If a small number or zero is passed in, fp64_exp could be very negative (-1000 for example). The intent of the line is to evaluate to zero in these cases, but what it actually did was bitshift right by 1000, which is undefined behavior (according to ubsan) that so happens to result in 0 on GCC/most architectures. This commit changes the code to check for cases where the bitshift is larger than the width of the integer. Change-Id: I8de4bd8ad170f0321d54689460de449b7f8fb60a Reviewed-on: https://gem5-review.googlesource.com/c/public/gem5/+/21859 Reviewed-by: Andreas Sandberg <andreas.sandberg@arm.com> Maintainer: Andreas Sandberg <andreas.sandberg@arm.com> Tested-by: kokoro <noreply+kokoro@google.com>
238 lines
6.7 KiB
C
238 lines
6.7 KiB
C
/*
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* Copyright (c) 2013 Andreas Sandberg
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* All rights reserved
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*
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* Redistribution and use in source and binary forms, with or without
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* modification, are permitted provided that the following conditions are
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* met: redistributions of source code must retain the above copyright
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* notice, this list of conditions and the following disclaimer;
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* redistributions in binary form must reproduce the above copyright
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* notice, this list of conditions and the following disclaimer in the
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* documentation and/or other materials provided with the distribution;
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* neither the name of the copyright holders nor the names of its
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* contributors may be used to endorse or promote products derived from
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* this software without specific prior written permission.
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*
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* THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS
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* "AS IS" AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT
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* LIMITED TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR
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* A PARTICULAR PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT
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* OWNER OR CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL,
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* SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT
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* LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
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* DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
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* THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
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* (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE
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* OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
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*
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* Authors: Andreas Sandberg
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*/
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#include <fputils/fp80.h>
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#include <fputils/fp64.h>
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#include "fpbits.h"
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#include <assert.h>
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#include <stdint.h>
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#include <stdio.h>
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const fp80_t fp80_pinf = BUILD_FP80(0, 0, FP80_EXP_SPECIAL);
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const fp80_t fp80_ninf = BUILD_FP80(1, 0, FP80_EXP_SPECIAL);
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const fp80_t fp80_qnan = BUILD_FP80(0, FP80_FRAC_QNAN, FP80_EXP_SPECIAL);
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const fp80_t fp80_qnani = BUILD_FP80(1, FP80_FRAC_QNANI, FP80_EXP_SPECIAL);
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const fp80_t fp80_snan = BUILD_FP80(0, FP80_FRAC_SNAN, FP80_EXP_SPECIAL);
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const fp80_t fp80_nan = BUILD_FP80(0, FP80_FRAC_QNAN, FP80_EXP_SPECIAL);
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int
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fp80_sgn(fp80_t fp80)
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{
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return (fp80.repr.se & FP80_SIGN_BIT) ? -1 : 1;
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}
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int
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fp80_isspecial(fp80_t fp80)
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{
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const int exp = FP80_EXP(fp80);
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return exp == FP80_EXP_SPECIAL;
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}
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int
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fp80_isinf(fp80_t fp80)
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{
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const uint64_t frac = FP80_FRAC(fp80);
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return fp80_isspecial(fp80) && frac == 0 ? fp80_sgn(fp80) : 0;
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}
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int
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fp80_isqnan(fp80_t fp80)
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{
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const uint64_t frac = FP80_FRAC(fp80);
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return fp80_isspecial(fp80) && (frac & FP80_QNAN_BIT);
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}
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int
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fp80_isqnani(fp80_t fp80)
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{
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const uint64_t frac_low = fp80.repr.fi & (FP80_FRAC_MASK >> 1);
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return fp80_isqnan(fp80) && (fp80.repr.se & FP80_SIGN_BIT) && !frac_low;
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}
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int
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fp80_issnan(fp80_t fp80)
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{
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const uint64_t frac = FP80_FRAC(fp80);
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return fp80_isspecial(fp80) && !(frac & FP80_QNAN_BIT) && frac;
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}
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int
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fp80_isfinite(fp80_t fp80)
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{
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return !fp80_isnan(fp80) && !fp80_isinf(fp80);
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}
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int
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fp80_isnan(fp80_t fp80)
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{
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return fp80_issnan(fp80) || fp80_isqnan(fp80) ? fp80_sgn(fp80) : 0;
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}
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int
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fp80_iszero(fp80_t fp80)
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{
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return fp80.repr.fi == 0 && FP80_EXP(fp80) == 0 ? fp80_sgn(fp80) : 0;
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}
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int
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fp80_isnormal(fp80_t fp80)
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{
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return FP80_EXP(fp80) != 0 && !fp80_isspecial(fp80) ?
