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backend::BackendStorage, CpuStorage, DType, Device, Result, Shape, Storage, Tensor, D,
};
use k_quants::*;
use std::{borrow::Cow, sync::OnceLock};
#[cfg(target_feature = "avx2")]
pub mod avx;
mod dummy_cuda;
mod dummy_metal;
pub mod ggml_file;
pub mod gguf_file;
pub mod imatrix_file;
pub mod k_quants;
#[cfg(feature = "metal")]
pub mod metal;
#[cfg(not(target_arch = "wasm32"))]
pub mod tokenizer;
#[cfg(not(feature = "metal"))]
mod metal {
pub use super::dummy_metal::*;
}
#[cfg(feature = "cuda")]
pub mod cuda;
#[cfg(feature = "cuda")]
pub mod fast_mmq;
#[cfg(feature = "cuda")]
pub mod fast_mmvq;
#[cfg(not(feature = "cuda"))]
mod cuda {
pub use super::dummy_cuda::*;
}
#[cfg(target_feature = "neon")]
pub mod neon;
#[cfg(target_feature = "simd128")]
pub mod simd128;
pub mod utils;
use half::{bf16, f16};
pub use k_quants::{BlockNvfp4, GgmlType};
fn as_t_slice<T>(data: &[u8]) -> &[T] {
let size = std::mem::size_of::<T>();
assert_eq!(
data.len() % size,
0,
"Data length must be a multiple of T's size"
);
let ptr = data.as_ptr();
assert_eq!(
(ptr as usize) % std::mem::align_of::<T>(),
0,
"Data pointer must be aligned to T's alignment"
);
unsafe { std::slice::from_raw_parts(ptr as *const T, data.len() / size) }
}
pub struct QTensor {
storage: QStorage,
shape: Shape,
/// Lazily initialized storage for repacked quantized data. Currently raw bits, could be `QStorage` in the future.
/// Not always used.
#[allow(dead_code)]
repacked_qs: OnceLock<Option<Vec<u8>>>,
}
impl Device {
fn qzeros(&self, elem_count: usize, dtype: GgmlDType) -> Result<QStorage> {
match self {
Device::Cpu => {
let storage = dtype.cpu_zeros(elem_count);
Ok(QStorage::Cpu(storage))
}
Device::Metal(metal) => {
let storage = metal::QMetalStorage::zeros(metal, elem_count, dtype)?;
Ok(QStorage::Metal(storage))
}
Device::Cuda(cuda) => {
let storage = cuda::QCudaStorage::zeros(cuda, elem_count, dtype)?;
Ok(QStorage::Cuda(storage))
}
}
}
}
pub enum QStorage {
Cpu(Box<dyn QuantizedType>),
Metal(metal::QMetalStorage),
Cuda(cuda::QCudaStorage),
}
impl QStorage {
pub fn from_data(data: Cow<'_, [u8]>, device: &Device, dtype: GgmlDType) -> Result<Self> {
let data: &[u8] = &data;
match device {
Device::Cpu => Ok(Self::Cpu(dtype.from_data(Cow::Borrowed(data)))),
Device::Metal(d) => match dtype {
GgmlDType::F32 => metal::load_quantized(d, as_t_slice::<f32>(data)),
GgmlDType::F16 => metal::load_quantized(d, as_t_slice::<f16>(data)),
GgmlDType::Q4_0 => metal::load_quantized(d, as_t_slice::<BlockQ4_0>(data)),
GgmlDType::Q4_1 => metal::load_quantized(d, as_t_slice::<BlockQ4_1>(data)),
GgmlDType::Q5_0 => metal::load_quantized(d, as_t_slice::<BlockQ5_0>(data)),
GgmlDType::Q5_1 => metal::load_quantized(d, as_t_slice::<BlockQ5_1>(data)),
GgmlDType::Q8_0 => metal::load_quantized(d, as_t_slice::<BlockQ8_0>(data)),
GgmlDType::Q8_1 => metal::load_quantized(d, as_t_slice::<BlockQ8_1>(data)),
GgmlDType::Q2K => metal::load_quantized(d, as_t_slice::<BlockQ2K>(data)),
GgmlDType::Q3K => metal::load_quantized(d, as_t_slice::<BlockQ3K>(data)),
GgmlDType::Q4K => metal::load_quantized(d, as_t_slice::<BlockQ4K>(data)),
GgmlDType::Q5K => metal::load_quantized(d, as_t_slice::<BlockQ5K>(data)),
GgmlDType::Q6K => metal::load_quantized(d, as_t_slice::<BlockQ6K>(data)),
GgmlDType::Q8K => metal::load_quantized(d, as_t_slice::<BlockQ8K>(data)),
GgmlDType::BF16 => metal::load_quantized(d, as_t_slice::<bf16>(data)),
GgmlDType::NVFP4 => crate::bail!("NVFP4 is not supported on Metal"),
},
Device::Cuda(d) => match dtype {
GgmlDType::F32 => cuda::load_quantized(d, as_t_slice::<f32>(data)),
GgmlDType::F16 => cuda::load_quantized(d, as_t_slice::<f16>(data)),
GgmlDType::Q4_0 => cuda::load_quantized(d, as_t_slice::<BlockQ4_0>(data)),
