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ager@chromium.org9258b6b2008-09-11 09:11:10 +00001// Copyright 2006-2008 the V8 project authors. All rights reserved.
christian.plesner.hansen43d26ec2008-07-03 15:10:15 +00002// Redistribution and use in source and binary forms, with or without
3// modification, are permitted provided that the following conditions are
4// met:
5//
6// * Redistributions of source code must retain the above copyright
7// notice, this list of conditions and the following disclaimer.
8// * Redistributions in binary form must reproduce the above
9// copyright notice, this list of conditions and the following
10// disclaimer in the documentation and/or other materials provided
11// with the distribution.
12// * Neither the name of Google Inc. nor the names of its
13// contributors may be used to endorse or promote products derived
14// from this software without specific prior written permission.
15//
16// THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS
17// "AS IS" AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT
18// LIMITED TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR
19// A PARTICULAR PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT
20// OWNER OR CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL,
21// SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT
22// LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
23// DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
24// THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
25// (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE
26// OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
27
28// Platform specific code for Win32.
29#ifndef WIN32_LEAN_AND_MEAN
30// WIN32_LEAN_AND_MEAN implies NOCRYPT and NOGDI.
31#define WIN32_LEAN_AND_MEAN
32#endif
33#ifndef NOMINMAX
34#define NOMINMAX
35#endif
36#ifndef NOKERNEL
37#define NOKERNEL
38#endif
39#ifndef NOUSER
40#define NOUSER
41#endif
42#ifndef NOSERVICE
43#define NOSERVICE
44#endif
45#ifndef NOSOUND
46#define NOSOUND
47#endif
48#ifndef NOMCX
49#define NOMCX
50#endif
ager@chromium.org3811b432009-10-28 14:53:37 +000051// Require Windows XP or higher (this is required for the RtlCaptureContext
ager@chromium.orga74f0da2008-12-03 16:05:52 +000052// function to be present).
53#ifndef _WIN32_WINNT
ager@chromium.org3811b432009-10-28 14:53:37 +000054#define _WIN32_WINNT 0x501
ager@chromium.orga74f0da2008-12-03 16:05:52 +000055#endif
christian.plesner.hansen43d26ec2008-07-03 15:10:15 +000056
57#include <windows.h>
58
ager@chromium.orga74f0da2008-12-03 16:05:52 +000059#include <time.h> // For LocalOffset() implementation.
christian.plesner.hansen43d26ec2008-07-03 15:10:15 +000060#include <mmsystem.h> // For timeGetTime().
kasperl@chromium.org71affb52009-05-26 05:44:31 +000061#ifdef __MINGW32__
62// Require Windows XP or higher when compiling with MinGW. This is for MinGW
63// header files to expose getaddrinfo.
64#undef _WIN32_WINNT
65#define _WIN32_WINNT 0x501
66#endif // __MINGW32__
iposva@chromium.org245aa852009-02-10 00:49:54 +000067#ifndef __MINGW32__
christian.plesner.hansen43d26ec2008-07-03 15:10:15 +000068#include <dbghelp.h> // For SymLoadModule64 and al.
iposva@chromium.org245aa852009-02-10 00:49:54 +000069#endif // __MINGW32__
70#include <limits.h> // For INT_MAX and al.
christian.plesner.hansen43d26ec2008-07-03 15:10:15 +000071#include <tlhelp32.h> // For Module32First and al.
72
ager@chromium.org32912102009-01-16 10:38:43 +000073// These additional WIN32 includes have to be right here as the #undef's below
christian.plesner.hansen43d26ec2008-07-03 15:10:15 +000074// makes it impossible to have them elsewhere.
75#include <winsock2.h>
ager@chromium.org381abbb2009-02-25 13:23:22 +000076#include <ws2tcpip.h>
christian.plesner.hansen43d26ec2008-07-03 15:10:15 +000077#include <process.h> // for _beginthreadex()
78#include <stdlib.h>
79
christian.plesner.hansen43d26ec2008-07-03 15:10:15 +000080#undef VOID
81#undef DELETE
82#undef IN
83#undef THIS
84#undef CONST
85#undef NAN
86#undef GetObject
87#undef CreateMutex
88#undef CreateSemaphore
89
90#include "v8.h"
91
92#include "platform.h"
93
iposva@chromium.org245aa852009-02-10 00:49:54 +000094// Extra POSIX/ANSI routines for Win32 when when using Visual Studio C++. Please
95// refer to The Open Group Base Specification for specification of the correct
96// semantics for these functions.
christian.plesner.hansen43d26ec2008-07-03 15:10:15 +000097// (http://www.opengroup.org/onlinepubs/000095399/)
iposva@chromium.org245aa852009-02-10 00:49:54 +000098#ifdef _MSC_VER
christian.plesner.hansen43d26ec2008-07-03 15:10:15 +000099
christian.plesner.hansen43d26ec2008-07-03 15:10:15 +0000100namespace v8 {
101namespace internal {
102
iposva@chromium.org245aa852009-02-10 00:49:54 +0000103// Test for finite value - usually defined in math.h
christian.plesner.hansen43d26ec2008-07-03 15:10:15 +0000104int isfinite(double x) {
105 return _finite(x);
106}
107
108} // namespace v8
109} // namespace internal
110
111// Test for a NaN (not a number) value - usually defined in math.h
112int isnan(double x) {
113 return _isnan(x);
114}
115
116
117// Test for infinity - usually defined in math.h
118int isinf(double x) {
119 return (_fpclass(x) & (_FPCLASS_PINF | _FPCLASS_NINF)) != 0;
120}
121
122
123// Test if x is less than y and both nominal - usually defined in math.h
124int isless(double x, double y) {
125 return isnan(x) || isnan(y) ? 0 : x < y;
126}
127
128
129// Test if x is greater than y and both nominal - usually defined in math.h
130int isgreater(double x, double y) {
131 return isnan(x) || isnan(y) ? 0 : x > y;
132}
133
134
135// Classify floating point number - usually defined in math.h
136int fpclassify(double x) {
137 // Use the MS-specific _fpclass() for classification.
138 int flags = _fpclass(x);
139
140 // Determine class. We cannot use a switch statement because
141 // the _FPCLASS_ constants are defined as flags.
142 if (flags & (_FPCLASS_PN | _FPCLASS_NN)) return FP_NORMAL;
143 if (flags & (_FPCLASS_PZ | _FPCLASS_NZ)) return FP_ZERO;
144 if (flags & (_FPCLASS_PD | _FPCLASS_ND)) return FP_SUBNORMAL;
145 if (flags & (_FPCLASS_PINF | _FPCLASS_NINF)) return FP_INFINITE;
146
147 // All cases should be covered by the code above.
148 ASSERT(flags & (_FPCLASS_SNAN | _FPCLASS_QNAN));
149 return FP_NAN;
150}
151
152
153// Test sign - usually defined in math.h
154int signbit(double x) {
155 // We need to take care of the special case of both positive
156 // and negative versions of zero.
157 if (x == 0)
158 return _fpclass(x) & _FPCLASS_NZ;
159 else
160 return x < 0;
161}
162
163
christian.plesner.hansen43d26ec2008-07-03 15:10:15 +0000164// Case-insensitive bounded string comparisons. Use stricmp() on Win32. Usually
165// defined in strings.h.
166int strncasecmp(const char* s1, const char* s2, int n) {
kasperl@chromium.orgb9123622008-09-17 14:05:56 +0000167 return _strnicmp(s1, s2, n);
christian.plesner.hansen43d26ec2008-07-03 15:10:15 +0000168}
169
iposva@chromium.org245aa852009-02-10 00:49:54 +0000170#endif // _MSC_VER
171
172
173// Extra functions for MinGW. Most of these are the _s functions which are in
174// the Microsoft Visual Studio C++ CRT.
175#ifdef __MINGW32__
176
177int localtime_s(tm* out_tm, const time_t* time) {
178 tm* posix_local_time_struct = localtime(time);
179 if (posix_local_time_struct == NULL) return 1;
180 *out_tm = *posix_local_time_struct;
181 return 0;
182}
183
184
185// Not sure this the correct interpretation of _mkgmtime
186time_t _mkgmtime(tm* timeptr) {
187 return mktime(timeptr);
188}
189
190
191int fopen_s(FILE** pFile, const char* filename, const char* mode) {
192 *pFile = fopen(filename, mode);
193 return *pFile != NULL ? 0 : 1;
194}
195
196
197int _vsnprintf_s(char* buffer, size_t sizeOfBuffer, size_t count,
198 const char* format, va_list argptr) {
199 return _vsnprintf(buffer, sizeOfBuffer, format, argptr);
200}
201#define _TRUNCATE 0
202
203
204int strncpy_s(char* strDest, size_t numberOfElements,
205 const char* strSource, size_t count) {
206 strncpy(strDest, strSource, count);
207 return 0;
208}
209
210#endif // __MINGW32__
211
212// Generate a pseudo-random number in the range 0-2^31-1. Usually
213// defined in stdlib.h. Missing in both Microsoft Visual Studio C++ and MinGW.
214int random() {
215 return rand();
216}
217
218
kasperl@chromium.org71affb52009-05-26 05:44:31 +0000219namespace v8 {
220namespace internal {
christian.plesner.hansen43d26ec2008-07-03 15:10:15 +0000221
222double ceiling(double x) {
223 return ceil(x);
224}
225
ager@chromium.org3811b432009-10-28 14:53:37 +0000226#ifdef _WIN64
227typedef double (*ModuloFunction)(double, double);
228
229// Defined in codegen-x64.cc.
230ModuloFunction CreateModuloFunction();
231
232double modulo(double x, double y) {
233 static ModuloFunction function = CreateModuloFunction();
234 return function(x, y);
235}
236#else // Win32
237
238double modulo(double x, double y) {
239 // Workaround MS fmod bugs. ECMA-262 says:
240 // dividend is finite and divisor is an infinity => result equals dividend
241 // dividend is a zero and divisor is nonzero finite => result equals dividend
242 if (!(isfinite(x) && (!isfinite(y) && !isnan(y))) &&
243 !(x == 0 && (y != 0 && isfinite(y)))) {
244 x = fmod(x, y);
245 }
246 return x;
247}
248
249#endif // _WIN64
250
christian.plesner.hansen43d26ec2008-07-03 15:10:15 +0000251// ----------------------------------------------------------------------------
252// The Time class represents time on win32. A timestamp is represented as
253// a 64-bit integer in 100 nano-seconds since January 1, 1601 (UTC). JavaScript
254// timestamps are represented as a doubles in milliseconds since 00:00:00 UTC,
255// January 1, 1970.
256
257class Time {
258 public:
259 // Constructors.
260 Time();
261 explicit Time(double jstime);
262 Time(int year, int mon, int day, int hour, int min, int sec);
263
264 // Convert timestamp to JavaScript representation.
265 double ToJSTime();
266
267 // Set timestamp to current time.
