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Extend SwiftDtoa to provide optimal formatting for Float16 and use that for `Float16.description` and `Float16.debugDescription`. Notes on signaling NaNs: LLVM's Float16 support passes Float16s on x86 by legalizing to Float32. This works well for most purposes but incidentally loses the signaling marker from any NaN (because it's a conversion as far as the hardware is concerned), with a side effect that the print code never actually sees a true sNaN. This is similar to what happens with Float and Double on i386 backends. The earlier code here tried to detect sNaN in a different way, but that approach isn't guaranteed to work so we decided to make this code use the correct detection logic -- sNaN printing will just be broken until we can get a better argument passing convention. Resolves rdar://61414101
550 lines
16 KiB
C++
550 lines
16 KiB
C++
//===--- Stubs.cpp - Swift Language ABI Runtime Stubs ---------------------===//
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//
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// This source file is part of the Swift.org open source project
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//
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// Copyright (c) 2014 - 2019 Apple Inc. and the Swift project authors
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// Licensed under Apache License v2.0 with Runtime Library Exception
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//
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// See https://swift.org/LICENSE.txt for license information
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// See https://swift.org/CONTRIBUTORS.txt for the list of Swift project authors
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//
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//===----------------------------------------------------------------------===//
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//
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// Misc stubs for functions which should be defined in the core standard
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// library, but are difficult or impossible to write in Swift at the
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// moment.
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//
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//===----------------------------------------------------------------------===//
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#if defined(__FreeBSD__)
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#define _WITH_GETLINE
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#endif
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#if defined(_WIN32)
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#define WIN32_LEAN_AND_MEAN
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// Avoid defining macro max(), min() which conflict with std::max(), std::min()
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#define NOMINMAX
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#include <windows.h>
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#else
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#if !defined(__HAIKU__) && !defined(__wasi__)
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#include <sys/errno.h>
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#else
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#include <errno.h>
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#endif
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#include <sys/resource.h>
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#include <unistd.h>
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#endif
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#include <climits>
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#include <clocale>
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#include <cstdarg>
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#include <cstdint>
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#include <cstdio>
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#include <cstdlib>
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#include <cstring>
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#if defined(__CYGWIN__) || defined(_WIN32) || defined(__HAIKU__) || defined(__OpenBSD__)
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#include <sstream>
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#include <cmath>
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#elif defined(__ANDROID__)
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#include <locale.h>
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#include <android/api-level.h>
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#if __ANDROID_API__ < 21 // Introduced in Android API 21 - L
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static inline long double swift_strtold_l(const char *nptr, char **endptr,
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locale_t) {
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return strtod(nptr, endptr);
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}
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#define strtold_l swift_strtold_l
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#endif
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#if __ANDROID_API__ < 26 // Introduced in Android API 26 - O
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static double swift_strtod_l(const char *nptr, char **endptr, locale_t loc) {
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return strtod(nptr, endptr);
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}
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static float swift_strtof_l(const char *nptr, char **endptr, locale_t loc) {
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return strtof(nptr, endptr);
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}
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#define strtod_l swift_strtod_l
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#define strtof_l swift_strtof_l
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#endif
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#elif defined(__linux__) || defined(__wasi__)
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#include <locale.h>
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#else
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#include <xlocale.h>
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#endif
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#include <limits>
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#include <thread>
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#include "llvm/ADT/StringExtras.h"
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#include "llvm/Support/Compiler.h"
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#include "swift/Runtime/Debug.h"
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#include "swift/Runtime/SwiftDtoa.h"
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#include "swift/Basic/Lazy.h"
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#include "../SwiftShims/LibcShims.h"
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#include "../SwiftShims/RuntimeShims.h"
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#include "../SwiftShims/RuntimeStubs.h"
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static uint64_t uint64ToStringImpl(char *Buffer, uint64_t Value,
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int64_t Radix, bool Uppercase,
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bool Negative) {
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char *P = Buffer;
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uint64_t Y = Value;
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if (Y == 0) {
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*P++ = '0';
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} else if (Radix == 10) {
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while (Y) {
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*P++ = '0' + char(Y % 10);
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Y /= 10;
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}
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} else {
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unsigned Radix32 = Radix;
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while (Y) {
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*P++ = llvm::hexdigit(Y % Radix32, !Uppercase);
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Y /= Radix32;
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}
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}
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if (Negative)
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*P++ = '-';
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std::reverse(Buffer, P);
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return size_t(P - Buffer);
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}
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SWIFT_CC(swift) SWIFT_RUNTIME_STDLIB_API
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uint64_t swift_int64ToString(char *Buffer, size_t BufferLength,
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int64_t Value, int64_t Radix,
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bool Uppercase) {
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if ((Radix >= 10 && BufferLength < 32) || (Radix < 10 && BufferLength < 65))
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swift::crash("swift_int64ToString: insufficient buffer size");
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if (Radix == 0 || Radix > 36)
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swift::crash("swift_int64ToString: invalid radix for string conversion");
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bool Negative = Value < 0;
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// Compute an absolute value safely, without using unary negation on INT_MIN,
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// which is undefined behavior.
