.0, FP16(-m)) * ROUND(POW(2.0, FP16(m)) * src[15:0], imm8[3:0]) + tmp[15:0] := src[15:0] - tmp[15:0] + IF IsInf(tmp[15:0]) + tmp[15:0] := FP16(0.0) + FI + RETURN tmp[15:0] +} +FOR i := 0 to 31 + IF k[i] + dst.fp16[i] := ReduceArgumentFP16(a.fp16[i], imm8) + ELSE + dst.fp16[i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Miscellaneous +
+ + + + + Scale the packed half-precision (16-bit) floating-point elements in "a" using values from "b", and store the results in "dst". + DEFINE ScaleFP16(src1, src2) { + denormal1 := (a.exp == 0) and (a.fraction != 0) + denormal2 := (b.exp == 0) and (b.fraction != 0) + tmp1 := src1 + tmp2 := src2 + IF MXCSR.DAZ + IF denormal1 + tmp1 := 0 + FI + IF denormal2 + tmp2 := 0 + FI + FI + RETURN tmp1 * POW(2.0, FLOOR(tmp2)) +} +FOR i := 0 to 15 + dst.fp16[i] := ScaleFP16(a.fp16[i], b.fp16[i]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 +
immintrin.h
+ Miscellaneous +
+ + + + + + Scale the packed half-precision (16-bit) floating-point elements in "a" using values from "b", and store the results in "dst". + [round_note] + DEFINE ScaleFP16(src1, src2) { + denormal1 := (a.exp == 0) and (a.fraction != 0) + denormal2 := (b.exp == 0) and (b.fraction != 0) + tmp1 := src1 + tmp2 := src2 + IF MXCSR.DAZ + IF denormal1 + tmp1 := 0 + FI + IF denormal2 + tmp2 := 0 + FI + FI + RETURN tmp1 * POW(2.0, FLOOR(tmp2)) +} +FOR i := 0 to 15 + dst.fp16[i] := ScaleFP16(a.fp16[i], b.fp16[i]) +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 +
immintrin.h
+ Miscellaneous +
+ + + + + + + Scale the packed half-precision (16-bit) floating-point elements in "a" using values from "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + DEFINE ScaleFP16(src1, src2) { + denormal1 := (a.exp == 0) and (a.fraction != 0) + denormal2 := (b.exp == 0) and (b.fraction != 0) + tmp1 := src1 + tmp2 := src2 + IF MXCSR.DAZ + IF denormal1 + tmp1 := 0 + FI + IF denormal2 + tmp2 := 0 + FI + FI + RETURN tmp1 * POW(2.0, FLOOR(tmp2)) +} +FOR i := 0 to 15 + IF k[i] + dst.fp16[i] := ScaleFP16(a.fp16[i], b.fp16[i]) + ELSE + dst.fp16[i] := src.fp16[i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 +
immintrin.h
+ Miscellaneous +
+ + + + + + + + Scale the packed half-precision (16-bit) floating-point elements in "a" using values from "b", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + [round_note] + DEFINE ScaleFP16(src1, src2) { + denormal1 := (a.exp == 0) and (a.fraction != 0) + denormal2 := (b.exp == 0) and (b.fraction != 0) + tmp1 := src1 + tmp2 := src2 + IF MXCSR.DAZ + IF denormal1 + tmp1 := 0 + FI + IF denormal2 + tmp2 := 0 + FI + FI + RETURN tmp1 * POW(2.0, FLOOR(tmp2)) +} +FOR i := 0 to 15 + IF k[i] + dst.fp16[i] := ScaleFP16(a.fp16[i], b.fp16[i]) + ELSE + dst.fp16[i] := src.fp16[i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 +
immintrin.h
+ Miscellaneous +
+ + + + + + Scale the packed half-precision (16-bit) floating-point elements in "a" using values from "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + DEFINE ScaleFP16(src1, src2) { + denormal1 := (a.exp == 0) and (a.fraction != 0) + denormal2 := (b.exp == 0) and (b.fraction != 0) + tmp1 := src1 + tmp2 := src2 + IF MXCSR.DAZ + IF denormal1 + tmp1 := 0 + FI + IF denormal2 + tmp2 := 0 + FI + FI + RETURN tmp1 * POW(2.0, FLOOR(tmp2)) +} +FOR i := 0 to 15 + IF k[i] + dst.fp16[i] := ScaleFP16(a.fp16[i], b.fp16[i]) + ELSE + dst.fp16[i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 +
immintrin.h
+ Miscellaneous +
+ + + + + + + Scale the packed half-precision (16-bit) floating-point elements in "a" using values from "b", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + [round_note] + DEFINE ScaleFP16(src1, src2) { + denormal1 := (a.exp == 0) and (a.fraction != 0) + denormal2 := (b.exp == 0) and (b.fraction != 0) + tmp1 := src1 + tmp2 := src2 + IF MXCSR.DAZ + IF denormal1 + tmp1 := 0 + FI + IF denormal2 + tmp2 := 0 + FI + FI + RETURN tmp1 * POW(2.0, FLOOR(tmp2)) +} +FOR i := 0 to 15 + IF k[i] + dst.fp16[i] := ScaleFP16(a.fp16[i], b.fp16[i]) + ELSE + dst.fp16[i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_FP16 +
immintrin.h
+ Miscellaneous +
+ + + + + Scale the packed single-precision (32-bit) floating-point elements in "a" using values from "b", store the result in the lower element of "dst", and copy the upper 7 packed elements from "a" to the upper elements of "dst". + DEFINE ScaleFP16(src1, src2) { + denormal1 := (a.exp == 0) and (a.fraction != 0) + denormal2 := (b.exp == 0) and (b.fraction != 0) + tmp1 := src1 + tmp2 := src2 + IF MXCSR.DAZ + IF denormal1 + tmp1 := 0 + FI + IF denormal2 + tmp2 := 0 + FI + FI + RETURN tmp1 * POW(2.0, FLOOR(tmp2)) +} +dst.fp16[0] := ScaleFP16(a.fp16[0], b.fp16[0]) +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Miscellaneous +
+ + + + + + Scale the packed single-precision (32-bit) floating-point elements in "a" using values from "b", store the result in the lower element of "dst", and copy the upper 7 packed elements from "a" to the upper elements of "dst". + [round_note] + DEFINE ScaleFP16(src1, src2) { + denormal1 := (a.exp == 0) and (a.fraction != 0) + denormal2 := (b.exp == 0) and (b.fraction != 0) + tmp1 := src1 + tmp2 := src2 + IF MXCSR.DAZ + IF denormal1 + tmp1 := 0 + FI + IF denormal2 + tmp2 := 0 + FI + FI + RETURN tmp1 * POW(2.0, FLOOR(tmp2)) +} +dst.fp16[0] := ScaleFP16(a.fp16[0], b.fp16[0]) +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Miscellaneous +
+ + + + + + + Scale the packed single-precision (32-bit) floating-point elements in "a" using values from "b", store the result in the lower element of "dst" using writemask "k" (the element is copied from "src" when mask bit 0 is not set), and copy the upper 7 packed elements from "a" to the upper elements of "dst". + DEFINE ScaleFP16(src1, src2) { + denormal1 := (a.exp == 0) and (a.fraction != 0) + denormal2 := (b.exp == 0) and (b.fraction != 0) + tmp1 := src1 + tmp2 := src2 + IF MXCSR.DAZ + IF denormal1 + tmp1 := 0 + FI + IF denormal2 + tmp2 := 0 + FI + FI + RETURN tmp1 * POW(2.0, FLOOR(tmp2)) +} +IF k[0] + dst.fp16[0] := ScaleFP16(a.fp16[0], b.fp16[0]) +ELSE + dst.fp16[0] := src.fp16[0] +FI +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Miscellaneous +
+ + + + + + + + Scale the packed single-precision (32-bit) floating-point elements in "a" using values from "b", store the result in the lower element of "dst" using writemask "k" (the element is copied from "src" when mask bit 0 is not set), and copy the upper 7 packed elements from "a" to the upper elements of "dst". + [round_note] + DEFINE ScaleFP16(src1, src2) { + denormal1 := (a.exp == 0) and (a.fraction != 0) + denormal2 := (b.exp == 0) and (b.fraction != 0) + tmp1 := src1 + tmp2 := src2 + IF MXCSR.DAZ + IF denormal1 + tmp1 := 0 + FI + IF denormal2 + tmp2 := 0 + FI + FI + RETURN tmp1 * POW(2.0, FLOOR(tmp2)) +} +IF k[0] + dst.fp16[0] := ScaleFP16(a.fp16[0], b.fp16[0]) +ELSE + dst.fp16[0] := src.fp16[0] +FI +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Miscellaneous +
+ + + + + + Scale the packed single-precision (32-bit) floating-point elements in "a" using values from "b", store the result in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper 7 packed elements from "a" to the upper elements of "dst". + DEFINE ScaleFP16(src1, src2) { + denormal1 := (a.exp == 0) and (a.fraction != 0) + denormal2 := (b.exp == 0) and (b.fraction != 0) + tmp1 := src1 + tmp2 := src2 + IF MXCSR.DAZ + IF denormal1 + tmp1 := 0 + FI + IF denormal2 + tmp2 := 0 + FI + FI + RETURN tmp1 * POW(2.0, FLOOR(tmp2)) +} +IF k[0] + dst.fp16[0] := ScaleFP16(a.fp16[0], b.fp16[0]) +ELSE + dst.fp16[0] := 0 +FI +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Miscellaneous +
+ + + + + + + Scale the packed single-precision (32-bit) floating-point elements in "a" using values from "b", store the result in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper 7 packed elements from "a" to the upper elements of "dst". + [round_note] + DEFINE ScaleFP16(src1, src2) { + denormal1 := (a.exp == 0) and (a.fraction != 0) + denormal2 := (b.exp == 0) and (b.fraction != 0) + tmp1 := src1 + tmp2 := src2 + IF MXCSR.DAZ + IF denormal1 + tmp1 := 0 + FI + IF denormal2 + tmp2 := 0 + FI + FI + RETURN tmp1 * POW(2.0, FLOOR(tmp2)) +} +IF k[0] + dst.fp16[0] := ScaleFP16(a.fp16[0], b.fp16[0]) +ELSE + dst.fp16[0] := 0 +FI +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Miscellaneous +
+ + + + + Test packed half-precision (16-bit) floating-point elements in "a" for special categories specified by "imm8", and store the results in mask vector "k". + [fpclass_note] + FOR i := 0 to 31 + k[i] := CheckFPClass_FP16(a.fp16[i], imm8[7:0]) +ENDFOR +k[MAX:32] := 0 + + + AVX512_FP16 +
immintrin.h
+ Miscellaneous +
+ + + + + + Test packed half-precision (16-bit) floating-point elements in "a" for special categories specified by "imm8", and store the results in mask vector "k" using zeromask "k1" (elements are zeroed out when the corresponding mask bit is not set). + [fpclass_note] + FOR i := 0 to 31 + IF k1[i] + k[i] := CheckFPClass_FP16(a.fp16[i], imm8[7:0]) + ELSE + k[i] := 0 + FI +ENDFOR +k[MAX:32] := 0 + + + AVX512_FP16 +
immintrin.h
+ Miscellaneous +
+ + + + + Test the lower half-precision (16-bit) floating-point element in "a" for special categories specified by "imm8", and store the result in mask vector "k". + [fpclass_note] + k[0] := CheckFPClass_FP16(a.fp16[0], imm8[7:0]) +k[MAX:1] := 0 + + + AVX512_FP16 +
immintrin.h
+ Miscellaneous +
+ + + + + + Test the lower half-precision (16-bit) floating-point element in "a" for special categories specified by "imm8", and store the result in mask vector "k" using zeromask "k1" (the element is zeroed out when mask bit 0 is not set). + [fpclass_note] + IF k1[0] + k[0] := CheckFPClass_FP16(a.fp16[0], imm8[7:0]) +ELSE + k[0] := 0 +FI +k[MAX:1] := 0 + + + AVX512_FP16 +
immintrin.h
+ Miscellaneous +
+ + + + + + Shuffle half-precision (16-bit) floating-point elements in "a" and "b" across lanes using the corresponding selector and index in "idx", and store the results in "dst". + +FOR j := 0 to 31 + i := j*16 + off := idx[i+4:i] + dst.fp16[j] := idx[i+5] ? b.fp16[off] : a.fp16[off] +ENDFOR +dst[MAX:512] := 0 + + + + AVX512_FP16 +
immintrin.h
+ Miscellaneous +
+ + + + + + Blend packed half-precision (16-bit) floating-point elements from "a" and "b" using control mask "k", and store the results in "dst". + +FOR j := 0 to 31 + IF k[j] + dst.fp16[j] := b.fp16[j] + ELSE + dst.fp16[j] := a.fp16[j] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Miscellaneous +
+ + + + + Shuffle half-precision (16-bit) floating-point elements in "a" across lanes using the corresponding index in "idx", and store the results in "dst". + +FOR j := 0 to 31 + i := j*16 + id := idx[i+4:i] + dst.fp16[j] := a.fp16[id] +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Miscellaneous +
+ + + + Compute the approximate reciprocal square root of packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst". The maximum relative error for this approximation is less than 1.5*2^-12. + +FOR i := 0 to 31 + dst.fp16[i] := (1.0 / SQRT(a.fp16[i])) +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Elementary Math Functions +
+ + + + + + Compute the approximate reciprocal square root of packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). The maximum relative error for this approximation is less than 1.5*2^-12. + +FOR i := 0 to 31 + IF k[i] + dst.fp16[i] := (1.0 / SQRT(a.fp16[i])) + ELSE + dst.fp16[i] := src.fp16[i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Elementary Math Functions +
+ + + + + Compute the approximate reciprocal square root of packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). The maximum relative error for this approximation is less than 1.5*2^-12. + +FOR i := 0 to 31 + IF k[i] + dst.fp16[i] := (1.0 / SQRT(a.fp16[i])) + ELSE + dst.fp16[i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Elementary Math Functions +
+ + + + + Compute the approximate reciprocal square root of the lower half-precision (16-bit) floating-point element in "b", store the result in the lower element of "dst", and copy the upper 7 packed elements from "a" to the upper elements of "dst". The maximum relative error for this approximation is less than 1.5*2^-12. + +dst.fp16[0] := (1.0 / SQRT(b.fp16[0])) +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Elementary Math Functions +
+ + + + + + + Compute the approximate reciprocal square root of the lower half-precision (16-bit) floating-point element in "b", store the result in the lower element of "dst" using writemask "k" (the element is copied from "src" when mask bit 0 is not set), and copy the upper 7 packed elements from "a" to the upper elements of "dst". The maximum relative error for this approximation is less than 1.5*2^-12. + +IF k[0] + dst.fp16[0] := (1.0 / SQRT(b.fp16[0])) +ELSE + dst.fp16[0] := src.fp16[0] +FI +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Elementary Math Functions +
+ + + + + + Compute the approximate reciprocal square root of the lower half-precision (16-bit) floating-point element in "b", store the result in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper 7 packed elements from "a" to the upper elements of "dst". The maximum relative error for this approximation is less than 1.5*2^-12. + +IF k[0] + dst.fp16[0] := (1.0 / SQRT(b.fp16[0])) +ELSE + dst.fp16[0] := 0 +FI +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Elementary Math Functions +
+ + + + Compute the square root of packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst". + +FOR i := 0 to 31 + dst.fp16[i] := SQRT(a.fp16[i]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Elementary Math Functions +
+ + + + + Compute the square root of packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst". + [round_note] + +FOR i := 0 to 31 + dst.fp16[i] := SQRT(a.fp16[i]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Elementary Math Functions +
+ + + + + + Compute the square root of packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR i := 0 to 31 + IF k[i] + dst.fp16[i] := SQRT(a.fp16[i]) + ELSE + dst.fp16[i] := src.fp16[i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Elementary Math Functions +
+ + + + + + + Compute the square root of packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + [round_note] + +FOR i := 0 to 31 + IF k[i] + dst.fp16[i] := SQRT(a.fp16[i]) + ELSE + dst.fp16[i] := src.fp16[i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Elementary Math Functions +
+ + + + + Compute the square root of packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR i := 0 to 31 + IF k[i] + dst.fp16[i] := SQRT(a.fp16[i]) + ELSE + dst.fp16[i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Elementary Math Functions +
+ + + + + + Compute the square root of packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + [round_note] + +FOR i := 0 to 31 + IF k[i] + dst.fp16[i] := SQRT(a.fp16[i]) + ELSE + dst.fp16[i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Elementary Math Functions +
+ + + + + Compute the square root of the lower half-precision (16-bit) floating-point element in "b", store the result in the lower element of "dst", and copy the upper 7 packed elements from "a" to the upper elements of "dst". + +dst.fp16[0] := SQRT(b.fp16[0]) +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Elementary Math Functions +
+ + + + + + Compute the square root of the lower half-precision (16-bit) floating-point element in "b", store the result in the lower element of "dst", and copy the upper 7 packed elements from "a" to the upper elements of "dst". + [round_note] + +dst.fp16[0] := SQRT(b.fp16[0]) +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Elementary Math Functions +
+ + + + + + + Compute the square root of the lower half-precision (16-bit) floating-point element in "b", store the result in the lower element of "dst" using writemask "k" (the element is copied from "src" when mask bit 0 is not set), and copy the upper 7 packed elements from "a" to the upper elements of "dst". + +IF k[0] + dst.fp16[0] := SQRT(b.fp16[0]) +ELSE + dst.fp16[0] := src.fp16[0] +FI +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Elementary Math Functions +
+ + + + + + + + Compute the square root of the lower half-precision (16-bit) floating-point element in "b", store the result in the lower element of "dst" using writemask "k" (the element is copied from "src" when mask bit 0 is not set), and copy the upper 7 packed elements from "a" to the upper elements of "dst". + [round_note] + +IF k[0] + dst.fp16[0] := SQRT(b.fp16[0]) +ELSE + dst.fp16[0] := src.fp16[0] +FI +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Elementary Math Functions +
+ + + + + + Compute the square root of the lower half-precision (16-bit) floating-point element in "b", store the result in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper 7 packed elements from "a" to the upper elements of "dst". + +IF k[0] + dst.fp16[0] := SQRT(b.fp16[0]) +ELSE + dst.fp16[0] := 0 +FI +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Elementary Math Functions +
+ + + + + + + Compute the square root of the lower half-precision (16-bit) floating-point element in "b", store the result in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper 7 packed elements from "a" to the upper elements of "dst". + [round_note] + +IF k[0] + dst.fp16[0] := SQRT(b.fp16[0]) +ELSE + dst.fp16[0] := 0 +FI +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Elementary Math Functions +
+ + + + Compute the approximate reciprocal of packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst". The maximum relative error for this approximation is less than 1.5*2^-12. + +FOR i := 0 to 31 + dst.fp16[i] := (1.0 / a.fp16[i]) +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Elementary Math Functions +
+ + + + + + Compute the approximate reciprocal of packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). The maximum relative error for this approximation is less than 1.5*2^-12. + +FOR i := 0 to 31 + IF k[i] + dst.fp16[i] := (1.0 / a.fp16[i]) + ELSE + dst.fp16[i] := src.fp16[i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Elementary Math Functions +
+ + + + + Compute the approximate reciprocal of packed half-precision (16-bit) floating-point elements in "a", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). The maximum relative error for this approximation is less than 1.5*2^-12. + +FOR i := 0 to 31 + IF k[i] + dst.fp16[i] := (1.0 / a.fp16[i]) + ELSE + dst.fp16[i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_FP16 +
immintrin.h
+ Elementary Math Functions +
+ + + + + Compute the approximate reciprocal of the lower half-precision (16-bit) floating-point element in "a", store the result in the lower element of "dst", and copy the upper 7 packed elements from "a" to the upper elements of "dst". The maximum relative error for this approximation is less than 1.5*2^-12. + +dst.fp16[0] := (1.0 / b.fp16[0]) +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Elementary Math Functions +
+ + + + + + + Compute the approximate reciprocal of the lower half-precision (16-bit) floating-point element in "a", store the result in the lower element of "dst" using writemask "k" (the element is copied from "src" when mask bit 0 is not set), and copy the upper 7 packed elements from "a" to the upper elements of "dst". The maximum relative error for this approximation is less than 1.5*2^-12. + +IF k[0] + dst.fp16[0] := (1.0 / b.fp16[0]) +ELSE + dst.fp16[0] := src.fp16[0] +FI +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Elementary Math Functions +
+ + + + + + Compute the approximate reciprocal of the lower half-precision (16-bit) floating-point element in "a", store the result in the lower element of "dst" using zeromask "k" (the element is zeroed out when mask bit 0 is not set), and copy the upper 7 packed elements from "a" to the upper elements of "dst". The maximum relative error for this approximation is less than 1.5*2^-12. + +IF k[0] + dst.fp16[0] := (1.0 / b.fp16[0]) +ELSE + dst.fp16[0] := 0 +FI +dst[127:16] := a[127:16] +dst[MAX:128] := 0 + + + AVX512_FP16 +
immintrin.h
+ Elementary Math Functions +
+ + + + + + + + + + + Set packed half-precision (16-bit) floating-point elements in "dst" with the supplied values. + +dst.fp16[0] := e0 +dst.fp16[1] := e1 +dst.fp16[2] := e2 +dst.fp16[3] := e3 +dst.fp16[4] := e4 +dst.fp16[5] := e5 +dst.fp16[6] := e6 +dst.fp16[7] := e7 + + AVX512_FP16 +
immintrin.h
+ Set +
+ + + + + + + + + + + + + + + + + + + Set packed half-precision (16-bit) floating-point elements in "dst" with the supplied values. + +dst.fp16[0] := e0 +dst.fp16[1] := e1 +dst.fp16[2] := e2 +dst.fp16[3] := e3 +dst.fp16[4] := e4 +dst.fp16[5] := e5 +dst.fp16[6] := e6 +dst.fp16[7] := e7 +dst.fp16[8] := e8 +dst.fp16[9] := e9 +dst.fp16[10] := e10 +dst.fp16[11] := e11 +dst.fp16[12] := e12 +dst.fp16[13] := e13 +dst.fp16[14] := e14 +dst.fp16[15] := e15 + + AVX512_FP16 +
immintrin.h
+ Set +
+ + + + + + + + + + + + + + + + + + + + + + + + + + + + + + + + + + + Set packed half-precision (16-bit) floating-point elements in "dst" with the supplied values. + +dst.fp16[0] := e0 +dst.fp16[1] := e1 +dst.fp16[2] := e2 +dst.fp16[3] := e3 +dst.fp16[4] := e4 +dst.fp16[5] := e5 +dst.fp16[6] := e6 +dst.fp16[7] := e7 +dst.fp16[8] := e8 +dst.fp16[9] := e9 +dst.fp16[10] := e10 +dst.fp16[11] := e11 +dst.fp16[12] := e12 +dst.fp16[13] := e13 +dst.fp16[14] := e14 +dst.fp16[15] := e15 +dst.fp16[16] := e16 +dst.fp16[17] := e17 +dst.fp16[18] := e18 +dst.fp16[19] := e19 +dst.fp16[20] := e20 +dst.fp16[21] := e21 +dst.fp16[22] := e22 +dst.fp16[23] := e23 +dst.fp16[24] := e24 +dst.fp16[25] := e25 +dst.fp16[26] := e26 +dst.fp16[27] := e27 +dst.fp16[28] := e28 +dst.fp16[29] := e29 +dst.fp16[30] := e30 +dst.fp16[31] := e31 + + AVX512_FP16 +
immintrin.h
+ Set +
+ + + + + + + + + + + Set packed half-precision (16-bit) floating-point elements in "dst" with the supplied values in reverse order. + +dst.fp16[0] := e7 +dst.fp16[1] := e6 +dst.fp16[2] := e5 +dst.fp16[3] := e4 +dst.fp16[4] := e3 +dst.fp16[5] := e2 +dst.fp16[6] := e1 +dst.fp16[7] := e0 + + AVX512_FP16 +
immintrin.h
+ Set +
+ + + + + + + + + + + + + + + + + + + Set packed half-precision (16-bit) floating-point elements in "dst" with the supplied values in reverse order. + +dst.fp16[0] := e15 +dst.fp16[1] := e14 +dst.fp16[2] := e13 +dst.fp16[3] := e12 +dst.fp16[4] := e11 +dst.fp16[5] := e10 +dst.fp16[6] := e9 +dst.fp16[7] := e8 +dst.fp16[8] := e7 +dst.fp16[9] := e6 +dst.fp16[10] := e5 +dst.fp16[11] := e4 +dst.fp16[12] := e3 +dst.fp16[13] := e2 +dst.fp16[14] := e1 +dst.fp16[15] := e0 + + AVX512_FP16 +
immintrin.h
+ Set +
+ + + + + + + + + + + + + + + + + + + + + + + + + + + + + + + + + + + Set packed half-precision (16-bit) floating-point elements in "dst" with the supplied values in reverse order. + +dst.fp16[0] := e31 +dst.fp16[1] := e30 +dst.fp16[2] := e29 +dst.fp16[3] := e28 +dst.fp16[4] := e27 +dst.fp16[5] := e26 +dst.fp16[6] := e25 +dst.fp16[7] := e24 +dst.fp16[8] := e23 +dst.fp16[9] := e22 +dst.fp16[10] := e21 +dst.fp16[11] := e20 +dst.fp16[12] := e19 +dst.fp16[13] := e18 +dst.fp16[14] := e17 +dst.fp16[15] := e16 +dst.fp16[16] := e15 +dst.fp16[17] := e14 +dst.fp16[18] := e13 +dst.fp16[19] := e12 +dst.fp16[20] := e11 +dst.fp16[21] := e10 +dst.fp16[22] := e9 +dst.fp16[23] := e8 +dst.fp16[24] := e7 +dst.fp16[25] := e6 +dst.fp16[26] := e5 +dst.fp16[27] := e4 +dst.fp16[28] := e3 +dst.fp16[29] := e2 +dst.fp16[30] := e1 +dst.fp16[31] := e0 + + AVX512_FP16 +
immintrin.h
+ Set +
+ + + + Broadcast half-precision (16-bit) floating-point value "a" to all elements of "dst". + +FOR i := 0 to 7 + dst.fp16[i] := a[15:0] +ENDFOR +dst[MAX:128] := 0 + + AVX512_FP16 +
immintrin.h
+ Set +
+ + + + Broadcast half-precision (16-bit) floating-point value "a" to all elements of "dst". + +FOR i := 0 to 15 + dst.fp16[i] := a[15:0] +ENDFOR +dst[MAX:256] := 0 + + AVX512_FP16 +
immintrin.h
+ Set +
+ + + + Broadcast half-precision (16-bit) floating-point value "a" to all elements of "dst". + +FOR i := 0 to 31 + dst.fp16[i] := a[15:0] +ENDFOR +dst[MAX:512] := 0 + + AVX512_FP16 +
immintrin.h
+ Set +
+ + + + Broadcast half-precision (16-bit) complex floating-point value "a" to all elements of "dst". + +FOR i := 0 to 3 + dst.fp16[2*i+0] := a[15:0] + dst.fp16[2*i+1] := a[31:16] +ENDFOR +dst[MAX:128] := 0 + + AVX512_FP16 +
immintrin.h
+ Set +
+ + + + Broadcast half-precision (16-bit) complex floating-point value "a" to all elements of "dst". + +FOR i := 0 to 7 + dst.fp16[2*i+0] := a[15:0] + dst.fp16[2*i+1] := a[31:16] +ENDFOR +dst[MAX:256] := 0 + + AVX512_FP16 +
immintrin.h
+ Set +
+ + + + Broadcast half-precision (16-bit) complex floating-point value "a" to all elements of "dst". + +FOR i := 0 to 15 + dst.fp16[2*i+0] := a[15:0] + dst.fp16[2*i+1] := a[31:16] +ENDFOR +dst[MAX:512] := 0 + + AVX512_FP16 +
immintrin.h
+ Set +
+ + + + Copy half-precision (16-bit) floating-point element "a" to the lower element of "dst", and zero the upper 7 elements. + +dst.fp16[0] := a[15:0] +dst[127:16] := 0 + + AVX512_FP16 +
immintrin.h
+ Set +
+ + + Return vector of type __m512h with all elements set to zero. + +dst[MAX:0] := 0 + + + AVX512_FP16 +
immintrin.h
+ Set +
+ + + + Cast vector of type "__m128h" to type "__m128". This intrinsic is only used for compilation and does not generate any instructions, thus it has zero latency. + AVX512_FP16 +
immintrin.h
+ Cast +
+ + + + Cast vector of type "__m256h" to type "__m256". This intrinsic is only used for compilation and does not generate any instructions, thus it has zero latency. + AVX512_FP16 +
immintrin.h
+ Cast +
+ + + + Cast vector of type "__m512h" to type "__m512". This intrinsic is only used for compilation and does not generate any instructions, thus it has zero latency. + AVX512_FP16 +
immintrin.h
+ Cast +
+ + + + Cast vector of type "__m128h" to type "__m128d". This intrinsic is only used for compilation and does not generate any instructions, thus it has zero latency. + AVX512_FP16 +
immintrin.h
+ Cast +
+ + + + Cast vector of type "__m256h" to type "__m256d". This intrinsic is only used for compilation and does not generate any instructions, thus it has zero latency. + AVX512_FP16 +
immintrin.h
+ Cast +
+ + + + Cast vector of type "__m512h" to type "__m512d". This intrinsic is only used for compilation and does not generate any instructions, thus it has zero latency. + AVX512_FP16 +
immintrin.h
+ Cast +
+ + + + Cast vector of type "__m128h" to type "__m128i". This intrinsic is only used for compilation and does not generate any instructions, thus it has zero latency. + AVX512_FP16 +
immintrin.h
+ Cast +
+ + + + Cast vector of type "__m256h" to type "__m256i". This intrinsic is only used for compilation and does not generate any instructions, thus it has zero latency. + AVX512_FP16 +
immintrin.h
+ Cast +
+ + + + Cast vector of type "__m512h" to type "__m512i". This intrinsic is only used for compilation and does not generate any instructions, thus it has zero latency. + AVX512_FP16 +
immintrin.h
+ Cast +
+ + + + Cast vector of type "__m128" to type "__m128h". This intrinsic is only used for compilation and does not generate any instructions, thus it has zero latency. + AVX512_FP16 +
immintrin.h
+ Cast +
+ + + + Cast vector of type "__m256" to type "__m256h". This intrinsic is only used for compilation and does not generate any instructions, thus it has zero latency. + AVX512_FP16 +
immintrin.h
+ Cast +
+ + + + Cast vector of type "__m512" to type "__m512h". This intrinsic is only used for compilation and does not generate any instructions, thus it has zero latency. + AVX512_FP16 +
immintrin.h
+ Cast +
+ + + + Cast vector of type "__m128d" to type "__m128h". This intrinsic is only used for compilation and does not generate any instructions, thus it has zero latency. + AVX512_FP16 +
immintrin.h
+ Cast +
+ + + + Cast vector of type "__m256d" to type "__m256h". This intrinsic is only used for compilation and does not generate any instructions, thus it has zero latency. + AVX512_FP16 +
immintrin.h
+ Cast +
+ + + + Cast vector of type "__m512d" to type "__m512h". This intrinsic is only used for compilation and does not generate any instructions, thus it has zero latency. + AVX512_FP16 +
immintrin.h
+ Cast +
+ + + + Cast vector of type "__m128i" to type "__m128h". This intrinsic is only used for compilation and does not generate any instructions, thus it has zero latency. + AVX512_FP16 +
immintrin.h
+ Cast +
+ + + + Cast vector of type "__m256i" to type "__m256h". This intrinsic is only used for compilation and does not generate any instructions, thus it has zero latency. + AVX512_FP16 +
immintrin.h
+ Cast +
+ + + + Cast vector of type "__m512i" to type "__m512h". This intrinsic is only used for compilation and does not generate any instructions, thus it has zero latency. + AVX512_FP16 +
immintrin.h
+ Cast +
+ + + + Cast vector of type "__m256h" to type "__m128h". This intrinsic is only used for compilation and does not generate any instructions, thus it has zero latency. + AVX512_FP16 +
immintrin.h
+ Cast +
+ + + + Cast vector of type "__m512h" to type "__m128h". This intrinsic is only used for compilation and does not generate any instructions, thus it has zero latency. + AVX512_FP16 +
immintrin.h
+ Cast +
+ + + + Cast vector of type "__m512h" to type "__m256h". This intrinsic is only used for compilation and does not generate any instructions, thus it has zero latency. + AVX512_FP16 +
immintrin.h
+ Cast +
+ + + + Cast vector of type "__m128h" to type "__m256h". This intrinsic is only used for compilation and does not generate any instructions, thus it has zero latency. + AVX512_FP16 +
immintrin.h
+ Cast +
+ + + + Cast vector of type "__m128h" to type "__m512h". This intrinsic is only used for compilation and does not generate any instructions, thus it has zero latency. + AVX512_FP16 +
immintrin.h
+ Cast +
+ + + + Cast vector of type "__m256h" to type "__m512h". This intrinsic is only used for compilation and does not generate any instructions, thus it has zero latency. + AVX512_FP16 +
immintrin.h
+ Cast +
+ + + + Cast vector of type "__m128h" to type "__m256h"; the upper 128 bits of the result are zeroed. This intrinsic is only used for compilation and does not generate any instructions, thus it has zero latency. + AVX512_FP16 +
immintrin.h
+ Cast +
+ + + + Cast vector of type "__m128h" to type "__m512h"; the upper 128 bits of the result are zeroed. This intrinsic is only used for compilation and does not generate any instructions, thus it has zero latency. + AVX512_FP16 +
immintrin.h
+ Cast +
+ + + + Cast vector of type "__m256h" to type "__m512h"; the upper 128 bits of the result are zeroed. This intrinsic is only used for compilation and does not generate any instructions, thus it has zero latency. + AVX512_FP16 +
immintrin.h
+ Cast +
+ + + Return vector of type __m512h with undefined elements. + AVX512_FP16 +
immintrin.h
+ General Support +
+ + + + + + + For each 64-bit element in "b", select 8 unaligned bytes using a byte-granular shift control within the corresponding 64-bit element of "a", and store the 8 assembled bytes to the corresponding 64-bit element of "dst". + +FOR i := 0 to 3 + q := i * 64 + FOR j := 0 to 7 + tmp8 := 0 + ctrl := a[q+j*8+7:q+j*8] & 63 + FOR l := 0 to 7 + tmp8[l] := b[q+((ctrl+l) & 63)] + ENDFOR + dst[q+j*8+7:q+j*8] := tmp8[7:0] + ENDFOR +ENDFOR +dst[MAX:256] := 0 + + + AVX512_VBMI + AVX512VL +
immintrin.h
+ Bit Manipulation +
+ + + + + + + For each 64-bit element in "b", select 8 unaligned bytes using a byte-granular shift control within the corresponding 64-bit element of "a", and store the 8 assembled bytes to the corresponding 64-bit element of "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR i := 0 to 3 + q := i * 64 + FOR j := 0 to 7 + tmp8 := 0 + ctrl := a[q+j*8+7:q+j*8] & 63 + FOR l := 0 to 7 + tmp8[l] := b[q+((ctrl+l) & 63)] + ENDFOR + IF k[i*8+j] + dst[q+j*8+7:q+j*8] := tmp8[7:0] + ELSE + dst[q+j*8+7:q+j*8] := src[q+j*8+7:q+j*8] + FI + ENDFOR +ENDFOR +dst[MAX:256] := 0 + + + AVX512_VBMI + AVX512VL +
immintrin.h
+ Bit Manipulation +
+ + + + + + For each 64-bit element in "b", select 8 unaligned bytes using a byte-granular shift control within the corresponding 64-bit element of "a", and store the 8 assembled bytes to the corresponding 64-bit element of "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR i := 0 to 3 + q := i * 64 + FOR j := 0 to 7 + tmp8 := 0 + ctrl := a[q+j*8+7:q+j*8] & 63 + FOR l := 0 to 7 + tmp8[l] := b[q+((ctrl+l) & 63)] + ENDFOR + IF k[i*8+j] + dst[q+j*8+7:q+j*8] := tmp8[7:0] + ELSE + dst[q+j*8+7:q+j*8] := 0 + FI + ENDFOR +ENDFOR +dst[MAX:256] := 0 + + + AVX512_VBMI + AVX512VL +
immintrin.h
+ Bit Manipulation +
+ + + + + For each 64-bit element in "b", select 8 unaligned bytes using a byte-granular shift control within the corresponding 64-bit element of "a", and store the 8 assembled bytes to the corresponding 64-bit element of "dst". + +FOR i := 0 to 1 + q := i * 64 + FOR j := 0 to 7 + tmp8 := 0 + ctrl := a[q+j*8+7:q+j*8] & 63 + FOR l := 0 to 7 + tmp8[l] := b[q+((ctrl+l) & 63)] + ENDFOR + dst[q+j*8+7:q+j*8] := tmp8[7:0] + ENDFOR +ENDFOR +dst[MAX:128] := 0 + + + AVX512_VBMI + AVX512VL +
immintrin.h
+ Bit Manipulation +
+ + + + + + + For each 64-bit element in "b", select 8 unaligned bytes using a byte-granular shift control within the corresponding 64-bit element of "a", and store the 8 assembled bytes to the corresponding 64-bit element of "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR i := 0 to 1 + q := i * 64 + FOR j := 0 to 7 + tmp8 := 0 + ctrl := a[q+j*8+7:q+j*8] & 63 + FOR l := 0 to 7 + tmp8[l] := b[q+((ctrl+l) & 63)] + ENDFOR + IF k[i*8+j] + dst[q+j*8+7:q+j*8] := tmp8[7:0] + ELSE + dst[q+j*8+7:q+j*8] := src[q+j*8+7:q+j*8] + FI + ENDFOR +ENDFOR +dst[MAX:128] := 0 + + + AVX512_VBMI + AVX512VL +
immintrin.h
+ Bit Manipulation +
+ + + + + + For each 64-bit element in "b", select 8 unaligned bytes using a byte-granular shift control within the corresponding 64-bit element of "a", and store the 8 assembled bytes to the corresponding 64-bit element of "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR i := 0 to 1 + q := i * 64 + FOR j := 0 to 7 + tmp8 := 0 + ctrl := a[q+j*8+7:q+j*8] & 63 + FOR l := 0 to 7 + tmp8[l] := b[q+((ctrl+l) & 63)] + ENDFOR + IF k[i*8+j] + dst[q+j*8+7:q+j*8] := tmp8[7:0] + ELSE + dst[q+j*8+7:q+j*8] := 0 + FI + ENDFOR +ENDFOR +dst[MAX:128] := 0 + + + AVX512_VBMI + AVX512VL +
immintrin.h
+ Bit Manipulation +
+ + + + + Shuffle 8-bit integers in "a" across lanes using the corresponding index in "idx", and store the results in "dst". + +FOR j := 0 to 31 + i := j*8 + id := idx[i+4:i]*8 + dst[i+7:i] := a[id+7:id] +ENDFOR +dst[MAX:256] := 0 + + + AVX512_VBMI + AVX512VL +
immintrin.h
+ Swizzle +
+ + + + + + + Shuffle 8-bit integers in "a" across lanes using the corresponding index in "idx", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*8 + id := idx[i+4:i]*8 + IF k[j] + dst[i+7:i] := a[id+7:id] + ELSE + dst[i+7:i] := src[i+7:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_VBMI + AVX512VL +
immintrin.h
+ Swizzle +
+ + + + + + Shuffle 8-bit integers in "a" across lanes using the corresponding index in "idx", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*8 + id := idx[i+4:i]*8 + IF k[j] + dst[i+7:i] := a[id+7:id] + ELSE + dst[i+7:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_VBMI + AVX512VL +
immintrin.h
+ Swizzle +
+ + + + + Shuffle 8-bit integers in "a" using the corresponding index in "idx", and store the results in "dst". + +FOR j := 0 to 15 + i := j*8 + id := idx[i+3:i]*8 + dst[i+7:i] := a[id+7:id] +ENDFOR +dst[MAX:128] := 0 + + + AVX512_VBMI + AVX512VL +
immintrin.h
+ Swizzle +
+ + + + + + + Shuffle 8-bit integers in "a" using the corresponding index in "idx", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*8 + id := idx[i+3:i]*8 + IF k[j] + dst[i+7:i] := a[id+7:id] + ELSE + dst[i+7:i] := src[i+7:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_VBMI + AVX512VL +
immintrin.h
+ Swizzle +
+ + + + + + Shuffle 8-bit integers in "a" using the corresponding index in "idx", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*8 + id := idx[i+3:i]*8 + IF k[j] + dst[i+7:i] := a[id+7:id] + ELSE + dst[i+7:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_VBMI + AVX512VL +
immintrin.h
+ Swizzle +
+ + + + + + Shuffle 8-bit integers in "a" and "b" across lanes using the corresponding selector and index in "idx", and store the results in "dst". + +FOR j := 0 to 31 + i := j*8 + off := 8*idx[i+4:i] + dst[i+7:i] := idx[i+5] ? b[off+7:off] : a[off+7:off] +ENDFOR +dst[MAX:256] := 0 + + + AVX512_VBMI + AVX512VL +
immintrin.h
+ Swizzle +
+ + + + + + + Shuffle 8-bit integers in "a" and "b" across lanes using the corresponding selector and index in "idx", and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*8 + IF k[j] + off := 8*idx[i+4:i] + dst[i+7:i] := idx[i+5] ? b[off+7:off] : a[off+7:off] + ELSE + dst[i+7:i] := a[i+7:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_VBMI + AVX512VL +
immintrin.h
+ Swizzle +
+ + + + + + + Shuffle 8-bit integers in "a" and "b" across lanes using the corresponding selector and index in "idx", and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*8 + IF k[j] + off := 8*idx[i+4:i] + dst[i+7:i] := idx[i+5] ? b[off+7:off] : a[off+7:off] + ELSE + dst[i+7:i] := idx[i+7:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_VBMI + AVX512VL +
immintrin.h
+ Swizzle +
+ + + + + + + Shuffle 8-bit integers in "a" and "b" across lanes using the corresponding selector and index in "idx", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*8 + IF k[j] + off := 8*idx[i+4:i] + dst[i+7:i] := idx[i+5] ? b[off+7:off] : a[off+7:off] + ELSE + dst[i+7:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + + AVX512_VBMI + AVX512VL +
immintrin.h
+ Swizzle +
+ + + + + + Shuffle 8-bit integers in "a" and "b" using the corresponding selector and index in "idx", and store the results in "dst". + +FOR j := 0 to 15 + i := j*8 + off := 8*idx[i+3:i] + dst[i+7:i] := idx[i+4] ? b[off+7:off] : a[off+7:off] +ENDFOR +dst[MAX:128] := 0 + + + AVX512_VBMI + AVX512VL +
immintrin.h
+ Swizzle +
+ + + + + + + Shuffle 8-bit integers in "a" and "b" using the corresponding selector and index in "idx", and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*8 + IF k[j] + off := 8*idx[i+3:i] + dst[i+7:i] := idx[i+4] ? b[off+7:off] : a[off+7:off] + ELSE + dst[i+7:i] := a[i+7:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_VBMI + AVX512VL +
immintrin.h
+ Swizzle +
+ + + + + + + Shuffle 8-bit integers in "a" and "b" using the corresponding selector and index in "idx", and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*8 + IF k[j] + off := 8*idx[i+3:i] + dst[i+7:i] := idx[i+4] ? b[off+7:off] : a[off+7:off] + ELSE + dst[i+7:i] := idx[i+7:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_VBMI + AVX512VL +
immintrin.h
+ Swizzle +
+ + + + + + + Shuffle 8-bit integers in "a" and "b" using the corresponding selector and index in "idx", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*8 + IF k[j] + off := 8*idx[i+3:i] + dst[i+7:i] := idx[i+4] ? b[off+7:off] : a[off+7:off] + ELSE + dst[i+7:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + + AVX512_VBMI + AVX512VL +
immintrin.h
+ Swizzle +
+ + + + + + + For each 64-bit element in "b", select 8 unaligned bytes using a byte-granular shift control within the corresponding 64-bit element of "a", and store the 8 assembled bytes to the corresponding 64-bit element of "dst". + +FOR i := 0 to 7 + q := i * 64 + FOR j := 0 to 7 + tmp8 := 0 + ctrl := a[q+j*8+7:q+j*8] & 63 + FOR l := 0 to 7 + tmp8[l] := b[q+((ctrl+l) & 63)] + ENDFOR + dst[q+j*8+7:q+j*8] := tmp8[7:0] + ENDFOR +ENDFOR +dst[MAX:512] := 0 + + + AVX512_VBMI +
immintrin.h
+ Bit Manipulation +
+ + + + + + + For each 64-bit element in "b", select 8 unaligned bytes using a byte-granular shift control within the corresponding 64-bit element of "a", and store the 8 assembled bytes to the corresponding 64-bit element of "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR i := 0 to 7 + q := i * 64 + FOR j := 0 to 7 + tmp8 := 0 + ctrl := a[q+j*8+7:q+j*8] & 63 + FOR l := 0 to 7 + tmp8[l] := b[q+((ctrl+l) & 63)] + ENDFOR + IF k[i*8+j] + dst[q+j*8+7:q+j*8] := tmp8[7:0] + ELSE + dst[q+j*8+7:q+j*8] := src[q+j*8+7:q+j*8] + FI + ENDFOR +ENDFOR +dst[MAX:512] := 0 + + + AVX512_VBMI +
immintrin.h
+ Bit Manipulation +
+ + + + + + For each 64-bit element in "b", select 8 unaligned bytes using a byte-granular shift control within the corresponding 64-bit element of "a", and store the 8 assembled bytes to the corresponding 64-bit element of "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR i := 0 to 7 + q := i * 64 + FOR j := 0 to 7 + tmp8 := 0 + ctrl := a[q+j*8+7:q+j*8] & 63 + FOR l := 0 to 7 + tmp8[l] := b[q+((ctrl+l) & 63)] + ENDFOR + IF k[i*8+j] + dst[q+j*8+7:q+j*8] := tmp8[7:0] + ELSE + dst[q+j*8+7:q+j*8] := 0 + FI + ENDFOR +ENDFOR +dst[MAX:512] := 0 + + + AVX512_VBMI +
immintrin.h
+ Bit Manipulation +
+ + + + + Shuffle 8-bit integers in "a" across lanes using the corresponding index in "idx", and store the results in "dst". + +FOR j := 0 to 63 + i := j*8 + id := idx[i+5:i]*8 + dst[i+7:i] := a[id+7:id] +ENDFOR +dst[MAX:512] := 0 + + + AVX512_VBMI +
immintrin.h
+ Swizzle +
+ + + + + + + Shuffle 8-bit integers in "a" across lanes using the corresponding index in "idx", and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 63 + i := j*8 + id := idx[i+5:i]*8 + IF k[j] + dst[i+7:i] := a[id+7:id] + ELSE + dst[i+7:i] := src[i+7:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_VBMI +
immintrin.h
+ Swizzle +
+ + + + + + Shuffle 8-bit integers in "a" across lanes using the corresponding index in "idx", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 63 + i := j*8 + id := idx[i+5:i]*8 + IF k[j] + dst[i+7:i] := a[id+7:id] + ELSE + dst[i+7:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_VBMI +
immintrin.h
+ Swizzle +
+ + + + + + Shuffle 8-bit integers in "a" and "b" across lanes using the corresponding selector and index in "idx", and store the results in "dst". + +FOR j := 0 to 63 + i := j*8 + off := 8*idx[i+5:i] + dst[i+7:i] := idx[i+6] ? b[off+7:off] : a[off+7:off] +ENDFOR +dst[MAX:512] := 0 + + + AVX512_VBMI +
immintrin.h
+ Swizzle +
+ + + + + + + Shuffle 8-bit integers in "a" and "b" across lanes using the corresponding selector and index in "idx", and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + +FOR j := 0 to 63 + i := j*8 + IF k[j] + off := 8*idx[i+5:i] + dst[i+7:i] := idx[i+6] ? b[off+7:off] : a[off+7:off] + ELSE + dst[i+7:i] := a[i+7:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_VBMI +
immintrin.h
+ Swizzle +
+ + + + + + + Shuffle 8-bit integers in "a" and "b" across lanes using the corresponding selector and index in "idx", and store the results in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + +FOR j := 0 to 63 + i := j*8 + IF k[j] + off := 8*idx[i+5:i] + dst[i+7:i] := idx[i+6] ? b[off+7:off] : a[off+7:off] + ELSE + dst[i+7:i] := idx[i+7:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_VBMI +
immintrin.h
+ Swizzle +
+ + + + + + + Shuffle 8-bit integers in "a" and "b" across lanes using the corresponding selector and index in "idx", and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 63 + i := j*8 + IF k[j] + off := 8*idx[i+5:i] + dst[i+7:i] := idx[i+6] ? b[off+7:off] : a[off+7:off] + ELSE + dst[i+7:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + + AVX512_VBMI +
immintrin.h
+ Swizzle +
+ + + + + + + + + Concatenate packed 64-bit integers in "b" and "a" producing an intermediate 128-bit result. Shift the result right by the amount specified in the corresponding element of "c", and store the lower 64-bits in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := ((b[i+63:i] << 64)[127:0] | a[i+63:i]) >> (c[i+63:i] & 63) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_VBMI2 + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + Concatenate packed 64-bit integers in "b" and "a" producing an intermediate 128-bit result. Shift the result right by the amount specified in the corresponding element of "c", and store the lower 64-bits in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := ((b[i+63:i] << 64)[127:0] | a[i+63:i]) >> (c[i+63:i] & 63) + ELSE + dst[i+63:i] := a[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_VBMI2 + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + Concatenate packed 64-bit integers in "b" and "a" producing an intermediate 128-bit result. Shift the result right by the amount specified in the corresponding element of "c", and store the lower 64-bits in "dst". + +FOR j := 0 to 3 + i := j*64 + dst[i+63:i] := ((b[i+63:i] << 64)[127:0] | a[i+63:i]) >> (c[i+63:i] & 63) +ENDFOR +dst[MAX:256] := 0 + + + AVX512_VBMI2 + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + Concatenate packed 64-bit integers in "b" and "a" producing an intermediate 128-bit result. Shift the result right by the amount specified in the corresponding element of "c", and store the lower 64-bits in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := ((b[i+63:i] << 64)[127:0] | a[i+63:i]) >> (c[i+63:i] & 63) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_VBMI2 + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + Concatenate packed 64-bit integers in "b" and "a" producing an intermediate 128-bit result. Shift the result right by the amount specified in the corresponding element of "c", and store the lower 64-bits in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := ((b[i+63:i] << 64)[127:0] | a[i+63:i]) >> (c[i+63:i] & 63) + ELSE + dst[i+63:i] := a[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_VBMI2 + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + Concatenate packed 64-bit integers in "b" and "a" producing an intermediate 128-bit result. Shift the result right by the amount specified in the corresponding element of "c", and store the lower 64-bits in "dst". + +FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := ((b[i+63:i] << 64)[127:0] | a[i+63:i]) >> (c[i+63:i] & 63) +ENDFOR +dst[MAX:128] := 0 + + + AVX512_VBMI2 + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + Concatenate packed 32-bit integers in "b" and "a" producing an intermediate 64-bit result. Shift the result right by the amount specified in the corresponding element of "c", and store the lower 32-bits in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := ((b[i+31:i] << 32)[63:0] | a[i+31:i]) >> (c[i+31:i] & 31) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_VBMI2 + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + Concatenate packed 32-bit integers in "b" and "a" producing an intermediate 64-bit result. Shift the result right by the amount specified in the corresponding element of "c", and store the lower 32-bits in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := ((b[i+31:i] << 32)[63:0] | a[i+31:i]) >> (c[i+31:i] & 31) + ELSE + dst[i+31:i] := a[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_VBMI2 + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + Concatenate packed 32-bit integers in "b" and "a" producing an intermediate 64-bit result. Shift the result right by the amount specified in the corresponding element of "c", and store the lower 32-bits in "dst". + +FOR j := 0 to 7 + i := j*32 + dst[i+31:i] := ((b[i+31:i] << 32)[63:0] | a[i+31:i]) >> (c[i+31:i] & 31) +ENDFOR +dst[MAX:256] := 0 + + + AVX512_VBMI2 + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + Concatenate packed 32-bit integers in "b" and "a" producing an intermediate 64-bit result. Shift the result right by the amount specified in the corresponding element of "c", and store the lower 32-bits in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := ((b[i+31:i] << 32)[63:0] | a[i+31:i]) >> (c[i+31:i] & 31) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_VBMI2 + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + Concatenate packed 32-bit integers in "b" and "a" producing an intermediate 64-bit result. Shift the result right by the amount specified in the corresponding element of "c", and store the lower 32-bits in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := ((b[i+31:i] << 32)[63:0] | a[i+31:i]) >> (c[i+31:i] & 31) + ELSE + dst[i+31:i] := a[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_VBMI2 + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + Concatenate packed 32-bit integers in "b" and "a" producing an intermediate 64-bit result. Shift the result right by the amount specified in the corresponding element of "c", and store the lower 32-bits in "dst". + +FOR j := 0 to 3 + i := j*32 + dst[i+31:i] := ((b[i+31:i] << 32)[63:0] | a[i+31:i]) >> (c[i+31:i] & 31) +ENDFOR +dst[MAX:128] := 0 + + + AVX512_VBMI2 + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + Concatenate packed 16-bit integers in "b" and "a" producing an intermediate 32-bit result. Shift the result right by the amount specified in the corresponding element of "c", and store the lower 16-bits in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*16 + IF k[j] + dst[i+15:i] := ((b[i+15:i] << 16)[31:0] | a[i+15:i]) >> (c[i+15:i] & 15) + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_VBMI2 + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + Concatenate packed 16-bit integers in "b" and "a" producing an intermediate 32-bit result. Shift the result right by the amount specified in the corresponding element of "c", and store the lower 16-bits in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*16 + IF k[j] + dst[i+15:i] := ((b[i+15:i] << 16)[31:0] | a[i+15:i]) >> (c[i+15:i] & 15) + ELSE + dst[i+15:i] := a[i+15:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_VBMI2 + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + Concatenate packed 16-bit integers in "b" and "a" producing an intermediate 32-bit result. Shift the result right by the amount specified in the corresponding element of "c", and store the lower 16-bits in "dst". + +FOR j := 0 to 15 + i := j*16 + dst[i+15:i] := ((b[i+15:i] << 16)[31:0] | a[i+15:i]) >> (c[i+15:i] & 15) +ENDFOR +dst[MAX:256] := 0 + + + AVX512_VBMI2 + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + Concatenate packed 16-bit integers in "b" and "a" producing an intermediate 32-bit result. Shift the result right by the amount specified in the corresponding element of "c", and store the lower 16-bits in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*16 + IF k[j] + dst[i+15:i] := ((b[i+15:i] << 16)[31:0] | a[i+15:i]) >> (c[i+15:i] & 15) + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_VBMI2 + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + Concatenate packed 16-bit integers in "b" and "a" producing an intermediate 32-bit result. Shift the result right by the amount specified in the corresponding element of "c", and store the lower 16-bits in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*16 + IF k[j] + dst[i+15:i] := ((b[i+15:i] << 16)[31:0] | a[i+15:i]) >> (c[i+15:i] & 15) + ELSE + dst[i+15:i] := a[i+15:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_VBMI2 + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + Concatenate packed 16-bit integers in "b" and "a" producing an intermediate 32-bit result. Shift the result right by the amount specified in the corresponding element of "c", and store the lower 16-bits in "dst". + +FOR j := 0 to 7 + i := j*16 + dst[i+15:i] := ((b[i+15:i] << 16)[31:0] | a[i+15:i]) >> (c[i+15:i] & 15) +ENDFOR +dst[MAX:128] := 0 + + + AVX512_VBMI2 + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + Concatenate packed 64-bit integers in "b" and "a" producing an intermediate 128-bit result. Shift the result right by "imm8" bits, and store the lower 64-bits in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := ((b[i+63:i] << 64)[127:0] | a[i+63:i]) >> imm8[5:0] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_VBMI2 + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + + Concatenate packed 64-bit integers in "b" and "a" producing an intermediate 128-bit result. Shift the result right by "imm8" bits, and store the lower 64-bits in "dst" using writemask "k" (elements are copied from "src"" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + dst[i+63:i] := ((b[i+63:i] << 64)[127:0] | a[i+63:i]) >> imm8[5:0] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_VBMI2 + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + Concatenate packed 64-bit integers in "b" and "a" producing an intermediate 128-bit result. Shift the result right by "imm8" bits, and store the lower 64-bits in "dst". + +FOR j := 0 to 3 + i := j*64 + dst[i+63:i] := ((b[i+63:i] << 64)[127:0] | a[i+63:i]) >> imm8[5:0] +ENDFOR +dst[MAX:256] := 0 + + + AVX512_VBMI2 + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + Concatenate packed 64-bit integers in "b" and "a" producing an intermediate 128-bit result. Shift the result right by "imm8" bits, and store the lower 64-bits in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := ((b[i+63:i] << 64)[127:0] | a[i+63:i]) >> imm8[5:0] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_VBMI2 + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + + Concatenate packed 64-bit integers in "b" and "a" producing an intermediate 128-bit result. Shift the result right by "imm8" bits, and store the lower 64-bits in "dst" using writemask "k" (elements are copied from "src"" when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + dst[i+63:i] := ((b[i+63:i] << 64)[127:0] | a[i+63:i]) >> imm8[5:0] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_VBMI2 + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + Concatenate packed 64-bit integers in "b" and "a" producing an intermediate 128-bit result. Shift the result right by "imm8" bits, and store the lower 64-bits in "dst". + +FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := ((b[i+63:i] << 64)[127:0] | a[i+63:i]) >> imm8[5:0] +ENDFOR +dst[MAX:128] := 0 + + + AVX512_VBMI2 + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + Concatenate packed 32-bit integers in "b" and "a" producing an intermediate 64-bit result. Shift the result right by "imm8" bits, and store the lower 32-bits in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := ((b[i+31:i] << 32)[63:0] | a[i+31:i]) >> imm8[4:0] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_VBMI2 + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + + Concatenate packed 32-bit integers in "b" and "a" producing an intermediate 64-bit result. Shift the result right by "imm8" bits, and store the lower 32-bits in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k[j] + dst[i+31:i] := ((b[i+31:i] << 32)[63:0] | a[i+31:i]) >> imm8[4:0] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_VBMI2 + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + Concatenate packed 32-bit integers in "b" and "a" producing an intermediate 64-bit result. Shift the result right by "imm8" bits, and store the lower 32-bits in "dst". + +FOR j := 0 to 7 + i := j*32 + dst[i+31:i] := ((b[i+31:i] << 32)[63:0] | a[i+31:i]) >> imm8[4:0] +ENDFOR +dst[MAX:256] := 0 + + + AVX512_VBMI2 + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + Concatenate packed 32-bit integers in "b" and "a" producing an intermediate 64-bit result. Shift the result right by "imm8" bits, and store the lower 32-bits in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := ((b[i+31:i] << 32)[63:0] | a[i+31:i]) >> imm8[4:0] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_VBMI2 + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + + Concatenate packed 32-bit integers in "b" and "a" producing an intermediate 64-bit result. Shift the result right by "imm8" bits, and store the lower 32-bits in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k[j] + dst[i+31:i] := ((b[i+31:i] << 32)[63:0] | a[i+31:i]) >> imm8[4:0] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_VBMI2 + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + Concatenate packed 32-bit integers in "b" and "a" producing an intermediate 64-bit result. Shift the result right by "imm8" bits, and store the lower 32-bits in "dst". + +FOR j := 0 to 3 + i := j*32 + dst[i+31:i] := ((b[i+31:i] << 32)[63:0] | a[i+31:i]) >> imm8[4:0] +ENDFOR +dst[MAX:128] := 0 + + + AVX512_VBMI2 + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + Concatenate packed 16-bit integers in "b" and "a" producing an intermediate 32-bit result. Shift the result right by "imm8" bits, and store the lower 16-bits in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*16 + IF k[j] + dst[i+15:i] := ((b[i+15:i] << 16)[31:0] | a[i+15:i]) >> imm8[3:0] + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_VBMI2 + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + + Concatenate packed 16-bit integers in "b" and "a" producing an intermediate 32-bit result. Shift the result right by "imm8" bits, and store the lower 16-bits in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*16 + IF k[j] + dst[i+15:i] := ((b[i+15:i] << 16)[31:0] | a[i+15:i]) >> imm8[3:0] + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_VBMI2 + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + Concatenate packed 16-bit integers in "b" and "a" producing an intermediate 32-bit result. Shift the result right by "imm8" bits, and store the lower 16-bits in "dst". + +FOR j := 0 to 15 + i := j*16 + dst[i+15:i] := ((b[i+15:i] << 16)[31:0] | a[i+15:i]) >> imm8[3:0] +ENDFOR +dst[MAX:256] := 0 + + + AVX512_VBMI2 + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + Concatenate packed 16-bit integers in "b" and "a" producing an intermediate 32-bit result. Shift the result right by "imm8" bits, and store the lower 16-bits in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*16 + IF k[j] + dst[i+15:i] := ((b[i+15:i] << 16)[31:0] | a[i+15:i]) >> imm8[3:0] + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_VBMI2 + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + + Concatenate packed 16-bit integers in "b" and "a" producing an intermediate 32-bit result. Shift the result right by "imm8" bits, and store the lower 16-bits in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*16 + IF k[j] + dst[i+15:i] := ((b[i+15:i] << 16)[31:0] | a[i+15:i]) >> imm8[3:0] + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_VBMI2 + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + Concatenate packed 16-bit integers in "b" and "a" producing an intermediate 32-bit result. Shift the result right by "imm8" bits, and store the lower 16-bits in "dst". + +FOR j := 0 to 7 + i := j*16 + dst[i+15:i] := ((b[i+15:i] << 16)[31:0] | a[i+15:i]) >> imm8[3:0] +ENDFOR +dst[MAX:128] := 0 + + + AVX512_VBMI2 + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + Concatenate packed 64-bit integers in "a" and "b" producing an intermediate 128-bit result. Shift the result left by the amount specified in the corresponding element of "c", and store the upper 64-bits in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + tmp[127:0] := ((a[i+63:i] << 64)[127:0] | b[i+63:i]) << (c[i+63:i] & 63) + dst[i+63:i] := tmp[127:64] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_VBMI2 + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + Concatenate packed 64-bit integers in "a" and "b" producing an intermediate 128-bit result. Shift the result left by the amount specified in the corresponding element of "c", and store the upper 64-bits in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + tmp[127:0] := ((a[i+63:i] << 64)[127:0] | b[i+63:i]) << (c[i+63:i] & 63) + dst[i+63:i] := tmp[127:64] + ELSE + dst[i+63:i] := a[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_VBMI2 + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + Concatenate packed 64-bit integers in "a" and "b" producing an intermediate 128-bit result. Shift the result left by the amount specified in the corresponding element of "c", and store the upper 64-bits in "dst". + +FOR j := 0 to 3 + i := j*64 + tmp[127:0] := ((a[i+63:i] << 64)[127:0] | b[i+63:i]) << (c[i+63:i] & 63) + dst[i+63:i] := tmp[127:64] +ENDFOR +dst[MAX:256] := 0 + + + AVX512_VBMI2 + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + Concatenate packed 64-bit integers in "a" and "b" producing an intermediate 128-bit result. Shift the result left by the amount specified in the corresponding element of "c", and store the upper 64-bits in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + tmp[127:0] := ((a[i+63:i] << 64)[127:0] | b[i+63:i]) << (c[i+63:i] & 63) + dst[i+63:i] := tmp[127:64] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_VBMI2 + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + Concatenate packed 64-bit integers in "a" and "b" producing an intermediate 128-bit result. Shift the result left by the amount specified in the corresponding element of "c", and store the upper 64-bits in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + tmp[127:0] := ((a[i+63:i] << 64)[127:0] | b[i+63:i]) << (c[i+63:i] & 63) + dst[i+63:i] := tmp[127:64] + ELSE + dst[i+63:i] := a[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_VBMI2 + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + Concatenate packed 64-bit integers in "a" and "b" producing an intermediate 128-bit result. Shift the result left by the amount specified in the corresponding element of "c", and store the upper 64-bits in "dst". + +FOR j := 0 to 1 + i := j*64 + tmp[127:0] := ((a[i+63:i] << 64)[127:0] | b[i+63:i]) << (c[i+63:i] & 63) + dst[i+63:i] := tmp[127:64] +ENDFOR +dst[MAX:128] := 0 + + + AVX512_VBMI2 + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + Concatenate packed 32-bit integers in "a" and "b" producing an intermediate 64-bit result. Shift the result left by the amount specified in the corresponding element of "c", and store the upper 32-bits in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k[j] + tmp[63:0] := ((a[i+31:i] << 32)[63:0] | b[i+31:i]) << (c[i+31:i] & 31) + dst[i+31:i] := tmp[63:32] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_VBMI2 + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + Concatenate packed 32-bit integers in "a" and "b" producing an intermediate 64-bit result. Shift the result left by the amount specified in the corresponding element of "c", and store the upper 32-bits in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k[j] + tmp[63:0] := ((a[i+31:i] << 32)[63:0] | b[i+31:i]) << (c[i+31:i] & 31) + dst[i+31:i] := tmp[63:32] + ELSE + dst[i+31:i] := a[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_VBMI2 + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + Concatenate packed 32-bit integers in "a" and "b" producing an intermediate 64-bit result. Shift the result left by the amount specified in the corresponding element of "c", and store the upper 32-bits in "dst". + +FOR j := 0 to 7 + i := j*32 + tmp[63:0] := ((a[i+31:i] << 32)[63:0] | b[i+31:i]) << (c[i+31:i] & 31) + dst[i+31:i] := tmp[63:32] +ENDFOR +dst[MAX:256] := 0 + + + AVX512_VBMI2 + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + Concatenate packed 32-bit integers in "a" and "b" producing an intermediate 64-bit result. Shift the result left by the amount specified in the corresponding element of "c", and store the upper 32-bits in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k[j] + tmp[63:0] := ((a[i+31:i] << 32)[63:0] | b[i+31:i]) << (c[i+31:i] & 31) + dst[i+31:i] := tmp[63:32] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_VBMI2 + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + Concatenate packed 32-bit integers in "a" and "b" producing an intermediate 64-bit result. Shift the result left by the amount specified in the corresponding element of "c", and store the upper 32-bits in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k[j] + tmp[63:0] := ((a[i+31:i] << 32)[63:0] | b[i+31:i]) << (c[i+31:i] & 31) + dst[i+31:i] := tmp[63:32] + ELSE + dst[i+31:i] := a[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_VBMI2 + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + Concatenate packed 32-bit integers in "a" and "b" producing an intermediate 64-bit result. Shift the result left by the amount specified in the corresponding element of "c", and store the upper 32-bits in "dst". + +FOR j := 0 to 3 + i := j*32 + tmp[63:0] := ((a[i+31:i] << 32)[63:0] | b[i+31:i]) << (c[i+31:i] & 31) + dst[i+31:i] := tmp[63:32] +ENDFOR +dst[MAX:128] := 0 + + + AVX512_VBMI2 + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + Concatenate packed 16-bit integers in "a" and "b" producing an intermediate 32-bit result. Shift the result left by the amount specified in the corresponding element of "c", and store the upper 16-bits in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*16 + IF k[j] + tmp[31:0] := ((a[i+15:i] << 16)[31:0] | b[i+15:i]) << (c[i+15:i] & 15) + dst[i+15:i] := tmp[31:16] + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_VBMI2 + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + Concatenate packed 16-bit integers in "a" and "b" producing an intermediate 32-bit result. Shift the result left by the amount specified in the corresponding element of "c", and store the upper 16-bits in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*16 + IF k[j] + tmp[31:0] := ((a[i+15:i] << 16)[31:0] | b[i+15:i]) << (c[i+15:i] & 15) + dst[i+15:i] := tmp[31:16] + ELSE + dst[i+15:i] := a[i+15:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_VBMI2 + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + Concatenate packed 16-bit integers in "a" and "b" producing an intermediate 32-bit result. Shift the result left by the amount specified in the corresponding element of "c", and store the upper 16-bits in "dst". + +FOR j := 0 to 15 + i := j*16 + tmp[31:0] := ((a[i+15:i] << 16)[31:0] | b[i+15:i]) << (c[i+15:i] & 15) + dst[i+15:i] := tmp[31:16] +ENDFOR +dst[MAX:256] := 0 + + + AVX512_VBMI2 + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + Concatenate packed 16-bit integers in "a" and "b" producing an intermediate 32-bit result. Shift the result left by the amount specified in the corresponding element of "c", and store the upper 16-bits in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*16 + IF k[j] + tmp[31:0] := ((a[i+15:i] << 16)[31:0] | b[i+15:i]) << (c[i+15:i] & 15) + dst[i+15:i] := tmp[31:16] + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_VBMI2 + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + Concatenate packed 16-bit integers in "a" and "b" producing an intermediate 32-bit result. Shift the result left by the amount specified in the corresponding element of "c", and store the upper 16-bits in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*16 + IF k[j] + tmp[31:0] := ((a[i+15:i] << 16)[31:0] | b[i+15:i]) << (c[i+15:i] & 15) + dst[i+15:i] := tmp[31:16] + ELSE + dst[i+15:i] := a[i+15:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_VBMI2 + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + Concatenate packed 16-bit integers in "a" and "b" producing an intermediate 32-bit result. Shift the result left by the amount specified in the corresponding element of "c", and store the upper 16-bits in "dst". + +FOR j := 0 to 7 + i := j*16 + tmp[31:0] := ((a[i+15:i] << 16)[31:0] | b[i+15:i]) << (c[i+15:i] & 15) + dst[i+15:i] := tmp[31:16] +ENDFOR +dst[MAX:128] := 0 + + + AVX512_VBMI2 + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + Concatenate packed 64-bit integers in "a" and "b" producing an intermediate 128-bit result. Shift the result left by "imm8" bits, and store the upper 64-bits in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + tmp[127:0] := ((a[i+63:i] << 64)[127:0] | b[i+63:i]) << imm8[5:0] + dst[i+63:i] := tmp[127:64] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_VBMI2 + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + + Concatenate packed 64-bit integers in "a" and "b" producing an intermediate 128-bit result. Shift the result left by "imm8" bits, and store the upper 64-bits in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*64 + IF k[j] + tmp[127:0] := ((a[i+63:i] << 64)[127:0] | b[i+63:i]) << imm8[5:0] + dst[i+63:i] := tmp[127:64] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_VBMI2 + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + Concatenate packed 64-bit integers in "a" and "b" producing an intermediate 128-bit result. Shift the result left by "imm8" bits, and store the upper 64-bits in "dst"). + +FOR j := 0 to 3 + i := j*64 + tmp[127:0] := ((a[i+63:i] << 64)[127:0] | b[i+63:i]) << imm8[5:0] + dst[i+63:i] := tmp[127:64] +ENDFOR +dst[MAX:256] := 0 + + + AVX512_VBMI2 + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + Concatenate packed 64-bit integers in "a" and "b" producing an intermediate 128-bit result. Shift the result left by "imm8" bits, and store the upper 64-bits in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + tmp[127:0] := ((a[i+63:i] << 64)[127:0] | b[i+63:i]) << imm8[5:0] + dst[i+63:i] := tmp[127:64] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_VBMI2 + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + + Concatenate packed 64-bit integers in "a" and "b" producing an intermediate 128-bit result. Shift the result left by "imm8" bits, and store the upper 64-bits in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 1 + i := j*64 + IF k[j] + tmp[127:0] := ((a[i+63:i] << 64)[127:0] | b[i+63:i]) << imm8[5:0] + dst[i+63:i] := tmp[127:64] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_VBMI2 + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + Concatenate packed 64-bit integers in "a" and "b" producing an intermediate 128-bit result. Shift the result left by "imm8" bits, and store the upper 64-bits in "dst"). + +FOR j := 0 to 1 + i := j*64 + tmp[127:0] := ((a[i+63:i] << 64)[127:0] | b[i+63:i]) << imm8[5:0] + dst[i+63:i] := tmp[127:64] +ENDFOR +dst[MAX:128] := 0 + + + AVX512_VBMI2 + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + Concatenate packed 32-bit integers in "a" and "b" producing an intermediate 64-bit result. Shift the result left by "imm8" bits, and store the upper 32-bits in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k[j] + tmp[63:0] := ((a[i+31:i] << 32)[63:0] | b[i+31:i]) << imm8[4:0] + dst[i+31:i] := tmp[63:32] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_VBMI2 + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + + Concatenate packed 32-bit integers in "a" and "b" producing an intermediate 64-bit result. Shift the result left by "imm8" bits, and store the upper 32-bits in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*32 + IF k[j] + tmp[63:0] := ((a[i+31:i] << 32)[63:0] | b[i+31:i]) << imm8[4:0] + dst[i+31:i] := tmp[63:32] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_VBMI2 + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + Concatenate packed 32-bit integers in "a" and "b" producing an intermediate 64-bit result. Shift the result left by "imm8" bits, and store the upper 32-bits in "dst". + +FOR j := 0 to 7 + i := j*32 + tmp[63:0] := ((a[i+31:i] << 32)[63:0] | b[i+31:i]) << imm8[4:0] + dst[i+31:i] := tmp[63:32] +ENDFOR +dst[MAX:256] := 0 + + + AVX512_VBMI2 + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + Concatenate packed 32-bit integers in "a" and "b" producing an intermediate 64-bit result. Shift the result left by "imm8" bits, and store the upper 32-bits in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k[j] + tmp[63:0] := ((a[i+31:i] << 32)[63:0] | b[i+31:i]) << imm8[4:0] + dst[i+31:i] := tmp[63:32] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_VBMI2 + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + + Concatenate packed 32-bit integers in "a" and "b" producing an intermediate 64-bit result. Shift the result left by "imm8" bits, and store the upper 32-bits in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + i := j*32 + IF k[j] + tmp[63:0] := ((a[i+31:i] << 32)[63:0] | b[i+31:i]) << imm8[4:0] + dst[i+31:i] := tmp[63:32] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_VBMI2 + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + Concatenate packed 32-bit integers in "a" and "b" producing an intermediate 64-bit result. Shift the result left by "imm8" bits, and store the upper 32-bits in "dst". + +FOR j := 0 to 3 + i := j*32 + tmp[63:0] := ((a[i+31:i] << 32)[63:0] | b[i+31:i]) << imm8[4:0] + dst[i+31:i] := tmp[63:32] +ENDFOR +dst[MAX:128] := 0 + + + AVX512_VBMI2 + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + Concatenate packed 16-bit integers in "a" and "b" producing an intermediate 32-bit result. Shift the result left by "imm8" bits, and store the upper 16-bits in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*16 + IF k[j] + tmp[31:0] := ((a[i+15:i] << 16)[31:0] | b[i+15:i]) << imm8[3:0] + dst[i+15:i] := tmp[31:16] + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_VBMI2 + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + + Concatenate packed 16-bit integers in "a" and "b" producing an intermediate 32-bit result. Shift the result left by "imm8" bits, and store the upper 16-bits in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*16 + IF k[j] + tmp[31:0] := ((a[i+15:i] << 16)[31:0] | b[i+15:i]) << imm8[3:0] + dst[i+15:i] := tmp[31:16] + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_VBMI2 + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + Concatenate packed 16-bit integers in "a" and "b" producing an intermediate 32-bit result. Shift the result left by "imm8" bits, and store the upper 16-bits in "dst"). + +FOR j := 0 to 15 + i := j*16 + tmp[31:0] := ((a[i+15:i] << 16)[31:0] | b[i+15:i]) << imm8[3:0] + dst[i+15:i] := tmp[31:16] +ENDFOR +dst[MAX:256] := 0 + + + AVX512_VBMI2 + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + Concatenate packed 16-bit integers in "a" and "b" producing an intermediate 32-bit result. Shift the result left by "imm8" bits, and store the upper 16-bits in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*16 + IF k[j] + tmp[31:0] := ((a[i+15:i] << 16)[31:0] | b[i+15:i]) << imm8[3:0] + dst[i+15:i] := tmp[31:16] + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_VBMI2 + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + + + Concatenate packed 16-bit integers in "a" and "b" producing an intermediate 32-bit result. Shift the result left by "imm8" bits, and store the upper 16-bits in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*16 + IF k[j] + tmp[31:0] := ((a[i+15:i] << 16)[31:0] | b[i+15:i]) << imm8[3:0] + dst[i+15:i] := tmp[31:16] + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_VBMI2 + AVX512VL +
immintrin.h
+ Shift +
+ + + + + + Concatenate packed 16-bit integers in "a" and "b" producing an intermediate 32-bit result. Shift the result left by "imm8" bits, and store the upper 16-bits in "dst"). + +FOR j := 0 to 7 + i := j*16 + tmp[31:0] := ((a[i+15:i] << 16)[31:0] | b[i+15:i]) << imm8[3:0] + dst[i+15:i] := tmp[31:16] +ENDFOR +dst[MAX:128] := 0 + + + AVX512_VBMI2 + AVX512VL +
immintrin.h
+ Shift +
+ + Swizzle + + + + Load contiguous active 16-bit integers from unaligned memory at "mem_addr" (those with their respective bit set in mask "k"), and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +m := 0 +FOR j := 0 to 15 + i := j*16 + IF k[j] + dst[i+15:i] := MEM[mem_addr+m+15:mem_addr+m] + m := m + 16 + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_VBMI2 + AVX512VL +
immintrin.h
+ Load +
+ + Swizzle + + + + + Load contiguous active 16-bit integers from unaligned memory at "mem_addr" (those with their respective bit set in mask "k"), and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +m := 0 +FOR j := 0 to 15 + i := j*16 + IF k[j] + dst[i+15:i] := MEM[mem_addr+m+15:mem_addr+m] + m := m + 16 + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_VBMI2 + AVX512VL +
immintrin.h
+ Load +
+ + Swizzle + + + + Load contiguous active 16-bit integers from unaligned memory at "mem_addr" (those with their respective bit set in mask "k"), and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +m := 0 +FOR j := 0 to 7 + i := j*16 + IF k[j] + dst[i+15:i] := MEM[mem_addr+m+15:mem_addr+m] + m := m + 16 + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_VBMI2 + AVX512VL +
immintrin.h
+ Load +
+ + Swizzle + + + + + Load contiguous active 16-bit integers from unaligned memory at "mem_addr" (those with their respective bit set in mask "k"), and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +m := 0 +FOR j := 0 to 7 + i := j*16 + IF k[j] + dst[i+15:i] := MEM[mem_addr+m+15:mem_addr+m] + m := m + 16 + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_VBMI2 + AVX512VL +
immintrin.h
+ Load +
+ + Swizzle + + + + Load contiguous active 8-bit integers from unaligned memory at "mem_addr" (those with their respective bit set in mask "k"), and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +m := 0 +FOR j := 0 to 31 + i := j*8 + IF k[j] + dst[i+7:i] := MEM[mem_addr+m+7:mem_addr+m] + m := m + 8 + ELSE + dst[i+7:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_VBMI2 + AVX512VL +
immintrin.h
+ Load +
+ + Swizzle + + + + + Load contiguous active 8-bit integers from unaligned memory at "mem_addr" (those with their respective bit set in mask "k"), and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +m := 0 +FOR j := 0 to 31 + i := j*8 + IF k[j] + dst[i+7:i] := MEM[mem_addr+m+7:mem_addr+m] + m := m + 8 + ELSE + dst[i+7:i] := src[i+7:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_VBMI2 + AVX512VL +
immintrin.h
+ Load +
+ + Swizzle + + + + Load contiguous active 8-bit integers from unaligned memory at "mem_addr" (those with their respective bit set in mask "k"), and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +m := 0 +FOR j := 0 to 15 + i := j*8 + IF k[j] + dst[i+7:i] := MEM[mem_addr+m+7:mem_addr+m] + m := m + 8 + ELSE + dst[i+7:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_VBMI2 + AVX512VL +
immintrin.h
+ Load +
+ + Swizzle + + + + + Load contiguous active 8-bit integers from unaligned memory at "mem_addr" (those with their respective bit set in mask "k"), and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +m := 0 +FOR j := 0 to 15 + i := j*8 + IF k[j] + dst[i+7:i] := MEM[mem_addr+m+7:mem_addr+m] + m := m + 8 + ELSE + dst[i+7:i] := src[i+7:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_VBMI2 + AVX512VL +
immintrin.h
+ Load +
+ + + + + Load contiguous active 16-bit integers from "a" (those with their respective bit set in mask "k"), and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +m := 0 +FOR j := 0 to 15 + i := j*16 + IF k[j] + dst[i+15:i] := a[m+15:m] + m := m + 16 + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_VBMI2 + AVX512VL +
immintrin.h
+ Swizzle +
+ + + + + + Load contiguous active 16-bit integers from "a" (those with their respective bit set in mask "k"), and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +m := 0 +FOR j := 0 to 15 + i := j*16 + IF k[j] + dst[i+15:i] := a[m+15:m] + m := m + 16 + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_VBMI2 + AVX512VL +
immintrin.h
+ Swizzle +
+ + + + + Load contiguous active 16-bit integers from "a" (those with their respective bit set in mask "k"), and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +m := 0 +FOR j := 0 to 7 + i := j*16 + IF k[j] + dst[i+15:i] := a[m+15:m] + m := m + 16 + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_VBMI2 + AVX512VL +
immintrin.h
+ Swizzle +
+ + + + + + Load contiguous active 16-bit integers from "a" (those with their respective bit set in mask "k"), and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +m := 0 +FOR j := 0 to 7 + i := j*16 + IF k[j] + dst[i+15:i] := a[m+15:m] + m := m + 16 + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_VBMI2 + AVX512VL +
immintrin.h
+ Swizzle +
+ + + + + Load contiguous active 8-bit integers from "a" (those with their respective bit set in mask "k"), and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +m := 0 +FOR j := 0 to 31 + i := j*8 + IF k[j] + dst[i+7:i] := a[m+7:m] + m := m + 8 + ELSE + dst[i+7:i] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_VBMI2 + AVX512VL +
immintrin.h
+ Swizzle +
+ + + + + + Load contiguous active 8-bit integers from "a" (those with their respective bit set in mask "k"), and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +m := 0 +FOR j := 0 to 31 + i := j*8 + IF k[j] + dst[i+7:i] := a[m+7:m] + m := m + 8 + ELSE + dst[i+7:i] := src[i+7:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_VBMI2 + AVX512VL +
immintrin.h
+ Swizzle +
+ + + + + Load contiguous active 8-bit integers from "a" (those with their respective bit set in mask "k"), and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +m := 0 +FOR j := 0 to 15 + i := j*8 + IF k[j] + dst[i+7:i] := a[m+7:m] + m := m + 8 + ELSE + dst[i+7:i] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_VBMI2 + AVX512VL +
immintrin.h
+ Swizzle +
+ + + + + + Load contiguous active 8-bit integers from "a" (those with their respective bit set in mask "k"), and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +m := 0 +FOR j := 0 to 15 + i := j*8 + IF k[j] + dst[i+7:i] := a[m+7:m] + m := m + 8 + ELSE + dst[i+7:i] := src[i+7:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_VBMI2 + AVX512VL +
immintrin.h
+ Swizzle +
+ + + + + Contiguously store the active 16-bit integers in "a" (those with their respective bit set in zeromask "k") to "dst", and set the remaining elements to zero. + +size := 16 +m := 0 +FOR j := 0 to 15 + i := j*16 + IF k[j] + dst[m+size-1:m] := a[i+15:i] + m := m + size + FI +ENDFOR +dst[255:m] := 0 +dst[MAX:256] := 0 + + + AVX512_VBMI2 + AVX512VL +
immintrin.h
+ Swizzle +
+ + + + + + Contiguously store the active 16-bit integers in "a" (those with their respective bit set in writemask "k") to "dst", and pass through the remaining elements from "src". + +size := 16 +m := 0 +FOR j := 0 to 15 + i := j*16 + IF k[j] + dst[m+size-1:m] := a[i+15:i] + m := m + size + FI +ENDFOR +dst[255:m] := src[255:m] +dst[MAX:256] := 0 + + + AVX512_VBMI2 + AVX512VL +
immintrin.h
+ Swizzle +
+ + + + + Contiguously store the active 16-bit integers in "a" (those with their respective bit set in zeromask "k") to "dst", and set the remaining elements to zero. + +size := 16 +m := 0 +FOR j := 0 to 7 + i := j*16 + IF k[j] + dst[m+size-1:m] := a[i+15:i] + m := m + size + FI +ENDFOR +dst[127:m] := 0 +dst[MAX:128] := 0 + + + AVX512_VBMI2 + AVX512VL +
immintrin.h
+ Swizzle +
+ + + + + + Contiguously store the active 16-bit integers in "a" (those with their respective bit set in writemask "k") to "dst", and pass through the remaining elements from "src". + +size := 16 +m := 0 +FOR j := 0 to 7 + i := j*16 + IF k[j] + dst[m+size-1:m] := a[i+15:i] + m := m + size + FI +ENDFOR +dst[127:m] := src[127:m] +dst[MAX:128] := 0 + + + AVX512_VBMI2 + AVX512VL +
immintrin.h
+ Swizzle +
+ + + + + Contiguously store the active 8-bit integers in "a" (those with their respective bit set in zeromask "k") to "dst", and set the remaining elements to zero. + +size := 8 +m := 0 +FOR j := 0 to 31 + i := j*8 + IF k[j] + dst[m+size-1:m] := a[i+7:i] + m := m + size + FI +ENDFOR +dst[255:m] := 0 +dst[MAX:256] := 0 + + + AVX512_VBMI2 + AVX512VL +
immintrin.h
+ Swizzle +
+ + + + + + Contiguously store the active 8-bit integers in "a" (those with their respective bit set in writemask "k") to "dst", and pass through the remaining elements from "src". + +size := 8 +m := 0 +FOR j := 0 to 31 + i := j*8 + IF k[j] + dst[m+size-1:m] := a[i+7:i] + m := m + size + FI +ENDFOR +dst[255:m] := src[255:m] +dst[MAX:256] := 0 + + + AVX512_VBMI2 + AVX512VL +
immintrin.h
+ Swizzle +
+ + + + + Contiguously store the active 8-bit integers in "a" (those with their respective bit set in zeromask "k") to "dst", and set the remaining elements to zero. + +size := 8 +m := 0 +FOR j := 0 to 15 + i := j*8 + IF k[j] + dst[m+size-1:m] := a[i+7:i] + m := m + size + FI +ENDFOR +dst[127:m] := 0 +dst[MAX:128] := 0 + + + AVX512_VBMI2 + AVX512VL +
immintrin.h
+ Swizzle +
+ + + + + + Contiguously store the active 8-bit integers in "a" (those with their respective bit set in writemask "k") to "dst", and pass through the remaining elements from "src". + +size := 8 +m := 0 +FOR j := 0 to 15 + i := j*8 + IF k[j] + dst[m+size-1:m] := a[i+7:i] + m := m + size + FI +ENDFOR +dst[127:m] := src[127:m] +dst[MAX:128] := 0 + + + AVX512_VBMI2 + AVX512VL +
immintrin.h
+ Swizzle +
+ + Swizzle + + + + + Contiguously store the active 16-bit integers in "a" (those with their respective bit set in writemask "k") to unaligned memory at "base_addr". + +size := 16 +m := base_addr +FOR j := 0 to 15 + i := j*16 + IF k[j] + MEM[m+size-1:m] := a[i+15:i] + m := m + size + FI +ENDFOR + + + AVX512_VBMI2 + AVX512VL +
immintrin.h
+ Store +
+ + Swizzle + + + + + Contiguously store the active 16-bit integers in "a" (those with their respective bit set in writemask "k") to unaligned memory at "base_addr". + +size := 16 +m := base_addr +FOR j := 0 to 7 + i := j*16 + IF k[j] + MEM[m+size-1:m] := a[i+15:i] + m := m + size + FI +ENDFOR + + + AVX512_VBMI2 + AVX512VL +
immintrin.h
+ Store +
+ + Swizzle + + + + + Contiguously store the active 8-bit integers in "a" (those with their respective bit set in writemask "k") to unaligned memory at "base_addr". + +size := 8 +m := base_addr +FOR j := 0 to 31 + i := j*8 + IF k[j] + MEM[m+size-1:m] := a[i+7:i] + m := m + size + FI +ENDFOR + + + AVX512_VBMI2 + AVX512VL +
immintrin.h
+ Store +
+ + Swizzle + + + + + Contiguously store the active 8-bit integers in "a" (those with their respective bit set in writemask "k") to unaligned memory at "base_addr". + +size := 8 +m := base_addr +FOR j := 0 to 15 + i := j*8 + IF k[j] + MEM[m+size-1:m] := a[i+7:i] + m := m + size + FI +ENDFOR + + + AVX512_VBMI2 + AVX512VL +
immintrin.h
+ Store +
+ + + + + + + + + Concatenate packed 64-bit integers in "b" and "a" producing an intermediate 128-bit result. Shift the result right by the amount specified in the corresponding element of "c", and store the lower 64-bits in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := ((b[i+63:i] << 64)[127:0] | a[i+63:i]) >> (c[i+63:i] & 63) + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_VBMI2 +
immintrin.h
+ Shift +
+ + + + + + + Concatenate packed 64-bit integers in "b" and "a" producing an intermediate 128-bit result. Shift the result right by the amount specified in the corresponding element of "c", and store the lower 64-bits in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := ((b[i+63:i] << 64)[127:0] | a[i+63:i]) >> (c[i+63:i] & 63) + ELSE + dst[i+63:i] := a[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_VBMI2 +
immintrin.h
+ Shift +
+ + + + + + Concatenate packed 64-bit integers in "b" and "a" producing an intermediate 128-bit result. Shift the result right by the amount specified in the corresponding element of "c", and store the lower 64-bits in "dst". + +FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := ((b[i+63:i] << 64)[127:0] | a[i+63:i]) >> (c[i+63:i] & 63) +ENDFOR +dst[MAX:512] := 0 + + + AVX512_VBMI2 +
immintrin.h
+ Shift +
+ + + + + + + Concatenate packed 32-bit integers in "b" and "a" producing an intermediate 64-bit result. Shift the result right by the amount specified in the corresponding element of "c", and store the lower 32-bits in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := ((b[i+31:i] << 32)[63:0] | a[i+31:i]) >> (c[i+31:i] & 31) + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_VBMI2 +
immintrin.h
+ Shift +
+ + + + + + + Concatenate packed 32-bit integers in "b" and "a" producing an intermediate 64-bit result. Shift the result right by the amount specified in the corresponding element of "c", and store the lower 32-bits in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := ((b[i+31:i] << 32)[63:0] | a[i+31:i]) >> (c[i+31:i] & 31) + ELSE + dst[i+31:i] := a[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_VBMI2 +
immintrin.h
+ Shift +
+ + + + + + Concatenate packed 32-bit integers in "b" and "a" producing an intermediate 64-bit result. Shift the result right by the amount specified in the corresponding element of "c", and store the lower 32-bits in "dst". + +FOR j := 0 to 15 + i := j*32 + dst[i+31:i] := ((b[i+31:i] << 32)[63:0] | a[i+31:i]) >> (c[i+31:i] & 31) +ENDFOR +dst[MAX:512] := 0 + + + AVX512_VBMI2 +
immintrin.h
+ Shift +
+ + + + + + + Concatenate packed 16-bit integers in "b" and "a" producing an intermediate 32-bit result. Shift the result right by the amount specified in the corresponding element of "c", and store the lower 16-bits in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*16 + IF k[j] + dst[i+15:i] := ((b[i+15:i] << 16)[31:0] | a[i+15:i]) >> (c[i+15:i] & 15) + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_VBMI2 +
immintrin.h
+ Shift +
+ + + + + + + Concatenate packed 16-bit integers in "b" and "a" producing an intermediate 32-bit result. Shift the result right by the amount specified in the corresponding element of "c", and store the lower 16-bits in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*16 + IF k[j] + dst[i+15:i] := ((b[i+15:i] << 16)[31:0] | a[i+15:i]) >> (c[i+15:i] & 15) + ELSE + dst[i+15:i] := a[i+15:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_VBMI2 +
immintrin.h
+ Shift +
+ + + + + + Concatenate packed 16-bit integers in "b" and "a" producing an intermediate 32-bit result. Shift the result right by the amount specified in the corresponding element of "c", and store the lower 16-bits in "dst". + +FOR j := 0 to 31 + i := j*16 + dst[i+15:i] := ((b[i+15:i] << 16)[31:0] | a[i+15:i]) >> (c[i+15:i] & 15) +ENDFOR +dst[MAX:512] := 0 + + + AVX512_VBMI2 +
immintrin.h
+ Shift +
+ + + + + + + Concatenate packed 64-bit integers in "b" and "a" producing an intermediate 128-bit result. Shift the result right by "imm8" bits, and store the lower 64-bits in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := ((b[i+63:i] << 64)[127:0] | a[i+63:i]) >> imm8[5:0] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_VBMI2 +
immintrin.h
+ Shift +
+ + + + + + + + Concatenate packed 64-bit integers in "b" and "a" producing an intermediate 128-bit result. Shift the result right by "imm8" bits, and store the lower 64-bits in "dst" using writemask "k" (elements are copied from "src"" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + dst[i+63:i] := ((b[i+63:i] << 64)[127:0] | a[i+63:i]) >> imm8[5:0] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_VBMI2 +
immintrin.h
+ Shift +
+ + + + + + Concatenate packed 64-bit integers in "b" and "a" producing an intermediate 128-bit result. Shift the result right by "imm8" bits, and store the lower 64-bits in "dst". + +FOR j := 0 to 7 + i := j*64 + dst[i+63:i] := ((b[i+63:i] << 64)[127:0] | a[i+63:i]) >> imm8[5:0] +ENDFOR +dst[MAX:512] := 0 + + + AVX512_VBMI2 +
immintrin.h
+ Shift +
+ + + + + + + Concatenate packed 32-bit integers in "b" and "a" producing an intermediate 64-bit result. Shift the result right by "imm8" bits, and store the lower 32-bits in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := ((b[i+31:i] << 32)[63:0] | a[i+31:i]) >> imm8[4:0] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_VBMI2 +
immintrin.h
+ Shift +
+ + + + + + + + Concatenate packed 32-bit integers in "b" and "a" producing an intermediate 64-bit result. Shift the result right by "imm8" bits, and store the lower 32-bits in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + dst[i+31:i] := ((b[i+31:i] << 32)[63:0] | a[i+31:i]) >> imm8[4:0] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_VBMI2 +
immintrin.h
+ Shift +
+ + + + + + Concatenate packed 32-bit integers in "b" and "a" producing an intermediate 64-bit result. Shift the result right by "imm8" bits, and store the lower 32-bits in "dst". + +FOR j := 0 to 15 + i := j*32 + dst[i+31:i] := ((b[i+31:i] << 32)[63:0] | a[i+31:i]) >> imm8[4:0] +ENDFOR +dst[MAX:512] := 0 + + + AVX512_VBMI2 +
immintrin.h
+ Shift +
+ + + + + + + Concatenate packed 16-bit integers in "b" and "a" producing an intermediate 32-bit result. Shift the result right by "imm8" bits, and store the lower 16-bits in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*16 + IF k[j] + dst[i+15:i] := ((b[i+15:i] << 16)[31:0] | a[i+15:i]) >> imm8[3:0] + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_VBMI2 +
immintrin.h
+ Shift +
+ + + + + + + + Concatenate packed 16-bit integers in "b" and "a" producing an intermediate 32-bit result. Shift the result right by "imm8" bits, and store the lower 16-bits in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*16 + IF k[j] + dst[i+15:i] := ((b[i+15:i] << 16)[31:0] | a[i+15:i]) >> imm8[3:0] + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_VBMI2 +
immintrin.h
+ Shift +
+ + + + + + Concatenate packed 16-bit integers in "b" and "a" producing an intermediate 32-bit result. Shift the result right by "imm8" bits, and store the lower 16-bits in "dst". + +FOR j := 0 to 31 + i := j*16 + dst[i+15:i] := ((b[i+15:i] << 16)[31:0] | a[i+15:i]) >> imm8[3:0] +ENDFOR +dst[MAX:512] := 0 + + + AVX512_VBMI2 +
immintrin.h
+ Shift +
+ + + + + + + Concatenate packed 64-bit integers in "a" and "b" producing an intermediate 128-bit result. Shift the result left by the amount specified in the corresponding element of "c", and store the upper 64-bits in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + tmp[127:0] := ((a[i+63:i] << 64)[127:0] | b[i+63:i]) << (c[i+63:i] & 63) + dst[i+63:i] := tmp[127:64] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_VBMI2 +
immintrin.h
+ Shift +
+ + + + + + + Concatenate packed 64-bit integers in "a" and "b" producing an intermediate 128-bit result. Shift the result left by the amount specified in the corresponding element of "c", and store the upper 64-bits in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + tmp[127:0] := ((a[i+63:i] << 64)[127:0] | b[i+63:i]) << (c[i+63:i] & 63) + dst[i+63:i] := tmp[127:64] + ELSE + dst[i+63:i] := a[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_VBMI2 +
immintrin.h
+ Shift +
+ + + + + + Concatenate packed 64-bit integers in "a" and "b" producing an intermediate 128-bit result. Shift the result left by the amount specified in the corresponding element of "c", and store the upper 64-bits in "dst". + +FOR j := 0 to 7 + i := j*64 + tmp[127:0] := ((a[i+63:i] << 64)[127:0] | b[i+63:i]) << (c[i+63:i] & 63) + dst[i+63:i] := tmp[127:64] +ENDFOR +dst[MAX:512] := 0 + + + AVX512_VBMI2 +
immintrin.h
+ Shift +
+ + + + + + + Concatenate packed 32-bit integers in "a" and "b" producing an intermediate 64-bit result. Shift the result left by the amount specified in the corresponding element of "c", and store the upper 32-bits in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + tmp[63:0] := ((a[i+31:i] << 32)[63:0] | b[i+31:i]) << (c[i+31:i] & 31) + dst[i+31:i] := tmp[63:32] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_VBMI2 +
immintrin.h
+ Shift +
+ + + + + + + Concatenate packed 32-bit integers in "a" and "b" producing an intermediate 64-bit result. Shift the result left by the amount specified in the corresponding element of "c", and store the upper 32-bits in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + tmp[63:0] := ((a[i+31:i] << 32)[63:0] | b[i+31:i]) << (c[i+31:i] & 31) + dst[i+31:i] := tmp[63:32] + ELSE + dst[i+31:i] := a[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_VBMI2 +
immintrin.h
+ Shift +
+ + + + + + Concatenate packed 32-bit integers in "a" and "b" producing an intermediate 64-bit result. Shift the result left by the amount specified in the corresponding element of "c", and store the upper 32-bits in "dst". + +FOR j := 0 to 15 + i := j*32 + tmp[63:0] := ((a[i+31:i] << 32)[63:0] | b[i+31:i]) << (c[i+31:i] & 31) + dst[i+31:i] := tmp[63:32] +ENDFOR +dst[MAX:512] := 0 + + + AVX512_VBMI2 +
immintrin.h
+ Shift +
+ + + + + + + Concatenate packed 16-bit integers in "a" and "b" producing an intermediate 32-bit result. Shift the result left by the amount specified in the corresponding element of "c", and store the upper 16-bits in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*16 + IF k[j] + tmp[31:0] := ((a[i+15:i] << 16)[31:0] | b[i+15:i]) << (c[i+15:i] & 15) + dst[i+15:i] := tmp[31:16] + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_VBMI2 +
immintrin.h
+ Shift +
+ + + + + + + Concatenate packed 16-bit integers in "a" and "b" producing an intermediate 32-bit result. Shift the result left by the amount specified in the corresponding element of "c", and store the upper 16-bits in "dst" using writemask "k" (elements are copied from "a" when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*16 + IF k[j] + tmp[31:0] := ((a[i+15:i] << 16)[31:0] | b[i+15:i]) << (c[i+15:i] & 15) + dst[i+15:i] := tmp[31:16] + ELSE + dst[i+15:i] := a[i+15:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_VBMI2 +
immintrin.h
+ Shift +
+ + + + + + Concatenate packed 16-bit integers in "a" and "b" producing an intermediate 32-bit result. Shift the result left by the amount specified in the corresponding element of "c", and store the upper 16-bits in "dst". + +FOR j := 0 to 31 + i := j*16 + tmp[31:0] := ((a[i+15:i] << 16)[31:0] | b[i+15:i]) << (c[i+15:i] & 15) + dst[i+15:i] := tmp[31:16] +ENDFOR +dst[MAX:512] := 0 + + + AVX512_VBMI2 +
immintrin.h
+ Shift +
+ + + + + + + Concatenate packed 64-bit integers in "a" and "b" producing an intermediate 128-bit result. Shift the result left by "imm8" bits, and store the upper 64-bits in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + tmp[127:0] := ((a[i+63:i] << 64)[127:0] | b[i+63:i]) << imm8[5:0] + dst[i+63:i] := tmp[127:64] + ELSE + dst[i+63:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_VBMI2 +
immintrin.h
+ Shift +
+ + + + + + + + Concatenate packed 64-bit integers in "a" and "b" producing an intermediate 128-bit result. Shift the result left by "imm8" bits, and store the upper 64-bits in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + i := j*64 + IF k[j] + tmp[127:0] := ((a[i+63:i] << 64)[127:0] | b[i+63:i]) << imm8[5:0] + dst[i+63:i] := tmp[127:64] + ELSE + dst[i+63:i] := src[i+63:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_VBMI2 +
immintrin.h
+ Shift +
+ + + + + + Concatenate packed 64-bit integers in "a" and "b" producing an intermediate 128-bit result. Shift the result left by "imm8" bits, and store the upper 64-bits in "dst"). + +FOR j := 0 to 7 + i := j*64 + tmp[127:0] := ((a[i+63:i] << 64)[127:0] | b[i+63:i]) << imm8[5:0] + dst[i+63:i] := tmp[127:64] +ENDFOR +dst[MAX:512] := 0 + + + AVX512_VBMI2 +
immintrin.h
+ Shift +
+ + + + + + + Concatenate packed 32-bit integers in "a" and "b" producing an intermediate 64-bit result. Shift the result left by "imm8" bits, and store the upper 32-bits in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + tmp[63:0] := ((a[i+31:i] << 32)[63:0] | b[i+31:i]) << imm8[4:0] + dst[i+31:i] := tmp[63:32] + ELSE + dst[i+31:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_VBMI2 +
immintrin.h
+ Shift +
+ + + + + + + + Concatenate packed 32-bit integers in "a" and "b" producing an intermediate 64-bit result. Shift the result left by "imm8" bits, and store the upper 32-bits in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + i := j*32 + IF k[j] + tmp[63:0] := ((a[i+31:i] << 32)[63:0] | b[i+31:i]) << imm8[4:0] + dst[i+31:i] := tmp[63:32] + ELSE + dst[i+31:i] := src[i+31:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_VBMI2 +
immintrin.h
+ Shift +
+ + + + + + Concatenate packed 32-bit integers in "a" and "b" producing an intermediate 64-bit result. Shift the result left by "imm8" bits, and store the upper 32-bits in "dst". + +FOR j := 0 to 15 + i := j*32 + tmp[63:0] := ((a[i+31:i] << 32)[63:0] | b[i+31:i]) << imm8[4:0] + dst[i+31:i] := tmp[63:32] +ENDFOR +dst[MAX:512] := 0 + + + AVX512_VBMI2 +
immintrin.h
+ Shift +
+ + + + + + + Concatenate packed 16-bit integers in "a" and "b" producing an intermediate 32-bit result. Shift the result left by "imm8" bits, and store the upper 16-bits in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*16 + IF k[j] + tmp[31:0] := ((a[i+15:i] << 16)[31:0] | b[i+15:i]) << imm8[3:0] + dst[i+15:i] := tmp[31:16] + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_VBMI2 +
immintrin.h
+ Shift +
+ + + + + + + + Concatenate packed 16-bit integers in "a" and "b" producing an intermediate 32-bit result. Shift the result left by "imm8" bits, and store the upper 16-bits in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 31 + i := j*16 + IF k[j] + tmp[31:0] := ((a[i+15:i] << 16)[31:0] | b[i+15:i]) << imm8[3:0] + dst[i+15:i] := tmp[31:16] + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_VBMI2 +
immintrin.h
+ Shift +
+ + + + + + Concatenate packed 16-bit integers in "a" and "b" producing an intermediate 32-bit result. Shift the result left by "imm8" bits, and store the upper 16-bits in "dst"). + +FOR j := 0 to 31 + i := j*16 + tmp[31:0] := ((a[i+15:i] << 16)[31:0] | b[i+15:i]) << imm8[3:0] + dst[i+15:i] := tmp[31:16] +ENDFOR +dst[MAX:512] := 0 + + + AVX512_VBMI2 +
immintrin.h
+ Shift +
+ + Swizzle + + + + Load contiguous active 16-bit integers from unaligned memory at "mem_addr" (those with their respective bit set in mask "k"), and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +m := 0 +FOR j := 0 to 31 + i := j*16 + IF k[j] + dst[i+15:i] := MEM[mem_addr+m+15:mem_addr+m] + m := m + 16 + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_VBMI2 +
immintrin.h
+ Load +