268 void SetToCurrentTime();
269
270 // Returns the local timezone offset in milliseconds east of UTC. This is
271 // the number of milliseconds you must add to UTC to get local time, i.e.
272 // LocalOffset(CET) = 3600000 and LocalOffset(PST) = -28800000. This
273 // routine also takes into account whether daylight saving is effect
274 // at the time.
275 int64_t LocalOffset();
276
277 // Returns the daylight savings time offset for the time in milliseconds.
278 int64_t DaylightSavingsOffset();
279
280 // Returns a string identifying the current timezone for the
281 // timestamp taking into account daylight saving.
282 char* LocalTimezone();
283
284 private:
285 // Constants for time conversion.
iposva@chromium.org245aa852009-02-10 00:49:54 +0000286 static const int64_t kTimeEpoc = 116444736000000000LL;
christian.plesner.hansen43d26ec2008-07-03 15:10:15 +0000287 static const int64_t kTimeScaler = 10000;
288 static const int64_t kMsPerMinute = 60000;
289
290 // Constants for timezone information.
291 static const int kTzNameSize = 128;
292 static const bool kShortTzNames = false;
293
294 // Timezone information. We need to have static buffers for the
295 // timezone names because we return pointers to these in
296 // LocalTimezone().
297 static bool tz_initialized_;
298 static TIME_ZONE_INFORMATION tzinfo_;
299 static char std_tz_name_[kTzNameSize];
300 static char dst_tz_name_[kTzNameSize];
301
302 // Initialize the timezone information (if not already done).
303 static void TzSet();
304
305 // Guess the name of the timezone from the bias.
306 static const char* GuessTimezoneNameFromBias(int bias);
307
308 // Return whether or not daylight savings time is in effect at this time.
309 bool InDST();
310
311 // Return the difference (in milliseconds) between this timestamp and
312 // another timestamp.
313 int64_t Diff(Time* other);
314
315 // Accessor for FILETIME representation.
316 FILETIME& ft() { return time_.ft_; }
317
318 // Accessor for integer representation.
319 int64_t& t() { return time_.t_; }
320
321 // Although win32 uses 64-bit integers for representing timestamps,
322 // these are packed into a FILETIME structure. The FILETIME structure
323 // is just a struct representing a 64-bit integer. The TimeStamp union
324 // allows access to both a FILETIME and an integer representation of
325 // the timestamp.
326 union TimeStamp {
327 FILETIME ft_;
328 int64_t t_;
329 };
330
331 TimeStamp time_;
332};
333
334// Static variables.
335bool Time::tz_initialized_ = false;
336TIME_ZONE_INFORMATION Time::tzinfo_;
337char Time::std_tz_name_[kTzNameSize];
338char Time::dst_tz_name_[kTzNameSize];
339
340
341// Initialize timestamp to start of epoc.
342Time::Time() {
343 t() = 0;
344}
345
346
347// Initialize timestamp from a JavaScript timestamp.
348Time::Time(double jstime) {
ager@chromium.org41826e72009-03-30 13:30:57 +0000349 t() = static_cast<int64_t>(jstime) * kTimeScaler + kTimeEpoc;
christian.plesner.hansen43d26ec2008-07-03 15:10:15 +0000350}
351
352
353// Initialize timestamp from date/time components.
354Time::Time(int year, int mon, int day, int hour, int min, int sec) {
355 SYSTEMTIME st;
356 st.wYear = year;
357 st.wMonth = mon;
358 st.wDay = day;
359 st.wHour = hour;
360 st.wMinute = min;
361 st.wSecond = sec;
362 st.wMilliseconds = 0;
363 SystemTimeToFileTime(&st, &ft());
364}
365
366
367// Convert timestamp to JavaScript timestamp.
368double Time::ToJSTime() {
369 return static_cast<double>((t() - kTimeEpoc) / kTimeScaler);
370}
371
372
373// Guess the name of the timezone from the bias.
374// The guess is very biased towards the northern hemisphere.
375const char* Time::GuessTimezoneNameFromBias(int bias) {
376 static const int kHour = 60;
377 switch (-bias) {
378 case -9*kHour: return "Alaska";
379 case -8*kHour: return "Pacific";
380 case -7*kHour: return "Mountain";
381 case -6*kHour: return "Central";
382 case -5*kHour: return "Eastern";
383 case -4*kHour: return "Atlantic";
384 case 0*kHour: return "GMT";
385 case +1*kHour: return "Central Europe";
386 case +2*kHour: return "Eastern Europe";
387 case +3*kHour: return "Russia";
388 case +5*kHour + 30: return "India";
389 case +8*kHour: return "China";
390 case +9*kHour: return "Japan";
391 case +12*kHour: return "New Zealand";
392 default: return "Local";
393 }
394}
395
396
397// Initialize timezone information. The timezone information is obtained from
398// windows. If we cannot get the timezone information we fall back to CET.
399// Please notice that this code is not thread-safe.
400void Time::TzSet() {
401 // Just return if timezone information has already been initialized.
402 if (tz_initialized_) return;
403
ager@chromium.orga74f0da2008-12-03 16:05:52 +0000404 // Initialize POSIX time zone data.
405 _tzset();
christian.plesner.hansen43d26ec2008-07-03 15:10:15 +0000406 // Obtain timezone information from operating system.
407 memset(&tzinfo_, 0, sizeof(tzinfo_));
408 if (GetTimeZoneInformation(&tzinfo_) == TIME_ZONE_ID_INVALID) {
409 // If we cannot get timezone information we fall back to CET.
410 tzinfo_.Bias = -60;
411 tzinfo_.StandardDate.wMonth = 10;
412 tzinfo_.StandardDate.wDay = 5;
413 tzinfo_.StandardDate.wHour = 3;
414 tzinfo_.StandardBias = 0;
415 tzinfo_.DaylightDate.wMonth = 3;
416 tzinfo_.DaylightDate.wDay = 5;
417 tzinfo_.DaylightDate.wHour = 2;
418 tzinfo_.DaylightBias = -60;
419 }
420
421 // Make standard and DST timezone names.
kasperl@chromium.orgb9123622008-09-17 14:05:56 +0000422 OS::SNPrintF(Vector<char>(std_tz_name_, kTzNameSize),
423 "%S",
424 tzinfo_.StandardName);
christian.plesner.hansen43d26ec2008-07-03 15:10:15 +0000425 std_tz_name_[kTzNameSize - 1] = '\0';
kasperl@chromium.orgb9123622008-09-17 14:05:56 +0000426 OS::SNPrintF(Vector<char>(dst_tz_name_, kTzNameSize),
427 "%S",
428 tzinfo_.DaylightName);
christian.plesner.hansen43d26ec2008-07-03 15:10:15 +0000429 dst_tz_name_[kTzNameSize - 1] = '\0';
430
431 // If OS returned empty string or resource id (like "@tzres.dll,-211")
432 // simply guess the name from the UTC bias of the timezone.
433 // To properly resolve the resource identifier requires a library load,
434 // which is not possible in a sandbox.
435 if (std_tz_name_[0] == '\0' || std_tz_name_[0] == '@') {
kasperl@chromium.orgb9123622008-09-17 14:05:56 +0000436 OS::SNPrintF(Vector<char>(std_tz_name_, kTzNameSize - 1),
437 "%s Standard Time",
438 GuessTimezoneNameFromBias(tzinfo_.Bias));
christian.plesner.hansen43d26ec2008-07-03 15:10:15 +0000439 }
440 if (dst_tz_name_[0] == '\0' || dst_tz_name_[0] == '@') {
kasperl@chromium.orgb9123622008-09-17 14:05:56 +0000441 OS::SNPrintF(Vector<char>(dst_tz_name_, kTzNameSize - 1),
442 "%s Daylight Time",
443 GuessTimezoneNameFromBias(tzinfo_.Bias));
christian.plesner.hansen43d26ec2008-07-03 15:10:15 +0000444 }
445
446 // Timezone information initialized.
447 tz_initialized_ = true;
448}
449
450
451// Return the difference in milliseconds between this and another timestamp.
452int64_t Time::Diff(Time* other) {
453 return (t() - other->t()) / kTimeScaler;
454}
455
456
457// Set timestamp to current time.
458void Time::SetToCurrentTime() {
459 // The default GetSystemTimeAsFileTime has a ~15.5ms resolution.
460 // Because we're fast, we like fast timers which have at least a
461 // 1ms resolution.
462 //
463 // timeGetTime() provides 1ms granularity when combined with
464 // timeBeginPeriod(). If the host application for v8 wants fast
465 // timers, it can use timeBeginPeriod to increase the resolution.
466 //
467 // Using timeGetTime() has a drawback because it is a 32bit value
468 // and hence rolls-over every ~49days.
469 //
470 // To use the clock, we use GetSystemTimeAsFileTime as our base;
471 // and then use timeGetTime to extrapolate current time from the
472 // start time. To deal with rollovers, we resync the clock
473 // any time when more than kMaxClockElapsedTime has passed or
474 // whenever timeGetTime creates a rollover.
475
476 static bool initialized = false;
477 static TimeStamp init_time;
478 static DWORD init_ticks;
ager@chromium.orga74f0da2008-12-03 16:05:52 +0000479 static const int64_t kHundredNanosecondsPerSecond = 10000000;
480 static const int64_t kMaxClockElapsedTime =
481 60*kHundredNanosecondsPerSecond; // 1 minute
christian.plesner.hansen43d26ec2008-07-03 15:10:15 +0000482
483 // If we are uninitialized, we need to resync the clock.
484 bool needs_resync = !initialized;
485
486 // Get the current time.
487 TimeStamp time_now;
488 GetSystemTimeAsFileTime(&time_now.ft_);
489 DWORD ticks_now = timeGetTime();
490
491 // Check if we need to resync due to clock rollover.
492 needs_resync |= ticks_now < init_ticks;
493
494 // Check if we need to resync due to elapsed time.
495 needs_resync |= (time_now.t_ - init_time.t_) > kMaxClockElapsedTime;
496
497 // Resync the clock if necessary.
498 if (needs_resync) {
499 GetSystemTimeAsFileTime(&init_time.ft_);
500 init_ticks = ticks_now = timeGetTime();
501 initialized = true;
502 }
503
504 // Finally, compute the actual time. Why is this so hard.
505 DWORD elapsed = ticks_now - init_ticks;
506 this->time_.t_ = init_time.t_ + (static_cast<int64_t>(elapsed) * 10000);
507}
508
509
510// Return the local timezone offset in milliseconds east of UTC. This
511// takes into account whether daylight saving is in effect at the time.
ager@chromium.orga74f0da2008-12-03 16:05:52 +0000512// Only times in the 32-bit Unix range may be passed to this function.
513// Also, adding the time-zone offset to the input must not overflow.
kmillikin@chromium.org5d8f0e62010-03-24 08:21:20 +0000514// The function EquivalentTime() in date.js guarantees this.
christian.plesner.hansen43d26ec2008-07-03 15:10:15 +0000515int64_t Time::LocalOffset() {
516 // Initialize timezone information, if needed.
