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It's possible to construct a floating point value that when converted to double is not larger than i64::max(), but when remaining a float is larger. This patch avoids that edge case with some even less exciting if constexpr branches to fix a float-cast-overflow UBSAN error on macOS with llvm 15.0.6.
456 lines
13 KiB
C++
456 lines
13 KiB
C++
/*
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* Copyright (c) 2021, Ali Mohammad Pur <mpfard@serenityos.org>
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*
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* SPDX-License-Identifier: BSD-2-Clause
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*/
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#pragma once
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#include <AK/BitCast.h>
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#include <AK/BuiltinWrappers.h>
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#include <AK/Result.h>
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#include <AK/StringView.h>
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#include <AK/Types.h>
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#include <limits.h>
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#include <math.h>
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namespace Operators {
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#define DEFINE_BINARY_OPERATOR(Name, operation) \
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struct Name { \
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template<typename Lhs, typename Rhs> \
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auto operator()(Lhs lhs, Rhs rhs) const \
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{ \
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return lhs operation rhs; \
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} \
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\
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static StringView name() \
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{ \
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return #operation##sv; \
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} \
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}
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DEFINE_BINARY_OPERATOR(Equals, ==);
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DEFINE_BINARY_OPERATOR(NotEquals, !=);
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DEFINE_BINARY_OPERATOR(GreaterThan, >);
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DEFINE_BINARY_OPERATOR(LessThan, <);
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DEFINE_BINARY_OPERATOR(LessThanOrEquals, <=);
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DEFINE_BINARY_OPERATOR(GreaterThanOrEquals, >=);
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DEFINE_BINARY_OPERATOR(Add, +);
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DEFINE_BINARY_OPERATOR(Subtract, -);
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DEFINE_BINARY_OPERATOR(Multiply, *);
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DEFINE_BINARY_OPERATOR(BitAnd, &);
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DEFINE_BINARY_OPERATOR(BitOr, |);
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DEFINE_BINARY_OPERATOR(BitXor, ^);
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#undef DEFINE_BINARY_OPERATOR
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struct Divide {
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template<typename Lhs, typename Rhs>
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auto operator()(Lhs lhs, Rhs rhs) const
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{
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if constexpr (IsFloatingPoint<Lhs>) {
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return lhs / rhs;
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} else {
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Checked value(lhs);
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value /= rhs;
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if (value.has_overflow())
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return AK::Result<Lhs, StringView>("Integer division overflow"sv);
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return AK::Result<Lhs, StringView>(value.value());
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}
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}
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static StringView name() { return "/"sv; }
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};
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struct Modulo {
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template<typename Lhs, typename Rhs>
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auto operator()(Lhs lhs, Rhs rhs) const
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{
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if (rhs == 0)
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return AK::Result<Lhs, StringView>("Integer division overflow"sv);
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if constexpr (IsSigned<Lhs>) {
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if (rhs == -1)
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return AK::Result<Lhs, StringView>(0); // Spec weirdness right here, signed division overflow is ignored.
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}
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return AK::Result<Lhs, StringView>(lhs % rhs);
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}
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static StringView name() { return "%"sv; }
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};
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struct BitShiftLeft {
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template<typename Lhs, typename Rhs>
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auto operator()(Lhs lhs, Rhs rhs) const { return lhs << (rhs % (sizeof(lhs) * 8)); }
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static StringView name() { return "<<"sv; }
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};
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struct BitShiftRight {
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template<typename Lhs, typename Rhs>
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auto operator()(Lhs lhs, Rhs rhs) const { return lhs >> (rhs % (sizeof(lhs) * 8)); }
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static StringView name() { return ">>"sv; }
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};
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struct BitRotateLeft {
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template<typename Lhs, typename Rhs>
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auto operator()(Lhs lhs, Rhs rhs) const
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{
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// generates a single 'rol' instruction if shift is positive
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// otherwise generate a `ror`
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auto const mask = CHAR_BIT * sizeof(Lhs) - 1;
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rhs &= mask;
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return (lhs << rhs) | (lhs >> ((-rhs) & mask));
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}
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static StringView name() { return "rotate_left"sv; }
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};
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struct BitRotateRight {
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template<typename Lhs, typename Rhs>
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auto operator()(Lhs lhs, Rhs rhs) const
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{
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// generates a single 'ror' instruction if shift is positive
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// otherwise generate a `rol`
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auto const mask = CHAR_BIT * sizeof(Lhs) - 1;
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rhs &= mask;
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return (lhs >> rhs) | (lhs << ((-rhs) & mask));
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}
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static StringView name() { return "rotate_right"sv; }
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};
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struct Minimum {
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template<typename Lhs, typename Rhs>
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auto operator()(Lhs lhs, Rhs rhs) const
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{
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if constexpr (IsFloatingPoint<Lhs> || IsFloatingPoint<Rhs>) {
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if (isnan(lhs))
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return lhs;
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if (isnan(rhs))
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return rhs;
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if (isinf(lhs))
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return lhs > 0 ? rhs : lhs;
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if (isinf(rhs))
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return rhs > 0 ? lhs : rhs;
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}
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return min(lhs, rhs);
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}
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static StringView name() { return "minimum"sv; }
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};
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struct Maximum {
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template<typename Lhs, typename Rhs>
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auto operator()(Lhs lhs, Rhs rhs) const
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{
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if constexpr (IsFloatingPoint<Lhs> || IsFloatingPoint<Rhs>) {
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if (isnan(lhs))
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return lhs;
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if (isnan(rhs))
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return rhs;
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if (isinf(lhs))
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return lhs > 0 ? lhs : rhs;
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if (isinf(rhs))
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return rhs > 0 ? rhs : lhs;
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}
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return max(lhs, rhs);
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}