+ + Swizzle + + + + + Load contiguous active 16-bit integers from unaligned memory at "mem_addr" (those with their respective bit set in mask "k"), and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +m := 0 +FOR j := 0 to 31 + i := j*16 + IF k[j] + dst[i+15:i] := MEM[mem_addr+m+15:mem_addr+m] + m := m + 16 + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_VBMI2 +
immintrin.h
+ Load +
+ + Swizzle + + + + Load contiguous active 8-bit integers from unaligned memory at "mem_addr" (those with their respective bit set in mask "k"), and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +m := 0 +FOR j := 0 to 63 + i := j*8 + IF k[j] + dst[i+7:i] := MEM[mem_addr+m+7:mem_addr+m] + m := m + 8 + ELSE + dst[i+7:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_VBMI2 +
immintrin.h
+ Load +
+ + Swizzle + + + + + Load contiguous active 8-bit integers from unaligned memory at "mem_addr" (those with their respective bit set in mask "k"), and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +m := 0 +FOR j := 0 to 63 + i := j*8 + IF k[j] + dst[i+7:i] := MEM[mem_addr+m+7:mem_addr+m] + m := m + 8 + ELSE + dst[i+7:i] := src[i+7:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_VBMI2 +
immintrin.h
+ Load +
+ + + + + Load contiguous active 16-bit integers from "a" (those with their respective bit set in mask "k"), and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +m := 0 +FOR j := 0 to 31 + i := j*16 + IF k[j] + dst[i+15:i] := a[m+15:m] + m := m + 16 + ELSE + dst[i+15:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_VBMI2 +
immintrin.h
+ Swizzle +
+ + + + + + Load contiguous active 16-bit integers from "a" (those with their respective bit set in mask "k"), and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +m := 0 +FOR j := 0 to 31 + i := j*16 + IF k[j] + dst[i+15:i] := a[m+15:m] + m := m + 16 + ELSE + dst[i+15:i] := src[i+15:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_VBMI2 +
immintrin.h
+ Swizzle +
+ + + + + Load contiguous active 8-bit integers from "a" (those with their respective bit set in mask "k"), and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +m := 0 +FOR j := 0 to 63 + i := j*8 + IF k[j] + dst[i+7:i] := a[m+7:m] + m := m + 8 + ELSE + dst[i+7:i] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_VBMI2 +
immintrin.h
+ Swizzle +
+ + + + + + Load contiguous active 8-bit integers from "a" (those with their respective bit set in mask "k"), and store the results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +m := 0 +FOR j := 0 to 63 + i := j*8 + IF k[j] + dst[i+7:i] := a[m+7:m] + m := m + 8 + ELSE + dst[i+7:i] := src[i+7:i] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_VBMI2 +
immintrin.h
+ Swizzle +
+ + + + + Contiguously store the active 16-bit integers in "a" (those with their respective bit set in zeromask "k") to "dst", and set the remaining elements to zero. + +size := 16 +m := 0 +FOR j := 0 to 31 + i := j*16 + IF k[j] + dst[m+size-1:m] := a[i+15:i] + m := m + size + FI +ENDFOR +dst[511:m] := 0 +dst[MAX:512] := 0 + + + AVX512_VBMI2 +
immintrin.h
+ Swizzle +
+ + + + + + Contiguously store the active 16-bit integers in "a" (those with their respective bit set in writemask "k") to "dst", and pass through the remaining elements from "src". + +size := 16 +m := 0 +FOR j := 0 to 31 + i := j*16 + IF k[j] + dst[m+size-1:m] := a[i+15:i] + m := m + size + FI +ENDFOR +dst[511:m] := src[511:m] +dst[MAX:512] := 0 + + + AVX512_VBMI2 +
immintrin.h
+ Swizzle +
+ + + + + Contiguously store the active 8-bit integers in "a" (those with their respective bit set in zeromask "k") to "dst", and set the remaining elements to zero. + +size := 8 +m := 0 +FOR j := 0 to 63 + i := j*8 + IF k[j] + dst[m+size-1:m] := a[i+7:i] + m := m + size + FI +ENDFOR +dst[511:m] := 0 +dst[MAX:512] := 0 + + + AVX512_VBMI2 +
immintrin.h
+ Swizzle +
+ + + + + + Contiguously store the active 8-bit integers in "a" (those with their respective bit set in writemask "k") to "dst", and pass through the remaining elements from "src". + +size := 8 +m := 0 +FOR j := 0 to 63 + i := j*8 + IF k[j] + dst[m+size-1:m] := a[i+7:i] + m := m + size + FI +ENDFOR +dst[511:m] := src[511:m] +dst[MAX:512] := 0 + + + AVX512_VBMI2 +
immintrin.h
+ Swizzle +
+ + Swizzle + + + + + Contiguously store the active 16-bit integers in "a" (those with their respective bit set in writemask "k") to unaligned memory at "base_addr". + +size := 16 +m := base_addr +FOR j := 0 to 31 + i := j*16 + IF k[j] + MEM[m+size-1:m] := a[i+15:i] + m := m + size + FI +ENDFOR + + + AVX512_VBMI2 +
immintrin.h
+ Store +
+ + Swizzle + + + + + Contiguously store the active 8-bit integers in "a" (those with their respective bit set in writemask "k") to unaligned memory at "base_addr". + +size := 8 +m := base_addr +FOR j := 0 to 63 + i := j*8 + IF k[j] + MEM[m+size-1:m] := a[i+7:i] + m := m + size + FI +ENDFOR + + + AVX512_VBMI2 +
immintrin.h
+ Store +
+ + + + + + + + + Multiply groups of 2 adjacent pairs of signed 16-bit integers in "a" with corresponding 16-bit integers in "b", producing 2 intermediate signed 32-bit results. Sum these 2 results with the corresponding 32-bit integer in "src" using signed saturation, and store the packed 32-bit results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + IF k[j] + tmp1.dword := SignExtend32(a.word[2*j]) * SignExtend32(b.word[2*j]) + tmp2.dword := SignExtend32(a.word[2*j+1]) * SignExtend32(b.word[2*j+1]) + dst.dword[j] := Saturate32(src.dword[j] + tmp1 + tmp2) + ELSE + dst.dword[j] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_VNNI + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply groups of 2 adjacent pairs of signed 16-bit integers in "a" with corresponding 16-bit integers in "b", producing 2 intermediate signed 32-bit results. Sum these 2 results with the corresponding 32-bit integer in "src" using signed saturation, and store the packed 32-bit results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + IF k[j] + tmp1.dword := SignExtend32(a.word[2*j]) * SignExtend32(b.word[2*j]) + tmp2.dword := SignExtend32(a.word[2*j+1]) * SignExtend32(b.word[2*j+1]) + dst.dword[j] := Saturate32(src.dword[j] + tmp1 + tmp2) + ELSE + dst.dword[j] := src.dword[j] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_VNNI + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply groups of 2 adjacent pairs of signed 16-bit integers in "a" with corresponding 16-bit integers in "b", producing 2 intermediate signed 32-bit results. Sum these 2 results with the corresponding 32-bit integer in "src" using signed saturation, and store the packed 32-bit results in "dst". + +FOR j := 0 to 7 + tmp1.dword := SignExtend32(a.word[2*j]) * SignExtend32(b.word[2*j]) + tmp2.dword := SignExtend32(a.word[2*j+1]) * SignExtend32(b.word[2*j+1]) + dst.dword[j] := Saturate32(src.dword[j] + tmp1 + tmp2) +ENDFOR +dst[MAX:256] := 0 + + + AVX512_VNNI + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply groups of 2 adjacent pairs of signed 16-bit integers in "a" with corresponding 16-bit integers in "b", producing 2 intermediate signed 32-bit results. Sum these 2 results with the corresponding 32-bit integer in "src" using signed saturation, and store the packed 32-bit results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + IF k[j] + tmp1.dword := SignExtend32(a.word[2*j]) * SignExtend32(b.word[2*j]) + tmp2.dword := SignExtend32(a.word[2*j+1]) * SignExtend32(b.word[2*j+1]) + dst.dword[j] := Saturate32(src.dword[j] + tmp1 + tmp2) + ELSE + dst.dword[j] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_VNNI + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply groups of 2 adjacent pairs of signed 16-bit integers in "a" with corresponding 16-bit integers in "b", producing 2 intermediate signed 32-bit results. Sum these 2 results with the corresponding 32-bit integer in "src" using signed saturation, and store the packed 32-bit results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + IF k[j] + tmp1.dword := SignExtend32(a.word[2*j]) * SignExtend32(b.word[2*j]) + tmp2.dword := SignExtend32(a.word[2*j+1]) * SignExtend32(b.word[2*j+1]) + dst.dword[j] := Saturate32(src.dword[j] + tmp1 + tmp2) + ELSE + dst.dword[j] := src.dword[j] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_VNNI + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply groups of 2 adjacent pairs of signed 16-bit integers in "a" with corresponding 16-bit integers in "b", producing 2 intermediate signed 32-bit results. Sum these 2 results with the corresponding 32-bit integer in "src" using signed saturation, and store the packed 32-bit results in "dst". + +FOR j := 0 to 3 + tmp1.dword := SignExtend32(a.word[2*j]) * SignExtend32(b.word[2*j]) + tmp2.dword := SignExtend32(a.word[2*j+1]) * SignExtend32(b.word[2*j+1]) + dst.dword[j] := Saturate32(src.dword[j] + tmp1 + tmp2) +ENDFOR +dst[MAX:128] := 0 + + + AVX512_VNNI + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply groups of 2 adjacent pairs of signed 16-bit integers in "a" with corresponding 16-bit integers in "b", producing 2 intermediate signed 32-bit results. Sum these 2 results with the corresponding 32-bit integer in "src", and store the packed 32-bit results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + IF k[j] + tmp1.dword := SignExtend32(a.word[2*j]) * SignExtend32(b.word[2*j]) + tmp2.dword := SignExtend32(a.word[2*j+1]) * SignExtend32(b.word[2*j+1]) + dst.dword[j] := src.dword[j] + tmp1 + tmp2 + ELSE + dst.dword[j] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_VNNI + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply groups of 2 adjacent pairs of signed 16-bit integers in "a" with corresponding 16-bit integers in "b", producing 2 intermediate signed 32-bit results. Sum these 2 results with the corresponding 32-bit integer in "src", and store the packed 32-bit results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + IF k[j] + tmp1.dword := SignExtend32(a.word[2*j]) * SignExtend32(b.word[2*j]) + tmp2.dword := SignExtend32(a.word[2*j+1]) * SignExtend32(b.word[2*j+1]) + dst.dword[j] := src.dword[j] + tmp1 + tmp2 + ELSE + dst.dword[j] := src.dword[j] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_VNNI + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply groups of 2 adjacent pairs of signed 16-bit integers in "a" with corresponding 16-bit integers in "b", producing 2 intermediate signed 32-bit results. Sum these 2 results with the corresponding 32-bit integer in "src", and store the packed 32-bit results in "dst". + +FOR j := 0 to 7 + tmp1.dword := SignExtend32(a.word[2*j]) * SignExtend32(b.word[2*j]) + tmp2.dword := SignExtend32(a.word[2*j+1]) * SignExtend32(b.word[2*j+1]) + dst.dword[j] := src.dword[j] + tmp1 + tmp2 +ENDFOR +dst[MAX:256] := 0 + + + AVX512_VNNI + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply groups of 2 adjacent pairs of signed 16-bit integers in "a" with corresponding 16-bit integers in "b", producing 2 intermediate signed 32-bit results. Sum these 2 results with the corresponding 32-bit integer in "src", and store the packed 32-bit results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + IF k[j] + tmp1.dword := SignExtend32(a.word[2*j]) * SignExtend32(b.word[2*j]) + tmp2.dword := SignExtend32(a.word[2*j+1]) * SignExtend32(b.word[2*j+1]) + dst.dword[j] := src.dword[j] + tmp1 + tmp2 + ELSE + dst.dword[j] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_VNNI + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply groups of 2 adjacent pairs of signed 16-bit integers in "a" with corresponding 16-bit integers in "b", producing 2 intermediate signed 32-bit results. Sum these 2 results with the corresponding 32-bit integer in "src", and store the packed 32-bit results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + IF k[j] + tmp1.dword := SignExtend32(a.word[2*j]) * SignExtend32(b.word[2*j]) + tmp2.dword := SignExtend32(a.word[2*j+1]) * SignExtend32(b.word[2*j+1]) + dst.dword[j] := src.dword[j] + tmp1 + tmp2 + ELSE + dst.dword[j] := src.dword[j] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_VNNI + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply groups of 2 adjacent pairs of signed 16-bit integers in "a" with corresponding 16-bit integers in "b", producing 2 intermediate signed 32-bit results. Sum these 2 results with the corresponding 32-bit integer in "src", and store the packed 32-bit results in "dst". + +FOR j := 0 to 3 + tmp1.dword := SignExtend32(a.word[2*j]) * SignExtend32(b.word[2*j]) + tmp2.dword := SignExtend32(a.word[2*j+1]) * SignExtend32(b.word[2*j+1]) + dst.dword[j] := src.dword[j] + tmp1 + tmp2 +ENDFOR +dst[MAX:128] := 0 + + + AVX512_VNNI + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply groups of 4 adjacent pairs of unsigned 8-bit integers in "a" with corresponding signed 8-bit integers in "b", producing 4 intermediate signed 16-bit results. Sum these 4 results with the corresponding 32-bit integer in "src" using signed saturation, and store the packed 32-bit results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + IF k[j] + tmp1.word := Signed(ZeroExtend16(a.byte[4*j]) * SignExtend16(b.byte[4*j])) + tmp2.word := Signed(ZeroExtend16(a.byte[4*j+1]) * SignExtend16(b.byte[4*j+1])) + tmp3.word := Signed(ZeroExtend16(a.byte[4*j+2]) * SignExtend16(b.byte[4*j+2])) + tmp4.word := Signed(ZeroExtend16(a.byte[4*j+3]) * SignExtend16(b.byte[4*j+3])) + dst.dword[j] := Saturate32(src.dword[j] + tmp1 + tmp2 + tmp3 + tmp4) + ELSE + dst.dword[j] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_VNNI + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply groups of 4 adjacent pairs of unsigned 8-bit integers in "a" with corresponding signed 8-bit integers in "b", producing 4 intermediate signed 16-bit results. Sum these 4 results with the corresponding 32-bit integer in "src" using signed saturation, and store the packed 32-bit results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + IF k[j] + tmp1.word := Signed(ZeroExtend16(a.byte[4*j]) * SignExtend16(b.byte[4*j])) + tmp2.word := Signed(ZeroExtend16(a.byte[4*j+1]) * SignExtend16(b.byte[4*j+1])) + tmp3.word := Signed(ZeroExtend16(a.byte[4*j+2]) * SignExtend16(b.byte[4*j+2])) + tmp4.word := Signed(ZeroExtend16(a.byte[4*j+3]) * SignExtend16(b.byte[4*j+3])) + dst.dword[j] := Saturate32(src.dword[j] + tmp1 + tmp2 + tmp3 + tmp4) + ELSE + dst.dword[j] := src.dword[j] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_VNNI + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply groups of 4 adjacent pairs of unsigned 8-bit integers in "a" with corresponding signed 8-bit integers in "b", producing 4 intermediate signed 16-bit results. Sum these 4 results with the corresponding 32-bit integer in "src" using signed saturation, and store the packed 32-bit results in "dst". + +FOR j := 0 to 7 + tmp1.word := Signed(ZeroExtend16(a.byte[4*j]) * SignExtend16(b.byte[4*j])) + tmp2.word := Signed(ZeroExtend16(a.byte[4*j+1]) * SignExtend16(b.byte[4*j+1])) + tmp3.word := Signed(ZeroExtend16(a.byte[4*j+2]) * SignExtend16(b.byte[4*j+2])) + tmp4.word := Signed(ZeroExtend16(a.byte[4*j+3]) * SignExtend16(b.byte[4*j+3])) + dst.dword[j] := Saturate32(src.dword[j] + tmp1 + tmp2 + tmp3 + tmp4) +ENDFOR +dst[MAX:256] := 0 + + + AVX512_VNNI + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply groups of 4 adjacent pairs of unsigned 8-bit integers in "a" with corresponding signed 8-bit integers in "b", producing 4 intermediate signed 16-bit results. Sum these 4 results with the corresponding 32-bit integer in "src" using signed saturation, and store the packed 32-bit results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + IF k[j] + tmp1.word := Signed(ZeroExtend16(a.byte[4*j]) * SignExtend16(b.byte[4*j])) + tmp2.word := Signed(ZeroExtend16(a.byte[4*j+1]) * SignExtend16(b.byte[4*j+1])) + tmp3.word := Signed(ZeroExtend16(a.byte[4*j+2]) * SignExtend16(b.byte[4*j+2])) + tmp4.word := Signed(ZeroExtend16(a.byte[4*j+3]) * SignExtend16(b.byte[4*j+3])) + dst.dword[j] := Saturate32(src.dword[j] + tmp1 + tmp2 + tmp3 + tmp4) + ELSE + dst.dword[j] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_VNNI + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply groups of 4 adjacent pairs of unsigned 8-bit integers in "a" with corresponding signed 8-bit integers in "b", producing 4 intermediate signed 16-bit results. Sum these 4 results with the corresponding 32-bit integer in "src" using signed saturation, and store the packed 32-bit results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + IF k[j] + tmp1.word := Signed(ZeroExtend16(a.byte[4*j]) * SignExtend16(b.byte[4*j])) + tmp2.word := Signed(ZeroExtend16(a.byte[4*j+1]) * SignExtend16(b.byte[4*j+1])) + tmp3.word := Signed(ZeroExtend16(a.byte[4*j+2]) * SignExtend16(b.byte[4*j+2])) + tmp4.word := Signed(ZeroExtend16(a.byte[4*j+3]) * SignExtend16(b.byte[4*j+3])) + dst.dword[j] := Saturate32(src.dword[j] + tmp1 + tmp2 + tmp3 + tmp4) + ELSE + dst.dword[j] := src.dword[j] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_VNNI + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply groups of 4 adjacent pairs of unsigned 8-bit integers in "a" with corresponding signed 8-bit integers in "b", producing 4 intermediate signed 16-bit results. Sum these 4 results with the corresponding 32-bit integer in "src" using signed saturation, and store the packed 32-bit results in "dst". + +FOR j := 0 to 3 + tmp1.word := Signed(ZeroExtend16(a.byte[4*j]) * SignExtend16(b.byte[4*j])) + tmp2.word := Signed(ZeroExtend16(a.byte[4*j+1]) * SignExtend16(b.byte[4*j+1])) + tmp3.word := Signed(ZeroExtend16(a.byte[4*j+2]) * SignExtend16(b.byte[4*j+2])) + tmp4.word := Signed(ZeroExtend16(a.byte[4*j+3]) * SignExtend16(b.byte[4*j+3])) + dst.dword[j] := Saturate32(src.dword[j] + tmp1 + tmp2 + tmp3 + tmp4) +ENDFOR +dst[MAX:128] := 0 + + + AVX512_VNNI + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply groups of 4 adjacent pairs of unsigned 8-bit integers in "a" with corresponding signed 8-bit integers in "b", producing 4 intermediate signed 16-bit results. Sum these 4 results with the corresponding 32-bit integer in "src", and store the packed 32-bit results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 7 + IF k[j] + tmp1.word := Signed(ZeroExtend16(a.byte[4*j]) * SignExtend16(b.byte[4*j])) + tmp2.word := Signed(ZeroExtend16(a.byte[4*j+1]) * SignExtend16(b.byte[4*j+1])) + tmp3.word := Signed(ZeroExtend16(a.byte[4*j+2]) * SignExtend16(b.byte[4*j+2])) + tmp4.word := Signed(ZeroExtend16(a.byte[4*j+3]) * SignExtend16(b.byte[4*j+3])) + dst.dword[j] := src.dword[j] + tmp1 + tmp2 + tmp3 + tmp4 + ELSE + dst.dword[j] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_VNNI + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply groups of 4 adjacent pairs of unsigned 8-bit integers in "a" with corresponding signed 8-bit integers in "b", producing 4 intermediate signed 16-bit results. Sum these 4 results with the corresponding 32-bit integer in "src", and store the packed 32-bit results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 7 + IF k[j] + tmp1.word := Signed(ZeroExtend16(a.byte[4*j]) * SignExtend16(b.byte[4*j])) + tmp2.word := Signed(ZeroExtend16(a.byte[4*j+1]) * SignExtend16(b.byte[4*j+1])) + tmp3.word := Signed(ZeroExtend16(a.byte[4*j+2]) * SignExtend16(b.byte[4*j+2])) + tmp4.word := Signed(ZeroExtend16(a.byte[4*j+3]) * SignExtend16(b.byte[4*j+3])) + dst.dword[j] := src.dword[j] + tmp1 + tmp2 + tmp3 + tmp4 + ELSE + dst.dword[j] := src.dword[j] + FI +ENDFOR +dst[MAX:256] := 0 + + + AVX512_VNNI + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply groups of 4 adjacent pairs of unsigned 8-bit integers in "a" with corresponding signed 8-bit integers in "b", producing 4 intermediate signed 16-bit results. Sum these 4 results with the corresponding 32-bit integer in "src", and store the packed 32-bit results in "dst". + +FOR j := 0 to 7 + tmp1.word := Signed(ZeroExtend16(a.byte[4*j]) * SignExtend16(b.byte[4*j])) + tmp2.word := Signed(ZeroExtend16(a.byte[4*j+1]) * SignExtend16(b.byte[4*j+1])) + tmp3.word := Signed(ZeroExtend16(a.byte[4*j+2]) * SignExtend16(b.byte[4*j+2])) + tmp4.word := Signed(ZeroExtend16(a.byte[4*j+3]) * SignExtend16(b.byte[4*j+3])) + dst.dword[j] := src.dword[j] + tmp1 + tmp2 + tmp3 + tmp4 +ENDFOR +dst[MAX:256] := 0 + + + AVX512_VNNI + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply groups of 4 adjacent pairs of unsigned 8-bit integers in "a" with corresponding signed 8-bit integers in "b", producing 4 intermediate signed 16-bit results. Sum these 4 results with the corresponding 32-bit integer in "src", and store the packed 32-bit results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 3 + IF k[j] + tmp1.word := Signed(ZeroExtend16(a.byte[4*j]) * SignExtend16(b.byte[4*j])) + tmp2.word := Signed(ZeroExtend16(a.byte[4*j+1]) * SignExtend16(b.byte[4*j+1])) + tmp3.word := Signed(ZeroExtend16(a.byte[4*j+2]) * SignExtend16(b.byte[4*j+2])) + tmp4.word := Signed(ZeroExtend16(a.byte[4*j+3]) * SignExtend16(b.byte[4*j+3])) + dst.dword[j] := src.dword[j] + tmp1 + tmp2 + tmp3 + tmp4 + ELSE + dst.dword[j] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_VNNI + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply groups of 4 adjacent pairs of unsigned 8-bit integers in "a" with corresponding signed 8-bit integers in "b", producing 4 intermediate signed 16-bit results. Sum these 4 results with the corresponding 32-bit integer in "src", and store the packed 32-bit results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 3 + IF k[j] + tmp1.word := Signed(ZeroExtend16(a.byte[4*j]) * SignExtend16(b.byte[4*j])) + tmp2.word := Signed(ZeroExtend16(a.byte[4*j+1]) * SignExtend16(b.byte[4*j+1])) + tmp3.word := Signed(ZeroExtend16(a.byte[4*j+2]) * SignExtend16(b.byte[4*j+2])) + tmp4.word := Signed(ZeroExtend16(a.byte[4*j+3]) * SignExtend16(b.byte[4*j+3])) + dst.dword[j] := src.dword[j] + tmp1 + tmp2 + tmp3 + tmp4 + ELSE + dst.dword[j] := src.dword[j] + FI +ENDFOR +dst[MAX:128] := 0 + + + AVX512_VNNI + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply groups of 4 adjacent pairs of unsigned 8-bit integers in "a" with corresponding signed 8-bit integers in "b", producing 4 intermediate signed 16-bit results. Sum these 4 results with the corresponding 32-bit integer in "src", and store the packed 32-bit results in "dst". + +FOR j := 0 to 3 + tmp1.word := Signed(ZeroExtend16(a.byte[4*j]) * SignExtend16(b.byte[4*j])) + tmp2.word := Signed(ZeroExtend16(a.byte[4*j+1]) * SignExtend16(b.byte[4*j+1])) + tmp3.word := Signed(ZeroExtend16(a.byte[4*j+2]) * SignExtend16(b.byte[4*j+2])) + tmp4.word := Signed(ZeroExtend16(a.byte[4*j+3]) * SignExtend16(b.byte[4*j+3])) + dst.dword[j] := src.dword[j] + tmp1 + tmp2 + tmp3 + tmp4 +ENDFOR +dst[MAX:128] := 0 + + + AVX512_VNNI + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + + + Multiply groups of 2 adjacent pairs of signed 16-bit integers in "a" with corresponding 16-bit integers in "b", producing 2 intermediate signed 32-bit results. Sum these 2 results with the corresponding 32-bit integer in "src" using signed saturation, and store the packed 32-bit results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + IF k[j] + tmp1.dword := SignExtend32(a.word[2*j]) * SignExtend32(b.word[2*j]) + tmp2.dword := SignExtend32(a.word[2*j+1]) * SignExtend32(b.word[2*j+1]) + dst.dword[j] := Saturate32(src.dword[j] + tmp1 + tmp2) + ELSE + dst.dword[j] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_VNNI +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply groups of 2 adjacent pairs of signed 16-bit integers in "a" with corresponding 16-bit integers in "b", producing 2 intermediate signed 32-bit results. Sum these 2 results with the corresponding 32-bit integer in "src" using signed saturation, and store the packed 32-bit results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + IF k[j] + tmp1.dword := SignExtend32(a.word[2*j]) * SignExtend32(b.word[2*j]) + tmp2.dword := SignExtend32(a.word[2*j+1]) * SignExtend32(b.word[2*j+1]) + dst.dword[j] := Saturate32(src.dword[j] + tmp1 + tmp2) + ELSE + dst.dword[j] := src.dword[j] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_VNNI +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply groups of 2 adjacent pairs of signed 16-bit integers in "a" with corresponding 16-bit integers in "b", producing 2 intermediate signed 32-bit results. Sum these 2 results with the corresponding 32-bit integer in "src" using signed saturation, and store the packed 32-bit results in "dst". + +FOR j := 0 to 15 + tmp1.dword := SignExtend32(a.word[2*j]) * SignExtend32(b.word[2*j]) + tmp2.dword := SignExtend32(a.word[2*j+1]) * SignExtend32(b.word[2*j+1]) + dst.dword[j] := Saturate32(src.dword[j] + tmp1 + tmp2) +ENDFOR +dst[MAX:512] := 0 + + + AVX512_VNNI +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply groups of 2 adjacent pairs of signed 16-bit integers in "a" with corresponding 16-bit integers in "b", producing 2 intermediate signed 32-bit results. Sum these 2 results with the corresponding 32-bit integer in "src", and store the packed 32-bit results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + IF k[j] + tmp1.dword := SignExtend32(a.word[2*j]) * SignExtend32(b.word[2*j]) + tmp2.dword := SignExtend32(a.word[2*j+1]) * SignExtend32(b.word[2*j+1]) + dst.dword[j] := src.dword[j] + tmp1 + tmp2 + ELSE + dst.dword[j] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_VNNI +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply groups of 2 adjacent pairs of signed 16-bit integers in "a" with corresponding 16-bit integers in "b", producing 2 intermediate signed 32-bit results. Sum these 2 results with the corresponding 32-bit integer in "src", and store the packed 32-bit results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + IF k[j] + tmp1.dword := SignExtend32(a.word[2*j]) * SignExtend32(b.word[2*j]) + tmp2.dword := SignExtend32(a.word[2*j+1]) * SignExtend32(b.word[2*j+1]) + dst.dword[j] := src.dword[j] + tmp1 + tmp2 + ELSE + dst.dword[j] := src.dword[j] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_VNNI +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply groups of 2 adjacent pairs of signed 16-bit integers in "a" with corresponding 16-bit integers in "b", producing 2 intermediate signed 32-bit results. Sum these 2 results with the corresponding 32-bit integer in "src", and store the packed 32-bit results in "dst". + +FOR j := 0 to 15 + tmp1.dword := SignExtend32(a.word[2*j]) * SignExtend32(b.word[2*j]) + tmp2.dword := SignExtend32(a.word[2*j+1]) * SignExtend32(b.word[2*j+1]) + dst.dword[j] := src.dword[j] + tmp1 + tmp2 +ENDFOR +dst[MAX:512] := 0 + + + AVX512_VNNI +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply groups of 4 adjacent pairs of unsigned 8-bit integers in "a" with corresponding signed 8-bit integers in "b", producing 4 intermediate signed 16-bit results. Sum these 4 results with the corresponding 32-bit integer in "src" using signed saturation, and store the packed 32-bit results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + IF k[j] + tmp1.word := Signed(ZeroExtend16(a.byte[4*j]) * SignExtend16(b.byte[4*j])) + tmp2.word := Signed(ZeroExtend16(a.byte[4*j+1]) * SignExtend16(b.byte[4*j+1])) + tmp3.word := Signed(ZeroExtend16(a.byte[4*j+2]) * SignExtend16(b.byte[4*j+2])) + tmp4.word := Signed(ZeroExtend16(a.byte[4*j+3]) * SignExtend16(b.byte[4*j+3])) + dst.dword[j] := Saturate32(src.dword[j] + tmp1 + tmp2 + tmp3 + tmp4) + ELSE + dst.dword[j] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_VNNI +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply groups of 4 adjacent pairs of unsigned 8-bit integers in "a" with corresponding signed 8-bit integers in "b", producing 4 intermediate signed 16-bit results. Sum these 4 results with the corresponding 32-bit integer in "src" using signed saturation, and store the packed 32-bit results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + IF k[j] + tmp1.word := Signed(ZeroExtend16(a.byte[4*j]) * SignExtend16(b.byte[4*j])) + tmp2.word := Signed(ZeroExtend16(a.byte[4*j+1]) * SignExtend16(b.byte[4*j+1])) + tmp3.word := Signed(ZeroExtend16(a.byte[4*j+2]) * SignExtend16(b.byte[4*j+2])) + tmp4.word := Signed(ZeroExtend16(a.byte[4*j+3]) * SignExtend16(b.byte[4*j+3])) + dst.dword[j] := Saturate32(src.dword[j] + tmp1 + tmp2 + tmp3 + tmp4) + ELSE + dst.dword[j] := src.dword[j] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_VNNI +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply groups of 4 adjacent pairs of unsigned 8-bit integers in "a" with corresponding signed 8-bit integers in "b", producing 4 intermediate signed 16-bit results. Sum these 4 results with the corresponding 32-bit integer in "src" using signed saturation, and store the packed 32-bit results in "dst". + +FOR j := 0 to 15 + tmp1.word := Signed(ZeroExtend16(a.byte[4*j]) * SignExtend16(b.byte[4*j])) + tmp2.word := Signed(ZeroExtend16(a.byte[4*j+1]) * SignExtend16(b.byte[4*j+1])) + tmp3.word := Signed(ZeroExtend16(a.byte[4*j+2]) * SignExtend16(b.byte[4*j+2])) + tmp4.word := Signed(ZeroExtend16(a.byte[4*j+3]) * SignExtend16(b.byte[4*j+3])) + dst.dword[j] := Saturate32(src.dword[j] + tmp1 + tmp2 + tmp3 + tmp4) +ENDFOR +dst[MAX:512] := 0 + + + AVX512_VNNI +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply groups of 4 adjacent pairs of unsigned 8-bit integers in "a" with corresponding signed 8-bit integers in "b", producing 4 intermediate signed 16-bit results. Sum these 4 results with the corresponding 32-bit integer in "src", and store the packed 32-bit results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +FOR j := 0 to 15 + IF k[j] + tmp1.word := Signed(ZeroExtend16(a.byte[4*j]) * SignExtend16(b.byte[4*j])) + tmp2.word := Signed(ZeroExtend16(a.byte[4*j+1]) * SignExtend16(b.byte[4*j+1])) + tmp3.word := Signed(ZeroExtend16(a.byte[4*j+2]) * SignExtend16(b.byte[4*j+2])) + tmp4.word := Signed(ZeroExtend16(a.byte[4*j+3]) * SignExtend16(b.byte[4*j+3])) + dst.dword[j] := src.dword[j] + tmp1 + tmp2 + tmp3 + tmp4 + ELSE + dst.dword[j] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_VNNI +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply groups of 4 adjacent pairs of unsigned 8-bit integers in "a" with corresponding signed 8-bit integers in "b", producing 4 intermediate signed 16-bit results. Sum these 4 results with the corresponding 32-bit integer in "src", and store the packed 32-bit results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +FOR j := 0 to 15 + IF k[j] + tmp1.word := Signed(ZeroExtend16(a.byte[4*j]) * SignExtend16(b.byte[4*j])) + tmp2.word := Signed(ZeroExtend16(a.byte[4*j+1]) * SignExtend16(b.byte[4*j+1])) + tmp3.word := Signed(ZeroExtend16(a.byte[4*j+2]) * SignExtend16(b.byte[4*j+2])) + tmp4.word := Signed(ZeroExtend16(a.byte[4*j+3]) * SignExtend16(b.byte[4*j+3])) + dst.dword[j] := src.dword[j] + tmp1 + tmp2 + tmp3 + tmp4 + ELSE + dst.dword[j] := src.dword[j] + FI +ENDFOR +dst[MAX:512] := 0 + + + AVX512_VNNI +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply groups of 4 adjacent pairs of unsigned 8-bit integers in "a" with corresponding signed 8-bit integers in "b", producing 4 intermediate signed 16-bit results. Sum these 4 results with the corresponding 32-bit integer in "src", and store the packed 32-bit results in "dst". + +FOR j := 0 to 15 + tmp1.word := Signed(ZeroExtend16(a.byte[4*j]) * SignExtend16(b.byte[4*j])) + tmp2.word := Signed(ZeroExtend16(a.byte[4*j+1]) * SignExtend16(b.byte[4*j+1])) + tmp3.word := Signed(ZeroExtend16(a.byte[4*j+2]) * SignExtend16(b.byte[4*j+2])) + tmp4.word := Signed(ZeroExtend16(a.byte[4*j+3]) * SignExtend16(b.byte[4*j+3])) + dst.dword[j] := src.dword[j] + tmp1 + tmp2 + tmp3 + tmp4 +ENDFOR +dst[MAX:512] := 0 + + + AVX512_VNNI +
immintrin.h
+ Arithmetic +
+ + + + + + + + + Compute intersection of packed 32-bit integer vectors "a" and "b", and store indication of match in the corresponding bit of two mask registers specified by "k1" and "k2". A match in corresponding elements of "a" and "b" is indicated by a set bit in the corresponding bit of the mask registers. + +MEM[k1+15:k1] := 0 +MEM[k2+15:k2] := 0 +FOR i := 0 TO 15 + FOR j := 0 TO 15 + match := (a.dword[i] == b.dword[j] ? 1 : 0) + MEM[k1+15:k1].bit[i] |= match + MEM[k2+15:k2].bit[j] |= match + ENDFOR +ENDFOR + + + AVX512_VP2INTERSECT + AVX512F +
immintrin.h
+ Mask +
+ + + + + + + Compute intersection of packed 64-bit integer vectors "a" and "b", and store indication of match in the corresponding bit of two mask registers specified by "k1" and "k2". A match in corresponding elements of "a" and "b" is indicated by a set bit in the corresponding bit of the mask registers. + +MEM[k1+7:k1] := 0 +MEM[k2+7:k2] := 0 +FOR i := 0 TO 7 + FOR j := 0 TO 7 + match := (a.qword[i] == b.qword[j] ? 1 : 0) + MEM[k1+7:k1].bit[i] |= match + MEM[k2+7:k2].bit[j] |= match + ENDFOR +ENDFOR + + + AVX512_VP2INTERSECT + AVX512F +
immintrin.h
+ Mask +
+ + + + + + + + + Compute intersection of packed 32-bit integer vectors "a" and "b", and store indication of match in the corresponding bit of two mask registers specified by "k1" and "k2". A match in corresponding elements of "a" and "b" is indicated by a set bit in the corresponding bit of the mask registers. + +MEM[k1+7:k1] := 0 +MEM[k2+7:k2] := 0 +FOR i := 0 TO 3 + FOR j := 0 TO 3 + match := (a.dword[i] == b.dword[j] ? 1 : 0) + MEM[k1+7:k1].bit[i] |= match + MEM[k2+7:k2].bit[j] |= match + ENDFOR +ENDFOR + + + AVX512_VP2INTERSECT + AVX512VL +
immintrin.h
+ Mask +
+ + + + + + + Compute intersection of packed 32-bit integer vectors "a" and "b", and store indication of match in the corresponding bit of two mask registers specified by "k1" and "k2". A match in corresponding elements of "a" and "b" is indicated by a set bit in the corresponding bit of the mask registers. + +MEM[k1+7:k1] := 0 +MEM[k2+7:k2] := 0 +FOR i := 0 TO 7 + FOR j := 0 TO 7 + match := (a.dword[i] == b.dword[j] ? 1 : 0) + MEM[k1+7:k1].bit[i] |= match + MEM[k2+7:k2].bit[j] |= match + ENDFOR +ENDFOR + + + AVX512_VP2INTERSECT + AVX512VL +
immintrin.h
+ Mask +
+ + + + + + + Compute intersection of packed 64-bit integer vectors "a" and "b", and store indication of match in the corresponding bit of two mask registers specified by "k1" and "k2". A match in corresponding elements of "a" and "b" is indicated by a set bit in the corresponding bit of the mask registers. + +MEM[k1+7:k1] := 0 +MEM[k2+7:k2] := 0 +FOR i := 0 TO 1 + FOR j := 0 TO 1 + match := (a.qword[i] == b.qword[j] ? 1 : 0) + MEM[k1+7:k1].bit[i] |= match + MEM[k2+7:k2].bit[j] |= match + ENDFOR +ENDFOR + + + AVX512_VP2INTERSECT + AVX512VL +
immintrin.h
+ Mask +
+ + + + + + + Compute intersection of packed 64-bit integer vectors "a" and "b", and store indication of match in the corresponding bit of two mask registers specified by "k1" and "k2". A match in corresponding elements of "a" and "b" is indicated by a set bit in the corresponding bit of the mask registers. + +MEM[k1+7:k1] := 0 +MEM[k2+7:k2] := 0 +FOR i := 0 TO 3 + FOR j := 0 TO 3 + match := (a.qword[i] == b.qword[j] ? 1 : 0) + MEM[k1+7:k1].bit[i] |= match + MEM[k2+7:k2].bit[j] |= match + ENDFOR +ENDFOR + + + AVX512_VP2INTERSECT + AVX512VL +
immintrin.h
+ Mask +
+ + + + + Multiply packed unsigned 52-bit integers in each 64-bit element of "__Y" and "__Z" to form a 104-bit intermediate result. Add the high 52-bit unsigned integer from the intermediate result with the corresponding unsigned 64-bit integer in "__X", and store the results in "dst". + + +FOR j := 0 to 3 + i := j*64 + tmp[127:0] := ZeroExtend64(__Y[i+51:i]) * ZeroExtend64(__Z[i+51:i]) + dst[i+63:i] := __X[i+63:i] + ZeroExtend64(tmp[103:52]) +ENDFOR +dst[MAX:256] := 0 + + + + + AVX_IFMA +
immintrin.h
+ Arithmetic +
+ + + Multiply packed unsigned 52-bit integers in each 64-bit element of "__Y" and "__Z" to form a 104-bit intermediate result. Add the low 52-bit unsigned integer from the intermediate result with the corresponding unsigned 64-bit integer in "__X", and store the results in "dst". + + +FOR j := 0 to 3 + i := j*64 + tmp[127:0] := ZeroExtend64(__Y[i+51:i]) * ZeroExtend64(__Z[i+51:i]) + dst[i+63:i] := __X[i+63:i] + ZeroExtend64(tmp[51:0]) +ENDFOR +dst[MAX:256] := 0 + + + + + AVX_IFMA +
immintrin.h
+ Arithmetic +
+ + + Multiply packed unsigned 52-bit integers in each 64-bit element of "__Y" and "__Z" to form a 104-bit intermediate result. Add the high 52-bit unsigned integer from the intermediate result with the corresponding unsigned 64-bit integer in "__X", and store the results in "dst". + + +FOR j := 0 to 1 + i := j*64 + tmp[127:0] := ZeroExtend64(__Y[i+51:i]) * ZeroExtend64(__Z[i+51:i]) + dst[i+63:i] := __X[i+63:i] + ZeroExtend64(tmp[103:52]) +ENDFOR +dst[MAX:128] := 0 + + + + + AVX_IFMA +
immintrin.h
+ Arithmetic +
+ + + Multiply packed unsigned 52-bit integers in each 64-bit element of "__Y" and "__Z" to form a 104-bit intermediate result. Add the low 52-bit unsigned integer from the intermediate result with the corresponding unsigned 64-bit integer in "__X", and store the results in "dst". + + +FOR j := 0 to 1 + i := j*64 + tmp[127:0] := ZeroExtend64(__Y[i+51:i]) * ZeroExtend64(__Z[i+51:i]) + dst[i+63:i] := __X[i+63:i] + ZeroExtend64(tmp[51:0]) +ENDFOR +dst[MAX:128] := 0 + + + + + AVX_IFMA +
immintrin.h
+ Arithmetic +
+ + + Multiply packed unsigned 52-bit integers in each 64-bit element of "__Y" and "__Z" to form a 104-bit intermediate result. Add the high 52-bit unsigned integer from the intermediate result with the corresponding unsigned 64-bit integer in "__X", and store the results in "dst". + + +FOR j := 0 to 3 + i := j*64 + tmp[127:0] := ZeroExtend64(__Y[i+51:i]) * ZeroExtend64(__Z[i+51:i]) + dst[i+63:i] := __X[i+63:i] + ZeroExtend64(tmp[103:52]) +ENDFOR +dst[MAX:256] := 0 + + + + + AVX_IFMA +
immintrin.h
+ Arithmetic +
+ + + Multiply packed unsigned 52-bit integers in each 64-bit element of "__Y" and "__Z" to form a 104-bit intermediate result. Add the low 52-bit unsigned integer from the intermediate result with the corresponding unsigned 64-bit integer in "__X", and store the results in "dst". + + +FOR j := 0 to 3 + i := j*64 + tmp[127:0] := ZeroExtend64(__Y[i+51:i]) * ZeroExtend64(__Z[i+51:i]) + dst[i+63:i] := __X[i+63:i] + ZeroExtend64(tmp[51:0]) +ENDFOR +dst[MAX:256] := 0 + + + + + AVX_IFMA +
immintrin.h
+ Arithmetic +
+ + + Multiply packed unsigned 52-bit integers in each 64-bit element of "__Y" and "__Z" to form a 104-bit intermediate result. Add the high 52-bit unsigned integer from the intermediate result with the corresponding unsigned 64-bit integer in "__X", and store the results in "dst". + + +FOR j := 0 to 1 + i := j*64 + tmp[127:0] := ZeroExtend64(__Y[i+51:i]) * ZeroExtend64(__Z[i+51:i]) + dst[i+63:i] := __X[i+63:i] + ZeroExtend64(tmp[103:52]) +ENDFOR +dst[MAX:128] := 0 + + + + + AVX_IFMA +
immintrin.h
+ Arithmetic +
+ + + Multiply packed unsigned 52-bit integers in each 64-bit element of "__Y" and "__Z" to form a 104-bit intermediate result. Add the low 52-bit unsigned integer from the intermediate result with the corresponding unsigned 64-bit integer in "__X", and store the results in "dst". + + +FOR j := 0 to 1 + i := j*64 + tmp[127:0] := ZeroExtend64(__Y[i+51:i]) * ZeroExtend64(__Z[i+51:i]) + dst[i+63:i] := __X[i+63:i] + ZeroExtend64(tmp[51:0]) +ENDFOR +dst[MAX:128] := 0 + + + + + AVX_IFMA +
immintrin.h
+ Arithmetic +
+ + + + Convert scalar BF16 (16-bit) floating-point element stored at memory locations starting at location "__A" to a single-precision (32-bit) floating-point, broadcast it to packed single-precision (32-bit) floating-point elements, and store the results in "dst". + + +b := Convert_BF16_To_FP32(MEM[__A+15:__A]) +FOR j := 0 to 7 + m := j*32 + dst[m+31:m] := b +ENDFOR +dst[MAX:256] := 0 + + + AVX_NE_CONVERT +
immintrin.h
+ Convert +
+ + + Convert scalar half-precision (16-bit) floating-point element stored at memory locations starting at location "__A" to a single-precision (32-bit) floating-point, broadcast it to packed single-precision (32-bit) floating-point elements, and store the results in "dst". + + +b := Convert_FP16_To_FP32(MEM[__A+15:__A]) +FOR j := 0 to 7 + m := j*32 + dst[m+31:m] := b +ENDFOR +dst[MAX:256] := 0 + + + AVX_NE_CONVERT +
immintrin.h
+ Convert +
+ + + Convert packed BF16 (16-bit) floating-point even-indexed elements stored at memory locations starting at location "__A" to packed single-precision (32-bit) floating-point elements, and store the results in "dst". + + +FOR j := 0 to 7 + m := j*32 + dst[m+31:m] := Convert_BF16_To_FP32(MEM[__A+m+15:__A+m]) +ENDFOR +dst[MAX:256] := 0 + + + AVX_NE_CONVERT +
immintrin.h
+ Convert +
+ + + Convert packed half-precision (16-bit) floating-point even-indexed elements stored at memory locations starting at location "__A" to packed single-precision (32-bit) floating-point elements, and store the results in "dst". + + +FOR j := 0 to 7 + m := j*32 + dst[m+31:m] := Convert_FP16_To_FP32(MEM[__A+m+15:__A+m]) +ENDFOR +dst[MAX:256] := 0 + + + AVX_NE_CONVERT +
immintrin.h
+ Convert +
+ + + Convert packed BF16 (16-bit) floating-point odd-indexed elements stored at memory locations starting at location "__A" to packed single-precision (32-bit) floating-point elements, and store the results in "dst". + + +FOR j := 0 to 7 + m := j*32 + dst[m+31:m] := Convert_BF16_To_FP32(MEM[__A+m+31:__A+m+16]) +ENDFOR +dst[MAX:256] := 0 + + + AVX_NE_CONVERT +
immintrin.h
+ Convert +
+ + + Convert packed half-precision (16-bit) floating-point odd-indexed elements stored at memory locations starting at location "__A" to packed single-precision (32-bit) floating-point elements, and store the results in "dst". + + +FOR j := 0 to 7 + m := j*32 + dst[m+31:m] := Convert_FP16_To_FP32(MEM[__A+m+31:__A+m+16]) +ENDFOR +dst[MAX:256] := 0 + + + AVX_NE_CONVERT +
immintrin.h
+ Convert +
+ + + Convert packed single-precision (32-bit) floating-point elements in "__A" to packed BF16 (16-bit) floating-point elements, and store the results in "dst". + + +FOR j := 0 to 7 + dst.word[j] := Convert_FP32_To_BF16(__A.fp32[j]) +ENDFOR +dst[MAX:128] := 0 + + + AVX_NE_CONVERT +
immintrin.h
+ Convert +
+ + + Convert scalar BF16 (16-bit) floating-point element stored at memory locations starting at location "__A" to a single-precision (32-bit) floating-point, broadcast it to packed single-precision (32-bit) floating-point elements, and store the results in "dst". + + +b := Convert_BF16_To_FP32(MEM[__A+15:__A]) +FOR j := 0 to 3 + m := j*32 + dst[m+31:m] := b +ENDFOR +dst[MAX:128] := 0 + + + AVX_NE_CONVERT +
immintrin.h
+ Convert +
+ + + Convert scalar half-precision (16-bit) floating-point element stored at memory locations starting at location "__A" to a single-precision (32-bit) floating-point, broadcast it to packed single-precision (32-bit) floating-point elements, and store the results in "dst". + + +b := Convert_FP16_To_FP32(MEM[__A+15:__A]) +FOR j := 0 to 3 + m := j*32 + dst[m+31:m] := b +ENDFOR +dst[MAX:128] := 0 + + + AVX_NE_CONVERT +
immintrin.h
+ Convert +
+ + + Convert packed BF16 (16-bit) floating-point even-indexed elements stored at memory locations starting at location "__A" to packed single-precision (32-bit) floating-point elements, and store the results in "dst". + + +FOR j := 0 to 3 + m := j*32 + dst[m+31:m] := Convert_BF16_To_FP32(MEM[__A+m+15:__A+m]) +ENDFOR +dst[MAX:128] := 0 + + + AVX_NE_CONVERT +
immintrin.h
+ Convert +
+ + + Convert packed half-precision (16-bit) floating-point even-indexed elements stored at memory locations starting at location "__A" to packed single-precision (32-bit) floating-point elements, and store the results in "dst". + + +FOR j := 0 to 3 + m := j*32 + dst[m+31:m] := Convert_FP16_To_FP32(MEM[__A+m+15:__A+m]) +ENDFOR +dst[MAX:128] := 0 + + + AVX_NE_CONVERT +
immintrin.h
+ Convert +
+ + + Convert packed BF16 (16-bit) floating-point odd-indexed elements stored at memory locations starting at location "__A" to packed single-precision (32-bit) floating-point elements, and store the results in "dst". + + +FOR j := 0 to 3 + m := j*32 + dst[m+31:m] := Convert_BF16_To_FP32(MEM[__A+m+31:__A+m+16]) +ENDFOR +dst[MAX:128] := 0 + + + AVX_NE_CONVERT +
immintrin.h
+ Convert +
+ + + Convert packed half-precision (16-bit) floating-point odd-indexed elements stored at memory locations starting at location "__A" to packed single-precision (32-bit) floating-point elements, and store the results in "dst". + + +FOR j := 0 to 3 + m := j*32 + dst[m+31:m] := Convert_FP16_To_FP32(MEM[__A+m+31:__A+m+16]) +ENDFOR +dst[MAX:128] := 0 + + + AVX_NE_CONVERT +
immintrin.h
+ Convert +
+ + + Convert packed single-precision (32-bit) floating-point elements in "__A" to packed BF16 (16-bit) floating-point elements, and store the results in "dst". + + +FOR j := 0 to 3 + dst.word[j] := Convert_FP32_To_BF16(__A.fp32[j]) +ENDFOR +dst[MAX:128] := 0 + + + AVX_NE_CONVERT +
immintrin.h
+ Convert +
+ + + Convert packed single-precision (32-bit) floating-point elements in "__A" to packed BF16 (16-bit) floating-point elements, and store the results in "dst". + + +FOR j := 0 to 7 + dst.word[j] := Convert_FP32_To_BF16(__A.fp32[j]) +ENDFOR +dst[MAX:128] := 0 + + + AVX_NE_CONVERT +
immintrin.h
+ Convert +
+ + + Convert packed single-precision (32-bit) floating-point elements in "__A" to packed BF16 (16-bit) floating-point elements, and store the results in "dst". + + +FOR j := 0 to 3 + dst.word[j] := Convert_FP32_To_BF16(__A.fp32[j]) +ENDFOR +dst[MAX:128] := 0 + + + AVX_NE_CONVERT +
immintrin.h
+ Convert +
+ + + + + + Multiply groups of 4 adjacent pairs of unsigned 8-bit integers in "a" with corresponding signed 8-bit integers in "b", producing 4 intermediate signed 16-bit results. Sum these 4 results with the corresponding 32-bit integer in "src", and store the packed 32-bit results in "dst". + +FOR j := 0 to 7 + tmp1.word := Signed(ZeroExtend16(a.byte[4*j]) * SignExtend16(b.byte[4*j])) + tmp2.word := Signed(ZeroExtend16(a.byte[4*j+1]) * SignExtend16(b.byte[4*j+1])) + tmp3.word := Signed(ZeroExtend16(a.byte[4*j+2]) * SignExtend16(b.byte[4*j+2])) + tmp4.word := Signed(ZeroExtend16(a.byte[4*j+3]) * SignExtend16(b.byte[4*j+3])) + dst.dword[j] := src.dword[j] + tmp1 + tmp2 + tmp3 + tmp4 +ENDFOR +dst[MAX:256] := 0 + + + AVX_VNNI +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply groups of 4 adjacent pairs of unsigned 8-bit integers in "a" with corresponding signed 8-bit integers in "b", producing 4 intermediate signed 16-bit results. Sum these 4 results with the corresponding 32-bit integer in "src" using signed saturation, and store the packed 32-bit results in "dst". + +FOR j := 0 to 7 + tmp1.word := Signed(ZeroExtend16(a.byte[4*j]) * SignExtend16(b.byte[4*j])) + tmp2.word := Signed(ZeroExtend16(a.byte[4*j+1]) * SignExtend16(b.byte[4*j+1])) + tmp3.word := Signed(ZeroExtend16(a.byte[4*j+2]) * SignExtend16(b.byte[4*j+2])) + tmp4.word := Signed(ZeroExtend16(a.byte[4*j+3]) * SignExtend16(b.byte[4*j+3])) + dst.dword[j] := Saturate32(src.dword[j] + tmp1 + tmp2 + tmp3 + tmp4) +ENDFOR +dst[MAX:256] := 0 + + + AVX_VNNI +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply groups of 2 adjacent pairs of signed 16-bit integers in "a" with corresponding 16-bit integers in "b", producing 2 intermediate signed 32-bit results. Sum these 2 results with the corresponding 32-bit integer in "src", and store the packed 32-bit results in "dst". + +FOR j := 0 to 7 + tmp1.dword := SignExtend32(a.word[2*j]) * SignExtend32(b.word[2*j]) + tmp2.dword := SignExtend32(a.word[2*j+1]) * SignExtend32(b.word[2*j+1]) + dst.dword[j] := src.dword[j] + tmp1 + tmp2 +ENDFOR +dst[MAX:256] := 0 + + + AVX_VNNI +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply groups of 2 adjacent pairs of signed 16-bit integers in "a" with corresponding 16-bit integers in "b", producing 2 intermediate signed 32-bit results. Sum these 2 results with the corresponding 32-bit integer in "src" using signed saturation, and store the packed 32-bit results in "dst". + +FOR j := 0 to 7 + tmp1.dword := SignExtend32(a.word[2*j]) * SignExtend32(b.word[2*j]) + tmp2.dword := SignExtend32(a.word[2*j+1]) * SignExtend32(b.word[2*j+1]) + dst.dword[j] := Saturate32(src.dword[j] + tmp1 + tmp2) +ENDFOR +dst[MAX:256] := 0 + + + AVX_VNNI +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply groups of 4 adjacent pairs of unsigned 8-bit integers in "a" with corresponding signed 8-bit integers in "b", producing 4 intermediate signed 16-bit results. Sum these 4 results with the corresponding 32-bit integer in "src", and store the packed 32-bit results in "dst". + +FOR j := 0 to 3 + tmp1.word := Signed(ZeroExtend16(a.byte[4*j]) * SignExtend16(b.byte[4*j])) + tmp2.word := Signed(ZeroExtend16(a.byte[4*j+1]) * SignExtend16(b.byte[4*j+1])) + tmp3.word := Signed(ZeroExtend16(a.byte[4*j+2]) * SignExtend16(b.byte[4*j+2])) + tmp4.word := Signed(ZeroExtend16(a.byte[4*j+3]) * SignExtend16(b.byte[4*j+3])) + dst.dword[j] := src.dword[j] + tmp1 + tmp2 + tmp3 + tmp4 +ENDFOR +dst[MAX:128] := 0 + + + AVX_VNNI +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply groups of 4 adjacent pairs of unsigned 8-bit integers in "a" with corresponding signed 8-bit integers in "b", producing 4 intermediate signed 16-bit results. Sum these 4 results with the corresponding 32-bit integer in "src" using signed saturation, and store the packed 32-bit results in "dst". + +FOR j := 0 to 3 + tmp1.word := Signed(ZeroExtend16(a.byte[4*j]) * SignExtend16(b.byte[4*j])) + tmp2.word := Signed(ZeroExtend16(a.byte[4*j+1]) * SignExtend16(b.byte[4*j+1])) + tmp3.word := Signed(ZeroExtend16(a.byte[4*j+2]) * SignExtend16(b.byte[4*j+2])) + tmp4.word := Signed(ZeroExtend16(a.byte[4*j+3]) * SignExtend16(b.byte[4*j+3])) + dst.dword[j] := Saturate32(src.dword[j] + tmp1 + tmp2 + tmp3 + tmp4) +ENDFOR +dst[MAX:128] := 0 + + + AVX_VNNI +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply groups of 2 adjacent pairs of signed 16-bit integers in "a" with corresponding 16-bit integers in "b", producing 2 intermediate signed 32-bit results. Sum these 2 results with the corresponding 32-bit integer in "src", and store the packed 32-bit results in "dst". + +FOR j := 0 to 3 + tmp1.dword := SignExtend32(a.word[2*j]) * SignExtend32(b.word[2*j]) + tmp2.dword := SignExtend32(a.word[2*j+1]) * SignExtend32(b.word[2*j+1]) + dst.dword[j] := src.dword[j] + tmp1 + tmp2 +ENDFOR +dst[MAX:128] := 0 + + + AVX_VNNI +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply groups of 2 adjacent pairs of signed 16-bit integers in "a" with corresponding 16-bit integers in "b", producing 2 intermediate signed 32-bit results. Sum these 2 results with the corresponding 32-bit integer in "src" using signed saturation, and store the packed 32-bit results in "dst". + +FOR j := 0 to 3 + tmp1.dword := SignExtend32(a.word[2*j]) * SignExtend32(b.word[2*j]) + tmp2.dword := SignExtend32(a.word[2*j+1]) * SignExtend32(b.word[2*j+1]) + dst.dword[j] := Saturate32(src.dword[j] + tmp1 + tmp2) +ENDFOR +dst[MAX:128] := 0 + + + AVX_VNNI +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply groups of 4 adjacent pairs of unsigned 8-bit integers in "a" with corresponding signed 8-bit integers in "b", producing 4 intermediate signed 16-bit results. Sum these 4 results with the corresponding 32-bit integer in "src", and store the packed 32-bit results in "dst". + +FOR j := 0 to 7 + tmp1.word := Signed(ZeroExtend16(a.byte[4*j]) * SignExtend16(b.byte[4*j])) + tmp2.word := Signed(ZeroExtend16(a.byte[4*j+1]) * SignExtend16(b.byte[4*j+1])) + tmp3.word := Signed(ZeroExtend16(a.byte[4*j+2]) * SignExtend16(b.byte[4*j+2])) + tmp4.word := Signed(ZeroExtend16(a.byte[4*j+3]) * SignExtend16(b.byte[4*j+3])) + dst.dword[j] := src.dword[j] + tmp1 + tmp2 + tmp3 + tmp4 +ENDFOR +dst[MAX:256] := 0 + + + AVX_VNNI +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply groups of 4 adjacent pairs of unsigned 8-bit integers in "a" with corresponding signed 8-bit integers in "b", producing 4 intermediate signed 16-bit results. Sum these 4 results with the corresponding 32-bit integer in "src" using signed saturation, and store the packed 32-bit results in "dst". + +FOR j := 0 to 7 + tmp1.word := Signed(ZeroExtend16(a.byte[4*j]) * SignExtend16(b.byte[4*j])) + tmp2.word := Signed(ZeroExtend16(a.byte[4*j+1]) * SignExtend16(b.byte[4*j+1])) + tmp3.word := Signed(ZeroExtend16(a.byte[4*j+2]) * SignExtend16(b.byte[4*j+2])) + tmp4.word := Signed(ZeroExtend16(a.byte[4*j+3]) * SignExtend16(b.byte[4*j+3])) + dst.dword[j] := Saturate32(src.dword[j] + tmp1 + tmp2 + tmp3 + tmp4) +ENDFOR +dst[MAX:256] := 0 + + + AVX_VNNI +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply groups of 2 adjacent pairs of signed 16-bit integers in "a" with corresponding 16-bit integers in "b", producing 2 intermediate signed 32-bit results. Sum these 2 results with the corresponding 32-bit integer in "src", and store the packed 32-bit results in "dst". + +FOR j := 0 to 7 + tmp1.dword := SignExtend32(a.word[2*j]) * SignExtend32(b.word[2*j]) + tmp2.dword := SignExtend32(a.word[2*j+1]) * SignExtend32(b.word[2*j+1]) + dst.dword[j] := src.dword[j] + tmp1 + tmp2 +ENDFOR +dst[MAX:256] := 0 + + + AVX_VNNI +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply groups of 2 adjacent pairs of signed 16-bit integers in "a" with corresponding 16-bit integers in "b", producing 2 intermediate signed 32-bit results. Sum these 2 results with the corresponding 32-bit integer in "src" using signed saturation, and store the packed 32-bit results in "dst". + +FOR j := 0 to 7 + tmp1.dword := SignExtend32(a.word[2*j]) * SignExtend32(b.word[2*j]) + tmp2.dword := SignExtend32(a.word[2*j+1]) * SignExtend32(b.word[2*j+1]) + dst.dword[j] := Saturate32(src.dword[j] + tmp1 + tmp2) +ENDFOR +dst[MAX:256] := 0 + + + AVX_VNNI +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply groups of 4 adjacent pairs of unsigned 8-bit integers in "a" with corresponding signed 8-bit integers in "b", producing 4 intermediate signed 16-bit results. Sum these 4 results with the corresponding 32-bit integer in "src", and store the packed 32-bit results in "dst". + +FOR j := 0 to 3 + tmp1.word := Signed(ZeroExtend16(a.byte[4*j]) * SignExtend16(b.byte[4*j])) + tmp2.word := Signed(ZeroExtend16(a.byte[4*j+1]) * SignExtend16(b.byte[4*j+1])) + tmp3.word := Signed(ZeroExtend16(a.byte[4*j+2]) * SignExtend16(b.byte[4*j+2])) + tmp4.word := Signed(ZeroExtend16(a.byte[4*j+3]) * SignExtend16(b.byte[4*j+3])) + dst.dword[j] := src.dword[j] + tmp1 + tmp2 + tmp3 + tmp4 +ENDFOR +dst[MAX:128] := 0 + + + AVX_VNNI +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply groups of 4 adjacent pairs of unsigned 8-bit integers in "a" with corresponding signed 8-bit integers in "b", producing 4 intermediate signed 16-bit results. Sum these 4 results with the corresponding 32-bit integer in "src" using signed saturation, and store the packed 32-bit results in "dst". + +FOR j := 0 to 3 + tmp1.word := Signed(ZeroExtend16(a.byte[4*j]) * SignExtend16(b.byte[4*j])) + tmp2.word := Signed(ZeroExtend16(a.byte[4*j+1]) * SignExtend16(b.byte[4*j+1])) + tmp3.word := Signed(ZeroExtend16(a.byte[4*j+2]) * SignExtend16(b.byte[4*j+2])) + tmp4.word := Signed(ZeroExtend16(a.byte[4*j+3]) * SignExtend16(b.byte[4*j+3])) + dst.dword[j] := Saturate32(src.dword[j] + tmp1 + tmp2 + tmp3 + tmp4) +ENDFOR +dst[MAX:128] := 0 + + + AVX_VNNI +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply groups of 2 adjacent pairs of signed 16-bit integers in "a" with corresponding 16-bit integers in "b", producing 2 intermediate signed 32-bit results. Sum these 2 results with the corresponding 32-bit integer in "src", and store the packed 32-bit results in "dst". + +FOR j := 0 to 3 + tmp1.dword := SignExtend32(a.word[2*j]) * SignExtend32(b.word[2*j]) + tmp2.dword := SignExtend32(a.word[2*j+1]) * SignExtend32(b.word[2*j+1]) + dst.dword[j] := src.dword[j] + tmp1 + tmp2 +ENDFOR +dst[MAX:128] := 0 + + + AVX_VNNI +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply groups of 2 adjacent pairs of signed 16-bit integers in "a" with corresponding 16-bit integers in "b", producing 2 intermediate signed 32-bit results. Sum these 2 results with the corresponding 32-bit integer in "src" using signed saturation, and store the packed 32-bit results in "dst". + +FOR j := 0 to 3 + tmp1.dword := SignExtend32(a.word[2*j]) * SignExtend32(b.word[2*j]) + tmp2.dword := SignExtend32(a.word[2*j+1]) * SignExtend32(b.word[2*j+1]) + dst.dword[j] := Saturate32(src.dword[j] + tmp1 + tmp2) +ENDFOR +dst[MAX:128] := 0 + + + AVX_VNNI +
immintrin.h
+ Arithmetic +
+ + + + Multiply groups of 2 adjacent pairs of signed 16-bit integers in "__A" with corresponding unsigned 16-bit integers in "__B", producing 2 intermediate signed 32-bit results. Sum these 2 results with the corresponding 32-bit integer in "__W", and store the packed 32-bit results in "dst". + + +FOR j := 0 to 7 + tmp1.dword := SignExtend32(__A.word[2*j]) * ZeroExtend32(__B.word[2*j]) + tmp2.dword := SignExtend32(__A.word[2*j+1]) * ZeroExtend32(__B.word[2*j+1]) + dst.dword[j] := __W.dword[j] + tmp1 + tmp2 +ENDFOR +dst[MAX:256] := 0 + + + + + AVX_VNNI_INT16 +
immintrin.h
+ Arithmetic +
+ + + Multiply groups of 2 adjacent pairs of signed 16-bit integers in "__A" with corresponding unsigned 16-bit integers in "__B", producing 2 intermediate signed 32-bit results. Sum these 2 results with the corresponding 32-bit integer in "__W" with signed saturation, and store the packed 32-bit results in "dst". + + +FOR j := 0 to 7 + tmp1.dword := SignExtend32(__A.word[2*j]) * ZeroExtend32(__B.word[2*j]) + tmp2.dword := SignExtend32(__A.word[2*j+1]) * ZeroExtend32(__B.word[2*j+1]) + dst.dword[j] := SIGNED_DWORD_SATURATE(__W.dword[j] + tmp1 + tmp2) +ENDFOR +dst[MAX:256] := 0 + + + + AVX_VNNI_INT16 +
immintrin.h
+ Arithmetic +
+ + + Multiply groups of 2 adjacent pairs of unsigned 16-bit integers in "__A" with corresponding signed 16-bit integers in "__B", producing 2 intermediate signed 32-bit results. Sum these 2 results with the corresponding 32-bit integer in "__W", and store the packed 32-bit results in "dst". + + +FOR j := 0 to 7 + tmp1.dword := ZeroExtend32(__A.word[2*j]) * SignExtend32(__B.word[2*j]) + tmp2.dword := ZeroExtend32(__A.word[2*j+1]) * SignExtend32(__B.word[2*j+1]) + dst.dword[j] := __W.dword[j] + tmp1 + tmp2 +ENDFOR +dst[MAX:256] := 0 + + + + + AVX_VNNI_INT16 +
immintrin.h
+ Arithmetic +
+ + + Multiply groups of 2 adjacent pairs of unsigned 16-bit integers in "__A" with corresponding signed 16-bit integers in "__B", producing 2 intermediate signed 32-bit results. Sum these 2 results with the corresponding 32-bit integer in "__W" with signed saturation, and store the packed 32-bit results in "dst". + + +FOR j := 0 to 7 + tmp1.dword := ZeroExtend32(__A.word[2*j]) * SignExtend32(__B.word[2*j]) + tmp2.dword := ZeroExtend32(__A.word[2*j+1]) * SignExtend32(__B.word[2*j+1]) + dst.dword[j] := SIGNED_DWORD_SATURATE(__W.dword[j] + tmp1 + tmp2) +ENDFOR +dst[MAX:256] := 0 + + + + AVX_VNNI_INT16 +
immintrin.h
+ Arithmetic +
+ + + Multiply groups of 2 adjacent pairs of unsigned 16-bit integers in "__A" with corresponding unsigned 16-bit integers in "__B", producing 2 intermediate signed 32-bit results. Sum these 2 results with the corresponding 32-bit integer in "__W", and store the packed 32-bit results in "dst". + + +FOR j := 0 to 7 + tmp1.dword := ZeroExtend32(__A.word[2*j]) * ZeroExtend32(__B.word[2*j]) + tmp2.dword := ZeroExtend32(__A.word[2*j+1]) * ZeroExtend32(__B.word[2*j+1]) + dst.dword[j] := __W.dword[j] + tmp1 + tmp2 +ENDFOR +dst[MAX:256] := 0 + + + + + AVX_VNNI_INT16 +
immintrin.h
+ Arithmetic +
+ + + Multiply groups of 2 adjacent pairs of unsigned 16-bit integers in "__A" with corresponding unsigned 16-bit integers in "__B", producing 2 intermediate signed 32-bit results. Sum these 2 results with the corresponding 32-bit integer in "__W" with signed saturation, and store the packed 32-bit results in "dst". + + +FOR j := 0 to 7 + tmp1.dword := ZeroExtend32(__A.word[2*j]) * ZeroExtend32(__B.word[2*j]) + tmp2.dword := ZeroExtend32(__A.word[2*j+1]) * ZeroExtend32(__B.word[2*j+1]) + dst.dword[j] := UNSIGNED_DWORD_SATURATE(__W.dword[j] + tmp1 + tmp2) +ENDFOR +dst[MAX:256] := 0 + + + + AVX_VNNI_INT16 +
immintrin.h
+ Arithmetic +
+ + + Multiply groups of 2 adjacent pairs of signed 16-bit integers in "__A" with corresponding unsigned 16-bit integers in "__B", producing 2 intermediate signed 32-bit results. Sum these 2 results with the corresponding 32-bit integer in "__W", and store the packed 32-bit results in "dst". + + +FOR j := 0 to 3 + tmp1.dword := SignExtend32(__A.word[2*j]) * ZeroExtend32(__B.word[2*j]) + tmp2.dword := SignExtend32(__A.word[2*j+1]) * ZeroExtend32(__B.word[2*j+1]) + dst.dword[j] := __W.dword[j] + tmp1 + tmp2 +ENDFOR +dst[MAX:128] := 0 + + + + + AVX_VNNI_INT16 +
immintrin.h
+ Arithmetic +
+ + + Multiply groups of 2 adjacent pairs of signed 16-bit integers in "__A" with corresponding unsigned 16-bit integers in "__B", producing 2 intermediate signed 32-bit results. Sum these 2 results with the corresponding 32-bit integer in "__W" with signed saturation, and store the packed 32-bit results in "dst". + + +FOR j := 0 to 3 + tmp1.dword := SignExtend32(__A.word[2*j]) * ZeroExtend32(__B.word[2*j]) + tmp2.dword := SignExtend32(__A.word[2*j+1]) * ZeroExtend32(__B.word[2*j+1]) + dst.dword[j] := SIGNED_DWORD_SATURATE(__W.dword[j] + tmp1 + tmp2) +ENDFOR +dst[MAX:128] := 0 + + + + AVX_VNNI_INT16 +
immintrin.h
+ Arithmetic +
+ + + Multiply groups of 2 adjacent pairs of unsigned 16-bit integers in "__A" with corresponding signed 16-bit integers in "__B", producing 2 intermediate signed 32-bit results. Sum these 2 results with the corresponding 32-bit integer in "__W", and store the packed 32-bit results in "dst". + + +FOR j := 0 to 3 + tmp1.dword := ZeroExtend32(__A.word[2*j]) * SignExtend32(__B.word[2*j]) + tmp2.dword := ZeroExtend32(__A.word[2*j+1]) * SignExtend32(__B.word[2*j+1]) + dst.dword[j] := __W.dword[j] + tmp1 + tmp2 +ENDFOR +dst[MAX:128] := 0 + + + + + AVX_VNNI_INT16 +
immintrin.h
+ Arithmetic +
+ + + Multiply groups of 2 adjacent pairs of unsigned 16-bit integers in "__A" with corresponding signed 16-bit integers in "__B", producing 2 intermediate signed 32-bit results. Sum these 2 results with the corresponding 32-bit integer in "__W" with signed saturation, and store the packed 32-bit results in "dst". + + +FOR j := 0 to 3 + tmp1.dword := ZeroExtend32(__A.word[2*j]) * SignExtend32(__B.word[2*j]) + tmp2.dword := ZeroExtend32(__A.word[2*j+1]) * SignExtend32(__B.word[2*j+1]) + dst.dword[j] := SIGNED_DWORD_SATURATE(__W.dword[j] + tmp1 + tmp2) +ENDFOR +dst[MAX:128] := 0 + + + + AVX_VNNI_INT16 +
immintrin.h
+ Arithmetic +
+ + + Multiply groups of 2 adjacent pairs of unsigned 16-bit integers in "__A" with corresponding unsigned 16-bit integers in "__B", producing 2 intermediate signed 32-bit results. Sum these 2 results with the corresponding 32-bit integer in "__W", and store the packed 32-bit results in "dst". + + +FOR j := 0 to 3 + tmp1.dword := ZeroExtend32(__A.word[2*j]) * ZeroExtend32(__B.word[2*j]) + tmp2.dword := ZeroExtend32(__A.word[2*j+1]) * ZeroExtend32(__B.word[2*j+1]) + dst.dword[j] := __W.dword[j] + tmp1 + tmp2 +ENDFOR +dst[MAX:128] := 0 + + + + + AVX_VNNI_INT16 +
immintrin.h
+ Arithmetic +
+ + + Multiply groups of 2 adjacent pairs of unsigned 16-bit integers in "__A" with corresponding unsigned 16-bit integers in "__B", producing 2 intermediate signed 32-bit results. Sum these 2 results with the corresponding 32-bit integer in "__W" with signed saturation, and store the packed 32-bit results in "dst". + + +FOR j := 0 to 3 + tmp1.dword := ZeroExtend32(__A.word[2*j]) * ZeroExtend32(__B.word[2*j]) + tmp2.dword := ZeroExtend32(__A.word[2*j+1]) * ZeroExtend32(__B.word[2*j+1]) + dst.dword[j] := UNSIGNED_DWORD_SATURATE(__W.dword[j] + tmp1 + tmp2) +ENDFOR +dst[MAX:128] := 0 + + + + AVX_VNNI_INT16 +
immintrin.h
+ Arithmetic +
+ + + Multiply groups of 4 adjacent pairs of signed 8-bit integers in "__A" with corresponding signed 8-bit integers in "__B", producing 4 intermediate signed 16-bit results. Sum these 4 results with the corresponding 32-bit integer in "__W", and store the packed 32-bit results in "dst". + + +FOR j := 0 to 7 + tmp1.word := SignExtend16(__A.byte[4*j]) * SignExtend16(__B.byte[4*j]) + tmp2.word := SignExtend16(__A.byte[4*j+1]) * SignExtend16(__B.byte[4*j+1]) + tmp3.word := SignExtend16(__A.byte[4*j+2]) * SignExtend16(__B.byte[4*j+2]) + tmp4.word := SignExtend16(__A.byte[4*j+3]) * SignExtend16(__B.byte[4*j+3]) + dst.dword[j] := __W.dword[j] + tmp1 + tmp2 + tmp3 + tmp4 +ENDFOR +dst[MAX:256] := 0 + + + + + AVX_VNNI_INT8 +
immintrin.h
+ Arithmetic +
+ + + Multiply groups of 4 adjacent pairs of signed 8-bit integers in "__A" with corresponding signed 8-bit integers in "__B", producing 4 intermediate signed 16-bit results. Sum these 4 results with the corresponding 32-bit integer in "__W" with signed saturation, and store the packed 32-bit results in "dst". + + +FOR j := 0 to 7 + tmp1.word := SignExtend16(__A.byte[4*j]) * SignExtend16(__B.byte[4*j]) + tmp2.word := SignExtend16(__A.byte[4*j+1]) * SignExtend16(__B.byte[4*j+1]) + tmp3.word := SignExtend16(__A.byte[4*j+2]) * SignExtend16(__B.byte[4*j+2]) + tmp4.word := SignExtend16(__A.byte[4*j+3]) * SignExtend16(__B.byte[4*j+3]) + dst.dword[j] := SIGNED_DWORD_SATURATE(__W.dword[j] + tmp1 + tmp2 + tmp3 + tmp4) +ENDFOR +dst[MAX:256] := 0 + + + + AVX_VNNI_INT8 +
immintrin.h
+ Arithmetic +
+ + + Multiply groups of 4 adjacent pairs of signed 8-bit integers in "__A" with corresponding unsigned 8-bit integers in "__B", producing 4 intermediate signed 16-bit results. Sum these 4 results with the corresponding 32-bit integer in "__W", and store the packed 32-bit results in "dst". + + +FOR j := 0 to 7 + tmp1.word := Signed(SignExtend16(__A.byte[4*j]) * ZeroExtend16(__B.byte[4*j])) + tmp2.word := Signed(SignExtend16(__A.byte[4*j+1]) * ZeroExtend16(__B.byte[4*j+1])) + tmp3.word := Signed(SignExtend16(__A.byte[4*j+2]) * ZeroExtend16(__B.byte[4*j+2])) + tmp4.word := Signed(SignExtend16(__A.byte[4*j+3]) * ZeroExtend16(__B.byte[4*j+3])) + dst.dword[j] := __W.dword[j] + tmp1 + tmp2 + tmp3 + tmp4 +ENDFOR +dst[MAX:256] := 0 + + + + + AVX_VNNI_INT8 +
immintrin.h
+ Arithmetic +
+ + + Multiply groups of 4 adjacent pairs of signed 8-bit integers in "__A" with corresponding unsigned 8-bit integers in "__B", producing 4 intermediate signed 16-bit results. Sum these 4 results with the corresponding 32-bit integer in "__W" with signed saturation, and store the packed 32-bit results in "dst". + + +FOR j := 0 to 7 + tmp1.word := Signed(SignExtend16(__A.byte[4*j]) * ZeroExtend16(__B.byte[4*j])) + tmp2.word := Signed(SignExtend16(__A.byte[4*j+1]) * ZeroExtend16(__B.byte[4*j+1])) + tmp3.word := Signed(SignExtend16(__A.byte[4*j+2]) * ZeroExtend16(__B.byte[4*j+2])) + tmp4.word := Signed(SignExtend16(__A.byte[4*j+3]) * ZeroExtend16(__B.byte[4*j+3])) + dst.dword[j] := SIGNED_DWORD_SATURATE(__W.dword[j] + tmp1 + tmp2 + tmp3 + tmp4) +ENDFOR +dst[MAX:256] := 0 + + + + AVX_VNNI_INT8 +
immintrin.h
+ Arithmetic +
+ + + Multiply groups of 4 adjacent pairs of unsigned 8-bit integers in "__A" with corresponding unsigned 8-bit integers in "__B", producing 4 intermediate signed 16-bit results. Sum these 4 results with the corresponding 32-bit integer in "__W", and store the packed 32-bit results in "dst". + + +FOR j := 0 to 7 + tmp1.word := ZeroExtend16(__A.byte[4*j]) * ZeroExtend16(__B.byte[4*j]) + tmp2.word := ZeroExtend16(__A.byte[4*j+1]) * ZeroExtend16(__B.byte[4*j+1]) + tmp3.word := ZeroExtend16(__A.byte[4*j+2]) * ZeroExtend16(__B.byte[4*j+2]) + tmp4.word := ZeroExtend16(__A.byte[4*j+3]) * ZeroExtend16(__B.byte[4*j+3]) + dst.dword[j] := __W.dword[j] + tmp1 + tmp2 + tmp3 + tmp4 +ENDFOR +dst[MAX:256] := 0 + + + + + AVX_VNNI_INT8 +
immintrin.h
+ Arithmetic +
+ + + Multiply groups of 4 adjacent pairs of signed 8-bit integers in "__A" with corresponding unsigned 8-bit integers in "__B", producing 4 intermediate signed 16-bit results. Sum these 4 results with the corresponding 32-bit integer in "__W" with unsigned saturation, and store the packed 32-bit results in "dst". + + +FOR j := 0 to 7 + tmp1.word := ZeroExtend16(__A.byte[4*j]) * ZeroExtend16(__B.byte[4*j]) + tmp2.word := ZeroExtend16(__A.byte[4*j+1]) * ZeroExtend16(__B.byte[4*j+1]) + tmp3.word := ZeroExtend16(__A.byte[4*j+2]) * ZeroExtend16(__B.byte[4*j+2]) + tmp4.word := ZeroExtend16(__A.byte[4*j+3]) * ZeroExtend16(__B.byte[4*j+3]) + dst.dword[j] := UNSIGNED_DWORD_SATURATE(__W.dword[j] + tmp1 + tmp2 + tmp3 + tmp4) +ENDFOR +dst[MAX:256] := 0 + + + + AVX_VNNI_INT8 +
immintrin.h
+ Arithmetic +
+ + + Multiply groups of 4 adjacent pairs of signed 8-bit integers in "__A" with corresponding signed 8-bit integers in "__B", producing 4 intermediate signed 16-bit results. Sum these 4 results with the corresponding 32-bit integer in "__W", and store the packed 32-bit results in "dst". + + +FOR j := 0 to 3 + tmp1.word := SignExtend16(__A.byte[4*j]) * SignExtend16(__B.byte[4*j]) + tmp2.word := SignExtend16(__A.byte[4*j+1]) * SignExtend16(__B.byte[4*j+1]) + tmp3.word := SignExtend16(__A.byte[4*j+2]) * SignExtend16(__B.byte[4*j+2]) + tmp4.word := SignExtend16(__A.byte[4*j+3]) * SignExtend16(__B.byte[4*j+3]) + dst.dword[j] := __W.dword[j] + tmp1 + tmp2 + tmp3 + tmp4 +ENDFOR +dst[MAX:128] := 0 + + + + + AVX_VNNI_INT8 +
immintrin.h
+ Arithmetic +
+ + + Multiply groups of 4 adjacent pairs of signed 8-bit integers in "__A" with corresponding signed 8-bit integers in "__B", producing 4 intermediate signed 16-bit results. Sum these 4 results with the corresponding 32-bit integer in "__W" with signed saturation, and store the packed 32-bit results in "dst". + + +FOR j := 0 to 3 + tmp1.word := SignExtend16(__A.byte[4*j]) * SignExtend16(__B.byte[4*j]) + tmp2.word := SignExtend16(__A.byte[4*j+1]) * SignExtend16(__B.byte[4*j+1]) + tmp3.word := SignExtend16(__A.byte[4*j+2]) * SignExtend16(__B.byte[4*j+2]) + tmp4.word := SignExtend16(__A.byte[4*j+3]) * SignExtend16(__B.byte[4*j+3]) + dst.dword[j] := SIGNED_DWORD_SATURATE(__W.dword[j] + tmp1 + tmp2 + tmp3 + tmp4) +ENDFOR +dst[MAX:128] := 0 + + + + AVX_VNNI_INT8 +
immintrin.h
+ Arithmetic +
+ + + Multiply groups of 4 adjacent pairs of signed 8-bit integers in "__A" with corresponding unsigned 8-bit integers in "__B", producing 4 intermediate signed 16-bit results. Sum these 4 results with the corresponding 32-bit integer in "__W", and store the packed 32-bit results in "dst". + + +FOR j := 0 to 3 + tmp1.word := Signed(SignExtend16(__A.byte[4*j]) * ZeroExtend16(__B.byte[4*j])) + tmp2.word := Signed(SignExtend16(__A.byte[4*j+1]) * ZeroExtend16(__B.byte[4*j+1])) + tmp3.word := Signed(SignExtend16(__A.byte[4*j+2]) * ZeroExtend16(__B.byte[4*j+2])) + tmp4.word := Signed(SignExtend16(__A.byte[4*j+3]) * ZeroExtend16(__B.byte[4*j+3])) + dst.dword[j] := __W.dword[j] + tmp1 + tmp2 + tmp3 + tmp4 +ENDFOR +dst[MAX:128] := 0 + + + + + AVX_VNNI_INT8 +
immintrin.h
+ Arithmetic +
+ + + Multiply groups of 4 adjacent pairs of signed 8-bit integers in "__A" with corresponding unsigned 8-bit integers in "__B", producing 4 intermediate signed 16-bit results. Sum these 4 results with the corresponding 32-bit integer in "__W" with signed saturation, and store the packed 32-bit results in "dst". + + +FOR j := 0 to 3 + tmp1.word := Signed(SignExtend16(__A.byte[4*j]) * ZeroExtend16(__B.byte[4*j])) + tmp2.word := Signed(SignExtend16(__A.byte[4*j+1]) * ZeroExtend16(__B.byte[4*j+1])) + tmp3.word := Signed(SignExtend16(__A.byte[4*j+2]) * ZeroExtend16(__B.byte[4*j+2])) + tmp4.word := Signed(SignExtend16(__A.byte[4*j+3]) * ZeroExtend16(__B.byte[4*j+3])) + dst.dword[j] := SIGNED_DWORD_SATURATE(__W.dword[j] + tmp1 + tmp2 + tmp3 + tmp4) +ENDFOR +dst[MAX:128] := 0 + + + + AVX_VNNI_INT8 +
immintrin.h
+ Arithmetic +
+ + + Multiply groups of 4 adjacent pairs of unsigned 8-bit integers in "__A" with corresponding unsigned 8-bit integers in "__B", producing 4 intermediate signed 16-bit results. Sum these 4 results with the corresponding 32-bit integer in "__W", and store the packed 32-bit results in "dst". + + +FOR j := 0 to 3 + tmp1.word := ZeroExtend16(__A.byte[4*j]) * ZeroExtend16(__B.byte[4*j]) + tmp2.word := ZeroExtend16(__A.byte[4*j+1]) * ZeroExtend16(__B.byte[4*j+1]) + tmp3.word := ZeroExtend16(__A.byte[4*j+2]) * ZeroExtend16(__B.byte[4*j+2]) + tmp4.word := ZeroExtend16(__A.byte[4*j+3]) * ZeroExtend16(__B.byte[4*j+3]) + dst.dword[j] := __W.dword[j] + tmp1 + tmp2 + tmp3 + tmp4 +ENDFOR +dst[MAX:128] := 0 + + + + + AVX_VNNI_INT8 +
immintrin.h
+ Arithmetic +
+ + + Multiply groups of 4 adjacent pairs of unsigned 8-bit integers in "__A" with corresponding unsigned 8-bit integers in "__B", producing 4 intermediate signed 16-bit results. Sum these 4 results with the corresponding 32-bit integer in "__W" with unsigned saturation, and store the packed 32-bit results in "dst". + + +FOR j := 0 to 3 + tmp1.word := ZeroExtend16(__A.byte[4*j]) * ZeroExtend16(__B.byte[4*j]) + tmp2.word := ZeroExtend16(__A.byte[4*j+1]) * ZeroExtend16(__B.byte[4*j+1]) + tmp3.word := ZeroExtend16(__A.byte[4*j+2]) * ZeroExtend16(__B.byte[4*j+2]) + tmp4.word := ZeroExtend16(__A.byte[4*j+3]) * ZeroExtend16(__B.byte[4*j+3]) + dst.dword[j] := UNSIGNED_DWORD_SATURATE(__W.dword[j] + tmp1 + tmp2 + tmp3 + tmp4) +ENDFOR +dst[MAX:128] := 0 + + + + AVX_VNNI_INT8 +
immintrin.h
+ Arithmetic +
+ + + + + + + Extract contiguous bits from unsigned 32-bit integer "a", and store the result in "dst". Extract the number of bits specified by "len", starting at the bit specified by "start". + +tmp[511:0] := a +dst[31:0] := ZeroExtend32(tmp[(start[7:0] + len[7:0] - 1):start[7:0]]) + + + BMI1 +
immintrin.h
+ Bit Manipulation +
+ + + + + Extract contiguous bits from unsigned 32-bit integer "a", and store the result in "dst". Extract the number of bits specified by bits 15:8 of "control", starting at the bit specified by bits 0:7 of "control". + +start := control[7:0] +len := control[15:8] +tmp[511:0] := a +dst[31:0] := ZeroExtend32(tmp[(start[7:0] + len[7:0] - 1):start[7:0]]) + + + BMI1 +
immintrin.h
+ Bit Manipulation +
+ + + + + + Extract contiguous bits from unsigned 64-bit integer "a", and store the result in "dst". Extract the number of bits specified by "len", starting at the bit specified by "start". + +tmp[511:0] := a +dst[63:0] := ZeroExtend64(tmp[(start[7:0] + len[7:0] - 1):start[7:0]]) + + + BMI1 +
immintrin.h
+ Bit Manipulation +
+ + + + + Extract contiguous bits from unsigned 64-bit integer "a", and store the result in "dst". Extract the number of bits specified by bits 15:8 of "control", starting at the bit specified by bits 0:7 of "control".. + +start := control[7:0] +len := control[15:8] +tmp[511:0] := a +dst[63:0] := ZeroExtend64(tmp[(start[7:0] + len[7:0] - 1):start[7:0]]) + + + BMI1 +
immintrin.h
+ Bit Manipulation +
+ + + + Extract the lowest set bit from unsigned 32-bit integer "a" and set the corresponding bit in "dst". All other bits in "dst" are zeroed, and all bits are zeroed if no bits are set in "a". + +dst := (-a) AND a + + + BMI1 +
immintrin.h
+ Bit Manipulation +
+ + + + Extract the lowest set bit from unsigned 64-bit integer "a" and set the corresponding bit in "dst". All other bits in "dst" are zeroed, and all bits are zeroed if no bits are set in "a". + +dst := (-a) AND a + + + BMI1 +
immintrin.h
+ Bit Manipulation +
+ + + + Set all the lower bits of "dst" up to and including the lowest set bit in unsigned 32-bit integer "a". + +dst := (a - 1) XOR a + + + BMI1 +
immintrin.h
+ Bit Manipulation +
+ + + + Set all the lower bits of "dst" up to and including the lowest set bit in unsigned 64-bit integer "a". + +dst := (a - 1) XOR a + + + BMI1 +
immintrin.h
+ Bit Manipulation +
+ + + + Copy all bits from unsigned 32-bit integer "a" to "dst", and reset (set to 0) the bit in "dst" that corresponds to the lowest set bit in "a". + +dst := (a - 1) AND a + + + BMI1 +
immintrin.h
+ Bit Manipulation +
+ + + + Copy all bits from unsigned 64-bit integer "a" to "dst", and reset (set to 0) the bit in "dst" that corresponds to the lowest set bit in "a". + +dst := (a - 1) AND a + + + BMI1 +
immintrin.h
+ Bit Manipulation +
+ + + + + Compute the bitwise NOT of 32-bit integer "a" and then AND with b, and store the results in dst. + +dst[31:0] := ((NOT a[31:0]) AND b[31:0]) + + + BMI1 +
immintrin.h
+ Bit Manipulation +
+ + + + + Compute the bitwise NOT of 64-bit integer "a" and then AND with b, and store the results in dst. + +dst[63:0] := ((NOT a[63:0]) AND b[63:0]) + + + BMI1 +
immintrin.h
+ Bit Manipulation +
+ + + + Count the number of trailing zero bits in unsigned 16-bit integer "a", and return that count in "dst". + +tmp := 0 +dst := 0 +DO WHILE ((tmp < 16) AND a[tmp] == 0) + tmp := tmp + 1 + dst := dst + 1 +OD + + + BMI1 +
immintrin.h
+ Bit Manipulation +
+ + + + Count the number of trailing zero bits in unsigned 32-bit integer "a", and return that count in "dst". + +tmp := 0 +dst := 0 +DO WHILE ((tmp < 32) AND a[tmp] == 0) + tmp := tmp + 1 + dst := dst + 1 +OD + + + BMI1 +
immintrin.h
+ Bit Manipulation +
+ + + + Count the number of trailing zero bits in unsigned 64-bit integer "a", and return that count in "dst". + +tmp := 0 +dst := 0 +DO WHILE ((tmp < 64) AND a[tmp] == 0) + tmp := tmp + 1 + dst := dst + 1 +OD + + + BMI1 +
immintrin.h
+ Bit Manipulation +
+ + + + Count the number of trailing zero bits in unsigned 32-bit integer "a", and return that count in "dst". + +tmp := 0 +dst := 0 +DO WHILE ((tmp < 32) AND a[tmp] == 0) + tmp := tmp + 1 + dst := dst + 1 +OD + + + BMI1 +
immintrin.h
+ Bit Manipulation +
+ + + + Count the number of trailing zero bits in unsigned 64-bit integer "a", and return that count in "dst". + +tmp := 0 +dst := 0 +DO WHILE ((tmp < 64) AND a[tmp] == 0) + tmp := tmp + 1 + dst := dst + 1 +OD + + + BMI1 +
immintrin.h
+ Bit Manipulation +
+ + + + + + + Copy all bits from unsigned 32-bit integer "a" to "dst", and reset (set to 0) the high bits in "dst" starting at "index". + +n := index[7:0] +dst := a +IF (n < 32) + dst[31:n] := 0 +FI + + + BMI2 +
immintrin.h
+ Bit Manipulation +
+ + + + + Copy all bits from unsigned 64-bit integer "a" to "dst", and reset (set to 0) the high bits in "dst" starting at "index". + +n := index[7:0] +dst := a +IF (n < 64) + dst[63:n] := 0 +FI + + + BMI2 +
immintrin.h
+ Bit Manipulation +
+ + + + + Deposit contiguous low bits from unsigned 32-bit integer "a" to "dst" at the corresponding bit locations specified by "mask"; all other bits in "dst" are set to zero. + +tmp := a +dst := 0 +m := 0 +k := 0 +DO WHILE m < 32 + IF mask[m] == 1 + dst[m] := tmp[k] + k := k + 1 + FI + m := m + 1 +OD + + + BMI2 +
immintrin.h
+ Bit Manipulation +
+ + + + + Deposit contiguous low bits from unsigned 64-bit integer "a" to "dst" at the corresponding bit locations specified by "mask"; all other bits in "dst" are set to zero. + +tmp := a +dst := 0 +m := 0 +k := 0 +DO WHILE m < 64 + IF mask[m] == 1 + dst[m] := tmp[k] + k := k + 1 + FI + m := m + 1 +OD + + + BMI2 +
immintrin.h
+ Bit Manipulation +
+ + + + + Extract bits from unsigned 32-bit integer "a" at the corresponding bit locations specified by "mask" to contiguous low bits in "dst"; the remaining upper bits in "dst" are set to zero. + +tmp := a +dst := 0 +m := 0 +k := 0 +DO WHILE m < 32 + IF mask[m] == 1 + dst[k] := tmp[m] + k := k + 1 + FI + m := m + 1 +OD + + + BMI2 +
immintrin.h
+ Bit Manipulation +
+ + + + + Extract bits from unsigned 64-bit integer "a" at the corresponding bit locations specified by "mask" to contiguous low bits in "dst"; the remaining upper bits in "dst" are set to zero. + +tmp := a +dst := 0 +m := 0 +k := 0 +DO WHILE m < 64 + IF mask[m] == 1 + dst[k] := tmp[m] + k := k + 1 + FI + m := m + 1 +OD + + + BMI2 +
immintrin.h
+ Bit Manipulation +
+ + + + + + Multiply unsigned 32-bit integers "a" and "b", store the low 32-bits of the result in "dst", and store the high 32-bits in "hi". This does not read or write arithmetic flags. + +dst[31:0] := (a * b)[31:0] +MEM[hi+31:hi] := (a * b)[63:32] + + + BMI2 +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply unsigned 64-bit integers "a" and "b", store the low 64-bits of the result in "dst", and store the high 64-bits in "hi". This does not read or write arithmetic flags. + +dst[63:0] := (a * b)[63:0] +MEM[hi+63:hi] := (a * b)[127:64] + + + BMI2 +
immintrin.h
+ Arithmetic +
+ + + + + + Increment the shadow stack pointer by 4 times the value specified in bits [7:0] of "a". + +SSP := SSP + a[7:0] * 4 + + + CET_SS +
immintrin.h
+ Miscellaneous +
+ + + + Increment the shadow stack pointer by 8 times the value specified in bits [7:0] of "a". + +SSP := SSP + a[7:0] * 8 + + + CET_SS +
immintrin.h
+ Miscellaneous +
+ + + + Read the low 32-bits of the current shadow stack pointer, and store the result in "dst". + dst := SSP[31:0] + + + CET_SS +
immintrin.h
+ Miscellaneous +
+ + + + Read the current shadow stack pointer, and store the result in "dst". + dst := SSP[63:0] + + + CET_SS +
immintrin.h
+ Miscellaneous +
+ + + + Save the previous shadow stack pointer context. + + CET_SS +
immintrin.h
+ Miscellaneous +
+ + + + Restore the saved shadow stack pointer from the shadow stack restore token previously created on shadow stack by saveprevssp. + + CET_SS +
immintrin.h
+ Miscellaneous +
+ + + + + Write 32-bit value in "val" to a shadow stack page in memory specified by "p". + + CET_SS +
immintrin.h
+ Miscellaneous +
+ + + + + Write 64-bit value in "val" to a shadow stack page in memory specified by "p". + + CET_SS +
immintrin.h
+ Miscellaneous +
+ + + + + Write 32-bit value in "val" to a user shadow stack page in memory specified by "p". + + CET_SS +
immintrin.h
+ Miscellaneous +
+ + + + + Write 64-bit value in "val" to a user shadow stack page in memory specified by "p". + + CET_SS +
immintrin.h
+ Miscellaneous +
+ + + + Mark shadow stack pointed to by IA32_PL0_SSP as busy. + + CET_SS +
immintrin.h
+ Miscellaneous +
+ + + + Mark shadow stack pointed to by "p" as not busy. + + CET_SS +
immintrin.h
+ Miscellaneous +
+ + + + If CET is enabled, read the low 32-bits of the current shadow stack pointer, and store the result in "dst". Otherwise return 0. + dst := SSP[31:0] + + + CET_SS +
immintrin.h
+ Miscellaneous +
+ + + + If CET is enabled, read the current shadow stack pointer, and store the result in "dst". Otherwise return 0. + dst := SSP[63:0] + + + CET_SS +
immintrin.h
+ Miscellaneous +
+ + + + Increment the shadow stack pointer by 4 times the value specified in bits [7:0] of "a". + +SSP := SSP + a[7:0] * 4 + + + CET_SS +
immintrin.h
+ Miscellaneous +
+ + + + + Hint to hardware that the cache line that contains "p" should be demoted from the cache closest to the processor core to a level more distant from the processor core. + + CLDEMOTE +
immintrin.h
+ Miscellaneous +
+ + + + + + Invalidate and flush the cache line that contains "p" from all levels of the cache hierarchy. + + CLFLUSHOPT +
immintrin.h
+ General Support +
+ + + + + + Write back to memory the cache line that contains "p" from any level of the cache hierarchy in the cache coherence domain. + + CLWB +
immintrin.h
+ General Support +
+ + + + + + + + + Compares the value from the memory "__A" with the value of "__B". If the specified condition "__D" is met, then add the third operand "__C" to the "__A" and write it into "__A", else the value of "__A" is unchanged. The return value is the original value of "__A". + CASE (__D[3:0]) OF +0: OP := _CMPCCX_O +1: OP := _CMPCCX_NO +2: OP := _CMPCCX_B +3: OP := _CMPCCX_NB +4: OP := _CMPCCX_Z +5: OP := _CMPCCX_NZ +6: OP := _CMPCCX_BE +7: OP := _CMPCCX_NBE +8: OP := _CMPCCX_S +9: OP := _CMPCCX_NS +10: OP := _CMPCCX_P +11: OP := _CMPCCX_NP +12: OP := _CMPCCX_L +13: OP := _CMPCCX_NL +14: OP := _CMPCCX_LE +15: OP := _CMPCCX_NLE +ESAC +tmp1 := LOAD_LOCK(__A) +tmp2 := tmp1 + __C +IF (tmp1[31:0] OP __B[31:0]) + STORE_UNLOCK(__A, tmp2) +ELSE + STORE_UNLOCK(__A, tmp1) +FI +dst[31:0] := tmp1[31:0] + + + + + + + + + + + + + + + + + + CMPCCXADD +
immintrin.h
+ Arithmetic +
+ + + + + + + Compares the value from the memory "__A" with the value of "__B". If the specified condition "__D" is met, then add the third operand "__C" to the "__A" and write it into "__A", else the value of "__A" is unchanged. The return value is the original value of "__A". + CASE (__D[3:0]) OF +0: OP := _CMPCCX_O +1: OP := _CMPCCX_NO +2: OP := _CMPCCX_B +3: OP := _CMPCCX_NB +4: OP := _CMPCCX_Z +5: OP := _CMPCCX_NZ +6: OP := _CMPCCX_BE +7: OP := _CMPCCX_NBE +8: OP := _CMPCCX_S +9: OP := _CMPCCX_NS +10: OP := _CMPCCX_P +11: OP := _CMPCCX_NP +12: OP := _CMPCCX_L +13: OP := _CMPCCX_NL +14: OP := _CMPCCX_LE +15: OP := _CMPCCX_NLE +ESAC +tmp1 := LOAD_LOCK(__A) +tmp2 := tmp1 + __C +IF (tmp1[63:0] OP __B[63:0]) + STORE_UNLOCK(__A, tmp2) +ELSE + STORE_UNLOCK(__A, tmp1) +FI +dst[63:0] := tmp1[63:0] + + + + + + + + + + + + + + + + + + CMPCCXADD +
immintrin.h
+ Arithmetic +
+ + + + + Starting with the initial value in "crc", accumulates a CRC32 value for unsigned 8-bit integer "v", and stores the result in "dst". + tmp1[7:0] := v[0:7] // bit reflection +tmp2[31:0] := crc[0:31] // bit reflection +tmp3[39:0] := tmp1[7:0] << 32 +tmp4[39:0] := tmp2[31:0] << 8 +tmp5[39:0] := tmp3[39:0] XOR tmp4[39:0] +tmp6[31:0] := MOD2(tmp5[39:0], 0x11EDC6F41) // remainder from polynomial division modulus 2 +dst[31:0] := tmp6[0:31] // bit reflection + + + CRC32 +
nmmintrin.h
+ Cryptography +
+ + + + + Starting with the initial value in "crc", accumulates a CRC32 value for unsigned 16-bit integer "v", and stores the result in "dst". + tmp1[15:0] := v[0:15] // bit reflection +tmp2[31:0] := crc[0:31] // bit reflection +tmp3[47:0] := tmp1[15:0] << 32 +tmp4[47:0] := tmp2[31:0] << 16 +tmp5[47:0] := tmp3[47:0] XOR tmp4[47:0] +tmp6[31:0] := MOD2(tmp5[47:0], 0x11EDC6F41) // remainder from polynomial division modulus 2 +dst[31:0] := tmp6[0:31] // bit reflection + + + CRC32 +
nmmintrin.h
+ Cryptography +
+ + + + + Starting with the initial value in "crc", accumulates a CRC32 value for unsigned 32-bit integer "v", and stores the result in "dst". + tmp1[31:0] := v[0:31] // bit reflection +tmp2[31:0] := crc[0:31] // bit reflection +tmp3[63:0] := tmp1[31:0] << 32 +tmp4[63:0] := tmp2[31:0] << 32 +tmp5[63:0] := tmp3[63:0] XOR tmp4[63:0] +tmp6[31:0] := MOD2(tmp5[63:0], 0x11EDC6F41) // remainder from polynomial division modulus 2 +dst[31:0] := tmp6[0:31] // bit reflection + + + CRC32 +
nmmintrin.h
+ Cryptography +
+ + + + + Starting with the initial value in "crc", accumulates a CRC32 value for unsigned 64-bit integer "v", and stores the result in "dst". + tmp1[63:0] := v[0:63] // bit reflection +tmp2[31:0] := crc[0:31] // bit reflection +tmp3[95:0] := tmp1[31:0] << 32 +tmp4[95:0] := tmp2[63:0] << 64 +tmp5[95:0] := tmp3[95:0] XOR tmp4[95:0] +tmp6[31:0] := MOD2(tmp5[95:0], 0x11EDC6F41) // remainder from polynomial division modulus 2 +dst[31:0] := tmp6[0:31] // bit reflection + + + CRC32 +
nmmintrin.h
+ Cryptography +
+ + + + + + + Reads 64-byte command pointed by "__src", formats 64-byte enqueue store data, and performs 64-byte enqueue store to memory pointed by "__dst". This intrinsics may only be used in User mode. + + ENQCMD +
immintrin.h
+ Unknown +
+ + + + + Reads 64-byte command pointed by "__src", formats 64-byte enqueue store data, and performs 64-byte enqueue store to memory pointed by "__dst" This intrinsic may only be used in Privileged mode. + + ENQCMD +
immintrin.h
+ Unknown +
+ + + + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed single-precision (32-bit) floating-point elements, and store the results in "dst". + +FOR j := 0 to 7 + i := j*32 + m := j*16 + dst[i+31:i] := Convert_FP16_To_FP32(a[m+15:m]) +ENDFOR +dst[MAX:256] := 0 + + + F16C +
immintrin.h
+ Convert +
+ + + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst". + [round_imm_note] + +FOR j := 0 to 7 + i := 16*j + l := 32*j + dst[i+15:i] := Convert_FP32_To_FP16(a[l+31:l]) +ENDFOR +dst[MAX:128] := 0 + + + F16C +
immintrin.h
+ Convert +
+ + + + Convert packed half-precision (16-bit) floating-point elements in "a" to packed single-precision (32-bit) floating-point elements, and store the results in "dst". + +FOR j := 0 to 3 + i := j*32 + m := j*16 + dst[i+31:i] := Convert_FP16_To_FP32(a[m+15:m]) +ENDFOR +dst[MAX:128] := 0 + + + F16C +
immintrin.h
+ Convert +
+ + + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed half-precision (16-bit) floating-point elements, and store the results in "dst". + [round_imm_note] + +FOR j := 0 to 3 + i := 16*j + l := 32*j + dst[i+15:i] := Convert_FP32_To_FP16(a[l+31:l]) +ENDFOR +dst[MAX:64] := 0 + + + F16C +
immintrin.h
+ Convert +
+ + + + + + + + Multiply packed double-precision (64-bit) floating-point elements in "a" and "b", add the intermediate result to packed elements in "c", and store the results in "dst". + +FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := (a[i+63:i] * b[i+63:i]) + c[i+63:i] +ENDFOR +dst[MAX:128] := 0 + + + + + FMA +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply packed double-precision (64-bit) floating-point elements in "a" and "b", add the intermediate result to packed elements in "c", and store the results in "dst". + +FOR j := 0 to 3 + i := j*64 + dst[i+63:i] := (a[i+63:i] * b[i+63:i]) + c[i+63:i] +ENDFOR +dst[MAX:256] := 0 + + + + + FMA +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply packed single-precision (32-bit) floating-point elements in "a" and "b", add the intermediate result to packed elements in "c", and store the results in "dst". + +FOR j := 0 to 3 + i := j*32 + dst[i+31:i] := (a[i+31:i] * b[i+31:i]) + c[i+31:i] +ENDFOR +dst[MAX:128] := 0 + + + + + FMA +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply packed single-precision (32-bit) floating-point elements in "a" and "b", add the intermediate result to packed elements in "c", and store the results in "dst". + +FOR j := 0 to 7 + i := j*32 + dst[i+31:i] := (a[i+31:i] * b[i+31:i]) + c[i+31:i] +ENDFOR +dst[MAX:256] := 0 + + + + + FMA +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply the lower double-precision (64-bit) floating-point elements in "a" and "b", and add the intermediate result to the lower element in "c". Store the result in the lower element of "dst", and copy the upper element from "a" to the upper element of "dst". + +dst[63:0] := (a[63:0] * b[63:0]) + c[63:0] +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + + + FMA +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply the lower single-precision (32-bit) floating-point elements in "a" and "b", and add the intermediate result to the lower element in "c". Store the result in the lower element of "dst", and copy the upper 3 packed elements from "a" to the upper elements of "dst". + +dst[31:0] := (a[31:0] * b[31:0]) + c[31:0] +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + + + FMA +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply packed double-precision (64-bit) floating-point elements in "a" and "b", alternatively add and subtract packed elements in "c" to/from the intermediate result, and store the results in "dst". + +FOR j := 0 to 1 + i := j*64 + IF ((j & 1) == 0) + dst[i+63:i] := (a[i+63:i] * b[i+63:i]) - c[i+63:i] + ELSE + dst[i+63:i] := (a[i+63:i] * b[i+63:i]) + c[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + + + FMA +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply packed double-precision (64-bit) floating-point elements in "a" and "b", alternatively add and subtract packed elements in "c" to/from the intermediate result, and store the results in "dst". + +FOR j := 0 to 3 + i := j*64 + IF ((j & 1) == 0) + dst[i+63:i] := (a[i+63:i] * b[i+63:i]) - c[i+63:i] + ELSE + dst[i+63:i] := (a[i+63:i] * b[i+63:i]) + c[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + + + FMA +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply packed single-precision (32-bit) floating-point elements in "a" and "b", alternatively add and subtract packed elements in "c" to/from the intermediate result, and store the results in "dst". + +FOR j := 0 to 3 + i := j*32 + IF ((j & 1) == 0) + dst[i+31:i] := (a[i+31:i] * b[i+31:i]) - c[i+31:i] + ELSE + dst[i+31:i] := (a[i+31:i] * b[i+31:i]) + c[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + + + FMA +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply packed single-precision (32-bit) floating-point elements in "a" and "b", alternatively add and subtract packed elements in "c" to/from the intermediate result, and store the results in "dst". + +FOR j := 0 to 7 + i := j*32 + IF ((j & 1) == 0) + dst[i+31:i] := (a[i+31:i] * b[i+31:i]) - c[i+31:i] + ELSE + dst[i+31:i] := (a[i+31:i] * b[i+31:i]) + c[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + + + FMA +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply packed double-precision (64-bit) floating-point elements in "a" and "b", subtract packed elements in "c" from the intermediate result, and store the results in "dst". + +FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := (a[i+63:i] * b[i+63:i]) - c[i+63:i] +ENDFOR +dst[MAX:128] := 0 + + + + + FMA +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply packed double-precision (64-bit) floating-point elements in "a" and "b", subtract packed elements in "c" from the intermediate result, and store the results in "dst". + +FOR j := 0 to 3 + i := j*64 + dst[i+63:i] := (a[i+63:i] * b[i+63:i]) - c[i+63:i] +ENDFOR +dst[MAX:256] := 0 + + + + + FMA +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply packed single-precision (32-bit) floating-point elements in "a" and "b", subtract packed elements in "c" from the intermediate result, and store the results in "dst". + +FOR j := 0 to 3 + i := j*32 + dst[i+31:i] := (a[i+31:i] * b[i+31:i]) - c[i+31:i] +ENDFOR +dst[MAX:128] := 0 + + + + + FMA +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply packed single-precision (32-bit) floating-point elements in "a" and "b", subtract packed elements in "c" from the intermediate result, and store the results in "dst". + +FOR j := 0 to 7 + i := j*32 + dst[i+31:i] := (a[i+31:i] * b[i+31:i]) - c[i+31:i] +ENDFOR +dst[MAX:256] := 0 + + + + + FMA +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply the lower double-precision (64-bit) floating-point elements in "a" and "b", and subtract the lower element in "c" from the intermediate result. Store the result in the lower element of "dst", and copy the upper element from "a" to the upper element of "dst". + +dst[63:0] := (a[63:0] * b[63:0]) - c[63:0] +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + + + FMA +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply the lower single-precision (32-bit) floating-point elements in "a" and "b", and subtract the lower element in "c" from the intermediate result. Store the result in the lower element of "dst", and copy the upper 3 packed elements from "a" to the upper elements of "dst". + +dst[31:0] := (a[31:0] * b[31:0]) - c[31:0] +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + + + FMA +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply packed double-precision (64-bit) floating-point elements in "a" and "b", alternatively subtract and add packed elements in "c" from/to the intermediate result, and store the results in "dst". + +FOR j := 0 to 1 + i := j*64 + IF ((j & 1) == 0) + dst[i+63:i] := (a[i+63:i] * b[i+63:i]) + c[i+63:i] + ELSE + dst[i+63:i] := (a[i+63:i] * b[i+63:i]) - c[i+63:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + + + FMA +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply packed double-precision (64-bit) floating-point elements in "a" and "b", alternatively subtract and add packed elements in "c" from/to the intermediate result, and store the results in "dst". + +FOR j := 0 to 3 + i := j*64 + IF ((j & 1) == 0) + dst[i+63:i] := (a[i+63:i] * b[i+63:i]) + c[i+63:i] + ELSE + dst[i+63:i] := (a[i+63:i] * b[i+63:i]) - c[i+63:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + + + FMA +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply packed single-precision (32-bit) floating-point elements in "a" and "b", alternatively subtract and add packed elements in "c" from/to the intermediate result, and store the results in "dst". + +FOR j := 0 to 3 + i := j*32 + IF ((j & 1) == 0) + dst[i+31:i] := (a[i+31:i] * b[i+31:i]) + c[i+31:i] + ELSE + dst[i+31:i] := (a[i+31:i] * b[i+31:i]) - c[i+31:i] + FI +ENDFOR +dst[MAX:128] := 0 + + + + + FMA +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply packed single-precision (32-bit) floating-point elements in "a" and "b", alternatively subtract and add packed elements in "c" from/to the intermediate result, and store the results in "dst". + +FOR j := 0 to 7 + i := j*32 + IF ((j & 1) == 0) + dst[i+31:i] := (a[i+31:i] * b[i+31:i]) + c[i+31:i] + ELSE + dst[i+31:i] := (a[i+31:i] * b[i+31:i]) - c[i+31:i] + FI +ENDFOR +dst[MAX:256] := 0 + + + + + FMA +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply packed double-precision (64-bit) floating-point elements in "a" and "b", add the negated intermediate result to packed elements in "c", and store the results in "dst". + +FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := -(a[i+63:i] * b[i+63:i]) + c[i+63:i] +ENDFOR +dst[MAX:128] := 0 + + + + + FMA +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply packed double-precision (64-bit) floating-point elements in "a" and "b", add the negated intermediate result to packed elements in "c", and store the results in "dst". + +FOR j := 0 to 3 + i := j*64 + dst[i+63:i] := -(a[i+63:i] * b[i+63:i]) + c[i+63:i] +ENDFOR +dst[MAX:256] := 0 + + + + + FMA +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply packed single-precision (32-bit) floating-point elements in "a" and "b", add the negated intermediate result to packed elements in "c", and store the results in "dst". + +FOR j := 0 to 3 + i := j*32 + dst[i+31:i] := -(a[i+31:i] * b[i+31:i]) + c[i+31:i] +ENDFOR +dst[MAX:128] := 0 + + + + + FMA +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply packed single-precision (32-bit) floating-point elements in "a" and "b", add the negated intermediate result to packed elements in "c", and store the results in "dst". + +FOR j := 0 to 7 + i := j*32 + dst[i+31:i] := -(a[i+31:i] * b[i+31:i]) + c[i+31:i] +ENDFOR +dst[MAX:256] := 0 + + + + + FMA +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply the lower double-precision (64-bit) floating-point elements in "a" and "b", and add the negated intermediate result to the lower element in "c". Store the result in the lower element of "dst", and copy the upper element from "a" to the upper element of "dst". + +dst[63:0] := -(a[63:0] * b[63:0]) + c[63:0] +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + + + FMA +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply the lower single-precision (32-bit) floating-point elements in "a" and "b", and add the negated intermediate result to the lower element in "c". Store the result in the lower element of "dst", and copy the upper 3 packed elements from "a" to the upper elements of "dst". + +dst[31:0] := -(a[31:0] * b[31:0]) + c[31:0] +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + + + FMA +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply packed double-precision (64-bit) floating-point elements in "a" and "b", subtract packed elements in "c" from the negated intermediate result, and store the results in "dst". + +FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := -(a[i+63:i] * b[i+63:i]) - c[i+63:i] +ENDFOR +dst[MAX:128] := 0 + + + + + FMA +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply packed double-precision (64-bit) floating-point elements in "a" and "b", subtract packed elements in "c" from the negated intermediate result, and store the results in "dst". + +FOR j := 0 to 3 + i := j*64 + dst[i+63:i] := -(a[i+63:i] * b[i+63:i]) - c[i+63:i] +ENDFOR +dst[MAX:256] := 0 + + + + + FMA +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply packed single-precision (32-bit) floating-point elements in "a" and "b", subtract packed elements in "c" from the negated intermediate result, and store the results in "dst". + +FOR j := 0 to 3 + i := j*32 + dst[i+31:i] := -(a[i+31:i] * b[i+31:i]) - c[i+31:i] +ENDFOR +dst[MAX:128] := 0 + + + + + FMA +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply packed single-precision (32-bit) floating-point elements in "a" and "b", subtract packed elements in "c" from the negated intermediate result, and store the results in "dst". + +FOR j := 0 to 7 + i := j*32 + dst[i+31:i] := -(a[i+31:i] * b[i+31:i]) - c[i+31:i] +ENDFOR +dst[MAX:256] := 0 + + + + + FMA +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply the lower double-precision (64-bit) floating-point elements in "a" and "b", and subtract the lower element in "c" from the negated intermediate result. Store the result in the lower element of "dst", and copy the upper element from "a" to the upper element of "dst". + +dst[63:0] := -(a[63:0] * b[63:0]) - c[63:0] +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + + + FMA +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply the lower single-precision (32-bit) floating-point elements in "a" and "b", and subtract the lower element in "c" from the negated intermediate result. Store the result in the lower element of "dst", and copy the upper 3 packed elements from "a" to the upper elements of "dst". + +dst[31:0] := -(a[31:0] * b[31:0]) - c[31:0] +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + + + FMA +
immintrin.h
+ Arithmetic +
+ + + + + Read the FS segment base register and store the 32-bit result in "dst". + dst[31:0] := FS_Segment_Base_Register +dst[63:32] := 0 + + + FSGSBASE +
immintrin.h
+ General Support +