517 TzSet();
518
ager@chromium.orga74f0da2008-12-03 16:05:52 +0000519 Time rounded_to_second(*this);
520 rounded_to_second.t() = rounded_to_second.t() / 1000 / kTimeScaler *
521 1000 * kTimeScaler;
522 // Convert to local time using POSIX localtime function.
523 // Windows XP Service Pack 3 made SystemTimeToTzSpecificLocalTime()
524 // very slow. Other browsers use localtime().
christian.plesner.hansen43d26ec2008-07-03 15:10:15 +0000525
ager@chromium.orga74f0da2008-12-03 16:05:52 +0000526 // Convert from JavaScript milliseconds past 1/1/1970 0:00:00 to
527 // POSIX seconds past 1/1/1970 0:00:00.
528 double unchecked_posix_time = rounded_to_second.ToJSTime() / 1000;
529 if (unchecked_posix_time > INT_MAX || unchecked_posix_time < 0) {
530 return 0;
531 }
532 // Because _USE_32BIT_TIME_T is defined, time_t is a 32-bit int.
533 time_t posix_time = static_cast<time_t>(unchecked_posix_time);
christian.plesner.hansen43d26ec2008-07-03 15:10:15 +0000534
ager@chromium.orga74f0da2008-12-03 16:05:52 +0000535 // Convert to local time, as struct with fields for day, hour, year, etc.
536 tm posix_local_time_struct;
537 if (localtime_s(&posix_local_time_struct, &posix_time)) return 0;
538 // Convert local time in struct to POSIX time as if it were a UTC time.
539 time_t local_posix_time = _mkgmtime(&posix_local_time_struct);
540 Time localtime(1000.0 * local_posix_time);
christian.plesner.hansen43d26ec2008-07-03 15:10:15 +0000541
ager@chromium.orga74f0da2008-12-03 16:05:52 +0000542 return localtime.Diff(&rounded_to_second);
christian.plesner.hansen43d26ec2008-07-03 15:10:15 +0000543}
544
545
546// Return whether or not daylight savings time is in effect at this time.
547bool Time::InDST() {
548 // Initialize timezone information, if needed.
549 TzSet();
550
551 // Determine if DST is in effect at the specified time.
552 bool in_dst = false;
553 if (tzinfo_.StandardDate.wMonth != 0 || tzinfo_.DaylightDate.wMonth != 0) {
554 // Get the local timezone offset for the timestamp in milliseconds.
555 int64_t offset = LocalOffset();
556
557 // Compute the offset for DST. The bias parameters in the timezone info
558 // are specified in minutes. These must be converted to milliseconds.
559 int64_t dstofs = -(tzinfo_.Bias + tzinfo_.DaylightBias) * kMsPerMinute;
560
561 // If the local time offset equals the timezone bias plus the daylight
562 // bias then DST is in effect.
563 in_dst = offset == dstofs;
564 }
565
566 return in_dst;
567}
568
569
ager@chromium.org32912102009-01-16 10:38:43 +0000570// Return the daylight savings time offset for this time.
christian.plesner.hansen43d26ec2008-07-03 15:10:15 +0000571int64_t Time::DaylightSavingsOffset() {
572 return InDST() ? 60 * kMsPerMinute : 0;
573}
574
575
576// Returns a string identifying the current timezone for the
577// timestamp taking into account daylight saving.
578char* Time::LocalTimezone() {
579 // Return the standard or DST time zone name based on whether daylight
580 // saving is in effect at the given time.
581 return InDST() ? dst_tz_name_ : std_tz_name_;
582}
583
584
585void OS::Setup() {
586 // Seed the random number generator.
ager@chromium.org9258b6b2008-09-11 09:11:10 +0000587 // Convert the current time to a 64-bit integer first, before converting it
588 // to an unsigned. Going directly can cause an overflow and the seed to be
589 // set to all ones. The seed will be identical for different instances that
590 // call this setup code within the same millisecond.
591 uint64_t seed = static_cast<uint64_t>(TimeCurrentMillis());
592 srand(static_cast<unsigned int>(seed));
christian.plesner.hansen43d26ec2008-07-03 15:10:15 +0000593}
594
595
596// Returns the accumulated user time for thread.
597int OS::GetUserTime(uint32_t* secs, uint32_t* usecs) {
598 FILETIME dummy;
599 uint64_t usertime;
600
601 // Get the amount of time that the thread has executed in user mode.
602 if (!GetThreadTimes(GetCurrentThread(), &dummy, &dummy, &dummy,
603 reinterpret_cast<FILETIME*>(&usertime))) return -1;
604
605 // Adjust the resolution to micro-seconds.
606 usertime /= 10;
607
608 // Convert to seconds and microseconds
609 *secs = static_cast<uint32_t>(usertime / 1000000);
610 *usecs = static_cast<uint32_t>(usertime % 1000000);
611 return 0;
612}
613
614
615// Returns current time as the number of milliseconds since
616// 00:00:00 UTC, January 1, 1970.
617double OS::TimeCurrentMillis() {
618 Time t;
619 t.SetToCurrentTime();
620 return t.ToJSTime();
621}
622
623// Returns the tickcounter based on timeGetTime.
624int64_t OS::Ticks() {
625 return timeGetTime() * 1000; // Convert to microseconds.
626}
627
628
629// Returns a string identifying the current timezone taking into
630// account daylight saving.
sgjesse@chromium.orgb9d7da12009-08-05 08:38:10 +0000631const char* OS::LocalTimezone(double time) {
christian.plesner.hansen43d26ec2008-07-03 15:10:15 +0000632 return Time(time).LocalTimezone();
633}
634
635
kasper.lund7276f142008-07-30 08:49:36 +0000636// Returns the local time offset in milliseconds east of UTC without
637// taking daylight savings time into account.
christian.plesner.hansen43d26ec2008-07-03 15:10:15 +0000638double OS::LocalTimeOffset() {
kasper.lund7276f142008-07-30 08:49:36 +0000639 // Use current time, rounded to the millisecond.
640 Time t(TimeCurrentMillis());
641 // Time::LocalOffset inlcudes any daylight savings offset, so subtract it.
642 return static_cast<double>(t.LocalOffset() - t.DaylightSavingsOffset());
christian.plesner.hansen43d26ec2008-07-03 15:10:15 +0000643}
644
645
646// Returns the daylight savings offset in milliseconds for the given
647// time.
648double OS::DaylightSavingsOffset(double time) {
649 int64_t offset = Time(time).DaylightSavingsOffset();
650 return static_cast<double>(offset);
651}
652
653
654// ----------------------------------------------------------------------------
655// Win32 console output.
656//
657// If a Win32 application is linked as a console application it has a normal
658// standard output and standard error. In this case normal printf works fine
659// for output. However, if the application is linked as a GUI application,
660// the process doesn't have a console, and therefore (debugging) output is lost.
661// This is the case if we are embedded in a windows program (like a browser).
662// In order to be able to get debug output in this case the the debugging
663// facility using OutputDebugString. This output goes to the active debugger
664// for the process (if any). Else the output can be monitored using DBMON.EXE.
665
666enum OutputMode {
667 UNKNOWN, // Output method has not yet been determined.
668 CONSOLE, // Output is written to stdout.
669 ODS // Output is written to debug facility.
670};
671
672static OutputMode output_mode = UNKNOWN; // Current output mode.
673
674
675// Determine if the process has a console for output.
676static bool HasConsole() {
677 // Only check the first time. Eventual race conditions are not a problem,
678 // because all threads will eventually determine the same mode.
679 if (output_mode == UNKNOWN) {
680 // We cannot just check that the standard output is attached to a console
681 // because this would fail if output is redirected to a file. Therefore we
682 // say that a process does not have an output console if either the
683 // standard output handle is invalid or its file type is unknown.
684 if (GetStdHandle(STD_OUTPUT_HANDLE) != INVALID_HANDLE_VALUE &&
685 GetFileType(GetStdHandle(STD_OUTPUT_HANDLE)) != FILE_TYPE_UNKNOWN)
686 output_mode = CONSOLE;
687 else
688 output_mode = ODS;
689 }
690 return output_mode == CONSOLE;
691}
692
693
694static void VPrintHelper(FILE* stream, const char* format, va_list args) {
695 if (HasConsole()) {
696 vfprintf(stream, format, args);
697 } else {
698 // It is important to use safe print here in order to avoid
699 // overflowing the buffer. We might truncate the output, but this
700 // does not crash.
kasperl@chromium.orgb9123622008-09-17 14:05:56 +0000701 EmbeddedVector<char, 4096> buffer;
702 OS::VSNPrintF(buffer, format, args);
703 OutputDebugStringA(buffer.start());
704 }
705}
706
707
708FILE* OS::FOpen(const char* path, const char* mode) {
709 FILE* result;
710 if (fopen_s(&result, path, mode) == 0) {
711 return result;
712 } else {
713 return NULL;
christian.plesner.hansen43d26ec2008-07-03 15:10:15 +0000714 }
715}
716
717
ager@chromium.org71daaf62009-04-01 07:22:49 +0000718// Open log file in binary mode to avoid /n -> /r/n conversion.
719const char* OS::LogFileOpenMode = "wb";
720
721
christian.plesner.hansen43d26ec2008-07-03 15:10:15 +0000722// Print (debug) message to console.
723void OS::Print(const char* format, ...) {
724 va_list args;
725 va_start(args, format);
726 VPrint(format, args);
727 va_end(args);
728}
729
730
731void OS::VPrint(const char* format, va_list args) {
732 VPrintHelper(stdout, format, args);
733}
734
735
736// Print error message to console.