GgmlDType::Q4_1 => cuda::load_quantized(d, as_t_slice::<BlockQ4_1>(data)),
GgmlDType::Q5_0 => cuda::load_quantized(d, as_t_slice::<BlockQ5_0>(data)),
GgmlDType::Q5_1 => cuda::load_quantized(d, as_t_slice::<BlockQ5_1>(data)),
GgmlDType::Q8_0 => cuda::load_quantized(d, as_t_slice::<BlockQ8_0>(data)),
GgmlDType::Q8_1 => cuda::load_quantized(d, as_t_slice::<BlockQ8_1>(data)),
GgmlDType::Q2K => cuda::load_quantized(d, as_t_slice::<BlockQ2K>(data)),
GgmlDType::Q3K => cuda::load_quantized(d, as_t_slice::<BlockQ3K>(data)),
GgmlDType::Q4K => cuda::load_quantized(d, as_t_slice::<BlockQ4K>(data)),
GgmlDType::Q5K => cuda::load_quantized(d, as_t_slice::<BlockQ5K>(data)),
GgmlDType::Q6K => cuda::load_quantized(d, as_t_slice::<BlockQ6K>(data)),
GgmlDType::Q8K => cuda::load_quantized(d, as_t_slice::<BlockQ8K>(data)),
GgmlDType::BF16 => cuda::load_quantized(d, as_t_slice::<bf16>(data)),
GgmlDType::NVFP4 => cuda::load_quantized(d, as_t_slice::<BlockNvfp4>(data)),
},
}
}
fn block_size(&self) -> usize {
match self {
QStorage::Cpu(storage) => storage.block_size(),
QStorage::Metal(storage) => storage.dtype().block_size(),
QStorage::Cuda(storage) => storage.dtype().block_size(),
}
}
fn dtype(&self) -> GgmlDType {
match self {
QStorage::Cpu(storage) => storage.dtype(),
QStorage::Metal(storage) => storage.dtype(),
QStorage::Cuda(storage) => storage.dtype(),
}
}
fn device(&self) -> Device {
match self {
QStorage::Cpu(_storage) => Device::Cpu,
QStorage::Metal(storage) => Device::Metal(storage.device().clone()),
QStorage::Cuda(storage) => Device::Cuda(storage.device().clone()),
}
}
fn size_in_bytes(&self) -> usize {
match self {
QStorage::Cpu(storage) => storage.storage_size_in_bytes(),
QStorage::Metal(storage) => storage.storage_size_in_bytes(),
QStorage::Cuda(storage) => storage.storage_size_in_bytes(),
}
}
fn quantize(&mut self, src: &Storage) -> Result<()> {
match (self, src) {
(QStorage::Cpu(storage), Storage::Cpu(src)) => {
storage.from_float(src.as_slice::<f32>()?);
}
(QStorage::Metal(storage), Storage::Metal(src)) => storage.quantize(src)?,
(QStorage::Cuda(storage), Storage::Cuda(src)) => storage.quantize(src)?,
_ => crate::bail!("Invalid quantize storage locations do not match"),
}
Ok(())
}
fn quantize_imatrix(
&mut self,
src: &Storage,
imatrix_weights: &[f32],
n_per_row: usize,
) -> Result<()> {
match (self, src) {
(QStorage::Cpu(storage), Storage::Cpu(src)) => {
storage.from_float_imatrix(src.as_slice::<f32>()?, imatrix_weights, n_per_row);
}
(QStorage::Metal(storage), Storage::Metal(src)) => {
storage.quantize_imatrix(src, imatrix_weights, n_per_row)?
}
(QStorage::Cuda(storage), Storage::Cuda(src)) => {
storage.quantize_imatrix(src, imatrix_weights, n_per_row)?
}
_ => crate::bail!("Invalid quantize storage locations do not match"),
}
Ok(())
}
fn quantize_onto(&mut self, src: &Storage) -> Result<()> {
match (self, src) {
(QStorage::Cpu(storage), Storage::Cpu(src)) => {
storage.from_float(src.as_slice::<f32>()?);
}
(QStorage::Metal(storage), Storage::Cpu(src)) => storage.quantize_onto(src)?,
(QStorage::Cuda(storage), Storage::Cpu(src)) => storage.quantize_onto(src)?,
_ => crate::bail!("Invalid quantize source storage locations: not on cpu"),
}
Ok(())
}
fn quantize_imatrix_onto(
&mut self,
src: &Storage,
imatrix_weights: &[f32],
n_per_row: usize,
) -> Result<()> {
match (self, src) {
(QStorage::Cpu(storage), Storage::Cpu(src)) => {
storage.from_float_imatrix(src.as_slice::<f32>()?, imatrix_weights, n_per_row);
}
(QStorage::Metal(storage), Storage::Cpu(src)) => {
storage.quantize_imatrix_onto(src, imatrix_weights, n_per_row)?
}
(QStorage::Cuda(storage), Storage::Cpu(src)) => {
storage.quantize_imatrix_onto(src, imatrix_weights, n_per_row)?