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static StringView name() { return "maximum"sv; }
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};
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struct CopySign {
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template<typename Lhs, typename Rhs>
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auto operator()(Lhs lhs, Rhs rhs) const
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{
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if constexpr (IsSame<Lhs, float>)
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return copysignf(lhs, rhs);
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else if constexpr (IsSame<Lhs, double>)
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return copysign(lhs, rhs);
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else
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static_assert(DependentFalse<Lhs, Rhs>, "Invalid types to CopySign");
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}
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static StringView name() { return "copysign"sv; }
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};
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// Unary
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struct EqualsZero {
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template<typename Lhs>
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auto operator()(Lhs lhs) const { return lhs == 0; }
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static StringView name() { return "== 0"sv; }
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};
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struct CountLeadingZeros {
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template<typename Lhs>
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i32 operator()(Lhs lhs) const
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{
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if (lhs == 0)
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return sizeof(Lhs) * CHAR_BIT;
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if constexpr (sizeof(Lhs) == 4 || sizeof(Lhs) == 8)
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return count_leading_zeroes(MakeUnsigned<Lhs>(lhs));
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else
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VERIFY_NOT_REACHED();
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}
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static StringView name() { return "clz"sv; }
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};
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struct CountTrailingZeros {
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template<typename Lhs>
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i32 operator()(Lhs lhs) const
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{
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if (lhs == 0)
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return sizeof(Lhs) * CHAR_BIT;
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if constexpr (sizeof(Lhs) == 4 || sizeof(Lhs) == 8)
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return count_trailing_zeroes(MakeUnsigned<Lhs>(lhs));
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else
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VERIFY_NOT_REACHED();
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}
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static StringView name() { return "ctz"sv; }
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};
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struct PopCount {
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template<typename Lhs>
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auto operator()(Lhs lhs) const
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{
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if constexpr (sizeof(Lhs) == 4 || sizeof(Lhs) == 8)
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return popcount(MakeUnsigned<Lhs>(lhs));
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else
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VERIFY_NOT_REACHED();
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}
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static StringView name() { return "popcnt"sv; }
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};
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struct Absolute {
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template<typename Lhs>
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auto operator()(Lhs lhs) const { return AK::abs(lhs); }
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static StringView name() { return "abs"sv; }
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};
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struct Negate {
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template<typename Lhs>
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auto operator()(Lhs lhs) const { return -lhs; }
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static StringView name() { return "== 0"sv; }
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};
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struct Ceil {
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template<typename Lhs>
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auto operator()(Lhs lhs) const
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{
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if constexpr (IsSame<Lhs, float>)
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return ceilf(lhs);
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else if constexpr (IsSame<Lhs, double>)
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return ceil(lhs);
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else
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VERIFY_NOT_REACHED();
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}
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static StringView name() { return "ceil"sv; }
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};
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struct Floor {
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template<typename Lhs>
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auto operator()(Lhs lhs) const
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{
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if constexpr (IsSame<Lhs, float>)
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return floorf(lhs);
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else if constexpr (IsSame<Lhs, double>)
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return floor(lhs);
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else
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VERIFY_NOT_REACHED();
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}
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static StringView name() { return "floor"sv; }
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};
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struct Truncate {
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template<typename Lhs>
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Result<Lhs, StringView> operator()(Lhs lhs) const
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{
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if constexpr (IsSame<Lhs, float>)
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return truncf(lhs);
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else if constexpr (IsSame<Lhs, double>)
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return trunc(lhs);
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else
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VERIFY_NOT_REACHED();
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}
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static StringView name() { return "truncate"sv; }
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};
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struct NearbyIntegral {
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template<typename Lhs>
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auto operator()(Lhs lhs) const
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{
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if constexpr (IsSame<Lhs, float>)
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return nearbyintf(lhs);
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else if constexpr (IsSame<Lhs, double>)
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return nearbyint(lhs);
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else
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VERIFY_NOT_REACHED();
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}
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static StringView name() { return "round"sv; }
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};
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struct SquareRoot {
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template<typename Lhs>
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auto operator()(Lhs lhs) const
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{
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if constexpr (IsSame<Lhs, float>)
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return sqrtf(lhs);
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else if constexpr (IsSame<Lhs, double>)
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return sqrt(lhs);
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else
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VERIFY_NOT_REACHED();
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}
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static StringView name() { return "sqrt"sv; }
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};
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template<typename Result>
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struct Wrap {
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template<typename Lhs>
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Result operator()(Lhs lhs) const
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{
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return static_cast<MakeUnsigned<Result>>(bit_cast<MakeUnsigned<Lhs>>(lhs));
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}
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static StringView name() { return "wrap"sv; }
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};
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template<typename ResultT>
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struct CheckedTruncate {
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template<typename Lhs>
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AK::Result<ResultT, StringView> operator()(Lhs lhs) const
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{
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if (isnan(lhs) || isinf(lhs)) // "undefined", let's just trap.
