gtest-port_test.cc 31.3 KB
Newer Older
1
2
3
4
5
6
7
8
9
10
11
12
13
14
15
16
17
18
19
20
21
22
23
24
25
26
27
28
29
// Copyright 2008, Google Inc.
// All rights reserved.
//
// Redistribution and use in source and binary forms, with or without
// modification, are permitted provided that the following conditions are
// met:
//
//     * Redistributions of source code must retain the above copyright
// notice, this list of conditions and the following disclaimer.
//     * Redistributions in binary form must reproduce the above
// copyright notice, this list of conditions and the following disclaimer
// in the documentation and/or other materials provided with the
// distribution.
//     * Neither the name of Google Inc. nor the names of its
// contributors may be used to endorse or promote products derived from
// this software without specific prior written permission.
//
// THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS
// "AS IS" AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT
// LIMITED TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR
// A PARTICULAR PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT
// OWNER OR CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL,
// SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT
// LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
// DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
// THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
// (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE
// OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
//
30
// Authors: vladl@google.com (Vlad Losev), wan@google.com (Zhanyong Wan)
31
32
33
34
//
// This file tests the internal cross-platform support utilities.

#include <gtest/internal/gtest-port.h>
35

36
37
#include <stdio.h>

38
#if GTEST_OS_MAC
39
#include <time.h>
40
41
#endif  // GTEST_OS_MAC

42
43
#include <utility>  // For std::pair and std::make_pair.

44
45
46
#include <gtest/gtest.h>
#include <gtest/gtest-spi.h>

47
48
49
50
51
// Indicates that this translation unit is part of Google Test's
// implementation.  It must come before gtest-internal-inl.h is
// included, or there will be a compiler error.  This trick is to
// prevent a user from accidentally including gtest-internal-inl.h in
// his code.
zhanyong.wan's avatar
zhanyong.wan committed
52
#define GTEST_IMPLEMENTATION_ 1
53
#include "src/gtest-internal-inl.h"
zhanyong.wan's avatar
zhanyong.wan committed
54
#undef GTEST_IMPLEMENTATION_
55

56
57
58
using std::make_pair;
using std::pair;

59
60
61
namespace testing {
namespace internal {

62
63
64
65
66
67
68
69
// Tests that the element_type typedef is available in scoped_ptr and refers
// to the parameter type.
TEST(ScopedPtrTest, DefinesElementType) {
  StaticAssertTypeEq<int, ::testing::internal::scoped_ptr<int>::element_type>();
}

// TODO(vladl@google.com): Implement THE REST of scoped_ptr tests.

70
TEST(GtestCheckSyntaxTest, BehavesLikeASingleStatement) {
71
  if (AlwaysFalse())
72
73
74
    GTEST_CHECK_(false) << "This should never be executed; "
                           "It's a compilation test only.";

75
  if (AlwaysTrue())
76
77
78
79
    GTEST_CHECK_(true);
  else
    ;  // NOLINT

80
  if (AlwaysFalse())
81
82
83
84
85
86
87
88
89
90
91
92
93
94
95
96
97
98
    ;  // NOLINT
  else
    GTEST_CHECK_(true) << "";
}

TEST(GtestCheckSyntaxTest, WorksWithSwitch) {
  switch (0) {
    case 1:
      break;
    default:
      GTEST_CHECK_(true);
  }

  switch(0)
    case 0:
      GTEST_CHECK_(true) << "Check failed in switch case";
}

99
100
#if GTEST_OS_MAC
void* ThreadFunc(void* data) {
101
  pthread_mutex_t* mutex = static_cast<pthread_mutex_t*>(data);
102
103
104
105
106
107
  pthread_mutex_lock(mutex);
  pthread_mutex_unlock(mutex);
  return NULL;
}

TEST(GetThreadCountTest, ReturnsCorrectValue) {
108
  EXPECT_EQ(1U, GetThreadCount());
109
110
111
112
113
114
115
116
117
118
119
120
121
122
  pthread_mutex_t mutex;
  pthread_attr_t  attr;
  pthread_t       thread_id;

  // TODO(vladl@google.com): turn mutex into internal::Mutex for automatic
  // destruction.
  pthread_mutex_init(&mutex, NULL);
  pthread_mutex_lock(&mutex);
  ASSERT_EQ(0, pthread_attr_init(&attr));
  ASSERT_EQ(0, pthread_attr_setdetachstate(&attr, PTHREAD_CREATE_JOINABLE));

  const int status = pthread_create(&thread_id, &attr, &ThreadFunc, &mutex);
  ASSERT_EQ(0, pthread_attr_destroy(&attr));
  ASSERT_EQ(0, status);
123
  EXPECT_EQ(2U, GetThreadCount());
124
125
126
127
  pthread_mutex_unlock(&mutex);

  void* dummy;
  ASSERT_EQ(0, pthread_join(thread_id, &dummy));
128
129
130
131
132
133
134
135

  // MacOS X may not immediately report the updated thread count after
  // joining a thread, causing flakiness in this test. To counter that, we
  // wait for up to .5 seconds for the OS to report the correct value.
  for (int i = 0; i < 5; ++i) {
    if (GetThreadCount() == 1)
      break;

136
    SleepMilliseconds(100);
137
  }
138
  EXPECT_EQ(1U, GetThreadCount());
139
140
141
142
  pthread_mutex_destroy(&mutex);
}
#else
TEST(GetThreadCountTest, ReturnsZeroWhenUnableToCountThreads) {
143
  EXPECT_EQ(0U, GetThreadCount());
144
145
146
}
#endif  // GTEST_OS_MAC

147
148
TEST(GtestCheckDeathTest, DiesWithCorrectOutputOnFailure) {
  const bool a_false_condition = false;
149
  const char regex[] =
150
#ifdef _MSC_VER
151
     "gtest-port_test\\.cc\\(\\d+\\):"
vladlosev's avatar
vladlosev committed
152
#elif GTEST_USES_POSIX_RE
153
     "gtest-port_test\\.cc:[0-9]+"
vladlosev's avatar
vladlosev committed
154
155
#else
     "gtest-port_test\\.cc:\\d+"
156
#endif  // _MSC_VER
157
158
     ".*a_false_condition.*Extra info.*";