737void OS::PrintError(const char* format, ...) {
738 va_list args;
739 va_start(args, format);
740 VPrintError(format, args);
741 va_end(args);
742}
743
744
745void OS::VPrintError(const char* format, va_list args) {
746 VPrintHelper(stderr, format, args);
747}
748
749
kasperl@chromium.orgb9123622008-09-17 14:05:56 +0000750int OS::SNPrintF(Vector<char> str, const char* format, ...) {
christian.plesner.hansen43d26ec2008-07-03 15:10:15 +0000751 va_list args;
752 va_start(args, format);
kasperl@chromium.orgb9123622008-09-17 14:05:56 +0000753 int result = VSNPrintF(str, format, args);
christian.plesner.hansen43d26ec2008-07-03 15:10:15 +0000754 va_end(args);
755 return result;
756}
757
758
kasperl@chromium.orgb9123622008-09-17 14:05:56 +0000759int OS::VSNPrintF(Vector<char> str, const char* format, va_list args) {
760 int n = _vsnprintf_s(str.start(), str.length(), _TRUNCATE, format, args);
christian.plesner.hansen43d26ec2008-07-03 15:10:15 +0000761 // Make sure to zero-terminate the string if the output was
762 // truncated or if there was an error.
kasperl@chromium.orgb9123622008-09-17 14:05:56 +0000763 if (n < 0 || n >= str.length()) {
764 str[str.length() - 1] = '\0';
kasper.lund7276f142008-07-30 08:49:36 +0000765 return -1;
766 } else {
767 return n;
768 }
christian.plesner.hansen43d26ec2008-07-03 15:10:15 +0000769}
770
771
ager@chromium.org381abbb2009-02-25 13:23:22 +0000772char* OS::StrChr(char* str, int c) {
773 return const_cast<char*>(strchr(str, c));
774}
775
776
kasperl@chromium.orgb9123622008-09-17 14:05:56 +0000777void OS::StrNCpy(Vector<char> dest, const char* src, size_t n) {
778 int result = strncpy_s(dest.start(), dest.length(), src, n);
779 USE(result);
780 ASSERT(result == 0);
781}
782
783
christian.plesner.hansen43d26ec2008-07-03 15:10:15 +0000784// We keep the lowest and highest addresses mapped as a quick way of
785// determining that pointers are outside the heap (used mostly in assertions
786// and verification). The estimate is conservative, ie, not all addresses in
787// 'allocated' space are actually allocated to our heap. The range is
788// [lowest, highest), inclusive on the low and and exclusive on the high end.
789static void* lowest_ever_allocated = reinterpret_cast<void*>(-1);
790static void* highest_ever_allocated = reinterpret_cast<void*>(0);
791
792
793static void UpdateAllocatedSpaceLimits(void* address, int size) {
794 lowest_ever_allocated = Min(lowest_ever_allocated, address);
795 highest_ever_allocated =
796 Max(highest_ever_allocated,
797 reinterpret_cast<void*>(reinterpret_cast<char*>(address) + size));
798}
799
800
801bool OS::IsOutsideAllocatedSpace(void* pointer) {
802 if (pointer < lowest_ever_allocated || pointer >= highest_ever_allocated)
803 return true;
804 // Ask the Windows API
805 if (IsBadWritePtr(pointer, 1))
806 return true;
807 return false;
808}
809
810
mads.s.ager@gmail.com769cc962008-08-06 10:02:49 +0000811// Get the system's page size used by VirtualAlloc() or the next power
812// of two. The reason for always returning a power of two is that the
813// rounding up in OS::Allocate expects that.
christian.plesner.hansen43d26ec2008-07-03 15:10:15 +0000814static size_t GetPageSize() {
815 static size_t page_size = 0;
816 if (page_size == 0) {
817 SYSTEM_INFO info;
818 GetSystemInfo(&info);
mads.s.ager@gmail.com769cc962008-08-06 10:02:49 +0000819 page_size = RoundUpToPowerOf2(info.dwPageSize);
christian.plesner.hansen43d26ec2008-07-03 15:10:15 +0000820 }
821 return page_size;
822}
823
824
mads.s.ager@gmail.com769cc962008-08-06 10:02:49 +0000825// The allocation alignment is the guaranteed alignment for
826// VirtualAlloc'ed blocks of memory.
christian.plesner.hansen43d26ec2008-07-03 15:10:15 +0000827size_t OS::AllocateAlignment() {
mads.s.ager@gmail.com769cc962008-08-06 10:02:49 +0000828 static size_t allocate_alignment = 0;
829 if (allocate_alignment == 0) {
830 SYSTEM_INFO info;
831 GetSystemInfo(&info);
832 allocate_alignment = info.dwAllocationGranularity;
833 }
834 return allocate_alignment;
christian.plesner.hansen43d26ec2008-07-03 15:10:15 +0000835}
836
837
kasper.lund7276f142008-07-30 08:49:36 +0000838void* OS::Allocate(const size_t requested,
839 size_t* allocated,
kasperl@chromium.orgf5aa8372009-03-24 14:47:14 +0000840 bool is_executable) {
christian.plesner.hansen43d26ec2008-07-03 15:10:15 +0000841 // VirtualAlloc rounds allocated size to page size automatically.
ager@chromium.orgc4c92722009-11-18 14:12:51 +0000842 size_t msize = RoundUp(requested, static_cast<int>(GetPageSize()));
christian.plesner.hansen43d26ec2008-07-03 15:10:15 +0000843
844 // Windows XP SP2 allows Data Excution Prevention (DEP).
kasperl@chromium.orgf5aa8372009-03-24 14:47:14 +0000845 int prot = is_executable ? PAGE_EXECUTE_READWRITE : PAGE_READWRITE;
mads.s.ager@gmail.com769cc962008-08-06 10:02:49 +0000846 LPVOID mbase = VirtualAlloc(NULL, msize, MEM_COMMIT | MEM_RESERVE, prot);
christian.plesner.hansen43d26ec2008-07-03 15:10:15 +0000847 if (mbase == NULL) {
848 LOG(StringEvent("OS::Allocate", "VirtualAlloc failed"));
849 return NULL;
850 }
851
852 ASSERT(IsAligned(reinterpret_cast<size_t>(mbase), OS::AllocateAlignment()));
853
854 *allocated = msize;
ager@chromium.orgc4c92722009-11-18 14:12:51 +0000855 UpdateAllocatedSpaceLimits(mbase, static_cast<int>(msize));
christian.plesner.hansen43d26ec2008-07-03 15:10:15 +0000856 return mbase;
857}
858
859
kasperl@chromium.orgf5aa8372009-03-24 14:47:14 +0000860void OS::Free(void* address, const size_t size) {
christian.plesner.hansen43d26ec2008-07-03 15:10:15 +0000861 // TODO(1240712): VirtualFree has a return value which is ignored here.
kasperl@chromium.orgf5aa8372009-03-24 14:47:14 +0000862 VirtualFree(address, 0, MEM_RELEASE);
863 USE(size);
christian.plesner.hansen43d26ec2008-07-03 15:10:15 +0000864}
865
866
kasperl@chromium.orgf5aa8372009-03-24 14:47:14 +0000867#ifdef ENABLE_HEAP_PROTECTION
868
869void OS::Protect(void* address, size_t size) {
870 // TODO(1240712): VirtualProtect has a return value which is ignored here.
871 DWORD old_protect;
872 VirtualProtect(address, size, PAGE_READONLY, &old_protect);
873}
874
875
876void OS::Unprotect(void* address, size_t size, bool is_executable) {
877 // TODO(1240712): VirtualProtect has a return value which is ignored here.
878 DWORD new_protect = is_executable ? PAGE_EXECUTE_READWRITE : PAGE_READWRITE;
879 DWORD old_protect;
880 VirtualProtect(address, size, new_protect, &old_protect);
881}
882
883#endif
884
885
christian.plesner.hansen43d26ec2008-07-03 15:10:15 +0000886void OS::Sleep(int milliseconds) {
887 ::Sleep(milliseconds);
888}
889
890
891void OS::Abort() {
ager@chromium.orga74f0da2008-12-03 16:05:52 +0000892 if (!IsDebuggerPresent()) {
iposva@chromium.org245aa852009-02-10 00:49:54 +0000893#ifdef _MSC_VER
ager@chromium.orga74f0da2008-12-03 16:05:52 +0000894 // Make the MSVCRT do a silent abort.
895 _set_abort_behavior(0, _WRITE_ABORT_MSG);
896 _set_abort_behavior(0, _CALL_REPORTFAULT);
iposva@chromium.org245aa852009-02-10 00:49:54 +0000897#endif // _MSC_VER
ager@chromium.orga74f0da2008-12-03 16:05:52 +0000898 abort();
899 } else {
900 DebugBreak();
901 }
christian.plesner.hansen43d26ec2008-07-03 15:10:15 +0000902}
903
904
kasper.lund7276f142008-07-30 08:49:36 +0000905void OS::DebugBreak() {
iposva@chromium.org245aa852009-02-10 00:49:54 +0000906#ifdef _MSC_VER
kasper.lund7276f142008-07-30 08:49:36 +0000907 __debugbreak();
iposva@chromium.org245aa852009-02-10 00:49:54 +0000908#else
909 ::DebugBreak();
910#endif
kasper.lund7276f142008-07-30 08:49:36 +0000911}
912
913
christian.plesner.hansen43d26ec2008-07-03 15:10:15 +0000914class Win32MemoryMappedFile : public OS::MemoryMappedFile {
915 public:
916 Win32MemoryMappedFile(HANDLE file, HANDLE file_mapping, void* memory)
917 : file_(file), file_mapping_(file_mapping), memory_(memory) { }
918 virtual ~Win32MemoryMappedFile();
919 virtual void* memory() { return memory_; }
920 private:
921 HANDLE file_;
922 HANDLE file_mapping_;
923 void* memory_;
924};
925
926
927OS::MemoryMappedFile* OS::MemoryMappedFile::create(const char* name, int size,
928 void* initial) {
929 // Open a physical file
930 HANDLE file = CreateFileA(name, GENERIC_READ | GENERIC_WRITE,
931 FILE_SHARE_READ | FILE_SHARE_WRITE, NULL, OPEN_ALWAYS, 0, NULL);
932 if (file == NULL) return NULL;
933 // Create a file mapping for the physical file
934 HANDLE file_mapping = CreateFileMapping(file, NULL,
935 PAGE_READWRITE, 0, static_cast<DWORD>(size), NULL);
936 if (file_mapping == NULL) return NULL;
937 // Map a view of the file into memory
938 void* memory = MapViewOfFile(file_mapping, FILE_MAP_ALL_ACCESS, 0, 0, size);
939 if (memory) memmove(memory, initial, size);
940 return new Win32MemoryMappedFile(file, file_mapping, memory);
941}
942
943
944Win32MemoryMappedFile::~Win32MemoryMappedFile() {
945 if (memory_ != NULL)
946 UnmapViewOfFile(memory_);
947 CloseHandle(file_mapping_);
948 CloseHandle(file_);
949}
950
951
952// The following code loads functions defined in DbhHelp.h and TlHelp32.h
ager@chromium.org32912102009-01-16 10:38:43 +0000953// dynamically. This is to avoid being depending on dbghelp.dll and
christian.plesner.hansen43d26ec2008-07-03 15:10:15 +0000954// tlhelp32.dll when running (the functions in tlhelp32.dll have been moved to
955// kernel32.dll at some point so loading functions defines in TlHelp32.h
956// dynamically might not be necessary any more - for some versions of Windows?).
957
958// Function pointers to functions dynamically loaded from dbghelp.dll.
959#define DBGHELP_FUNCTION_LIST(V) \
960 V(SymInitialize) \
961 V(SymGetOptions) \
962 V(SymSetOptions) \
963 V(SymGetSearchPath) \
964 V(SymLoadModule64) \
965 V(StackWalk64) \
966 V(SymGetSymFromAddr64) \
967 V(SymGetLineFromAddr64) \
968 V(SymFunctionTableAccess64) \
969 V(SymGetModuleBase64)
970
971// Function pointers to functions dynamically loaded from dbghelp.dll.
