1 // Copyright 2005, Google Inc.
2 // All rights reserved.
3 //
4 // Redistribution and use in source and binary forms, with or without
5 // modification, are permitted provided that the following conditions are
6 // met:
7 //
8 // * Redistributions of source code must retain the above copyright
9 // notice, this list of conditions and the following disclaimer.
10 // * Redistributions in binary form must reproduce the above
11 // copyright notice, this list of conditions and the following disclaimer
12 // in the documentation and/or other materials provided with the
13 // distribution.
14 // * Neither the name of Google Inc. nor the names of its
15 // contributors may be used to endorse or promote products derived from
16 // this software without specific prior written permission.
17 //
18 // THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS
19 // "AS IS" AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT
20 // LIMITED TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR
21 // A PARTICULAR PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT
22 // OWNER OR CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL,
23 // SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT
24 // LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
25 // DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
26 // THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
27 // (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE
28 // OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
29 //
30 // Author: wan@google.com (Zhanyong Wan)
31 //
32 // The Google C++ Testing Framework (Google Test)
33
34 #include "gtest/gtest.h"
35 #include "gtest/gtest-spi.h"
36
37 #include <ctype.h>
38 #include <math.h>
39 #include <stdarg.h>
40 #include <stdio.h>
41 #include <stdlib.h>
42 #include <time.h>
43 #include <wchar.h>
44 #include <wctype.h>
45
46 #include <algorithm>
47 #include <iomanip>
48 #include <limits>
49 #include <list>
50 #include <map>
51 #include <ostream> // NOLINT
52 #include <sstream>
53 #include <vector>
54
55 #if GTEST_OS_LINUX
56
57 // TODO(kenton@google.com): Use autoconf to detect availability of
58 // gettimeofday().
59 # define GTEST_HAS_GETTIMEOFDAY_ 1
60
61 # include <fcntl.h> // NOLINT
62 # include <limits.h> // NOLINT
63 # include <sched.h> // NOLINT
64 // Declares vsnprintf(). This header is not available on Windows.
65 # include <strings.h> // NOLINT
66 # include <sys/mman.h> // NOLINT
67 # include <sys/time.h> // NOLINT
68 # include <unistd.h> // NOLINT
69 # include <string>
70
71 #elif GTEST_OS_SYMBIAN
72 # define GTEST_HAS_GETTIMEOFDAY_ 1
73 # include <sys/time.h> // NOLINT
74
75 #elif GTEST_OS_ZOS
76 # define GTEST_HAS_GETTIMEOFDAY_ 1
77 # include <sys/time.h> // NOLINT
78
79 // On z/OS we additionally need strings.h for strcasecmp.
80 # include <strings.h> // NOLINT
81
82 #elif GTEST_OS_WINDOWS_MOBILE // We are on Windows CE.
83
84 # include <windows.h> // NOLINT
85 # undef min
86
87 #elif GTEST_OS_WINDOWS // We are on Windows proper.
88
89 # include <io.h> // NOLINT
90 # include <sys/timeb.h> // NOLINT
91 # include <sys/types.h> // NOLINT
92 # include <sys/stat.h> // NOLINT
93
94 # if GTEST_OS_WINDOWS_MINGW
95 // MinGW has gettimeofday() but not _ftime64().
96 // TODO(kenton@google.com): Use autoconf to detect availability of
97 // gettimeofday().
98 // TODO(kenton@google.com): There are other ways to get the time on
99 // Windows, like GetTickCount() or GetSystemTimeAsFileTime(). MinGW
100 // supports these. consider using them instead.
101 # define GTEST_HAS_GETTIMEOFDAY_ 1
102 # include <sys/time.h> // NOLINT
103 # endif // GTEST_OS_WINDOWS_MINGW
104
105 // cpplint thinks that the header is already included, so we want to
106 // silence it.
107 # include <windows.h> // NOLINT
108 # undef min
109
110 #else
111
112 // Assume other platforms have gettimeofday().
113 // TODO(kenton@google.com): Use autoconf to detect availability of
114 // gettimeofday().
115 # define GTEST_HAS_GETTIMEOFDAY_ 1
116
117 // cpplint thinks that the header is already included, so we want to
118 // silence it.
119 # include <sys/time.h> // NOLINT
120 # include <unistd.h> // NOLINT
121
122 #endif // GTEST_OS_LINUX
123
124 #if GTEST_HAS_EXCEPTIONS
125 # include <stdexcept>
126 #endif
127
128 #if GTEST_CAN_STREAM_RESULTS_
129 # include <arpa/inet.h> // NOLINT
130 # include <netdb.h> // NOLINT
131 #endif
132
133 // Indicates that this translation unit is part of Google Test's
134 // implementation. It must come before gtest-internal-inl.h is
135 // included, or there will be a compiler error. This trick is to
136 // prevent a user from accidentally including gtest-internal-inl.h in
137 // his code.
138 #define GTEST_IMPLEMENTATION_ 1
139 #include "src/gtest-internal-inl.h"
140 #undef GTEST_IMPLEMENTATION_
141
142 #if GTEST_OS_WINDOWS
143 # define vsnprintf _vsnprintf
144 #endif // GTEST_OS_WINDOWS
145
146 namespace testing {
147
148 using internal::CountIf;
149 using internal::ForEach;
150 using internal::GetElementOr;
151 using internal::Shuffle;
152
153 // Constants.
154
155 // A test whose test case name or test name matches this filter is
156 // disabled and not run.
157 static const char kDisableTestFilter[] = "DISABLED_*:*/DISABLED_*";
158
159 // A test case whose name matches this filter is considered a death
160 // test case and will be run before test cases whose name doesn't
161 // match this filter.
162 static const char kDeathTestCaseFilter[] = "*DeathTest:*DeathTest/*";
163
164 // A test filter that matches everything.
165 static const char kUniversalFilter[] = "*";
166
167 // The default output file for XML output.
168 static const char kDefaultOutputFile[] = "test_detail.xml";
169
170 // The environment variable name for the test shard index.
171 static const char kTestShardIndex[] = "GTEST_SHARD_INDEX";
172 // The environment variable name for the total number of test shards.
173 static const char kTestTotalShards[] = "GTEST_TOTAL_SHARDS";
174 // The environment variable name for the test shard status file.
175 static const char kTestShardStatusFile[] = "GTEST_SHARD_STATUS_FILE";
176
177 namespace internal {
178
179 // The text used in failure messages to indicate the start of the
180 // stack trace.
181 const char kStackTraceMarker[] = "\nStack trace:\n";
182
183 // g_help_flag is true iff the --help flag or an equivalent form is
184 // specified on the command line.
185 bool g_help_flag = false;
186
187 } // namespace internal
188
GetDefaultFilter()189 static const char* GetDefaultFilter() {
190 return kUniversalFilter;
191 }
192
193 GTEST_DEFINE_bool_(
194 also_run_disabled_tests,
195 internal::BoolFromGTestEnv("also_run_disabled_tests", false),
196 "Run disabled tests too, in addition to the tests normally being run.");
197
198 GTEST_DEFINE_bool_(
199 break_on_failure,
200 internal::BoolFromGTestEnv("break_on_failure", false),
201 "True iff a failed assertion should be a debugger break-point.");
202
203 GTEST_DEFINE_bool_(
204 catch_exceptions,
205 internal::BoolFromGTestEnv("catch_exceptions", true),
206 "True iff " GTEST_NAME_
207 " should catch exceptions and treat them as test failures.");
208
209 GTEST_DEFINE_string_(
210 color,
211 internal::StringFromGTestEnv("color", "auto"),
212 "Whether to use colors in the output. Valid values: yes, no, "
213 "and auto. 'auto' means to use colors if the output is "
214 "being sent to a terminal and the TERM environment variable "
215 "is set to a terminal type that supports colors.");
216
217 GTEST_DEFINE_string_(
218 filter,
219 internal::StringFromGTestEnv("filter", GetDefaultFilter()),
220 "A colon-separated list of glob (not regex) patterns "
221 "for filtering the tests to run, optionally followed by a "
222 "'-' and a : separated list of negative patterns (tests to "
223 "exclude). A test is run if it matches one of the positive "
224 "patterns and does not match any of the negative patterns.");
225
226 GTEST_DEFINE_bool_(list_tests, false,
227 "List all tests without running them.");
228
229 GTEST_DEFINE_string_(
230 output,
231 internal::StringFromGTestEnv("output", ""),
232 "A format (currently must be \"xml\"), optionally followed "
233 "by a colon and an output file name or directory. A directory "
234 "is indicated by a trailing pathname separator. "
235 "Examples: \"xml:filename.xml\", \"xml::directoryname/\". "
236 "If a directory is specified, output files will be created "
237 "within that directory, with file-names based on the test "
238 "executable's name and, if necessary, made unique by adding "
239 "digits.");
240
241 GTEST_DEFINE_bool_(
242 print_time,
243 internal::BoolFromGTestEnv("print_time", true),
244 "True iff " GTEST_NAME_
245 " should display elapsed time in text output.");
246
247 GTEST_DEFINE_int32_(
248 random_seed,
249 internal::Int32FromGTestEnv("random_seed", 0),
250 "Random number seed to use when shuffling test orders. Must be in range "
251 "[1, 99999], or 0 to use a seed based on the current time.");
252
253 GTEST_DEFINE_int32_(
254 repeat,
255 internal::Int32FromGTestEnv("repeat", 1),
256 "How many times to repeat each test. Specify a negative number "
257 "for repeating forever. Useful for shaking out flaky tests.");
258
259 GTEST_DEFINE_bool_(
260 show_internal_stack_frames, false,
261 "True iff " GTEST_NAME_ " should include internal stack frames when "
262 "printing test failure stack traces.");
263
264 GTEST_DEFINE_bool_(
265 shuffle,
266 internal::BoolFromGTestEnv("shuffle", false),
267 "True iff " GTEST_NAME_
268 " should randomize tests' order on every run.");
269
270 GTEST_DEFINE_int32_(
271 stack_trace_depth,
272 internal::Int32FromGTestEnv("stack_trace_depth", kMaxStackTraceDepth),
273 "The maximum number of stack frames to print when an "
274 "assertion fails. The valid range is 0 through 100, inclusive.");
275
276 GTEST_DEFINE_string_(
277 stream_result_to,
278 internal::StringFromGTestEnv("stream_result_to", ""),
279 "This flag specifies the host name and the port number on which to stream "
280 "test results. Example: \"localhost:555\". The flag is effective only on "
281 "Linux.");
282
283 GTEST_DEFINE_bool_(
284 throw_on_failure,
285 internal::BoolFromGTestEnv("throw_on_failure", false),
286 "When this flag is specified, a failed assertion will throw an exception "
287 "if exceptions are enabled or exit the program with a non-zero code "
288 "otherwise.");
289
290 namespace internal {
291
292 // Generates a random number from [0, range), using a Linear
293 // Congruential Generator (LCG). Crashes if 'range' is 0 or greater
294 // than kMaxRange.
Generate(UInt32 range)295 UInt32 Random::Generate(UInt32 range) {
296 // These constants are the same as are used in glibc's rand(3).
297 state_ = (1103515245U*state_ + 12345U) % kMaxRange;
298
299 GTEST_CHECK_(range > 0)
300 << "Cannot generate a number in the range [0, 0).";
301 GTEST_CHECK_(range <= kMaxRange)
302 << "Generation of a number in [0, " << range << ") was requested, "
303 << "but this can only generate numbers in [0, " << kMaxRange << ").";
304
305 // Converting via modulus introduces a bit of downward bias, but
306 // it's simple, and a linear congruential generator isn't too good
307 // to begin with.
308 return state_ % range;
309 }
310
311 // GTestIsInitialized() returns true iff the user has initialized
312 // Google Test. Useful for catching the user mistake of not initializing
313 // Google Test before calling RUN_ALL_TESTS().
314 //
315 // A user must call testing::InitGoogleTest() to initialize Google
316 // Test. g_init_gtest_count is set to the number of times
317 // InitGoogleTest() has been called. We don't protect this variable
318 // under a mutex as it is only accessed in the main thread.
319 GTEST_API_ int g_init_gtest_count = 0;
GTestIsInitialized()320 static bool GTestIsInitialized() { return g_init_gtest_count != 0; }
321
322 // Iterates over a vector of TestCases, keeping a running sum of the
323 // results of calling a given int-returning method on each.
324 // Returns the sum.
SumOverTestCaseList(const std::vector<TestCase * > & case_list,int (TestCase::* method)()const)325 static int SumOverTestCaseList(const std::vector<TestCase*>& case_list,
326 int (TestCase::*method)() const) {
327 int sum = 0;
328 for (size_t i = 0; i < case_list.size(); i++) {
329 sum += (case_list[i]->*method)();
330 }
331 return sum;
332 }
333
334 // Returns true iff the test case passed.
TestCasePassed(const TestCase * test_case)335 static bool TestCasePassed(const TestCase* test_case) {
336 return test_case->should_run() && test_case->Passed();
337 }
338
339 // Returns true iff the test case failed.
TestCaseFailed(const TestCase * test_case)340 static bool TestCaseFailed(const TestCase* test_case) {
341 return test_case->should_run() && test_case->Failed();
342 }
343
344 // Returns true iff test_case contains at least one test that should
345 // run.
ShouldRunTestCase(const TestCase * test_case)346 static bool ShouldRunTestCase(const TestCase* test_case) {
347 return test_case->should_run();
348 }
349
350 // AssertHelper constructor.
AssertHelper(TestPartResult::Type type,const char * file,int line,const char * message)351 AssertHelper::AssertHelper(TestPartResult::Type type,
352 const char* file,
353 int line,
354 const char* message)
355 : data_(new AssertHelperData(type, file, line, message)) {
356 }
357
~AssertHelper()358 AssertHelper::~AssertHelper() {
359 delete data_;
360 }
361
362 // Message assignment, for assertion streaming support.
operator =(const Message & message) const363 void AssertHelper::operator=(const Message& message) const {
364 UnitTest::GetInstance()->
365 AddTestPartResult(data_->type, data_->file, data_->line,
366 AppendUserMessage(data_->message, message),
367 UnitTest::GetInstance()->impl()
368 ->CurrentOsStackTraceExceptTop(1)
369 // Skips the stack frame for this function itself.
370 ); // NOLINT
371 }
372
373 // Mutex for linked pointers.
374 GTEST_API_ GTEST_DEFINE_STATIC_MUTEX_(g_linked_ptr_mutex);
375
376 // Application pathname gotten in InitGoogleTest.
377 std::string g_executable_path;
378
379 // Returns the current application's name, removing directory path if that
380 // is present.
GetCurrentExecutableName()381 FilePath GetCurrentExecutableName() {
382 FilePath result;
383
384 #if GTEST_OS_WINDOWS
385 result.Set(FilePath(g_executable_path).RemoveExtension("exe"));
386 #else
387 result.Set(FilePath(g_executable_path));
388 #endif // GTEST_OS_WINDOWS
389
390 return result.RemoveDirectoryName();
391 }
392
393 // Functions for processing the gtest_output flag.
394
395 // Returns the output format, or "" for normal printed output.
GetOutputFormat()396 std::string UnitTestOptions::GetOutputFormat() {
397 const char* const gtest_output_flag = GTEST_FLAG(output).c_str();
398 if (gtest_output_flag == NULL) return std::string("");
399
400 const char* const colon = strchr(gtest_output_flag, ':');
401 return (colon == NULL) ?
402 std::string(gtest_output_flag) :
403 std::string(gtest_output_flag, colon - gtest_output_flag);
404 }
405
406 // Returns the name of the requested output file, or the default if none
407 // was explicitly specified.
GetAbsolutePathToOutputFile()408 std::string UnitTestOptions::GetAbsolutePathToOutputFile() {
409 const char* const gtest_output_flag = GTEST_FLAG(output).c_str();
410 if (gtest_output_flag == NULL)
411 return "";
412
413 const char* const colon = strchr(gtest_output_flag, ':');
414 if (colon == NULL)
415 return internal::FilePath::ConcatPaths(
416 internal::FilePath(
417 UnitTest::GetInstance()->original_working_dir()),
418 internal::FilePath(kDefaultOutputFile)).string();
419
420 internal::FilePath output_name(colon + 1);
421 if (!output_name.IsAbsolutePath())
422 // TODO(wan@google.com): on Windows \some\path is not an absolute
423 // path (as its meaning depends on the current drive), yet the
424 // following logic for turning it into an absolute path is wrong.
425 // Fix it.
426 output_name = internal::FilePath::ConcatPaths(
427 internal::FilePath(UnitTest::GetInstance()->original_working_dir()),
428 internal::FilePath(colon + 1));
429
430 if (!output_name.IsDirectory())
431 return output_name.string();
432
433 internal::FilePath result(internal::FilePath::GenerateUniqueFileName(
434 output_name, internal::GetCurrentExecutableName(),
435 GetOutputFormat().c_str()));
436 return result.string();
437 }
438
439 // Returns true iff the wildcard pattern matches the string. The
440 // first ':' or '\0' character in pattern marks the end of it.
441 //
442 // This recursive algorithm isn't very efficient, but is clear and
443 // works well enough for matching test names, which are short.
PatternMatchesString(const char * pattern,const char * str)444 bool UnitTestOptions::PatternMatchesString(const char *pattern,
445 const char *str) {
446 switch (*pattern) {
447 case '\0':
448 case ':': // Either ':' or '\0' marks the end of the pattern.
449 return *str == '\0';
450 case '?': // Matches any single character.
451 return *str != '\0' && PatternMatchesString(pattern + 1, str + 1);
452 case '*': // Matches any string (possibly empty) of characters.
453 return (*str != '\0' && PatternMatchesString(pattern, str + 1)) ||
454 PatternMatchesString(pattern + 1, str);
455 default: // Non-special character. Matches itself.
456 return *pattern == *str &&
457 PatternMatchesString(pattern + 1, str + 1);
458 }
459 }
460
MatchesFilter(const std::string & name,const char * filter)461 bool UnitTestOptions::MatchesFilter(
462 const std::string& name, const char* filter) {
463 const char *cur_pattern = filter;
464 for (;;) {
465 if (PatternMatchesString(cur_pattern, name.c_str())) {
466 return true;
467 }
468
469 // Finds the next pattern in the filter.
470 cur_pattern = strchr(cur_pattern, ':');
471
472 // Returns if no more pattern can be found.
473 if (cur_pattern == NULL) {
474 return false;
475 }
476
477 // Skips the pattern separater (the ':' character).
478 cur_pattern++;
479 }
480 }
481
482 // Returns true iff the user-specified filter matches the test case
483 // name and the test name.
FilterMatchesTest(const std::string & test_case_name,const std::string & test_name)484 bool UnitTestOptions::FilterMatchesTest(const std::string &test_case_name,
485 const std::string &test_name) {
486 const std::string& full_name = test_case_name + "." + test_name.c_str();
487
488 // Split --gtest_filter at '-', if there is one, to separate into
489 // positive filter and negative filter portions
490 const char* const p = GTEST_FLAG(filter).c_str();
491 const char* const dash = strchr(p, '-');
492 std::string positive;
493 std::string negative;
494 if (dash == NULL) {
495 positive = GTEST_FLAG(filter).c_str(); // Whole string is a positive filter
496 negative = "";
497 } else {
498 positive = std::string(p, dash); // Everything up to the dash
499 negative = std::string(dash + 1); // Everything after the dash
500 if (positive.empty()) {
501 // Treat '-test1' as the same as '*-test1'
502 positive = kUniversalFilter;
503 }
504 }
505
506 // A filter is a colon-separated list of patterns. It matches a
507 // test if any pattern in it matches the test.
508 return (MatchesFilter(full_name, positive.c_str()) &&
509 !MatchesFilter(full_name, negative.c_str()));
510 }
511
512 #if GTEST_HAS_SEH
513 // Returns EXCEPTION_EXECUTE_HANDLER if Google Test should handle the
514 // given SEH exception, or EXCEPTION_CONTINUE_SEARCH otherwise.
515 // This function is useful as an __except condition.
GTestShouldProcessSEH(DWORD exception_code)516 int UnitTestOptions::GTestShouldProcessSEH(DWORD exception_code) {
517 // Google Test should handle a SEH exception if:
518 // 1. the user wants it to, AND
519 // 2. this is not a breakpoint exception, AND
520 // 3. this is not a C++ exception (VC++ implements them via SEH,
521 // apparently).
522 //
523 // SEH exception code for C++ exceptions.
524 // (see http://support.microsoft.com/kb/185294 for more information).
525 const DWORD kCxxExceptionCode = 0xe06d7363;
526
527 bool should_handle = true;
528
529 if (!GTEST_FLAG(catch_exceptions))
530 should_handle = false;
531 else if (exception_code == EXCEPTION_BREAKPOINT)
532 should_handle = false;
533 else if (exception_code == kCxxExceptionCode)
534 should_handle = false;
535
536 return should_handle ? EXCEPTION_EXECUTE_HANDLER : EXCEPTION_CONTINUE_SEARCH;
537 }
538 #endif // GTEST_HAS_SEH
539
540 } // namespace internal
541
542 // The c'tor sets this object as the test part result reporter used by
543 // Google Test. The 'result' parameter specifies where to report the
544 // results. Intercepts only failures from the current thread.
ScopedFakeTestPartResultReporter(TestPartResultArray * result)545 ScopedFakeTestPartResultReporter::ScopedFakeTestPartResultReporter(
546 TestPartResultArray* result)
547 : intercept_mode_(INTERCEPT_ONLY_CURRENT_THREAD),
548 result_(result) {
549 Init();
550 }
551
552 // The c'tor sets this object as the test part result reporter used by
553 // Google Test. The 'result' parameter specifies where to report the
554 // results.
