cb424d7448
verify-patch-sanity.py validates every active recipe .patch has internally- consistent hunk line counts — catching the 'malformed patch at line N' failure at commit/CI/preflight time instead of hours into a cook. This cycle hit that class three times (qtwaylandscanner, sddm, xwayland), each only discovered when cookbook tried to apply the patch. Running it across the repo found 29 latent malformed patches (validated against GNU patch: e.g. relibc/P3-sysv-ipc reproduces 'malformed patch at line 22'). They were harmless only because they sit in vendored recipes (baked, not re- applied) — but would fail on any version-bump re-derivation. --fix recounts the hunk headers (body untouched) and repaired all 29. Wired into build-preflight.sh (Phase 1.0D) and redbear-ci.yml, with a unit test (test-patch-sanity.sh). Skips archived/legacy trees and unvalidatable formats (empty placeholders, bare-@@ git hunks).
349 lines
12 KiB
C++
349 lines
12 KiB
C++
//===-- MPCommon.h ----------------------------------------------*- C++ -*-===//
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//
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// Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions.
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// See https://llvm.org/LICENSE.txt for license information.
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// SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception
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//
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//===----------------------------------------------------------------------===//
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#ifndef LLVM_LIBC_UTILS_MPFRWRAPPER_MPCOMMON_H
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#define LLVM_LIBC_UTILS_MPFRWRAPPER_MPCOMMON_H
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#include "src/__support/CPP/string.h"
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#include "src/__support/CPP/type_traits.h"
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#include "src/__support/FPUtil/FPBits.h"
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#include "src/__support/macros/config.h"
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#include "src/__support/macros/properties/types.h"
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#include "test/UnitTest/RoundingModeUtils.h"
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#include <stdint.h>
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#include "mpfr_inc.h"
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#ifdef LIBC_TYPES_FLOAT128_IS_NOT_LONG_DOUBLE
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extern "C" {
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int mpfr_set_float128(mpfr_ptr, float128, mpfr_rnd_t);
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float128 mpfr_get_float128(mpfr_srcptr, mpfr_rnd_t);
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}
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#endif
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namespace LIBC_NAMESPACE_DECL {
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namespace testing {
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namespace mpfr {
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template <typename T> using FPBits = LIBC_NAMESPACE::fputil::FPBits<T>;
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using LIBC_NAMESPACE::fputil::testing::RoundingMode;
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// A precision value which allows sufficiently large additional
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// precision compared to the floating point precision.
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template <typename T> struct ExtraPrecision;
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#ifdef LIBC_TYPES_HAS_FLOAT16
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template <> struct ExtraPrecision<float16> {
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static constexpr unsigned int VALUE = 128;
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};
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#endif
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template <> struct ExtraPrecision<float> {
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static constexpr unsigned int VALUE = 128;
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};
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template <> struct ExtraPrecision<double> {
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static constexpr unsigned int VALUE = 256;
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};
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template <> struct ExtraPrecision<long double> {
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#ifdef LIBC_TYPES_LONG_DOUBLE_IS_FLOAT128
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static constexpr unsigned int VALUE = 512;
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#else
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static constexpr unsigned int VALUE = 256;
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#endif
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};
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#if defined(LIBC_TYPES_FLOAT128_IS_NOT_LONG_DOUBLE)
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template <> struct ExtraPrecision<float128> {
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static constexpr unsigned int VALUE = 512;
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};
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#endif // LIBC_TYPES_FLOAT128_IS_NOT_LONG_DOUBLE
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template <> struct ExtraPrecision<bfloat16> {
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static constexpr unsigned int VALUE = 64;
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};
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// If the ulp tolerance is less than or equal to 0.5, we would check that the
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// result is rounded correctly with respect to the rounding mode by using the
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// same precision as the inputs.