159
160
  EXPECT_DEATH_IF_SUPPORTED(GTEST_CHECK_(a_false_condition) << "Extra info",
                            regex);
161
162
}

163
164
#if GTEST_HAS_DEATH_TEST

165
166
167
168
169
170
171
172
173
174
TEST(GtestCheckDeathTest, LivesSilentlyOnSuccess) {
  EXPECT_EXIT({
      GTEST_CHECK_(true) << "Extra info";
      ::std::cerr << "Success\n";
      exit(0); },
      ::testing::ExitedWithCode(0), "Success");
}

#endif  // GTEST_HAS_DEATH_TEST

175
#if GTEST_USES_POSIX_RE
176

177
178
#if GTEST_HAS_TYPED_TEST

179
180
181
182
183
184
185
186
187
188
189
190
191
192
193
194
template <typename Str>
class RETest : public ::testing::Test {};

// Defines StringTypes as the list of all string types that class RE
// supports.
typedef testing::Types<
    ::std::string,
#if GTEST_HAS_GLOBAL_STRING
    ::string,
#endif  // GTEST_HAS_GLOBAL_STRING
    const char*> StringTypes;

TYPED_TEST_CASE(RETest, StringTypes);

// Tests RE's implicit constructors.
TYPED_TEST(RETest, ImplicitConstructorWorks) {
195
  const RE empty(TypeParam(""));
196
197
  EXPECT_STREQ("", empty.pattern());

198
  const RE simple(TypeParam("hello"));
199
200
  EXPECT_STREQ("hello", simple.pattern());

201
  const RE normal(TypeParam(".*(\\w+)"));
202
203
204
205
206
207
  EXPECT_STREQ(".*(\\w+)", normal.pattern());
}

// Tests that RE's constructors reject invalid regular expressions.
TYPED_TEST(RETest, RejectsInvalidRegex) {
  EXPECT_NONFATAL_FAILURE({
208
    const RE invalid(TypeParam("?"));
209
210
211
212
213
  }, "\"?\" is not a valid POSIX Extended regular expression.");
}

// Tests RE::FullMatch().
TYPED_TEST(RETest, FullMatchWorks) {
214
  const RE empty(TypeParam(""));
215
216
217
  EXPECT_TRUE(RE::FullMatch(TypeParam(""), empty));
  EXPECT_FALSE(RE::FullMatch(TypeParam("a"), empty));

218
  const RE re(TypeParam("a.*z"));
219
220
221
222
223
224
225
226
  EXPECT_TRUE(RE::FullMatch(TypeParam("az"), re));
  EXPECT_TRUE(RE::FullMatch(TypeParam("axyz"), re));
  EXPECT_FALSE(RE::FullMatch(TypeParam("baz"), re));
  EXPECT_FALSE(RE::FullMatch(TypeParam("azy"), re));
}

// Tests RE::PartialMatch().
TYPED_TEST(RETest, PartialMatchWorks) {
227
  const RE empty(TypeParam(""));
228
229
230
  EXPECT_TRUE(RE::PartialMatch(TypeParam(""), empty));
  EXPECT_TRUE(RE::PartialMatch(TypeParam("a"), empty));

231
  const RE re(TypeParam("a.*z"));
232
233
234
235
236
237
238
  EXPECT_TRUE(RE::PartialMatch(TypeParam("az"), re));
  EXPECT_TRUE(RE::PartialMatch(TypeParam("axyz"), re));
  EXPECT_TRUE(RE::PartialMatch(TypeParam("baz"), re));
  EXPECT_TRUE(RE::PartialMatch(TypeParam("azy"), re));
  EXPECT_FALSE(RE::PartialMatch(TypeParam("zza"), re));
}

239
240
#endif  // GTEST_HAS_TYPED_TEST

241
242
243
244
245
246
247
248
249
250
251
252
253
254
255
256
257
258
259
260
261
262
263
264
265
266
267
268
269
270
271
272
273
274
275
276
277
278
279
280
281
282
283
284
285
286
287
288
289
290
291
292
293
294
295
296
297
298
299
300
301
302
303
304
305
306
307
308
309
310
311
312
313
314
315
316
317
318
319
320
321
322
323
324
325
326
327
328
329
330
331
332
333
334
335
336
337
338
339
340
341
342
343
344
345
346
347
348
349
350
351
352
353
354
355
356
357
358
359
360
361
362
363
364
365
366
367
368
369
370
371
372
373
374
375
376
377
378
379
380
381
382
383
384
385
386
387
388
389
390
391
392
393
394
395
396
397
398
399
400
401
402
403
404
405
406
407
408
409
410
411
412
413
414
415
416
417
418
419
420
421
422
423
424
425
426
427
428
429
430
431
432
433
434
435
436
437
438
439
440
441
442
443
444
445
446
447
448
449
450
451
452
453
454
455
456
457
458
459
460
461
462
463
464
465
466
467
468
469
470
471
472
473
474
475
476
477
478
479
480
481
482
483
484
485
486
487
488
489
490
491
492
493
494
495
496
497
498
499
500
501
502
503
504
505
506
507
508
509
510
511
512
513
514
515
516
517
518
519
520
521
522
523
524
525
526
527
528
529
530
531
532
533
534
535
536
537
538
539
540
541
542
543
544
545
546
547
548
549
550
551
552
553
554
555
556
557
558
559
560
561
562
563
564
565
566
567
568
569
570
571
572
573
574
575
576
577
578
579
580
581
582
583
584
585
586
587
588
589
590
591
592
593
594
595
596
597
598
599
600
601
602
603
604
605
606
607
608
609
610
611
612
613
614
615
616
617
618
619
620
621
622
623
624
625
626
627
628
629
630
631
632
633
634
635
636
637
638
639
640
641
642
643
644
645
646
647
648
649
650
651
652
#elif GTEST_USES_SIMPLE_RE

TEST(IsInSetTest, NulCharIsNotInAnySet) {
  EXPECT_FALSE(IsInSet('\0', ""));
  EXPECT_FALSE(IsInSet('\0', "\0"));
  EXPECT_FALSE(IsInSet('\0', "a"));
}

TEST(IsInSetTest, WorksForNonNulChars) {
  EXPECT_FALSE(IsInSet('a', "Ab"));
  EXPECT_FALSE(IsInSet('c', ""));