}
_ => crate::bail!("Invalid quantize storage locations do not match"),
}
Ok(())
}
fn dequantize(&self, elem_count: usize) -> Result<Storage> {
match self {
QStorage::Cpu(storage) => Ok(Storage::Cpu(storage.dequantize(elem_count)?)),
QStorage::Metal(storage) => Ok(Storage::Metal(storage.dequantize(elem_count)?)),
QStorage::Cuda(storage) => Ok(Storage::Cuda(storage.dequantize(elem_count)?)),
}
}
fn data(&self) -> Result<Cow<'_, [u8]>> {
match self {
QStorage::Cpu(storage) => {
let data_ptr = storage.as_ptr();
let size_in_bytes = storage.storage_size_in_bytes();
let data = unsafe { std::slice::from_raw_parts(data_ptr, size_in_bytes) };
Ok(Cow::from(data))
}
QStorage::Cuda(storage) => Ok(Cow::from(storage.data()?)),
QStorage::Metal(storage) => Ok(Cow::from(storage.data()?)),
}
}
pub fn device_ptr(&self) -> Result<*const u8> {
match self {
QStorage::Cuda(storage) => storage.device_ptr(),
QStorage::Metal(_) | QStorage::Cpu(_) => {
crate::bail!("not implemented");
}
}
}
#[cfg(feature = "cuda")]
pub fn device_ptr_with_guard<'a>(
&'a self,
stream: &'a crate::cuda_backend::cudarc::driver::CudaStream,
) -> Result<(
*const u8,
crate::cuda_backend::cudarc::driver::SyncOnDrop<'a>,
)> {
match self {
QStorage::Cuda(storage) => storage.device_ptr_with_guard(stream),
QStorage::Metal(_) | QStorage::Cpu(_) => {
crate::bail!("not implemented");
}
}
}
}
#[derive(Debug, Clone, Copy, PartialEq, Eq, Hash)]
pub enum GgmlDType {
F32,
F16,
BF16,
Q4_0,
Q4_1,
Q5_0,
Q5_1,
Q8_0,
Q8_1,
Q2K,
Q3K,
Q4K,
Q5K,
Q6K,
Q8K,
NVFP4,
}
impl GgmlDType {
pub(crate) fn from_u32(u: u32) -> Result<Self> {
let dtype = match u {
0 => Self::F32,
1 => Self::F16,
2 => Self::Q4_0,
3 => Self::Q4_1,
6 => Self::Q5_0,
7 => Self::Q5_1,
8 => Self::Q8_0,
9 => Self::Q8_1,
10 => Self::Q2K,
11 => Self::Q3K,
12 => Self::Q4K,
13 => Self::Q5K,
14 => Self::Q6K,
15 => Self::Q8K,
// https://github.com/ggerganov/ggml/blob/29d87fc6676e7ed0cdfdec0804b06001d9c2bb44/include/ggml.h#L389
30 => Self::BF16,
40 => Self::NVFP4,
_ => crate::bail!("unknown dtype for tensor {u}"),
};
Ok(dtype)
}
pub(crate) fn to_u32(self) -> u32 {
match self {
Self::F32 => 0,
Self::F16 => 1,
Self::Q4_0 => 2,
Self::Q4_1 => 3,
Self::Q5_0 => 6,
Self::Q5_1 => 7,
Self::Q8_0 => 8,
Self::Q8_1 => 9,
Self::Q2K => 10,
Self::Q3K => 11,
Self::Q4K => 12,
Self::Q5K => 13,
Self::Q6K => 14,
Self::Q8K => 15,
// https://github.com/ggerganov/ggml/blob/29d87fc6676e7ed0cdfdec0804b06001d9c2bb44/include/ggml.h#L389
Self::BF16 => 30,
Self::NVFP4 => 40,
}
}
/// The block dtype
pub fn cpu_zeros(&self, elem_count: usize) -> Box<dyn QuantizedType> {
match self {
Self::F32 => Box::new(vec![f32::zeros(); elem_count]),
Self::F16 => Box::new(vec![f16::zeros(); elem_count]),
Self::Q4_0 => Box::new(vec![BlockQ4_0::zeros(); elem_count / BlockQ4_0::BLCK_SIZE]),
Self::Q4_1 => Box::new(vec![BlockQ4_1::zeros(); elem_count / BlockQ4_1::BLCK_SIZE]),
Self::Q5_0 => Box::new(vec![BlockQ5_0::zeros(); elem_count / BlockQ5_0::BLCK_SIZE]),
Self::Q5_1 => Box::new(vec![BlockQ5_1::zeros(); elem_count / BlockQ5_1::BLCK_SIZE]),
Self::Q8_0 => Box::new(vec![BlockQ8_0::zeros(); elem_count / BlockQ8_0::BLCK_SIZE]),
Self::Q8_1 => Box::new(vec![BlockQ8_1::zeros(); elem_count / BlockQ8_1::BLCK_SIZE]),