ScopedFakeTestPartResultReporter(InterceptMode intercept_mode,TestPartResultArray * result)555 ScopedFakeTestPartResultReporter::ScopedFakeTestPartResultReporter(
556 InterceptMode intercept_mode, TestPartResultArray* result)
557 : intercept_mode_(intercept_mode),
558 result_(result) {
559 Init();
560 }
561
Init()562 void ScopedFakeTestPartResultReporter::Init() {
563 internal::UnitTestImpl* const impl = internal::GetUnitTestImpl();
564 if (intercept_mode_ == INTERCEPT_ALL_THREADS) {
565 old_reporter_ = impl->GetGlobalTestPartResultReporter();
566 impl->SetGlobalTestPartResultReporter(this);
567 } else {
568 old_reporter_ = impl->GetTestPartResultReporterForCurrentThread();
569 impl->SetTestPartResultReporterForCurrentThread(this);
570 }
571 }
572
573 // The d'tor restores the test part result reporter used by Google Test
574 // before.
~ScopedFakeTestPartResultReporter()575 ScopedFakeTestPartResultReporter::~ScopedFakeTestPartResultReporter() {
576 internal::UnitTestImpl* const impl = internal::GetUnitTestImpl();
577 if (intercept_mode_ == INTERCEPT_ALL_THREADS) {
578 impl->SetGlobalTestPartResultReporter(old_reporter_);
579 } else {
580 impl->SetTestPartResultReporterForCurrentThread(old_reporter_);
581 }
582 }
583
584 // Increments the test part result count and remembers the result.
585 // This method is from the TestPartResultReporterInterface interface.
ReportTestPartResult(const TestPartResult & result)586 void ScopedFakeTestPartResultReporter::ReportTestPartResult(
587 const TestPartResult& result) {
588 result_->Append(result);
589 }
590
591 namespace internal {
592
593 // Returns the type ID of ::testing::Test. We should always call this
594 // instead of GetTypeId< ::testing::Test>() to get the type ID of
595 // testing::Test. This is to work around a suspected linker bug when
596 // using Google Test as a framework on Mac OS X. The bug causes
597 // GetTypeId< ::testing::Test>() to return different values depending
598 // on whether the call is from the Google Test framework itself or
599 // from user test code. GetTestTypeId() is guaranteed to always
600 // return the same value, as it always calls GetTypeId<>() from the
601 // gtest.cc, which is within the Google Test framework.
GetTestTypeId()602 TypeId GetTestTypeId() {
603 return GetTypeId<Test>();
604 }
605
606 // The value of GetTestTypeId() as seen from within the Google Test
607 // library. This is solely for testing GetTestTypeId().
608 extern const TypeId kTestTypeIdInGoogleTest = GetTestTypeId();
609
610 // This predicate-formatter checks that 'results' contains a test part
611 // failure of the given type and that the failure message contains the
612 // given substring.
HasOneFailure(const char *,const char *,const char *,const TestPartResultArray & results,TestPartResult::Type type,const string & substr)613 AssertionResult HasOneFailure(const char* /* results_expr */,
614 const char* /* type_expr */,
615 const char* /* substr_expr */,
616 const TestPartResultArray& results,
617 TestPartResult::Type type,
618 const string& substr) {
619 const std::string expected(type == TestPartResult::kFatalFailure ?
620 "1 fatal failure" :
621 "1 non-fatal failure");
622 Message msg;
623 if (results.size() != 1) {
624 msg << "Expected: " << expected << "\n"
625 << " Actual: " << results.size() << " failures";
626 for (int i = 0; i < results.size(); i++) {
627 msg << "\n" << results.GetTestPartResult(i);
628 }
629 return AssertionFailure() << msg;
630 }
631
632 const TestPartResult& r = results.GetTestPartResult(0);
633 if (r.type() != type) {
634 return AssertionFailure() << "Expected: " << expected << "\n"
635 << " Actual:\n"
636 << r;
637 }
638
639 if (strstr(r.message(), substr.c_str()) == NULL) {
640 return AssertionFailure() << "Expected: " << expected << " containing \""
641 << substr << "\"\n"
642 << " Actual:\n"
643 << r;
644 }
645
646 return AssertionSuccess();
647 }
648
649 // The constructor of SingleFailureChecker remembers where to look up
650 // test part results, what type of failure we expect, and what
651 // substring the failure message should contain.
SingleFailureChecker(const TestPartResultArray * results,TestPartResult::Type type,const string & substr)652 SingleFailureChecker:: SingleFailureChecker(
653 const TestPartResultArray* results,
654 TestPartResult::Type type,
655 const string& substr)
656 : results_(results),
657 type_(type),
658 substr_(substr) {}
659
660 // The destructor of SingleFailureChecker verifies that the given
661 // TestPartResultArray contains exactly one failure that has the given
662 // type and contains the given substring. If that's not the case, a
663 // non-fatal failure will be generated.
~SingleFailureChecker()664 SingleFailureChecker::~SingleFailureChecker() {
665 EXPECT_PRED_FORMAT3(HasOneFailure, *results_, type_, substr_);
666 }
667
DefaultGlobalTestPartResultReporter(UnitTestImpl * unit_test)668 DefaultGlobalTestPartResultReporter::DefaultGlobalTestPartResultReporter(
669 UnitTestImpl* unit_test) : unit_test_(unit_test) {}
670
ReportTestPartResult(const TestPartResult & result)671 void DefaultGlobalTestPartResultReporter::ReportTestPartResult(
672 const TestPartResult& result) {
673 unit_test_->current_test_result()->AddTestPartResult(result);
674 unit_test_->listeners()->repeater()->OnTestPartResult(result);
675 }
676
DefaultPerThreadTestPartResultReporter(UnitTestImpl * unit_test)677 DefaultPerThreadTestPartResultReporter::DefaultPerThreadTestPartResultReporter(
678 UnitTestImpl* unit_test) : unit_test_(unit_test) {}
679
ReportTestPartResult(const TestPartResult & result)680 void DefaultPerThreadTestPartResultReporter::ReportTestPartResult(
681 const TestPartResult& result) {
682 unit_test_->GetGlobalTestPartResultReporter()->ReportTestPartResult(result);
683 }
684
685 // Returns the global test part result reporter.
686 TestPartResultReporterInterface*
GetGlobalTestPartResultReporter()687 UnitTestImpl::GetGlobalTestPartResultReporter() {
688 internal::MutexLock lock(&global_test_part_result_reporter_mutex_);
689 return global_test_part_result_repoter_;
690 }
691
692 // Sets the global test part result reporter.
SetGlobalTestPartResultReporter(TestPartResultReporterInterface * reporter)693 void UnitTestImpl::SetGlobalTestPartResultReporter(
694 TestPartResultReporterInterface* reporter) {
695 internal::MutexLock lock(&global_test_part_result_reporter_mutex_);
696 global_test_part_result_repoter_ = reporter;
697 }
698
699 // Returns the test part result reporter for the current thread.
700 TestPartResultReporterInterface*
GetTestPartResultReporterForCurrentThread()701 UnitTestImpl::GetTestPartResultReporterForCurrentThread() {
702 return per_thread_test_part_result_reporter_.get();
703 }
704
705 // Sets the test part result reporter for the current thread.
SetTestPartResultReporterForCurrentThread(TestPartResultReporterInterface * reporter)706 void UnitTestImpl::SetTestPartResultReporterForCurrentThread(
707 TestPartResultReporterInterface* reporter) {
708 per_thread_test_part_result_reporter_.set(reporter);
709 }
710
711 // Gets the number of successful test cases.
successful_test_case_count() const712 int UnitTestImpl::successful_test_case_count() const {
713 return CountIf(test_cases_, TestCasePassed);
714 }
715
716 // Gets the number of failed test cases.
failed_test_case_count() const717 int UnitTestImpl::failed_test_case_count() const {
718 return CountIf(test_cases_, TestCaseFailed);
719 }
720
721 // Gets the number of all test cases.
total_test_case_count() const722 int UnitTestImpl::total_test_case_count() const {
723 return static_cast<int>(test_cases_.size());
724 }
725
726 // Gets the number of all test cases that contain at least one test
727 // that should run.
test_case_to_run_count() const728 int UnitTestImpl::test_case_to_run_count() const {
729 return CountIf(test_cases_, ShouldRunTestCase);
730 }
731
732 // Gets the number of successful tests.
successful_test_count() const733 int UnitTestImpl::successful_test_count() const {
734 return SumOverTestCaseList(test_cases_, &TestCase::successful_test_count);
735 }
736
737 // Gets the number of failed tests.
failed_test_count() const738 int UnitTestImpl::failed_test_count() const {
739 return SumOverTestCaseList(test_cases_, &TestCase::failed_test_count);
740 }
741
742 // Gets the number of disabled tests that will be reported in the XML report.
reportable_disabled_test_count() const743 int UnitTestImpl::reportable_disabled_test_count() const {
744 return SumOverTestCaseList(test_cases_,
745 &TestCase::reportable_disabled_test_count);
746 }
747
748 // Gets the number of disabled tests.
disabled_test_count() const749 int UnitTestImpl::disabled_test_count() const {
750 return SumOverTestCaseList(test_cases_, &TestCase::disabled_test_count);
751 }
752
753 // Gets the number of tests to be printed in the XML report.
reportable_test_count() const754 int UnitTestImpl::reportable_test_count() const {
755 return SumOverTestCaseList(test_cases_, &TestCase::reportable_test_count);
756 }
757
758 // Gets the number of all tests.
total_test_count() const759 int UnitTestImpl::total_test_count() const {
760 return SumOverTestCaseList(test_cases_, &TestCase::total_test_count);
761 }
762
763 // Gets the number of tests that should run.
test_to_run_count() const764 int UnitTestImpl::test_to_run_count() const {
765 return SumOverTestCaseList(test_cases_, &TestCase::test_to_run_count);
766 }
767
768 // Returns the current OS stack trace as an std::string.
769 //
770 // The maximum number of stack frames to be included is specified by
771 // the gtest_stack_trace_depth flag. The skip_count parameter
772 // specifies the number of top frames to be skipped, which doesn't
773 // count against the number of frames to be included.
774 //
775 // For example, if Foo() calls Bar(), which in turn calls
776 // CurrentOsStackTraceExceptTop(1), Foo() will be included in the
777 // trace but Bar() and CurrentOsStackTraceExceptTop() won't.
CurrentOsStackTraceExceptTop(int skip_count)778 std::string UnitTestImpl::CurrentOsStackTraceExceptTop(int skip_count) {
779 (void)skip_count;
780 return "";
781 }
782
783 // Returns the current time in milliseconds.
GetTimeInMillis()784 TimeInMillis GetTimeInMillis() {
785 #if GTEST_OS_WINDOWS_MOBILE || defined(__BORLANDC__)
786 // Difference between 1970-01-01 and 1601-01-01 in milliseconds.
787 // http://analogous.blogspot.com/2005/04/epoch.html
788 const TimeInMillis kJavaEpochToWinFileTimeDelta =
789 static_cast<TimeInMillis>(116444736UL) * 100000UL;
790 const DWORD kTenthMicrosInMilliSecond = 10000;
791
792 SYSTEMTIME now_systime;
793 FILETIME now_filetime;
794 ULARGE_INTEGER now_int64;
795 // TODO(kenton@google.com): Shouldn't this just use
796 // GetSystemTimeAsFileTime()?
797 GetSystemTime(&now_systime);
798 if (SystemTimeToFileTime(&now_systime, &now_filetime)) {
799 now_int64.LowPart = now_filetime.dwLowDateTime;
800 now_int64.HighPart = now_filetime.dwHighDateTime;
801 now_int64.QuadPart = (now_int64.QuadPart / kTenthMicrosInMilliSecond) -
802 kJavaEpochToWinFileTimeDelta;
803 return now_int64.QuadPart;
804 }
805 return 0;
806 #elif GTEST_OS_WINDOWS && !GTEST_HAS_GETTIMEOFDAY_
807 __timeb64 now;
808
809 // MSVC 8 deprecates _ftime64(), so we want to suppress warning 4996
810 // (deprecated function) there.
811 // TODO(kenton@google.com): Use GetTickCount()? Or use
812 // SystemTimeToFileTime()
813 GTEST_DISABLE_MSC_WARNINGS_PUSH_(4996)
814 _ftime64(&now);
815 GTEST_DISABLE_MSC_WARNINGS_POP_()
816
817 return static_cast<TimeInMillis>(now.time) * 1000 + now.millitm;
818 #elif GTEST_HAS_GETTIMEOFDAY_
819 struct timeval now;
820 gettimeofday(&now, NULL);
821 return static_cast<TimeInMillis>(now.tv_sec) * 1000 + now.tv_usec / 1000;
822 #else
823 # error "Don't know how to get the current time on your system."
824 #endif
825 }
826
827 // Utilities
828
829 // class String.
830
831 #if GTEST_OS_WINDOWS_MOBILE
832 // Creates a UTF-16 wide string from the given ANSI string, allocating
833 // memory using new. The caller is responsible for deleting the return
834 // value using delete[]. Returns the wide string, or NULL if the
835 // input is NULL.
AnsiToUtf16(const char * ansi)836 LPCWSTR String::AnsiToUtf16(const char* ansi) {
837 if (!ansi) return NULL;
838 const int length = strlen(ansi);
839 const int unicode_length =
840 MultiByteToWideChar(CP_ACP, 0, ansi, length,
841 NULL, 0);
842 WCHAR* unicode = new WCHAR[unicode_length + 1];
843 MultiByteToWideChar(CP_ACP, 0, ansi, length,
844 unicode, unicode_length);
845 unicode[unicode_length] = 0;
846 return unicode;
847 }
848
849 // Creates an ANSI string from the given wide string, allocating
850 // memory using new. The caller is responsible for deleting the return
851 // value using delete[]. Returns the ANSI string, or NULL if the
852 // input is NULL.
Utf16ToAnsi(LPCWSTR utf16_str)853 const char* String::Utf16ToAnsi(LPCWSTR utf16_str) {
854 if (!utf16_str) return NULL;
855 const int ansi_length =
856 WideCharToMultiByte(CP_ACP, 0, utf16_str, -1,
857 NULL, 0, NULL, NULL);
858 char* ansi = new char[ansi_length + 1];
859 WideCharToMultiByte(CP_ACP, 0, utf16_str, -1,
860 ansi, ansi_length, NULL, NULL);
861 ansi[ansi_length] = 0;
862 return ansi;
863 }
864
865 #endif // GTEST_OS_WINDOWS_MOBILE
866
867 // Compares two C strings. Returns true iff they have the same content.
868 //
869 // Unlike strcmp(), this function can handle NULL argument(s). A NULL
870 // C string is considered different to any non-NULL C string,
871 // including the empty string.
CStringEquals(const char * lhs,const char * rhs)872 bool String::CStringEquals(const char * lhs, const char * rhs) {
873 if ( lhs == NULL ) return rhs == NULL;
874
875 if ( rhs == NULL ) return false;
876
877 return strcmp(lhs, rhs) == 0;
878 }
879
880 #if GTEST_HAS_STD_WSTRING || GTEST_HAS_GLOBAL_WSTRING
881
882 // Converts an array of wide chars to a narrow string using the UTF-8
883 // encoding, and streams the result to the given Message object.
StreamWideCharsToMessage(const wchar_t * wstr,size_t length,Message * msg)884 static void StreamWideCharsToMessage(const wchar_t* wstr, size_t length,
885 Message* msg) {
886 for (size_t i = 0; i != length; ) { // NOLINT
887 if (wstr[i] != L'\0') {
888 *msg << WideStringToUtf8(wstr + i, static_cast<int>(length - i));
889 while (i != length && wstr[i] != L'\0')
890 i++;
891 } else {
892 *msg << '\0';
893 i++;
894 }
895 }
896 }
897
898 #endif // GTEST_HAS_STD_WSTRING || GTEST_HAS_GLOBAL_WSTRING
899
900 } // namespace internal
901
902 // Constructs an empty Message.
903 // We allocate the stringstream separately because otherwise each use of
904 // ASSERT/EXPECT in a procedure adds over 200 bytes to the procedure's
905 // stack frame leading to huge stack frames in some cases; gcc does not reuse
906 // the stack space.
Message()907 Message::Message() : ss_(new ::std::stringstream) {
908 // By default, we want there to be enough precision when printing
909 // a double to a Message.
910 *ss_ << std::setprecision(std::numeric_limits<double>::digits10 + 2);
911 }
912
913 // These two overloads allow streaming a wide C string to a Message
914 // using the UTF-8 encoding.
operator <<(const wchar_t * wide_c_str)915 Message& Message::operator <<(const wchar_t* wide_c_str) {
916 return *this << internal::String::ShowWideCString(wide_c_str);
917 }
operator <<(wchar_t * wide_c_str)918 Message& Message::operator <<(wchar_t* wide_c_str) {
919 return *this << internal::String::ShowWideCString(wide_c_str);
920 }
921
922 #if GTEST_HAS_STD_WSTRING
923 // Converts the given wide string to a narrow string using the UTF-8
924 // encoding, and streams the result to this Message object.
operator <<(const::std::wstring & wstr)925 Message& Message::operator <<(const ::std::wstring& wstr) {
926 internal::StreamWideCharsToMessage(wstr.c_str(), wstr.length(), this);
927 return *this;
928 }
929 #endif // GTEST_HAS_STD_WSTRING
930
931 #if GTEST_HAS_GLOBAL_WSTRING
932 // Converts the given wide string to a narrow string using the UTF-8
933 // encoding, and streams the result to this Message object.
operator <<(const::wstring & wstr)934 Message& Message::operator <<(const ::wstring& wstr) {
935 internal::StreamWideCharsToMessage(wstr.c_str(), wstr.length(), this);
936 return *this;
937 }
938 #endif // GTEST_HAS_GLOBAL_WSTRING
939
940 // Gets the text streamed to this object so far as an std::string.
941 // Each '\0' character in the buffer is replaced with "\\0".
GetString() const942 std::string Message::GetString() const {
943 return internal::StringStreamToString(ss_.get());
944 }
945
946 // AssertionResult constructors.
947 // Used in EXPECT_TRUE/FALSE(assertion_result).
AssertionResult(const AssertionResult & other)948 AssertionResult::AssertionResult(const AssertionResult& other)
949 : success_(other.success_),
950 message_(other.message_.get() != NULL ?
951 new ::std::string(*other.message_) :
952 static_cast< ::std::string*>(NULL)) {
953 }
954
955 // Swaps two AssertionResults.
swap(AssertionResult & other)956 void AssertionResult::swap(AssertionResult& other) {
957 using std::swap;
958 swap(success_, other.success_);
959 swap(message_, other.message_);
960 }
961
962 // Returns the assertion's negation. Used with EXPECT/ASSERT_FALSE.
operator !() const963 AssertionResult AssertionResult::operator!() const {
964 AssertionResult negation(!success_);
965 if (message_.get() != NULL)
966 negation << *message_;
967 return negation;
968 }
969
970 // Makes a successful assertion result.
AssertionSuccess()971 AssertionResult AssertionSuccess() {
972 return AssertionResult(true);
973 }
974
975 // Makes a failed assertion result.
AssertionFailure()976 AssertionResult AssertionFailure() {
977 return AssertionResult(false);
978 }
979
980 // Makes a failed assertion result with the given failure message.
981 // Deprecated; use AssertionFailure() << message.
AssertionFailure(const Message & message)982 AssertionResult AssertionFailure(const Message& message) {
983 return AssertionFailure() << message;
984 }
985
986 namespace internal {
987
988 namespace edit_distance {
CalculateOptimalEdits(const std::vector<size_t> & left,const std::vector<size_t> & right)989 std::vector<EditType> CalculateOptimalEdits(const std::vector<size_t>& left,
990 const std::vector<size_t>& right) {
991 std::vector<std::vector<double> > costs(
992 left.size() + 1, std::vector<double>(right.size() + 1));
993 std::vector<std::vector<EditType> > best_move(
994 left.size() + 1, std::vector<EditType>(right.size() + 1));
995
996 // Populate for empty right.
997 for (size_t l_i = 0; l_i < costs.size(); ++l_i) {
998 costs[l_i][0] = static_cast<double>(l_i);
999 best_move[l_i][0] = kRemove;
1000 }
1001 // Populate for empty left.
1002 for (size_t r_i = 1; r_i < costs[0].size(); ++r_i) {
1003 costs[0][r_i] = static_cast<double>(r_i);
1004 best_move[0][r_i] = kAdd;
1005 }
1006
1007 for (size_t l_i = 0; l_i < left.size(); ++l_i) {
1008 for (size_t r_i = 0; r_i < right.size(); ++r_i) {
1009 if (left[l_i] == right[r_i]) {
1010 // Found a match. Consume it.
1011 costs[l_i + 1][r_i + 1] = costs[l_i][r_i];
1012 best_move[l_i + 1][r_i + 1] = kMatch;
1013 continue;
1014 }
1015
1016 const double add = costs[l_i + 1][r_i];
1017 const double remove = costs[l_i][r_i + 1];
1018 const double replace = costs[l_i][r_i];
1019 if (add < remove && add < replace) {
1020 costs[l_i + 1][r_i + 1] = add + 1;
1021 best_move[l_i + 1][r_i + 1] = kAdd;
1022 } else if (remove < add && remove < replace) {
1023 costs[l_i + 1][r_i + 1] = remove + 1;
1024 best_move[l_i + 1][r_i + 1] = kRemove;
1025 } else {
1026 // We make replace a little more expensive than add/remove to lower
1027 // their priority.
1028 costs[l_i + 1][r_i + 1] = replace + 1.00001;
1029 best_move[l_i + 1][r_i + 1] = kReplace;
1030 }
1031 }
1032 }
1033
1034 // Reconstruct the best path. We do it in reverse order.
