Files
sdk/runtime/vm/os_linux.cc
T
floitsch@google.com 410e6bf600 Reapply "Set the TZ env to get the UTC-ms since epoch."
This reapplies a fixed version of commit 7285.

Review URL: https://chromiumcodereview.appspot.com//10359003

git-svn-id: https://dart.googlecode.com/svn/branches/bleeding_edge/dart@7288 260f80e4-7a28-3924-810f-c04153c831b5
2012-05-03 15:40:40 +00:00

211 lines
4.9 KiB
C++

// Copyright (c) 2012, the Dart project authors. Please see the AUTHORS file
// for details. All rights reserved. Use of this source code is governed by a
// BSD-style license that can be found in the LICENSE file.
#include "vm/os.h"
#include <errno.h>
#include <limits.h>
#include <time.h>
#include <sys/resource.h>
#include <sys/time.h>
#include <sys/types.h>
#include <unistd.h>
#include "platform/utils.h"
#include "vm/isolate.h"
namespace dart {
bool OS::GmTime(int64_t seconds_since_epoch, tm* tm_result) {
time_t seconds = static_cast<time_t>(seconds_since_epoch);
if (seconds != seconds_since_epoch) return false;
struct tm* error_code = gmtime_r(&seconds, tm_result);
return error_code != NULL;
}
bool OS::LocalTime(int64_t seconds_since_epoch, tm* tm_result) {
time_t seconds = static_cast<time_t>(seconds_since_epoch);
if (seconds != seconds_since_epoch) return false;
struct tm* error_code = localtime_r(&seconds, tm_result);
return error_code != NULL;
}
bool OS::MkGmTime(tm* tm, int64_t* seconds_result) {
// Set wday to an impossible day, so that we can catch bad input.
tm->tm_wday = -1;
time_t seconds = timegm(tm);
if ((seconds == -1) && (tm->tm_wday == -1)) {
return false;
}
*seconds_result = seconds;
return true;
}
bool OS::MkTime(tm* tm, int64_t* seconds_result) {
// Let the libc figure out if daylight saving is active.
tm->tm_isdst = -1;
// Set wday to an impossible day, so that we can catch bad input.
tm->tm_wday = -1;
time_t seconds = mktime(tm);
if ((seconds == -1) && (tm->tm_wday == -1)) {
return false;
}
*seconds_result = seconds;
return true;
}
int64_t OS::GetCurrentTimeMillis() {
return GetCurrentTimeMicros() / 1000;
}
int64_t OS::GetCurrentTimeMicros() {
// gettimeofday has microsecond resolution.
struct timeval tv;
if (gettimeofday(&tv, NULL) < 0) {
UNREACHABLE();
return 0;
}
return (static_cast<int64_t>(tv.tv_sec) * 1000000) + tv.tv_usec;
}
// TODO(5411554): May need to hoist these architecture dependent code
// into a architecture specific file e.g: os_ia32_linux.cc
word OS::ActivationFrameAlignment() {
#if defined(TARGET_ARCH_IA32) || defined(TARGET_ARCH_X64)
const int kMinimumAlignment = 16;
#elif defined(TARGET_ARCH_ARM)
const int kMinimumAlignment = 8;
#else
#error Unsupported architecture.
#endif
word alignment = kMinimumAlignment;
// TODO(5411554): Allow overriding default stack alignment for
// testing purposes.
// Flags::DebugIsInt("stackalign", &alignment);
ASSERT(Utils::IsPowerOfTwo(alignment));
ASSERT(alignment >= kMinimumAlignment);
return alignment;
}
word OS::PreferredCodeAlignment() {
#if defined(TARGET_ARCH_IA32) || defined(TARGET_ARCH_X64)
const int kMinimumAlignment = 16;
#elif defined(TARGET_ARCH_ARM)
const int kMinimumAlignment = 16;
#else
#error Unsupported architecture.
#endif
word alignment = kMinimumAlignment;
// TODO(5411554): Allow overriding default code alignment for
// testing purposes.
// Flags::DebugIsInt("codealign", &alignment);
ASSERT(Utils::IsPowerOfTwo(alignment));
ASSERT(alignment >= kMinimumAlignment);
return alignment;
}
uword OS::GetStackSizeLimit() {
struct rlimit stack_limit;
int retval = getrlimit(RLIMIT_STACK, &stack_limit);
ASSERT(retval == 0);
if (stack_limit.rlim_cur > INT_MAX) {
retval = INT_MAX;
} else {
retval = stack_limit.rlim_cur;
}
return retval;
}
int OS::NumberOfAvailableProcessors() {
return sysconf(_SC_NPROCESSORS_ONLN);
}
void OS::Sleep(int64_t millis) {
// TODO(5411554): For now just use usleep we may have to revisit this.
usleep(millis * 1000);
}
void OS::DebugBreak() {
#if defined(HOST_ARCH_X64) || defined(HOST_ARCH_IA32)
asm("int $3");
#elif defined(HOST_ARCH_ARM)
asm("svc #0x9f0001"); // __ARM_NR_breakpoint
#else
#error Unsupported architecture.
#endif
}
void OS::Print(const char* format, ...) {
va_list args;
va_start(args, format);
VFPrint(stdout, format, args);
va_end(args);
}
void OS::VFPrint(FILE* stream, const char* format, va_list args) {
vfprintf(stream, format, args);
fflush(stream);
}
int OS::SNPrint(char* str, size_t size, const char* format, ...) {
va_list args;
va_start(args, format);
int retval = VSNPrint(str, size, format, args);
va_end(args);
return retval;
}
int OS::VSNPrint(char* str, size_t size, const char* format, va_list args) {
return vsnprintf(str, size, format, args);
}
void OS::PrintErr(const char* format, ...) {
va_list args;
va_start(args, format);
VFPrint(stderr, format, args);
va_end(args);
}
void OS::InitOnce() {
// TODO(5411554): For now we check that initonce is called only once,
// Once there is more formal mechanism to call InitOnce we can move
// this check there.
static bool init_once_called = false;
ASSERT(init_once_called == false);
init_once_called = true;
}
void OS::Shutdown() {
}
void OS::Abort() {
abort();
}
void OS::Exit(int code) {
exit(code);
}
} // namespace dart