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fp80_sgn(fp80) : 0;
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}
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int
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fp80_issubnormal(fp80_t fp80)
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{
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return FP80_FRAC(fp80) && FP80_EXP(fp80) == 0 ? fp80_sgn(fp80) : 0;
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}
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int
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fp80_classify(fp80_t fp80)
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{
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if (fp80_issubnormal(fp80)) {
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return FP_SUBNORMAL;
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} else if (fp80_iszero(fp80)) {
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return FP_ZERO;
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} else if (fp80_isinf(fp80)) {
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return FP_INFINITE;
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} else if (fp80_isnan(fp80)) {
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return FP_NAN;
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} else {
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assert(fp80_isfinite(fp80));
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return FP_NORMAL;
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}
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}
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double
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fp80_cvtd(fp80_t fp80)
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{
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return fp80_cvtfp64(fp80).value;
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}
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fp64_t
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fp80_cvtfp64(fp80_t fp80)
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{
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const int sign = fp80.repr.se & FP80_SIGN_BIT;
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if (!fp80_isspecial(fp80)) {
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const uint64_t frac = fp80.repr.fi;
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const int unb_exp = FP80_EXP(fp80) - FP80_EXP_BIAS;
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const int fp64_exp = unb_exp + FP64_EXP_BIAS;
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const uint64_t fp64_frac = frac >> (FP80_FRAC_BITS - FP64_FRAC_BITS);
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if (fp64_exp > 0 && fp64_exp < FP64_EXP_SPECIAL) {
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/* These numbers fall in the range of what we can express
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* as normals */
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return build_fp64(sign, fp64_frac, fp64_exp);
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} else if (fp64_exp <= 0) {
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uint64_t fp64_denormal_frac = -64 < fp64_exp
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// -64 < fp_exp <= 0, so safe to bitshift by -fp_exp
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? fp64_frac >> (-fp64_exp)
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: 0;
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/* Generate a denormal or zero */
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return build_fp64(sign, fp64_denormal_frac, 0);
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} else {
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/* Infinity */
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return build_fp64(sign, 0, FP64_EXP_SPECIAL);
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}
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} else {
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if (fp80_isinf(fp80)) {
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return build_fp64(sign, 0, FP64_EXP_SPECIAL);
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} else if (fp80_issnan(fp80)) {
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return fp80_sgn(fp80) > 0 ? fp64_snan : fp64_nsnan;
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} else if (fp80_isqnani(fp80)) {
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return fp64_qnani;
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} else {
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assert(fp80_isqnan(fp80));
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return fp80_sgn(fp80) > 0 ? fp64_qnan : fp64_nqnan;
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}
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}
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}
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fp80_t
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fp80_cvfd(double value)
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{
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const fp64_t fp64 = { .value = value };
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return fp80_cvffp64(fp64);
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}
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fp80_t
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fp80_cvffp64(fp64_t fp64)
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{
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const uint64_t frac = FP64_FRAC(fp64);
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const unsigned exp = FP64_EXP(fp64);
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const int unb_exp = exp - FP64_EXP_BIAS;
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const uint64_t fp80_frac = frac << (FP80_FRAC_BITS - FP64_FRAC_BITS);
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if (exp != 0) {
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// Normal, inf, nan
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const unsigned fp80_exp = exp == FP64_EXP_SPECIAL ?
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FP80_EXP_SPECIAL : (unb_exp + FP80_EXP_BIAS);
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const fp80_t fp80 = BUILD_FP80(fp64.bits & FP64_SIGN_BIT,
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fp80_frac, fp80_exp);
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return fp80;
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} else if (exp == 0 && frac == 0) {
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// Zero
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const fp80_t fp80 = BUILD_FP80(fp64.bits & FP64_SIGN_BIT, 0, 0);
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return fp80;
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} else {
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// Denormal
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uint64_t fp80_fi = fp80_frac;
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int shift_amt = 0;
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while (!(fp80_fi & FP80_INT_BIT)) {
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fp80_fi <<= 1;
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++shift_amt;
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}
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const unsigned fp80_exp = (unb_exp - shift_amt) + FP80_EXP_BIAS;
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const fp80_t fp80 = BUILD_FP80(fp64.bits & FP64_SIGN_BIT,
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fp80_fi, fp80_exp);
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return fp80;
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}
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}
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void
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fp80_debug_dump(FILE *fout, fp80_t fp80)
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{
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fprintf(fout, "sgn: %i, int: %i, frac: 0x%llx, exp: 0x%x (%i)\n",
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fp80_sgn(fp80), !!(fp80.repr.fi & FP80_INT_BIT), FP80_FRAC(fp80),
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FP80_EXP(fp80), FP80_EXP(fp80) - FP80_EXP_BIAS);
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}
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