#ifndef LLVM_LIBC_SRC_MATH_GENERIC_EXPLOGXF_H
#define LLVM_LIBC_SRC_MATH_GENERIC_EXPLOGXF_H
#include "common_constants.h"
#include "src/__support/CPP/bit.h"
#include "src/__support/CPP/optional.h"
#include "src/__support/FPUtil/FEnvImpl.h"
#include "src/__support/FPUtil/FPBits.h"
#include "src/__support/FPUtil/PolyEval.h"
#include "src/__support/FPUtil/nearest_integer.h"
#include "src/__support/common.h"
#include "src/__support/macros/config.h"
#include "src/__support/macros/properties/cpu_features.h"
#include <errno.h>
namespace LIBC_NAMESPACE_DECL {
struct ExpBase {
static constexpr int MID_BITS = 5;
static constexpr int MID_MASK = (1 << MID_BITS) - 1;
static constexpr double LOG2_B = 0x1.71547652b82fep+0 * (1 << MID_BITS);
static constexpr double M_LOGB_2_HI = -0x1.62e42fefa0000p-1 / (1 << MID_BITS);
static constexpr double M_LOGB_2_LO =
-0x1.cf79abc9e3b3ap-40 / (1 << MID_BITS);
static constexpr int64_t EXP_2_MID[1 << MID_BITS] = {
0x3ff0000000000000, 0x3ff059b0d3158574, 0x3ff0b5586cf9890f,
0x3ff11301d0125b51, 0x3ff172b83c7d517b, 0x3ff1d4873168b9aa,
0x3ff2387a6e756238, 0x3ff29e9df51fdee1, 0x3ff306fe0a31b715,
0x3ff371a7373aa9cb, 0x3ff3dea64c123422, 0x3ff44e086061892d,
0x3ff4bfdad5362a27, 0x3ff5342b569d4f82, 0x3ff5ab07dd485429,
0x3ff6247eb03a5585, 0x3ff6a09e667f3bcd, 0x3ff71f75e8ec5f74,
0x3ff7a11473eb0187, 0x3ff82589994cce13, 0x3ff8ace5422aa0db,
0x3ff93737b0cdc5e5, 0x3ff9c49182a3f090, 0x3ffa5503b23e255d,
0x3ffae89f995ad3ad, 0x3ffb7f76f2fb5e47, 0x3ffc199bdd85529c,
0x3ffcb720dcef9069, 0x3ffd5818dcfba487, 0x3ffdfc97337b9b5f,
0x3ffea4afa2a490da, 0x3fff50765b6e4540,
};
static constexpr double COEFFS[4] = {
0x1.ffffffffe5bc8p-2, 0x1.555555555cd67p-3, 0x1.5555c2a9b48b4p-5,
0x1.11112a0e34bdbp-7};
LIBC_INLINE static double powb_lo(double dx) {
using fputil::multiply_add;
double dx2 = dx * dx;
double c0 = 1.0 + dx;
double c1 = multiply_add(dx, ExpBase::COEFFS[1], ExpBase::COEFFS[0]);
double c2 = multiply_add(dx, ExpBase::COEFFS[3], ExpBase::COEFFS[2]);
return fputil::polyeval(dx2, c0, c1, c2);
}
};
struct Exp10Base : public ExpBase {
static constexpr double LOG2_B = 0x1.a934f0979a371p1 * (1 << MID_BITS);
static constexpr double M_LOGB_2_HI = -0x1.34413509f8p-2 / (1 << MID_BITS);
static constexpr double M_LOGB_2_LO = 0x1.80433b83b532ap-44 / (1 << MID_BITS);
static constexpr double COEFFS[5] = {0x1.26bb1bbb55515p1, 0x1.53524c73bd3eap1,
0x1.0470591dff149p1, 0x1.2bd7c0a9fbc4dp0,
0x1.1429e74a98f43p-1};
static double powb_lo(double dx) {
using fputil::multiply_add;
double dx2 = dx * dx;
double c0 = multiply_add(dx, Exp10Base::COEFFS[0], 1.0);