+ + + Read the FS segment base register and store the 64-bit result in "dst". + dst[63:0] := FS_Segment_Base_Register + + + FSGSBASE +
immintrin.h
+ General Support +
+ + + Read the GS segment base register and store the 32-bit result in "dst". + dst[31:0] := GS_Segment_Base_Register +dst[63:32] := 0 + + + FSGSBASE +
immintrin.h
+ General Support +
+ + + Read the GS segment base register and store the 64-bit result in "dst". + dst[63:0] := GS_Segment_Base_Register + + + FSGSBASE +
immintrin.h
+ General Support +
+ + + + Write the unsigned 32-bit integer "a" to the FS segment base register. + +FS_Segment_Base_Register[31:0] := a[31:0] +FS_Segment_Base_Register[63:32] := 0 + + + FSGSBASE +
immintrin.h
+ General Support +
+ + + + Write the unsigned 64-bit integer "a" to the FS segment base register. + +FS_Segment_Base_Register[63:0] := a[63:0] + + + FSGSBASE +
immintrin.h
+ General Support +
+ + + + Write the unsigned 32-bit integer "a" to the GS segment base register. + +GS_Segment_Base_Register[31:0] := a[31:0] +GS_Segment_Base_Register[63:32] := 0 + + + FSGSBASE +
immintrin.h
+ General Support +
+ + + + Write the unsigned 64-bit integer "a" to the GS segment base register. + +GS_Segment_Base_Register[63:0] := a[63:0] + + + FSGSBASE +
immintrin.h
+ General Support +
+ + + + + + Reload the x87 FPU, MMX technology, XMM, and MXCSR registers from the 512-byte memory image at "mem_addr". This data should have been written to memory previously using the FXSAVE instruction, and in the same format as required by the operating mode. "mem_addr" must be aligned on a 16-byte boundary. + state_x87_fpu_mmx_sse := fxrstor(MEM[mem_addr+512*8:mem_addr]) + + + FXSR +
immintrin.h
+ OS-Targeted +
+ + + + Reload the x87 FPU, MMX technology, XMM, and MXCSR registers from the 512-byte memory image at "mem_addr". This data should have been written to memory previously using the FXSAVE64 instruction, and in the same format as required by the operating mode. "mem_addr" must be aligned on a 16-byte boundary. + state_x87_fpu_mmx_sse := fxrstor64(MEM[mem_addr+512*8:mem_addr]) + + + FXSR +
immintrin.h
+ OS-Targeted +
+ + + + Save the current state of the x87 FPU, MMX technology, XMM, and MXCSR registers to a 512-byte memory location at "mem_addr". The layout of the 512-byte region depends on the operating mode. Bytes [511:464] are available for software use and will not be overwritten by the processor. + MEM[mem_addr+512*8:mem_addr] := fxsave(state_x87_fpu_mmx_sse) + + + FXSR +
immintrin.h
+ OS-Targeted +
+ + + + Save the current state of the x87 FPU, MMX technology, XMM, and MXCSR registers to a 512-byte memory location at "mem_addr". The layout of the 512-byte region depends on the operating mode. Bytes [511:464] are available for software use and will not be overwritten by the processor. + MEM[mem_addr+512*8:mem_addr] := fxsave64(state_x87_fpu_mmx_sse) + + + FXSR +
immintrin.h
+ OS-Targeted +
+ + + + + + + + Multiply the packed 8-bit integers in "a" and "b" in the finite field GF(2^8), and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). The field GF(2^8) is represented in polynomial representation with the reduction polynomial x^8 + x^4 + x^3 + x + 1. + +DEFINE gf2p8mul_byte(src1byte, src2byte) { + tword := 0 + FOR i := 0 to 7 + IF src2byte.bit[i] + tword := tword XOR (src1byte << i) + FI + ENDFOR + FOR i := 14 downto 8 + p := 0x11B << (i-8) + IF tword.bit[i] + tword := tword XOR p + FI + ENDFOR + RETURN tword.byte[0] +} +FOR j := 0 TO 63 + IF k[j] + dst.byte[j] := gf2p8mul_byte(a.byte[j], b.byte[j]) + ELSE + dst.byte[j] := 0 + FI +ENDFOR +dst[MAX:512] := 0 + + + GFNI + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply the packed 8-bit integers in "a" and "b" in the finite field GF(2^8), and store the results in "dst" using writemask "k" (elements are copied from "src"" when the corresponding mask bit is not set). The field GF(2^8) is represented in polynomial representation with the reduction polynomial x^8 + x^4 + x^3 + x + 1. + +DEFINE gf2p8mul_byte(src1byte, src2byte) { + tword := 0 + FOR i := 0 to 7 + IF src2byte.bit[i] + tword := tword XOR (src1byte << i) + FI + ENDFOR + FOR i := 14 downto 8 + p := 0x11B << (i-8) + IF tword.bit[i] + tword := tword XOR p + FI + ENDFOR + RETURN tword.byte[0] +} +FOR j := 0 TO 63 + IF k[j] + dst.byte[j] := gf2p8mul_byte(a.byte[j], b.byte[j]) + ELSE + dst.byte[j] := src.byte[j] + FI +ENDFOR +dst[MAX:512] := 0 + + + GFNI + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + Multiply the packed 8-bit integers in "a" and "b" in the finite field GF(2^8), and store the results in "dst". The field GF(2^8) is represented in polynomial representation with the reduction polynomial x^8 + x^4 + x^3 + x + 1. + +DEFINE gf2p8mul_byte(src1byte, src2byte) { + tword := 0 + FOR i := 0 to 7 + IF src2byte.bit[i] + tword := tword XOR (src1byte << i) + FI + ENDFOR + FOR i := 14 downto 8 + p := 0x11B << (i-8) + IF tword.bit[i] + tword := tword XOR p + FI + ENDFOR + RETURN tword.byte[0] +} +FOR j := 0 TO 63 + dst.byte[j] := gf2p8mul_byte(a.byte[j], b.byte[j]) +ENDFOR +dst[MAX:512] := 0 + + + GFNI + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Compute an affine transformation in the Galois Field 2^8. An affine transformation is defined by "A" * "x" + "b", where "A" represents an 8 by 8 bit matrix, "x" represents an 8-bit vector, and "b" is a constant immediate byte. Store the packed 8-bit results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +DEFINE parity(x) { + t := 0 + FOR i := 0 to 7 + t := t XOR x.bit[i] + ENDFOR + RETURN t +} +DEFINE affine_byte(tsrc2qw, src1byte, imm8) { + FOR i := 0 to 7 + retbyte.bit[i] := parity(tsrc2qw.byte[7-i] AND src1byte) XOR imm8.bit[i] + ENDFOR + RETURN retbyte +} +FOR j := 0 TO 7 + FOR i := 0 to 7 + IF k[j*8+i] + dst.qword[j].byte[i] := affine_byte(A.qword[j], x.qword[j].byte[i], b) + ELSE + dst.qword[j].byte[i] := 0 + FI + ENDFOR +ENDFOR +dst[MAX:512] := 0 + + + GFNI + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + + Compute an affine transformation in the Galois Field 2^8. An affine transformation is defined by "A" * "x" + "b", where "A" represents an 8 by 8 bit matrix, "x" represents an 8-bit vector, and "b" is a constant immediate byte. Store the packed 8-bit results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +DEFINE parity(x) { + t := 0 + FOR i := 0 to 7 + t := t XOR x.bit[i] + ENDFOR + RETURN t +} +DEFINE affine_byte(tsrc2qw, src1byte, imm8) { + FOR i := 0 to 7 + retbyte.bit[i] := parity(tsrc2qw.byte[7-i] AND src1byte) XOR imm8.bit[i] + ENDFOR + RETURN retbyte +} +FOR j := 0 TO 7 + FOR i := 0 to 7 + IF k[j*8+i] + dst.qword[j].byte[i] := affine_byte(A.qword[j], x.qword[j].byte[i], b) + ELSE + dst.qword[j].byte[i] := src.qword[j].byte[i] + FI + ENDFOR +ENDFOR +dst[MAX:512] := 0 + + + GFNI + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + Compute an affine transformation in the Galois Field 2^8. An affine transformation is defined by "A" * "x" + "b", where "A" represents an 8 by 8 bit matrix, "x" represents an 8-bit vector, and "b" is a constant immediate byte. Store the packed 8-bit results in "dst". + +DEFINE parity(x) { + t := 0 + FOR i := 0 to 7 + t := t XOR x.bit[i] + ENDFOR + RETURN t +} +DEFINE affine_byte(tsrc2qw, src1byte, imm8) { + FOR i := 0 to 7 + retbyte.bit[i] := parity(tsrc2qw.byte[7-i] AND src1byte) XOR imm8.bit[i] + ENDFOR + RETURN retbyte +} +FOR j := 0 TO 7 + FOR i := 0 to 7 + dst.qword[j].byte[i] := affine_byte(A.qword[j], x.qword[j].byte[i], b) + ENDFOR +ENDFOR +dst[MAX:512] := 0 + + + GFNI + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + Compute an inverse affine transformation in the Galois Field 2^8. An affine transformation is defined by "A" * "x" + "b", where "A" represents an 8 by 8 bit matrix, "x" represents an 8-bit vector, and "b" is a constant immediate byte. The inverse of the 8-bit values in "x" is defined with respect to the reduction polynomial x^8 + x^4 + x^3 + x + 1. Store the packed 8-bit results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + DEFINE parity(x) { + t := 0 + FOR i := 0 to 7 + t := t XOR x.bit[i] + ENDFOR + RETURN t +} +DEFINE affine_inverse_byte(tsrc2qw, src1byte, imm8) { + FOR i := 0 to 7 + retbyte.bit[i] := parity(tsrc2qw.byte[7-i] AND inverse(src1byte)) XOR imm8.bit[i] + ENDFOR + RETURN retbyte +} +FOR j := 0 TO 7 + FOR i := 0 to 7 + IF k[j*8+i] + dst.qword[j].byte[i] := affine_inverse_byte(A.qword[j], x.qword[j].byte[i], b) + ELSE + dst.qword[j].byte[i] := 0 + FI + ENDFOR +ENDFOR +dst[MAX:512] := 0 + + + GFNI + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + + Compute an inverse affine transformation in the Galois Field 2^8. An affine transformation is defined by "A" * "x" + "b", where "A" represents an 8 by 8 bit matrix, "x" represents an 8-bit vector, and "b" is a constant immediate byte. The inverse of the 8-bit values in "x" is defined with respect to the reduction polynomial x^8 + x^4 + x^3 + x + 1. Store the packed 8-bit results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + DEFINE parity(x) { + t := 0 + FOR i := 0 to 7 + t := t XOR x.bit[i] + ENDFOR + RETURN t +} +DEFINE affine_inverse_byte(tsrc2qw, src1byte, imm8) { + FOR i := 0 to 7 + retbyte.bit[i] := parity(tsrc2qw.byte[7-i] AND inverse(src1byte)) XOR imm8.bit[i] + ENDFOR + RETURN retbyte +} +FOR j := 0 TO 7 + FOR i := 0 to 7 + IF k[j*8+i] + dst.qword[j].byte[i] := affine_inverse_byte(A.qword[j], x.qword[j].byte[i], b) + ELSE + dst.qword[j].byte[i] := src.qword[j].byte[b] + FI + ENDFOR +ENDFOR +dst[MAX:512] := 0 + + + GFNI + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + Compute an inverse affine transformation in the Galois Field 2^8. An affine transformation is defined by "A" * "x" + "b", where "A" represents an 8 by 8 bit matrix, "x" represents an 8-bit vector, and "b" is a constant immediate byte. The inverse of the 8-bit values in "x" is defined with respect to the reduction polynomial x^8 + x^4 + x^3 + x + 1. Store the packed 8-bit results in "dst". + DEFINE parity(x) { + t := 0 + FOR i := 0 to 7 + t := t XOR x.bit[i] + ENDFOR + RETURN t +} +DEFINE affine_inverse_byte(tsrc2qw, src1byte, imm8) { + FOR i := 0 to 7 + retbyte.bit[i] := parity(tsrc2qw.byte[7-i] AND inverse(src1byte)) XOR imm8.bit[i] + ENDFOR + RETURN retbyte +} +FOR j := 0 TO 7 + FOR i := 0 to 7 + dst.qword[j].byte[i] := affine_inverse_byte(A.qword[j], x.qword[j].byte[i], b) + ENDFOR +ENDFOR +dst[MAX:512] := 0 + + + GFNI + AVX512F +
immintrin.h
+ Arithmetic +
+ + + + + + + + Multiply the packed 8-bit integers in "a" and "b" in the finite field GF(2^8), and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). The field GF(2^8) is represented in polynomial representation with the reduction polynomial x^8 + x^4 + x^3 + x + 1. + +DEFINE gf2p8mul_byte(src1byte, src2byte) { + tword := 0 + FOR i := 0 to 7 + IF src2byte.bit[i] + tword := tword XOR (src1byte << i) + FI + ENDFOR + FOR i := 14 downto 8 + p := 0x11B << (i-8) + IF tword.bit[i] + tword := tword XOR p + FI + ENDFOR + RETURN tword.byte[0] +} +FOR j := 0 TO 31 + IF k[j] + dst.byte[j] := gf2p8mul_byte(a.byte[j], b.byte[j]) + ELSE + dst.byte[j] := 0 + FI +ENDFOR +dst[MAX:256] := 0 + + + GFNI + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply the packed 8-bit integers in "a" and "b" in the finite field GF(2^8), and store the results in "dst" using writemask "k" (elements are copied from "src"" when the corresponding mask bit is not set). The field GF(2^8) is represented in polynomial representation with the reduction polynomial x^8 + x^4 + x^3 + x + 1. + +DEFINE gf2p8mul_byte(src1byte, src2byte) { + tword := 0 + FOR i := 0 to 7 + IF src2byte.bit[i] + tword := tword XOR (src1byte << i) + FI + ENDFOR + FOR i := 14 downto 8 + p := 0x11B << (i-8) + IF tword.bit[i] + tword := tword XOR p + FI + ENDFOR + RETURN tword.byte[0] +} +FOR j := 0 TO 31 + IF k[j] + dst.byte[j] := gf2p8mul_byte(a.byte[j], b.byte[j]) + ELSE + dst.byte[j] := src.byte[j] + FI +ENDFOR +dst[MAX:256] := 0 + + + GFNI + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + Multiply the packed 8-bit integers in "a" and "b" in the finite field GF(2^8), and store the results in "dst". The field GF(2^8) is represented in polynomial representation with the reduction polynomial x^8 + x^4 + x^3 + x + 1. + +DEFINE gf2p8mul_byte(src1byte, src2byte) { + tword := 0 + FOR i := 0 to 7 + IF src2byte.bit[i] + tword := tword XOR (src1byte << i) + FI + ENDFOR + FOR i := 14 downto 8 + p := 0x11B << (i-8) + IF tword.bit[i] + tword := tword XOR p + FI + ENDFOR + RETURN tword.byte[0] +} +FOR j := 0 TO 31 + dst.byte[j] := gf2p8mul_byte(a.byte[j], b.byte[j]) +ENDFOR +dst[MAX:256] := 0 + + + GFNI + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Multiply the packed 8-bit integers in "a" and "b" in the finite field GF(2^8), and store the results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). The field GF(2^8) is represented in polynomial representation with the reduction polynomial x^8 + x^4 + x^3 + x + 1. + +DEFINE gf2p8mul_byte(src1byte, src2byte) { + tword := 0 + FOR i := 0 to 7 + IF src2byte.bit[i] + tword := tword XOR (src1byte << i) + FI + ENDFOR + FOR i := 14 downto 8 + p := 0x11B << (i-8) + IF tword.bit[i] + tword := tword XOR p + FI + ENDFOR + RETURN tword.byte[0] +} +FOR j := 0 TO 15 + IF k[j] + dst.byte[j] := gf2p8mul_byte(a.byte[j], b.byte[j]) + ELSE + dst.byte[j] := 0 + FI +ENDFOR +dst[MAX:128] := 0 + + + GFNI + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Multiply the packed 8-bit integers in "a" and "b" in the finite field GF(2^8), and store the results in "dst" using writemask "k" (elements are copied from "src"" when the corresponding mask bit is not set). The field GF(2^8) is represented in polynomial representation with the reduction polynomial x^8 + x^4 + x^3 + x + 1. + +DEFINE gf2p8mul_byte(src1byte, src2byte) { + tword := 0 + FOR i := 0 to 7 + IF src2byte.bit[i] + tword := tword XOR (src1byte << i) + FI + ENDFOR + FOR i := 14 downto 8 + p := 0x11B << (i-8) + IF tword.bit[i] + tword := tword XOR p + FI + ENDFOR + RETURN tword.byte[0] +} +FOR j := 0 TO 15 + IF k[j] + dst.byte[j] := gf2p8mul_byte(a.byte[j], b.byte[j]) + ELSE + dst.byte[j] := src.byte[j] + FI +ENDFOR +dst[MAX:128] := 0 + + + GFNI + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + Multiply the packed 8-bit integers in "a" and "b" in the finite field GF(2^8), and store the results in "dst". The field GF(2^8) is represented in polynomial representation with the reduction polynomial x^8 + x^4 + x^3 + x + 1. + +DEFINE gf2p8mul_byte(src1byte, src2byte) { + tword := 0 + FOR i := 0 to 7 + IF src2byte.bit[i] + tword := tword XOR (src1byte << i) + FI + ENDFOR + FOR i := 14 downto 8 + p := 0x11B << (i-8) + IF tword.bit[i] + tword := tword XOR p + FI + ENDFOR + RETURN tword.byte[0] +} +FOR j := 0 TO 15 + dst.byte[j] := gf2p8mul_byte(a.byte[j], b.byte[j]) +ENDFOR +dst[MAX:128] := 0 + + + GFNI + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Compute an affine transformation in the Galois Field 2^8. An affine transformation is defined by "A" * "x" + "b", where "A" represents an 8 by 8 bit matrix, "x" represents an 8-bit vector, and "b" is a constant immediate byte. Store the packed 8-bit results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +DEFINE parity(x) { + t := 0 + FOR i := 0 to 7 + t := t XOR x.bit[i] + ENDFOR + RETURN t +} +DEFINE affine_byte(tsrc2qw, src1byte, imm8) { + FOR i := 0 to 7 + retbyte.bit[i] := parity(tsrc2qw.byte[7-i] AND src1byte) XOR imm8.bit[i] + ENDFOR + RETURN retbyte +} +FOR j := 0 TO 3 + FOR i := 0 to 7 + IF k[j*8+i] + dst.qword[j].byte[i] := affine_byte(A.qword[j], x.qword[j].byte[i], b) + ELSE + dst.qword[j].byte[i] := 0 + FI + ENDFOR +ENDFOR +dst[MAX:256] := 0 + + + GFNI + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + + Compute an affine transformation in the Galois Field 2^8. An affine transformation is defined by "A" * "x" + "b", where "A" represents an 8 by 8 bit matrix, "x" represents an 8-bit vector, and "b" is a constant immediate byte. Store the packed 8-bit results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +DEFINE parity(x) { + t := 0 + FOR i := 0 to 7 + t := t XOR x.bit[i] + ENDFOR + RETURN t +} +DEFINE affine_byte(tsrc2qw, src1byte, imm8) { + FOR i := 0 to 7 + retbyte.bit[i] := parity(tsrc2qw.byte[7-i] AND src1byte) XOR imm8.bit[i] + ENDFOR + RETURN retbyte +} +FOR j := 0 TO 3 + FOR i := 0 to 7 + IF k[j*8+i] + dst.qword[j].byte[i] := affine_byte(A.qword[j], x.qword[j].byte[i], b) + ELSE + dst.qword[j].byte[i] := src.qword[j].byte[i] + FI + ENDFOR +ENDFOR +dst[MAX:256] := 0 + + + GFNI + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Compute an affine transformation in the Galois Field 2^8. An affine transformation is defined by "A" * "x" + "b", where "A" represents an 8 by 8 bit matrix, "x" represents an 8-bit vector, and "b" is a constant immediate byte. Store the packed 8-bit results in "dst". + +DEFINE parity(x) { + t := 0 + FOR i := 0 to 7 + t := t XOR x.bit[i] + ENDFOR + RETURN t +} +DEFINE affine_byte(tsrc2qw, src1byte, imm8) { + FOR i := 0 to 7 + retbyte.bit[i] := parity(tsrc2qw.byte[7-i] AND src1byte) XOR imm8.bit[i] + ENDFOR + RETURN retbyte +} +FOR j := 0 TO 3 + FOR i := 0 to 7 + dst.qword[j].byte[i] := affine_byte(A.qword[j], x.qword[j].byte[i], b) + ENDFOR +ENDFOR +dst[MAX:256] := 0 + + + GFNI + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Compute an affine transformation in the Galois Field 2^8. An affine transformation is defined by "A" * "x" + "b", where "A" represents an 8 by 8 bit matrix, "x" represents an 8-bit vector, and "b" is a constant immediate byte. Store the packed 8-bit results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + +DEFINE parity(x) { + t := 0 + FOR i := 0 to 7 + t := t XOR x.bit[i] + ENDFOR + RETURN t +} +DEFINE affine_byte(tsrc2qw, src1byte, imm8) { + FOR i := 0 to 7 + retbyte.bit[i] := parity(tsrc2qw.byte[7-i] AND src1byte) XOR imm8.bit[i] + ENDFOR + RETURN retbyte +} +FOR j := 0 TO 1 + FOR i := 0 to 7 + IF k[j*8+i] + dst.qword[j].byte[i] := affine_byte(A.qword[j], x.qword[j].byte[i], b) + ELSE + dst.qword[j].byte[i] := 0 + FI + ENDFOR +ENDFOR +dst[MAX:128] := 0 + + + GFNI + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + + Compute an affine transformation in the Galois Field 2^8. An affine transformation is defined by "A" * "x" + "b", where "A" represents an 8 by 8 bit matrix, "x" represents an 8-bit vector, and "b" is a constant immediate byte. Store the packed 8-bit results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + +DEFINE parity(x) { + t := 0 + FOR i := 0 to 7 + t := t XOR x.bit[i] + ENDFOR + RETURN t +} +DEFINE affine_byte(tsrc2qw, src1byte, imm8) { + FOR i := 0 to 7 + retbyte.bit[i] := parity(tsrc2qw.byte[7-i] AND src1byte) XOR imm8.bit[i] + ENDFOR + RETURN retbyte +} +FOR j := 0 TO 1 + FOR i := 0 to 7 + IF k[j*8+i] + dst.qword[j].byte[i] := affine_byte(A.qword[j], x.qword[j].byte[i], b) + ELSE + dst.qword[j].byte[i] := src.qword[j].byte[i] + FI + ENDFOR +ENDFOR +dst[MAX:128] := 0 + + + GFNI + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Compute an affine transformation in the Galois Field 2^8. An affine transformation is defined by "A" * "x" + "b", where "A" represents an 8 by 8 bit matrix, "x" represents an 8-bit vector, and "b" is a constant immediate byte. Store the packed 8-bit results in "dst". + +DEFINE parity(x) { + t := 0 + FOR i := 0 to 7 + t := t XOR x.bit[i] + ENDFOR + RETURN t +} +DEFINE affine_byte(tsrc2qw, src1byte, imm8) { + FOR i := 0 to 7 + retbyte.bit[i] := parity(tsrc2qw.byte[7-i] AND src1byte) XOR imm8.bit[i] + ENDFOR + RETURN retbyte +} +FOR j := 0 TO 1 + FOR i := 0 to 7 + dst.qword[j].byte[i] := affine_byte(A.qword[j], x.qword[j].byte[i], b) + ENDFOR +ENDFOR +dst[MAX:128] := 0 + + + GFNI + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Compute an inverse affine transformation in the Galois Field 2^8. An affine transformation is defined by "A" * "x" + "b", where "A" represents an 8 by 8 bit matrix, "x" represents an 8-bit vector, and "b" is a constant immediate byte. The inverse of the 8-bit values in "x" is defined with respect to the reduction polynomial x^8 + x^4 + x^3 + x + 1. Store the packed 8-bit results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + DEFINE parity(x) { + t := 0 + FOR i := 0 to 7 + t := t XOR x.bit[i] + ENDFOR + RETURN t +} +DEFINE affine_inverse_byte(tsrc2qw, src1byte, imm8) { + FOR i := 0 to 7 + retbyte.bit[i] := parity(tsrc2qw.byte[7-i] AND inverse(src1byte)) XOR imm8.bit[i] + ENDFOR + RETURN retbyte +} +FOR j := 0 TO 3 + FOR i := 0 to 7 + IF k[j*8+i] + dst.qword[j].byte[i] := affine_inverse_byte(A.qword[j], x.qword[j].byte[i], b) + ELSE + dst.qword[j].byte[i] := 0 + FI + ENDFOR +ENDFOR +dst[MAX:256] := 0 + + + GFNI + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + + Compute an inverse affine transformation in the Galois Field 2^8. An affine transformation is defined by "A" * "x" + "b", where "A" represents an 8 by 8 bit matrix, "x" represents an 8-bit vector, and "b" is a constant immediate byte. The inverse of the 8-bit values in "x" is defined with respect to the reduction polynomial x^8 + x^4 + x^3 + x + 1. Store the packed 8-bit results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + DEFINE parity(x) { + t := 0 + FOR i := 0 to 7 + t := t XOR x.bit[i] + ENDFOR + RETURN t +} +DEFINE affine_inverse_byte(tsrc2qw, src1byte, imm8) { + FOR i := 0 to 7 + retbyte.bit[i] := parity(tsrc2qw.byte[7-i] AND inverse(src1byte)) XOR imm8.bit[i] + ENDFOR + RETURN retbyte +} +FOR j := 0 TO 3 + FOR i := 0 to 7 + IF k[j*8+i] + dst.qword[j].byte[i] := affine_inverse_byte(A.qword[j], x.qword[j].byte[i], b) + ELSE + dst.qword[j].byte[i] := src.qword[j].byte[i] + FI + ENDFOR +ENDFOR +dst[MAX:256] := 0 + + + GFNI + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Compute an inverse affine transformation in the Galois Field 2^8. An affine transformation is defined by "A" * "x" + "b", where "A" represents an 8 by 8 bit matrix, "x" represents an 8-bit vector, and "b" is a constant immediate byte. The inverse of the 8-bit values in "x" is defined with respect to the reduction polynomial x^8 + x^4 + x^3 + x + 1. Store the packed 8-bit results in "dst". + DEFINE parity(x) { + t := 0 + FOR i := 0 to 7 + t := t XOR x.bit[i] + ENDFOR + RETURN t +} +DEFINE affine_inverse_byte(tsrc2qw, src1byte, imm8) { + FOR i := 0 to 7 + retbyte.bit[i] := parity(tsrc2qw.byte[7-i] AND inverse(src1byte)) XOR imm8.bit[i] + ENDFOR + RETURN retbyte +} +FOR j := 0 TO 3 + FOR i := 0 to 7 + dst.qword[j].byte[i] := affine_inverse_byte(A.qword[j], x.qword[j].byte[i], b) + ENDFOR +ENDFOR +dst[MAX:256] := 0 + + + GFNI + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + Compute an inverse affine transformation in the Galois Field 2^8. An affine transformation is defined by "A" * "x" + "b", where "A" represents an 8 by 8 bit matrix, "x" represents an 8-bit vector, and "b" is a constant immediate byte. The inverse of the 8-bit values in "x" is defined with respect to the reduction polynomial x^8 + x^4 + x^3 + x + 1. Store the packed 8-bit results in "dst" using zeromask "k" (elements are zeroed out when the corresponding mask bit is not set). + DEFINE parity(x) { + t := 0 + FOR i := 0 to 7 + t := t XOR x.bit[i] + ENDFOR + RETURN t +} +DEFINE affine_inverse_byte(tsrc2qw, src1byte, imm8) { + FOR i := 0 to 7 + retbyte.bit[i] := parity(tsrc2qw.byte[7-i] AND inverse(src1byte)) XOR imm8.bit[i] + ENDFOR + RETURN retbyte +} +FOR j := 0 TO 1 + FOR i := 0 to 7 + IF k[j*8+i] + dst.qword[j].byte[i] := affine_inverse_byte(A.qword[j], x.qword[j].byte[i], b) + ELSE + dst.qword[j].byte[i] := 0 + FI + ENDFOR +ENDFOR +dst[MAX:128] := 0 + + + GFNI + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + + + Compute an inverse affine transformation in the Galois Field 2^8. An affine transformation is defined by "A" * "x" + "b", where "A" represents an 8 by 8 bit matrix, "x" represents an 8-bit vector, and "b" is a constant immediate byte. The inverse of the 8-bit values in "x" is defined with respect to the reduction polynomial x^8 + x^4 + x^3 + x + 1. Store the packed 8-bit results in "dst" using writemask "k" (elements are copied from "src" when the corresponding mask bit is not set). + DEFINE parity(x) { + t := 0 + FOR i := 0 to 7 + t := t XOR x.bit[i] + ENDFOR + RETURN t +} +DEFINE affine_inverse_byte(tsrc2qw, src1byte, imm8) { + FOR i := 0 to 7 + retbyte.bit[i] := parity(tsrc2qw.byte[7-i] AND inverse(src1byte)) XOR imm8.bit[i] + ENDFOR + RETURN retbyte +} +FOR j := 0 TO 1 + FOR i := 0 to 7 + IF k[j*8+i] + dst.qword[j].byte[i] := affine_inverse_byte(A.qword[j], x.qword[j].byte[i], b) + ELSE + dst.qword[j].byte[i] := src.qword[j].byte[i] + FI + ENDFOR +ENDFOR +dst[MAX:128] := 0 + + + GFNI + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Compute an inverse affine transformation in the Galois Field 2^8. An affine transformation is defined by "A" * "x" + "b", where "A" represents an 8 by 8 bit matrix, "x" represents an 8-bit vector, and "b" is a constant immediate byte. The inverse of the 8-bit values in "x" is defined with respect to the reduction polynomial x^8 + x^4 + x^3 + x + 1. Store the packed 8-bit results in "dst". + DEFINE parity(x) { + t := 0 + FOR i := 0 to 7 + t := t XOR x.bit[i] + ENDFOR + RETURN t +} +DEFINE affine_inverse_byte(tsrc2qw, src1byte, imm8) { + FOR i := 0 to 7 + retbyte.bit[i] := parity(tsrc2qw.byte[7-i] AND inverse(src1byte)) XOR imm8.bit[i] + ENDFOR + RETURN retbyte +} +FOR j := 0 TO 1 + FOR i := 0 to 7 + dst.qword[j].byte[i] := affine_inverse_byte(A.qword[j], x.qword[j].byte[i], b) + ENDFOR +ENDFOR +dst[MAX:128] := 0 + + + GFNI + AVX512VL +
immintrin.h
+ Arithmetic +
+ + + + + + Provides a hint to the processor to selectively reset the prediction history of the current logical processor specified by a signed 32-bit integer "__eax". + + HRESET +
immintrin.h
+ General Support +
+ + + + + + Invalidate mappings in the Translation Lookaside Buffers (TLBs) and paging-structure caches for the processor context identifier (PCID) specified by "descriptor" based on the invalidation type specified in "type". + The PCID "descriptor" is specified as a 16-byte memory operand (with no alignment restrictions) where bits [11:0] specify the PCID, and bits [127:64] specify the linear address; bits [63:12] are reserved. + The types supported are: + 0) Individual-address invalidation: If "type" is 0, the logical processor invalidates mappings for a single linear address and tagged with the PCID specified in "descriptor", except global translations. The instruction may also invalidate global translations, mappings for other linear addresses, or mappings tagged with other PCIDs. + 1) Single-context invalidation: If "type" is 1, the logical processor invalidates all mappings tagged with the PCID specified in "descriptor" except global translations. In some cases, it may invalidate mappings for other PCIDs as well. + 2) All-context invalidation: If "type" is 2, the logical processor invalidates all mappings tagged with any PCID. + 3) All-context invalidation, retaining global translations: If "type" is 3, the logical processor invalidates all mappings tagged with any PCID except global translations, ignoring "descriptor". The instruction may also invalidate global translations as well. + +CASE type[1:0] OF +0: // individual-address invalidation retaining global translations + OP_PCID := MEM[descriptor+11:descriptor] + ADDR := MEM[descriptor+127:descriptor+64] + BREAK +1: // single PCID invalidation retaining globals + OP_PCID := MEM[descriptor+11:descriptor] + // invalidate all mappings tagged with OP_PCID except global translations + BREAK +2: // all PCID invalidation + // invalidate all mappings tagged with any PCID + BREAK +3: // all PCID invalidation retaining global translations + // invalidate all mappings tagged with any PCID except global translations + BREAK +ESAC + + + INVPCID +
immintrin.h
+ OS-Targeted +
+ + + + Flag + + + + + Decrypt 10 rounds of unsigned 8-bit integers in "__idata" using 128-bit AES key specified in "__h", store the resulting unsigned 8-bit integers into the corresponding elements of "__odata", and set "dst" to the ZF flag status. If exception happens, set ZF flag to 1 and zero initialize "__odata". + MEM[__odata+127:__odata] := AES128Decrypt (__idata[127:0], __h[383:0]) +dst := ZF + + + KEYLOCKER +
immintrin.h
+ Cryptography +
+ + Flag + + + + + Decrypt 10 rounds of unsigned 8-bit integers in "__idata" using 256-bit AES key specified in "__h", store the resulting unsigned 8-bit integers into the corresponding elements of "__odata", and set "dst" to the ZF flag status. If exception happens, set ZF flag to 1 and zero initialize "__odata". + MEM[__odata+127:__odata] := AES256Decrypt (__idata[127:0], __h[511:0]) +dst := ZF + + + KEYLOCKER +
immintrin.h
+ Cryptography +
+ + Flag + + + + + Encrypt 10 rounds of unsigned 8-bit integers in "__idata" using 128-bit AES key specified in "__h", store the resulting unsigned 8-bit integers into the corresponding elements of "__odata", and set "dst" to the ZF flag status. + MEM[__odata+127:__odata] := AES128Encrypt (__idata[127:0], __h[383:0]) +dst := ZF + + + KEYLOCKER +
immintrin.h
+ Cryptography +
+ + Flag + + + + + Encrypt 10 rounds of unsigned 8-bit integers in "__idata" using 256-bit AES key specified in "__h", store the resulting unsigned 8-bit integers into the corresponding elements of "__odata", and set "dst" to the ZF flag status. If exception happens, set ZF flag to 1 and zero initialize "__odata". + MEM[__odata+127:__odata] := AES256Encrypt (__idata[127:0], __h[511:0]) +dst := ZF + + + KEYLOCKER +
immintrin.h
+ Cryptography +
+ + Flag + + + + + Wrap a 128-bit AES key from "__key" into a 384-bit key __h stored in "__h" and set IWKey's NoBackup and KeySource bits in "dst". The explicit source operand "__htype" specifies __h restrictions. + __h[383:0] := WrapKey128(__key[127:0], __htype) +dst[0] := IWKey.NoBackup +dst[4:1] := IWKey.KeySource[3:0] + + + KEYLOCKER +
immintrin.h
+ Cryptography +
+ + Flag + + + + + + Wrap a 256-bit AES key from "__key_hi" and "__key_lo" into a 512-bit key stored in "__h" and set IWKey's NoBackup and KeySource bits in "dst". The 32-bit "__htype" specifies __h restrictions. + __h[511:0] := WrapKey256(__key_lo[127:0], __key_hi[127:0], __htype) +dst[0] := IWKey.NoBackup +dst[4:1] := IWKey.KeySource[3:0] + + + KEYLOCKER +
immintrin.h
+ Cryptography +
+ + Flag + + + + + + Load internal wrapping key (IWKey). The 32-bit unsigned integer "__ctl" specifies IWKey's KeySource and whether backing up the key is permitted. IWKey's 256-bit encryption key is loaded from "__enkey_lo" and "__enkey_hi". IWKey's 128-bit integrity key is loaded from "__intkey". + + KEYLOCKER +
immintrin.h
+ Cryptography +
+ + Flag + + + + + Decrypt 10 rounds of 8 groups of unsigned 8-bit integers in "__idata" using 128-bit AES key specified in "__h", store the resulting unsigned 8-bit integers into the corresponding elements of "__odata", and set "dst" to the ZF flag status. If exception happens, set ZF flag to 1 and zero initialize "__odata". + FOR i := 0 to 7 + __odata[i] := AES128Decrypt (__idata[i], __h[383:0]) +ENDFOR +dst := ZF + + + KEYLOCKER_WIDE +
immintrin.h
+ Cryptography +
+ + Flag + + + + + Decrypt 10 rounds of 8 groups of unsigned 8-bit integers in "__idata" using 256-bit AES key specified in "__h", store the resulting unsigned 8-bit integers into the corresponding elements of "__odata", and set "dst" to the ZF flag status. If exception happens, set ZF flag to 1 and zero initialize "__odata". + FOR i := 0 to 7 + __odata[i] := AES256Decrypt (__idata[i], __h[511:0]) +ENDFOR +dst := ZF + + + KEYLOCKER_WIDE +
immintrin.h
+ Cryptography +
+ + Flag + + + + + Encrypt 10 rounds of 8 groups of unsigned 8-bit integers in "__idata" using 128-bit AES key specified in "__h", store the resulting unsigned 8-bit integers into the corresponding elements of "__odata", and set "dst" to the ZF flag status. If exception happens, set ZF flag to 1 and zero initialize "__odata". + FOR i := 0 to 7 + __odata[i] := AES128Encrypt (__idata[i], __h[383:0]) +ENDFOR +dst := ZF + + + KEYLOCKER_WIDE +
immintrin.h
+ Cryptography +
+ + Flag + + + + + Encrypt 10 rounds of 8 groups of unsigned 8-bit integers in "__idata" using 256-bit AES key specified in "__h", store the resulting unsigned 8-bit integers into the corresponding elements of "__odata", and set "dst" to the ZF flag status. If exception happens, set ZF flag to 1 and zero initialize "__odata". + FOR i := 0 to 7 + __odata[i] := AES256Encrypt (__idata[i], __h[512:0]) +ENDFOR +dst := ZF + + + KEYLOCKER_WIDE +
immintrin.h
+ Cryptography +
+ + + + + Count the number of leading zero bits in unsigned 32-bit integer "a", and return that count in "dst". + +tmp := 31 +dst := 0 +DO WHILE (tmp >= 0 AND a[tmp] == 0) + tmp := tmp - 1 + dst := dst + 1 +OD + + + LZCNT +
immintrin.h
+ Bit Manipulation +
+ + + + Count the number of leading zero bits in unsigned 64-bit integer "a", and return that count in "dst". + +tmp := 63 +dst := 0 +DO WHILE (tmp >= 0 AND a[tmp] == 0) + tmp := tmp - 1 + dst := dst + 1 +OD + + + LZCNT +
immintrin.h
+ Bit Manipulation +
+ + + + + + Copy 64-bit integer "a" to "dst". + +dst[63:0] := a[63:0] + + + MMX +
mmintrin.h
+ Convert +
+ + + + Copy 64-bit integer "a" to "dst". + +dst[63:0] := a[63:0] + + + MMX +
mmintrin.h
+ Convert +
+ + + + Copy 32-bit integer "a" to the lower elements of "dst", and zero the upper element of "dst". + +dst[31:0] := a[31:0] +dst[63:32] := 0 + + + MMX +
mmintrin.h
+ Convert +
+ + + + Copy the lower 32-bit integer in "a" to "dst". + +dst[31:0] := a[31:0] + + + MMX +
mmintrin.h
+ Convert +
+ + + + Copy 32-bit integer "a" to the lower elements of "dst", and zero the upper element of "dst". + +dst[31:0] := a[31:0] +dst[63:32] := 0 + + + MMX +
mmintrin.h
+ Convert +
+ + + + Copy the lower 32-bit integer in "a" to "dst". + +dst[31:0] := a[31:0] + + + MMX +
mmintrin.h
+ Convert +
+ + + + Copy 64-bit integer "a" to "dst". + +dst[63:0] := a[63:0] + + + MMX +
mmintrin.h
+ Convert +
+ + + + Copy 64-bit integer "a" to "dst". + +dst[63:0] := a[63:0] + + + MMX +
mmintrin.h
+ Convert +
+ + + + Empty the MMX state, which marks the x87 FPU registers as available for use by x87 instructions. This instruction must be used at the end of all MMX technology procedures. + + MMX +
mmintrin.h
+ General Support +
+ + + + Empty the MMX state, which marks the x87 FPU registers as available for use by x87 instructions. This instruction must be used at the end of all MMX technology procedures. + + MMX +
mmintrin.h
+ General Support +
+ + + + + Convert packed signed 16-bit integers from "a" and "b" to packed 8-bit integers using signed saturation, and store the results in "dst". + +dst[7:0] := Saturate8(a[15:0]) +dst[15:8] := Saturate8(a[31:16]) +dst[23:16] := Saturate8(a[47:32]) +dst[31:24] := Saturate8(a[63:48]) +dst[39:32] := Saturate8(b[15:0]) +dst[47:40] := Saturate8(b[31:16]) +dst[55:48] := Saturate8(b[47:32]) +dst[63:56] := Saturate8(b[63:48]) + + + MMX +
mmintrin.h
+ Miscellaneous +
+ + + + + Convert packed signed 32-bit integers from "a" and "b" to packed 16-bit integers using signed saturation, and store the results in "dst". + +dst[15:0] := Saturate16(a[31:0]) +dst[31:16] := Saturate16(a[63:32]) +dst[47:32] := Saturate16(b[31:0]) +dst[63:48] := Saturate16(b[63:32]) + + + MMX +
mmintrin.h
+ Miscellaneous +
+ + + + + Convert packed signed 16-bit integers from "a" and "b" to packed 8-bit integers using unsigned saturation, and store the results in "dst". + +dst[7:0] := SaturateU8(a[15:0]) +dst[15:8] := SaturateU8(a[31:16]) +dst[23:16] := SaturateU8(a[47:32]) +dst[31:24] := SaturateU8(a[63:48]) +dst[39:32] := SaturateU8(b[15:0]) +dst[47:40] := SaturateU8(b[31:16]) +dst[55:48] := SaturateU8(b[47:32]) +dst[63:56] := SaturateU8(b[63:48]) + + + MMX +
mmintrin.h
+ Miscellaneous +
+ + + + + Convert packed signed 16-bit integers from "a" and "b" to packed 8-bit integers using signed saturation, and store the results in "dst". + +dst[7:0] := Saturate8(a[15:0]) +dst[15:8] := Saturate8(a[31:16]) +dst[23:16] := Saturate8(a[47:32]) +dst[31:24] := Saturate8(a[63:48]) +dst[39:32] := Saturate8(b[15:0]) +dst[47:40] := Saturate8(b[31:16]) +dst[55:48] := Saturate8(b[47:32]) +dst[63:56] := Saturate8(b[63:48]) + + + MMX +
mmintrin.h
+ Miscellaneous +
+ + + + + Convert packed signed 32-bit integers from "a" and "b" to packed 16-bit integers using signed saturation, and store the results in "dst". + +dst[15:0] := Saturate16(a[31:0]) +dst[31:16] := Saturate16(a[63:32]) +dst[47:32] := Saturate16(b[31:0]) +dst[63:48] := Saturate16(b[63:32]) + + + MMX +
mmintrin.h
+ Miscellaneous +
+ + + + + Convert packed signed 16-bit integers from "a" and "b" to packed 8-bit integers using unsigned saturation, and store the results in "dst". + +dst[7:0] := SaturateU8(a[15:0]) +dst[15:8] := SaturateU8(a[31:16]) +dst[23:16] := SaturateU8(a[47:32]) +dst[31:24] := SaturateU8(a[63:48]) +dst[39:32] := SaturateU8(b[15:0]) +dst[47:40] := SaturateU8(b[31:16]) +dst[55:48] := SaturateU8(b[47:32]) +dst[63:56] := SaturateU8(b[63:48]) + + + MMX +
mmintrin.h
+ Miscellaneous +
+ + + + + Unpack and interleave 8-bit integers from the high half of "a" and "b", and store the results in "dst". + +DEFINE INTERLEAVE_HIGH_BYTES(src1[63:0], src2[63:0]) { + dst[7:0] := src1[39:32] + dst[15:8] := src2[39:32] + dst[23:16] := src1[47:40] + dst[31:24] := src2[47:40] + dst[39:32] := src1[55:48] + dst[47:40] := src2[55:48] + dst[55:48] := src1[63:56] + dst[63:56] := src2[63:56] + RETURN dst[63:0] +} +dst[63:0] := INTERLEAVE_HIGH_BYTES(a[63:0], b[63:0]) + + + MMX +
mmintrin.h
+ Swizzle +
+ + + + + Unpack and interleave 16-bit integers from the high half of "a" and "b", and store the results in "dst". + +DEFINE INTERLEAVE_HIGH_WORDS(src1[63:0], src2[63:0]) { + dst[15:0] := src1[47:32] + dst[31:16] := src2[47:32] + dst[47:32] := src1[63:48] + dst[63:48] := src2[63:48] + RETURN dst[63:0] +} +dst[63:0] := INTERLEAVE_HIGH_WORDS(a[63:0], b[63:0]) + + + MMX +
mmintrin.h
+ Swizzle +
+ + + + + Unpack and interleave 32-bit integers from the high half of "a" and "b", and store the results in "dst". + +dst[31:0] := a[63:32] +dst[63:32] := b[63:32] + + + MMX +
mmintrin.h
+ Swizzle +
+ + + + + Unpack and interleave 8-bit integers from the low half of "a" and "b", and store the results in "dst". + +DEFINE INTERLEAVE_BYTES(src1[63:0], src2[63:0]) { + dst[7:0] := src1[7:0] + dst[15:8] := src2[7:0] + dst[23:16] := src1[15:8] + dst[31:24] := src2[15:8] + dst[39:32] := src1[23:16] + dst[47:40] := src2[23:16] + dst[55:48] := src1[31:24] + dst[63:56] := src2[31:24] + RETURN dst[63:0] +} +dst[63:0] := INTERLEAVE_BYTES(a[63:0], b[63:0]) + + + MMX +
mmintrin.h
+ Swizzle +
+ + + + + Unpack and interleave 16-bit integers from the low half of "a" and "b", and store the results in "dst". + +DEFINE INTERLEAVE_WORDS(src1[63:0], src2[63:0]) { + dst[15:0] := src1[15:0] + dst[31:16] := src2[15:0] + dst[47:32] := src1[31:16] + dst[63:48] := src2[31:16] + RETURN dst[63:0] +} +dst[63:0] := INTERLEAVE_WORDS(a[63:0], b[63:0]) + + + MMX +
mmintrin.h
+ Swizzle +
+ + + + + Unpack and interleave 32-bit integers from the low half of "a" and "b", and store the results in "dst". + +dst[31:0] := a[31:0] +dst[63:32] := b[31:0] + + + MMX +
mmintrin.h
+ Swizzle +
+ + + + + Unpack and interleave 8-bit integers from the high half of "a" and "b", and store the results in "dst". + +DEFINE INTERLEAVE_HIGH_BYTES(src1[63:0], src2[63:0]) { + dst[7:0] := src1[39:32] + dst[15:8] := src2[39:32] + dst[23:16] := src1[47:40] + dst[31:24] := src2[47:40] + dst[39:32] := src1[55:48] + dst[47:40] := src2[55:48] + dst[55:48] := src1[63:56] + dst[63:56] := src2[63:56] + RETURN dst[63:0] +} +dst[63:0] := INTERLEAVE_HIGH_BYTES(a[63:0], b[63:0]) + + + MMX +
mmintrin.h
+ Swizzle +
+ + + + + Unpack and interleave 16-bit integers from the high half of "a" and "b", and store the results in "dst". + +DEFINE INTERLEAVE_HIGH_WORDS(src1[63:0], src2[63:0]) { + dst[15:0] := src1[47:32] + dst[31:16] := src2[47:32] + dst[47:32] := src1[63:48] + dst[63:48] := src2[63:48] + RETURN dst[63:0] +} +dst[63:0] := INTERLEAVE_HIGH_WORDS(a[63:0], b[63:0]) + + + MMX +
mmintrin.h
+ Swizzle +
+ + + + + Unpack and interleave 32-bit integers from the high half of "a" and "b", and store the results in "dst". + +dst[31:0] := a[63:32] +dst[63:32] := b[63:32] + + + MMX +
mmintrin.h
+ Swizzle +
+ + + + + Unpack and interleave 8-bit integers from the low half of "a" and "b", and store the results in "dst". + +DEFINE INTERLEAVE_BYTES(src1[63:0], src2[63:0]) { + dst[7:0] := src1[7:0] + dst[15:8] := src2[7:0] + dst[23:16] := src1[15:8] + dst[31:24] := src2[15:8] + dst[39:32] := src1[23:16] + dst[47:40] := src2[23:16] + dst[55:48] := src1[31:24] + dst[63:56] := src2[31:24] + RETURN dst[63:0] +} +dst[63:0] := INTERLEAVE_BYTES(a[63:0], b[63:0]) + + + MMX +
mmintrin.h
+ Swizzle +
+ + + + + Unpack and interleave 16-bit integers from the low half of "a" and "b", and store the results in "dst". + +DEFINE INTERLEAVE_WORDS(src1[63:0], src2[63:0]) { + dst[15:0] := src1[15:0] + dst[31:16] := src2[15:0] + dst[47:32] := src1[31:16] + dst[63:48] := src2[31:16] + RETURN dst[63:0] +} +dst[63:0] := INTERLEAVE_WORDS(a[63:0], b[63:0]) + + + MMX +
mmintrin.h
+ Swizzle +
+ + + + + Unpack and interleave 32-bit integers from the low half of "a" and "b", and store the results in "dst". + +dst[31:0] := a[31:0] +dst[63:32] := b[31:0] + + + MMX +
mmintrin.h
+ Swizzle +
+ + + + + Add packed 8-bit integers in "a" and "b", and store the results in "dst". + +FOR j := 0 to 7 + i := j*8 + dst[i+7:i] := a[i+7:i] + b[i+7:i] +ENDFOR + + + MMX +
mmintrin.h
+ Arithmetic +
+ + + + + Add packed 16-bit integers in "a" and "b", and store the results in "dst". + +FOR j := 0 to 3 + i := j*16 + dst[i+15:i] := a[i+15:i] + b[i+15:i] +ENDFOR + + + MMX +
mmintrin.h
+ Arithmetic +
+ + + + + Add packed 32-bit integers in "a" and "b", and store the results in "dst". + +FOR j := 0 to 1 + i := j*32 + dst[i+31:i] := a[i+31:i] + b[i+31:i] +ENDFOR + + + MMX +
mmintrin.h
+ Arithmetic +
+ + + + + Add packed signed 8-bit integers in "a" and "b" using saturation, and store the results in "dst". + +FOR j := 0 to 7 + i := j*8 + dst[i+7:i] := Saturate8( a[i+7:i] + b[i+7:i] ) +ENDFOR + + + MMX +
mmintrin.h
+ Arithmetic +
+ + + + + Add packed signed 16-bit integers in "a" and "b" using saturation, and store the results in "dst". + +FOR j := 0 to 3 + i := j*16 + dst[i+15:i] := Saturate16( a[i+15:i] + b[i+15:i] ) +ENDFOR + + + MMX +
mmintrin.h
+ Arithmetic +
+ + + + + Add packed unsigned 8-bit integers in "a" and "b" using saturation, and store the results in "dst". + +FOR j := 0 to 7 + i := j*8 + dst[i+7:i] := SaturateU8( a[i+7:i] + b[i+7:i] ) +ENDFOR + + + MMX +
mmintrin.h
+ Arithmetic +
+ + + + + Add packed unsigned 16-bit integers in "a" and "b" using saturation, and store the results in "dst". + +FOR j := 0 to 3 + i := j*16 + dst[i+15:i] := SaturateU16( a[i+15:i] + b[i+15:i] ) +ENDFOR + + + MMX +
mmintrin.h
+ Arithmetic +
+ + + + + Subtract packed 8-bit integers in "b" from packed 8-bit integers in "a", and store the results in "dst". + +FOR j := 0 to 7 + i := j*8 + dst[i+7:i] := a[i+7:i] - b[i+7:i] +ENDFOR + + + MMX +
mmintrin.h
+ Arithmetic +
+ + + + + Subtract packed 16-bit integers in "b" from packed 16-bit integers in "a", and store the results in "dst". + +FOR j := 0 to 3 + i := j*16 + dst[i+15:i] := a[i+15:i] - b[i+15:i] +ENDFOR + + + MMX +
mmintrin.h
+ Arithmetic +
+ + + + + Subtract packed 32-bit integers in "b" from packed 32-bit integers in "a", and store the results in "dst". + +FOR j := 0 to 1 + i := j*32 + dst[i+31:i] := a[i+31:i] - b[i+31:i] +ENDFOR + + + MMX +
mmintrin.h
+ Arithmetic +
+ + + + + Subtract packed signed 8-bit integers in "b" from packed 8-bit integers in "a" using saturation, and store the results in "dst". + +FOR j := 0 to 7 + i := j*8 + dst[i+7:i] := Saturate8(a[i+7:i] - b[i+7:i]) +ENDFOR + + + MMX +
mmintrin.h
+ Arithmetic +
+ + + + + Subtract packed signed 16-bit integers in "b" from packed 16-bit integers in "a" using saturation, and store the results in "dst". + +FOR j := 0 to 3 + i := j*16 + dst[i+15:i] := Saturate16(a[i+15:i] - b[i+15:i]) +ENDFOR + + + MMX +
mmintrin.h
+ Arithmetic +
+ + + + + Subtract packed unsigned 8-bit integers in "b" from packed unsigned 8-bit integers in "a" using saturation, and store the results in "dst". + +FOR j := 0 to 7 + i := j*8 + dst[i+7:i] := SaturateU8(a[i+7:i] - b[i+7:i]) +ENDFOR + + + MMX +
mmintrin.h
+ Arithmetic +
+ + + + + Subtract packed unsigned 16-bit integers in "b" from packed unsigned 16-bit integers in "a" using saturation, and store the results in "dst". + +FOR j := 0 to 3 + i := j*16 + dst[i+15:i] := SaturateU16(a[i+15:i] - b[i+15:i]) +ENDFOR + + + MMX +
mmintrin.h
+ Arithmetic +
+ + + + + Multiply packed signed 16-bit integers in "a" and "b", producing intermediate signed 32-bit integers. Horizontally add adjacent pairs of intermediate 32-bit integers, and pack the results in "dst". + +FOR j := 0 to 1 + i := j*32 + dst[i+31:i] := SignExtend32(a[i+31:i+16]*b[i+31:i+16]) + SignExtend32(a[i+15:i]*b[i+15:i]) +ENDFOR + + + MMX +
mmintrin.h
+ Arithmetic +
+ + + + + Multiply the packed signed 16-bit integers in "a" and "b", producing intermediate 32-bit integers, and store the high 16 bits of the intermediate integers in "dst". + +FOR j := 0 to 3 + i := j*16 + tmp[31:0] := SignExtend32(a[i+15:i]) * SignExtend32(b[i+15:i]) + dst[i+15:i] := tmp[31:16] +ENDFOR + + + MMX +
mmintrin.h
+ Arithmetic +
+ + + + + Multiply the packed 16-bit integers in "a" and "b", producing intermediate 32-bit integers, and store the low 16 bits of the intermediate integers in "dst". + +FOR j := 0 to 3 + i := j*16 + tmp[31:0] := a[i+15:i] * b[i+15:i] + dst[i+15:i] := tmp[15:0] +ENDFOR + + + MMX +
mmintrin.h
+ Arithmetic +
+ + + + + Add packed 8-bit integers in "a" and "b", and store the results in "dst". + +FOR j := 0 to 7 + i := j*8 + dst[i+7:i] := a[i+7:i] + b[i+7:i] +ENDFOR + + + MMX +
mmintrin.h
+ Arithmetic +
+ + + + + Add packed 16-bit integers in "a" and "b", and store the results in "dst". + +FOR j := 0 to 3 + i := j*16 + dst[i+15:i] := a[i+15:i] + b[i+15:i] +ENDFOR + + + MMX +
mmintrin.h
+ Arithmetic +
+ + + + + Add packed 32-bit integers in "a" and "b", and store the results in "dst". + +FOR j := 0 to 1 + i := j*32 + dst[i+31:i] := a[i+31:i] + b[i+31:i] +ENDFOR + + + MMX +
mmintrin.h
+ Arithmetic +
+ + + + + Add packed signed 8-bit integers in "a" and "b" using saturation, and store the results in "dst". + +FOR j := 0 to 7 + i := j*8 + dst[i+7:i] := Saturate8( a[i+7:i] + b[i+7:i] ) +ENDFOR + + + MMX +
mmintrin.h
+ Arithmetic +
+ + + + + Add packed signed 16-bit integers in "a" and "b" using saturation, and store the results in "dst". + +FOR j := 0 to 3 + i := j*16 + dst[i+15:i] := Saturate16( a[i+15:i] + b[i+15:i] ) +ENDFOR + + + MMX +
mmintrin.h
+ Arithmetic +
+ + + + + Add packed unsigned 8-bit integers in "a" and "b" using saturation, and store the results in "dst". + +FOR j := 0 to 7 + i := j*8 + dst[i+7:i] := SaturateU8( a[i+7:i] + b[i+7:i] ) +ENDFOR + + + MMX +
mmintrin.h
+ Arithmetic +
+ + + + + Add packed unsigned 16-bit integers in "a" and "b" using saturation, and store the results in "dst". + +FOR j := 0 to 3 + i := j*16 + dst[i+15:i] := SaturateU16( a[i+15:i] + b[i+15:i] ) +ENDFOR + + + MMX +
mmintrin.h
+ Arithmetic +
+ + + + + Subtract packed 8-bit integers in "b" from packed 8-bit integers in "a", and store the results in "dst". + +FOR j := 0 to 7 + i := j*8 + dst[i+7:i] := a[i+7:i] - b[i+7:i] +ENDFOR + + + MMX +
mmintrin.h
+ Arithmetic +
+ + + + + Subtract packed 16-bit integers in "b" from packed 16-bit integers in "a", and store the results in "dst". + +FOR j := 0 to 3 + i := j*16 + dst[i+15:i] := a[i+15:i] - b[i+15:i] +ENDFOR + + + MMX +
mmintrin.h
+ Arithmetic +
+ + + + + Subtract packed 32-bit integers in "b" from packed 32-bit integers in "a", and store the results in "dst". + +FOR j := 0 to 1 + i := j*32 + dst[i+31:i] := a[i+31:i] - b[i+31:i] +ENDFOR + + + MMX +
mmintrin.h
+ Arithmetic +
+ + + + + Subtract packed signed 8-bit integers in "b" from packed 8-bit integers in "a" using saturation, and store the results in "dst". + +FOR j := 0 to 7 + i := j*8 + dst[i+7:i] := Saturate8(a[i+7:i] - b[i+7:i]) +ENDFOR + + + MMX +
mmintrin.h
+ Arithmetic +
+ + + + + Subtract packed signed 16-bit integers in "b" from packed 16-bit integers in "a" using saturation, and store the results in "dst". + +FOR j := 0 to 3 + i := j*16 + dst[i+15:i] := Saturate16(a[i+15:i] - b[i+15:i]) +ENDFOR + + + MMX +
mmintrin.h
+ Arithmetic +
+ + + + + Subtract packed unsigned 8-bit integers in "b" from packed unsigned 8-bit integers in "a" using saturation, and store the results in "dst". + +FOR j := 0 to 7 + i := j*8 + dst[i+7:i] := SaturateU8(a[i+7:i] - b[i+7:i]) +ENDFOR + + + MMX +
mmintrin.h
+ Arithmetic +
+ + + + + Subtract packed unsigned 16-bit integers in "b" from packed unsigned 16-bit integers in "a" using saturation, and store the results in "dst". + +FOR j := 0 to 3 + i := j*16 + dst[i+15:i] := SaturateU16(a[i+15:i] - b[i+15:i]) +ENDFOR + + + MMX +
mmintrin.h
+ Arithmetic +
+ + + + + Multiply packed signed 16-bit integers in "a" and "b", producing intermediate signed 32-bit integers. Horizontally add adjacent pairs of intermediate 32-bit integers, and pack the results in "dst". + +FOR j := 0 to 1 + i := j*32 + dst[i+31:i] := SignExtend32(a[i+31:i+16]*b[i+31:i+16]) + SignExtend32(a[i+15:i]*b[i+15:i]) +ENDFOR + + + MMX +
mmintrin.h
+ Arithmetic +
+ + + + + Multiply the packed signed 16-bit integers in "a" and "b", producing intermediate 32-bit integers, and store the high 16 bits of the intermediate integers in "dst". + +FOR j := 0 to 3 + i := j*16 + tmp[31:0] := SignExtend32(a[i+15:i]) * SignExtend32(b[i+15:i]) + dst[i+15:i] := tmp[31:16] +ENDFOR + + + MMX +
mmintrin.h
+ Arithmetic +
+ + + + + Multiply the packed 16-bit integers in "a" and "b", producing intermediate 32-bit integers, and store the low 16 bits of the intermediate integers in "dst". + +FOR j := 0 to 3 + i := j*16 + tmp[31:0] := a[i+15:i] * b[i+15:i] + dst[i+15:i] := tmp[15:0] +ENDFOR + + + MMX +
mmintrin.h
+ Arithmetic +
+ + + + + Shift packed 16-bit integers in "a" left by "count" while shifting in zeros, and store the results in "dst". + +FOR j := 0 to 3 + i := j*16 + IF count[63:0] > 15 + dst[i+15:i] := 0 + ELSE + dst[i+15:i] := ZeroExtend16(a[i+15:i] << count[63:0]) + FI +ENDFOR + + + MMX +
mmintrin.h
+ Shift +
+ + + + + Shift packed 16-bit integers in "a" left by "imm8" while shifting in zeros, and store the results in "dst". + +FOR j := 0 to 3 + i := j*16 + IF imm8[7:0] > 15 + dst[i+15:i] := 0 + ELSE + dst[i+15:i] := ZeroExtend16(a[i+15:i] << imm8[7:0]) + FI +ENDFOR + + + MMX +
mmintrin.h
+ Shift +
+ + + + + Shift packed 32-bit integers in "a" left by "count" while shifting in zeros, and store the results in "dst". + +FOR j := 0 to 1 + i := j*32 + IF count[63:0] > 31 + dst[i+31:i] := 0 + ELSE + dst[i+31:i] := ZeroExtend32(a[i+31:i] << count[63:0]) + FI +ENDFOR + + + MMX +
mmintrin.h
+ Shift +
+ + + + + Shift packed 32-bit integers in "a" left by "imm8" while shifting in zeros, and store the results in "dst". + +FOR j := 0 to 1 + i := j*32 + IF imm8[7:0] > 31 + dst[i+31:i] := 0 + ELSE + dst[i+31:i] := ZeroExtend32(a[i+31:i] << imm8[7:0]) + FI +ENDFOR + + + MMX +
mmintrin.h
+ Shift +
+ + + + + Shift 64-bit integer "a" left by "count" while shifting in zeros, and store the result in "dst". + +IF count[63:0] > 63 + dst[63:0] := 0 +ELSE + dst[63:0] := ZeroExtend64(a[63:0] << count[63:0]) +FI + + + MMX +
mmintrin.h
+ Shift +
+ + + + + Shift 64-bit integer "a" left by "imm8" while shifting in zeros, and store the result in "dst". + +IF imm8[7:0] > 63 + dst[63:0] := 0 +ELSE + dst[63:0] := ZeroExtend64(a[63:0] << imm8[7:0]) +FI + + + MMX +
mmintrin.h
+ Shift +
+ + + + + Shift packed 16-bit integers in "a" right by "count" while shifting in sign bits, and store the results in "dst". + +FOR j := 0 to 3 + i := j*16 + IF count[63:0] > 15 + dst[i+15:i] := (a[i+15] ? 0xFFFF : 0x0) + ELSE + dst[i+15:i] := SignExtend16(a[i+15:i] >> count[63:0]) + FI +ENDFOR + + + MMX +
mmintrin.h
+ Shift +
+ + + + + Shift packed 16-bit integers in "a" right by "imm8" while shifting in sign bits, and store the results in "dst". + +FOR j := 0 to 3 + i := j*16 + IF imm8[7:0] > 15 + dst[i+15:i] := (a[i+15] ? 0xFFFF : 0x0) + ELSE + dst[i+15:i] := SignExtend16(a[i+15:i] >> imm8[7:0]) + FI +ENDFOR + + + MMX +
mmintrin.h
+ Shift +
+ + + + + Shift packed 32-bit integers in "a" right by "count" while shifting in sign bits, and store the results in "dst". + +FOR j := 0 to 1 + i := j*32 + IF count[63:0] > 31 + dst[i+31:i] := (a[i+31] ? 0xFFFFFFFF : 0x0) + ELSE + dst[i+31:i] := SignExtend32(a[i+31:i] >> count[63:0]) + FI +ENDFOR + + + MMX +
mmintrin.h
+ Shift +
+ + + + + Shift packed 32-bit integers in "a" right by "imm8" while shifting in sign bits, and store the results in "dst". + +FOR j := 0 to 1 + i := j*32 + IF imm8[7:0] > 31 + dst[i+31:i] := (a[i+31] ? 0xFFFFFFFF : 0x0) + ELSE + dst[i+31:i] := SignExtend32(a[i+31:i] >> imm8[7:0]) + FI +ENDFOR + + + MMX +
mmintrin.h
+ Shift +
+ + + + + Shift packed 16-bit integers in "a" right by "count" while shifting in zeros, and store the results in "dst". + +FOR j := 0 to 3 + i := j*16 + IF count[63:0] > 15 + dst[i+15:i] := 0 + ELSE + dst[i+15:i] := ZeroExtend16(a[i+15:i] >> count[63:0]) + FI +ENDFOR + + + MMX +
mmintrin.h
+ Shift +
+ + + + + Shift packed 16-bit integers in "a" right by "imm8" while shifting in zeros, and store the results in "dst". + +FOR j := 0 to 3 + i := j*16 + IF imm8[7:0] > 15 + dst[i+15:i] := 0 + ELSE + dst[i+15:i] := ZeroExtend16(a[i+15:i] >> imm8[7:0]) + FI +ENDFOR + + + MMX +
mmintrin.h
+ Shift +
+ + + + + Shift packed 32-bit integers in "a" right by "count" while shifting in zeros, and store the results in "dst". + +FOR j := 0 to 1 + i := j*32 + IF count[63:0] > 31 + dst[i+31:i] := 0 + ELSE + dst[i+31:i] := ZeroExtend32(a[i+31:i] >> count[63:0]) + FI +ENDFOR + + + MMX +
mmintrin.h
+ Shift +
+ + + + + Shift packed 32-bit integers in "a" right by "imm8" while shifting in zeros, and store the results in "dst". + +FOR j := 0 to 1 + i := j*32 + IF imm8[7:0] > 31 + dst[i+31:i] := 0 + ELSE + dst[i+31:i] := ZeroExtend32(a[i+31:i] >> imm8[7:0]) + FI +ENDFOR + + + MMX +
mmintrin.h
+ Shift +
+ + + + + Shift 64-bit integer "a" right by "count" while shifting in zeros, and store the result in "dst". + +IF count[63:0] > 63 + dst[63:0] := 0 +ELSE + dst[63:0] := ZeroExtend64(a[63:0] >> count[63:0]) +FI + + + MMX +
mmintrin.h
+ Shift +
+ + + + + Shift 64-bit integer "a" right by "imm8" while shifting in zeros, and store the result in "dst". + +IF imm8[7:0] > 63 + dst[63:0] := 0 +ELSE + dst[63:0] := ZeroExtend64(a[63:0] >> imm8[7:0]) +FI + + + MMX +
mmintrin.h
+ Shift +
+ + + + + Shift packed 16-bit integers in "a" left by "count" while shifting in zeros, and store the results in "dst". + +FOR j := 0 to 3 + i := j*16 + IF count[63:0] > 15 + dst[i+15:i] := 0 + ELSE + dst[i+15:i] := ZeroExtend16(a[i+15:i] << count[63:0]) + FI +ENDFOR + + + MMX +
mmintrin.h
+ Shift +
+ + + + + Shift packed 16-bit integers in "a" left by "imm8" while shifting in zeros, and store the results in "dst". + +FOR j := 0 to 3 + i := j*16 + IF imm8[7:0] > 15 + dst[i+15:i] := 0 + ELSE + dst[i+15:i] := ZeroExtend16(a[i+15:i] << imm8[7:0]) + FI +ENDFOR + + + MMX +
mmintrin.h
+ Shift +
+ + + + + Shift packed 32-bit integers in "a" left by "count" while shifting in zeros, and store the results in "dst". + +FOR j := 0 to 1 + i := j*32 + IF count[63:0] > 31 + dst[i+31:i] := 0 + ELSE + dst[i+31:i] := ZeroExtend32(a[i+31:i] << count[63:0]) + FI +ENDFOR + + + MMX +
mmintrin.h
+ Shift +
+ + + + + Shift packed 32-bit integers in "a" left by "imm8" while shifting in zeros, and store the results in "dst". + +FOR j := 0 to 1 + i := j*32 + IF imm8[7:0] > 31 + dst[i+31:i] := 0 + ELSE + dst[i+31:i] := ZeroExtend32(a[i+31:i] << imm8[7:0]) + FI +ENDFOR + + + MMX +
mmintrin.h
+ Shift +
+ + + + + Shift 64-bit integer "a" left by "count" while shifting in zeros, and store the result in "dst". + +IF count[63:0] > 63 + dst[63:0] := 0 +ELSE + dst[63:0] := ZeroExtend64(a[63:0] << count[63:0]) +FI + + + MMX +
mmintrin.h
+ Shift +
+ + + + + Shift 64-bit integer "a" left by "imm8" while shifting in zeros, and store the result in "dst". + +IF imm8[7:0] > 63 + dst[63:0] := 0 +ELSE + dst[63:0] := ZeroExtend64(a[63:0] << imm8[7:0]) +FI + + + MMX +
mmintrin.h
+ Shift +
+ + + + + Shift packed 16-bit integers in "a" right by "count" while shifting in sign bits, and store the results in "dst". + +FOR j := 0 to 3 + i := j*16 + IF count[63:0] > 15 + dst[i+15:i] := (a[i+15] ? 0xFFFF : 0x0) + ELSE + dst[i+15:i] := SignExtend16(a[i+15:i] >> count[63:0]) + FI +ENDFOR + + + MMX +
mmintrin.h
+ Shift +
+ + + + + Shift packed 16-bit integers in "a" right by "imm8" while shifting in sign bits, and store the results in "dst". + +FOR j := 0 to 3 + i := j*16 + IF imm8[7:0] > 15 + dst[i+15:i] := (a[i+15] ? 0xFFFF : 0x0) + ELSE + dst[i+15:i] := SignExtend16(a[i+15:i] >> imm8[7:0]) + FI +ENDFOR + + + MMX +
mmintrin.h
+ Shift +
+ + + + + Shift packed 32-bit integers in "a" right by "count" while shifting in sign bits, and store the results in "dst". + +FOR j := 0 to 1 + i := j*32 + IF count[63:0] > 31 + dst[i+31:i] := (a[i+31] ? 0xFFFFFFFF : 0x0) + ELSE + dst[i+31:i] := SignExtend32(a[i+31:i] >> count[63:0]) + FI +ENDFOR + + + MMX +
mmintrin.h
+ Shift +
+ + + + + Shift packed 32-bit integers in "a" right by "imm8" while shifting in sign bits, and store the results in "dst". + +FOR j := 0 to 1 + i := j*32 + IF imm8[7:0] > 31 + dst[i+31:i] := (a[i+31] ? 0xFFFFFFFF : 0x0) + ELSE + dst[i+31:i] := SignExtend32(a[i+31:i] >> imm8[7:0]) + FI +ENDFOR + + + MMX +
mmintrin.h
+ Shift +
+ + + + + Shift packed 16-bit integers in "a" right by "count" while shifting in zeros, and store the results in "dst". + +FOR j := 0 to 3 + i := j*16 + IF count[63:0] > 15 + dst[i+15:i] := 0 + ELSE + dst[i+15:i] := ZeroExtend16(a[i+15:i] >> count[63:0]) + FI +ENDFOR + + + MMX +
mmintrin.h
+ Shift +
+ + + + + Shift packed 16-bit integers in "a" right by "imm8" while shifting in zeros, and store the results in "dst". + +FOR j := 0 to 3 + i := j*16 + IF imm8[7:0] > 15 + dst[i+15:i] := 0 + ELSE + dst[i+15:i] := ZeroExtend16(a[i+15:i] >> imm8[7:0]) + FI +ENDFOR + + + MMX +
mmintrin.h
+ Shift +
+ + + + + Shift packed 32-bit integers in "a" right by "count" while shifting in zeros, and store the results in "dst". + +FOR j := 0 to 1 + i := j*32 + IF count[63:0] > 31 + dst[i+31:i] := 0 + ELSE + dst[i+31:i] := ZeroExtend32(a[i+31:i] >> count[63:0]) + FI +ENDFOR + + + MMX +
mmintrin.h
+ Shift +
+ + + + + Shift packed 32-bit integers in "a" right by "imm8" while shifting in zeros, and store the results in "dst". + +FOR j := 0 to 1 + i := j*32 + IF imm8[7:0] > 31 + dst[i+31:i] := 0 + ELSE + dst[i+31:i] := ZeroExtend32(a[i+31:i] >> imm8[7:0]) + FI +ENDFOR + + + MMX +
mmintrin.h
+ Shift +
+ + + + + Shift 64-bit integer "a" right by "count" while shifting in zeros, and store the result in "dst". + +IF count[63:0] > 63 + dst[63:0] := 0 +ELSE + dst[63:0] := ZeroExtend64(a[63:0] >> count[63:0]) +FI + + + MMX +
mmintrin.h
+ Shift +
+ + + + + Shift 64-bit integer "a" right by "imm8" while shifting in zeros, and store the result in "dst". + +IF imm8[7:0] > 63 + dst[63:0] := 0 +ELSE + dst[63:0] := ZeroExtend64(a[63:0] >> imm8[7:0]) +FI + + + MMX +
mmintrin.h
+ Shift +
+ + + + + Compute the bitwise AND of 64 bits (representing integer data) in "a" and "b", and store the result in "dst". + +dst[63:0] := (a[63:0] AND b[63:0]) + + + MMX +
mmintrin.h
+ Logical +
+ + + + + Compute the bitwise NOT of 64 bits (representing integer data) in "a" and then AND with "b", and store the result in "dst". + +dst[63:0] := ((NOT a[63:0]) AND b[63:0]) + + + MMX +
mmintrin.h
+ Logical +
+ + + + + Compute the bitwise OR of 64 bits (representing integer data) in "a" and "b", and store the result in "dst". + +dst[63:0] := (a[63:0] OR b[63:0]) + + + MMX +
mmintrin.h
+ Logical +
+ + + + + Compute the bitwise XOR of 64 bits (representing integer data) in "a" and "b", and store the result in "dst". + +dst[63:0] := (a[63:0] XOR b[63:0]) + + + MMX +
mmintrin.h
+ Logical +
+ + + + + Compute the bitwise AND of 64 bits (representing integer data) in "a" and "b", and store the result in "dst". + +dst[63:0] := (a[63:0] AND b[63:0]) + + + MMX +
mmintrin.h
+ Logical +
+ + + + + Compute the bitwise NOT of 64 bits (representing integer data) in "a" and then AND with "b", and store the result in "dst". + +dst[63:0] := ((NOT a[63:0]) AND b[63:0]) + + + MMX +
mmintrin.h
+ Logical +
+ + + + + Compute the bitwise OR of 64 bits (representing integer data) in "a" and "b", and store the result in "dst". + +dst[63:0] := (a[63:0] OR b[63:0]) + + + MMX +
mmintrin.h
+ Logical +
+ + + + + Compute the bitwise XOR of 64 bits (representing integer data) in "a" and "b", and store the result in "dst". + +dst[63:0] := (a[63:0] XOR b[63:0]) + + + MMX +
mmintrin.h
+ Logical +
+ + + + + Compare packed 8-bit integers in "a" and "b" for equality, and store the results in "dst". + +FOR j := 0 to 7 + i := j*8 + dst[i+7:i] := ( a[i+7:i] == b[i+7:i] ) ? 0xFF : 0 +ENDFOR + + + MMX +
mmintrin.h
+ Compare +
+ + + + + Compare packed 16-bit integers in "a" and "b" for equality, and store the results in "dst". + +FOR j := 0 to 3 + i := j*16 + dst[i+15:i] := ( a[i+15:i] == b[i+15:i] ) ? 0xFFFF : 0 +ENDFOR + + + MMX +
mmintrin.h
+ Compare +
+ + + + + Compare packed 32-bit integers in "a" and "b" for equality, and store the results in "dst". + +FOR j := 0 to 1 + i := j*32 + dst[i+31:i] := ( a[i+31:i] == b[i+31:i] ) ? 0xFFFFFFFF : 0 +ENDFOR + + + MMX +
mmintrin.h
+ Compare +
+ + + + + Compare packed 8-bit integers in "a" and "b" for greater-than, and store the results in "dst". + +FOR j := 0 to 7 + i := j*8 + dst[i+7:i] := ( a[i+7:i] > b[i+7:i] ) ? 0xFF : 0 +ENDFOR + + + MMX +
mmintrin.h
+ Compare +
+ + + + + Compare packed 16-bit integers in "a" and "b" for greater-than, and store the results in "dst". + +FOR j := 0 to 3 + i := j*16 + dst[i+15:i] := ( a[i+15:i] > b[i+15:i] ) ? 0xFFFF : 0 +ENDFOR + + + MMX +
mmintrin.h
+ Compare +
+ + + + + Compare packed 32-bit integers in "a" and "b" for greater-than, and store the results in "dst". + +FOR j := 0 to 1 + i := j*32 + dst[i+31:i] := ( a[i+31:i] > b[i+31:i] ) ? 0xFFFFFFFF : 0 +ENDFOR + + + MMX +
mmintrin.h
+ Compare +
+ + + + + Compare packed 8-bit integers in "a" and "b" for equality, and store the results in "dst". + +FOR j := 0 to 7 + i := j*8 + dst[i+7:i] := ( a[i+7:i] == b[i+7:i] ) ? 0xFF : 0 +ENDFOR + + + MMX +
mmintrin.h
+ Compare +
+ + + + + Compare packed 16-bit integers in "a" and "b" for equality, and store the results in "dst". + +FOR j := 0 to 3 + i := j*16 + dst[i+15:i] := ( a[i+15:i] == b[i+15:i] ) ? 0xFFFF : 0 +ENDFOR + + + MMX +
mmintrin.h
+ Compare +
+ + + + + Compare packed 32-bit integers in "a" and "b" for equality, and store the results in "dst". + +FOR j := 0 to 1 + i := j*32 + dst[i+31:i] := ( a[i+31:i] == b[i+31:i] ) ? 0xFFFFFFFF : 0 +ENDFOR + + + MMX +
mmintrin.h
+ Compare +
+ + + + + Compare packed signed 8-bit integers in "a" and "b" for greater-than, and store the results in "dst". + +FOR j := 0 to 7 + i := j*8 + dst[i+7:i] := ( a[i+7:i] > b[i+7:i] ) ? 0xFF : 0 +ENDFOR + + + MMX +
mmintrin.h
+ Compare +
+ + + + + Compare packed signed 16-bit integers in "a" and "b" for greater-than, and store the results in "dst". + +FOR j := 0 to 3 + i := j*16 + dst[i+15:i] := ( a[i+15:i] > b[i+15:i] ) ? 0xFFFF : 0 +ENDFOR + + + MMX +
mmintrin.h
+ Compare +
+ + + + + Compare packed signed 32-bit integers in "a" and "b" for greater-than, and store the results in "dst". + +FOR j := 0 to 1 + i := j*32 + dst[i+31:i] := ( a[i+31:i] > b[i+31:i] ) ? 0xFFFFFFFF : 0 +ENDFOR + + + MMX +
mmintrin.h
+ Compare +
+ + + + Return vector of type __m64 with all elements set to zero. + +dst[MAX:0] := 0 + + + MMX +
mmintrin.h
+ Set +
+ + + + + Set packed 32-bit integers in "dst" with the supplied values. + +dst[31:0] := e0 +dst[63:32] := e1 + + MMX +
mmintrin.h
+ Set +
+ + + + + + + Set packed 16-bit integers in "dst" with the supplied values. + +dst[15:0] := e0 +dst[31:16] := e1 +dst[47:32] := e2 +dst[63:48] := e3 + + MMX +
mmintrin.h
+ Set +
+ + + + + + + + + + + Set packed 8-bit integers in "dst" with the supplied values. + +dst[7:0] := e0 +dst[15:8] := e1 +dst[23:16] := e2 +dst[31:24] := e3 +dst[39:32] := e4 +dst[47:40] := e5 +dst[55:48] := e6 +dst[63:56] := e7 + + MMX +
mmintrin.h
+ Set +
+ + + + Broadcast 32-bit integer "a" to all elements of "dst". + +FOR j := 0 to 1 + i := j*32 + dst[i+31:i] := a[31:0] +ENDFOR + + MMX +
mmintrin.h
+ Set +
+ + + + Broadcast 16-bit integer "a" to all all elements of "dst". + +FOR j := 0 to 3 + i := j*16 + dst[i+15:i] := a[15:0] +ENDFOR + + MMX +
mmintrin.h
+ Set +
+ + + + Broadcast 8-bit integer "a" to all elements of "dst". + +FOR j := 0 to 7 + i := j*8 + dst[i+7:i] := a[7:0] +ENDFOR + + MMX +
mmintrin.h
+ Set +
+ + + + + Set packed 32-bit integers in "dst" with the supplied values in reverse order. + +dst[31:0] := e1 +dst[63:32] := e0 + + MMX +
mmintrin.h
+ Set +
+ + + + + + + Set packed 16-bit integers in "dst" with the supplied values in reverse order. + +dst[15:0] := e3 +dst[31:16] := e2 +dst[47:32] := e1 +dst[63:48] := e0 + + MMX +
mmintrin.h
+ Set +
+ + + + + + + + + + + Set packed 8-bit integers in "dst" with the supplied values in reverse order. + +dst[7:0] := e7 +dst[15:8] := e6 +dst[23:16] := e5 +dst[31:24] := e4 +dst[39:32] := e3 +dst[47:40] := e2 +dst[55:48] := e1 +dst[63:56] := e0 + + MMX +
mmintrin.h
+ Set +
+ + + + + + + + Arm address monitoring hardware using the address specified in "p". A store to an address within the specified address range triggers the monitoring hardware. Specify optional extensions in "extensions", and optional hints in "hints". + + MONITOR +
pmmintrin.h
+ General Support +
+ + + + + Hint to the processor that it can enter an implementation-dependent-optimized state while waiting for an event or store operation to the address range specified by MONITOR. + + MONITOR +
pmmintrin.h
+ General Support +
+ + + + + + Load 16 bits from memory, perform a byte swap operation, and store the result in "dst". + +FOR j := 0 to 1 + i := j*8 + dst[i+7:i] := MEM[ptr+15-i:ptr+8-i] +ENDFOR + + + MOVBE +
immintrin.h
+ Load +
+ + + + Load 32 bits from memory, perform a byte swap operation, and store the result in "dst". + +FOR j := 0 to 3 + i := j*8 + dst[i+7:i] := MEM[ptr+31-i:ptr+24-i] +ENDFOR + + + MOVBE +
immintrin.h
+ Load +
+ + + + Load 64 bits from memory, perform a byte swap operation, and store the result in "dst". + +FOR j := 0 to 7 + i := j*8 + dst[i+7:i] := MEM[ptr+63-i:ptr+56-i] +ENDFOR + + + MOVBE +
immintrin.h
+ Load +
+ + + + + Perform a bit swap operation of the 16 bits in "data", and store the results to memory. + +FOR j := 0 to 1 + i := j*8 + MEM[ptr+i+7:ptr+i] := data[15-i:8-i] +ENDFOR + + + MOVBE +
immintrin.h
+ Store +
+ + + + + Perform a bit swap operation of the 32 bits in "data", and store the results to memory. + +addr := MEM[ptr] +FOR j := 0 to 3 + i := j*8 + MEM[ptr+i+7:ptr+i] := data[31-i:24-i] +ENDFOR + + + MOVBE +
immintrin.h
+ Store +
+ + + + + Perform a bit swap operation of the 64 bits in "data", and store the results to memory. + +addr := MEM[ptr] +FOR j := 0 to 7 + i := j*8 + MEM[ptr+i+7:ptr+i] := data[63-i:56-i] +ENDFOR + + + MOVBE +
immintrin.h
+ Store +
+ + + + + + + Move 64-byte (512-bit) value using direct store from source memory address "src" to destination memory address "dst". + +MEM[dst+511:dst] := MEM[src+511:src] + + + MOVDIR64B +
immintrin.h
+ Store +
+ + + + + + + Store 64-bit integer from "val" into memory using direct store. + +MEM[dst+63:dst] := val[63:0] + + + MOVDIRI +
immintrin.h
+ Store +
+ + + + + Store 32-bit integer from "val" into memory using direct store. + +MEM[dst+31:dst] := val[31:0] + + + MOVDIRI +
immintrin.h
+ Store +
+ + + + + + + Make a pointer with the value of "srcmem" and bounds set to ["srcmem", "srcmem" + "size" - 1], and store the result in "dst". + dst := srcmem +dst.LB := srcmem.LB +dst.UB := srcmem + size - 1 + + + MPX +
immintrin.h
+ Miscellaneous + +
+ + + + + + Narrow the bounds for pointer "q" to the intersection of the bounds of "r" and the bounds ["q", "q" + "size" - 1], and store the result in "dst". + dst := q +IF r.LB > (q + size - 1) OR r.UB < q + dst.LB := 1 + dst.UB := 0 +ELSE + dst.LB := MAX(r.LB, q) + dst.UB := MIN(r.UB, (q + size - 1)) +FI + + MPX +
immintrin.h
+ Miscellaneous + +
+ + + + + Make a pointer with the value of "q" and bounds set to the bounds of "r" (e.g. copy the bounds of "r" to pointer "q"), and store the result in "dst". + dst := q +dst.LB := r.LB +dst.UB := r.UB + + MPX +
immintrin.h
+ Miscellaneous + +
+ + + + Make a pointer with the value of "q" and open bounds, which allow the pointer to access the entire virtual address space, and store the result in "dst". + dst := q +dst.LB := 0 +dst.UB := 0 + + MPX +
immintrin.h
+ Miscellaneous + +
+ + + + + Stores the bounds of "ptr_val" pointer in memory at address "ptr_addr". + MEM[ptr_addr].LB := ptr_val.LB +MEM[ptr_addr].UB := ptr_val.UB + + + MPX +
immintrin.h
+ Miscellaneous + +
+ + + + Checks if "q" is within its lower bound, and throws a #BR if not. + IF q < q.LB + #BR +FI + + + MPX +
immintrin.h
+ Miscellaneous + +
+ + + + Checks if "q" is within its upper bound, and throws a #BR if not. + IF q > q.UB + #BR +FI + + + + MPX +
immintrin.h
+ Miscellaneous + +
+ + + + + Checks if ["q", "q" + "size" - 1] is within the lower and upper bounds of "q" and throws a #BR if not. + IF (q + size - 1) < q.LB OR (q + size - 1) > q.UB + #BR +FI + + + + MPX +
immintrin.h
+ Miscellaneous + +
+ + + + Return the lower bound of "q". + dst := q.LB + + MPX +
immintrin.h
+ Miscellaneous + +
+ + + + Return the upper bound of "q". + dst := q.UB + + MPX +
immintrin.h
+ Miscellaneous + +
+ + + + + Set "dst" to the index of the lowest set bit in 32-bit integer "a". If no bits are set in "a" then "dst" is undefined. + +tmp := 0 +IF a == 0 + // dst is undefined +ELSE + DO WHILE ((tmp < 32) AND a[tmp] == 0) + tmp := tmp + 1 + OD +FI +dst := tmp + + +
immintrin.h
+ Bit Manipulation +
+ + + + Set "dst" to the index of the highest set bit in 32-bit integer "a". If no bits are set in "a" then "dst" is undefined. + +tmp := 31 +IF a == 0 + // dst is undefined +ELSE + DO WHILE ((tmp > 0) AND a[tmp] == 0) + tmp := tmp - 1 + OD +FI +dst := tmp + + +
immintrin.h
+ Bit Manipulation +
+ + + + + Set "index" to the index of the lowest set bit in 32-bit integer "mask". If no bits are set in "a", then "index" is undefined and "dst" is set to 0, otherwise "dst" is set to 1. + +tmp := 0 +IF a == 0 + // MEM[index+31:index] is undefined + dst := 0 +ELSE + DO WHILE ((tmp < 32) AND a[tmp] == 0) + tmp := tmp + 1 + OD + MEM[index+31:index] := tmp + dst := (tmp == 31) ? 0 : 1 +FI + + +
immintrin.h
+ Bit Manipulation +
+ + + + + Set "index" to the index of the highest set bit in 32-bit integer "mask". If no bits are set in "a", then "index" is undefined and "dst" is set to 0, otherwise "dst" is set to 1. + +tmp := 31 +IF a == 0 + // MEM[index+31:index] is undefined + dst := 0 +ELSE + DO WHILE ((tmp > 0) AND a[tmp] == 0) + tmp := tmp - 1 + OD + MEM[index+31:index] := tmp + dst := (tmp == 0) ? 0 : 1 +FI + + +
immintrin.h
+ Bit Manipulation +
+ + + + + Set "index" to the index of the lowest set bit in 32-bit integer "mask". If no bits are set in "a", then "index" is undefined and "dst" is set to 0, otherwise "dst" is set to 1. + +tmp := 0 +IF a == 0 + // MEM[index+31:index] is undefined + dst := 0 +ELSE + DO WHILE ((tmp < 64) AND a[tmp] == 0) + tmp := tmp + 1 + OD + MEM[index+31:index] := tmp + dst := (tmp == 63) ? 0 : 1 +FI + + +
immintrin.h
+ Bit Manipulation +
+ + + + + Set "index" to the index of the highest set bit in 32-bit integer "mask". If no bits are set in "a", then "index" is undefined and "dst" is set to 0, otherwise "dst" is set to 1. + +tmp := 63 +IF a == 0 + // MEM[index+31:index] is undefined + dst := 0 +ELSE + DO WHILE ((tmp > 0) AND a[tmp] == 0) + tmp := tmp - 1 + OD + MEM[index+31:index] := tmp + dst := (tmp == 0) ? 0 : 1 +FI + + +
immintrin.h
+ Bit Manipulation +
+ + + + + Return the bit at index "b" of 32-bit integer "a". + +addr := a + ZeroExtend64(b) +dst[0] := MEM[addr] + + +
immintrin.h
+ Bit Manipulation +
+ + + + + Return the bit at index "b" of 32-bit integer "a", and set that bit to its complement. + +addr := a + ZeroExtend64(b) +dst[0] := MEM[addr] +MEM[addr] := ~dst[0] + + +
immintrin.h
+ Bit Manipulation +
+ + + + + Return the bit at index "b" of 32-bit integer "a", and set that bit to zero. + +addr := a + ZeroExtend64(b) +dst[0] := MEM[addr] +MEM[addr] := 0 + + +
immintrin.h
+ Bit Manipulation +
+ + + + + Return the bit at index "b" of 32-bit integer "a", and set that bit to one. + +addr := a + ZeroExtend64(b) +dst[0] := MEM[addr] +MEM[addr] := 1 + + +
immintrin.h
+ Bit Manipulation +
+ + + + + Return the bit at index "b" of 64-bit integer "a". + +addr := a + b +dst[0] := MEM[addr] + + +
immintrin.h
+ Bit Manipulation +
+ + + + + Return the bit at index "b" of 64-bit integer "a", and set that bit to its complement. + +addr := a + b +dst[0] := MEM[addr] +MEM[addr] := ~dst[0] + + +
immintrin.h
+ Bit Manipulation +
+ + + + + Return the bit at index "b" of 64-bit integer "a", and set that bit to zero. + +addr := a + b +dst[0] := MEM[addr] +MEM[addr] := 0 + + +
immintrin.h
+ Bit Manipulation +
+ + + + + Return the bit at index "b" of 64-bit integer "a", and set that bit to one. + +addr := a + b +dst[0] := MEM[addr] +MEM[addr] := 1 + + +
immintrin.h
+ Bit Manipulation +
+ + + + Reverse the byte order of 32-bit integer "a", and store the result in "dst". This intrinsic is provided for conversion between little and big endian values. + +dst[7:0] := a[31:24] +dst[15:8] := a[23:16] +dst[23:16] := a[15:8] +dst[31:24] := a[7:0] + + +
immintrin.h
+ Bit Manipulation +
+ + + + Reverse the byte order of 64-bit integer "a", and store the result in "dst". This intrinsic is provided for conversion between little and big endian values. + +dst[7:0] := a[63:56] +dst[15:8] := a[55:48] +dst[23:16] := a[47:40] +dst[31:24] := a[39:32] +dst[39:32] := a[31:24] +dst[47:40] := a[23:16] +dst[55:48] := a[15:8] +dst[63:56] := a[7:0] + + +
immintrin.h
+ Bit Manipulation +
+ + + + Cast from type float to type unsigned __int32 without conversion. + This intrinsic is only used for compilation and does not generate any instructions, thus it has zero latency. +
immintrin.h
+ Cast +
+ + + + Cast from type double to type unsigned __int64 without conversion. + This intrinsic is only used for compilation and does not generate any instructions, thus it has zero latency. +
immintrin.h
+ Cast +
+ + + + Cast from type unsigned __int32 to type float without conversion. + This intrinsic is only used for compilation and does not generate any instructions, thus it has zero latency. +
immintrin.h
+ Cast +
+ + + + Cast from type unsigned __int64 to type double without conversion. + This intrinsic is only used for compilation and does not generate any instructions, thus it has zero latency. +
immintrin.h
+ Cast +
+ + + + + Shift the bits of unsigned long integer "a" left by the number of bits specified in "shift", rotating the most-significant bit to the least-significant bit location, and store the unsigned result in "dst". + // size := 32 or 64 +dst := a +count := shift AND (size - 1) +DO WHILE (count > 0) + tmp[0] := dst[size - 1] + dst := (dst << 1) OR tmp[0] + count := count - 1 +OD + + + +
immintrin.h
+ Shift +
+ + + + + Shift the bits of unsigned long integer "a" right by the number of bits specified in "shift", rotating the least-significant bit to the most-significant bit location, and store the unsigned result in "dst". + // size := 32 or 64 +dst := a +count := shift AND (size - 1) +DO WHILE (count > 0) + tmp[size - 1] := dst[0] + dst := (dst >> 1) OR tmp[size - 1] + count := count - 1 +OD + + +
immintrin.h
+ Shift +
+ + + + + Shift the bits of unsigned 32-bit integer "a" left by the number of bits specified in "shift", rotating the most-significant bit to the least-significant bit location, and store the unsigned result in "dst". + +dst := a +count := shift AND 31 +DO WHILE (count > 0) + tmp[0] := dst[31] + dst := (dst << 1) OR tmp[0] + count := count - 1 +OD + + +
immintrin.h
+ Shift +
+ + + + + Shift the bits of unsigned 32-bit integer "a" right by the number of bits specified in "shift", rotating the least-significant bit to the most-significant bit location, and store the unsigned result in "dst". + +dst := a +count := shift AND 31 +DO WHILE (count > 0) + tmp[31] := dst[0] + dst := (dst >> 1) OR tmp + count := count - 1 +OD + + +
immintrin.h
+ Shift +
+ + + + + Shift the bits of unsigned 16-bit integer "a" left by the number of bits specified in "shift", rotating the most-significant bit to the least-significant bit location, and store the unsigned result in "dst". + +dst := a +count := shift AND 15 +DO WHILE (count > 0) + tmp[0] := dst[15] + dst := (dst << 1) OR tmp[0] + count := count - 1 +OD + + +
immintrin.h
+ Shift +
+ + + + + Shift the bits of unsigned 16-bit integer "a" right by the number of bits specified in "shift", rotating the least-significant bit to the most-significant bit location, and store the unsigned result in "dst". + +dst := a +count := shift AND 15 +DO WHILE (count > 0) + tmp[15] := dst[0] + dst := (dst >> 1) OR tmp + count := count - 1 +OD + + +
immintrin.h
+ Shift +
+ + + + + Shift the bits of unsigned 64-bit integer "a" left by the number of bits specified in "shift", rotating the most-significant bit to the least-significant bit location, and store the unsigned result in "dst". + +dst := a +count := shift AND 63 +DO WHILE (count > 0) + tmp[0] := dst[63] + dst := (dst << 1) OR tmp[0] + count := count - 1 +OD + + +
immintrin.h
+ Shift +
+ + + + + Shift the bits of unsigned 64-bit integer "a" right by the number of bits specified in "shift", rotating the least-significant bit to the most-significant bit location, and store the unsigned result in "dst". + +dst := a +count := shift AND 63 +DO WHILE (count > 0) + tmp[63] := dst[0] + dst := (dst >> 1) OR tmp[63] + count := count - 1 +OD + + +
immintrin.h
+ Shift +
+ + + + Treat the processor-specific feature(s) specified in "a" as available. Multiple features may be OR'd together. See the valid feature flags below: + +_FEATURE_GENERIC_IA32 +_FEATURE_FPU +_FEATURE_CMOV +_FEATURE_MMX +_FEATURE_FXSAVE +_FEATURE_SSE +_FEATURE_SSE2 +_FEATURE_SSE3 +_FEATURE_SSSE3 +_FEATURE_SSE4_1 +_FEATURE_SSE4_2 +_FEATURE_MOVBE +_FEATURE_POPCNT +_FEATURE_PCLMULQDQ +_FEATURE_AES +_FEATURE_F16C +_FEATURE_AVX +_FEATURE_RDRND +_FEATURE_FMA +_FEATURE_BMI +_FEATURE_LZCNT +_FEATURE_HLE +_FEATURE_RTM +_FEATURE_AVX2 +_FEATURE_KNCNI +_FEATURE_AVX512F +_FEATURE_ADX +_FEATURE_RDSEED +_FEATURE_AVX512ER +_FEATURE_AVX512PF +_FEATURE_AVX512CD +_FEATURE_SHA +_FEATURE_MPX +_FEATURE_AVX512BW +_FEATURE_AVX512VL +_FEATURE_AVX512VBMI +_FEATURE_AVX512_4FMAPS +_FEATURE_AVX512_4VNNIW +_FEATURE_AVX512_VPOPCNTDQ +_FEATURE_AVX512_BITALG +_FEATURE_AVX512_VBMI2 +_FEATURE_GFNI +_FEATURE_VAES +_FEATURE_VPCLMULQDQ +_FEATURE_AVX512_VNNI +_FEATURE_CLWB +_FEATURE_RDPID +_FEATURE_IBT +_FEATURE_SHSTK +_FEATURE_SGX +_FEATURE_WBNOINVD +_FEATURE_PCONFIG +_FEATURE_AXV512_4VNNIB +_FEATURE_AXV512_4FMAPH +_FEATURE_AXV512_BITALG2 +_FEATURE_AXV512_VP2INTERSECT + +
immintrin.h
+ General Support +
+ + + + Dynamically query the processor to determine if the processor-specific feature(s) specified in "a" are available, and return true or false (1 or 0) if the set of features is available. Multiple features may be OR'd together. This function is limited to bitmask values in the first 'page' of the libirc cpu-id information. This intrinsic does not check the processor vendor. See the valid feature flags below: + +_FEATURE_GENERIC_IA32 +_FEATURE_FPU +_FEATURE_CMOV +_FEATURE_MMX +_FEATURE_FXSAVE +_FEATURE_SSE +_FEATURE_SSE2 +_FEATURE_SSE3 +_FEATURE_SSSE3 +_FEATURE_SSE4_1 +_FEATURE_SSE4_2 +_FEATURE_MOVBE +_FEATURE_POPCNT +_FEATURE_PCLMULQDQ +_FEATURE_AES +_FEATURE_F16C +_FEATURE_AVX +_FEATURE_RDRND +_FEATURE_FMA +_FEATURE_BMI +_FEATURE_LZCNT +_FEATURE_HLE +_FEATURE_RTM +_FEATURE_AVX2 +_FEATURE_KNCNI +_FEATURE_AVX512F +_FEATURE_ADX +_FEATURE_RDSEED +_FEATURE_AVX512ER +_FEATURE_AVX512PF +_FEATURE_AVX512CD +_FEATURE_SHA +_FEATURE_MPX +_FEATURE_AVX512BW +_FEATURE_AVX512VL +_FEATURE_AVX512VBMI +_FEATURE_AVX512_4FMAPS +_FEATURE_AVX512_4VNNIW +_FEATURE_AVX512_VPOPCNTDQ +_FEATURE_AVX512_BITALG +_FEATURE_AVX512_VBMI2 +_FEATURE_GFNI +_FEATURE_VAES +_FEATURE_VPCLMULQDQ +_FEATURE_AVX512_VNNI +_FEATURE_CLWB +_FEATURE_RDPID +_FEATURE_IBT +_FEATURE_SHSTK +_FEATURE_SGX +_FEATURE_WBNOINVD +_FEATURE_PCONFIG +_FEATURE_AXV512_4VNNIB +_FEATURE_AXV512_4FMAPH +_FEATURE_AXV512_BITALG2 +_FEATURE_AXV512_VP2INTERSECT +_FEATURE_AXV512_FP16 + +
immintrin.h
+ General Support +
+ + + + + Dynamically query the processor to determine if the processor-specific feature(s) specified in "a" are available, and return true or false (1 or 0) if the set of features is available. Multiple features may be OR'd together. This works identically to the previous variant, except it also accepts a 'page' index that permits checking features on the 2nd page of the libirc information. When provided with a '0' in the 'page' parameter, this works identically to _may_i_use_cpu_feature. This intrinsic does not check the processor vendor. See the valid feature flags on the 2nd page below: (provided with a '1' in the 'page' parameter) + +_FEATURE_CLDEMOTE +_FEATURE_MOVDIRI +_FEATURE_MOVDIR64B +_FEATURE_WAITPKG +_FEATURE_AVX512_Bf16 +_FEATURE_ENQCMD +_FEATURE_AVX_VNNI +_FEATURE_AMX_TILE +_FEATURE_AMX_INT8 +_FEATURE_AMX_BF16 +_FEATURE_KL +_FEATURE_WIDE_KL +_FEATURE_HRESET +_FEATURE_UINTR +_FEATURE_PREFETCHI +_FEATURE_AVXVNNIINT8 +_FEATURE_CMPCCXADD +_FEATURE_AVXIFMA +_FEATURE_AVXNECONVERT +_FEATURE_RAOINT +_FEATURE_AMX_FP16 +_FEATURE_AMX_COMPLEX +_FEATURE_SHA512 +_FEATURE_SM3 +_FEATURE_SM4 +_FEATURE_AVXVNNIINT16 +_FEATURE_USERMSR +_FEATURE_AVX10_1_256 +_FEATURE_AVX10_1_512 +_FEATURE_APXF +_FEATURE_MSRLIST +_FEATURE_WRMSRNS +_FEATURE_PBNDKB + +
immintrin.h
+ General Support +
+ + + + Dynamically query the processor to determine if the processor-specific feature(s) specified a series of compile-time string literals in "feature, ..." are available, and return true or false (1 or 0) if the set of features is available. These feature names are converted to a bitmask and uses the same infrastructure as _may_i_use_cpu_feature_ext to validate it. The behavior is the same as the previous variants. This intrinsic does not check the processor vendor. Supported string literals are one-to-one corresponding in the "Operation" sections of _may_i_use_cpu_feature and _may_i_use_cpu_feature_ext. Example string literals are "avx2", "bmi", "avx512fp16", "amx-int8"... + + +
immintrin.h
+ General Support +
+ + + + Read the Performance Monitor Counter (PMC) specified by "a", and store up to 64-bits in "dst". The width of performance counters is implementation specific. + dst[63:0] := ReadPMC(a) + + +
immintrin.h
+ General Support +
+ + + + + + + Add unsigned 32-bit integers "a" and "b" with unsigned 8-bit carry-in "c_in" (carry flag), and store the unsigned 32-bit result in "out", and the carry-out in "dst" (carry or overflow flag). + +tmp[32:0] := a[31:0] + b[31:0] + (c_in > 0 ? 1 : 0) +MEM[out+31:out] := tmp[31:0] +dst[0] := tmp[32] +dst[7:1] := 0 + + +
immintrin.h
+ Arithmetic +
+ + + + + + + Add unsigned 64-bit integers "a" and "b" with unsigned 8-bit carry-in "c_in" (carry flag), and store the unsigned 64-bit result in "out", and the carry-out in "dst" (carry or overflow flag). + +tmp[64:0] := a[63:0] + b[63:0] + (c_in > 0 ? 1 : 0) +MEM[out+63:out] := tmp[63:0] +dst[0] := tmp[64] +dst[7:1] := 0 + + +
immintrin.h
+ Arithmetic +
+ + + + + + + Add unsigned 8-bit borrow "c_in" (carry flag) to unsigned 32-bit integer "b", and subtract the result from unsigned 32-bit integer "a". Store the unsigned 32-bit result in "out", and the carry-out in "dst" (carry or overflow flag). + +tmp[32:0] := a[31:0] - (b[31:0] + (c_in > 0 ? 1 : 0)) +MEM[out+31:out] := tmp[31:0] +dst[0] := tmp[32] +dst[7:1] := 0 + + +
immintrin.h
+ Arithmetic +
+ + + + + + + Add unsigned 8-bit borrow "c_in" (carry flag) to unsigned 64-bit integer "b", and subtract the result from unsigned 64-bit integer "a". Store the unsigned 64-bit result in "out", and the carry-out in "dst" (carry or overflow flag). + +tmp[64:0] := a[63:0] - (b[63:0] + (c_in > 0 ? 1 : 0)) +MEM[out+63:out] := tmp[63:0] +dst[0] := tmp[64] +dst[7:1] := 0 + + +
immintrin.h
+ Arithmetic +
+ + + + Insert the 32-bit data from "a" into a Processor Trace stream via a PTW packet. The PTW packet will be inserted if tracing is currently enabled and ptwrite is currently enabled. The current IP will also be inserted via a FUP packet if FUPonPTW is enabled. + +
immintrin.h
+ Miscellaneous +
+ + + + Insert the 64-bit data from "a" into a Processor Trace stream via a PTW packet. The PTW packet will be inserted if tracing is currently enabled and ptwrite is currently enabled. The current IP will also be inserted via a FUP packet if FUPonPTW is enabled. + +
immintrin.h
+ Miscellaneous +
+ + + + + Invoke the Intel SGX enclave user (non-privilege) leaf function specified by "a", and return the error code. The "__data" array contains 3 32- or 64-bit elements that may act as input, output, or be unused, depending on the semantics of the specified leaf function; these correspond to ebx, ecx, and edx. + +
immintrin.h
+ Miscellaneous +
+ + + + + Invoke the Intel SGX enclave system (privileged) leaf function specified by "a", and return the error code. The "__data" array contains 3 32- or 64-bit elements that may act as input, output, or be unused, depending on the semantics of the specified leaf function; these correspond to ebx, ecx, and edx. + +
immintrin.h
+ Miscellaneous +
+ + + + + Invoke the Intel SGX enclave virtualized (VMM) leaf function specified by "a", and return the error code. The "__data" array contains 3 32- or 64-bit elements that may act as input, output, or be unused, depending on the semantics of the specified leaf function; these correspond to ebx, ecx, and edx. + +
immintrin.h
+ Miscellaneous +
+ + + + Write back and flush internal caches. + Initiate writing-back and flushing of external + caches. + +
immintrin.h
+ Miscellaneous +
+ + + + Convert the half-precision (16-bit) floating-point value "a" to a single-precision (32-bit) floating-point value, and store the result in "dst". + +dst[31:0] := Convert_FP16_To_FP32(a[15:0]) + +
emmintrin.h
+ Convert +
+ + + + + Convert the single-precision (32-bit) floating-point value "a" to a half-precision (16-bit) floating-point value, and store the result in "dst". + [round_note] + +dst[15:0] := Convert_FP32_To_FP16(a[31:0]) + +
emmintrin.h
+ Convert +
+ + + + + + + Perform a carry-less multiplication of two 64-bit integers, selected from "a" and "b" according to "imm8", and store the results in "dst". + +IF (imm8[0] == 0) + TEMP1 := a[63:0] +ELSE + TEMP1 := a[127:64] +FI +IF (imm8[4] == 0) + TEMP2 := b[63:0] +ELSE + TEMP2 := b[127:64] +FI +FOR i := 0 to 63 + TEMP[i] := (TEMP1[0] and TEMP2[i]) + FOR j := 1 to i + TEMP[i] := TEMP[i] XOR (TEMP1[j] AND TEMP2[i-j]) + ENDFOR + dst[i] := TEMP[i] +ENDFOR +FOR i := 64 to 127 + TEMP[i] := 0 + FOR j := (i - 63) to 63 + TEMP[i] := TEMP[i] XOR (TEMP1[j] AND TEMP2[i-j]) + ENDFOR + dst[i] := TEMP[i] +ENDFOR +dst[127] := 0 + + + PCLMULQDQ +
wmmintrin.h
+ Application-Targeted +
+ + + + + + + Invoke the PCONFIG leaf function specified by "a". The "__data" array contains 3 32- or 64-bit elements that may act as input, output, or be unused, depending on the semantics of the specified leaf function; these correspond to ebx, ecx, and edx. May return the value in eax, depending on the semantics of the specified leaf function. + + PCONFIG +
immintrin.h
+ Miscellaneous +
+ + + + + + Count the number of bits set to 1 in unsigned 32-bit integer "a", and return that count in "dst". + +dst := 0 +FOR i := 0 to 31 + IF a[i] + dst := dst + 1 + FI +ENDFOR + + + POPCNT +
immintrin.h
+ Bit Manipulation +
+ + + + Count the number of bits set to 1 in unsigned 64-bit integer "a", and return that count in "dst". + +dst := 0 +FOR i := 0 to 63 + IF a[i] + dst := dst + 1 + FI +ENDFOR + + + POPCNT +
immintrin.h
+ Bit Manipulation +
+ + + + Count the number of bits set to 1 in 32-bit integer "a", and return that count in "dst". + +dst := 0 +FOR i := 0 to 31 + IF a[i] + dst := dst + 1 + FI +ENDFOR + + + POPCNT +
immintrin.h
+ Bit Manipulation +
+ + + + Count the number of bits set to 1 in 64-bit integer "a", and return that count in "dst". + +dst := 0 +FOR i := 0 to 63 + IF a[i] + dst := dst + 1 + FI +ENDFOR + + + POPCNT +
immintrin.h
+ Bit Manipulation +
+ + + + + + Loads an instruction sequence containing the specified memory address into all level cache. + + PREFETCHI +
x86gprintrin.h
+ General Support +
+ + + + Loads an instruction sequence containing the specified memory address into all but the first-level cache. + + PREFETCHI +
x86gprintrin.h
+ General Support +
+ + + + + Fetch the line of data from memory that contains address "p" to a location in the cache hierarchy specified by the locality hint "i", which can be one of:<ul> + <li>_MM_HINT_ET0 // 7, move data using the ET0 hint. The PREFETCHW instruction will be generated.</li> + <li>_MM_HINT_T0 // 3, move data using the T0 hint. The PREFETCHT0 instruction will be generated.</li> + <li>_MM_HINT_T1 // 2, move data using the T1 hint. The PREFETCHT1 instruction will be generated.</li> + <li>_MM_HINT_T2 // 1, move data using the T2 hint. The PREFETCHT2 instruction will be generated.</li> + <li>_MM_HINT_NTA // 0, move data using the non-temporal access (NTA) hint. The PREFETCHNTA instruction will be generated.</li> + + + + + + + PRFCHW +
immintrin.h
+ General Support +
+ + + + + Atomically add a 32-bit value at memory operand "__A" and a 32-bit "__B", and store the result to the same memory location. + + +MEM[__A+31:__A] := MEM[__A+31:__A] + __B[31:0] + + + + RAO_INT +
x86gprintrin.h
+ Arithmetic +
+ + + Atomically add a 64-bit value at memory operand "__A" and a 64-bit "__B", and store the result to the same memory location. + + +MEM[__A+63:__A] := MEM[__A+63:__A] + __B[63:0] + + + + RAO_INT +
x86gprintrin.h
+ Arithmetic +
+ + + Atomically and a 32-bit value at memory operand "__A" and a 32-bit "__B", and store the result to the same memory location. + + +MEM[__A+31:__A] := MEM[__A+31:__A] AND __B[31:0] + + + + RAO_INT +
x86gprintrin.h
+ Arithmetic +
+ + + Atomically and a 64-bit value at memory operand "__A" and a 64-bit "__B", and store the result to the same memory location. + + +MEM[__A+63:__A] := MEM[__A+63:__A] AND __B[63:0] + + + + RAO_INT +
x86gprintrin.h
+ Arithmetic +
+ + + Atomically or a 32-bit value at memory operand "__A" and a 32-bit "__B", and store the result to the same memory location. + + +MEM[__A+31:__A] := MEM[__A+31:__A] OR __B[31:0] + + + + RAO_INT +
x86gprintrin.h
+ Arithmetic +
+ + + Atomically or a 64-bit value at memory operand "__A" and a 64-bit "__B", and store the result to the same memory location. + + +MEM[__A+63:__A] := MEM[__A+63:__A] OR __B[63:0] + + + + RAO_INT +
x86gprintrin.h
+ Arithmetic +
+ + + Atomically xor a 32-bit value at memory operand "__A" and a 32-bit "__B", and store the result to the same memory location. + + +MEM[__A+31:__A] := MEM[__A+31:__A] XOR __B[31:0] + + + + RAO_INT +
x86gprintrin.h
+ Arithmetic +
+ + + Atomically xor a 64-bit value at memory operand "__A" and a 64-bit "__B", and store the result to the same memory location. + + +MEM[__A+63:__A] := MEM[__A+63:__A] XOR __B[63:0] + + + + RAO_INT +
x86gprintrin.h
+ Arithmetic +
+ + + + Copy the IA32_TSC_AUX MSR (signature value) into "dst". + dst[31:0] := IA32_TSC_AUX[31:0] + + + RDPID +
immintrin.h
+ General Support +
+ + + + + + Read a hardware generated 16-bit random value and store the result in "val". Return 1 if a random value was generated, and 0 otherwise. + IF HW_RND_GEN.ready == 1 + val[15:0] := HW_RND_GEN.data + dst := 1 +ELSE + val[15:0] := 0 + dst := 0 +FI + + + RDRAND +
immintrin.h
+ Random +
+ + + + Read a hardware generated 32-bit random value and store the result in "val". Return 1 if a random value was generated, and 0 otherwise. + IF HW_RND_GEN.ready == 1 + val[31:0] := HW_RND_GEN.data + dst := 1 +ELSE + val[31:0] := 0 + dst := 0 +FI + + + RDRAND +
immintrin.h
+ Random +
+ + + + Read a hardware generated 64-bit random value and store the result in "val". Return 1 if a random value was generated, and 0 otherwise. + IF HW_RND_GEN.ready == 1 + val[63:0] := HW_RND_GEN.data + dst := 1 +ELSE + val[63:0] := 0 + dst := 0 +FI + + + RDRAND +
immintrin.h
+ Random +
+ + + + + + Read a 16-bit NIST SP800-90B and SP800-90C compliant random value and store in "val". Return 1 if a random value was generated, and 0 otherwise. + IF HW_NRND_GEN.ready == 1 + val[15:0] := HW_NRND_GEN.data + dst := 1 +ELSE + val[15:0] := 0 + dst := 0 +FI + + + RDSEED +
immintrin.h
+ Random +
+ + + + Read a 32-bit NIST SP800-90B and SP800-90C compliant random value and store in "val". Return 1 if a random value was generated, and 0 otherwise. + IF HW_NRND_GEN.ready == 1 + val[31:0] := HW_NRND_GEN.data + dst := 1 +ELSE + val[31:0] := 0 + dst := 0 +FI + + + RDSEED +
immintrin.h
+ Random +
+ + + + Read a 64-bit NIST SP800-90B and SP800-90C compliant random value and store in "val". Return 1 if a random value was generated, and 0 otherwise. + IF HW_NRND_GEN.ready == 1 + val[63:0] := HW_NRND_GEN.data + dst := 1 +ELSE + val[63:0] := 0 + dst := 0 +FI + + + RDSEED +
immintrin.h
+ Random +
+ + + + + + Copy the current 64-bit value of the processor's time-stamp counter into "dst", and store the IA32_TSC_AUX MSR (signature value) into memory at "mem_addr". + dst[63:0] := TimeStampCounter +MEM[mem_addr+31:mem_addr] := IA32_TSC_AUX[31:0] + + + RDTSCP +
immintrin.h
+ General Support +
+ + + + + + Force an RTM abort. The EAX register is updated to reflect an XABORT instruction caused the abort, and the "imm8" parameter will be provided in bits [31:24] of EAX. + Following an RTM abort, the logical processor resumes execution at the fallback address computed through the outermost XBEGIN instruction. + IF RTM_ACTIVE == 0 + // nop +ELSE + // restore architectural register state + // discard memory updates performed in transaction + // update EAX with status and imm8 value + eax[31:24] := imm8[7:0] + RTM_NEST_COUNT := 0 + RTM_ACTIVE := 0 + IF _64_BIT_MODE + RIP := fallbackRIP + ELSE + EIP := fallbackEIP + FI +FI + + + RTM +
immintrin.h
+ General Support +
+ + + + Specify the start of an RTM code region. + If the logical processor was not already in transactional execution, then this call causes the logical processor to transition into transactional execution. + On an RTM abort, the logical processor discards all architectural register and memory updates performed during the RTM execution, restores architectural state, and starts execution beginning at the fallback address computed from the outermost XBEGIN instruction. Return status of ~0 (0xFFFF) if continuing inside transaction; all other codes are aborts. + IF RTM_NEST_COUNT < MAX_RTM_NEST_COUNT + RTM_NEST_COUNT := RTM_NEST_COUNT + 1 + IF RTM_NEST_COUNT == 1 + IF _64_BIT_MODE + fallbackRIP := RIP + ELSE IF _32_BIT_MODE + fallbackEIP := EIP + FI + + RTM_ACTIVE := 1 + // enter RTM execution, record register state, start tracking memory state + FI +ELSE + // RTM abort (see _xabort) +FI + + + RTM +
immintrin.h
+ General Support +
+ + + + Specify the end of an RTM code region. + If this corresponds to the outermost scope, the logical processor will attempt to commit the logical processor state atomically. + If the commit fails, the logical processor will perform an RTM abort. + IF RTM_ACTIVE == 1 + RTM_NEST_COUNT := RTM_NEST_COUNT - 1 + IF RTM_NEST_COUNT == 0 + // try to commit transaction + IF FAIL_TO_COMMIT_TRANSACTION + // RTM abort (see _xabort) + ELSE + RTM_ACTIVE := 0 + FI + FI +FI + + + RTM +
immintrin.h
+ General Support +
+ + + + Query the transactional execution status, return 1 if inside a transactionally executing RTM or HLE region, and return 0 otherwise. + IF (RTM_ACTIVE == 1 OR HLE_ACTIVE == 1) + dst := 1 +ELSE + dst := 0 +FI + + + RTM +
immintrin.h
+ General Support +
+ + + + + Serialize instruction execution, ensuring all modifications to flags, registers, and memory by previous instructions are completed before the next instruction is fetched. + + SERIALIZE +
immintrin.h
+ General Support +
+ + + + + + + Perform an intermediate calculation for the next four SHA1 message values (unsigned 32-bit integers) using previous message values from "a" and "b", and store the result in "dst". + +W0 := a[127:96] +W1 := a[95:64] +W2 := a[63:32] +W3 := a[31:0] +W4 := b[127:96] +W5 := b[95:64] +dst[127:96] := W2 XOR W0 +dst[95:64] := W3 XOR W1 +dst[63:32] := W4 XOR W2 +dst[31:0] := W5 XOR W3 + + + SHA +
immintrin.h
+ Cryptography +
+ + + + + Perform the final calculation for the next four SHA1 message values (unsigned 32-bit integers) using the intermediate result in "a" and the previous message values in "b", and store the result in "dst". + +W13 := b[95:64] +W14 := b[63:32] +W15 := b[31:0] +W16 := (a[127:96] XOR W13) <<< 1 +W17 := (a[95:64] XOR W14) <<< 1 +W18 := (a[63:32] XOR W15) <<< 1 +W19 := (a[31:0] XOR W16) <<< 1 +dst[127:96] := W16 +dst[95:64] := W17 +dst[63:32] := W18 +dst[31:0] := W19 + + + SHA +
immintrin.h
+ Cryptography +
+ + + + + Calculate SHA1 state variable E after four rounds of operation from the current SHA1 state variable "a", add that value to the scheduled values (unsigned 32-bit integers) in "b", and store the result in "dst". + +tmp := (a[127:96] <<< 30) +dst[127:96] := b[127:96] + tmp +dst[95:64] := b[95:64] +dst[63:32] := b[63:32] +dst[31:0] := b[31:0] + + + SHA +
immintrin.h
+ Cryptography +
+ + + + + + Perform four rounds of SHA1 operation using an initial SHA1 state (A,B,C,D) from "a" and some pre-computed sum of the next 4 round message values (unsigned 32-bit integers), and state variable E from "b", and store the updated SHA1 state (A,B,C,D) in "dst". "func" contains the logic functions and round constants. + IF (func[1:0] == 0) + f := f0() + K := K0 +ELSE IF (func[1:0] == 1) + f := f1() + K := K1 +ELSE IF (func[1:0] == 2) + f := f2() + K := K2 +ELSE IF (func[1:0] == 3) + f := f3() + K := K3 +FI +A := a[127:96] +B := a[95:64] +C := a[63:32] +D := a[31:0] +W[0] := b[127:96] +W[1] := b[95:64] +W[2] := b[63:32] +W[3] := b[31:0] +A[1] := f(B, C, D) + (A <<< 5) + W[0] + K +B[1] := A +C[1] := B <<< 30 +D[1] := C +E[1] := D +FOR i := 1 to 3 + A[i+1] := f(B[i], C[i], D[i]) + (A[i] <<< 5) + W[i] + E[i] + K + B[i+1] := A[i] + C[i+1] := B[i] <<< 30 + D[i+1] := C[i] + E[i+1] := D[i] +ENDFOR +dst[127:96] := A[4] +dst[95:64] := B[4] +dst[63:32] := C[4] +dst[31:0] := D[4] + + + SHA +
immintrin.h
+ Cryptography +
+ + + + + Perform an intermediate calculation for the next four SHA256 message values (unsigned 32-bit integers) using previous message values from "a" and "b", and store the result in "dst". + W4 := b[31:0] +W3 := a[127:96] +W2 := a[95:64] +W1 := a[63:32] +W0 := a[31:0] +dst[127:96] := W3 + sigma0(W4) +dst[95:64] := W2 + sigma0(W3) +dst[63:32] := W1 + sigma0(W2) +dst[31:0] := W0 + sigma0(W1) + + + SHA +
immintrin.h
+ Cryptography +
+ + + + + Perform the final calculation for the next four SHA256 message values (unsigned 32-bit integers) using previous message values from "a" and "b", and store the result in "dst"." + W14 := b[95:64] +W15 := b[127:96] +W16 := a[31:0] + sigma1(W14) +W17 := a[63:32] + sigma1(W15) +W18 := a[95:64] + sigma1(W16) +W19 := a[127:96] + sigma1(W17) +dst[127:96] := W19 +dst[95:64] := W18 +dst[63:32] := W17 +dst[31:0] := W16 + + + SHA +
immintrin.h
+ Cryptography +
+ + + + + + Perform 2 rounds of SHA256 operation using an initial SHA256 state (C,D,G,H) from "a", an initial SHA256 state (A,B,E,F) from "b", and a pre-computed sum of the next 2 round message values (unsigned 32-bit integers) and the corresponding round constants from "k", and store the updated SHA256 state (A,B,E,F) in "dst". + A[0] := b[127:96] +B[0] := b[95:64] +C[0] := a[127:96] +D[0] := a[95:64] +E[0] := b[63:32] +F[0] := b[31:0] +G[0] := a[63:32] +H[0] := a[31:0] +W_K[0] := k[31:0] +W_K[1] := k[63:32] +FOR i := 0 to 1 + A[i+1] := Ch(E[i], F[i], G[i]) + sum1(E[i]) + W_K[i] + H[i] + Maj(A[i], B[i], C[i]) + sum0(A[i]) + B[i+1] := A[i] + C[i+1] := B[i] + D[i+1] := C[i] + E[i+1] := Ch(E[i], F[i], G[i]) + sum1(E[i]) + W_K[i] + H[i] + D[i] + F[i+1] := E[i] + G[i+1] := F[i] + H[i+1] := G[i] +ENDFOR +dst[127:96] := A[2] +dst[95:64] := B[2] +dst[63:32] := E[2] +dst[31:0] := F[2] + + + SHA +
immintrin.h
+ Cryptography +
+ + + + + This intrinisc is one of the two SHA512 message scheduling instructions. The intrinsic performs an intermediate calculation for the next four SHA512 message qwords. The calculated results are stored in "dst". + + +DEFINE ROR64(qword, n) { + count := n % 64 + dest := (qword >> count) | (qword << (64 - count)) + RETURN dest +} +DEFINE SHR64(qword, n) { + RETURN qword >> n +} +DEFINE s0(qword) { + RETURN ROR64(qword,1) ^ ROR64(qword, 8) ^ SHR64(qword, 7) +} +W.qword[4] := __B.qword[0] +W.qword[3] := __A.qword[3] +W.qword[2] := __A.qword[2] +W.qword[1] := __A.qword[1] +W.qword[0] := __A.qword[0] +dst.qword[3] := W.qword[3] + s0(W.qword[4]) +dst.qword[2] := W.qword[2] + s0(W.qword[3]) +dst.qword[1] := W.qword[1] + s0(W.qword[2]) +dst.qword[0] := W.qword[0] + s0(W.qword[1]) + + + + SHA512 + AVX +