972#define TLHELP32_FUNCTION_LIST(V) \
973 V(CreateToolhelp32Snapshot) \
974 V(Module32FirstW) \
975 V(Module32NextW)
976
977// Define the decoration to use for the type and variable name used for
978// dynamically loaded DLL function..
979#define DLL_FUNC_TYPE(name) _##name##_
980#define DLL_FUNC_VAR(name) _##name
981
982// Define the type for each dynamically loaded DLL function. The function
983// definitions are copied from DbgHelp.h and TlHelp32.h. The IN and VOID macros
984// from the Windows include files are redefined here to have the function
985// definitions to be as close to the ones in the original .h files as possible.
986#ifndef IN
987#define IN
988#endif
989#ifndef VOID
990#define VOID void
991#endif
992
iposva@chromium.org245aa852009-02-10 00:49:54 +0000993// DbgHelp isn't supported on MinGW yet
994#ifndef __MINGW32__
christian.plesner.hansen43d26ec2008-07-03 15:10:15 +0000995// DbgHelp.h functions.
996typedef BOOL (__stdcall *DLL_FUNC_TYPE(SymInitialize))(IN HANDLE hProcess,
997 IN PSTR UserSearchPath,
998 IN BOOL fInvadeProcess);
999typedef DWORD (__stdcall *DLL_FUNC_TYPE(SymGetOptions))(VOID);
1000typedef DWORD (__stdcall *DLL_FUNC_TYPE(SymSetOptions))(IN DWORD SymOptions);
1001typedef BOOL (__stdcall *DLL_FUNC_TYPE(SymGetSearchPath))(
1002 IN HANDLE hProcess,
1003 OUT PSTR SearchPath,
1004 IN DWORD SearchPathLength);
1005typedef DWORD64 (__stdcall *DLL_FUNC_TYPE(SymLoadModule64))(
1006 IN HANDLE hProcess,
1007 IN HANDLE hFile,
1008 IN PSTR ImageName,
1009 IN PSTR ModuleName,
1010 IN DWORD64 BaseOfDll,
1011 IN DWORD SizeOfDll);
1012typedef BOOL (__stdcall *DLL_FUNC_TYPE(StackWalk64))(
1013 DWORD MachineType,
1014 HANDLE hProcess,
1015 HANDLE hThread,
1016 LPSTACKFRAME64 StackFrame,
1017 PVOID ContextRecord,
1018 PREAD_PROCESS_MEMORY_ROUTINE64 ReadMemoryRoutine,
1019 PFUNCTION_TABLE_ACCESS_ROUTINE64 FunctionTableAccessRoutine,
1020 PGET_MODULE_BASE_ROUTINE64 GetModuleBaseRoutine,
1021 PTRANSLATE_ADDRESS_ROUTINE64 TranslateAddress);
1022typedef BOOL (__stdcall *DLL_FUNC_TYPE(SymGetSymFromAddr64))(
1023 IN HANDLE hProcess,
1024 IN DWORD64 qwAddr,
1025 OUT PDWORD64 pdwDisplacement,
1026 OUT PIMAGEHLP_SYMBOL64 Symbol);
1027typedef BOOL (__stdcall *DLL_FUNC_TYPE(SymGetLineFromAddr64))(
1028 IN HANDLE hProcess,
1029 IN DWORD64 qwAddr,
1030 OUT PDWORD pdwDisplacement,
1031 OUT PIMAGEHLP_LINE64 Line64);
1032// DbgHelp.h typedefs. Implementation found in dbghelp.dll.
1033typedef PVOID (__stdcall *DLL_FUNC_TYPE(SymFunctionTableAccess64))(
1034 HANDLE hProcess,
1035 DWORD64 AddrBase); // DbgHelp.h typedef PFUNCTION_TABLE_ACCESS_ROUTINE64
1036typedef DWORD64 (__stdcall *DLL_FUNC_TYPE(SymGetModuleBase64))(
1037 HANDLE hProcess,
1038 DWORD64 AddrBase); // DbgHelp.h typedef PGET_MODULE_BASE_ROUTINE64
1039
1040// TlHelp32.h functions.
1041typedef HANDLE (__stdcall *DLL_FUNC_TYPE(CreateToolhelp32Snapshot))(
1042 DWORD dwFlags,
1043 DWORD th32ProcessID);
1044typedef BOOL (__stdcall *DLL_FUNC_TYPE(Module32FirstW))(HANDLE hSnapshot,
1045 LPMODULEENTRY32W lpme);
1046typedef BOOL (__stdcall *DLL_FUNC_TYPE(Module32NextW))(HANDLE hSnapshot,
1047 LPMODULEENTRY32W lpme);
1048
1049#undef IN
1050#undef VOID
1051
1052// Declare a variable for each dynamically loaded DLL function.
1053#define DEF_DLL_FUNCTION(name) DLL_FUNC_TYPE(name) DLL_FUNC_VAR(name) = NULL;
1054DBGHELP_FUNCTION_LIST(DEF_DLL_FUNCTION)
1055TLHELP32_FUNCTION_LIST(DEF_DLL_FUNCTION)
1056#undef DEF_DLL_FUNCTION
1057
1058// Load the functions. This function has a lot of "ugly" macros in order to
1059// keep down code duplication.
1060
1061static bool LoadDbgHelpAndTlHelp32() {
1062 static bool dbghelp_loaded = false;
1063
1064 if (dbghelp_loaded) return true;
1065
1066 HMODULE module;
1067
1068 // Load functions from the dbghelp.dll module.
1069 module = LoadLibrary(TEXT("dbghelp.dll"));
1070 if (module == NULL) {
1071 return false;
1072 }
1073
1074#define LOAD_DLL_FUNC(name) \
1075 DLL_FUNC_VAR(name) = \
1076 reinterpret_cast<DLL_FUNC_TYPE(name)>(GetProcAddress(module, #name));
1077
1078DBGHELP_FUNCTION_LIST(LOAD_DLL_FUNC)
1079
1080#undef LOAD_DLL_FUNC
1081
1082 // Load functions from the kernel32.dll module (the TlHelp32.h function used
1083 // to be in tlhelp32.dll but are now moved to kernel32.dll).
1084 module = LoadLibrary(TEXT("kernel32.dll"));
1085 if (module == NULL) {
1086 return false;
1087 }
1088
1089#define LOAD_DLL_FUNC(name) \
1090 DLL_FUNC_VAR(name) = \
1091 reinterpret_cast<DLL_FUNC_TYPE(name)>(GetProcAddress(module, #name));
1092
1093TLHELP32_FUNCTION_LIST(LOAD_DLL_FUNC)
1094
1095#undef LOAD_DLL_FUNC
1096
1097 // Check that all functions where loaded.
1098 bool result =
1099#define DLL_FUNC_LOADED(name) (DLL_FUNC_VAR(name) != NULL) &&
1100
1101DBGHELP_FUNCTION_LIST(DLL_FUNC_LOADED)
1102TLHELP32_FUNCTION_LIST(DLL_FUNC_LOADED)
1103
1104#undef DLL_FUNC_LOADED
1105 true;
1106
1107 dbghelp_loaded = result;
1108 return result;
ager@chromium.org32912102009-01-16 10:38:43 +00001109 // NOTE: The modules are never unloaded and will stay around until the
christian.plesner.hansen43d26ec2008-07-03 15:10:15 +00001110 // application is closed.
1111}
1112
1113
1114// Load the symbols for generating stack traces.
1115static bool LoadSymbols(HANDLE process_handle) {
1116 static bool symbols_loaded = false;
1117
1118 if (symbols_loaded) return true;
1119
1120 BOOL ok;
1121
1122 // Initialize the symbol engine.
1123 ok = _SymInitialize(process_handle, // hProcess
1124 NULL, // UserSearchPath
1125 FALSE); // fInvadeProcess
1126 if (!ok) return false;
1127
1128 DWORD options = _SymGetOptions();
1129 options |= SYMOPT_LOAD_LINES;
1130 options |= SYMOPT_FAIL_CRITICAL_ERRORS;
1131 options = _SymSetOptions(options);
1132
1133 char buf[OS::kStackWalkMaxNameLen] = {0};
1134 ok = _SymGetSearchPath(process_handle, buf, OS::kStackWalkMaxNameLen);
1135 if (!ok) {
1136 int err = GetLastError();
1137 PrintF("%d\n", err);
1138 return false;
1139 }
1140
1141 HANDLE snapshot = _CreateToolhelp32Snapshot(
1142 TH32CS_SNAPMODULE, // dwFlags
1143 GetCurrentProcessId()); // th32ProcessId
1144 if (snapshot == INVALID_HANDLE_VALUE) return false;
1145 MODULEENTRY32W module_entry;
1146 module_entry.dwSize = sizeof(module_entry); // Set the size of the structure.
1147 BOOL cont = _Module32FirstW(snapshot, &module_entry);
1148 while (cont) {
1149 DWORD64 base;
1150 // NOTE the SymLoadModule64 function has the peculiarity of accepting a
1151 // both unicode and ASCII strings even though the parameter is PSTR.
1152 base = _SymLoadModule64(
1153 process_handle, // hProcess
1154 0, // hFile
1155 reinterpret_cast<PSTR>(module_entry.szExePath), // ImageName
1156 reinterpret_cast<PSTR>(module_entry.szModule), // ModuleName
1157 reinterpret_cast<DWORD64>(module_entry.modBaseAddr), // BaseOfDll
1158 module_entry.modBaseSize); // SizeOfDll
1159 if (base == 0) {
1160 int err = GetLastError();
1161 if (err != ERROR_MOD_NOT_FOUND &&
1162 err != ERROR_INVALID_HANDLE) return false;
1163 }
1164 LOG(SharedLibraryEvent(
1165 module_entry.szExePath,
1166 reinterpret_cast<unsigned int>(module_entry.modBaseAddr),
1167 reinterpret_cast<unsigned int>(module_entry.modBaseAddr +
1168 module_entry.modBaseSize)));
1169 cont = _Module32NextW(snapshot, &module_entry);
1170 }
1171 CloseHandle(snapshot);
1172
1173 symbols_loaded = true;
1174 return true;
1175}
1176
1177
1178void OS::LogSharedLibraryAddresses() {
1179 // SharedLibraryEvents are logged when loading symbol information.
1180 // Only the shared libraries loaded at the time of the call to
1181 // LogSharedLibraryAddresses are logged. DLLs loaded after
1182 // initialization are not accounted for.
1183 if (!LoadDbgHelpAndTlHelp32()) return;
1184 HANDLE process_handle = GetCurrentProcess();
1185 LoadSymbols(process_handle);
1186}
1187
1188
1189// Walk the stack using the facilities in dbghelp.dll and tlhelp32.dll
1190
1191// Switch off warning 4748 (/GS can not protect parameters and local variables
1192// from local buffer overrun because optimizations are disabled in function) as
1193// it is triggered by the use of inline assembler.