double c1 = multiply_add(dx, Exp10Base::COEFFS[2], Exp10Base::COEFFS[1]);
double c2 = multiply_add(dx, Exp10Base::COEFFS[4], Exp10Base::COEFFS[3]);
return fputil::polyeval(dx2, c0, c1, c2);
}
};
constexpr int LOG_P1_BITS = 6;
constexpr int LOG_P1_SIZE = 1 << LOG_P1_BITS;
extern const double LOG_P1_LOG2[LOG_P1_SIZE];
extern const double LOG_P1_1_OVER[LOG_P1_SIZE];
extern const double K_LOG2_ODD[4];
extern const double K_LOG2_EVEN[4];
struct exp_b_reduc_t {
double mh;
double lo;
};
template <class Base> LIBC_INLINE exp_b_reduc_t exp_b_range_reduc(float x) {
double xd = static_cast<double>(x);
double kd = fputil::nearest_integer(Base::LOG2_B * xd);
int k = static_cast<int>(kd);
int64_t exp_hi = static_cast<int64_t>((k >> Base::MID_BITS))
<< fputil::FPBits<double>::FRACTION_LEN;
int64_t mh_bits = Base::EXP_2_MID[k & Base::MID_MASK] + exp_hi;
double mh = fputil::FPBits<double>(uint64_t(mh_bits)).get_val();
double dx = fputil::multiply_add(
kd, Base::M_LOGB_2_LO, fputil::multiply_add(kd, Base::M_LOGB_2_HI, xd));
return {mh, dx};
}
template <bool is_sinh> LIBC_INLINE double exp_pm_eval(float x) {
double xd = static_cast<double>(x);
double kd;
int k_p, k_m;
#ifdef LIBC_TARGET_CPU_HAS_NEAREST_INT
kd = fputil::nearest_integer(ExpBase::LOG2_B * xd);
k_p = static_cast<int>(kd);
k_m = -k_p;
#else
constexpr double HALF_WAY[2] = {0.5, -0.5};
k_p = static_cast<int>(
fputil::multiply_add(xd, ExpBase::LOG2_B, HALF_WAY[x < 0.0f]));
k_m = -k_p;
kd = static_cast<double>(k_p);
#endif
int64_t exp_hi_p = static_cast<int64_t>((k_p >> ExpBase::MID_BITS))
<< fputil::FPBits<double>::FRACTION_LEN;
int64_t exp_hi_m = static_cast<int64_t>((k_m >> ExpBase::MID_BITS))
<< fputil::FPBits<double>::FRACTION_LEN;
int64_t mh_bits_p = ExpBase::EXP_2_MID[k_p & ExpBase::MID_MASK] + exp_hi_p;
int64_t mh_bits_m = ExpBase::EXP_2_MID[k_m & ExpBase::MID_MASK] + exp_hi_m;
double mh_p = fputil::FPBits<double>(uint64_t(mh_bits_p)).get_val();
double mh_m = fputil::FPBits<double>(uint64_t(mh_bits_m)).get_val();
double mh_sum = mh_p + mh_m;
double mh_diff = mh_p - mh_m;
double dx =
fputil::multiply_add(kd, ExpBase::M_LOGB_2_LO,
fputil::multiply_add(kd, ExpBase::M_LOGB_2_HI, xd));
double dx2 = dx * dx;
double p_even = fputil::polyeval(dx2, 0.5, ExpBase::COEFFS[0] * 0.5,
ExpBase::COEFFS[2] * 0.5);
double p_odd = fputil::polyeval(dx2, 0.5, ExpBase::COEFFS[1] * 0.5,
ExpBase::COEFFS[3] * 0.5);
double r;
if constexpr (is_sinh)
r = fputil::multiply_add(dx * mh_sum, p_odd, p_even * mh_diff);
else
r = fputil::multiply_add(dx * mh_diff, p_odd, p_even * mh_sum);
return r;
}
LIBC_INLINE static double log2_eval(double x) {
using FPB = fputil::FPBits<double>;
