f407419d0a
This relands https://dart-review.googlesource.com/c/sdk/+/205633 but without renaming TARGET_OS_IPHONE to DART_TARGET_OS_IPHONE. It also changes uses of TARGET_OS_IOS to DART_TARGET_OS_MACOS_IOS to be consistent with the rest of the VM. TargetConditionals.h for XCode 13 defines several TARGET_OS_* preprocessor symbols that confuse the Dart build. There is probably a more targeted fix for this, but renaming the symbols that Dart uses will also prevent this problem if more symbols are added to the platform headers in the future. See: https://github.com/dart-lang/sdk/issues/46499 TEST=It builds. Change-Id: Ie775c19dd23cfdf5f65e5ebc6ee4ec3a561676fa Reviewed-on: https://dart-review.googlesource.com/c/sdk/+/205860 Commit-Queue: Zach Anderson <zra@google.com> Reviewed-by: Alexander Aprelev <aam@google.com>
228 lines
7.6 KiB
C++
228 lines
7.6 KiB
C++
// Copyright (c) 2012, the Dart project authors. Please see the AUTHORS file
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// for details. All rights reserved. Use of this source code is governed by a
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// BSD-style license that can be found in the LICENSE file.
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#include "platform/globals.h"
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#if defined(DART_HOST_OS_WINDOWS)
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#include <errno.h> // NOLINT
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#include <time.h> // NOLINT
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#include "bin/utils.h"
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#include "bin/utils_win.h"
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#include "platform/assert.h"
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#include "platform/syslog.h"
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namespace dart {
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namespace bin {
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void FormatMessageIntoBuffer(DWORD code, wchar_t* buffer, int buffer_length) {
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DWORD message_size = FormatMessageW(
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FORMAT_MESSAGE_FROM_SYSTEM | FORMAT_MESSAGE_IGNORE_INSERTS, NULL, code,
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MAKELANGID(LANG_NEUTRAL, SUBLANG_DEFAULT), buffer, buffer_length, NULL);
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if (message_size == 0) {
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if (GetLastError() != ERROR_INSUFFICIENT_BUFFER) {
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Syslog::PrintErr("FormatMessage failed for error code %d (error %d)\n",
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code, GetLastError());
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}
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_snwprintf(buffer, buffer_length, L"OS Error %d", code);
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}
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// Ensure string termination.
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buffer[buffer_length - 1] = 0;
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}
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OSError::OSError() : sub_system_(kSystem), code_(0), message_(NULL) {
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Reload();
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}
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void OSError::Reload() {
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SetCodeAndMessage(kSystem, GetLastError());
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}
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void OSError::SetCodeAndMessage(SubSystem sub_system, int code) {
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set_sub_system(sub_system);
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set_code(code);
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static const int kMaxMessageLength = 256;
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wchar_t message[kMaxMessageLength];
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FormatMessageIntoBuffer(code_, message, kMaxMessageLength);
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char* utf8 = StringUtilsWin::WideToUtf8(message);
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SetMessage(utf8);
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}
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char* StringUtils::ConsoleStringToUtf8(char* str,
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intptr_t len,
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intptr_t* result_len) {
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int wide_len = MultiByteToWideChar(CP_ACP, 0, str, len, NULL, 0);
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wchar_t* wide;
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wide =
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reinterpret_cast<wchar_t*>(Dart_ScopeAllocate(wide_len * sizeof(*wide)));
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MultiByteToWideChar(CP_ACP, 0, str, len, wide, wide_len);
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char* utf8 = StringUtilsWin::WideToUtf8(wide, wide_len, result_len);
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return utf8;
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}
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char* StringUtils::Utf8ToConsoleString(char* utf8,
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intptr_t len,
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intptr_t* result_len) {
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intptr_t wide_len;
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wchar_t* wide = StringUtilsWin::Utf8ToWide(utf8, len, &wide_len);
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int system_len =
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WideCharToMultiByte(CP_ACP, 0, wide, wide_len, NULL, 0, NULL, NULL);
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char* ansi;
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ansi =
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reinterpret_cast<char*>(Dart_ScopeAllocate(system_len * sizeof(*ansi)));
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if (ansi == NULL) {
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return NULL;
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}
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WideCharToMultiByte(CP_ACP, 0, wide, wide_len, ansi, system_len, NULL, NULL);
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if (result_len != NULL) {
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*result_len = system_len;
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}
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return ansi;
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}
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char* StringUtilsWin::WideToUtf8(wchar_t* wide,
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intptr_t len,
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intptr_t* result_len) {
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// If len is -1 then WideCharToMultiByte will include the terminating
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// NUL byte in the length.
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int utf8_len =
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WideCharToMultiByte(CP_UTF8, 0, wide, len, NULL, 0, NULL, NULL);
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char* utf8;
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utf8 = reinterpret_cast<char*>(Dart_ScopeAllocate(utf8_len * sizeof(*utf8)));
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WideCharToMultiByte(CP_UTF8, 0, wide, len, utf8, utf8_len, NULL, NULL);
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if (result_len != NULL) {
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*result_len = utf8_len;
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}
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return utf8;
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}
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wchar_t* StringUtilsWin::Utf8ToWide(char* utf8,
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intptr_t len,
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intptr_t* result_len) {
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// If len is -1 then MultiByteToWideChar will include the terminating
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// NUL byte in the length.
