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| | #ifndef LIBSPIRV_UTIL_HEX_FLOAT_H_ |
| | #define LIBSPIRV_UTIL_HEX_FLOAT_H_ |
| |
|
| | #include <cassert> |
| | #include <cctype> |
| | #include <cmath> |
| | #include <cstdint> |
| | #include <iomanip> |
| | #include <limits> |
| | #include <sstream> |
| |
|
| | #include "bitutils.h" |
| |
|
| | namespace spvutils { |
| |
|
| | class Float16 { |
| | public: |
| | Float16(uint16_t v) : val(v) {} |
| | Float16() {} |
| | static bool isNan(const Float16& val) { |
| | return ((val.val & 0x7C00) == 0x7C00) && ((val.val & 0x3FF) != 0); |
| | } |
| | |
| | static bool isInfinity(const Float16& val) { |
| | return ((val.val & 0x7C00) == 0x7C00) && ((val.val & 0x3FF) == 0); |
| | } |
| | Float16(const Float16& other) { val = other.val; } |
| | uint16_t get_value() const { return val; } |
| |
|
| | |
| | static Float16 max() { return Float16(0x7bff); } |
| | |
| | static Float16 lowest() { return Float16(0xfbff); } |
| |
|
| | private: |
| | uint16_t val; |
| | }; |
| |
|
| | |
| | |
| | |
| | |
| | template <typename T> |
| | struct FloatProxyTraits { |
| | typedef void uint_type; |
| | }; |
| |
|
| | template <> |
| | struct FloatProxyTraits<float> { |
| | typedef uint32_t uint_type; |
| | static bool isNan(float f) { return std::isnan(f); } |
| | |
| | static bool isInfinity(float f) { return std::isinf(f); } |
| | |
| | static float max() { return std::numeric_limits<float>::max(); } |
| | |
| | static float lowest() { return std::numeric_limits<float>::lowest(); } |
| | }; |
| |
|
| | template <> |
| | struct FloatProxyTraits<double> { |
| | typedef uint64_t uint_type; |
| | static bool isNan(double f) { return std::isnan(f); } |
| | |
| | static bool isInfinity(double f) { return std::isinf(f); } |
| | |
| | static double max() { return std::numeric_limits<double>::max(); } |
| | |
| | static double lowest() { return std::numeric_limits<double>::lowest(); } |
| | }; |
| |
|
| | template <> |
| | struct FloatProxyTraits<Float16> { |
| | typedef uint16_t uint_type; |
| | static bool isNan(Float16 f) { return Float16::isNan(f); } |
| | |
| | static bool isInfinity(Float16 f) { return Float16::isInfinity(f); } |
| | |
| | static Float16 max() { return Float16::max(); } |
| | |
| | static Float16 lowest() { return Float16::lowest(); } |
| | }; |
| |
|
| | |
| | |
| | |
| | template <typename T> |
| | class FloatProxy { |
| | public: |
| | typedef typename FloatProxyTraits<T>::uint_type uint_type; |
| |
|
| | |
| | |
| | FloatProxy() {} |
| |
|
| | |
| | |
| | FloatProxy(T val) { data_ = BitwiseCast<uint_type>(val); } |
| |
|
| | |
| | |
| | FloatProxy(uint_type val) { data_ = val; } |
| |
|
| | |
| | FloatProxy<T> operator-() const { |
| | return static_cast<uint_type>(data_ ^ |
| | (uint_type(0x1) << (sizeof(T) * 8 - 1))); |
| | } |
| |
|
| | |
| | T getAsFloat() const { return BitwiseCast<T>(data_); } |
| |
|
| | |
| | uint_type data() const { return data_; } |
| |
|
| | |
| | bool isNan() { return FloatProxyTraits<T>::isNan(getAsFloat()); } |
| | |
| | bool isInfinity() { return FloatProxyTraits<T>::isInfinity(getAsFloat()); } |
| |
|
| | |
| | static FloatProxy<T> max() { |
| | return FloatProxy<T>(FloatProxyTraits<T>::max()); |
| | } |
| | |
| | static FloatProxy<T> lowest() { |
| | return FloatProxy<T>(FloatProxyTraits<T>::lowest()); |
| | } |
| |
|
| | private: |
| | uint_type data_; |
| | }; |
| |
|
| | template <typename T> |
| | bool operator==(const FloatProxy<T>& first, const FloatProxy<T>& second) { |
| | return first.data() == second.data(); |
| | } |
| |