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template <typename T>
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static inline unsigned int get_precision(double ulp_tolerance) {
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if (ulp_tolerance <= 0.5) {
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return LIBC_NAMESPACE::fputil::FPBits<T>::FRACTION_LEN + 1;
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} else {
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return ExtraPrecision<T>::VALUE;
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}
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}
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static inline mpfr_rnd_t get_mpfr_rounding_mode(RoundingMode mode) {
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switch (mode) {
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case RoundingMode::Upward:
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return MPFR_RNDU;
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break;
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case RoundingMode::Downward:
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return MPFR_RNDD;
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break;
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case RoundingMode::TowardZero:
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return MPFR_RNDZ;
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break;
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case RoundingMode::Nearest:
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return MPFR_RNDN;
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break;
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}
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__builtin_unreachable();
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}
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class MPFRNumber {
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unsigned int mpfr_precision;
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mpfr_rnd_t mpfr_rounding;
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mpfr_t value;
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public:
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MPFRNumber();
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// We use explicit EnableIf specializations to disallow implicit
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// conversions. Implicit conversions can potentially lead to loss of
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// precision. We exceptionally allow implicit conversions from float16
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// to float, as the MPFR API does not support float16, thus requiring
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// conversion to a higher-precision format.
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template <typename XType,
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cpp::enable_if_t<cpp::is_same_v<float, XType>
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#ifdef LIBC_TYPES_HAS_FLOAT16
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|| cpp::is_same_v<float16, XType>
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#endif
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|| cpp::is_same_v<bfloat16, XType>,
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int> = 0>
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explicit MPFRNumber(XType x,
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unsigned int precision = ExtraPrecision<XType>::VALUE,
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RoundingMode rounding = RoundingMode::Nearest)
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: mpfr_precision(precision),
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mpfr_rounding(get_mpfr_rounding_mode(rounding)) {
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mpfr_init2(value, mpfr_precision);
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mpfr_set_flt(value, x, mpfr_rounding);
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}
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template <typename XType,
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cpp::enable_if_t<cpp::is_same_v<double, XType>, int> = 0>
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explicit MPFRNumber(XType x,
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unsigned int precision = ExtraPrecision<XType>::VALUE,
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RoundingMode rounding = RoundingMode::Nearest)
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: mpfr_precision(precision),
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mpfr_rounding(get_mpfr_rounding_mode(rounding)) {
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mpfr_init2(value, mpfr_precision);
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mpfr_set_d(value, x, mpfr_rounding);
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}
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template <typename XType,
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cpp::enable_if_t<cpp::is_same_v<long double, XType>, int> = 0>
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explicit MPFRNumber(XType x,
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unsigned int precision = ExtraPrecision<XType>::VALUE,
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RoundingMode rounding = RoundingMode::Nearest)
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: mpfr_precision(precision),
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mpfr_rounding(get_mpfr_rounding_mode(rounding)) {
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mpfr_init2(value, mpfr_precision);
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mpfr_set_ld(value, x, mpfr_rounding);
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}
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#ifdef LIBC_TYPES_FLOAT128_IS_NOT_LONG_DOUBLE
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template <typename XType,
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cpp::enable_if_t<cpp::is_same_v<float128, XType>, int> = 0>
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explicit MPFRNumber(XType x,
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unsigned int precision = ExtraPrecision<XType>::VALUE,
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RoundingMode rounding = RoundingMode::Nearest)
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: mpfr_precision(precision),
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mpfr_rounding(get_mpfr_rounding_mode(rounding)) {
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mpfr_init2(value, mpfr_precision);
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mpfr_set_float128(value, x, mpfr_rounding);
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}
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#endif // LIBC_TYPES_FLOAT128_IS_NOT_LONG_DOUBLE
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template <typename XType,
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cpp::enable_if_t<cpp::is_integral_v<XType>, int> = 0>
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explicit MPFRNumber(XType x,
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unsigned int precision = ExtraPrecision<float>::VALUE,
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RoundingMode rounding = RoundingMode::Nearest)