FPB bs(x);
double result = 0;
result += bs.get_exponent();
int p1 = (bs.get_mantissa() >> (FPB::FRACTION_LEN - LOG_P1_BITS)) &
(LOG_P1_SIZE - 1);
bs.set_uintval(bs.uintval() & (FPB::FRACTION_MASK >> LOG_P1_BITS));
bs.set_biased_exponent(FPB::EXP_BIAS);
double dx = (bs.get_val() - 1.0) * LOG_P1_1_OVER[p1];
double c1 = fputil::multiply_add(dx, K_LOG2_ODD[0], K_LOG2_EVEN[0]);
double c2 = fputil::multiply_add(dx, K_LOG2_ODD[1], K_LOG2_EVEN[1]);
double c3 = fputil::multiply_add(dx, K_LOG2_ODD[2], K_LOG2_EVEN[2]);
double c4 = fputil::multiply_add(dx, K_LOG2_ODD[3], K_LOG2_EVEN[3]);
double c0 = fputil::multiply_add(dx, 0x1.71547652b82fep+0, LOG_P1_LOG2[p1]);
result += LIBC_NAMESPACE::fputil::polyeval(dx * dx, c0, c1, c2, c3, c4);
return result;
}
LIBC_INLINE static double log_eval(double x) {
using FPB = fputil::FPBits<double>;
FPB bs(x);
double ex = static_cast<double>(bs.get_exponent());
int p1 = static_cast<int>(bs.get_mantissa() >> (FPB::FRACTION_LEN - 7));
bs.set_uintval(bs.uintval() & (FPB::FRACTION_MASK >> 7));
bs.set_biased_exponent(FPB::EXP_BIAS);
double dx = (bs.get_val() - 1.0) * ONE_OVER_F[p1];
const double COEFFS[6] = {-0x1.ffffffffffffcp-2, 0x1.5555555552ddep-2,
-0x1.ffffffefe562dp-3, 0x1.9999817d3a50fp-3,
-0x1.554317b3f67a5p-3, 0x1.1dc5c45e09c18p-3};
double dx2 = dx * dx;
double c1 = fputil::multiply_add(dx, COEFFS[1], COEFFS[0]);
double c2 = fputil::multiply_add(dx, COEFFS[3], COEFFS[2]);
double c3 = fputil::multiply_add(dx, COEFFS[5], COEFFS[4]);
double p = fputil::polyeval(dx2, dx, c1, c2, c3);
double result =
fputil::multiply_add(ex, 0x1.62e42fefa39efp-1, LOG_F[p1] + p);
return result;
}
LIBC_INLINE cpp::optional<double> ziv_test_denorm(int hi, double mid, double lo,
double err) {
using FPBits = typename fputil::FPBits<double>;
int64_t exp_hi = static_cast<int64_t>(hi + 1022) << FPBits::FRACTION_LEN;
double mid_hi = cpp::bit_cast<double>(exp_hi + cpp::bit_cast<int64_t>(mid));
double lo_scaled =
(lo != 0.0) ? cpp::bit_cast<double>(exp_hi + cpp::bit_cast<int64_t>(lo))
: 0.0;
double extra_factor = 0.0;
uint64_t scale_down = 0x3FE0'0000'0000'0000;
if ((1.0 - mid_hi) > lo_scaled) {
err += 0x1.0p-52;
extra_factor = 1.0;
scale_down = 0x3FF0'0000'0000'0000;
}
double err_scaled =
cpp::bit_cast<double>(exp_hi + cpp::bit_cast<int64_t>(err));
double lo_u = lo_scaled + err_scaled;
double lo_l = lo_scaled - err_scaled;
double upper = extra_factor + (mid_hi + lo_u);
double lower = extra_factor + (mid_hi + lo_l);
if (LIBC_LIKELY(upper == lower)) {
return cpp::bit_cast<double>(cpp::bit_cast<uint64_t>(upper) - scale_down);
}
return cpp::nullopt;
}
}
#endif