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uint64_t UnsignedValue = Value;
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if (Negative) {
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// Assumes two's complement representation.
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UnsignedValue = ~UnsignedValue + 1;
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}
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return uint64ToStringImpl(Buffer, UnsignedValue, Radix, Uppercase,
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Negative);
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}
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SWIFT_CC(swift) SWIFT_RUNTIME_STDLIB_API
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uint64_t swift_uint64ToString(char *Buffer, intptr_t BufferLength,
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uint64_t Value, int64_t Radix,
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bool Uppercase) {
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if ((Radix >= 10 && BufferLength < 32) || (Radix < 10 && BufferLength < 64))
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swift::crash("swift_int64ToString: insufficient buffer size");
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if (Radix == 0 || Radix > 36)
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swift::crash("swift_int64ToString: invalid radix for string conversion");
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return uint64ToStringImpl(Buffer, Value, Radix, Uppercase,
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/*Negative=*/false);
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}
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#if defined(__APPLE__) || defined(__FreeBSD__) || defined(__ANDROID__)
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static inline locale_t getCLocale() {
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// On these platforms convenience functions from xlocale.h interpret nullptr
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// as C locale.
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return nullptr;
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}
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#elif defined(__CYGWIN__) || defined(__HAIKU__)
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// In Cygwin, getCLocale() is not used.
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#elif defined(_WIN32)
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static _locale_t makeCLocale() {
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_locale_t CLocale = _create_locale(LC_ALL, "C");
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if (!CLocale) {
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swift::crash("makeCLocale: _create_locale() returned a null pointer");
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}
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return CLocale;
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}
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static _locale_t getCLocale() {
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return SWIFT_LAZY_CONSTANT(makeCLocale());
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}
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#else
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static locale_t makeCLocale() {
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locale_t CLocale = newlocale(LC_ALL_MASK, "C", nullptr);
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if (!CLocale) {
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swift::crash("makeCLocale: newlocale() returned a null pointer");
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}
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return CLocale;
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}
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static locale_t getCLocale() {
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return SWIFT_LAZY_CONSTANT(makeCLocale());
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}
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#endif
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#if !SWIFT_DTOA_FLOAT80_SUPPORT
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#if defined(__APPLE__)
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#define swift_snprintf_l snprintf_l
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#elif defined(__CYGWIN__) || defined(_WIN32) || defined(__HAIKU__)
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// swift_snprintf_l() is not used.
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#else
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static int swift_snprintf_l(char *Str, size_t StrSize, locale_t Locale,
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const char *Format, ...) {
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if (Locale == nullptr) {
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Locale = getCLocale();
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}
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locale_t OldLocale = uselocale(Locale);
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va_list Args;
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va_start(Args, Format);
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int Result = std::vsnprintf(Str, StrSize, Format, Args);
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va_end(Args);
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uselocale(OldLocale);
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return Result;
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}
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#endif
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template <typename T>
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static uint64_t swift_floatingPointToString(char *Buffer, size_t BufferLength,
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T Value, const char *Format,
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bool Debug) {
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if (BufferLength < 32)
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swift::crash("swift_floatingPointToString: insufficient buffer size");
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int Precision = std::numeric_limits<T>::digits10;
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if (Debug) {
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Precision = std::numeric_limits<T>::max_digits10;
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}
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#if defined(__CYGWIN__) || defined(_WIN32) || defined(__HAIKU__)
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// Cygwin does not support uselocale(), but we can use the locale feature
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// in stringstream object.