immintrin.h
+ Cryptography +
+ + + This intrinisc is one of the two SHA512 message scheduling instructions. The intrinsic performs the final calculation for the next four SHA512 message qwords. The calculated results are stored in "dst". + + +DEFINE ROR64(qword, n) { + count := n % 64 + dest := (qword >> count) | (qword << (64 - count)) + RETURN dest +} +DEFINE SHR64(qword, n) { + RETURN qword >> n +} +DEFINE s1(qword) { + RETURN ROR64(qword,19) ^ ROR64(qword, 61) ^ SHR64(qword, 6) +} +W.qword[14] := __B.qword[2] +W.qword[15] := __B.qword[3] +W.qword[16] := __A.qword[0] + s1(W.qword[14]) +W.qword[17] := __A.qword[1] + s1(W.qword[15]) +W.qword[18] := __A.qword[2] + s1(W.qword[16]) +W.qword[19] := __A.qword[3] + s1(W.qword[17]) +dst.qword[3] := W.qword[19] +dst.qword[2] := W.qword[18] +dst.qword[1] := W.qword[17] +dst.qword[0] := W.qword[16] + + + + SHA512 + AVX +
immintrin.h
+ Cryptography +
+ + + This intrinisc performs two rounds of SHA512 operation using initial SHA512 state (C,D,G,H) from "__A", an initial SHA512 state (A,B,E,F) from "__B", and a pre-computed sum of the next two round message qwords and the corresponding round constants from "__C" (only the two lower qwords of the third operand). The updated SHA512 state (A,B,E,F) is written to "dst", and "dst" can be used as the updated state (C,D,G,H) in later rounds. + + +DEFINE ROR64(qword, n) { + count := n % 64 + dest := (qword >> count) | (qword << (64 - count)) + RETURN dest +} +DEFINE SHR64(qword, n) { + RETURN qword >> n +} +DEFINE cap_sigma0(qword) { + RETURN ROR64(qword, 28) ^ ROR64(qword, 34) ^ ROR64(qword, 39) +} +DEFINE cap_sigma1(qword) { + RETURN ROR64(qword, 14) ^ ROR64(qword, 18) ^ ROR64(qword, 41) +} +DEFINE MAJ(a,b,c) { + RETURN (a & b) ^ (a & c) ^ (b & c) +} +DEFINE CH(a,b,c) { + RETURN (a & b) ^ (c & ~a) +} +A.qword[0] := __B.qword[3] +B.qword[0] := __B.qword[2] +C.qword[0] := __A.qword[3] +D.qword[0] := __A.qword[2] +E.qword[0] := __B.qword[1] +F.qword[0] := __B.qword[0] +G.qword[0] := __A.qword[1] +H.qword[0] := __A.qword[0] +WK.qword[0]:= __C.qword[0] +WK.qword[1]:= __C.qword[1] +FOR i := 0 to 1 + A.qword[i+1] := CH(E.qword[i], F.qword[i], G.qword[i]) + cap_sigma1(E.qword[i]) + WK.qword[i] + H.qword[i] + MAJ(A.qword[i], B.qword[i], C.qword[i]) + cap_sigma0(A.qword[i]) + B.qword[i+1] := A.qword[i] + C.qword[i+1] := B.qword[i] + D.qword[i+1] := C.qword[i] + E.qword[i+1] := CH(E.qword[i], F.qword[i], G.qword[i]) + cap_sigma1(E.qword[i]) + WK.qword[i] + H.qword[i] + D.qword[i] + F.qword[i+1] := E.qword[i] + G.qword[i+1] := F.qword[i] + H.qword[i+1] := G.qword[i] +ENDFOR +dst.qword[3] := A.qword[2] +dst.qword[2] := B.qword[2] +dst.qword[1] := E.qword[2] +dst.qword[0] := F.qword[2] + + + + + SHA512 + AVX +
immintrin.h
+ Cryptography +
+ + + The VSM3MSG1 intrinsic is one of the two SM3 message scheduling intrinsics. The intrinsic performs an initial calculation for the next four SM3 message words. The calculated results are stored in "dst". + + +DEFINE ROL32(dword, n) { + count := n % 32 + dest := (dword << count) | (dword >> (32 - count)) + RETURN dest +} +DEFINE P1(x) { + RETURN x ^ ROL32(x, 15) ^ ROL32(x, 23) +} +W.dword[0] := __C.dword[0] +W.dword[1] := __C.dword[1] +W.dword[2] := __C.dword[2] +W.dword[3] := __C.dword[3] +W.dword[7] := __A.dword[0] +W.dword[8] := __A.dword[1] +W.dword[9] := __A.dword[2] +W.dword[10] := __A.dword[3] +W.dword[13] := __B.dword[0] +W.dword[14] := __B.dword[1] +W.dword[15] := __B.dword[2] +TMP0 := W.dword[7] ^ W.dword[0] ^ ROL32(W.dword[13], 15) +TMP1 := W.dword[8] ^ W.dword[1] ^ ROL32(W.dword[14], 15) +TMP2 := W.dword[9] ^ W.dword[2] ^ ROL32(W.dword[15], 15) +TMP3 := W.dword[10] ^ W.dword[3] +dst.dword[0] := P1(TMP0) +dst.dword[1] := P1(TMP1) +dst.dword[2] := P1(TMP2) +dst.dword[3] := P1(TMP3) + + + + + SM3 + AVX +
immintrin.h
+ Cryptography +
+ + + The VSM3MSG2 intrinsic is one of the two SM3 message scheduling intrinsics. The intrinsic performs the final calculation for the next four SM3 message words. The calculated results are stored in "dst". + + +DEFINE ROL32(dword, n) { + count := n % 32 + dest := (dword << count) | (dword >> (32-count)) + RETURN dest +} +WTMP.dword[0] := __A.dword[0] +WTMP.dword[1] := __A.dword[1] +WTMP.dword[2] := __A.dword[2] +WTMP.dword[3] := __A.dword[3] +W.dword[3] := __B.dword[0] +W.dword[4] := __B.dword[1] +W.dword[5] := __B.dword[2] +W.dword[6] := __B.dword[3] +W.dword[10] := __C.dword[0] +W.dword[11] := __C.dword[1] +W.dword[12] := __C.dword[2] +W.dword[13] := __C.dword[3] +W.dword[16] := ROL32(W.dword[3], 7) ^ W.dword[10] ^ WTMP.dword[0] +W.dword[17] := ROL32(W.dword[4], 7) ^ W.dword[11] ^ WTMP.dword[1] +W.dword[18] := ROL32(W.dword[5], 7) ^ W.dword[12] ^ WTMP.dword[2] +W.dword[19] := ROL32(W.dword[6], 7) ^ W.dword[13] ^ WTMP.dword[3] +W.dword[19] := W.dword[19] ^ ROL32(W.dword[16], 6) ^ ROL32(W.dword[16], 15) ^ ROL32(W.dword[16], 30) +dst.dword[0] := W.dword[16] +dst.dword[1] := W.dword[17] +dst.dword[2] := W.dword[18] +dst.dword[3] := W.dword[19] + + + + + SM3 + AVX +
immintrin.h
+ Cryptography +
+ + + The intrinsic performs two rounds of SM3 operation using initial SM3 state (C, D, G, H) from "__A", an initial SM3 states (A, B, E, F) from "__B" and a pre-computed words from the "__C". "__A" with initial SM3 state of (C, D, G, H) assumes input of non-rotated left variables from previous state. The updated SM3 state (A, B, E, F) is written to "__A". The "imm8" should contain the even round number for the first of the two rounds computed by this instruction. The computation masks the "imm8" value by ANDing it with 0x3E so that only even round numbers from 0 through 62 are used for this operation. The calculated results are stored in "dst". + + +DEFINE ROL32(dword, n) { + count := n % 32 + dest := (dword << count) | (dword >> (32-count)) + RETURN dest +} +DEFINE P0(x) { + RETURN x ^ ROL32(x, 9) ^ ROL32(x, 17) +} +DEFINE FF(x, y, z, round) { + IF round < 16 + RETURN (x ^ y ^ z) + ELSE + RETURN (x & y) | (x & z) | (y & z) + FI +} +DEFINE GG(x, y, z, round){ + IF round < 16 + RETURN (x ^ y ^ z) + ELSE + RETURN (x & y) | (~x & z) + FI +} +A.dword[0] := __B.dword[3] +B.dword[0] := __B.dword[2] +C.dword[0] := __A.dword[3] +D.dword[0] := __A.dword[2] +E.dword[0] := __B.dword[1] +F.dword[0] := __B.dword[0] +G.dword[0] := __A.dword[1] +H.dword[0] := __A.dword[0] +W.dword[0] := __C.dword[0] +W.dword[1] := __C.dword[1] +W.dword[4] := __C.dword[2] +W.dword[5] := __C.dword[3] +C.dword[0] := ROL32(C.dword[0], 9) +D.dword[0] := ROL32(D.dword[0], 9) +G.dword[0] := ROL32(G.dword[0], 19) +H.dword[0] := ROL32(H.dword[0], 19) +ROUND := imm8 & 0x3E +IF ROUND < 16 + CONST.dword[0] := 0x79CC4519 +ELSE + CONST.dword[0] := 0x7A879D8A +FI +CONST.dword[0] := ROL32(CONST.dword[0], ROUND) +FOR i:= 0 to 1 + temp.dword[0] := ROL32(A.dword[i], 12) + E.dword[i] + CONST.dword[0] + S1.dword[0] := ROL32(temp.dword[0], 7) + S2.dword[0] := S1.dword[0] ^ ROL32(A.dword[i], 12) + T1.dword[0] := FF(A.dword[i], B.dword[i], C.dword[i], ROUND) + D.dword[i] + S2.dword[0] + (W.dword[i] ^ W.dword[i+4]) + T2.dword[0] := GG(E.dword[i], F.dword[i], G.dword[i], ROUND) + H.dword[i] + S1.dword[0] + W.dword[i] + D.dword[i+1] := C.dword[i] + C.dword[i+1] := ROL32(B.dword[i], 9) + B.dword[i+1] := A.dword[i] + A.dword[i+1] := T1.dword[0] + H.dword[i+1] := G.dword[i] + G.dword[i+1] := ROL32(F.dword[i], 19) + F.dword[i+1] := E.dword[i] + E.dword[i+1] := P0(T2.dword[0]) + CONST.dword[0] := ROL32(CONST.dword[0], 1) +ENDFOR +dst.dword[3] := A.dword[2] +dst.dword[2] := B.dword[2] +dst.dword[1] := E.dword[2] +dst.dword[0] := F.dword[2] + + + + + + SM3 + AVX +
immintrin.h
+ Cryptography +
+ + + This intrinsic performs four rounds of SM4 key expansion. The intrinsic operates on independent 128-bit lanes. The calculated results are stored in "dst". + + +BYTE sbox[256] = { +0xD6, 0x90, 0xE9, 0xFE, 0xCC, 0xE1, 0x3D, 0xB7, 0x16, 0xB6, 0x14, 0xC2, 0x28, 0xFB, 0x2C, 0x05, +0x2B, 0x67, 0x9A, 0x76, 0x2A, 0xBE, 0x04, 0xC3, 0xAA, 0x44, 0x13, 0x26, 0x49, 0x86, 0x06, 0x99, +0x9C, 0x42, 0x50, 0xF4, 0x91, 0xEF, 0x98, 0x7A, 0x33, 0x54, 0x0B, 0x43, 0xED, 0xCF, 0xAC, 0x62, +0xE4, 0xB3, 0x1C, 0xA9, 0xC9, 0x08, 0xE8, 0x95, 0x80, 0xDF, 0x94, 0xFA, 0x75, 0x8F, 0x3F, 0xA6, +0x47, 0x07, 0xA7, 0xFC, 0xF3, 0x73, 0x17, 0xBA, 0x83, 0x59, 0x3C, 0x19, 0xE6, 0x85, 0x4F, 0xA8, +0x68, 0x6B, 0x81, 0xB2, 0x71, 0x64, 0xDA, 0x8B, 0xF8, 0xEB, 0x0F, 0x4B, 0x70, 0x56, 0x9D, 0x35, +0x1E, 0x24, 0x0E, 0x5E, 0x63, 0x58, 0xD1, 0xA2, 0x25, 0x22, 0x7C, 0x3B, 0x01, 0x21, 0x78, 0x87, +0xD4, 0x00, 0x46, 0x57, 0x9F, 0xD3, 0x27, 0x52, 0x4C, 0x36, 0x02, 0xE7, 0xA0, 0xC4, 0xC8, 0x9E, +0xEA, 0xBF, 0x8A, 0xD2, 0x40, 0xC7, 0x38, 0xB5, 0xA3, 0xF7, 0xF2, 0xCE, 0xF9, 0x61, 0x15, 0xA1, +0xE0, 0xAE, 0x5D, 0xA4, 0x9B, 0x34, 0x1A, 0x55, 0xAD, 0x93, 0x32, 0x30, 0xF5, 0x8C, 0xB1, 0xE3, +0x1D, 0xF6, 0xE2, 0x2E, 0x82, 0x66, 0xCA, 0x60, 0xC0, 0x29, 0x23, 0xAB, 0x0D, 0x53, 0x4E, 0x6F, +0xD5, 0xDB, 0x37, 0x45, 0xDE, 0xFD, 0x8E, 0x2F, 0x03, 0xFF, 0x6A, 0x72, 0x6D, 0x6C, 0x5B, 0x51, +0x8D, 0x1B, 0xAF, 0x92, 0xBB, 0xDD, 0xBC, 0x7F, 0x11, 0xD9, 0x5C, 0x41, 0x1F, 0x10, 0x5A, 0xD8, +0x0A, 0xC1, 0x31, 0x88, 0xA5, 0xCD, 0x7B, 0xBD, 0x2D, 0x74, 0xD0, 0x12, 0xB8, 0xE5, 0xB4, 0xB0, +0x89, 0x69, 0x97, 0x4A, 0x0C, 0x96, 0x77, 0x7E, 0x65, 0xB9, 0xF1, 0x09, 0xC5, 0x6E, 0xC6, 0x84, +0x18, 0xF0, 0x7D, 0xEC, 0x3A, 0xDC, 0x4D, 0x20, 0x79, 0xEE, 0x5F, 0x3E, 0xD7, 0xCB, 0x39, 0x48 +} +DEFINE ROL32(dword, n) { + count := n % 32 + dest := (dword << count) | (dword >> (32-count)) + RETURN dest +} +DEFINE SBOX_BYTE(dword, i) { + RETURN sbox[dword.byte[i]] +} +DEFINE lower_t(dword) { + tmp.byte[0] := SBOX_BYTE(dword, 0) + tmp.byte[1] := SBOX_BYTE(dword, 1) + tmp.byte[2] := SBOX_BYTE(dword, 2) + tmp.byte[3] := SBOX_BYTE(dword, 3) + RETURN tmp +} +DEFINE L_KEY(dword) { + RETURN dword ^ ROL32(dword, 13) ^ ROL32(dword, 23) +} +DEFINE T_KEY(dword) { + RETURN L_KEY(lower_t(dword)) +} +DEFINE F_KEY(X0, X1, X2, X3, round_key) { + RETURN X0 ^ T_KEY(X1 ^ X2 ^ X3 ^ round_key) +} +FOR i:= 0 to 1 + P.dword[0] := __A.dword[4*i] + P.dword[1] := __A.dword[4*i+1] + P.dword[2] := __A.dword[4*i+2] + P.dword[3] := __A.dword[4*i+3] + C.dword[0] := F_KEY(P.dword[0], P.dword[1], P.dword[2], P.dword[3], __B.dword[4*i]) + C.dword[1] := F_KEY(P.dword[1], P.dword[2], P.dword[3], C.dword[0], __B.dword[4*i+1]) + C.dword[2] := F_KEY(P.dword[2], P.dword[3], C.dword[0], C.dword[1], __B.dword[4*i+2]) + C.dword[3] := F_KEY(P.dword[3], C.dword[0], C.dword[1], C.dword[2], __B.dword[4*i+3]) + dst.dword[4*i] := C.dword[0] + dst.dword[4*i+1] := C.dword[1] + dst.dword[4*i+2] := C.dword[2] + dst.dword[4*i+3] := C.dword[3] +ENDFOR +dst[MAX:256] := 0 + + + + SM4 + AVX +
immintrin.h
+ Cryptography +
+ + + This intrinisc performs four rounds of SM4 encryption. The intrinisc operates on independent 128-bit lanes. The calculated results are stored in "dst". + + BYTE sbox[256] = { +0xD6, 0x90, 0xE9, 0xFE, 0xCC, 0xE1, 0x3D, 0xB7, 0x16, 0xB6, 0x14, 0xC2, 0x28, 0xFB, 0x2C, 0x05, +0x2B, 0x67, 0x9A, 0x76, 0x2A, 0xBE, 0x04, 0xC3, 0xAA, 0x44, 0x13, 0x26, 0x49, 0x86, 0x06, 0x99, +0x9C, 0x42, 0x50, 0xF4, 0x91, 0xEF, 0x98, 0x7A, 0x33, 0x54, 0x0B, 0x43, 0xED, 0xCF, 0xAC, 0x62, +0xE4, 0xB3, 0x1C, 0xA9, 0xC9, 0x08, 0xE8, 0x95, 0x80, 0xDF, 0x94, 0xFA, 0x75, 0x8F, 0x3F, 0xA6, +0x47, 0x07, 0xA7, 0xFC, 0xF3, 0x73, 0x17, 0xBA, 0x83, 0x59, 0x3C, 0x19, 0xE6, 0x85, 0x4F, 0xA8, +0x68, 0x6B, 0x81, 0xB2, 0x71, 0x64, 0xDA, 0x8B, 0xF8, 0xEB, 0x0F, 0x4B, 0x70, 0x56, 0x9D, 0x35, +0x1E, 0x24, 0x0E, 0x5E, 0x63, 0x58, 0xD1, 0xA2, 0x25, 0x22, 0x7C, 0x3B, 0x01, 0x21, 0x78, 0x87, +0xD4, 0x00, 0x46, 0x57, 0x9F, 0xD3, 0x27, 0x52, 0x4C, 0x36, 0x02, 0xE7, 0xA0, 0xC4, 0xC8, 0x9E, +0xEA, 0xBF, 0x8A, 0xD2, 0x40, 0xC7, 0x38, 0xB5, 0xA3, 0xF7, 0xF2, 0xCE, 0xF9, 0x61, 0x15, 0xA1, +0xE0, 0xAE, 0x5D, 0xA4, 0x9B, 0x34, 0x1A, 0x55, 0xAD, 0x93, 0x32, 0x30, 0xF5, 0x8C, 0xB1, 0xE3, +0x1D, 0xF6, 0xE2, 0x2E, 0x82, 0x66, 0xCA, 0x60, 0xC0, 0x29, 0x23, 0xAB, 0x0D, 0x53, 0x4E, 0x6F, +0xD5, 0xDB, 0x37, 0x45, 0xDE, 0xFD, 0x8E, 0x2F, 0x03, 0xFF, 0x6A, 0x72, 0x6D, 0x6C, 0x5B, 0x51, +0x8D, 0x1B, 0xAF, 0x92, 0xBB, 0xDD, 0xBC, 0x7F, 0x11, 0xD9, 0x5C, 0x41, 0x1F, 0x10, 0x5A, 0xD8, +0x0A, 0xC1, 0x31, 0x88, 0xA5, 0xCD, 0x7B, 0xBD, 0x2D, 0x74, 0xD0, 0x12, 0xB8, 0xE5, 0xB4, 0xB0, +0x89, 0x69, 0x97, 0x4A, 0x0C, 0x96, 0x77, 0x7E, 0x65, 0xB9, 0xF1, 0x09, 0xC5, 0x6E, 0xC6, 0x84, +0x18, 0xF0, 0x7D, 0xEC, 0x3A, 0xDC, 0x4D, 0x20, 0x79, 0xEE, 0x5F, 0x3E, 0xD7, 0xCB, 0x39, 0x48 +} +DEFINE ROL32(dword, n) { + count := n % 32 + dest := (dword << count) | (dword >> (32-count)) + RETURN dest +} +DEFINE SBOX_BYTE(dword, i) { + RETURN sbox[dword.byte[i]] +} +DEFINE lower_t(dword) { + tmp.byte[0] := SBOX_BYTE(dword, 0) + tmp.byte[1] := SBOX_BYTE(dword, 1) + tmp.byte[2] := SBOX_BYTE(dword, 2) + tmp.byte[3] := SBOX_BYTE(dword, 3) + RETURN tmp +} +DEFINE L_RND(dword) { + tmp := dword + tmp := tmp ^ ROL32(dword, 2) + tmp := tmp ^ ROL32(dword, 10) + tmp := tmp ^ ROL32(dword, 18) + tmp := tmp ^ ROL32(dword, 24) + RETURN tmp +} +DEFINE T_RND(dword) { + RETURN L_RND(lower_t(dword)) +} +DEFINE F_RND(X0, X1, X2, X3, round_key) { + RETURN X0 ^ T_RND(X1 ^ X2 ^ X3 ^ round_key) +} +FOR i:= 0 to 1 + P.dword[0] := __A.dword[4*i] + P.dword[1] := __A.dword[4*i+1] + P.dword[2] := __A.dword[4*i+2] + P.dword[3] := __A.dword[4*i+3] + C.dword[0] := F_RND(P.dword[0], P.dword[1], P.dword[2], P.dword[3], __B.dword[4*i]) + C.dword[1] := F_RND(P.dword[1], P.dword[2], P.dword[3], C.dword[0], __B.dword[4*i+1]) + C.dword[2] := F_RND(P.dword[2], P.dword[3], C.dword[0], C.dword[1], __B.dword[4*i+2]) + C.dword[3] := F_RND(P.dword[3], C.dword[0], C.dword[1], C.dword[2], __B.dword[4*i+3]) + dst.dword[4*i] := C.dword[0] + dst.dword[4*i+1] := C.dword[1] + dst.dword[4*i+2] := C.dword[2] + dst.dword[4*i+3] := C.dword[3] +ENDFOR +dst[MAX:256] := 0 + + + + SM4 + AVX +
immintrin.h
+ Cryptography +
+ + + This intrinsic performs four rounds of SM4 key expansion. The intrinsic operates on independent 128-bit lanes. The calculated results are stored in "dst". + + +BYTE sbox[256] = { +0xD6, 0x90, 0xE9, 0xFE, 0xCC, 0xE1, 0x3D, 0xB7, 0x16, 0xB6, 0x14, 0xC2, 0x28, 0xFB, 0x2C, 0x05, +0x2B, 0x67, 0x9A, 0x76, 0x2A, 0xBE, 0x04, 0xC3, 0xAA, 0x44, 0x13, 0x26, 0x49, 0x86, 0x06, 0x99, +0x9C, 0x42, 0x50, 0xF4, 0x91, 0xEF, 0x98, 0x7A, 0x33, 0x54, 0x0B, 0x43, 0xED, 0xCF, 0xAC, 0x62, +0xE4, 0xB3, 0x1C, 0xA9, 0xC9, 0x08, 0xE8, 0x95, 0x80, 0xDF, 0x94, 0xFA, 0x75, 0x8F, 0x3F, 0xA6, +0x47, 0x07, 0xA7, 0xFC, 0xF3, 0x73, 0x17, 0xBA, 0x83, 0x59, 0x3C, 0x19, 0xE6, 0x85, 0x4F, 0xA8, +0x68, 0x6B, 0x81, 0xB2, 0x71, 0x64, 0xDA, 0x8B, 0xF8, 0xEB, 0x0F, 0x4B, 0x70, 0x56, 0x9D, 0x35, +0x1E, 0x24, 0x0E, 0x5E, 0x63, 0x58, 0xD1, 0xA2, 0x25, 0x22, 0x7C, 0x3B, 0x01, 0x21, 0x78, 0x87, +0xD4, 0x00, 0x46, 0x57, 0x9F, 0xD3, 0x27, 0x52, 0x4C, 0x36, 0x02, 0xE7, 0xA0, 0xC4, 0xC8, 0x9E, +0xEA, 0xBF, 0x8A, 0xD2, 0x40, 0xC7, 0x38, 0xB5, 0xA3, 0xF7, 0xF2, 0xCE, 0xF9, 0x61, 0x15, 0xA1, +0xE0, 0xAE, 0x5D, 0xA4, 0x9B, 0x34, 0x1A, 0x55, 0xAD, 0x93, 0x32, 0x30, 0xF5, 0x8C, 0xB1, 0xE3, +0x1D, 0xF6, 0xE2, 0x2E, 0x82, 0x66, 0xCA, 0x60, 0xC0, 0x29, 0x23, 0xAB, 0x0D, 0x53, 0x4E, 0x6F, +0xD5, 0xDB, 0x37, 0x45, 0xDE, 0xFD, 0x8E, 0x2F, 0x03, 0xFF, 0x6A, 0x72, 0x6D, 0x6C, 0x5B, 0x51, +0x8D, 0x1B, 0xAF, 0x92, 0xBB, 0xDD, 0xBC, 0x7F, 0x11, 0xD9, 0x5C, 0x41, 0x1F, 0x10, 0x5A, 0xD8, +0x0A, 0xC1, 0x31, 0x88, 0xA5, 0xCD, 0x7B, 0xBD, 0x2D, 0x74, 0xD0, 0x12, 0xB8, 0xE5, 0xB4, 0xB0, +0x89, 0x69, 0x97, 0x4A, 0x0C, 0x96, 0x77, 0x7E, 0x65, 0xB9, 0xF1, 0x09, 0xC5, 0x6E, 0xC6, 0x84, +0x18, 0xF0, 0x7D, 0xEC, 0x3A, 0xDC, 0x4D, 0x20, 0x79, 0xEE, 0x5F, 0x3E, 0xD7, 0xCB, 0x39, 0x48 +} +DEFINE ROL32(dword, n) { + count := n % 32 + dest := (dword << count) | (dword >> (32-count)) + RETURN dest +} +DEFINE SBOX_BYTE(dword, i) { + RETURN sbox[dword.byte[i]] +} +DEFINE lower_t(dword) { + tmp.byte[0] := SBOX_BYTE(dword, 0) + tmp.byte[1] := SBOX_BYTE(dword, 1) + tmp.byte[2] := SBOX_BYTE(dword, 2) + tmp.byte[3] := SBOX_BYTE(dword, 3) + RETURN tmp +} +DEFINE L_KEY(dword) { + RETURN dword ^ ROL32(dword, 13) ^ ROL32(dword, 23) +} +DEFINE T_KEY(dword) { + RETURN L_KEY(lower_t(dword)) +} +DEFINE F_KEY(X0, X1, X2, X3, round_key) { + RETURN X0 ^ T_KEY(X1 ^ X2 ^ X3 ^ round_key) +} +P.dword[0] := __A.dword[0] +P.dword[1] := __A.dword[1] +P.dword[2] := __A.dword[2] +P.dword[3] := __A.dword[3] +C.dword[0] := F_KEY(P.dword[0], P.dword[1], P.dword[2], P.dword[3], __B.dword[0]) +C.dword[1] := F_KEY(P.dword[1], P.dword[2], P.dword[3], C.dword[0], __B.dword[1]) +C.dword[2] := F_KEY(P.dword[2], P.dword[3], C.dword[0], C.dword[1], __B.dword[2]) +C.dword[3] := F_KEY(P.dword[3], C.dword[0], C.dword[1], C.dword[2], __B.dword[3]) +dst.dword[0] := C.dword[0] +dst.dword[1] := C.dword[1] +dst.dword[2] := C.dword[2] +dst.dword[3] := C.dword[3] +dst[MAX:128] := 0 + + + + SM4 + AVX +
immintrin.h
+ Cryptography +
+ + + This intrinisc performs four rounds of SM4 encryption. The intrinisc operates on independent 128-bit lanes. The calculated results are stored in "dst". + + +BYTE sbox[256] = { +0xD6, 0x90, 0xE9, 0xFE, 0xCC, 0xE1, 0x3D, 0xB7, 0x16, 0xB6, 0x14, 0xC2, 0x28, 0xFB, 0x2C, 0x05, +0x2B, 0x67, 0x9A, 0x76, 0x2A, 0xBE, 0x04, 0xC3, 0xAA, 0x44, 0x13, 0x26, 0x49, 0x86, 0x06, 0x99, +0x9C, 0x42, 0x50, 0xF4, 0x91, 0xEF, 0x98, 0x7A, 0x33, 0x54, 0x0B, 0x43, 0xED, 0xCF, 0xAC, 0x62, +0xE4, 0xB3, 0x1C, 0xA9, 0xC9, 0x08, 0xE8, 0x95, 0x80, 0xDF, 0x94, 0xFA, 0x75, 0x8F, 0x3F, 0xA6, +0x47, 0x07, 0xA7, 0xFC, 0xF3, 0x73, 0x17, 0xBA, 0x83, 0x59, 0x3C, 0x19, 0xE6, 0x85, 0x4F, 0xA8, +0x68, 0x6B, 0x81, 0xB2, 0x71, 0x64, 0xDA, 0x8B, 0xF8, 0xEB, 0x0F, 0x4B, 0x70, 0x56, 0x9D, 0x35, +0x1E, 0x24, 0x0E, 0x5E, 0x63, 0x58, 0xD1, 0xA2, 0x25, 0x22, 0x7C, 0x3B, 0x01, 0x21, 0x78, 0x87, +0xD4, 0x00, 0x46, 0x57, 0x9F, 0xD3, 0x27, 0x52, 0x4C, 0x36, 0x02, 0xE7, 0xA0, 0xC4, 0xC8, 0x9E, +0xEA, 0xBF, 0x8A, 0xD2, 0x40, 0xC7, 0x38, 0xB5, 0xA3, 0xF7, 0xF2, 0xCE, 0xF9, 0x61, 0x15, 0xA1, +0xE0, 0xAE, 0x5D, 0xA4, 0x9B, 0x34, 0x1A, 0x55, 0xAD, 0x93, 0x32, 0x30, 0xF5, 0x8C, 0xB1, 0xE3, +0x1D, 0xF6, 0xE2, 0x2E, 0x82, 0x66, 0xCA, 0x60, 0xC0, 0x29, 0x23, 0xAB, 0x0D, 0x53, 0x4E, 0x6F, +0xD5, 0xDB, 0x37, 0x45, 0xDE, 0xFD, 0x8E, 0x2F, 0x03, 0xFF, 0x6A, 0x72, 0x6D, 0x6C, 0x5B, 0x51, +0x8D, 0x1B, 0xAF, 0x92, 0xBB, 0xDD, 0xBC, 0x7F, 0x11, 0xD9, 0x5C, 0x41, 0x1F, 0x10, 0x5A, 0xD8, +0x0A, 0xC1, 0x31, 0x88, 0xA5, 0xCD, 0x7B, 0xBD, 0x2D, 0x74, 0xD0, 0x12, 0xB8, 0xE5, 0xB4, 0xB0, +0x89, 0x69, 0x97, 0x4A, 0x0C, 0x96, 0x77, 0x7E, 0x65, 0xB9, 0xF1, 0x09, 0xC5, 0x6E, 0xC6, 0x84, +0x18, 0xF0, 0x7D, 0xEC, 0x3A, 0xDC, 0x4D, 0x20, 0x79, 0xEE, 0x5F, 0x3E, 0xD7, 0xCB, 0x39, 0x48 +} +DEFINE ROL32(dword, n) { + count := n % 32 + dest := (dword << count) | (dword >> (32-count)) + RETURN dest +} +DEFINE SBOX_BYTE(dword, i) { + RETURN sbox[dword.byte[i]] +} +DEFINE lower_t(dword) { + tmp.byte[0] := SBOX_BYTE(dword, 0) + tmp.byte[1] := SBOX_BYTE(dword, 1) + tmp.byte[2] := SBOX_BYTE(dword, 2) + tmp.byte[3] := SBOX_BYTE(dword, 3) + RETURN tmp +} +DEFINE L_RND(dword) { + tmp := dword + tmp := tmp ^ ROL32(dword, 2) + tmp := tmp ^ ROL32(dword, 10) + tmp := tmp ^ ROL32(dword, 18) + tmp := tmp ^ ROL32(dword, 24) + RETURN tmp +} +DEFINE T_RND(dword) { + RETURN L_RND(lower_t(dword)) +} +DEFINE F_RND(X0, X1, X2, X3, round_key) { + RETURN X0 ^ T_RND(X1 ^ X2 ^ X3 ^ round_key) +} +P.dword[0] := __A.dword[0] +P.dword[1] := __A.dword[1] +P.dword[2] := __A.dword[2] +P.dword[3] := __A.dword[3] +C.dword[0] := F_RND(P.dword[0], P.dword[1], P.dword[2], P.dword[3], __B.dword[0]) +C.dword[1] := F_RND(P.dword[1], P.dword[2], P.dword[3], C.dword[0], __B.dword[1]) +C.dword[2] := F_RND(P.dword[2], P.dword[3], C.dword[0], C.dword[1], __B.dword[2]) +C.dword[3] := F_RND(P.dword[3], C.dword[0], C.dword[1], C.dword[2], __B.dword[3]) +dst.dword[0] := C.dword[0] +dst.dword[1] := C.dword[1] +dst.dword[2] := C.dword[2] +dst.dword[3] := C.dword[3] +dst[MAX:128] := 0 + + + + SM4 + AVX +
immintrin.h
+ Cryptography +
+ + + + Compute the inverse cosine of packed double-precision (64-bit) floating-point elements in "a" expressed in radians, and store the results in "dst". + +FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := ACOS(a[i+63:i]) +ENDFOR +dst[MAX:128] := 0 + + SSE +
immintrin.h
+ Trigonometry +
+ + + + Compute the inverse cosine of packed single-precision (32-bit) floating-point elements in "a" expressed in radians, and store the results in "dst". + +FOR j := 0 to 3 + i := j*32 + dst[i+31:i] := ACOS(a[i+31:i]) +ENDFOR +dst[MAX:128] := 0 + + SSE +
immintrin.h
+ Trigonometry +
+ + + + Compute the inverse hyperbolic cosine of packed double-precision (64-bit) floating-point elements in "a" expressed in radians, and store the results in "dst". + +FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := ACOSH(a[i+63:i]) +ENDFOR +dst[MAX:128] := 0 + + SSE +
immintrin.h
+ Trigonometry +
+ + + + Compute the inverse hyperbolic cosine of packed single-precision (32-bit) floating-point elements in "a" expressed in radians, and store the results in "dst". + +FOR j := 0 to 3 + i := j*32 + dst[i+31:i] := ACOSH(a[i+31:i]) +ENDFOR +dst[MAX:128] := 0 + + SSE +
immintrin.h
+ Trigonometry +
+ + + + Compute the inverse sine of packed double-precision (64-bit) floating-point elements in "a" expressed in radians, and store the results in "dst". + +FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := ASIN(a[i+63:i]) +ENDFOR +dst[MAX:128] := 0 + + SSE +
immintrin.h
+ Trigonometry +
+ + + + Compute the inverse sine of packed single-precision (32-bit) floating-point elements in "a" expressed in radians, and store the results in "dst". + +FOR j := 0 to 3 + i := j*32 + dst[i+31:i] := ASIN(a[i+31:i]) +ENDFOR +dst[MAX:128] := 0 + + SSE +
immintrin.h
+ Trigonometry +
+ + + + Compute the inverse hyperbolic sine of packed double-precision (64-bit) floating-point elements in "a" expressed in radians, and store the results in "dst". + +FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := ASINH(a[i+63:i]) +ENDFOR +dst[MAX:128] := 0 + + SSE +
immintrin.h
+ Trigonometry +
+ + + + Compute the inverse hyperbolic sine of packed single-precision (32-bit) floating-point elements in "a" expressed in radians, and store the results in "dst". + +FOR j := 0 to 3 + i := j*32 + dst[i+31:i] := ASINH(a[i+31:i]) +ENDFOR +dst[MAX:128] := 0 + + SSE +
immintrin.h
+ Trigonometry +
+ + + + Compute the inverse tangent of packed double-precision (64-bit) floating-point elements in "a" expressed in radians, and store the results in "dst". + +FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := ATAN(a[i+63:i]) +ENDFOR +dst[MAX:128] := 0 + + SSE +
immintrin.h
+ Trigonometry +
+ + + + Compute the inverse tangent of packed single-precision (32-bit) floating-point elements in "a" expressed in radians, and store the results in "dst". + +FOR j := 0 to 3 + i := j*32 + dst[i+31:i] := ATAN(a[i+31:i]) +ENDFOR +dst[MAX:128] := 0 + + SSE +
immintrin.h
+ Trigonometry +
+ + + + + Compute the inverse tangent of packed double-precision (64-bit) floating-point elements in "a" divided by packed elements in "b", and store the results in "dst" expressed in radians. + +FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := ATAN2(a[i+63:i], b[i+63:i]) +ENDFOR +dst[MAX:128] := 0 + + SSE +
immintrin.h
+ Trigonometry +
+ + + + + Compute the inverse tangent of packed single-precision (32-bit) floating-point elements in "a" divided by packed elements in "b", and store the results in "dst" expressed in radians. + +FOR j := 0 to 3 + i := j*32 + dst[i+31:i] := ATAN2(a[i+31:i], b[i+31:i]) +ENDFOR +dst[MAX:128] := 0 + + SSE +
immintrin.h
+ Trigonometry +
+ + + + Compute the inverse hyperbolic tangent of packed double-precision (64-bit) floating-point elements in "a" expressed in radians, and store the results in "dst". + +FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := ATANH(a[i+63:i]) +ENDFOR +dst[MAX:128] := 0 + + SSE +
immintrin.h
+ Trigonometry +
+ + + + Compute the inverse hyperbolic tangent of packed single-precision (32-bit) floating-point elements in "a" expressed in radians, and store the results in "dst". + +FOR j := 0 to 3 + i := j*32 + dst[i+31:i] := ATANH(a[i+31:i]) +ENDFOR +dst[MAX:128] := 0 + + SSE +
immintrin.h
+ Trigonometry +
+ + + + Compute the cosine of packed double-precision (64-bit) floating-point elements in "a" expressed in radians, and store the results in "dst". + +FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := COS(a[i+63:i]) +ENDFOR +dst[MAX:128] := 0 + + SSE +
immintrin.h
+ Trigonometry +
+ + + + Compute the cosine of packed single-precision (32-bit) floating-point elements in "a" expressed in radians, and store the results in "dst". + +FOR j := 0 to 3 + i := j*32 + dst[i+31:i] := COS(a[i+31:i]) +ENDFOR +dst[MAX:128] := 0 + + SSE +
immintrin.h
+ Trigonometry +
+ + + + Compute the cosine of packed double-precision (64-bit) floating-point elements in "a" expressed in degrees, and store the results in "dst". + FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := COSD(a[i+63:i]) +ENDFOR +dst[MAX:128] := 0 + + SSE +
immintrin.h
+ Trigonometry +
+ + + + Compute the cosine of packed single-precision (32-bit) floating-point elements in "a" expressed in degrees, and store the results in "dst". + FOR j := 0 to 3 + i := j*32 + dst[i+31:i] := COSD(a[i+31:i]) +ENDFOR +dst[MAX:128] := 0 + + SSE +
immintrin.h
+ Trigonometry +
+ + + + Compute the hyperbolic cosine of packed double-precision (64-bit) floating-point elements in "a" expressed in radians, and store the results in "dst". + +FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := COSH(a[i+63:i]) +ENDFOR +dst[MAX:128] := 0 + + SSE +
immintrin.h
+ Trigonometry +
+ + + + Compute the hyperbolic cosine of packed single-precision (32-bit) floating-point elements in "a" expressed in radians, and store the results in "dst". + +FOR j := 0 to 3 + i := j*32 + dst[i+31:i] := COSH(a[i+31:i]) +ENDFOR +dst[MAX:128] := 0 + + SSE +
immintrin.h
+ Trigonometry +
+ + + + + Compute the length of the hypotenous of a right triangle, with the lengths of the other two sides of the triangle stored as packed double-precision (64-bit) floating-point elements in "a" and "b", and store the results in "dst". + +FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := SQRT(POW(a[i+63:i], 2.0) + POW(b[i+63:i], 2.0)) +ENDFOR +dst[MAX:128] := 0 + + SSE +
immintrin.h
+ Trigonometry +
+ + + + + Compute the length of the hypotenous of a right triangle, with the lengths of the other two sides of the triangle stored as packed single-precision (32-bit) floating-point elements in "a" and "b", and store the results in "dst". + +FOR j := 0 to 3 + i := j*32 + dst[i+31:i] := SQRT(POW(a[i+31:i], 2.0) + POW(b[i+31:i], 2.0)) +ENDFOR +dst[MAX:128] := 0 + + SSE +
immintrin.h
+ Trigonometry +
+ + + + Compute the sine of packed double-precision (64-bit) floating-point elements in "a" expressed in radians, and store the results in "dst". + +FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := SIN(a[i+63:i]) +ENDFOR +dst[MAX:128] := 0 + + SSE +
immintrin.h
+ Trigonometry +
+ + + + Compute the sine of packed single-precision (32-bit) floating-point elements in "a" expressed in radians, and store the results in "dst". + +FOR j := 0 to 3 + i := j*32 + dst[i+31:i] := SIN(a[i+31:i]) +ENDFOR +dst[MAX:128] := 0 + + SSE +
immintrin.h
+ Trigonometry +
+ + + + + Compute the sine and cosine of packed double-precision (64-bit) floating-point elements in "a" expressed in radians, store the sine in "dst", and store the cosine into memory at "mem_addr". + +FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := SIN(a[i+63:i]) + MEM[mem_addr+i+63:mem_addr+i] := COS(a[i+63:i]) +ENDFOR +dst[MAX:128] := 0 + + SSE +
immintrin.h
+ Trigonometry +
+ + + + + Compute the sine and cosine of packed single-precision (32-bit) floating-point elements in "a" expressed in radians, store the sine in "dst", and store the cosine into memory at "mem_addr". + +FOR j := 0 to 3 + i := j*32 + dst[i+31:i] := SIN(a[i+31:i]) + MEM[mem_addr+i+31:mem_addr+i] := COS(a[i+31:i]) +ENDFOR +dst[MAX:128] := 0 + + SSE +
immintrin.h
+ Trigonometry +
+ + + + Compute the sine of packed double-precision (64-bit) floating-point elements in "a" expressed in degrees, and store the results in "dst". + FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := SIND(a[i+63:i]) +ENDFOR +dst[MAX:128] := 0 + + SSE +
immintrin.h
+ Trigonometry +
+ + + + Compute the sine of packed single-precision (32-bit) floating-point elements in "a" expressed in degrees, and store the results in "dst". + FOR j := 0 to 3 + i := j*32 + dst[i+31:i] := SIND(a[i+31:i]) +ENDFOR +dst[MAX:128] := 0 + + SSE +
immintrin.h
+ Trigonometry +
+ + + + Compute the hyperbolic sine of packed double-precision (64-bit) floating-point elements in "a" expressed in radians, and store the results in "dst". + +FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := SINH(a[i+63:i]) +ENDFOR +dst[MAX:128] := 0 + + SSE +
immintrin.h
+ Trigonometry +
+ + + + Compute the hyperbolic sine of packed single-precision (32-bit) floating-point elements in "a" expressed in radians, and store the results in "dst". + +FOR j := 0 to 3 + i := j*32 + dst[i+31:i] := SINH(a[i+31:i]) +ENDFOR +dst[MAX:128] := 0 + + SSE +
immintrin.h
+ Trigonometry +
+ + + + Compute the tangent of packed double-precision (64-bit) floating-point elements in "a" expressed in radians, and store the results in "dst". + +FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := TAN(a[i+63:i]) +ENDFOR +dst[MAX:128] := 0 + + SSE +
immintrin.h
+ Trigonometry +
+ + + + Compute the tangent of packed single-precision (32-bit) floating-point elements in "a" expressed in radians, and store the results in "dst". + +FOR j := 0 to 3 + i := j*32 + dst[i+31:i] := TAN(a[i+31:i]) +ENDFOR +dst[MAX:128] := 0 + + SSE +
immintrin.h
+ Trigonometry +
+ + + + Compute the tangent of packed double-precision (64-bit) floating-point elements in "a" expressed in degrees, and store the results in "dst". + FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := TAND(a[i+63:i]) +ENDFOR +dst[MAX:128] := 0 + + SSE +
immintrin.h
+ Trigonometry +
+ + + + Compute the tangent of packed single-precision (32-bit) floating-point elements in "a" expressed in degrees, and store the results in "dst". + FOR j := 0 to 3 + i := j*32 + dst[i+31:i] := TAND(a[i+31:i]) +ENDFOR +dst[MAX:128] := 0 + + SSE +
immintrin.h
+ Trigonometry +
+ + + + Compute the hyperbolic tangent of packed double-precision (64-bit) floating-point elements in "a" expressed in radians, and store the results in "dst". + +FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := TANH(a[i+63:i]) +ENDFOR +dst[MAX:128] := 0 + + SSE +
immintrin.h
+ Trigonometry +
+ + + + Compute the hyperbolic tangent of packed single-precision (32-bit) floating-point elements in "a" expressed in radians, and store the results in "dst". + +FOR j := 0 to 3 + i := j*32 + dst[i+31:i] := TANH(a[i+31:i]) +ENDFOR +dst[MAX:128] := 0 + + SSE +
immintrin.h
+ Trigonometry +
+ + + + Compute the cube root of packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst". + FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := CubeRoot(a[i+63:i]) +ENDFOR +dst[MAX:128] := 0 + + SSE +
immintrin.h
+ Elementary Math Functions +
+ + + + Compute the cube root of packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst". + FOR j := 0 to 3 + i := j*32 + dst[i+31:i] := CubeRoot(a[i+31:i]) +ENDFOR +dst[MAX:128] := 0 + + SSE +
immintrin.h
+ Elementary Math Functions +
+ + + + Compute the exponential value of "e" raised to the power of packed complex numbers in "a", and store the complex results in "dst". Each complex number is composed of two adjacent single-precision (32-bit) floating-point elements, which defines the complex number "complex = vec.fp32[0] + i * vec.fp32[1]". + +DEFINE CEXP(a[31:0], b[31:0]) { + result[31:0] := POW(FP32(e), a[31:0]) * COS(b[31:0]) + result[63:32] := POW(FP32(e), a[31:0]) * SIN(b[31:0]) + RETURN result +} +FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := CEXP(a[i+31:i], a[i+63:i+32]) +ENDFOR +dst[MAX:128] := 0 + + SSE +
immintrin.h
+ Elementary Math Functions +
+ + + + Compute the natural logarithm of packed complex numbers in "a", and store the complex results in "dst". Each complex number is composed of two adjacent single-precision (32-bit) floating-point elements, which defines the complex number "complex = vec.fp32[0] + i * vec.fp32[1]". + +DEFINE CLOG(a[31:0], b[31:0]) { + result[31:0] := LOG(SQRT(POW(a, 2.0) + POW(b, 2.0))) + result[63:32] := ATAN2(b, a) + RETURN result +} +FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := CLOG(a[i+31:i], a[i+63:i+32]) +ENDFOR +dst[MAX:128] := 0 + + SSE +
immintrin.h
+ Elementary Math Functions +
+ + + + Compute the square root of packed complex snumbers in "a", and store the complex results in "dst". Each complex number is composed of two adjacent single-precision (32-bit) floating-point elements, which defines the complex number "complex = vec.fp32[0] + i * vec.fp32[1]". + +DEFINE CSQRT(a[31:0], b[31:0]) { + sign[31:0] := (b < 0.0) ? -FP32(1.0) : FP32(1.0) + result[31:0] := SQRT((a + SQRT(POW(a, 2.0) + POW(b, 2.0))) / 2.0) + result[63:32] := sign * SQRT((-a + SQRT(POW(a, 2.0) + POW(b, 2.0))) / 2.0) + RETURN result +} +FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := CSQRT(a[i+31:i], a[i+63:i+32]) +ENDFOR +dst[MAX:128] := 0 + + SSE +
immintrin.h
+ Elementary Math Functions +
+ + + + Compute the exponential value of "e" raised to the power of packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst". + +FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := POW(e, a[i+63:i]) +ENDFOR +dst[MAX:128] := 0 + + SSE +
immintrin.h
+ Elementary Math Functions +
+ + + + Compute the exponential value of "e" raised to the power of packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst". + +FOR j := 0 to 3 + i := j*32 + dst[i+31:i] := POW(FP32(e), a[i+31:i]) +ENDFOR +dst[MAX:128] := 0 + + SSE +
immintrin.h
+ Elementary Math Functions +
+ + + + Compute the exponential value of 10 raised to the power of packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst". + +FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := POW(10.0, a[i+63:i]) +ENDFOR +dst[MAX:128] := 0 + + SSE +
immintrin.h
+ Elementary Math Functions +
+ + + + Compute the exponential value of 10 raised to the power of packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst". + +FOR j := 0 to 3 + i := j*32 + dst[i+31:i] := POW(FP32(10.0), a[i+31:i]) +ENDFOR +dst[MAX:128] := 0 + + SSE +
immintrin.h
+ Elementary Math Functions +
+ + + + Compute the exponential value of 2 raised to the power of packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst". + +FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := POW(2.0, a[i+63:i]) +ENDFOR +dst[MAX:128] := 0 + + SSE +
immintrin.h
+ Elementary Math Functions +
+ + + + Compute the exponential value of 2 raised to the power of packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst". + +FOR j := 0 to 3 + i := j*32 + dst[i+31:i] := POW(FP32(2.0), a[i+31:i]) +ENDFOR +dst[MAX:128] := 0 + + SSE +
immintrin.h
+ Elementary Math Functions +
+ + + + Compute the exponential value of "e" raised to the power of packed double-precision (64-bit) floating-point elements in "a", subtract one from each element, and store the results in "dst". + +FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := POW(e, a[i+63:i]) - 1.0 +ENDFOR +dst[MAX:128] := 0 + + SSE +
immintrin.h
+ Elementary Math Functions +
+ + + + Compute the exponential value of "e" raised to the power of packed single-precision (32-bit) floating-point elements in "a", subtract one from each element, and store the results in "dst". + +FOR j := 0 to 3 + i := j*32 + dst[i+31:i] := POW(FP32(e), a[i+31:i]) - 1.0 +ENDFOR +dst[MAX:128] := 0 + + SSE +
immintrin.h
+ Elementary Math Functions +
+ + + + Compute the inverse cube root of packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst". + FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := InvCubeRoot(a[i+63:i]) +ENDFOR +dst[MAX:128] := 0 + + SSE +
immintrin.h
+ Elementary Math Functions +
+ + + + Compute the inverse cube root of packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst". + FOR j := 0 to 3 + i := j*32 + dst[i+31:i] := InvCubeRoot(a[i+31:i]) +ENDFOR +dst[MAX:128] := 0 + + SSE +
immintrin.h
+ Elementary Math Functions +
+ + + + Compute the inverse square root of packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst". + FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := InvSQRT(a[i+63:i]) +ENDFOR +dst[MAX:128] := 0 + + SSE +
immintrin.h
+ Elementary Math Functions +
+ + + + Compute the inverse square root of packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst". + FOR j := 0 to 3 + i := j*32 + dst[i+31:i] := InvSQRT(a[i+31:i]) +ENDFOR +dst[MAX:128] := 0 + + SSE +
immintrin.h
+ Elementary Math Functions +
+ + + + Compute the natural logarithm of packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst". + +FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := LOG(a[i+63:i]) +ENDFOR +dst[MAX:128] := 0 + + SSE +
immintrin.h
+ Elementary Math Functions +
+ + + + Compute the natural logarithm of packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst". + +FOR j := 0 to 3 + i := j*32 + dst[i+31:i] := LOG(a[i+31:i]) +ENDFOR +dst[MAX:128] := 0 + + SSE +
immintrin.h
+ Elementary Math Functions +
+ + + + Compute the base-10 logarithm of packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst". + +FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := LOG(a[i+63:i]) / LOG(10.0) +ENDFOR +dst[MAX:128] := 0 + + SSE +
immintrin.h
+ Elementary Math Functions +
+ + + + Compute the base-10 logarithm of packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst". + +FOR j := 0 to 3 + i := j*32 + dst[i+31:i] := LOG(a[i+31:i]) / LOG(10.0) +ENDFOR +dst[MAX:128] := 0 + + SSE +
immintrin.h
+ Elementary Math Functions +
+ + + + Compute the natural logarithm of one plus packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst". + +FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := LOG(1.0 + a[i+63:i]) +ENDFOR +dst[MAX:128] := 0 + + SSE +
immintrin.h
+ Elementary Math Functions +
+ + + + Compute the natural logarithm of one plus packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst". + +FOR j := 0 to 3 + i := j*32 + dst[i+31:i] := LOG(1.0 + a[i+31:i]) +ENDFOR +dst[MAX:128] := 0 + + SSE +
immintrin.h
+ Elementary Math Functions +
+ + + + Compute the base-2 logarithm of packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst". + +FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := LOG(a[i+63:i]) / LOG(2.0) +ENDFOR +dst[MAX:128] := 0 + + SSE +
immintrin.h
+ Elementary Math Functions +
+ + + + Compute the base-2 logarithm of packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst". + +FOR j := 0 to 3 + i := j*32 + dst[i+31:i] := LOG(a[i+31:i]) / LOG(2.0) +ENDFOR +dst[MAX:128] := 0 + + SSE +
immintrin.h
+ Elementary Math Functions +
+ + + + Convert the exponent of each packed double-precision (64-bit) floating-point element in "a" to a double-precision floating-point number representing the integer exponent, and store the results in "dst". This intrinsic essentially calculates "floor(log2(x))" for each element. + FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := ConvertExpFP64(a[i+63:i]) +ENDFOR +dst[MAX:128] := 0 + + SSE +
immintrin.h
+ Elementary Math Functions +
+ + + + Convert the exponent of each packed single-precision (32-bit) floating-point element in "a" to a single-precision floating-point number representing the integer exponent, and store the results in "dst". This intrinsic essentially calculates "floor(log2(x))" for each element. + FOR j := 0 to 3 + i := j*32 + dst[i+31:i] := ConvertExpFP32(a[i+31:i]) +ENDFOR +dst[MAX:128] := 0 + + SSE +
immintrin.h
+ Elementary Math Functions +
+ + + + + Compute the exponential value of packed double-precision (64-bit) floating-point elements in "a" raised by packed elements in "b", and store the results in "dst". + +FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := POW(a[i+63:i], b[i+63:i]) +ENDFOR +dst[MAX:128] := 0 + + SSE +
immintrin.h
+ Elementary Math Functions +
+ + + + + Compute the exponential value of packed single-precision (32-bit) floating-point elements in "a" raised by packed elements in "b", and store the results in "dst". + +FOR j := 0 to 3 + i := j*32 + dst[i+31:i] := POW(a[i+31:i], b[i+31:i]) +ENDFOR +dst[MAX:128] := 0 + + SSE +
immintrin.h
+ Elementary Math Functions +
+ + + + Compute the square root of packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst". Note that this intrinsic is less efficient than "_mm_sqrt_pd". + +FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := SQRT(a[i+63:i]) +ENDFOR +dst[MAX:128] := 0 + + SSE +
immintrin.h
+ Elementary Math Functions +
+ + + + Compute the square root of packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst". Note that this intrinsic is less efficient than "_mm_sqrt_ps". + +FOR j := 0 to 3 + i := j*32 + dst[i+31:i] := SQRT(a[i+31:i]) +ENDFOR +dst[MAX:128] := 0 + + SSE +
immintrin.h
+ Elementary Math Functions +
+ + + + Compute the cumulative distribution function of packed double-precision (64-bit) floating-point elements in "a" using the normal distribution, and store the results in "dst". + FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := CDFNormal(a[i+63:i]) +ENDFOR +dst[MAX:128] := 0 + + SSE +
immintrin.h
+ Probability/Statistics +
+ + + + Compute the cumulative distribution function of packed single-precision (32-bit) floating-point elements in "a" using the normal distribution, and store the results in "dst". + FOR j := 0 to 3 + i := j*32 + dst[i+31:i] := CDFNormal(a[i+31:i]) +ENDFOR +dst[MAX:128] := 0 + + SSE +
immintrin.h
+ Probability/Statistics +
+ + + + Compute the inverse cumulative distribution function of packed double-precision (64-bit) floating-point elements in "a" using the normal distribution, and store the results in "dst". + FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := InverseCDFNormal(a[i+63:i]) +ENDFOR +dst[MAX:128] := 0 + + SSE +
immintrin.h
+ Probability/Statistics +
+ + + + Compute the inverse cumulative distribution function of packed single-precision (32-bit) floating-point elements in "a" using the normal distribution, and store the results in "dst". + FOR j := 0 to 3 + i := j*32 + dst[i+31:i] := InverseCDFNormal(a[i+31:i]) +ENDFOR +dst[MAX:128] := 0 + + SSE +
immintrin.h
+ Probability/Statistics +
+ + + + Compute the error function of packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst". + FOR j := 0 to 3 + i := j*32 + dst[i+31:i] := ERF(a[i+31:i]) +ENDFOR +dst[MAX:128] := 0 + + SSE +
immintrin.h
+ Probability/Statistics +
+ + + + Compute the complementary error function of packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst". + FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := 1.0 - ERF(a[i+63:i]) +ENDFOR +dst[MAX:128] := 0 + + SSE +
immintrin.h
+ Probability/Statistics +
+ + + + Compute the complementary error function of packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst". + FOR j := 0 to 3 + i := j*32 + dst[i+63:i] := 1.0 - ERF(a[i+31:i]) +ENDFOR +dst[MAX:128] := 0 + + SSE +
immintrin.h
+ Probability/Statistics +
+ + + + Compute the inverse complementary error function of packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst". + FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := 1.0 / (1.0 - ERF(a[i+63:i])) +ENDFOR +dst[MAX:128] := 0 + + SSE +
immintrin.h
+ Probability/Statistics +
+ + + + Compute the inverse complementary error function of packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst". + FOR j := 0 to 3 + i := j*32 + dst[i+63:i] := 1.0 / (1.0 - ERF(a[i+31:i])) +ENDFOR +dst[MAX:128] := 0 + + SSE +
immintrin.h
+ Probability/Statistics +
+ + + + Compute the inverse error function of packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst". + FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := 1.0 / ERF(a[i+63:i]) +ENDFOR +dst[MAX:128] := 0 + + SSE +
immintrin.h
+ Probability/Statistics +
+ + + + Compute the inverse error function of packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst". + FOR j := 0 to 3 + i := j*32 + dst[i+63:i] := 1.0 / ERF(a[i+31:i]) +ENDFOR +dst[MAX:128] := 0 + + SSE +
immintrin.h
+ Probability/Statistics +
+ + + + + Divide packed signed 8-bit integers in "a" by packed elements in "b", and store the truncated results in "dst". + +FOR j := 0 to 15 + i := 8*j + IF b[i+7:i] == 0 + #DE + FI + dst[i+7:i] := Truncate8(a[i+7:i] / b[i+7:i]) +ENDFOR +dst[MAX:128] := 0 + + SSE +
immintrin.h
+ Arithmetic +
+ + + + + Divide packed signed 16-bit integers in "a" by packed elements in "b", and store the truncated results in "dst". + +FOR j := 0 to 7 + i := 16*j + IF b[i+15:i] == 0 + #DE + FI + dst[i+15:i] := Truncate16(a[i+15:i] / b[i+15:i]) +ENDFOR +dst[MAX:128] := 0 + + SSE +
immintrin.h
+ Arithmetic +
+ + + + + Divide packed 32-bit integers in "a" by packed elements in "b", and store the truncated results in "dst". + +FOR j := 0 to 3 + i := 32*j + IF b[i+31:i] == 0 + #DE + FI + dst[i+31:i] := Truncate32(a[i+31:i] / b[i+31:i]) +ENDFOR +dst[MAX:128] := 0 + + SSE +
immintrin.h
+ Arithmetic +
+ + + + + Divide packed signed 64-bit integers in "a" by packed elements in "b", and store the truncated results in "dst". + +FOR j := 0 to 1 + i := 64*j + IF b[i+63:i] == 0 + #DE + FI + dst[i+63:i] := Truncate64(a[i+63:i] / b[i+63:i]) +ENDFOR +dst[MAX:128] := 0 + + SSE +
immintrin.h
+ Arithmetic +
+ + + + + Divide packed unsigned 8-bit integers in "a" by packed elements in "b", and store the truncated results in "dst". + +FOR j := 0 to 15 + i := 8*j + IF b[i+7:i] == 0 + #DE + FI + dst[i+7:i] := Truncate8(a[i+7:i] / b[i+7:i]) +ENDFOR +dst[MAX:128] := 0 + + SSE +
immintrin.h
+ Arithmetic +
+ + + + + Divide packed unsigned 16-bit integers in "a" by packed elements in "b", and store the truncated results in "dst". + +FOR j := 0 to 7 + i := 16*j + IF b[i+15:i] == 0 + #DE + FI + dst[i+15:i] := Truncate16(a[i+15:i] / b[i+15:i]) +ENDFOR +dst[MAX:128] := 0 + + SSE +
immintrin.h
+ Arithmetic +
+ + + + + Divide packed unsigned 32-bit integers in "a" by packed elements in "b", and store the truncated results in "dst". + +FOR j := 0 to 3 + i := 32*j + IF b[i+31:i] == 0 + #DE + FI + dst[i+31:i] := Truncate32(a[i+31:i] / b[i+31:i]) +ENDFOR +dst[MAX:128] := 0 + + SSE +
immintrin.h
+ Arithmetic +
+ + + + + Divide packed unsigned 64-bit integers in "a" by packed elements in "b", and store the truncated results in "dst". + +FOR j := 0 to 1 + i := 64*j + IF b[i+63:i] == 0 + #DE + FI + dst[i+63:i] := Truncate64(a[i+63:i] / b[i+63:i]) +ENDFOR +dst[MAX:128] := 0 + + SSE +
immintrin.h
+ Arithmetic +
+ + + + Compute the error function of packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst". + FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := ERF(a[i+63:i]) +ENDFOR +dst[MAX:128] := 0 + + SSE +
immintrin.h
+ Arithmetic +
+ + + + + Divide packed 32-bit integers in "a" by packed elements in "b", and store the truncated results in "dst". + FOR j := 0 to 3 + i := 32*j + dst[i+31:i] := TRUNCATE(a[i+31:i] / b[i+31:i]) +ENDFOR +dst[MAX:128] := 0 + + SSE +
immintrin.h
+ Arithmetic +
+ + + + + + Divide packed 32-bit integers in "a" by packed elements in "b", store the truncated results in "dst", and store the remainders as packed 32-bit integers into memory at "mem_addr". + FOR j := 0 to 3 + i := 32*j + dst[i+31:i] := TRUNCATE(a[i+31:i] / b[i+31:i]) + MEM[mem_addr+i+31:mem_addr+i] := REMAINDER(a[i+31:i] / b[i+31:i]) +ENDFOR +dst[MAX:128] := 0 + + SSE +
immintrin.h
+ Arithmetic +
+ + + + + Divide packed 32-bit integers in "a" by packed elements in "b", and store the remainders as packed 32-bit integers in "dst". + FOR j := 0 to 3 + i := 32*j + dst[i+31:i] := REMAINDER(a[i+31:i] / b[i+31:i]) +ENDFOR +dst[MAX:128] := 0 + + SSE +
immintrin.h
+ Arithmetic +
+ + + + + Divide packed 8-bit integers in "a" by packed elements in "b", and store the remainders as packed 32-bit integers in "dst". + FOR j := 0 to 15 + i := 8*j + dst[i+7:i] := REMAINDER(a[i+7:i] / b[i+7:i]) +ENDFOR +dst[MAX:128] := 0 + + SSE +
immintrin.h
+ Arithmetic +
+ + + + + Divide packed 16-bit integers in "a" by packed elements in "b", and store the remainders as packed 32-bit integers in "dst". + FOR j := 0 to 7 + i := 16*j + dst[i+15:i] := REMAINDER(a[i+15:i] / b[i+15:i]) +ENDFOR +dst[MAX:128] := 0 + + SSE +
immintrin.h
+ Arithmetic +
+ + + + + Divide packed 32-bit integers in "a" by packed elements in "b", and store the remainders as packed 32-bit integers in "dst". + FOR j := 0 to 3 + i := 32*j + dst[i+31:i] := REMAINDER(a[i+31:i] / b[i+31:i]) +ENDFOR +dst[MAX:128] := 0 + + SSE +
immintrin.h
+ Arithmetic +
+ + + + + Divide packed 64-bit integers in "a" by packed elements in "b", and store the remainders as packed 32-bit integers in "dst". + FOR j := 0 to 1 + i := 64*j + dst[i+63:i] := REMAINDER(a[i+63:i] / b[i+63:i]) +ENDFOR +dst[MAX:128] := 0 + + SSE +
immintrin.h
+ Arithmetic +
+ + + + + Divide packed unsigned 8-bit integers in "a" by packed elements in "b", and store the remainders as packed unsigned 32-bit integers in "dst". + FOR j := 0 to 15 + i := 8*j + dst[i+7:i] := REMAINDER(a[i+7:i] / b[i+7:i]) +ENDFOR +dst[MAX:128] := 0 + + SSE +
immintrin.h
+ Arithmetic +
+ + + + + Divide packed unsigned 16-bit integers in "a" by packed elements in "b", and store the remainders as packed unsigned 32-bit integers in "dst". + FOR j := 0 to 7 + i := 16*j + dst[i+15:i] := REMAINDER(a[i+15:i] / b[i+15:i]) +ENDFOR +dst[MAX:128] := 0 + + SSE +
immintrin.h
+ Arithmetic +
+ + + + + Divide packed unsigned 32-bit integers in "a" by packed elements in "b", and store the remainders as packed unsigned 32-bit integers in "dst". + FOR j := 0 to 3 + i := 32*j + dst[i+31:i] := REMAINDER(a[i+31:i] / b[i+31:i]) +ENDFOR +dst[MAX:128] := 0 + + SSE +
immintrin.h
+ Arithmetic +
+ + + + + Divide packed unsigned 64-bit integers in "a" by packed elements in "b", and store the remainders as packed unsigned 32-bit integers in "dst". + FOR j := 0 to 1 + i := 64*j + dst[i+63:i] := REMAINDER(a[i+63:i] / b[i+63:i]) +ENDFOR +dst[MAX:128] := 0 + + SSE +
immintrin.h
+ Arithmetic +
+ + + + + Divide packed unsigned 32-bit integers in "a" by packed elements in "b", and store the truncated results in "dst". + FOR j := 0 to 3 + i := 32*j + dst[i+31:i] := TRUNCATE(a[i+31:i] / b[i+31:i]) +ENDFOR +dst[MAX:128] := 0 + + SSE +
immintrin.h
+ Arithmetic +
+ + + + + + Divide packed unsigned 32-bit integers in "a" by packed elements in "b", store the truncated results in "dst", and store the remainders as packed unsigned 32-bit integers into memory at "mem_addr". + FOR j := 0 to 3 + i := 32*j + dst[i+31:i] := TRUNCATE(a[i+31:i] / b[i+31:i]) + MEM[mem_addr+i+31:mem_addr+i] := REMAINDER(a[i+31:i] / b[i+31:i]) +ENDFOR +dst[MAX:128] := 0 + + SSE +
immintrin.h
+ Arithmetic +
+ + + + + Divide packed unsigned 32-bit integers in "a" by packed elements in "b", and store the remainders as packed unsigned 32-bit integers in "dst". + FOR j := 0 to 3 + i := 32*j + dst[i+31:i] := REMAINDER(a[i+31:i] / b[i+31:i]) +ENDFOR +dst[MAX:128] := 0 + + SSE +
immintrin.h
+ Arithmetic +
+ + + + Round the packed double-precision (64-bit) floating-point elements in "a" up to an integer value, and store the results as packed double-precision floating-point elements in "dst". This intrinsic may generate the "roundpd"/"vroundpd" instruction. + +FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := CEIL(a[i+63:i]) +ENDFOR +dst[MAX:128] := 0 + + SSE +
immintrin.h
+ Special Math Functions +
+ + + + Round the packed single-precision (32-bit) floating-point elements in "a" up to an integer value, and store the results as packed single-precision floating-point elements in "dst". This intrinsic may generate the "roundps"/"vroundps" instruction. + +FOR j := 0 to 3 + i := j*32 + dst[i+31:i] := CEIL(a[i+31:i]) +ENDFOR +dst[MAX:128] := 0 + + SSE +
immintrin.h
+ Special Math Functions +
+ + + + Round the packed double-precision (64-bit) floating-point elements in "a" down to an integer value, and store the results as packed double-precision floating-point elements in "dst". This intrinsic may generate the "roundpd"/"vroundpd" instruction. + +FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := FLOOR(a[i+63:i]) +ENDFOR +dst[MAX:128] := 0 + + SSE +
immintrin.h
+ Special Math Functions +
+ + + + Round the packed single-precision (32-bit) floating-point elements in "a" down to an integer value, and store the results as packed single-precision floating-point elements in "dst". This intrinsic may generate the "roundps"/"vroundps" instruction. + +FOR j := 0 to 3 + i := j*32 + dst[i+31:i] := FLOOR(a[i+31:i]) +ENDFOR +dst[MAX:128] := 0 + + SSE +
immintrin.h
+ Special Math Functions +
+ + + + Round the packed double-precision (64-bit) floating-point elements in "a" to the nearest integer value, and store the results as packed double-precision floating-point elements in "dst". This intrinsic may generate the "roundpd"/"vroundpd" instruction. + +FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := ROUND(a[i+63:i]) +ENDFOR +dst[MAX:128] := 0 + + SSE +
immintrin.h
+ Special Math Functions +
+ + + + Round the packed single-precision (32-bit) floating-point elements in "a" to the nearest integer value, and store the results as packed single-precision floating-point elements in "dst". This intrinsic may generate the "roundps"/"vroundps" instruction. + +FOR j := 0 to 3 + i := j*32 + dst[i+31:i] := ROUND(a[i+31:i]) +ENDFOR +dst[MAX:128] := 0 + + SSE +
immintrin.h
+ Special Math Functions +
+ + + + Truncate the packed double-precision (64-bit) floating-point elements in "a", and store the results as packed double-precision floating-point elements in "dst". This intrinsic may generate the "roundpd"/"vroundpd" instruction. + FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := TRUNCATE(a[i+63:i]) +ENDFOR +dst[MAX:128] := 0 + + SSE +
immintrin.h
+ Miscellaneous +
+ + + + Truncate the packed single-precision (32-bit) floating-point elements in "a", and store the results as packed single-precision floating-point elements in "dst". This intrinsic may generate the "roundps"/"vroundps" instruction. + FOR j := 0 to 3 + i := j*32 + dst[i+31:i] := TRUNCATE(a[i+31:i]) +ENDFOR +dst[MAX:128] := 0 + + SSE +
immintrin.h
+ Miscellaneous +
+ + + + + + + + + Macro: Transpose the 4x4 matrix formed by the 4 rows of single-precision (32-bit) floating-point elements in "row0", "row1", "row2", and "row3", and store the transposed matrix in these vectors ("row0" now contains column 0, etc.). + +__m128 tmp3, tmp2, tmp1, tmp0; +tmp0 := _mm_unpacklo_ps(row0, row1); +tmp2 := _mm_unpacklo_ps(row2, row3); +tmp1 := _mm_unpackhi_ps(row0, row1); +tmp3 := _mm_unpackhi_ps(row2, row3); +row0 := _mm_movelh_ps(tmp0, tmp2); +row1 := _mm_movehl_ps(tmp2, tmp0); +row2 := _mm_movelh_ps(tmp1, tmp3); +row3 := _mm_movehl_ps(tmp3, tmp1); + + SSE +
xmmintrin.h
+ Swizzle +
+ + + + + Extract a 16-bit integer from "a", selected with "imm8", and store the result in the lower element of "dst". + +dst[15:0] := (a[63:0] >> (imm8[1:0] * 16))[15:0] +dst[31:16] := 0 + + + SSE +
xmmintrin.h
+ Swizzle +
+ + + + + Extract a 16-bit integer from "a", selected with "imm8", and store the result in the lower element of "dst". + +dst[15:0] := (a[63:0] >> (imm8[1:0] * 16))[15:0] +dst[31:16] := 0 + + + SSE +
xmmintrin.h
+ Swizzle +
+ + + + + + Copy "a" to "dst", and insert the 16-bit integer "i" into "dst" at the location specified by "imm8". + +dst[63:0] := a[63:0] +sel := imm8[1:0]*16 +dst[sel+15:sel] := i[15:0] + + + SSE +
xmmintrin.h
+ Swizzle +
+ + + + + + Copy "a" to "dst", and insert the 16-bit integer "i" into "dst" at the location specified by "imm8". + +dst[63:0] := a[63:0] +sel := imm8[1:0]*16 +dst[sel+15:sel] := i[15:0] + + + SSE +
xmmintrin.h
+ Swizzle +
+ + + + + Shuffle 16-bit integers in "a" using the control in "imm8", and store the results in "dst". + +DEFINE SELECT4(src, control) { + CASE(control[1:0]) OF + 0: tmp[15:0] := src[15:0] + 1: tmp[15:0] := src[31:16] + 2: tmp[15:0] := src[47:32] + 3: tmp[15:0] := src[63:48] + ESAC + RETURN tmp[15:0] +} +dst[15:0] := SELECT4(a[63:0], imm8[1:0]) +dst[31:16] := SELECT4(a[63:0], imm8[3:2]) +dst[47:32] := SELECT4(a[63:0], imm8[5:4]) +dst[63:48] := SELECT4(a[63:0], imm8[7:6]) + + + SSE +
xmmintrin.h
+ Swizzle +
+ + + + + Shuffle 16-bit integers in "a" using the control in "imm8", and store the results in "dst". + +DEFINE SELECT4(src, control) { + CASE(control[1:0]) OF + 0: tmp[15:0] := src[15:0] + 1: tmp[15:0] := src[31:16] + 2: tmp[15:0] := src[47:32] + 3: tmp[15:0] := src[63:48] + ESAC + RETURN tmp[15:0] +} +dst[15:0] := SELECT4(a[63:0], imm8[1:0]) +dst[31:16] := SELECT4(a[63:0], imm8[3:2]) +dst[47:32] := SELECT4(a[63:0], imm8[5:4]) +dst[63:48] := SELECT4(a[63:0], imm8[7:6]) + + + SSE +
xmmintrin.h
+ Swizzle +
+ + + + + + Shuffle single-precision (32-bit) floating-point elements in "a" using the control in "imm8", and store the results in "dst". + +DEFINE SELECT4(src, control) { + CASE(control[1:0]) OF + 0: tmp[31:0] := src[31:0] + 1: tmp[31:0] := src[63:32] + 2: tmp[31:0] := src[95:64] + 3: tmp[31:0] := src[127:96] + ESAC + RETURN tmp[31:0] +} +dst[31:0] := SELECT4(a[127:0], imm8[1:0]) +dst[63:32] := SELECT4(a[127:0], imm8[3:2]) +dst[95:64] := SELECT4(b[127:0], imm8[5:4]) +dst[127:96] := SELECT4(b[127:0], imm8[7:6]) + + + SSE +
xmmintrin.h
+ Swizzle +
+ + + + + Unpack and interleave single-precision (32-bit) floating-point elements from the high half "a" and "b", and store the results in "dst". + +DEFINE INTERLEAVE_HIGH_DWORDS(src1[127:0], src2[127:0]) { + dst[31:0] := src1[95:64] + dst[63:32] := src2[95:64] + dst[95:64] := src1[127:96] + dst[127:96] := src2[127:96] + RETURN dst[127:0] +} +dst[127:0] := INTERLEAVE_HIGH_DWORDS(a[127:0], b[127:0]) + + + SSE +
xmmintrin.h
+ Swizzle +
+ + + + + Unpack and interleave single-precision (32-bit) floating-point elements from the low half of "a" and "b", and store the results in "dst". + +DEFINE INTERLEAVE_DWORDS(src1[127:0], src2[127:0]) { + dst[31:0] := src1[31:0] + dst[63:32] := src2[31:0] + dst[95:64] := src1[63:32] + dst[127:96] := src2[63:32] + RETURN dst[127:0] +} +dst[127:0] := INTERLEAVE_DWORDS(a[127:0], b[127:0]) + + + SSE +
xmmintrin.h
+ Swizzle +
+ + + + Get the unsigned 32-bit value of the MXCSR control and status register. + dst[31:0] := MXCSR + + + SSE +
immintrin.h
+ General Support +
+ + + + Set the MXCSR control and status register with the value in unsigned 32-bit integer "a". + +MXCSR := a[31:0] + + + SSE +
immintrin.h
+ General Support +
+ + + Macro: Get the exception state bits from the MXCSR control and status register. The exception state may contain any of the following flags: _MM_EXCEPT_INVALID, _MM_EXCEPT_DIV_ZERO, _MM_EXCEPT_DENORM, _MM_EXCEPT_OVERFLOW, _MM_EXCEPT_UNDERFLOW, _MM_EXCEPT_INEXACT + dst[31:0] := MXCSR & _MM_EXCEPT_MASK + + SSE +
immintrin.h
+ General Support +
+ + + + Macro: Set the exception state bits of the MXCSR control and status register to the value in unsigned 32-bit integer "a". The exception state may contain any of the following flags: _MM_EXCEPT_INVALID, _MM_EXCEPT_DIV_ZERO, _MM_EXCEPT_DENORM, _MM_EXCEPT_OVERFLOW, _MM_EXCEPT_UNDERFLOW, _MM_EXCEPT_INEXACT + MXCSR := a[31:0] AND ~_MM_EXCEPT_MASK + + SSE +
immintrin.h
+ General Support +
+ + + Macro: Get the exception mask bits from the MXCSR control and status register. The exception mask may contain any of the following flags: _MM_MASK_INVALID, _MM_MASK_DIV_ZERO, _MM_MASK_DENORM, _MM_MASK_OVERFLOW, _MM_MASK_UNDERFLOW, _MM_MASK_INEXACT + dst[31:0] := MXCSR & _MM_MASK_MASK + + SSE +
immintrin.h
+ General Support +
+ + + + Macro: Set the exception mask bits of the MXCSR control and status register to the value in unsigned 32-bit integer "a". The exception mask may contain any of the following flags: _MM_MASK_INVALID, _MM_MASK_DIV_ZERO, _MM_MASK_DENORM, _MM_MASK_OVERFLOW, _MM_MASK_UNDERFLOW, _MM_MASK_INEXACT + MXCSR := a[31:0] AND ~_MM_MASK_MASK + + SSE +
immintrin.h
+ General Support +
+ + + Macro: Get the rounding mode bits from the MXCSR control and status register. The rounding mode may contain any of the following flags: _MM_ROUND_NEAREST, _MM_ROUND_DOWN, _MM_ROUND_UP, _MM_ROUND_TOWARD_ZERO + dst[31:0] := MXCSR & _MM_ROUND_MASK + + SSE +
immintrin.h
+ General Support +
+ + + + Macro: Set the rounding mode bits of the MXCSR control and status register to the value in unsigned 32-bit integer "a". The rounding mode may contain any of the following flags: _MM_ROUND_NEAREST, _MM_ROUND_DOWN, _MM_ROUND_UP, _MM_ROUND_TOWARD_ZERO + MXCSR := a[31:0] AND ~_MM_ROUND_MASK + + SSE +
immintrin.h
+ General Support +
+ + + Macro: Get the flush zero bits from the MXCSR control and status register. The flush zero may contain any of the following flags: _MM_FLUSH_ZERO_ON or _MM_FLUSH_ZERO_OFF + dst[31:0] := MXCSR & _MM_FLUSH_MASK + + SSE +
immintrin.h
+ General Support +
+ + + + Macro: Set the flush zero bits of the MXCSR control and status register to the value in unsigned 32-bit integer "a". The flush zero may contain any of the following flags: _MM_FLUSH_ZERO_ON or _MM_FLUSH_ZERO_OFF + MXCSR := a[31:0] AND ~_MM_FLUSH_MASK + + SSE +
immintrin.h
+ General Support +
+ + + + + Fetch the line of data from memory that contains address "p" to a location in the cache hierarchy specified by the locality hint "i", which can be one of:<ul> + <li>_MM_HINT_T0 // 3, move data using the T0 hint. The PREFETCHT0 instruction will be generated.</li> + <li>_MM_HINT_T1 // 2, move data using the T1 hint. The PREFETCHT1 instruction will be generated.</li> + <li>_MM_HINT_T2 // 1, move data using the T2 hint. The PREFETCHT2 instruction will be generated.</li> + <li>_MM_HINT_NTA // 0, move data using the non-temporal access (NTA) hint. The PREFETCHNTA instruction will be generated.</li> + + + + + + SSE +
immintrin.h
+ General Support +
+ + + + Perform a serializing operation on all store-to-memory instructions that were issued prior to this instruction. Guarantees that every store instruction that precedes, in program order, is globally visible before any store instruction which follows the fence in program order. + + SSE +
immintrin.h
+ General Support +
+ + + + + Allocate "size" bytes of memory, aligned to the alignment specified in "align", and return a pointer to the allocated memory. "_mm_free" should be used to free memory that is allocated with "_mm_malloc". + SSE +
immintrin.h
+ General Support +
+ + + + Free aligned memory that was allocated with "_mm_malloc". + SSE +
immintrin.h
+ General Support +
+ + + + Return vector of type __m128 with undefined elements. + SSE +
immintrin.h
+ General Support +
+ + + + + Compare packed signed 16-bit integers in "a" and "b", and store packed maximum values in "dst". + +FOR j := 0 to 3 + i := j*16 + dst[i+15:i] := MAX(a[i+15:i], b[i+15:i]) +ENDFOR + + + SSE +
xmmintrin.h
+ Special Math Functions +
+ + + + + Compare packed signed 16-bit integers in "a" and "b", and store packed maximum values in "dst". + +FOR j := 0 to 3 + i := j*16 + dst[i+15:i] := MAX(a[i+15:i], b[i+15:i]) +ENDFOR + + + SSE +
xmmintrin.h
+ Special Math Functions +
+ + + + + Compare packed unsigned 8-bit integers in "a" and "b", and store packed maximum values in "dst". + +FOR j := 0 to 7 + i := j*8 + dst[i+7:i] := MAX(a[i+7:i], b[i+7:i]) +ENDFOR + + + SSE +
xmmintrin.h
+ Special Math Functions +
+ + + + + Compare packed unsigned 8-bit integers in "a" and "b", and store packed maximum values in "dst". + +FOR j := 0 to 7 + i := j*8 + dst[i+7:i] := MAX(a[i+7:i], b[i+7:i]) +ENDFOR + + + SSE +
xmmintrin.h
+ Special Math Functions +
+ + + + + Compare packed signed 16-bit integers in "a" and "b", and store packed minimum values in "dst". + +FOR j := 0 to 3 + i := j*16 + dst[i+15:i] := MIN(a[i+15:i], b[i+15:i]) +ENDFOR + + + SSE +
xmmintrin.h
+ Special Math Functions +
+ + + + + Compare packed signed 16-bit integers in "a" and "b", and store packed minimum values in "dst". + +FOR j := 0 to 3 + i := j*16 + dst[i+15:i] := MIN(a[i+15:i], b[i+15:i]) +ENDFOR + + + SSE +
xmmintrin.h
+ Special Math Functions +
+ + + + + Compare packed unsigned 8-bit integers in "a" and "b", and store packed minimum values in "dst". + +FOR j := 0 to 7 + i := j*8 + dst[i+7:i] := MIN(a[i+7:i], b[i+7:i]) +ENDFOR + + + SSE +
xmmintrin.h
+ Special Math Functions +
+ + + + + Compare packed unsigned 8-bit integers in "a" and "b", and store packed minimum values in "dst". + +FOR j := 0 to 7 + i := j*8 + dst[i+7:i] := MIN(a[i+7:i], b[i+7:i]) +ENDFOR + + + SSE +
xmmintrin.h
+ Special Math Functions +
+ + + + + Compare the lower single-precision (32-bit) floating-point elements in "a" and "b", store the minimum value in the lower element of "dst", and copy the upper 3 packed elements from "a" to the upper element of "dst". [min_float_note] + +dst[31:0] := MIN(a[31:0], b[31:0]) +dst[127:32] := a[127:32] + + + SSE +
xmmintrin.h
+ Special Math Functions +
+ + + + + Compare packed single-precision (32-bit) floating-point elements in "a" and "b", and store packed minimum values in "dst". [min_float_note] + +FOR j := 0 to 3 + i := j*32 + dst[i+31:i] := MIN(a[i+31:i], b[i+31:i]) +ENDFOR + + + SSE +
xmmintrin.h
+ Special Math Functions +
+ + + + + Compare the lower single-precision (32-bit) floating-point elements in "a" and "b", store the maximum value in the lower element of "dst", and copy the upper 3 packed elements from "a" to the upper element of "dst". [max_float_note] + +dst[31:0] := MAX(a[31:0], b[31:0]) +dst[127:32] := a[127:32] + + + SSE +
xmmintrin.h
+ Special Math Functions +
+ + + + + Compare packed single-precision (32-bit) floating-point elements in "a" and "b", and store packed maximum values in "dst". [max_float_note] + +FOR j := 0 to 3 + i := j*32 + dst[i+31:i] := MAX(a[i+31:i], b[i+31:i]) +ENDFOR + + + SSE +
xmmintrin.h
+ Special Math Functions +
+ + + + + Multiply the packed unsigned 16-bit integers in "a" and "b", producing intermediate 32-bit integers, and store the high 16 bits of the intermediate integers in "dst". + +FOR j := 0 to 3 + i := j*16 + tmp[31:0] := a[i+15:i] * b[i+15:i] + dst[i+15:i] := tmp[31:16] +ENDFOR + + + SSE +
xmmintrin.h
+ Arithmetic +
+ + + + + Multiply the packed unsigned 16-bit integers in "a" and "b", producing intermediate 32-bit integers, and store the high 16 bits of the intermediate integers in "dst". + +FOR j := 0 to 3 + i := j*16 + tmp[31:0] := a[i+15:i] * b[i+15:i] + dst[i+15:i] := tmp[31:16] +ENDFOR + + + SSE +
xmmintrin.h
+ Arithmetic +
+ + Miscellaneous + + + + Compute the absolute differences of packed unsigned 8-bit integers in "a" and "b", then horizontally sum each consecutive 8 differences to produce four unsigned 16-bit integers, and pack these unsigned 16-bit integers in the low 16 bits of "dst". + +FOR j := 0 to 7 + i := j*8 + tmp[i+7:i] := ABS(a[i+7:i] - b[i+7:i]) +ENDFOR +dst[15:0] := tmp[7:0] + tmp[15:8] + tmp[23:16] + tmp[31:24] + tmp[39:32] + tmp[47:40] + tmp[55:48] + tmp[63:56] +dst[63:16] := 0 + + + SSE +
xmmintrin.h
+ Arithmetic +
+ + Miscellaneous + + + + Compute the absolute differences of packed unsigned 8-bit integers in "a" and "b", then horizontally sum each consecutive 8 differences to produce four unsigned 16-bit integers, and pack these unsigned 16-bit integers in the low 16 bits of "dst". + +FOR j := 0 to 7 + i := j*8 + tmp[i+7:i] := ABS(a[i+7:i] - b[i+7:i]) +ENDFOR +dst[15:0] := tmp[7:0] + tmp[15:8] + tmp[23:16] + tmp[31:24] + tmp[39:32] + tmp[47:40] + tmp[55:48] + tmp[63:56] +dst[63:16] := 0 + + + SSE +
xmmintrin.h
+ Arithmetic +
+ + + + + Add the lower single-precision (32-bit) floating-point element in "a" and "b", store the result in the lower element of "dst", and copy the upper 3 packed elements from "a" to the upper elements of "dst". + +dst[31:0] := a[31:0] + b[31:0] +dst[127:32] := a[127:32] + + + SSE +
xmmintrin.h
+ Arithmetic +
+ + + + + Add packed single-precision (32-bit) floating-point elements in "a" and "b", and store the results in "dst". + +FOR j := 0 to 3 + i := j*32 + dst[i+31:i] := a[i+31:i] + b[i+31:i] +ENDFOR + + + SSE +
xmmintrin.h
+ Arithmetic +
+ + + + + Subtract the lower single-precision (32-bit) floating-point element in "b" from the lower single-precision (32-bit) floating-point element in "a", store the result in the lower element of "dst", and copy the upper 3 packed elements from "a" to the upper elements of "dst". + +dst[31:0] := a[31:0] - b[31:0] +dst[127:32] := a[127:32] + + + SSE +
xmmintrin.h
+ Arithmetic +
+ + + + + Subtract packed single-precision (32-bit) floating-point elements in "b" from packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst". + +FOR j := 0 to 3 + i := j*32 + dst[i+31:i] := a[i+31:i] - b[i+31:i] +ENDFOR + + + SSE +
xmmintrin.h
+ Arithmetic +
+ + + + + Multiply the lower single-precision (32-bit) floating-point element in "a" and "b", store the result in the lower element of "dst", and copy the upper 3 packed elements from "a" to the upper elements of "dst". + +dst[31:0] := a[31:0] * b[31:0] +dst[127:32] := a[127:32] + + + SSE +
xmmintrin.h
+ Arithmetic +
+ + + + + Multiply packed single-precision (32-bit) floating-point elements in "a" and "b", and store the results in "dst". + +FOR j := 0 to 3 + i := j*32 + dst[i+31:i] := a[i+31:i] * b[i+31:i] +ENDFOR + + + SSE +
xmmintrin.h
+ Arithmetic +
+ + + + + Divide the lower single-precision (32-bit) floating-point element in "a" by the lower single-precision (32-bit) floating-point element in "b", store the result in the lower element of "dst", and copy the upper 3 packed elements from "a" to the upper elements of "dst". + +dst[31:0] := a[31:0] / b[31:0] +dst[127:32] := a[127:32] + + + SSE +
xmmintrin.h
+ Arithmetic +
+ + + + + Divide packed single-precision (32-bit) floating-point elements in "a" by packed elements in "b", and store the results in "dst". + +FOR j := 0 to 3 + i := 32*j + dst[i+31:i] := a[i+31:i] / b[i+31:i] +ENDFOR + + + SSE +
xmmintrin.h
+ Arithmetic +
+ + + + + Average packed unsigned 8-bit integers in "a" and "b", and store the results in "dst". + +FOR j := 0 to 7 + i := j*8 + dst[i+7:i] := (a[i+7:i] + b[i+7:i] + 1) >> 1 +ENDFOR + + + SSE +
xmmintrin.h
+ Probability/Statistics +
+ + + + + Average packed unsigned 8-bit integers in "a" and "b", and store the results in "dst". + +FOR j := 0 to 7 + i := j*8 + dst[i+7:i] := (a[i+7:i] + b[i+7:i] + 1) >> 1 +ENDFOR + + + SSE +
xmmintrin.h
+ Probability/Statistics +
+ + + + + Average packed unsigned 16-bit integers in "a" and "b", and store the results in "dst". + +FOR j := 0 to 3 + i := j*16 + dst[i+15:i] := (a[i+15:i] + b[i+15:i] + 1) >> 1 +ENDFOR + + + SSE +
xmmintrin.h
+ Probability/Statistics +
+ + + + + Average packed unsigned 16-bit integers in "a" and "b", and store the results in "dst". + +FOR j := 0 to 3 + i := j*16 + dst[i+15:i] := (a[i+15:i] + b[i+15:i] + 1) >> 1 +ENDFOR + + + SSE +
xmmintrin.h
+ Probability/Statistics +
+ + + + + Convert the signed 32-bit integer "b" to a single-precision (32-bit) floating-point element, store the result in the lower element of "dst", and copy the upper 3 packed elements from "a" to the upper elements of "dst". + +dst[31:0] := Convert_Int32_To_FP32(b[31:0]) +dst[127:32] := a[127:32] + + + SSE +
xmmintrin.h
+ Convert +
+ + + + + Convert the signed 32-bit integer "b" to a single-precision (32-bit) floating-point element, store the result in the lower element of "dst", and copy the upper 3 packed elements from "a" to the upper elements of "dst". + +dst[31:0] := Convert_Int32_To_FP32(b[31:0]) +dst[127:32] := a[127:32] + + + SSE +
xmmintrin.h
+ Convert +
+ + + + + Convert the signed 64-bit integer "b" to a single-precision (32-bit) floating-point element, store the result in the lower element of "dst", and copy the upper 3 packed elements from "a" to the upper elements of "dst". + +dst[31:0] := Convert_Int64_To_FP32(b[63:0]) +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + SSE +
xmmintrin.h
+ Convert +
+ + + + + Convert packed 32-bit integers in "b" to packed single-precision (32-bit) floating-point elements, store the results in the lower 2 elements of "dst", and copy the upper 2 packed elements from "a" to the upper elements of "dst". + +dst[31:0] := Convert_Int32_To_FP32(b[31:0]) +dst[63:32] := Convert_Int32_To_FP32(b[63:32]) +dst[95:64] := a[95:64] +dst[127:96] := a[127:96] + + + SSE +
xmmintrin.h
+ Convert +
+ + + + + Convert packed signed 32-bit integers in "b" to packed single-precision (32-bit) floating-point elements, store the results in the lower 2 elements of "dst", and copy the upper 2 packed elements from "a" to the upper elements of "dst". + +dst[31:0] := Convert_Int32_To_FP32(b[31:0]) +dst[63:32] := Convert_Int32_To_FP32(b[63:32]) +dst[95:64] := a[95:64] +dst[127:96] := a[127:96] + + + SSE +
xmmintrin.h
+ Convert +
+ + + + Convert packed 16-bit integers in "a" to packed single-precision (32-bit) floating-point elements, and store the results in "dst". + +FOR j := 0 to 3 + i := j*16 + m := j*32 + dst[m+31:m] := Convert_Int16_To_FP32(a[i+15:i]) +ENDFOR + + SSE +
xmmintrin.h
+ Convert +
+ + + + Convert packed unsigned 16-bit integers in "a" to packed single-precision (32-bit) floating-point elements, and store the results in "dst". + +FOR j := 0 to 3 + i := j*16 + m := j*32 + dst[m+31:m] := Convert_Int16_To_FP32(a[i+15:i]) +ENDFOR + + SSE +
xmmintrin.h
+ Convert +
+ + + + Convert the lower packed 8-bit integers in "a" to packed single-precision (32-bit) floating-point elements, and store the results in "dst". + +FOR j := 0 to 3 + i := j*8 + m := j*32 + dst[m+31:m] := Convert_Int8_To_FP32(a[i+7:i]) +ENDFOR + + SSE +
xmmintrin.h
+ Convert +
+ + + + Convert the lower packed unsigned 8-bit integers in "a" to packed single-precision (32-bit) floating-point elements, and store the results in "dst". + +FOR j := 0 to 3 + i := j*8 + m := j*32 + dst[m+31:m] := Convert_Int8_To_FP32(a[i+7:i]) +ENDFOR + + SSE +
xmmintrin.h
+ Convert +
+ + + + + Convert packed signed 32-bit integers in "a" to packed single-precision (32-bit) floating-point elements, store the results in the lower 2 elements of "dst", then covert the packed signed 32-bit integers in "b" to single-precision (32-bit) floating-point element, and store the results in the upper 2 elements of "dst". + +dst[31:0] := Convert_Int32_To_FP32(a[31:0]) +dst[63:32] := Convert_Int32_To_FP32(a[63:32]) +dst[95:64] := Convert_Int32_To_FP32(b[31:0]) +dst[127:96] := Convert_Int32_To_FP32(b[63:32]) + + SSE +
xmmintrin.h
+ Convert +
+ + + + Convert the lower single-precision (32-bit) floating-point element in "a" to a 32-bit integer, and store the result in "dst". + +dst[31:0] := Convert_FP32_To_Int32(a[31:0]) + + + SSE +
xmmintrin.h
+ Convert +
+ + + + Convert the lower single-precision (32-bit) floating-point element in "a" to a 32-bit integer, and store the result in "dst". + +dst[31:0] := Convert_FP32_To_Int32(a[31:0]) + + + SSE +
xmmintrin.h
+ Convert +
+ + + + Convert the lower single-precision (32-bit) floating-point element in "a" to a 64-bit integer, and store the result in "dst". + +dst[63:0] := Convert_FP32_To_Int64(a[31:0]) + + + SSE +
xmmintrin.h
+ Convert +
+ + + + Copy the lower single-precision (32-bit) floating-point element of "a" to "dst". + +dst[31:0] := a[31:0] + + + SSE +
xmmintrin.h
+ Convert +
+ + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed 32-bit integers, and store the results in "dst". + +FOR j := 0 to 1 + i := 32*j + dst[i+31:i] := Convert_FP32_To_Int32(a[i+31:i]) +ENDFOR + + + SSE +
xmmintrin.h
+ Convert +
+ + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed 32-bit integers, and store the results in "dst". + +FOR j := 0 to 1 + i := 32*j + dst[i+31:i] := Convert_FP32_To_Int32(a[i+31:i]) +ENDFOR + + + SSE +
xmmintrin.h
+ Convert +
+ + + + Convert the lower single-precision (32-bit) floating-point element in "a" to a 32-bit integer with truncation, and store the result in "dst". + +dst[31:0] := Convert_FP32_To_Int32_Truncate(a[31:0]) + + + SSE +
xmmintrin.h
+ Convert +
+ + + + Convert the lower single-precision (32-bit) floating-point element in "a" to a 32-bit integer with truncation, and store the result in "dst". + +dst[31:0] := Convert_FP32_To_Int32_Truncate(a[31:0]) + + + SSE +
xmmintrin.h
+ Convert +
+ + + + Convert the lower single-precision (32-bit) floating-point element in "a" to a 64-bit integer with truncation, and store the result in "dst". + +dst[63:0] := Convert_FP32_To_Int64_Truncate(a[31:0]) + + + SSE +
xmmintrin.h
+ Convert +
+ + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed 32-bit integers with truncation, and store the results in "dst". + +FOR j := 0 to 1 + i := 32*j + dst[i+31:i] := Convert_FP32_To_Int32_Truncate(a[i+31:i]) +ENDFOR + + + SSE +
xmmintrin.h
+ Convert +
+ + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed 32-bit integers with truncation, and store the results in "dst". + +FOR j := 0 to 1 + i := 32*j + dst[i+31:i] := Convert_FP32_To_Int32_Truncate(a[i+31:i]) +ENDFOR + + + SSE +
xmmintrin.h
+ Convert +
+ + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed 16-bit integers, and store the results in "dst". Note: this intrinsic will generate 0x7FFF, rather than 0x8000, for input values between 0x7FFF and 0x7FFFFFFF. + +FOR j := 0 to 3 + i := 16*j + k := 32*j + IF a[k+31:k] >= FP32(0x7FFF) && a[k+31:k] <= FP32(0x7FFFFFFF) + dst[i+15:i] := 0x7FFF + ELSE + dst[i+15:i] := Convert_FP32_To_Int16(a[k+31:k]) + FI +ENDFOR + + SSE +
xmmintrin.h
+ Convert +
+ + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed 8-bit integers, and store the results in lower 4 elements of "dst". Note: this intrinsic will generate 0x7F, rather than 0x80, for input values between 0x7F and 0x7FFFFFFF. + +FOR j := 0 to 3 + i := 8*j + k := 32*j + IF a[k+31:k] >= FP32(0x7F) && a[k+31:k] <= FP32(0x7FFFFFFF) + dst[i+7:i] := 0x7F + ELSE + dst[i+7:i] := Convert_FP32_To_Int8(a[k+31:k]) + FI +ENDFOR + + SSE +
xmmintrin.h
+ Convert +
+ + + + + Store 64-bits of integer data from "a" into memory using a non-temporal memory hint. + +MEM[mem_addr+63:mem_addr] := a[63:0] + + + SSE +
immintrin.h
+ Store +
+ + + + + + Conditionally store 8-bit integer elements from "a" into memory using "mask" (elements are not stored when the highest bit is not set in the corresponding element) and a non-temporal memory hint. + +FOR j := 0 to 7 + i := j*8 + IF mask[i+7] + MEM[mem_addr+i+7:mem_addr+i] := a[i+7:i] + FI +ENDFOR + + + SSE +
immintrin.h
+ Store +
+ + + + + + Conditionally store 8-bit integer elements from "a" into memory using "mask" (elements are not stored when the highest bit is not set in the corresponding element). + +FOR j := 0 to 7 + i := j*8 + IF mask[i+7] + MEM[mem_addr+i+7:mem_addr+i] := a[i+7:i] + FI +ENDFOR + + + SSE +
immintrin.h
+ Store +
+ + + + + Store 128-bits (composed of 4 packed single-precision (32-bit) floating-point elements) from "a" into memory using a non-temporal memory hint. + "mem_addr" must be aligned on a 16-byte boundary or a general-protection exception may be generated. + +MEM[mem_addr+127:mem_addr] := a[127:0] + + + SSE +
immintrin.h
+ Store +
+ + + + + Store the upper 2 single-precision (32-bit) floating-point elements from "a" into memory. + +MEM[mem_addr+31:mem_addr] := a[95:64] +MEM[mem_addr+63:mem_addr+32] := a[127:96] + + + SSE +
immintrin.h
+ Store +
+ + + + + Store the lower 2 single-precision (32-bit) floating-point elements from "a" into memory. + +MEM[mem_addr+31:mem_addr] := a[31:0] +MEM[mem_addr+63:mem_addr+32] := a[63:32] + + + SSE +
immintrin.h
+ Store +
+ + + + + Store the lower single-precision (32-bit) floating-point element from "a" into memory. "mem_addr" does not need to be aligned on any particular boundary. + +MEM[mem_addr+31:mem_addr] := a[31:0] + + + SSE +
immintrin.h
+ Store +
+ + + + + Store the lower single-precision (32-bit) floating-point element from "a" into 4 contiguous elements in memory. "mem_addr" must be aligned on a 16-byte boundary or a general-protection exception may be generated. + +MEM[mem_addr+31:mem_addr] := a[31:0] +MEM[mem_addr+63:mem_addr+32] := a[31:0] +MEM[mem_addr+95:mem_addr+64] := a[31:0] +MEM[mem_addr+127:mem_addr+96] := a[31:0] + + SSE +
immintrin.h
+ Store +
+ + + + + Store the lower single-precision (32-bit) floating-point element from "a" into 4 contiguous elements in memory. "mem_addr" must be aligned on a 16-byte boundary or a general-protection exception may be generated. + +MEM[mem_addr+31:mem_addr] := a[31:0] +MEM[mem_addr+63:mem_addr+32] := a[31:0] +MEM[mem_addr+95:mem_addr+64] := a[31:0] +MEM[mem_addr+127:mem_addr+96] := a[31:0] + + SSE +
immintrin.h
+ Store +
+ + + + + Store 128-bits (composed of 4 packed single-precision (32-bit) floating-point elements) from "a" into memory. + "mem_addr" must be aligned on a 16-byte boundary or a general-protection exception may be generated. + +MEM[mem_addr+127:mem_addr] := a[127:0] + + + SSE +
immintrin.h
+ Store +
+ + + + + Store 128-bits (composed of 4 packed single-precision (32-bit) floating-point elements) from "a" into memory. + "mem_addr" does not need to be aligned on any particular boundary. + +MEM[mem_addr+127:mem_addr] := a[127:0] + + + SSE +
immintrin.h
+ Store +
+ + + + + Store 4 single-precision (32-bit) floating-point elements from "a" into memory in reverse order. + "mem_addr" must be aligned on a 16-byte boundary or a general-protection exception may be generated. + +MEM[mem_addr+31:mem_addr] := a[127:96] +MEM[mem_addr+63:mem_addr+32] := a[95:64] +MEM[mem_addr+95:mem_addr+64] := a[63:32] +MEM[mem_addr+127:mem_addr+96] := a[31:0] + + + SSE +
immintrin.h
+ Store +
+ + + + Create mask from the most significant bit of each 8-bit element in "a", and store the result in "dst". + +FOR j := 0 to 7 + i := j*8 + dst[j] := a[i+7] +ENDFOR +dst[MAX:8] := 0 + + + SSE +
xmmintrin.h
+ Miscellaneous +
+ + + + Create mask from the most significant bit of each 8-bit element in "a", and store the result in "dst". + +FOR j := 0 to 7 + i := j*8 + dst[j] := a[i+7] +ENDFOR +dst[MAX:8] := 0 + + + SSE +
xmmintrin.h
+ Miscellaneous +
+ + + + Set each bit of mask "dst" based on the most significant bit of the corresponding packed single-precision (32-bit) floating-point element in "a". + +FOR j := 0 to 3 + i := j*32 + IF a[i+31] + dst[j] := 1 + ELSE + dst[j] := 0 + FI +ENDFOR +dst[MAX:4] := 0 + + + SSE +
xmmintrin.h
+ Miscellaneous +
+ + + + Compute the square root of the lower single-precision (32-bit) floating-point element in "a", store the result in the lower element of "dst", and copy the upper 3 packed elements from "a" to the upper elements of "dst". + +dst[31:0] := SQRT(a[31:0]) +dst[127:32] := a[127:32] + + + SSE +
xmmintrin.h
+ Elementary Math Functions +
+ + + + Compute the square root of packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst". + +FOR j := 0 to 3 + i := j*32 + dst[i+31:i] := SQRT(a[i+31:i]) +ENDFOR + + + SSE +
xmmintrin.h
+ Elementary Math Functions +
+ + + + Compute the approximate reciprocal of the lower single-precision (32-bit) floating-point element in "a", store the result in the lower element of "dst", and copy the upper 3 packed elements from "a" to the upper elements of "dst". The maximum relative error for this approximation is less than 1.5*2^-12. + +dst[31:0] := (1.0 / a[31:0]) +dst[127:32] := a[127:32] + + + SSE +
xmmintrin.h
+ Elementary Math Functions +
+ + + + Compute the approximate reciprocal of packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst". The maximum relative error for this approximation is less than 1.5*2^-12. + +FOR j := 0 to 3 + i := j*32 + dst[i+31:i] := (1.0 / a[i+31:i]) +ENDFOR + + + SSE +
xmmintrin.h
+ Elementary Math Functions +
+ + + + Compute the approximate reciprocal square root of the lower single-precision (32-bit) floating-point element in "a", store the result in the lower element of "dst", and copy the upper 3 packed elements from "a" to the upper elements of "dst". The maximum relative error for this approximation is less than 1.5*2^-12. + +dst[31:0] := (1.0 / SQRT(a[31:0])) +dst[127:32] := a[127:32] + + + SSE +
xmmintrin.h
+ Elementary Math Functions +
+ + + + Compute the approximate reciprocal square root of packed single-precision (32-bit) floating-point elements in "a", and store the results in "dst". The maximum relative error for this approximation is less than 1.5*2^-12. + +FOR j := 0 to 3 + i := j*32 + dst[i+31:i] := (1.0 / SQRT(a[i+31:i])) +ENDFOR + + + SSE +
xmmintrin.h
+ Elementary Math Functions +
+ + + + + Compute the bitwise AND of packed single-precision (32-bit) floating-point elements in "a" and "b", and store the results in "dst". + +FOR j := 0 to 3 + i := j*32 + dst[i+31:i] := (a[i+31:i] AND b[i+31:i]) +ENDFOR + + + SSE +
xmmintrin.h
+ Logical +
+ + + + + Compute the bitwise NOT of packed single-precision (32-bit) floating-point elements in "a" and then AND with "b", and store the results in "dst". + +FOR j := 0 to 3 + i := j*32 + dst[i+31:i] := ((NOT a[i+31:i]) AND b[i+31:i]) +ENDFOR + + + SSE +
xmmintrin.h
+ Logical +
+ + + + + Compute the bitwise OR of packed single-precision (32-bit) floating-point elements in "a" and "b", and store the results in "dst". + +FOR j := 0 to 3 + i := j*32 + dst[i+31:i] := a[i+31:i] OR b[i+31:i] +ENDFOR + + + SSE +
xmmintrin.h
+ Logical +
+ + + + + Compute the bitwise XOR of packed single-precision (32-bit) floating-point elements in "a" and "b", and store the results in "dst". + +FOR j := 0 to 3 + i := j*32 + dst[i+31:i] := a[i+31:i] XOR b[i+31:i] +ENDFOR + + + SSE +
xmmintrin.h
+ Logical +
+ + + + + Compare the lower single-precision (32-bit) floating-point elements in "a" and "b" for equality, store the result in the lower element of "dst", and copy the upper 3 packed elements from "a" to the upper elements of "dst". + +dst[31:0] := ( a[31:0] == b[31:0] ) ? 0xFFFFFFFF : 0 +dst[127:32] := a[127:32] + + + SSE +
xmmintrin.h
+ Compare +
+ + + + + Compare packed single-precision (32-bit) floating-point elements in "a" and "b" for equality, and store the results in "dst". + +FOR j := 0 to 3 + i := j*32 + dst[i+31:i] := ( a[i+31:i] == b[i+31:i] ) ? 0xFFFFFFFF : 0 +ENDFOR + + + SSE +
xmmintrin.h
+ Compare +
+ + + + + Compare the lower single-precision (32-bit) floating-point elements in "a" and "b" for less-than, store the result in the lower element of "dst", and copy the upper 3 packed elements from "a" to the upper elements of "dst". + +dst[31:0] := ( a[31:0] < b[31:0] ) ? 0xFFFFFFFF : 0 +dst[127:32] := a[127:32] + + + SSE +
xmmintrin.h
+ Compare +
+ + + + + Compare packed single-precision (32-bit) floating-point elements in "a" and "b" for less-than, and store the results in "dst". + +FOR j := 0 to 3 + i := j*32 + dst[i+31:i] := ( a[i+31:i] < b[i+31:i] ) ? 0xFFFFFFFF : 0 +ENDFOR + + + SSE +
xmmintrin.h
+ Compare +
+ + + + + Compare the lower single-precision (32-bit) floating-point elements in "a" and "b" for less-than-or-equal, store the result in the lower element of "dst", and copy the upper 3 packed elements from "a" to the upper elements of "dst". + +dst[31:0] := ( a[31:0] <= b[31:0] ) ? 0xFFFFFFFF : 0 +dst[127:32] := a[127:32] + + + SSE +
xmmintrin.h
+ Compare +
+ + + + + Compare packed single-precision (32-bit) floating-point elements in "a" and "b" for less-than-or-equal, and store the results in "dst". + +FOR j := 0 to 3 + i := j*32 + dst[i+31:i] := ( a[i+31:i] <= b[i+31:i] ) ? 0xFFFFFFFF : 0 +ENDFOR + + + SSE +
xmmintrin.h
+ Compare +
+ + + + + Compare the lower single-precision (32-bit) floating-point elements in "a" and "b" for greater-than, store the result in the lower element of "dst", and copy the upper 3 packed elements from "a" to the upper elements of "dst". + +dst[31:0] := ( a[31:0] > b[31:0] ) ? 0xFFFFFFFF : 0 +dst[127:32] := a[127:32] + + + SSE +
xmmintrin.h
+ Compare +
+ + + + + Compare packed single-precision (32-bit) floating-point elements in "a" and "b" for greater-than, and store the results in "dst". + +FOR j := 0 to 3 + i := j*32 + dst[i+31:i] := ( a[i+31:i] > b[i+31:i] ) ? 0xFFFFFFFF : 0 +ENDFOR + + + SSE +
xmmintrin.h
+ Compare +
+ + + + + Compare the lower single-precision (32-bit) floating-point elements in "a" and "b" for greater-than-or-equal, store the result in the lower element of "dst", and copy the upper 3 packed elements from "a" to the upper elements of "dst". + +dst[31:0] := ( a[31:0] >= b[31:0] ) ? 0xFFFFFFFF : 0 +dst[127:32] := a[127:32] + + + SSE +
xmmintrin.h
+ Compare +
+ + + + + Compare packed single-precision (32-bit) floating-point elements in "a" and "b" for greater-than-or-equal, and store the results in "dst". + +FOR j := 0 to 3 + i := j*32 + dst[i+31:i] := ( a[i+31:i] >= b[i+31:i] ) ? 0xFFFFFFFF : 0 +ENDFOR + + + SSE +
xmmintrin.h
+ Compare +
+ + + + + Compare the lower single-precision (32-bit) floating-point elements in "a" and "b" for not-equal, store the result in the lower element of "dst", and copy the upper 3 packed elements from "a" to the upper elements of "dst". + +dst[31:0] := ( a[31:0] != b[31:0] ) ? 0xFFFFFFFF : 0 +dst[127:32] := a[127:32] + + + SSE +
xmmintrin.h
+ Compare +
+ + + + + Compare packed single-precision (32-bit) floating-point elements in "a" and "b" for not-equal, and store the results in "dst". + +FOR j := 0 to 3 + i := j*32 + dst[i+31:i] := ( a[i+31:i] != b[i+31:i] ) ? 0xFFFFFFFF : 0 +ENDFOR + + + SSE +
xmmintrin.h
+ Compare +
+ + + + + Compare the lower single-precision (32-bit) floating-point elements in "a" and "b" for not-less-than, store the result in the lower element of "dst", and copy the upper 3 packed elements from "a" to the upper elements of "dst". + +dst[31:0] := (!( a[31:0] < b[31:0] )) ? 0xFFFFFFFF : 0 +dst[127:32] := a[127:32] + + + SSE +
xmmintrin.h
+ Compare +
+ + + + + Compare packed single-precision (32-bit) floating-point elements in "a" and "b" for not-less-than, and store the results in "dst". + +FOR j := 0 to 3 + i := j*32 + dst[i+31:i] := !( a[i+31:i] < b[i+31:i] ) ? 0xFFFFFFFF : 0 +ENDFOR + + + SSE +
xmmintrin.h
+ Compare +
+ + + + + Compare the lower single-precision (32-bit) floating-point elements in "a" and "b" for not-less-than-or-equal, store the result in the lower element of "dst", and copy the upper 3 packed elements from "a" to the upper elements of "dst". + +dst[31:0] := (!( a[31:0] <= b[31:0] )) ? 0xFFFFFFFF : 0 +dst[127:32] := a[127:32] + + + SSE +
xmmintrin.h
+ Compare +
+ + + + + Compare packed single-precision (32-bit) floating-point elements in "a" and "b" for not-less-than-or-equal, and store the results in "dst". + +FOR j := 0 to 3 + i := j*32 + dst[i+31:i] := (!( a[i+31:i] <= b[i+31:i] )) ? 0xFFFFFFFF : 0 +ENDFOR + + + SSE +
xmmintrin.h
+ Compare +
+ + + + + Compare the lower single-precision (32-bit) floating-point elements in "a" and "b" for not-greater-than, store the result in the lower element of "dst", and copy the upper 3 packed elements from "a" to the upper elements of "dst". + +dst[31:0] := (!( a[31:0] > b[31:0] )) ? 0xFFFFFFFF : 0 +dst[127:32] := a[127:32] + + + SSE +
xmmintrin.h
+ Compare +
+ + + + + Compare packed single-precision (32-bit) floating-point elements in "a" and "b" for not-greater-than, and store the results in "dst". + +FOR j := 0 to 3 + i := j*32 + dst[i+31:i] := (!( a[i+31:i] > b[i+31:i] )) ? 0xFFFFFFFF : 0 +ENDFOR + + + SSE +
xmmintrin.h
+ Compare +
+ + + + + Compare the lower single-precision (32-bit) floating-point elements in "a" and "b" for not-greater-than-or-equal, store the result in the lower element of "dst", and copy the upper 3 packed elements from "a" to the upper elements of "dst". + +dst[31:0] := (!( a[31:0] >= b[31:0] )) ? 0xFFFFFFFF : 0 +dst[127:32] := a[127:32] + + + SSE +
xmmintrin.h
+ Compare +
+ + + + + Compare packed single-precision (32-bit) floating-point elements in "a" and "b" for not-greater-than-or-equal, and store the results in "dst". + +FOR j := 0 to 3 + i := j*32 + dst[i+31:i] := (!( a[i+31:i] >= b[i+31:i] )) ? 0xFFFFFFFF : 0 +ENDFOR + + + SSE +
xmmintrin.h
+ Compare +
+ + + + + Compare the lower single-precision (32-bit) floating-point elements in "a" and "b" to see if neither is NaN, store the result in the lower element of "dst", and copy the upper 3 packed elements from "a" to the upper elements of "dst". + dst[31:0] := ( a[31:0] != NaN AND b[31:0] != NaN ) ? 0xFFFFFFFF : 0 +dst[127:32] := a[127:32] + + + SSE +
xmmintrin.h
+ Compare +
+ + + + + Compare packed single-precision (32-bit) floating-point elements in "a" and "b" to see if neither is NaN, and store the results in "dst". + FOR j := 0 to 3 + i := j*32 + dst[i+31:i] := ( a[i+31:i] != NaN AND b[i+31:i] != NaN ) ? 0xFFFFFFFF : 0 +ENDFOR + + + SSE +
xmmintrin.h
+ Compare +
+ + + + + Compare the lower single-precision (32-bit) floating-point elements in "a" and "b" to see if either is NaN, store the result in the lower element of "dst", and copy the upper 3 packed elements from "a" to the upper elements of "dst". + dst[31:0] := ( a[31:0] == NaN OR b[31:0] == NaN ) ? 0xFFFFFFFF : 0 +dst[127:32] := a[127:32] + + + SSE +
xmmintrin.h
+ Compare +
+ + + + + Compare packed single-precision (32-bit) floating-point elements in "a" and "b" to see if either is NaN, and store the results in "dst". + FOR j := 0 to 3 + i := j*32 + dst[i+31:i] := ( a[i+31:i] == NaN OR b[i+31:i] == NaN ) ? 0xFFFFFFFF : 0 +ENDFOR + + + SSE +
xmmintrin.h
+ Compare +
+ + + + + Compare the lower single-precision (32-bit) floating-point element in "a" and "b" for equality, and return the boolean result (0 or 1). + RETURN ( a[31:0] != NaN AND b[31:0] != NaN AND a[31:0] == b[31:0] ) ? 1 : 0 + + + SSE +
xmmintrin.h
+ Compare +
+ + + + + Compare the lower single-precision (32-bit) floating-point element in "a" and "b" for less-than, and return the boolean result (0 or 1). + RETURN ( a[31:0] != NaN AND b[31:0] != NaN AND a[31:0] < b[31:0] ) ? 1 : 0 + + + SSE +
xmmintrin.h
+ Compare +
+ + + + + Compare the lower single-precision (32-bit) floating-point element in "a" and "b" for less-than-or-equal, and return the boolean result (0 or 1). + RETURN ( a[31:0] != NaN AND b[31:0] != NaN AND a[31:0] <= b[31:0] ) ? 1 : 0 + + + SSE +
xmmintrin.h
+ Compare +
+ + + + + Compare the lower single-precision (32-bit) floating-point element in "a" and "b" for greater-than, and return the boolean result (0 or 1). + RETURN ( a[31:0] != NaN AND b[31:0] != NaN AND a[31:0] > b[31:0] ) ? 1 : 0 + + + SSE +
xmmintrin.h
+ Compare +
+ + + + + Compare the lower single-precision (32-bit) floating-point element in "a" and "b" for greater-than-or-equal, and return the boolean result (0 or 1). + RETURN ( a[31:0] != NaN AND b[31:0] != NaN AND a[31:0] >= b[31:0] ) ? 1 : 0 + + + SSE +
xmmintrin.h
+ Compare +
+ + + + + Compare the lower single-precision (32-bit) floating-point element in "a" and "b" for not-equal, and return the boolean result (0 or 1). + RETURN ( a[31:0] == NaN OR b[31:0] == NaN OR a[31:0] != b[31:0] ) ? 1 : 0 + + + SSE +
xmmintrin.h
+ Compare +
+ + + + + Compare the lower single-precision (32-bit) floating-point element in "a" and "b" for equality, and return the boolean result (0 or 1). This instruction will not signal an exception for QNaNs. + RETURN ( a[31:0] != NaN AND b[31:0] != NaN AND a[31:0] == b[31:0] ) ? 1 : 0 + + + SSE +
xmmintrin.h
+ Compare +
+ + + + + Compare the lower single-precision (32-bit) floating-point element in "a" and "b" for less-than, and return the boolean result (0 or 1). This instruction will not signal an exception for QNaNs. + RETURN ( a[31:0] != NaN AND b[31:0] != NaN AND a[31:0] < b[31:0] ) ? 1 : 0 + + + SSE +
xmmintrin.h
+ Compare +
+ + + + + Compare the lower single-precision (32-bit) floating-point element in "a" and "b" for less-than-or-equal, and return the boolean result (0 or 1). This instruction will not signal an exception for QNaNs. + RETURN ( a[31:0] != NaN AND b[31:0] != NaN AND a[31:0] <= b[31:0] ) ? 1 : 0 + + + SSE +
xmmintrin.h
+ Compare +
+ + + + + Compare the lower single-precision (32-bit) floating-point element in "a" and "b" for greater-than, and return the boolean result (0 or 1). This instruction will not signal an exception for QNaNs. + RETURN ( a[31:0] != NaN AND b[31:0] != NaN AND a[31:0] > b[31:0] ) ? 1 : 0 + + + SSE +
xmmintrin.h
+ Compare +
+ + + + + Compare the lower single-precision (32-bit) floating-point element in "a" and "b" for greater-than-or-equal, and return the boolean result (0 or 1). This instruction will not signal an exception for QNaNs. + RETURN ( a[31:0] != NaN AND b[31:0] != NaN AND a[31:0] >= b[31:0] ) ? 1 : 0 + + + SSE +
xmmintrin.h
+ Compare +
+ + + + + Compare the lower single-precision (32-bit) floating-point element in "a" and "b" for not-equal, and return the boolean result (0 or 1). This instruction will not signal an exception for QNaNs. + RETURN ( a[31:0] == NaN OR b[31:0] == NaN OR a[31:0] != b[31:0] ) ? 1 : 0 + + + SSE +
xmmintrin.h
+ Compare +
+ + + + Copy single-precision (32-bit) floating-point element "a" to the lower element of "dst", and zero the upper 3 elements. + +dst[31:0] := a[31:0] +dst[127:32] := 0 + + SSE +
xmmintrin.h
+ Set +
+ + + + Broadcast single-precision (32-bit) floating-point value "a" to all elements of "dst". + +FOR j := 0 to 3 + i := j*32 + dst[i+31:i] := a[31:0] +ENDFOR + + SSE +
xmmintrin.h
+ Set +
+ + + + Broadcast single-precision (32-bit) floating-point value "a" to all elements of "dst". + +FOR j := 0 to 3 + i := j*32 + dst[i+31:i] := a[31:0] +ENDFOR + + SSE +
xmmintrin.h
+ Set +
+ + + + + + + Set packed single-precision (32-bit) floating-point elements in "dst" with the supplied values. + +dst[31:0] := e0 +dst[63:32] := e1 +dst[95:64] := e2 +dst[127:96] := e3 + + SSE +
xmmintrin.h
+ Set +
+ + + + + + + Set packed single-precision (32-bit) floating-point elements in "dst" with the supplied values in reverse order. + +dst[31:0] := e3 +dst[63:32] := e2 +dst[95:64] := e1 +dst[127:96] := e0 + + SSE +
xmmintrin.h
+ Set +
+ + + + Return vector of type __m128 with all elements set to zero. + +dst[MAX:0] := 0 + + + SSE +
xmmintrin.h
+ Set +
+ + + + + Load 2 single-precision (32-bit) floating-point elements from memory into the upper 2 elements of "dst", and copy the lower 2 elements from "a" to "dst". "mem_addr" does not need to be aligned on any particular boundary. + +dst[31:0] := a[31:0] +dst[63:32] := a[63:32] +dst[95:64] := MEM[mem_addr+31:mem_addr] +dst[127:96] := MEM[mem_addr+63:mem_addr+32] + + + SSE +
immintrin.h
+ Load +
+ + + + + Load 2 single-precision (32-bit) floating-point elements from memory into the lower 2 elements of "dst", and copy the upper 2 elements from "a" to "dst". "mem_addr" does not need to be aligned on any particular boundary. + +dst[31:0] := MEM[mem_addr+31:mem_addr] +dst[63:32] := MEM[mem_addr+63:mem_addr+32] +dst[95:64] := a[95:64] +dst[127:96] := a[127:96] + + + SSE +
immintrin.h
+ Load +
+ + + + Load a single-precision (32-bit) floating-point element from memory into the lower of "dst", and zero the upper 3 elements. "mem_addr" does not need to be aligned on any particular boundary. + +dst[31:0] := MEM[mem_addr+31:mem_addr] +dst[127:32] := 0 + + + SSE +
immintrin.h
+ Load +
+ + + + Load a single-precision (32-bit) floating-point element from memory into all elements of "dst". + +dst[31:0] := MEM[mem_addr+31:mem_addr] +dst[63:32] := MEM[mem_addr+31:mem_addr] +dst[95:64] := MEM[mem_addr+31:mem_addr] +dst[127:96] := MEM[mem_addr+31:mem_addr] + + SSE +
immintrin.h
+ Load +
+ + + + Load a single-precision (32-bit) floating-point element from memory into all elements of "dst". + +dst[31:0] := MEM[mem_addr+31:mem_addr] +dst[63:32] := MEM[mem_addr+31:mem_addr] +dst[95:64] := MEM[mem_addr+31:mem_addr] +dst[127:96] := MEM[mem_addr+31:mem_addr] + + SSE +
immintrin.h
+ Load +
+ + + + Load 128-bits (composed of 4 packed single-precision (32-bit) floating-point elements) from memory into "dst". + "mem_addr" must be aligned on a 16-byte boundary or a general-protection exception may be generated. + +dst[127:0] := MEM[mem_addr+127:mem_addr] + + + SSE +
immintrin.h
+ Load +
+ + + + Load 128-bits (composed of 4 packed single-precision (32-bit) floating-point elements) from memory into "dst". + "mem_addr" does not need to be aligned on any particular boundary. + +dst[127:0] := MEM[mem_addr+127:mem_addr] + + + SSE +
immintrin.h
+ Load +
+ + + + Load 4 single-precision (32-bit) floating-point elements from memory into "dst" in reverse order. mem_addr must be aligned on a 16-byte boundary or a general-protection exception may be generated. + +dst[31:0] := MEM[mem_addr+127:mem_addr+96] +dst[63:32] := MEM[mem_addr+95:mem_addr+64] +dst[95:64] := MEM[mem_addr+63:mem_addr+32] +dst[127:96] := MEM[mem_addr+31:mem_addr] + + SSE +
immintrin.h
+ Load +
+ + + + + Move the lower single-precision (32-bit) floating-point element from "b" to the lower element of "dst", and copy the upper 3 packed elements from "a" to the upper elements of "dst". + +dst[31:0] := b[31:0] +dst[127:32] := a[127:32] + + + SSE +
xmmintrin.h
+ Move +
+ + + + + Move the upper 2 single-precision (32-bit) floating-point elements from "b" to the lower 2 elements of "dst", and copy the upper 2 elements from "a" to the upper 2 elements of "dst". + +dst[31:0] := b[95:64] +dst[63:32] := b[127:96] +dst[95:64] := a[95:64] +dst[127:96] := a[127:96] + + + SSE +
xmmintrin.h
+ Move +
+ + + + + Move the lower 2 single-precision (32-bit) floating-point elements from "b" to the upper 2 elements of "dst", and copy the lower 2 elements from "a" to the lower 2 elements of "dst". + +dst[31:0] := a[31:0] +dst[63:32] := a[63:32] +dst[95:64] := b[31:0] +dst[127:96] := b[63:32] + + + SSE +