1035 std::vector<EditType> best_path;
1036 for (size_t l_i = left.size(), r_i = right.size(); l_i > 0 || r_i > 0;) {
1037 EditType move = best_move[l_i][r_i];
1038 best_path.push_back(move);
1039 l_i -= move != kAdd;
1040 r_i -= move != kRemove;
1041 }
1042 std::reverse(best_path.begin(), best_path.end());
1043 return best_path;
1044 }
1045
1046 namespace {
1047
1048 // Helper class to convert string into ids with deduplication.
1049 class InternalStrings {
1050 public:
GetId(const std::string & str)1051 size_t GetId(const std::string& str) {
1052 IdMap::iterator it = ids_.find(str);
1053 if (it != ids_.end()) return it->second;
1054 size_t id = ids_.size();
1055 return ids_[str] = id;
1056 }
1057
1058 private:
1059 typedef std::map<std::string, size_t> IdMap;
1060 IdMap ids_;
1061 };
1062
1063 } // namespace
1064
CalculateOptimalEdits(const std::vector<std::string> & left,const std::vector<std::string> & right)1065 std::vector<EditType> CalculateOptimalEdits(
1066 const std::vector<std::string>& left,
1067 const std::vector<std::string>& right) {
1068 std::vector<size_t> left_ids, right_ids;
1069 {
1070 InternalStrings intern_table;
1071 for (size_t i = 0; i < left.size(); ++i) {
1072 left_ids.push_back(intern_table.GetId(left[i]));
1073 }
1074 for (size_t i = 0; i < right.size(); ++i) {
1075 right_ids.push_back(intern_table.GetId(right[i]));
1076 }
1077 }
1078 return CalculateOptimalEdits(left_ids, right_ids);
1079 }
1080
1081 namespace {
1082
1083 // Helper class that holds the state for one hunk and prints it out to the
1084 // stream.
1085 // It reorders adds/removes when possible to group all removes before all
1086 // adds. It also adds the hunk header before printint into the stream.
1087 class Hunk {
1088 public:
Hunk(size_t left_start,size_t right_start)1089 Hunk(size_t left_start, size_t right_start)
1090 : left_start_(left_start),
1091 right_start_(right_start),
1092 adds_(),
1093 removes_(),
1094 common_() {}
1095
PushLine(char edit,const char * line)1096 void PushLine(char edit, const char* line) {
1097 switch (edit) {
1098 case ' ':
1099 ++common_;
1100 FlushEdits();
1101 hunk_.push_back(std::make_pair(' ', line));
1102 break;
1103 case '-':
1104 ++removes_;
1105 hunk_removes_.push_back(std::make_pair('-', line));
1106 break;
1107 case '+':
1108 ++adds_;
1109 hunk_adds_.push_back(std::make_pair('+', line));
1110 break;
1111 }
1112 }
1113
PrintTo(std::ostream * os)1114 void PrintTo(std::ostream* os) {
1115 PrintHeader(os);
1116 FlushEdits();
1117 for (std::list<std::pair<char, const char*> >::const_iterator it =
1118 hunk_.begin();
1119 it != hunk_.end(); ++it) {
1120 *os << it->first << it->second << "\n";
1121 }
1122 }
1123
has_edits() const1124 bool has_edits() const { return adds_ || removes_; }
1125
1126 private:
FlushEdits()1127 void FlushEdits() {
1128 hunk_.splice(hunk_.end(), hunk_removes_);
1129 hunk_.splice(hunk_.end(), hunk_adds_);
1130 }
1131
1132 // Print a unified diff header for one hunk.
1133 // The format is
1134 // "@@ -<left_start>,<left_length> +<right_start>,<right_length> @@"
1135 // where the left/right parts are ommitted if unnecessary.
PrintHeader(std::ostream * ss) const1136 void PrintHeader(std::ostream* ss) const {
1137 *ss << "@@ ";
1138 if (removes_) {
1139 *ss << "-" << left_start_ << "," << (removes_ + common_);
1140 }
1141 if (removes_ && adds_) {
1142 *ss << " ";
1143 }
1144 if (adds_) {
1145 *ss << "+" << right_start_ << "," << (adds_ + common_);
1146 }
1147 *ss << " @@\n";
1148 }
1149
1150 size_t left_start_, right_start_;
1151 size_t adds_, removes_, common_;
1152 std::list<std::pair<char, const char*> > hunk_, hunk_adds_, hunk_removes_;
1153 };
1154
1155 } // namespace
1156
1157 // Create a list of diff hunks in Unified diff format.
1158 // Each hunk has a header generated by PrintHeader above plus a body with
1159 // lines prefixed with ' ' for no change, '-' for deletion and '+' for
1160 // addition.
1161 // 'context' represents the desired unchanged prefix/suffix around the diff.
1162 // If two hunks are close enough that their contexts overlap, then they are
1163 // joined into one hunk.
CreateUnifiedDiff(const std::vector<std::string> & left,const std::vector<std::string> & right,size_t context)1164 std::string CreateUnifiedDiff(const std::vector<std::string>& left,
1165 const std::vector<std::string>& right,
1166 size_t context) {
1167 const std::vector<EditType> edits = CalculateOptimalEdits(left, right);
1168
1169 size_t l_i = 0, r_i = 0, edit_i = 0;
1170 std::stringstream ss;
1171 while (edit_i < edits.size()) {
1172 // Find first edit.
1173 while (edit_i < edits.size() && edits[edit_i] == kMatch) {
1174 ++l_i;
1175 ++r_i;
1176 ++edit_i;
1177 }
1178
1179 // Find the first line to include in the hunk.
1180 const size_t prefix_context = std::min(l_i, context);
1181 Hunk hunk(l_i - prefix_context + 1, r_i - prefix_context + 1);
1182 for (size_t i = prefix_context; i > 0; --i) {
1183 hunk.PushLine(' ', left[l_i - i].c_str());
1184 }
1185
1186 // Iterate the edits until we found enough suffix for the hunk or the input
1187 // is over.
1188 size_t n_suffix = 0;
1189 for (; edit_i < edits.size(); ++edit_i) {
1190 if (n_suffix >= context) {
1191 // Continue only if the next hunk is very close.
1192 std::vector<EditType>::const_iterator it = edits.begin() + edit_i;
1193 while (it != edits.end() && *it == kMatch) ++it;
1194 if (it == edits.end() || (it - edits.begin()) - edit_i >= context) {
1195 // There is no next edit or it is too far away.
1196 break;
1197 }
1198 }
1199
1200 EditType edit = edits[edit_i];
1201 // Reset count when a non match is found.
1202 n_suffix = edit == kMatch ? n_suffix + 1 : 0;
1203
1204 if (edit == kMatch || edit == kRemove || edit == kReplace) {
1205 hunk.PushLine(edit == kMatch ? ' ' : '-', left[l_i].c_str());
1206 }
1207 if (edit == kAdd || edit == kReplace) {
1208 hunk.PushLine('+', right[r_i].c_str());
1209 }
1210
1211 // Advance indices, depending on edit type.
1212 l_i += edit != kAdd;
1213 r_i += edit != kRemove;
1214 }
1215
1216 if (!hunk.has_edits()) {
1217 // We are done. We don't want this hunk.
1218 break;
1219 }
1220
1221 hunk.PrintTo(&ss);
1222 }
1223 return ss.str();
1224 }
1225
1226 } // namespace edit_distance
1227
1228 namespace {
1229
1230 // The string representation of the values received in EqFailure() are already
1231 // escaped. Split them on escaped '\n' boundaries. Leave all other escaped
1232 // characters the same.
SplitEscapedString(const std::string & str)1233 std::vector<std::string> SplitEscapedString(const std::string& str) {
1234 std::vector<std::string> lines;
1235 size_t start = 0, end = str.size();
1236 if (end > 2 && str[0] == '"' && str[end - 1] == '"') {
1237 ++start;
1238 --end;
1239 }
1240 bool escaped = false;
1241 for (size_t i = start; i + 1 < end; ++i) {
1242 if (escaped) {
1243 escaped = false;
1244 if (str[i] == 'n') {
1245 lines.push_back(str.substr(start, i - start - 1));
1246 start = i + 1;
1247 }
1248 } else {
1249 escaped = str[i] == '\\';
1250 }
1251 }
1252 lines.push_back(str.substr(start, end - start));
1253 return lines;
1254 }
1255
1256 } // namespace
1257
1258 // Constructs and returns the message for an equality assertion
1259 // (e.g. ASSERT_EQ, EXPECT_STREQ, etc) failure.
1260 //
1261 // The first four parameters are the expressions used in the assertion
1262 // and their values, as strings. For example, for ASSERT_EQ(foo, bar)
1263 // where foo is 5 and bar is 6, we have:
1264 //
1265 // expected_expression: "foo"
1266 // actual_expression: "bar"
1267 // expected_value: "5"
1268 // actual_value: "6"
1269 //
1270 // The ignoring_case parameter is true iff the assertion is a
1271 // *_STRCASEEQ*. When it's true, the string " (ignoring case)" will
1272 // be inserted into the message.
EqFailure(const char * expected_expression,const char * actual_expression,const std::string & expected_value,const std::string & actual_value,bool ignoring_case)1273 AssertionResult EqFailure(const char* expected_expression,
1274 const char* actual_expression,
1275 const std::string& expected_value,
1276 const std::string& actual_value,
1277 bool ignoring_case) {
1278 Message msg;
1279 msg << "Value of: " << actual_expression;
1280 if (actual_value != actual_expression) {
1281 msg << "\n Actual: " << actual_value;
1282 }
1283
1284 msg << "\nExpected: " << expected_expression;
1285 if (ignoring_case) {
1286 msg << " (ignoring case)";
1287 }
1288 if (expected_value != expected_expression) {
1289 msg << "\nWhich is: " << expected_value;
1290 }
1291
1292 if (!expected_value.empty() && !actual_value.empty()) {
1293 const std::vector<std::string> expected_lines =
1294 SplitEscapedString(expected_value);
1295 const std::vector<std::string> actual_lines =
1296 SplitEscapedString(actual_value);
1297 if (expected_lines.size() > 1 || actual_lines.size() > 1) {
1298 msg << "\nWith diff:\n"
1299 << edit_distance::CreateUnifiedDiff(expected_lines, actual_lines);
1300 }
1301 }
1302
1303 return AssertionFailure() << msg;
1304 }
1305
1306 // Constructs a failure message for Boolean assertions such as EXPECT_TRUE.
GetBoolAssertionFailureMessage(const AssertionResult & assertion_result,const char * expression_text,const char * actual_predicate_value,const char * expected_predicate_value)1307 std::string GetBoolAssertionFailureMessage(
1308 const AssertionResult& assertion_result,
1309 const char* expression_text,
1310 const char* actual_predicate_value,
1311 const char* expected_predicate_value) {
1312 const char* actual_message = assertion_result.message();
1313 Message msg;
1314 msg << "Value of: " << expression_text
1315 << "\n Actual: " << actual_predicate_value;
1316 if (actual_message[0] != '\0')
1317 msg << " (" << actual_message << ")";
1318 msg << "\nExpected: " << expected_predicate_value;
1319 return msg.GetString();
1320 }
1321
1322 // Helper function for implementing ASSERT_NEAR.
DoubleNearPredFormat(const char * expr1,const char * expr2,const char * abs_error_expr,double val1,double val2,double abs_error)1323 AssertionResult DoubleNearPredFormat(const char* expr1,
1324 const char* expr2,
1325 const char* abs_error_expr,
1326 double val1,
1327 double val2,
1328 double abs_error) {
1329 const double diff = fabs(val1 - val2);
1330 if (diff <= abs_error) return AssertionSuccess();
1331
1332 // TODO(wan): do not print the value of an expression if it's
1333 // already a literal.
1334 return AssertionFailure()
1335 << "The difference between " << expr1 << " and " << expr2
1336 << " is " << diff << ", which exceeds " << abs_error_expr << ", where\n"
1337 << expr1 << " evaluates to " << val1 << ",\n"
1338 << expr2 << " evaluates to " << val2 << ", and\n"
1339 << abs_error_expr << " evaluates to " << abs_error << ".";
1340 }
1341
1342
1343 // Helper template for implementing FloatLE() and DoubleLE().
1344 template <typename RawType>
FloatingPointLE(const char * expr1,const char * expr2,RawType val1,RawType val2)1345 AssertionResult FloatingPointLE(const char* expr1,
1346 const char* expr2,
1347 RawType val1,
1348 RawType val2) {
1349 // Returns success if val1 is less than val2,
1350 if (val1 < val2) {
1351 return AssertionSuccess();
1352 }
1353
1354 // or if val1 is almost equal to val2.
1355 const FloatingPoint<RawType> lhs(val1), rhs(val2);
1356 if (lhs.AlmostEquals(rhs)) {
1357 return AssertionSuccess();
1358 }
1359
1360 // Note that the above two checks will both fail if either val1 or
1361 // val2 is NaN, as the IEEE floating-point standard requires that
1362 // any predicate involving a NaN must return false.
1363
1364 ::std::stringstream val1_ss;
1365 val1_ss << std::setprecision(std::numeric_limits<RawType>::digits10 + 2)
1366 << val1;
1367
1368 ::std::stringstream val2_ss;
1369 val2_ss << std::setprecision(std::numeric_limits<RawType>::digits10 + 2)
1370 << val2;
1371
1372 return AssertionFailure()
1373 << "Expected: (" << expr1 << ") <= (" << expr2 << ")\n"
1374 << " Actual: " << StringStreamToString(&val1_ss) << " vs "
1375 << StringStreamToString(&val2_ss);
1376 }
1377
1378 } // namespace internal
1379
1380 // Asserts that val1 is less than, or almost equal to, val2. Fails
1381 // otherwise. In particular, it fails if either val1 or val2 is NaN.
FloatLE(const char * expr1,const char * expr2,float val1,float val2)1382 AssertionResult FloatLE(const char* expr1, const char* expr2,
1383 float val1, float val2) {
1384 return internal::FloatingPointLE<float>(expr1, expr2, val1, val2);
1385 }
1386
1387 // Asserts that val1 is less than, or almost equal to, val2. Fails
1388 // otherwise. In particular, it fails if either val1 or val2 is NaN.
DoubleLE(const char * expr1,const char * expr2,double val1,double val2)1389 AssertionResult DoubleLE(const char* expr1, const char* expr2,
1390 double val1, double val2) {
1391 return internal::FloatingPointLE<double>(expr1, expr2, val1, val2);
1392 }
1393
1394 namespace internal {
1395
1396 // The helper function for {ASSERT|EXPECT}_EQ with int or enum
1397 // arguments.
CmpHelperEQ(const char * expected_expression,const char * actual_expression,BiggestInt expected,BiggestInt actual)1398 AssertionResult CmpHelperEQ(const char* expected_expression,
1399 const char* actual_expression,
1400 BiggestInt expected,
1401 BiggestInt actual) {
1402 if (expected == actual) {
1403 return AssertionSuccess();
1404 }
1405
1406 return EqFailure(expected_expression,
1407 actual_expression,
1408 FormatForComparisonFailureMessage(expected, actual),
1409 FormatForComparisonFailureMessage(actual, expected),
1410 false);
1411 }
1412
1413 // A macro for implementing the helper functions needed to implement
1414 // ASSERT_?? and EXPECT_?? with integer or enum arguments. It is here
1415 // just to avoid copy-and-paste of similar code.
1416 #define GTEST_IMPL_CMP_HELPER_(op_name, op)\
1417 AssertionResult CmpHelper##op_name(const char* expr1, const char* expr2, \
1418 BiggestInt val1, BiggestInt val2) {\
1419 if (val1 op val2) {\
1420 return AssertionSuccess();\
1421 } else {\
1422 return AssertionFailure() \
1423 << "Expected: (" << expr1 << ") " #op " (" << expr2\
1424 << "), actual: " << FormatForComparisonFailureMessage(val1, val2)\
1425 << " vs " << FormatForComparisonFailureMessage(val2, val1);\
1426 }\
1427 }
1428
1429 // Implements the helper function for {ASSERT|EXPECT}_NE with int or
1430 // enum arguments.
1431 GTEST_IMPL_CMP_HELPER_(NE, !=)
1432 // Implements the helper function for {ASSERT|EXPECT}_LE with int or
1433 // enum arguments.
1434 GTEST_IMPL_CMP_HELPER_(LE, <=)
1435 // Implements the helper function for {ASSERT|EXPECT}_LT with int or
1436 // enum arguments.
1437 GTEST_IMPL_CMP_HELPER_(LT, < )
1438 // Implements the helper function for {ASSERT|EXPECT}_GE with int or
1439 // enum arguments.
1440 GTEST_IMPL_CMP_HELPER_(GE, >=)
1441 // Implements the helper function for {ASSERT|EXPECT}_GT with int or
1442 // enum arguments.
1443 GTEST_IMPL_CMP_HELPER_(GT, > )
1444
1445 #undef GTEST_IMPL_CMP_HELPER_
1446
1447 // The helper function for {ASSERT|EXPECT}_STREQ.
CmpHelperSTREQ(const char * expected_expression,const char * actual_expression,const char * expected,const char * actual)1448 AssertionResult CmpHelperSTREQ(const char* expected_expression,
1449 const char* actual_expression,
1450 const char* expected,
1451 const char* actual) {
1452 if (String::CStringEquals(expected, actual)) {
1453 return AssertionSuccess();
1454 }
1455
1456 return EqFailure(expected_expression,
1457 actual_expression,
1458 PrintToString(expected),
1459 PrintToString(actual),
1460 false);
1461 }
1462
1463 // The helper function for {ASSERT|EXPECT}_STRCASEEQ.
CmpHelperSTRCASEEQ(const char * expected_expression,const char * actual_expression,const char * expected,const char * actual)1464 AssertionResult CmpHelperSTRCASEEQ(const char* expected_expression,
1465 const char* actual_expression,
1466 const char* expected,
1467 const char* actual) {
1468 if (String::CaseInsensitiveCStringEquals(expected, actual)) {
1469 return AssertionSuccess();
1470 }
1471
1472 return EqFailure(expected_expression,
1473 actual_expression,
1474 PrintToString(expected),
1475 PrintToString(actual),
1476 true);
1477 }
1478
1479 // The helper function for {ASSERT|EXPECT}_STRNE.
CmpHelperSTRNE(const char * s1_expression,const char * s2_expression,const char * s1,const char * s2)1480 AssertionResult CmpHelperSTRNE(const char* s1_expression,
1481 const char* s2_expression,
1482 const char* s1,
1483 const char* s2) {
1484 if (!String::CStringEquals(s1, s2)) {
1485 return AssertionSuccess();
1486 } else {
1487 return AssertionFailure() << "Expected: (" << s1_expression << ") != ("
1488 << s2_expression << "), actual: \""
1489 << s1 << "\" vs \"" << s2 << "\"";
1490 }
1491 }
1492
1493 // The helper function for {ASSERT|EXPECT}_STRCASENE.
CmpHelperSTRCASENE(const char * s1_expression,const char * s2_expression,const char * s1,const char * s2)1494 AssertionResult CmpHelperSTRCASENE(const char* s1_expression,
1495 const char* s2_expression,
1496 const char* s1,
1497 const char* s2) {
1498 if (!String::CaseInsensitiveCStringEquals(s1, s2)) {
1499 return AssertionSuccess();
1500 } else {
1501 return AssertionFailure()
1502 << "Expected: (" << s1_expression << ") != ("
1503 << s2_expression << ") (ignoring case), actual: \""
1504 << s1 << "\" vs \"" << s2 << "\"";
1505 }
1506 }
1507
1508 } // namespace internal
1509
1510 namespace {
1511
1512 // Helper functions for implementing IsSubString() and IsNotSubstring().
1513
1514 // This group of overloaded functions return true iff needle is a
1515 // substring of haystack. NULL is considered a substring of itself
1516 // only.
1517
IsSubstringPred(const char * needle,const char * haystack)1518 bool IsSubstringPred(const char* needle, const char* haystack) {
1519 if (needle == NULL || haystack == NULL)
1520 return needle == haystack;
1521
1522 return strstr(haystack, needle) != NULL;
1523 }
1524
IsSubstringPred(const wchar_t * needle,const wchar_t * haystack)1525 bool IsSubstringPred(const wchar_t* needle, const wchar_t* haystack) {
1526 if (needle == NULL || haystack == NULL)
1527 return needle == haystack;
1528
1529 return wcsstr(haystack, needle) != NULL;
1530 }
1531
1532 // StringType here can be either ::std::string or ::std::wstring.
1533 template <typename StringType>
IsSubstringPred(const StringType & needle,const StringType & haystack)1534 bool IsSubstringPred(const StringType& needle,
1535 const StringType& haystack) {
1536 return haystack.find(needle) != StringType::npos;
1537 }
1538
1539 // This function implements either IsSubstring() or IsNotSubstring(),
1540 // depending on the value of the expected_to_be_substring parameter.
1541 // StringType here can be const char*, const wchar_t*, ::std::string,
1542 // or ::std::wstring.
1543 template <typename StringType>
IsSubstringImpl(bool expected_to_be_substring,const char * needle_expr,const char * haystack_expr,const StringType & needle,const StringType & haystack)1544 AssertionResult IsSubstringImpl(
1545 bool expected_to_be_substring,
1546 const char* needle_expr, const char* haystack_expr,
1547 const StringType& needle, const StringType& haystack) {
1548 if (IsSubstringPred(needle, haystack) == expected_to_be_substring)
1549 return AssertionSuccess();
1550
1551 const bool is_wide_string = sizeof(needle[0]) > 1;
1552 const char* const begin_string_quote = is_wide_string ? "L\"" : "\"";
1553 return AssertionFailure()
1554 << "Value of: " << needle_expr << "\n"
1555 << " Actual: " << begin_string_quote << needle << "\"\n"
1556 << "Expected: " << (expected_to_be_substring ? "" : "not ")
1557 << "a substring of " << haystack_expr << "\n"
1558 << "Which is: " << begin_string_quote << haystack << "\"";
1559 }
1560
1561 } // namespace
1562
1563 // IsSubstring() and IsNotSubstring() check whether needle is a
1564 // substring of haystack (NULL is considered a substring of itself
1565 // only), and return an appropriate error message when they fail.