Self::Q2K => Box::new(vec![BlockQ2K::zeros(); elem_count / BlockQ2K::BLCK_SIZE]),
Self::Q3K => Box::new(vec![BlockQ3K::zeros(); elem_count / BlockQ3K::BLCK_SIZE]),
Self::Q4K => Box::new(vec![BlockQ4K::zeros(); elem_count / BlockQ4K::BLCK_SIZE]),
Self::Q5K => Box::new(vec![BlockQ5K::zeros(); elem_count / BlockQ5K::BLCK_SIZE]),
Self::Q6K => Box::new(vec![BlockQ6K::zeros(); elem_count / BlockQ6K::BLCK_SIZE]),
Self::Q8K => Box::new(vec![BlockQ8K::zeros(); elem_count / BlockQ8K::BLCK_SIZE]),
Self::BF16 => Box::new(vec![bf16::zeros(); elem_count]),
Self::NVFP4 => Box::new(vec![BlockNvfp4::zeros(); elem_count / BlockNvfp4::BLCK_SIZE]),
}
}
pub fn from_data(&self, data: Cow<'_, [u8]>) -> Box<dyn QuantizedType> {
let data: &[u8] = &data;
match self {
Self::F32 => Box::new(as_t_slice::<f32>(data).to_vec()),
Self::F16 => Box::new(as_t_slice::<f16>(data).to_vec()),
Self::Q4_0 => Box::new(as_t_slice::<BlockQ4_0>(data).to_vec()),
Self::Q4_1 => Box::new(as_t_slice::<BlockQ4_1>(data).to_vec()),
Self::Q5_0 => Box::new(as_t_slice::<BlockQ5_0>(data).to_vec()),
Self::Q5_1 => Box::new(as_t_slice::<BlockQ5_1>(data).to_vec()),
Self::Q8_0 => Box::new(as_t_slice::<BlockQ8_0>(data).to_vec()),
Self::Q8_1 => Box::new(as_t_slice::<BlockQ8_1>(data).to_vec()),
Self::Q2K => Box::new(as_t_slice::<BlockQ2K>(data).to_vec()),
Self::Q3K => Box::new(as_t_slice::<BlockQ3K>(data).to_vec()),
Self::Q4K => Box::new(as_t_slice::<BlockQ4K>(data).to_vec()),
Self::Q5K => Box::new(as_t_slice::<BlockQ5K>(data).to_vec()),
Self::Q6K => Box::new(as_t_slice::<BlockQ6K>(data).to_vec()),
Self::Q8K => Box::new(as_t_slice::<BlockQ8K>(data).to_vec()),
Self::BF16 => Box::new(as_t_slice::<bf16>(data).to_vec()),
Self::NVFP4 => Box::new(as_t_slice::<BlockNvfp4>(data).to_vec()),
}
}
/// The type size for blocks in bytes.
pub fn type_size(&self) -> usize {
use k_quants::*;
match self {
Self::F32 => 4,
Self::F16 | Self::BF16 => 2,
Self::Q4_0 => std::mem::size_of::<BlockQ4_0>(),
Self::Q4_1 => std::mem::size_of::<BlockQ4_1>(),
Self::Q5_0 => std::mem::size_of::<BlockQ5_0>(),
Self::Q5_1 => std::mem::size_of::<BlockQ5_1>(),
// https://github.com/ggerganov/llama.cpp/blob/468ea24fb4633a0d681f7ac84089566c1c6190cb/ggml.c#L932
Self::Q8_0 => std::mem::size_of::<BlockQ8_0>(),
Self::Q8_1 => std::mem::size_of::<BlockQ8_1>(),
Self::Q2K => std::mem::size_of::<BlockQ2K>(),
Self::Q3K => std::mem::size_of::<BlockQ3K>(),
Self::Q4K => std::mem::size_of::<BlockQ4K>(),
Self::Q5K => std::mem::size_of::<BlockQ5K>(),
Self::Q6K => std::mem::size_of::<BlockQ6K>(),
Self::Q8K => std::mem::size_of::<BlockQ8K>(),
Self::NVFP4 => std::mem::size_of::<BlockNvfp4>(),
}
}
/// The block size, i.e. the number of elements stored in each block.
pub fn block_size(&self) -> usize {
match self {
Self::F32 => 1,
Self::F16 | Self::BF16 => 1,
Self::Q4_0 => k_quants::QK4_0,
Self::Q4_1 => k_quants::QK4_1,
Self::Q5_0 => k_quants::QK5_0,
Self::Q5_1 => k_quants::QK5_1,
Self::Q8_0 => k_quants::QK8_0,
Self::Q8_1 => k_quants::QK8_1,
Self::Q2K | Self::Q3K | Self::Q4K | Self::Q5K | Self::Q6K | Self::Q8K => k_quants::QK_K,
Self::NVFP4 => BlockNvfp4::BLCK_SIZE,
}
}
}
// A version of GgmlType without `vec_dot` so that it can be dyn boxed.