  EXPECT_TRUE(IsInSet('b', "bcd"));
  EXPECT_TRUE(IsInSet('b', "ab"));
}

TEST(IsDigitTest, IsFalseForNonDigit) {
  EXPECT_FALSE(IsDigit('\0'));
  EXPECT_FALSE(IsDigit(' '));
  EXPECT_FALSE(IsDigit('+'));
  EXPECT_FALSE(IsDigit('-'));
  EXPECT_FALSE(IsDigit('.'));
  EXPECT_FALSE(IsDigit('a'));
}

TEST(IsDigitTest, IsTrueForDigit) {
  EXPECT_TRUE(IsDigit('0'));
  EXPECT_TRUE(IsDigit('1'));
  EXPECT_TRUE(IsDigit('5'));
  EXPECT_TRUE(IsDigit('9'));
}

TEST(IsPunctTest, IsFalseForNonPunct) {
  EXPECT_FALSE(IsPunct('\0'));
  EXPECT_FALSE(IsPunct(' '));
  EXPECT_FALSE(IsPunct('\n'));
  EXPECT_FALSE(IsPunct('a'));
  EXPECT_FALSE(IsPunct('0'));
}

TEST(IsPunctTest, IsTrueForPunct) {
  for (const char* p = "^-!\"#$%&'()*+,./:;<=>?@[\\]_`{|}~"; *p; p++) {
    EXPECT_PRED1(IsPunct, *p);
  }
}

TEST(IsRepeatTest, IsFalseForNonRepeatChar) {
  EXPECT_FALSE(IsRepeat('\0'));
  EXPECT_FALSE(IsRepeat(' '));
  EXPECT_FALSE(IsRepeat('a'));
  EXPECT_FALSE(IsRepeat('1'));
  EXPECT_FALSE(IsRepeat('-'));
}

TEST(IsRepeatTest, IsTrueForRepeatChar) {
  EXPECT_TRUE(IsRepeat('?'));
  EXPECT_TRUE(IsRepeat('*'));
  EXPECT_TRUE(IsRepeat('+'));
}

TEST(IsWhiteSpaceTest, IsFalseForNonWhiteSpace) {
  EXPECT_FALSE(IsWhiteSpace('\0'));
  EXPECT_FALSE(IsWhiteSpace('a'));
  EXPECT_FALSE(IsWhiteSpace('1'));
  EXPECT_FALSE(IsWhiteSpace('+'));
  EXPECT_FALSE(IsWhiteSpace('_'));
}

TEST(IsWhiteSpaceTest, IsTrueForWhiteSpace) {
  EXPECT_TRUE(IsWhiteSpace(' '));
  EXPECT_TRUE(IsWhiteSpace('\n'));
  EXPECT_TRUE(IsWhiteSpace('\r'));
  EXPECT_TRUE(IsWhiteSpace('\t'));
  EXPECT_TRUE(IsWhiteSpace('\v'));
  EXPECT_TRUE(IsWhiteSpace('\f'));
}

TEST(IsWordCharTest, IsFalseForNonWordChar) {
  EXPECT_FALSE(IsWordChar('\0'));
  EXPECT_FALSE(IsWordChar('+'));
  EXPECT_FALSE(IsWordChar('.'));
  EXPECT_FALSE(IsWordChar(' '));
  EXPECT_FALSE(IsWordChar('\n'));
}

TEST(IsWordCharTest, IsTrueForLetter) {
  EXPECT_TRUE(IsWordChar('a'));
  EXPECT_TRUE(IsWordChar('b'));
  EXPECT_TRUE(IsWordChar('A'));
  EXPECT_TRUE(IsWordChar('Z'));
}

TEST(IsWordCharTest, IsTrueForDigit) {
  EXPECT_TRUE(IsWordChar('0'));
  EXPECT_TRUE(IsWordChar('1'));
  EXPECT_TRUE(IsWordChar('7'));
  EXPECT_TRUE(IsWordChar('9'));
}

TEST(IsWordCharTest, IsTrueForUnderscore) {
  EXPECT_TRUE(IsWordChar('_'));
}

TEST(IsValidEscapeTest, IsFalseForNonPrintable) {
  EXPECT_FALSE(IsValidEscape('\0'));
  EXPECT_FALSE(IsValidEscape('\007'));
}

TEST(IsValidEscapeTest, IsFalseForDigit) {
  EXPECT_FALSE(IsValidEscape('0'));
  EXPECT_FALSE(IsValidEscape('9'));
}

TEST(IsValidEscapeTest, IsFalseForWhiteSpace) {
  EXPECT_FALSE(IsValidEscape(' '));
  EXPECT_FALSE(IsValidEscape('\n'));
}

TEST(IsValidEscapeTest, IsFalseForSomeLetter) {
  EXPECT_FALSE(IsValidEscape('a'));
  EXPECT_FALSE(IsValidEscape('Z'));
}

TEST(IsValidEscapeTest, IsTrueForPunct) {
  EXPECT_TRUE(IsValidEscape('.'));
  EXPECT_TRUE(IsValidEscape('-'));
  EXPECT_TRUE(IsValidEscape('^'));
  EXPECT_TRUE(IsValidEscape('$'));
  EXPECT_TRUE(IsValidEscape('('));
  EXPECT_TRUE(IsValidEscape(']'));
  EXPECT_TRUE(IsValidEscape('{'));
  EXPECT_TRUE(IsValidEscape('|'));
}

TEST(IsValidEscapeTest, IsTrueForSomeLetter) {
  EXPECT_TRUE(IsValidEscape('d'));
  EXPECT_TRUE(IsValidEscape('D'));
  EXPECT_TRUE(IsValidEscape('s'));
  EXPECT_TRUE(IsValidEscape('S'));
  EXPECT_TRUE(IsValidEscape('w'));
  EXPECT_TRUE(IsValidEscape('W'));
}

TEST(AtomMatchesCharTest, EscapedPunct) {
  EXPECT_FALSE(AtomMatchesChar(true, '\\', '\0'));
  EXPECT_FALSE(AtomMatchesChar(true, '\\', ' '));
  EXPECT_FALSE(AtomMatchesChar(true, '_', '.'));
  EXPECT_FALSE(AtomMatchesChar(true, '.', 'a'));