1566
IsSubstring(const char * needle_expr,const char * haystack_expr,const char * needle,const char * haystack)1567 AssertionResult IsSubstring(
1568 const char* needle_expr, const char* haystack_expr,
1569 const char* needle, const char* haystack) {
1570 return IsSubstringImpl(true, needle_expr, haystack_expr, needle, haystack);
1571 }
1572
IsSubstring(const char * needle_expr,const char * haystack_expr,const wchar_t * needle,const wchar_t * haystack)1573 AssertionResult IsSubstring(
1574 const char* needle_expr, const char* haystack_expr,
1575 const wchar_t* needle, const wchar_t* haystack) {
1576 return IsSubstringImpl(true, needle_expr, haystack_expr, needle, haystack);
1577 }
1578
IsNotSubstring(const char * needle_expr,const char * haystack_expr,const char * needle,const char * haystack)1579 AssertionResult IsNotSubstring(
1580 const char* needle_expr, const char* haystack_expr,
1581 const char* needle, const char* haystack) {
1582 return IsSubstringImpl(false, needle_expr, haystack_expr, needle, haystack);
1583 }
1584
IsNotSubstring(const char * needle_expr,const char * haystack_expr,const wchar_t * needle,const wchar_t * haystack)1585 AssertionResult IsNotSubstring(
1586 const char* needle_expr, const char* haystack_expr,
1587 const wchar_t* needle, const wchar_t* haystack) {
1588 return IsSubstringImpl(false, needle_expr, haystack_expr, needle, haystack);
1589 }
1590
IsSubstring(const char * needle_expr,const char * haystack_expr,const::std::string & needle,const::std::string & haystack)1591 AssertionResult IsSubstring(
1592 const char* needle_expr, const char* haystack_expr,
1593 const ::std::string& needle, const ::std::string& haystack) {
1594 return IsSubstringImpl(true, needle_expr, haystack_expr, needle, haystack);
1595 }
1596
IsNotSubstring(const char * needle_expr,const char * haystack_expr,const::std::string & needle,const::std::string & haystack)1597 AssertionResult IsNotSubstring(
1598 const char* needle_expr, const char* haystack_expr,
1599 const ::std::string& needle, const ::std::string& haystack) {
1600 return IsSubstringImpl(false, needle_expr, haystack_expr, needle, haystack);
1601 }
1602
1603 #if GTEST_HAS_STD_WSTRING
IsSubstring(const char * needle_expr,const char * haystack_expr,const::std::wstring & needle,const::std::wstring & haystack)1604 AssertionResult IsSubstring(
1605 const char* needle_expr, const char* haystack_expr,
1606 const ::std::wstring& needle, const ::std::wstring& haystack) {
1607 return IsSubstringImpl(true, needle_expr, haystack_expr, needle, haystack);
1608 }
1609
IsNotSubstring(const char * needle_expr,const char * haystack_expr,const::std::wstring & needle,const::std::wstring & haystack)1610 AssertionResult IsNotSubstring(
1611 const char* needle_expr, const char* haystack_expr,
1612 const ::std::wstring& needle, const ::std::wstring& haystack) {
1613 return IsSubstringImpl(false, needle_expr, haystack_expr, needle, haystack);
1614 }
1615 #endif // GTEST_HAS_STD_WSTRING
1616
1617 namespace internal {
1618
1619 #if GTEST_OS_WINDOWS
1620
1621 namespace {
1622
1623 // Helper function for IsHRESULT{SuccessFailure} predicates
HRESULTFailureHelper(const char * expr,const char * expected,long hr)1624 AssertionResult HRESULTFailureHelper(const char* expr,
1625 const char* expected,
1626 long hr) { // NOLINT
1627 # if GTEST_OS_WINDOWS_MOBILE
1628
1629 // Windows CE doesn't support FormatMessage.
1630 const char error_text[] = "";
1631
1632 # else
1633
1634 // Looks up the human-readable system message for the HRESULT code
1635 // and since we're not passing any params to FormatMessage, we don't
1636 // want inserts expanded.
1637 const DWORD kFlags = FORMAT_MESSAGE_FROM_SYSTEM |
1638 FORMAT_MESSAGE_IGNORE_INSERTS;
1639 const DWORD kBufSize = 4096;
1640 // Gets the system's human readable message string for this HRESULT.
1641 char error_text[kBufSize] = { '\0' };
1642 DWORD message_length = ::FormatMessageA(kFlags,
1643 0, // no source, we're asking system
1644 hr, // the error
1645 0, // no line width restrictions
1646 error_text, // output buffer
1647 kBufSize, // buf size
1648 NULL); // no arguments for inserts
1649 // Trims tailing white space (FormatMessage leaves a trailing CR-LF)
1650 for (; message_length && IsSpace(error_text[message_length - 1]);
1651 --message_length) {
1652 error_text[message_length - 1] = '\0';
1653 }
1654
1655 # endif // GTEST_OS_WINDOWS_MOBILE
1656
1657 const std::string error_hex("0x" + String::FormatHexInt(hr));
1658 return ::testing::AssertionFailure()
1659 << "Expected: " << expr << " " << expected << ".\n"
1660 << " Actual: " << error_hex << " " << error_text << "\n";
1661 }
1662
1663 } // namespace
1664
IsHRESULTSuccess(const char * expr,long hr)1665 AssertionResult IsHRESULTSuccess(const char* expr, long hr) { // NOLINT
1666 if (SUCCEEDED(hr)) {
1667 return AssertionSuccess();
1668 }
1669 return HRESULTFailureHelper(expr, "succeeds", hr);
1670 }
1671
IsHRESULTFailure(const char * expr,long hr)1672 AssertionResult IsHRESULTFailure(const char* expr, long hr) { // NOLINT
1673 if (FAILED(hr)) {
1674 return AssertionSuccess();
1675 }
1676 return HRESULTFailureHelper(expr, "fails", hr);
1677 }
1678
1679 #endif // GTEST_OS_WINDOWS
1680
1681 // Utility functions for encoding Unicode text (wide strings) in
1682 // UTF-8.
1683
1684 // A Unicode code-point can have upto 21 bits, and is encoded in UTF-8
1685 // like this:
1686 //
1687 // Code-point length Encoding
1688 // 0 - 7 bits 0xxxxxxx
1689 // 8 - 11 bits 110xxxxx 10xxxxxx
1690 // 12 - 16 bits 1110xxxx 10xxxxxx 10xxxxxx
1691 // 17 - 21 bits 11110xxx 10xxxxxx 10xxxxxx 10xxxxxx
1692
1693 // The maximum code-point a one-byte UTF-8 sequence can represent.
1694 const UInt32 kMaxCodePoint1 = (static_cast<UInt32>(1) << 7) - 1;
1695
1696 // The maximum code-point a two-byte UTF-8 sequence can represent.
1697 const UInt32 kMaxCodePoint2 = (static_cast<UInt32>(1) << (5 + 6)) - 1;
1698
1699 // The maximum code-point a three-byte UTF-8 sequence can represent.
1700 const UInt32 kMaxCodePoint3 = (static_cast<UInt32>(1) << (4 + 2*6)) - 1;
1701
1702 // The maximum code-point a four-byte UTF-8 sequence can represent.
1703 const UInt32 kMaxCodePoint4 = (static_cast<UInt32>(1) << (3 + 3*6)) - 1;
1704
1705 // Chops off the n lowest bits from a bit pattern. Returns the n
1706 // lowest bits. As a side effect, the original bit pattern will be
1707 // shifted to the right by n bits.
ChopLowBits(UInt32 * bits,int n)1708 inline UInt32 ChopLowBits(UInt32* bits, int n) {
1709 const UInt32 low_bits = *bits & ((static_cast<UInt32>(1) << n) - 1);
1710 *bits >>= n;
1711 return low_bits;
1712 }
1713
1714 // Converts a Unicode code point to a narrow string in UTF-8 encoding.
1715 // code_point parameter is of type UInt32 because wchar_t may not be
1716 // wide enough to contain a code point.
1717 // If the code_point is not a valid Unicode code point
1718 // (i.e. outside of Unicode range U+0 to U+10FFFF) it will be converted
1719 // to "(Invalid Unicode 0xXXXXXXXX)".
CodePointToUtf8(UInt32 code_point)1720 std::string CodePointToUtf8(UInt32 code_point) {
1721 if (code_point > kMaxCodePoint4) {
1722 return "(Invalid Unicode 0x" + String::FormatHexInt(code_point) + ")";
1723 }
1724
1725 char str[5]; // Big enough for the largest valid code point.
1726 if (code_point <= kMaxCodePoint1) {
1727 str[1] = '\0';
1728 str[0] = static_cast<char>(code_point); // 0xxxxxxx
1729 } else if (code_point <= kMaxCodePoint2) {
1730 str[2] = '\0';
1731 str[1] = static_cast<char>(0x80 | ChopLowBits(&code_point, 6)); // 10xxxxxx
1732 str[0] = static_cast<char>(0xC0 | code_point); // 110xxxxx
1733 } else if (code_point <= kMaxCodePoint3) {
1734 str[3] = '\0';
1735 str[2] = static_cast<char>(0x80 | ChopLowBits(&code_point, 6)); // 10xxxxxx
1736 str[1] = static_cast<char>(0x80 | ChopLowBits(&code_point, 6)); // 10xxxxxx
1737 str[0] = static_cast<char>(0xE0 | code_point); // 1110xxxx
1738 } else { // code_point <= kMaxCodePoint4
1739 str[4] = '\0';
1740 str[3] = static_cast<char>(0x80 | ChopLowBits(&code_point, 6)); // 10xxxxxx
1741 str[2] = static_cast<char>(0x80 | ChopLowBits(&code_point, 6)); // 10xxxxxx
1742 str[1] = static_cast<char>(0x80 | ChopLowBits(&code_point, 6)); // 10xxxxxx
1743 str[0] = static_cast<char>(0xF0 | code_point); // 11110xxx
1744 }
1745 return str;
1746 }
1747
1748 // The following two functions only make sense if the the system
1749 // uses UTF-16 for wide string encoding. All supported systems
1750 // with 16 bit wchar_t (Windows, Cygwin, Symbian OS) do use UTF-16.
1751
1752 // Determines if the arguments constitute UTF-16 surrogate pair
1753 // and thus should be combined into a single Unicode code point
1754 // using CreateCodePointFromUtf16SurrogatePair.
IsUtf16SurrogatePair(wchar_t first,wchar_t second)1755 inline bool IsUtf16SurrogatePair(wchar_t first, wchar_t second) {
1756 return sizeof(wchar_t) == 2 &&
1757 (first & 0xFC00) == 0xD800 && (second & 0xFC00) == 0xDC00;
1758 }
1759
1760 // Creates a Unicode code point from UTF16 surrogate pair.
CreateCodePointFromUtf16SurrogatePair(wchar_t first,wchar_t second)1761 inline UInt32 CreateCodePointFromUtf16SurrogatePair(wchar_t first,
1762 wchar_t second) {
1763 const UInt32 mask = (1 << 10) - 1;
1764 return (sizeof(wchar_t) == 2) ?
1765 (((first & mask) << 10) | (second & mask)) + 0x10000 :
1766 // This function should not be called when the condition is
1767 // false, but we provide a sensible default in case it is.
1768 static_cast<UInt32>(first);
1769 }
1770
1771 // Converts a wide string to a narrow string in UTF-8 encoding.
1772 // The wide string is assumed to have the following encoding:
1773 // UTF-16 if sizeof(wchar_t) == 2 (on Windows, Cygwin, Symbian OS)
1774 // UTF-32 if sizeof(wchar_t) == 4 (on Linux)
1775 // Parameter str points to a null-terminated wide string.
1776 // Parameter num_chars may additionally limit the number
1777 // of wchar_t characters processed. -1 is used when the entire string
1778 // should be processed.
1779 // If the string contains code points that are not valid Unicode code points
1780 // (i.e. outside of Unicode range U+0 to U+10FFFF) they will be output
1781 // as '(Invalid Unicode 0xXXXXXXXX)'. If the string is in UTF16 encoding
1782 // and contains invalid UTF-16 surrogate pairs, values in those pairs
1783 // will be encoded as individual Unicode characters from Basic Normal Plane.
WideStringToUtf8(const wchar_t * str,int num_chars)1784 std::string WideStringToUtf8(const wchar_t* str, int num_chars) {
1785 if (num_chars == -1)
1786 num_chars = static_cast<int>(wcslen(str));
1787
1788 ::std::stringstream stream;
1789 for (int i = 0; i < num_chars; ++i) {
1790 UInt32 unicode_code_point;
1791
1792 if (str[i] == L'\0') {
1793 break;
1794 } else if (i + 1 < num_chars && IsUtf16SurrogatePair(str[i], str[i + 1])) {
1795 unicode_code_point = CreateCodePointFromUtf16SurrogatePair(str[i],
1796 str[i + 1]);
1797 i++;
1798 } else {
1799 unicode_code_point = static_cast<UInt32>(str[i]);
1800 }
1801
1802 stream << CodePointToUtf8(unicode_code_point);
1803 }
1804 return StringStreamToString(&stream);
1805 }
1806
1807 // Converts a wide C string to an std::string using the UTF-8 encoding.
1808 // NULL will be converted to "(null)".
ShowWideCString(const wchar_t * wide_c_str)1809 std::string String::ShowWideCString(const wchar_t * wide_c_str) {
1810 if (wide_c_str == NULL) return "(null)";
1811
1812 return internal::WideStringToUtf8(wide_c_str, -1);
1813 }
1814
1815 // Compares two wide C strings. Returns true iff they have the same
1816 // content.
1817 //
1818 // Unlike wcscmp(), this function can handle NULL argument(s). A NULL
1819 // C string is considered different to any non-NULL C string,
1820 // including the empty string.
WideCStringEquals(const wchar_t * lhs,const wchar_t * rhs)1821 bool String::WideCStringEquals(const wchar_t * lhs, const wchar_t * rhs) {
1822 if (lhs == NULL) return rhs == NULL;
1823
1824 if (rhs == NULL) return false;
1825
1826 return wcscmp(lhs, rhs) == 0;
1827 }
1828
1829 // Helper function for *_STREQ on wide strings.
CmpHelperSTREQ(const char * expected_expression,const char * actual_expression,const wchar_t * expected,const wchar_t * actual)1830 AssertionResult CmpHelperSTREQ(const char* expected_expression,
1831 const char* actual_expression,
1832 const wchar_t* expected,
1833 const wchar_t* actual) {
1834 if (String::WideCStringEquals(expected, actual)) {
1835 return AssertionSuccess();
1836 }
1837
1838 return EqFailure(expected_expression,
1839 actual_expression,
1840 PrintToString(expected),
1841 PrintToString(actual),
1842 false);
1843 }
1844
1845 // Helper function for *_STRNE on wide strings.
CmpHelperSTRNE(const char * s1_expression,const char * s2_expression,const wchar_t * s1,const wchar_t * s2)1846 AssertionResult CmpHelperSTRNE(const char* s1_expression,
1847 const char* s2_expression,
1848 const wchar_t* s1,
1849 const wchar_t* s2) {
1850 if (!String::WideCStringEquals(s1, s2)) {
1851 return AssertionSuccess();
1852 }
1853
1854 return AssertionFailure() << "Expected: (" << s1_expression << ") != ("
1855 << s2_expression << "), actual: "
1856 << PrintToString(s1)
1857 << " vs " << PrintToString(s2);
1858 }
1859
1860 // Compares two C strings, ignoring case. Returns true iff they have
1861 // the same content.
1862 //
1863 // Unlike strcasecmp(), this function can handle NULL argument(s). A
1864 // NULL C string is considered different to any non-NULL C string,
1865 // including the empty string.
CaseInsensitiveCStringEquals(const char * lhs,const char * rhs)1866 bool String::CaseInsensitiveCStringEquals(const char * lhs, const char * rhs) {
1867 if (lhs == NULL)
1868 return rhs == NULL;
1869 if (rhs == NULL)
1870 return false;
1871 return posix::StrCaseCmp(lhs, rhs) == 0;
1872 }
1873
1874 // Compares two wide C strings, ignoring case. Returns true iff they
1875 // have the same content.
1876 //
1877 // Unlike wcscasecmp(), this function can handle NULL argument(s).
1878 // A NULL C string is considered different to any non-NULL wide C string,
1879 // including the empty string.
1880 // NB: The implementations on different platforms slightly differ.
1881 // On windows, this method uses _wcsicmp which compares according to LC_CTYPE
1882 // environment variable. On GNU platform this method uses wcscasecmp
1883 // which compares according to LC_CTYPE category of the current locale.
1884 // On MacOS X, it uses towlower, which also uses LC_CTYPE category of the
1885 // current locale.
CaseInsensitiveWideCStringEquals(const wchar_t * lhs,const wchar_t * rhs)1886 bool String::CaseInsensitiveWideCStringEquals(const wchar_t* lhs,
1887 const wchar_t* rhs) {
1888 if (lhs == NULL) return rhs == NULL;
1889
1890 if (rhs == NULL) return false;
1891
1892 #if GTEST_OS_WINDOWS
1893 return _wcsicmp(lhs, rhs) == 0;
1894 #elif GTEST_OS_LINUX && !GTEST_OS_LINUX_ANDROID
1895 return wcscasecmp(lhs, rhs) == 0;
1896 #else
1897 // Android, Mac OS X and Cygwin don't define wcscasecmp.
1898 // Other unknown OSes may not define it either.
1899 wint_t left, right;
1900 do {
1901 left = towlower(*lhs++);
1902 right = towlower(*rhs++);
1903 } while (left && left == right);
1904 return left == right;
1905 #endif // OS selector
1906 }
1907
1908 // Returns true iff str ends with the given suffix, ignoring case.
1909 // Any string is considered to end with an empty suffix.
EndsWithCaseInsensitive(const std::string & str,const std::string & suffix)1910 bool String::EndsWithCaseInsensitive(
1911 const std::string& str, const std::string& suffix) {
1912 const size_t str_len = str.length();
1913 const size_t suffix_len = suffix.length();
1914 return (str_len >= suffix_len) &&
1915 CaseInsensitiveCStringEquals(str.c_str() + str_len - suffix_len,
1916 suffix.c_str());
1917 }
1918
1919 // Formats an int value as "%02d".
FormatIntWidth2(int value)1920 std::string String::FormatIntWidth2(int value) {
1921 std::stringstream ss;
1922 ss << std::setfill('0') << std::setw(2) << value;
1923 return ss.str();
1924 }
1925
1926 // Formats an int value as "%X".
FormatHexInt(int value)1927 std::string String::FormatHexInt(int value) {
1928 std::stringstream ss;
1929 ss << std::hex << std::uppercase << value;
1930 return ss.str();
1931 }
1932
1933 // Formats a byte as "%02X".
FormatByte(unsigned char value)1934 std::string String::FormatByte(unsigned char value) {
1935 std::stringstream ss;
1936 ss << std::setfill('0') << std::setw(2) << std::hex << std::uppercase
1937 << static_cast<unsigned int>(value);
1938 return ss.str();
1939 }
1940
1941 // Converts the buffer in a stringstream to an std::string, converting NUL
1942 // bytes to "\\0" along the way.
StringStreamToString(::std::stringstream * ss)1943 std::string StringStreamToString(::std::stringstream* ss) {
1944 const ::std::string& str = ss->str();
1945 const char* const start = str.c_str();
1946 const char* const end = start + str.length();
1947
1948 std::string result;
1949 result.reserve(2 * (end - start));
1950 for (const char* ch = start; ch != end; ++ch) {
1951 if (*ch == '\0') {
1952 result += "\\0"; // Replaces NUL with "\\0";
1953 } else {
1954 result += *ch;
1955 }
1956 }
1957
1958 return result;
1959 }
1960
1961 // Appends the user-supplied message to the Google-Test-generated message.
AppendUserMessage(const std::string & gtest_msg,const Message & user_msg)1962 std::string AppendUserMessage(const std::string& gtest_msg,
1963 const Message& user_msg) {
1964 // Appends the user message if it's non-empty.
1965 const std::string user_msg_string = user_msg.GetString();
1966 if (user_msg_string.empty()) {
1967 return gtest_msg;
1968 }
1969
1970 return gtest_msg + "\n" + user_msg_string;
1971 }
1972
1973 } // namespace internal
1974
1975 // class TestResult
1976
1977 // Creates an empty TestResult.
TestResult()1978 TestResult::TestResult()
1979 : death_test_count_(0),
1980 elapsed_time_(0) {
1981 }
1982
1983 // D'tor.
~TestResult()1984 TestResult::~TestResult() {
1985 }
1986
1987 // Returns the i-th test part result among all the results. i can
1988 // range from 0 to total_part_count() - 1. If i is not in that range,
1989 // aborts the program.
GetTestPartResult(int i) const1990 const TestPartResult& TestResult::GetTestPartResult(int i) const {
1991 if (i < 0 || i >= total_part_count())
1992 internal::posix::Abort();
1993 return test_part_results_.at(i);
1994 }
1995
1996 // Returns the i-th test property. i can range from 0 to
1997 // test_property_count() - 1. If i is not in that range, aborts the
1998 // program.