1194#pragma warning(push)
1195#pragma warning(disable : 4748)
ager@chromium.org65dad4b2009-04-23 08:48:43 +00001196int OS::StackWalk(Vector<OS::StackFrame> frames) {
christian.plesner.hansen43d26ec2008-07-03 15:10:15 +00001197 BOOL ok;
1198
1199 // Load the required functions from DLL's.
1200 if (!LoadDbgHelpAndTlHelp32()) return kStackWalkError;
1201
1202 // Get the process and thread handles.
1203 HANDLE process_handle = GetCurrentProcess();
1204 HANDLE thread_handle = GetCurrentThread();
1205
1206 // Read the symbols.
1207 if (!LoadSymbols(process_handle)) return kStackWalkError;
1208
1209 // Capture current context.
1210 CONTEXT context;
ager@chromium.org3811b432009-10-28 14:53:37 +00001211 RtlCaptureContext(&context);
christian.plesner.hansen43d26ec2008-07-03 15:10:15 +00001212
1213 // Initialize the stack walking
1214 STACKFRAME64 stack_frame;
1215 memset(&stack_frame, 0, sizeof(stack_frame));
ager@chromium.orgab99eea2009-08-25 07:05:41 +00001216#ifdef _WIN64
1217 stack_frame.AddrPC.Offset = context.Rip;
1218 stack_frame.AddrFrame.Offset = context.Rbp;
1219 stack_frame.AddrStack.Offset = context.Rsp;
1220#else
christian.plesner.hansen43d26ec2008-07-03 15:10:15 +00001221 stack_frame.AddrPC.Offset = context.Eip;
christian.plesner.hansen43d26ec2008-07-03 15:10:15 +00001222 stack_frame.AddrFrame.Offset = context.Ebp;
christian.plesner.hansen43d26ec2008-07-03 15:10:15 +00001223 stack_frame.AddrStack.Offset = context.Esp;
ager@chromium.orgab99eea2009-08-25 07:05:41 +00001224#endif
1225 stack_frame.AddrPC.Mode = AddrModeFlat;
1226 stack_frame.AddrFrame.Mode = AddrModeFlat;
christian.plesner.hansen43d26ec2008-07-03 15:10:15 +00001227 stack_frame.AddrStack.Mode = AddrModeFlat;
1228 int frames_count = 0;
1229
1230 // Collect stack frames.
ager@chromium.org65dad4b2009-04-23 08:48:43 +00001231 int frames_size = frames.length();
christian.plesner.hansen43d26ec2008-07-03 15:10:15 +00001232 while (frames_count < frames_size) {
1233 ok = _StackWalk64(
1234 IMAGE_FILE_MACHINE_I386, // MachineType
1235 process_handle, // hProcess
1236 thread_handle, // hThread
1237 &stack_frame, // StackFrame
1238 &context, // ContextRecord
1239 NULL, // ReadMemoryRoutine
1240 _SymFunctionTableAccess64, // FunctionTableAccessRoutine
1241 _SymGetModuleBase64, // GetModuleBaseRoutine
1242 NULL); // TranslateAddress
1243 if (!ok) break;
1244
1245 // Store the address.
1246 ASSERT((stack_frame.AddrPC.Offset >> 32) == 0); // 32-bit address.
1247 frames[frames_count].address =
1248 reinterpret_cast<void*>(stack_frame.AddrPC.Offset);
1249
1250 // Try to locate a symbol for this frame.
1251 DWORD64 symbol_displacement;
sgjesse@chromium.org720dc0b2010-05-10 09:25:39 +00001252 SmartPointer<IMAGEHLP_SYMBOL64> symbol(
1253 NewArray<IMAGEHLP_SYMBOL64>(kStackWalkMaxNameLen));
1254 if (symbol.is_empty()) return kStackWalkError; // Out of memory.
1255 memset(*symbol, 0, sizeof(IMAGEHLP_SYMBOL64) + kStackWalkMaxNameLen);
1256 (*symbol)->SizeOfStruct = sizeof(IMAGEHLP_SYMBOL64);
1257 (*symbol)->MaxNameLength = kStackWalkMaxNameLen;
christian.plesner.hansen43d26ec2008-07-03 15:10:15 +00001258 ok = _SymGetSymFromAddr64(process_handle, // hProcess
1259 stack_frame.AddrPC.Offset, // Address
1260 &symbol_displacement, // Displacement
sgjesse@chromium.org720dc0b2010-05-10 09:25:39 +00001261 *symbol); // Symbol
christian.plesner.hansen43d26ec2008-07-03 15:10:15 +00001262 if (ok) {
1263 // Try to locate more source information for the symbol.
1264 IMAGEHLP_LINE64 Line;
1265 memset(&Line, 0, sizeof(Line));
1266 Line.SizeOfStruct = sizeof(Line);
1267 DWORD line_displacement;
1268 ok = _SymGetLineFromAddr64(
1269 process_handle, // hProcess
1270 stack_frame.AddrPC.Offset, // dwAddr
1271 &line_displacement, // pdwDisplacement
1272 &Line); // Line
1273 // Format a text representation of the frame based on the information
1274 // available.
1275 if (ok) {
kasperl@chromium.orgb9123622008-09-17 14:05:56 +00001276 SNPrintF(MutableCStrVector(frames[frames_count].text,
1277 kStackWalkMaxTextLen),
1278 "%s %s:%d:%d",
sgjesse@chromium.org720dc0b2010-05-10 09:25:39 +00001279 (*symbol)->Name, Line.FileName, Line.LineNumber,
christian.plesner.hansen43d26ec2008-07-03 15:10:15 +00001280 line_displacement);
1281 } else {
kasperl@chromium.orgb9123622008-09-17 14:05:56 +00001282 SNPrintF(MutableCStrVector(frames[frames_count].text,
1283 kStackWalkMaxTextLen),
1284 "%s",
sgjesse@chromium.org720dc0b2010-05-10 09:25:39 +00001285 (*symbol)->Name);
christian.plesner.hansen43d26ec2008-07-03 15:10:15 +00001286 }
1287 // Make sure line termination is in place.
1288 frames[frames_count].text[kStackWalkMaxTextLen - 1] = '\0';
1289 } else {
1290 // No text representation of this frame
1291 frames[frames_count].text[0] = '\0';
1292
1293 // Continue if we are just missing a module (for non C/C++ frames a
1294 // module will never be found).
1295 int err = GetLastError();
1296 if (err != ERROR_MOD_NOT_FOUND) {
christian.plesner.hansen43d26ec2008-07-03 15:10:15 +00001297 break;
1298 }
1299 }
christian.plesner.hansen43d26ec2008-07-03 15:10:15 +00001300
1301 frames_count++;
1302 }
1303
1304 // Return the number of frames filled in.
1305 return frames_count;
1306}
1307
1308// Restore warnings to previous settings.
1309#pragma warning(pop)
1310
iposva@chromium.org245aa852009-02-10 00:49:54 +00001311#else // __MINGW32__
1312void OS::LogSharedLibraryAddresses() { }
ager@chromium.org65dad4b2009-04-23 08:48:43 +00001313int OS::StackWalk(Vector<OS::StackFrame> frames) { return 0; }
iposva@chromium.org245aa852009-02-10 00:49:54 +00001314#endif // __MINGW32__
1315
christian.plesner.hansen43d26ec2008-07-03 15:10:15 +00001316
ager@chromium.orgc4c92722009-11-18 14:12:51 +00001317uint64_t OS::CpuFeaturesImpliedByPlatform() {
1318 return 0; // Windows runs on anything.
1319}
1320
1321
christian.plesner.hansen43d26ec2008-07-03 15:10:15 +00001322double OS::nan_value() {
iposva@chromium.org245aa852009-02-10 00:49:54 +00001323#ifdef _MSC_VER
ager@chromium.org3811b432009-10-28 14:53:37 +00001324 // Positive Quiet NaN with no payload (aka. Indeterminate) has all bits
1325 // in mask set, so value equals mask.
1326 static const __int64 nanval = kQuietNaNMask;
christian.plesner.hansen43d26ec2008-07-03 15:10:15 +00001327 return *reinterpret_cast<const double*>(&nanval);
iposva@chromium.org245aa852009-02-10 00:49:54 +00001328#else // _MSC_VER
1329 return NAN;
1330#endif // _MSC_VER
christian.plesner.hansen43d26ec2008-07-03 15:10:15 +00001331}
1332
ager@chromium.org236ad962008-09-25 09:45:57 +00001333
1334int OS::ActivationFrameAlignment() {
ager@chromium.org18ad94b2009-09-02 08:22:29 +00001335#ifdef _WIN64
1336 return 16; // Windows 64-bit ABI requires the stack to be 16-byte aligned.
1337#else
1338 return 8; // Floating-point math runs faster with 8-byte alignment.
1339#endif
ager@chromium.org236ad962008-09-25 09:45:57 +00001340}
1341
1342
kmillikin@chromium.org9155e252010-05-26 13:27:57 +00001343void OS::ReleaseStore(volatile AtomicWord* ptr, AtomicWord value) {
1344 MemoryBarrier();
1345 *ptr = value;
1346}
1347
1348
christian.plesner.hansen43d26ec2008-07-03 15:10:15 +00001349bool VirtualMemory::IsReserved() {
1350 return address_ != NULL;
1351}
1352
1353
ager@chromium.org9258b6b2008-09-11 09:11:10 +00001354VirtualMemory::VirtualMemory(size_t size) {
1355 address_ = VirtualAlloc(NULL, size, MEM_RESERVE, PAGE_NOACCESS);
christian.plesner.hansen43d26ec2008-07-03 15:10:15 +00001356 size_ = size;
1357}
1358
1359
1360VirtualMemory::~VirtualMemory() {
1361 if (IsReserved()) {
1362 if (0 == VirtualFree(address(), 0, MEM_RELEASE)) address_ = NULL;
1363 }
1364}
1365
1366
kasperl@chromium.orgf5aa8372009-03-24 14:47:14 +00001367bool VirtualMemory::Commit(void* address, size_t size, bool is_executable) {
1368 int prot = is_executable ? PAGE_EXECUTE_READWRITE : PAGE_READWRITE;
kasper.lund7276f142008-07-30 08:49:36 +00001369 if (NULL == VirtualAlloc(address, size, MEM_COMMIT, prot)) {
christian.plesner.hansen43d26ec2008-07-03 15:10:15 +00001370 return false;
1371 }
1372
ager@chromium.orgc4c92722009-11-18 14:12:51 +00001373 UpdateAllocatedSpaceLimits(address, static_cast<int>(size));
christian.plesner.hansen43d26ec2008-07-03 15:10:15 +00001374 return true;
1375}
1376
1377
1378bool VirtualMemory::Uncommit(void* address, size_t size) {
1379 ASSERT(IsReserved());
iposva@chromium.org245aa852009-02-10 00:49:54 +00001380 return VirtualFree(address, size, MEM_DECOMMIT) != FALSE;
christian.plesner.hansen43d26ec2008-07-03 15:10:15 +00001381}
1382
1383
1384// ----------------------------------------------------------------------------
1385// Win32 thread support.