xmmintrin.h
+ Move +
+ + + + + + Return vector of type __m128d with undefined elements. + SSE2 +
emmintrin.h
+ General Support +
+ + + + Return vector of type __m128i with undefined elements. + SSE2 +
emmintrin.h
+ General Support +
+ + + + Provide a hint to the processor that the code sequence is a spin-wait loop. This can help improve the performance and power consumption of spin-wait loops. + + SSE2 +
emmintrin.h
+ General Support +
+ + + + Invalidate and flush the cache line that contains "p" from all levels of the cache hierarchy. + + SSE2 +
emmintrin.h
+ General Support +
+ + + + Perform a serializing operation on all load-from-memory instructions that were issued prior to this instruction. Guarantees that every load instruction that precedes, in program order, is globally visible before any load instruction which follows the fence in program order. + + SSE2 +
emmintrin.h
+ General Support +
+ + + + Perform a serializing operation on all load-from-memory and store-to-memory instructions that were issued prior to this instruction. Guarantees that every memory access that precedes, in program order, the memory fence instruction is globally visible before any memory instruction which follows the fence in program order. + + SSE2 +
emmintrin.h
+ General Support +
+ + + + Load unaligned 64-bit integer from memory into the first element of "dst". + +dst[63:0] := MEM[mem_addr+63:mem_addr] +dst[MAX:64] := 0 + + + SSE2 +
immintrin.h
+ Load +
+ + + + Load unaligned 16-bit integer from memory into the first element of "dst". + +dst[15:0] := MEM[mem_addr+15:mem_addr] +dst[MAX:16] := 0 + + SSE2 +
immintrin.h
+ Load +
+ + + + Load unaligned 32-bit integer from memory into the first element of "dst". + +dst[31:0] := MEM[mem_addr+31:mem_addr] +dst[MAX:32] := 0 + + + SSE2 +
emmintrin.h
+ Load +
+ + + + Load 64-bit integer from memory into the first element of "dst". + +dst[63:0] := MEM[mem_addr+63:mem_addr] +dst[MAX:64] := 0 + + + SSE2 +
emmintrin.h
+ Load +
+ + + + Load 128-bits of integer data from memory into "dst". + "mem_addr" must be aligned on a 16-byte boundary or a general-protection exception may be generated. + +dst[127:0] := MEM[mem_addr+127:mem_addr] + + + SSE2 +
emmintrin.h
+ Load +
+ + + + Load 128-bits of integer data from memory into "dst". + "mem_addr" does not need to be aligned on any particular boundary. + +dst[127:0] := MEM[mem_addr+127:mem_addr] + + + SSE2 +
emmintrin.h
+ Load +
+ + + + Load 128-bits (composed of 2 packed double-precision (64-bit) floating-point elements) from memory into "dst". + "mem_addr" must be aligned on a 16-byte boundary or a general-protection exception may be generated. + +dst[127:0] := MEM[mem_addr+127:mem_addr] + + + SSE2 +
emmintrin.h
+ Load +
+ + + + Load a double-precision (64-bit) floating-point element from memory into both elements of "dst". + +dst[63:0] := MEM[mem_addr+63:mem_addr] +dst[127:64] := MEM[mem_addr+63:mem_addr] + + + SSE2 +
emmintrin.h
+ Load +
+ + + + Load a double-precision (64-bit) floating-point element from memory into both elements of "dst". + +dst[63:0] := MEM[mem_addr+63:mem_addr] +dst[127:64] := MEM[mem_addr+63:mem_addr] + + + SSE2 +
emmintrin.h
+ Load +
+ + + + Load 2 double-precision (64-bit) floating-point elements from memory into "dst" in reverse order. mem_addr must be aligned on a 16-byte boundary or a general-protection exception may be generated. + +dst[63:0] := MEM[mem_addr+127:mem_addr+64] +dst[127:64] := MEM[mem_addr+63:mem_addr] + + + SSE2 +
emmintrin.h
+ Load +
+ + + + Load 128-bits (composed of 2 packed double-precision (64-bit) floating-point elements) from memory into "dst". + "mem_addr" does not need to be aligned on any particular boundary. + +dst[127:0] := MEM[mem_addr+127:mem_addr] + + + SSE2 +
emmintrin.h
+ Load +
+ + + + Load a double-precision (64-bit) floating-point element from memory into the lower of "dst", and zero the upper element. "mem_addr" does not need to be aligned on any particular boundary. + +dst[63:0] := MEM[mem_addr+63:mem_addr] +dst[127:64] := 0 + + + SSE2 +
emmintrin.h
+ Load +
+ + + + + Load a double-precision (64-bit) floating-point element from memory into the upper element of "dst", and copy the lower element from "a" to "dst". "mem_addr" does not need to be aligned on any particular boundary. + +dst[63:0] := a[63:0] +dst[127:64] := MEM[mem_addr+63:mem_addr] + + + SSE2 +
emmintrin.h
+ Load +
+ + + + + Load a double-precision (64-bit) floating-point element from memory into the lower element of "dst", and copy the upper element from "a" to "dst". "mem_addr" does not need to be aligned on any particular boundary. + +dst[63:0] := MEM[mem_addr+63:mem_addr] +dst[127:64] := a[127:64] + + + SSE2 +
emmintrin.h
+ Load +
+ + + + + Store 16-bit integer from the first element of "a" into memory. "mem_addr" does not need to be aligned on any particular boundary. + +MEM[mem_addr+15:mem_addr] := a[15:0] + + SSE2 +
immintrin.h
+ Store +
+ + + + + Store 64-bit integer from the first element of "a" into memory. "mem_addr" does not need to be aligned on any particular boundary. + +MEM[mem_addr+63:mem_addr] := a[63:0] + + + SSE2 +
immintrin.h
+ Store +
+ + + + + Store 32-bit integer from the first element of "a" into memory. "mem_addr" does not need to be aligned on any particular boundary. + +MEM[mem_addr+31:mem_addr] := a[31:0] + + + SSE2 +
emmintrin.h
+ Store +
+ + + + + + Conditionally store 8-bit integer elements from "a" into memory using "mask" (elements are not stored when the highest bit is not set in the corresponding element) and a non-temporal memory hint. "mem_addr" does not need to be aligned on any particular boundary. + +FOR j := 0 to 15 + i := j*8 + IF mask[i+7] + MEM[mem_addr+i+7:mem_addr+i] := a[i+7:i] + FI +ENDFOR + + + SSE2 +
emmintrin.h
+ Store +
+ + + + + Store 128-bits of integer data from "a" into memory. + "mem_addr" must be aligned on a 16-byte boundary or a general-protection exception may be generated. + +MEM[mem_addr+127:mem_addr] := a[127:0] + + + SSE2 +
emmintrin.h
+ Store +
+ + + + + Store 128-bits of integer data from "a" into memory. + "mem_addr" does not need to be aligned on any particular boundary. + +MEM[mem_addr+127:mem_addr] := a[127:0] + + + SSE2 +
emmintrin.h
+ Store +
+ + + + + Store 64-bit integer from the first element of "a" into memory. + +MEM[mem_addr+63:mem_addr] := a[63:0] + + + SSE2 +
emmintrin.h
+ Store +
+ + + + + Store 128-bits of integer data from "a" into memory using a non-temporal memory hint. + "mem_addr" must be aligned on a 16-byte boundary or a general-protection exception may be generated. + +MEM[mem_addr+127:mem_addr] := a[127:0] + + + SSE2 +
emmintrin.h
+ Store +
+ + + + + Store 32-bit integer "a" into memory using a non-temporal hint to minimize cache pollution. If the cache line containing address "mem_addr" is already in the cache, the cache will be updated. + +MEM[mem_addr+31:mem_addr] := a[31:0] + + + SSE2 +
emmintrin.h
+ Store +
+ + + + + Store 64-bit integer "a" into memory using a non-temporal hint to minimize cache pollution. If the cache line containing address "mem_addr" is already in the cache, the cache will be updated. + +MEM[mem_addr+63:mem_addr] := a[63:0] + + + SSE2 +
emmintrin.h
+ Store +
+ + + + + Store 128-bits (composed of 2 packed double-precision (64-bit) floating-point elements) from "a" into memory using a non-temporal memory hint. + "mem_addr" must be aligned on a 16-byte boundary or a general-protection exception may be generated. + +MEM[mem_addr+127:mem_addr] := a[127:0] + + + SSE2 +
emmintrin.h
+ Store +
+ + + + + Store the lower double-precision (64-bit) floating-point element from "a" into memory. "mem_addr" does not need to be aligned on any particular boundary. + +MEM[mem_addr+63:mem_addr] := a[63:0] + + + SSE2 +
emmintrin.h
+ Store +
+ + + + + Store the lower double-precision (64-bit) floating-point element from "a" into 2 contiguous elements in memory. "mem_addr" must be aligned on a 16-byte boundary or a general-protection exception may be generated. + +MEM[mem_addr+63:mem_addr] := a[63:0] +MEM[mem_addr+127:mem_addr+64] := a[63:0] + + SSE2 +
emmintrin.h
+ Store +
+ + + + + Store the lower double-precision (64-bit) floating-point element from "a" into 2 contiguous elements in memory. "mem_addr" must be aligned on a 16-byte boundary or a general-protection exception may be generated. + +MEM[mem_addr+63:mem_addr] := a[63:0] +MEM[mem_addr+127:mem_addr+64] := a[63:0] + + SSE2 +
emmintrin.h
+ Store +
+ + + + + Store 128-bits (composed of 2 packed double-precision (64-bit) floating-point elements) from "a" into memory. + "mem_addr" must be aligned on a 16-byte boundary or a general-protection exception may be generated. + +MEM[mem_addr+127:mem_addr] := a[127:0] + + + SSE2 +
emmintrin.h
+ Store +
+ + + + + Store 128-bits (composed of 2 packed double-precision (64-bit) floating-point elements) from "a" into memory. + "mem_addr" does not need to be aligned on any particular boundary. + +MEM[mem_addr+127:mem_addr] := a[127:0] + + + SSE2 +
emmintrin.h
+ Store +
+ + + + + Store 2 double-precision (64-bit) floating-point elements from "a" into memory in reverse order. + "mem_addr" must be aligned on a 16-byte boundary or a general-protection exception may be generated. + +MEM[mem_addr+63:mem_addr] := a[127:64] +MEM[mem_addr+127:mem_addr+64] := a[63:0] + + SSE2 +
emmintrin.h
+ Store +
+ + + + + Store the upper double-precision (64-bit) floating-point element from "a" into memory. + +MEM[mem_addr+63:mem_addr] := a[127:64] + + + SSE2 +
emmintrin.h
+ Store +
+ + + + + Store the lower double-precision (64-bit) floating-point element from "a" into memory. + +MEM[mem_addr+63:mem_addr] := a[63:0] + + + SSE2 +
emmintrin.h
+ Store +
+ + + + + Add packed 8-bit integers in "a" and "b", and store the results in "dst". + +FOR j := 0 to 15 + i := j*8 + dst[i+7:i] := a[i+7:i] + b[i+7:i] +ENDFOR + + + SSE2 +
emmintrin.h
+ Arithmetic +
+ + + + + Add packed 16-bit integers in "a" and "b", and store the results in "dst". + +FOR j := 0 to 7 + i := j*16 + dst[i+15:i] := a[i+15:i] + b[i+15:i] +ENDFOR + + + SSE2 +
emmintrin.h
+ Arithmetic +
+ + + + + Add packed 32-bit integers in "a" and "b", and store the results in "dst". + +FOR j := 0 to 3 + i := j*32 + dst[i+31:i] := a[i+31:i] + b[i+31:i] +ENDFOR + + + SSE2 +
emmintrin.h
+ Arithmetic +
+ + + + + Add 64-bit integers "a" and "b", and store the result in "dst". + +dst[63:0] := a[63:0] + b[63:0] + + + SSE2 +
emmintrin.h
+ Arithmetic +
+ + + + + Add packed 64-bit integers in "a" and "b", and store the results in "dst". + +FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := a[i+63:i] + b[i+63:i] +ENDFOR + + + SSE2 +
emmintrin.h
+ Arithmetic +
+ + + + + Add packed signed 8-bit integers in "a" and "b" using saturation, and store the results in "dst". + +FOR j := 0 to 15 + i := j*8 + dst[i+7:i] := Saturate8( a[i+7:i] + b[i+7:i] ) +ENDFOR + + + SSE2 +
emmintrin.h
+ Arithmetic +
+ + + + + Add packed signed 16-bit integers in "a" and "b" using saturation, and store the results in "dst". + +FOR j := 0 to 7 + i := j*16 + dst[i+15:i] := Saturate16( a[i+15:i] + b[i+15:i] ) +ENDFOR + + + SSE2 +
emmintrin.h
+ Arithmetic +
+ + + + + Add packed unsigned 8-bit integers in "a" and "b" using saturation, and store the results in "dst". + +FOR j := 0 to 15 + i := j*8 + dst[i+7:i] := SaturateU8( a[i+7:i] + b[i+7:i] ) +ENDFOR + + + SSE2 +
emmintrin.h
+ Arithmetic +
+ + + + + Add packed unsigned 16-bit integers in "a" and "b" using saturation, and store the results in "dst". + +FOR j := 0 to 7 + i := j*16 + dst[i+15:i] := SaturateU16( a[i+15:i] + b[i+15:i] ) +ENDFOR + + + SSE2 +
emmintrin.h
+ Arithmetic +
+ + + + + Multiply packed signed 16-bit integers in "a" and "b", producing intermediate signed 32-bit integers. Horizontally add adjacent pairs of intermediate 32-bit integers, and pack the results in "dst". + +FOR j := 0 to 3 + i := j*32 + dst[i+31:i] := SignExtend32(a[i+31:i+16]*b[i+31:i+16]) + SignExtend32(a[i+15:i]*b[i+15:i]) +ENDFOR + + + SSE2 +
emmintrin.h
+ Arithmetic +
+ + + + + Multiply the packed signed 16-bit integers in "a" and "b", producing intermediate 32-bit integers, and store the high 16 bits of the intermediate integers in "dst". + +FOR j := 0 to 7 + i := j*16 + tmp[31:0] := SignExtend32(a[i+15:i]) * SignExtend32(b[i+15:i]) + dst[i+15:i] := tmp[31:16] +ENDFOR + + + SSE2 +
emmintrin.h
+ Arithmetic +
+ + + + + Multiply the packed unsigned 16-bit integers in "a" and "b", producing intermediate 32-bit integers, and store the high 16 bits of the intermediate integers in "dst". + +FOR j := 0 to 7 + i := j*16 + tmp[31:0] := a[i+15:i] * b[i+15:i] + dst[i+15:i] := tmp[31:16] +ENDFOR + + + SSE2 +
emmintrin.h
+ Arithmetic +
+ + + + + Multiply the packed 16-bit integers in "a" and "b", producing intermediate 32-bit integers, and store the low 16 bits of the intermediate integers in "dst". + +FOR j := 0 to 7 + i := j*16 + tmp[31:0] := SignExtend32(a[i+15:i]) * SignExtend32(b[i+15:i]) + dst[i+15:i] := tmp[15:0] +ENDFOR + + + SSE2 +
emmintrin.h
+ Arithmetic +
+ + + + + Multiply the low unsigned 32-bit integers from "a" and "b", and store the unsigned 64-bit result in "dst". + +dst[63:0] := a[31:0] * b[31:0] + + + SSE2 +
emmintrin.h
+ Arithmetic +
+ + + + + Multiply the low unsigned 32-bit integers from each packed 64-bit element in "a" and "b", and store the unsigned 64-bit results in "dst". + +FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := a[i+31:i] * b[i+31:i] +ENDFOR + + + SSE2 +
emmintrin.h
+ Arithmetic +
+ + Miscellaneous + + + + Compute the absolute differences of packed unsigned 8-bit integers in "a" and "b", then horizontally sum each consecutive 8 differences to produce two unsigned 16-bit integers, and pack these unsigned 16-bit integers in the low 16 bits of 64-bit elements in "dst". + +FOR j := 0 to 15 + i := j*8 + tmp[i+7:i] := ABS(a[i+7:i] - b[i+7:i]) +ENDFOR +FOR j := 0 to 1 + i := j*64 + dst[i+15:i] := tmp[i+7:i] + tmp[i+15:i+8] + tmp[i+23:i+16] + tmp[i+31:i+24] + \ + tmp[i+39:i+32] + tmp[i+47:i+40] + tmp[i+55:i+48] + tmp[i+63:i+56] + dst[i+63:i+16] := 0 +ENDFOR + + + SSE2 +
emmintrin.h
+ Arithmetic +
+ + + + + Subtract packed 8-bit integers in "b" from packed 8-bit integers in "a", and store the results in "dst". + +FOR j := 0 to 15 + i := j*8 + dst[i+7:i] := a[i+7:i] - b[i+7:i] +ENDFOR + + + SSE2 +
emmintrin.h
+ Arithmetic +
+ + + + + Subtract packed 16-bit integers in "b" from packed 16-bit integers in "a", and store the results in "dst". + +FOR j := 0 to 7 + i := j*16 + dst[i+15:i] := a[i+15:i] - b[i+15:i] +ENDFOR + + + SSE2 +
emmintrin.h
+ Arithmetic +
+ + + + + Subtract packed 32-bit integers in "b" from packed 32-bit integers in "a", and store the results in "dst". + +FOR j := 0 to 3 + i := j*32 + dst[i+31:i] := a[i+31:i] - b[i+31:i] +ENDFOR + + + SSE2 +
emmintrin.h
+ Arithmetic +
+ + + + + Subtract 64-bit integer "b" from 64-bit integer "a", and store the result in "dst". + +dst[63:0] := a[63:0] - b[63:0] + + + SSE2 +
emmintrin.h
+ Arithmetic +
+ + + + + Subtract packed 64-bit integers in "b" from packed 64-bit integers in "a", and store the results in "dst". + +FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := a[i+63:i] - b[i+63:i] +ENDFOR + + + SSE2 +
emmintrin.h
+ Arithmetic +
+ + + + + Subtract packed signed 8-bit integers in "b" from packed 8-bit integers in "a" using saturation, and store the results in "dst". + +FOR j := 0 to 15 + i := j*8 + dst[i+7:i] := Saturate8(a[i+7:i] - b[i+7:i]) +ENDFOR + + + SSE2 +
emmintrin.h
+ Arithmetic +
+ + + + + Subtract packed signed 16-bit integers in "b" from packed 16-bit integers in "a" using saturation, and store the results in "dst". + +FOR j := 0 to 7 + i := j*16 + dst[i+15:i] := Saturate16(a[i+15:i] - b[i+15:i]) +ENDFOR + + + SSE2 +
emmintrin.h
+ Arithmetic +
+ + + + + Subtract packed unsigned 8-bit integers in "b" from packed unsigned 8-bit integers in "a" using saturation, and store the results in "dst". + +FOR j := 0 to 15 + i := j*8 + dst[i+7:i] := SaturateU8(a[i+7:i] - b[i+7:i]) +ENDFOR + + + SSE2 +
emmintrin.h
+ Arithmetic +
+ + + + + Subtract packed unsigned 16-bit integers in "b" from packed unsigned 16-bit integers in "a" using saturation, and store the results in "dst". + +FOR j := 0 to 7 + i := j*16 + dst[i+15:i] := SaturateU16(a[i+15:i] - b[i+15:i]) +ENDFOR + + + SSE2 +
emmintrin.h
+ Arithmetic +
+ + + + + Add the lower double-precision (64-bit) floating-point element in "a" and "b", store the result in the lower element of "dst", and copy the upper element from "a" to the upper element of "dst". + +dst[63:0] := a[63:0] + b[63:0] +dst[127:64] := a[127:64] + + + SSE2 +
emmintrin.h
+ Arithmetic +
+ + + + + Add packed double-precision (64-bit) floating-point elements in "a" and "b", and store the results in "dst". + +FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := a[i+63:i] + b[i+63:i] +ENDFOR + + + SSE2 +
emmintrin.h
+ Arithmetic +
+ + + + + Divide the lower double-precision (64-bit) floating-point element in "a" by the lower double-precision (64-bit) floating-point element in "b", store the result in the lower element of "dst", and copy the upper element from "a" to the upper element of "dst". + +dst[63:0] := a[63:0] / b[63:0] +dst[127:64] := a[127:64] + + + SSE2 +
emmintrin.h
+ Arithmetic +
+ + + + + Divide packed double-precision (64-bit) floating-point elements in "a" by packed elements in "b", and store the results in "dst". + +FOR j := 0 to 1 + i := 64*j + dst[i+63:i] := a[i+63:i] / b[i+63:i] +ENDFOR + + + SSE2 +
emmintrin.h
+ Arithmetic +
+ + + + + Multiply the lower double-precision (64-bit) floating-point element in "a" and "b", store the result in the lower element of "dst", and copy the upper element from "a" to the upper element of "dst". + +dst[63:0] := a[63:0] * b[63:0] +dst[127:64] := a[127:64] + + + SSE2 +
emmintrin.h
+ Arithmetic +
+ + + + + Multiply packed double-precision (64-bit) floating-point elements in "a" and "b", and store the results in "dst". + +FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := a[i+63:i] * b[i+63:i] +ENDFOR + + + SSE2 +
emmintrin.h
+ Arithmetic +
+ + + + + Subtract the lower double-precision (64-bit) floating-point element in "b" from the lower double-precision (64-bit) floating-point element in "a", store the result in the lower element of "dst", and copy the upper element from "a" to the upper element of "dst". + +dst[63:0] := a[63:0] - b[63:0] +dst[127:64] := a[127:64] + + + SSE2 +
emmintrin.h
+ Arithmetic +
+ + + + + Subtract packed double-precision (64-bit) floating-point elements in "b" from packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst". + +FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := a[i+63:i] - b[i+63:i] +ENDFOR + + + SSE2 +
emmintrin.h
+ Arithmetic +
+ + + + + Average packed unsigned 8-bit integers in "a" and "b", and store the results in "dst". + +FOR j := 0 to 15 + i := j*8 + dst[i+7:i] := (a[i+7:i] + b[i+7:i] + 1) >> 1 +ENDFOR + + + SSE2 +
emmintrin.h
+ Probability/Statistics +
+ + + + + Average packed unsigned 16-bit integers in "a" and "b", and store the results in "dst". + +FOR j := 0 to 7 + i := j*16 + dst[i+15:i] := (a[i+15:i] + b[i+15:i] + 1) >> 1 +ENDFOR + + + SSE2 +
emmintrin.h
+ Probability/Statistics +
+ + + + + Compare packed signed 16-bit integers in "a" and "b", and store packed maximum values in "dst". + +FOR j := 0 to 7 + i := j*16 + dst[i+15:i] := MAX(a[i+15:i], b[i+15:i]) +ENDFOR + + + SSE2 +
emmintrin.h
+ Special Math Functions +
+ + + + + Compare packed unsigned 8-bit integers in "a" and "b", and store packed maximum values in "dst". + +FOR j := 0 to 15 + i := j*8 + dst[i+7:i] := MAX(a[i+7:i], b[i+7:i]) +ENDFOR + + + SSE2 +
emmintrin.h
+ Special Math Functions +
+ + + + + Compare packed signed 16-bit integers in "a" and "b", and store packed minimum values in "dst". + +FOR j := 0 to 7 + i := j*16 + dst[i+15:i] := MIN(a[i+15:i], b[i+15:i]) +ENDFOR + + + SSE2 +
emmintrin.h
+ Special Math Functions +
+ + + + + Compare packed unsigned 8-bit integers in "a" and "b", and store packed minimum values in "dst". + +FOR j := 0 to 15 + i := j*8 + dst[i+7:i] := MIN(a[i+7:i], b[i+7:i]) +ENDFOR + + + SSE2 +
emmintrin.h
+ Special Math Functions +
+ + + + + Compare the lower double-precision (64-bit) floating-point elements in "a" and "b", store the maximum value in the lower element of "dst", and copy the upper element from "a" to the upper element of "dst". [max_float_note] + +dst[63:0] := MAX(a[63:0], b[63:0]) +dst[127:64] := a[127:64] + + + SSE2 +
emmintrin.h
+ Special Math Functions +
+ + + + + Compare packed double-precision (64-bit) floating-point elements in "a" and "b", and store packed maximum values in "dst". [max_float_note] + +FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := MAX(a[i+63:i], b[i+63:i]) +ENDFOR + + + SSE2 +
emmintrin.h
+ Special Math Functions +
+ + + + + Compare the lower double-precision (64-bit) floating-point elements in "a" and "b", store the minimum value in the lower element of "dst", and copy the upper element from "a" to the upper element of "dst". [min_float_note] + +dst[63:0] := MIN(a[63:0], b[63:0]) +dst[127:64] := a[127:64] + + + SSE2 +
emmintrin.h
+ Special Math Functions +
+ + + + + Compare packed double-precision (64-bit) floating-point elements in "a" and "b", and store packed minimum values in "dst". [min_float_note] + +FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := MIN(a[i+63:i], b[i+63:i]) +ENDFOR + + + SSE2 +
emmintrin.h
+ Special Math Functions +
+ + + + + Shift "a" left by "imm8" bytes while shifting in zeros, and store the results in "dst". + +tmp := imm8[7:0] +IF tmp > 15 + tmp := 16 +FI +dst[127:0] := a[127:0] << (tmp*8) + + + SSE2 +
emmintrin.h
+ Shift +
+ + + + + Shift "a" left by "imm8" bytes while shifting in zeros, and store the results in "dst". + +tmp := imm8[7:0] +IF tmp > 15 + tmp := 16 +FI +dst[127:0] := a[127:0] << (tmp*8) + + + SSE2 +
emmintrin.h
+ Shift +
+ + + + + Shift "a" right by "imm8" bytes while shifting in zeros, and store the results in "dst". + +tmp := imm8[7:0] +IF tmp > 15 + tmp := 16 +FI +dst[127:0] := a[127:0] >> (tmp*8) + + + SSE2 +
emmintrin.h
+ Shift +
+ + + + + Shift packed 16-bit integers in "a" left by "imm8" while shifting in zeros, and store the results in "dst". + +FOR j := 0 to 7 + i := j*16 + IF imm8[7:0] > 15 + dst[i+15:i] := 0 + ELSE + dst[i+15:i] := ZeroExtend16(a[i+15:i] << imm8[7:0]) + FI +ENDFOR + + + SSE2 +
emmintrin.h
+ Shift +
+ + + + + Shift packed 16-bit integers in "a" left by "count" while shifting in zeros, and store the results in "dst". + +FOR j := 0 to 7 + i := j*16 + IF count[63:0] > 15 + dst[i+15:i] := 0 + ELSE + dst[i+15:i] := ZeroExtend16(a[i+15:i] << count[63:0]) + FI +ENDFOR + + + SSE2 +
emmintrin.h
+ Shift +
+ + + + + Shift packed 32-bit integers in "a" left by "imm8" while shifting in zeros, and store the results in "dst". + +FOR j := 0 to 3 + i := j*32 + IF imm8[7:0] > 31 + dst[i+31:i] := 0 + ELSE + dst[i+31:i] := ZeroExtend32(a[i+31:i] << imm8[7:0]) + FI +ENDFOR + + + SSE2 +
emmintrin.h
+ Shift +
+ + + + + Shift packed 32-bit integers in "a" left by "count" while shifting in zeros, and store the results in "dst". + +FOR j := 0 to 3 + i := j*32 + IF count[63:0] > 31 + dst[i+31:i] := 0 + ELSE + dst[i+31:i] := ZeroExtend32(a[i+31:i] << count[63:0]) + FI +ENDFOR + + + SSE2 +
emmintrin.h
+ Shift +
+ + + + + Shift packed 64-bit integers in "a" left by "imm8" while shifting in zeros, and store the results in "dst". + +FOR j := 0 to 1 + i := j*64 + IF imm8[7:0] > 63 + dst[i+63:i] := 0 + ELSE + dst[i+63:i] := ZeroExtend64(a[i+63:i] << imm8[7:0]) + FI +ENDFOR + + + SSE2 +
emmintrin.h
+ Shift +
+ + + + + Shift packed 64-bit integers in "a" left by "count" while shifting in zeros, and store the results in "dst". + +FOR j := 0 to 1 + i := j*64 + IF count[63:0] > 63 + dst[i+63:i] := 0 + ELSE + dst[i+63:i] := ZeroExtend64(a[i+63:i] << count[63:0]) + FI +ENDFOR + + + SSE2 +
emmintrin.h
+ Shift +
+ + + + + Shift packed 16-bit integers in "a" right by "imm8" while shifting in sign bits, and store the results in "dst". + +FOR j := 0 to 7 + i := j*16 + IF imm8[7:0] > 15 + dst[i+15:i] := (a[i+15] ? 0xFFFF : 0x0) + ELSE + dst[i+15:i] := SignExtend16(a[i+15:i] >> imm8[7:0]) + FI +ENDFOR + + + SSE2 +
emmintrin.h
+ Shift +
+ + + + + Shift packed 16-bit integers in "a" right by "count" while shifting in sign bits, and store the results in "dst". + +FOR j := 0 to 7 + i := j*16 + IF count[63:0] > 15 + dst[i+15:i] := (a[i+15] ? 0xFFFF : 0x0) + ELSE + dst[i+15:i] := SignExtend16(a[i+15:i] >> count[63:0]) + FI +ENDFOR + + + SSE2 +
emmintrin.h
+ Shift +
+ + + + + Shift packed 32-bit integers in "a" right by "imm8" while shifting in sign bits, and store the results in "dst". + +FOR j := 0 to 3 + i := j*32 + IF imm8[7:0] > 31 + dst[i+31:i] := (a[i+31] ? 0xFFFFFFFF : 0x0) + ELSE + dst[i+31:i] := SignExtend32(a[i+31:i] >> imm8[7:0]) + FI +ENDFOR + + + SSE2 +
emmintrin.h
+ Shift +
+ + + + + Shift packed 32-bit integers in "a" right by "count" while shifting in sign bits, and store the results in "dst". + +FOR j := 0 to 3 + i := j*32 + IF count[63:0] > 31 + dst[i+31:i] := (a[i+31] ? 0xFFFFFFFF : 0x0) + ELSE + dst[i+31:i] := SignExtend32(a[i+31:i] >> count[63:0]) + FI +ENDFOR + + + SSE2 +
emmintrin.h
+ Shift +
+ + + + + Shift "a" right by "imm8" bytes while shifting in zeros, and store the results in "dst". + +tmp := imm8[7:0] +IF tmp > 15 + tmp := 16 +FI +dst[127:0] := a[127:0] >> (tmp*8) + + + SSE2 +
emmintrin.h
+ Shift +
+ + + + + Shift packed 16-bit integers in "a" right by "imm8" while shifting in zeros, and store the results in "dst". + +FOR j := 0 to 7 + i := j*16 + IF imm8[7:0] > 15 + dst[i+15:i] := 0 + ELSE + dst[i+15:i] := ZeroExtend16(a[i+15:i] >> imm8[7:0]) + FI +ENDFOR + + + SSE2 +
emmintrin.h
+ Shift +
+ + + + + Shift packed 16-bit integers in "a" right by "count" while shifting in zeros, and store the results in "dst". + +FOR j := 0 to 7 + i := j*16 + IF count[63:0] > 15 + dst[i+15:i] := 0 + ELSE + dst[i+15:i] := ZeroExtend16(a[i+15:i] >> count[63:0]) + FI +ENDFOR + + + SSE2 +
emmintrin.h
+ Shift +
+ + + + + Shift packed 32-bit integers in "a" right by "imm8" while shifting in zeros, and store the results in "dst". + +FOR j := 0 to 3 + i := j*32 + IF imm8[7:0] > 31 + dst[i+31:i] := 0 + ELSE + dst[i+31:i] := ZeroExtend32(a[i+31:i] >> imm8[7:0]) + FI +ENDFOR + + + SSE2 +
emmintrin.h
+ Shift +
+ + + + + Shift packed 32-bit integers in "a" right by "count" while shifting in zeros, and store the results in "dst". + +FOR j := 0 to 3 + i := j*32 + IF count[63:0] > 31 + dst[i+31:i] := 0 + ELSE + dst[i+31:i] := ZeroExtend32(a[i+31:i] >> count[63:0]) + FI +ENDFOR + + + SSE2 +
emmintrin.h
+ Shift +
+ + + + + Shift packed 64-bit integers in "a" right by "imm8" while shifting in zeros, and store the results in "dst". + +FOR j := 0 to 1 + i := j*64 + IF imm8[7:0] > 63 + dst[i+63:i] := 0 + ELSE + dst[i+63:i] := ZeroExtend64(a[i+63:i] >> imm8[7:0]) + FI +ENDFOR + + + SSE2 +
emmintrin.h
+ Shift +
+ + + + + Shift packed 64-bit integers in "a" right by "count" while shifting in zeros, and store the results in "dst". + +FOR j := 0 to 1 + i := j*64 + IF count[63:0] > 63 + dst[i+63:i] := 0 + ELSE + dst[i+63:i] := ZeroExtend64(a[i+63:i] >> count[63:0]) + FI +ENDFOR + + + SSE2 +
emmintrin.h
+ Shift +
+ + + + + Compute the bitwise AND of 128 bits (representing integer data) in "a" and "b", and store the result in "dst". + +dst[127:0] := (a[127:0] AND b[127:0]) + + + SSE2 +
emmintrin.h
+ Logical +
+ + + + + Compute the bitwise NOT of 128 bits (representing integer data) in "a" and then AND with "b", and store the result in "dst". + +dst[127:0] := ((NOT a[127:0]) AND b[127:0]) + + + SSE2 +
emmintrin.h
+ Logical +
+ + + + + Compute the bitwise OR of 128 bits (representing integer data) in "a" and "b", and store the result in "dst". + +dst[127:0] := (a[127:0] OR b[127:0]) + + + SSE2 +
emmintrin.h
+ Logical +
+ + + + + Compute the bitwise XOR of 128 bits (representing integer data) in "a" and "b", and store the result in "dst". + +dst[127:0] := (a[127:0] XOR b[127:0]) + + + SSE2 +
emmintrin.h
+ Logical +
+ + + + + Compute the bitwise AND of packed double-precision (64-bit) floating-point elements in "a" and "b", and store the results in "dst". + +FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := (a[i+63:i] AND b[i+63:i]) +ENDFOR + + + SSE2 +
emmintrin.h
+ Logical +
+ + + + + Compute the bitwise NOT of packed double-precision (64-bit) floating-point elements in "a" and then AND with "b", and store the results in "dst". + +FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := ((NOT a[i+63:i]) AND b[i+63:i]) +ENDFOR + + + SSE2 +
emmintrin.h
+ Logical +
+ + + + + Compute the bitwise OR of packed double-precision (64-bit) floating-point elements in "a" and "b", and store the results in "dst". + +FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := a[i+63:i] OR b[i+63:i] +ENDFOR + + + SSE2 +
emmintrin.h
+ Logical +
+ + + + + Compute the bitwise XOR of packed double-precision (64-bit) floating-point elements in "a" and "b", and store the results in "dst". + +FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := a[i+63:i] XOR b[i+63:i] +ENDFOR + + + SSE2 +
emmintrin.h
+ Logical +
+ + + + + Compare packed 8-bit integers in "a" and "b" for equality, and store the results in "dst". + +FOR j := 0 to 15 + i := j*8 + dst[i+7:i] := ( a[i+7:i] == b[i+7:i] ) ? 0xFF : 0 +ENDFOR + + + SSE2 +
emmintrin.h
+ Compare +
+ + + + + Compare packed 16-bit integers in "a" and "b" for equality, and store the results in "dst". + +FOR j := 0 to 7 + i := j*16 + dst[i+15:i] := ( a[i+15:i] == b[i+15:i] ) ? 0xFFFF : 0 +ENDFOR + + + SSE2 +
emmintrin.h
+ Compare +
+ + + + + Compare packed 32-bit integers in "a" and "b" for equality, and store the results in "dst". + +FOR j := 0 to 3 + i := j*32 + dst[i+31:i] := ( a[i+31:i] == b[i+31:i] ) ? 0xFFFFFFFF : 0 +ENDFOR + + + SSE2 +
emmintrin.h
+ Compare +
+ + + + + Compare packed signed 8-bit integers in "a" and "b" for greater-than, and store the results in "dst". + +FOR j := 0 to 15 + i := j*8 + dst[i+7:i] := ( a[i+7:i] > b[i+7:i] ) ? 0xFF : 0 +ENDFOR + + + SSE2 +
emmintrin.h
+ Compare +
+ + + + + Compare packed signed 16-bit integers in "a" and "b" for greater-than, and store the results in "dst". + +FOR j := 0 to 7 + i := j*16 + dst[i+15:i] := ( a[i+15:i] > b[i+15:i] ) ? 0xFFFF : 0 +ENDFOR + + + SSE2 +
emmintrin.h
+ Compare +
+ + + + + Compare packed signed 32-bit integers in "a" and "b" for greater-than, and store the results in "dst". + +FOR j := 0 to 3 + i := j*32 + dst[i+31:i] := ( a[i+31:i] > b[i+31:i] ) ? 0xFFFFFFFF : 0 +ENDFOR + + + SSE2 +
emmintrin.h
+ Compare +
+ + + + + Compare packed signed 8-bit integers in "a" and "b" for less-than, and store the results in "dst". Note: This intrinsic emits the pcmpgtb instruction with the order of the operands switched. + +FOR j := 0 to 15 + i := j*8 + dst[i+7:i] := ( a[i+7:i] < b[i+7:i] ) ? 0xFF : 0 +ENDFOR + + + SSE2 +
emmintrin.h
+ Compare +
+ + + + + Compare packed signed 16-bit integers in "a" and "b" for less-than, and store the results in "dst". Note: This intrinsic emits the pcmpgtw instruction with the order of the operands switched. + +FOR j := 0 to 7 + i := j*16 + dst[i+15:i] := ( a[i+15:i] < b[i+15:i] ) ? 0xFFFF : 0 +ENDFOR + + + SSE2 +
emmintrin.h
+ Compare +
+ + + + + Compare packed signed 32-bit integers in "a" and "b" for less-than, and store the results in "dst". Note: This intrinsic emits the pcmpgtd instruction with the order of the operands switched. + +FOR j := 0 to 3 + i := j*32 + dst[i+31:i] := ( a[i+31:i] < b[i+31:i] ) ? 0xFFFFFFFF : 0 +ENDFOR + + + SSE2 +
emmintrin.h
+ Compare +
+ + + + + Compare the lower double-precision (64-bit) floating-point elements in "a" and "b" for equality, store the result in the lower element of "dst", and copy the upper element from "a" to the upper element of "dst". + +dst[63:0] := (a[63:0] == b[63:0]) ? 0xFFFFFFFFFFFFFFFF : 0 +dst[127:64] := a[127:64] + + + SSE2 +
emmintrin.h
+ Compare +
+ + + + + Compare the lower double-precision (64-bit) floating-point elements in "a" and "b" for less-than, store the result in the lower element of "dst", and copy the upper element from "a" to the upper element of "dst". + +dst[63:0] := (a[63:0] < b[63:0]) ? 0xFFFFFFFFFFFFFFFF : 0 +dst[127:64] := a[127:64] + + + SSE2 +
emmintrin.h
+ Compare +
+ + + + + Compare the lower double-precision (64-bit) floating-point elements in "a" and "b" for less-than-or-equal, store the result in the lower element of "dst", and copy the upper element from "a" to the upper element of "dst". + +dst[63:0] := (a[63:0] <= b[63:0]) ? 0xFFFFFFFFFFFFFFFF : 0 +dst[127:64] := a[127:64] + + + SSE2 +
emmintrin.h
+ Compare +
+ + + + + Compare the lower double-precision (64-bit) floating-point elements in "a" and "b" for greater-than, store the result in the lower element of "dst", and copy the upper element from "a" to the upper element of "dst". + +dst[63:0] := (a[63:0] > b[63:0]) ? 0xFFFFFFFFFFFFFFFF : 0 +dst[127:64] := a[127:64] + + + SSE2 +
emmintrin.h
+ Compare +
+ + + + + Compare the lower double-precision (64-bit) floating-point elements in "a" and "b" for greater-than-or-equal, store the result in the lower element of "dst", and copy the upper element from "a" to the upper element of "dst". + +dst[63:0] := (a[63:0] >= b[63:0]) ? 0xFFFFFFFFFFFFFFFF : 0 +dst[127:64] := a[127:64] + + + SSE2 +
emmintrin.h
+ Compare +
+ + + + + Compare the lower double-precision (64-bit) floating-point elements in "a" and "b" to see if neither is NaN, store the result in the lower element of "dst", and copy the upper element from "a" to the upper element of "dst". + dst[63:0] := (a[63:0] != NaN AND b[63:0] != NaN) ? 0xFFFFFFFFFFFFFFFF : 0 +dst[127:64] := a[127:64] + + + SSE2 +
emmintrin.h
+ Compare +
+ + + + + Compare the lower double-precision (64-bit) floating-point elements in "a" and "b" to see if either is NaN, store the result in the lower element of "dst", and copy the upper element from "a" to the upper element of "dst". + dst[63:0] := (a[63:0] == NaN OR b[63:0] == NaN) ? 0xFFFFFFFFFFFFFFFF : 0 +dst[127:64] := a[127:64] + + + SSE2 +
emmintrin.h
+ Compare +
+ + + + + Compare the lower double-precision (64-bit) floating-point elements in "a" and "b" for not-equal, store the result in the lower element of "dst", and copy the upper element from "a" to the upper element of "dst". + +dst[63:0] := (a[63:0] != b[63:0]) ? 0xFFFFFFFFFFFFFFFF : 0 +dst[127:64] := a[127:64] + + + SSE2 +
emmintrin.h
+ Compare +
+ + + + + Compare the lower double-precision (64-bit) floating-point elements in "a" and "b" for not-less-than, store the result in the lower element of "dst", and copy the upper element from "a" to the upper element of "dst". + +dst[63:0] := (!(a[63:0] < b[63:0])) ? 0xFFFFFFFFFFFFFFFF : 0 +dst[127:64] := a[127:64] + + + SSE2 +
emmintrin.h
+ Compare +
+ + + + + Compare the lower double-precision (64-bit) floating-point elements in "a" and "b" for not-less-than-or-equal, store the result in the lower element of "dst", and copy the upper element from "a" to the upper element of "dst". + +dst[63:0] := (!(a[63:0] <= b[63:0])) ? 0xFFFFFFFFFFFFFFFF : 0 +dst[127:64] := a[127:64] + + + SSE2 +
emmintrin.h
+ Compare +
+ + + + + Compare the lower double-precision (64-bit) floating-point elements in "a" and "b" for not-greater-than, store the result in the lower element of "dst", and copy the upper element from "a" to the upper element of "dst". + +dst[63:0] := (!(a[63:0] > b[63:0])) ? 0xFFFFFFFFFFFFFFFF : 0 +dst[127:64] := a[127:64] + + + SSE2 +
emmintrin.h
+ Compare +
+ + + + + Compare the lower double-precision (64-bit) floating-point elements in "a" and "b" for not-greater-than-or-equal, store the result in the lower element of "dst", and copy the upper element from "a" to the upper element of "dst". + +dst[63:0] := (!(a[63:0] >= b[63:0])) ? 0xFFFFFFFFFFFFFFFF : 0 +dst[127:64] := a[127:64] + + + SSE2 +
emmintrin.h
+ Compare +
+ + + + + Compare packed double-precision (64-bit) floating-point elements in "a" and "b" for equality, and store the results in "dst". + +FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := (a[i+63:i] == b[i+63:i]) ? 0xFFFFFFFFFFFFFFFF : 0 +ENDFOR + + + SSE2 +
emmintrin.h
+ Compare +
+ + + + + Compare packed double-precision (64-bit) floating-point elements in "a" and "b" for less-than, and store the results in "dst". + +FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := (a[i+63:i] < b[i+63:i]) ? 0xFFFFFFFFFFFFFFFF : 0 +ENDFOR + + + SSE2 +
emmintrin.h
+ Compare +
+ + + + + Compare packed double-precision (64-bit) floating-point elements in "a" and "b" for less-than-or-equal, and store the results in "dst". + +FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := (a[i+63:i] <= b[i+63:i]) ? 0xFFFFFFFFFFFFFFFF : 0 +ENDFOR + + + SSE2 +
emmintrin.h
+ Compare +
+ + + + + Compare packed double-precision (64-bit) floating-point elements in "a" and "b" for greater-than, and store the results in "dst". + +FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := (a[i+63:i] > b[i+63:i]) ? 0xFFFFFFFFFFFFFFFF : 0 +ENDFOR + + + SSE2 +
emmintrin.h
+ Compare +
+ + + + + Compare packed double-precision (64-bit) floating-point elements in "a" and "b" for greater-than-or-equal, and store the results in "dst". + +FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := (a[i+63:i] >= b[i+63:i]) ? 0xFFFFFFFFFFFFFFFF : 0 +ENDFOR + + + SSE2 +
emmintrin.h
+ Compare +
+ + + + + Compare packed double-precision (64-bit) floating-point elements in "a" and "b" to see if neither is NaN, and store the results in "dst". + FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := (a[i+63:i] != NaN AND b[i+63:i] != NaN) ? 0xFFFFFFFFFFFFFFFF : 0 +ENDFOR + + + SSE2 +
emmintrin.h
+ Compare +
+ + + + + Compare packed double-precision (64-bit) floating-point elements in "a" and "b" to see if either is NaN, and store the results in "dst". + FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := (a[i+63:i] == NaN OR b[i+63:i] == NaN) ? 0xFFFFFFFFFFFFFFFF : 0 +ENDFOR + + + SSE2 +
emmintrin.h
+ Compare +
+ + + + + Compare packed double-precision (64-bit) floating-point elements in "a" and "b" for not-equal, and store the results in "dst". + +FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := (a[i+63:i] != b[i+63:i]) ? 0xFFFFFFFFFFFFFFFF : 0 +ENDFOR + + + SSE2 +
emmintrin.h
+ Compare +
+ + + + + Compare packed double-precision (64-bit) floating-point elements in "a" and "b" for not-less-than, and store the results in "dst". + +FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := (!(a[i+63:i] < b[i+63:i])) ? 0xFFFFFFFFFFFFFFFF : 0 +ENDFOR + + + SSE2 +
emmintrin.h
+ Compare +
+ + + + + Compare packed double-precision (64-bit) floating-point elements in "a" and "b" for not-less-than-or-equal, and store the results in "dst". + +FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := (!(a[i+63:i] <= b[i+63:i])) ? 0xFFFFFFFFFFFFFFFF : 0 +ENDFOR + + + SSE2 +
emmintrin.h
+ Compare +
+ + + + + Compare packed double-precision (64-bit) floating-point elements in "a" and "b" for not-greater-than, and store the results in "dst". + +FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := (!(a[i+63:i] > b[i+63:i])) ? 0xFFFFFFFFFFFFFFFF : 0 +ENDFOR + + + SSE2 +
emmintrin.h
+ Compare +
+ + + + + Compare packed double-precision (64-bit) floating-point elements in "a" and "b" for not-greater-than-or-equal, and store the results in "dst". + +FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := (!(a[i+63:i] >= b[i+63:i])) ? 0xFFFFFFFFFFFFFFFF : 0 +ENDFOR + + + SSE2 +
emmintrin.h
+ Compare +
+ + + + + Compare the lower double-precision (64-bit) floating-point element in "a" and "b" for equality, and return the boolean result (0 or 1). + RETURN ( a[63:0] != NaN AND b[63:0] != NaN AND a[63:0] == b[63:0] ) ? 1 : 0 + + + SSE2 +
emmintrin.h
+ Compare +
+ + + + + Compare the lower double-precision (64-bit) floating-point element in "a" and "b" for less-than, and return the boolean result (0 or 1). + RETURN ( a[63:0] != NaN AND b[63:0] != NaN AND a[63:0] < b[63:0] ) ? 1 : 0 + + + SSE2 +
emmintrin.h
+ Compare +
+ + + + + Compare the lower double-precision (64-bit) floating-point element in "a" and "b" for less-than-or-equal, and return the boolean result (0 or 1). + RETURN ( a[63:0] != NaN AND b[63:0] != NaN AND a[63:0] <= b[63:0] ) ? 1 : 0 + + + SSE2 +
emmintrin.h
+ Compare +
+ + + + + Compare the lower double-precision (64-bit) floating-point element in "a" and "b" for greater-than, and return the boolean result (0 or 1). + RETURN ( a[63:0] != NaN AND b[63:0] != NaN AND a[63:0] > b[63:0] ) ? 1 : 0 + + + SSE2 +
emmintrin.h
+ Compare +
+ + + + + Compare the lower double-precision (64-bit) floating-point element in "a" and "b" for greater-than-or-equal, and return the boolean result (0 or 1). + RETURN ( a[63:0] != NaN AND b[63:0] != NaN AND a[63:0] >= b[63:0] ) ? 1 : 0 + + + SSE2 +
emmintrin.h
+ Compare +
+ + + + + Compare the lower double-precision (64-bit) floating-point element in "a" and "b" for not-equal, and return the boolean result (0 or 1). + RETURN ( a[63:0] == NaN OR b[63:0] == NaN OR a[63:0] != b[63:0] ) ? 1 : 0 + + + SSE2 +
emmintrin.h
+ Compare +
+ + + + + Compare the lower double-precision (64-bit) floating-point element in "a" and "b" for equality, and return the boolean result (0 or 1). This instruction will not signal an exception for QNaNs. + RETURN ( a[63:0] != NaN AND b[63:0] != NaN AND a[63:0] == b[63:0] ) ? 1 : 0 + + + SSE2 +
emmintrin.h
+ Compare +
+ + + + + Compare the lower double-precision (64-bit) floating-point element in "a" and "b" for less-than, and return the boolean result (0 or 1). This instruction will not signal an exception for QNaNs. + RETURN ( a[63:0] != NaN AND b[63:0] != NaN AND a[63:0] < b[63:0] ) ? 1 : 0 + + + SSE2 +
emmintrin.h
+ Compare +
+ + + + + Compare the lower double-precision (64-bit) floating-point element in "a" and "b" for less-than-or-equal, and return the boolean result (0 or 1). This instruction will not signal an exception for QNaNs. + RETURN ( a[63:0] != NaN AND b[63:0] != NaN AND a[63:0] <= b[63:0] ) ? 1 : 0 + + + SSE2 +
emmintrin.h
+ Compare +
+ + + + + Compare the lower double-precision (64-bit) floating-point element in "a" and "b" for greater-than, and return the boolean result (0 or 1). This instruction will not signal an exception for QNaNs. + RETURN ( a[63:0] != NaN AND b[63:0] != NaN AND a[63:0] > b[63:0] ) ? 1 : 0 + + + SSE2 +
emmintrin.h
+ Compare +
+ + + + + Compare the lower double-precision (64-bit) floating-point element in "a" and "b" for greater-than-or-equal, and return the boolean result (0 or 1). This instruction will not signal an exception for QNaNs. + RETURN ( a[63:0] != NaN AND b[63:0] != NaN AND a[63:0] >= b[63:0] ) ? 1 : 0 + + + SSE2 +
emmintrin.h
+ Compare +
+ + + + + Compare the lower double-precision (64-bit) floating-point element in "a" and "b" for not-equal, and return the boolean result (0 or 1). This instruction will not signal an exception for QNaNs. + RETURN ( a[63:0] == NaN OR b[63:0] == NaN OR a[63:0] != b[63:0] ) ? 1 : 0 + + + SSE2 +
emmintrin.h
+ Compare +
+ + + + Convert packed signed 32-bit integers in "a" to packed double-precision (64-bit) floating-point elements, and store the results in "dst". + +FOR j := 0 to 1 + i := j*32 + m := j*64 + dst[m+63:m] := Convert_Int32_To_FP64(a[i+31:i]) +ENDFOR + + + SSE2 +
emmintrin.h
+ Convert +
+ + + + + Convert the signed 32-bit integer "b" to a double-precision (64-bit) floating-point element, store the result in the lower element of "dst", and copy the upper element from "a" to the upper element of "dst". + +dst[63:0] := Convert_Int32_To_FP64(b[31:0]) +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + SSE2 +
emmintrin.h
+ Convert +
+ + + + + Convert the signed 64-bit integer "b" to a double-precision (64-bit) floating-point element, store the result in the lower element of "dst", and copy the upper element from "a" to the upper element of "dst". + +dst[63:0] := Convert_Int64_To_FP64(b[63:0]) +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + SSE2 +
emmintrin.h
+ Convert +
+ + + + + Convert the signed 64-bit integer "b" to a double-precision (64-bit) floating-point element, store the result in the lower element of "dst", and copy the upper element from "a" to the upper element of "dst". + +dst[63:0] := Convert_Int64_To_FP64(b[63:0]) +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + SSE2 +
emmintrin.h
+ Convert +
+ + + + Convert packed signed 32-bit integers in "a" to packed single-precision (32-bit) floating-point elements, and store the results in "dst". + +FOR j := 0 to 3 + i := 32*j + dst[i+31:i] := Convert_Int32_To_FP32(a[i+31:i]) +ENDFOR + + + SSE2 +
emmintrin.h
+ Convert +
+ + + + Convert packed signed 32-bit integers in "a" to packed double-precision (64-bit) floating-point elements, and store the results in "dst". + +FOR j := 0 to 1 + i := j*32 + m := j*64 + dst[m+63:m] := Convert_Int32_To_FP64(a[i+31:i]) +ENDFOR + + + SSE2 +
emmintrin.h
+ Convert +
+ + + + Copy 32-bit integer "a" to the lower elements of "dst", and zero the upper elements of "dst". + +dst[31:0] := a[31:0] +dst[127:32] := 0 + + + SSE2 +
emmintrin.h
+ Convert +
+ + + + Copy 64-bit integer "a" to the lower element of "dst", and zero the upper element. + +dst[63:0] := a[63:0] +dst[127:64] := 0 + + + SSE2 +
emmintrin.h
+ Convert +
+ + + + Copy 64-bit integer "a" to the lower element of "dst", and zero the upper element. + +dst[63:0] := a[63:0] +dst[127:64] := 0 + + + SSE2 +
emmintrin.h
+ Convert +
+ + + + Copy the lower 32-bit integer in "a" to "dst". + +dst[31:0] := a[31:0] + + + SSE2 +
emmintrin.h
+ Convert +
+ + + + Copy the lower 64-bit integer in "a" to "dst". + +dst[63:0] := a[63:0] + + + SSE2 +
emmintrin.h
+ Convert +
+ + + + Copy the lower 64-bit integer in "a" to "dst". + +dst[63:0] := a[63:0] + + + SSE2 +
emmintrin.h
+ Convert +
+ + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed single-precision (32-bit) floating-point elements, and store the results in "dst". + +FOR j := 0 to 1 + i := 32*j + k := 64*j + dst[i+31:i] := Convert_FP64_To_FP32(a[k+63:k]) +ENDFOR +dst[127:64] := 0 + + + SSE2 +
emmintrin.h
+ Convert +
+ + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed double-precision (64-bit) floating-point elements, and store the results in "dst". + +FOR j := 0 to 1 + i := 64*j + k := 32*j + dst[i+63:i] := Convert_FP32_To_FP64(a[k+31:k]) +ENDFOR + + + SSE2 +
emmintrin.h
+ Convert +
+ + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed 32-bit integers, and store the results in "dst". + +FOR j := 0 to 1 + i := 32*j + k := 64*j + dst[i+31:i] := Convert_FP64_To_Int32(a[k+63:k]) +ENDFOR + + + SSE2 +
emmintrin.h
+ Convert +
+ + + + Convert the lower double-precision (64-bit) floating-point element in "a" to a 32-bit integer, and store the result in "dst". + +dst[31:0] := Convert_FP64_To_Int32(a[63:0]) + + + SSE2 +
emmintrin.h
+ Convert +
+ + + + Convert the lower double-precision (64-bit) floating-point element in "a" to a 64-bit integer, and store the result in "dst". + +dst[63:0] := Convert_FP64_To_Int64(a[63:0]) + + + SSE2 +
emmintrin.h
+ Convert +
+ + + + Convert the lower double-precision (64-bit) floating-point element in "a" to a 64-bit integer, and store the result in "dst". + +dst[63:0] := Convert_FP64_To_Int64(a[63:0]) + + + SSE2 +
emmintrin.h
+ Convert +
+ + + + + Convert the lower double-precision (64-bit) floating-point element in "b" to a single-precision (32-bit) floating-point element, store the result in the lower element of "dst", and copy the upper 3 packed elements from "a" to the upper elements of "dst". + +dst[31:0] := Convert_FP64_To_FP32(b[63:0]) +dst[127:32] := a[127:32] +dst[MAX:128] := 0 + + + SSE2 +
emmintrin.h
+ Convert +
+ + + + Copy the lower double-precision (64-bit) floating-point element of "a" to "dst". + +dst[63:0] := a[63:0] + + + SSE2 +
emmintrin.h
+ Convert +
+ + + + + Convert the lower single-precision (32-bit) floating-point element in "b" to a double-precision (64-bit) floating-point element, store the result in the lower element of "dst", and copy the upper element from "a" to the upper element of "dst". + +dst[63:0] := Convert_FP32_To_FP64(b[31:0]) +dst[127:64] := a[127:64] +dst[MAX:128] := 0 + + + SSE2 +
emmintrin.h
+ Convert +
+ + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed 32-bit integers with truncation, and store the results in "dst". + +FOR j := 0 to 1 + i := 32*j + k := 64*j + dst[i+31:i] := Convert_FP64_To_Int32_Truncate(a[k+63:k]) +ENDFOR + + + SSE2 +
emmintrin.h
+ Convert +
+ + + + Convert the lower double-precision (64-bit) floating-point element in "a" to a 32-bit integer with truncation, and store the result in "dst". + +dst[31:0] := Convert_FP64_To_Int32_Truncate(a[63:0]) + + + SSE2 +
emmintrin.h
+ Convert +
+ + + + Convert the lower double-precision (64-bit) floating-point element in "a" to a 64-bit integer with truncation, and store the result in "dst". + +dst[63:0] := Convert_FP64_To_Int64_Truncate(a[63:0]) + + + SSE2 +
emmintrin.h
+ Convert +
+ + + + Convert the lower double-precision (64-bit) floating-point element in "a" to a 64-bit integer with truncation, and store the result in "dst". + +dst[63:0] := Convert_FP64_To_Int64_Truncate(a[63:0]) + + + SSE2 +
emmintrin.h
+ Convert +
+ + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed 32-bit integers, and store the results in "dst". + +FOR j := 0 to 3 + i := 32*j + dst[i+31:i] := Convert_FP32_To_Int32(a[i+31:i]) +ENDFOR + + + SSE2 +
emmintrin.h
+ Convert +
+ + + + Convert packed single-precision (32-bit) floating-point elements in "a" to packed 32-bit integers with truncation, and store the results in "dst". + +FOR j := 0 to 3 + i := 32*j + dst[i+31:i] := Convert_FP32_To_Int32_Truncate(a[i+31:i]) +ENDFOR + + + SSE2 +
emmintrin.h
+ Convert +
+ + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed 32-bit integers, and store the results in "dst". + +FOR j := 0 to 1 + i := 32*j + k := 64*j + dst[i+31:i] := Convert_FP64_To_Int32(a[k+63:k]) +ENDFOR + + + SSE2 +
emmintrin.h
+ Convert +
+ + + + Convert packed double-precision (64-bit) floating-point elements in "a" to packed 32-bit integers with truncation, and store the results in "dst". + +FOR j := 0 to 1 + i := 32*j + k := 64*j + dst[i+31:i] := Convert_FP64_To_Int32_Truncate(a[k+63:k]) +ENDFOR + + + SSE2 +
emmintrin.h
+ Convert +
+ + + + + Set packed 64-bit integers in "dst" with the supplied values. + +dst[63:0] := e0 +dst[127:64] := e1 + + SSE2 +
emmintrin.h
+ Set +
+ + + + + Set packed 64-bit integers in "dst" with the supplied values. + +dst[63:0] := e0 +dst[127:64] := e1 + + SSE2 +
emmintrin.h
+ Set +
+ + + + + + + Set packed 32-bit integers in "dst" with the supplied values. + +dst[31:0] := e0 +dst[63:32] := e1 +dst[95:64] := e2 +dst[127:96] := e3 + + SSE2 +
emmintrin.h
+ Set +
+ + + + + + + + + + + Set packed 16-bit integers in "dst" with the supplied values. + +dst[15:0] := e0 +dst[31:16] := e1 +dst[47:32] := e2 +dst[63:48] := e3 +dst[79:64] := e4 +dst[95:80] := e5 +dst[111:96] := e6 +dst[127:112] := e7 + + SSE2 +
emmintrin.h
+ Set +
+ + + + + + + + + + + + + + + + + + + Set packed 8-bit integers in "dst" with the supplied values. + +dst[7:0] := e0 +dst[15:8] := e1 +dst[23:16] := e2 +dst[31:24] := e3 +dst[39:32] := e4 +dst[47:40] := e5 +dst[55:48] := e6 +dst[63:56] := e7 +dst[71:64] := e8 +dst[79:72] := e9 +dst[87:80] := e10 +dst[95:88] := e11 +dst[103:96] := e12 +dst[111:104] := e13 +dst[119:112] := e14 +dst[127:120] := e15 + + SSE2 +
emmintrin.h
+ Set +
+ + + + Broadcast 64-bit integer "a" to all elements of "dst". + +FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := a[63:0] +ENDFOR + + SSE2 +
emmintrin.h
+ Set +
+ + + + Broadcast 64-bit integer "a" to all elements of "dst". This intrinsic may generate the "vpbroadcastq". + +FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := a[63:0] +ENDFOR + + SSE2 +
emmintrin.h
+ Set +
+ + + + Broadcast 32-bit integer "a" to all elements of "dst". This intrinsic may generate "vpbroadcastd". + +FOR j := 0 to 3 + i := j*32 + dst[i+31:i] := a[31:0] +ENDFOR + + SSE2 +
emmintrin.h
+ Set +
+ + + + Broadcast 16-bit integer "a" to all all elements of "dst". This intrinsic may generate "vpbroadcastw". + +FOR j := 0 to 7 + i := j*16 + dst[i+15:i] := a[15:0] +ENDFOR + + SSE2 +
emmintrin.h
+ Set +
+ + + + Broadcast 8-bit integer "a" to all elements of "dst". This intrinsic may generate "vpbroadcastb". + +FOR j := 0 to 15 + i := j*8 + dst[i+7:i] := a[7:0] +ENDFOR + + SSE2 +
emmintrin.h
+ Set +
+ + + + + Set packed 64-bit integers in "dst" with the supplied values in reverse order. + +dst[63:0] := e1 +dst[127:64] := e0 + + SSE2 +
emmintrin.h
+ Set +
+ + + + + + + Set packed 32-bit integers in "dst" with the supplied values in reverse order. + +dst[31:0] := e3 +dst[63:32] := e2 +dst[95:64] := e1 +dst[127:96] := e0 + + SSE2 +
emmintrin.h
+ Set +
+ + + + + + + + + + + Set packed 16-bit integers in "dst" with the supplied values in reverse order. + +dst[15:0] := e7 +dst[31:16] := e6 +dst[47:32] := e5 +dst[63:48] := e4 +dst[79:64] := e3 +dst[95:80] := e2 +dst[111:96] := e1 +dst[127:112] := e0 + + SSE2 +
emmintrin.h
+ Set +
+ + + + + + + + + + + + + + + + + + + Set packed 8-bit integers in "dst" with the supplied values in reverse order. + +dst[7:0] := e15 +dst[15:8] := e14 +dst[23:16] := e13 +dst[31:24] := e12 +dst[39:32] := e11 +dst[47:40] := e10 +dst[55:48] := e9 +dst[63:56] := e8 +dst[71:64] := e7 +dst[79:72] := e6 +dst[87:80] := e5 +dst[95:88] := e4 +dst[103:96] := e3 +dst[111:104] := e2 +dst[119:112] := e1 +dst[127:120] := e0 + + SSE2 +
emmintrin.h
+ Set +
+ + + Return vector of type __m128i with all elements set to zero. + +dst[MAX:0] := 0 + + + SSE2 +
emmintrin.h
+ Set +
+ + + + Copy double-precision (64-bit) floating-point element "a" to the lower element of "dst", and zero the upper element. + +dst[63:0] := a[63:0] +dst[127:64] := 0 + + SSE2 +
emmintrin.h
+ Set +
+ + + + Broadcast double-precision (64-bit) floating-point value "a" to all elements of "dst". + +FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := a[63:0] +ENDFOR + + SSE2 +
emmintrin.h
+ Set +
+ + + + Broadcast double-precision (64-bit) floating-point value "a" to all elements of "dst". + +FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := a[63:0] +ENDFOR + + SSE2 +
emmintrin.h
+ Set +
+ + + + + Set packed double-precision (64-bit) floating-point elements in "dst" with the supplied values. + +dst[63:0] := e0 +dst[127:64] := e1 + + SSE2 +
emmintrin.h
+ Set +
+ + + + + Set packed double-precision (64-bit) floating-point elements in "dst" with the supplied values in reverse order. + +dst[63:0] := e1 +dst[127:64] := e0 + + SSE2 +
emmintrin.h
+ Set +
+ + + + Return vector of type __m128d with all elements set to zero. + +dst[MAX:0] := 0 + + + SSE2 +
emmintrin.h
+ Set +
+ + + + Copy the lower 64-bit integer in "a" to "dst". + +dst[63:0] := a[63:0] + + + SSE2 +
emmintrin.h
+ Miscellaneous +
+ + + + + Convert packed signed 16-bit integers from "a" and "b" to packed 8-bit integers using signed saturation, and store the results in "dst". + +dst[7:0] := Saturate8(a[15:0]) +dst[15:8] := Saturate8(a[31:16]) +dst[23:16] := Saturate8(a[47:32]) +dst[31:24] := Saturate8(a[63:48]) +dst[39:32] := Saturate8(a[79:64]) +dst[47:40] := Saturate8(a[95:80]) +dst[55:48] := Saturate8(a[111:96]) +dst[63:56] := Saturate8(a[127:112]) +dst[71:64] := Saturate8(b[15:0]) +dst[79:72] := Saturate8(b[31:16]) +dst[87:80] := Saturate8(b[47:32]) +dst[95:88] := Saturate8(b[63:48]) +dst[103:96] := Saturate8(b[79:64]) +dst[111:104] := Saturate8(b[95:80]) +dst[119:112] := Saturate8(b[111:96]) +dst[127:120] := Saturate8(b[127:112]) + + + SSE2 +
emmintrin.h
+ Miscellaneous +
+ + + + + Convert packed signed 32-bit integers from "a" and "b" to packed 16-bit integers using signed saturation, and store the results in "dst". + +dst[15:0] := Saturate16(a[31:0]) +dst[31:16] := Saturate16(a[63:32]) +dst[47:32] := Saturate16(a[95:64]) +dst[63:48] := Saturate16(a[127:96]) +dst[79:64] := Saturate16(b[31:0]) +dst[95:80] := Saturate16(b[63:32]) +dst[111:96] := Saturate16(b[95:64]) +dst[127:112] := Saturate16(b[127:96]) + + + SSE2 +
emmintrin.h
+ Miscellaneous +
+ + + + + Convert packed signed 16-bit integers from "a" and "b" to packed 8-bit integers using unsigned saturation, and store the results in "dst". + +dst[7:0] := SaturateU8(a[15:0]) +dst[15:8] := SaturateU8(a[31:16]) +dst[23:16] := SaturateU8(a[47:32]) +dst[31:24] := SaturateU8(a[63:48]) +dst[39:32] := SaturateU8(a[79:64]) +dst[47:40] := SaturateU8(a[95:80]) +dst[55:48] := SaturateU8(a[111:96]) +dst[63:56] := SaturateU8(a[127:112]) +dst[71:64] := SaturateU8(b[15:0]) +dst[79:72] := SaturateU8(b[31:16]) +dst[87:80] := SaturateU8(b[47:32]) +dst[95:88] := SaturateU8(b[63:48]) +dst[103:96] := SaturateU8(b[79:64]) +dst[111:104] := SaturateU8(b[95:80]) +dst[119:112] := SaturateU8(b[111:96]) +dst[127:120] := SaturateU8(b[127:112]) + + + SSE2 +
emmintrin.h
+ Miscellaneous +
+ + + + Create mask from the most significant bit of each 8-bit element in "a", and store the result in "dst". + +FOR j := 0 to 15 + i := j*8 + dst[j] := a[i+7] +ENDFOR +dst[MAX:16] := 0 + + + SSE2 +
emmintrin.h
+ Miscellaneous +
+ + + + Set each bit of mask "dst" based on the most significant bit of the corresponding packed double-precision (64-bit) floating-point element in "a". + +FOR j := 0 to 1 + i := j*64 + IF a[i+63] + dst[j] := 1 + ELSE + dst[j] := 0 + FI +ENDFOR +dst[MAX:2] := 0 + + + SSE2 +
emmintrin.h
+ Miscellaneous +
+ + + + Copy the 64-bit integer "a" to the lower element of "dst", and zero the upper element. + +dst[63:0] := a[63:0] +dst[127:64] := 0 + + + SSE2 +
emmintrin.h
+ Move +
+ + + + Copy the lower 64-bit integer in "a" to the lower element of "dst", and zero the upper element. + +dst[63:0] := a[63:0] +dst[127:64] := 0 + + + SSE2 +
emmintrin.h
+ Move +
+ + + + + Move the lower double-precision (64-bit) floating-point element from "b" to the lower element of "dst", and copy the upper element from "a" to the upper element of "dst". + +dst[63:0] := b[63:0] +dst[127:64] := a[127:64] + + + SSE2 +
emmintrin.h
+ Move +
+ + + + + Extract a 16-bit integer from "a", selected with "imm8", and store the result in the lower element of "dst". + +dst[15:0] := (a[127:0] >> (imm8[2:0] * 16))[15:0] +dst[31:16] := 0 + + + SSE2 +
emmintrin.h
+ Swizzle +
+ + + + + + Copy "a" to "dst", and insert the 16-bit integer "i" into "dst" at the location specified by "imm8". + +dst[127:0] := a[127:0] +sel := imm8[2:0]*16 +dst[sel+15:sel] := i[15:0] + + + SSE2 +
emmintrin.h
+ Swizzle +
+ + + + + Shuffle 32-bit integers in "a" using the control in "imm8", and store the results in "dst". + +DEFINE SELECT4(src, control) { + CASE(control[1:0]) OF + 0: tmp[31:0] := src[31:0] + 1: tmp[31:0] := src[63:32] + 2: tmp[31:0] := src[95:64] + 3: tmp[31:0] := src[127:96] + ESAC + RETURN tmp[31:0] +} +dst[31:0] := SELECT4(a[127:0], imm8[1:0]) +dst[63:32] := SELECT4(a[127:0], imm8[3:2]) +dst[95:64] := SELECT4(a[127:0], imm8[5:4]) +dst[127:96] := SELECT4(a[127:0], imm8[7:6]) + + + SSE2 +
emmintrin.h
+ Swizzle +
+ + + + + Shuffle 16-bit integers in the high 64 bits of "a" using the control in "imm8". Store the results in the high 64 bits of "dst", with the low 64 bits being copied from from "a" to "dst". + +dst[63:0] := a[63:0] +dst[79:64] := (a >> (imm8[1:0] * 16))[79:64] +dst[95:80] := (a >> (imm8[3:2] * 16))[79:64] +dst[111:96] := (a >> (imm8[5:4] * 16))[79:64] +dst[127:112] := (a >> (imm8[7:6] * 16))[79:64] + + + SSE2 +
emmintrin.h
+ Swizzle +
+ + + + + Shuffle 16-bit integers in the low 64 bits of "a" using the control in "imm8". Store the results in the low 64 bits of "dst", with the high 64 bits being copied from from "a" to "dst". + +dst[15:0] := (a >> (imm8[1:0] * 16))[15:0] +dst[31:16] := (a >> (imm8[3:2] * 16))[15:0] +dst[47:32] := (a >> (imm8[5:4] * 16))[15:0] +dst[63:48] := (a >> (imm8[7:6] * 16))[15:0] +dst[127:64] := a[127:64] + + + SSE2 +
emmintrin.h
+ Swizzle +
+ + + + + Unpack and interleave 8-bit integers from the high half of "a" and "b", and store the results in "dst". + +DEFINE INTERLEAVE_HIGH_BYTES(src1[127:0], src2[127:0]) { + dst[7:0] := src1[71:64] + dst[15:8] := src2[71:64] + dst[23:16] := src1[79:72] + dst[31:24] := src2[79:72] + dst[39:32] := src1[87:80] + dst[47:40] := src2[87:80] + dst[55:48] := src1[95:88] + dst[63:56] := src2[95:88] + dst[71:64] := src1[103:96] + dst[79:72] := src2[103:96] + dst[87:80] := src1[111:104] + dst[95:88] := src2[111:104] + dst[103:96] := src1[119:112] + dst[111:104] := src2[119:112] + dst[119:112] := src1[127:120] + dst[127:120] := src2[127:120] + RETURN dst[127:0] +} +dst[127:0] := INTERLEAVE_HIGH_BYTES(a[127:0], b[127:0]) + + + SSE2 +
emmintrin.h
+ Swizzle +
+ + + + + Unpack and interleave 16-bit integers from the high half of "a" and "b", and store the results in "dst". + +DEFINE INTERLEAVE_HIGH_WORDS(src1[127:0], src2[127:0]) { + dst[15:0] := src1[79:64] + dst[31:16] := src2[79:64] + dst[47:32] := src1[95:80] + dst[63:48] := src2[95:80] + dst[79:64] := src1[111:96] + dst[95:80] := src2[111:96] + dst[111:96] := src1[127:112] + dst[127:112] := src2[127:112] + RETURN dst[127:0] +} +dst[127:0] := INTERLEAVE_HIGH_WORDS(a[127:0], b[127:0]) + + + SSE2 +
emmintrin.h
+ Swizzle +
+ + + + + Unpack and interleave 32-bit integers from the high half of "a" and "b", and store the results in "dst". + +DEFINE INTERLEAVE_HIGH_DWORDS(src1[127:0], src2[127:0]) { + dst[31:0] := src1[95:64] + dst[63:32] := src2[95:64] + dst[95:64] := src1[127:96] + dst[127:96] := src2[127:96] + RETURN dst[127:0] +} +dst[127:0] := INTERLEAVE_HIGH_DWORDS(a[127:0], b[127:0]) + + + SSE2 +
emmintrin.h
+ Swizzle +
+ + + + + Unpack and interleave 64-bit integers from the high half of "a" and "b", and store the results in "dst". + +DEFINE INTERLEAVE_HIGH_QWORDS(src1[127:0], src2[127:0]) { + dst[63:0] := src1[127:64] + dst[127:64] := src2[127:64] + RETURN dst[127:0] +} +dst[127:0] := INTERLEAVE_HIGH_QWORDS(a[127:0], b[127:0]) + + + SSE2 +
emmintrin.h
+ Swizzle +
+ + + + + Unpack and interleave 8-bit integers from the low half of "a" and "b", and store the results in "dst". + +DEFINE INTERLEAVE_BYTES(src1[127:0], src2[127:0]) { + dst[7:0] := src1[7:0] + dst[15:8] := src2[7:0] + dst[23:16] := src1[15:8] + dst[31:24] := src2[15:8] + dst[39:32] := src1[23:16] + dst[47:40] := src2[23:16] + dst[55:48] := src1[31:24] + dst[63:56] := src2[31:24] + dst[71:64] := src1[39:32] + dst[79:72] := src2[39:32] + dst[87:80] := src1[47:40] + dst[95:88] := src2[47:40] + dst[103:96] := src1[55:48] + dst[111:104] := src2[55:48] + dst[119:112] := src1[63:56] + dst[127:120] := src2[63:56] + RETURN dst[127:0] +} +dst[127:0] := INTERLEAVE_BYTES(a[127:0], b[127:0]) + + + SSE2 +
emmintrin.h
+ Swizzle +
+ + + + + Unpack and interleave 16-bit integers from the low half of "a" and "b", and store the results in "dst". + +DEFINE INTERLEAVE_WORDS(src1[127:0], src2[127:0]) { + dst[15:0] := src1[15:0] + dst[31:16] := src2[15:0] + dst[47:32] := src1[31:16] + dst[63:48] := src2[31:16] + dst[79:64] := src1[47:32] + dst[95:80] := src2[47:32] + dst[111:96] := src1[63:48] + dst[127:112] := src2[63:48] + RETURN dst[127:0] +} +dst[127:0] := INTERLEAVE_WORDS(a[127:0], b[127:0]) + + + SSE2 +
emmintrin.h
+ Swizzle +
+ + + + + Unpack and interleave 32-bit integers from the low half of "a" and "b", and store the results in "dst". + +DEFINE INTERLEAVE_DWORDS(src1[127:0], src2[127:0]) { + dst[31:0] := src1[31:0] + dst[63:32] := src2[31:0] + dst[95:64] := src1[63:32] + dst[127:96] := src2[63:32] + RETURN dst[127:0] +} +dst[127:0] := INTERLEAVE_DWORDS(a[127:0], b[127:0]) + + + SSE2 +
emmintrin.h
+ Swizzle +
+ + + + + Unpack and interleave 64-bit integers from the low half of "a" and "b", and store the results in "dst". + +DEFINE INTERLEAVE_QWORDS(src1[127:0], src2[127:0]) { + dst[63:0] := src1[63:0] + dst[127:64] := src2[63:0] + RETURN dst[127:0] +} +dst[127:0] := INTERLEAVE_QWORDS(a[127:0], b[127:0]) + + + SSE2 +
emmintrin.h
+ Swizzle +
+ + + + + Unpack and interleave double-precision (64-bit) floating-point elements from the high half of "a" and "b", and store the results in "dst". + +DEFINE INTERLEAVE_HIGH_QWORDS(src1[127:0], src2[127:0]) { + dst[63:0] := src1[127:64] + dst[127:64] := src2[127:64] + RETURN dst[127:0] +} +dst[127:0] := INTERLEAVE_HIGH_QWORDS(a[127:0], b[127:0]) + + + SSE2 +
emmintrin.h
+ Swizzle +
+ + + + + Unpack and interleave double-precision (64-bit) floating-point elements from the low half of "a" and "b", and store the results in "dst". + +DEFINE INTERLEAVE_QWORDS(src1[127:0], src2[127:0]) { + dst[63:0] := src1[63:0] + dst[127:64] := src2[63:0] + RETURN dst[127:0] +} +dst[127:0] := INTERLEAVE_QWORDS(a[127:0], b[127:0]) + + + SSE2 +
emmintrin.h
+ Swizzle +
+ + + + + + Shuffle double-precision (64-bit) floating-point elements using the control in "imm8", and store the results in "dst". + +dst[63:0] := (imm8[0] == 0) ? a[63:0] : a[127:64] +dst[127:64] := (imm8[1] == 0) ? b[63:0] : b[127:64] + + + SSE2 +
emmintrin.h
+ Swizzle +
+ + + + + Compute the square root of the lower double-precision (64-bit) floating-point element in "b", store the result in the lower element of "dst", and copy the upper element from "a" to the upper element of "dst". + +dst[63:0] := SQRT(b[63:0]) +dst[127:64] := a[127:64] + + + SSE2 +
emmintrin.h
+ Elementary Math Functions +
+ + + + Compute the square root of packed double-precision (64-bit) floating-point elements in "a", and store the results in "dst". + +FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := SQRT(a[i+63:i]) +ENDFOR + + + SSE2 +
emmintrin.h
+ Elementary Math Functions +
+ + + + Cast vector of type __m128d to type __m128. This intrinsic is only used for compilation and does not generate any instructions, thus it has zero latency. + SSE2 +
emmintrin.h
+ Cast +
+ + + + Cast vector of type __m128d to type __m128i. This intrinsic is only used for compilation and does not generate any instructions, thus it has zero latency. + SSE2 +
emmintrin.h
+ Cast +
+ + + + Cast vector of type __m128 to type __m128d. This intrinsic is only used for compilation and does not generate any instructions, thus it has zero latency. + SSE2 +
emmintrin.h
+ Cast +
+ + + + Cast vector of type __m128 to type __m128i. This intrinsic is only used for compilation and does not generate any instructions, thus it has zero latency. + SSE2 +
emmintrin.h
+ Cast +
+ + + + Cast vector of type __m128i to type __m128d. This intrinsic is only used for compilation and does not generate any instructions, thus it has zero latency. + SSE2 +
emmintrin.h
+ Cast +
+ + + + Cast vector of type __m128i to type __m128. This intrinsic is only used for compilation and does not generate any instructions, thus it has zero latency. + SSE2 +
emmintrin.h
+ Cast +
+ + + + + + + Alternatively add and subtract packed single-precision (32-bit) floating-point elements in "a" to/from packed elements in "b", and store the results in "dst". + +FOR j := 0 to 3 + i := j*32 + IF ((j & 1) == 0) + dst[i+31:i] := a[i+31:i] - b[i+31:i] + ELSE + dst[i+31:i] := a[i+31:i] + b[i+31:i] + FI +ENDFOR + + + SSE3 +
pmmintrin.h
+ Arithmetic +
+ + + + + Alternatively add and subtract packed double-precision (64-bit) floating-point elements in "a" to/from packed elements in "b", and store the results in "dst". + +FOR j := 0 to 1 + i := j*64 + IF ((j & 1) == 0) + dst[i+63:i] := a[i+63:i] - b[i+63:i] + ELSE + dst[i+63:i] := a[i+63:i] + b[i+63:i] + FI +ENDFOR + + + SSE3 +
pmmintrin.h
+ Arithmetic +
+ + + + + Horizontally add adjacent pairs of double-precision (64-bit) floating-point elements in "a" and "b", and pack the results in "dst". + +dst[63:0] := a[127:64] + a[63:0] +dst[127:64] := b[127:64] + b[63:0] + + + SSE3 +
pmmintrin.h
+ Arithmetic +
+ + + + + Horizontally add adjacent pairs of single-precision (32-bit) floating-point elements in "a" and "b", and pack the results in "dst". + +dst[31:0] := a[63:32] + a[31:0] +dst[63:32] := a[127:96] + a[95:64] +dst[95:64] := b[63:32] + b[31:0] +dst[127:96] := b[127:96] + b[95:64] + + + SSE3 +
pmmintrin.h
+ Arithmetic +
+ + + + + Horizontally subtract adjacent pairs of double-precision (64-bit) floating-point elements in "a" and "b", and pack the results in "dst". + +dst[63:0] := a[63:0] - a[127:64] +dst[127:64] := b[63:0] - b[127:64] + + + SSE3 +
pmmintrin.h
+ Arithmetic +
+ + + + + Horizontally add adjacent pairs of single-precision (32-bit) floating-point elements in "a" and "b", and pack the results in "dst". + +dst[31:0] := a[31:0] - a[63:32] +dst[63:32] := a[95:64] - a[127:96] +dst[95:64] := b[31:0] - b[63:32] +dst[127:96] := b[95:64] - b[127:96] + + + SSE3 +
pmmintrin.h
+ Arithmetic +
+ + + + Load 128-bits of integer data from unaligned memory into "dst". This intrinsic may perform better than "_mm_loadu_si128" when the data crosses a cache line boundary. + +dst[127:0] := MEM[mem_addr+127:mem_addr] + + + SSE3 +
pmmintrin.h
+ Load +
+ + + + Load a double-precision (64-bit) floating-point element from memory into both elements of "dst". + +dst[63:0] := MEM[mem_addr+63:mem_addr] +dst[127:64] := MEM[mem_addr+63:mem_addr] + + + SSE3 +
pmmintrin.h
+ Load +
+ + + + Duplicate the low double-precision (64-bit) floating-point element from "a", and store the results in "dst". + +dst[63:0] := a[63:0] +dst[127:64] := a[63:0] + + + SSE3 +
pmmintrin.h
+ Move +
+ + + + Duplicate odd-indexed single-precision (32-bit) floating-point elements from "a", and store the results in "dst". + +dst[31:0] := a[63:32] +dst[63:32] := a[63:32] +dst[95:64] := a[127:96] +dst[127:96] := a[127:96] + + + SSE3 +
pmmintrin.h
+ Move +
+ + + + Duplicate even-indexed single-precision (32-bit) floating-point elements from "a", and store the results in "dst". + +dst[31:0] := a[31:0] +dst[63:32] := a[31:0] +dst[95:64] := a[95:64] +dst[127:96] := a[95:64] + + + SSE3 +
pmmintrin.h
+ Move +
+ + + + + + + + Blend packed double-precision (64-bit) floating-point elements from "a" and "b" using control mask "imm8", and store the results in "dst". + +FOR j := 0 to 1 + i := j*64 + IF imm8[j] + dst[i+63:i] := b[i+63:i] + ELSE + dst[i+63:i] := a[i+63:i] + FI +ENDFOR + + + SSE4.1 +
smmintrin.h
+ Swizzle +
+ + + + + + Blend packed single-precision (32-bit) floating-point elements from "a" and "b" using control mask "imm8", and store the results in "dst". + +FOR j := 0 to 3 + i := j*32 + IF imm8[j] + dst[i+31:i] := b[i+31:i] + ELSE + dst[i+31:i] := a[i+31:i] + FI +ENDFOR + + + SSE4.1 +
smmintrin.h
+ Swizzle +
+ + + + + + Blend packed double-precision (64-bit) floating-point elements from "a" and "b" using "mask", and store the results in "dst". + +FOR j := 0 to 1 + i := j*64 + IF mask[i+63] + dst[i+63:i] := b[i+63:i] + ELSE + dst[i+63:i] := a[i+63:i] + FI +ENDFOR + + + SSE4.1 +
smmintrin.h
+ Swizzle +
+ + + + + + Blend packed single-precision (32-bit) floating-point elements from "a" and "b" using "mask", and store the results in "dst". + +FOR j := 0 to 3 + i := j*32 + IF mask[i+31] + dst[i+31:i] := b[i+31:i] + ELSE + dst[i+31:i] := a[i+31:i] + FI +ENDFOR + + + SSE4.1 +
smmintrin.h
+ Swizzle +
+ + + + + + Blend packed 8-bit integers from "a" and "b" using "mask", and store the results in "dst". + +FOR j := 0 to 15 + i := j*8 + IF mask[i+7] + dst[i+7:i] := b[i+7:i] + ELSE + dst[i+7:i] := a[i+7:i] + FI +ENDFOR + + + SSE4.1 +
smmintrin.h
+ Swizzle +
+ + + + + + Blend packed 16-bit integers from "a" and "b" using control mask "imm8", and store the results in "dst". + +FOR j := 0 to 7 + i := j*16 + IF imm8[j] + dst[i+15:i] := b[i+15:i] + ELSE + dst[i+15:i] := a[i+15:i] + FI +ENDFOR + + + SSE4.1 +
smmintrin.h
+ Swizzle +
+ + + + + Extract a single-precision (32-bit) floating-point element from "a", selected with "imm8", and store the result in "dst". + +dst[31:0] := (a[127:0] >> (imm8[1:0] * 32))[31:0] + + + SSE4.1 +
smmintrin.h
+ Swizzle +
+ + + + + Extract an 8-bit integer from "a", selected with "imm8", and store the result in the lower element of "dst". + +dst[7:0] := (a[127:0] >> (imm8[3:0] * 8))[7:0] +dst[31:8] := 0 + + + SSE4.1 +
smmintrin.h
+ Swizzle +
+ + + + + Extract a 32-bit integer from "a", selected with "imm8", and store the result in "dst". + +dst[31:0] := (a[127:0] >> (imm8[1:0] * 32))[31:0] + + + SSE4.1 +
smmintrin.h
+ Swizzle +
+ + + + + Extract a 64-bit integer from "a", selected with "imm8", and store the result in "dst". + +dst[63:0] := (a[127:0] >> (imm8[0] * 64))[63:0] + + + SSE4.1 +
smmintrin.h
+ Swizzle +
+ + + + + + Copy "a" to "tmp", then insert a single-precision (32-bit) floating-point element from "b" into "tmp" using the control in "imm8". Store "tmp" to "dst" using the mask in "imm8" (elements are zeroed out when the corresponding bit is set). + +tmp2[127:0] := a[127:0] +CASE (imm8[7:6]) OF +0: tmp1[31:0] := b[31:0] +1: tmp1[31:0] := b[63:32] +2: tmp1[31:0] := b[95:64] +3: tmp1[31:0] := b[127:96] +ESAC +CASE (imm8[5:4]) OF +0: tmp2[31:0] := tmp1[31:0] +1: tmp2[63:32] := tmp1[31:0] +2: tmp2[95:64] := tmp1[31:0] +3: tmp2[127:96] := tmp1[31:0] +ESAC +FOR j := 0 to 3 + i := j*32 + IF imm8[j%8] + dst[i+31:i] := 0 + ELSE + dst[i+31:i] := tmp2[i+31:i] + FI +ENDFOR + + + SSE4.1 +
smmintrin.h
+ Swizzle +
+ + + + + + Copy "a" to "dst", and insert the lower 8-bit integer from "i" into "dst" at the location specified by "imm8". + +dst[127:0] := a[127:0] +sel := imm8[3:0]*8 +dst[sel+7:sel] := i[7:0] + + + SSE4.1 +
smmintrin.h
+ Swizzle +
+ + + + + + Copy "a" to "dst", and insert the 32-bit integer "i" into "dst" at the location specified by "imm8". + +dst[127:0] := a[127:0] +sel := imm8[1:0]*32 +dst[sel+31:sel] := i[31:0] + + + SSE4.1 +
smmintrin.h
+ Swizzle +
+ + + + + + Copy "a" to "dst", and insert the 64-bit integer "i" into "dst" at the location specified by "imm8". + +dst[127:0] := a[127:0] +sel := imm8[0]*64 +dst[sel+63:sel] := i[63:0] + + + SSE4.1 +
smmintrin.h
+ Swizzle +
+ + + + + + Conditionally multiply the packed double-precision (64-bit) floating-point elements in "a" and "b" using the high 4 bits in "imm8", sum the four products, and conditionally store the sum in "dst" using the low 4 bits of "imm8". + +DEFINE DP(a[127:0], b[127:0], imm8[7:0]) { + FOR j := 0 to 1 + i := j*64 + IF imm8[(4+j)%8] + temp[i+63:i] := a[i+63:i] * b[i+63:i] + ELSE + temp[i+63:i] := 0.0 + FI + ENDFOR + + sum[63:0] := temp[127:64] + temp[63:0] + + FOR j := 0 to 1 + i := j*64 + IF imm8[j%8] + tmpdst[i+63:i] := sum[63:0] + ELSE + tmpdst[i+63:i] := 0.0 + FI + ENDFOR + RETURN tmpdst[127:0] +} +dst[127:0] := DP(a[127:0], b[127:0], imm8[7:0]) + + + SSE4.1 +
smmintrin.h
+ Arithmetic +
+ + + + + + Conditionally multiply the packed single-precision (32-bit) floating-point elements in "a" and "b" using the high 4 bits in "imm8", sum the four products, and conditionally store the sum in "dst" using the low 4 bits of "imm8". + +DEFINE DP(a[127:0], b[127:0], imm8[7:0]) { + FOR j := 0 to 3 + i := j*32 + IF imm8[(4+j)%8] + temp[i+31:i] := a[i+31:i] * b[i+31:i] + ELSE + temp[i+31:i] := 0 + FI + ENDFOR + + sum[31:0] := (temp[127:96] + temp[95:64]) + (temp[63:32] + temp[31:0]) + + FOR j := 0 to 3 + i := j*32 + IF imm8[j%8] + tmpdst[i+31:i] := sum[31:0] + ELSE + tmpdst[i+31:i] := 0 + FI + ENDFOR + RETURN tmpdst[127:0] +} +dst[127:0] := DP(a[127:0], b[127:0], imm8[7:0]) + + + SSE4.1 +
smmintrin.h
+ Arithmetic +
+ + + + + Multiply the low signed 32-bit integers from each packed 64-bit element in "a" and "b", and store the signed 64-bit results in "dst". + +FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := SignExtend64(a[i+31:i]) * SignExtend64(b[i+31:i]) +ENDFOR + + + SSE4.1 +
smmintrin.h
+ Arithmetic +
+ + + + + Multiply the packed 32-bit integers in "a" and "b", producing intermediate 64-bit integers, and store the low 32 bits of the intermediate integers in "dst". + +FOR j := 0 to 3 + i := j*32 + tmp[63:0] := a[i+31:i] * b[i+31:i] + dst[i+31:i] := tmp[31:0] +ENDFOR + + + SSE4.1 +
smmintrin.h
+ Arithmetic +
+ + Miscellaneous + + + + + Compute the sum of absolute differences (SADs) of quadruplets of unsigned 8-bit integers in "a" compared to those in "b", and store the 16-bit results in "dst". + Eight SADs are performed using one quadruplet from "b" and eight quadruplets from "a". One quadruplet is selected from "b" starting at on the offset specified in "imm8". Eight quadruplets are formed from sequential 8-bit integers selected from "a" starting at the offset specified in "imm8". + +DEFINE MPSADBW(a[127:0], b[127:0], imm8[2:0]) { + a_offset := imm8[2]*32 + b_offset := imm8[1:0]*32 + FOR j := 0 to 7 + i := j*8 + k := a_offset+i + l := b_offset + tmp[i*2+15:i*2] := ABS(Signed(a[k+7:k] - b[l+7:l])) + ABS(Signed(a[k+15:k+8] - b[l+15:l+8])) + \ + ABS(Signed(a[k+23:k+16] - b[l+23:l+16])) + ABS(Signed(a[k+31:k+24] - b[l+31:l+24])) + ENDFOR + RETURN tmp[127:0] +} +dst[127:0] := MPSADBW(a[127:0], b[127:0], imm8[2:0]) + + + SSE4.1 +
smmintrin.h
+ Arithmetic +
+ + + + + Compare packed signed 8-bit integers in "a" and "b", and store packed maximum values in "dst". + +FOR j := 0 to 15 + i := j*8 + dst[i+7:i] := MAX(a[i+7:i], b[i+7:i]) +ENDFOR + + + SSE4.1 +
smmintrin.h
+ Special Math Functions +
+ + + + + Compare packed signed 32-bit integers in "a" and "b", and store packed maximum values in "dst". + +FOR j := 0 to 3 + i := j*32 + dst[i+31:i] := MAX(a[i+31:i], b[i+31:i]) +ENDFOR + + + SSE4.1 +
smmintrin.h
+ Special Math Functions +
+ + + + + Compare packed unsigned 32-bit integers in "a" and "b", and store packed maximum values in "dst". + +FOR j := 0 to 3 + i := j*32 + dst[i+31:i] := MAX(a[i+31:i], b[i+31:i]) +ENDFOR + + + SSE4.1 +
smmintrin.h
+ Special Math Functions +
+ + + + + Compare packed unsigned 16-bit integers in "a" and "b", and store packed maximum values in "dst". + +FOR j := 0 to 7 + i := j*16 + dst[i+15:i] := MAX(a[i+15:i], b[i+15:i]) +ENDFOR + + + SSE4.1 +
smmintrin.h
+ Special Math Functions +
+ + + + + Compare packed signed 8-bit integers in "a" and "b", and store packed minimum values in "dst". + +FOR j := 0 to 15 + i := j*8 + dst[i+7:i] := MIN(a[i+7:i], b[i+7:i]) +ENDFOR + + + SSE4.1 +
smmintrin.h
+ Special Math Functions +
+ + + + + Compare packed signed 32-bit integers in "a" and "b", and store packed minimum values in "dst". + +FOR j := 0 to 3 + i := j*32 + dst[i+31:i] := MIN(a[i+31:i], b[i+31:i]) +ENDFOR + + + SSE4.1 +
smmintrin.h
+ Special Math Functions +
+ + + + + Compare packed unsigned 32-bit integers in "a" and "b", and store packed minimum values in "dst". + +FOR j := 0 to 3 + i := j*32 + dst[i+31:i] := MIN(a[i+31:i], b[i+31:i]) +ENDFOR + + + SSE4.1 +
smmintrin.h
+ Special Math Functions +
+ + + + + Compare packed unsigned 16-bit integers in "a" and "b", and store packed minimum values in "dst". + +FOR j := 0 to 7 + i := j*16 + dst[i+15:i] := MIN(a[i+15:i], b[i+15:i]) +ENDFOR + + + SSE4.1 +
smmintrin.h
+ Special Math Functions +
+ + + + + Round the packed double-precision (64-bit) floating-point elements in "a" using the "rounding" parameter, and store the results as packed double-precision floating-point elements in "dst". + [round_note] + +FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := ROUND(a[i+63:i], rounding) +ENDFOR + + + SSE4.1 +
smmintrin.h
+ Special Math Functions +
+ + + + Round the packed double-precision (64-bit) floating-point elements in "a" down to an integer value, and store the results as packed double-precision floating-point elements in "dst". + +FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := FLOOR(a[i+63:i]) +ENDFOR + + + SSE4.1 +
smmintrin.h
+ Special Math Functions +
+ + + + Round the packed double-precision (64-bit) floating-point elements in "a" up to an integer value, and store the results as packed double-precision floating-point elements in "dst". + +FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := CEIL(a[i+63:i]) +ENDFOR + + + SSE4.1 +
smmintrin.h
+ Special Math Functions +
+ + + + + Round the packed single-precision (32-bit) floating-point elements in "a" using the "rounding" parameter, and store the results as packed single-precision floating-point elements in "dst". + [round_note] + +FOR j := 0 to 3 + i := j*32 + dst[i+31:i] := ROUND(a[i+31:i], rounding) +ENDFOR + + + SSE4.1 +
smmintrin.h
+ Special Math Functions +
+ + + + Round the packed single-precision (32-bit) floating-point elements in "a" down to an integer value, and store the results as packed single-precision floating-point elements in "dst". + +FOR j := 0 to 3 + i := j*32 + dst[i+31:i] := FLOOR(a[i+31:i]) +ENDFOR + + + SSE4.1 +
smmintrin.h
+ Special Math Functions +
+ + + + Round the packed single-precision (32-bit) floating-point elements in "a" up to an integer value, and store the results as packed single-precision floating-point elements in "dst". + +FOR j := 0 to 3 + i := j*32 + dst[i+31:i] := CEIL(a[i+31:i]) +ENDFOR + + + SSE4.1 +
smmintrin.h
+ Special Math Functions +
+ + + + + + Round the lower double-precision (64-bit) floating-point element in "b" using the "rounding" parameter, store the result as a double-precision floating-point element in the lower element of "dst", and copy the upper element from "a" to the upper element of "dst". + [round_note] + +dst[63:0] := ROUND(b[63:0], rounding) +dst[127:64] := a[127:64] + + + SSE4.1 +
smmintrin.h
+ Special Math Functions +
+ + + + + Round the lower double-precision (64-bit) floating-point element in "b" down to an integer value, store the result as a double-precision floating-point element in the lower element of "dst", and copy the upper element from "a" to the upper element of "dst". + +dst[63:0] := FLOOR(b[63:0]) +dst[127:64] := a[127:64] + + + SSE4.1 +
smmintrin.h
+ Special Math Functions +
+ + + + + Round the lower double-precision (64-bit) floating-point element in "b" up to an integer value, store the result as a double-precision floating-point element in the lower element of "dst", and copy the upper element from "a" to the upper element of "dst". + +dst[63:0] := CEIL(b[63:0]) +dst[127:64] := a[127:64] + + + SSE4.1 +
smmintrin.h
+ Special Math Functions +
+ + + + + + Round the lower single-precision (32-bit) floating-point element in "b" using the "rounding" parameter, store the result as a single-precision floating-point element in the lower element of "dst", and copy the upper 3 packed elements from "a" to the upper elements of "dst". + [round_note] + +dst[31:0] := ROUND(b[31:0], rounding) +dst[127:32] := a[127:32] + + + SSE4.1 +
smmintrin.h
+ Special Math Functions +
+ + + + + Round the lower single-precision (32-bit) floating-point element in "b" down to an integer value, store the result as a single-precision floating-point element in the lower element of "dst", and copy the upper 3 packed elements from "a" to the upper elements of "dst". + +dst[31:0] := FLOOR(b[31:0]) +dst[127:32] := a[127:32] + + + SSE4.1 +
smmintrin.h
+ Special Math Functions +
+ + + + + Round the lower single-precision (32-bit) floating-point element in "b" up to an integer value, store the result as a single-precision floating-point element in the lower element of "dst", and copy the upper 3 packed elements from "a" to the upper elements of "dst". + +dst[31:0] := CEIL(b[31:0]) +dst[127:32] := a[127:32] + + + SSE4.1 +
smmintrin.h
+ Special Math Functions +
+ + Miscellaneous + + + + Convert packed signed 32-bit integers from "a" and "b" to packed 16-bit integers using unsigned saturation, and store the results in "dst". + +dst[15:0] := SaturateU16(a[31:0]) +dst[31:16] := SaturateU16(a[63:32]) +dst[47:32] := SaturateU16(a[95:64]) +dst[63:48] := SaturateU16(a[127:96]) +dst[79:64] := SaturateU16(b[31:0]) +dst[95:80] := SaturateU16(b[63:32]) +dst[111:96] := SaturateU16(b[95:64]) +dst[127:112] := SaturateU16(b[127:96]) + + + SSE4.1 +
smmintrin.h
+ Convert +
+ + + + Sign extend packed 8-bit integers in "a" to packed 16-bit integers, and store the results in "dst". + +FOR j := 0 to 7 + i := j*8 + l := j*16 + dst[l+15:l] := SignExtend16(a[i+7:i]) +ENDFOR + + + SSE4.1 +
smmintrin.h
+ Convert +
+ + + + Sign extend packed 8-bit integers in "a" to packed 32-bit integers, and store the results in "dst". + +FOR j := 0 to 3 + i := 32*j + k := 8*j + dst[i+31:i] := SignExtend32(a[k+7:k]) +ENDFOR + + + SSE4.1 +
smmintrin.h
+ Convert +
+ + + + Sign extend packed 8-bit integers in the low 8 bytes of "a" to packed 64-bit integers, and store the results in "dst". + +FOR j := 0 to 1 + i := 64*j + k := 8*j + dst[i+63:i] := SignExtend64(a[k+7:k]) +ENDFOR + + + SSE4.1 +
smmintrin.h
+ Convert +
+ + + + Sign extend packed 16-bit integers in "a" to packed 32-bit integers, and store the results in "dst". + +FOR j := 0 to 3 + i := 32*j + k := 16*j + dst[i+31:i] := SignExtend32(a[k+15:k]) +ENDFOR + + + SSE4.1 +
smmintrin.h
+ Convert +
+ + + + Sign extend packed 16-bit integers in "a" to packed 64-bit integers, and store the results in "dst". + +FOR j := 0 to 1 + i := 64*j + k := 16*j + dst[i+63:i] := SignExtend64(a[k+15:k]) +ENDFOR + + + SSE4.1 +
smmintrin.h
+ Convert +
+ + + + Sign extend packed 32-bit integers in "a" to packed 64-bit integers, and store the results in "dst". + +FOR j := 0 to 1 + i := 64*j + k := 32*j + dst[i+63:i] := SignExtend64(a[k+31:k]) +ENDFOR + + + SSE4.1 +
smmintrin.h
+ Convert +
+ + + + Zero extend packed unsigned 8-bit integers in "a" to packed 16-bit integers, and store the results in "dst". + +FOR j := 0 to 7 + i := j*8 + l := j*16 + dst[l+15:l] := ZeroExtend16(a[i+7:i]) +ENDFOR + + + SSE4.1 +
smmintrin.h
+ Convert +
+ + + + Zero extend packed unsigned 8-bit integers in "a" to packed 32-bit integers, and store the results in "dst". + +FOR j := 0 to 3 + i := 32*j + k := 8*j + dst[i+31:i] := ZeroExtend32(a[k+7:k]) +ENDFOR + + + SSE4.1 +
smmintrin.h
+ Convert +
+ + + + Zero extend packed unsigned 8-bit integers in the low 8 byte sof "a" to packed 64-bit integers, and store the results in "dst". + +FOR j := 0 to 1 + i := 64*j + k := 8*j + dst[i+63:i] := ZeroExtend64(a[k+7:k]) +ENDFOR + + + SSE4.1 +
smmintrin.h
+ Convert +
+ + + + Zero extend packed unsigned 16-bit integers in "a" to packed 32-bit integers, and store the results in "dst". + +FOR j := 0 to 3 + i := 32*j + k := 16*j + dst[i+31:i] := ZeroExtend32(a[k+15:k]) +ENDFOR + + + SSE4.1 +
smmintrin.h
+ Convert +
+ + + + Zero extend packed unsigned 16-bit integers in "a" to packed 64-bit integers, and store the results in "dst". + +FOR j := 0 to 1 + i := 64*j + k := 16*j + dst[i+63:i] := ZeroExtend64(a[k+15:k]) +ENDFOR + + + SSE4.1 +
smmintrin.h
+ Convert +
+ + + + Zero extend packed unsigned 32-bit integers in "a" to packed 64-bit integers, and store the results in "dst". + +FOR j := 0 to 1 + i := 64*j + k := 32*j + dst[i+63:i] := ZeroExtend64(a[k+31:k]) +ENDFOR + + + SSE4.1 +
smmintrin.h
+ Convert +
+ + + + + Compare packed 64-bit integers in "a" and "b" for equality, and store the results in "dst". + +FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := ( a[i+63:i] == b[i+63:i] ) ? 0xFFFFFFFFFFFFFFFF : 0 +ENDFOR + + + SSE4.1 +
smmintrin.h
+ Compare +
+ + + + + Compute the bitwise AND of 128 bits (representing integer data) in "a" and "b", and set "ZF" to 1 if the result is zero, otherwise set "ZF" to 0. Compute the bitwise NOT of "a" and then AND with "b", and set "CF" to 1 if the result is zero, otherwise set "CF" to 0. Return the "ZF" value. + +IF ((a[127:0] AND b[127:0]) == 0) + ZF := 1 +ELSE + ZF := 0 +FI +IF (((NOT a[127:0]) AND b[127:0]) == 0) + CF := 1 +ELSE + CF := 0 +FI +RETURN ZF + + + SSE4.1 +
smmintrin.h
+ Logical +
+ + + + + Compute the bitwise AND of 128 bits (representing integer data) in "a" and "b", and set "ZF" to 1 if the result is zero, otherwise set "ZF" to 0. Compute the bitwise NOT of "a" and then AND with "b", and set "CF" to 1 if the result is zero, otherwise set "CF" to 0. Return the "CF" value. + +IF ((a[127:0] AND b[127:0]) == 0) + ZF := 1 +ELSE + ZF := 0 +FI +IF (((NOT a[127:0]) AND b[127:0]) == 0) + CF := 1 +ELSE + CF := 0 +FI +RETURN CF + + + SSE4.1 +
smmintrin.h
+ Logical +
+ + + + + Compute the bitwise AND of 128 bits (representing integer data) in "a" and "b", and set "ZF" to 1 if the result is zero, otherwise set "ZF" to 0. Compute the bitwise NOT of "a" and then AND with "b", and set "CF" to 1 if the result is zero, otherwise set "CF" to 0. Return 1 if both the "ZF" and "CF" values are zero, otherwise return 0. + +IF ((a[127:0] AND b[127:0]) == 0) + ZF := 1 +ELSE + ZF := 0 +FI +IF (((NOT a[127:0]) AND b[127:0]) == 0) + CF := 1 +ELSE + CF := 0 +FI +IF (ZF == 0 && CF == 0) + dst := 1 +ELSE + dst := 0 +FI + + + SSE4.1 +
smmintrin.h
+ Logical +
+ + + + + Compute the bitwise AND of 128 bits (representing integer data) in "a" and "mask", and return 1 if the result is zero, otherwise return 0. + +IF ((a[127:0] AND mask[127:0]) == 0) + ZF := 1 +ELSE + ZF := 0 +FI +dst := ZF + + + SSE4.1 +
smmintrin.h
+ Logical +
+ + + + + Compute the bitwise AND of 128 bits (representing integer data) in "a" and "mask", and set "ZF" to 1 if the result is zero, otherwise set "ZF" to 0. Compute the bitwise NOT of "a" and then AND with "mask", and set "CF" to 1 if the result is zero, otherwise set "CF" to 0. Return 1 if both the "ZF" and "CF" values are zero, otherwise return 0. + +IF ((a[127:0] AND mask[127:0]) == 0) + ZF := 1 +ELSE + ZF := 0 +FI +IF (((NOT a[127:0]) AND mask[127:0]) == 0) + CF := 1 +ELSE + CF := 0 +FI +IF (ZF == 0 && CF == 0) + dst := 1 +ELSE + dst := 0 +FI + + + SSE4.1 +
smmintrin.h
+ Logical +
+ + + + Compute the bitwise NOT of "a" and then AND with a 128-bit vector containing all 1's, and return 1 if the result is zero, otherwise return 0. + +FOR j := 0 to 127 + tmp[j] := 1 +ENDFOR +IF (((NOT a[127:0]) AND tmp[127:0]) == 0) + CF := 1 +ELSE + CF := 0 +FI +dst := CF + + + + SSE4.1 +
smmintrin.h
+ Logical +
+ + + + Horizontally compute the minimum amongst the packed unsigned 16-bit integers in "a", store the minimum and index in "dst", and zero the remaining bits in "dst". + +index[2:0] := 0 +min[15:0] := a[15:0] +FOR j := 0 to 7 + i := j*16 + IF a[i+15:i] < min[15:0] + index[2:0] := j + min[15:0] := a[i+15:i] + FI +ENDFOR +dst[15:0] := min[15:0] +dst[18:16] := index[2:0] +dst[127:19] := 0 + + + SSE4.1 +
smmintrin.h
+ Miscellaneous +
+ + + + Load 128-bits of integer data from memory into "dst" using a non-temporal memory hint. + "mem_addr" must be aligned on a 16-byte boundary or a general-protection exception may be generated. + +dst[127:0] := MEM[mem_addr+127:mem_addr] + + + SSE4.1 +
smmintrin.h
+ Load +
+ + + + + + + + Compare packed strings with implicit lengths in "a" and "b" using the control in "imm8", and store the generated mask in "dst". + [strcmp_note] + +size := (imm8[0] ? 16 : 8) // 8 or 16-bit characters +UpperBound := (128 / size) - 1 +BoolRes := 0 +// compare all characters +aInvalid := 0 +bInvalid := 0 +FOR i := 0 to UpperBound + m := i*size + FOR j := 0 to UpperBound + n := j*size + BoolRes.word[i].bit[j] := (a[m+size-1:m] == b[n+size-1:n]) ? 1 : 0 + + // invalidate characters after EOS + IF a[m+size-1:m] == 0 + aInvalid := 1 + FI + IF b[n+size-1:n] == 0 + bInvalid := 1 + FI + + // override comparisons for invalid characters + CASE (imm8[3:2]) OF + 0: // equal any + IF (!aInvalid && bInvalid) + BoolRes.word[i].bit[j] := 0 + ELSE IF (aInvalid && !bInvalid) + BoolRes.word[i].bit[j] := 0 + ELSE IF (aInvalid && bInvalid) + BoolRes.word[i].bit[j] := 0 + FI + 1: // ranges + IF (!aInvalid && bInvalid) + BoolRes.word[i].bit[j] := 0 + ELSE IF (aInvalid && !bInvalid) + BoolRes.word[i].bit[j] := 0 + ELSE IF (aInvalid && bInvalid) + BoolRes.word[i].bit[j] := 0 + FI + 2: // equal each + IF (!aInvalid && bInvalid) + BoolRes.word[i].bit[j] := 0 + ELSE IF (aInvalid && !bInvalid) + BoolRes.word[i].bit[j] := 0 + ELSE IF (aInvalid && bInvalid) + BoolRes.word[i].bit[j] := 1 + FI + 3: // equal ordered + IF (!aInvalid && bInvalid) + BoolRes.word[i].bit[j] := 0 + ELSE IF (aInvalid && !bInvalid) + BoolRes.word[i].bit[j] := 1 + ELSE IF (aInvalid && bInvalid) + BoolRes.word[i].bit[j] := 1 + FI + ESAC + ENDFOR +ENDFOR +// aggregate results +CASE (imm8[3:2]) OF +0: // equal any + IntRes1 := 0 + FOR i := 0 to UpperBound + FOR j := 0 to UpperBound + IntRes1[i] := IntRes1[i] OR BoolRes.word[i].bit[j] + ENDFOR + ENDFOR +1: // ranges + IntRes1 := 0 + FOR i := 0 to UpperBound + FOR j := 0 to UpperBound + IntRes1[i] := IntRes1[i] OR (BoolRes.word[i].bit[j] AND BoolRes.word[i].bit[j+1]) + j += 2 + ENDFOR + ENDFOR +2: // equal each + IntRes1 := 0 + FOR i := 0 to UpperBound + IntRes1[i] := BoolRes.word[i].bit[i] + ENDFOR +3: // equal ordered + IntRes1 := (imm8[0] ? 0xFF : 0xFFFF) + FOR i := 0 to UpperBound + k := i + FOR j := 0 to UpperBound-i + IntRes1[i] := IntRes1[i] AND BoolRes.word[k].bit[j] + k := k+1 + ENDFOR + ENDFOR +ESAC +// optionally negate results +bInvalid := 0 +FOR i := 0 to UpperBound + IF imm8[4] + IF imm8[5] // only negate valid + IF b[n+size-1:n] == 0 + bInvalid := 1 + FI + IF bInvalid // invalid, don't negate + IntRes2[i] := IntRes1[i] + ELSE // valid, negate + IntRes2[i] := -1 XOR IntRes1[i] + FI + ELSE // negate all + IntRes2[i] := -1 XOR IntRes1[i] + FI + ELSE // don't negate + IntRes2[i] := IntRes1[i] + FI +ENDFOR +// output +IF imm8[6] // byte / word mask + FOR i := 0 to UpperBound + j := i*size + IF IntRes2[i] + dst[j+size-1:j] := (imm8[0] ? 0xFF : 0xFFFF) + ELSE + dst[j+size-1:j] := 0 + FI + ENDFOR +ELSE // bit mask + dst[UpperBound:0] := IntRes2[UpperBound:0] + dst[127:UpperBound+1] := 0 +FI + + + SSE4.2 +
nmmintrin.h
+ String Compare +
+ + + + + + Compare packed strings with implicit lengths in "a" and "b" using the control in "imm8", and store the generated index in "dst". + [strcmp_note] + +size := (imm8[0] ? 16 : 8) // 8 or 16-bit characters +UpperBound := (128 / size) - 1 +BoolRes := 0 +// compare all characters +aInvalid := 0 +bInvalid := 0 +FOR i := 0 to UpperBound + m := i*size + FOR j := 0 to UpperBound + n := j*size + BoolRes.word[i].bit[j] := (a[m+size-1:m] == b[n+size-1:n]) ? 1 : 0 + + // invalidate characters after EOS + IF a[m+size-1:m] == 0 + aInvalid := 1 + FI + IF b[n+size-1:n] == 0 + bInvalid := 1 + FI + + // override comparisons for invalid characters + CASE (imm8[3:2]) OF + 0: // equal any + IF (!aInvalid && bInvalid) + BoolRes.word[i].bit[j] := 0 + ELSE IF (aInvalid && !bInvalid) + BoolRes.word[i].bit[j] := 0 + ELSE IF (aInvalid && bInvalid) + BoolRes.word[i].bit[j] := 0 + FI + 1: // ranges + IF (!aInvalid && bInvalid) + BoolRes.word[i].bit[j] := 0 + ELSE IF (aInvalid && !bInvalid) + BoolRes.word[i].bit[j] := 0 + ELSE IF (aInvalid && bInvalid) + BoolRes.word[i].bit[j] := 0 + FI + 2: // equal each + IF (!aInvalid && bInvalid) + BoolRes.word[i].bit[j] := 0 + ELSE IF (aInvalid && !bInvalid) + BoolRes.word[i].bit[j] := 0 + ELSE IF (aInvalid && bInvalid) + BoolRes.word[i].bit[j] := 1 + FI + 3: // equal ordered + IF (!aInvalid && bInvalid) + BoolRes.word[i].bit[j] := 0 + ELSE IF (aInvalid && !bInvalid) + BoolRes.word[i].bit[j] := 1 + ELSE IF (aInvalid && bInvalid) + BoolRes.word[i].bit[j] := 1 + FI + ESAC + ENDFOR +ENDFOR +// aggregate results +CASE (imm8[3:2]) OF +0: // equal any + IntRes1 := 0 + FOR i := 0 to UpperBound + FOR j := 0 to UpperBound + IntRes1[i] := IntRes1[i] OR BoolRes.word[i].bit[j] + ENDFOR + ENDFOR +1: // ranges + IntRes1 := 0 + FOR i := 0 to UpperBound + FOR j := 0 to UpperBound + IntRes1[i] := IntRes1[i] OR (BoolRes.word[i].bit[j] AND BoolRes.word[i].bit[j+1]) + j += 2 + ENDFOR + ENDFOR +2: // equal each + IntRes1 := 0 + FOR i := 0 to UpperBound + IntRes1[i] := BoolRes.word[i].bit[i] + ENDFOR +3: // equal ordered + IntRes1 := (imm8[0] ? 0xFF : 0xFFFF) + FOR i := 0 to UpperBound + k := i + FOR j := 0 to UpperBound-i + IntRes1[i] := IntRes1[i] AND BoolRes.word[k].bit[j] + k := k+1 + ENDFOR + ENDFOR +ESAC +// optionally negate results +bInvalid := 0 +FOR i := 0 to UpperBound + IF imm8[4] + IF imm8[5] // only negate valid + IF b[n+size-1:n] == 0 + bInvalid := 1 + FI + IF bInvalid // invalid, don't negate + IntRes2[i] := IntRes1[i] + ELSE // valid, negate + IntRes2[i] := -1 XOR IntRes1[i] + FI + ELSE // negate all + IntRes2[i] := -1 XOR IntRes1[i] + FI + ELSE // don't negate + IntRes2[i] := IntRes1[i] + FI +ENDFOR +// output +IF imm8[6] // most significant bit + tmp := UpperBound + dst := tmp + DO WHILE ((tmp >= 0) AND a[tmp] == 0) + tmp := tmp - 1 + dst := tmp + OD +ELSE // least significant bit + tmp := 0 + dst := tmp + DO WHILE ((tmp <= UpperBound) AND a[tmp] == 0) + tmp := tmp + 1 + dst := tmp + OD +FI + + + SSE4.2 +
nmmintrin.h
+ String Compare +
+ + + + + + Compare packed strings with implicit lengths in "a" and "b" using the control in "imm8", and returns 1 if any character in "b" was null, and 0 otherwise. + [strcmp_note] + +size := (imm8[0] ? 16 : 8) // 8 or 16-bit characters +UpperBound := (128 / size) - 1 +bInvalid := 0 +FOR j := 0 to UpperBound + n := j*size + IF b[n+size-1:n] == 0 + bInvalid := 1 + FI +ENDFOR +dst := bInvalid + + + SSE4.2 +
nmmintrin.h
+ String Compare +
+ + + + + + Compare packed strings with implicit lengths in "a" and "b" using the control in "imm8", and returns 1 if the resulting mask was non-zero, and 0 otherwise. + [strcmp_note] + +size := (imm8[0] ? 16 : 8) // 8 or 16-bit characters +UpperBound := (128 / size) - 1 +BoolRes := 0 +// compare all characters +aInvalid := 0 +bInvalid := 0 +FOR i := 0 to UpperBound + m := i*size + FOR j := 0 to UpperBound + n := j*size + BoolRes.word[i].bit[j] := (a[m+size-1:m] == b[n+size-1:n]) ? 1 : 0 + + // invalidate characters after EOS + IF a[m+size-1:m] == 0 + aInvalid := 1 + FI + IF b[n+size-1:n] == 0 + bInvalid := 1 + FI + + // override comparisons for invalid characters + CASE (imm8[3:2]) OF + 0: // equal any + IF (!aInvalid && bInvalid) + BoolRes.word[i].bit[j] := 0 + ELSE IF (aInvalid && !bInvalid) + BoolRes.word[i].bit[j] := 0 + ELSE IF (aInvalid && bInvalid) + BoolRes.word[i].bit[j] := 0 + FI + 1: // ranges + IF (!aInvalid && bInvalid) + BoolRes.word[i].bit[j] := 0 + ELSE IF (aInvalid && !bInvalid) + BoolRes.word[i].bit[j] := 0 + ELSE IF (aInvalid && bInvalid) + BoolRes.word[i].bit[j] := 0 + FI + 2: // equal each + IF (!aInvalid && bInvalid) + BoolRes.word[i].bit[j] := 0 + ELSE IF (aInvalid && !bInvalid) + BoolRes.word[i].bit[j] := 0 + ELSE IF (aInvalid && bInvalid) + BoolRes.word[i].bit[j] := 1 + FI + 3: // equal ordered + IF (!aInvalid && bInvalid) + BoolRes.word[i].bit[j] := 0 + ELSE IF (aInvalid && !bInvalid) + BoolRes.word[i].bit[j] := 1 + ELSE IF (aInvalid && bInvalid) + BoolRes.word[i].bit[j] := 1 + FI + ESAC + ENDFOR +ENDFOR +// aggregate results +CASE (imm8[3:2]) OF +0: // equal any + IntRes1 := 0 + FOR i := 0 to UpperBound + FOR j := 0 to UpperBound + IntRes1[i] := IntRes1[i] OR BoolRes.word[i].bit[j] + ENDFOR + ENDFOR +1: // ranges + IntRes1 := 0 + FOR i := 0 to UpperBound + FOR j := 0 to UpperBound + IntRes1[i] := IntRes1[i] OR (BoolRes.word[i].bit[j] AND BoolRes.word[i].bit[j+1]) + j += 2 + ENDFOR + ENDFOR +2: // equal each + IntRes1 := 0 + FOR i := 0 to UpperBound + IntRes1[i] := BoolRes.word[i].bit[i] + ENDFOR +3: // equal ordered + IntRes1 := (imm8[0] ? 0xFF : 0xFFFF) + FOR i := 0 to UpperBound + k := i + FOR j := 0 to UpperBound-i + IntRes1[i] := IntRes1[i] AND BoolRes.word[k].bit[j] + k := k+1 + ENDFOR + ENDFOR +ESAC +// optionally negate results +bInvalid := 0 +FOR i := 0 to UpperBound + IF imm8[4] + IF imm8[5] // only negate valid + IF b[n+size-1:n] == 0 + bInvalid := 1 + FI + IF bInvalid // invalid, don't negate + IntRes2[i] := IntRes1[i] + ELSE // valid, negate + IntRes2[i] := -1 XOR IntRes1[i] + FI + ELSE // negate all + IntRes2[i] := -1 XOR IntRes1[i] + FI + ELSE // don't negate + IntRes2[i] := IntRes1[i] + FI +ENDFOR +// output +dst := (IntRes2 != 0) + + + SSE4.2 +
nmmintrin.h
+ String Compare +
+ + + + + + Compare packed strings with implicit lengths in "a" and "b" using the control in "imm8", and returns 1 if any character in "a" was null, and 0 otherwise. + [strcmp_note] + +size := (imm8[0] ? 16 : 8) // 8 or 16-bit characters +UpperBound := (128 / size) - 1 +aInvalid := 0 +FOR i := 0 to UpperBound + m := i*size + IF a[m+size-1:m] == 0 + aInvalid := 1 + FI +ENDFOR +dst := aInvalid + + + SSE4.2 +
nmmintrin.h
+ String Compare +
+ + + + + + Compare packed strings with implicit lengths in "a" and "b" using the control in "imm8", and returns bit 0 of the resulting bit mask. + [strcmp_note] + +size := (imm8[0] ? 16 : 8) // 8 or 16-bit characters +UpperBound := (128 / size) - 1 +BoolRes := 0 +// compare all characters +aInvalid := 0 +bInvalid := 0 +FOR i := 0 to UpperBound + m := i*size + FOR j := 0 to UpperBound + n := j*size + BoolRes.word[i].bit[j] := (a[m+size-1:m] == b[n+size-1:n]) ? 1 : 0 + + // invalidate characters after EOS + IF a[m+size-1:m] == 0 + aInvalid := 1 + FI + IF b[n+size-1:n] == 0 + bInvalid := 1 + FI + + // override comparisons for invalid characters + CASE (imm8[3:2]) OF + 0: // equal any + IF (!aInvalid && bInvalid) + BoolRes.word[i].bit[j] := 0 + ELSE IF (aInvalid && !bInvalid) + BoolRes.word[i].bit[j] := 0 + ELSE IF (aInvalid && bInvalid) + BoolRes.word[i].bit[j] := 0 + FI + 1: // ranges + IF (!aInvalid && bInvalid) + BoolRes.word[i].bit[j] := 0 + ELSE IF (aInvalid && !bInvalid) + BoolRes.word[i].bit[j] := 0 + ELSE IF (aInvalid && bInvalid) + BoolRes.word[i].bit[j] := 0 + FI + 2: // equal each + IF (!aInvalid && bInvalid) + BoolRes.word[i].bit[j] := 0 + ELSE IF (aInvalid && !bInvalid) + BoolRes.word[i].bit[j] := 0 + ELSE IF (aInvalid && bInvalid) + BoolRes.word[i].bit[j] := 1 + FI + 3: // equal ordered + IF (!aInvalid && bInvalid) + BoolRes.word[i].bit[j] := 0 + ELSE IF (aInvalid && !bInvalid) + BoolRes.word[i].bit[j] := 1 + ELSE IF (aInvalid && bInvalid) + BoolRes.word[i].bit[j] := 1 + FI + ESAC + ENDFOR +ENDFOR +// aggregate results +CASE (imm8[3:2]) OF +0: // equal any + IntRes1 := 0 + FOR i := 0 to UpperBound + FOR j := 0 to UpperBound + IntRes1[i] := IntRes1[i] OR BoolRes.word[i].bit[j] + ENDFOR + ENDFOR +1: // ranges + IntRes1 := 0 + FOR i := 0 to UpperBound + FOR j := 0 to UpperBound + IntRes1[i] := IntRes1[i] OR (BoolRes.word[i].bit[j] AND BoolRes.word[i].bit[j+1]) + j += 2 + ENDFOR + ENDFOR +2: // equal each + IntRes1 := 0 + FOR i := 0 to UpperBound + IntRes1[i] := BoolRes.word[i].bit[i] + ENDFOR +3: // equal ordered + IntRes1 := (imm8[0] ? 0xFF : 0xFFFF) + FOR i := 0 to UpperBound + k := i + FOR j := 0 to UpperBound-i + IntRes1[i] := IntRes1[i] AND BoolRes.word[k].bit[j] + k := k+1 + ENDFOR + ENDFOR +ESAC +// optionally negate results +bInvalid := 0 +FOR i := 0 to UpperBound + IF imm8[4] + IF imm8[5] // only negate valid + IF b[n+size-1:n] == 0 + bInvalid := 1 + FI + IF bInvalid // invalid, don't negate + IntRes2[i] := IntRes1[i] + ELSE // valid, negate + IntRes2[i] := -1 XOR IntRes1[i] + FI + ELSE // negate all + IntRes2[i] := -1 XOR IntRes1[i] + FI + ELSE // don't negate + IntRes2[i] := IntRes1[i] + FI +ENDFOR +// output +dst := IntRes2[0] + + + SSE4.2 +