|
| | |
| | template <typename T> |
| | std::istream& operator>>(std::istream& is, FloatProxy<T>& value) { |
| | T float_val; |
| | is >> float_val; |
| | value = FloatProxy<T>(float_val); |
| | return is; |
| | } |
| |
|
| | |
| | |
| | template <typename T> |
| | struct HexFloatTraits { |
| | |
| | typedef void uint_type; |
| | |
| | typedef void int_type; |
| | |
| | typedef void underlying_type; |
| | |
| | typedef void native_type; |
| | |
| | |
| | |
| | static const uint32_t num_used_bits = 0; |
| | |
| | static const uint32_t num_exponent_bits = 0; |
| | |
| | static const uint32_t num_fraction_bits = 0; |
| | |
| | |
| | static const uint32_t exponent_bias = 0; |
| | }; |
| |
|
| | |
| | |
| | template <> |
| | struct HexFloatTraits<FloatProxy<float>> { |
| | typedef uint32_t uint_type; |
| | typedef int32_t int_type; |
| | typedef FloatProxy<float> underlying_type; |
| | typedef float native_type; |
| | static const uint_type num_used_bits = 32; |
| | static const uint_type num_exponent_bits = 8; |
| | static const uint_type num_fraction_bits = 23; |
| | static const uint_type exponent_bias = 127; |
| | }; |
| |
|
| | |
| | |
| | template <> |
| | struct HexFloatTraits<FloatProxy<double>> { |
| | typedef uint64_t uint_type; |
| | typedef int64_t int_type; |
| | typedef FloatProxy<double> underlying_type; |
| | typedef double native_type; |
| | static const uint_type num_used_bits = 64; |
| | static const uint_type num_exponent_bits = 11; |
| | static const uint_type num_fraction_bits = 52; |
| | static const uint_type exponent_bias = 1023; |
| | }; |
| |
|
| | |
| | |
| | template <> |
| | struct HexFloatTraits<FloatProxy<Float16>> { |
| | typedef uint16_t uint_type; |
| | typedef int16_t int_type; |
| | typedef uint16_t underlying_type; |
| | typedef uint16_t native_type; |
| | static const uint_type num_used_bits = 16; |
| | static const uint_type num_exponent_bits = 5; |
| | static const uint_type num_fraction_bits = 10; |
| | static const uint_type exponent_bias = 15; |
| | }; |
| |
|
| | enum round_direction { |
| | kRoundToZero, |
| | kRoundToNearestEven, |
| | kRoundToPositiveInfinity, |
| | kRoundToNegativeInfinity |
| | }; |
| |
|
| | |
| | |
| | |
| | template <typename T, typename Traits = HexFloatTraits<T>> |
| | class HexFloat { |
| | public: |
| | typedef typename Traits::uint_type uint_type; |
| | typedef typename Traits::int_type int_type; |
| | typedef typename Traits::underlying_type underlying_type; |
| | typedef typename Traits::native_type native_type; |
| |
|
| | explicit HexFloat(T f) : value_(f) {} |
| |
|
| | T value() const { return value_; } |
| | void set_value(T f) { value_ = f; } |
| |
|
| | |
| | |
| |
|
| | |
| | static const uint32_t num_used_bits = Traits::num_used_bits; |
| | static const uint32_t exponent_bias = Traits::exponent_bias; |
| | static const uint32_t num_exponent_bits = Traits::num_exponent_bits; |
| | static const uint32_t num_fraction_bits = Traits::num_fraction_bits; |
| |
|
| | |
| | static const uint32_t top_bit_left_shift = num_used_bits - 1; |
| | |
| | static const uint32_t fraction_nibbles = (num_fraction_bits + 3) / 4; |
| | |
| | |
| | |
| | static const uint32_t num_overflow_bits = |
| | fraction_nibbles * 4 - num_fraction_bits; |
| |
|
| | |
| | |
| | static const uint_type fraction_represent_mask = |
| | spvutils::SetBits<uint_type, 0, |
| | num_fraction_bits + num_overflow_bits>::get; |
| |
|
| | |
| | static const uint_type fraction_top_bit = |
| | uint_type(1) << (num_fraction_bits + num_overflow_bits - 1); |
| |
|
| | |
| | |