  EXPECT_TRUE(AtomMatchesChar(true, '\\', '\\'));
  EXPECT_TRUE(AtomMatchesChar(true, '_', '_'));
  EXPECT_TRUE(AtomMatchesChar(true, '+', '+'));
  EXPECT_TRUE(AtomMatchesChar(true, '.', '.'));
}

TEST(AtomMatchesCharTest, Escaped_d) {
  EXPECT_FALSE(AtomMatchesChar(true, 'd', '\0'));
  EXPECT_FALSE(AtomMatchesChar(true, 'd', 'a'));
  EXPECT_FALSE(AtomMatchesChar(true, 'd', '.'));

  EXPECT_TRUE(AtomMatchesChar(true, 'd', '0'));
  EXPECT_TRUE(AtomMatchesChar(true, 'd', '9'));
}

TEST(AtomMatchesCharTest, Escaped_D) {
  EXPECT_FALSE(AtomMatchesChar(true, 'D', '0'));
  EXPECT_FALSE(AtomMatchesChar(true, 'D', '9'));

  EXPECT_TRUE(AtomMatchesChar(true, 'D', '\0'));
  EXPECT_TRUE(AtomMatchesChar(true, 'D', 'a'));
  EXPECT_TRUE(AtomMatchesChar(true, 'D', '-'));
}

TEST(AtomMatchesCharTest, Escaped_s) {
  EXPECT_FALSE(AtomMatchesChar(true, 's', '\0'));
  EXPECT_FALSE(AtomMatchesChar(true, 's', 'a'));
  EXPECT_FALSE(AtomMatchesChar(true, 's', '.'));
  EXPECT_FALSE(AtomMatchesChar(true, 's', '9'));

  EXPECT_TRUE(AtomMatchesChar(true, 's', ' '));
  EXPECT_TRUE(AtomMatchesChar(true, 's', '\n'));
  EXPECT_TRUE(AtomMatchesChar(true, 's', '\t'));
}

TEST(AtomMatchesCharTest, Escaped_S) {
  EXPECT_FALSE(AtomMatchesChar(true, 'S', ' '));
  EXPECT_FALSE(AtomMatchesChar(true, 'S', '\r'));

  EXPECT_TRUE(AtomMatchesChar(true, 'S', '\0'));
  EXPECT_TRUE(AtomMatchesChar(true, 'S', 'a'));
  EXPECT_TRUE(AtomMatchesChar(true, 'S', '9'));
}

TEST(AtomMatchesCharTest, Escaped_w) {
  EXPECT_FALSE(AtomMatchesChar(true, 'w', '\0'));
  EXPECT_FALSE(AtomMatchesChar(true, 'w', '+'));
  EXPECT_FALSE(AtomMatchesChar(true, 'w', ' '));
  EXPECT_FALSE(AtomMatchesChar(true, 'w', '\n'));

  EXPECT_TRUE(AtomMatchesChar(true, 'w', '0'));
  EXPECT_TRUE(AtomMatchesChar(true, 'w', 'b'));
  EXPECT_TRUE(AtomMatchesChar(true, 'w', 'C'));
  EXPECT_TRUE(AtomMatchesChar(true, 'w', '_'));
}

TEST(AtomMatchesCharTest, Escaped_W) {
  EXPECT_FALSE(AtomMatchesChar(true, 'W', 'A'));
  EXPECT_FALSE(AtomMatchesChar(true, 'W', 'b'));
  EXPECT_FALSE(AtomMatchesChar(true, 'W', '9'));
  EXPECT_FALSE(AtomMatchesChar(true, 'W', '_'));

  EXPECT_TRUE(AtomMatchesChar(true, 'W', '\0'));
  EXPECT_TRUE(AtomMatchesChar(true, 'W', '*'));
  EXPECT_TRUE(AtomMatchesChar(true, 'W', '\n'));
}

TEST(AtomMatchesCharTest, EscapedWhiteSpace) {
  EXPECT_FALSE(AtomMatchesChar(true, 'f', '\0'));
  EXPECT_FALSE(AtomMatchesChar(true, 'f', '\n'));
  EXPECT_FALSE(AtomMatchesChar(true, 'n', '\0'));
  EXPECT_FALSE(AtomMatchesChar(true, 'n', '\r'));
  EXPECT_FALSE(AtomMatchesChar(true, 'r', '\0'));
  EXPECT_FALSE(AtomMatchesChar(true, 'r', 'a'));
  EXPECT_FALSE(AtomMatchesChar(true, 't', '\0'));
  EXPECT_FALSE(AtomMatchesChar(true, 't', 't'));
  EXPECT_FALSE(AtomMatchesChar(true, 'v', '\0'));
  EXPECT_FALSE(AtomMatchesChar(true, 'v', '\f'));

  EXPECT_TRUE(AtomMatchesChar(true, 'f', '\f'));
  EXPECT_TRUE(AtomMatchesChar(true, 'n', '\n'));
  EXPECT_TRUE(AtomMatchesChar(true, 'r', '\r'));
  EXPECT_TRUE(AtomMatchesChar(true, 't', '\t'));
  EXPECT_TRUE(AtomMatchesChar(true, 'v', '\v'));
}

TEST(AtomMatchesCharTest, UnescapedDot) {
  EXPECT_FALSE(AtomMatchesChar(false, '.', '\n'));

  EXPECT_TRUE(AtomMatchesChar(false, '.', '\0'));
  EXPECT_TRUE(AtomMatchesChar(false, '.', '.'));
  EXPECT_TRUE(AtomMatchesChar(false, '.', 'a'));
  EXPECT_TRUE(AtomMatchesChar(false, '.', ' '));
}

TEST(AtomMatchesCharTest, UnescapedChar) {
  EXPECT_FALSE(AtomMatchesChar(false, 'a', '\0'));
  EXPECT_FALSE(AtomMatchesChar(false, 'a', 'b'));
  EXPECT_FALSE(AtomMatchesChar(false, '$', 'a'));

  EXPECT_TRUE(AtomMatchesChar(false, '$', '$'));
  EXPECT_TRUE(AtomMatchesChar(false, '5', '5'));
  EXPECT_TRUE(AtomMatchesChar(false, 'Z', 'Z'));
}