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: mpfr_precision(precision),
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mpfr_rounding(get_mpfr_rounding_mode(rounding)) {
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mpfr_init2(value, mpfr_precision);
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mpfr_set_sj(value, x, mpfr_rounding);
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}
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MPFRNumber(const MPFRNumber &other);
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MPFRNumber(const MPFRNumber &other, unsigned int precision);
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MPFRNumber(const mpfr_t x, unsigned int precision, RoundingMode rounding);
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~MPFRNumber();
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MPFRNumber &operator=(const MPFRNumber &rhs);
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bool is_nan() const;
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MPFRNumber abs() const;
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MPFRNumber acos() const;
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MPFRNumber acosh() const;
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MPFRNumber acospi() const;
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MPFRNumber add(const MPFRNumber &b) const;
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MPFRNumber asin() const;
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MPFRNumber asinh() const;
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MPFRNumber atan() const;
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MPFRNumber atan2(const MPFRNumber &b);
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MPFRNumber atanh() const;
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MPFRNumber cbrt() const;
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MPFRNumber ceil() const;
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MPFRNumber cos() const;
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MPFRNumber cosh() const;
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MPFRNumber cospi() const;
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MPFRNumber erf() const;
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MPFRNumber exp() const;
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MPFRNumber exp2() const;
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MPFRNumber exp2m1() const;
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MPFRNumber exp10() const;
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MPFRNumber exp10m1() const;
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MPFRNumber expm1() const;
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MPFRNumber div(const MPFRNumber &b) const;
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MPFRNumber floor() const;
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MPFRNumber fmod(const MPFRNumber &b);
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MPFRNumber frexp(int &exp);
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MPFRNumber hypot(const MPFRNumber &b);
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MPFRNumber log() const;
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MPFRNumber log2() const;
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MPFRNumber log10() const;
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MPFRNumber log1p() const;
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MPFRNumber pow(const MPFRNumber &b);
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MPFRNumber remquo(const MPFRNumber &divisor, int "ient);
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MPFRNumber round() const;
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MPFRNumber roundeven() const;
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bool round_to_long(long &result) const;
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bool round_to_long(mpfr_rnd_t rnd, long &result) const;
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MPFRNumber rint(mpfr_rnd_t rnd) const;
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MPFRNumber mod_2pi() const;
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MPFRNumber mod_pi_over_2() const;
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MPFRNumber mod_pi_over_4() const;
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MPFRNumber sin() const;
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MPFRNumber sinpi() const;
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MPFRNumber sinh() const;
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MPFRNumber sqrt() const;
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MPFRNumber sub(const MPFRNumber &b) const;
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MPFRNumber tan() const;
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MPFRNumber tanh() const;
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MPFRNumber tanpi() const;
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MPFRNumber trunc() const;
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MPFRNumber fma(const MPFRNumber &b, const MPFRNumber &c);
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MPFRNumber mul(const MPFRNumber &b);
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cpp::string str() const;
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template <typename T> T as() const;
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void dump(const char *msg) const;
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// Return the ULP (units-in-the-last-place) difference between the
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// stored MPFR and a floating point number.
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//
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// We define ULP difference as follows:
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// If exponents of this value and the |input| are same, then:
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// ULP(this_value, input) = abs(this_value - input) / eps(input)
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// else:
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// max = max(abs(this_value), abs(input))
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// min = min(abs(this_value), abs(input))
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// maxExponent = exponent(max)
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// ULP(this_value, input) = (max - 2^maxExponent) / eps(max) +
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// (2^maxExponent - min) / eps(min)
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//
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// Remarks:
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// 1. A ULP of 0.0 will imply that the value is correctly rounded.
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// 2. We expect that this value and the value to be compared (the [input]
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// argument) are reasonable close, and we will provide an upper bound
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// of ULP value for testing. Morever, most of the fractional parts of
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// ULP value do not matter much, so using double as the return type
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// should be good enough.