| | static const uint_type first_exponent_bit = uint_type(1) |
| | << (num_fraction_bits); |
| |
|
| | |
| | |
| | static const uint_type fraction_encode_mask = |
| | spvutils::SetBits<uint_type, 0, num_fraction_bits>::get; |
| |
|
| | |
| | static const uint_type sign_mask = uint_type(1) << top_bit_left_shift; |
| |
|
| | |
| | static const uint_type exponent_mask = |
| | spvutils::SetBits<uint_type, num_fraction_bits, num_exponent_bits>::get; |
| |
|
| | |
| | static const uint32_t exponent_left_shift = num_fraction_bits; |
| |
|
| | |
| | static const uint32_t fraction_right_shift = |
| | static_cast<uint32_t>(sizeof(uint_type) * 8) - num_fraction_bits; |
| |
|
| | |
| | static const int_type max_exponent = |
| | (exponent_mask >> num_fraction_bits) - exponent_bias; |
| | |
| | static const int_type min_exponent = -static_cast<int_type>(exponent_bias); |
| |
|
| | |
| | uint_type getBits() const { return spvutils::BitwiseCast<uint_type>(value_); } |
| |
|
| | |
| | uint_type getUnsignedBits() const { |
| | return static_cast<uint_type>(spvutils::BitwiseCast<uint_type>(value_) & |
| | ~sign_mask); |
| | } |
| |
|
| | |
| | |
| | const uint_type getExponentBits() const { |
| | return static_cast<uint_type>((getBits() & exponent_mask) >> |
| | num_fraction_bits); |
| | } |
| |
|
| | |
| | |
| | const int_type getUnbiasedExponent() const { |
| | return static_cast<int_type>(getExponentBits() - exponent_bias); |
| | } |
| |
|
| | |
| | const uint_type getSignificandBits() const { |
| | return getBits() & fraction_encode_mask; |
| | } |
| |
|
| | |
| | |
| | const int_type getUnbiasedNormalizedExponent() const { |
| | if ((getBits() & ~sign_mask) == 0) { |
| | return 0; |
| | } |
| | int_type exp = getUnbiasedExponent(); |
| | if (exp == min_exponent) { |
| | uint_type significand_bits = getSignificandBits(); |
| | while ((significand_bits & (first_exponent_bit >> 1)) == 0) { |
| | significand_bits = static_cast<uint_type>(significand_bits << 1); |
| | exp = static_cast<int_type>(exp - 1); |
| | } |
| | significand_bits &= fraction_encode_mask; |
| | } |
| | return exp; |
| | } |
| |
|
| | |
| | const uint_type getNormalizedSignificand() const { |
| | int_type unbiased_exponent = getUnbiasedNormalizedExponent(); |
| | uint_type significand = getSignificandBits(); |
| | for (int_type i = unbiased_exponent; i <= min_exponent; ++i) { |
| | significand = static_cast<uint_type>(significand << 1); |
| | } |
| | significand &= fraction_encode_mask; |
| | return significand; |
| | } |
| |
|
| | |
| | bool isNegative() const { return (getBits() & sign_mask) != 0; } |
| |
|
| | |
| | |
| | |
| | |
| | |
| | |
| | |
| | |
| | |
| | |
| | |
| | |
| | void setFromSignUnbiasedExponentAndNormalizedSignificand( |
| | bool negative, int_type exponent, uint_type significand, |
| | bool round_denorm_up) { |
| | bool significand_is_zero = significand == 0; |
| |
|
| | if (exponent <= min_exponent) { |
| | |
| | |
| | significand_is_zero = false; |
| | significand |= first_exponent_bit; |
| | significand = static_cast<uint_type>(significand >> 1); |
| | } |
| |
|
| | while (exponent < min_exponent) { |
| | significand = static_cast<uint_type>(significand >> 1); |
| | ++exponent; |
| | } |
| |
|
| | if (exponent == min_exponent) { |
| | if (significand == 0 && !significand_is_zero && round_denorm_up) { |
| | significand = static_cast<uint_type>(0x1); |
| | } |
| | } |
| |
|
| | uint_type new_value = 0; |
| | if (negative) { |
| | new_value = static_cast<uint_type>(new_value | sign_mask); |
| | } |
| | exponent = static_cast<int_type>(exponent + exponent_bias); |