GetTestProperty(int i) const1999 const TestProperty& TestResult::GetTestProperty(int i) const {
2000 if (i < 0 || i >= test_property_count())
2001 internal::posix::Abort();
2002 return test_properties_.at(i);
2003 }
2004
2005 // Clears the test part results.
ClearTestPartResults()2006 void TestResult::ClearTestPartResults() {
2007 test_part_results_.clear();
2008 }
2009
2010 // Adds a test part result to the list.
AddTestPartResult(const TestPartResult & test_part_result)2011 void TestResult::AddTestPartResult(const TestPartResult& test_part_result) {
2012 test_part_results_.push_back(test_part_result);
2013 }
2014
2015 // Adds a test property to the list. If a property with the same key as the
2016 // supplied property is already represented, the value of this test_property
2017 // replaces the old value for that key.
RecordProperty(const std::string & xml_element,const TestProperty & test_property)2018 void TestResult::RecordProperty(const std::string& xml_element,
2019 const TestProperty& test_property) {
2020 if (!ValidateTestProperty(xml_element, test_property)) {
2021 return;
2022 }
2023 internal::MutexLock lock(&test_properites_mutex_);
2024 const std::vector<TestProperty>::iterator property_with_matching_key =
2025 std::find_if(test_properties_.begin(), test_properties_.end(),
2026 internal::TestPropertyKeyIs(test_property.key()));
2027 if (property_with_matching_key == test_properties_.end()) {
2028 test_properties_.push_back(test_property);
2029 return;
2030 }
2031 property_with_matching_key->SetValue(test_property.value());
2032 }
2033
2034 // The list of reserved attributes used in the <testsuites> element of XML
2035 // output.
2036 static const char* const kReservedTestSuitesAttributes[] = {
2037 "disabled",
2038 "errors",
2039 "failures",
2040 "name",
2041 "random_seed",
2042 "tests",
2043 "time",
2044 "timestamp"
2045 };
2046
2047 // The list of reserved attributes used in the <testsuite> element of XML
2048 // output.
2049 static const char* const kReservedTestSuiteAttributes[] = {
2050 "disabled",
2051 "errors",
2052 "failures",
2053 "name",
2054 "tests",
2055 "time"
2056 };
2057
2058 // The list of reserved attributes used in the <testcase> element of XML output.
2059 static const char* const kReservedTestCaseAttributes[] = {
2060 "classname",
2061 "name",
2062 "status",
2063 "time",
2064 "type_param",
2065 "value_param"
2066 };
2067
2068 template <int kSize>
ArrayAsVector(const char * const (& array)[kSize])2069 std::vector<std::string> ArrayAsVector(const char* const (&array)[kSize]) {
2070 return std::vector<std::string>(array, array + kSize);
2071 }
2072
GetReservedAttributesForElement(const std::string & xml_element)2073 static std::vector<std::string> GetReservedAttributesForElement(
2074 const std::string& xml_element) {
2075 if (xml_element == "testsuites") {
2076 return ArrayAsVector(kReservedTestSuitesAttributes);
2077 } else if (xml_element == "testsuite") {
2078 return ArrayAsVector(kReservedTestSuiteAttributes);
2079 } else if (xml_element == "testcase") {
2080 return ArrayAsVector(kReservedTestCaseAttributes);
2081 } else {
2082 GTEST_CHECK_(false) << "Unrecognized xml_element provided: " << xml_element;
2083 }
2084 // This code is unreachable but some compilers may not realizes that.
2085 return std::vector<std::string>();
2086 }
2087
FormatWordList(const std::vector<std::string> & words)2088 static std::string FormatWordList(const std::vector<std::string>& words) {
2089 Message word_list;
2090 for (size_t i = 0; i < words.size(); ++i) {
2091 if (i > 0 && words.size() > 2) {
2092 word_list << ", ";
2093 }
2094 if (i == words.size() - 1) {
2095 word_list << "and ";
2096 }
2097 word_list << "'" << words[i] << "'";
2098 }
2099 return word_list.GetString();
2100 }
2101
ValidateTestPropertyName(const std::string & property_name,const std::vector<std::string> & reserved_names)2102 bool ValidateTestPropertyName(const std::string& property_name,
2103 const std::vector<std::string>& reserved_names) {
2104 if (std::find(reserved_names.begin(), reserved_names.end(), property_name) !=
2105 reserved_names.end()) {
2106 ADD_FAILURE() << "Reserved key used in RecordProperty(): " << property_name
2107 << " (" << FormatWordList(reserved_names)
2108 << " are reserved by " << GTEST_NAME_ << ")";
2109 return false;
2110 }
2111 return true;
2112 }
2113
2114 // Adds a failure if the key is a reserved attribute of the element named
2115 // xml_element. Returns true if the property is valid.
ValidateTestProperty(const std::string & xml_element,const TestProperty & test_property)2116 bool TestResult::ValidateTestProperty(const std::string& xml_element,
2117 const TestProperty& test_property) {
2118 return ValidateTestPropertyName(test_property.key(),
2119 GetReservedAttributesForElement(xml_element));
2120 }
2121
2122 // Clears the object.
Clear()2123 void TestResult::Clear() {
2124 test_part_results_.clear();
2125 test_properties_.clear();
2126 death_test_count_ = 0;
2127 elapsed_time_ = 0;
2128 }
2129
2130 // Returns true iff the test failed.
Failed() const2131 bool TestResult::Failed() const {
2132 for (int i = 0; i < total_part_count(); ++i) {
2133 if (GetTestPartResult(i).failed())
2134 return true;
2135 }
2136 return false;
2137 }
2138
2139 // Returns true iff the test part fatally failed.
TestPartFatallyFailed(const TestPartResult & result)2140 static bool TestPartFatallyFailed(const TestPartResult& result) {
2141 return result.fatally_failed();
2142 }
2143
2144 // Returns true iff the test fatally failed.
HasFatalFailure() const2145 bool TestResult::HasFatalFailure() const {
2146 return CountIf(test_part_results_, TestPartFatallyFailed) > 0;
2147 }
2148
2149 // Returns true iff the test part non-fatally failed.
TestPartNonfatallyFailed(const TestPartResult & result)2150 static bool TestPartNonfatallyFailed(const TestPartResult& result) {
2151 return result.nonfatally_failed();
2152 }
2153
2154 // Returns true iff the test has a non-fatal failure.
HasNonfatalFailure() const2155 bool TestResult::HasNonfatalFailure() const {
2156 return CountIf(test_part_results_, TestPartNonfatallyFailed) > 0;
2157 }
2158
2159 // Gets the number of all test parts. This is the sum of the number
2160 // of successful test parts and the number of failed test parts.
total_part_count() const2161 int TestResult::total_part_count() const {
2162 return static_cast<int>(test_part_results_.size());
2163 }
2164
2165 // Returns the number of the test properties.
test_property_count() const2166 int TestResult::test_property_count() const {
2167 return static_cast<int>(test_properties_.size());
2168 }
2169
2170 // class Test
2171
2172 // Creates a Test object.
2173
2174 // The c'tor saves the values of all Google Test flags.
Test()2175 Test::Test()
2176 : gtest_flag_saver_(new internal::GTestFlagSaver) {
2177 }
2178
2179 // The d'tor restores the values of all Google Test flags.
~Test()2180 Test::~Test() {
2181 delete gtest_flag_saver_;
2182 }
2183
2184 // Sets up the test fixture.
2185 //
2186 // A sub-class may override this.
SetUp()2187 void Test::SetUp() {
2188 }
2189
2190 // Tears down the test fixture.
2191 //
2192 // A sub-class may override this.
TearDown()2193 void Test::TearDown() {
2194 }
2195
2196 // Allows user supplied key value pairs to be recorded for later output.
RecordProperty(const std::string & key,const std::string & value)2197 void Test::RecordProperty(const std::string& key, const std::string& value) {
2198 UnitTest::GetInstance()->RecordProperty(key, value);
2199 }
2200
2201 // Allows user supplied key value pairs to be recorded for later output.
RecordProperty(const std::string & key,int value)2202 void Test::RecordProperty(const std::string& key, int value) {
2203 Message value_message;
2204 value_message << value;
2205 RecordProperty(key, value_message.GetString().c_str());
2206 }
2207
2208 namespace internal {
2209
ReportFailureInUnknownLocation(TestPartResult::Type result_type,const std::string & message)2210 void ReportFailureInUnknownLocation(TestPartResult::Type result_type,
2211 const std::string& message) {
2212 // This function is a friend of UnitTest and as such has access to
2213 // AddTestPartResult.
2214 UnitTest::GetInstance()->AddTestPartResult(
2215 result_type,
2216 NULL, // No info about the source file where the exception occurred.
2217 -1, // We have no info on which line caused the exception.
2218 message,
2219 ""); // No stack trace, either.
2220 }
2221
2222 } // namespace internal
2223
2224 // Google Test requires all tests in the same test case to use the same test
2225 // fixture class. This function checks if the current test has the
2226 // same fixture class as the first test in the current test case. If
2227 // yes, it returns true; otherwise it generates a Google Test failure and
2228 // returns false.
HasSameFixtureClass()2229 bool Test::HasSameFixtureClass() {
2230 internal::UnitTestImpl* const impl = internal::GetUnitTestImpl();
2231 const TestCase* const test_case = impl->current_test_case();
2232
2233 // Info about the first test in the current test case.
2234 const TestInfo* const first_test_info = test_case->test_info_list()[0];
2235 const internal::TypeId first_fixture_id = first_test_info->fixture_class_id_;
2236 const char* const first_test_name = first_test_info->name();
2237
2238 // Info about the current test.
2239 const TestInfo* const this_test_info = impl->current_test_info();
2240 const internal::TypeId this_fixture_id = this_test_info->fixture_class_id_;
2241 const char* const this_test_name = this_test_info->name();
2242
2243 if (this_fixture_id != first_fixture_id) {
2244 // Is the first test defined using TEST?
2245 const bool first_is_TEST = first_fixture_id == internal::GetTestTypeId();
2246 // Is this test defined using TEST?
2247 const bool this_is_TEST = this_fixture_id == internal::GetTestTypeId();
2248
2249 if (first_is_TEST || this_is_TEST) {
2250 // Both TEST and TEST_F appear in same test case, which is incorrect.
2251 // Tell the user how to fix this.
2252
2253 // Gets the name of the TEST and the name of the TEST_F. Note
2254 // that first_is_TEST and this_is_TEST cannot both be true, as
2255 // the fixture IDs are different for the two tests.
2256 const char* const TEST_name =
2257 first_is_TEST ? first_test_name : this_test_name;
2258 const char* const TEST_F_name =
2259 first_is_TEST ? this_test_name : first_test_name;
2260
2261 ADD_FAILURE()
2262 << "All tests in the same test case must use the same test fixture\n"
2263 << "class, so mixing TEST_F and TEST in the same test case is\n"
2264 << "illegal. In test case " << this_test_info->test_case_name()
2265 << ",\n"
2266 << "test " << TEST_F_name << " is defined using TEST_F but\n"
2267 << "test " << TEST_name << " is defined using TEST. You probably\n"
2268 << "want to change the TEST to TEST_F or move it to another test\n"
2269 << "case.";
2270 } else {
2271 // Two fixture classes with the same name appear in two different
2272 // namespaces, which is not allowed. Tell the user how to fix this.
2273 ADD_FAILURE()
2274 << "All tests in the same test case must use the same test fixture\n"
2275 << "class. However, in test case "
2276 << this_test_info->test_case_name() << ",\n"
2277 << "you defined test " << first_test_name
2278 << " and test " << this_test_name << "\n"
2279 << "using two different test fixture classes. This can happen if\n"
2280 << "the two classes are from different namespaces or translation\n"
2281 << "units and have the same name. You should probably rename one\n"
2282 << "of the classes to put the tests into different test cases.";
2283 }
2284 return false;
2285 }
2286
2287 return true;
2288 }
2289
2290 #if GTEST_HAS_SEH
2291
2292 // Adds an "exception thrown" fatal failure to the current test. This
2293 // function returns its result via an output parameter pointer because VC++
2294 // prohibits creation of objects with destructors on stack in functions
2295 // using __try (see error C2712).
FormatSehExceptionMessage(DWORD exception_code,const char * location)2296 static std::string* FormatSehExceptionMessage(DWORD exception_code,
2297 const char* location) {
2298 Message message;
2299 message << "SEH exception with code 0x" << std::setbase(16) <<
2300 exception_code << std::setbase(10) << " thrown in " << location << ".";
2301
2302 return new std::string(message.GetString());
2303 }
2304
2305 #endif // GTEST_HAS_SEH
2306
2307 namespace internal {
2308
2309 #if GTEST_HAS_EXCEPTIONS
2310
2311 // Adds an "exception thrown" fatal failure to the current test.
FormatCxxExceptionMessage(const char * description,const char * location)2312 static std::string FormatCxxExceptionMessage(const char* description,
2313 const char* location) {
2314 Message message;
2315 if (description != NULL) {
2316 message << "C++ exception with description \"" << description << "\"";
2317 } else {
2318 message << "Unknown C++ exception";
2319 }
2320 message << " thrown in " << location << ".";
2321
2322 return message.GetString();
2323 }
2324
2325 static std::string PrintTestPartResultToString(
2326 const TestPartResult& test_part_result);
2327
GoogleTestFailureException(const TestPartResult & failure)2328 GoogleTestFailureException::GoogleTestFailureException(
2329 const TestPartResult& failure)
2330 : ::std::runtime_error(PrintTestPartResultToString(failure).c_str()) {}
2331
2332 #endif // GTEST_HAS_EXCEPTIONS
2333
2334 // We put these helper functions in the internal namespace as IBM's xlC
2335 // compiler rejects the code if they were declared static.
2336
2337 // Runs the given method and handles SEH exceptions it throws, when
2338 // SEH is supported; returns the 0-value for type Result in case of an
2339 // SEH exception. (Microsoft compilers cannot handle SEH and C++
2340 // exceptions in the same function. Therefore, we provide a separate
2341 // wrapper function for handling SEH exceptions.)
2342 template <class T, typename Result>
HandleSehExceptionsInMethodIfSupported(T * object,Result (T::* method)(),const char * location)2343 Result HandleSehExceptionsInMethodIfSupported(
2344 T* object, Result (T::*method)(), const char* location) {
2345 #if GTEST_HAS_SEH
2346 __try {
2347 return (object->*method)();
2348 } __except (internal::UnitTestOptions::GTestShouldProcessSEH( // NOLINT
2349 GetExceptionCode())) {
2350 // We create the exception message on the heap because VC++ prohibits
2351 // creation of objects with destructors on stack in functions using __try
2352 // (see error C2712).
2353 std::string* exception_message = FormatSehExceptionMessage(
2354 GetExceptionCode(), location);
2355 internal::ReportFailureInUnknownLocation(TestPartResult::kFatalFailure,
2356 *exception_message);
2357 delete exception_message;
2358 return static_cast<Result>(0);
2359 }
2360 #else
2361 (void)location;
2362 return (object->*method)();
2363 #endif // GTEST_HAS_SEH
2364 }
2365
2366 // Runs the given method and catches and reports C++ and/or SEH-style
2367 // exceptions, if they are supported; returns the 0-value for type
2368 // Result in case of an SEH exception.
2369 template <class T, typename Result>
HandleExceptionsInMethodIfSupported(T * object,Result (T::* method)(),const char * location)2370 Result HandleExceptionsInMethodIfSupported(
2371 T* object, Result (T::*method)(), const char* location) {
2372 // NOTE: The user code can affect the way in which Google Test handles
2373 // exceptions by setting GTEST_FLAG(catch_exceptions), but only before
2374 // RUN_ALL_TESTS() starts. It is technically possible to check the flag
2375 // after the exception is caught and either report or re-throw the
2376 // exception based on the flag's value:
2377 //
2378 // try {
2379 // // Perform the test method.
2380 // } catch (...) {
2381 // if (GTEST_FLAG(catch_exceptions))
2382 // // Report the exception as failure.
2383 // else
2384 // throw; // Re-throws the original exception.
2385 // }
2386 //
2387 // However, the purpose of this flag is to allow the program to drop into
2388 // the debugger when the exception is thrown. On most platforms, once the
2389 // control enters the catch block, the exception origin information is
2390 // lost and the debugger will stop the program at the point of the
2391 // re-throw in this function -- instead of at the point of the original
2392 // throw statement in the code under test. For this reason, we perform
2393 // the check early, sacrificing the ability to affect Google Test's
2394 // exception handling in the method where the exception is thrown.
2395 if (internal::GetUnitTestImpl()->catch_exceptions()) {
2396 #if GTEST_HAS_EXCEPTIONS
2397 try {
2398 return HandleSehExceptionsInMethodIfSupported(object, method, location);
2399 } catch (const internal::GoogleTestFailureException&) { // NOLINT
2400 // This exception type can only be thrown by a failed Google
2401 // Test assertion with the intention of letting another testing
2402 // framework catch it. Therefore we just re-throw it.
2403 throw;
2404 } catch (const std::exception& e) { // NOLINT
2405 internal::ReportFailureInUnknownLocation(
2406 TestPartResult::kFatalFailure,
2407 FormatCxxExceptionMessage(e.what(), location));
2408 } catch (...) { // NOLINT
2409 internal::ReportFailureInUnknownLocation(
2410 TestPartResult::kFatalFailure,
2411 FormatCxxExceptionMessage(NULL, location));
2412 }
2413 return static_cast<Result>(0);
2414 #else
2415 return HandleSehExceptionsInMethodIfSupported(object, method, location);
2416 #endif // GTEST_HAS_EXCEPTIONS
2417 } else {
2418 return (object->*method)();
2419 }
2420 }
2421
2422 } // namespace internal
2423
2424 // Runs the test and updates the test result.
Run()2425 void Test::Run() {
2426 if (!HasSameFixtureClass()) return;
2427
2428 internal::UnitTestImpl* const impl = internal::GetUnitTestImpl();
2429 impl->os_stack_trace_getter()->UponLeavingGTest();
2430 internal::HandleExceptionsInMethodIfSupported(this, &Test::SetUp, "SetUp()");
2431 // We will run the test only if SetUp() was successful.
2432 if (!HasFatalFailure()) {
2433 impl->os_stack_trace_getter()->UponLeavingGTest();
2434 internal::HandleExceptionsInMethodIfSupported(
2435 this, &Test::TestBody, "the test body");
2436 }
2437
2438 // However, we want to clean up as much as possible. Hence we will
2439 // always call TearDown(), even if SetUp() or the test body has
2440 // failed.
2441 impl->os_stack_trace_getter()->UponLeavingGTest();
2442 internal::HandleExceptionsInMethodIfSupported(
2443 this, &Test::TearDown, "TearDown()");
2444 }
2445
2446 // Returns true iff the current test has a fatal failure.
HasFatalFailure()2447 bool Test::HasFatalFailure() {
2448 return internal::GetUnitTestImpl()->current_test_result()->HasFatalFailure();
2449 }
2450
2451 // Returns true iff the current test has a non-fatal failure.
HasNonfatalFailure()2452 bool Test::HasNonfatalFailure() {
2453 return internal::GetUnitTestImpl()->current_test_result()->
2454 HasNonfatalFailure();
2455 }
2456
2457 // class TestInfo
2458
2459 // Constructs a TestInfo object. It assumes ownership of the test factory
2460 // object.
TestInfo(const std::string & a_test_case_name,const std::string & a_name,const char * a_type_param,const char * a_value_param,internal::TypeId fixture_class_id,internal::TestFactoryBase * factory)2461 TestInfo::TestInfo(const std::string& a_test_case_name,
2462 const std::string& a_name,
2463 const char* a_type_param,
2464 const char* a_value_param,
2465 internal::TypeId fixture_class_id,
2466 internal::TestFactoryBase* factory)
2467 : test_case_name_(a_test_case_name),
2468 name_(a_name),
2469 type_param_(a_type_param ? new std::string(a_type_param) : NULL),
2470 value_param_(a_value_param ? new std::string(a_value_param) : NULL),
2471 fixture_class_id_(fixture_class_id),
2472 should_run_(false),
2473 is_disabled_(false),
2474 matches_filter_(false),
2475 factory_(factory),
2476 result_() {}
2477
2478 // Destructs a TestInfo object.
~TestInfo()2479 TestInfo::~TestInfo() { delete factory_; }
2480
2481 namespace internal {
2482
2483 // Creates a new TestInfo object and registers it with Google Test;
2484 // returns the created object.
2485 //
2486 // Arguments:
2487 //
2488 // test_case_name: name of the test case
2489 // name: name of the test
2490 // type_param: the name of the test's type parameter, or NULL if
2491 // this is not a typed or a type-parameterized test.
2492 // value_param: text representation of the test's value parameter,
2493 // or NULL if this is not a value-parameterized test.
2494 // fixture_class_id: ID of the test fixture class
2495 // set_up_tc: pointer to the function that sets up the test case
2496 // tear_down_tc: pointer to the function that tears down the test case
2497 // factory: pointer to the factory that creates a test object.
2498 // The newly created TestInfo instance will assume
2499 // ownership of the factory object.