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return "Truncation undefined behavior"sv;
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Lhs truncated;
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if constexpr (IsSame<float, Lhs>)
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truncated = truncf(lhs);
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else if constexpr (IsSame<double, Lhs>)
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truncated = trunc(lhs);
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else
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VERIFY_NOT_REACHED();
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// FIXME: This function assumes that all values of ResultT are representable in Lhs
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// the assumption comes from the fact that this was used exclusively by LibJS,
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// which only considers values that are all representable in 'double'.
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if (!AK::is_within_range<ResultT>(truncated))
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return "Truncation out of range"sv;
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return static_cast<ResultT>(truncated);
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}
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static StringView name() { return "truncate.checked"sv; }
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};
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template<typename ResultT>
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struct Extend {
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template<typename Lhs>
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ResultT operator()(Lhs lhs) const
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{
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return lhs;
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}
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static StringView name() { return "extend"sv; }
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};
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template<typename ResultT>
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struct Convert {
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template<typename Lhs>
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ResultT operator()(Lhs lhs) const
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{
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auto signed_interpretation = bit_cast<MakeSigned<Lhs>>(lhs);
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return static_cast<ResultT>(signed_interpretation);
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}
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static StringView name() { return "convert"sv; }
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};
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template<typename ResultT>
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struct Reinterpret {
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template<typename Lhs>
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ResultT operator()(Lhs lhs) const
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{
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return bit_cast<ResultT>(lhs);
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}
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static StringView name() { return "reinterpret"sv; }
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};
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struct Promote {
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double operator()(float lhs) const
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{
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if (isnan(lhs))
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return nan(""); // FIXME: Ensure canonical NaN remains canonical
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return static_cast<double>(lhs);
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}
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static StringView name() { return "promote"sv; }
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};
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struct Demote {
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float operator()(double lhs) const
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{
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if (isnan(lhs))
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return nanf(""); // FIXME: Ensure canonical NaN remains canonical
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if (isinf(lhs))
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return __builtin_huge_valf();
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return static_cast<float>(lhs);
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}
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static StringView name() { return "demote"sv; }
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};
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template<typename InitialType>
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struct SignExtend {
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template<typename Lhs>
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Lhs operator()(Lhs lhs) const
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{
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auto unsigned_representation = bit_cast<MakeUnsigned<Lhs>>(lhs);
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auto truncated_unsigned_representation = static_cast<MakeUnsigned<InitialType>>(unsigned_representation);
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auto initial_value = bit_cast<InitialType>(truncated_unsigned_representation);
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return static_cast<Lhs>(initial_value);
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}
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static StringView name() { return "extend"sv; }
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};
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template<typename ResultT>
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struct SaturatingTruncate {
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template<typename Lhs>
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ResultT operator()(Lhs lhs) const
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{
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if (isnan(lhs))
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return 0;
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if (isinf(lhs)) {
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if (lhs < 0)
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return NumericLimits<ResultT>::min();
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return NumericLimits<ResultT>::max();
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}
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// FIXME: This assumes that all values in ResultT are representable in 'double'.
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// that assumption is not correct, which makes this function yield incorrect values
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// for 'edge' values of type i64.
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constexpr auto convert = []<typename ConvertT>(ConvertT truncated_value) {
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if (truncated_value < NumericLimits<ResultT>::min())
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return NumericLimits<ResultT>::min();
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if constexpr (IsSame<ConvertT, float>) {
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if (truncated_value >= static_cast<ConvertT>(NumericLimits<ResultT>::max()))
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return NumericLimits<ResultT>::max();
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} else {
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if (static_cast<double>(truncated_value) >= static_cast<double>(NumericLimits<ResultT>::max()))
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return NumericLimits<ResultT>::max();
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}
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return static_cast<ResultT>(truncated_value);
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};
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if constexpr (IsSame<Lhs, float>)
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return convert(truncf(lhs));
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else
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return convert(trunc(lhs));
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}
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static StringView name() { return "truncate.saturating"sv; }
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};
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}
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