1386
1387// Definition of invalid thread handle and id.
1388static const HANDLE kNoThread = INVALID_HANDLE_VALUE;
1389static const DWORD kNoThreadId = 0;
1390
1391
1392class ThreadHandle::PlatformData : public Malloced {
1393 public:
1394 explicit PlatformData(ThreadHandle::Kind kind) {
1395 Initialize(kind);
1396 }
1397
1398 void Initialize(ThreadHandle::Kind kind) {
1399 switch (kind) {
1400 case ThreadHandle::SELF: tid_ = GetCurrentThreadId(); break;
1401 case ThreadHandle::INVALID: tid_ = kNoThreadId; break;
1402 }
1403 }
1404 DWORD tid_; // Win32 thread identifier.
1405};
1406
1407
1408// Entry point for threads. The supplied argument is a pointer to the thread
1409// object. The entry function dispatches to the run method in the thread
1410// object. It is important that this function has __stdcall calling
1411// convention.
1412static unsigned int __stdcall ThreadEntry(void* arg) {
1413 Thread* thread = reinterpret_cast<Thread*>(arg);
1414 // This is also initialized by the last parameter to _beginthreadex() but we
1415 // don't know which thread will run first (the original thread or the new
1416 // one) so we initialize it here too.
1417 thread->thread_handle_data()->tid_ = GetCurrentThreadId();
1418 thread->Run();
1419 return 0;
1420}
1421
1422
1423// Initialize thread handle to invalid handle.
1424ThreadHandle::ThreadHandle(ThreadHandle::Kind kind) {
1425 data_ = new PlatformData(kind);
1426}
1427
1428
1429ThreadHandle::~ThreadHandle() {
1430 delete data_;
1431}
1432
1433
1434// The thread is running if it has the same id as the current thread.
1435bool ThreadHandle::IsSelf() const {
1436 return GetCurrentThreadId() == data_->tid_;
1437}
1438
1439
1440// Test for invalid thread handle.
1441bool ThreadHandle::IsValid() const {
1442 return data_->tid_ != kNoThreadId;
1443}
1444
1445
1446void ThreadHandle::Initialize(ThreadHandle::Kind kind) {
1447 data_->Initialize(kind);
1448}
1449
1450
1451class Thread::PlatformData : public Malloced {
1452 public:
1453 explicit PlatformData(HANDLE thread) : thread_(thread) {}
1454 HANDLE thread_;
1455};
1456
1457
1458// Initialize a Win32 thread object. The thread has an invalid thread
1459// handle until it is started.
1460
1461Thread::Thread() : ThreadHandle(ThreadHandle::INVALID) {
1462 data_ = new PlatformData(kNoThread);
1463}
1464
1465
1466// Close our own handle for the thread.
1467Thread::~Thread() {
1468 if (data_->thread_ != kNoThread) CloseHandle(data_->thread_);
1469 delete data_;
1470}
1471
1472
1473// Create a new thread. It is important to use _beginthreadex() instead of
1474// the Win32 function CreateThread(), because the CreateThread() does not
1475// initialize thread specific structures in the C runtime library.
1476void Thread::Start() {
1477 data_->thread_ = reinterpret_cast<HANDLE>(
1478 _beginthreadex(NULL,
1479 0,
1480 ThreadEntry,
1481 this,
1482 0,
1483 reinterpret_cast<unsigned int*>(
1484 &thread_handle_data()->tid_)));
1485 ASSERT(IsValid());
1486}
1487
1488
1489// Wait for thread to terminate.
1490void Thread::Join() {
1491 WaitForSingleObject(data_->thread_, INFINITE);
1492}
1493
1494
1495Thread::LocalStorageKey Thread::CreateThreadLocalKey() {
1496 DWORD result = TlsAlloc();
1497 ASSERT(result != TLS_OUT_OF_INDEXES);
1498 return static_cast<LocalStorageKey>(result);
1499}
1500
1501
1502void Thread::DeleteThreadLocalKey(LocalStorageKey key) {
1503 BOOL result = TlsFree(static_cast<DWORD>(key));
1504 USE(result);
1505 ASSERT(result);
1506}
1507
1508
1509void* Thread::GetThreadLocal(LocalStorageKey key) {
1510 return TlsGetValue(static_cast<DWORD>(key));
1511}
1512
1513
1514void Thread::SetThreadLocal(LocalStorageKey key, void* value) {
1515 BOOL result = TlsSetValue(static_cast<DWORD>(key), value);
1516 USE(result);
1517 ASSERT(result);
1518}
1519
1520
1521
1522void Thread::YieldCPU() {
1523 Sleep(0);
1524}
1525
1526
1527// ----------------------------------------------------------------------------
1528// Win32 mutex support.
1529//
1530// On Win32 mutexes are implemented using CRITICAL_SECTION objects. These are
1531// faster than Win32 Mutex objects because they are implemented using user mode
1532// atomic instructions. Therefore we only do ring transitions if there is lock
1533// contention.
1534
1535class Win32Mutex : public Mutex {
1536 public:
1537
1538 Win32Mutex() { InitializeCriticalSection(&cs_); }
1539
1540 ~Win32Mutex() { DeleteCriticalSection(&cs_); }
1541
1542 int Lock() {
1543 EnterCriticalSection(&cs_);
1544 return 0;
1545 }
1546
1547 int Unlock() {
1548 LeaveCriticalSection(&cs_);
1549 return 0;
1550 }
1551
1552 private:
1553 CRITICAL_SECTION cs_; // Critical section used for mutex
1554};
1555
1556
1557Mutex* OS::CreateMutex() {
1558 return new Win32Mutex();
1559}
1560
1561
1562// ----------------------------------------------------------------------------
christian.plesner.hansen43d26ec2008-07-03 15:10:15 +00001563// Win32 semaphore support.
1564//
1565// On Win32 semaphores are implemented using Win32 Semaphore objects. The
1566// semaphores are anonymous. Also, the semaphores are initialized to have
1567// no upper limit on count.
1568
1569
1570class Win32Semaphore : public Semaphore {
1571 public:
1572 explicit Win32Semaphore(int count) {
1573 sem = ::CreateSemaphoreA(NULL, count, 0x7fffffff, NULL);
1574 }
1575
1576 ~Win32Semaphore() {
1577 CloseHandle(sem);
1578 }
1579
1580 void Wait() {
1581 WaitForSingleObject(sem, INFINITE);
1582 }
1583
ager@chromium.orgbb29dc92009-03-24 13:25:23 +00001584 bool Wait(int timeout) {
1585 // Timeout in Windows API is in milliseconds.
1586 DWORD millis_timeout = timeout / 1000;
1587 return WaitForSingleObject(sem, millis_timeout) != WAIT_TIMEOUT;
1588 }
1589
christian.plesner.hansen43d26ec2008-07-03 15:10:15 +00001590 void Signal() {
1591 LONG dummy;
1592 ReleaseSemaphore(sem, 1, &dummy);
1593 }
1594
1595 private:
1596 HANDLE sem;
christian.plesner.hansen43d26ec2008-07-03 15:10:15 +00001597};
1598
1599
1600Semaphore* OS::CreateSemaphore(int count) {
1601 return new Win32Semaphore(count);
1602}
1603
ager@chromium.org381abbb2009-02-25 13:23:22 +00001604
1605// ----------------------------------------------------------------------------
1606// Win32 socket support.
1607//
1608
1609class Win32Socket : public Socket {
1610 public:
1611 explicit Win32Socket() {
1612 // Create the socket.
1613 socket_ = socket(AF_INET, SOCK_STREAM, IPPROTO_TCP);
1614 }
1615 explicit Win32Socket(SOCKET socket): socket_(socket) { }
ager@chromium.orgbb29dc92009-03-24 13:25:23 +00001616 virtual ~Win32Socket() { Shutdown(); }
ager@chromium.org381abbb2009-02-25 13:23:22 +00001617
1618 // Server initialization.
1619 bool Bind(const int port);
1620 bool Listen(int backlog) const;
1621 Socket* Accept() const;
1622
1623 // Client initialization.
1624 bool Connect(const char* host, const char* port);
1625
ager@chromium.orgbb29dc92009-03-24 13:25:23 +00001626 // Shutdown socket for both read and write.
1627 bool Shutdown();
1628
ager@chromium.org381abbb2009-02-25 13:23:22 +00001629 // Data Transimission
1630 int Send(const char* data, int len) const;
ager@chromium.org381abbb2009-02-25 13:23:22 +00001631 int Receive(char* data, int len) const;
1632
ager@chromium.orgbb29dc92009-03-24 13:25:23 +00001633 bool SetReuseAddress(bool reuse_address);
1634
ager@chromium.org381abbb2009-02-25 13:23:22 +00001635 bool IsValid() const { return socket_ != INVALID_SOCKET; }
1636
1637 private:
1638 SOCKET socket_;
1639};
1640
1641
1642bool Win32Socket::Bind(const int port) {
1643 if (!IsValid()) {
1644 return false;
1645 }
1646
1647 sockaddr_in addr;
1648 memset(&addr, 0, sizeof(addr));
1649 addr.sin_family = AF_INET;
1650 addr.sin_addr.s_addr = htonl(INADDR_LOOPBACK);
1651 addr.sin_port = htons(port);
1652 int status = bind(socket_,
1653 reinterpret_cast<struct sockaddr *>(&addr),
1654 sizeof(addr));
1655 return status == 0;
1656}
1657
1658
1659bool Win32Socket::Listen(int backlog) const {
1660 if (!IsValid()) {
1661 return false;
1662 }
1663
1664 int status = listen(socket_, backlog);
1665 return status == 0;
1666}
1667
1668
1669Socket* Win32Socket::Accept() const {
1670 if (!IsValid()) {
1671 return NULL;
1672 }
1673
1674 SOCKET socket = accept(socket_, NULL, NULL);
1675 if (socket == INVALID_SOCKET) {
1676 return NULL;
1677 } else {
1678 return new Win32Socket(socket);
1679 }
1680}
1681
1682
1683bool Win32Socket::Connect(const char* host, const char* port) {
1684 if (!IsValid()) {
1685 return false;
1686 }
1687
1688 // Lookup host and port.
1689 struct addrinfo *result = NULL;
1690 struct addrinfo hints;
1691 memset(&hints, 0, sizeof(addrinfo));
1692 hints.ai_family = AF_INET;
1693 hints.ai_socktype = SOCK_STREAM;
1694 hints.ai_protocol = IPPROTO_TCP;
1695 int status = getaddrinfo(host, port, &hints, &result);
1696 if (status != 0) {
1697 return false;
1698 }
1699
1700 // Connect.
ager@chromium.orgc4c92722009-11-18 14:12:51 +00001701 status = connect(socket_,
1702 result->ai_addr,
1703 static_cast<int>(result->ai_addrlen));
ager@chromium.orgbb29dc92009-03-24 13:25:23 +00001704 freeaddrinfo(result);
ager@chromium.org381abbb2009-02-25 13:23:22 +00001705 return status == 0;
1706}
1707
1708
ager@chromium.orgbb29dc92009-03-24 13:25:23 +00001709bool Win32Socket::Shutdown() {
1710 if (IsValid()) {
1711 // Shutdown socket for both read and write.