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std::ostringstream ValueStream;
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ValueStream.width(0);
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ValueStream.precision(Precision);
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ValueStream.imbue(std::locale::classic());
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ValueStream << Value;
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std::string ValueString(ValueStream.str());
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size_t i = ValueString.length();
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if (i < BufferLength) {
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std::copy(ValueString.begin(), ValueString.end(), Buffer);
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Buffer[i] = '\0';
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} else {
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swift::crash("swift_floatingPointToString: insufficient buffer size");
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}
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#else
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// Pass a null locale to use the C locale.
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int i = swift_snprintf_l(Buffer, BufferLength, /*Locale=*/nullptr, Format,
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Precision, Value);
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if (i < 0)
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swift::crash(
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"swift_floatingPointToString: unexpected return value from sprintf");
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if (size_t(i) >= BufferLength)
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swift::crash("swift_floatingPointToString: insufficient buffer size");
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#endif
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// Add ".0" to a float that (a) is not in scientific notation, (b) does not
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// already have a fractional part, (c) is not infinite, and (d) is not a NaN
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// value.
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if (strchr(Buffer, 'e') == nullptr && strchr(Buffer, '.') == nullptr &&
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strchr(Buffer, 'n') == nullptr) {
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Buffer[i++] = '.';
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Buffer[i++] = '0';
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}
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return i;
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}
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#endif
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// TODO: replace this with a float16 implementation instead of calling _float.
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// Argument type will have to stay float, though; only the formatting changes.
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// Note, return type is __swift_ssize_t, not uint64_t as with the other
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// formatters. We'd use this type there if we could, but it's ABI so we can't
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// go back and change it.
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SWIFT_CC(swift) SWIFT_RUNTIME_STDLIB_API
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__swift_ssize_t swift_float16ToString(char *Buffer, size_t BufferLength,
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float Value, bool Debug) {
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__fp16 v = Value;
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return swift_format_float16(&v, Buffer, BufferLength);
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}
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SWIFT_CC(swift) SWIFT_RUNTIME_STDLIB_API
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uint64_t swift_float32ToString(char *Buffer, size_t BufferLength,
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float Value, bool Debug) {
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return swift_format_float(Value, Buffer, BufferLength);
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}
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SWIFT_CC(swift) SWIFT_RUNTIME_STDLIB_API
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uint64_t swift_float64ToString(char *Buffer, size_t BufferLength,
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double Value, bool Debug) {
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return swift_format_double(Value, Buffer, BufferLength);
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}
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SWIFT_CC(swift) SWIFT_RUNTIME_STDLIB_API
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uint64_t swift_float80ToString(char *Buffer, size_t BufferLength,
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long double Value, bool Debug) {
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#if SWIFT_DTOA_FLOAT80_SUPPORT
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return swift_format_float80(Value, Buffer, BufferLength);
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#else
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// Use this when 'long double' is not true Float80
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return swift_floatingPointToString<long double>(Buffer, BufferLength, Value,
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"%0.*Lg", Debug);
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#endif
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}
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/// \param[out] LinePtr Replaced with the pointer to the malloc()-allocated
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/// line. Can be NULL if no characters were read. This buffer should be
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/// freed by the caller.
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///
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/// \returns Size of character data returned in \c LinePtr, or -1
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/// if an error occurred, or EOF was reached.