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// 3. For close enough values (values which don't diff in their exponent by
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// not more than 1), a ULP difference of N indicates a bit distance
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// of N between this number and [input].
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// 4. A values of +0.0 and -0.0 are treated as equal.
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template <typename T>
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cpp::enable_if_t<cpp::is_floating_point_v<T>, MPFRNumber>
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ulp_as_mpfr_number(T input) {
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T thisAsT = as<T>();
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if (thisAsT == input)
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return MPFRNumber(0.0);
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if (is_nan()) {
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if (FPBits<T>(input).is_nan())
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return MPFRNumber(0.0);
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return MPFRNumber(FPBits<T>::inf().get_val());
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}
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int thisExponent = FPBits<T>(thisAsT).get_exponent();
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int inputExponent = FPBits<T>(input).get_exponent();
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// Adjust the exponents for denormal numbers.
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if (FPBits<T>(thisAsT).is_subnormal())
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++thisExponent;
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if (FPBits<T>(input).is_subnormal())
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++inputExponent;
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if (thisAsT * input < 0 || thisExponent == inputExponent) {
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MPFRNumber inputMPFR(input);
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mpfr_sub(inputMPFR.value, value, inputMPFR.value, MPFR_RNDN);
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mpfr_abs(inputMPFR.value, inputMPFR.value, MPFR_RNDN);
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mpfr_mul_2si(inputMPFR.value, inputMPFR.value,
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-thisExponent + FPBits<T>::FRACTION_LEN, MPFR_RNDN);
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return inputMPFR;
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}
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// If the control reaches here, it means that this number and input are
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// of the same sign but different exponent. In such a case, ULP error is
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// calculated as sum of two parts.
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thisAsT = FPBits<T>(thisAsT).abs().get_val();
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input = FPBits<T>(input).abs().get_val();
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T min = thisAsT > input ? input : thisAsT;
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T max = thisAsT > input ? thisAsT : input;
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int minExponent = FPBits<T>(min).get_exponent();
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int maxExponent = FPBits<T>(max).get_exponent();
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// Adjust the exponents for denormal numbers.
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if (FPBits<T>(min).is_subnormal())
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++minExponent;
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if (FPBits<T>(max).is_subnormal())
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++maxExponent;
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MPFRNumber minMPFR(min);
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MPFRNumber maxMPFR(max);
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MPFRNumber pivot(uint32_t(1));
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mpfr_mul_2si(pivot.value, pivot.value, maxExponent, MPFR_RNDN);
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mpfr_sub(minMPFR.value, pivot.value, minMPFR.value, MPFR_RNDN);
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mpfr_mul_2si(minMPFR.value, minMPFR.value,
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-minExponent + FPBits<T>::FRACTION_LEN, MPFR_RNDN);
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mpfr_sub(maxMPFR.value, maxMPFR.value, pivot.value, MPFR_RNDN);
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mpfr_mul_2si(maxMPFR.value, maxMPFR.value,
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-maxExponent + FPBits<T>::FRACTION_LEN, MPFR_RNDN);
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mpfr_add(minMPFR.value, minMPFR.value, maxMPFR.value, MPFR_RNDN);
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return minMPFR;
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}
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template <typename T>
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cpp::enable_if_t<cpp::is_floating_point_v<T>, cpp::string>
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ulp_as_string(T input) {
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MPFRNumber num = ulp_as_mpfr_number(input);
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return num.str();
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}
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template <typename T>
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cpp::enable_if_t<cpp::is_floating_point_v<T>, double> ulp(T input) {
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MPFRNumber num = ulp_as_mpfr_number(input);
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return num.as<double>();
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}
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};
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} // namespace mpfr
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} // namespace testing
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} // namespace LIBC_NAMESPACE_DECL
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#endif // LLVM_LIBC_UTILS_MPFRWRAPPER_MPCOMMON_H
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