1712 int status = shutdown(socket_, SD_BOTH);
1713 closesocket(socket_);
1714 socket_ = INVALID_SOCKET;
1715 return status == SOCKET_ERROR;
1716 }
1717 return true;
1718}
1719
1720
ager@chromium.org381abbb2009-02-25 13:23:22 +00001721int Win32Socket::Send(const char* data, int len) const {
1722 int status = send(socket_, data, len, 0);
1723 return status;
1724}
1725
1726
ager@chromium.org381abbb2009-02-25 13:23:22 +00001727int Win32Socket::Receive(char* data, int len) const {
1728 int status = recv(socket_, data, len, 0);
1729 return status;
1730}
1731
1732
ager@chromium.orgbb29dc92009-03-24 13:25:23 +00001733bool Win32Socket::SetReuseAddress(bool reuse_address) {
1734 BOOL on = reuse_address ? TRUE : FALSE;
1735 int status = setsockopt(socket_, SOL_SOCKET, SO_REUSEADDR,
1736 reinterpret_cast<char*>(&on), sizeof(on));
1737 return status == SOCKET_ERROR;
1738}
1739
1740
ager@chromium.org381abbb2009-02-25 13:23:22 +00001741bool Socket::Setup() {
1742 // Initialize Winsock32
1743 int err;
1744 WSADATA winsock_data;
1745 WORD version_requested = MAKEWORD(1, 0);
1746 err = WSAStartup(version_requested, &winsock_data);
1747 if (err != 0) {
1748 PrintF("Unable to initialize Winsock, err = %d\n", Socket::LastError());
1749 }
1750
1751 return err == 0;
1752}
1753
1754
1755int Socket::LastError() {
1756 return WSAGetLastError();
1757}
1758
1759
1760uint16_t Socket::HToN(uint16_t value) {
1761 return htons(value);
1762}
1763
1764
1765uint16_t Socket::NToH(uint16_t value) {
1766 return ntohs(value);
1767}
1768
1769
1770uint32_t Socket::HToN(uint32_t value) {
1771 return htonl(value);
1772}
1773
1774
1775uint32_t Socket::NToH(uint32_t value) {
1776 return ntohl(value);
1777}
1778
1779
1780Socket* OS::CreateSocket() {
1781 return new Win32Socket();
1782}
1783
1784
christian.plesner.hansen43d26ec2008-07-03 15:10:15 +00001785#ifdef ENABLE_LOGGING_AND_PROFILING
1786
1787// ----------------------------------------------------------------------------
1788// Win32 profiler support.
1789//
1790// On win32 we use a sampler thread with high priority to sample the program
1791// counter for the profiled thread.
1792
mads.s.ager@gmail.com9a4089a2008-09-01 08:55:01 +00001793class Sampler::PlatformData : public Malloced {
christian.plesner.hansen43d26ec2008-07-03 15:10:15 +00001794 public:
mads.s.ager@gmail.com9a4089a2008-09-01 08:55:01 +00001795 explicit PlatformData(Sampler* sampler) {
christian.plesner.hansen43d26ec2008-07-03 15:10:15 +00001796 sampler_ = sampler;
1797 sampler_thread_ = INVALID_HANDLE_VALUE;
1798 profiled_thread_ = INVALID_HANDLE_VALUE;
1799 }
1800
mads.s.ager@gmail.com9a4089a2008-09-01 08:55:01 +00001801 Sampler* sampler_;
christian.plesner.hansen43d26ec2008-07-03 15:10:15 +00001802 HANDLE sampler_thread_;
1803 HANDLE profiled_thread_;
1804
1805 // Sampler thread handler.
1806 void Runner() {
1807 // Context used for sampling the register state of the profiled thread.
1808 CONTEXT context;
1809 memset(&context, 0, sizeof(context));
lrn@chromium.org25156de2010-04-06 13:10:27 +00001810 // Loop until the sampler is disengaged, keeping the specified samling freq.
1811 for ( ; sampler_->IsActive(); Sleep(sampler_->interval_)) {
lrn@chromium.org25156de2010-04-06 13:10:27 +00001812 TickSample sample_obj;
ricow@chromium.orgc9c80822010-04-21 08:22:37 +00001813 TickSample* sample = CpuProfiler::TickSampleEvent();
ager@chromium.org357bf652010-04-12 11:30:10 +00001814 if (sample == NULL) sample = &sample_obj;
mads.s.ager@gmail.com9a4089a2008-09-01 08:55:01 +00001815
ager@chromium.orgce5e87b2010-03-10 10:24:18 +00001816 // We always sample the VM state.
ager@chromium.org357bf652010-04-12 11:30:10 +00001817 sample->state = VMState::current_state();
mads.s.ager@gmail.com9a4089a2008-09-01 08:55:01 +00001818 // If profiling, we record the pc and sp of the profiled thread.
kasperl@chromium.org2abc4502009-07-02 07:00:29 +00001819 if (sampler_->IsProfiling()
1820 && SuspendThread(profiled_thread_) != (DWORD)-1) {
mads.s.ager@gmail.com9a4089a2008-09-01 08:55:01 +00001821 context.ContextFlags = CONTEXT_FULL;
kasperl@chromium.org2abc4502009-07-02 07:00:29 +00001822 if (GetThreadContext(profiled_thread_, &context) != 0) {
lrn@chromium.org25156de2010-04-06 13:10:27 +00001823#if V8_HOST_ARCH_X64
ager@chromium.org357bf652010-04-12 11:30:10 +00001824 sample->pc = reinterpret_cast<Address>(context.Rip);
1825 sample->sp = reinterpret_cast<Address>(context.Rsp);
1826 sample->fp = reinterpret_cast<Address>(context.Rbp);
lrn@chromium.org25156de2010-04-06 13:10:27 +00001827#else
ager@chromium.org357bf652010-04-12 11:30:10 +00001828 sample->pc = reinterpret_cast<Address>(context.Eip);
1829 sample->sp = reinterpret_cast<Address>(context.Esp);
1830 sample->fp = reinterpret_cast<Address>(context.Ebp);
lrn@chromium.org25156de2010-04-06 13:10:27 +00001831#endif
ager@chromium.org357bf652010-04-12 11:30:10 +00001832 sampler_->SampleStack(sample);
kasperl@chromium.org2abc4502009-07-02 07:00:29 +00001833 }
1834 ResumeThread(profiled_thread_);
mads.s.ager@gmail.com9a4089a2008-09-01 08:55:01 +00001835 }
1836
kasperl@chromium.org2abc4502009-07-02 07:00:29 +00001837 // Invoke tick handler with program counter and stack pointer.
lrn@chromium.org25156de2010-04-06 13:10:27 +00001838 sampler_->Tick(sample);
christian.plesner.hansen43d26ec2008-07-03 15:10:15 +00001839 }
1840 }
1841};
1842
1843
1844// Entry point for sampler thread.
mads.s.ager@gmail.com9a4089a2008-09-01 08:55:01 +00001845static unsigned int __stdcall SamplerEntry(void* arg) {
1846 Sampler::PlatformData* data =
1847 reinterpret_cast<Sampler::PlatformData*>(arg);
christian.plesner.hansen43d26ec2008-07-03 15:10:15 +00001848 data->Runner();
1849 return 0;
1850}
1851
1852
1853// Initialize a profile sampler.
mads.s.ager@gmail.com9a4089a2008-09-01 08:55:01 +00001854Sampler::Sampler(int interval, bool profiling)
1855 : interval_(interval), profiling_(profiling), active_(false) {
christian.plesner.hansen43d26ec2008-07-03 15:10:15 +00001856 data_ = new PlatformData(this);
christian.plesner.hansen43d26ec2008-07-03 15:10:15 +00001857}
1858
1859
mads.s.ager@gmail.com9a4089a2008-09-01 08:55:01 +00001860Sampler::~Sampler() {
christian.plesner.hansen43d26ec2008-07-03 15:10:15 +00001861 delete data_;
1862}
1863
1864
1865// Start profiling.
mads.s.ager@gmail.com9a4089a2008-09-01 08:55:01 +00001866void Sampler::Start() {
1867 // If we are profiling, we need to be able to access the calling
1868 // thread.
1869 if (IsProfiling()) {
1870 // Get a handle to the calling thread. This is the thread that we are
ager@chromium.org41826e72009-03-30 13:30:57 +00001871 // going to profile. We need to make a copy of the handle because we are
1872 // going to use it in the sampler thread. Using GetThreadHandle() will
1873 // not work in this case. We're using OpenThread because DuplicateHandle
1874 // for some reason doesn't work in Chrome's sandbox.
1875 data_->profiled_thread_ = OpenThread(THREAD_GET_CONTEXT |
1876 THREAD_SUSPEND_RESUME |
1877 THREAD_QUERY_INFORMATION,
1878 FALSE,
1879 GetCurrentThreadId());
1880 BOOL ok = data_->profiled_thread_ != NULL;
mads.s.ager@gmail.com9a4089a2008-09-01 08:55:01 +00001881 if (!ok) return;
1882 }
christian.plesner.hansen43d26ec2008-07-03 15:10:15 +00001883
1884 // Start sampler thread.
1885 unsigned int tid;
1886 active_ = true;
1887 data_->sampler_thread_ = reinterpret_cast<HANDLE>(
mads.s.ager@gmail.com9a4089a2008-09-01 08:55:01 +00001888 _beginthreadex(NULL, 0, SamplerEntry, data_, 0, &tid));
christian.plesner.hansen43d26ec2008-07-03 15:10:15 +00001889 // Set thread to high priority to increase sampling accuracy.
1890 SetThreadPriority(data_->sampler_thread_, THREAD_PRIORITY_TIME_CRITICAL);
1891}
1892
1893
1894// Stop profiling.
mads.s.ager@gmail.com9a4089a2008-09-01 08:55:01 +00001895void Sampler::Stop() {
christian.plesner.hansen43d26ec2008-07-03 15:10:15 +00001896 // Seting active to false triggers termination of the sampler
1897 // thread.
1898 active_ = false;
1899
1900 // Wait for sampler thread to terminate.
1901 WaitForSingleObject(data_->sampler_thread_, INFINITE);
1902
1903 // Release the thread handles
1904 CloseHandle(data_->sampler_thread_);
1905 CloseHandle(data_->profiled_thread_);
1906}
1907
1908
1909#endif // ENABLE_LOGGING_AND_PROFILING
1910
1911} } // namespace v8::internal