pub trait QuantizedType: Send + Sync {
fn dtype(&self) -> GgmlDType;
fn matmul_t(&self, mkn: (usize, usize, usize), lhs: &[f32], dst: &mut [f32]) -> Result<()>;
fn matmul_t_f16(&self, mkn: (usize, usize, usize), lhs: &[f16], dst: &mut [f16]) -> Result<()>;
fn embedding(&self, ids: &[u32], rows: usize, hidden: usize) -> Result<CpuStorage>;
fn dequantize(&self, elem_count: usize) -> Result<CpuStorage>;
fn storage_size_in_bytes(&self) -> usize;
fn as_ptr(&self) -> *const u8;
fn block_size(&self) -> usize;
#[allow(clippy::wrong_self_convention)]
fn from_float(&mut self, xs: &[f32]);
#[allow(clippy::wrong_self_convention)]
fn from_float_imatrix(&mut self, xs: &[f32], imatrix_weights: &[f32], n_per_row: usize);
fn size(&self) -> usize;
}
impl<T: k_quants::GgmlType + Send + Sync> QuantizedType for Vec<T> {
fn matmul_t(&self, mkn: (usize, usize, usize), lhs: &[f32], dst: &mut [f32]) -> Result<()> {
k_quants::matmul(mkn, lhs, self.as_slice(), dst)
}
fn matmul_t_f16(&self, mkn: (usize, usize, usize), lhs: &[f16], dst: &mut [f16]) -> Result<()> {
k_quants::matmul_f16(mkn, lhs, self.as_slice(), dst)
}
fn embedding(&self, ids: &[u32], rows: usize, hidden: usize) -> Result<CpuStorage> {
if !hidden.is_multiple_of(T::BLCK_SIZE) {
crate::bail!(
"quantized embedding hidden size {hidden} is not divisible by block size {}",
T::BLCK_SIZE
)
}
let row_blocks = hidden / T::BLCK_SIZE;
if self.len() != rows * row_blocks {
crate::bail!(
"quantized tensor has {} blocks, expected {}",
self.len(),
rows * row_blocks
)
}
let mut out = vec![0f32; ids.len() * hidden];
for (out_row, &row_id) in ids.iter().enumerate() {
let row = row_id as usize;
if row >= rows {
crate::bail!("embedding id {row} is out of range for {rows} rows")
}
let src = &self[row * row_blocks..(row + 1) * row_blocks];
let dst = &mut out[out_row * hidden..(out_row + 1) * hidden];
T::to_float(src, dst);
}
Ok(CpuStorage::F32(out))
}
fn size(&self) -> usize {
self.len() * core::mem::size_of::<T>()
}
fn from_float(&mut self, xs: &[f32]) {
T::from_float(xs, self)
}
fn from_float_imatrix(&mut self, xs: &[f32], imatrix_weights: &[f32], n_per_row: usize) {
T::from_float_imatrix(xs, self, imatrix_weights, n_per_row)
}
fn dtype(&self) -> GgmlDType {
T::DTYPE
}
fn block_size(&self) -> usize {
T::BLCK_SIZE
}
fn dequantize(&self, elem_count: usize) -> Result<CpuStorage> {
let mut ys = vec![0.0f32; elem_count];
T::to_float(self.as_slice(), &mut ys);
Ok(CpuStorage::F32(ys))
}
fn storage_size_in_bytes(&self) -> usize {
self.len() * std::mem::size_of::<T>()
}
fn as_ptr(&self) -> *const u8 {
self.as_ptr() as *const u8
}
}
impl std::fmt::Debug for QTensor {
fn fmt(&self, f: &mut std::fmt::Formatter) -> std::fmt::Result {
write!(f, "QTensor[{:?}; {:?}]", self.shape, self.dtype())
}
}
fn check_shape(shape: &Shape, block_size: usize) -> Result<()> {
let dims = shape.dims();
if dims.is_empty() {
crate::bail!("scalar tensor cannot be quantized {shape:?}")
}
if !dims[dims.len() - 1].is_multiple_of(block_size) {
crate::bail!(
"quantized tensor must have their last dim divisible by block size {shape:?} {}",
block_size
)
}
Ok(())
}
impl QTensor {
pub fn new<S: Into<Shape>>(storage: QStorage, shape: S) -> Result<Self> {
let shape = shape.into();
check_shape(&shape, storage.block_size())?;
Ok(Self {
storage,
shape,
repacked_qs: OnceLock::new(),
})
}
pub fn quantize(src: &Tensor, dtype: GgmlDType) -> Result<Self> {
let shape = src.shape();
let block_size = dtype.block_size();
check_shape(shape, block_size)?;
let src = src.to_dtype(crate::DType::F32)?.flatten_all()?;
let elem_count = shape.elem_count();
if !elem_count.is_multiple_of(block_size) {
crate::bail!(
"tensor size ({shape:?}) is not divisible by block size {}",
block_size
)
}
let mut storage = src.device().qzeros(elem_count, dtype)?;
storage.quantize(&src.storage())?;
Ok(Self {
storage,
shape: shape.clone(),
repacked_qs: OnceLock::new(),
})
}
pub fn quantize_imatrix(
src: &Tensor,
imatrix_weights: &[f32],
dtype: GgmlDType,
) -> Result<Self> {
// (n_per_row/QK_K-1)*QK_K+(QK_K/32-1)*32+32=n_per_row
// Size of imatrix == last dim of tensor
let n_per_row = src.dim(D::Minus1)?;
if imatrix_weights.len() != n_per_row {
crate::bail!(
"imatrix weights must have the same length {} as the last dim of src {}",
imatrix_weights.len(),
src.dim(D::Minus1)?