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__swift_ssize_t
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swift::swift_stdlib_readLine_stdin(unsigned char **LinePtr) {
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#if defined(_WIN32)
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if (LinePtr == nullptr)
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return -1;
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ssize_t Capacity = 0;
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ssize_t Pos = 0;
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unsigned char *ReadBuf = nullptr;
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_lock_file(stdin);
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for (;;) {
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int ch = _fgetc_nolock(stdin);
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if (ferror(stdin) || (ch == EOF && Pos == 0)) {
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if (ReadBuf)
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free(ReadBuf);
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_unlock_file(stdin);
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return -1;
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}
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if (Capacity - Pos <= 1) {
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// Capacity changes to 128, 128*2, 128*4, 128*8, ...
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Capacity = Capacity ? Capacity * 2 : 128;
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unsigned char *NextReadBuf =
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static_cast<unsigned char *>(realloc(ReadBuf, Capacity));
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if (NextReadBuf == nullptr) {
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if (ReadBuf)
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free(ReadBuf);
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_unlock_file(stdin);
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return -1;
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}
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ReadBuf = NextReadBuf;
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}
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if (ch == EOF)
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break;
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ReadBuf[Pos++] = ch;
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if (ch == '\n')
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break;
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}
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ReadBuf[Pos] = '\0';
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*LinePtr = ReadBuf;
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_unlock_file(stdin);
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return Pos;
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#else
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size_t Capacity = 0;
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return getline((char **)LinePtr, &Capacity, stdin);
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#endif
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}
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#if defined(__CYGWIN__) || defined(_WIN32)
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#define strcasecmp _stricmp
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#endif
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static bool swift_stringIsSignalingNaN(const char *nptr) {
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if (nptr[0] == '+' || nptr[0] == '-') {
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nptr++;
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}
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return strcasecmp(nptr, "snan") == 0;
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}
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#if defined(__CYGWIN__) || defined(_WIN32) || defined(__HAIKU__) || defined(__OpenBSD__)
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// Cygwin does not support uselocale(), but we can use the locale feature
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// in stringstream object.
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template <typename T>
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static const char *_swift_stdlib_strtoX_clocale_impl(
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const char *nptr, T *outResult) {
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if (swift_stringIsSignalingNaN(nptr)) {
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*outResult = std::numeric_limits<T>::signaling_NaN();
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return nptr + std::strlen(nptr);
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}
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std::istringstream ValueStream(nptr);
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ValueStream.imbue(std::locale::classic());
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T ParsedValue;
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ValueStream >> ParsedValue;
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*outResult = ParsedValue;
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std::streamoff pos = ValueStream.tellg();
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if (ValueStream.eof())
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pos = static_cast<std::streamoff>(strlen(nptr));
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if (pos <= 0)
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return nullptr;
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return nptr + pos;
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}
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#if defined(_WIN32)
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template <>
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const char *
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_swift_stdlib_strtoX_clocale_impl<float>(const char *str, float *result) {
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if (swift_stringIsSignalingNaN(str)) {
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*result = std::numeric_limits<float>::signaling_NaN();
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return str + std::strlen(str);
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}
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char *end;
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_set_errno(0);
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*result = _strtof_l(str, &end, getCLocale());
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if (*result == HUGE_VALF || *result == -HUGE_VALF || *result == 0.0 || *result == -0.0) {
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if (errno == ERANGE)
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end = nullptr;
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}
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return end;
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}
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template <>
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const char *
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_swift_stdlib_strtoX_clocale_impl<double>(const char *str, double *result) {
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if (swift_stringIsSignalingNaN(str)) {
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*result = std::numeric_limits<double>::signaling_NaN();
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return str + std::strlen(str);
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}
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char *end;
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_set_errno(0);
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*result = _strtod_l(str, &end, getCLocale());
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if (*result == HUGE_VAL || *result == -HUGE_VAL || *result == 0.0 || *result == -0.0) {
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if (errno == ERANGE)
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end = nullptr;
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}
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return end;
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}
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template <>
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const char *
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_swift_stdlib_strtoX_clocale_impl<long double>(const char *str, long double *result) {
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if (swift_stringIsSignalingNaN(str)) {
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*result = std::numeric_limits<long double>::signaling_NaN();
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return str + std::strlen(str);
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}
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char *end;
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_set_errno(0);
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*result = _strtod_l(str, &end, getCLocale());
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if (*result == HUGE_VALL || *result == -HUGE_VALL || *result == 0.0 || *result == -0.0) {
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if (errno == ERANGE)
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end = nullptr;
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}
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return end;
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}
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#endif
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const char *swift::_swift_stdlib_strtold_clocale(
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const char *nptr, void *outResult) {
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return _swift_stdlib_strtoX_clocale_impl(
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nptr, static_cast<long double*>(outResult));
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}
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const char *swift::_swift_stdlib_strtod_clocale(
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const char * nptr, double *outResult) {
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return _swift_stdlib_strtoX_clocale_impl(nptr, outResult);
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}
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const char *swift::_swift_stdlib_strtof_clocale(
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const char * nptr, float *outResult) {
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return _swift_stdlib_strtoX_clocale_impl(nptr, outResult);
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}
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#else
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// We can't return Float80, but we can receive a pointer to one, so
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// switch the return type and the out parameter on strtold.