nmmintrin.h
+ String Compare +
+ + + + + + Compare packed strings with implicit lengths in "a" and "b" using the control in "imm8", and returns 1 if "b" did not contain a null character and the resulting mask was zero, and 0 otherwise. + [strcmp_note] + +size := (imm8[0] ? 16 : 8) // 8 or 16-bit characters +UpperBound := (128 / size) - 1 +BoolRes := 0 +// compare all characters +aInvalid := 0 +bInvalid := 0 +FOR i := 0 to UpperBound + m := i*size + FOR j := 0 to UpperBound + n := j*size + BoolRes.word[i].bit[j] := (a[m+size-1:m] == b[n+size-1:n]) ? 1 : 0 + + // invalidate characters after EOS + IF a[m+size-1:m] == 0 + aInvalid := 1 + FI + IF b[n+size-1:n] == 0 + bInvalid := 1 + FI + + // override comparisons for invalid characters + CASE (imm8[3:2]) OF + 0: // equal any + IF (!aInvalid && bInvalid) + BoolRes.word[i].bit[j] := 0 + ELSE IF (aInvalid && !bInvalid) + BoolRes.word[i].bit[j] := 0 + ELSE IF (aInvalid && bInvalid) + BoolRes.word[i].bit[j] := 0 + FI + 1: // ranges + IF (!aInvalid && bInvalid) + BoolRes.word[i].bit[j] := 0 + ELSE IF (aInvalid && !bInvalid) + BoolRes.word[i].bit[j] := 0 + ELSE IF (aInvalid && bInvalid) + BoolRes.word[i].bit[j] := 0 + FI + 2: // equal each + IF (!aInvalid && bInvalid) + BoolRes.word[i].bit[j] := 0 + ELSE IF (aInvalid && !bInvalid) + BoolRes.word[i].bit[j] := 0 + ELSE IF (aInvalid && bInvalid) + BoolRes.word[i].bit[j] := 1 + FI + 3: // equal ordered + IF (!aInvalid && bInvalid) + BoolRes.word[i].bit[j] := 0 + ELSE IF (aInvalid && !bInvalid) + BoolRes.word[i].bit[j] := 1 + ELSE IF (aInvalid && bInvalid) + BoolRes.word[i].bit[j] := 1 + FI + ESAC + ENDFOR +ENDFOR +// aggregate results +CASE (imm8[3:2]) OF +0: // equal any + IntRes1 := 0 + FOR i := 0 to UpperBound + FOR j := 0 to UpperBound + IntRes1[i] := IntRes1[i] OR BoolRes.word[i].bit[j] + ENDFOR + ENDFOR +1: // ranges + IntRes1 := 0 + FOR i := 0 to UpperBound + FOR j := 0 to UpperBound + IntRes1[i] := IntRes1[i] OR (BoolRes.word[i].bit[j] AND BoolRes.word[i].bit[j+1]) + j += 2 + ENDFOR + ENDFOR +2: // equal each + IntRes1 := 0 + FOR i := 0 to UpperBound + IntRes1[i] := BoolRes.word[i].bit[i] + ENDFOR +3: // equal ordered + IntRes1 := (imm8[0] ? 0xFF : 0xFFFF) + FOR i := 0 to UpperBound + k := i + FOR j := 0 to UpperBound-i + IntRes1[i] := IntRes1[i] AND BoolRes.word[k].bit[j] + k := k+1 + ENDFOR + ENDFOR +ESAC +// optionally negate results +bInvalid := 0 +FOR i := 0 to UpperBound + IF imm8[4] + IF imm8[5] // only negate valid + IF b[n+size-1:n] == 0 + bInvalid := 1 + FI + IF bInvalid // invalid, don't negate + IntRes2[i] := IntRes1[i] + ELSE // valid, negate + IntRes2[i] := -1 XOR IntRes1[i] + FI + ELSE // negate all + IntRes2[i] := -1 XOR IntRes1[i] + FI + ELSE // don't negate + IntRes2[i] := IntRes1[i] + FI +ENDFOR +// output +dst := (IntRes2 == 0) AND bInvalid + + + SSE4.2 +
nmmintrin.h
+ String Compare +
+ + + + + + + + Compare packed strings in "a" and "b" with lengths "la" and "lb" using the control in "imm8", and store the generated mask in "dst". + [strcmp_note] + +size := (imm8[0] ? 16 : 8) // 8 or 16-bit characters +UpperBound := (128 / size) - 1 +BoolRes := 0 +// compare all characters +aInvalid := 0 +bInvalid := 0 +FOR i := 0 to UpperBound + m := i*size + FOR j := 0 to UpperBound + n := j*size + BoolRes.word[i].bit[j] := (a[m+size-1:m] == b[n+size-1:n]) ? 1 : 0 + + // invalidate characters after EOS + IF i == la + aInvalid := 1 + FI + IF j == lb + bInvalid := 1 + FI + + // override comparisons for invalid characters + CASE (imm8[3:2]) OF + 0: // equal any + IF (!aInvalid && bInvalid) + BoolRes.word[i].bit[j] := 0 + ELSE IF (aInvalid && !bInvalid) + BoolRes.word[i].bit[j] := 0 + ELSE IF (aInvalid && bInvalid) + BoolRes.word[i].bit[j] := 0 + FI + 1: // ranges + IF (!aInvalid && bInvalid) + BoolRes.word[i].bit[j] := 0 + ELSE IF (aInvalid && !bInvalid) + BoolRes.word[i].bit[j] := 0 + ELSE IF (aInvalid && bInvalid) + BoolRes.word[i].bit[j] := 0 + FI + 2: // equal each + IF (!aInvalid && bInvalid) + BoolRes.word[i].bit[j] := 0 + ELSE IF (aInvalid && !bInvalid) + BoolRes.word[i].bit[j] := 0 + ELSE IF (aInvalid && bInvalid) + BoolRes.word[i].bit[j] := 1 + FI + 3: // equal ordered + IF (!aInvalid && bInvalid) + BoolRes.word[i].bit[j] := 0 + ELSE IF (aInvalid && !bInvalid) + BoolRes.word[i].bit[j] := 1 + ELSE IF (aInvalid && bInvalid) + BoolRes.word[i].bit[j] := 1 + FI + ESAC + ENDFOR +ENDFOR +// aggregate results +CASE (imm8[3:2]) OF +0: // equal any + IntRes1 := 0 + FOR i := 0 to UpperBound + FOR j := 0 to UpperBound + IntRes1[i] := IntRes1[i] OR BoolRes.word[i].bit[j] + ENDFOR + ENDFOR +1: // ranges + IntRes1 := 0 + FOR i := 0 to UpperBound + FOR j := 0 to UpperBound + IntRes1[i] := IntRes1[i] OR (BoolRes.word[i].bit[j] AND BoolRes.word[i].bit[j+1]) + j += 2 + ENDFOR + ENDFOR +2: // equal each + IntRes1 := 0 + FOR i := 0 to UpperBound + IntRes1[i] := BoolRes.word[i].bit[i] + ENDFOR +3: // equal ordered + IntRes1 := (imm8[0] ? 0xFF : 0xFFFF) + FOR i := 0 to UpperBound + k := i + FOR j := 0 to UpperBound-i + IntRes1[i] := IntRes1[i] AND BoolRes.word[k].bit[j] + k := k+1 + ENDFOR + ENDFOR +ESAC +// optionally negate results +FOR i := 0 to UpperBound + IF imm8[4] + IF imm8[5] // only negate valid + IF i >= lb // invalid, don't negate + IntRes2[i] := IntRes1[i] + ELSE // valid, negate + IntRes2[i] := -1 XOR IntRes1[i] + FI + ELSE // negate all + IntRes2[i] := -1 XOR IntRes1[i] + FI + ELSE // don't negate + IntRes2[i] := IntRes1[i] + FI +ENDFOR +// output +IF imm8[6] // byte / word mask + FOR i := 0 to UpperBound + j := i*size + IF IntRes2[i] + dst[j+size-1:j] := (imm8[0] ? 0xFF : 0xFFFF) + ELSE + dst[j+size-1:j] := 0 + FI + ENDFOR +ELSE // bit mask + dst[UpperBound:0] := IntRes2[UpperBound:0] + dst[127:UpperBound+1] := 0 +FI + + + SSE4.2 +
nmmintrin.h
+ String Compare +
+ + + + + + + + Compare packed strings in "a" and "b" with lengths "la" and "lb" using the control in "imm8", and store the generated index in "dst". + [strcmp_note] + +size := (imm8[0] ? 16 : 8) // 8 or 16-bit characters +UpperBound := (128 / size) - 1 +BoolRes := 0 +// compare all characters +aInvalid := 0 +bInvalid := 0 +FOR i := 0 to UpperBound + m := i*size + FOR j := 0 to UpperBound + n := j*size + BoolRes.word[i].bit[j] := (a[m+size-1:m] == b[n+size-1:n]) ? 1 : 0 + + // invalidate characters after EOS + IF i == la + aInvalid := 1 + FI + IF j == lb + bInvalid := 1 + FI + + // override comparisons for invalid characters + CASE (imm8[3:2]) OF + 0: // equal any + IF (!aInvalid && bInvalid) + BoolRes.word[i].bit[j] := 0 + ELSE IF (aInvalid && !bInvalid) + BoolRes.word[i].bit[j] := 0 + ELSE IF (aInvalid && bInvalid) + BoolRes.word[i].bit[j] := 0 + FI + 1: // ranges + IF (!aInvalid && bInvalid) + BoolRes.word[i].bit[j] := 0 + ELSE IF (aInvalid && !bInvalid) + BoolRes.word[i].bit[j] := 0 + ELSE IF (aInvalid && bInvalid) + BoolRes.word[i].bit[j] := 0 + FI + 2: // equal each + IF (!aInvalid && bInvalid) + BoolRes.word[i].bit[j] := 0 + ELSE IF (aInvalid && !bInvalid) + BoolRes.word[i].bit[j] := 0 + ELSE IF (aInvalid && bInvalid) + BoolRes.word[i].bit[j] := 1 + FI + 3: // equal ordered + IF (!aInvalid && bInvalid) + BoolRes.word[i].bit[j] := 0 + ELSE IF (aInvalid && !bInvalid) + BoolRes.word[i].bit[j] := 1 + ELSE IF (aInvalid && bInvalid) + BoolRes.word[i].bit[j] := 1 + FI + ESAC + ENDFOR +ENDFOR +// aggregate results +CASE (imm8[3:2]) OF +0: // equal any + IntRes1 := 0 + FOR i := 0 to UpperBound + FOR j := 0 to UpperBound + IntRes1[i] := IntRes1[i] OR BoolRes.word[i].bit[j] + ENDFOR + ENDFOR +1: // ranges + IntRes1 := 0 + FOR i := 0 to UpperBound + FOR j := 0 to UpperBound + IntRes1[i] := IntRes1[i] OR (BoolRes.word[i].bit[j] AND BoolRes.word[i].bit[j+1]) + j += 2 + ENDFOR + ENDFOR +2: // equal each + IntRes1 := 0 + FOR i := 0 to UpperBound + IntRes1[i] := BoolRes.word[i].bit[i] + ENDFOR +3: // equal ordered + IntRes1 := (imm8[0] ? 0xFF : 0xFFFF) + FOR i := 0 to UpperBound + k := i + FOR j := 0 to UpperBound-i + IntRes1[i] := IntRes1[i] AND BoolRes.word[k].bit[j] + k := k+1 + ENDFOR + ENDFOR +ESAC +// optionally negate results +FOR i := 0 to UpperBound + IF imm8[4] + IF imm8[5] // only negate valid + IF i >= lb // invalid, don't negate + IntRes2[i] := IntRes1[i] + ELSE // valid, negate + IntRes2[i] := -1 XOR IntRes1[i] + FI + ELSE // negate all + IntRes2[i] := -1 XOR IntRes1[i] + FI + ELSE // don't negate + IntRes2[i] := IntRes1[i] + FI +ENDFOR +// output +IF imm8[6] // most significant bit + tmp := UpperBound + dst := tmp + DO WHILE ((tmp >= 0) AND a[tmp] == 0) + tmp := tmp - 1 + dst := tmp + OD +ELSE // least significant bit + tmp := 0 + dst := tmp + DO WHILE ((tmp <= UpperBound) AND a[tmp] == 0) + tmp := tmp + 1 + dst := tmp + OD +FI + + + SSE4.2 +
nmmintrin.h
+ String Compare +
+ + + + + + + + Compare packed strings in "a" and "b" with lengths "la" and "lb" using the control in "imm8", and returns 1 if any character in "b" was null, and 0 otherwise. + [strcmp_note] + +size := (imm8[0] ? 16 : 8) // 8 or 16-bit characters +UpperBound := (128 / size) - 1 +dst := (lb <= UpperBound) + + + SSE4.2 +
nmmintrin.h
+ String Compare +
+ + + + + + + + Compare packed strings in "a" and "b" with lengths "la" and "lb" using the control in "imm8", and returns 1 if the resulting mask was non-zero, and 0 otherwise. + [strcmp_note] + +size := (imm8[0] ? 16 : 8) // 8 or 16-bit characters +UpperBound := (128 / size) - 1 +BoolRes := 0 +// compare all characters +aInvalid := 0 +bInvalid := 0 +FOR i := 0 to UpperBound + m := i*size + FOR j := 0 to UpperBound + n := j*size + BoolRes.word[i].bit[j] := (a[m+size-1:m] == b[n+size-1:n]) ? 1 : 0 + + // invalidate characters after EOS + IF i == la + aInvalid := 1 + FI + IF j == lb + bInvalid := 1 + FI + + // override comparisons for invalid characters + CASE (imm8[3:2]) OF + 0: // equal any + IF (!aInvalid && bInvalid) + BoolRes.word[i].bit[j] := 0 + ELSE IF (aInvalid && !bInvalid) + BoolRes.word[i].bit[j] := 0 + ELSE IF (aInvalid && bInvalid) + BoolRes.word[i].bit[j] := 0 + FI + 1: // ranges + IF (!aInvalid && bInvalid) + BoolRes.word[i].bit[j] := 0 + ELSE IF (aInvalid && !bInvalid) + BoolRes.word[i].bit[j] := 0 + ELSE IF (aInvalid && bInvalid) + BoolRes.word[i].bit[j] := 0 + FI + 2: // equal each + IF (!aInvalid && bInvalid) + BoolRes.word[i].bit[j] := 0 + ELSE IF (aInvalid && !bInvalid) + BoolRes.word[i].bit[j] := 0 + ELSE IF (aInvalid && bInvalid) + BoolRes.word[i].bit[j] := 1 + FI + 3: // equal ordered + IF (!aInvalid && bInvalid) + BoolRes.word[i].bit[j] := 0 + ELSE IF (aInvalid && !bInvalid) + BoolRes.word[i].bit[j] := 1 + ELSE IF (aInvalid && bInvalid) + BoolRes.word[i].bit[j] := 1 + FI + ESAC + ENDFOR +ENDFOR +// aggregate results +CASE (imm8[3:2]) OF +0: // equal any + IntRes1 := 0 + FOR i := 0 to UpperBound + FOR j := 0 to UpperBound + IntRes1[i] := IntRes1[i] OR BoolRes.word[i].bit[j] + ENDFOR + ENDFOR +1: // ranges + IntRes1 := 0 + FOR i := 0 to UpperBound + FOR j := 0 to UpperBound + IntRes1[i] := IntRes1[i] OR (BoolRes.word[i].bit[j] AND BoolRes.word[i].bit[j+1]) + j += 2 + ENDFOR + ENDFOR +2: // equal each + IntRes1 := 0 + FOR i := 0 to UpperBound + IntRes1[i] := BoolRes.word[i].bit[i] + ENDFOR +3: // equal ordered + IntRes1 := (imm8[0] ? 0xFF : 0xFFFF) + FOR i := 0 to UpperBound + k := i + FOR j := 0 to UpperBound-i + IntRes1[i] := IntRes1[i] AND BoolRes.word[k].bit[j] + k := k+1 + ENDFOR + ENDFOR +ESAC +// optionally negate results +FOR i := 0 to UpperBound + IF imm8[4] + IF imm8[5] // only negate valid + IF i >= lb // invalid, don't negate + IntRes2[i] := IntRes1[i] + ELSE // valid, negate + IntRes2[i] := -1 XOR IntRes1[i] + FI + ELSE // negate all + IntRes2[i] := -1 XOR IntRes1[i] + FI + ELSE // don't negate + IntRes2[i] := IntRes1[i] + FI +ENDFOR +// output +dst := (IntRes2 != 0) + + + SSE4.2 +
nmmintrin.h
+ String Compare +
+ + + + + + + + Compare packed strings in "a" and "b" with lengths "la" and "lb" using the control in "imm8", and returns 1 if any character in "a" was null, and 0 otherwise. + [strcmp_note] + +size := (imm8[0] ? 16 : 8) // 8 or 16-bit characters +UpperBound := (128 / size) - 1 +dst := (la <= UpperBound) + + + SSE4.2 +
nmmintrin.h
+ String Compare +
+ + + + + + + + Compare packed strings in "a" and "b" with lengths "la" and "lb" using the control in "imm8", and returns bit 0 of the resulting bit mask. + [strcmp_note] + +size := (imm8[0] ? 16 : 8) // 8 or 16-bit characters +UpperBound := (128 / size) - 1 +BoolRes := 0 +// compare all characters +aInvalid := 0 +bInvalid := 0 +FOR i := 0 to UpperBound + m := i*size + FOR j := 0 to UpperBound + n := j*size + BoolRes.word[i].bit[j] := (a[m+size-1:m] == b[n+size-1:n]) ? 1 : 0 + + // invalidate characters after EOS + IF i == la + aInvalid := 1 + FI + IF j == lb + bInvalid := 1 + FI + + // override comparisons for invalid characters + CASE (imm8[3:2]) OF + 0: // equal any + IF (!aInvalid && bInvalid) + BoolRes.word[i].bit[j] := 0 + ELSE IF (aInvalid && !bInvalid) + BoolRes.word[i].bit[j] := 0 + ELSE IF (aInvalid && bInvalid) + BoolRes.word[i].bit[j] := 0 + FI + 1: // ranges + IF (!aInvalid && bInvalid) + BoolRes.word[i].bit[j] := 0 + ELSE IF (aInvalid && !bInvalid) + BoolRes.word[i].bit[j] := 0 + ELSE IF (aInvalid && bInvalid) + BoolRes.word[i].bit[j] := 0 + FI + 2: // equal each + IF (!aInvalid && bInvalid) + BoolRes.word[i].bit[j] := 0 + ELSE IF (aInvalid && !bInvalid) + BoolRes.word[i].bit[j] := 0 + ELSE IF (aInvalid && bInvalid) + BoolRes.word[i].bit[j] := 1 + FI + 3: // equal ordered + IF (!aInvalid && bInvalid) + BoolRes.word[i].bit[j] := 0 + ELSE IF (aInvalid && !bInvalid) + BoolRes.word[i].bit[j] := 1 + ELSE IF (aInvalid && bInvalid) + BoolRes.word[i].bit[j] := 1 + FI + ESAC + ENDFOR +ENDFOR +// aggregate results +CASE (imm8[3:2]) OF +0: // equal any + IntRes1 := 0 + FOR i := 0 to UpperBound + FOR j := 0 to UpperBound + IntRes1[i] := IntRes1[i] OR BoolRes.word[i].bit[j] + ENDFOR + ENDFOR +1: // ranges + IntRes1 := 0 + FOR i := 0 to UpperBound + FOR j := 0 to UpperBound + IntRes1[i] := IntRes1[i] OR (BoolRes.word[i].bit[j] AND BoolRes.word[i].bit[j+1]) + j += 2 + ENDFOR + ENDFOR +2: // equal each + IntRes1 := 0 + FOR i := 0 to UpperBound + IntRes1[i] := BoolRes.word[i].bit[i] + ENDFOR +3: // equal ordered + IntRes1 := (imm8[0] ? 0xFF : 0xFFFF) + FOR i := 0 to UpperBound + k := i + FOR j := 0 to UpperBound-i + IntRes1[i] := IntRes1[i] AND BoolRes.word[k].bit[j] + k := k+1 + ENDFOR + ENDFOR +ESAC +// optionally negate results +FOR i := 0 to UpperBound + IF imm8[4] + IF imm8[5] // only negate valid + IF i >= lb // invalid, don't negate + IntRes2[i] := IntRes1[i] + ELSE // valid, negate + IntRes2[i] := -1 XOR IntRes1[i] + FI + ELSE // negate all + IntRes2[i] := -1 XOR IntRes1[i] + FI + ELSE // don't negate + IntRes2[i] := IntRes1[i] + FI +ENDFOR +// output +dst := IntRes2[0] + + + SSE4.2 +
nmmintrin.h
+ String Compare +
+ + + + + + + + Compare packed strings in "a" and "b" with lengths "la" and "lb" using the control in "imm8", and returns 1 if "b" did not contain a null character and the resulting mask was zero, and 0 otherwise. + [strcmp_note] + +size := (imm8[0] ? 16 : 8) // 8 or 16-bit characters +UpperBound := (128 / size) - 1 +BoolRes := 0 +// compare all characters +aInvalid := 0 +bInvalid := 0 +FOR i := 0 to UpperBound + m := i*size + FOR j := 0 to UpperBound + n := j*size + BoolRes.word[i].bit[j] := (a[m+size-1:m] == b[n+size-1:n]) ? 1 : 0 + + // invalidate characters after EOS + IF i == la + aInvalid := 1 + FI + IF j == lb + bInvalid := 1 + FI + + // override comparisons for invalid characters + CASE (imm8[3:2]) OF + 0: // equal any + IF (!aInvalid && bInvalid) + BoolRes.word[i].bit[j] := 0 + ELSE IF (aInvalid && !bInvalid) + BoolRes.word[i].bit[j] := 0 + ELSE IF (aInvalid && bInvalid) + BoolRes.word[i].bit[j] := 0 + FI + 1: // ranges + IF (!aInvalid && bInvalid) + BoolRes.word[i].bit[j] := 0 + ELSE IF (aInvalid && !bInvalid) + BoolRes.word[i].bit[j] := 0 + ELSE IF (aInvalid && bInvalid) + BoolRes.word[i].bit[j] := 0 + FI + 2: // equal each + IF (!aInvalid && bInvalid) + BoolRes.word[i].bit[j] := 0 + ELSE IF (aInvalid && !bInvalid) + BoolRes.word[i].bit[j] := 0 + ELSE IF (aInvalid && bInvalid) + BoolRes.word[i].bit[j] := 1 + FI + 3: // equal ordered + IF (!aInvalid && bInvalid) + BoolRes.word[i].bit[j] := 0 + ELSE IF (aInvalid && !bInvalid) + BoolRes.word[i].bit[j] := 1 + ELSE IF (aInvalid && bInvalid) + BoolRes.word[i].bit[j] := 1 + FI + ESAC + ENDFOR +ENDFOR +// aggregate results +CASE (imm8[3:2]) OF +0: // equal any + IntRes1 := 0 + FOR i := 0 to UpperBound + FOR j := 0 to UpperBound + IntRes1[i] := IntRes1[i] OR BoolRes.word[i].bit[j] + ENDFOR + ENDFOR +1: // ranges + IntRes1 := 0 + FOR i := 0 to UpperBound + FOR j := 0 to UpperBound + IntRes1[i] := IntRes1[i] OR (BoolRes.word[i].bit[j] AND BoolRes.word[i].bit[j+1]) + j += 2 + ENDFOR + ENDFOR +2: // equal each + IntRes1 := 0 + FOR i := 0 to UpperBound + IntRes1[i] := BoolRes.word[i].bit[i] + ENDFOR +3: // equal ordered + IntRes1 := (imm8[0] ? 0xFF : 0xFFFF) + FOR i := 0 to UpperBound + k := i + FOR j := 0 to UpperBound-i + IntRes1[i] := IntRes1[i] AND BoolRes.word[k].bit[j] + k := k+1 + ENDFOR + ENDFOR +ESAC +// optionally negate results +FOR i := 0 to UpperBound + IF imm8[4] + IF imm8[5] // only negate valid + IF i >= lb // invalid, don't negate + IntRes2[i] := IntRes1[i] + ELSE // valid, negate + IntRes2[i] := -1 XOR IntRes1[i] + FI + ELSE // negate all + IntRes2[i] := -1 XOR IntRes1[i] + FI + ELSE // don't negate + IntRes2[i] := IntRes1[i] + FI +ENDFOR +// output +dst := (IntRes2 == 0) AND (lb > UpperBound) + + + SSE4.2 +
nmmintrin.h
+ String Compare +
+ + + + + Compare packed signed 64-bit integers in "a" and "b" for greater-than, and store the results in "dst". + +FOR j := 0 to 1 + i := j*64 + dst[i+63:i] := ( a[i+63:i] > b[i+63:i] ) ? 0xFFFFFFFFFFFFFFFF : 0 +ENDFOR + + + SSE4.2 +
nmmintrin.h
+ Compare +
+ + + + + Starting with the initial value in "crc", accumulates a CRC32 value for unsigned 8-bit integer "v", and stores the result in "dst". + tmp1[7:0] := v[0:7] // bit reflection +tmp2[31:0] := crc[0:31] // bit reflection +tmp3[39:0] := tmp1[7:0] << 32 +tmp4[39:0] := tmp2[31:0] << 8 +tmp5[39:0] := tmp3[39:0] XOR tmp4[39:0] +tmp6[31:0] := MOD2(tmp5[39:0], 0x11EDC6F41) // remainder from polynomial division modulus 2 +dst[31:0] := tmp6[0:31] // bit reflection + + + SSE4.2 +
nmmintrin.h
+ Cryptography +
+ + + + + Starting with the initial value in "crc", accumulates a CRC32 value for unsigned 16-bit integer "v", and stores the result in "dst". + tmp1[15:0] := v[0:15] // bit reflection +tmp2[31:0] := crc[0:31] // bit reflection +tmp3[47:0] := tmp1[15:0] << 32 +tmp4[47:0] := tmp2[31:0] << 16 +tmp5[47:0] := tmp3[47:0] XOR tmp4[47:0] +tmp6[31:0] := MOD2(tmp5[47:0], 0x11EDC6F41) // remainder from polynomial division modulus 2 +dst[31:0] := tmp6[0:31] // bit reflection + + + SSE4.2 +
nmmintrin.h
+ Cryptography +
+ + + + + Starting with the initial value in "crc", accumulates a CRC32 value for unsigned 32-bit integer "v", and stores the result in "dst". + tmp1[31:0] := v[0:31] // bit reflection +tmp2[31:0] := crc[0:31] // bit reflection +tmp3[63:0] := tmp1[31:0] << 32 +tmp4[63:0] := tmp2[31:0] << 32 +tmp5[63:0] := tmp3[63:0] XOR tmp4[63:0] +tmp6[31:0] := MOD2(tmp5[63:0], 0x11EDC6F41) // remainder from polynomial division modulus 2 +dst[31:0] := tmp6[0:31] // bit reflection + + + SSE4.2 +
nmmintrin.h
+ Cryptography +
+ + + + + Starting with the initial value in "crc", accumulates a CRC32 value for unsigned 64-bit integer "v", and stores the result in "dst". + tmp1[63:0] := v[0:63] // bit reflection +tmp2[31:0] := crc[0:31] // bit reflection +tmp3[95:0] := tmp1[31:0] << 32 +tmp4[95:0] := tmp2[63:0] << 64 +tmp5[95:0] := tmp3[95:0] XOR tmp4[95:0] +tmp6[31:0] := MOD2(tmp5[95:0], 0x11EDC6F41) // remainder from polynomial division modulus 2 +dst[31:0] := tmp6[0:31] // bit reflection + + + SSE4.2 +
nmmintrin.h
+ Cryptography +
+ + + + + + Compute the absolute value of packed signed 8-bit integers in "a", and store the unsigned results in "dst". + +FOR j := 0 to 7 + i := j*8 + dst[i+7:i] := ABS(Int(a[i+7:i])) +ENDFOR + + + SSSE3 +
tmmintrin.h
+ Special Math Functions +
+ + + + Compute the absolute value of packed signed 8-bit integers in "a", and store the unsigned results in "dst". + +FOR j := 0 to 15 + i := j*8 + dst[i+7:i] := ABS(a[i+7:i]) +ENDFOR + + + SSSE3 +
tmmintrin.h
+ Special Math Functions +
+ + + + Compute the absolute value of packed signed 16-bit integers in "a", and store the unsigned results in "dst". + +FOR j := 0 to 3 + i := j*16 + dst[i+15:i] := ABS(Int(a[i+15:i])) +ENDFOR + + + SSSE3 +
tmmintrin.h
+ Special Math Functions +
+ + + + Compute the absolute value of packed signed 16-bit integers in "a", and store the unsigned results in "dst". + +FOR j := 0 to 7 + i := j*16 + dst[i+15:i] := ABS(a[i+15:i]) +ENDFOR + + + SSSE3 +
tmmintrin.h
+ Special Math Functions +
+ + + + Compute the absolute value of packed signed 32-bit integers in "a", and store the unsigned results in "dst". + +FOR j := 0 to 1 + i := j*32 + dst[i+31:i] := ABS(a[i+31:i]) +ENDFOR + + + SSSE3 +
tmmintrin.h
+ Special Math Functions +
+ + + + Compute the absolute value of packed signed 32-bit integers in "a", and store the unsigned results in "dst". + +FOR j := 0 to 3 + i := j*32 + dst[i+31:i] := ABS(a[i+31:i]) +ENDFOR + + + SSSE3 +
tmmintrin.h
+ Special Math Functions +
+ + + + + Shuffle packed 8-bit integers in "a" according to shuffle control mask in the corresponding 8-bit element of "b", and store the results in "dst". + +FOR j := 0 to 15 + i := j*8 + IF b[i+7] == 1 + dst[i+7:i] := 0 + ELSE + index[3:0] := b[i+3:i] + dst[i+7:i] := a[index*8+7:index*8] + FI +ENDFOR + + + SSSE3 +
tmmintrin.h
+ Swizzle +
+ + + + + Shuffle packed 8-bit integers in "a" according to shuffle control mask in the corresponding 8-bit element of "b", and store the results in "dst". + +FOR j := 0 to 7 + i := j*8 + IF b[i+7] == 1 + dst[i+7:i] := 0 + ELSE + index[2:0] := b[i+2:i] + dst[i+7:i] := a[index*8+7:index*8] + FI +ENDFOR + + + SSSE3 +
tmmintrin.h
+ Swizzle +
+ + + + + + Concatenate 16-byte blocks in "a" and "b" into a 32-byte temporary result, shift the result right by "imm8" bytes, and store the low 16 bytes in "dst". + +tmp[255:0] := ((a[127:0] << 128)[255:0] OR b[127:0]) >> (imm8*8) +dst[127:0] := tmp[127:0] + + + SSSE3 +
tmmintrin.h
+ Miscellaneous +
+ + + + + + Concatenate 8-byte blocks in "a" and "b" into a 16-byte temporary result, shift the result right by "imm8" bytes, and store the low 16 bytes in "dst". + +tmp[127:0] := ((a[63:0] << 64)[127:0] OR b[63:0]) >> (imm8*8) +dst[63:0] := tmp[63:0] + + + SSSE3 +
tmmintrin.h
+ Miscellaneous +
+ + + + + Horizontally add adjacent pairs of 16-bit integers in "a" and "b", and pack the signed 16-bit results in "dst". + +dst[15:0] := a[31:16] + a[15:0] +dst[31:16] := a[63:48] + a[47:32] +dst[47:32] := a[95:80] + a[79:64] +dst[63:48] := a[127:112] + a[111:96] +dst[79:64] := b[31:16] + b[15:0] +dst[95:80] := b[63:48] + b[47:32] +dst[111:96] := b[95:80] + b[79:64] +dst[127:112] := b[127:112] + b[111:96] + + + SSSE3 +
tmmintrin.h
+ Arithmetic +
+ + + + + Horizontally add adjacent pairs of signed 16-bit integers in "a" and "b" using saturation, and pack the signed 16-bit results in "dst". + +dst[15:0] := Saturate16(a[31:16] + a[15:0]) +dst[31:16] := Saturate16(a[63:48] + a[47:32]) +dst[47:32] := Saturate16(a[95:80] + a[79:64]) +dst[63:48] := Saturate16(a[127:112] + a[111:96]) +dst[79:64] := Saturate16(b[31:16] + b[15:0]) +dst[95:80] := Saturate16(b[63:48] + b[47:32]) +dst[111:96] := Saturate16(b[95:80] + b[79:64]) +dst[127:112] := Saturate16(b[127:112] + b[111:96]) + + + SSSE3 +
tmmintrin.h
+ Arithmetic +
+ + + + + Horizontally add adjacent pairs of 32-bit integers in "a" and "b", and pack the signed 32-bit results in "dst". + +dst[31:0] := a[63:32] + a[31:0] +dst[63:32] := a[127:96] + a[95:64] +dst[95:64] := b[63:32] + b[31:0] +dst[127:96] := b[127:96] + b[95:64] + + + SSSE3 +
tmmintrin.h
+ Arithmetic +
+ + + + + Horizontally add adjacent pairs of 16-bit integers in "a" and "b", and pack the signed 16-bit results in "dst". + +dst[15:0] := a[31:16] + a[15:0] +dst[31:16] := a[63:48] + a[47:32] +dst[47:32] := b[31:16] + b[15:0] +dst[63:48] := b[63:48] + b[47:32] + + + SSSE3 +
tmmintrin.h
+ Arithmetic +
+ + + + + Horizontally add adjacent pairs of 32-bit integers in "a" and "b", and pack the signed 32-bit results in "dst". + +dst[31:0] := a[63:32] + a[31:0] +dst[63:32] := b[63:32] + b[31:0] + + + SSSE3 +
tmmintrin.h
+ Arithmetic +
+ + + + + Horizontally add adjacent pairs of signed 16-bit integers in "a" and "b" using saturation, and pack the signed 16-bit results in "dst". + +dst[15:0] := Saturate16(a[31:16] + a[15:0]) +dst[31:16] := Saturate16(a[63:48] + a[47:32]) +dst[47:32] := Saturate16(b[31:16] + b[15:0]) +dst[63:48] := Saturate16(b[63:48] + b[47:32]) + + + SSSE3 +
tmmintrin.h
+ Arithmetic +
+ + + + + Horizontally subtract adjacent pairs of 16-bit integers in "a" and "b", and pack the signed 16-bit results in "dst". + +dst[15:0] := a[15:0] - a[31:16] +dst[31:16] := a[47:32] - a[63:48] +dst[47:32] := a[79:64] - a[95:80] +dst[63:48] := a[111:96] - a[127:112] +dst[79:64] := b[15:0] - b[31:16] +dst[95:80] := b[47:32] - b[63:48] +dst[111:96] := b[79:64] - b[95:80] +dst[127:112] := b[111:96] - b[127:112] + + + SSSE3 +
tmmintrin.h
+ Arithmetic +
+ + + + + Horizontally subtract adjacent pairs of signed 16-bit integers in "a" and "b" using saturation, and pack the signed 16-bit results in "dst". + +dst[15:0] := Saturate16(a[15:0] - a[31:16]) +dst[31:16] := Saturate16(a[47:32] - a[63:48]) +dst[47:32] := Saturate16(a[79:64] - a[95:80]) +dst[63:48] := Saturate16(a[111:96] - a[127:112]) +dst[79:64] := Saturate16(b[15:0] - b[31:16]) +dst[95:80] := Saturate16(b[47:32] - b[63:48]) +dst[111:96] := Saturate16(b[79:64] - b[95:80]) +dst[127:112] := Saturate16(b[111:96] - b[127:112]) + + + SSSE3 +
tmmintrin.h
+ Arithmetic +
+ + + + + Horizontally subtract adjacent pairs of 32-bit integers in "a" and "b", and pack the signed 32-bit results in "dst". + +dst[31:0] := a[31:0] - a[63:32] +dst[63:32] := a[95:64] - a[127:96] +dst[95:64] := b[31:0] - b[63:32] +dst[127:96] := b[95:64] - b[127:96] + + + SSSE3 +
tmmintrin.h
+ Arithmetic +
+ + + + + Horizontally subtract adjacent pairs of 16-bit integers in "a" and "b", and pack the signed 16-bit results in "dst". + +dst[15:0] := a[15:0] - a[31:16] +dst[31:16] := a[47:32] - a[63:48] +dst[47:32] := b[15:0] - b[31:16] +dst[63:48] := b[47:32] - b[63:48] + + + SSSE3 +
tmmintrin.h
+ Arithmetic +
+ + + + + Horizontally subtract adjacent pairs of 32-bit integers in "a" and "b", and pack the signed 32-bit results in "dst". + +dst[31:0] := a[31:0] - a[63:32] +dst[63:32] := b[31:0] - b[63:32] + + + SSSE3 +
tmmintrin.h
+ Arithmetic +
+ + + + + Horizontally subtract adjacent pairs of signed 16-bit integers in "a" and "b" using saturation, and pack the signed 16-bit results in "dst". + +dst[15:0] := Saturate16(a[15:0] - a[31:16]) +dst[31:16] := Saturate16(a[47:32] - a[63:48]) +dst[47:32] := Saturate16(b[15:0] - b[31:16]) +dst[63:48] := Saturate16(b[47:32] - b[63:48]) + + + SSSE3 +
tmmintrin.h
+ Arithmetic +
+ + + + + Vertically multiply each unsigned 8-bit integer from "a" with the corresponding signed 8-bit integer from "b", producing intermediate signed 16-bit integers. Horizontally add adjacent pairs of intermediate signed 16-bit integers, and pack the saturated results in "dst". + +FOR j := 0 to 7 + i := j*16 + dst[i+15:i] := Saturate16( a[i+15:i+8]*b[i+15:i+8] + a[i+7:i]*b[i+7:i] ) +ENDFOR + + + SSSE3 +
tmmintrin.h
+ Arithmetic +
+ + + + + Vertically multiply each unsigned 8-bit integer from "a" with the corresponding signed 8-bit integer from "b", producing intermediate signed 16-bit integers. Horizontally add adjacent pairs of intermediate signed 16-bit integers, and pack the saturated results in "dst". + +FOR j := 0 to 3 + i := j*16 + dst[i+15:i] := Saturate16( a[i+15:i+8]*b[i+15:i+8] + a[i+7:i]*b[i+7:i] ) +ENDFOR + + + SSSE3 +
tmmintrin.h
+ Arithmetic +
+ + + + + Multiply packed signed 16-bit integers in "a" and "b", producing intermediate signed 32-bit integers. Truncate each intermediate integer to the 18 most significant bits, round by adding 1, and store bits [16:1] to "dst". + +FOR j := 0 to 7 + i := j*16 + tmp[31:0] := ((SignExtend32(a[i+15:i]) * SignExtend32(b[i+15:i])) >> 14) + 1 + dst[i+15:i] := tmp[16:1] +ENDFOR + + + SSSE3 +
tmmintrin.h
+ Arithmetic +
+ + + + + Multiply packed signed 16-bit integers in "a" and "b", producing intermediate signed 32-bit integers. Truncate each intermediate integer to the 18 most significant bits, round by adding 1, and store bits [16:1] to "dst". + +FOR j := 0 to 3 + i := j*16 + tmp[31:0] := ((SignExtend32(a[i+15:i]) * SignExtend32(b[i+15:i])) >> 14) + 1 + dst[i+15:i] := tmp[16:1] +ENDFOR + + + SSSE3 +
tmmintrin.h
+ Arithmetic +
+ + + + + Negate packed 8-bit integers in "a" when the corresponding signed 8-bit integer in "b" is negative, and store the results in "dst". Element in "dst" are zeroed out when the corresponding element in "b" is zero. + +FOR j := 0 to 15 + i := j*8 + IF b[i+7:i] < 0 + dst[i+7:i] := -(a[i+7:i]) + ELSE IF b[i+7:i] == 0 + dst[i+7:i] := 0 + ELSE + dst[i+7:i] := a[i+7:i] + FI +ENDFOR + + + SSSE3 +
tmmintrin.h
+ Arithmetic +
+ + + + + Negate packed 16-bit integers in "a" when the corresponding signed 16-bit integer in "b" is negative, and store the results in "dst". Element in "dst" are zeroed out when the corresponding element in "b" is zero. + +FOR j := 0 to 7 + i := j*16 + IF b[i+15:i] < 0 + dst[i+15:i] := -(a[i+15:i]) + ELSE IF b[i+15:i] == 0 + dst[i+15:i] := 0 + ELSE + dst[i+15:i] := a[i+15:i] + FI +ENDFOR + + + SSSE3 +
tmmintrin.h
+ Arithmetic +
+ + + + + Negate packed 32-bit integers in "a" when the corresponding signed 32-bit integer in "b" is negative, and store the results in "dst". Element in "dst" are zeroed out when the corresponding element in "b" is zero. + +FOR j := 0 to 3 + i := j*32 + IF b[i+31:i] < 0 + dst[i+31:i] := -(a[i+31:i]) + ELSE IF b[i+31:i] == 0 + dst[i+31:i] := 0 + ELSE + dst[i+31:i] := a[i+31:i] + FI +ENDFOR + + + SSSE3 +
tmmintrin.h
+ Arithmetic +
+ + + + + Negate packed 8-bit integers in "a" when the corresponding signed 8-bit integer in "b" is negative, and store the results in "dst". Element in "dst" are zeroed out when the corresponding element in "b" is zero. + +FOR j := 0 to 7 + i := j*8 + IF b[i+7:i] < 0 + dst[i+7:i] := -(a[i+7:i]) + ELSE IF b[i+7:i] == 0 + dst[i+7:i] := 0 + ELSE + dst[i+7:i] := a[i+7:i] + FI +ENDFOR + + + SSSE3 +
tmmintrin.h
+ Arithmetic +
+ + + + + Negate packed 16-bit integers in "a" when the corresponding signed 16-bit integer in "b" is negative, and store the results in "dst". Element in "dst" are zeroed out when the corresponding element in "b" is zero. + +FOR j := 0 to 3 + i := j*16 + IF b[i+15:i] < 0 + dst[i+15:i] := -(a[i+15:i]) + ELSE IF b[i+15:i] == 0 + dst[i+15:i] := 0 + ELSE + dst[i+15:i] := a[i+15:i] + FI +ENDFOR + + + SSSE3 +
tmmintrin.h
+ Arithmetic +
+ + + + + Negate packed 32-bit integers in "a" when the corresponding signed 32-bit integer in "b" is negative, and store the results in "dst". Element in "dst" are zeroed out when the corresponding element in "b" is zero. + +FOR j := 0 to 1 + i := j*32 + IF b[i+31:i] < 0 + dst[i+31:i] := -(a[i+31:i]) + ELSE IF b[i+31:i] == 0 + dst[i+31:i] := 0 + ELSE + dst[i+31:i] := a[i+31:i] + FI +ENDFOR + + + SSSE3 +
tmmintrin.h
+ Arithmetic +
+ + + + + + Copy the current 64-bit value of the processor's time-stamp counter into "dst". + dst[63:0] := TimeStampCounter + + + TSC +
immintrin.h
+ General Support +
+ + + + + Mark the start of a TSX (HLE/RTM) suspend load address tracking region. If this is used inside a transactional region, subsequent loads are not added to the read set of the transaction. If this is used inside a suspend load address tracking region it will cause transaction abort. If this is used outside of a transactional region it behaves like a NOP. + + TSXLDTRK +
immintrin.h
+ Miscellaneous +
+ + + Mark the end of a TSX (HLE/RTM) suspend load address tracking region. If this is used inside a suspend load address tracking region it will end the suspend region and all following load addresses will be added to the transaction read set. If this is used inside an active transaction but not in a suspend region it will cause transaction abort. If this is used outside of a transactional region it behaves like a NOP. + + TSXLDTRK +
immintrin.h
+ Miscellaneous +
+ + + + + + Clear the user interrupt flag (UIF). + + UINTR +
immintrin.h
+ General Support +
+ + + + Send user interprocessor interrupts specified in unsigned 64-bit integer "__a". + + UINTR +
immintrin.h
+ General Support +
+ + + + Sets the user interrupt flag (UIF). + + UINTR +
immintrin.h
+ General Support +
+ + + + Store the current user interrupt flag (UIF) in unsigned 8-bit integer "dst". + + UINTR +
immintrin.h
+ General Support +
+ + + + + Reads the contents of a 64-bit MSR specified in "__A" into "dst". + DEST := MSR[__A] + + + USER_MSR +
x86gprintrin.h
+ General Support +
+ + + + + Writes the contents of "__B" into the 64-bit MSR specified in "__A". + MSR[__A] := __B + + + USER_MSR +
x86gprintrin.h
+ General Support +
+ + + + + Perform the last round of an AES encryption flow on data (state) in "a" using the round key in "RoundKey", and store the results in "dst"." + FOR j := 0 to 1 + i := j*128 + a[i+127:i] := ShiftRows(a[i+127:i]) + a[i+127:i] := SubBytes(a[i+127:i]) + dst[i+127:i] := a[i+127:i] XOR RoundKey[i+127:i] +ENDFOR +dst[MAX:256] := 0 + + + VAES + AVX512VL +
immintrin.h
+ Cryptography +
+ + + + + Perform one round of an AES encryption flow on data (state) in "a" using the round key in "RoundKey", and store the results in "dst"." + FOR j := 0 to 1 + i := j*128 + a[i+127:i] := ShiftRows(a[i+127:i]) + a[i+127:i] := SubBytes(a[i+127:i]) + a[i+127:i] := MixColumns(a[i+127:i]) + dst[i+127:i] := a[i+127:i] XOR RoundKey[i+127:i] +ENDFOR +dst[MAX:256] := 0 + + + VAES + AVX512VL +
immintrin.h
+ Cryptography +
+ + + + + Perform the last round of an AES decryption flow on data (state) in "a" using the round key in "RoundKey", and store the results in "dst". + FOR j := 0 to 1 + i := j*128 + a[i+127:i] := InvShiftRows(a[i+127:i]) + a[i+127:i] := InvSubBytes(a[i+127:i]) + dst[i+127:i] := a[i+127:i] XOR RoundKey[i+127:i] +ENDFOR +dst[MAX:256] := 0 + + + VAES + AVX512VL +
immintrin.h
+ Cryptography +
+ + + + + Perform one round of an AES decryption flow on data (state) in "a" using the round key in "RoundKey", and store the results in "dst". + FOR j := 0 to 1 + i := j*128 + a[i+127:i] := InvShiftRows(a[i+127:i]) + a[i+127:i] := InvSubBytes(a[i+127:i]) + a[i+127:i] := InvMixColumns(a[i+127:i]) + dst[i+127:i] := a[i+127:i] XOR RoundKey[i+127:i] +ENDFOR +dst[MAX:256] := 0 + + + VAES + AVX512VL +
immintrin.h
+ Cryptography +
+ + + + + + + + Carry-less multiplication of one quadword of + 'b' by one quadword of 'c', stores + the 128-bit result in 'dst'. The immediate 'Imm8' is + used to determine which quadwords of 'b' + and 'c' should be used. + +DEFINE PCLMUL128(X,Y) { + FOR i := 0 to 63 + TMP[i] := X[ 0 ] and Y[ i ] + FOR j := 1 to i + TMP[i] := TMP[i] xor (X[ j ] and Y[ i - j ]) + ENDFOR + DEST[ i ] := TMP[ i ] + ENDFOR + FOR i := 64 to 126 + TMP[i] := 0 + FOR j := i - 63 to 63 + TMP[i] := TMP[i] xor (X[ j ] and Y[ i - j ]) + ENDFOR + DEST[ i ] := TMP[ i ] + ENDFOR + DEST[127] := 0 + RETURN DEST // 128b vector +} +FOR i := 0 to 1 + IF Imm8[0] == 0 + TEMP1 := b.m128[i].qword[0] + ELSE + TEMP1 := b.m128[i].qword[1] + FI + IF Imm8[4] == 0 + TEMP2 := c.m128[i].qword[0] + ELSE + TEMP2 := c.m128[i].qword[1] + FI + dst.m128[i] := PCLMUL128(TEMP1, TEMP2) +ENDFOR +dst[MAX:256] := 0 + + + VPCLMULQDQ + AVX512VL +
immintrin.h
+ Application-Targeted +
+ + + + + + + + Carry-less multiplication of one quadword of + 'b' by one quadword of 'c', stores + the 128-bit result in 'dst'. The immediate 'Imm8' is + used to determine which quadwords of 'b' + and 'c' should be used. + +DEFINE PCLMUL128(X,Y) { + FOR i := 0 to 63 + TMP[i] := X[ 0 ] and Y[ i ] + FOR j := 1 to i + TMP[i] := TMP[i] xor (X[ j ] and Y[ i - j ]) + ENDFOR + DEST[ i ] := TMP[ i ] + ENDFOR + FOR i := 64 to 126 + TMP[i] := 0 + FOR j := i - 63 to 63 + TMP[i] := TMP[i] xor (X[ j ] and Y[ i - j ]) + ENDFOR + DEST[ i ] := TMP[ i ] + ENDFOR + DEST[127] := 0 + RETURN DEST // 128b vector +} +FOR i := 0 to 3 + IF Imm8[0] == 0 + TEMP1 := b.m128[i].qword[0] + ELSE + TEMP1 := b.m128[i].qword[1] + FI + IF Imm8[4] == 0 + TEMP2 := c.m128[i].qword[0] + ELSE + TEMP2 := c.m128[i].qword[1] + FI + dst.m128[i] := PCLMUL128(TEMP1, TEMP2) +ENDFOR +dst[MAX:512] := 0 + + + VPCLMULQDQ +
immintrin.h
+ Application-Targeted +
+ + + + + + + Directs the processor to enter an implementation-dependent optimized state until the TSC reaches or exceeds the value specified in "counter". Bit 0 of "ctrl" selects between a lower power (cleared) or faster wakeup (set) optimized state. Returns the carry flag (CF). If the processor that executed a UMWAIT instruction wakes due to the expiration of the operating system timelimit, the instructions sets RFLAGS.CF; otherwise, that flag is cleared. + + WAITPKG +
immintrin.h
+ Miscellaneous +
+ + + + + Directs the processor to enter an implementation-dependent optimized state while monitoring a range of addresses. The instruction wakes up when the TSC reaches or exceeds the value specified in "counter" (if the monitoring hardware did not trigger beforehand). Bit 0 of "ctrl" selects between a lower power (cleared) or faster wakeup (set) optimized state. Returns the carry flag (CF). If the processor that executed a UMWAIT instruction wakes due to the expiration of the operating system timelimit, the instructions sets RFLAGS.CF; otherwise, that flag is cleared. + + WAITPKG +
immintrin.h
+ Miscellaneous +
+ + + + Sets up a linear address range to be + monitored by hardware and activates the + monitor. The address range should be a writeback + memory caching type. The address is + contained in "a". + + WAITPKG +
immintrin.h
+ Miscellaneous +
+ + + + + + Write back and do not flush internal caches. + Initiate writing-back without flushing of external + caches. + + WBNOINVD +
immintrin.h
+ Miscellaneous +
+ + + + + + + Perform a full or partial save of the enabled processor states to memory at "mem_addr"; xsavec differs from xsave in that it uses compaction and that it may use init optimization. State is saved based on bits [62:0] in "save_mask" and "XCR0". "mem_addr" must be aligned on a 64-byte boundary. + mask[62:0] := save_mask[62:0] AND XCR0[62:0] +FOR i := 0 to 62 + IF mask[i] + CASE (i) OF + 0: mem_addr.FPUSSESave_Area[FPU] := ProcessorState[x87_FPU] + 1: mem_addr.FPUSSESaveArea[SSE] := ProcessorState[SSE] + DEFAULT: mem_addr.Ext_Save_Area[i] := ProcessorState[i] + ESAC + mem_addr.HEADER.XSTATE_BV[i] := INIT_FUNCTION[i] + FI + i := i + 1 +ENDFOR + + + XSAVE + XSAVEC +
immintrin.h
+ OS-Targeted +
+ + + + + Perform a full or partial save of the enabled processor states to memory at "mem_addr"; xsavec differs from xsave in that it uses compaction and that it may use init optimization. State is saved based on bits [62:0] in "save_mask" and "XCR0". "mem_addr" must be aligned on a 64-byte boundary. + mask[62:0] := save_mask[62:0] AND XCR0[62:0] +FOR i := 0 to 62 + IF mask[i] + CASE (i) OF + 0: mem_addr.FPUSSESave_Area[FPU] := ProcessorState[x87_FPU] + 1: mem_addr.FPUSSESaveArea[SSE] := ProcessorState[SSE] + DEFAULT: mem_addr.Ext_Save_Area[i] := ProcessorState[i] + ESAC + mem_addr.HEADER.XSTATE_BV[i] := INIT_FUNCTION[i] + FI + i := i + 1 +ENDFOR + + + XSAVE + XSAVEC +
immintrin.h
+ OS-Targeted +
+ + + + + + + Perform a full or partial save of the enabled processor states to memory at "mem_addr". State is saved based on bits [62:0] in "save_mask" and "XCR0". "mem_addr" must be aligned on a 64-byte boundary. The hardware may optimize the manner in which data is saved. The performance of this instruction will be equal to or better than using the XSAVE instruction. + mask[62:0] := save_mask[62:0] AND XCR0[62:0] +FOR i := 0 to 62 + IF mask[i] + CASE (i) OF + 0: mem_addr.FPUSSESave_Area[FPU] := ProcessorState[x87_FPU] + 1: mem_addr.FPUSSESaveArea[SSE] := ProcessorState[SSE] + 2: mem_addr.EXT_SAVE_Area2[YMM] := ProcessorState[YMM] + DEFAULT: mem_addr.Ext_Save_Area[i] := ProcessorState[i] + ESAC + mem_addr.HEADER.XSTATE_BV[i] := INIT_FUNCTION[i] + FI + i := i + 1 +ENDFOR + + + XSAVE + XSAVEOPT +
immintrin.h
+ OS-Targeted +
+ + + + + Perform a full or partial save of the enabled processor states to memory at "mem_addr". State is saved based on bits [62:0] in "save_mask" and "XCR0". "mem_addr" must be aligned on a 64-byte boundary. The hardware may optimize the manner in which data is saved. The performance of this instruction will be equal to or better than using the XSAVE64 instruction. + mask[62:0] := save_mask[62:0] AND XCR0[62:0] +FOR i := 0 to 62 + IF mask[i] + CASE (i) OF + 0: mem_addr.FPUSSESave_Area[FPU] := ProcessorState[x87_FPU] + 1: mem_addr.FPUSSESaveArea[SSE] := ProcessorState[SSE] + 2: mem_addr.EXT_SAVE_Area2[YMM] := ProcessorState[YMM] + DEFAULT: mem_addr.Ext_Save_Area[i] := ProcessorState[i] + ESAC + mem_addr.HEADER.XSTATE_BV[i] := INIT_FUNCTION[i] + FI + i := i + 1 +ENDFOR + + + XSAVE + XSAVEOPT +
immintrin.h
+ OS-Targeted +
+ + + + + + + Perform a full or partial save of the enabled processor states to memory at "mem_addr"; xsaves differs from xsave in that it can save state components corresponding to bits set in IA32_XSS MSR and that it may use the modified optimization. State is saved based on bits [62:0] in "save_mask" and "XCR0". "mem_addr" must be aligned on a 64-byte boundary. + mask[62:0] := save_mask[62:0] AND XCR0[62:0] +FOR i := 0 to 62 + IF mask[i] + CASE (i) OF + 0: mem_addr.FPUSSESave_Area[FPU] := ProcessorState[x87_FPU] + 1: mem_addr.FPUSSESaveArea[SSE] := ProcessorState[SSE] + DEFAULT: mem_addr.Ext_Save_Area[i] := ProcessorState[i] + ESAC + mem_addr.HEADER.XSTATE_BV[i] := INIT_FUNCTION[i] + FI + i := i + 1 +ENDFOR + + + XSAVE + XSS +
immintrin.h
+ OS-Targeted +
+ + + + + Perform a full or partial save of the enabled processor states to memory at "mem_addr"; xsaves differs from xsave in that it can save state components corresponding to bits set in IA32_XSS MSR and that it may use the modified optimization. State is saved based on bits [62:0] in "save_mask" and "XCR0". "mem_addr" must be aligned on a 64-byte boundary. + mask[62:0] := save_mask[62:0] AND XCR0[62:0] +FOR i := 0 to 62 + IF mask[i] + CASE (i) OF + 0: mem_addr.FPUSSESave_Area[FPU] := ProcessorState[x87_FPU] + 1: mem_addr.FPUSSESaveArea[SSE] := ProcessorState[SSE] + DEFAULT: mem_addr.Ext_Save_Area[i] := ProcessorState[i] + ESAC + mem_addr.HEADER.XSTATE_BV[i] := INIT_FUNCTION[i] + FI + i := i + 1 +ENDFOR + + + XSAVE + XSS +
immintrin.h
+ OS-Targeted +
+ + + + + Perform a full or partial restore of the enabled processor states using the state information stored in memory at "mem_addr". xrstors differs from xrstor in that it can restore state components corresponding to bits set in the IA32_XSS MSR; xrstors cannot restore from an xsave area in which the extended region is in the standard form. State is restored based on bits [62:0] in "rs_mask", "XCR0", and "mem_addr.HEADER.XSTATE_BV". "mem_addr" must be aligned on a 64-byte boundary. + st_mask := mem_addr.HEADER.XSTATE_BV[62:0] +FOR i := 0 to 62 + IF (rs_mask[i] AND XCR0[i]) + IF st_mask[i] + CASE (i) OF + 0: ProcessorState[x87_FPU] := mem_addr.FPUSSESave_Area[FPU] + 1: ProcessorState[SSE] := mem_addr.FPUSSESaveArea[SSE] + DEFAULT: ProcessorState[i] := mem_addr.Ext_Save_Area[i] + ESAC + ELSE + // ProcessorExtendedState := Processor Supplied Values + CASE (i) OF + 1: MXCSR := mem_addr.FPUSSESave_Area[SSE] + ESAC + FI + FI + i := i + 1 +ENDFOR + + + XSAVE + XSS +
immintrin.h
+ OS-Targeted +
+ + + + + Perform a full or partial restore of the enabled processor states using the state information stored in memory at "mem_addr". xrstors differs from xrstor in that it can restore state components corresponding to bits set in the IA32_XSS MSR; xrstors cannot restore from an xsave area in which the extended region is in the standard form. State is restored based on bits [62:0] in "rs_mask", "XCR0", and "mem_addr.HEADER.XSTATE_BV". "mem_addr" must be aligned on a 64-byte boundary. + st_mask := mem_addr.HEADER.XSTATE_BV[62:0] +FOR i := 0 to 62 + IF (rs_mask[i] AND XCR0[i]) + IF st_mask[i] + CASE (i) OF + 0: ProcessorState[x87_FPU] := mem_addr.FPUSSESave_Area[FPU] + 1: ProcessorState[SSE] := mem_addr.FPUSSESaveArea[SSE] + DEFAULT: ProcessorState[i] := mem_addr.Ext_Save_Area[i] + ESAC + ELSE + // ProcessorExtendedState := Processor Supplied Values + CASE (i) OF + 1: MXCSR := mem_addr.FPUSSESave_Area[SSE] + ESAC + FI + FI + i := i + 1 +ENDFOR + + + XSAVE + XSS +
immintrin.h
+ OS-Targeted +
+ + + + + + Copy up to 64-bits from the value of the extended control register (XCR) specified by "a" into "dst". Currently only XFEATURE_ENABLED_MASK XCR is supported. + dst[63:0] := XCR[a] + + + XSAVE +
immintrin.h
+ OS-Targeted +
+ + + + + Perform a full or partial restore of the enabled processor states using the state information stored in memory at "mem_addr". State is restored based on bits [62:0] in "rs_mask", "XCR0", and "mem_addr.HEADER.XSTATE_BV". "mem_addr" must be aligned on a 64-byte boundary. + st_mask := mem_addr.HEADER.XSTATE_BV[62:0] +FOR i := 0 to 62 + IF (rs_mask[i] AND XCR0[i]) + IF st_mask[i] + CASE (i) OF + 0: ProcessorState[x87_FPU] := mem_addr.FPUSSESave_Area[FPU] + 1: ProcessorState[SSE] := mem_addr.FPUSSESaveArea[SSE] + DEFAULT: ProcessorState[i] := mem_addr.Ext_Save_Area[i] + ESAC + ELSE + // ProcessorExtendedState := Processor Supplied Values + CASE (i) OF + 1: MXCSR := mem_addr.FPUSSESave_Area[SSE] + ESAC + FI + FI + i := i + 1 +ENDFOR + + + XSAVE +
immintrin.h
+ OS-Targeted +
+ + + + + Perform a full or partial restore of the enabled processor states using the state information stored in memory at "mem_addr". State is restored based on bits [62:0] in "rs_mask", "XCR0", and "mem_addr.HEADER.XSTATE_BV". "mem_addr" must be aligned on a 64-byte boundary. + st_mask := mem_addr.HEADER.XSTATE_BV[62:0] +FOR i := 0 to 62 + IF (rs_mask[i] AND XCR0[i]) + IF st_mask[i] + CASE (i) OF + 0: ProcessorState[x87_FPU] := mem_addr.FPUSSESave_Area[FPU] + 1: ProcessorState[SSE] := mem_addr.FPUSSESaveArea[SSE] + DEFAULT: ProcessorState[i] := mem_addr.Ext_Save_Area[i] + ESAC + ELSE + // ProcessorExtendedState := Processor Supplied Values + CASE (i) OF + 1: MXCSR := mem_addr.FPUSSESave_Area[SSE] + ESAC + FI + FI + i := i + 1 +ENDFOR + + + XSAVE +
immintrin.h
+ OS-Targeted +
+ + + + + Perform a full or partial save of the enabled processor states to memory at "mem_addr". State is saved based on bits [62:0] in "save_mask" and "XCR0". "mem_addr" must be aligned on a 64-byte boundary. + mask[62:0] := save_mask[62:0] AND XCR0[62:0] +FOR i := 0 to 62 + IF mask[i] + CASE (i) OF + 0: mem_addr.FPUSSESave_Area[FPU] := ProcessorState[x87_FPU] + 1: mem_addr.FPUSSESaveArea[SSE] := ProcessorState[SSE] + DEFAULT: mem_addr.Ext_Save_Area[i] := ProcessorState[i] + ESAC + mem_addr.HEADER.XSTATE_BV[i] := INIT_FUNCTION[i] + FI + i := i + 1 +ENDFOR + + + XSAVE +
immintrin.h
+ OS-Targeted +
+ + + + + Perform a full or partial save of the enabled processor states to memory at "mem_addr". State is saved based on bits [62:0] in "save_mask" and "XCR0". "mem_addr" must be aligned on a 64-byte boundary. + mask[62:0] := save_mask[62:0] AND XCR0[62:0] +FOR i := 0 to 62 + IF mask[i] + CASE (i) OF + 0: mem_addr.FPUSSESave_Area[FPU] := ProcessorState[x87_FPU] + 1: mem_addr.FPUSSESaveArea[SSE] := ProcessorState[SSE] + DEFAULT: mem_addr.Ext_Save_Area[i] := ProcessorState[i] + ESAC + mem_addr.HEADER.XSTATE_BV[i] := INIT_FUNCTION[i] + FI + i := i + 1 +ENDFOR + + + XSAVE +
immintrin.h
+ OS-Targeted +
+ + + + + Copy 64-bits from "val" to the extended control register (XCR) specified by "a". Currently only XFEATURE_ENABLED_MASK XCR is supported. + +XCR[a] := val[63:0] + + + XSAVE +
immintrin.h
+ OS-Targeted +
+ + +
\ No newline at end of file diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/stdarch/rust-version b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/stdarch/rust-version new file mode 100644 index 0000000000000000000000000000000000000000..b22c6c3869c624b1670b0e8a43aee60f2cacd5bd --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/stdarch/rust-version @@ -0,0 +1 @@ +139651428df86cf88443295542c12ea617cbb587 diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/stdarch/rustfmt.toml b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/stdarch/rustfmt.toml new file mode 100644 index 0000000000000000000000000000000000000000..e69de29bb2d1d6434b8b29ae775ad8c2e48c5391 diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/stdarch/triagebot.toml b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/stdarch/triagebot.toml new file mode 100644 index 0000000000000000000000000000000000000000..621f39b2cbbf37304326c0f082c7bac7acfb5a49 --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/stdarch/triagebot.toml @@ -0,0 +1,58 @@ +[assign] + +[assign.owners] +"*" = ["@Amanieu", "@folkertdev", "@sayantn"] + +[ping.windows] +message = """\ +Hey Windows Group! This issue could use some guidance on how it can be resolved +on Windows platforms. +Could one of you weigh in please? In case it's useful, here are some +[instructions] for tackling these sorts of bugs. +Thanks! + +[instructions]: https://rustc-dev-guide.rust-lang.org/notification-groups/windows.html +""" + +[ping.arm] +message = """\ +Hey Arm-interested people! This issue could use some guidance on how it can be +resolved on Arm platforms. +Could one of you weigh in please? In case it's useful, here are some +[instructions] for tackling these sorts of bugs. +Thanks! + +[instructions]: https://rustc-dev-guide.rust-lang.org/notification-groups/arm.html +""" + +[ping.risc-v] +message = """\ +Hey RISC-V Group! This issue could use some guidance on how it can be resolved +on RISC-V platforms. +Could one of you weigh in please? In case it's useful, here are some +[instructions] for tackling these sorts of bugs. +Thanks! + +[instructions]: https://rustc-dev-guide.rust-lang.org/notification-groups/risc-v.html +""" + +[ping.fuchsia] +message = """\ +Hey friends of Fuchsia! This issue could use some guidance on how this should be +resolved/implemented on Fuchsia. Could one of you weigh in please? +Thanks! +""" + +[ping.apple] +alias = ["macos", "ios", "tvos", "watchos", "visionos"] +message = """\ +Hey Apple Group! This issue or PR could use some Darwin-specific guidance. Could +one of you weigh in please? +Thanks! +""" + +# Canonicalize issue numbers to avoid closing the wrong issue +# when commits are included in subtrees, as well as warning links in commits. +# Documentation at: https://forge.rust-lang.org/triagebot/issue-links.html +[issue-links] +check-commits = false diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/stdarch/vendor.yml b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/stdarch/vendor.yml new file mode 100644 index 0000000000000000000000000000000000000000..fd2bfecba733ac2380983c67a3a2bfc0b66918ab --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/stdarch/vendor.yml @@ -0,0 +1,3 @@ +- crates/stdarch-verify/x86-intel.xml +- crates/stdarch-verify/mips-msa.h +- intrinsics_data/arm_intrinsics.json diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/sysroot/Cargo.toml b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/sysroot/Cargo.toml new file mode 100644 index 0000000000000000000000000000000000000000..b2069ef6a613b9884bb2727cfcd5486041962486 --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/sysroot/Cargo.toml @@ -0,0 +1,35 @@ +cargo-features = ["public-dependency"] + +[package] +name = "sysroot" +version = "0.0.0" +edition = "2024" + +[lib] +test = false +bench = false +# make sure this crate isn't included in public standard library docs +doc = false + +# this is a dummy crate to ensure that all required crates appear in the sysroot +[dependencies] +proc_macro = { path = "../proc_macro", public = true } +profiler_builtins = { path = "../profiler_builtins", optional = true } +std = { path = "../std", public = true } +test = { path = "../test", public = true } + +# Forward features to the `std` crate as necessary +[features] +default = ["panic-unwind"] +backtrace = ["std/backtrace"] +backtrace-trace-only = ["std/backtrace-trace-only"] +compiler-builtins-c = ["std/compiler-builtins-c"] +compiler-builtins-mem = ["std/compiler-builtins-mem"] +debug_refcell = ["std/debug_refcell"] +llvm-libunwind = ["std/llvm-libunwind"] +system-llvm-libunwind = ["std/system-llvm-libunwind"] +optimize_for_size = ["std/optimize_for_size"] +panic-unwind = ["std/panic-unwind"] +profiler = ["dep:profiler_builtins"] +windows_raw_dylib = ["std/windows_raw_dylib"] +llvm_enzyme = ["std/llvm_enzyme"] diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/sysroot/src/lib.rs b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/sysroot/src/lib.rs new file mode 100644 index 0000000000000000000000000000000000000000..71ceb580a40c34f641ed9256e5ae5176fa5d5b80 --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/sysroot/src/lib.rs @@ -0,0 +1 @@ +// This is intentionally empty since this crate is only used to depend on other library crates. diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/test/Cargo.toml b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/test/Cargo.toml new file mode 100644 index 0000000000000000000000000000000000000000..fe749847b7c001fd77a401a5ef717edbe02d06f9 --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/test/Cargo.toml @@ -0,0 +1,14 @@ +cargo-features = ["public-dependency"] + +[package] +name = "test" +version = "0.0.0" +edition = "2024" + +[dependencies] +getopts = { version = "0.2.24", default-features = false, features = ['rustc-dep-of-std'] } +std = { path = "../std", public = true } +core = { path = "../core", public = true } + +[target.'cfg(not(all(windows, target_env = "msvc")))'.dependencies] +libc = { version = "0.2.150", default-features = false } diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/test/build.rs b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/test/build.rs new file mode 100644 index 0000000000000000000000000000000000000000..3f7a5c16e5b1e02d401b198e00aaf5dd0cb042ef --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/test/build.rs @@ -0,0 +1,17 @@ +fn main() { + println!("cargo:rerun-if-changed=build.rs"); + println!("cargo:rustc-check-cfg=cfg(enable_unstable_features)"); + + // Miri testing uses unstable features, so always enable that for its sysroot. + // Otherwise, only enable unstable if rustc looks like a nightly or dev build. + let enable_unstable_features = std::env::var("MIRI_CALLED_FROM_SETUP").is_ok() || { + let rustc = std::env::var("RUSTC").unwrap_or_else(|_| "rustc".into()); + let version = std::process::Command::new(rustc).arg("-vV").output().unwrap(); + let stdout = String::from_utf8(version.stdout).unwrap(); + stdout.contains("nightly") || stdout.contains("dev") + }; + + if enable_unstable_features { + println!("cargo:rustc-cfg=enable_unstable_features"); + } +} diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/test/src/bench.rs b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/test/src/bench.rs new file mode 100644 index 0000000000000000000000000000000000000000..62e51026b818c6a18196451b203310a575d44234 --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/test/src/bench.rs @@ -0,0 +1,244 @@ +//! Benchmarking module. + +use std::panic::{AssertUnwindSafe, catch_unwind}; +use std::sync::{Arc, Mutex}; +use std::time::{Duration, Instant}; +use std::{cmp, io}; + +use super::Sender; +use super::event::CompletedTest; +use super::options::BenchMode; +use super::test_result::TestResult; +use super::types::{TestDesc, TestId}; +use crate::stats; + +/// An identity function that *__hints__* to the compiler to be maximally pessimistic about what +/// `black_box` could do. +/// +/// See [`std::hint::black_box`] for details. +#[inline(always)] +pub fn black_box(dummy: T) -> T { + std::hint::black_box(dummy) +} + +/// Manager of the benchmarking runs. +/// +/// This is fed into functions marked with `#[bench]` to allow for +/// set-up & tear-down before running a piece of code repeatedly via a +/// call to `iter`. +#[derive(Clone)] +pub struct Bencher { + mode: BenchMode, + summary: Option, + pub bytes: u64, +} + +impl Bencher { + /// Callback for benchmark functions to run in their body. + pub fn iter(&mut self, mut inner: F) + where + F: FnMut() -> T, + { + if self.mode == BenchMode::Single { + ns_iter_inner(&mut inner, 1); + return; + } + + self.summary = Some(iter(&mut inner)); + } + + pub fn bench(&mut self, mut f: F) -> Result, String> + where + F: FnMut(&mut Bencher) -> Result<(), String>, + { + let result = f(self); + result.map(|_| self.summary) + } +} + +#[derive(Debug, Clone, PartialEq)] +pub struct BenchSamples { + pub ns_iter_summ: stats::Summary, + pub mb_s: usize, +} + +pub fn fmt_bench_samples(bs: &BenchSamples) -> String { + use std::fmt::Write; + let mut output = String::new(); + + let median = bs.ns_iter_summ.median; + let deviation = bs.ns_iter_summ.max - bs.ns_iter_summ.min; + + write!( + output, + "{:>14} ns/iter (+/- {})", + fmt_thousands_sep(median, ','), + fmt_thousands_sep(deviation, ',') + ) + .unwrap(); + if bs.mb_s != 0 { + write!(output, " = {} MB/s", bs.mb_s).unwrap(); + } + output +} + +// Format a number with thousands separators +fn fmt_thousands_sep(mut n: f64, sep: char) -> String { + use std::fmt::Write; + let mut output = String::new(); + let mut trailing = false; + for &pow in &[9, 6, 3, 0] { + let base = 10_usize.pow(pow); + if pow == 0 || trailing || n / base as f64 >= 1.0 { + match (pow, trailing) { + // modern CPUs can execute multiple instructions per nanosecond + // e.g. benching an ADD takes about 0.25ns. + (0, true) => write!(output, "{:06.2}", n / base as f64).unwrap(), + (0, false) => write!(output, "{:.2}", n / base as f64).unwrap(), + (_, true) => write!(output, "{:03}", n as usize / base).unwrap(), + _ => write!(output, "{}", n as usize / base).unwrap(), + } + if pow != 0 { + output.push(sep); + } + trailing = true; + } + n %= base as f64; + } + + output +} + +fn ns_iter_inner(inner: &mut F, k: u64) -> u64 +where + F: FnMut() -> T, +{ + let start = Instant::now(); + for _ in 0..k { + black_box(inner()); + } + start.elapsed().as_nanos() as u64 +} + +pub fn iter(inner: &mut F) -> stats::Summary +where + F: FnMut() -> T, +{ + // Initial bench run to get ballpark figure. + let ns_single = ns_iter_inner(inner, 1); + + // Try to estimate iter count for 1ms falling back to 1m + // iterations if first run took < 1ns. + let ns_target_total = 1_000_000; // 1ms + let mut n = ns_target_total / cmp::max(1, ns_single); + + // if the first run took more than 1ms we don't want to just + // be left doing 0 iterations on every loop. The unfortunate + // side effect of not being able to do as many runs is + // automatically handled by the statistical analysis below + // (i.e., larger error bars). + n = cmp::max(1, n); + + let mut total_run = Duration::new(0, 0); + let samples: &mut [f64] = &mut [0.0_f64; 50]; + loop { + let loop_start = Instant::now(); + + for p in &mut *samples { + *p = ns_iter_inner(inner, n) as f64 / n as f64; + } + + stats::winsorize(samples, 5.0); + let summ = stats::Summary::new(samples); + + for p in &mut *samples { + let ns = ns_iter_inner(inner, 5 * n); + *p = ns as f64 / (5 * n) as f64; + } + + stats::winsorize(samples, 5.0); + let summ5 = stats::Summary::new(samples); + + let loop_run = loop_start.elapsed(); + + // If we've run for 100ms and seem to have converged to a + // stable median. + if loop_run > Duration::from_millis(100) + && summ.median_abs_dev_pct < 1.0 + && summ.median - summ5.median < summ5.median_abs_dev + { + return summ5; + } + + total_run += loop_run; + // Longest we ever run for is 3s. + if total_run > Duration::from_secs(3) { + return summ5; + } + + // If we overflow here just return the results so far. We check a + // multiplier of 10 because we're about to multiply by 2 and the + // next iteration of the loop will also multiply by 5 (to calculate + // the summ5 result) + n = match n.checked_mul(10) { + Some(_) => n * 2, + None => { + return summ5; + } + }; + } +} + +pub fn benchmark( + id: TestId, + desc: TestDesc, + monitor_ch: Sender, + nocapture: bool, + f: F, +) where + F: FnMut(&mut Bencher) -> Result<(), String>, +{ + let mut bs = Bencher { mode: BenchMode::Auto, summary: None, bytes: 0 }; + + let data = Arc::new(Mutex::new(Vec::new())); + + if !nocapture { + io::set_output_capture(Some(data.clone())); + } + + let result = catch_unwind(AssertUnwindSafe(|| bs.bench(f))); + + io::set_output_capture(None); + + let test_result = match result { + //bs.bench(f) { + Ok(Ok(Some(ns_iter_summ))) => { + let ns_iter = cmp::max(ns_iter_summ.median as u64, 1); + let mb_s = bs.bytes * 1000 / ns_iter; + + let bs = BenchSamples { ns_iter_summ, mb_s: mb_s as usize }; + TestResult::TrBench(bs) + } + Ok(Ok(None)) => { + // iter not called, so no data. + // FIXME: error in this case? + let samples: &mut [f64] = &mut [0.0_f64; 1]; + let bs = BenchSamples { ns_iter_summ: stats::Summary::new(samples), mb_s: 0 }; + TestResult::TrBench(bs) + } + Err(_) => TestResult::TrFailed, + Ok(Err(_)) => TestResult::TrFailed, + }; + + let stdout = data.lock().unwrap().to_vec(); + let message = CompletedTest::new(id, desc, test_result, None, stdout); + monitor_ch.send(message).unwrap(); +} + +pub fn run_once(f: F) -> Result<(), String> +where + F: FnMut(&mut Bencher) -> Result<(), String>, +{ + let mut bs = Bencher { mode: BenchMode::Single, summary: None, bytes: 0 }; + bs.bench(f).map(|_| ()) +} diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/test/src/cli.rs b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/test/src/cli.rs new file mode 100644 index 0000000000000000000000000000000000000000..172785936b207f5ec0489ae55659c28ea5245b16 --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/test/src/cli.rs @@ -0,0 +1,502 @@ +//! Module converting command-line arguments into test configuration. + +use std::env; +use std::io::{self, IsTerminal, Write}; +use std::path::PathBuf; + +use super::options::{ColorConfig, Options, OutputFormat, RunIgnored}; +use super::time::TestTimeOptions; + +#[derive(Debug)] +pub struct TestOpts { + pub list: bool, + pub filters: Vec, + pub filter_exact: bool, + pub force_run_in_process: bool, + pub exclude_should_panic: bool, + pub run_ignored: RunIgnored, + pub run_tests: bool, + pub bench_benchmarks: bool, + pub logfile: Option, + pub nocapture: bool, + pub color: ColorConfig, + pub format: OutputFormat, + pub shuffle: bool, + pub shuffle_seed: Option, + pub test_threads: Option, + pub skip: Vec, + pub time_options: Option, + /// Stop at first failing test. + /// May run a few more tests due to threading, but will + /// abort as soon as possible. + pub fail_fast: bool, + pub options: Options, +} + +impl TestOpts { + pub fn use_color(&self) -> bool { + match self.color { + ColorConfig::AutoColor => !self.nocapture && io::stdout().is_terminal(), + ColorConfig::AlwaysColor => true, + ColorConfig::NeverColor => false, + } + } +} + +/// Result of parsing the options. +pub(crate) type OptRes = Result; +/// Result of parsing the option part. +type OptPartRes = Result; + +fn optgroups() -> getopts::Options { + let mut opts = getopts::Options::new(); + opts.optflag("", "include-ignored", "Run ignored and not ignored tests") + .optflag("", "ignored", "Run only ignored tests") + .optflag("", "force-run-in-process", "Forces tests to run in-process when panic=abort") + .optflag("", "exclude-should-panic", "Excludes tests marked as should_panic") + .optflag("", "test", "Run tests and not benchmarks") + .optflag("", "bench", "Run benchmarks instead of tests") + .optflag("", "list", "List all tests and benchmarks") + .optflag("", "fail-fast", "Don't start new tests after the first failure") + .optflag("h", "help", "Display this message") + .optopt("", "logfile", "Write logs to the specified file (deprecated)", "PATH") + .optflag( + "", + "no-capture", + "don't capture stdout/stderr of each \ + task, allow printing directly", + ) + .optopt( + "", + "test-threads", + "Number of threads used for running tests \ + in parallel", + "n_threads", + ) + .optmulti( + "", + "skip", + "Skip tests whose names contain FILTER (this flag can \ + be used multiple times)", + "FILTER", + ) + .optflag( + "q", + "quiet", + "Display one character per test instead of one line. \ + Alias to --format=terse", + ) + .optflag("", "exact", "Exactly match filters rather than by substring") + .optopt( + "", + "color", + "Configure coloring of output: + auto = colorize if stdout is a tty and tests are run on serially (default); + always = always colorize output; + never = never colorize output;", + "auto|always|never", + ) + .optopt( + "", + "format", + "Configure formatting of output: + pretty = Print verbose output; + terse = Display one character per test; + json = Output a json document; + junit = Output a JUnit document", + "pretty|terse|json|junit", + ) + .optflag("", "show-output", "Show captured stdout of successful tests") + .optopt( + "Z", + "", + "Enable nightly-only flags: + unstable-options = Allow use of experimental features", + "unstable-options", + ) + .optflag( + "", + "report-time", + "Show execution time of each test. + + Threshold values for colorized output can be configured via + `RUST_TEST_TIME_UNIT`, `RUST_TEST_TIME_INTEGRATION` and + `RUST_TEST_TIME_DOCTEST` environment variables. + + Expected format of environment variable is `VARIABLE=WARN_TIME,CRITICAL_TIME`. + Durations must be specified in milliseconds, e.g. `500,2000` means that the warn time + is 0.5 seconds, and the critical time is 2 seconds. + + Not available for --format=terse", + ) + .optflag( + "", + "ensure-time", + "Treat excess of the test execution time limit as error. + + Threshold values for this option can be configured via + `RUST_TEST_TIME_UNIT`, `RUST_TEST_TIME_INTEGRATION` and + `RUST_TEST_TIME_DOCTEST` environment variables. + + Expected format of environment variable is `VARIABLE=WARN_TIME,CRITICAL_TIME`. + + `CRITICAL_TIME` here means the limit that should not be exceeded by test. + ", + ) + .optflag("", "shuffle", "Run tests in random order") + .optopt( + "", + "shuffle-seed", + "Run tests in random order; seed the random number generator with SEED", + "SEED", + ); + opts +} + +fn usage(binary: &str, options: &getopts::Options) { + let message = format!("Usage: {binary} [OPTIONS] [FILTERS...]"); + println!( + r#"{usage} + +The FILTER string is tested against the name of all tests, and only those +tests whose names contain the filter are run. Multiple filter strings may +be passed, which will run all tests matching any of the filters. + +By default, all tests are run in parallel. This can be altered with the +--test-threads flag when running tests (set it to 1). + +By default, the tests are run in alphabetical order. Use --shuffle to run +the tests in random order. Pass the generated "shuffle seed" to +--shuffle-seed to run the tests in the same order again. Note that +--shuffle and --shuffle-seed do not affect whether the tests are run in +parallel. + +All tests have their standard output and standard error captured by default. +This can be overridden with the --no-capture flag to a value other than "0". +Logging is not captured by default. + +Test Attributes: + + `#[test]` - Indicates a function is a test to be run. This function + takes no arguments. + `#[bench]` - Indicates a function is a benchmark to be run. This + function takes one argument (test::Bencher). + `#[should_panic]` - This function (also labeled with `#[test]`) will only pass if + the code causes a panic (an assertion failure or panic!) + A message may be provided, which the failure string must + contain: #[should_panic(expected = "foo")]. + `#[ignore]` - When applied to a function which is already attributed as a + test, then the test runner will ignore these tests during + normal test runs. Running with --ignored or --include-ignored will run + these tests."#, + usage = options.usage(&message) + ); +} + +/// Parses command line arguments into test options. +/// Returns `None` if help was requested (since we only show help message and don't run tests), +/// returns `Some(Err(..))` if provided arguments are incorrect, +/// otherwise creates a `TestOpts` object and returns it. +pub fn parse_opts(args: &[String]) -> Option { + // Parse matches. + let mut opts = optgroups(); + // Flags hidden from `usage` + opts.optflag("", "nocapture", "Deprecated, use `--no-capture`"); + + let binary = args.first().map(|c| &**c).unwrap_or("..."); + let args = args.get(1..).unwrap_or(args); + let matches = match opts.parse(args) { + Ok(m) => m, + Err(f) => return Some(Err(f.to_string())), + }; + + // Check if help was requested. + if matches.opt_present("h") { + // Show help and do nothing more. + usage(binary, &optgroups()); + return None; + } + + // Actually parse the opts. + let opts_result = parse_opts_impl(matches); + + Some(opts_result) +} + +// Gets the option value and checks if unstable features are enabled. +macro_rules! unstable_optflag { + ($matches:ident, $allow_unstable:ident, $option_name:literal) => {{ + let opt = $matches.opt_present($option_name); + if !$allow_unstable && opt { + return Err(format!( + "The \"{}\" flag is only accepted on the nightly compiler with -Z unstable-options", + $option_name + )); + } + + opt + }}; +} + +// Gets the option value and checks if unstable features are enabled. +macro_rules! unstable_optopt { + ($matches:ident, $allow_unstable:ident, $option_name:literal) => {{ + let opt = $matches.opt_str($option_name); + if !$allow_unstable && opt.is_some() { + return Err(format!( + "The \"{}\" option is only accepted on the nightly compiler with -Z unstable-options", + $option_name + )); + } + + opt + }}; +} + +// Implementation of `parse_opts` that doesn't care about help message +// and returns a `Result`. +fn parse_opts_impl(matches: getopts::Matches) -> OptRes { + let allow_unstable = get_allow_unstable(&matches)?; + + // Unstable flags + let force_run_in_process = unstable_optflag!(matches, allow_unstable, "force-run-in-process"); + let exclude_should_panic = unstable_optflag!(matches, allow_unstable, "exclude-should-panic"); + let fail_fast = unstable_optflag!(matches, allow_unstable, "fail-fast"); + let time_options = get_time_options(&matches, allow_unstable)?; + let shuffle = get_shuffle(&matches, allow_unstable)?; + let shuffle_seed = get_shuffle_seed(&matches, allow_unstable)?; + + let include_ignored = matches.opt_present("include-ignored"); + let quiet = matches.opt_present("quiet"); + let exact = matches.opt_present("exact"); + let list = matches.opt_present("list"); + let skip = matches.opt_strs("skip"); + + let bench_benchmarks = matches.opt_present("bench"); + let run_tests = !bench_benchmarks || matches.opt_present("test"); + + let logfile = get_log_file(&matches)?; + let run_ignored = get_run_ignored(&matches, include_ignored)?; + let filters = matches.free.clone(); + let nocapture = get_nocapture(&matches)?; + let test_threads = get_test_threads(&matches)?; + let color = get_color_config(&matches)?; + let format = get_format(&matches, quiet, allow_unstable)?; + + let options = Options::new().display_output(matches.opt_present("show-output")); + + if logfile.is_some() { + let _ = write!(io::stderr(), "warning: `--logfile` is deprecated"); + } + + let test_opts = TestOpts { + list, + filters, + filter_exact: exact, + force_run_in_process, + exclude_should_panic, + run_ignored, + run_tests, + bench_benchmarks, + logfile, + nocapture, + color, + format, + shuffle, + shuffle_seed, + test_threads, + skip, + time_options, + options, + fail_fast, + }; + + Ok(test_opts) +} + +fn is_nightly() -> bool { + // Whether the current rustc version should allow unstable features + let enable_unstable_features = cfg!(enable_unstable_features); + + // The runtime override for unstable features + let bootstrap = env::var("RUSTC_BOOTSTRAP").is_ok(); + + bootstrap || enable_unstable_features +} + +// Gets the CLI options associated with `report-time` feature. +fn get_time_options( + matches: &getopts::Matches, + allow_unstable: bool, +) -> OptPartRes> { + let report_time = unstable_optflag!(matches, allow_unstable, "report-time"); + let ensure_test_time = unstable_optflag!(matches, allow_unstable, "ensure-time"); + + // If `ensure-test-time` option is provided, time output is enforced, + // so user won't be confused if any of tests will silently fail. + let options = if report_time || ensure_test_time { + Some(TestTimeOptions::new_from_env(ensure_test_time)) + } else { + None + }; + + Ok(options) +} + +fn get_shuffle(matches: &getopts::Matches, allow_unstable: bool) -> OptPartRes { + let mut shuffle = unstable_optflag!(matches, allow_unstable, "shuffle"); + if !shuffle && allow_unstable { + shuffle = match env::var("RUST_TEST_SHUFFLE") { + Ok(val) => &val != "0", + Err(_) => false, + }; + } + + Ok(shuffle) +} + +fn get_shuffle_seed(matches: &getopts::Matches, allow_unstable: bool) -> OptPartRes> { + let mut shuffle_seed = match unstable_optopt!(matches, allow_unstable, "shuffle-seed") { + Some(n_str) => match n_str.parse::() { + Ok(n) => Some(n), + Err(e) => { + return Err(format!( + "argument for --shuffle-seed must be a number \ + (error: {e})" + )); + } + }, + None => None, + }; + + if shuffle_seed.is_none() && allow_unstable { + shuffle_seed = match env::var("RUST_TEST_SHUFFLE_SEED") { + Ok(val) => match val.parse::() { + Ok(n) => Some(n), + Err(_) => panic!("RUST_TEST_SHUFFLE_SEED is `{val}`, should be a number."), + }, + Err(_) => None, + }; + } + + Ok(shuffle_seed) +} + +fn get_test_threads(matches: &getopts::Matches) -> OptPartRes> { + let test_threads = match matches.opt_str("test-threads") { + Some(n_str) => match n_str.parse::() { + Ok(0) => return Err("argument for --test-threads must not be 0".to_string()), + Ok(n) => Some(n), + Err(e) => { + return Err(format!( + "argument for --test-threads must be a number > 0 \ + (error: {e})" + )); + } + }, + None => None, + }; + + Ok(test_threads) +} + +fn get_format( + matches: &getopts::Matches, + quiet: bool, + allow_unstable: bool, +) -> OptPartRes { + let format = match matches.opt_str("format").as_deref() { + None if quiet => OutputFormat::Terse, + Some("pretty") | None => OutputFormat::Pretty, + Some("terse") => OutputFormat::Terse, + Some("json") => { + if !allow_unstable { + return Err("The \"json\" format is only accepted on the nightly compiler with -Z unstable-options".into()); + } + OutputFormat::Json + } + Some("junit") => { + if !allow_unstable { + return Err("The \"junit\" format is only accepted on the nightly compiler with -Z unstable-options".into()); + } + OutputFormat::Junit + } + Some(v) => { + return Err(format!( + "argument for --format must be pretty, terse, json or junit (was \ + {v})" + )); + } + }; + + Ok(format) +} + +fn get_color_config(matches: &getopts::Matches) -> OptPartRes { + let color = match matches.opt_str("color").as_deref() { + Some("auto") | None => ColorConfig::AutoColor, + Some("always") => ColorConfig::AlwaysColor, + Some("never") => ColorConfig::NeverColor, + + Some(v) => { + return Err(format!( + "argument for --color must be auto, always, or never (was \ + {v})" + )); + } + }; + + Ok(color) +} + +fn get_nocapture(matches: &getopts::Matches) -> OptPartRes { + let mut nocapture = matches.opt_present("nocapture") || matches.opt_present("no-capture"); + if !nocapture { + nocapture = match env::var("RUST_TEST_NOCAPTURE") { + Ok(val) => &val != "0", + Err(_) => false, + }; + } + + Ok(nocapture) +} + +fn get_run_ignored(matches: &getopts::Matches, include_ignored: bool) -> OptPartRes { + let run_ignored = match (include_ignored, matches.opt_present("ignored")) { + (true, true) => { + return Err("the options --include-ignored and --ignored are mutually exclusive".into()); + } + (true, false) => RunIgnored::Yes, + (false, true) => RunIgnored::Only, + (false, false) => RunIgnored::No, + }; + + Ok(run_ignored) +} + +fn get_allow_unstable(matches: &getopts::Matches) -> OptPartRes { + let mut allow_unstable = false; + + if let Some(opt) = matches.opt_str("Z") { + if !is_nightly() { + return Err("the option `Z` is only accepted on the nightly compiler".into()); + } + + match &*opt { + "unstable-options" => { + allow_unstable = true; + } + _ => { + return Err("Unrecognized option to `Z`".into()); + } + } + }; + + Ok(allow_unstable) +} + +fn get_log_file(matches: &getopts::Matches) -> OptPartRes> { + let logfile = matches.opt_str("logfile").map(|s| PathBuf::from(&s)); + + Ok(logfile) +} diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/test/src/console.rs b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/test/src/console.rs new file mode 100644 index 0000000000000000000000000000000000000000..13b2b3d502c81df083ae0482b2a6ff32bd4af8dc --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/test/src/console.rs @@ -0,0 +1,341 @@ +//! Module providing interface for running tests in the console. + +use std::fs::File; +use std::io; +use std::io::prelude::Write; +use std::time::Instant; + +use super::bench::fmt_bench_samples; +use super::cli::TestOpts; +use super::event::{CompletedTest, TestEvent}; +use super::formatters::{ + JsonFormatter, JunitFormatter, OutputFormatter, PrettyFormatter, TerseFormatter, +}; +use super::helpers::concurrency::get_concurrency; +use super::helpers::metrics::MetricMap; +use super::options::{Options, OutputFormat}; +use super::test_result::TestResult; +use super::time::{TestExecTime, TestSuiteExecTime}; +use super::types::{NamePadding, TestDesc, TestDescAndFn}; +use super::{filter_tests, run_tests, term}; + +/// Generic wrapper over stdout. +pub(crate) enum OutputLocation { + Pretty(Box), + Raw(T), +} + +impl Write for OutputLocation { + fn write(&mut self, buf: &[u8]) -> io::Result { + match *self { + OutputLocation::Pretty(ref mut term) => term.write(buf), + OutputLocation::Raw(ref mut stdout) => stdout.write(buf), + } + } + + fn flush(&mut self) -> io::Result<()> { + match *self { + OutputLocation::Pretty(ref mut term) => term.flush(), + OutputLocation::Raw(ref mut stdout) => stdout.flush(), + } + } +} + +pub(crate) struct ConsoleTestDiscoveryState { + pub log_out: Option, + pub tests: usize, + pub benchmarks: usize, + pub ignored: usize, +} + +impl ConsoleTestDiscoveryState { + pub(crate) fn new(opts: &TestOpts) -> io::Result { + let log_out = match opts.logfile { + Some(ref path) => Some(File::create(path)?), + None => None, + }; + + Ok(ConsoleTestDiscoveryState { log_out, tests: 0, benchmarks: 0, ignored: 0 }) + } + + pub(crate) fn write_log(&mut self, msg: F) -> io::Result<()> + where + S: AsRef, + F: FnOnce() -> S, + { + match self.log_out { + None => Ok(()), + Some(ref mut o) => { + let msg = msg(); + let msg = msg.as_ref(); + o.write_all(msg.as_bytes()) + } + } + } +} + +pub(crate) struct ConsoleTestState { + pub log_out: Option, + pub total: usize, + pub passed: usize, + pub failed: usize, + pub ignored: usize, + pub filtered_out: usize, + pub measured: usize, + pub exec_time: Option, + pub metrics: MetricMap, + pub failures: Vec<(TestDesc, Vec)>, + pub not_failures: Vec<(TestDesc, Vec)>, + pub ignores: Vec<(TestDesc, Vec)>, + pub time_failures: Vec<(TestDesc, Vec)>, + pub options: Options, +} + +impl ConsoleTestState { + pub(crate) fn new(opts: &TestOpts) -> io::Result { + let log_out = match opts.logfile { + Some(ref path) => Some(File::create(path)?), + None => None, + }; + + Ok(ConsoleTestState { + log_out, + total: 0, + passed: 0, + failed: 0, + ignored: 0, + filtered_out: 0, + measured: 0, + exec_time: None, + metrics: MetricMap::new(), + failures: Vec::new(), + not_failures: Vec::new(), + ignores: Vec::new(), + time_failures: Vec::new(), + options: opts.options, + }) + } + + pub(crate) fn write_log(&mut self, msg: F) -> io::Result<()> + where + S: AsRef, + F: FnOnce() -> S, + { + match self.log_out { + None => Ok(()), + Some(ref mut o) => { + let msg = msg(); + let msg = msg.as_ref(); + o.write_all(msg.as_bytes()) + } + } + } + + pub(crate) fn write_log_result( + &mut self, + test: &TestDesc, + result: &TestResult, + exec_time: Option<&TestExecTime>, + ) -> io::Result<()> { + self.write_log(|| { + let TestDesc { name, ignore_message, .. } = test; + format!( + "{} {}", + match *result { + TestResult::TrOk => "ok".to_owned(), + TestResult::TrFailed => "failed".to_owned(), + TestResult::TrFailedMsg(ref msg) => format!("failed: {msg}"), + TestResult::TrIgnored => { + if let Some(msg) = ignore_message { + format!("ignored: {msg}") + } else { + "ignored".to_owned() + } + } + TestResult::TrBench(ref bs) => fmt_bench_samples(bs), + TestResult::TrTimedFail => "failed (time limit exceeded)".to_owned(), + }, + name, + ) + })?; + if let Some(exec_time) = exec_time { + self.write_log(|| format!(" <{exec_time}>"))?; + } + self.write_log(|| "\n") + } + + fn current_test_count(&self) -> usize { + self.passed + self.failed + self.ignored + self.measured + } +} + +// List the tests to console, and optionally to logfile. Filters are honored. +pub(crate) fn list_tests_console(opts: &TestOpts, tests: Vec) -> io::Result<()> { + let output = match term::stdout() { + None => OutputLocation::Raw(io::stdout().lock()), + Some(t) => OutputLocation::Pretty(t), + }; + + let mut out: Box = match opts.format { + OutputFormat::Pretty | OutputFormat::Junit => { + Box::new(PrettyFormatter::new(output, false, 0, false, None)) + } + OutputFormat::Terse => Box::new(TerseFormatter::new(output, false, 0, false)), + OutputFormat::Json => Box::new(JsonFormatter::new(output)), + }; + let mut st = ConsoleTestDiscoveryState::new(opts)?; + + out.write_discovery_start()?; + for test in filter_tests(opts, tests).into_iter() { + use crate::TestFn::*; + + let TestDescAndFn { desc, testfn } = test; + + let fntype = match testfn { + StaticTestFn(..) | DynTestFn(..) | StaticBenchAsTestFn(..) | DynBenchAsTestFn(..) => { + st.tests += 1; + "test" + } + StaticBenchFn(..) | DynBenchFn(..) => { + st.benchmarks += 1; + "benchmark" + } + }; + + st.ignored += if desc.ignore { 1 } else { 0 }; + + out.write_test_discovered(&desc, fntype)?; + st.write_log(|| format!("{fntype} {}\n", desc.name))?; + } + + out.write_discovery_finish(&st) +} + +// Updates `ConsoleTestState` depending on result of the test execution. +fn handle_test_result(st: &mut ConsoleTestState, completed_test: CompletedTest) { + let test = completed_test.desc; + let stdout = completed_test.stdout; + match completed_test.result { + TestResult::TrOk => { + st.passed += 1; + st.not_failures.push((test, stdout)); + } + TestResult::TrIgnored => { + st.ignored += 1; + st.ignores.push((test, stdout)); + } + TestResult::TrBench(bs) => { + st.metrics.insert_metric( + test.name.as_slice(), + bs.ns_iter_summ.median, + bs.ns_iter_summ.max - bs.ns_iter_summ.min, + ); + st.measured += 1 + } + TestResult::TrFailed => { + st.failed += 1; + st.failures.push((test, stdout)); + } + TestResult::TrFailedMsg(msg) => { + st.failed += 1; + let mut stdout = stdout; + stdout.extend_from_slice(format!("note: {msg}").as_bytes()); + st.failures.push((test, stdout)); + } + TestResult::TrTimedFail => { + st.failed += 1; + st.time_failures.push((test, stdout)); + } + } +} + +// Handler for events that occur during test execution. +// It is provided as a callback to the `run_tests` function. +fn on_test_event( + event: &TestEvent, + st: &mut ConsoleTestState, + out: &mut dyn OutputFormatter, +) -> io::Result<()> { + match (*event).clone() { + TestEvent::TeFiltered(filtered_tests, shuffle_seed) => { + st.total = filtered_tests; + out.write_run_start(filtered_tests, shuffle_seed)?; + } + TestEvent::TeFilteredOut(filtered_out) => { + st.filtered_out = filtered_out; + } + TestEvent::TeWait(ref test) => out.write_test_start(test)?, + TestEvent::TeTimeout(ref test) => out.write_timeout(test)?, + TestEvent::TeResult(completed_test) => { + let test = &completed_test.desc; + let result = &completed_test.result; + let exec_time = &completed_test.exec_time; + let stdout = &completed_test.stdout; + + st.write_log_result(test, result, exec_time.as_ref())?; + out.write_result(test, result, exec_time.as_ref(), stdout, st)?; + handle_test_result(st, completed_test); + } + } + + Ok(()) +} + +pub(crate) fn get_formatter(opts: &TestOpts, max_name_len: usize) -> Box { + let output = match term::stdout() { + None => OutputLocation::Raw(io::stdout()), + Some(t) => OutputLocation::Pretty(t), + }; + + let is_multithreaded = opts.test_threads.unwrap_or_else(get_concurrency) > 1; + + match opts.format { + OutputFormat::Pretty => Box::new(PrettyFormatter::new( + output, + opts.use_color(), + max_name_len, + is_multithreaded, + opts.time_options, + )), + OutputFormat::Terse => { + Box::new(TerseFormatter::new(output, opts.use_color(), max_name_len, is_multithreaded)) + } + OutputFormat::Json => Box::new(JsonFormatter::new(output)), + OutputFormat::Junit => Box::new(JunitFormatter::new(output)), + } +} + +/// A simple console test runner. +/// Runs provided tests reporting process and results to the stdout. +pub fn run_tests_console(opts: &TestOpts, tests: Vec) -> io::Result { + let max_name_len = tests + .iter() + .max_by_key(|t| len_if_padded(t)) + .map(|t| t.desc.name.as_slice().len()) + .unwrap_or(0); + + let mut out = get_formatter(opts, max_name_len); + let mut st = ConsoleTestState::new(opts)?; + + // Prevent the usage of `Instant` in some cases: + // - It's currently not supported for wasm targets without Emscripten nor WASI. + // - It's currently not supported for zkvm targets. + let is_instant_unsupported = + (cfg!(target_family = "wasm") && cfg!(target_os = "unknown")) || cfg!(target_os = "zkvm"); + + let start_time = (!is_instant_unsupported).then(Instant::now); + run_tests(opts, tests, |x| on_test_event(&x, &mut st, &mut *out))?; + st.exec_time = start_time.map(|t| TestSuiteExecTime(t.elapsed())); + + assert!(opts.fail_fast || st.current_test_count() == st.total); + + out.write_run_finish(&st) +} + +// Calculates padding for given test description. +fn len_if_padded(t: &TestDescAndFn) -> usize { + match t.testfn.padding() { + NamePadding::PadNone => 0, + NamePadding::PadOnRight => t.desc.name.as_slice().len(), + } +} diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/test/src/event.rs b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/test/src/event.rs new file mode 100644 index 0000000000000000000000000000000000000000..80281ebd2d4cdd946207f67bf741f10cb0d94e58 --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/test/src/event.rs @@ -0,0 +1,36 @@ +//! Module containing different events that can occur +//! during tests execution process. + +use super::test_result::TestResult; +use super::time::TestExecTime; +use super::types::{TestDesc, TestId}; + +#[derive(Debug, Clone)] +pub struct CompletedTest { + pub id: TestId, + pub desc: TestDesc, + pub result: TestResult, + pub exec_time: Option, + pub stdout: Vec, +} + +impl CompletedTest { + pub fn new( + id: TestId, + desc: TestDesc, + result: TestResult, + exec_time: Option, + stdout: Vec, + ) -> Self { + Self { id, desc, result, exec_time, stdout } + } +} + +#[derive(Debug, Clone)] +pub enum TestEvent { + TeFiltered(usize, Option), + TeWait(TestDesc), + TeResult(CompletedTest), + TeTimeout(TestDesc), + TeFilteredOut(usize), +} diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/test/src/formatters/json.rs b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/test/src/formatters/json.rs new file mode 100644 index 0000000000000000000000000000000000000000..4a101f00d74b6c26cf65cc504f576df5b659f0fd --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/test/src/formatters/json.rs @@ -0,0 +1,296 @@ +use std::borrow::Cow; +use std::io; +use std::io::prelude::Write; + +use super::OutputFormatter; +use crate::console::{ConsoleTestDiscoveryState, ConsoleTestState, OutputLocation}; +use crate::test_result::TestResult; +use crate::time; +use crate::types::TestDesc; + +pub(crate) struct JsonFormatter { + out: OutputLocation, +} + +impl JsonFormatter { + pub(crate) fn new(out: OutputLocation) -> Self { + Self { out } + } + + fn writeln_message(&mut self, s: &str) -> io::Result<()> { + // self.out will take a lock, but that lock is released when write_all returns. This + // results in a race condition and json output may not end with a new line. We avoid this + // by issuing `write_all` calls line-by-line. + assert_eq!(s.chars().last(), Some('\n')); + + self.out.write_all(s.as_ref()) + } + + fn write_event( + &mut self, + ty: &str, + name: &str, + event: &str, + exec_time: Option<&time::TestExecTime>, + stdout: Option>, + extra: Option<&str>, + ) -> io::Result<()> { + // A doc test's name includes a filename which must be escaped for correct json. + let name = EscapedString(name); + let exec_time_json = if let Some(exec_time) = exec_time { + format!(r#", "exec_time": {}"#, exec_time.0.as_secs_f64()) + } else { + String::from("") + }; + let stdout_json = if let Some(stdout) = stdout { + format!(r#", "stdout": "{}""#, EscapedString(stdout)) + } else { + String::from("") + }; + let extra_json = + if let Some(extra) = extra { format!(r#", {extra}"#) } else { String::from("") }; + let newline = "\n"; + + self.writeln_message(&format!( + r#"{{ "type": "{ty}", "name": "{name}", "event": "{event}"{exec_time_json}{stdout_json}{extra_json} }}{newline}"#)) + } +} + +impl OutputFormatter for JsonFormatter { + fn write_discovery_start(&mut self) -> io::Result<()> { + self.writeln_message(concat!(r#"{ "type": "suite", "event": "discovery" }"#, "\n")) + } + + fn write_test_discovered(&mut self, desc: &TestDesc, test_type: &str) -> io::Result<()> { + let TestDesc { + name, + ignore, + ignore_message, + source_file, + start_line, + start_col, + end_line, + end_col, + .. + } = desc; + + let name = EscapedString(name.as_slice()); + let ignore_message = ignore_message.unwrap_or(""); + let source_path = EscapedString(source_file); + let newline = "\n"; + + self.writeln_message(&format!( + r#"{{ "type": "{test_type}", "event": "discovered", "name": "{name}", "ignore": {ignore}, "ignore_message": "{ignore_message}", "source_path": "{source_path}", "start_line": {start_line}, "start_col": {start_col}, "end_line": {end_line}, "end_col": {end_col} }}{newline}"# + )) + } + + fn write_discovery_finish(&mut self, state: &ConsoleTestDiscoveryState) -> io::Result<()> { + let ConsoleTestDiscoveryState { tests, benchmarks, ignored, .. } = state; + + let total = tests + benchmarks; + let newline = "\n"; + self.writeln_message(&format!( + r#"{{ "type": "suite", "event": "completed", "tests": {tests}, "benchmarks": {benchmarks}, "total": {total}, "ignored": {ignored} }}{newline}"# + )) + } + + fn write_run_start(&mut self, test_count: usize, shuffle_seed: Option) -> io::Result<()> { + let shuffle_seed_json = if let Some(shuffle_seed) = shuffle_seed { + format!(r#", "shuffle_seed": {shuffle_seed}"#) + } else { + String::new() + }; + let newline = "\n"; + self.writeln_message(&format!( + r#"{{ "type": "suite", "event": "started", "test_count": {test_count}{shuffle_seed_json} }}{newline}"# + )) + } + + fn write_test_start(&mut self, desc: &TestDesc) -> io::Result<()> { + let name = EscapedString(desc.name.as_slice()); + let newline = "\n"; + self.writeln_message(&format!( + r#"{{ "type": "test", "event": "started", "name": "{name}" }}{newline}"# + )) + } + + fn write_result( + &mut self, + desc: &TestDesc, + result: &TestResult, + exec_time: Option<&time::TestExecTime>, + stdout: &[u8], + state: &ConsoleTestState, + ) -> io::Result<()> { + let display_stdout = state.options.display_output || *result != TestResult::TrOk; + let stdout = if display_stdout && !stdout.is_empty() { + Some(String::from_utf8_lossy(stdout)) + } else { + None + }; + match *result { + TestResult::TrOk => { + self.write_event("test", desc.name.as_slice(), "ok", exec_time, stdout, None) + } + + TestResult::TrFailed => { + self.write_event("test", desc.name.as_slice(), "failed", exec_time, stdout, None) + } + + TestResult::TrTimedFail => self.write_event( + "test", + desc.name.as_slice(), + "failed", + exec_time, + stdout, + Some(r#""reason": "time limit exceeded""#), + ), + + TestResult::TrFailedMsg(ref m) => self.write_event( + "test", + desc.name.as_slice(), + "failed", + exec_time, + stdout, + Some(&*format!(r#""message": "{}""#, EscapedString(m))), + ), + + TestResult::TrIgnored => self.write_event( + "test", + desc.name.as_slice(), + "ignored", + exec_time, + stdout, + desc.ignore_message + .map(|msg| format!(r#""message": "{}""#, EscapedString(msg))) + .as_deref(), + ), + + TestResult::TrBench(ref bs) => { + let median = bs.ns_iter_summ.median; + let deviation = bs.ns_iter_summ.max - bs.ns_iter_summ.min; + + let mbps = if bs.mb_s == 0 { + String::new() + } else { + format!(r#", "mib_per_second": {}"#, bs.mb_s) + }; + let name = EscapedString(desc.name.as_slice()); + + self.writeln_message(&format!( + "{{ \"type\": \"bench\", \ + \"name\": \"{name}\", \ + \"median\": {median}, \ + \"deviation\": {deviation}{mbps} }}\n", + )) + } + } + } + + fn write_timeout(&mut self, desc: &TestDesc) -> io::Result<()> { + let name = EscapedString(desc.name.as_slice()); + let newline = "\n"; + self.writeln_message(&format!( + r#"{{ "type": "test", "event": "timeout", "name": "{name}" }}{newline}"#, + )) + } + + fn write_run_finish(&mut self, state: &ConsoleTestState) -> io::Result { + let event = if state.failed == 0 { "ok" } else { "failed" }; + let passed = state.passed; + let failed = state.failed; + let ignored = state.ignored; + let measured = state.measured; + let filtered_out = state.filtered_out; + let exec_time_json = if let Some(ref exec_time) = state.exec_time { + format!(r#", "exec_time": {}"#, exec_time.0.as_secs_f64()) + } else { + String::from("") + }; + let newline = "\n"; + + self.writeln_message(&format!( + r#"{{ "type": "suite", "event": "{event}", "passed": {passed}, "failed": {failed}, "ignored": {ignored}, "measured": {measured}, "filtered_out": {filtered_out}{exec_time_json} }}{newline}"# + ))?; + + Ok(state.failed == 0) + } + + fn write_merged_doctests_times( + &mut self, + total_time: f64, + compilation_time: f64, + ) -> io::Result<()> { + let newline = "\n"; + self.writeln_message(&format!( + r#"{{ "type": "report", "total_time": {total_time}, "compilation_time": {compilation_time} }}{newline}"#, + )) + } +} + +/// A formatting utility used to print strings with characters in need of escaping. +/// Base code taken form `libserialize::json::escape_str` +struct EscapedString>(S); + +impl> std::fmt::Display for EscapedString { + fn fmt(&self, f: &mut std::fmt::Formatter<'_>) -> ::std::fmt::Result { + let mut start = 0; + + for (i, byte) in self.0.as_ref().bytes().enumerate() { + let escaped = match byte { + b'"' => "\\\"", + b'\\' => "\\\\", + b'\x00' => "\\u0000", + b'\x01' => "\\u0001", + b'\x02' => "\\u0002", + b'\x03' => "\\u0003", + b'\x04' => "\\u0004", + b'\x05' => "\\u0005", + b'\x06' => "\\u0006", + b'\x07' => "\\u0007", + b'\x08' => "\\b", + b'\t' => "\\t", + b'\n' => "\\n", + b'\x0b' => "\\u000b", + b'\x0c' => "\\f", + b'\r' => "\\r", + b'\x0e' => "\\u000e", + b'\x0f' => "\\u000f", + b'\x10' => "\\u0010", + b'\x11' => "\\u0011", + b'\x12' => "\\u0012", + b'\x13' => "\\u0013", + b'\x14' => "\\u0014", + b'\x15' => "\\u0015", + b'\x16' => "\\u0016", + b'\x17' => "\\u0017", + b'\x18' => "\\u0018", + b'\x19' => "\\u0019", + b'\x1a' => "\\u001a", + b'\x1b' => "\\u001b", + b'\x1c' => "\\u001c", + b'\x1d' => "\\u001d", + b'\x1e' => "\\u001e", + b'\x1f' => "\\u001f", + b'\x7f' => "\\u007f", + _ => { + continue; + } + }; + + if start < i { + f.write_str(&self.0.as_ref()[start..i])?; + } + + f.write_str(escaped)?; + + start = i + 1; + } + + if start != self.0.as_ref().len() { + f.write_str(&self.0.as_ref()[start..])?; + } + + Ok(()) + } +} diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/test/src/formatters/junit.rs b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/test/src/formatters/junit.rs new file mode 100644 index 0000000000000000000000000000000000000000..2772222a05c9a2f101a11027e36b428eef976787 --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/test/src/formatters/junit.rs @@ -0,0 +1,233 @@ +use std::io; +use std::io::prelude::Write; +use std::time::Duration; + +use super::OutputFormatter; +use crate::console::{ConsoleTestDiscoveryState, ConsoleTestState, OutputLocation}; +use crate::test_result::TestResult; +use crate::time; +use crate::types::{TestDesc, TestType}; + +pub(crate) struct JunitFormatter { + out: OutputLocation, + results: Vec<(TestDesc, TestResult, Duration, Vec)>, +} + +impl JunitFormatter { + pub(crate) fn new(out: OutputLocation) -> Self { + Self { out, results: Vec::new() } + } + + fn write_message(&mut self, s: &str) -> io::Result<()> { + assert!(!s.contains('\n')); + + self.out.write_all(s.as_ref()) + } +} + +fn str_to_cdata(s: &str) -> String { + // Drop the stdout in a cdata. Unfortunately, you can't put either of `]]>` or + // `", "]]]]>"); + let escaped_output = escaped_output.replace(" ", ""); + format!("", escaped_output) +} + +impl OutputFormatter for JunitFormatter { + fn write_discovery_start(&mut self) -> io::Result<()> { + Err(io::const_error!(io::ErrorKind::NotFound, "not yet implemented!")) + } + + fn write_test_discovered(&mut self, _desc: &TestDesc, _test_type: &str) -> io::Result<()> { + Err(io::const_error!(io::ErrorKind::NotFound, "not yet implemented!")) + } + + fn write_discovery_finish(&mut self, _state: &ConsoleTestDiscoveryState) -> io::Result<()> { + Err(io::const_error!(io::ErrorKind::NotFound, "not yet implemented!")) + } + + fn write_run_start( + &mut self, + _test_count: usize, + _shuffle_seed: Option, + ) -> io::Result<()> { + // We write xml header on run start + self.write_message("") + } + + fn write_test_start(&mut self, _desc: &TestDesc) -> io::Result<()> { + // We do not output anything on test start. + Ok(()) + } + + fn write_timeout(&mut self, _desc: &TestDesc) -> io::Result<()> { + // We do not output anything on test timeout. + Ok(()) + } + + fn write_result( + &mut self, + desc: &TestDesc, + result: &TestResult, + exec_time: Option<&time::TestExecTime>, + stdout: &[u8], + _state: &ConsoleTestState, + ) -> io::Result<()> { + // Because the testsuite node holds some of the information as attributes, we can't write it + // until all of the tests have finished. Instead of writing every result as they come in, we add + // them to a Vec and write them all at once when run is complete. + let duration = exec_time.map(|t| t.0).unwrap_or_default(); + self.results.push((desc.clone(), result.clone(), duration, stdout.to_vec())); + Ok(()) + } + fn write_run_finish(&mut self, state: &ConsoleTestState) -> io::Result { + self.write_message("")?; + + self.write_message(&format!( + "", + state.failed, state.total, state.ignored + ))?; + for (desc, result, duration, stdout) in std::mem::take(&mut self.results) { + let (class_name, test_name) = parse_class_name(&desc); + match result { + TestResult::TrIgnored => { /* no-op */ } + TestResult::TrFailed => { + self.write_message(&format!( + "", + class_name, + test_name, + duration.as_secs_f64() + ))?; + self.write_message("")?; + if !stdout.is_empty() { + self.write_message("")?; + self.write_message(&str_to_cdata(&String::from_utf8_lossy(&stdout)))?; + self.write_message("")?; + } + self.write_message("")?; + } + + TestResult::TrFailedMsg(ref m) => { + self.write_message(&format!( + "", + class_name, + test_name, + duration.as_secs_f64() + ))?; + self.write_message(&format!(""))?; + if !stdout.is_empty() { + self.write_message("")?; + self.write_message(&str_to_cdata(&String::from_utf8_lossy(&stdout)))?; + self.write_message("")?; + } + self.write_message("")?; + } + + TestResult::TrTimedFail => { + self.write_message(&format!( + "", + class_name, + test_name, + duration.as_secs_f64() + ))?; + self.write_message("")?; + self.write_message("")?; + } + + TestResult::TrBench(ref b) => { + self.write_message(&format!