);
}
let shape = src.shape();
let block_size = dtype.block_size();
check_shape(shape, block_size)?;
let src = src.to_dtype(crate::DType::F32)?.flatten_all()?;
let elem_count = shape.elem_count();
if !elem_count.is_multiple_of(block_size) {
crate::bail!(
"tensor size ({shape:?}) is not divisible by block size {}",
block_size
);
}
let mut storage = src.device().qzeros(elem_count, dtype)?;
storage.quantize_imatrix(&src.storage(), imatrix_weights, n_per_row)?;
Ok(Self {
storage,
shape: shape.clone(),
repacked_qs: OnceLock::new(),
})
}
/// Quantize `src` (currently on the CPU) to a QTensor on `dev`
pub fn quantize_imatrix_onto(
src: &Tensor,
imatrix_weights: &[f32],
dtype: GgmlDType,
dev: &Device,
) -> Result<Self> {
if !src.device().is_cpu() {
crate::bail!(
"`quantize_onto` expects a `src` to be on the cpu, got {:?}.",
src.device()
)
}
// (n_per_row/QK_K-1)*QK_K+(QK_K/32-1)*32+32=n_per_row
// Size of imatrix == last dim of tensor
let n_per_row = src.dim(D::Minus1)?;
if imatrix_weights.len() != n_per_row {
crate::bail!(
"imatrix weights must have the same length {} as the last dim of src {}",
imatrix_weights.len(),
src.dim(D::Minus1)?
);
}
let shape = src.shape();
let block_size = dtype.block_size();
check_shape(shape, block_size)?;
let src = src.to_dtype(crate::DType::F32)?.flatten_all()?;
let elem_count = shape.elem_count();
if !elem_count.is_multiple_of(block_size) {
crate::bail!(
"tensor size ({shape:?}) is not divisible by block size {}",
block_size
)
}
// storage is on the `dev`, src is on `cpu`
let mut storage = dev.qzeros(elem_count, dtype)?;
storage.quantize_imatrix_onto(&src.storage(), imatrix_weights, n_per_row)?;
Ok(Self {
storage,
shape: shape.clone(),
repacked_qs: OnceLock::new(),
})
}
/// Quantize `src` (currently on the CPU) to a QTensor on `dev`
pub fn quantize_onto(src: &Tensor, dtype: GgmlDType, dev: &Device) -> Result<Self> {
if !src.device().is_cpu() {
crate::bail!(
"`quantize_onto` expects a `src` to be on the cpu, got {:?}.",
src.device()
)
}
let shape = src.shape();
let block_size = dtype.block_size();
check_shape(shape, block_size)?;
let src = src.to_dtype(crate::DType::F32)?.flatten_all()?;
let elem_count = shape.elem_count();
if !elem_count.is_multiple_of(block_size) {
crate::bail!(
"tensor size ({shape:?}) is not divisible by block size {}",
block_size
)
}
// storage is on the `dev`, src is on `cpu`
let mut storage = dev.qzeros(elem_count, dtype)?;
storage.quantize_onto(&src.storage())?;
Ok(Self {
storage,
shape: shape.clone(),
repacked_qs: OnceLock::new(),
})
}
pub fn dtype(&self) -> GgmlDType {
self.storage.dtype()
}
pub fn device(&self) -> Device {
self.storage.device()
}
pub fn rank(&self) -> usize {
self.shape.rank()
}
pub fn shape(&self) -> &Shape {
&self.shape
}
pub fn dequantize(&self, device: &Device) -> Result<Tensor> {
let storage = self.storage.dequantize(self.shape.elem_count())?;
let none = crate::op::BackpropOp::none();
crate::tensor::from_storage(storage, self.shape.clone(), none, false).to_device(device)
}
pub fn dequantize_f16(&self, device: &Device) -> Result<Tensor> {
// In the CUDA case, we have a specialized kernel as this can be useful for volta
// architectures. https://github.com/huggingface/candle/issues/2136
match &self.storage {
QStorage::Cuda(s) => {
let s = s.dequantize_f16(self.shape.elem_count())?;
let none = crate::op::BackpropOp::none();
crate::tensor::from_storage(Storage::Cuda(s), self.shape.clone(), none, false)
.to_device(device)
}
_ => {
let s = self.dequantize(device)?.to_dtype(crate::DType::F16)?;
Ok(s)
}
}
}
pub fn embedding(&self, ids: &Tensor) -> Result<Tensor> {
let (rows, hidden) = self.shape.dims2()?;
if !hidden.is_multiple_of(self.dtype().block_size()) {
crate::bail!(
"quantized embedding hidden size {hidden} is not divisible by block size {}",
self.dtype().block_size()
)
}
let mut out_shape = ids.dims().to_vec();
out_shape.push(hidden);
let device = self.device();
let ids = ids
.to_device(&device)?
.to_dtype(DType::U32)?
.flatten_all()?
.contiguous()?;
let storage = match &self.storage {
QStorage::Cpu(storage) => {
let ids = ids.to_vec1::<u32>()?;
Storage::Cpu(storage.embedding(&ids, rows, hidden)?)