| | assert(exponent >= 0); |
| |
|
| | |
| | exponent = static_cast<uint_type>((exponent << exponent_left_shift) & |
| | exponent_mask); |
| | significand = static_cast<uint_type>(significand & fraction_encode_mask); |
| | new_value = static_cast<uint_type>(new_value | (exponent | significand)); |
| | value_ = BitwiseCast<T>(new_value); |
| | } |
| |
|
| | |
| | |
| | |
| | |
| | |
| | |
| | static uint_type incrementSignificand(uint_type significand, |
| | uint_type to_increment, bool* carry) { |
| | significand = static_cast<uint_type>(significand + to_increment); |
| | *carry = false; |
| | if (significand & first_exponent_bit) { |
| | *carry = true; |
| | |
| | |
| | significand = static_cast<uint_type>(significand & ~first_exponent_bit); |
| | significand = static_cast<uint_type>(significand >> 1); |
| | } |
| | return significand; |
| | } |
| |
|
| | |
| | |
| | |
| | |
| |
|
| | template <typename int_type> |
| | uint_type negatable_left_shift(int_type N, uint_type val) |
| | { |
| | if(N >= 0) |
| | return val << N; |
| |
|
| | return val >> -N; |
| | } |
| |
|
| | template <typename int_type> |
| | uint_type negatable_right_shift(int_type N, uint_type val) |
| | { |
| | if(N >= 0) |
| | return val >> N; |
| |
|
| | return val << -N; |
| | } |
| |
|
| | |
| | |
| | |
| | |
| | template <typename other_T> |
| | typename other_T::uint_type getRoundedNormalizedSignificand( |
| | round_direction dir, bool* carry_bit) { |
| | typedef typename other_T::uint_type other_uint_type; |
| | static const int_type num_throwaway_bits = |
| | static_cast<int_type>(num_fraction_bits) - |
| | static_cast<int_type>(other_T::num_fraction_bits); |
| |
|
| | static const uint_type last_significant_bit = |
| | (num_throwaway_bits < 0) |
| | ? 0 |
| | : negatable_left_shift(num_throwaway_bits, 1u); |
| | static const uint_type first_rounded_bit = |
| | (num_throwaway_bits < 1) |
| | ? 0 |
| | : negatable_left_shift(num_throwaway_bits - 1, 1u); |
| |
|
| | static const uint_type throwaway_mask_bits = |
| | num_throwaway_bits > 0 ? num_throwaway_bits : 0; |
| | static const uint_type throwaway_mask = |
| | spvutils::SetBits<uint_type, 0, throwaway_mask_bits>::get; |
| |
|
| | *carry_bit = false; |
| | other_uint_type out_val = 0; |
| | uint_type significand = getNormalizedSignificand(); |
| | |
| | if (num_throwaway_bits <= 0) { |
| | out_val = static_cast<other_uint_type>(significand); |
| | uint_type shift_amount = static_cast<uint_type>(-num_throwaway_bits); |
| | out_val = static_cast<other_uint_type>(out_val << shift_amount); |
| | return out_val; |
| | } |
| |
|
| | |
| | |
| | if ((significand & throwaway_mask) == 0) { |
| | return static_cast<other_uint_type>( |
| | negatable_right_shift(num_throwaway_bits, significand)); |
| | } |
| |
|
| | bool round_away_from_zero = false; |
| | |
| | |
| | switch (dir) { |
| | case kRoundToZero: |
| | break; |
| | case kRoundToPositiveInfinity: |
| | round_away_from_zero = !isNegative(); |
| | break; |
| | case kRoundToNegativeInfinity: |
| | round_away_from_zero = isNegative(); |
| | break; |
| | case kRoundToNearestEven: |
| | |
| | if ((first_rounded_bit & significand) == 0) { |
| | break; |
| | } |
| | if (((significand & throwaway_mask) & ~first_rounded_bit) != 0) { |
| | |
| | |
| | round_away_from_zero = true; |
| | break; |
| | } |
| | |
| | if ((significand & last_significant_bit) != 0) { |
| | |
| | round_away_from_zero = true; |
| | break; |
| | } |
| | break; |
| | } |
| |
|
| | if (round_away_from_zero) { |
| | return static_cast<other_uint_type>( |