( + "", + class_name, test_name, b.ns_iter_summ.sum + ))?; + } + + TestResult::TrOk => { + self.write_message(&format!( + "")?; + } else { + self.write_message(">")?; + self.write_message(&str_to_cdata(&String::from_utf8_lossy(&stdout)))?; + self.write_message("")?; + self.write_message("")?; + } + } + } + } + self.write_message("")?; + self.write_message("")?; + self.write_message("")?; + self.write_message("")?; + + self.out.write_all(b"\n")?; + + Ok(state.failed == 0) + } + + fn write_merged_doctests_times( + &mut self, + total_time: f64, + compilation_time: f64, + ) -> io::Result<()> { + self.write_message(&format!( + "", + ))?; + self.out.write_all(b"\n")?; + Ok(()) + } +} + +fn parse_class_name(desc: &TestDesc) -> (String, String) { + match desc.test_type { + TestType::UnitTest => parse_class_name_unit(desc), + TestType::DocTest => parse_class_name_doc(desc), + TestType::IntegrationTest => parse_class_name_integration(desc), + TestType::Unknown => (String::from("unknown"), String::from(desc.name.as_slice())), + } +} + +fn parse_class_name_unit(desc: &TestDesc) -> (String, String) { + // Module path => classname + // Function name => name + let module_segments: Vec<&str> = desc.name.as_slice().split("::").collect(); + let (class_name, test_name) = match module_segments[..] { + [test] => (String::from("crate"), String::from(test)), + [ref path @ .., test] => (path.join("::"), String::from(test)), + [..] => unreachable!(), + }; + (class_name, test_name) +} + +fn parse_class_name_doc(desc: &TestDesc) -> (String, String) { + // File path => classname + // Line # => test name + let segments: Vec<&str> = desc.name.as_slice().split(" - ").collect(); + let (class_name, test_name) = match segments[..] { + [file, line] => (String::from(file.trim()), String::from(line.trim())), + [..] => unreachable!(), + }; + (class_name, test_name) +} + +fn parse_class_name_integration(desc: &TestDesc) -> (String, String) { + (String::from("integration"), String::from(desc.name.as_slice())) +} diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/test/src/formatters/mod.rs b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/test/src/formatters/mod.rs new file mode 100644 index 0000000000000000000000000000000000000000..c97cdb16a50797df82ebd038e74accd442a1988a --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/test/src/formatters/mod.rs @@ -0,0 +1,50 @@ +use std::io; +use std::io::prelude::Write; + +use crate::console::{ConsoleTestDiscoveryState, ConsoleTestState}; +use crate::test_result::TestResult; +use crate::time; +use crate::types::{TestDesc, TestName}; + +mod json; +mod junit; +mod pretty; +mod terse; + +pub(crate) use self::json::JsonFormatter; +pub(crate) use self::junit::JunitFormatter; +pub(crate) use self::pretty::PrettyFormatter; +pub(crate) use self::terse::TerseFormatter; + +pub(crate) trait OutputFormatter { + fn write_discovery_start(&mut self) -> io::Result<()>; + fn write_test_discovered(&mut self, desc: &TestDesc, test_type: &str) -> io::Result<()>; + fn write_discovery_finish(&mut self, state: &ConsoleTestDiscoveryState) -> io::Result<()>; + + fn write_run_start(&mut self, test_count: usize, shuffle_seed: Option) -> io::Result<()>; + fn write_test_start(&mut self, desc: &TestDesc) -> io::Result<()>; + fn write_timeout(&mut self, desc: &TestDesc) -> io::Result<()>; + fn write_result( + &mut self, + desc: &TestDesc, + result: &TestResult, + exec_time: Option<&time::TestExecTime>, + stdout: &[u8], + state: &ConsoleTestState, + ) -> io::Result<()>; + fn write_run_finish(&mut self, state: &ConsoleTestState) -> io::Result; + fn write_merged_doctests_times( + &mut self, + total_time: f64, + compilation_time: f64, + ) -> io::Result<()>; +} + +pub(crate) fn write_stderr_delimiter(test_output: &mut Vec, test_name: &TestName) { + match test_output.last() { + Some(b'\n') => (), + Some(_) => test_output.push(b'\n'), + None => (), + } + writeln!(test_output, "---- {test_name} stderr ----").unwrap(); +} diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/test/src/formatters/pretty.rs b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/test/src/formatters/pretty.rs new file mode 100644 index 0000000000000000000000000000000000000000..5836138644aa4c560a1d6db393d8db8c243f4ab4 --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/test/src/formatters/pretty.rs @@ -0,0 +1,316 @@ +use std::io; +use std::io::prelude::Write; + +use super::OutputFormatter; +use crate::bench::fmt_bench_samples; +use crate::console::{ConsoleTestDiscoveryState, ConsoleTestState, OutputLocation}; +use crate::test_result::TestResult; +use crate::types::TestDesc; +use crate::{term, time}; + +pub(crate) struct PrettyFormatter { + out: OutputLocation, + use_color: bool, + time_options: Option, + + /// Number of columns to fill when aligning names + max_name_len: usize, + + is_multithreaded: bool, +} + +impl PrettyFormatter { + pub(crate) fn new( + out: OutputLocation, + use_color: bool, + max_name_len: usize, + is_multithreaded: bool, + time_options: Option, + ) -> Self { + PrettyFormatter { out, use_color, max_name_len, is_multithreaded, time_options } + } + + #[cfg(test)] + pub(crate) fn output_location(&self) -> &OutputLocation { + &self.out + } + + pub(crate) fn write_ok(&mut self) -> io::Result<()> { + self.write_short_result("ok", term::color::GREEN) + } + + pub(crate) fn write_failed(&mut self) -> io::Result<()> { + self.write_short_result("FAILED", term::color::RED) + } + + pub(crate) fn write_ignored(&mut self, message: Option<&'static str>) -> io::Result<()> { + if let Some(message) = message { + self.write_short_result(&format!("ignored, {message}"), term::color::YELLOW) + } else { + self.write_short_result("ignored", term::color::YELLOW) + } + } + + pub(crate) fn write_time_failed(&mut self) -> io::Result<()> { + self.write_short_result("FAILED (time limit exceeded)", term::color::RED) + } + + pub(crate) fn write_bench(&mut self) -> io::Result<()> { + self.write_pretty("bench", term::color::CYAN) + } + + pub(crate) fn write_short_result( + &mut self, + result: &str, + color: term::color::Color, + ) -> io::Result<()> { + self.write_pretty(result, color) + } + + pub(crate) fn write_pretty(&mut self, word: &str, color: term::color::Color) -> io::Result<()> { + match self.out { + OutputLocation::Pretty(ref mut term) => { + if self.use_color { + term.fg(color)?; + } + term.write_all(word.as_bytes())?; + if self.use_color { + term.reset()?; + } + term.flush() + } + OutputLocation::Raw(ref mut stdout) => { + stdout.write_all(word.as_bytes())?; + stdout.flush() + } + } + } + + pub(crate) fn write_plain>(&mut self, s: S) -> io::Result<()> { + let s = s.as_ref(); + self.out.write_all(s.as_bytes())?; + self.out.flush() + } + + fn write_time( + &mut self, + desc: &TestDesc, + exec_time: Option<&time::TestExecTime>, + ) -> io::Result<()> { + if let (Some(opts), Some(time)) = (self.time_options, exec_time) { + let time_str = format!(" <{time}>"); + + let color = if self.use_color { + if opts.is_critical(desc, time) { + Some(term::color::RED) + } else if opts.is_warn(desc, time) { + Some(term::color::YELLOW) + } else { + None + } + } else { + None + }; + + match color { + Some(color) => self.write_pretty(&time_str, color)?, + None => self.write_plain(&time_str)?, + } + } + + Ok(()) + } + + fn write_results( + &mut self, + inputs: &Vec<(TestDesc, Vec)>, + results_type: &str, + ) -> io::Result<()> { + let results_out_str = format!("\n{results_type}:\n"); + + self.write_plain(&results_out_str)?; + + let mut results = Vec::new(); + let mut stdouts = String::new(); + for (f, stdout) in inputs { + results.push(f.name.to_string()); + if !stdout.is_empty() { + stdouts.push_str(&format!("---- {} stdout ----\n", f.name)); + let output = String::from_utf8_lossy(stdout); + stdouts.push_str(&output); + stdouts.push('\n'); + } + } + if !stdouts.is_empty() { + self.write_plain("\n")?; + self.write_plain(&stdouts)?; + } + + self.write_plain(&results_out_str)?; + results.sort(); + for name in &results { + self.write_plain(&format!(" {name}\n"))?; + } + Ok(()) + } + + pub(crate) fn write_successes(&mut self, state: &ConsoleTestState) -> io::Result<()> { + self.write_results(&state.not_failures, "successes") + } + + pub(crate) fn write_failures(&mut self, state: &ConsoleTestState) -> io::Result<()> { + self.write_results(&state.failures, "failures") + } + + pub(crate) fn write_time_failures(&mut self, state: &ConsoleTestState) -> io::Result<()> { + self.write_results(&state.time_failures, "failures (time limit exceeded)") + } + + fn write_test_name(&mut self, desc: &TestDesc) -> io::Result<()> { + let name = desc.padded_name(self.max_name_len, desc.name.padding()); + if let Some(test_mode) = desc.test_mode() { + self.write_plain(format!("test {name} - {test_mode} ... "))?; + } else { + self.write_plain(format!("test {name} ... "))?; + } + + Ok(()) + } +} + +impl OutputFormatter for PrettyFormatter { + fn write_discovery_start(&mut self) -> io::Result<()> { + Ok(()) + } + + fn write_test_discovered(&mut self, desc: &TestDesc, test_type: &str) -> io::Result<()> { + self.write_plain(format!("{}: {test_type}\n", desc.name)) + } + + fn write_discovery_finish(&mut self, state: &ConsoleTestDiscoveryState) -> io::Result<()> { + fn plural(count: usize, s: &str) -> String { + match count { + 1 => format!("1 {s}"), + n => format!("{n} {s}s"), + } + } + + if state.tests != 0 || state.benchmarks != 0 { + self.write_plain("\n")?; + } + + self.write_plain(format!( + "{}, {}\n", + plural(state.tests, "test"), + plural(state.benchmarks, "benchmark") + )) + } + + fn write_run_start(&mut self, test_count: usize, shuffle_seed: Option) -> io::Result<()> { + let noun = if test_count != 1 { "tests" } else { "test" }; + let shuffle_seed_msg = if let Some(shuffle_seed) = shuffle_seed { + format!(" (shuffle seed: {shuffle_seed})") + } else { + String::new() + }; + self.write_plain(format!("\nrunning {test_count} {noun}{shuffle_seed_msg}\n")) + } + + fn write_test_start(&mut self, desc: &TestDesc) -> io::Result<()> { + // When running tests concurrently, we should not print + // the test's name as the result will be mis-aligned. + // When running the tests serially, we print the name here so + // that the user can see which test hangs. + if !self.is_multithreaded { + self.write_test_name(desc)?; + } + + Ok(()) + } + + fn write_result( + &mut self, + desc: &TestDesc, + result: &TestResult, + exec_time: Option<&time::TestExecTime>, + _: &[u8], + _: &ConsoleTestState, + ) -> io::Result<()> { + if self.is_multithreaded { + self.write_test_name(desc)?; + } + + match *result { + TestResult::TrOk => self.write_ok()?, + TestResult::TrFailed | TestResult::TrFailedMsg(_) => self.write_failed()?, + TestResult::TrIgnored => self.write_ignored(desc.ignore_message)?, + TestResult::TrBench(ref bs) => { + self.write_bench()?; + self.write_plain(format!(": {}", fmt_bench_samples(bs)))?; + } + TestResult::TrTimedFail => self.write_time_failed()?, + } + + self.write_time(desc, exec_time)?; + self.write_plain("\n") + } + + fn write_timeout(&mut self, desc: &TestDesc) -> io::Result<()> { + self.write_plain(format!( + "test {} has been running for over {} seconds\n", + desc.name, + time::TEST_WARN_TIMEOUT_S + )) + } + + fn write_run_finish(&mut self, state: &ConsoleTestState) -> io::Result { + if state.options.display_output { + self.write_successes(state)?; + } + let success = state.failed == 0; + if !success { + if !state.failures.is_empty() { + self.write_failures(state)?; + } + + if !state.time_failures.is_empty() { + self.write_time_failures(state)?; + } + } + + self.write_plain("\ntest result: ")?; + + if success { + // There's no parallelism at this point so it's safe to use color + self.write_pretty("ok", term::color::GREEN)?; + } else { + self.write_pretty("FAILED", term::color::RED)?; + } + + let s = format!( + ". {} passed; {} failed; {} ignored; {} measured; {} filtered out", + state.passed, state.failed, state.ignored, state.measured, state.filtered_out + ); + + self.write_plain(s)?; + + if let Some(ref exec_time) = state.exec_time { + let time_str = format!("; finished in {exec_time}"); + self.write_plain(time_str)?; + } + + self.write_plain("\n\n")?; + + Ok(success) + } + + fn write_merged_doctests_times( + &mut self, + total_time: f64, + compilation_time: f64, + ) -> io::Result<()> { + self.write_plain(format!( + "all doctests ran in {total_time:.2}s; merged doctests compilation took {compilation_time:.2}s\n", + )) + } +} diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/test/src/formatters/terse.rs b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/test/src/formatters/terse.rs new file mode 100644 index 0000000000000000000000000000000000000000..0720f06e174fc3990ab981362a7456dda2292d9c --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/test/src/formatters/terse.rs @@ -0,0 +1,308 @@ +use std::io; +use std::io::prelude::Write; + +use super::OutputFormatter; +use crate::bench::fmt_bench_samples; +use crate::console::{ConsoleTestDiscoveryState, ConsoleTestState, OutputLocation}; +use crate::test_result::TestResult; +use crate::types::{NamePadding, TestDesc}; +use crate::{term, time}; + +// We insert a '\n' when the output hits 100 columns in quiet mode. 88 test +// result chars leaves 12 chars for a progress count like " 11704/12853". +const QUIET_MODE_MAX_COLUMN: usize = 88; + +pub(crate) struct TerseFormatter { + out: OutputLocation, + use_color: bool, + is_multithreaded: bool, + /// Number of columns to fill when aligning names + max_name_len: usize, + + test_count: usize, + test_column: usize, + total_test_count: usize, +} + +impl TerseFormatter { + pub(crate) fn new( + out: OutputLocation, + use_color: bool, + max_name_len: usize, + is_multithreaded: bool, + ) -> Self { + TerseFormatter { + out, + use_color, + max_name_len, + is_multithreaded, + test_count: 0, + test_column: 0, + total_test_count: 0, // initialized later, when write_run_start is called + } + } + + pub(crate) fn write_ok(&mut self) -> io::Result<()> { + self.write_short_result(".", term::color::GREEN) + } + + pub(crate) fn write_failed(&mut self, name: &str) -> io::Result<()> { + // Put failed tests on their own line and include the test name, so that it's faster + // to see which test failed without having to wait for them all to run. + + // normally, we write the progress unconditionally, even if the previous line was cut short. + // but if this is the very first column, no short results will have been printed and we'll end up with *only* the progress on the line. + // avoid this. + if self.test_column != 0 { + self.write_progress()?; + } + self.test_count += 1; + self.write_plain(format!("{name} --- "))?; + self.write_pretty("FAILED", term::color::RED)?; + self.write_plain("\n") + } + + pub(crate) fn write_ignored(&mut self) -> io::Result<()> { + self.write_short_result("i", term::color::YELLOW) + } + + pub(crate) fn write_bench(&mut self) -> io::Result<()> { + self.write_pretty("bench", term::color::CYAN) + } + + pub(crate) fn write_short_result( + &mut self, + result: &str, + color: term::color::Color, + ) -> io::Result<()> { + self.write_pretty(result, color)?; + self.test_count += 1; + self.test_column += 1; + if self.test_column % QUIET_MODE_MAX_COLUMN == QUIET_MODE_MAX_COLUMN - 1 { + // We insert a new line regularly in order to flush the + // screen when dealing with line-buffered output (e.g., piping to + // `stamp` in the Rust CI). + self.write_progress()?; + } + + Ok(()) + } + + fn write_progress(&mut self) -> io::Result<()> { + let out = format!(" {}/{}\n", self.test_count, self.total_test_count); + self.write_plain(out)?; + self.test_column = 0; + Ok(()) + } + + pub(crate) fn write_pretty(&mut self, word: &str, color: term::color::Color) -> io::Result<()> { + match self.out { + OutputLocation::Pretty(ref mut term) => { + if self.use_color { + term.fg(color)?; + } + term.write_all(word.as_bytes())?; + if self.use_color { + term.reset()?; + } + term.flush() + } + OutputLocation::Raw(ref mut stdout) => { + stdout.write_all(word.as_bytes())?; + stdout.flush() + } + } + } + + pub(crate) fn write_plain>(&mut self, s: S) -> io::Result<()> { + let s = s.as_ref(); + self.out.write_all(s.as_bytes())?; + self.out.flush() + } + + pub(crate) fn write_outputs(&mut self, state: &ConsoleTestState) -> io::Result<()> { + self.write_plain("\nsuccesses:\n")?; + let mut successes = Vec::new(); + let mut stdouts = String::new(); + for (f, stdout) in &state.not_failures { + successes.push(f.name.to_string()); + if !stdout.is_empty() { + stdouts.push_str(&format!("---- {} stdout ----\n", f.name)); + let output = String::from_utf8_lossy(stdout); + stdouts.push_str(&output); + stdouts.push('\n'); + } + } + if !stdouts.is_empty() { + self.write_plain("\n")?; + self.write_plain(&stdouts)?; + } + + self.write_plain("\nsuccesses:\n")?; + successes.sort(); + for name in &successes { + self.write_plain(&format!(" {name}\n"))?; + } + Ok(()) + } + + pub(crate) fn write_failures(&mut self, state: &ConsoleTestState) -> io::Result<()> { + self.write_plain("\nfailures:\n")?; + let mut failures = Vec::new(); + let mut fail_out = String::new(); + for (f, stdout) in &state.failures { + failures.push(f.name.to_string()); + if !stdout.is_empty() { + fail_out.push_str(&format!("---- {} stdout ----\n", f.name)); + let output = String::from_utf8_lossy(stdout); + fail_out.push_str(&output); + fail_out.push('\n'); + } + } + if !fail_out.is_empty() { + self.write_plain("\n")?; + self.write_plain(&fail_out)?; + } + + self.write_plain("\nfailures:\n")?; + failures.sort(); + for name in &failures { + self.write_plain(&format!(" {name}\n"))?; + } + Ok(()) + } + + fn write_test_name(&mut self, desc: &TestDesc) -> io::Result<()> { + let name = desc.padded_name(self.max_name_len, desc.name.padding()); + if let Some(test_mode) = desc.test_mode() { + self.write_plain(format!("test {name} - {test_mode} ... "))?; + } else { + self.write_plain(format!("test {name} ... "))?; + } + + Ok(()) + } +} + +impl OutputFormatter for TerseFormatter { + fn write_discovery_start(&mut self) -> io::Result<()> { + Ok(()) + } + + fn write_test_discovered(&mut self, desc: &TestDesc, test_type: &str) -> io::Result<()> { + self.write_plain(format!("{}: {test_type}\n", desc.name)) + } + + fn write_discovery_finish(&mut self, _state: &ConsoleTestDiscoveryState) -> io::Result<()> { + Ok(()) + } + + fn write_run_start(&mut self, test_count: usize, shuffle_seed: Option) -> io::Result<()> { + self.total_test_count = test_count; + let noun = if test_count != 1 { "tests" } else { "test" }; + let shuffle_seed_msg = if let Some(shuffle_seed) = shuffle_seed { + format!(" (shuffle seed: {shuffle_seed})") + } else { + String::new() + }; + self.write_plain(format!("\nrunning {test_count} {noun}{shuffle_seed_msg}\n")) + } + + fn write_test_start(&mut self, desc: &TestDesc) -> io::Result<()> { + // Remnants from old libtest code that used the padding value + // in order to indicate benchmarks. + // When running benchmarks, terse-mode should still print their name as if + // it is the Pretty formatter. + if !self.is_multithreaded && desc.name.padding() == NamePadding::PadOnRight { + self.write_test_name(desc)?; + } + + Ok(()) + } + + fn write_result( + &mut self, + desc: &TestDesc, + result: &TestResult, + _: Option<&time::TestExecTime>, + _: &[u8], + _: &ConsoleTestState, + ) -> io::Result<()> { + match *result { + TestResult::TrOk => self.write_ok(), + TestResult::TrFailed | TestResult::TrFailedMsg(_) | TestResult::TrTimedFail => { + self.write_failed(desc.name.as_slice()) + } + TestResult::TrIgnored => self.write_ignored(), + TestResult::TrBench(ref bs) => { + if self.is_multithreaded { + self.write_test_name(desc)?; + } + self.write_bench()?; + self.write_plain(format!(": {}\n", fmt_bench_samples(bs))) + } + } + } + + fn write_timeout(&mut self, desc: &TestDesc) -> io::Result<()> { + self.write_plain(format!( + "test {} has been running for over {} seconds\n", + desc.name, + time::TEST_WARN_TIMEOUT_S + )) + } + + fn write_run_finish(&mut self, state: &ConsoleTestState) -> io::Result { + if state.options.display_output { + self.write_outputs(state)?; + } + let success = state.failed == 0; + if !success { + self.write_failures(state)?; + } + + self.write_plain("\ntest result: ")?; + + if success { + // There's no parallelism at this point so it's safe to use color + self.write_pretty("ok", term::color::GREEN)?; + } else { + self.write_pretty("FAILED", term::color::RED)?; + } + + let s = format!( + ". {} passed; {} failed; {} ignored; {} measured; {} filtered out", + state.passed, state.failed, state.ignored, state.measured, state.filtered_out + ); + + self.write_plain(s)?; + + if let Some(ref exec_time) = state.exec_time { + let time_str = format!("; finished in {exec_time}"); + self.write_plain(time_str)?; + } + + self.write_plain("\n\n")?; + + // Custom handling of cases where there is only 1 test to execute and that test was ignored. + // We want to show more detailed information(why was the test ignored) for investigation purposes. + if self.total_test_count == 1 && state.ignores.len() == 1 { + let test_desc = &state.ignores[0].0; + if let Some(im) = test_desc.ignore_message { + self.write_plain(format!("test: {}, ignore_message: {}\n\n", test_desc.name, im))?; + } + } + + Ok(success) + } + + fn write_merged_doctests_times( + &mut self, + total_time: f64, + compilation_time: f64, + ) -> io::Result<()> { + self.write_plain(format!( + "all doctests ran in {total_time:.2}s; merged doctests compilation took {compilation_time:.2}s\n", + )) + } +} diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/test/src/helpers/concurrency.rs b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/test/src/helpers/concurrency.rs new file mode 100644 index 0000000000000000000000000000000000000000..6648b669125f7179b3d7485e842e07bbe922dfec --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/test/src/helpers/concurrency.rs @@ -0,0 +1,16 @@ +//! Helper module which helps to determine amount of threads to be used +//! during tests execution. + +use std::num::NonZero; +use std::{env, thread}; + +pub(crate) fn get_concurrency() -> usize { + if let Ok(value) = env::var("RUST_TEST_THREADS") { + match value.parse::>().ok() { + Some(n) => n.get(), + _ => panic!("RUST_TEST_THREADS is `{value}`, should be a positive integer."), + } + } else { + thread::available_parallelism().map(|n| n.get()).unwrap_or(1) + } +} diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/test/src/helpers/metrics.rs b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/test/src/helpers/metrics.rs new file mode 100644 index 0000000000000000000000000000000000000000..bc38969cefb8d950a7c1b3c1dd5e4c804afe903b --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/test/src/helpers/metrics.rs @@ -0,0 +1,51 @@ +//! Benchmark metrics. + +use std::collections::BTreeMap; + +#[derive(Clone, PartialEq, Debug, Copy)] +pub struct Metric { + value: f64, + noise: f64, +} + +impl Metric { + pub fn new(value: f64, noise: f64) -> Metric { + Metric { value, noise } + } +} + +#[derive(Clone, PartialEq)] +pub struct MetricMap(BTreeMap); + +impl MetricMap { + pub fn new() -> MetricMap { + MetricMap(BTreeMap::new()) + } + + /// Insert a named `value` (+/- `noise`) metric into the map. The value + /// must be non-negative. The `noise` indicates the uncertainty of the + /// metric, which doubles as the "noise range" of acceptable + /// pairwise-regressions on this named value, when comparing from one + /// metric to the next using `compare_to_old`. + /// + /// If `noise` is positive, then it means this metric is of a value + /// you want to see grow smaller, so a change larger than `noise` in the + /// positive direction represents a regression. + /// + /// If `noise` is negative, then it means this metric is of a value + /// you want to see grow larger, so a change larger than `noise` in the + /// negative direction represents a regression. + pub fn insert_metric(&mut self, name: &str, value: f64, noise: f64) { + let m = Metric { value, noise }; + self.0.insert(name.to_owned(), m); + } + + pub fn fmt_metrics(&self) -> String { + let v = self + .0 + .iter() + .map(|(k, v)| format!("{}: {} (+/- {})", *k, v.value, v.noise)) + .collect::>(); + v.join(", ") + } +} diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/test/src/helpers/mod.rs b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/test/src/helpers/mod.rs new file mode 100644 index 0000000000000000000000000000000000000000..2fb29b4c7bee5209d738664d9ec1c42914aa920d --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/test/src/helpers/mod.rs @@ -0,0 +1,6 @@ +//! Module with common helpers not directly related to tests +//! but used in `libtest`. + +pub(crate) mod concurrency; +pub(crate) mod metrics; +pub(crate) mod shuffle; diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/test/src/helpers/shuffle.rs b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/test/src/helpers/shuffle.rs new file mode 100644 index 0000000000000000000000000000000000000000..53d1d0e42d4e8423034a20fbafb49236351d94e3 --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/test/src/helpers/shuffle.rs @@ -0,0 +1,67 @@ +use std::hash::{DefaultHasher, Hasher}; +use std::time::{SystemTime, UNIX_EPOCH}; + +use crate::cli::TestOpts; +use crate::types::{TestDescAndFn, TestId, TestName}; + +pub(crate) fn get_shuffle_seed(opts: &TestOpts) -> Option { + opts.shuffle_seed.or_else(|| { + if opts.shuffle { + Some( + SystemTime::now() + .duration_since(UNIX_EPOCH) + .expect("Failed to get system time") + .as_nanos() as u64, + ) + } else { + None + } + }) +} + +pub(crate) fn shuffle_tests(shuffle_seed: u64, tests: &mut [(TestId, TestDescAndFn)]) { + let test_names: Vec<&TestName> = tests.iter().map(|test| &test.1.desc.name).collect(); + let test_names_hash = calculate_hash(&test_names); + let mut rng = Rng::new(shuffle_seed, test_names_hash); + shuffle(&mut rng, tests); +} + +// `shuffle` is from `rust-analyzer/src/cli/analysis_stats.rs`. +fn shuffle(rng: &mut Rng, slice: &mut [T]) { + for i in 0..slice.len() { + randomize_first(rng, &mut slice[i..]); + } + + fn randomize_first(rng: &mut Rng, slice: &mut [T]) { + assert!(!slice.is_empty()); + let idx = rng.rand_range(0..slice.len() as u64) as usize; + slice.swap(0, idx); + } +} + +struct Rng { + state: u64, + extra: u64, +} + +impl Rng { + fn new(seed: u64, extra: u64) -> Self { + Self { state: seed, extra } + } + + fn rand_range(&mut self, range: core::ops::Range) -> u64 { + self.rand_u64() % (range.end - range.start) + range.start + } + + fn rand_u64(&mut self) -> u64 { + self.state = calculate_hash(&(self.state, self.extra)); + self.state + } +} + +// `calculate_hash` is from `core/src/hash/mod.rs`. +fn calculate_hash(t: &T) -> u64 { + let mut s = DefaultHasher::new(); + t.hash(&mut s); + s.finish() +} diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/test/src/lib.rs b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/test/src/lib.rs new file mode 100644 index 0000000000000000000000000000000000000000..f3dbd3d0556ab07664a12161d5e6aa0efc298fd3 --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/test/src/lib.rs @@ -0,0 +1,795 @@ +//! Support code for rustc's built in unit-test and micro-benchmarking +//! framework. +//! +//! Almost all user code will only be interested in `Bencher` and +//! `black_box`. All other interactions (such as writing tests and +//! benchmarks themselves) should be done via the `#[test]` and +//! `#[bench]` attributes. +//! +//! See the [Testing Chapter](../book/ch11-00-testing.html) of the book for more +//! details. + +// Currently, not much of this is meant for users. It is intended to +// support the simplest interface possible for representing and +// running tests while providing a base that other test frameworks may +// build off of. + +#![unstable(feature = "test", issue = "50297")] +#![doc(test(attr(deny(warnings))))] +#![doc(rust_logo)] +#![feature(rustdoc_internals)] +#![feature(file_buffered)] +#![feature(internal_output_capture)] +#![feature(io_const_error)] +#![feature(staged_api)] +#![feature(process_exitcode_internals)] +#![feature(panic_can_unwind)] +#![cfg_attr(test, feature(test))] +#![feature(thread_spawn_hook)] +#![allow(internal_features)] +#![warn(rustdoc::unescaped_backticks)] +#![warn(unreachable_pub)] + +pub use cli::TestOpts; + +pub use self::ColorConfig::*; +pub use self::bench::{Bencher, black_box}; +pub use self::console::run_tests_console; +pub use self::options::{ColorConfig, Options, OutputFormat, RunIgnored, ShouldPanic}; +pub use self::types::TestName::*; +pub use self::types::*; + +// Module to be used by rustc to compile tests in libtest +pub mod test { + pub use crate::bench::Bencher; + pub use crate::cli::{TestOpts, parse_opts}; + pub use crate::helpers::metrics::{Metric, MetricMap}; + pub use crate::options::{Options, RunIgnored, RunStrategy, ShouldPanic}; + pub use crate::test_result::{TestResult, TrFailed, TrFailedMsg, TrIgnored, TrOk}; + pub use crate::time::{TestExecTime, TestTimeOptions}; + pub use crate::types::{ + DynTestFn, DynTestName, StaticBenchFn, StaticTestFn, StaticTestName, TestDesc, + TestDescAndFn, TestId, TestName, TestType, + }; + pub use crate::{assert_test_result, filter_tests, run_test, test_main, test_main_static}; +} + +use std::collections::VecDeque; +use std::io::prelude::Write; +use std::mem::ManuallyDrop; +use std::panic::{self, AssertUnwindSafe, PanicHookInfo, catch_unwind}; +use std::process::{self, Command, Termination}; +use std::sync::mpsc::{Sender, channel}; +use std::sync::{Arc, Mutex}; +use std::time::{Duration, Instant}; +use std::{env, io, thread}; + +pub mod bench; +mod cli; +mod console; +mod event; +mod formatters; +mod helpers; +mod options; +pub mod stats; +mod term; +mod test_result; +mod time; +mod types; + +#[cfg(test)] +mod tests; + +use core::any::Any; + +use event::{CompletedTest, TestEvent}; +use helpers::concurrency::get_concurrency; +use helpers::shuffle::{get_shuffle_seed, shuffle_tests}; +use options::RunStrategy; +use test_result::*; +use time::TestExecTime; + +/// Process exit code to be used to indicate test failures. +pub const ERROR_EXIT_CODE: i32 = 101; + +const SECONDARY_TEST_INVOKER_VAR: &str = "__RUST_TEST_INVOKE"; +const SECONDARY_TEST_BENCH_BENCHMARKS_VAR: &str = "__RUST_TEST_BENCH_BENCHMARKS"; + +// The default console test runner. It accepts the command line +// arguments and a vector of test_descs. +pub fn test_main(args: &[String], tests: Vec, options: Option) { + test_main_with_exit_callback(args, tests, options, || {}) +} + +pub fn test_main_with_exit_callback( + args: &[String], + tests: Vec, + options: Option, + exit_callback: F, +) { + let mut opts = match cli::parse_opts(args) { + Some(Ok(o)) => o, + Some(Err(msg)) => { + eprintln!("error: {msg}"); + process::exit(ERROR_EXIT_CODE); + } + None => return, + }; + if let Some(options) = options { + opts.options = options; + } + if opts.list { + if let Err(e) = console::list_tests_console(&opts, tests) { + eprintln!("error: io error when listing tests: {e:?}"); + process::exit(ERROR_EXIT_CODE); + } + } else { + if !opts.nocapture { + // If we encounter a non-unwinding panic, flush any captured output from the current test, + // and stop capturing output to ensure that the non-unwinding panic message is visible. + // We also acquire the locks for both output streams to prevent output from other threads + // from interleaving with the panic message or appearing after it. + let builtin_panic_hook = panic::take_hook(); + let hook = Box::new({ + move |info: &'_ PanicHookInfo<'_>| { + if !info.can_unwind() { + std::mem::forget(std::io::stderr().lock()); + let mut stdout = ManuallyDrop::new(std::io::stdout().lock()); + if let Some(captured) = io::set_output_capture(None) { + if let Ok(data) = captured.lock() { + let _ = stdout.write_all(&data); + let _ = stdout.flush(); + } + } + } + builtin_panic_hook(info); + } + }); + panic::set_hook(hook); + // Use a thread spawning hook to make new threads inherit output capturing. + std::thread::add_spawn_hook(|_| { + // Get and clone the output capture of the current thread. + let output_capture = io::set_output_capture(None); + io::set_output_capture(output_capture.clone()); + // Set the output capture of the new thread. + || { + io::set_output_capture(output_capture); + } + }); + } + let res = console::run_tests_console(&opts, tests); + // Prevent Valgrind from reporting reachable blocks in users' unit tests. + drop(panic::take_hook()); + exit_callback(); + match res { + Ok(true) => {} + Ok(false) => process::exit(ERROR_EXIT_CODE), + Err(e) => { + eprintln!("error: io error when listing tests: {e:?}"); + process::exit(ERROR_EXIT_CODE); + } + } + } +} + +/// A variant optimized for invocation with a static test vector. +/// This will panic (intentionally) when fed any dynamic tests. +/// +/// This is the entry point for the main function generated by `rustc --test` +/// when panic=unwind. +pub fn test_main_static(tests: &[&TestDescAndFn]) { + let args = env::args().collect::>(); + let owned_tests: Vec<_> = tests.iter().map(make_owned_test).collect(); + test_main(&args, owned_tests, None) +} + +/// A variant optimized for invocation with a static test vector. +/// This will panic (intentionally) when fed any dynamic tests. +/// +/// Runs tests in panic=abort mode, which involves spawning subprocesses for +/// tests. +/// +/// This is the entry point for the main function generated by `rustc --test` +/// when panic=abort. +pub fn test_main_static_abort(tests: &[&TestDescAndFn]) { + // If we're being run in SpawnedSecondary mode, run the test here. run_test + // will then exit the process. + if let Ok(name) = env::var(SECONDARY_TEST_INVOKER_VAR) { + unsafe { + env::remove_var(SECONDARY_TEST_INVOKER_VAR); + } + + // Convert benchmarks to tests if we're not benchmarking. + let mut tests = tests.iter().map(make_owned_test).collect::>(); + if env::var(SECONDARY_TEST_BENCH_BENCHMARKS_VAR).is_ok() { + unsafe { + env::remove_var(SECONDARY_TEST_BENCH_BENCHMARKS_VAR); + } + } else { + tests = convert_benchmarks_to_tests(tests); + }; + + let test = tests + .into_iter() + .find(|test| test.desc.name.as_slice() == name) + .unwrap_or_else(|| panic!("couldn't find a test with the provided name '{name}'")); + let TestDescAndFn { desc, testfn } = test; + match testfn.into_runnable() { + Runnable::Test(runnable_test) => { + if runnable_test.is_dynamic() { + panic!("only static tests are supported"); + } + run_test_in_spawned_subprocess(desc, runnable_test); + } + Runnable::Bench(_) => { + panic!("benchmarks should not be executed into child processes") + } + } + } + + let args = env::args().collect::>(); + let owned_tests: Vec<_> = tests.iter().map(make_owned_test).collect(); + test_main(&args, owned_tests, Some(Options::new().panic_abort(true))) +} + +/// Clones static values for putting into a dynamic vector, which test_main() +/// needs to hand out ownership of tests to parallel test runners. +/// +/// This will panic when fed any dynamic tests, because they cannot be cloned. +fn make_owned_test(test: &&TestDescAndFn) -> TestDescAndFn { + match test.testfn { + StaticTestFn(f) => TestDescAndFn { testfn: StaticTestFn(f), desc: test.desc.clone() }, + StaticBenchFn(f) => TestDescAndFn { testfn: StaticBenchFn(f), desc: test.desc.clone() }, + _ => panic!("non-static tests passed to test::test_main_static"), + } +} + +/// Public API used by rustdoc to display the `total` and `compilation` times in the expected +/// format. +pub fn print_merged_doctests_times(args: &[String], total_time: f64, compilation_time: f64) { + let opts = match cli::parse_opts(args) { + Some(Ok(o)) => o, + Some(Err(msg)) => { + eprintln!("error: {msg}"); + process::exit(ERROR_EXIT_CODE); + } + None => return, + }; + let mut formatter = console::get_formatter(&opts, 0); + formatter.write_merged_doctests_times(total_time, compilation_time).unwrap(); +} + +/// Invoked when unit tests terminate. Returns `Result::Err` if the test is +/// considered a failure. By default, invokes `report()` and checks for a `0` +/// result. +pub fn assert_test_result(result: T) -> Result<(), String> { + let code = result.report().to_i32(); + if code == 0 { + Ok(()) + } else { + Err(format!( + "the test returned a termination value with a non-zero status code \ + ({code}) which indicates a failure" + )) + } +} + +struct FilteredTests { + tests: Vec<(TestId, TestDescAndFn)>, + benches: Vec<(TestId, TestDescAndFn)>, + next_id: usize, +} + +impl FilteredTests { + fn add_bench(&mut self, desc: TestDesc, testfn: TestFn) { + let test = TestDescAndFn { desc, testfn }; + self.benches.push((TestId(self.next_id), test)); + self.next_id += 1; + } + fn add_test(&mut self, desc: TestDesc, testfn: TestFn) { + let test = TestDescAndFn { desc, testfn }; + self.tests.push((TestId(self.next_id), test)); + self.next_id += 1; + } + fn total_len(&self) -> usize { + self.tests.len() + self.benches.len() + } +} + +pub fn run_tests( + opts: &TestOpts, + tests: Vec, + mut notify_about_test_event: F, +) -> io::Result<()> +where + F: FnMut(TestEvent) -> io::Result<()>, +{ + use std::collections::HashMap; + use std::hash::{BuildHasherDefault, DefaultHasher}; + use std::sync::mpsc::RecvTimeoutError; + + struct RunningTest { + join_handle: Option>, + } + + impl RunningTest { + fn join(self, completed_test: &mut CompletedTest) { + if let Some(join_handle) = self.join_handle { + if let Err(_) = join_handle.join() { + if let TrOk = completed_test.result { + completed_test.result = + TrFailedMsg("panicked after reporting success".to_string()); + } + } + } + } + } + + // Use a deterministic hasher + type TestMap = HashMap>; + + struct TimeoutEntry { + id: TestId, + desc: TestDesc, + timeout: Instant, + } + + let tests_len = tests.len(); + + let mut filtered = FilteredTests { tests: Vec::new(), benches: Vec::new(), next_id: 0 }; + + let mut filtered_tests = filter_tests(opts, tests); + if !opts.bench_benchmarks { + filtered_tests = convert_benchmarks_to_tests(filtered_tests); + } + + for test in filtered_tests { + let mut desc = test.desc; + desc.name = desc.name.with_padding(test.testfn.padding()); + + match test.testfn { + DynBenchFn(_) | StaticBenchFn(_) => { + filtered.add_bench(desc, test.testfn); + } + testfn => { + filtered.add_test(desc, testfn); + } + }; + } + + let filtered_out = tests_len - filtered.total_len(); + let event = TestEvent::TeFilteredOut(filtered_out); + notify_about_test_event(event)?; + + let shuffle_seed = get_shuffle_seed(opts); + + let event = TestEvent::TeFiltered(filtered.total_len(), shuffle_seed); + notify_about_test_event(event)?; + + let concurrency = opts.test_threads.unwrap_or_else(get_concurrency); + + let mut remaining = filtered.tests; + if let Some(shuffle_seed) = shuffle_seed { + shuffle_tests(shuffle_seed, &mut remaining); + } + // Store the tests in a VecDeque so we can efficiently remove the first element to run the + // tests in the order they were passed (unless shuffled). + let mut remaining = VecDeque::from(remaining); + let mut pending = 0; + + let (tx, rx) = channel::(); + let run_strategy = if opts.options.panic_abort && !opts.force_run_in_process { + RunStrategy::SpawnPrimary + } else { + RunStrategy::InProcess + }; + + let mut running_tests: TestMap = HashMap::default(); + let mut timeout_queue: VecDeque = VecDeque::new(); + + fn get_timed_out_tests( + running_tests: &TestMap, + timeout_queue: &mut VecDeque, + ) -> Vec { + let now = Instant::now(); + let mut timed_out = Vec::new(); + while let Some(timeout_entry) = timeout_queue.front() { + if now < timeout_entry.timeout { + break; + } + let timeout_entry = timeout_queue.pop_front().unwrap(); + if running_tests.contains_key(&timeout_entry.id) { + timed_out.push(timeout_entry.desc); + } + } + timed_out + } + + fn calc_timeout(timeout_queue: &VecDeque) -> Option { + timeout_queue.front().map(|&TimeoutEntry { timeout: next_timeout, .. }| { + let now = Instant::now(); + if next_timeout >= now { next_timeout - now } else { Duration::new(0, 0) } + }) + } + + if concurrency == 1 { + while !remaining.is_empty() { + let (id, test) = remaining.pop_front().unwrap(); + let event = TestEvent::TeWait(test.desc.clone()); + notify_about_test_event(event)?; + let join_handle = run_test(opts, !opts.run_tests, id, test, run_strategy, tx.clone()); + // Wait for the test to complete. + let mut completed_test = rx.recv().unwrap(); + RunningTest { join_handle }.join(&mut completed_test); + + let fail_fast = match completed_test.result { + TrIgnored | TrOk | TrBench(_) => false, + TrFailed | TrFailedMsg(_) | TrTimedFail => opts.fail_fast, + }; + + let event = TestEvent::TeResult(completed_test); + notify_about_test_event(event)?; + + if fail_fast { + return Ok(()); + } + } + } else { + while pending > 0 || !remaining.is_empty() { + while pending < concurrency && !remaining.is_empty() { + let (id, test) = remaining.pop_front().unwrap(); + let timeout = time::get_default_test_timeout(); + let desc = test.desc.clone(); + + let event = TestEvent::TeWait(desc.clone()); + notify_about_test_event(event)?; //here no pad + let join_handle = + run_test(opts, !opts.run_tests, id, test, run_strategy, tx.clone()); + running_tests.insert(id, RunningTest { join_handle }); + timeout_queue.push_back(TimeoutEntry { id, desc, timeout }); + pending += 1; + } + + let mut res; + loop { + if let Some(timeout) = calc_timeout(&timeout_queue) { + res = rx.recv_timeout(timeout); + for test in get_timed_out_tests(&running_tests, &mut timeout_queue) { + let event = TestEvent::TeTimeout(test); + notify_about_test_event(event)?; + } + + match res { + Err(RecvTimeoutError::Timeout) => { + // Result is not yet ready, continue waiting. + } + _ => { + // We've got a result, stop the loop. + break; + } + } + } else { + res = rx.recv().map_err(|_| RecvTimeoutError::Disconnected); + break; + } + } + + let mut completed_test = res.unwrap(); + let running_test = running_tests.remove(&completed_test.id).unwrap(); + running_test.join(&mut completed_test); + + let fail_fast = match completed_test.result { + TrIgnored | TrOk | TrBench(_) => false, + TrFailed | TrFailedMsg(_) | TrTimedFail => opts.fail_fast, + }; + + let event = TestEvent::TeResult(completed_test); + notify_about_test_event(event)?; + pending -= 1; + + if fail_fast { + // Prevent remaining test threads from panicking + std::mem::forget(rx); + return Ok(()); + } + } + } + + if opts.bench_benchmarks { + // All benchmarks run at the end, in serial. + for (id, b) in filtered.benches { + let event = TestEvent::TeWait(b.desc.clone()); + notify_about_test_event(event)?; + let join_handle = run_test(opts, false, id, b, run_strategy, tx.clone()); + // Wait for the test to complete. + let mut completed_test = rx.recv().unwrap(); + RunningTest { join_handle }.join(&mut completed_test); + + let event = TestEvent::TeResult(completed_test); + notify_about_test_event(event)?; + } + } + Ok(()) +} + +pub fn filter_tests(opts: &TestOpts, tests: Vec) -> Vec { + let mut filtered = tests; + let matches_filter = |test: &TestDescAndFn, filter: &str| { + let test_name = test.desc.name.as_slice(); + + match opts.filter_exact { + true => test_name == filter, + false => test_name.contains(filter), + } + }; + + // Remove tests that don't match the test filter + if !opts.filters.is_empty() { + filtered.retain(|test| opts.filters.iter().any(|filter| matches_filter(test, filter))); + } + + // Skip tests that match any of the skip filters + if !opts.skip.is_empty() { + filtered.retain(|test| !opts.skip.iter().any(|sf| matches_filter(test, sf))); + } + + // Excludes #[should_panic] tests + if opts.exclude_should_panic { + filtered.retain(|test| test.desc.should_panic == ShouldPanic::No); + } + + // maybe unignore tests + match opts.run_ignored { + RunIgnored::Yes => { + filtered.iter_mut().for_each(|test| test.desc.ignore = false); + } + RunIgnored::Only => { + filtered.retain(|test| test.desc.ignore); + filtered.iter_mut().for_each(|test| test.desc.ignore = false); + } + RunIgnored::No => {} + } + + filtered +} + +pub fn convert_benchmarks_to_tests(tests: Vec) -> Vec { + // convert benchmarks to tests, if we're not benchmarking them + tests + .into_iter() + .map(|x| { + let testfn = match x.testfn { + DynBenchFn(benchfn) => DynBenchAsTestFn(benchfn), + StaticBenchFn(benchfn) => StaticBenchAsTestFn(benchfn), + f => f, + }; + TestDescAndFn { desc: x.desc, testfn } + }) + .collect() +} + +pub fn run_test( + opts: &TestOpts, + force_ignore: bool, + id: TestId, + test: TestDescAndFn, + strategy: RunStrategy, + monitor_ch: Sender, +) -> Option> { + let TestDescAndFn { desc, testfn } = test; + + // Emscripten can catch panics but other wasm targets cannot + let ignore_because_no_process_support = desc.should_panic != ShouldPanic::No + && (cfg!(target_family = "wasm") || cfg!(target_os = "zkvm")) + && !cfg!(target_os = "emscripten"); + + if force_ignore || desc.ignore || ignore_because_no_process_support { + let message = CompletedTest::new(id, desc, TrIgnored, None, Vec::new()); + monitor_ch.send(message).unwrap(); + return None; + } + + match testfn.into_runnable() { + Runnable::Test(runnable_test) => { + if runnable_test.is_dynamic() { + match strategy { + RunStrategy::InProcess => (), + _ => panic!("Cannot run dynamic test fn out-of-process"), + }; + } + + let name = desc.name.clone(); + let nocapture = opts.nocapture; + let time_options = opts.time_options; + let bench_benchmarks = opts.bench_benchmarks; + + let runtest = move || match strategy { + RunStrategy::InProcess => run_test_in_process( + id, + desc, + nocapture, + time_options.is_some(), + runnable_test, + monitor_ch, + time_options, + ), + RunStrategy::SpawnPrimary => spawn_test_subprocess( + id, + desc, + nocapture, + time_options.is_some(), + monitor_ch, + time_options, + bench_benchmarks, + ), + }; + + // If the platform is single-threaded we're just going to run + // the test synchronously, regardless of the concurrency + // level. + let supports_threads = !cfg!(target_os = "emscripten") + && !cfg!(target_family = "wasm") + && !cfg!(target_os = "zkvm"); + if supports_threads { + let cfg = thread::Builder::new().name(name.as_slice().to_owned()); + let mut runtest = Arc::new(Mutex::new(Some(runtest))); + let runtest2 = runtest.clone(); + match cfg.spawn(move || runtest2.lock().unwrap().take().unwrap()()) { + Ok(handle) => Some(handle), + Err(e) if e.kind() == io::ErrorKind::WouldBlock => { + // `ErrorKind::WouldBlock` means hitting the thread limit on some + // platforms, so run the test synchronously here instead. + Arc::get_mut(&mut runtest).unwrap().get_mut().unwrap().take().unwrap()(); + None + } + Err(e) => panic!("failed to spawn thread to run test: {e}"), + } + } else { + runtest(); + None + } + } + Runnable::Bench(runnable_bench) => { + // Benchmarks aren't expected to panic, so we run them all in-process. + runnable_bench.run(id, &desc, &monitor_ch, opts.nocapture); + None + } + } +} + +/// Fixed frame used to clean the backtrace with `RUST_BACKTRACE=1`. +#[inline(never)] +fn __rust_begin_short_backtrace T>(f: F) -> T { + let result = f(); + + // prevent this frame from being tail-call optimised away + black_box(result) +} + +fn run_test_in_process( + id: TestId, + desc: TestDesc, + nocapture: bool, + report_time: bool, + runnable_test: RunnableTest, + monitor_ch: Sender, + time_opts: Option, +) { + // Buffer for capturing standard I/O + let data = Arc::new(Mutex::new(Vec::new())); + + if !nocapture { + io::set_output_capture(Some(data.clone())); + } + + let start = report_time.then(Instant::now); + let result = fold_err(catch_unwind(AssertUnwindSafe(|| runnable_test.run()))); + let exec_time = start.map(|start| { + let duration = start.elapsed(); + TestExecTime(duration) + }); + + io::set_output_capture(None); + + // Determine whether the test passed or failed, by comparing its panic + // payload (if any) with its `ShouldPanic` value, and by checking for + // fatal timeout. + let test_result = + calc_result(&desc, result.err().as_deref(), time_opts.as_ref(), exec_time.as_ref()); + let stdout = data.lock().unwrap_or_else(|e| e.into_inner()).to_vec(); + let message = CompletedTest::new(id, desc, test_result, exec_time, stdout); + monitor_ch.send(message).unwrap(); +} + +fn fold_err( + result: Result, Box>, +) -> Result> +where + E: Send + 'static, +{ + match result { + Ok(Err(e)) => Err(Box::new(e)), + Ok(Ok(v)) => Ok(v), + Err(e) => Err(e), + } +} + +fn spawn_test_subprocess( + id: TestId, + desc: TestDesc, + nocapture: bool, + report_time: bool, + monitor_ch: Sender, + time_opts: Option, + bench_benchmarks: bool, +) { + let (result, test_output, exec_time) = (|| { + let args = env::args().collect::>(); + let current_exe = &args[0]; + + let mut command = Command::new(current_exe); + command.env(SECONDARY_TEST_INVOKER_VAR, desc.name.as_slice()); + if bench_benchmarks { + command.env(SECONDARY_TEST_BENCH_BENCHMARKS_VAR, "1"); + } + if nocapture { + command.stdout(process::Stdio::inherit()); + command.stderr(process::Stdio::inherit()); + } + + let start = report_time.then(Instant::now); + let output = match command.output() { + Ok(out) => out, + Err(e) => { + let err = format!("Failed to spawn {} as child for test: {:?}", args[0], e); + return (TrFailed, err.into_bytes(), None); + } + }; + let exec_time = start.map(|start| { + let duration = start.elapsed(); + TestExecTime(duration) + }); + + let std::process::Output { stdout, stderr, status } = output; + let mut test_output = stdout; + formatters::write_stderr_delimiter(&mut test_output, &desc.name); + test_output.extend_from_slice(&stderr); + + let result = + get_result_from_exit_code(&desc, status, time_opts.as_ref(), exec_time.as_ref()); + (result, test_output, exec_time) + })(); + + let message = CompletedTest::new(id, desc, result, exec_time, test_output); + monitor_ch.send(message).unwrap(); +} + +fn run_test_in_spawned_subprocess(desc: TestDesc, runnable_test: RunnableTest) -> ! { + let builtin_panic_hook = panic::take_hook(); + let record_result = Arc::new(move |panic_info: Option<&'_ PanicHookInfo<'_>>| { + let test_result = calc_result(&desc, panic_info.map(|info| info.payload()), None, None); + + // We don't support serializing TrFailedMsg, so just + // print the message out to stderr. + if let TrFailedMsg(msg) = &test_result { + eprintln!("{msg}"); + } + + if let Some(info) = panic_info { + builtin_panic_hook(info); + } + + if let TrOk = test_result { + process::exit(test_result::TR_OK); + } else { + process::abort(); + } + }); + let record_result2 = record_result.clone(); + panic::set_hook(Box::new(move |info| record_result2(Some(info)))); + if let Err(message) = runnable_test.run() { + panic!("{}", message); + } + record_result(None); + unreachable!("panic=abort callback should have exited the process") +} diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/test/src/options.rs b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/test/src/options.rs new file mode 100644 index 0000000000000000000000000000000000000000..7a5c55f4e2411261d468a2fe9b1de3ef8d0e22b8 --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/test/src/options.rs @@ -0,0 +1,84 @@ +//! Enums denoting options for test execution. + +/// Number of times to run a benchmarked function +#[derive(Clone, PartialEq, Eq)] +pub(crate) enum BenchMode { + Auto, + Single, +} + +/// Whether test is expected to panic or not +#[derive(Copy, Clone, Debug, PartialEq, Eq, Hash)] +pub enum ShouldPanic { + No, + Yes, + YesWithMessage(&'static str), +} + +/// Whether should console output be colored or not +#[derive(Copy, Clone, Default, Debug)] +pub enum ColorConfig { + #[default] + AutoColor, + AlwaysColor, + NeverColor, +} + +/// Format of the test results output +#[derive(Copy, Clone, Debug, Default, PartialEq, Eq)] +pub enum OutputFormat { + /// Verbose output + Pretty, + /// Quiet output + #[default] + Terse, + /// JSON output + Json, + /// JUnit output + Junit, +} + +/// Whether ignored test should be run or not +#[derive(Copy, Clone, Debug, PartialEq, Eq)] +pub enum RunIgnored { + Yes, + No, + /// Run only ignored tests + Only, +} + +#[derive(Clone, Copy)] +pub enum RunStrategy { + /// Runs the test in the current process, and sends the result back over the + /// supplied channel. + InProcess, + + /// Spawns a subprocess to run the test, and sends the result back over the + /// supplied channel. Requires `argv[0]` to exist and point to the binary + /// that's currently running. + SpawnPrimary, +} + +/// Options for the test run defined by the caller (instead of CLI arguments). +/// In case we want to add other options as well, just add them in this struct. +#[derive(Copy, Clone, Debug)] +pub struct Options { + pub display_output: bool, + pub panic_abort: bool, +} + +impl Options { + pub fn new() -> Options { + Options { display_output: false, panic_abort: false } + } + + pub fn display_output(mut self, display_output: bool) -> Options { + self.display_output = display_output; + self + } + + pub fn panic_abort(mut self, panic_abort: bool) -> Options { + self.panic_abort = panic_abort; + self + } +} diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/test/src/stats.rs b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/test/src/stats.rs new file mode 100644 index 0000000000000000000000000000000000000000..71c944afde8d65c01fb1288335de03857cc4b10f --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/test/src/stats.rs @@ -0,0 +1,302 @@ +#![allow(missing_docs)] + +use std::mem; + +#[cfg(test)] +mod tests; + +fn local_sort(v: &mut [f64]) { + v.sort_by(|x: &f64, y: &f64| x.total_cmp(y)); +} + +/// Trait that provides simple descriptive statistics on a univariate set of numeric samples. +pub trait Stats { + /// Sum of the samples. + /// + /// Note: this method sacrifices performance at the altar of accuracy + /// Depends on IEEE 754 arithmetic guarantees. See proof of correctness at: + /// ["Adaptive Precision Floating-Point Arithmetic and Fast Robust Geometric + /// Predicates"][paper] + /// + /// [paper]: https://www.cs.cmu.edu/~quake-papers/robust-arithmetic.ps + fn sum(&self) -> f64; + + /// Minimum value of the samples. + fn min(&self) -> f64; + + /// Maximum value of the samples. + fn max(&self) -> f64; + + /// Arithmetic mean (average) of the samples: sum divided by sample-count. + /// + /// See: + fn mean(&self) -> f64; + + /// Median of the samples: value separating the lower half of the samples from the higher half. + /// Equal to `self.percentile(50.0)`. + /// + /// See: + fn median(&self) -> f64; + + /// Variance of the samples: bias-corrected mean of the squares of the differences of each + /// sample from the sample mean. Note that this calculates the _sample variance_ rather than the + /// population variance, which is assumed to be unknown. It therefore corrects the `(n-1)/n` + /// bias that would appear if we calculated a population variance, by dividing by `(n-1)` rather + /// than `n`. + /// + /// See: + fn var(&self) -> f64; + + /// Standard deviation: the square root of the sample variance. + /// + /// Note: this is not a robust statistic for non-normal distributions. Prefer the + /// `median_abs_dev` for unknown distributions. + /// + /// See: + fn std_dev(&self) -> f64; + + /// Standard deviation as a percent of the mean value. See `std_dev` and `mean`. + /// + /// Note: this is not a robust statistic for non-normal distributions. Prefer the + /// `median_abs_dev_pct` for unknown distributions. + fn std_dev_pct(&self) -> f64; + + /// Scaled median of the absolute deviations of each sample from the sample median. This is a + /// robust (distribution-agnostic) estimator of sample variability. Use this in preference to + /// `std_dev` if you cannot assume your sample is normally distributed. Note that this is scaled + /// by the constant `1.4826` to allow its use as a consistent estimator for the standard + /// deviation. + /// + /// See: + fn median_abs_dev(&self) -> f64; + + /// Median absolute deviation as a percent of the median. See `median_abs_dev` and `median`. + fn median_abs_dev_pct(&self) -> f64; + + /// Percentile: the value below which `pct` percent of the values in `self` fall. For example, + /// percentile(95.0) will return the value `v` such that 95% of the samples `s` in `self` + /// satisfy `s <= v`. + /// + /// Calculated by linear interpolation between closest ranks. + /// + /// See: + fn percentile(&self, pct: f64) -> f64; + + /// Quartiles of the sample: three values that divide the sample into four equal groups, each + /// with 1/4 of the data. The middle value is the median. See `median` and `percentile`. This + /// function may calculate the 3 quartiles more efficiently than 3 calls to `percentile`, but + /// is otherwise equivalent. + /// + /// See also: + fn quartiles(&self) -> (f64, f64, f64); + + /// Inter-quartile range: the difference between the 25th percentile (1st quartile) and the 75th + /// percentile (3rd quartile). See `quartiles`. + /// + /// See also: + fn iqr(&self) -> f64; +} + +/// Extracted collection of all the summary statistics of a sample set. +#[derive(Debug, Clone, PartialEq, Copy)] +#[allow(missing_docs)] +pub struct Summary { + pub sum: f64, + pub min: f64, + pub max: f64, + pub mean: f64, + pub median: f64, + pub var: f64, + pub std_dev: f64, + pub std_dev_pct: f64, + pub median_abs_dev: f64, + pub median_abs_dev_pct: f64, + pub quartiles: (f64, f64, f64), + pub iqr: f64, +} + +impl Summary { + /// Constructs a new summary of a sample set. + pub fn new(samples: &[f64]) -> Summary { + Summary { + sum: samples.sum(), + min: samples.min(), + max: samples.max(), + mean: samples.mean(), + median: samples.median(), + var: samples.var(), + std_dev: samples.std_dev(), + std_dev_pct: samples.std_dev_pct(), + median_abs_dev: samples.median_abs_dev(), + median_abs_dev_pct: samples.median_abs_dev_pct(), + quartiles: samples.quartiles(), + iqr: samples.iqr(), + } + } +} + +impl Stats for [f64] { + // FIXME #11059 handle NaN, inf and overflow + fn sum(&self) -> f64 { + let mut partials = vec![]; + + for &x in self { + let mut x = x; + let mut j = 0; + // This inner loop applies `hi`/`lo` summation to each + // partial so that the list of partial sums remains exact. + for i in 0..partials.len() { + let mut y: f64 = partials[i]; + if x.abs() < y.abs() { + mem::swap(&mut x, &mut y); + } + // Rounded `x+y` is stored in `hi` with round-off stored in + // `lo`. Together `hi+lo` are exactly equal to `x+y`. + let hi = x + y; + let lo = y - (hi - x); + if lo != 0.0 { + partials[j] = lo; + j += 1; + } + x = hi; + } + if j >= partials.len() { + partials.push(x); + } else { + partials[j] = x; + partials.truncate(j + 1); + } + } + let zero: f64 = 0.0; + partials.iter().fold(zero, |p, q| p + *q) + } + + fn min(&self) -> f64 { + assert!(!self.is_empty()); + self.iter().fold(self[0], |p, q| p.min(*q)) + } + + fn max(&self) -> f64 { + assert!(!self.is_empty()); + self.iter().fold(self[0], |p, q| p.max(*q)) + } + + fn mean(&self) -> f64 { + assert!(!self.is_empty()); + self.sum() / (self.len() as f64) + } + + fn median(&self) -> f64 { + self.percentile(50_f64) + } + + fn var(&self) -> f64 { + if self.len() < 2 { + 0.0 + } else { + let mean = self.mean(); + let mut v: f64 = 0.0; + for s in self { + let x = *s - mean; + v += x * x; + } + // N.B., this is _supposed to be_ len-1, not len. If you + // change it back to len, you will be calculating a + // population variance, not a sample variance. + let denom = (self.len() - 1) as f64; + v / denom + } + } + + fn std_dev(&self) -> f64 { + self.var().sqrt() + } + + fn std_dev_pct(&self) -> f64 { + let hundred = 100_f64; + (self.std_dev() / self.mean()) * hundred + } + + fn median_abs_dev(&self) -> f64 { + let med = self.median(); + let abs_devs: Vec = self.iter().map(|&v| (med - v).abs()).collect(); + // This constant is derived by smarter statistics brains than me, but it is + // consistent with how R and other packages treat the MAD. + let number = 1.4826; + abs_devs.median() * number + } + + fn median_abs_dev_pct(&self) -> f64 { + let hundred = 100_f64; + (self.median_abs_dev() / self.median()) * hundred + } + + fn percentile(&self, pct: f64) -> f64 { + let mut tmp = self.to_vec(); + local_sort(&mut tmp); + percentile_of_sorted(&tmp, pct) + } + + fn quartiles(&self) -> (f64, f64, f64) { + let mut tmp = self.to_vec(); + local_sort(&mut tmp); + let first = 25_f64; + let a = percentile_of_sorted(&tmp, first); + let second = 50_f64; + let b = percentile_of_sorted(&tmp, second); + let third = 75_f64; + let c = percentile_of_sorted(&tmp, third); + (a, b, c) + } + + fn iqr(&self) -> f64 { + let (a, _, c) = self.quartiles(); + c - a + } +} + +// Helper function: extract a value representing the `pct` percentile of a sorted sample-set, using +// linear interpolation. If samples are not sorted, return nonsensical value. +fn percentile_of_sorted(sorted_samples: &[f64], pct: f64) -> f64 { + assert!(!sorted_samples.is_empty()); + if sorted_samples.len() == 1 { + return sorted_samples[0]; + } + let zero: f64 = 0.0; + assert!(zero <= pct); + let hundred = 100_f64; + assert!(pct <= hundred); + if pct == hundred { + return sorted_samples[sorted_samples.len() - 1]; + } + let length = (sorted_samples.len() - 1) as f64; + let rank = (pct / hundred) * length; + let lrank = rank.floor(); + let d = rank - lrank; + let n = lrank as usize; + let lo = sorted_samples[n]; + let hi = sorted_samples[n + 1]; + lo + (hi - lo) * d +} + +/// Winsorize a set of samples, replacing values above the `100-pct` percentile +/// and below the `pct` percentile with those percentiles themselves. This is a +/// way of minimizing the effect of outliers, at the cost of biasing the sample. +/// It differs from trimming in that it does not change the number of samples, +/// just changes the values of those that are outliers. +/// +/// See: +pub fn winsorize(samples: &mut [f64], pct: f64) { + let mut tmp = samples.to_vec(); + local_sort(&mut tmp); + let lo = percentile_of_sorted(&tmp, pct); + let hundred = 100_f64; + let hi = percentile_of_sorted(&tmp, hundred - pct); + for samp in samples { + if *samp > hi { + *samp = hi + } else if *samp < lo { + *samp = lo + } + } +} diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/test/src/stats/tests.rs b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/test/src/stats/tests.rs new file mode 100644 index 0000000000000000000000000000000000000000..7804ddc929132d47e4748bdbd6e04957b0667e25 --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/test/src/stats/tests.rs @@ -0,0 +1,592 @@ +use super::*; + +extern crate test; +use std::io; +use std::io::prelude::*; + +use self::test::test::Bencher; + +// Test vectors generated from R, using the script src/etc/stat-test-vectors.r. + +macro_rules! assert_approx_eq { + ($a: expr, $b: expr) => {{ + let (a, b) = (&$a, &$b); + assert!((*a - *b).abs() < 1.0e-6, "{} is not approximately equal to {}", *a, *b); + }}; +} + +fn check(samples: &[f64], summ: &Summary) { + let summ2 = Summary::new(samples); + + let mut w = io::sink(); + let w = &mut w; + (write!(w, "\n")).unwrap(); + + assert_eq!(summ.sum, summ2.sum); + assert_eq!(summ.min, summ2.min); + assert_eq!(summ.max, summ2.max); + assert_eq!(summ.mean, summ2.mean); + assert_eq!(summ.median, summ2.median); + + // We needed a few more digits to get exact equality on these + // but they're within float epsilon, which is 1.0e-6. + assert_approx_eq!(summ.var, summ2.var); + assert_approx_eq!(summ.std_dev, summ2.std_dev); + assert_approx_eq!(summ.std_dev_pct, summ2.std_dev_pct); + assert_approx_eq!(summ.median_abs_dev, summ2.median_abs_dev); + assert_approx_eq!(summ.median_abs_dev_pct, summ2.median_abs_dev_pct); + + assert_eq!(summ.quartiles, summ2.quartiles); + assert_eq!(summ.iqr, summ2.iqr); +} + +#[test] +fn test_min_max_nan() { + let xs = &[1.0, 2.0, f64::NAN, 3.0, 4.0]; + let summary = Summary::new(xs); + assert_eq!(summary.min, 1.0); + assert_eq!(summary.max, 4.0); +} + +#[test] +fn test_norm2() { + let val = &[958.0000000000, 924.0000000000]; + let summ = &Summary { + sum: 1882.0000000000, + min: 924.0000000000, + max: 958.0000000000, + mean: 941.0000000000, + median: 941.0000000000, + var: 578.0000000000, + std_dev: 24.0416305603, + std_dev_pct: 2.5549022912, + median_abs_dev: 25.2042000000, + median_abs_dev_pct: 2.6784484591, + quartiles: (932.5000000000, 941.0000000000, 949.5000000000), + iqr: 17.0000000000, + }; + check(val, summ); +} +#[test] +fn test_norm10narrow() { + let val = &[ + 966.0000000000, + 985.0000000000, + 1110.0000000000, + 848.0000000000, + 821.0000000000, + 975.0000000000, + 962.0000000000, + 1157.0000000000, + 1217.0000000000, + 955.0000000000, + ]; + let summ = &Summary { + sum: 9996.0000000000, + min: 821.0000000000, + max: 1217.0000000000, + mean: 999.6000000000, + median: 970.5000000000, + var: 16050.7111111111, + std_dev: 126.6914010938, + std_dev_pct: 12.6742097933, + median_abs_dev: 102.2994000000, + median_abs_dev_pct: 10.5408964451, + quartiles: (956.7500000000, 970.5000000000, 1078.7500000000), + iqr: 122.0000000000, + }; + check(val, summ); +} +#[test] +fn test_norm10medium() { + let val = &[ + 954.0000000000, + 1064.0000000000, + 855.0000000000, + 1000.0000000000, + 743.0000000000, + 1084.0000000000, + 704.0000000000, + 1023.0000000000, + 357.0000000000, + 869.0000000000, + ]; + let summ = &Summary { + sum: 8653.0000000000, + min: 357.0000000000, + max: 1084.0000000000, + mean: 865.3000000000, + median: 911.5000000000, + var: 48628.4555555556, + std_dev: 220.5186059170, + std_dev_pct: 25.4846418487, + median_abs_dev: 195.7032000000, + median_abs_dev_pct: 21.4704552935, + quartiles: (771.0000000000, 911.5000000000, 1017.2500000000), + iqr: 246.2500000000, + }; + check(val, summ); +} +#[test] +fn test_norm10wide() { + let val = &[ + 505.0000000000, + 497.0000000000, + 1591.0000000000, + 887.0000000000, + 1026.0000000000, + 136.0000000000, + 1580.0000000000, + 940.0000000000, + 754.0000000000, + 1433.0000000000, + ]; + let summ = &Summary { + sum: 9349.0000000000, + min: 136.0000000000, + max: 1591.0000000000, + mean: 934.9000000000, + median: 913.5000000000, + var: 239208.9888888889, + std_dev: 489.0899599142, + std_dev_pct: 52.3146817750, + median_abs_dev: 611.5725000000, + median_abs_dev_pct: 66.9482758621, + quartiles: (567.2500000000, 913.5000000000, 1331.2500000000), + iqr: 764.0000000000, + }; + check(val, summ); +} +#[test] +fn test_norm25verynarrow() { + let val = &[ + 991.0000000000, + 1018.0000000000, + 998.0000000000, + 1013.0000000000, + 974.0000000000, + 1007.0000000000, + 1014.0000000000, + 999.0000000000, + 1011.0000000000, + 978.0000000000, + 985.0000000000, + 999.0000000000, + 983.0000000000, + 982.0000000000, + 1015.0000000000, + 1002.0000000000, + 977.0000000000, + 948.0000000000, + 1040.0000000000, + 974.0000000000, + 996.0000000000, + 989.0000000000, + 1015.0000000000, + 994.0000000000, + 1024.0000000000, + ]; + let summ = &Summary { + sum: 24926.0000000000, + min: 948.0000000000, + max: 1040.0000000000, + mean: 997.0400000000, + median: 998.0000000000, + var: 393.2066666667, + std_dev: 19.8294393937, + std_dev_pct: 1.9888308788, + median_abs_dev: 22.2390000000, + median_abs_dev_pct: 2.2283567134, + quartiles: (983.0000000000, 998.0000000000, 1013.0000000000), + iqr: 30.0000000000, + }; + check(val, summ); +} +#[test] +fn test_exp10a() { + let val = &[ + 23.0000000000, + 11.0000000000, + 2.0000000000, + 57.0000000000, + 4.0000000000, + 12.0000000000, + 5.0000000000, + 29.0000000000, + 3.0000000000, + 21.0000000000, + ]; + let summ = &Summary { + sum: 167.0000000000, + min: 2.0000000000, + max: 57.0000000000, + mean: 16.7000000000, + median: 11.5000000000, + var: 287.7888888889, + std_dev: 16.9643416875, + std_dev_pct: 101.5828843560, + median_abs_dev: 13.3434000000, + median_abs_dev_pct: 116.0295652174, + quartiles: (4.2500000000, 11.5000000000, 22.5000000000), + iqr: 18.2500000000, + }; + check(val, summ); +} +#[test] +fn test_exp10b() { + let val = &[ + 24.0000000000, + 17.0000000000, + 6.0000000000, + 38.0000000000, + 25.0000000000, + 7.0000000000, + 51.0000000000, + 2.0000000000, + 61.0000000000, + 32.0000000000, + ]; + let summ = &Summary { + sum: 263.0000000000, + min: 2.0000000000, + max: 61.0000000000, + mean: 26.3000000000, + median: 24.5000000000, + var: 383.5666666667, + std_dev: 19.5848580967, + std_dev_pct: 74.4671410520, + median_abs_dev: 22.9803000000, + median_abs_dev_pct: 93.7971428571, + quartiles: (9.5000000000, 24.5000000000, 36.5000000000), + iqr: 27.0000000000, + }; + check(val, summ); +} +#[test] +fn test_exp10c() { + let val = &[ + 71.0000000000, + 2.0000000000, + 32.0000000000, + 1.0000000000, + 6.0000000000, + 28.0000000000, + 13.0000000000, + 37.0000000000, + 16.0000000000, + 36.0000000000, + ]; + let summ = &Summary { + sum: 242.0000000000, + min: 1.0000000000, + max: 71.0000000000, + mean: 24.2000000000, + median: 22.0000000000, + var: 458.1777777778, + std_dev: 21.4050876611, + std_dev_pct: 88.4507754589, + median_abs_dev: 21.4977000000, + median_abs_dev_pct: 97.7168181818, + quartiles: (7.7500000000, 22.0000000000, 35.0000000000), + iqr: 27.2500000000, + }; + check(val, summ); +} +#[test] +fn test_exp25() { + let val = &[ + 3.0000000000, + 24.0000000000, + 1.0000000000, + 19.0000000000, + 7.0000000000, + 5.0000000000, + 30.0000000000, + 39.0000000000, + 31.0000000000, + 13.0000000000, + 25.0000000000, + 48.0000000000, + 1.0000000000, + 6.0000000000, + 42.0000000000, + 63.0000000000, + 2.0000000000, + 12.0000000000, + 108.0000000000, + 26.0000000000, + 1.0000000000, + 7.0000000000, + 44.0000000000, + 25.0000000000, + 11.0000000000, + ]; + let summ = &Summary { + sum: 593.0000000000, + min: 1.0000000000, + max: 108.0000000000, + mean: 23.7200000000, + median: 19.0000000000, + var: 601.0433333333, + std_dev: 24.5161851301, + std_dev_pct: 103.3565983562, + median_abs_dev: 19.2738000000, + median_abs_dev_pct: 101.4410526316, + quartiles: (6.0000000000, 19.0000000000, 31.0000000000), + iqr: 25.0000000000, + }; + check(val, summ); +} +#[test] +fn test_binom25() { + let val = &[ + 18.0000000000, + 17.0000000000, + 27.0000000000, + 15.0000000000, + 21.0000000000, + 25.0000000000, + 17.0000000000, + 24.0000000000, + 25.0000000000, + 24.0000000000, + 26.0000000000, + 26.0000000000, + 23.0000000000, + 15.0000000000, + 23.0000000000, + 17.0000000000, + 18.0000000000, + 18.0000000000, + 21.0000000000, + 16.0000000000, + 15.0000000000, + 31.0000000000, + 20.0000000000, + 17.0000000000, + 15.0000000000, + ]; + let summ = &Summary { + sum: 514.0000000000, + min: 15.0000000000, + max: 31.0000000000, + mean: 20.5600000000, + median: 20.0000000000, + var: 20.8400000000, + std_dev: 4.5650848842, + std_dev_pct: 22.2037202539, + median_abs_dev: 5.9304000000, + median_abs_dev_pct: 29.6520000000, + quartiles: (17.0000000000, 20.0000000000, 24.0000000000), + iqr: 7.0000000000, + }; + check(val, summ); +} +#[test] +fn test_pois25lambda30() { + let val = &[ + 27.0000000000, + 33.0000000000, + 34.0000000000, + 34.0000000000, + 24.0000000000, + 39.0000000000, + 28.0000000000, + 27.0000000000, + 31.0000000000, + 28.0000000000, + 38.0000000000, + 21.0000000000, + 33.0000000000, + 36.0000000000, + 29.0000000000, + 37.0000000000, + 32.0000000000, + 34.0000000000, + 31.0000000000, + 39.0000000000, + 25.0000000000, + 31.0000000000, + 32.0000000000, + 40.0000000000, + 24.0000000000, + ]; + let summ = &Summary { + sum: 787.0000000000, + min: 21.0000000000, + max: 40.0000000000, + mean: 31.4800000000, + median: 32.0000000000, + var: 26.5933333333, + std_dev: 5.1568724372, + std_dev_pct: 16.3814245145, + median_abs_dev: 5.9304000000, + median_abs_dev_pct: 18.5325000000, + quartiles: (28.0000000000, 32.0000000000, 34.0000000000), + iqr: 6.0000000000, + }; + check(val, summ); +} +#[test] +fn test_pois25lambda40() { + let val = &[ + 42.0000000000, + 50.0000000000, + 42.0000000000, + 46.0000000000, + 34.0000000000, + 45.0000000000, + 34.0000000000, + 49.0000000000, + 39.0000000000, + 28.0000000000, + 40.0000000000, + 35.0000000000, + 37.0000000000, + 39.0000000000, + 46.0000000000, + 44.0000000000, + 32.0000000000, + 45.0000000000, + 42.0000000000, + 37.0000000000, + 48.0000000000, + 42.0000000000, + 33.0000000000, + 42.0000000000, + 48.0000000000, + ]; + let summ = &Summary { + sum: 1019.0000000000, + min: 28.0000000000, + max: 50.0000000000, + mean: 40.7600000000, + median: 42.0000000000, + var: 34.4400000000, + std_dev: 5.8685603004, + std_dev_pct: 14.3978417577, + median_abs_dev: 5.9304000000, + median_abs_dev_pct: 14.1200000000, + quartiles: (37.0000000000, 42.0000000000, 45.0000000000), + iqr: 8.0000000000, + }; + check(val, summ); +} +#[test] +fn test_pois25lambda50() { + let val = &[ + 45.0000000000, + 43.0000000000, + 44.0000000000, + 61.0000000000, + 51.0000000000, + 53.0000000000, + 59.0000000000, + 52.0000000000, + 49.0000000000, + 51.0000000000, + 51.0000000000, + 50.0000000000, + 49.0000000000, + 56.0000000000, + 42.0000000000, + 52.0000000000, + 51.0000000000, + 43.0000000000, + 48.0000000000, + 48.0000000000, + 50.0000000000, + 42.0000000000, + 43.0000000000, + 42.0000000000, + 60.0000000000, + ]; + let summ = &Summary { + sum: 1235.0000000000, + min: 42.0000000000, + max: 61.0000000000, + mean: 49.4000000000, + median: 50.0000000000, + var: 31.6666666667, + std_dev: 5.6273143387, + std_dev_pct: 11.3913245723, + median_abs_dev: 4.4478000000, + median_abs_dev_pct: 8.8956000000, + quartiles: (44.0000000000, 50.0000000000, 52.0000000000), + iqr: 8.0000000000, + }; + check(val, summ); +} +#[test] +fn test_unif25() { + let val = &[ + 99.0000000000, + 55.0000000000, + 92.0000000000, + 79.0000000000, + 14.0000000000, + 2.0000000000, + 33.0000000000, + 49.0000000000, + 3.0000000000, + 32.0000000000, + 84.0000000000, + 59.0000000000, + 22.0000000000, + 86.0000000000, + 76.0000000000, + 31.0000000000, + 29.0000000000, + 11.0000000000, + 41.0000000000, + 53.0000000000, + 45.0000000000, + 44.0000000000, + 98.0000000000, + 98.0000000000, + 7.0000000000, + ]; + let summ = &Summary { + sum: 1242.0000000000, + min: 2.0000000000, + max: 99.0000000000, + mean: 49.6800000000, + median: 45.0000000000, + var: 1015.6433333333, + std_dev: 31.8691595957, + std_dev_pct: 64.1488719719, + median_abs_dev: 45.9606000000, + median_abs_dev_pct: 102.1346666667, + quartiles: (29.0000000000, 45.0000000000, 79.0000000000), + iqr: 50.0000000000, + }; + check(val, summ); +} + +#[test] +fn test_sum_f64s() { + assert_eq!([0.5f64, 3.2321f64, 1.5678f64].sum(), 5.2999); +} +#[test] +fn test_sum_f64_between_ints_that_sum_to_0() { + assert_eq!([1e30f64, 1.2f64, -1e30f64].sum(), 1.2); +} + +#[bench] +fn sum_three_items(b: &mut Bencher) { + b.iter(|| { + [1e20f64, 1.5f64, -1e20f64].sum(); + }) +} +#[bench] +fn sum_many_f64(b: &mut Bencher) { + let nums = [-1e30f64, 1e60, 1e30, 1.0, -1e60]; + let v = (0..500).map(|i| nums[i % 5]).collect::>(); + + b.iter(|| { + v.sum(); + }) +} + +#[bench] +fn no_iter(_: &mut Bencher) {} diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/test/src/term.rs b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/test/src/term.rs new file mode 100644 index 0000000000000000000000000000000000000000..1e4c7bc879cf7fe2d98039af1dc407bea71f4168 --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/test/src/term.rs @@ -0,0 +1,86 @@ +//! Terminal formatting module. +//! +//! This module provides the `Terminal` trait, which abstracts over an [ANSI +//! Terminal][ansi] to provide color printing, among other things. There are two +//! implementations, the `TerminfoTerminal`, which uses control characters from +//! a [terminfo][ti] database, and `WinConsole`, which uses the [Win32 Console +//! API][win]. +//! +//! [ansi]: https://en.wikipedia.org/wiki/ANSI_escape_code +//! [win]: https://docs.microsoft.com/en-us/windows/console/character-mode-applications +//! [ti]: https://en.wikipedia.org/wiki/Terminfo + +#![deny(missing_docs)] + +use std::io; +use std::io::prelude::*; + +pub(crate) use terminfo::TerminfoTerminal; +#[cfg(windows)] +pub(crate) use win::WinConsole; + +pub(crate) mod terminfo; + +#[cfg(windows)] +mod win; + +/// Alias for stdout terminals. +pub(crate) type StdoutTerminal = dyn Terminal + Send; + +#[cfg(not(windows))] +/// Returns a Terminal wrapping stdout, or None if a terminal couldn't be +/// opened. +pub(crate) fn stdout() -> Option> { + TerminfoTerminal::new(io::stdout()).map(|t| Box::new(t) as Box) +} + +#[cfg(windows)] +/// Returns a Terminal wrapping stdout, or None if a terminal couldn't be +/// opened. +pub(crate) fn stdout() -> Option> { + TerminfoTerminal::new(io::stdout()) + .map(|t| Box::new(t) as Box) + .or_else(|| Some(Box::new(WinConsole::new(io::stdout())) as Box)) +} + +/// Terminal color definitions +#[allow(missing_docs)] +#[cfg_attr(not(windows), allow(dead_code))] +pub(crate) mod color { + /// Number for a terminal color + pub(crate) type Color = u32; + + pub(crate) const BLACK: Color = 0; + pub(crate) const RED: Color = 1; + pub(crate) const GREEN: Color = 2; + pub(crate) const YELLOW: Color = 3; + pub(crate) const BLUE: Color = 4; + pub(crate) const MAGENTA: Color = 5; + pub(crate) const CYAN: Color = 6; + pub(crate) const WHITE: Color = 7; +} + +/// A terminal with similar capabilities to an ANSI Terminal +/// (foreground/background colors etc). +pub(crate) trait Terminal: Write { + /// Sets the foreground color to the given color. + /// + /// If the color is a bright color, but the terminal only supports 8 colors, + /// the corresponding normal color will be used instead. + /// + /// Returns `Ok(true)` if the color was set, `Ok(false)` otherwise, and `Err(e)` + /// if there was an I/O error. + fn fg(&mut self, color: color::Color) -> io::Result; + + /// Resets all terminal attributes and colors to their defaults. + /// + /// Returns `Ok(true)` if the terminal was reset, `Ok(false)` otherwise, and `Err(e)` if there + /// was an I/O error. + /// + /// *Note: This does not flush.* + /// + /// That means the reset command may get buffered so, if you aren't planning on doing anything + /// else that might flush stdout's buffer (e.g., writing a line of text), you should flush after + /// calling reset. + fn reset(&mut self) -> io::Result; +} diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/test/src/term/terminfo/mod.rs b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/test/src/term/terminfo/mod.rs new file mode 100644 index 0000000000000000000000000000000000000000..75fa594908d56a9c55ec69d132804243f3ae883a --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/test/src/term/terminfo/mod.rs @@ -0,0 +1,201 @@ +//! Terminfo database interface. + +use std::collections::HashMap; +use std::fs::File; +use std::io::prelude::*; +use std::path::Path; +use std::{env, error, fmt, io}; + +use parm::{Param, Variables, expand}; +use parser::compiled::{msys_terminfo, parse}; +use searcher::get_dbpath_for_term; + +use super::{Terminal, color}; + +/// A parsed terminfo database entry. +#[allow(unused)] +#[derive(Debug)] +pub(crate) struct TermInfo { + /// Names for the terminal + pub(crate) names: Vec, + /// Map of capability name to boolean value + pub(crate) bools: HashMap, + /// Map of capability name to numeric value + pub(crate) numbers: HashMap, + /// Map of capability name to raw (unexpanded) string + pub(crate) strings: HashMap>, +} + +/// A terminfo creation error. +#[derive(Debug)] +pub(crate) enum Error { + /// TermUnset Indicates that the environment doesn't include enough information to find + /// the terminfo entry. + TermUnset, + /// MalformedTerminfo indicates that parsing the terminfo entry failed. + MalformedTerminfo(String), + /// io::Error forwards any io::Errors encountered when finding or reading the terminfo entry. + IoError(io::Error), +} + +impl error::Error for Error { + fn source(&self) -> Option<&(dyn error::Error + 'static)> { + use Error::*; + match self { + IoError(e) => Some(e), + _ => None, + } + } +} + +impl fmt::Display for Error { + fn fmt(&self, f: &mut fmt::Formatter<'_>) -> fmt::Result { + use Error::*; + match *self { + TermUnset => Ok(()), + MalformedTerminfo(ref e) => e.fmt(f), + IoError(ref e) => e.fmt(f), + } + } +} + +impl TermInfo { + /// Creates a TermInfo based on current environment. + pub(crate) fn from_env() -> Result { + let term = match env::var("TERM") { + Ok(name) => TermInfo::from_name(&name), + Err(..) => return Err(Error::TermUnset), + }; + + if term.is_err() && env::var("MSYSCON").map_or(false, |s| "mintty.exe" == s) { + // msys terminal + Ok(msys_terminfo()) + } else { + term + } + } + + /// Creates a TermInfo for the named terminal. + pub(crate) fn from_name(name: &str) -> Result { + if cfg!(miri) { + // Avoid all the work of parsing the terminfo (it's pretty slow under Miri), and just + // assume that the standard color codes work (like e.g. the 'colored' crate). + return Ok(TermInfo { + names: Default::default(), + bools: Default::default(), + numbers: Default::default(), + strings: Default::default(), + }); + } + + get_dbpath_for_term(name) + .ok_or_else(|| { + Error::IoError(io::const_error!(io::ErrorKind::NotFound, "terminfo file not found")) + }) + .and_then(|p| TermInfo::from_path(&(*p))) + } + + /// Parse the given TermInfo. + pub(crate) fn from_path>(path: P) -> Result { + Self::_from_path(path.as_ref()) + } + // Keep the metadata small + fn _from_path(path: &Path) -> Result { + let mut reader = File::open_buffered(path).map_err(Error::IoError)?; + parse(&mut reader, false).map_err(Error::MalformedTerminfo) + } +} + +pub(crate) mod searcher; + +/// TermInfo format parsing. +pub(crate) mod parser { + //! ncurses-compatible compiled terminfo format parsing (term(5)) + pub(crate) mod compiled; +} +pub(crate) mod parm; + +/// A Terminal that knows how many colors it supports, with a reference to its +/// parsed Terminfo database record. +pub(crate) struct TerminfoTerminal { + num_colors: u32, + out: T, + ti: TermInfo, +} + +impl Terminal for TerminfoTerminal { + fn fg(&mut self, color: color::Color) -> io::Result { + let color = self.dim_if_necessary(color); + if cfg!(miri) && color < 8 { + // The Miri logic for this only works for the most basic 8 colors, which we just assume + // the terminal will support. (`num_colors` is always 0 in Miri, so higher colors will + // just fail. But libtest doesn't use any higher colors anyway.) + return write!(self.out, "\x1B[3{color}m").and(Ok(true)); + } + if self.num_colors > color { + return self.apply_cap("setaf", &[Param::Number(color as i32)]); + } + Ok(false) + } + + fn reset(&mut self) -> io::Result { + if cfg!(miri) { + return write!(self.out, "\x1B[0m").and(Ok(true)); + } + // are there any terminals that have color/attrs and not sgr0? + // Try falling back to sgr, then op + let cmd = match ["sgr0", "sgr", "op"].iter().find_map(|cap| self.ti.strings.get(*cap)) { + Some(op) => match expand(op, &[], &mut Variables::new()) { + Ok(cmd) => cmd, + Err(e) => return Err(io::Error::new(io::ErrorKind::InvalidData, e)), + }, + None => return Ok(false), + }; + self.out.write_all(&cmd).and(Ok(true)) + } +} + +impl TerminfoTerminal { + /// Creates a new TerminfoTerminal with the given TermInfo and Write. + pub(crate) fn new_with_terminfo(out: T, terminfo: TermInfo) -> TerminfoTerminal { + let nc = if terminfo.strings.contains_key("setaf") && terminfo.strings.contains_key("setab") + { + terminfo.numbers.get("colors").map_or(0, |&n| n) + } else { + 0 + }; + + TerminfoTerminal { out, ti: terminfo, num_colors: nc } + } + + /// Creates a new TerminfoTerminal for the current environment with the given Write. + /// + /// Returns `None` when the terminfo cannot be found or parsed. + pub(crate) fn new(out: T) -> Option> { + TermInfo::from_env().map(move |ti| TerminfoTerminal::new_with_terminfo(out, ti)).ok() + } + + fn dim_if_necessary(&self, color: color::Color) -> color::Color { + if color >= self.num_colors && (8..16).contains(&color) { color - 8 } else { color } + } + + fn apply_cap(&mut self, cmd: &str, params: &[Param]) -> io::Result { + match self.ti.strings.get(cmd) { + Some(cmd) => match expand(cmd, params, &mut Variables::new()) { + Ok(s) => self.out.write_all(&s).and(Ok(true)), + Err(e) => Err(io::Error::new(io::ErrorKind::InvalidData, e)), + }, + None => Ok(false), + } + } +} + +impl Write for TerminfoTerminal { + fn write(&mut self, buf: &[u8]) -> io::Result { + self.out.write(buf) + } + + fn flush(&mut self) -> io::Result<()> { + self.out.flush() + } +} diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/test/src/term/terminfo/parm.rs b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/test/src/term/terminfo/parm.rs new file mode 100644 index 0000000000000000000000000000000000000000..529ec0c36e4a5081af71cdb0127d1a72490bb679 --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/test/src/term/terminfo/parm.rs @@ -0,0 +1,532 @@ +//! Parameterized string expansion + +use std::iter::repeat; + +use self::Param::*; +use self::States::*; + +#[cfg(test)] +mod tests; + +#[derive(Clone, Copy, PartialEq)] +enum States { + Nothing, + Percent, + SetVar, + GetVar, + PushParam, + CharConstant, + CharClose, + IntConstant(i32), + FormatPattern(Flags, FormatState), + SeekIfElse(usize), + SeekIfElsePercent(usize), + SeekIfEnd(usize), + SeekIfEndPercent(usize), +} + +#[derive(Copy, PartialEq, Clone)] +enum FormatState { + Flags, + Width, + Precision, +} + +/// Types of parameters a capability can use +#[allow(missing_docs)] +#[derive(Clone)] +pub(crate) enum Param { + Number(i32), +} + +/// Container for static and dynamic variable arrays +pub(crate) struct Variables { + /// Static variables A-Z + sta_va: [Param; 26], + /// Dynamic variables a-z + dyn_va: [Param; 26], +} + +impl Variables { + /// Returns a new zero-initialized Variables + pub(crate) fn new() -> Variables { + Variables { + sta_va: [ + Number(0), + Number(0), + Number(0), + Number(0), + Number(0), + Number(0), + Number(0), + Number(0), + Number(0), + Number(0), + Number(0), + Number(0), + Number(0), + Number(0), + Number(0), + Number(0), + Number(0), + Number(0), + Number(0), + Number(0), + Number(0), + Number(0), + Number(0), + Number(0), + Number(0), + Number(0), + ], + dyn_va: [ + Number(0), + Number(0), + Number(0), + Number(0), + Number(0), + Number(0), + Number(0), + Number(0), + Number(0), + Number(0), + Number(0), + Number(0), + Number(0), + Number(0), + Number(0), + Number(0), + Number(0), + Number(0), + Number(0), + Number(0), + Number(0), + Number(0), + Number(0), + Number(0), + Number(0), + Number(0), + ], + } + } +} + +/// Expand a parameterized capability +/// +/// # Arguments +/// * `cap` - string to expand +/// * `params` - vector of params for %p1 etc +/// * `vars` - Variables struct for %Pa etc +/// +/// To be compatible with ncurses, `vars` should be the same between calls to `expand` for +/// multiple capabilities for the same terminal. +pub(crate) fn expand( + cap: &[u8], + params: &[Param], + vars: &mut Variables, +) -> Result, String> { + let mut state = Nothing; + + // expanded cap will only rarely be larger than the cap itself + let mut output = Vec::with_capacity(cap.len()); + + let mut stack: Vec = Vec::new(); + + // Copy parameters into a local vector for mutability + let mut mparams = [ + Number(0), + Number(0), + Number(0), + Number(0), + Number(0), + Number(0), + Number(0), + Number(0), + Number(0), + ]; + for (dst, src) in mparams.iter_mut().zip(params.iter()) { + *dst = (*src).clone(); + } + + for &c in cap.iter() { + let cur = c as char; + let mut old_state = state; + match state { + Nothing => { + if cur == '%' { + state = Percent; + } else { + output.push(c); + } + } + Percent => { + match cur { + '%' => { + output.push(c); + state = Nothing + } + 'c' => { + match stack.pop() { + // if c is 0, use 0200 (128) for ncurses compatibility + Some(Number(0)) => output.push(128u8), + // Don't check bounds. ncurses just casts and truncates. + Some(Number(c)) => output.push(c as u8), + None => return Err("stack is empty".to_string()), + } + } + 'p' => state = PushParam, + 'P' => state = SetVar, + 'g' => state = GetVar, + '\'' => state = CharConstant, + '{' => state = IntConstant(0), + 'l' => match stack.pop() { + Some(_) => return Err("a non-str was used with %l".to_string()), + None => return Err("stack is empty".to_string()), + }, + '+' | '-' | '/' | '*' | '^' | '&' | '|' | 'm' => { + match (stack.pop(), stack.pop()) { + (Some(Number(y)), Some(Number(x))) => stack.push(Number(match cur { + '+' => x + y, + '-' => x - y, + '*' => x * y, + '/' => x / y, + '|' => x | y, + '&' => x & y, + '^' => x ^ y, + 'm' => x % y, + _ => unreachable!("All cases handled"), + })), + _ => return Err("stack is empty".to_string()), + } + } + '=' | '>' | '<' | 'A' | 'O' => match (stack.pop(), stack.pop()) { + (Some(Number(y)), Some(Number(x))) => stack.push(Number( + if match cur { + '=' => x == y, + '<' => x < y, + '>' => x > y, + 'A' => x > 0 && y > 0, + 'O' => x > 0 || y > 0, + _ => unreachable!(), + } { + 1 + } else { + 0 + }, + )), + _ => return Err("stack is empty".to_string()), + }, + '!' | '~' => match stack.pop() { + Some(Number(x)) => stack.push(Number(match cur { + '!' if x > 0 => 0, + '!' => 1, + '~' => !x, + _ => unreachable!(), + })), + None => return Err("stack is empty".to_string()), + }, + 'i' => match (&mparams[0], &mparams[1]) { + (&Number(x), &Number(y)) => { + mparams[0] = Number(x + 1); + mparams[1] = Number(y + 1); + } + }, + + // printf-style support for %doxXs + 'd' | 'o' | 'x' | 'X' | 's' => { + if let Some(arg) = stack.pop() { + let flags = Flags::new(); + let res = format(arg, FormatOp::from_char(cur), flags)?; + output.extend(res.iter().cloned()); + } else { + return Err("stack is empty".to_string()); + } + } + ':' | '#' | ' ' | '.' | '0'..='9' => { + let mut flags = Flags::new(); + let mut fstate = FormatState::Flags; + match cur { + ':' => (), + '#' => flags.alternate = true, + ' ' => flags.space = true, + '.' => fstate = FormatState::Precision, + '0'..='9' => { + flags.width = cur as usize - '0' as usize; + fstate = FormatState::Width; + } + _ => unreachable!(), + } + state = FormatPattern(flags, fstate); + } + + // conditionals + '?' => (), + 't' => match stack.pop() { + Some(Number(0)) => state = SeekIfElse(0), + Some(Number(_)) => (), + None => return Err("stack is empty".to_string()), + }, + 'e' => state = SeekIfEnd(0), + ';' => (), + _ => return Err(format!("unrecognized format option {cur}")), + } + } + PushParam => { + // params are 1-indexed + stack.push( + mparams[match cur.to_digit(10) { + Some(d) => d as usize - 1, + None => return Err("bad param number".to_string()), + }] + .clone(), + ); + } + SetVar => { + if cur.is_ascii_uppercase() { + if let Some(arg) = stack.pop() { + let idx = (cur as u8) - b'A'; + vars.sta_va[idx as usize] = arg; + } else { + return Err("stack is empty".to_string()); + } + } else if cur.is_ascii_lowercase() { + if let Some(arg) = stack.pop() { + let idx = (cur as u8) - b'a'; + vars.dyn_va[idx as usize] = arg; + } else { + return Err("stack is empty".to_string()); + } + } else { + return Err("bad variable name in %P".to_string()); + } + } + GetVar => { + if cur.is_ascii_uppercase() { + let idx = (cur as u8) - b'A'; + stack.push(vars.sta_va[idx as usize].clone()); + } else if cur.is_ascii_lowercase() { + let idx = (cur as u8) - b'a'; + stack.push(vars.dyn_va[idx as usize].clone()); + } else { + return Err("bad variable name in %g".to_string()); + } + } + CharConstant => { + stack.push(Number(c as i32)); + state = CharClose; + } + CharClose => { + if cur != '\'' { + return Err("malformed character constant".to_string()); + } + } + IntConstant(i) => { + if cur == '}' { + stack.push(Number(i)); + state = Nothing; + } else if let Some(digit) = cur.to_digit(10) { + match i.checked_mul(10).and_then(|i_ten| i_ten.checked_add(digit as i32)) { + Some(i) => { + state = IntConstant(i); + old_state = Nothing; + } + None => return Err("int constant too large".to_string()), + } + } else { + return Err("bad int constant".to_string()); + } + } + FormatPattern(ref mut flags, ref mut fstate) => { + old_state = Nothing; + match (*fstate, cur) { + (_, 'd') | (_, 'o') | (_, 'x') | (_, 'X') | (_, 's') => { + if let Some(arg) = stack.pop() { + let res = format(arg, FormatOp::from_char(cur), *flags)?; + output.extend(res.iter().cloned()); + // will cause state to go to Nothing + old_state = FormatPattern(*flags, *fstate); + } else { + return Err("stack is empty".to_string()); + } + } + (FormatState::Flags, '#') => { + flags.alternate = true; + } + (FormatState::Flags, '-') => { + flags.left = true; + } + (FormatState::Flags, '+') => { + flags.sign = true; + } + (FormatState::Flags, ' ') => { + flags.space = true; + } + (FormatState::Flags, '0'..='9') => { + flags.width = cur as usize - '0' as usize; + *fstate = FormatState::Width; + } + (FormatState::Flags, '.') => { + *fstate = FormatState::Precision; + } + (FormatState::Width, '0'..='9') => { + let old = flags.width; + flags.width = flags.width * 10 + (cur as usize - '0' as usize); + if flags.width < old { + return Err("format width overflow".to_string()); + } + } + (FormatState::Width, '.') => { + *fstate = FormatState::Precision; + } + (FormatState::Precision, '0'..='9') => { + let old = flags.precision; + flags.precision = flags.precision * 10 + (cur as usize - '0' as usize); + if flags.precision < old { + return Err("format precision overflow".to_string()); + } + } + _ => return Err("invalid format specifier".to_string()), + } + } + SeekIfElse(level) => { + if cur == '%' { + state = SeekIfElsePercent(level); + } + old_state = Nothing; + } + SeekIfElsePercent(level) => { + if cur == ';' { + if level == 0 { + state = Nothing; + } else { + state = SeekIfElse(level - 1); + } + } else if cur == 'e' && level == 0 { + state = Nothing; + } else if cur == '?' { + state = SeekIfElse(level + 1); + } else { + state = SeekIfElse(level); + } + } + SeekIfEnd(level) => { + if cur == '%' { + state = SeekIfEndPercent(level); + } + old_state = Nothing; + } + SeekIfEndPercent(level) => { + if cur == ';' { + if level == 0 { + state = Nothing; + } else { + state = SeekIfEnd(level - 1); + } + } else if cur == '?' { + state = SeekIfEnd(level + 1); + } else { + state = SeekIfEnd(level); + } + } + } + if state == old_state { + state = Nothing; + } + } + Ok(output) +} + +#[derive(Copy, PartialEq, Clone)] +struct Flags { + width: usize, + precision: usize, + alternate: bool, + left: bool, + sign: bool, + space: bool, +} + +impl Flags { + fn new() -> Flags { + Flags { width: 0, precision: 0, alternate: false, left: false, sign: false, space: false } + } +} + +#[derive(Copy, Clone)] +enum FormatOp { + Digit, + Octal, + LowerHex, + UpperHex, + String, +} + +impl FormatOp { + fn from_char(c: char) -> FormatOp { + match c { + 'd' => FormatOp::Digit, + 'o' => FormatOp::Octal, + 'x' => FormatOp::LowerHex, + 'X' => FormatOp::UpperHex, + 's' => FormatOp::String, + _ => panic!("bad FormatOp char"), + } + } +} + +fn format(val: Param, op: FormatOp, flags: Flags) -> Result, String> { + let mut s = match val { + Number(d) => { + match op { + FormatOp::Digit => { + if flags.sign { + format!("{:+01$}", d, flags.precision) + } else if d < 0 { + // C doesn't take sign into account in precision calculation. + format!("{:01$}", d, flags.precision + 1) + } else if flags.space { + format!(" {:01$}", d, flags.precision) + } else { + format!("{:01$}", d, flags.precision) + } + } + FormatOp::Octal => { + if flags.alternate { + // Leading octal zero counts against precision. + format!("0{:01$o}", d, flags.precision.saturating_sub(1)) + } else { + format!("{:01$o}", d, flags.precision) + } + } + FormatOp::LowerHex => { + if flags.alternate && d != 0 { + format!("0x{:01$x}", d, flags.precision) + } else { + format!("{:01$x}", d, flags.precision) + } + } + FormatOp::UpperHex => { + if flags.alternate && d != 0 { + format!("0X{:01$X}", d, flags.precision) + } else { + format!("{:01$X}", d, flags.precision) + } + } + FormatOp::String => return Err("non-number on stack with %s".to_string()), + } + .into_bytes() + } + }; + if flags.width > s.len() { + let n = flags.width - s.len(); + if flags.left { + s.extend(repeat(b' ').take(n)); + } else { + let mut s_ = Vec::with_capacity(flags.width); + s_.extend(repeat(b' ').take(n)); + s_.extend(s); + s = s_; + } + } + Ok(s) +} diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/test/src/term/terminfo/parm/tests.rs b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/test/src/term/terminfo/parm/tests.rs new file mode 100644 index 0000000000000000000000000000000000000000..e785d84f3fd7da598370c55a1b015e62be21c7ff --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/test/src/term/terminfo/parm/tests.rs @@ -0,0 +1,122 @@ +use super::*; + +#[test] +fn test_basic_setabf() { + let s = b"\\E[48;5;%p1%dm"; + assert_eq!( + expand(s, &[Number(1)], &mut Variables::new()).unwrap(), + "\\E[48;5;1m".bytes().collect::>() + ); +} + +#[test] +fn test_multiple_int_constants() { + assert_eq!( + expand(b"%{1}%{2}%d%d", &[], &mut Variables::new()).unwrap(), + "21".bytes().collect::>() + ); +} + +#[test] +fn test_op_i() { + let mut vars = Variables::new(); + assert_eq!( + expand(b"%p1%d%p2%d%p3%d%i%p1%d%p2%d%p3%d", &[Number(1), Number(2), Number(3)], &mut vars), + Ok("123233".bytes().collect::>()) + ); + assert_eq!( + expand(b"%p1%d%p2%d%i%p1%d%p2%d", &[], &mut vars), + Ok("0011".bytes().collect::>()) + ); +} + +#[test] +fn test_param_stack_failure_conditions() { + let mut varstruct = Variables::new(); + let vars = &mut varstruct; + fn get_res( + fmt: &str, + cap: &str, + params: &[Param], + vars: &mut Variables, + ) -> Result, String> { + let mut u8v: Vec<_> = fmt.bytes().collect(); + u8v.extend(cap.as_bytes().iter().map(|&b| b)); + expand(&u8v, params, vars) + } + + let caps = ["%d", "%c", "%s", "%Pa", "%l", "%!", "%~"]; + for &cap in caps.iter() { + let res = get_res("", cap, &[], vars); + assert!(res.is_err(), "Op {} succeeded incorrectly with 0 stack entries", cap); + if cap == "%s" || cap == "%l" { + continue; + } + let p = Number(97); + let res = get_res("%p1", cap, &[p], vars); + assert!(res.is_ok(), "Op {} failed with 1 stack entry: {}", cap, res.unwrap_err()); + } + let caps = ["%+", "%-", "%*", "%/", "%m", "%&", "%|", "%A", "%O"]; + for &cap in caps.iter() { + let res = expand(cap.as_bytes(), &[], vars); + assert!(res.is_err(), "Binop {} succeeded incorrectly with 0 stack entries", cap); + let res = get_res("%{1}", cap, &[], vars); + assert!(res.is_err(), "Binop {} succeeded incorrectly with 1 stack entry", cap); + let res = get_res("%{1}%{2}", cap, &[], vars); + assert!(res.is_ok(), "Binop {} failed with 2 stack entries: {}", cap, res.unwrap_err()); + } +} + +#[test] +fn test_push_bad_param() { + assert!(expand(b"%pa", &[], &mut Variables::new()).is_err()); +} + +#[test] +fn test_comparison_ops() { + let v = [('<', [1u8, 0u8, 0u8]), ('=', [0u8, 1u8, 0u8]), ('>', [0u8, 0u8, 1u8])]; + for &(op, bs) in v.iter() { + let s = format!("%{{1}}%{{2}}%{op}%d"); + let res = expand(s.as_bytes(), &[], &mut Variables::new()); + assert!(res.is_ok(), "{}", res.unwrap_err()); + assert_eq!(res.unwrap(), vec![b'0' + bs[0]]); + let s = format!("%{{1}}%{{1}}%{op}%d"); + let res = expand(s.as_bytes(), &[], &mut Variables::new()); + assert!(res.is_ok(), "{}", res.unwrap_err()); + assert_eq!(res.unwrap(), vec![b'0' + bs[1]]); + let s = format!("%{{2}}%{{1}}%{op}%d"); + let res = expand(s.as_bytes(), &[], &mut Variables::new()); + assert!(res.is_ok(), "{}", res.unwrap_err()); + assert_eq!(res.unwrap(), vec![b'0' + bs[2]]); + } +} + +#[test] +fn test_conditionals() { + let mut vars = Variables::new(); + let s = b"\\E[%?%p1%{8}%<%t3%p1%d%e%p1%{16}%<%t9%p1%{8}%-%d%e38;5;%p1%d%;m"; + let res = expand(s, &[Number(1)], &mut vars); + assert!(res.is_ok(), "{}", res.unwrap_err()); + assert_eq!(res.unwrap(), "\\E[31m".bytes().collect::>()); + let res = expand(s, &[Number(8)], &mut vars); + assert!(res.is_ok(), "{}", res.unwrap_err()); + assert_eq!(res.unwrap(), "\\E[90m".bytes().collect::>()); + let res = expand(s, &[Number(42)], &mut vars); + assert!(res.is_ok(), "{}", res.unwrap_err()); + assert_eq!(res.unwrap(), "\\E[38;5;42m".bytes().collect::>()); +} + +#[test] +fn test_format() { + let mut varstruct = Variables::new(); + let vars = &mut varstruct; + + assert_eq!( + expand(b"%p1%d%p1%.3d%p1%5d%p1%:+d", &[Number(1)], vars), + Ok("1001 1+1".bytes().collect::>()) + ); + assert_eq!