#ifndef LLVM_LIBC_SRC___SUPPORT_FPUTIL_HYPOT_H
#define LLVM_LIBC_SRC___SUPPORT_FPUTIL_HYPOT_H
#include "BasicOperations.h"
#include "FEnvImpl.h"
#include "FPBits.h"
#include "rounding_mode.h"
#include "src/__support/CPP/bit.h"
#include "src/__support/CPP/type_traits.h"
#include "src/__support/common.h"
#include "src/__support/macros/config.h"
#include "src/__support/uint128.h"
namespace LIBC_NAMESPACE_DECL {
namespace fputil {
namespace internal {
template <typename T>
LIBC_INLINE T find_leading_one(T mant, int &shift_length) {
shift_length = 0;
if (mant > 0) {
shift_length = (sizeof(mant) * 8) - 1 - cpp::countl_zero(mant);
}
return T(1) << shift_length;
}
}
template <typename T> struct DoubleLength;
template <> struct DoubleLength<uint16_t> {
using Type = uint32_t;
};
template <> struct DoubleLength<uint32_t> {
using Type = uint64_t;
};
template <> struct DoubleLength<uint64_t> {
using Type = UInt128;
};
template <typename T, cpp::enable_if_t<cpp::is_floating_point_v<T>, int> = 0>
LIBC_INLINE T hypot(T x, T y) {
using FPBits_t = FPBits<T>;
using StorageType = typename FPBits<T>::StorageType;
using DStorageType = typename DoubleLength<StorageType>::Type;
FPBits_t x_abs = FPBits_t(x).abs();
FPBits_t y_abs = FPBits_t(y).abs();
bool x_abs_larger = x_abs.uintval() >= y_abs.uintval();
FPBits_t a_bits = x_abs_larger ? x_abs : y_abs;
FPBits_t b_bits = x_abs_larger ? y_abs : x_abs;
if (LIBC_UNLIKELY(a_bits.is_inf_or_nan())) {
if (x_abs.is_signaling_nan() || y_abs.is_signaling_nan()) {
fputil::raise_except_if_required(FE_INVALID);
return FPBits_t::quiet_nan().get_val();
}
if (x_abs.is_inf() || y_abs.is_inf())
return FPBits_t::inf().get_val();
if (x_abs.is_nan())
return x;
return y;
}
uint16_t a_exp = a_bits.get_biased_exponent();
uint16_t b_exp = b_bits.get_biased_exponent();
if ((a_exp - b_exp >= FPBits_t::FRACTION_LEN + 2) || (x == 0) || (y == 0))
return x_abs.get_val() + y_abs.get_val();
uint64_t out_exp = a_exp;
StorageType a_mant = a_bits.get_mantissa();
StorageType b_mant = b_bits.get_mantissa();
DStorageType a_mant_sq, b_mant_sq;
bool sticky_bits;
constexpr StorageType ONE = StorageType(1) << (FPBits_t::FRACTION_LEN + 1);
a_mant <<= 1;
b_mant <<= 1;
StorageType leading_one;
int y_mant_width;
if (a_exp != 0) {
leading_one = ONE;
a_mant |= ONE;
y_mant_width = FPBits_t::FRACTION_LEN + 1;
} else {
leading_one = internal::find_leading_one(a_mant, y_mant_width);
a_exp = 1;
}
if (b_exp != 0)
b_mant |= ONE;
else
b_exp = 1;
a_mant_sq = static_cast<DStorageType>(a_mant) * a_mant;
b_mant_sq = static_cast<DStorageType>(b_mant) * b_mant;
uint16_t shift_length = static_cast<uint16_t>(2 * (a_exp - b_exp));
sticky_bits =
((b_mant_sq & ((DStorageType(1) << shift_length) - DStorageType(1))) !=
DStorageType(0));
b_mant_sq >>= shift_length;
DStorageType sum = a_mant_sq + b_mant_sq;
if (sum >= (DStorageType(1) << (2 * y_mant_width + 2))) {
if (leading_one == ONE) {
sticky_bits = sticky_bits || ((sum & 0x3U) != 0);
sum >>= 2;
++out_exp;
if (out_exp >= FPBits_t::MAX_BIASED_EXPONENT) {
if (int round_mode = quick_get_round();
round_mode == FE_TONEAREST || round_mode == FE_UPWARD)
return FPBits_t::inf().get_val();
return FPBits_t::max_normal().get_val();
}
} else {
leading_one <<= 1;
++y_mant_width;
}
}
StorageType y_new = leading_one;
StorageType r = static_cast<StorageType>(sum >> y_mant_width) - leading_one;
StorageType tail_bits = static_cast<StorageType>(sum) & (leading_one - 1);
for (StorageType current_bit = leading_one >> 1; current_bit;
current_bit >>= 1) {
r = (r << 1) + ((tail_bits & current_bit) ? 1 : 0);
StorageType tmp = (y_new << 1) + current_bit;
if (r >= tmp) {
r -= tmp;
y_new += current_bit;
}
}
bool round_bit = y_new & StorageType(1);
bool lsb = y_new & StorageType(2);
if (y_new >= ONE) {
y_new -= ONE;
if (out_exp == 0) {
out_exp = 1;
}
}
y_new >>= 1;
int round_mode = quick_get_round();
switch (round_mode) {
case FE_TONEAREST:
if (round_bit && (lsb || sticky_bits || (r != 0)))
++y_new;
break;
case FE_UPWARD:
if (round_bit || sticky_bits || (r != 0))
++y_new;
break;
}
if (y_new >= (ONE >> 1)) {
y_new -= ONE >> 1;
++out_exp;
if (out_exp >= FPBits_t::MAX_BIASED_EXPONENT) {
if (round_mode == FE_TONEAREST || round_mode == FE_UPWARD)
return FPBits_t::inf().get_val();
return FPBits_t::max_normal().get_val();
}
}
y_new |= static_cast<StorageType>(out_exp) << FPBits_t::FRACTION_LEN;
if (!(round_bit || sticky_bits || (r != 0)))
fputil::clear_except_if_required(FE_INEXACT);
return cpp::bit_cast<T>(y_new);
}
}
}
#endif