MakeAndRegisterTestInfo(const char * test_case_name,const char * name,const char * type_param,const char * value_param,TypeId fixture_class_id,SetUpTestCaseFunc set_up_tc,TearDownTestCaseFunc tear_down_tc,TestFactoryBase * factory)2500 TestInfo* MakeAndRegisterTestInfo(
2501 const char* test_case_name,
2502 const char* name,
2503 const char* type_param,
2504 const char* value_param,
2505 TypeId fixture_class_id,
2506 SetUpTestCaseFunc set_up_tc,
2507 TearDownTestCaseFunc tear_down_tc,
2508 TestFactoryBase* factory) {
2509 TestInfo* const test_info =
2510 new TestInfo(test_case_name, name, type_param, value_param,
2511 fixture_class_id, factory);
2512 GetUnitTestImpl()->AddTestInfo(set_up_tc, tear_down_tc, test_info);
2513 return test_info;
2514 }
2515
2516 #if GTEST_HAS_PARAM_TEST
ReportInvalidTestCaseType(const char * test_case_name,const char * file,int line)2517 void ReportInvalidTestCaseType(const char* test_case_name,
2518 const char* file, int line) {
2519 Message errors;
2520 errors
2521 << "Attempted redefinition of test case " << test_case_name << ".\n"
2522 << "All tests in the same test case must use the same test fixture\n"
2523 << "class. However, in test case " << test_case_name << ", you tried\n"
2524 << "to define a test using a fixture class different from the one\n"
2525 << "used earlier. This can happen if the two fixture classes are\n"
2526 << "from different namespaces and have the same name. You should\n"
2527 << "probably rename one of the classes to put the tests into different\n"
2528 << "test cases.";
2529
2530 fprintf(stderr, "%s %s", FormatFileLocation(file, line).c_str(),
2531 errors.GetString().c_str());
2532 }
2533 #endif // GTEST_HAS_PARAM_TEST
2534
2535 } // namespace internal
2536
2537 namespace {
2538
2539 // A predicate that checks the test name of a TestInfo against a known
2540 // value.
2541 //
2542 // This is used for implementation of the TestCase class only. We put
2543 // it in the anonymous namespace to prevent polluting the outer
2544 // namespace.
2545 //
2546 // TestNameIs is copyable.
2547 class TestNameIs {
2548 public:
2549 // Constructor.
2550 //
2551 // TestNameIs has NO default constructor.
TestNameIs(const char * name)2552 explicit TestNameIs(const char* name)
2553 : name_(name) {}
2554
2555 // Returns true iff the test name of test_info matches name_.
operator ()(const TestInfo * test_info) const2556 bool operator()(const TestInfo * test_info) const {
2557 return test_info && test_info->name() == name_;
2558 }
2559
2560 private:
2561 std::string name_;
2562 };
2563
2564 } // namespace
2565
2566 namespace internal {
2567
2568 // This method expands all parameterized tests registered with macros TEST_P
2569 // and INSTANTIATE_TEST_CASE_P into regular tests and registers those.
2570 // This will be done just once during the program runtime.
RegisterParameterizedTests()2571 void UnitTestImpl::RegisterParameterizedTests() {
2572 #if GTEST_HAS_PARAM_TEST
2573 if (!parameterized_tests_registered_) {
2574 parameterized_test_registry_.RegisterTests();
2575 parameterized_tests_registered_ = true;
2576 }
2577 #endif
2578 }
2579
2580 } // namespace internal
2581
2582 // Creates the test object, runs it, records its result, and then
2583 // deletes it.
Run()2584 void TestInfo::Run() {
2585 if (!should_run_) return;
2586
2587 // Tells UnitTest where to store test result.
2588 internal::UnitTestImpl* const impl = internal::GetUnitTestImpl();
2589 impl->set_current_test_info(this);
2590
2591 TestEventListener* repeater = UnitTest::GetInstance()->listeners().repeater();
2592
2593 // Notifies the unit test event listeners that a test is about to start.
2594 repeater->OnTestStart(*this);
2595
2596 const TimeInMillis start = internal::GetTimeInMillis();
2597
2598 impl->os_stack_trace_getter()->UponLeavingGTest();
2599
2600 // Creates the test object.
2601 Test* const test = internal::HandleExceptionsInMethodIfSupported(
2602 factory_, &internal::TestFactoryBase::CreateTest,
2603 "the test fixture's constructor");
2604
2605 // Runs the test only if the test object was created and its
2606 // constructor didn't generate a fatal failure.
2607 if ((test != NULL) && !Test::HasFatalFailure()) {
2608 // This doesn't throw as all user code that can throw are wrapped into
2609 // exception handling code.
2610 test->Run();
2611 }
2612
2613 // Deletes the test object.
2614 impl->os_stack_trace_getter()->UponLeavingGTest();
2615 internal::HandleExceptionsInMethodIfSupported(
2616 test, &Test::DeleteSelf_, "the test fixture's destructor");
2617
2618 result_.set_elapsed_time(internal::GetTimeInMillis() - start);
2619
2620 // Notifies the unit test event listener that a test has just finished.
2621 repeater->OnTestEnd(*this);
2622
2623 // Tells UnitTest to stop associating assertion results to this
2624 // test.
2625 impl->set_current_test_info(NULL);
2626 }
2627
2628 // class TestCase
2629
2630 // Gets the number of successful tests in this test case.
successful_test_count() const2631 int TestCase::successful_test_count() const {
2632 return CountIf(test_info_list_, TestPassed);
2633 }
2634
2635 // Gets the number of failed tests in this test case.
failed_test_count() const2636 int TestCase::failed_test_count() const {
2637 return CountIf(test_info_list_, TestFailed);
2638 }
2639
2640 // Gets the number of disabled tests that will be reported in the XML report.
reportable_disabled_test_count() const2641 int TestCase::reportable_disabled_test_count() const {
2642 return CountIf(test_info_list_, TestReportableDisabled);
2643 }
2644
2645 // Gets the number of disabled tests in this test case.
disabled_test_count() const2646 int TestCase::disabled_test_count() const {
2647 return CountIf(test_info_list_, TestDisabled);
2648 }
2649
2650 // Gets the number of tests to be printed in the XML report.
reportable_test_count() const2651 int TestCase::reportable_test_count() const {
2652 return CountIf(test_info_list_, TestReportable);
2653 }
2654
2655 // Get the number of tests in this test case that should run.
test_to_run_count() const2656 int TestCase::test_to_run_count() const {
2657 return CountIf(test_info_list_, ShouldRunTest);
2658 }
2659
2660 // Gets the number of all tests.
total_test_count() const2661 int TestCase::total_test_count() const {
2662 return static_cast<int>(test_info_list_.size());
2663 }
2664
2665 // Creates a TestCase with the given name.
2666 //
2667 // Arguments:
2668 //
2669 // name: name of the test case
2670 // a_type_param: the name of the test case's type parameter, or NULL if
2671 // this is not a typed or a type-parameterized test case.
2672 // set_up_tc: pointer to the function that sets up the test case
2673 // tear_down_tc: pointer to the function that tears down the test case
TestCase(const char * a_name,const char * a_type_param,Test::SetUpTestCaseFunc set_up_tc,Test::TearDownTestCaseFunc tear_down_tc)2674 TestCase::TestCase(const char* a_name, const char* a_type_param,
2675 Test::SetUpTestCaseFunc set_up_tc,
2676 Test::TearDownTestCaseFunc tear_down_tc)
2677 : name_(a_name),
2678 type_param_(a_type_param ? new std::string(a_type_param) : NULL),
2679 set_up_tc_(set_up_tc),
2680 tear_down_tc_(tear_down_tc),
2681 should_run_(false),
2682 elapsed_time_(0) {
2683 }
2684
2685 // Destructor of TestCase.
~TestCase()2686 TestCase::~TestCase() {
2687 // Deletes every Test in the collection.
2688 ForEach(test_info_list_, internal::Delete<TestInfo>);
2689 }
2690
2691 // Returns the i-th test among all the tests. i can range from 0 to
2692 // total_test_count() - 1. If i is not in that range, returns NULL.
GetTestInfo(int i) const2693 const TestInfo* TestCase::GetTestInfo(int i) const {
2694 const int index = GetElementOr(test_indices_, i, -1);
2695 return index < 0 ? NULL : test_info_list_[index];
2696 }
2697
2698 // Returns the i-th test among all the tests. i can range from 0 to
2699 // total_test_count() - 1. If i is not in that range, returns NULL.
GetMutableTestInfo(int i)2700 TestInfo* TestCase::GetMutableTestInfo(int i) {
2701 const int index = GetElementOr(test_indices_, i, -1);
2702 return index < 0 ? NULL : test_info_list_[index];
2703 }
2704
2705 // Adds a test to this test case. Will delete the test upon
2706 // destruction of the TestCase object.
AddTestInfo(TestInfo * test_info)2707 void TestCase::AddTestInfo(TestInfo * test_info) {
2708 test_info_list_.push_back(test_info);
2709 test_indices_.push_back(static_cast<int>(test_indices_.size()));
2710 }
2711
2712 // Runs every test in this TestCase.
Run()2713 void TestCase::Run() {
2714 if (!should_run_) return;
2715
2716 internal::UnitTestImpl* const impl = internal::GetUnitTestImpl();
2717 impl->set_current_test_case(this);
2718
2719 TestEventListener* repeater = UnitTest::GetInstance()->listeners().repeater();
2720
2721 repeater->OnTestCaseStart(*this);
2722 impl->os_stack_trace_getter()->UponLeavingGTest();
2723 internal::HandleExceptionsInMethodIfSupported(
2724 this, &TestCase::RunSetUpTestCase, "SetUpTestCase()");
2725
2726 const internal::TimeInMillis start = internal::GetTimeInMillis();
2727 for (int i = 0; i < total_test_count(); i++) {
2728 GetMutableTestInfo(i)->Run();
2729 }
2730 elapsed_time_ = internal::GetTimeInMillis() - start;
2731
2732 impl->os_stack_trace_getter()->UponLeavingGTest();
2733 internal::HandleExceptionsInMethodIfSupported(
2734 this, &TestCase::RunTearDownTestCase, "TearDownTestCase()");
2735
2736 repeater->OnTestCaseEnd(*this);
2737 impl->set_current_test_case(NULL);
2738 }
2739
2740 // Clears the results of all tests in this test case.
ClearResult()2741 void TestCase::ClearResult() {
2742 ad_hoc_test_result_.Clear();
2743 ForEach(test_info_list_, TestInfo::ClearTestResult);
2744 }
2745
2746 // Shuffles the tests in this test case.
ShuffleTests(internal::Random * random)2747 void TestCase::ShuffleTests(internal::Random* random) {
2748 Shuffle(random, &test_indices_);
2749 }
2750
2751 // Restores the test order to before the first shuffle.
UnshuffleTests()2752 void TestCase::UnshuffleTests() {
2753 for (size_t i = 0; i < test_indices_.size(); i++) {
2754 test_indices_[i] = static_cast<int>(i);
2755 }
2756 }
2757
2758 // Formats a countable noun. Depending on its quantity, either the
2759 // singular form or the plural form is used. e.g.
2760 //
2761 // FormatCountableNoun(1, "formula", "formuli") returns "1 formula".
2762 // FormatCountableNoun(5, "book", "books") returns "5 books".
FormatCountableNoun(int count,const char * singular_form,const char * plural_form)2763 static std::string FormatCountableNoun(int count,
2764 const char * singular_form,
2765 const char * plural_form) {
2766 return internal::StreamableToString(count) + " " +
2767 (count == 1 ? singular_form : plural_form);
2768 }
2769
2770 // Formats the count of tests.
FormatTestCount(int test_count)2771 static std::string FormatTestCount(int test_count) {
2772 return FormatCountableNoun(test_count, "test", "tests");
2773 }
2774
2775 // Formats the count of test cases.
FormatTestCaseCount(int test_case_count)2776 static std::string FormatTestCaseCount(int test_case_count) {
2777 return FormatCountableNoun(test_case_count, "test case", "test cases");
2778 }
2779
2780 // Converts a TestPartResult::Type enum to human-friendly string
2781 // representation. Both kNonFatalFailure and kFatalFailure are translated
2782 // to "Failure", as the user usually doesn't care about the difference
2783 // between the two when viewing the test result.
TestPartResultTypeToString(TestPartResult::Type type)2784 static const char * TestPartResultTypeToString(TestPartResult::Type type) {
2785 switch (type) {
2786 case TestPartResult::kSuccess:
2787 return "Success";
2788
2789 case TestPartResult::kNonFatalFailure:
2790 case TestPartResult::kFatalFailure:
2791 #ifdef _MSC_VER
2792 return "error: ";
2793 #else
2794 return "Failure\n";
2795 #endif
2796 default:
2797 return "Unknown result type";
2798 }
2799 }
2800
2801 namespace internal {
2802
2803 // Prints a TestPartResult to an std::string.
PrintTestPartResultToString(const TestPartResult & test_part_result)2804 static std::string PrintTestPartResultToString(
2805 const TestPartResult& test_part_result) {
2806 return (Message()
2807 << internal::FormatFileLocation(test_part_result.file_name(),
2808 test_part_result.line_number())
2809 << " " << TestPartResultTypeToString(test_part_result.type())
2810 << test_part_result.message()).GetString();
2811 }
2812
2813 // Prints a TestPartResult.
PrintTestPartResult(const TestPartResult & test_part_result)2814 static void PrintTestPartResult(const TestPartResult& test_part_result) {
2815 const std::string& result =
2816 PrintTestPartResultToString(test_part_result);
2817 printf("%s\n", result.c_str());
2818 fflush(stdout);
2819 // If the test program runs in Visual Studio or a debugger, the
2820 // following statements add the test part result message to the Output
2821 // window such that the user can double-click on it to jump to the
2822 // corresponding source code location; otherwise they do nothing.
2823 #if GTEST_OS_WINDOWS && !GTEST_OS_WINDOWS_MOBILE
2824 // We don't call OutputDebugString*() on Windows Mobile, as printing
2825 // to stdout is done by OutputDebugString() there already - we don't
2826 // want the same message printed twice.
2827 ::OutputDebugStringA(result.c_str());
2828 ::OutputDebugStringA("\n");
2829 #endif
2830 }
2831
2832 // class PrettyUnitTestResultPrinter
2833
2834 enum GTestColor {
2835 COLOR_DEFAULT,
2836 COLOR_RED,
2837 COLOR_GREEN,
2838 COLOR_YELLOW
2839 };
2840
2841 #if GTEST_OS_WINDOWS && !GTEST_OS_WINDOWS_MOBILE && \
2842 !GTEST_OS_WINDOWS_PHONE && !GTEST_OS_WINDOWS_RT
2843
2844 // Returns the character attribute for the given color.
GetColorAttribute(GTestColor color)2845 WORD GetColorAttribute(GTestColor color) {
2846 switch (color) {
2847 case COLOR_RED: return FOREGROUND_RED;
2848 case COLOR_GREEN: return FOREGROUND_GREEN;
2849 case COLOR_YELLOW: return FOREGROUND_RED | FOREGROUND_GREEN;
2850 default: return 0;
2851 }
2852 }
2853
2854 #else
2855
2856 // Returns the ANSI color code for the given color. COLOR_DEFAULT is
2857 // an invalid input.
GetAnsiColorCode(GTestColor color)2858 const char* GetAnsiColorCode(GTestColor color) {
2859 switch (color) {
2860 case COLOR_RED: return "1";
2861 case COLOR_GREEN: return "2";
2862 case COLOR_YELLOW: return "3";
2863 default: return NULL;
2864 };
2865 }
2866
2867 #endif // GTEST_OS_WINDOWS && !GTEST_OS_WINDOWS_MOBILE
2868
2869 // Returns true iff Google Test should use colors in the output.
ShouldUseColor(bool stdout_is_tty)2870 bool ShouldUseColor(bool stdout_is_tty) {
2871 const char* const gtest_color = GTEST_FLAG(color).c_str();
2872
2873 if (String::CaseInsensitiveCStringEquals(gtest_color, "auto")) {
2874 #if GTEST_OS_WINDOWS
2875 // On Windows the TERM variable is usually not set, but the
2876 // console there does support colors.
2877 return stdout_is_tty;
2878 #else
2879 // On non-Windows platforms, we rely on the TERM variable.
2880 const char* const term = posix::GetEnv("TERM");
2881 const bool term_supports_color =
2882 String::CStringEquals(term, "xterm") ||
2883 String::CStringEquals(term, "xterm-color") ||
2884 String::CStringEquals(term, "xterm-256color") ||
2885 String::CStringEquals(term, "screen") ||
2886 String::CStringEquals(term, "screen-256color") ||
2887 String::CStringEquals(term, "linux") ||
2888 String::CStringEquals(term, "cygwin");
2889 return stdout_is_tty && term_supports_color;
2890 #endif // GTEST_OS_WINDOWS
2891 }
2892
2893 return String::CaseInsensitiveCStringEquals(gtest_color, "yes") ||
2894 String::CaseInsensitiveCStringEquals(gtest_color, "true") ||
2895 String::CaseInsensitiveCStringEquals(gtest_color, "t") ||
2896 String::CStringEquals(gtest_color, "1");
2897 // We take "yes", "true", "t", and "1" as meaning "yes". If the
2898 // value is neither one of these nor "auto", we treat it as "no" to
2899 // be conservative.
2900 }
2901
2902 // Helpers for printing colored strings to stdout. Note that on Windows, we
2903 // cannot simply emit special characters and have the terminal change colors.
2904 // This routine must actually emit the characters rather than return a string
2905 // that would be colored when printed, as can be done on Linux.
ColoredPrintf(GTestColor color,const char * fmt,...)2906 void ColoredPrintf(GTestColor color, const char* fmt, ...) {
2907 va_list args;
2908 va_start(args, fmt);
2909
2910 #if GTEST_OS_WINDOWS_MOBILE || GTEST_OS_SYMBIAN || GTEST_OS_ZOS || \
2911 GTEST_OS_IOS || GTEST_OS_WINDOWS_PHONE || GTEST_OS_WINDOWS_RT
2912 const bool use_color = false;
2913 #else
2914 static const bool in_color_mode =
2915 ShouldUseColor(posix::IsATTY(posix::FileNo(stdout)) != 0);
2916 const bool use_color = in_color_mode && (color != COLOR_DEFAULT);
2917 #endif // GTEST_OS_WINDOWS_MOBILE || GTEST_OS_SYMBIAN || GTEST_OS_ZOS
2918 // The '!= 0' comparison is necessary to satisfy MSVC 7.1.
2919
2920 if (!use_color) {
2921 vprintf(fmt, args);
2922 va_end(args);
2923 return;
2924 }
2925
2926 #if GTEST_OS_WINDOWS && !GTEST_OS_WINDOWS_MOBILE && \
2927 !GTEST_OS_WINDOWS_PHONE && !GTEST_OS_WINDOWS_RT
2928 const HANDLE stdout_handle = GetStdHandle(STD_OUTPUT_HANDLE);
2929
2930 // Gets the current text color.
2931 CONSOLE_SCREEN_BUFFER_INFO buffer_info;
2932 GetConsoleScreenBufferInfo(stdout_handle, &buffer_info);
2933 const WORD old_color_attrs = buffer_info.wAttributes;
2934
2935 // We need to flush the stream buffers into the console before each
2936 // SetConsoleTextAttribute call lest it affect the text that is already
2937 // printed but has not yet reached the console.
2938 fflush(stdout);
2939 SetConsoleTextAttribute(stdout_handle,
2940 GetColorAttribute(color) | FOREGROUND_INTENSITY);
2941 vprintf(fmt, args);
2942
2943 fflush(stdout);
2944 // Restores the text color.
2945 SetConsoleTextAttribute(stdout_handle, old_color_attrs);
2946 #else
2947 printf("\033[0;3%sm", GetAnsiColorCode(color));
2948 vprintf(fmt, args);
2949 printf("\033[m"); // Resets the terminal to default.
2950 #endif // GTEST_OS_WINDOWS && !GTEST_OS_WINDOWS_MOBILE
2951 va_end(args);
2952 }
2953
2954 // Text printed in Google Test's text output and --gunit_list_tests
2955 // output to label the type parameter and value parameter for a test.
2956 static const char kTypeParamLabel[] = "TypeParam";
2957 static const char kValueParamLabel[] = "GetParam()";
2958
PrintFullTestCommentIfPresent(const TestInfo & test_info)2959 void PrintFullTestCommentIfPresent(const TestInfo& test_info) {
2960 const char* const type_param = test_info.type_param();
2961 const char* const value_param = test_info.value_param();
2962
2963 if (type_param != NULL || value_param != NULL) {
2964 printf(", where ");
2965 if (type_param != NULL) {
2966 printf("%s = %s", kTypeParamLabel, type_param);
2967 if (value_param != NULL)
2968 printf(" and ");
2969 }
2970 if (value_param != NULL) {
2971 printf("%s = %s", kValueParamLabel, value_param);
2972 }
2973 }
2974 }
2975
2976 // This class implements the TestEventListener interface.
2977 //
2978 // Class PrettyUnitTestResultPrinter is copyable.
2979 class PrettyUnitTestResultPrinter : public TestEventListener {
2980 public:
PrettyUnitTestResultPrinter()2981 PrettyUnitTestResultPrinter() {}
PrintTestName(const char * test_case,const char * test)2982 static void PrintTestName(const char * test_case, const char * test) {
2983 printf("%s.%s", test_case, test);
2984 }
2985
2986 // The following methods override what's in the TestEventListener class.
OnTestProgramStart(const UnitTest &)2987 virtual void OnTestProgramStart(const UnitTest& /*unit_test*/) {}
2988 virtual void OnTestIterationStart(const UnitTest& unit_test, int iteration);
2989 virtual void OnEnvironmentsSetUpStart(const UnitTest& unit_test);
OnEnvironmentsSetUpEnd(const UnitTest &)2990 virtual void OnEnvironmentsSetUpEnd(const UnitTest& /*unit_test*/) {}
2991 virtual void OnTestCaseStart(const TestCase& test_case);
2992 virtual void OnTestStart(const TestInfo& test_info);
2993 virtual void OnTestPartResult(const TestPartResult& result);
2994 virtual void OnTestEnd(const TestInfo& test_info);
2995 virtual void OnTestCaseEnd(const TestCase& test_case);
2996 virtual void OnEnvironmentsTearDownStart(const UnitTest& unit_test);
OnEnvironmentsTearDownEnd(const UnitTest &)2997 virtual void OnEnvironmentsTearDownEnd(const UnitTest& /*unit_test*/) {}
2998 virtual void OnTestIterationEnd(const UnitTest& unit_test, int iteration);
OnTestProgramEnd(const UnitTest &)2999 virtual void OnTestProgramEnd(const UnitTest& /*unit_test*/) {}
3000
3001 private:
3002 static void PrintFailedTests(const UnitTest& unit_test);
3003 };
3004
3005 // Fired before each iteration of tests starts.