TEST(ValidateRegexTest, GeneratesFailureAndReturnsFalseForInvalid) {
  EXPECT_NONFATAL_FAILURE(ASSERT_FALSE(ValidateRegex(NULL)),
                          "NULL is not a valid simple regular expression");
  EXPECT_NONFATAL_FAILURE(
      ASSERT_FALSE(ValidateRegex("a\\")),
      "Syntax error at index 1 in simple regular expression \"a\\\": ");
  EXPECT_NONFATAL_FAILURE(ASSERT_FALSE(ValidateRegex("a\\")),
                          "'\\' cannot appear at the end");
  EXPECT_NONFATAL_FAILURE(ASSERT_FALSE(ValidateRegex("\\n\\")),
                          "'\\' cannot appear at the end");
  EXPECT_NONFATAL_FAILURE(ASSERT_FALSE(ValidateRegex("\\s\\hb")),
                          "invalid escape sequence \"\\h\"");
  EXPECT_NONFATAL_FAILURE(ASSERT_FALSE(ValidateRegex("^^")),
                          "'^' can only appear at the beginning");
  EXPECT_NONFATAL_FAILURE(ASSERT_FALSE(ValidateRegex(".*^b")),
                          "'^' can only appear at the beginning");
  EXPECT_NONFATAL_FAILURE(ASSERT_FALSE(ValidateRegex("$$")),
                          "'$' can only appear at the end");
  EXPECT_NONFATAL_FAILURE(ASSERT_FALSE(ValidateRegex("^$a")),
                          "'$' can only appear at the end");
  EXPECT_NONFATAL_FAILURE(ASSERT_FALSE(ValidateRegex("a(b")),
                          "'(' is unsupported");
  EXPECT_NONFATAL_FAILURE(ASSERT_FALSE(ValidateRegex("ab)")),
                          "')' is unsupported");
  EXPECT_NONFATAL_FAILURE(ASSERT_FALSE(ValidateRegex("[ab")),
                          "'[' is unsupported");
  EXPECT_NONFATAL_FAILURE(ASSERT_FALSE(ValidateRegex("a{2")),
                          "'{' is unsupported");
  EXPECT_NONFATAL_FAILURE(ASSERT_FALSE(ValidateRegex("?")),
                          "'?' can only follow a repeatable token");
  EXPECT_NONFATAL_FAILURE(ASSERT_FALSE(ValidateRegex("^*")),
                          "'*' can only follow a repeatable token");
  EXPECT_NONFATAL_FAILURE(ASSERT_FALSE(ValidateRegex("5*+")),
                          "'+' can only follow a repeatable token");
}

TEST(ValidateRegexTest, ReturnsTrueForValid) {
  EXPECT_TRUE(ValidateRegex(""));
  EXPECT_TRUE(ValidateRegex("a"));
  EXPECT_TRUE(ValidateRegex(".*"));
  EXPECT_TRUE(ValidateRegex("^a_+"));
  EXPECT_TRUE(ValidateRegex("^a\\t\\&?"));
  EXPECT_TRUE(ValidateRegex("09*$"));
  EXPECT_TRUE(ValidateRegex("^Z$"));
  EXPECT_TRUE(ValidateRegex("a\\^Z\\$\\(\\)\\|\\[\\]\\{\\}"));
}

TEST(MatchRepetitionAndRegexAtHeadTest, WorksForZeroOrOne) {
  EXPECT_FALSE(MatchRepetitionAndRegexAtHead(false, 'a', '?', "a", "ba"));
  // Repeating more than once.
  EXPECT_FALSE(MatchRepetitionAndRegexAtHead(false, 'a', '?', "b", "aab"));

  // Repeating zero times.
  EXPECT_TRUE(MatchRepetitionAndRegexAtHead(false, 'a', '?', "b", "ba"));
  // Repeating once.
  EXPECT_TRUE(MatchRepetitionAndRegexAtHead(false, 'a', '?', "b", "ab"));
  EXPECT_TRUE(MatchRepetitionAndRegexAtHead(false, '#', '?', ".", "##"));
}

TEST(MatchRepetitionAndRegexAtHeadTest, WorksForZeroOrMany) {
  EXPECT_FALSE(MatchRepetitionAndRegexAtHead(false, '.', '*', "a$", "baab"));

  // Repeating zero times.
  EXPECT_TRUE(MatchRepetitionAndRegexAtHead(false, '.', '*', "b", "bc"));
  // Repeating once.
  EXPECT_TRUE(MatchRepetitionAndRegexAtHead(false, '.', '*', "b", "abc"));
  // Repeating more than once.
  EXPECT_TRUE(MatchRepetitionAndRegexAtHead(true, 'w', '*', "-", "ab_1-g"));
}

TEST(MatchRepetitionAndRegexAtHeadTest, WorksForOneOrMany) {
  EXPECT_FALSE(MatchRepetitionAndRegexAtHead(false, '.', '+', "a$", "baab"));
  // Repeating zero times.
  EXPECT_FALSE(MatchRepetitionAndRegexAtHead(false, '.', '+', "b", "bc"));

  // Repeating once.
  EXPECT_TRUE(MatchRepetitionAndRegexAtHead(false, '.', '+', "b", "abc"));
  // Repeating more than once.
  EXPECT_TRUE(MatchRepetitionAndRegexAtHead(true, 'w', '+', "-", "ab_1-g"));
}

TEST(MatchRegexAtHeadTest, ReturnsTrueForEmptyRegex) {
  EXPECT_TRUE(MatchRegexAtHead("", ""));
  EXPECT_TRUE(MatchRegexAtHead("", "ab"));
}

TEST(MatchRegexAtHeadTest, WorksWhenDollarIsInRegex) {
  EXPECT_FALSE(MatchRegexAtHead("$", "a"));

  EXPECT_TRUE(MatchRegexAtHead("$", ""));
  EXPECT_TRUE(MatchRegexAtHead("a$", "a"));
}

TEST(MatchRegexAtHeadTest, WorksWhenRegexStartsWithEscapeSequence) {
  EXPECT_FALSE(MatchRegexAtHead("\\w", "+"));
  EXPECT_FALSE(MatchRegexAtHead("\\W", "ab"));

  EXPECT_TRUE(MatchRegexAtHead("\\sa", "\nab"));
  EXPECT_TRUE(MatchRegexAtHead("\\d", "1a"));
}