| | negatable_right_shift(num_throwaway_bits, incrementSignificand( |
| | significand, last_significant_bit, carry_bit))); |
| | } else { |
| | return static_cast<other_uint_type>( |
| | negatable_right_shift(num_throwaway_bits, significand)); |
| | } |
| | } |
| |
|
| | |
| | |
| | |
| | |
| | |
| | |
| | template <typename other_T> |
| | void castTo(other_T& other, round_direction round_dir) { |
| | other = other_T(static_cast<typename other_T::native_type>(0)); |
| | bool negate = isNegative(); |
| | if (getUnsignedBits() == 0) { |
| | if (negate) { |
| | other.set_value(-other.value()); |
| | } |
| | return; |
| | } |
| | uint_type significand = getSignificandBits(); |
| | bool carried = false; |
| | typename other_T::uint_type rounded_significand = |
| | getRoundedNormalizedSignificand<other_T>(round_dir, &carried); |
| |
|
| | int_type exponent = getUnbiasedExponent(); |
| | if (exponent == min_exponent) { |
| | |
| | |
| | exponent = static_cast<int_type>(exponent + 1); |
| | for (uint_type check_bit = first_exponent_bit >> 1; check_bit != 0; |
| | check_bit = static_cast<uint_type>(check_bit >> 1)) { |
| | exponent = static_cast<int_type>(exponent - 1); |
| | if (check_bit & significand) break; |
| | } |
| | } |
| |
|
| | bool is_nan = |
| | (getBits() & exponent_mask) == exponent_mask && significand != 0; |
| | bool is_inf = |
| | !is_nan && |
| | ((exponent + carried) > static_cast<int_type>(other_T::exponent_bias) || |
| | (significand == 0 && (getBits() & exponent_mask) == exponent_mask)); |
| |
|
| | |
| | if (is_inf) { |
| | other.set_value(BitwiseCast<typename other_T::underlying_type>( |
| | static_cast<typename other_T::uint_type>( |
| | (negate ? other_T::sign_mask : 0) | other_T::exponent_mask))); |
| | return; |
| | } |
| | if (is_nan) { |
| | typename other_T::uint_type shifted_significand; |
| | shifted_significand = static_cast<typename other_T::uint_type>( |
| | negatable_left_shift( |
| | static_cast<int_type>(other_T::num_fraction_bits) - |
| | static_cast<int_type>(num_fraction_bits), significand)); |
| |
|
| | |
| | |
| | |
| | other.set_value(BitwiseCast<typename other_T::underlying_type>( |
| | static_cast<typename other_T::uint_type>( |
| | (negate ? other_T::sign_mask : 0) | other_T::exponent_mask | |
| | (shifted_significand == 0 ? 0x1 : shifted_significand)))); |
| | return; |
| | } |
| |
|
| | bool round_underflow_up = |
| | isNegative() ? round_dir == kRoundToNegativeInfinity |
| | : round_dir == kRoundToPositiveInfinity; |
| | typedef typename other_T::int_type other_int_type; |
| | |
| | |
| | other.setFromSignUnbiasedExponentAndNormalizedSignificand( |
| | negate, static_cast<other_int_type>(exponent), rounded_significand, |
| | round_underflow_up); |
| | return; |
| | } |
| |
|
| | private: |
| | T value_; |
| |
|
| | static_assert(num_used_bits == |
| | Traits::num_exponent_bits + Traits::num_fraction_bits + 1, |
| | "The number of bits do not fit"); |
| | static_assert(sizeof(T) == sizeof(uint_type), "The type sizes do not match"); |
| | }; |
| |
|
| | |
| | inline uint8_t get_nibble_from_character(int character) { |
| | const char* dec = "0123456789"; |
| | const char* lower = "abcdef"; |
| | const char* upper = "ABCDEF"; |
| | const char* p = nullptr; |
| | if ((p = strchr(dec, character))) { |
| | return static_cast<uint8_t>(p - dec); |
| | } else if ((p = strchr(lower, character))) { |
| | return static_cast<uint8_t>(p - lower + 0xa); |
| | } else if ((p = strchr(upper, character))) { |
| | return static_cast<uint8_t>(p - upper + 0xa); |
| | } |
| |
|
| | assert(false && "This was called with a non-hex character"); |