OnTestIterationStart(const UnitTest & unit_test,int iteration)3006 void PrettyUnitTestResultPrinter::OnTestIterationStart(
3007 const UnitTest& unit_test, int iteration) {
3008 if (GTEST_FLAG(repeat) != 1)
3009 printf("\nRepeating all tests (iteration %d) . . .\n\n", iteration + 1);
3010
3011 const char* const filter = GTEST_FLAG(filter).c_str();
3012
3013 // Prints the filter if it's not *. This reminds the user that some
3014 // tests may be skipped.
3015 if (!String::CStringEquals(filter, kUniversalFilter)) {
3016 ColoredPrintf(COLOR_YELLOW,
3017 "Note: %s filter = %s\n", GTEST_NAME_, filter);
3018 }
3019
3020 if (internal::ShouldShard(kTestTotalShards, kTestShardIndex, false)) {
3021 const Int32 shard_index = Int32FromEnvOrDie(kTestShardIndex, -1);
3022 ColoredPrintf(COLOR_YELLOW,
3023 "Note: This is test shard %d of %s.\n",
3024 static_cast<int>(shard_index) + 1,
3025 internal::posix::GetEnv(kTestTotalShards));
3026 }
3027
3028 if (GTEST_FLAG(shuffle)) {
3029 ColoredPrintf(COLOR_YELLOW,
3030 "Note: Randomizing tests' orders with a seed of %d .\n",
3031 unit_test.random_seed());
3032 }
3033
3034 ColoredPrintf(COLOR_GREEN, "[==========] ");
3035 printf("Running %s from %s.\n",
3036 FormatTestCount(unit_test.test_to_run_count()).c_str(),
3037 FormatTestCaseCount(unit_test.test_case_to_run_count()).c_str());
3038 fflush(stdout);
3039 }
3040
OnEnvironmentsSetUpStart(const UnitTest &)3041 void PrettyUnitTestResultPrinter::OnEnvironmentsSetUpStart(
3042 const UnitTest& /*unit_test*/) {
3043 ColoredPrintf(COLOR_GREEN, "[----------] ");
3044 printf("Global test environment set-up.\n");
3045 fflush(stdout);
3046 }
3047
OnTestCaseStart(const TestCase & test_case)3048 void PrettyUnitTestResultPrinter::OnTestCaseStart(const TestCase& test_case) {
3049 const std::string counts =
3050 FormatCountableNoun(test_case.test_to_run_count(), "test", "tests");
3051 ColoredPrintf(COLOR_GREEN, "[----------] ");
3052 printf("%s from %s", counts.c_str(), test_case.name());
3053 if (test_case.type_param() == NULL) {
3054 printf("\n");
3055 } else {
3056 printf(", where %s = %s\n", kTypeParamLabel, test_case.type_param());
3057 }
3058 fflush(stdout);
3059 }
3060
OnTestStart(const TestInfo & test_info)3061 void PrettyUnitTestResultPrinter::OnTestStart(const TestInfo& test_info) {
3062 ColoredPrintf(COLOR_GREEN, "[ RUN ] ");
3063 PrintTestName(test_info.test_case_name(), test_info.name());
3064 printf("\n");
3065 fflush(stdout);
3066 }
3067
3068 // Called after an assertion failure.
OnTestPartResult(const TestPartResult & result)3069 void PrettyUnitTestResultPrinter::OnTestPartResult(
3070 const TestPartResult& result) {
3071 // If the test part succeeded, we don't need to do anything.
3072 if (result.type() == TestPartResult::kSuccess)
3073 return;
3074
3075 // Print failure message from the assertion (e.g. expected this and got that).
3076 PrintTestPartResult(result);
3077 fflush(stdout);
3078 }
3079
OnTestEnd(const TestInfo & test_info)3080 void PrettyUnitTestResultPrinter::OnTestEnd(const TestInfo& test_info) {
3081 if (test_info.result()->Passed()) {
3082 ColoredPrintf(COLOR_GREEN, "[ OK ] ");
3083 } else {
3084 ColoredPrintf(COLOR_RED, "[ FAILED ] ");
3085 }
3086 PrintTestName(test_info.test_case_name(), test_info.name());
3087 if (test_info.result()->Failed())
3088 PrintFullTestCommentIfPresent(test_info);
3089
3090 if (GTEST_FLAG(print_time)) {
3091 printf(" (%s ms)\n", internal::StreamableToString(
3092 test_info.result()->elapsed_time()).c_str());
3093 } else {
3094 printf("\n");
3095 }
3096 fflush(stdout);
3097 }
3098
OnTestCaseEnd(const TestCase & test_case)3099 void PrettyUnitTestResultPrinter::OnTestCaseEnd(const TestCase& test_case) {
3100 if (!GTEST_FLAG(print_time)) return;
3101
3102 const std::string counts =
3103 FormatCountableNoun(test_case.test_to_run_count(), "test", "tests");
3104 ColoredPrintf(COLOR_GREEN, "[----------] ");
3105 printf("%s from %s (%s ms total)\n\n",
3106 counts.c_str(), test_case.name(),
3107 internal::StreamableToString(test_case.elapsed_time()).c_str());
3108 fflush(stdout);
3109 }
3110
OnEnvironmentsTearDownStart(const UnitTest &)3111 void PrettyUnitTestResultPrinter::OnEnvironmentsTearDownStart(
3112 const UnitTest& /*unit_test*/) {
3113 ColoredPrintf(COLOR_GREEN, "[----------] ");
3114 printf("Global test environment tear-down\n");
3115 fflush(stdout);
3116 }
3117
3118 // Internal helper for printing the list of failed tests.
PrintFailedTests(const UnitTest & unit_test)3119 void PrettyUnitTestResultPrinter::PrintFailedTests(const UnitTest& unit_test) {
3120 const int failed_test_count = unit_test.failed_test_count();
3121 if (failed_test_count == 0) {
3122 return;
3123 }
3124
3125 for (int i = 0; i < unit_test.total_test_case_count(); ++i) {
3126 const TestCase& test_case = *unit_test.GetTestCase(i);
3127 if (!test_case.should_run() || (test_case.failed_test_count() == 0)) {
3128 continue;
3129 }
3130 for (int j = 0; j < test_case.total_test_count(); ++j) {
3131 const TestInfo& test_info = *test_case.GetTestInfo(j);
3132 if (!test_info.should_run() || test_info.result()->Passed()) {
3133 continue;
3134 }
3135 ColoredPrintf(COLOR_RED, "[ FAILED ] ");
3136 printf("%s.%s", test_case.name(), test_info.name());
3137 PrintFullTestCommentIfPresent(test_info);
3138 printf("\n");
3139 }
3140 }
3141 }
3142
OnTestIterationEnd(const UnitTest & unit_test,int)3143 void PrettyUnitTestResultPrinter::OnTestIterationEnd(const UnitTest& unit_test,
3144 int /*iteration*/) {
3145 ColoredPrintf(COLOR_GREEN, "[==========] ");
3146 printf("%s from %s ran.",
3147 FormatTestCount(unit_test.test_to_run_count()).c_str(),
3148 FormatTestCaseCount(unit_test.test_case_to_run_count()).c_str());
3149 if (GTEST_FLAG(print_time)) {
3150 printf(" (%s ms total)",
3151 internal::StreamableToString(unit_test.elapsed_time()).c_str());
3152 }
3153 printf("\n");
3154 ColoredPrintf(COLOR_GREEN, "[ PASSED ] ");
3155 printf("%s.\n", FormatTestCount(unit_test.successful_test_count()).c_str());
3156
3157 int num_failures = unit_test.failed_test_count();
3158 if (!unit_test.Passed()) {
3159 const int failed_test_count = unit_test.failed_test_count();
3160 ColoredPrintf(COLOR_RED, "[ FAILED ] ");
3161 printf("%s, listed below:\n", FormatTestCount(failed_test_count).c_str());
3162 PrintFailedTests(unit_test);
3163 printf("\n%2d FAILED %s\n", num_failures,
3164 num_failures == 1 ? "TEST" : "TESTS");
3165 }
3166
3167 int num_disabled = unit_test.reportable_disabled_test_count();
3168 if (num_disabled && !GTEST_FLAG(also_run_disabled_tests)) {
3169 if (!num_failures) {
3170 printf("\n"); // Add a spacer if no FAILURE banner is displayed.
3171 }
3172 ColoredPrintf(COLOR_YELLOW,
3173 " YOU HAVE %d DISABLED %s\n\n",
3174 num_disabled,
3175 num_disabled == 1 ? "TEST" : "TESTS");
3176 }
3177 // Ensure that Google Test output is printed before, e.g., heapchecker output.
3178 fflush(stdout);
3179 }
3180
3181 // End PrettyUnitTestResultPrinter
3182
3183 // class TestEventRepeater
3184 //
3185 // This class forwards events to other event listeners.
3186 class TestEventRepeater : public TestEventListener {
3187 public:
TestEventRepeater()3188 TestEventRepeater() : forwarding_enabled_(true) {}
3189 virtual ~TestEventRepeater();
3190 void Append(TestEventListener *listener);
3191 TestEventListener* Release(TestEventListener* listener);
3192
3193 // Controls whether events will be forwarded to listeners_. Set to false
3194 // in death test child processes.
forwarding_enabled() const3195 bool forwarding_enabled() const { return forwarding_enabled_; }
set_forwarding_enabled(bool enable)3196 void set_forwarding_enabled(bool enable) { forwarding_enabled_ = enable; }
3197
3198 virtual void OnTestProgramStart(const UnitTest& unit_test);
3199 virtual void OnTestIterationStart(const UnitTest& unit_test, int iteration);
3200 virtual void OnEnvironmentsSetUpStart(const UnitTest& unit_test);
3201 virtual void OnEnvironmentsSetUpEnd(const UnitTest& unit_test);
3202 virtual void OnTestCaseStart(const TestCase& test_case);
3203 virtual void OnTestStart(const TestInfo& test_info);
3204 virtual void OnTestPartResult(const TestPartResult& result);
3205 virtual void OnTestEnd(const TestInfo& test_info);
3206 virtual void OnTestCaseEnd(const TestCase& test_case);
3207 virtual void OnEnvironmentsTearDownStart(const UnitTest& unit_test);
3208 virtual void OnEnvironmentsTearDownEnd(const UnitTest& unit_test);
3209 virtual void OnTestIterationEnd(const UnitTest& unit_test, int iteration);
3210 virtual void OnTestProgramEnd(const UnitTest& unit_test);
3211
3212 private:
3213 // Controls whether events will be forwarded to listeners_. Set to false
3214 // in death test child processes.
3215 bool forwarding_enabled_;
3216 // The list of listeners that receive events.
3217 std::vector<TestEventListener*> listeners_;
3218
3219 GTEST_DISALLOW_COPY_AND_ASSIGN_(TestEventRepeater);
3220 };
3221
~TestEventRepeater()3222 TestEventRepeater::~TestEventRepeater() {
3223 ForEach(listeners_, Delete<TestEventListener>);
3224 }
3225
Append(TestEventListener * listener)3226 void TestEventRepeater::Append(TestEventListener *listener) {
3227 listeners_.push_back(listener);
3228 }
3229
3230 // TODO(vladl@google.com): Factor the search functionality into Vector::Find.
Release(TestEventListener * listener)3231 TestEventListener* TestEventRepeater::Release(TestEventListener *listener) {
3232 for (size_t i = 0; i < listeners_.size(); ++i) {
3233 if (listeners_[i] == listener) {
3234 listeners_.erase(listeners_.begin() + i);
3235 return listener;
3236 }
3237 }
3238
3239 return NULL;
3240 }
3241
3242 // Since most methods are very similar, use macros to reduce boilerplate.
3243 // This defines a member that forwards the call to all listeners.
3244 #define GTEST_REPEATER_METHOD_(Name, Type) \
3245 void TestEventRepeater::Name(const Type& parameter) { \
3246 if (forwarding_enabled_) { \
3247 for (size_t i = 0; i < listeners_.size(); i++) { \
3248 listeners_[i]->Name(parameter); \
3249 } \
3250 } \
3251 }
3252 // This defines a member that forwards the call to all listeners in reverse
3253 // order.
3254 #define GTEST_REVERSE_REPEATER_METHOD_(Name, Type) \
3255 void TestEventRepeater::Name(const Type& parameter) { \
3256 if (forwarding_enabled_) { \
3257 for (int i = static_cast<int>(listeners_.size()) - 1; i >= 0; i--) { \
3258 listeners_[i]->Name(parameter); \
3259 } \
3260 } \
3261 }
3262
GTEST_REPEATER_METHOD_(OnTestProgramStart,UnitTest)3263 GTEST_REPEATER_METHOD_(OnTestProgramStart, UnitTest)
3264 GTEST_REPEATER_METHOD_(OnEnvironmentsSetUpStart, UnitTest)
3265 GTEST_REPEATER_METHOD_(OnTestCaseStart, TestCase)
3266 GTEST_REPEATER_METHOD_(OnTestStart, TestInfo)
3267 GTEST_REPEATER_METHOD_(OnTestPartResult, TestPartResult)
3268 GTEST_REPEATER_METHOD_(OnEnvironmentsTearDownStart, UnitTest)
3269 GTEST_REVERSE_REPEATER_METHOD_(OnEnvironmentsSetUpEnd, UnitTest)
3270 GTEST_REVERSE_REPEATER_METHOD_(OnEnvironmentsTearDownEnd, UnitTest)
3271 GTEST_REVERSE_REPEATER_METHOD_(OnTestEnd, TestInfo)
3272 GTEST_REVERSE_REPEATER_METHOD_(OnTestCaseEnd, TestCase)
3273 GTEST_REVERSE_REPEATER_METHOD_(OnTestProgramEnd, UnitTest)
3274
3275 #undef GTEST_REPEATER_METHOD_
3276 #undef GTEST_REVERSE_REPEATER_METHOD_
3277
3278 void TestEventRepeater::OnTestIterationStart(const UnitTest& unit_test,
3279 int iteration) {
3280 if (forwarding_enabled_) {
3281 for (size_t i = 0; i < listeners_.size(); i++) {
3282 listeners_[i]->OnTestIterationStart(unit_test, iteration);
3283 }
3284 }
3285 }
3286
OnTestIterationEnd(const UnitTest & unit_test,int iteration)3287 void TestEventRepeater::OnTestIterationEnd(const UnitTest& unit_test,
3288 int iteration) {
3289 if (forwarding_enabled_) {
3290 for (int i = static_cast<int>(listeners_.size()) - 1; i >= 0; i--) {
3291 listeners_[i]->OnTestIterationEnd(unit_test, iteration);
3292 }
3293 }
3294 }
3295
3296 // End TestEventRepeater
3297
3298 // This class generates an XML output file.
3299 class XmlUnitTestResultPrinter : public EmptyTestEventListener {
3300 public:
3301 explicit XmlUnitTestResultPrinter(const char* output_file);
3302
3303 virtual void OnTestIterationEnd(const UnitTest& unit_test, int iteration);
3304
3305 private:
3306 // Is c a whitespace character that is normalized to a space character
3307 // when it appears in an XML attribute value?
IsNormalizableWhitespace(char c)3308 static bool IsNormalizableWhitespace(char c) {
3309 return c == 0x9 || c == 0xA || c == 0xD;
3310 }
3311
3312 // May c appear in a well-formed XML document?
IsValidXmlCharacter(char c)3313 static bool IsValidXmlCharacter(char c) {
3314 return IsNormalizableWhitespace(c) || c >= 0x20;
3315 }
3316
3317 // Returns an XML-escaped copy of the input string str. If
3318 // is_attribute is true, the text is meant to appear as an attribute
3319 // value, and normalizable whitespace is preserved by replacing it
3320 // with character references.
3321 static std::string EscapeXml(const std::string& str, bool is_attribute);
3322
3323 // Returns the given string with all characters invalid in XML removed.
3324 static std::string RemoveInvalidXmlCharacters(const std::string& str);
3325
3326 // Convenience wrapper around EscapeXml when str is an attribute value.
EscapeXmlAttribute(const std::string & str)3327 static std::string EscapeXmlAttribute(const std::string& str) {
3328 return EscapeXml(str, true);
3329 }
3330
3331 // Convenience wrapper around EscapeXml when str is not an attribute value.
EscapeXmlText(const char * str)3332 static std::string EscapeXmlText(const char* str) {
3333 return EscapeXml(str, false);
3334 }
3335
3336 // Verifies that the given attribute belongs to the given element and
3337 // streams the attribute as XML.
3338 static void OutputXmlAttribute(std::ostream* stream,
3339 const std::string& element_name,
3340 const std::string& name,
3341 const std::string& value);
3342
3343 // Streams an XML CDATA section, escaping invalid CDATA sequences as needed.
3344 static void OutputXmlCDataSection(::std::ostream* stream, const char* data);
3345
3346 // Streams an XML representation of a TestInfo object.
3347 static void OutputXmlTestInfo(::std::ostream* stream,
3348 const char* test_case_name,
3349 const TestInfo& test_info);
3350
3351 // Prints an XML representation of a TestCase object
3352 static void PrintXmlTestCase(::std::ostream* stream,
3353 const TestCase& test_case);
3354
3355 // Prints an XML summary of unit_test to output stream out.
3356 static void PrintXmlUnitTest(::std::ostream* stream,
3357 const UnitTest& unit_test);
3358
3359 // Produces a string representing the test properties in a result as space
3360 // delimited XML attributes based on the property key="value" pairs.
3361 // When the std::string is not empty, it includes a space at the beginning,
3362 // to delimit this attribute from prior attributes.
3363 static std::string TestPropertiesAsXmlAttributes(const TestResult& result);
3364
3365 // The output file.
3366 const std::string output_file_;
3367
3368 GTEST_DISALLOW_COPY_AND_ASSIGN_(XmlUnitTestResultPrinter);
3369 };
3370
3371 // Creates a new XmlUnitTestResultPrinter.
XmlUnitTestResultPrinter(const char * output_file)3372 XmlUnitTestResultPrinter::XmlUnitTestResultPrinter(const char* output_file)
3373 : output_file_(output_file) {
3374 if (output_file_.c_str() == NULL || output_file_.empty()) {
3375 fprintf(stderr, "XML output file may not be null\n");
3376 fflush(stderr);
3377 exit(EXIT_FAILURE);
3378 }
3379 }
3380
3381 // Called after the unit test ends.
OnTestIterationEnd(const UnitTest & unit_test,int)3382 void XmlUnitTestResultPrinter::OnTestIterationEnd(const UnitTest& unit_test,
3383 int /*iteration*/) {
3384 FILE* xmlout = NULL;
3385 FilePath output_file(output_file_);
3386 FilePath output_dir(output_file.RemoveFileName());
3387
3388 if (output_dir.CreateDirectoriesRecursively()) {
3389 xmlout = posix::FOpen(output_file_.c_str(), "w");
3390 }
3391 if (xmlout == NULL) {
3392 // TODO(wan): report the reason of the failure.
3393 //
3394 // We don't do it for now as:
3395 //
3396 // 1. There is no urgent need for it.
3397 // 2. It's a bit involved to make the errno variable thread-safe on
3398 // all three operating systems (Linux, Windows, and Mac OS).
3399 // 3. To interpret the meaning of errno in a thread-safe way,
3400 // we need the strerror_r() function, which is not available on
3401 // Windows.
3402 fprintf(stderr,
3403 "Unable to open file \"%s\"\n",
3404 output_file_.c_str());
3405 fflush(stderr);
3406 exit(EXIT_FAILURE);
3407 }
3408 std::stringstream stream;
3409 PrintXmlUnitTest(&stream, unit_test);
3410 fprintf(xmlout, "%s", StringStreamToString(&stream).c_str());
3411 fclose(xmlout);
3412 }
3413
3414 // Returns an XML-escaped copy of the input string str. If is_attribute
3415 // is true, the text is meant to appear as an attribute value, and
3416 // normalizable whitespace is preserved by replacing it with character
3417 // references.
3418 //
3419 // Invalid XML characters in str, if any, are stripped from the output.
3420 // It is expected that most, if not all, of the text processed by this
3421 // module will consist of ordinary English text.
3422 // If this module is ever modified to produce version 1.1 XML output,
3423 // most invalid characters can be retained using character references.
3424 // TODO(wan): It might be nice to have a minimally invasive, human-readable
3425 // escaping scheme for invalid characters, rather than dropping them.
EscapeXml(const std::string & str,bool is_attribute)3426 std::string XmlUnitTestResultPrinter::EscapeXml(
3427 const std::string& str, bool is_attribute) {
3428 Message m;
3429
3430 for (size_t i = 0; i < str.size(); ++i) {
3431 const char ch = str[i];
3432 switch (ch) {
3433 case '<':
3434 m << "<";
3435 break;
3436 case '>':
3437 m << ">";
3438 break;
3439 case '&':
3440 m << "&";
3441 break;
3442 case '\'':
3443 if (is_attribute)
3444 m << "'";
3445 else
3446 m << '\'';
3447 break;
3448 case '"':
3449 if (is_attribute)
3450 m << """;
3451 else
3452 m << '"';
3453 break;
3454 default:
3455 if (IsValidXmlCharacter(ch)) {
3456 if (is_attribute && IsNormalizableWhitespace(ch))
3457 m << "&#x" << String::FormatByte(static_cast<unsigned char>(ch))
3458 << ";";
3459 else
3460 m << ch;
3461 }
3462 break;
3463 }
3464 }
3465
3466 return m.GetString();
3467 }
3468
3469 // Returns the given string with all characters invalid in XML removed.