TEST(MatchRegexAtHeadTest, WorksWhenRegexStartsWithRepetition) {
  EXPECT_FALSE(MatchRegexAtHead(".+a", "abc"));
  EXPECT_FALSE(MatchRegexAtHead("a?b", "aab"));

  EXPECT_TRUE(MatchRegexAtHead(".*a", "bc12-ab"));
  EXPECT_TRUE(MatchRegexAtHead("a?b", "b"));
  EXPECT_TRUE(MatchRegexAtHead("a?b", "ab"));
}

TEST(MatchRegexAtHeadTest,
     WorksWhenRegexStartsWithRepetionOfEscapeSequence) {
  EXPECT_FALSE(MatchRegexAtHead("\\.+a", "abc"));
  EXPECT_FALSE(MatchRegexAtHead("\\s?b", "  b"));

  EXPECT_TRUE(MatchRegexAtHead("\\(*a", "((((ab"));
  EXPECT_TRUE(MatchRegexAtHead("\\^?b", "^b"));
  EXPECT_TRUE(MatchRegexAtHead("\\\\?b", "b"));
  EXPECT_TRUE(MatchRegexAtHead("\\\\?b", "\\b"));
}

TEST(MatchRegexAtHeadTest, MatchesSequentially) {
  EXPECT_FALSE(MatchRegexAtHead("ab.*c", "acabc"));

  EXPECT_TRUE(MatchRegexAtHead("ab.*c", "ab-fsc"));
}

TEST(MatchRegexAnywhereTest, ReturnsFalseWhenStringIsNull) {
  EXPECT_FALSE(MatchRegexAnywhere("", NULL));
}

TEST(MatchRegexAnywhereTest, WorksWhenRegexStartsWithCaret) {
  EXPECT_FALSE(MatchRegexAnywhere("^a", "ba"));
  EXPECT_FALSE(MatchRegexAnywhere("^$", "a"));

  EXPECT_TRUE(MatchRegexAnywhere("^a", "ab"));
  EXPECT_TRUE(MatchRegexAnywhere("^", "ab"));
  EXPECT_TRUE(MatchRegexAnywhere("^$", ""));
}

TEST(MatchRegexAnywhereTest, ReturnsFalseWhenNoMatch) {
  EXPECT_FALSE(MatchRegexAnywhere("a", "bcde123"));
  EXPECT_FALSE(MatchRegexAnywhere("a.+a", "--aa88888888"));
}

TEST(MatchRegexAnywhereTest, ReturnsTrueWhenMatchingPrefix) {
  EXPECT_TRUE(MatchRegexAnywhere("\\w+", "ab1_ - 5"));
  EXPECT_TRUE(MatchRegexAnywhere(".*=", "="));
  EXPECT_TRUE(MatchRegexAnywhere("x.*ab?.*bc", "xaaabc"));
}

TEST(MatchRegexAnywhereTest, ReturnsTrueWhenMatchingNonPrefix) {
  EXPECT_TRUE(MatchRegexAnywhere("\\w+", "$$$ ab1_ - 5"));
  EXPECT_TRUE(MatchRegexAnywhere("\\.+=", "=  ...="));
}

// Tests RE's implicit constructors.
TEST(RETest, ImplicitConstructorWorks) {
653
  const RE empty("");
654
655
  EXPECT_STREQ("", empty.pattern());

656
  const RE simple("hello");
657
658
659
660
661
662
  EXPECT_STREQ("hello", simple.pattern());
}

// Tests that RE's constructors reject invalid regular expressions.
TEST(RETest, RejectsInvalidRegex) {
  EXPECT_NONFATAL_FAILURE({
663
    const RE normal(NULL);
664
665
666
  }, "NULL is not a valid simple regular expression");

  EXPECT_NONFATAL_FAILURE({
667
    const RE normal(".*(\\w+");
668
669
670
  }, "'(' is unsupported");

  EXPECT_NONFATAL_FAILURE({
671
    const RE invalid("^?");
672
673
674
675
676
677
678
679
680
  }, "'?' can only follow a repeatable token");
}

// Tests RE::FullMatch().
TEST(RETest, FullMatchWorks) {
  const RE empty("");
  EXPECT_TRUE(RE::FullMatch("", empty));
  EXPECT_FALSE(RE::FullMatch("a", empty));

681
  const RE re1("a");
682
683
  EXPECT_TRUE(RE::FullMatch("a", re1));

684
  const RE re("a.*z");
685
686
687
688
689
690
691
692
  EXPECT_TRUE(RE::FullMatch("az", re));
  EXPECT_TRUE(RE::FullMatch("axyz", re));
  EXPECT_FALSE(RE::FullMatch("baz", re));
  EXPECT_FALSE(RE::FullMatch("azy", re));
}

// Tests RE::PartialMatch().
TEST(RETest, PartialMatchWorks) {
693
  const RE empty("");
694
695
696
  EXPECT_TRUE(RE::PartialMatch("", empty));
  EXPECT_TRUE(RE::PartialMatch("a", empty));

697
  const RE re("a.*z");
698
699
700
701
702
703
704
  EXPECT_TRUE(RE::PartialMatch("az", re));
  EXPECT_TRUE(RE::PartialMatch("axyz", re));
  EXPECT_TRUE(RE::PartialMatch("baz", re));
  EXPECT_TRUE(RE::PartialMatch("azy", re));
  EXPECT_FALSE(RE::PartialMatch("zza", re));
}

705
#endif  // GTEST_USES_POSIX_RE
706

707
708
709
710
711
712
713
714
715
716
717
718
719
720
721
722
723
#if !GTEST_OS_WINDOWS_MOBILE

TEST(CaptureTest, CapturesStdout) {
  CaptureStdout();
  fprintf(stdout, "abc");
  EXPECT_STREQ("abc", GetCapturedStdout().c_str());

  CaptureStdout();
  fprintf(stdout, "def%cghi", '\0');
  EXPECT_EQ(::std::string("def\0ghi", 7), ::std::string(GetCapturedStdout()));
}

TEST(CaptureTest, CapturesStderr) {
  CaptureStderr();
  fprintf(stderr, "jkl");
  EXPECT_STREQ("jkl", GetCapturedStderr().c_str());

724
  CaptureStderr();
725
726
  fprintf(stderr, "jkl%cmno", '\0');
  EXPECT_EQ(::std::string("jkl\0mno", 7), ::std::string(GetCapturedStderr()));
727
728
}