| | return 0; |
| | } |
| |
|
| | |
| | template <typename T, typename Traits> |
| | std::ostream& operator<<(std::ostream& os, const HexFloat<T, Traits>& value) { |
| | typedef HexFloat<T, Traits> HF; |
| | typedef typename HF::uint_type uint_type; |
| | typedef typename HF::int_type int_type; |
| |
|
| | static_assert(HF::num_used_bits != 0, |
| | "num_used_bits must be non-zero for a valid float"); |
| | static_assert(HF::num_exponent_bits != 0, |
| | "num_exponent_bits must be non-zero for a valid float"); |
| | static_assert(HF::num_fraction_bits != 0, |
| | "num_fractin_bits must be non-zero for a valid float"); |
| |
|
| | const uint_type bits = spvutils::BitwiseCast<uint_type>(value.value()); |
| | const char* const sign = (bits & HF::sign_mask) ? "-" : ""; |
| | const uint_type exponent = static_cast<uint_type>( |
| | (bits & HF::exponent_mask) >> HF::num_fraction_bits); |
| |
|
| | uint_type fraction = static_cast<uint_type>((bits & HF::fraction_encode_mask) |
| | << HF::num_overflow_bits); |
| |
|
| | const bool is_zero = exponent == 0 && fraction == 0; |
| | const bool is_denorm = exponent == 0 && !is_zero; |
| |
|
| | |
| | |
| | int_type int_exponent = static_cast<int_type>(exponent - HF::exponent_bias); |
| | |
| | |
| | int_exponent = is_zero ? 0 : int_exponent; |
| |
|
| | |
| | |
| |
|
| | if (is_denorm) { |
| | while ((fraction & HF::fraction_top_bit) == 0) { |
| | fraction = static_cast<uint_type>(fraction << 1); |
| | int_exponent = static_cast<int_type>(int_exponent - 1); |
| | } |
| | |
| | |
| | fraction = static_cast<uint_type>(fraction << 1); |
| | fraction &= HF::fraction_represent_mask; |
| | } |
| |
|
| | uint_type fraction_nibbles = HF::fraction_nibbles; |
| | |
| | |
| | while (fraction_nibbles > 0 && (fraction & 0xF) == 0) { |
| | |
| | fraction = static_cast<uint_type>(fraction >> 4); |
| | --fraction_nibbles; |
| | } |
| |
|
| | const auto saved_flags = os.flags(); |
| | const auto saved_fill = os.fill(); |
| |
|
| | os << sign << "0x" << (is_zero ? '0' : '1'); |
| | if (fraction_nibbles) { |
| | |
| | |
| | os << "." << std::setw(static_cast<int>(fraction_nibbles)) |
| | << std::setfill('0') << std::hex << fraction; |
| | } |
| | os << "p" << std::dec << (int_exponent >= 0 ? "+" : "") << int_exponent; |
| |
|
| | os.flags(saved_flags); |
| | os.fill(saved_fill); |
| |
|
| | return os; |
| | } |
| |
|
| | |
| | |
| | |
| | template <typename T, typename Traits> |
| | inline bool RejectParseDueToLeadingSign(std::istream& is, bool negate_value, |
| | HexFloat<T, Traits>& value) { |
| | if (negate_value) { |
| | auto next_char = is.peek(); |
| | if (next_char == '-' || next_char == '+') { |
| | |
| | |
| | value = HexFloat<T, Traits>(typename HexFloat<T, Traits>::uint_type(0)); |
| | is.setstate(std::ios_base::failbit); |
| | return true; |
| | } |
| | } |
| | return false; |
| | } |
| |
|
| | |
| | |
| | |
| | |
| | |
| | |
| | |
| | |
| | |
| | |
| | template <typename T, typename Traits> |
| | inline std::istream& ParseNormalFloat(std::istream& is, bool negate_value, |
| | HexFloat<T, Traits>& value) { |
| | if (RejectParseDueToLeadingSign(is, negate_value, value)) { |
| | return is; |
| | } |
| | T val; |
| | is >> val; |
| | if (negate_value) { |
| | val = -val; |
| | } |
| | value.set_value(val); |
| | |
| | if (is.fail() && value.getUnsignedBits() == 0u) { |
| | value = HexFloat<T, Traits>(typename HexFloat<T, Traits>::uint_type(0)); |
| | } |
| | if (val.isInfinity()) { |
| | |
| | |
| | value.set_value((value.isNegative() || negate_value) ? T::lowest() |
| | : T::max()); |