}
QStorage::Metal(storage) => match &*ids.storage() {
Storage::Metal(ids_storage) => {
Storage::Metal(storage.embedding(rows, hidden, ids_storage, ids.layout())?)
}
_ => unreachable!("ids were moved to the QTensor device"),
},
QStorage::Cuda(storage) => match &*ids.storage() {
Storage::Cuda(ids_storage) => {
Storage::Cuda(storage.embedding(rows, hidden, ids_storage, ids.layout())?)
}
_ => unreachable!("ids were moved to the QTensor device"),
},
};
let none = crate::op::BackpropOp::none();
Ok(crate::tensor::from_storage(storage, out_shape, none, false))
}
pub fn storage_size_in_bytes(&self) -> usize {
self.storage.size_in_bytes()
}
pub fn data(&self) -> Result<Cow<'_, [u8]>> {
self.storage.data()
}
pub fn indexed_moe_forward(&self, x: &Tensor, ids: &Tensor) -> Result<Tensor> {
match &self.storage {
QStorage::Cuda(s) => match (&*x.storage(), &*ids.storage()) {
(Storage::Cuda(x_storage), Storage::Cuda(ids_storage)) => {
let (storage, out_shape) = s.indexed_moe_forward(
self.shape(),
x_storage,
x.layout(),
ids_storage,
ids.layout(),
)?;
Ok(crate::tensor::from_storage(
Storage::Cuda(storage),
out_shape,
crate::op::BackpropOp::none(),
false,
))
}
_ => {
panic!("Non-cuda indexed_moe_forward is not implemented!");
}
},
_ => {
panic!("indexed_moe_forward is not implemented in this platform!");
}
}
}
pub fn device_ptr(&self) -> Result<*const u8> {
match &self.storage {
QStorage::Cuda(storage) => storage.device_ptr(),
QStorage::Metal(_) | QStorage::Cpu(_) => {
crate::bail!("not implemented");
}
}
}
#[cfg(feature = "cuda")]
pub fn device_ptr_with_guard<'a>(
&'a self,
stream: &'a crate::cuda_backend::cudarc::driver::CudaStream,
) -> Result<(
*const u8,
crate::cuda_backend::cudarc::driver::SyncOnDrop<'a>,
)> {
self.storage.device_ptr_with_guard(stream)
}
}
#[derive(Clone, Debug)]
pub enum QMatMul {
QTensor(std::sync::Arc<QTensor>),
Tensor(Tensor),
TensorF16(Tensor),
}
thread_local! {
static DEQUANTIZE_ALL: bool = {
match std::env::var("CANDLE_DEQUANTIZE_ALL") {
Ok(s) => {
!s.is_empty() && s != "0"
},
Err(_) => false,
}
}
}
thread_local! {
static DEQUANTIZE_ALL_F16: bool = {
match std::env::var("CANDLE_DEQUANTIZE_ALL_F16") {
Ok(s) => {
!s.is_empty() && s != "0"
},
Err(_) => false,
}
}
}
impl QMatMul {
pub fn from_arc(qtensor: std::sync::Arc<QTensor>) -> Result<Self> {
let dequantize = match qtensor.dtype() {
GgmlDType::F32 | GgmlDType::F16 | GgmlDType::BF16 => true,
_ => DEQUANTIZE_ALL.with(|b| *b),
};
let t = if dequantize {
let tensor = qtensor.dequantize(&qtensor.device())?;
Self::Tensor(tensor)
} else if DEQUANTIZE_ALL_F16.with(|b| *b) {
let tensor = qtensor.dequantize_f16(&qtensor.device())?;
Self::TensorF16(tensor)
} else {
Self::QTensor(qtensor)
};
Ok(t)
}
pub fn from_qtensor(qtensor: QTensor) -> Result<Self> {
Self::from_arc(std::sync::Arc::new(qtensor))
}
pub fn dequantize_f16(&self) -> Result<Tensor> {
match self {
Self::QTensor(t) => t.dequantize_f16(&t.device()),
Self::Tensor(t) => t.to_dtype(DType::F16),
Self::TensorF16(t) => Ok(t.clone()),
}
}
pub fn forward_via_f16(&self, xs: &Tensor) -> Result<Tensor> {
let w = self.dequantize_f16()?;
let in_dtype = xs.dtype();
let w = match *xs.dims() {
[b1, b2, _, _] => w.broadcast_left((b1, b2))?.t()?,
[bsize, _, _] => w.broadcast_left(bsize)?.t()?,
_ => w.t()?,
};
xs.to_dtype(DType::F16)?.matmul(&w)?.to_dtype(in_dtype)
}
pub fn indexed_moe_forward(&self, x: &Tensor, ids: &Tensor) -> Result<Tensor> {
match self {
Self::QTensor(t) => t.indexed_moe_forward(x, ids),
_ => {
panic!("Not implemented!")