( + expand(b"%p1%o%p1%#o%p2%6.4x%p2%#6.4X", &[Number(15), Number(27)], vars), + Ok("17017 001b0X001B".bytes().collect::>()) + ); +} diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/test/src/term/terminfo/parser/compiled.rs b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/test/src/term/terminfo/parser/compiled.rs new file mode 100644 index 0000000000000000000000000000000000000000..d1dd0f10d86364d0b3569db85c8756fcd4d51d84 --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/test/src/term/terminfo/parser/compiled.rs @@ -0,0 +1,337 @@ +#![allow(non_upper_case_globals, missing_docs)] + +//! ncurses-compatible compiled terminfo format parsing (term(5)) + +use std::collections::HashMap; +use std::io; +use std::io::prelude::*; + +use super::super::TermInfo; + +#[cfg(test)] +mod tests; + +// These are the orders ncurses uses in its compiled format (as of 5.9). Not sure if portable. + +#[rustfmt::skip] +pub(crate) static boolfnames: &[&str] = &["auto_left_margin", "auto_right_margin", + "no_esc_ctlc", "ceol_standout_glitch", "eat_newline_glitch", "erase_overstrike", "generic_type", + "hard_copy", "has_meta_key", "has_status_line", "insert_null_glitch", "memory_above", + "memory_below", "move_insert_mode", "move_standout_mode", "over_strike", "status_line_esc_ok", + "dest_tabs_magic_smso", "tilde_glitch", "transparent_underline", "xon_xoff", "needs_xon_xoff", + "prtr_silent", "hard_cursor", "non_rev_rmcup", "no_pad_char", "non_dest_scroll_region", + "can_change", "back_color_erase", "hue_lightness_saturation", "col_addr_glitch", + "cr_cancels_micro_mode", "has_print_wheel", "row_addr_glitch", "semi_auto_right_margin", + "cpi_changes_res", "lpi_changes_res", "backspaces_with_bs", "crt_no_scrolling", + "no_correctly_working_cr", "gnu_has_meta_key", "linefeed_is_newline", "has_hardware_tabs", + "return_does_clr_eol"]; + +#[rustfmt::skip] +pub(crate) static boolnames: &[&str] = &["bw", "am", "xsb", "xhp", "xenl", "eo", + "gn", "hc", "km", "hs", "in", "db", "da", "mir", "msgr", "os", "eslok", "xt", "hz", "ul", "xon", + "nxon", "mc5i", "chts", "nrrmc", "npc", "ndscr", "ccc", "bce", "hls", "xhpa", "crxm", "daisy", + "xvpa", "sam", "cpix", "lpix", "OTbs", "OTns", "OTnc", "OTMT", "OTNL", "OTpt", "OTxr"]; + +#[rustfmt::skip] +pub(crate) static numfnames: &[&str] = &[ "columns", "init_tabs", "lines", + "lines_of_memory", "magic_cookie_glitch", "padding_baud_rate", "virtual_terminal", + "width_status_line", "num_labels", "label_height", "label_width", "max_attributes", + "maximum_windows", "max_colors", "max_pairs", "no_color_video", "buffer_capacity", + "dot_vert_spacing", "dot_horz_spacing", "max_micro_address", "max_micro_jump", "micro_col_size", + "micro_line_size", "number_of_pins", "output_res_char", "output_res_line", + "output_res_horz_inch", "output_res_vert_inch", "print_rate", "wide_char_size", "buttons", + "bit_image_entwining", "bit_image_type", "magic_cookie_glitch_ul", "carriage_return_delay", + "new_line_delay", "backspace_delay", "horizontal_tab_delay", "number_of_function_keys"]; + +#[rustfmt::skip] +pub(crate) static numnames: &[&str] = &[ "cols", "it", "lines", "lm", "xmc", "pb", + "vt", "wsl", "nlab", "lh", "lw", "ma", "wnum", "colors", "pairs", "ncv", "bufsz", "spinv", + "spinh", "maddr", "mjump", "mcs", "mls", "npins", "orc", "orl", "orhi", "orvi", "cps", "widcs", + "btns", "bitwin", "bitype", "UTug", "OTdC", "OTdN", "OTdB", "OTdT", "OTkn"]; + +#[rustfmt::skip] +pub(crate) static stringfnames: &[&str] = &[ "back_tab", "bell", "carriage_return", + "change_scroll_region", "clear_all_tabs", "clear_screen", "clr_eol", "clr_eos", + "column_address", "command_character", "cursor_address", "cursor_down", "cursor_home", + "cursor_invisible", "cursor_left", "cursor_mem_address", "cursor_normal", "cursor_right", + "cursor_to_ll", "cursor_up", "cursor_visible", "delete_character", "delete_line", + "dis_status_line", "down_half_line", "enter_alt_charset_mode", "enter_blink_mode", + "enter_bold_mode", "enter_ca_mode", "enter_delete_mode", "enter_dim_mode", "enter_insert_mode", + "enter_secure_mode", "enter_protected_mode", "enter_reverse_mode", "enter_standout_mode", + "enter_underline_mode", "erase_chars", "exit_alt_charset_mode", "exit_attribute_mode", + "exit_ca_mode", "exit_delete_mode", "exit_insert_mode", "exit_standout_mode", + "exit_underline_mode", "flash_screen", "form_feed", "from_status_line", "init_1string", + "init_2string", "init_3string", "init_file", "insert_character", "insert_line", + "insert_padding", "key_backspace", "key_catab", "key_clear", "key_ctab", "key_dc", "key_dl", + "key_down", "key_eic", "key_eol", "key_eos", "key_f0", "key_f1", "key_f10", "key_f2", "key_f3", + "key_f4", "key_f5", "key_f6", "key_f7", "key_f8", "key_f9", "key_home", "key_ic", "key_il", + "key_left", "key_ll", "key_npage", "key_ppage", "key_right", "key_sf", "key_sr", "key_stab", + "key_up", "keypad_local", "keypad_xmit", "lab_f0", "lab_f1", "lab_f10", "lab_f2", "lab_f3", + "lab_f4", "lab_f5", "lab_f6", "lab_f7", "lab_f8", "lab_f9", "meta_off", "meta_on", "newline", + "pad_char", "parm_dch", "parm_delete_line", "parm_down_cursor", "parm_ich", "parm_index", + "parm_insert_line", "parm_left_cursor", "parm_right_cursor", "parm_rindex", "parm_up_cursor", + "pkey_key", "pkey_local", "pkey_xmit", "print_screen", "prtr_off", "prtr_on", "repeat_char", + "reset_1string", "reset_2string", "reset_3string", "reset_file", "restore_cursor", + "row_address", "save_cursor", "scroll_forward", "scroll_reverse", "set_attributes", "set_tab", + "set_window", "tab", "to_status_line", "underline_char", "up_half_line", "init_prog", "key_a1", + "key_a3", "key_b2", "key_c1", "key_c3", "prtr_non", "char_padding", "acs_chars", "plab_norm", + "key_btab", "enter_xon_mode", "exit_xon_mode", "enter_am_mode", "exit_am_mode", "xon_character", + "xoff_character", "ena_acs", "label_on", "label_off", "key_beg", "key_cancel", "key_close", + "key_command", "key_copy", "key_create", "key_end", "key_enter", "key_exit", "key_find", + "key_help", "key_mark", "key_message", "key_move", "key_next", "key_open", "key_options", + "key_previous", "key_print", "key_redo", "key_reference", "key_refresh", "key_replace", + "key_restart", "key_resume", "key_save", "key_suspend", "key_undo", "key_sbeg", "key_scancel", + "key_scommand", "key_scopy", "key_screate", "key_sdc", "key_sdl", "key_select", "key_send", + "key_seol", "key_sexit", "key_sfind", "key_shelp", "key_shome", "key_sic", "key_sleft", + "key_smessage", "key_smove", "key_snext", "key_soptions", "key_sprevious", "key_sprint", + "key_sredo", "key_sreplace", "key_sright", "key_srsume", "key_ssave", "key_ssuspend", + "key_sundo", "req_for_input", "key_f11", "key_f12", "key_f13", "key_f14", "key_f15", "key_f16", + "key_f17", "key_f18", "key_f19", "key_f20", "key_f21", "key_f22", "key_f23", "key_f24", + "key_f25", "key_f26", "key_f27", "key_f28", "key_f29", "key_f30", "key_f31", "key_f32", + "key_f33", "key_f34", "key_f35", "key_f36", "key_f37", "key_f38", "key_f39", "key_f40", + "key_f41", "key_f42", "key_f43", "key_f44", "key_f45", "key_f46", "key_f47", "key_f48", + "key_f49", "key_f50", "key_f51", "key_f52", "key_f53", "key_f54", "key_f55", "key_f56", + "key_f57", "key_f58", "key_f59", "key_f60", "key_f61", "key_f62", "key_f63", "clr_bol", + "clear_margins", "set_left_margin", "set_right_margin", "label_format", "set_clock", + "display_clock", "remove_clock", "create_window", "goto_window", "hangup", "dial_phone", + "quick_dial", "tone", "pulse", "flash_hook", "fixed_pause", "wait_tone", "user0", "user1", + "user2", "user3", "user4", "user5", "user6", "user7", "user8", "user9", "orig_pair", + "orig_colors", "initialize_color", "initialize_pair", "set_color_pair", "set_foreground", + "set_background", "change_char_pitch", "change_line_pitch", "change_res_horz", + "change_res_vert", "define_char", "enter_doublewide_mode", "enter_draft_quality", + "enter_italics_mode", "enter_leftward_mode", "enter_micro_mode", "enter_near_letter_quality", + "enter_normal_quality", "enter_shadow_mode", "enter_subscript_mode", "enter_superscript_mode", + "enter_upward_mode", "exit_doublewide_mode", "exit_italics_mode", "exit_leftward_mode", + "exit_micro_mode", "exit_shadow_mode", "exit_subscript_mode", "exit_superscript_mode", + "exit_upward_mode", "micro_column_address", "micro_down", "micro_left", "micro_right", + "micro_row_address", "micro_up", "order_of_pins", "parm_down_micro", "parm_left_micro", + "parm_right_micro", "parm_up_micro", "select_char_set", "set_bottom_margin", + "set_bottom_margin_parm", "set_left_margin_parm", "set_right_margin_parm", "set_top_margin", + "set_top_margin_parm", "start_bit_image", "start_char_set_def", "stop_bit_image", + "stop_char_set_def", "subscript_characters", "superscript_characters", "these_cause_cr", + "zero_motion", "char_set_names", "key_mouse", "mouse_info", "req_mouse_pos", "get_mouse", + "set_a_foreground", "set_a_background", "pkey_plab", "device_type", "code_set_init", + "set0_des_seq", "set1_des_seq", "set2_des_seq", "set3_des_seq", "set_lr_margin", + "set_tb_margin", "bit_image_repeat", "bit_image_newline", "bit_image_carriage_return", + "color_names", "define_bit_image_region", "end_bit_image_region", "set_color_band", + "set_page_length", "display_pc_char", "enter_pc_charset_mode", "exit_pc_charset_mode", + "enter_scancode_mode", "exit_scancode_mode", "pc_term_options", "scancode_escape", + "alt_scancode_esc", "enter_horizontal_hl_mode", "enter_left_hl_mode", "enter_low_hl_mode", + "enter_right_hl_mode", "enter_top_hl_mode", "enter_vertical_hl_mode", "set_a_attributes", + "set_pglen_inch", "termcap_init2", "termcap_reset", "linefeed_if_not_lf", "backspace_if_not_bs", + "other_non_function_keys", "arrow_key_map", "acs_ulcorner", "acs_llcorner", "acs_urcorner", + "acs_lrcorner", "acs_ltee", "acs_rtee", "acs_btee", "acs_ttee", "acs_hline", "acs_vline", + "acs_plus", "memory_lock", "memory_unlock", "box_chars_1"]; + +#[rustfmt::skip] +pub(crate) static stringnames: &[&str] = &[ "cbt", "_", "cr", "csr", "tbc", "clear", + "_", "_", "hpa", "cmdch", "cup", "cud1", "home", "civis", "cub1", "mrcup", "cnorm", "cuf1", + "ll", "cuu1", "cvvis", "dch1", "dl1", "dsl", "hd", "smacs", "blink", "bold", "smcup", "smdc", + "dim", "smir", "invis", "prot", "rev", "smso", "smul", "ech", "rmacs", "sgr0", "rmcup", "rmdc", + "rmir", "rmso", "rmul", "flash", "ff", "fsl", "is1", "is2", "is3", "if", "ich1", "il1", "ip", + "kbs", "ktbc", "kclr", "kctab", "_", "_", "kcud1", "_", "_", "_", "_", "_", "_", "_", "_", "_", + "_", "_", "_", "_", "_", "khome", "_", "_", "kcub1", "_", "knp", "kpp", "kcuf1", "_", "_", + "khts", "_", "rmkx", "smkx", "_", "_", "_", "_", "_", "_", "_", "_", "_", "_", "_", "rmm", "_", + "_", "pad", "dch", "dl", "cud", "ich", "indn", "il", "cub", "cuf", "rin", "cuu", "pfkey", + "pfloc", "pfx", "mc0", "mc4", "_", "rep", "rs1", "rs2", "rs3", "rf", "rc", "vpa", "sc", "ind", + "ri", "sgr", "_", "wind", "_", "tsl", "uc", "hu", "iprog", "_", "_", "_", "_", "_", "mc5p", + "rmp", "acsc", "pln", "kcbt", "smxon", "rmxon", "smam", "rmam", "xonc", "xoffc", "_", "smln", + "rmln", "_", "kcan", "kclo", "kcmd", "kcpy", "kcrt", "_", "kent", "kext", "kfnd", "khlp", + "kmrk", "kmsg", "kmov", "knxt", "kopn", "kopt", "kprv", "kprt", "krdo", "kref", "krfr", "krpl", + "krst", "kres", "ksav", "kspd", "kund", "kBEG", "kCAN", "kCMD", "kCPY", "kCRT", "_", "_", + "kslt", "kEND", "kEOL", "kEXT", "kFND", "kHLP", "kHOM", "_", "kLFT", "kMSG", "kMOV", "kNXT", + "kOPT", "kPRV", "kPRT", "kRDO", "kRPL", "kRIT", "kRES", "kSAV", "kSPD", "kUND", "rfi", "_", "_", + "_", "_", "_", "_", "_", "_", "_", "_", "_", "_", "_", "_", "_", "_", "_", "_", "_", "_", "_", + "_", "_", "_", "_", "_", "_", "_", "_", "_", "_", "_", "_", "_", "_", "_", "_", "_", "_", "_", + "_", "_", "_", "_", "_", "_", "_", "_", "_", "_", "_", "_", "_", "_", "_", "_", "_", "_", "_", + "dclk", "rmclk", "cwin", "wingo", "_", "dial", "qdial", "_", "_", "hook", "pause", "wait", "_", + "_", "_", "_", "_", "_", "_", "_", "_", "_", "op", "oc", "initc", "initp", "scp", "setf", + "setb", "cpi", "lpi", "chr", "cvr", "defc", "swidm", "sdrfq", "sitm", "slm", "smicm", "snlq", + "snrmq", "sshm", "ssubm", "ssupm", "sum", "rwidm", "ritm", "rlm", "rmicm", "rshm", "rsubm", + "rsupm", "rum", "mhpa", "mcud1", "mcub1", "mcuf1", "mvpa", "mcuu1", "porder", "mcud", "mcub", + "mcuf", "mcuu", "scs", "smgb", "smgbp", "smglp", "smgrp", "smgt", "smgtp", "sbim", "scsd", + "rbim", "rcsd", "subcs", "supcs", "docr", "zerom", "csnm", "kmous", "minfo", "reqmp", "getm", + "setaf", "setab", "pfxl", "devt", "csin", "s0ds", "s1ds", "s2ds", "s3ds", "smglr", "smgtb", + "birep", "binel", "bicr", "colornm", "defbi", "endbi", "setcolor", "slines", "dispc", "smpch", + "rmpch", "smsc", "rmsc", "pctrm", "scesc", "scesa", "ehhlm", "elhlm", "elohlm", "erhlm", + "ethlm", "evhlm", "sgr1", "slength", "OTi2", "OTrs", "OTnl", "OTbs", "OTko", "OTma", "OTG2", + "OTG3", "OTG1", "OTG4", "OTGR", "OTGL", "OTGU", "OTGD", "OTGH", "OTGV", "OTGC", "meml", "memu", + "box1"]; + +fn read_le_u16(r: &mut dyn io::Read) -> io::Result { + let mut b = [0; 2]; + r.read_exact(&mut b)?; + Ok((b[0] as u16) | ((b[1] as u16) << 8)) +} + +fn read_le_u32(r: &mut dyn io::Read) -> io::Result { + let mut b = [0; 4]; + r.read_exact(&mut b)?; + Ok((b[0] as u32) | ((b[1] as u32) << 8) | ((b[2] as u32) << 16) | ((b[3] as u32) << 24)) +} + +fn read_byte(r: &mut dyn io::Read) -> io::Result { + match r.bytes().next() { + Some(s) => s, + None => Err(io::const_error!(io::ErrorKind::Other, "end of file")), + } +} + +/// Parse a compiled terminfo entry, using long capability names if `longnames` +/// is true +pub(crate) fn parse(file: &mut dyn io::Read, longnames: bool) -> Result { + macro_rules! t( ($e:expr) => ( + match $e { + Ok(e) => e, + Err(e) => return Err(e.to_string()) + } + ) ); + + let (bnames, snames, nnames) = if longnames { + (boolfnames, stringfnames, numfnames) + } else { + (boolnames, stringnames, numnames) + }; + + // Check magic number + let magic = t!(read_le_u16(file)); + + let extended = match magic { + 0o0432 => false, + 0o01036 => true, + _ => return Err(format!("invalid magic number, found {magic:o}")), + }; + + // According to the spec, these fields must be >= -1 where -1 means that the feature is not + // supported. Using 0 instead of -1 works because we skip sections with length 0. + macro_rules! read_nonneg { + () => {{ + match t!(read_le_u16(file)) as i16 { + n if n >= 0 => n as usize, + -1 => 0, + _ => return Err("incompatible file: length fields must be >= -1".to_string()), + } + }}; + } + + let names_bytes = read_nonneg!(); + let bools_bytes = read_nonneg!(); + let numbers_count = read_nonneg!(); + let string_offsets_count = read_nonneg!(); + let string_table_bytes = read_nonneg!(); + + if names_bytes == 0 { + return Err("incompatible file: names field must be at least 1 byte wide".to_string()); + } + + if bools_bytes > boolnames.len() { + return Err("incompatible file: more booleans than expected".to_string()); + } + + if numbers_count > numnames.len() { + return Err("incompatible file: more numbers than expected".to_string()); + } + + if string_offsets_count > stringnames.len() { + return Err("incompatible file: more string offsets than expected".to_string()); + } + + // don't read NUL + let mut bytes = Vec::new(); + t!(file.take((names_bytes - 1) as u64).read_to_end(&mut bytes)); + let names_str = match String::from_utf8(bytes) { + Ok(s) => s, + Err(_) => return Err("input not utf-8".to_string()), + }; + + let term_names: Vec = names_str.split('|').map(|s| s.to_string()).collect(); + // consume NUL + if t!(read_byte(file)) != b'\0' { + return Err("incompatible file: missing null terminator for names section".to_string()); + } + + let bools_map: HashMap = t! { + (0..bools_bytes).filter_map(|i| match read_byte(file) { + Err(e) => Some(Err(e)), + Ok(1) => Some(Ok((bnames[i].to_string(), true))), + Ok(_) => None + }).collect() + }; + + if (bools_bytes + names_bytes) % 2 == 1 { + t!(read_byte(file)); // compensate for padding + } + + let numbers_map: HashMap = t! { + (0..numbers_count).filter_map(|i| { + let number = if extended { read_le_u32(file) } else { read_le_u16(file).map(Into::into) }; + + match number { + Ok(0xFFFF) => None, + Ok(n) => Some(Ok((nnames[i].to_string(), n))), + Err(e) => Some(Err(e)) + } + }).collect() + }; + + let string_map: HashMap> = if string_offsets_count > 0 { + let string_offsets: Vec = + t!((0..string_offsets_count).map(|_| read_le_u16(file)).collect()); + + let mut string_table = Vec::new(); + t!(file.take(string_table_bytes as u64).read_to_end(&mut string_table)); + + t!(string_offsets + .into_iter() + .enumerate() + .filter(|&(_, offset)| { + // non-entry + offset != 0xFFFF + }) + .map(|(i, offset)| { + let offset = offset as usize; + + let name = if snames[i] == "_" { stringfnames[i] } else { snames[i] }; + + if offset == 0xFFFE { + // undocumented: FFFE indicates cap@, which means the capability is not present + // unsure if the handling for this is correct + return Ok((name.to_string(), Vec::new())); + } + + // Find the offset of the NUL we want to go to + let nulpos = string_table[offset..string_table_bytes].iter().position(|&b| b == 0); + match nulpos { + Some(len) => { + Ok((name.to_string(), string_table[offset..offset + len].to_vec())) + } + None => Err("invalid file: missing NUL in string_table".to_string()), + } + }) + .collect()) + } else { + HashMap::new() + }; + + // And that's all there is to it + Ok(TermInfo { names: term_names, bools: bools_map, numbers: numbers_map, strings: string_map }) +} + +/// Creates a dummy TermInfo struct for msys terminals +pub(crate) fn msys_terminfo() -> TermInfo { + let mut strings = HashMap::new(); + strings.insert("sgr0".to_string(), b"\x1B[0m".to_vec()); + strings.insert("bold".to_string(), b"\x1B[1m".to_vec()); + strings.insert("setaf".to_string(), b"\x1B[3%p1%dm".to_vec()); + strings.insert("setab".to_string(), b"\x1B[4%p1%dm".to_vec()); + + let mut numbers = HashMap::new(); + numbers.insert("colors".to_string(), 8); + + TermInfo { + names: vec!["cygwin".to_string()], // msys is a fork of an older cygwin version + bools: HashMap::new(), + numbers, + strings, + } +} diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/test/src/term/terminfo/parser/compiled/tests.rs b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/test/src/term/terminfo/parser/compiled/tests.rs new file mode 100644 index 0000000000000000000000000000000000000000..8a9187b0495cc9a6e314cc01fd3b3cee21b9aed6 --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/test/src/term/terminfo/parser/compiled/tests.rs @@ -0,0 +1,8 @@ +use super::*; + +#[test] +fn test_veclens() { + assert_eq!(boolfnames.len(), boolnames.len()); + assert_eq!(numfnames.len(), numnames.len()); + assert_eq!(stringfnames.len(), stringnames.len()); +} diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/test/src/term/terminfo/searcher.rs b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/test/src/term/terminfo/searcher.rs new file mode 100644 index 0000000000000000000000000000000000000000..1f9d0bb345b7c6012cdb07803f7286ffda20340a --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/test/src/term/terminfo/searcher.rs @@ -0,0 +1,67 @@ +//! ncurses-compatible database discovery. +//! +//! Does not support hashed database, only filesystem! + +use std::path::PathBuf; +use std::{env, fs}; + +#[cfg(test)] +mod tests; + +/// Returns path to database entry for `term` +pub(crate) fn get_dbpath_for_term(term: &str) -> Option { + let mut dirs_to_search = Vec::new(); + let first_char = term.chars().next()?; + + // Find search directory + if let Some(dir) = env::var_os("TERMINFO") { + dirs_to_search.push(PathBuf::from(dir)); + } + + if let Ok(dirs) = env::var("TERMINFO_DIRS") { + for i in dirs.split(':') { + if i.is_empty() { + dirs_to_search.push(PathBuf::from("/usr/share/terminfo")); + } else { + dirs_to_search.push(PathBuf::from(i)); + } + } + } else { + // Found nothing in TERMINFO_DIRS, use the default paths: + // According to /etc/terminfo/README, after looking at + // ~/.terminfo, ncurses will search /etc/terminfo, then + // /lib/terminfo, and eventually /usr/share/terminfo. + // On Haiku the database can be found at /boot/system/data/terminfo + if let Some(mut homedir) = env::home_dir() { + homedir.push(".terminfo"); + dirs_to_search.push(homedir) + } + + dirs_to_search.push(PathBuf::from("/etc/terminfo")); + dirs_to_search.push(PathBuf::from("/lib/terminfo")); + dirs_to_search.push(PathBuf::from("/usr/share/terminfo")); + dirs_to_search.push(PathBuf::from("/boot/system/data/terminfo")); + } + + // Look for the terminal in all of the search directories + for mut p in dirs_to_search { + if fs::metadata(&p).is_ok() { + p.push(&first_char.to_string()); + p.push(term); + if fs::metadata(&p).is_ok() { + return Some(p); + } + p.pop(); + p.pop(); + + // on some installations the dir is named after the hex of the char + // (e.g., macOS) + p.push(&format!("{:x}", first_char as usize)); + p.push(term); + if fs::metadata(&p).is_ok() { + return Some(p); + } + } + } + None +} diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/test/src/term/terminfo/searcher/tests.rs b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/test/src/term/terminfo/searcher/tests.rs new file mode 100644 index 0000000000000000000000000000000000000000..ff532a97d5eb9f18bf39bf096cae0ebc74aa3fbd --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/test/src/term/terminfo/searcher/tests.rs @@ -0,0 +1,21 @@ +use super::*; + +#[test] +#[ignore = "buildbots don't have ncurses installed and I can't mock everything I need"] +fn test_get_dbpath_for_term() { + // woefully inadequate test coverage + // note: current tests won't work with non-standard terminfo hierarchies (e.g., macOS's) + use std::env; + fn x(t: &str) -> PathBuf { + get_dbpath_for_term(t).expect(&format!("no terminfo entry found for {t:?}")) + } + assert_eq!(x("screen"), PathBuf::from("/usr/share/terminfo/s/screen")); + assert_eq!(get_dbpath_for_term(""), None); + unsafe { + env::set_var("TERMINFO_DIRS", ":"); + } + assert_eq!(x("screen"), PathBuf::from("/usr/share/terminfo/s/screen")); + unsafe { + env::remove_var("TERMINFO_DIRS"); + } +} diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/test/src/term/win.rs b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/test/src/term/win.rs new file mode 100644 index 0000000000000000000000000000000000000000..62e5c43ea2745e55969c089fe180e11a342e204e --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/test/src/term/win.rs @@ -0,0 +1,166 @@ +//! Windows console handling + +// FIXME (#13400): this is only a tiny fraction of the Windows console api + +use std::io; +use std::io::prelude::*; + +use super::{Terminal, color}; + +/// A Terminal implementation that uses the Win32 Console API. +pub(crate) struct WinConsole { + buf: T, + def_foreground: color::Color, + def_background: color::Color, + foreground: color::Color, + background: color::Color, +} + +type SHORT = i16; +type WORD = u16; +type DWORD = u32; +type BOOL = i32; +type HANDLE = *mut u8; +// https://docs.microsoft.com/en-us/windows/console/getstdhandle +const STD_OUTPUT_HANDLE: DWORD = -11 as _; + +#[allow(non_snake_case)] +#[repr(C)] +struct SMALL_RECT { + Left: SHORT, + Top: SHORT, + Right: SHORT, + Bottom: SHORT, +} + +#[allow(non_snake_case)] +#[repr(C)] +struct COORD { + X: SHORT, + Y: SHORT, +} + +#[allow(non_snake_case)] +#[repr(C)] +struct CONSOLE_SCREEN_BUFFER_INFO { + dwSize: COORD, + dwCursorPosition: COORD, + wAttributes: WORD, + srWindow: SMALL_RECT, + dwMaximumWindowSize: COORD, +} + +#[allow(non_snake_case)] +#[link(name = "kernel32")] +unsafe extern "system" { + fn SetConsoleTextAttribute(handle: HANDLE, attr: WORD) -> BOOL; + fn GetStdHandle(which: DWORD) -> HANDLE; + fn GetConsoleScreenBufferInfo(handle: HANDLE, info: *mut CONSOLE_SCREEN_BUFFER_INFO) -> BOOL; +} + +fn color_to_bits(color: color::Color) -> u16 { + // magic numbers from mingw-w64's wincon.h + + let bits = match color % 8 { + color::BLACK => 0, + color::BLUE => 0x1, + color::GREEN => 0x2, + color::RED => 0x4, + color::YELLOW => 0x2 | 0x4, + color::MAGENTA => 0x1 | 0x4, + color::CYAN => 0x1 | 0x2, + color::WHITE => 0x1 | 0x2 | 0x4, + _ => unreachable!(), + }; + + if color >= 8 { bits | 0x8 } else { bits } +} + +fn bits_to_color(bits: u16) -> color::Color { + let color = match bits & 0x7 { + 0 => color::BLACK, + 0x1 => color::BLUE, + 0x2 => color::GREEN, + 0x4 => color::RED, + 0x6 => color::YELLOW, + 0x5 => color::MAGENTA, + 0x3 => color::CYAN, + 0x7 => color::WHITE, + _ => unreachable!(), + }; + + color | (u32::from(bits) & 0x8) // copy the hi-intensity bit +} + +impl WinConsole { + fn apply(&mut self) { + let _unused = self.buf.flush(); + let mut accum: WORD = 0; + accum |= color_to_bits(self.foreground); + accum |= color_to_bits(self.background) << 4; + + unsafe { + // You may be wondering, "but what about stderr?", and the answer + // to that is that setting terminal attributes on the stdout + // handle also sets them for stderr, since they go to the same + // terminal! Admittedly, this is fragile, since stderr could be + // redirected to a different console. This is good enough for + // rustc though. See #13400. + let out = GetStdHandle(STD_OUTPUT_HANDLE); + SetConsoleTextAttribute(out, accum); + } + } + + pub(crate) fn new(out: T) -> WinConsole { + use std::mem::MaybeUninit; + + let fg; + let bg; + unsafe { + let mut buffer_info = MaybeUninit::::uninit(); + let handle = GetStdHandle(STD_OUTPUT_HANDLE); + if GetConsoleScreenBufferInfo(handle, buffer_info.as_mut_ptr()) != 0 { + let buffer_info = buffer_info.assume_init(); + fg = bits_to_color(buffer_info.wAttributes); + bg = bits_to_color(buffer_info.wAttributes >> 4); + } else { + fg = color::WHITE; + bg = color::BLACK; + } + } + WinConsole { + buf: out, + def_foreground: fg, + def_background: bg, + foreground: fg, + background: bg, + } + } +} + +impl Write for WinConsole { + fn write(&mut self, buf: &[u8]) -> io::Result { + self.buf.write(buf) + } + + fn flush(&mut self) -> io::Result<()> { + self.buf.flush() + } +} + +impl Terminal for WinConsole { + fn fg(&mut self, color: color::Color) -> io::Result { + self.foreground = color; + self.apply(); + + Ok(true) + } + + fn reset(&mut self) -> io::Result { + self.foreground = self.def_foreground; + self.background = self.def_background; + self.apply(); + + Ok(true) + } +} diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/test/src/test_result.rs b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/test/src/test_result.rs new file mode 100644 index 0000000000000000000000000000000000000000..4cb43fc45fd6c2927ed3a9f8106dafbb76d2436d --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/test/src/test_result.rs @@ -0,0 +1,149 @@ +use std::any::Any; +#[cfg(unix)] +use std::os::unix::process::ExitStatusExt; +use std::process::ExitStatus; + +pub use self::TestResult::*; +use super::bench::BenchSamples; +use super::options::ShouldPanic; +use super::time; +use super::types::TestDesc; + +// Return code for secondary process. +// Start somewhere other than 0 so we know the return code means what we think +// it means. +pub(crate) const TR_OK: i32 = 50; + +// On Windows we use __fastfail to abort, which is documented to use this +// exception code. +#[cfg(windows)] +const STATUS_FAIL_FAST_EXCEPTION: i32 = 0xC0000409u32 as i32; + +// On Zircon (the Fuchsia kernel), an abort from userspace calls the +// LLVM implementation of __builtin_trap(), e.g., ud2 on x86, which +// raises a kernel exception. If a userspace process does not +// otherwise arrange exception handling, the kernel kills the process +// with this return code. +#[cfg(target_os = "fuchsia")] +const ZX_TASK_RETCODE_EXCEPTION_KILL: i32 = -1028; + +#[derive(Debug, Clone, PartialEq)] +pub enum TestResult { + TrOk, + TrFailed, + TrFailedMsg(String), + TrIgnored, + TrBench(BenchSamples), + TrTimedFail, +} + +/// Creates a `TestResult` depending on the raw result of test execution +/// and associated data. +pub(crate) fn calc_result( + desc: &TestDesc, + panic_payload: Option<&(dyn Any + Send)>, + time_opts: Option<&time::TestTimeOptions>, + exec_time: Option<&time::TestExecTime>, +) -> TestResult { + let result = match (desc.should_panic, panic_payload) { + // The test did or didn't panic, as expected. + (ShouldPanic::No, None) | (ShouldPanic::Yes, Some(_)) => TestResult::TrOk, + + // Check the actual panic message against the expected message. + (ShouldPanic::YesWithMessage(msg), Some(err)) => { + let maybe_panic_str = err + .downcast_ref::() + .map(|e| &**e) + .or_else(|| err.downcast_ref::<&'static str>().copied()); + + if maybe_panic_str.map(|e| e.contains(msg)).unwrap_or(false) { + TestResult::TrOk + } else if let Some(panic_str) = maybe_panic_str { + TestResult::TrFailedMsg(format!( + r#"panic did not contain expected string + panic message: {panic_str:?} + expected substring: {msg:?}"# + )) + } else { + TestResult::TrFailedMsg(format!( + r#"expected panic with string value, + found non-string value: `{:?}` + expected substring: {msg:?}"#, + (*err).type_id() + )) + } + } + + // The test should have panicked, but didn't panic. + (ShouldPanic::Yes, None) | (ShouldPanic::YesWithMessage(_), None) => { + let fn_location = if !desc.source_file.is_empty() { + &format!(" at {}:{}:{}", desc.source_file, desc.start_line, desc.start_col) + } else { + "" + }; + TestResult::TrFailedMsg(format!("test did not panic as expected{}", fn_location)) + } + + // The test should not have panicked, but did panic. + (ShouldPanic::No, Some(_)) => TestResult::TrFailed, + }; + + // If test is already failed (or allowed to fail), do not change the result. + if result != TestResult::TrOk { + return result; + } + + // Check if test is failed due to timeout. + if let (Some(opts), Some(time)) = (time_opts, exec_time) { + if opts.error_on_excess && opts.is_critical(desc, time) { + return TestResult::TrTimedFail; + } + } + + result +} + +/// Creates a `TestResult` depending on the exit code of test subprocess. +pub(crate) fn get_result_from_exit_code( + desc: &TestDesc, + status: ExitStatus, + time_opts: Option<&time::TestTimeOptions>, + exec_time: Option<&time::TestExecTime>, +) -> TestResult { + let result = match status.code() { + Some(TR_OK) => TestResult::TrOk, + #[cfg(windows)] + Some(STATUS_FAIL_FAST_EXCEPTION) => TestResult::TrFailed, + #[cfg(unix)] + None => match status.signal() { + Some(libc::SIGABRT) => TestResult::TrFailed, + Some(signal) => { + TestResult::TrFailedMsg(format!("child process exited with signal {signal}")) + } + None => unreachable!("status.code() returned None but status.signal() was None"), + }, + // Upon an abort, Fuchsia returns the status code ZX_TASK_RETCODE_EXCEPTION_KILL. + #[cfg(target_os = "fuchsia")] + Some(ZX_TASK_RETCODE_EXCEPTION_KILL) => TestResult::TrFailed, + #[cfg(not(unix))] + None => TestResult::TrFailedMsg(format!("unknown return code")), + #[cfg(any(windows, unix))] + Some(code) => TestResult::TrFailedMsg(format!("got unexpected return code {code}")), + #[cfg(not(any(windows, unix)))] + Some(_) => TestResult::TrFailed, + }; + + // If test is already failed (or allowed to fail), do not change the result. + if result != TestResult::TrOk { + return result; + } + + // Check if test is failed due to timeout. + if let (Some(opts), Some(time)) = (time_opts, exec_time) { + if opts.error_on_excess && opts.is_critical(desc, time) { + return TestResult::TrTimedFail; + } + } + + result +} diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/test/src/tests.rs b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/test/src/tests.rs new file mode 100644 index 0000000000000000000000000000000000000000..d986bd74f772b7fe6732844b60c4441649ce1a36 --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/test/src/tests.rs @@ -0,0 +1,914 @@ +use super::*; +use crate::{ + console::OutputLocation, + formatters::PrettyFormatter, + test::{ + MetricMap, + // FIXME (introduced by #65251) + // ShouldPanic, StaticTestName, TestDesc, TestDescAndFn, TestOpts, TestTimeOptions, + // TestType, TrFailedMsg, TrIgnored, TrOk, + parse_opts, + }, + time::{TestTimeOptions, TimeThreshold}, +}; + +impl TestOpts { + fn new() -> TestOpts { + TestOpts { + list: false, + filters: vec![], + filter_exact: false, + force_run_in_process: false, + exclude_should_panic: false, + run_ignored: RunIgnored::No, + run_tests: false, + bench_benchmarks: false, + logfile: None, + nocapture: false, + color: AutoColor, + format: OutputFormat::Pretty, + shuffle: false, + shuffle_seed: None, + test_threads: None, + skip: vec![], + time_options: None, + options: Options::new(), + fail_fast: false, + } + } +} + +fn one_ignored_one_unignored_test() -> Vec { + vec![ + TestDescAndFn { + desc: TestDesc { + name: StaticTestName("1"), + ignore: true, + ignore_message: None, + source_file: "", + start_line: 0, + start_col: 0, + end_line: 0, + end_col: 0, + should_panic: ShouldPanic::No, + compile_fail: false, + no_run: false, + test_type: TestType::Unknown, + }, + testfn: DynTestFn(Box::new(move || Ok(()))), + }, + TestDescAndFn { + desc: TestDesc { + name: StaticTestName("2"), + ignore: false, + ignore_message: None, + source_file: "", + start_line: 0, + start_col: 0, + end_line: 0, + end_col: 0, + should_panic: ShouldPanic::No, + compile_fail: false, + no_run: false, + test_type: TestType::Unknown, + }, + testfn: DynTestFn(Box::new(move || Ok(()))), + }, + ] +} + +#[test] +fn do_not_run_ignored_tests() { + fn f() -> Result<(), String> { + panic!(); + } + let desc = TestDescAndFn { + desc: TestDesc { + name: StaticTestName("whatever"), + ignore: true, + ignore_message: None, + source_file: "", + start_line: 0, + start_col: 0, + end_line: 0, + end_col: 0, + should_panic: ShouldPanic::No, + compile_fail: false, + no_run: false, + test_type: TestType::Unknown, + }, + testfn: DynTestFn(Box::new(f)), + }; + let (tx, rx) = channel(); + run_test(&TestOpts::new(), false, TestId(0), desc, RunStrategy::InProcess, tx); + let result = rx.recv().unwrap().result; + assert_ne!(result, TrOk); +} + +#[test] +fn ignored_tests_result_in_ignored() { + fn f() -> Result<(), String> { + Ok(()) + } + let desc = TestDescAndFn { + desc: TestDesc { + name: StaticTestName("whatever"), + ignore: true, + ignore_message: None, + source_file: "", + start_line: 0, + start_col: 0, + end_line: 0, + end_col: 0, + should_panic: ShouldPanic::No, + compile_fail: false, + no_run: false, + test_type: TestType::Unknown, + }, + testfn: DynTestFn(Box::new(f)), + }; + let (tx, rx) = channel(); + run_test(&TestOpts::new(), false, TestId(0), desc, RunStrategy::InProcess, tx); + let result = rx.recv().unwrap().result; + assert_eq!(result, TrIgnored); +} + +#[test] +#[cfg_attr(not(panic = "unwind"), ignore = "test requires unwinding support")] +fn test_should_panic() { + fn f() -> Result<(), String> { + panic!(); + } + let desc = TestDescAndFn { + desc: TestDesc { + name: StaticTestName("whatever"), + ignore: false, + ignore_message: None, + source_file: "", + start_line: 0, + start_col: 0, + end_line: 0, + end_col: 0, + should_panic: ShouldPanic::Yes, + compile_fail: false, + no_run: false, + test_type: TestType::Unknown, + }, + testfn: DynTestFn(Box::new(f)), + }; + let (tx, rx) = channel(); + run_test(&TestOpts::new(), false, TestId(0), desc, RunStrategy::InProcess, tx); + let result = rx.recv().unwrap().result; + assert_eq!(result, TrOk); +} + +#[test] +#[cfg_attr(not(panic = "unwind"), ignore = "test requires unwinding support")] +fn test_should_panic_good_message() { + fn f() -> Result<(), String> { + panic!("an error message"); + } + let desc = TestDescAndFn { + desc: TestDesc { + name: StaticTestName("whatever"), + ignore: false, + ignore_message: None, + source_file: "", + start_line: 0, + start_col: 0, + end_line: 0, + end_col: 0, + should_panic: ShouldPanic::YesWithMessage("error message"), + compile_fail: false, + no_run: false, + test_type: TestType::Unknown, + }, + testfn: DynTestFn(Box::new(f)), + }; + let (tx, rx) = channel(); + run_test(&TestOpts::new(), false, TestId(0), desc, RunStrategy::InProcess, tx); + let result = rx.recv().unwrap().result; + assert_eq!(result, TrOk); +} + +#[test] +#[cfg_attr(not(panic = "unwind"), ignore = "test requires unwinding support")] +fn test_should_panic_bad_message() { + use crate::tests::TrFailedMsg; + fn f() -> Result<(), String> { + panic!("an error message"); + } + let expected = "foobar"; + let failed_msg = r#"panic did not contain expected string + panic message: "an error message" + expected substring: "foobar""#; + let desc = TestDescAndFn { + desc: TestDesc { + name: StaticTestName("whatever"), + ignore: false, + ignore_message: None, + source_file: "", + start_line: 0, + start_col: 0, + end_line: 0, + end_col: 0, + should_panic: ShouldPanic::YesWithMessage(expected), + compile_fail: false, + no_run: false, + test_type: TestType::Unknown, + }, + testfn: DynTestFn(Box::new(f)), + }; + let (tx, rx) = channel(); + run_test(&TestOpts::new(), false, TestId(0), desc, RunStrategy::InProcess, tx); + let result = rx.recv().unwrap().result; + assert_eq!(result, TrFailedMsg(failed_msg.to_string())); +} + +#[test] +#[cfg_attr(not(panic = "unwind"), ignore = "test requires unwinding support")] +fn test_should_panic_non_string_message_type() { + use std::any::TypeId; + + use crate::tests::TrFailedMsg; + fn f() -> Result<(), String> { + std::panic::panic_any(1i32); + } + let expected = "foobar"; + let failed_msg = format!( + r#"expected panic with string value, + found non-string value: `{:?}` + expected substring: "foobar""#, + TypeId::of::() + ); + let desc = TestDescAndFn { + desc: TestDesc { + name: StaticTestName("whatever"), + ignore: false, + ignore_message: None, + source_file: "", + start_line: 0, + start_col: 0, + end_line: 0, + end_col: 0, + should_panic: ShouldPanic::YesWithMessage(expected), + compile_fail: false, + no_run: false, + test_type: TestType::Unknown, + }, + testfn: DynTestFn(Box::new(f)), + }; + let (tx, rx) = channel(); + run_test(&TestOpts::new(), false, TestId(0), desc, RunStrategy::InProcess, tx); + let result = rx.recv().unwrap().result; + assert_eq!(result, TrFailedMsg(failed_msg)); +} + +#[test] +#[cfg_attr(not(panic = "unwind"), ignore = "test requires unwinding support")] +fn test_should_panic_but_succeeds() { + let should_panic_variants = [ShouldPanic::Yes, ShouldPanic::YesWithMessage("error message")]; + + for &should_panic in should_panic_variants.iter() { + fn f() -> Result<(), String> { + Ok(()) + } + let desc = TestDescAndFn { + desc: TestDesc { + name: StaticTestName("whatever"), + ignore: false, + ignore_message: None, + source_file: "", + start_line: 0, + start_col: 0, + end_line: 0, + end_col: 0, + should_panic, + compile_fail: false, + no_run: false, + test_type: TestType::Unknown, + }, + testfn: DynTestFn(Box::new(f)), + }; + let (tx, rx) = channel(); + run_test(&TestOpts::new(), false, TestId(0), desc, RunStrategy::InProcess, tx); + let result = rx.recv().unwrap().result; + assert_eq!( + result, + TrFailedMsg("test did not panic as expected".to_string()), + "should_panic == {:?}", + should_panic + ); + } +} + +fn report_time_test_template(report_time: bool) -> Option { + fn f() -> Result<(), String> { + Ok(()) + } + let desc = TestDescAndFn { + desc: TestDesc { + name: StaticTestName("whatever"), + ignore: false, + ignore_message: None, + source_file: "", + start_line: 0, + start_col: 0, + end_line: 0, + end_col: 0, + should_panic: ShouldPanic::No, + compile_fail: false, + no_run: false, + test_type: TestType::Unknown, + }, + testfn: DynTestFn(Box::new(f)), + }; + let time_options = if report_time { Some(TestTimeOptions::default()) } else { None }; + + let test_opts = TestOpts { time_options, ..TestOpts::new() }; + let (tx, rx) = channel(); + run_test(&test_opts, false, TestId(0), desc, RunStrategy::InProcess, tx); + let exec_time = rx.recv().unwrap().exec_time; + exec_time +} + +#[test] +fn test_should_not_report_time() { + let exec_time = report_time_test_template(false); + assert!(exec_time.is_none()); +} + +#[test] +fn test_should_report_time() { + let exec_time = report_time_test_template(true); + assert!(exec_time.is_some()); +} + +fn time_test_failure_template(test_type: TestType) -> TestResult { + fn f() -> Result<(), String> { + Ok(()) + } + let desc = TestDescAndFn { + desc: TestDesc { + name: StaticTestName("whatever"), + ignore: false, + ignore_message: None, + source_file: "", + start_line: 0, + start_col: 0, + end_line: 0, + end_col: 0, + should_panic: ShouldPanic::No, + compile_fail: false, + no_run: false, + test_type, + }, + testfn: DynTestFn(Box::new(f)), + }; + // `Default` will initialize all the thresholds to 0 milliseconds. + let mut time_options = TestTimeOptions::default(); + time_options.error_on_excess = true; + + let test_opts = TestOpts { time_options: Some(time_options), ..TestOpts::new() }; + let (tx, rx) = channel(); + run_test(&test_opts, false, TestId(0), desc, RunStrategy::InProcess, tx); + let result = rx.recv().unwrap().result; + + result +} + +#[test] +fn test_error_on_exceed() { + let types = [TestType::UnitTest, TestType::IntegrationTest, TestType::DocTest]; + + for test_type in types.iter() { + let result = time_test_failure_template(*test_type); + + assert_eq!(result, TestResult::TrTimedFail); + } + + // Check that for unknown tests thresholds aren't applied. + let result = time_test_failure_template(TestType::Unknown); + assert_eq!(result, TestResult::TrOk); +} + +fn typed_test_desc(test_type: TestType) -> TestDesc { + TestDesc { + name: StaticTestName("whatever"), + ignore: false, + ignore_message: None, + source_file: "", + start_line: 0, + start_col: 0, + end_line: 0, + end_col: 0, + should_panic: ShouldPanic::No, + compile_fail: false, + no_run: false, + test_type, + } +} + +fn test_exec_time(millis: u64) -> TestExecTime { + TestExecTime(Duration::from_millis(millis)) +} + +#[test] +fn test_time_options_threshold() { + let unit = TimeThreshold::new(Duration::from_millis(50), Duration::from_millis(100)); + let integration = TimeThreshold::new(Duration::from_millis(500), Duration::from_millis(1000)); + let doc = TimeThreshold::new(Duration::from_millis(5000), Duration::from_millis(10000)); + + let options = TestTimeOptions { + error_on_excess: false, + unit_threshold: unit.clone(), + integration_threshold: integration.clone(), + doctest_threshold: doc.clone(), + }; + + let test_vector = [ + (TestType::UnitTest, unit.warn.as_millis() - 1, false, false), + (TestType::UnitTest, unit.warn.as_millis(), true, false), + (TestType::UnitTest, unit.critical.as_millis(), true, true), + (TestType::IntegrationTest, integration.warn.as_millis() - 1, false, false), + (TestType::IntegrationTest, integration.warn.as_millis(), true, false), + (TestType::IntegrationTest, integration.critical.as_millis(), true, true), + (TestType::DocTest, doc.warn.as_millis() - 1, false, false), + (TestType::DocTest, doc.warn.as_millis(), true, false), + (TestType::DocTest, doc.critical.as_millis(), true, true), + ]; + + for (test_type, time, expected_warn, expected_critical) in test_vector.iter() { + let test_desc = typed_test_desc(*test_type); + let exec_time = test_exec_time(*time as u64); + + assert_eq!(options.is_warn(&test_desc, &exec_time), *expected_warn); + assert_eq!(options.is_critical(&test_desc, &exec_time), *expected_critical); + } +} + +#[test] +fn parse_ignored_flag() { + let args = vec!["progname".to_string(), "filter".to_string(), "--ignored".to_string()]; + let opts = parse_opts(&args).unwrap().unwrap(); + assert_eq!(opts.run_ignored, RunIgnored::Only); +} + +#[test] +fn parse_show_output_flag() { + let args = vec!["progname".to_string(), "filter".to_string(), "--show-output".to_string()]; + let opts = parse_opts(&args).unwrap().unwrap(); + assert!(opts.options.display_output); +} + +#[test] +fn parse_include_ignored_flag() { + let args = vec!["progname".to_string(), "filter".to_string(), "--include-ignored".to_string()]; + let opts = parse_opts(&args).unwrap().unwrap(); + assert_eq!(opts.run_ignored, RunIgnored::Yes); +} + +#[test] +fn filter_for_ignored_option() { + // When we run ignored tests the test filter should filter out all the + // unignored tests and flip the ignore flag on the rest to false + + let mut opts = TestOpts::new(); + opts.run_tests = true; + opts.run_ignored = RunIgnored::Only; + + let tests = one_ignored_one_unignored_test(); + let filtered = filter_tests(&opts, tests); + + assert_eq!(filtered.len(), 1); + assert_eq!(filtered[0].desc.name.to_string(), "1"); + assert!(!filtered[0].desc.ignore); +} + +#[test] +fn run_include_ignored_option() { + // When we "--include-ignored" tests, the ignore flag should be set to false on + // all tests and no test filtered out + + let mut opts = TestOpts::new(); + opts.run_tests = true; + opts.run_ignored = RunIgnored::Yes; + + let tests = one_ignored_one_unignored_test(); + let filtered = filter_tests(&opts, tests); + + assert_eq!(filtered.len(), 2); + assert!(!filtered[0].desc.ignore); + assert!(!filtered[1].desc.ignore); +} + +#[test] +fn exclude_should_panic_option() { + let mut opts = TestOpts::new(); + opts.run_tests = true; + opts.exclude_should_panic = true; + + let mut tests = one_ignored_one_unignored_test(); + tests.push(TestDescAndFn { + desc: TestDesc { + name: StaticTestName("3"), + ignore: false, + ignore_message: None, + source_file: "", + start_line: 0, + start_col: 0, + end_line: 0, + end_col: 0, + should_panic: ShouldPanic::Yes, + compile_fail: false, + no_run: false, + test_type: TestType::Unknown, + }, + testfn: DynTestFn(Box::new(move || Ok(()))), + }); + + let filtered = filter_tests(&opts, tests); + + assert_eq!(filtered.len(), 2); + assert!(filtered.iter().all(|test| test.desc.should_panic == ShouldPanic::No)); +} + +#[test] +fn exact_filter_match() { + fn tests() -> Vec { + ["base", "base::test", "base::test1", "base::test2"] + .into_iter() + .map(|name| TestDescAndFn { + desc: TestDesc { + name: StaticTestName(name), + ignore: false, + ignore_message: None, + source_file: "", + start_line: 0, + start_col: 0, + end_line: 0, + end_col: 0, + should_panic: ShouldPanic::No, + compile_fail: false, + no_run: false, + test_type: TestType::Unknown, + }, + testfn: DynTestFn(Box::new(move || Ok(()))), + }) + .collect() + } + + let substr = + filter_tests(&TestOpts { filters: vec!["base".into()], ..TestOpts::new() }, tests()); + assert_eq!(substr.len(), 4); + + let substr = + filter_tests(&TestOpts { filters: vec!["bas".into()], ..TestOpts::new() }, tests()); + assert_eq!(substr.len(), 4); + + let substr = + filter_tests(&TestOpts { filters: vec!["::test".into()], ..TestOpts::new() }, tests()); + assert_eq!(substr.len(), 3); + + let substr = + filter_tests(&TestOpts { filters: vec!["base::test".into()], ..TestOpts::new() }, tests()); + assert_eq!(substr.len(), 3); + + let substr = filter_tests( + &TestOpts { filters: vec!["test1".into(), "test2".into()], ..TestOpts::new() }, + tests(), + ); + assert_eq!(substr.len(), 2); + + let exact = filter_tests( + &TestOpts { filters: vec!["base".into()], filter_exact: true, ..TestOpts::new() }, + tests(), + ); + assert_eq!(exact.len(), 1); + + let exact = filter_tests( + &TestOpts { filters: vec!["bas".into()], filter_exact: true, ..TestOpts::new() }, + tests(), + ); + assert_eq!(exact.len(), 0); + + let exact = filter_tests( + &TestOpts { filters: vec!["::test".into()], filter_exact: true, ..TestOpts::new() }, + tests(), + ); + assert_eq!(exact.len(), 0); + + let exact = filter_tests( + &TestOpts { filters: vec!["base::test".into()], filter_exact: true, ..TestOpts::new() }, + tests(), + ); + assert_eq!(exact.len(), 1); + + let exact = filter_tests( + &TestOpts { + filters: vec!["base".into(), "base::test".into()], + filter_exact: true, + ..TestOpts::new() + }, + tests(), + ); + assert_eq!(exact.len(), 2); +} + +fn sample_tests() -> Vec { + let names = vec![ + "sha1::test".to_string(), + "isize::test_to_str".to_string(), + "isize::test_pow".to_string(), + "test::do_not_run_ignored_tests".to_string(), + "test::ignored_tests_result_in_ignored".to_string(), + "test::first_free_arg_should_be_a_filter".to_string(), + "test::parse_ignored_flag".to_string(), + "test::parse_include_ignored_flag".to_string(), + "test::filter_for_ignored_option".to_string(), + "test::run_include_ignored_option".to_string(), + "test::sort_tests".to_string(), + ]; + fn testfn() -> Result<(), String> { + Ok(()) + } + let mut tests = Vec::new(); + for name in &names { + let test = TestDescAndFn { + desc: TestDesc { + name: DynTestName((*name).clone()), + ignore: false, + ignore_message: None, + source_file: "", + start_line: 0, + start_col: 0, + end_line: 0, + end_col: 0, + should_panic: ShouldPanic::No, + compile_fail: false, + no_run: false, + test_type: TestType::Unknown, + }, + testfn: DynTestFn(Box::new(testfn)), + }; + tests.push(test); + } + tests +} + +#[test] +fn shuffle_tests() { + let mut opts = TestOpts::new(); + opts.shuffle = true; + + let shuffle_seed = get_shuffle_seed(&opts).unwrap(); + + let left = + sample_tests().into_iter().enumerate().map(|(i, e)| (TestId(i), e)).collect::>(); + let mut right = + sample_tests().into_iter().enumerate().map(|(i, e)| (TestId(i), e)).collect::>(); + + assert!(left.iter().zip(&right).all(|(a, b)| a.1.desc.name == b.1.desc.name)); + + helpers::shuffle::shuffle_tests(shuffle_seed, right.as_mut_slice()); + + assert!(left.iter().zip(right).any(|(a, b)| a.1.desc.name != b.1.desc.name)); +} + +#[test] +fn shuffle_tests_with_seed() { + let mut opts = TestOpts::new(); + opts.shuffle = true; + + let shuffle_seed = get_shuffle_seed(&opts).unwrap(); + + let mut left = + sample_tests().into_iter().enumerate().map(|(i, e)| (TestId(i), e)).collect::>(); + let mut right = + sample_tests().into_iter().enumerate().map(|(i, e)| (TestId(i), e)).collect::>(); + + helpers::shuffle::shuffle_tests(shuffle_seed, left.as_mut_slice()); + helpers::shuffle::shuffle_tests(shuffle_seed, right.as_mut_slice()); + + assert!(left.iter().zip(right).all(|(a, b)| a.1.desc.name == b.1.desc.name)); +} + +#[test] +fn order_depends_on_more_than_seed() { + let mut opts = TestOpts::new(); + opts.shuffle = true; + + let shuffle_seed = get_shuffle_seed(&opts).unwrap(); + + let mut left_tests = sample_tests(); + let mut right_tests = sample_tests(); + + left_tests.pop(); + right_tests.remove(0); + + let mut left = + left_tests.into_iter().enumerate().map(|(i, e)| (TestId(i), e)).collect::>(); + let mut right = + right_tests.into_iter().enumerate().map(|(i, e)| (TestId(i), e)).collect::>(); + + assert_eq!(left.len(), right.len()); + + assert!(left.iter().zip(&right).all(|(a, b)| a.0 == b.0)); + + helpers::shuffle::shuffle_tests(shuffle_seed, left.as_mut_slice()); + helpers::shuffle::shuffle_tests(shuffle_seed, right.as_mut_slice()); + + assert!(left.iter().zip(right).any(|(a, b)| a.0 != b.0)); +} + +#[test] +fn test_metricmap_compare() { + let mut m1 = MetricMap::new(); + let mut m2 = MetricMap::new(); + m1.insert_metric("in-both-noise", 1000.0, 200.0); + m2.insert_metric("in-both-noise", 1100.0, 200.0); + + m1.insert_metric("in-first-noise", 1000.0, 2.0); + m2.insert_metric("in-second-noise", 1000.0, 2.0); + + m1.insert_metric("in-both-want-downwards-but-regressed", 1000.0, 10.0); + m2.insert_metric("in-both-want-downwards-but-regressed", 2000.0, 10.0); + + m1.insert_metric("in-both-want-downwards-and-improved", 2000.0, 10.0); + m2.insert_metric("in-both-want-downwards-and-improved", 1000.0, 10.0); + + m1.insert_metric("in-both-want-upwards-but-regressed", 2000.0, -10.0); + m2.insert_metric("in-both-want-upwards-but-regressed", 1000.0, -10.0); + + m1.insert_metric("in-both-want-upwards-and-improved", 1000.0, -10.0); + m2.insert_metric("in-both-want-upwards-and-improved", 2000.0, -10.0); +} + +#[test] +fn test_bench_once_no_iter() { + fn f(_: &mut Bencher) -> Result<(), String> { + Ok(()) + } + bench::run_once(f).unwrap(); +} + +#[test] +fn test_bench_once_iter() { + fn f(b: &mut Bencher) -> Result<(), String> { + b.iter(|| {}); + Ok(()) + } + bench::run_once(f).unwrap(); +} + +#[test] +fn test_bench_no_iter() { + fn f(_: &mut Bencher) -> Result<(), String> { + Ok(()) + } + + let (tx, rx) = channel(); + + let desc = TestDesc { + name: StaticTestName("f"), + ignore: false, + ignore_message: None, + source_file: "", + start_line: 0, + start_col: 0, + end_line: 0, + end_col: 0, + should_panic: ShouldPanic::No, + compile_fail: false, + no_run: false, + test_type: TestType::Unknown, + }; + + crate::bench::benchmark(TestId(0), desc, tx, true, f); + rx.recv().unwrap(); +} + +#[test] +fn test_bench_iter() { + fn f(b: &mut Bencher) -> Result<(), String> { + b.iter(|| {}); + Ok(()) + } + + let (tx, rx) = channel(); + + let desc = TestDesc { + name: StaticTestName("f"), + ignore: false, + ignore_message: None, + source_file: "", + start_line: 0, + start_col: 0, + end_line: 0, + end_col: 0, + should_panic: ShouldPanic::No, + compile_fail: false, + no_run: false, + test_type: TestType::Unknown, + }; + + crate::bench::benchmark(TestId(0), desc, tx, true, f); + rx.recv().unwrap(); +} + +#[test] +fn should_sort_failures_before_printing_them() { + let test_a = TestDesc { + name: StaticTestName("a"), + ignore: false, + ignore_message: None, + source_file: "", + start_line: 0, + start_col: 0, + end_line: 0, + end_col: 0, + should_panic: ShouldPanic::No, + compile_fail: false, + no_run: false, + test_type: TestType::Unknown, + }; + + let test_b = TestDesc { + name: StaticTestName("b"), + ignore: false, + ignore_message: None, + source_file: "", + start_line: 0, + start_col: 0, + end_line: 0, + end_col: 0, + should_panic: ShouldPanic::No, + compile_fail: false, + no_run: false, + test_type: TestType::Unknown, + }; + + let mut out = PrettyFormatter::new(OutputLocation::Raw(Vec::new()), false, 10, false, None); + + let st = console::ConsoleTestState { + log_out: None, + total: 0, + passed: 0, + failed: 0, + ignored: 0, + filtered_out: 0, + measured: 0, + exec_time: None, + metrics: MetricMap::new(), + failures: vec![(test_b, Vec::new()), (test_a, Vec::new())], + options: Options::new(), + not_failures: Vec::new(), + ignores: Vec::new(), + time_failures: Vec::new(), + }; + + out.write_failures(&st).unwrap(); + let s = match out.output_location() { + &OutputLocation::Raw(ref m) => String::from_utf8_lossy(&m[..]), + &OutputLocation::Pretty(_) => unreachable!(), + }; + + let apos = s.find("a").unwrap(); + let bpos = s.find("b").unwrap(); + assert!(apos < bpos); +} + +#[test] +#[cfg(not(target_os = "emscripten"))] +fn test_dyn_bench_returning_err_fails_when_run_as_test() { + fn f(_: &mut Bencher) -> Result<(), String> { + Result::Err("An error".into()) + } + let desc = TestDescAndFn { + desc: TestDesc { + name: StaticTestName("whatever"), + ignore: false, + ignore_message: None, + source_file: "", + start_line: 0, + start_col: 0, + end_line: 0, + end_col: 0, + should_panic: ShouldPanic::No, + compile_fail: false, + no_run: false, + test_type: TestType::Unknown, + }, + testfn: DynBenchFn(Box::new(f)), + }; + let (tx, rx) = channel(); + let notify = move |event: TestEvent| { + if let TestEvent::TeResult(result) = event { + tx.send(result).unwrap(); + } + Ok(()) + }; + run_tests(&TestOpts { run_tests: true, ..TestOpts::new() }, vec![desc], notify).unwrap(); + let result = rx.recv().unwrap().result; + assert_eq!(result, TrFailed); +} diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/test/src/time.rs b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/test/src/time.rs new file mode 100644 index 0000000000000000000000000000000000000000..f63b156b3dc5a58eb2863bc761f6bb9019372c52 --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/test/src/time.rs @@ -0,0 +1,195 @@ +//! Module `time` contains everything related to the time measurement of unit tests +//! execution. +//! The purposes of this module: +//! - Check whether test is timed out. +//! - Provide helpers for `report-time` and `measure-time` options. +//! - Provide newtypes for executions times. + +use std::str::FromStr; +use std::time::{Duration, Instant}; +use std::{env, fmt}; + +use super::types::{TestDesc, TestType}; + +pub(crate) const TEST_WARN_TIMEOUT_S: u64 = 60; + +/// This small module contains constants used by `report-time` option. +/// Those constants values will be used if corresponding environment variables are not set. +/// +/// To override values for unit-tests, use a constant `RUST_TEST_TIME_UNIT`, +/// To override values for integration tests, use a constant `RUST_TEST_TIME_INTEGRATION`, +/// To override values for doctests, use a constant `RUST_TEST_TIME_DOCTEST`. +/// +/// Example of the expected format is `RUST_TEST_TIME_xxx=100,200`, where 100 means +/// warn time, and 200 means critical time. +pub(crate) mod time_constants { + use std::time::Duration; + + use super::TEST_WARN_TIMEOUT_S; + + /// Environment variable for overriding default threshold for unit-tests. + pub(crate) const UNIT_ENV_NAME: &str = "RUST_TEST_TIME_UNIT"; + + // Unit tests are supposed to be really quick. + pub(crate) const UNIT_WARN: Duration = Duration::from_millis(50); + pub(crate) const UNIT_CRITICAL: Duration = Duration::from_millis(100); + + /// Environment variable for overriding default threshold for unit-tests. + pub(crate) const INTEGRATION_ENV_NAME: &str = "RUST_TEST_TIME_INTEGRATION"; + + // Integration tests may have a lot of work, so they can take longer to execute. + pub(crate) const INTEGRATION_WARN: Duration = Duration::from_millis(500); + pub(crate) const INTEGRATION_CRITICAL: Duration = Duration::from_millis(1000); + + /// Environment variable for overriding default threshold for unit-tests. + pub(crate) const DOCTEST_ENV_NAME: &str = "RUST_TEST_TIME_DOCTEST"; + + // Doctests are similar to integration tests, because they can include a lot of + // initialization code. + pub(crate) const DOCTEST_WARN: Duration = INTEGRATION_WARN; + pub(crate) const DOCTEST_CRITICAL: Duration = INTEGRATION_CRITICAL; + + // Do not suppose anything about unknown tests, base limits on the + // `TEST_WARN_TIMEOUT_S` constant. + pub(crate) const UNKNOWN_WARN: Duration = Duration::from_secs(TEST_WARN_TIMEOUT_S); + pub(crate) const UNKNOWN_CRITICAL: Duration = Duration::from_secs(TEST_WARN_TIMEOUT_S * 2); +} + +/// Returns an `Instance` object denoting when the test should be considered +/// timed out. +pub(crate) fn get_default_test_timeout() -> Instant { + Instant::now() + Duration::from_secs(TEST_WARN_TIMEOUT_S) +} + +/// The measured execution time of a unit test. +#[derive(Debug, Clone, PartialEq)] +pub struct TestExecTime(pub Duration); + +impl fmt::Display for TestExecTime { + fn fmt(&self, f: &mut fmt::Formatter<'_>) -> fmt::Result { + write!(f, "{:.3}s", self.0.as_secs_f64()) + } +} + +/// The measured execution time of the whole test suite. +#[derive(Debug, Clone, Default, PartialEq)] +pub(crate) struct TestSuiteExecTime(pub Duration); + +impl fmt::Display for TestSuiteExecTime { + fn fmt(&self, f: &mut fmt::Formatter<'_>) -> fmt::Result { + write!(f, "{:.2}s", self.0.as_secs_f64()) + } +} + +/// Structure denoting time limits for test execution. +#[derive(Copy, Clone, Debug, Default, PartialEq, Eq)] +pub struct TimeThreshold { + pub warn: Duration, + pub critical: Duration, +} + +impl TimeThreshold { + /// Creates a new `TimeThreshold` instance with provided durations. + pub fn new(warn: Duration, critical: Duration) -> Self { + Self { warn, critical } + } + + /// Attempts to create a `TimeThreshold` instance with values obtained + /// from the environment variable, and returns `None` if the variable + /// is not set. + /// Environment variable format is expected to match `\d+,\d+`. + /// + /// # Panics + /// + /// Panics if variable with provided name is set but contains inappropriate + /// value. + pub fn from_env_var(env_var_name: &str) -> Option { + let durations_str = env::var(env_var_name).ok()?; + let (warn_str, critical_str) = durations_str.split_once(',').unwrap_or_else(|| { + panic!( + "Duration variable {env_var_name} expected to have 2 numbers separated by comma, but got {durations_str}" + ) + }); + + let parse_u64 = |v| { + u64::from_str(v).unwrap_or_else(|_| { + panic!( + "Duration value in variable {env_var_name} is expected to be a number, but got {v}" + ) + }) + }; + + let warn = parse_u64(warn_str); + let critical = parse_u64(critical_str); + if warn > critical { + panic!("Test execution warn time should be less or equal to the critical time"); + } + + Some(Self::new(Duration::from_millis(warn), Duration::from_millis(critical))) + } +} + +/// Structure with parameters for calculating test execution time. +#[derive(Copy, Clone, Debug, Default, PartialEq, Eq)] +pub struct TestTimeOptions { + /// Denotes if the test critical execution time limit excess should be considered + /// a test failure. + pub error_on_excess: bool, + pub unit_threshold: TimeThreshold, + pub integration_threshold: TimeThreshold, + pub doctest_threshold: TimeThreshold, +} + +impl TestTimeOptions { + pub fn new_from_env(error_on_excess: bool) -> Self { + let unit_threshold = TimeThreshold::from_env_var(time_constants::UNIT_ENV_NAME) + .unwrap_or_else(Self::default_unit); + + let integration_threshold = + TimeThreshold::from_env_var(time_constants::INTEGRATION_ENV_NAME) + .unwrap_or_else(Self::default_integration); + + let doctest_threshold = TimeThreshold::from_env_var(time_constants::DOCTEST_ENV_NAME) + .unwrap_or_else(Self::default_doctest); + + Self { error_on_excess, unit_threshold, integration_threshold, doctest_threshold } + } + + pub fn is_warn(&self, test: &TestDesc, exec_time: &TestExecTime) -> bool { + exec_time.0 >= self.warn_time(test) + } + + pub fn is_critical(&self, test: &TestDesc, exec_time: &TestExecTime) -> bool { + exec_time.0 >= self.critical_time(test) + } + + fn warn_time(&self, test: &TestDesc) -> Duration { + match test.test_type { + TestType::UnitTest => self.unit_threshold.warn, + TestType::IntegrationTest => self.integration_threshold.warn, + TestType::DocTest => self.doctest_threshold.warn, + TestType::Unknown => time_constants::UNKNOWN_WARN, + } + } + + fn critical_time(&self, test: &TestDesc) -> Duration { + match test.test_type { + TestType::UnitTest => self.unit_threshold.critical, + TestType::IntegrationTest => self.integration_threshold.critical, + TestType::DocTest => self.doctest_threshold.critical, + TestType::Unknown => time_constants::UNKNOWN_CRITICAL, + } + } + + fn default_unit() -> TimeThreshold { + TimeThreshold::new(time_constants::UNIT_WARN, time_constants::UNIT_CRITICAL) + } + + fn default_integration() -> TimeThreshold { + TimeThreshold::new(time_constants::INTEGRATION_WARN, time_constants::INTEGRATION_CRITICAL) + } + + fn default_doctest() -> TimeThreshold { + TimeThreshold::new(time_constants::DOCTEST_WARN, time_constants::DOCTEST_CRITICAL) + } +} diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/test/src/types.rs b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/test/src/types.rs new file mode 100644 index 0000000000000000000000000000000000000000..802cab989c6a9770c004f3395e09e83e65fbcb38 --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/test/src/types.rs @@ -0,0 +1,286 @@ +//! Common types used by `libtest`. + +use std::borrow::Cow; +use std::fmt; +use std::sync::mpsc::Sender; + +pub use NamePadding::*; +pub use TestFn::*; +pub use TestName::*; + +use super::bench::Bencher; +use super::event::CompletedTest; +use super::{__rust_begin_short_backtrace, options}; + +/// Type of the test according to the [Rust book](https://doc.rust-lang.org/cargo/guide/tests.html) +/// conventions. +#[derive(Copy, Clone, Debug, PartialEq, Eq, Hash)] +pub enum TestType { + /// Unit-tests are expected to be in the `src` folder of the crate. + UnitTest, + /// Integration-style tests are expected to be in the `tests` folder of the crate. + IntegrationTest, + /// Doctests are created by the `librustdoc` manually, so it's a different type of test. + DocTest, + /// Tests for the sources that don't follow the project layout convention + /// (e.g. tests in raw `main.rs` compiled by calling `rustc --test` directly). + Unknown, +} + +#[derive(Clone, Copy, PartialEq, Eq, Hash, Debug)] +pub enum NamePadding { + PadNone, + PadOnRight, +} + +// The name of a test. By convention this follows the rules for rust +// paths; i.e., it should be a series of identifiers separated by double +// colons. This way if some test runner wants to arrange the tests +// hierarchically it may. +#[derive(Clone, PartialEq, Eq, Hash, Debug)] +pub enum TestName { + StaticTestName(&'static str), + DynTestName(String), + AlignedTestName(Cow<'static, str>, NamePadding), +} + +impl TestName { + pub fn as_slice(&self) -> &str { + match *self { + StaticTestName(s) => s, + DynTestName(ref s) => s, + AlignedTestName(ref s, _) => s, + } + } + + pub fn padding(&self) -> NamePadding { + match self { + &AlignedTestName(_, p) => p, + _ => PadNone, + } + } + + pub fn with_padding(&self, padding: NamePadding) -> TestName { + let name = match *self { + TestName::StaticTestName(name) => Cow::Borrowed(name), + TestName::DynTestName(ref name) => Cow::Owned(name.clone()), + TestName::AlignedTestName(ref name, _) => name.clone(), + }; + + TestName::AlignedTestName(name, padding) + } +} +impl fmt::Display for TestName { + fn fmt(&self, f: &mut fmt::Formatter<'_>) -> fmt::Result { + fmt::Display::fmt(self.as_slice(), f) + } +} + +// A function that runs a test. If the function returns successfully, +// the test succeeds; if the function panics or returns Result::Err +// then the test fails. We may need to come up with a more clever +// definition of test in order to support isolation of tests into +// threads. +pub enum TestFn { + StaticTestFn(fn() -> Result<(), String>), + StaticBenchFn(fn(&mut Bencher) -> Result<(), String>), + StaticBenchAsTestFn(fn(&mut Bencher) -> Result<(), String>), + DynTestFn(Box Result<(), String> + Send>), + DynBenchFn(Box Result<(), String> + Send>), + DynBenchAsTestFn(Box Result<(), String> + Send>), +} + +impl TestFn { + pub fn padding(&self) -> NamePadding { + match *self { + StaticTestFn(..) => PadNone, + StaticBenchFn(..) => PadOnRight, + StaticBenchAsTestFn(..) => PadNone, + DynTestFn(..) => PadNone, + DynBenchFn(..) => PadOnRight, + DynBenchAsTestFn(..) => PadNone, + } + } + + pub(crate) fn into_runnable(self) -> Runnable { + match self { + StaticTestFn(f) => Runnable::Test(RunnableTest::Static(f)), + StaticBenchFn(f) => Runnable::Bench(RunnableBench::Static(f)), + StaticBenchAsTestFn(f) => Runnable::Test(RunnableTest::StaticBenchAsTest(f)), + DynTestFn(f) => Runnable::Test(RunnableTest::Dynamic(f)), + DynBenchFn(f) => Runnable::Bench(RunnableBench::Dynamic(f)), + DynBenchAsTestFn(f) => Runnable::Test(RunnableTest::DynamicBenchAsTest(f)), + } + } +} + +impl fmt::Debug for TestFn { + fn fmt(&self, f: &mut fmt::Formatter<'_>) -> fmt::Result { + f.write_str(match *self { + StaticTestFn(..) => "StaticTestFn(..)", + StaticBenchFn(..) => "StaticBenchFn(..)", + StaticBenchAsTestFn(..) => "StaticBenchAsTestFn(..)", + DynTestFn(..) => "DynTestFn(..)", + DynBenchFn(..) => "DynBenchFn(..)", + DynBenchAsTestFn(..) => "DynBenchAsTestFn(..)", + }) + } +} + +pub(crate) enum Runnable { + Test(RunnableTest), + Bench(RunnableBench), +} + +pub(crate) enum RunnableTest { + Static(fn() -> Result<(), String>), + Dynamic(Box Result<(), String> + Send>), + StaticBenchAsTest(fn(&mut Bencher) -> Result<(), String>), + DynamicBenchAsTest(Box Result<(), String> + Send>), +} + +impl RunnableTest { + pub(crate) fn run(self) -> Result<(), String> { + match self { + RunnableTest::Static(f) => __rust_begin_short_backtrace(f), + RunnableTest::Dynamic(f) => __rust_begin_short_backtrace(f), + RunnableTest::StaticBenchAsTest(f) => { + crate::bench::run_once(|b| __rust_begin_short_backtrace(|| f(b))) + } + RunnableTest::DynamicBenchAsTest(f) => { + crate::bench::run_once(|b| __rust_begin_short_backtrace(|| f(b))) + } + } + } + + pub(crate) fn is_dynamic(&self) -> bool { + match self { + RunnableTest::Static(_) => false, + RunnableTest::StaticBenchAsTest(_) => false, + RunnableTest::Dynamic(_) => true, + RunnableTest::DynamicBenchAsTest(_) => true, + } + } +} + +pub(crate) enum RunnableBench { + Static(fn(&mut Bencher) -> Result<(), String>), + Dynamic(Box Result<(), String> + Send>), +} + +impl RunnableBench { + pub(crate) fn run( + self, + id: TestId, + desc: &TestDesc, + monitor_ch: &Sender, + nocapture: bool, + ) { + match self { + RunnableBench::Static(f) => { + crate::bench::benchmark(id, desc.clone(), monitor_ch.clone(), nocapture, f) + } + RunnableBench::Dynamic(f) => { + crate::bench::benchmark(id, desc.clone(), monitor_ch.clone(), nocapture, f) + } + } + } +} + +// A unique integer associated with each test. +#[derive(Clone, Copy, Debug, Eq, Hash, PartialEq)] +pub struct TestId(pub usize); + +// The definition of a single test. A test runner will run a list of +// these. +#[derive(Clone, Debug)] +pub struct TestDesc { + pub name: TestName, + pub ignore: bool, + pub ignore_message: Option<&'static str>, + pub source_file: &'static str, + pub start_line: usize, + pub start_col: usize, + pub end_line: usize, + pub end_col: usize, + pub should_panic: options::ShouldPanic, + pub compile_fail: bool, + pub no_run: bool, + pub test_type: TestType, +} + +impl TestDesc { + pub fn padded_name(&self, column_count: usize, align: NamePadding) -> String { + let mut name = String::from(self.name.as_slice()); + let fill = column_count.saturating_sub(name.len()); + let pad = " ".repeat(fill); + match align { + PadNone => name, + PadOnRight => { + name.push_str(&pad); + name + } + } + } + + /// Returns None for ignored test or tests that are just run, otherwise returns a description of the type of test. + /// Descriptions include "should panic", "compile fail" and "compile". + pub fn test_mode(&self) -> Option<&'static str> { + if self.ignore { + return None; + } + match self.should_panic { + options::ShouldPanic::Yes | options::ShouldPanic::YesWithMessage(_) => { + return Some("should panic"); + } + options::ShouldPanic::No => {} + } + if self.compile_fail { + return Some("compile fail"); + } + if self.no_run { + return Some("compile"); + } + None + } +} + +#[derive(Debug)] +pub struct TestDescAndFn { + pub desc: TestDesc, + pub testfn: TestFn, +} + +impl TestDescAndFn { + pub const fn new_doctest( + test_name: &'static str, + ignore: bool, + source_file: &'static str, + start_line: usize, + no_run: bool, + should_panic: bool, + testfn: TestFn, + ) -> Self { + Self { + desc: TestDesc { + name: StaticTestName(test_name), + ignore, + ignore_message: None, + source_file, + start_line, + start_col: 0, + end_line: 0, + end_col: 0, + compile_fail: false, + no_run, + should_panic: if should_panic { + options::ShouldPanic::Yes + } else { + options::ShouldPanic::No + }, + test_type: TestType::DocTest, + }, + testfn, + } + } +} diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/unwind/Cargo.toml b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/unwind/Cargo.toml new file mode 100644 index 0000000000000000000000000000000000000000..f02744a107082c751adf00de0af7de9cb7894a30 --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/unwind/Cargo.toml @@ -0,0 +1,38 @@ +[package] +name = "unwind" +version = "0.0.0" +license = "MIT OR Apache-2.0" +repository = "https://github.com/rust-lang/rust.git" +edition = "2024" +include = [ + '/libunwind/*', +] + +[lib] +test = false +bench = false +doc = false + +[dependencies] +core = { path = "../rustc-std-workspace-core", package = "rustc-std-workspace-core" } + +[target.'cfg(not(all(windows, target_env = "msvc")))'.dependencies] +libc = { version = "0.2.140", features = ['rustc-dep-of-std'], default-features = false } + +[target.'cfg(target_os = "xous")'.dependencies] +unwinding = { version = "0.2.7", features = ['rustc-dep-of-std', 'unwinder', 'fde-custom'], default-features = false } + +[features] + +# Only applies for Linux and Fuchsia targets +# Static link to the in-tree build of llvm libunwind +llvm-libunwind = [] + +# Only applies for Linux and Fuchsia targets +# If crt-static is enabled, static link to `libunwind.a` provided by system +# If crt-static is disabled, dynamic link to `libunwind.so` provided by system +system-llvm-libunwind = [] + +[lints.rust.unexpected_cfgs] +level = "warn" +check-cfg = ['cfg(emscripten_wasm_eh)', 'cfg(target_arch, values("loongarch32"))'] diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/unwind/src/lib.rs b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/unwind/src/lib.rs new file mode 100644 index 0000000000000000000000000000000000000000..cce6ca748cccd3a38daf8e6436d5d6f60ce7cc04 --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/unwind/src/lib.rs @@ -0,0 +1,215 @@ +#![no_std] +#![unstable(feature = "panic_unwind", issue = "32837")] +#![feature(cfg_emscripten_wasm_eh)] +#![feature(link_cfg)] +#![feature(staged_api)] +#![cfg_attr( + all(target_family = "wasm", any(not(target_os = "emscripten"), emscripten_wasm_eh)), + feature(link_llvm_intrinsics, simd_wasm64, asm_experimental_arch) +)] +#![allow(internal_features)] +#![allow(unused_features)] +#![deny(unsafe_op_in_unsafe_fn)] + +// Force libc to be included even if unused. This is required by many platforms. +#[cfg(not(all(windows, target_env = "msvc")))] +extern crate libc as _; + +cfg_select! { + target_env = "msvc" => { + // Windows MSVC no extra unwinder support needed + } + any( + target_os = "l4re", + target_os = "none", + target_os = "espidf", + target_os = "nuttx", + ) => { + // These "unix" family members do not have unwinder. + } + any( + unix, + windows, + target_os = "psp", + target_os = "solid_asp3", + all(target_vendor = "fortanix", target_env = "sgx"), + ) => { + mod libunwind; + pub use libunwind::*; + } + target_os = "xous" => { + mod unwinding; + pub use unwinding::*; + } + target_family = "wasm" => { + mod wasm; + pub use wasm::*; + } + _ => { + // no unwinder on the system! + // - os=none ("bare metal" targets) + // - os=hermit + // - os=uefi + // - os=cuda + // - nvptx64-nvidia-cuda + // - Any new targets not listed above. + } +} + +#[cfg(target_env = "musl")] +cfg_select! { + all(feature = "llvm-libunwind", feature = "system-llvm-libunwind") => { + compile_error!("`llvm-libunwind` and `system-llvm-libunwind` cannot be enabled at the same time"); + } + feature = "llvm-libunwind" => { + #[link(name = "unwind", kind = "static", modifiers = "-bundle")] + unsafe extern "C" {} + } + feature = "system-llvm-libunwind" => { + #[link(name = "unwind", kind = "static", modifiers = "-bundle", cfg(target_feature = "crt-static"))] + #[link(name = "unwind", cfg(not(target_feature = "crt-static")))] + unsafe extern "C" {} + } + _ => { + #[link(name = "unwind", kind = "static", modifiers = "-bundle", cfg(target_feature = "crt-static"))] + #[link(name = "gcc_s", cfg(all(not(target_feature = "crt-static"), not(target_arch = "hexagon"))))] + unsafe extern "C" {} + } +} + +// Hexagon with musl uses llvm-libunwind by default +#[cfg(all(target_env = "musl", target_arch = "hexagon"))] +cfg_select! { + feature = "llvm-libunwind" => { + #[link(name = "unwind", kind = "static", modifiers = "-bundle")] + unsafe extern "C" {} + } + feature = "system-llvm-libunwind" => { + #[link(name = "unwind", kind = "static", modifiers = "-bundle", cfg(target_feature = "crt-static"))] + #[link(name = "unwind", cfg(not(target_feature = "crt-static")))] + unsafe extern "C" {} + } + _ => { + // Fallback: should not happen since hexagon defaults to llvm-libunwind + } +} + +// This is the same as musl except that we default to using the system libunwind +// instead of libgcc. +#[cfg(target_env = "ohos")] +cfg_select! { + all(feature = "llvm-libunwind", feature = "system-llvm-libunwind") => { + compile_error!("`llvm-libunwind` and `system-llvm-libunwind` cannot be enabled at the same time"); + } + feature = "llvm-libunwind" => { + #[link(name = "unwind", kind = "static", modifiers = "-bundle")] + unsafe extern "C" {} + } + _ => { + #[link(name = "unwind", kind = "static", modifiers = "-bundle", cfg(target_feature = "crt-static"))] + #[link(name = "unwind", cfg(not(target_feature = "crt-static")))] + unsafe extern "C" {} + } +} + +#[cfg(target_os = "android")] +cfg_select! { + feature = "llvm-libunwind" => { + compile_error!("`llvm-libunwind` is not supported for Android targets"); + } + _ => { + #[link(name = "unwind", kind = "static", modifiers = "-bundle", cfg(target_feature = "crt-static"))] + #[link(name = "unwind", cfg(not(target_feature = "crt-static")))] + unsafe extern "C" {} + } +} +// Android's unwinding library depends on dl_iterate_phdr in `libdl`. +#[cfg(target_os = "android")] +#[link(name = "dl", kind = "static", modifiers = "-bundle", cfg(target_feature = "crt-static"))] +#[link(name = "dl", cfg(not(target_feature = "crt-static")))] +unsafe extern "C" {} + +// When building with crt-static, we get `gcc_eh` from the `libc` crate, since +// glibc needs it, and needs it listed later on the linker command line. We +// don't want to duplicate it here. +#[cfg(all( + target_os = "linux", + any(target_env = "gnu", target_env = "uclibc"), + not(feature = "llvm-libunwind"), + not(feature = "system-llvm-libunwind") +))] +#[link(name = "gcc_s", cfg(not(target_feature = "crt-static")))] +unsafe extern "C" {} + +#[cfg(all( + target_os = "linux", + any(target_env = "gnu", target_env = "uclibc"), + not(feature = "llvm-libunwind"), + feature = "system-llvm-libunwind" +))] +#[link(name = "unwind", cfg(not(target_feature = "crt-static")))] +unsafe extern "C" {} + +#[cfg(target_os = "redox")] +#[link(name = "gcc_eh", kind = "static", modifiers = "-bundle", cfg(target_feature = "crt-static"))] +#[link(name = "gcc_s", cfg(not(target_feature = "crt-static")))] +unsafe extern "C" {} + +#[cfg(all(target_vendor = "fortanix", target_env = "sgx"))] +#[link(name = "unwind", kind = "static", modifiers = "-bundle")] +unsafe extern "C" {} + +#[cfg(target_os = "netbsd")] +#[link(name = "gcc_s")] +unsafe extern "C" {} + +#[cfg(target_os = "freebsd")] +#[link(name = "gcc", kind = "static", modifiers = "-bundle", cfg(target_feature = "crt-static"))] +#[link(name = "gcc_eh", kind = "static", modifiers = "-bundle", cfg(target_feature = "crt-static"))] +#[link(name = "gcc_s", cfg(not(target_feature = "crt-static")))] +unsafe extern "C" {} + +#[cfg(all(target_os = "openbsd", target_arch = "sparc64"))] +#[link(name = "gcc")] +unsafe extern "C" {} + +#[cfg(all(target_os = "openbsd", not(target_arch = "sparc64")))] +#[link(name = "c++abi")] +unsafe extern "C" {} + +#[cfg(any(target_os = "solaris", target_os = "illumos"))] +#[link(name = "gcc_s")] +unsafe extern "C" {} + +#[cfg(target_os = "dragonfly")] +#[link(name = "gcc_pic")] +unsafe extern "C" {} + +#[cfg(target_os = "haiku")] +#[link(name = "gcc_s")] +unsafe extern "C" {} + +#[cfg(target_os = "aix")] +#[link(name = "unwind")] +unsafe extern "C" {} + +#[cfg(target_os = "nto")] +cfg_select! { + target_env = "nto70" => { + #[link(name = "gcc")] + unsafe extern "C" {} + } + _ => { + #[link(name = "gcc_s")] + unsafe extern "C" {} + } +} + +#[cfg(target_os = "hurd")] +#[link(name = "gcc_s")] +unsafe extern "C" {} + +#[cfg(all(target_os = "windows", target_env = "gnu", target_abi = "llvm"))] +#[link(name = "unwind", kind = "static", modifiers = "-bundle", cfg(target_feature = "crt-static"))] +#[link(name = "unwind", cfg(not(target_feature = "crt-static")))] +unsafe extern "C" {} diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/unwind/src/libunwind.rs b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/unwind/src/libunwind.rs new file mode 100644 index 0000000000000000000000000000000000000000..091efa9c512927dd5d595127c52943a6124ff396 --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/unwind/src/libunwind.rs @@ -0,0 +1,326 @@ +#![allow(nonstandard_style)] + +use core::ffi::{c_int, c_void}; + +#[repr(C)] +#[derive(Debug, Copy, Clone, PartialEq)] +pub enum _Unwind_Reason_Code { + _URC_NO_REASON = 0, + _URC_FOREIGN_EXCEPTION_CAUGHT = 1, + _URC_FATAL_PHASE2_ERROR = 2, + _URC_FATAL_PHASE1_ERROR = 3, + _URC_NORMAL_STOP = 4, + _URC_END_OF_STACK = 5, + _URC_HANDLER_FOUND = 6, + _URC_INSTALL_CONTEXT = 7, + _URC_CONTINUE_UNWIND = 8, + _URC_FAILURE = 9, // used only by ARM EHABI +} +pub use _Unwind_Reason_Code::*; + +pub type _Unwind_Exception_Class = u64; +pub type _Unwind_Word = *const u8; +pub type _Unwind_Ptr = *const u8; +pub type _Unwind_Trace_Fn = + extern "C" fn(ctx: *mut _Unwind_Context, arg: *mut c_void) -> _Unwind_Reason_Code; + +#[cfg(target_arch = "x86")] +pub const unwinder_private_data_size: usize = 5; + +#[cfg(all(target_arch = "x86_64", not(any(target_os = "windows", target_os = "cygwin"))))] +pub const unwinder_private_data_size: usize = 2; + +#[cfg(all(target_arch = "x86_64", any(target_os = "windows", target_os = "cygwin")))] +pub const unwinder_private_data_size: usize = 6; + +#[cfg(all(target_arch = "arm", not(target_vendor = "apple")))] +pub const unwinder_private_data_size: usize = 20; + +#[cfg(all(target_arch = "arm", target_vendor = "apple"))] +pub const unwinder_private_data_size: usize = 5; + +#[cfg(all(target_arch = "aarch64", target_pointer_width = "64", not(target_os = "windows")))] +pub const unwinder_private_data_size: usize = 2; + +#[cfg(all(target_arch = "aarch64", target_pointer_width = "64", target_os = "windows"))] +pub const unwinder_private_data_size: usize = 6; + +#[cfg(all(target_arch = "aarch64", target_pointer_width = "32"))] +pub const unwinder_private_data_size: usize = 5; + +#[cfg(target_arch = "m68k")] +pub const unwinder_private_data_size: usize = 2; + +#[cfg(any(target_arch = "mips", target_arch = "mips32r6"))] +pub const unwinder_private_data_size: usize = 2; + +#[cfg(target_arch = "csky")] +pub const unwinder_private_data_size: usize = 2; + +#[cfg(any(target_arch = "mips64", target_arch = "mips64r6"))] +pub const unwinder_private_data_size: usize = 2; + +#[cfg(any(target_arch = "powerpc", target_arch = "powerpc64"))] +pub const unwinder_private_data_size: usize = 2; + +#[cfg(target_arch = "s390x")] +pub const unwinder_private_data_size: usize = 2; + +#[cfg(any(target_arch = "sparc", target_arch = "sparc64"))] +pub const unwinder_private_data_size: usize = 2; + +#[cfg(any(target_arch = "riscv64", target_arch = "riscv32"))] +pub const unwinder_private_data_size: usize = 2; + +#[cfg(all(target_arch = "wasm32", target_os = "emscripten"))] +pub const unwinder_private_data_size: usize = 20; + +#[cfg(all(target_arch = "wasm32", target_os = "linux"))] +pub const unwinder_private_data_size: usize = 2; + +#[cfg(target_arch = "hexagon")] +pub const unwinder_private_data_size: usize = 5; + +#[cfg(any(target_arch = "loongarch32", target_arch = "loongarch64"))] +pub const unwinder_private_data_size: usize = 2; + +#[repr(C)] +pub struct _Unwind_Exception { + pub exception_class: _Unwind_Exception_Class, + pub exception_cleanup: _Unwind_Exception_Cleanup_Fn, + pub private: [_Unwind_Word; unwinder_private_data_size], +} + +pub enum _Unwind_Context {} + +pub type _Unwind_Exception_Cleanup_Fn = + Option; + +// FIXME: The `#[link]` attributes on `extern "C"` block marks those symbols declared in +// the block are reexported in dylib build of std. This is needed when build rustc with +// feature `llvm-libunwind`, as no other cdylib will provided those _Unwind_* symbols. +// However the `link` attribute is duplicated multiple times and does not just export symbol, +// a better way to manually export symbol would be another attribute like `#[export]`. +// See the logic in function rustc_codegen_ssa::src::back::exported_symbols, module +// rustc_codegen_ssa::src::back::symbol_export, rustc_middle::middle::exported_symbols +// and RFC 2841 +#[cfg_attr( + all( + feature = "llvm-libunwind", + any(target_os = "fuchsia", target_os = "linux", target_os = "xous") + ), + link(name = "unwind", kind = "static", modifiers = "-bundle") +)] +unsafe extern "C-unwind" { + pub fn _Unwind_Resume(exception: *mut _Unwind_Exception) -> !; +} +unsafe extern "C" { + pub fn _Unwind_DeleteException(exception: *mut _Unwind_Exception); + pub fn _Unwind_GetLanguageSpecificData(ctx: *mut _Unwind_Context) -> *mut c_void; + pub fn _Unwind_GetRegionStart(ctx: *mut _Unwind_Context) -> _Unwind_Ptr; + pub fn _Unwind_GetTextRelBase(ctx: *mut _Unwind_Context) -> _Unwind_Ptr; + pub fn _Unwind_GetDataRelBase(ctx: *mut _Unwind_Context) -> _Unwind_Ptr; +} + +cfg_select! { + any(target_vendor = "apple", target_os = "netbsd", not(target_arch = "arm")) => { + // Not ARM EHABI + // + // 32-bit ARM on iOS/tvOS/watchOS use either DWARF/Compact unwinding or + // "setjmp-longjmp" / SjLj unwinding. + pub type _Unwind_Action = c_int; + + pub const _UA_SEARCH_PHASE: c_int = 1; + pub const _UA_CLEANUP_PHASE: c_int = 2; + pub const _UA_HANDLER_FRAME: c_int = 4; + pub const _UA_FORCE_UNWIND: c_int = 8; + pub const _UA_END_OF_STACK: c_int = 16; + + #[cfg_attr( + all(feature = "llvm-libunwind", any(target_os = "fuchsia", target_os = "linux", target_os = "xous")), + link(name = "unwind", kind = "static", modifiers = "-bundle") + )] + unsafe extern "C" { + pub fn _Unwind_GetGR(ctx: *mut _Unwind_Context, reg_index: c_int) -> _Unwind_Word; + pub fn _Unwind_SetGR(ctx: *mut _Unwind_Context, reg_index: c_int, value: _Unwind_Word); + pub fn _Unwind_GetIP(ctx: *mut _Unwind_Context) -> _Unwind_Word; + pub fn _Unwind_SetIP(ctx: *mut _Unwind_Context, value: _Unwind_Word); + pub fn _Unwind_GetIPInfo(ctx: *mut _Unwind_Context, ip_before_insn: *mut c_int) + -> _Unwind_Word; + pub fn _Unwind_FindEnclosingFunction(pc: *mut c_void) -> *mut c_void; + } + + } + _ => { + // ARM EHABI + #[repr(C)] + #[derive(Copy, Clone, PartialEq)] + pub enum _Unwind_State { + _US_VIRTUAL_UNWIND_FRAME = 0, + _US_UNWIND_FRAME_STARTING = 1, + _US_UNWIND_FRAME_RESUME = 2, + _US_ACTION_MASK = 3, + _US_FORCE_UNWIND = 8, + _US_END_OF_STACK = 16, + } + pub use _Unwind_State::*; + + #[repr(C)] + enum _Unwind_VRS_Result { + _UVRSR_OK = 0, + _UVRSR_NOT_IMPLEMENTED = 1, + _UVRSR_FAILED = 2, + } + #[repr(C)] + enum _Unwind_VRS_RegClass { + _UVRSC_CORE = 0, + _UVRSC_VFP = 1, + _UVRSC_FPA = 2, + _UVRSC_WMMXD = 3, + _UVRSC_WMMXC = 4, + } + use _Unwind_VRS_RegClass::*; + #[repr(C)] + enum _Unwind_VRS_DataRepresentation { + _UVRSD_UINT32 = 0, + _UVRSD_VFPX = 1, + _UVRSD_FPAX = 2, + _UVRSD_UINT64 = 3, + _UVRSD_FLOAT = 4, + _UVRSD_DOUBLE = 5, + } + use _Unwind_VRS_DataRepresentation::*; + + pub const UNWIND_POINTER_REG: c_int = 12; + pub const UNWIND_SP_REG: c_int = 13; + pub const UNWIND_IP_REG: c_int = 15; + + #[cfg_attr( + all(feature = "llvm-libunwind", any(target_os = "fuchsia", target_os = "linux", target_os = "xous")), + link(name = "unwind", kind = "static", modifiers = "-bundle") + )] + unsafe extern "C" { + fn _Unwind_VRS_Get(ctx: *mut _Unwind_Context, + regclass: _Unwind_VRS_RegClass, + regno: _Unwind_Word, + repr: _Unwind_VRS_DataRepresentation, + data: *mut c_void) + -> _Unwind_VRS_Result; + + fn _Unwind_VRS_Set(ctx: *mut _Unwind_Context, + regclass: _Unwind_VRS_RegClass, + regno: _Unwind_Word, + repr: _Unwind_VRS_DataRepresentation, + data: *mut c_void) + -> _Unwind_VRS_Result; + } + + // On Android or ARM/Linux, these are implemented as macros: + + pub unsafe fn _Unwind_GetGR(ctx: *mut _Unwind_Context, reg_index: c_int) -> _Unwind_Word { + let mut val: _Unwind_Word = core::ptr::null(); + unsafe { _Unwind_VRS_Get(ctx, _UVRSC_CORE, reg_index as _Unwind_Word, _UVRSD_UINT32, + (&raw mut val) as *mut c_void); } + val + } + + pub unsafe fn _Unwind_SetGR( + ctx: *mut _Unwind_Context, + reg_index: c_int, + value: _Unwind_Word + ) { + let mut value = value; + unsafe { _Unwind_VRS_Set(ctx, _UVRSC_CORE, reg_index as _Unwind_Word, _UVRSD_UINT32, + (&raw mut value) as *mut c_void); } + } + + pub unsafe fn _Unwind_GetIP(ctx: *mut _Unwind_Context) + -> _Unwind_Word { + let val = unsafe { _Unwind_GetGR(ctx, UNWIND_IP_REG) }; + val.map_addr(|v| v & !1) + } + + pub unsafe fn _Unwind_SetIP(ctx: *mut _Unwind_Context, + value: _Unwind_Word) { + // Propagate thumb bit to instruction pointer + let thumb_state = unsafe { _Unwind_GetGR(ctx, UNWIND_IP_REG).addr() & 1 }; + let value = value.map_addr(|v| v | thumb_state); + unsafe { _Unwind_SetGR(ctx, UNWIND_IP_REG, value); } + } + + pub unsafe fn _Unwind_GetIPInfo(ctx: *mut _Unwind_Context, + ip_before_insn: *mut c_int) + -> _Unwind_Word { + unsafe { + *ip_before_insn = 0; + _Unwind_GetIP(ctx) + } + } + + // This function also doesn't exist on Android or ARM/Linux, so make it a no-op + pub unsafe fn _Unwind_FindEnclosingFunction(pc: *mut c_void) -> *mut c_void { + pc + } + } +} + +cfg_select! { + all(target_vendor = "apple", not(target_os = "watchos"), target_arch = "arm") => { + // 32-bit ARM Apple (except for watchOS armv7k specifically) uses SjLj and + // does not provide _Unwind_Backtrace() + unsafe extern "C-unwind" { + pub fn _Unwind_SjLj_RaiseException(e: *mut _Unwind_Exception) -> _Unwind_Reason_Code; + } + + pub use _Unwind_SjLj_RaiseException as _Unwind_RaiseException; + } + _ => { + #[cfg_attr( + all(feature = "llvm-libunwind", any(target_os = "fuchsia", target_os = "linux", target_os = "xous")), + link(name = "unwind", kind = "static", modifiers = "-bundle") + )] + unsafe extern "C-unwind" { + pub fn _Unwind_RaiseException(exception: *mut _Unwind_Exception) -> _Unwind_Reason_Code; + } + #[cfg_attr( + all(feature = "llvm-libunwind", any(target_os = "fuchsia", target_os = "linux", target_os = "xous")), + link(name = "unwind", kind = "static", modifiers = "-bundle") + )] + unsafe extern "C" { + pub fn _Unwind_Backtrace(trace: _Unwind_Trace_Fn, + trace_argument: *mut c_void) + -> _Unwind_Reason_Code; + } + } +} + +cfg_select! { + any( + all(windows, any(target_arch = "aarch64", target_arch = "x86_64"), target_env = "gnu"), + target_os = "cygwin", + ) => { + // We declare these as opaque types. This is fine since you just need to + // pass them to _GCC_specific_handler and forget about them. + pub enum EXCEPTION_RECORD {} + pub type LPVOID = *mut c_void; + pub enum CONTEXT {} + pub enum DISPATCHER_CONTEXT {} + pub type EXCEPTION_DISPOSITION = c_int; + type PersonalityFn = unsafe extern "C" fn(version: c_int, + actions: _Unwind_Action, + exception_class: _Unwind_Exception_Class, + exception_object: *mut _Unwind_Exception, + context: *mut _Unwind_Context) + -> _Unwind_Reason_Code; + + unsafe extern "C" { + pub fn _GCC_specific_handler(exceptionRecord: *mut EXCEPTION_RECORD, + establisherFrame: LPVOID, + contextRecord: *mut CONTEXT, + dispatcherContext: *mut DISPATCHER_CONTEXT, + personality: PersonalityFn) + -> EXCEPTION_DISPOSITION; + } + } + _ => {} +} diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/unwind/src/unwinding.rs b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/unwind/src/unwinding.rs new file mode 100644 index 0000000000000000000000000000000000000000..36120bc868ee9c2a3d2656014e783949a0d76ab6 --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/unwind/src/unwinding.rs @@ -0,0 +1,100 @@ +#![allow(nonstandard_style)] + +use core::ffi::{c_int, c_void}; + +pub type _Unwind_Action = c_int; + +pub const _UA_SEARCH_PHASE: c_int = 1; +pub const _UA_CLEANUP_PHASE: c_int = 2; +pub const _UA_HANDLER_FRAME: c_int = 4; +pub const _UA_FORCE_UNWIND: c_int = 8; +pub const _UA_END_OF_STACK: c_int = 16; + +#[repr(C)] +#[derive(Debug, Copy, Clone, PartialEq)] +pub enum _Unwind_Reason_Code { + _URC_NO_REASON = 0, + _URC_FOREIGN_EXCEPTION_CAUGHT = 1, + _URC_FATAL_PHASE2_ERROR = 2, + _URC_FATAL_PHASE1_ERROR = 3, + _URC_NORMAL_STOP = 4, + _URC_END_OF_STACK = 5, + _URC_HANDLER_FOUND = 6, + _URC_INSTALL_CONTEXT = 7, + _URC_CONTINUE_UNWIND = 8, + _URC_FAILURE = 9, // used only by ARM EHABI +} +pub use _Unwind_Reason_Code::*; +pub use unwinding::abi::{UnwindContext, UnwindException}; +pub enum _Unwind_Context {} + +pub use unwinding::custom_eh_frame_finder::{ + EhFrameFinder, FrameInfo, FrameInfoKind, set_custom_eh_frame_finder, +}; + +pub type _Unwind_Exception_Class = u64; +pub type _Unwind_Word = *const u8; +pub type _Unwind_Ptr = *const u8; + +pub const unwinder_private_data_size: usize = size_of::() + - size_of::<_Unwind_Exception_Class>() + - size_of::<_Unwind_Exception_Cleanup_Fn>(); + +pub type _Unwind_Exception_Cleanup_Fn = + Option; + +#[repr(C)] +pub struct _Unwind_Exception { + pub exception_class: _Unwind_Exception_Class, + pub exception_cleanup: _Unwind_Exception_Cleanup_Fn, + pub private: [_Unwind_Word; unwinder_private_data_size], +} + +pub unsafe fn _Unwind_GetDataRelBase(ctx: *mut _Unwind_Context) -> _Unwind_Ptr { + let ctx = unsafe { &mut *(ctx as *mut UnwindContext<'_>) }; + unwinding::abi::_Unwind_GetDataRelBase(ctx) as _Unwind_Ptr +} + +pub unsafe fn _Unwind_GetTextRelBase(ctx: *mut _Unwind_Context) -> _Unwind_Ptr { + let ctx = unsafe { &mut *(ctx as *mut UnwindContext<'_>) }; + unwinding::abi::_Unwind_GetTextRelBase(ctx) as _Unwind_Ptr +} + +pub unsafe fn _Unwind_GetRegionStart(ctx: *mut _Unwind_Context) -> _Unwind_Ptr { + let ctx = unsafe { &mut *(ctx as *mut UnwindContext<'_>) }; + unwinding::abi::_Unwind_GetRegionStart(ctx) as _Unwind_Ptr +} + +pub unsafe fn _Unwind_SetGR(ctx: *mut _Unwind_Context, reg_index: c_int, value: _Unwind_Word) { + let ctx = unsafe { &mut *(ctx as *mut UnwindContext<'_>) }; + unwinding::abi::_Unwind_SetGR(ctx, reg_index, value as usize) +} + +pub unsafe fn _Unwind_SetIP(ctx: *mut _Unwind_Context, value: _Unwind_Word) { + let ctx = unsafe { &mut *(ctx as *mut UnwindContext<'_>) }; + unwinding::abi::_Unwind_SetIP(ctx, value as usize) +} + +pub unsafe fn _Unwind_GetIPInfo( + ctx: *mut _Unwind_Context, + ip_before_insn: *mut c_int, +) -> _Unwind_Word { + let ctx = unsafe { &mut *(ctx as *mut UnwindContext<'_>) }; + let ip_before_insn = unsafe { &mut *(ip_before_insn as *mut c_int) }; + unsafe { &*(unwinding::abi::_Unwind_GetIPInfo(ctx, ip_before_insn) as _Unwind_Word) } +} + +pub unsafe fn _Unwind_GetLanguageSpecificData(ctx: *mut _Unwind_Context) -> *mut c_void { + let ctx = unsafe { &mut *(ctx as *mut UnwindContext<'_>) }; + unwinding::abi::_Unwind_GetLanguageSpecificData(ctx) +} + +pub unsafe fn _Unwind_RaiseException(exception: *mut _Unwind_Exception) -> _Unwind_Reason_Code { + let exception = unsafe { &mut *(exception as *mut UnwindException) }; + unsafe { core::mem::transmute(unwinding::abi::_Unwind_RaiseException(exception)) } +} + +pub unsafe fn _Unwind_DeleteException(exception: *mut _Unwind_Exception) { + let exception = unsafe { &mut *(exception as *mut UnwindException) }; + unsafe { unwinding::abi::_Unwind_DeleteException(exception) } +} diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/unwind/src/wasm.rs b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/unwind/src/wasm.rs new file mode 100644 index 0000000000000000000000000000000000000000..37d93bdbb67dd4312a28e428c5637e4148cb75e3 --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/unwind/src/wasm.rs @@ -0,0 +1,107 @@ +//! A shim for libunwind implemented in terms of the native wasm `throw` instruction. + +#![allow(nonstandard_style)] + +// Define the __cpp_exception tag that LLVM's wasm exception handling requires. +// In particular it is required to use either of: +// 1. the wasm_throw llvm intrinsic, or +// 2. the Rust try intrinsic. +// +// This must be provided since LLVM commit +// aee99e8015daa9f53ab1fd4e5b24cc4c694bdc4a which changed the tag from being +// weakly defined in each object file to being an external reference that must +// be linked from somewhere. +// +// We only define this for wasm32-unknown-unknown because on Emscripten/WASI +// targets, this symbol should be defined by the external toolchain. In +// particular, defining this on Emscripten would break Emscripten dynamic +// libraries. +#[cfg(all(target_os = "unknown", panic = "unwind"))] +core::arch::global_asm!( + ".globl __cpp_exception", + #[cfg(target_pointer_width = "64")] + ".tagtype __cpp_exception i64", + #[cfg(target_pointer_width = "32")] + ".tagtype __cpp_exception i32", + "__cpp_exception:", +); + +#[repr(C)] +#[derive(Debug, Copy, Clone, PartialEq)] +pub enum _Unwind_Reason_Code { + _URC_NO_REASON = 0, + _URC_FOREIGN_EXCEPTION_CAUGHT = 1, + _URC_FATAL_PHASE2_ERROR = 2, + _URC_FATAL_PHASE1_ERROR = 3, + _URC_NORMAL_STOP = 4, + _URC_END_OF_STACK = 5, + _URC_HANDLER_FOUND = 6, + _URC_INSTALL_CONTEXT = 7, + _URC_CONTINUE_UNWIND = 8, + _URC_FAILURE = 9, // used only by ARM EHABI +} +pub use _Unwind_Reason_Code::*; + +pub type _Unwind_Exception_Class = u64; +pub type _Unwind_Word = *const u8; + +pub const unwinder_private_data_size: usize = 2; + +#[repr(C)] +pub struct _Unwind_Exception { + pub exception_class: _Unwind_Exception_Class, + pub exception_cleanup: _Unwind_Exception_Cleanup_Fn, + pub private: [_Unwind_Word; unwinder_private_data_size], +} + +pub type _Unwind_Exception_Cleanup_Fn = + Option; + +pub unsafe fn _Unwind_DeleteException(exception: *mut _Unwind_Exception) { + if let Some(exception_cleanup) = unsafe { (*exception).exception_cleanup } { + exception_cleanup(_URC_FOREIGN_EXCEPTION_CAUGHT, exception); + } +} + +pub unsafe fn _Unwind_RaiseException(exception: *mut _Unwind_Exception) -> _Unwind_Reason_Code { + // This implementation is only used for `wasm*-unknown-unknown` targets. Such targets are not + // guaranteed to support exceptions, and they default to `-C panic=abort`. Because an unknown + // instruction is a load-time error on wasm, instead of a runtime error like on traditional + // architectures, we never want to codegen a `throw` instruction unless the user explicitly + // enabled exceptions via `-Z build-std` with `-C panic=unwind`. + cfg_select! { + panic = "unwind" => { + // It's important that this intrinsic is defined here rather than in `core`. Since it + // unwinds, invoking it from Rust code compiled with `-C panic=unwind` immediately + // forces `panic_unwind` as the required panic runtime. + // + // We ship unwinding `core` on Emscripten, so making this intrinsic part of `core` would + // prevent linking precompiled `core` into `-C panic=abort` binaries. Unlike `core`, + // this particular module is never precompiled with `-C panic=unwind` because it's only + // used for bare-metal targets, so an error can only arise if the user both manually + // recompiles `std` with `-C panic=unwind` and manually compiles the binary crate with + // `-C panic=abort`, which we don't care to support. + // + // See https://github.com/rust-lang/rust/issues/148246. + unsafe extern "C-unwind" { + /// LLVM lowers this intrinsic to the `throw` instruction. + #[link_name = "llvm.wasm.throw"] + fn wasm_throw(tag: i32, ptr: *mut u8) -> !; + } + + // The wasm `throw` instruction takes a "tag", which differentiates certain types of + // exceptions from others. LLVM currently just identifies these via integers, with 0 + // corresponding to C++ exceptions and 1 to C setjmp()/longjmp(). Ideally, we'd be able + // to choose something unique for Rust, but for now, we pretend to be C++ and implement + // the Itanium exception-handling ABI. + // corresponds with llvm::WebAssembly::Tag::CPP_EXCEPTION + // in llvm-project/llvm/include/llvm/CodeGen/WasmEHFuncInfo.h + const CPP_EXCEPTION_TAG: i32 = 0; + unsafe { wasm_throw(CPP_EXCEPTION_TAG, exception.cast()) } + } + _ => { + let _ = exception; + core::arch::wasm::unreachable() + } + } +} diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/windows_link/Cargo.toml b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/windows_link/Cargo.toml new file mode 100644 index 0000000000000000000000000000000000000000..fc5d0a69bfb5e8f0e9bc0f55b1aa5b325c02e4a4 --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/windows_link/Cargo.toml @@ -0,0 +1,15 @@ +[package] +name = "windows-link" +description = "A drop-in replacement for the real windows-link crate for use in std only." +version = "0.0.0" +edition = "2024" + +[lib] +test = false +bench = false +doc = false + +[features] +# Enable using raw-dylib for Windows imports. +# This will eventually be the default. +windows_raw_dylib = [] diff --git a/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/windows_link/src/lib.rs b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/windows_link/src/lib.rs new file mode 100644 index 0000000000000000000000000000000000000000..3446e2113dda99b0abc5b44a61b0fae88e420200 --- /dev/null +++ b/rust/.rustup/toolchains/stable-x86_64-pc-windows-msvc/lib/rustlib/src/rust/library/windows_link/src/lib.rs @@ -0,0 +1,52 @@ +//! Provides the `link!` macro used by the generated windows bindings. +//! +//! This is a simple wrapper around an `extern` block with a `#[link]` attribute. +//! It's very roughly equivalent to the windows-targets crate. +#![no_std] +#![no_core] +#![feature(decl_macro)] +#![feature(no_core)] + +pub macro link_raw_dylib { + ($library:literal $abi:literal $($link_name:literal)? $(#[$doc:meta])? fn $($function:tt)*) => ( + #[cfg_attr(not(target_arch = "x86"), link(name = $library, kind = "raw-dylib", modifiers = "+verbatim"))] + #[cfg_attr(target_arch = "x86", link(name = $library, kind = "raw-dylib", modifiers = "+verbatim", import_name_type = "undecorated"))] + unsafe extern $abi { + $(#[link_name=$link_name])? + pub fn $($function)*; + } + ) +} + +pub macro link_dylib { + ($library:literal $abi:literal $($link_name:literal)? $(#[$doc:meta])? fn $($function:tt)*) => ( + // Note: the windows-targets crate uses a pre-built Windows.lib import library which we don't + // have in this repo. So instead we always link kernel32.lib and add the rest of the import + // libraries below by using an empty extern block. This works because extern blocks are not + // connected to the library given in the #[link] attribute. + #[link(name = "kernel32")] + unsafe extern $abi { + $(#[link_name=$link_name])? + pub fn $($function)*; + } + ) +} + +#[cfg(feature = "windows_raw_dylib")] +pub macro link($($tt:tt)*) { + $crate::link_raw_dylib!($($tt)*); +} + +#[cfg(not(feature = "windows_raw_dylib"))] +pub macro link($($tt:tt)*) { + $crate::link_dylib!($($tt)*); +} + +#[cfg(not(feature = "windows_raw_dylib"))] +#[cfg(not(target_os = "cygwin"))] // Cygwin doesn't need these libs +#[cfg_attr(target_vendor = "win7", link(name = "advapi32"))] +#[link(name = "ntdll")] +#[link(name = "userenv")] +#[link(name = "ws2_32")] +#[link(name = "dbghelp")] // required for backtrace-rs symbolization +unsafe extern "C" {}