| | is.setstate(std::ios_base::failbit); |
| | } |
| | return is; |
| | } |
| |
|
| | |
| | |
| | |
| | |
| | |
| | |
| | |
| | |
| | |
| | |
| | |
| | |
| | template <> |
| | inline std::istream& |
| | ParseNormalFloat<FloatProxy<Float16>, HexFloatTraits<FloatProxy<Float16>>>( |
| | std::istream& is, bool negate_value, |
| | HexFloat<FloatProxy<Float16>, HexFloatTraits<FloatProxy<Float16>>>& value) { |
| | |
| | HexFloat<FloatProxy<float>> float_val(0.0f); |
| | ParseNormalFloat(is, negate_value, float_val); |
| |
|
| | |
| | |
| | float_val.castTo(value, kRoundToZero); |
| |
|
| | |
| | |
| | if (Float16::isInfinity(value.value().getAsFloat())) { |
| | value.set_value(value.isNegative() ? Float16::lowest() : Float16::max()); |
| | is.setstate(std::ios_base::failbit); |
| | } |
| | return is; |
| | } |
| |
|
| | |
| | |
| | |
| | |
| | |
| | |
| | |
| | |
| | |
| | |
| | |
| | |
| | |
| | |
| | |
| | |
| | |
| | |
| | |
| | template <typename T, typename Traits> |
| | std::istream& operator>>(std::istream& is, HexFloat<T, Traits>& value) { |
| | using HF = HexFloat<T, Traits>; |
| | using uint_type = typename HF::uint_type; |
| | using int_type = typename HF::int_type; |
| |
|
| | value.set_value(static_cast<typename HF::native_type>(0.f)); |
| |
|
| | if (is.flags() & std::ios::skipws) { |
| | |
| | while (std::isspace(is.peek())) { |
| | is.get(); |
| | } |
| | } |
| |
|
| | auto next_char = is.peek(); |
| | bool negate_value = false; |
| |
|
| | if (next_char != '-' && next_char != '0') { |
| | return ParseNormalFloat(is, negate_value, value); |
| | } |
| |
|
| | if (next_char == '-') { |
| | negate_value = true; |
| | is.get(); |
| | next_char = is.peek(); |
| | } |
| |
|
| | if (next_char == '0') { |
| | is.get(); |
| | auto maybe_hex_start = is.peek(); |
| | if (maybe_hex_start != 'x' && maybe_hex_start != 'X') { |
| | is.unget(); |
| | return ParseNormalFloat(is, negate_value, value); |
| | } else { |
| | is.get(); |
| | } |
| | } else { |
| | return ParseNormalFloat(is, negate_value, value); |
| | } |
| |
|
| | |
| | bool seen_p = false; |
| | bool seen_dot = false; |
| | uint_type fraction_index = 0; |
| |
|
| | uint_type fraction = 0; |
| | int_type exponent = HF::exponent_bias; |
| |
|
| | |
| | while ((next_char = is.peek()) == '0') { |
| | is.get(); |
| | } |
| |
|
| | bool is_denorm = |
| | true; |
| | |
| | |
| | bool bits_written = false; |
| | while (!seen_p && !seen_dot) { |
| | |
| | if (next_char == '.') { |
| | seen_dot = true; |
| | } else if (next_char == 'p') { |
| | seen_p = true; |
| | } else if (::isxdigit(next_char)) { |
| | |
| | |
| | is_denorm = false; |
| | int number = get_nibble_from_character(next_char); |
| | for (int i = 0; i < 4; ++i, number <<= 1) { |
| | uint_type write_bit = (number & 0x8) ? 0x1 : 0x0; |
| | if (bits_written) { |
| | |
| | |
| | fraction = static_cast<uint_type>( |
| | fraction | |
| | static_cast<uint_type>( |
| | write_bit << (HF::top_bit_left_shift - fraction_index++))); |
| | exponent = static_cast<int_type>(exponent + 1); |
| | } |
| | bits_written |= write_bit != 0; |
| | } |
| | } else { |
| | |
| | is.setstate(std::ios::failbit); |
| | return is; |
| | } |
| | is.get(); |
| | next_char = is.peek(); |
| | } |
| | bits_written = false; |
| | while (seen_dot && !seen_p) { |
| | |
| | if (next_char == 'p') { |
| | seen_p = true; |
| | } else if (::isxdigit(next_char)) { |
| | int number = get_nibble_from_character(next_char); |
| | for (int i = 0; i < 4; ++i, number <<= 1) { |
| | uint_type write_bit = (number & 0x8) ? 0x01 : 0x00; |