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template <typename T>
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static const char *_swift_stdlib_strtoX_clocale_impl(
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const char * nptr, T* outResult, T huge,
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T (*posixImpl)(const char *, char **, locale_t)
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) {
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if (swift_stringIsSignalingNaN(nptr)) {
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// TODO: ensure that the returned sNaN bit pattern matches that of sNaNs
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// produced by Swift.
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*outResult = std::numeric_limits<T>::signaling_NaN();
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return nptr + std::strlen(nptr);
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}
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char *EndPtr;
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errno = 0;
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const auto result = posixImpl(nptr, &EndPtr, getCLocale());
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*outResult = result;
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if (result == huge || result == -huge || result == 0.0 || result == -0.0) {
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if (errno == ERANGE)
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|
EndPtr = nullptr;
|
|
}
|
|
return EndPtr;
|
|
}
|
|
|
|
const char *swift::_swift_stdlib_strtold_clocale(
|
|
const char * nptr, void *outResult) {
|
|
return _swift_stdlib_strtoX_clocale_impl(
|
|
nptr, static_cast<long double*>(outResult), HUGE_VALL, strtold_l);
|
|
}
|
|
|
|
const char *swift::_swift_stdlib_strtod_clocale(
|
|
const char * nptr, double *outResult) {
|
|
return _swift_stdlib_strtoX_clocale_impl(
|
|
nptr, outResult, HUGE_VAL, strtod_l);
|
|
}
|
|
|
|
const char *swift::_swift_stdlib_strtof_clocale(
|
|
const char * nptr, float *outResult) {
|
|
return _swift_stdlib_strtoX_clocale_impl(
|
|
nptr, outResult, HUGE_VALF, strtof_l);
|
|
}
|
|
#endif
|
|
|
|
const char *swift::_swift_stdlib_strtof16_clocale(
|
|
const char * nptr, __fp16 *outResult) {
|
|
float tmp;
|
|
const char *result = _swift_stdlib_strtof_clocale(nptr, &tmp);
|
|
*outResult = tmp;
|
|
return result;
|
|
}
|
|
|
|
void swift::_swift_stdlib_flockfile_stdout() {
|
|
#if defined(_WIN32)
|
|
_lock_file(stdout);
|
|
#elif defined(__wasi__)
|
|
// WebAssembly/WASI doesn't support file locking yet https://bugs.swift.org/browse/SR-12097
|
|
#else
|
|
flockfile(stdout);
|
|
#endif
|
|
}
|
|
|
|
void swift::_swift_stdlib_funlockfile_stdout() {
|
|
#if defined(_WIN32)
|
|
_unlock_file(stdout);
|
|
#elif defined(__wasi__)
|
|
// WebAssembly/WASI doesn't support file locking yet https://bugs.swift.org/browse/SR-12097
|
|
#else
|
|
funlockfile(stdout);
|
|
#endif
|
|
}
|
|
|
|
int swift::_swift_stdlib_putc_stderr(int C) {
|
|
return putc(C, stderr);
|
|
}
|
|
|
|
size_t swift::_swift_stdlib_getHardwareConcurrency() {
|
|
return std::thread::hardware_concurrency();
|
|
}
|