729
730
731
732
733
734
735
736
737
738
739
740
741
742
743
744
745
746
747
748
749
750
// Tests that stdout and stderr capture don't interfere with each other.
TEST(CaptureTest, CapturesStdoutAndStderr) {
  CaptureStdout();
  CaptureStderr();
  fprintf(stdout, "pqr");
  fprintf(stderr, "stu");
  EXPECT_STREQ("pqr", GetCapturedStdout().c_str());
  EXPECT_STREQ("stu", GetCapturedStderr().c_str());
}

TEST(CaptureDeathTest, CannotReenterStdoutCapture) {
  CaptureStdout();
  EXPECT_DEATH_IF_SUPPORTED(CaptureStdout();,
                            "Only one stdout capturer can exist at a time");
  GetCapturedStdout();

  // We cannot test stderr capturing using death tests as they use it
  // themselves.
}

#endif  // !GTEST_OS_WINDOWS_MOBILE

751
752
753
754
755
756
757
758
759
760
761
762
763
764
765
766
767
768
769
770
771
772
773
774
775
776
777
778
779
780
781
782
783
784
785
786
787
788
789
790
791
792
793
794
795
796
797
798
799
TEST(ThreadLocalTest, DefaultConstructorInitializesToDefaultValues) {
  ThreadLocal<int> t1;
  EXPECT_EQ(0, t1.get());

  ThreadLocal<void*> t2;
  EXPECT_TRUE(t2.get() == NULL);
}

TEST(ThreadLocalTest, SingleParamConstructorInitializesToParam) {
  ThreadLocal<int> t1(123);
  EXPECT_EQ(123, t1.get());

  int i = 0;
  ThreadLocal<int*> t2(&i);
  EXPECT_EQ(&i, t2.get());
}

class NoDefaultContructor {
 public:
  explicit NoDefaultContructor(const char*) {}
  NoDefaultContructor(const NoDefaultContructor&) {}
};

TEST(ThreadLocalTest, ValueDefaultContructorIsNotRequiredForParamVersion) {
  ThreadLocal<NoDefaultContructor> bar(NoDefaultContructor("foo"));
  bar.pointer();
}

TEST(ThreadLocalTest, GetAndPointerReturnSameValue) {
  ThreadLocal<String> thread_local;

  EXPECT_EQ(thread_local.pointer(), &(thread_local.get()));

  // Verifies the condition still holds after calling set.
  thread_local.set("foo");
  EXPECT_EQ(thread_local.pointer(), &(thread_local.get()));
}

TEST(ThreadLocalTest, PointerAndConstPointerReturnSameValue) {
  ThreadLocal<String> thread_local;
  const ThreadLocal<String>& const_thread_local = thread_local;

  EXPECT_EQ(thread_local.pointer(), const_thread_local.pointer());

  thread_local.set("foo");
  EXPECT_EQ(thread_local.pointer(), const_thread_local.pointer());
}

#if GTEST_IS_THREADSAFE
800
801
802
803
804
805
806
807
808
809

void AddTwo(int* param) { *param += 2; }

TEST(ThreadWithParamTest, ConstructorExecutesThreadFunc) {
  int i = 40;
  ThreadWithParam<int*> thread(&AddTwo, &i, NULL);
  thread.Join();
  EXPECT_EQ(42, i);
}

810
TEST(MutexDeathTest, AssertHeldShouldAssertWhenNotLocked) {
811
812
813
814
815
816
817
  // AssertHeld() is flaky only in the presence of multiple threads accessing
  // the lock. In this case, the test is robust.
  EXPECT_DEATH_IF_SUPPORTED({
    Mutex m;
    { MutexLock lock(&m); }
    m.AssertHeld();
  },
818
  "thread .*hold");
819
820
}

821
822
823
824
TEST(MutexTest, AssertHeldShouldNotAssertWhenLocked) {
  Mutex m;
  MutexLock lock(&m);
  m.AssertHeld();
825
826
827
828
829
830
831
832
833
834
835
836
837
838
839
840
841
}

class AtomicCounterWithMutex {
 public:
  explicit AtomicCounterWithMutex(Mutex* mutex) :
    value_(0), mutex_(mutex), random_(42) {}

  void Increment() {
    MutexLock lock(mutex_);
    int temp = value_;
    {
      // Locking a mutex puts up a memory barrier, preventing reads and
      // writes to value_ rearranged when observed from other threads.
      //
      // We cannot use Mutex and MutexLock here or rely on their memory
      // barrier functionality as we are testing them here.
      pthread_mutex_t memory_barrier_mutex;
842
843
844
      GTEST_CHECK_POSIX_SUCCESS_(
          pthread_mutex_init(&memory_barrier_mutex, NULL));
      GTEST_CHECK_POSIX_SUCCESS_(pthread_mutex_lock(&memory_barrier_mutex));
845
846
847

      SleepMilliseconds(random_.Generate(30));

848
      GTEST_CHECK_POSIX_SUCCESS_(pthread_mutex_unlock(&memory_barrier_mutex));
849
850
851
852
853
854
855
856
857
858
859
860
861
862
863
864
865
866
867
868
869
870
871
872
873
    }
    value_ = temp + 1;
  }
  int value() const { return value_; }

 private:
  volatile int value_;
  Mutex* const mutex_;  // Protects value_.
  Random       random_;
};

void CountingThreadFunc(pair<AtomicCounterWithMutex*, int> param) {
  for (int i = 0; i < param.second; ++i)
      param.first->Increment();
}

// Tests that the mutex only lets one thread at a time to lock it.
TEST(MutexTest, OnlyOneThreadCanLockAtATime) {
  Mutex mutex;
  AtomicCounterWithMutex locked_counter(&mutex);

  typedef ThreadWithParam<pair<AtomicCounterWithMutex*, int> > ThreadType;
  const int kCycleCount = 20;
  const int kThreadCount = 7;
  scoped_ptr<ThreadType> counting_threads[kThreadCount];
874
  Notification threads_can_start;
875
876
877
878
879
880
  // Creates and runs kThreadCount threads that increment locked_counter
  // kCycleCount times each.
  for (int i = 0; i < kThreadCount; ++i) {
    counting_threads[i].reset(new ThreadType(&CountingThreadFunc,
                                             make_pair(&locked_counter,
                                                       kCycleCount),
881
                                             &threads_can_start));
882
  }
883
  threads_can_start.Notify();
884
885
886
887
888
889
890
891
892
893
894
895
896
897
898
899
900
901
902
903
904
905
906
907
908
909
910
911
912
913
914
915
  for (int i = 0; i < kThreadCount; ++i)
    counting_threads[i]->Join();