| | bits_written |= write_bit != 0; |
| | if (is_denorm && !bits_written) { |
| | |
| | |
| | |
| | exponent = static_cast<int_type>(exponent - 1); |
| | } else { |
| | fraction = static_cast<uint_type>( |
| | fraction | |
| | static_cast<uint_type>( |
| | write_bit << (HF::top_bit_left_shift - fraction_index++))); |
| | } |
| | } |
| | } else { |
| | |
| | |
| | is.setstate(std::ios::failbit); |
| | return is; |
| | } |
| | is.get(); |
| | next_char = is.peek(); |
| | } |
| |
|
| | bool seen_sign = false; |
| | int8_t exponent_sign = 1; |
| | int_type written_exponent = 0; |
| | while (true) { |
| | if ((next_char == '-' || next_char == '+')) { |
| | if (seen_sign) { |
| | is.setstate(std::ios::failbit); |
| | return is; |
| | } |
| | seen_sign = true; |
| | exponent_sign = (next_char == '-') ? -1 : 1; |
| | } else if (::isdigit(next_char)) { |
| | |
| | written_exponent = static_cast<int_type>(written_exponent * 10); |
| | written_exponent = |
| | static_cast<int_type>(written_exponent + (next_char - '0')); |
| | } else { |
| | break; |
| | } |
| | is.get(); |
| | next_char = is.peek(); |
| | } |
| |
|
| | written_exponent = static_cast<int_type>(written_exponent * exponent_sign); |
| | exponent = static_cast<int_type>(exponent + written_exponent); |
| |
|
| | bool is_zero = is_denorm && (fraction == 0); |
| | if (is_denorm && !is_zero) { |
| | fraction = static_cast<uint_type>(fraction << 1); |
| | exponent = static_cast<int_type>(exponent - 1); |
| | } else if (is_zero) { |
| | exponent = 0; |
| | } |
| |
|
| | if (exponent <= 0 && !is_zero) { |
| | fraction = static_cast<uint_type>(fraction >> 1); |
| | fraction |= static_cast<uint_type>(1) << HF::top_bit_left_shift; |
| | } |
| |
|
| | fraction = (fraction >> HF::fraction_right_shift) & HF::fraction_encode_mask; |
| |
|
| | const int_type max_exponent = |
| | SetBits<uint_type, 0, HF::num_exponent_bits>::get; |
| |
|
| | |
| | while (exponent < 0 && !is_zero) { |
| | fraction = static_cast<uint_type>(fraction >> 1); |
| | exponent = static_cast<int_type>(exponent + 1); |
| |
|
| | fraction &= HF::fraction_encode_mask; |
| | if (fraction == 0) { |
| | |
| | is_zero = true; |
| | exponent = 0; |
| | } |
| | } |
| |
|
| | |
| | if (exponent > max_exponent) { |
| | exponent = max_exponent; |
| | fraction = 0; |
| | } |
| |
|
| | uint_type output_bits = static_cast<uint_type>( |
| | static_cast<uint_type>(negate_value ? 1 : 0) << HF::top_bit_left_shift); |
| | output_bits |= fraction; |
| |
|
| | uint_type shifted_exponent = static_cast<uint_type>( |
| | static_cast<uint_type>(exponent << HF::exponent_left_shift) & |
| | HF::exponent_mask); |
| | output_bits |= shifted_exponent; |
| |
|
| | T output_float = spvutils::BitwiseCast<T>(output_bits); |
| | value.set_value(output_float); |
| |
|
| | return is; |
| | } |
| |
|
| | |
| | |
| | |
| | |
| | template <typename T> |
| | std::ostream& operator<<(std::ostream& os, const FloatProxy<T>& value) { |
| | auto float_val = value.getAsFloat(); |
| | switch (std::fpclassify(float_val)) { |
| | case FP_ZERO: |
| | case FP_NORMAL: { |
| | auto saved_precision = os.precision(); |
| | os.precision(std::numeric_limits<T>::digits10); |
| | os << float_val; |
| | os.precision(saved_precision); |
| | } break; |
| | default: |
| | os << HexFloat<FloatProxy<T>>(value); |
| | break; |
| | } |
| | return os; |
| | } |
| |
|
| | template <> |
| | inline std::ostream& operator<<<Float16>(std::ostream& os, |
| | const FloatProxy<Float16>& value) { |
| | os << HexFloat<FloatProxy<Float16>>(value); |
| | return os; |
| | } |
| | } |
| |
|
| | #endif |
| |
|