}
}
}
pub fn embedding(&self, ids: &Tensor) -> Result<Tensor> {
match self {
Self::QTensor(t) => t.embedding(ids),
Self::Tensor(w) | Self::TensorF16(w) => {
let mut final_dims = ids.dims().to_vec();
final_dims.push(w.dim(D::Minus1)?);
let ids = ids.to_device(w.device())?.flatten_all()?;
w.index_select(&ids, 0)?.reshape(final_dims)
}
}
}
}
impl crate::CustomOp1 for QTensor {
fn name(&self) -> &'static str {
"qmatmul"
}
fn cpu_fwd(
&self,
storage: &crate::CpuStorage,
layout: &crate::Layout,
) -> Result<(crate::CpuStorage, Shape)> {
if !layout.is_contiguous() {
crate::bail!("input tensor is not contiguous {layout:?}")
}
let src_shape = layout.shape();
// self is transposed so n is first then k.
let (n, k) = self.shape.dims2()?;
if src_shape.rank() < 2 {
crate::bail!("input tensor has only one dimension {layout:?}")
}
let mut dst_shape = src_shape.dims().to_vec();
let last_k = dst_shape.pop().unwrap();
if last_k != k {
crate::bail!("input tensor {layout:?} incompatible with {:?}", self.shape)
}
dst_shape.push(n);
let dst_shape = Shape::from(dst_shape);
#[allow(clippy::infallible_destructuring_match)]
let self_storage = match &self.storage {
QStorage::Cpu(storage) => storage,
QStorage::Metal(_) | QStorage::Cuda(_) => crate::bail!("Invalid storage"),
};
match storage.dtype() {
DType::F32 => {
let slice = storage.as_slice::<f32>()?;
let slice =
&slice[layout.start_offset()..layout.start_offset() + src_shape.elem_count()];
let mut dst_storage = vec![0f32; dst_shape.elem_count()];
// Try the 8-column BlockQ4Kx8 repacked path.
#[cfg(all(target_arch = "aarch64", target_feature = "dotprod"))]
if self_storage.dtype() == GgmlDType::Q4K && n.is_multiple_of(8) {
use zerocopy::{FromBytes, IntoBytes};
let total_blocks =
self_storage.storage_size_in_bytes() / std::mem::size_of::<BlockQ4K>();
let repacked = self.repacked_qs.get_or_init(|| {
let blocks = unsafe {
std::slice::from_raw_parts(
self_storage.as_ptr() as *const BlockQ4K,
total_blocks,
)
};
let packed = k_quants::pack_to_q4kx8(blocks, n);
Some(packed.as_bytes().to_vec())
});
if let Some(repacked_bytes) = repacked {
let block_x8: &[BlockQ4Kx8] =
<[BlockQ4Kx8]>::ref_from_bytes(repacked_bytes).map_err(|_| {
crate::Error::Msg(
"repacked_qs alignment invariant violated".to_string(),
)
})?;
k_quants::matmul_q4k_x8(
(dst_shape.elem_count() / n, k, n),
slice,
block_x8,
&mut dst_storage,
)?;
return Ok((crate::CpuStorage::F32(dst_storage), dst_shape));
}
}
self_storage.matmul_t(
(dst_shape.elem_count() / n, k, n),
slice,
&mut dst_storage,
)?;
Ok((crate::CpuStorage::F32(dst_storage), dst_shape))
}
DType::F16 => {
let slice = storage.as_slice::<f16>()?;
let slice =
&slice[layout.start_offset()..layout.start_offset() + src_shape.elem_count()];
let mut dst_storage = vec![f16::ZERO; dst_shape.elem_count()];
self_storage.matmul_t_f16(
(dst_shape.elem_count() / n, k, n),
slice,
&mut dst_storage,
)?;
Ok((crate::CpuStorage::F16(dst_storage), dst_shape))
}
_ => crate::bail!("Expected f32/f16"),
}
}
fn metal_fwd(
&self,
storage: &crate::MetalStorage,
layout: &crate::Layout,
) -> Result<(crate::MetalStorage, Shape)> {
let self_storage = match &self.storage {
QStorage::Metal(metal) => metal,
_ => unreachable!("Cannot call metal matmul on non metal QTensor"),
};
self_storage.fwd(&self.shape, storage, layout)
}
fn cuda_fwd(
&self,
storage: &crate::CudaStorage,
layout: &crate::Layout,
) -> Result<(crate::CudaStorage, Shape)> {
let self_storage = match &self.storage {
QStorage::Cuda(cuda) => cuda,
_ => unreachable!("Cannot call cuda matmul on non cuda QTensor"),
};
self_storage.fwd(&self.shape, storage, layout)
}
}
impl crate::Module for QMatMul {
fn forward(&self, xs: &Tensor) -> Result<Tensor> {
match self {
Self::QTensor(t) => xs.apply_op1_no_bwd(t.as_ref()),
Self::Tensor(w) => {
let w = match *xs.dims() {
[b1, b2, _, _] => w.broadcast_left((b1, b2))?.t()?,
[bsize, _, _] => w.broadcast_left(bsize)?.t()?,
_ => w.t()?,
};
xs.matmul(&w)
}
Self::TensorF16(w) => {
let in_dtype = xs.dtype();
let w = match *xs.dims() {
[b1, b2, _, _] => w.broadcast_left((b1, b2))?.t()?,
[bsize, _, _] => w.broadcast_left(bsize)?.t()?,
_ => w.t()?,
};
xs.to_dtype(DType::F16)?.matmul(&w)?.to_dtype(in_dtype)
}
}
}
}
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