  // If the mutex lets more than one thread to increment the counter at a
  // time, they are likely to encounter a race condition and have some
  // increments overwritten, resulting in the lower then expected counter
  // value.
  EXPECT_EQ(kCycleCount * kThreadCount, locked_counter.value());
}

template <typename T>
void RunFromThread(void (func)(T), T param) {
  ThreadWithParam<T> thread(func, param, NULL);
  thread.Join();
}

void RetrieveThreadLocalValue(pair<ThreadLocal<String>*, String*> param) {
  *param.second = param.first->get();
}

TEST(ThreadLocalTest, ParameterizedConstructorSetsDefault) {
  ThreadLocal<String> thread_local("foo");
  EXPECT_STREQ("foo", thread_local.get().c_str());

  thread_local.set("bar");
  EXPECT_STREQ("bar", thread_local.get().c_str());

  String result;
  RunFromThread(&RetrieveThreadLocalValue, make_pair(&thread_local, &result));
  EXPECT_STREQ("foo", result.c_str());
}

zhanyong.wan's avatar
zhanyong.wan committed
916
917
// DestructorTracker keeps track of whether its instances have been
// destroyed.
918
919
920
static std::vector<bool> g_destroyed;

class DestructorTracker {
921
 public:
922
  DestructorTracker() : index_(GetNewIndex()) {}
zhanyong.wan's avatar
zhanyong.wan committed
923
924
  DestructorTracker(const DestructorTracker& /* rhs */)
      : index_(GetNewIndex()) {}
925
  ~DestructorTracker() {
zhanyong.wan's avatar
zhanyong.wan committed
926
927
    // We never access g_destroyed concurrently, so we don't need to
    // protect the write operation under a mutex.
928
929
    g_destroyed[index_] = true;
  }
930
931

 private:
932
933
934
935
936
  static int GetNewIndex() {
    g_destroyed.push_back(false);
    return g_destroyed.size() - 1;
  }
  const int index_;
937
938
};

zhanyong.wan's avatar
zhanyong.wan committed
939
940
941
942
943
944
945
946
947
948
949
950
951
952
953
954
955
956
957
958
959
960
961
962
963
964
965
966
967
968
969
970
971
typedef ThreadLocal<DestructorTracker>* ThreadParam;

void CallThreadLocalGet(ThreadParam thread_local) {
  thread_local->get();
}

// Tests that when a ThreadLocal object dies in a thread, it destroys
// the managed object for that thread.
TEST(ThreadLocalTest, DestroysManagedObjectForOwnThreadWhenDying) {
  g_destroyed.clear();

  {
    // The next line default constructs a DestructorTracker object as
    // the default value of objects managed by thread_local.
    ThreadLocal<DestructorTracker> thread_local;
    ASSERT_EQ(1U, g_destroyed.size());
    ASSERT_FALSE(g_destroyed[0]);

    // This creates another DestructorTracker object for the main thread.
    thread_local.get();
    ASSERT_EQ(2U, g_destroyed.size());
    ASSERT_FALSE(g_destroyed[0]);
    ASSERT_FALSE(g_destroyed[1]);
  }

  // Now thread_local has died.  It should have destroyed both the
  // default value shared by all threads and the value for the main
  // thread.
  ASSERT_EQ(2U, g_destroyed.size());
  EXPECT_TRUE(g_destroyed[0]);
  EXPECT_TRUE(g_destroyed[1]);

  g_destroyed.clear();
972
973
}

zhanyong.wan's avatar
zhanyong.wan committed
974
975
976
// Tests that when a thread exits, the thread-local object for that
// thread is destroyed.
TEST(ThreadLocalTest, DestroysManagedObjectAtThreadExit) {
977
  g_destroyed.clear();
zhanyong.wan's avatar
zhanyong.wan committed
978

979
  {
zhanyong.wan's avatar
zhanyong.wan committed
980
981
    // The next line default constructs a DestructorTracker object as
    // the default value of objects managed by thread_local.
982
    ThreadLocal<DestructorTracker> thread_local;
zhanyong.wan's avatar
zhanyong.wan committed
983
984
985
986
987
988
    ASSERT_EQ(1U, g_destroyed.size());
    ASSERT_FALSE(g_destroyed[0]);

    // This creates another DestructorTracker object in the new thread.
    ThreadWithParam<ThreadParam> thread(
        &CallThreadLocalGet, &thread_local, NULL);
989
    thread.Join();
zhanyong.wan's avatar
zhanyong.wan committed
990
991
992
993
994
995

    // Now the new thread has exited.  The per-thread object for it
    // should have been destroyed.
    ASSERT_EQ(2U, g_destroyed.size());
    ASSERT_FALSE(g_destroyed[0]);
    ASSERT_TRUE(g_destroyed[1]);
996
  }
zhanyong.wan's avatar
zhanyong.wan committed
997
998
999
1000
1001
1002

  // Now thread_local has died.  The default value should have been
  // destroyed too.
  ASSERT_EQ(2U, g_destroyed.size());
  EXPECT_TRUE(g_destroyed[0]);
  EXPECT_TRUE(g_destroyed[1]);
1003
1004

  g_destroyed.clear();
1005
1006
1007
1008
1009
1010
1011
1012
1013
1014
1015
}

TEST(ThreadLocalTest, ThreadLocalMutationsAffectOnlyCurrentThread) {
  ThreadLocal<String> thread_local;
  thread_local.set("Foo");
  EXPECT_STREQ("Foo", thread_local.get().c_str());

  String result;
  RunFromThread(&RetrieveThreadLocalValue, make_pair(&thread_local, &result));
  EXPECT_TRUE(result.c_str() == NULL);
}
zhanyong.wan's avatar
zhanyong.wan committed
1016

1017
1018
#endif  // GTEST_IS_THREADSAFE

1019
1020
}  // namespace internal
}  // namespace testing