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int wide_len = MultiByteToWideChar(CP_UTF8, 0, utf8, len, NULL, 0);
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wchar_t* wide;
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wide =
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reinterpret_cast<wchar_t*>(Dart_ScopeAllocate(wide_len * sizeof(*wide)));
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MultiByteToWideChar(CP_UTF8, 0, utf8, len, wide, wide_len);
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if (result_len != NULL) {
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*result_len = wide_len;
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}
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return wide;
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}
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const char* StringUtils::Utf8ToConsoleString(const char* utf8,
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intptr_t len,
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intptr_t* result_len) {
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return const_cast<const char*>(StringUtils::Utf8ToConsoleString(
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const_cast<char*>(utf8), len, result_len));
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}
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const char* StringUtils::ConsoleStringToUtf8(const char* str,
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intptr_t len,
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intptr_t* result_len) {
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return const_cast<const char*>(StringUtils::ConsoleStringToUtf8(
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const_cast<char*>(str), len, result_len));
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}
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const char* StringUtilsWin::WideToUtf8(const wchar_t* wide,
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intptr_t len,
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intptr_t* result_len) {
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return const_cast<const char*>(
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StringUtilsWin::WideToUtf8(const_cast<wchar_t*>(wide), len, result_len));
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}
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const wchar_t* StringUtilsWin::Utf8ToWide(const char* utf8,
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intptr_t len,
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intptr_t* result_len) {
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return const_cast<const wchar_t*>(
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StringUtilsWin::Utf8ToWide(const_cast<char*>(utf8), len, result_len));
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}
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bool ShellUtils::GetUtf8Argv(int argc, char** argv) {
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wchar_t* command_line = GetCommandLineW();
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int unicode_argc;
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wchar_t** unicode_argv = CommandLineToArgvW(command_line, &unicode_argc);
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if (unicode_argv == NULL) {
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return false;
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}
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// The argc passed to main should have the same argc as we get here.
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ASSERT(argc == unicode_argc);
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if (argc < unicode_argc) {
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unicode_argc = argc;
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}
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for (int i = 0; i < unicode_argc; i++) {
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wchar_t* arg = unicode_argv[i];
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int arg_len = WideCharToMultiByte(CP_UTF8, 0, arg, -1, NULL, 0, NULL, NULL);
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char* utf8_arg = reinterpret_cast<char*>(malloc(arg_len));
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WideCharToMultiByte(CP_UTF8, 0, arg, -1, utf8_arg, arg_len, NULL, NULL);
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argv[i] = utf8_arg;
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}
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LocalFree(unicode_argv);
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return true;
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}
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// Although win32 uses 64-bit integers for representing timestamps,
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// these are packed into a FILETIME structure. The FILETIME
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// structure is just a struct representing a 64-bit integer. The
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// TimeStamp union allows access to both a FILETIME and an integer
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// representation of the timestamp. The Windows timestamp is in
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// 100-nanosecond intervals since January 1, 1601.
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union TimeStamp {
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FILETIME ft_;
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int64_t t_;
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};
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static int64_t GetCurrentTimeMicros() {
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static const int64_t kTimeEpoc = 116444736000000000LL;
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static const int64_t kTimeScaler = 10; // 100 ns to us.
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TimeStamp time;
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GetSystemTimeAsFileTime(&time.ft_);
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return (time.t_ - kTimeEpoc) / kTimeScaler;
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}
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static int64_t qpc_ticks_per_second = 0;
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void TimerUtils::InitOnce() {
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LARGE_INTEGER ticks_per_sec;
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if (!QueryPerformanceFrequency(&ticks_per_sec)) {
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qpc_ticks_per_second = 0;
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} else {
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qpc_ticks_per_second = static_cast<int64_t>(ticks_per_sec.QuadPart);
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}
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}
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int64_t TimerUtils::GetCurrentMonotonicMillis() {
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return GetCurrentMonotonicMicros() / 1000;
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}
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int64_t TimerUtils::GetCurrentMonotonicMicros() {
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if (qpc_ticks_per_second == 0) {
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// QueryPerformanceCounter not supported, fallback.
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return GetCurrentTimeMicros();
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}
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// Grab performance counter value.
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LARGE_INTEGER now;
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QueryPerformanceCounter(&now);
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int64_t qpc_value = static_cast<int64_t>(now.QuadPart);
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// Convert to microseconds.
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int64_t seconds = qpc_value / qpc_ticks_per_second;
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int64_t leftover_ticks = qpc_value - (seconds * qpc_ticks_per_second);
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int64_t result = seconds * kMicrosecondsPerSecond;
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result += ((leftover_ticks * kMicrosecondsPerSecond) / qpc_ticks_per_second);
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return result;
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}
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void TimerUtils::Sleep(int64_t millis) {
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::Sleep(millis);
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}
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} // namespace bin
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} // namespace dart
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#endif // defined(DART_HOST_OS_WINDOWS)
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