3470 // Currently invalid characters are dropped from the string. An
3471 // alternative is to replace them with certain characters such as . or ?.
RemoveInvalidXmlCharacters(const std::string & str)3472 std::string XmlUnitTestResultPrinter::RemoveInvalidXmlCharacters(
3473 const std::string& str) {
3474 std::string output;
3475 output.reserve(str.size());
3476 for (std::string::const_iterator it = str.begin(); it != str.end(); ++it)
3477 if (IsValidXmlCharacter(*it))
3478 output.push_back(*it);
3479
3480 return output;
3481 }
3482
3483 // The following routines generate an XML representation of a UnitTest
3484 // object.
3485 //
3486 // This is how Google Test concepts map to the DTD:
3487 //
3488 // <testsuites name="AllTests"> <-- corresponds to a UnitTest object
3489 // <testsuite name="testcase-name"> <-- corresponds to a TestCase object
3490 // <testcase name="test-name"> <-- corresponds to a TestInfo object
3491 // <failure message="...">...</failure>
3492 // <failure message="...">...</failure>
3493 // <failure message="...">...</failure>
3494 // <-- individual assertion failures
3495 // </testcase>
3496 // </testsuite>
3497 // </testsuites>
3498
3499 // Formats the given time in milliseconds as seconds.
FormatTimeInMillisAsSeconds(TimeInMillis ms)3500 std::string FormatTimeInMillisAsSeconds(TimeInMillis ms) {
3501 ::std::stringstream ss;
3502 ss << ms/1000.0;
3503 return ss.str();
3504 }
3505
3506 // Converts the given epoch time in milliseconds to a date string in the ISO
3507 // 8601 format, without the timezone information.
FormatEpochTimeInMillisAsIso8601(TimeInMillis ms)3508 std::string FormatEpochTimeInMillisAsIso8601(TimeInMillis ms) {
3509 time_t seconds = static_cast<time_t>(ms / 1000);
3510 struct tm time_struct;
3511 #ifdef _MSC_VER
3512 if (localtime_s(&time_struct, &seconds) != 0)
3513 return ""; // Invalid ms value
3514 #else
3515 if (localtime_r(&seconds, &time_struct) == NULL)
3516 return ""; // Invalid ms value
3517 #endif
3518
3519 // YYYY-MM-DDThh:mm:ss
3520 return StreamableToString(time_struct.tm_year + 1900) + "-" +
3521 String::FormatIntWidth2(time_struct.tm_mon + 1) + "-" +
3522 String::FormatIntWidth2(time_struct.tm_mday) + "T" +
3523 String::FormatIntWidth2(time_struct.tm_hour) + ":" +
3524 String::FormatIntWidth2(time_struct.tm_min) + ":" +
3525 String::FormatIntWidth2(time_struct.tm_sec);
3526 }
3527
3528 // Streams an XML CDATA section, escaping invalid CDATA sequences as needed.
OutputXmlCDataSection(::std::ostream * stream,const char * data)3529 void XmlUnitTestResultPrinter::OutputXmlCDataSection(::std::ostream* stream,
3530 const char* data) {
3531 const char* segment = data;
3532 *stream << "<![CDATA[";
3533 for (;;) {
3534 const char* const next_segment = strstr(segment, "]]>");
3535 if (next_segment != NULL) {
3536 stream->write(
3537 segment, static_cast<std::streamsize>(next_segment - segment));
3538 *stream << "]]>]]><![CDATA[";
3539 segment = next_segment + strlen("]]>");
3540 } else {
3541 *stream << segment;
3542 break;
3543 }
3544 }
3545 *stream << "]]>";
3546 }
3547
OutputXmlAttribute(std::ostream * stream,const std::string & element_name,const std::string & name,const std::string & value)3548 void XmlUnitTestResultPrinter::OutputXmlAttribute(
3549 std::ostream* stream,
3550 const std::string& element_name,
3551 const std::string& name,
3552 const std::string& value) {
3553 const std::vector<std::string>& allowed_names =
3554 GetReservedAttributesForElement(element_name);
3555
3556 GTEST_CHECK_(std::find(allowed_names.begin(), allowed_names.end(), name) !=
3557 allowed_names.end())
3558 << "Attribute " << name << " is not allowed for element <" << element_name
3559 << ">.";
3560
3561 *stream << " " << name << "=\"" << EscapeXmlAttribute(value) << "\"";
3562 }
3563
3564 // Prints an XML representation of a TestInfo object.
3565 // TODO(wan): There is also value in printing properties with the plain printer.
OutputXmlTestInfo(::std::ostream * stream,const char * test_case_name,const TestInfo & test_info)3566 void XmlUnitTestResultPrinter::OutputXmlTestInfo(::std::ostream* stream,
3567 const char* test_case_name,
3568 const TestInfo& test_info) {
3569 const TestResult& result = *test_info.result();
3570 const std::string kTestcase = "testcase";
3571
3572 *stream << " <testcase";
3573 OutputXmlAttribute(stream, kTestcase, "name", test_info.name());
3574
3575 if (test_info.value_param() != NULL) {
3576 OutputXmlAttribute(stream, kTestcase, "value_param",
3577 test_info.value_param());
3578 }
3579 if (test_info.type_param() != NULL) {
3580 OutputXmlAttribute(stream, kTestcase, "type_param", test_info.type_param());
3581 }
3582
3583 OutputXmlAttribute(stream, kTestcase, "status",
3584 test_info.should_run() ? "run" : "notrun");
3585 OutputXmlAttribute(stream, kTestcase, "time",
3586 FormatTimeInMillisAsSeconds(result.elapsed_time()));
3587 OutputXmlAttribute(stream, kTestcase, "classname", test_case_name);
3588 *stream << TestPropertiesAsXmlAttributes(result);
3589
3590 int failures = 0;
3591 for (int i = 0; i < result.total_part_count(); ++i) {
3592 const TestPartResult& part = result.GetTestPartResult(i);
3593 if (part.failed()) {
3594 if (++failures == 1) {
3595 *stream << ">\n";
3596 }
3597 const string location = internal::FormatCompilerIndependentFileLocation(
3598 part.file_name(), part.line_number());
3599 const string summary = location + "\n" + part.summary();
3600 *stream << " <failure message=\""
3601 << EscapeXmlAttribute(summary.c_str())
3602 << "\" type=\"\">";
3603 const string detail = location + "\n" + part.message();
3604 OutputXmlCDataSection(stream, RemoveInvalidXmlCharacters(detail).c_str());
3605 *stream << "</failure>\n";
3606 }
3607 }
3608
3609 if (failures == 0)
3610 *stream << " />\n";
3611 else
3612 *stream << " </testcase>\n";
3613 }
3614
3615 // Prints an XML representation of a TestCase object
PrintXmlTestCase(std::ostream * stream,const TestCase & test_case)3616 void XmlUnitTestResultPrinter::PrintXmlTestCase(std::ostream* stream,
3617 const TestCase& test_case) {
3618 const std::string kTestsuite = "testsuite";
3619 *stream << " <" << kTestsuite;
3620 OutputXmlAttribute(stream, kTestsuite, "name", test_case.name());
3621 OutputXmlAttribute(stream, kTestsuite, "tests",
3622 StreamableToString(test_case.reportable_test_count()));
3623 OutputXmlAttribute(stream, kTestsuite, "failures",
3624 StreamableToString(test_case.failed_test_count()));
3625 OutputXmlAttribute(
3626 stream, kTestsuite, "disabled",
3627 StreamableToString(test_case.reportable_disabled_test_count()));
3628 OutputXmlAttribute(stream, kTestsuite, "errors", "0");
3629 OutputXmlAttribute(stream, kTestsuite, "time",
3630 FormatTimeInMillisAsSeconds(test_case.elapsed_time()));
3631 *stream << TestPropertiesAsXmlAttributes(test_case.ad_hoc_test_result())
3632 << ">\n";
3633
3634 for (int i = 0; i < test_case.total_test_count(); ++i) {
3635 if (test_case.GetTestInfo(i)->is_reportable())
3636 OutputXmlTestInfo(stream, test_case.name(), *test_case.GetTestInfo(i));
3637 }
3638 *stream << " </" << kTestsuite << ">\n";
3639 }
3640
3641 // Prints an XML summary of unit_test to output stream out.
PrintXmlUnitTest(std::ostream * stream,const UnitTest & unit_test)3642 void XmlUnitTestResultPrinter::PrintXmlUnitTest(std::ostream* stream,
3643 const UnitTest& unit_test) {
3644 const std::string kTestsuites = "testsuites";
3645
3646 *stream << "<?xml version=\"1.0\" encoding=\"UTF-8\"?>\n";
3647 *stream << "<" << kTestsuites;
3648
3649 OutputXmlAttribute(stream, kTestsuites, "tests",
3650 StreamableToString(unit_test.reportable_test_count()));
3651 OutputXmlAttribute(stream, kTestsuites, "failures",
3652 StreamableToString(unit_test.failed_test_count()));
3653 OutputXmlAttribute(
3654 stream, kTestsuites, "disabled",
3655 StreamableToString(unit_test.reportable_disabled_test_count()));
3656 OutputXmlAttribute(stream, kTestsuites, "errors", "0");
3657 OutputXmlAttribute(
3658 stream, kTestsuites, "timestamp",
3659 FormatEpochTimeInMillisAsIso8601(unit_test.start_timestamp()));
3660 OutputXmlAttribute(stream, kTestsuites, "time",
3661 FormatTimeInMillisAsSeconds(unit_test.elapsed_time()));
3662
3663 if (GTEST_FLAG(shuffle)) {
3664 OutputXmlAttribute(stream, kTestsuites, "random_seed",
3665 StreamableToString(unit_test.random_seed()));
3666 }
3667
3668 *stream << TestPropertiesAsXmlAttributes(unit_test.ad_hoc_test_result());
3669
3670 OutputXmlAttribute(stream, kTestsuites, "name", "AllTests");
3671 *stream << ">\n";
3672
3673 for (int i = 0; i < unit_test.total_test_case_count(); ++i) {
3674 if (unit_test.GetTestCase(i)->reportable_test_count() > 0)
3675 PrintXmlTestCase(stream, *unit_test.GetTestCase(i));
3676 }
3677 *stream << "</" << kTestsuites << ">\n";
3678 }
3679
3680 // Produces a string representing the test properties in a result as space
3681 // delimited XML attributes based on the property key="value" pairs.
TestPropertiesAsXmlAttributes(const TestResult & result)3682 std::string XmlUnitTestResultPrinter::TestPropertiesAsXmlAttributes(
3683 const TestResult& result) {
3684 Message attributes;
3685 for (int i = 0; i < result.test_property_count(); ++i) {
3686 const TestProperty& property = result.GetTestProperty(i);
3687 attributes << " " << property.key() << "="
3688 << "\"" << EscapeXmlAttribute(property.value()) << "\"";
3689 }
3690 return attributes.GetString();
3691 }
3692
3693 // End XmlUnitTestResultPrinter
3694
3695 #if GTEST_CAN_STREAM_RESULTS_
3696
3697 // Checks if str contains '=', '&', '%' or '\n' characters. If yes,
3698 // replaces them by "%xx" where xx is their hexadecimal value. For
3699 // example, replaces "=" with "%3D". This algorithm is O(strlen(str))
3700 // in both time and space -- important as the input str may contain an
3701 // arbitrarily long test failure message and stack trace.
UrlEncode(const char * str)3702 string StreamingListener::UrlEncode(const char* str) {
3703 string result;
3704 result.reserve(strlen(str) + 1);
3705 for (char ch = *str; ch != '\0'; ch = *++str) {
3706 switch (ch) {
3707 case '%':
3708 case '=':
3709 case '&':
3710 case '\n':
3711 result.append("%" + String::FormatByte(static_cast<unsigned char>(ch)));
3712 break;
3713 default:
3714 result.push_back(ch);
3715 break;
3716 }
3717 }
3718 return result;
3719 }
3720
MakeConnection()3721 void StreamingListener::SocketWriter::MakeConnection() {
3722 GTEST_CHECK_(sockfd_ == -1)
3723 << "MakeConnection() can't be called when there is already a connection.";
3724
3725 addrinfo hints;
3726 memset(&hints, 0, sizeof(hints));
3727 hints.ai_family = AF_UNSPEC; // To allow both IPv4 and IPv6 addresses.
3728 hints.ai_socktype = SOCK_STREAM;
3729 addrinfo* servinfo = NULL;
3730
3731 // Use the getaddrinfo() to get a linked list of IP addresses for
3732 // the given host name.
3733 const int error_num = getaddrinfo(
3734 host_name_.c_str(), port_num_.c_str(), &hints, &servinfo);
3735 if (error_num != 0) {
3736 GTEST_LOG_(WARNING) << "stream_result_to: getaddrinfo() failed: "
3737 << gai_strerror(error_num);
3738 }
3739
3740 // Loop through all the results and connect to the first we can.
3741 for (addrinfo* cur_addr = servinfo; sockfd_ == -1 && cur_addr != NULL;
3742 cur_addr = cur_addr->ai_next) {
3743 sockfd_ = socket(
3744 cur_addr->ai_family, cur_addr->ai_socktype, cur_addr->ai_protocol);
3745 if (sockfd_ != -1) {
3746 // Connect the client socket to the server socket.
3747 if (connect(sockfd_, cur_addr->ai_addr, cur_addr->ai_addrlen) == -1) {
3748 close(sockfd_);
3749 sockfd_ = -1;
3750 }
3751 }
3752 }
3753
3754 freeaddrinfo(servinfo); // all done with this structure
3755
3756 if (sockfd_ == -1) {
3757 GTEST_LOG_(WARNING) << "stream_result_to: failed to connect to "
3758 << host_name_ << ":" << port_num_;
3759 }
3760 }
3761
3762 // End of class Streaming Listener
3763 #endif // GTEST_CAN_STREAM_RESULTS__
3764
3765 // Class ScopedTrace
3766
3767 // Pushes the given source file location and message onto a per-thread
3768 // trace stack maintained by Google Test.
ScopedTrace(const char * file,int line,const Message & message)3769 ScopedTrace::ScopedTrace(const char* file, int line, const Message& message)
3770 GTEST_LOCK_EXCLUDED_(&UnitTest::mutex_) {
3771 TraceInfo trace;
3772 trace.file = file;
3773 trace.line = line;
3774 trace.message = message.GetString();
3775
3776 UnitTest::GetInstance()->PushGTestTrace(trace);
3777 }
3778
3779 // Pops the info pushed by the c'tor.
~ScopedTrace()3780 ScopedTrace::~ScopedTrace()
3781 GTEST_LOCK_EXCLUDED_(&UnitTest::mutex_) {
3782 UnitTest::GetInstance()->PopGTestTrace();
3783 }
3784
3785
3786 // class OsStackTraceGetter
3787
3788 // Returns the current OS stack trace as an std::string. Parameters:
3789 //
3790 // max_depth - the maximum number of stack frames to be included
3791 // in the trace.
3792 // skip_count - the number of top frames to be skipped; doesn't count
3793 // against max_depth.
3794 //
CurrentStackTrace(int,int)3795 string OsStackTraceGetter::CurrentStackTrace(int /* max_depth */,
3796 int /* skip_count */)
3797 GTEST_LOCK_EXCLUDED_(mutex_) {
3798 return "";
3799 }
3800
UponLeavingGTest()3801 void OsStackTraceGetter::UponLeavingGTest()
3802 GTEST_LOCK_EXCLUDED_(mutex_) {
3803 }
3804
3805 const char* const
3806 OsStackTraceGetter::kElidedFramesMarker =
3807 "... " GTEST_NAME_ " internal frames ...";
3808
3809 // A helper class that creates the premature-exit file in its
3810 // constructor and deletes the file in its destructor.
3811 class ScopedPrematureExitFile {
3812 public:
ScopedPrematureExitFile(const char * premature_exit_filepath)3813 explicit ScopedPrematureExitFile(const char* premature_exit_filepath)
3814 : premature_exit_filepath_(premature_exit_filepath) {
3815 // If a path to the premature-exit file is specified...
3816 if (premature_exit_filepath != NULL && *premature_exit_filepath != '\0') {
3817 // create the file with a single "0" character in it. I/O
3818 // errors are ignored as there's nothing better we can do and we
3819 // don't want to fail the test because of this.
3820 FILE* pfile = posix::FOpen(premature_exit_filepath, "w");
3821 fwrite("0", 1, 1, pfile);
3822 fclose(pfile);
3823 }
3824 }
3825
~ScopedPrematureExitFile()3826 ~ScopedPrematureExitFile() {
3827 if (premature_exit_filepath_ != NULL && *premature_exit_filepath_ != '\0') {
3828 remove(premature_exit_filepath_);
3829 }
3830 }
3831
3832 private:
3833 const char* const premature_exit_filepath_;
3834
3835 GTEST_DISALLOW_COPY_AND_ASSIGN_(ScopedPrematureExitFile);
3836 };
3837
3838 } // namespace internal
3839
3840 // class TestEventListeners
3841
TestEventListeners()3842 TestEventListeners::TestEventListeners()
3843 : repeater_(new internal::TestEventRepeater()),
3844 default_result_printer_(NULL),
3845 default_xml_generator_(NULL) {
3846 }
3847
~TestEventListeners()3848 TestEventListeners::~TestEventListeners() { delete repeater_; }
3849
3850 // Returns the standard listener responsible for the default console
3851 // output. Can be removed from the listeners list to shut down default
3852 // console output. Note that removing this object from the listener list
3853 // with Release transfers its ownership to the user.
Append(TestEventListener * listener)3854 void TestEventListeners::Append(TestEventListener* listener) {
3855 repeater_->Append(listener);
3856 }
3857
3858 // Removes the given event listener from the list and returns it. It then
3859 // becomes the caller's responsibility to delete the listener. Returns
3860 // NULL if the listener is not found in the list.
Release(TestEventListener * listener)3861 TestEventListener* TestEventListeners::Release(TestEventListener* listener) {
3862 if (listener == default_result_printer_)
3863 default_result_printer_ = NULL;
3864 else if (listener == default_xml_generator_)
3865 default_xml_generator_ = NULL;
3866 return repeater_->Release(listener);
3867 }
3868
3869 // Returns repeater that broadcasts the TestEventListener events to all
3870 // subscribers.
repeater()3871 TestEventListener* TestEventListeners::repeater() { return repeater_; }
3872
3873 // Sets the default_result_printer attribute to the provided listener.
3874 // The listener is also added to the listener list and previous
3875 // default_result_printer is removed from it and deleted. The listener can
3876 // also be NULL in which case it will not be added to the list. Does
3877 // nothing if the previous and the current listener objects are the same.
SetDefaultResultPrinter(TestEventListener * listener)3878 void TestEventListeners::SetDefaultResultPrinter(TestEventListener* listener) {
3879 if (default_result_printer_ != listener) {
3880 // It is an error to pass this method a listener that is already in the
3881 // list.
3882 delete Release(default_result_printer_);
3883 default_result_printer_ = listener;
3884 if (listener != NULL)
3885 Append(listener);
3886 }
3887 }
3888
3889 // Sets the default_xml_generator attribute to the provided listener. The
3890 // listener is also added to the listener list and previous
3891 // default_xml_generator is removed from it and deleted. The listener can
3892 // also be NULL in which case it will not be added to the list. Does
3893 // nothing if the previous and the current listener objects are the same.
SetDefaultXmlGenerator(TestEventListener * listener)3894 void TestEventListeners::SetDefaultXmlGenerator(TestEventListener* listener) {
3895 if (default_xml_generator_ != listener) {
3896 // It is an error to pass this method a listener that is already in the
3897 // list.
3898 delete Release(default_xml_generator_);
3899 default_xml_generator_ = listener;
3900 if (listener != NULL)
3901 Append(listener);
3902 }
3903 }
3904
3905 // Controls whether events will be forwarded by the repeater to the
3906 // listeners in the list.
EventForwardingEnabled() const3907 bool TestEventListeners::EventForwardingEnabled() const {
3908 return repeater_->forwarding_enabled();
3909 }
3910
SuppressEventForwarding()3911 void TestEventListeners::SuppressEventForwarding() {
3912 repeater_->set_forwarding_enabled(false);
3913 }
3914
3915 // class UnitTest
3916
3917 // Gets the singleton UnitTest object. The first time this method is
3918 // called, a UnitTest object is constructed and returned. Consecutive
3919 // calls will return the same object.
3920 //
3921 // We don't protect this under mutex_ as a user is not supposed to
3922 // call this before main() starts, from which point on the return
3923 // value will never change.
GetInstance()3924 UnitTest* UnitTest::GetInstance() {
3925 // When compiled with MSVC 7.1 in optimized mode, destroying the
3926 // UnitTest object upon exiting the program messes up the exit code,
3927 // causing successful tests to appear failed. We have to use a
3928 // different implementation in this case to bypass the compiler bug.
3929 // This implementation makes the compiler happy, at the cost of
3930 // leaking the UnitTest object.
3931
3932 // CodeGear C++Builder insists on a public destructor for the
3933 // default implementation. Use this implementation to keep good OO
3934 // design with private destructor.
3935
3936 #if (_MSC_VER == 1310 && !defined(_DEBUG)) || defined(__BORLANDC__)
3937 static UnitTest* const instance = new UnitTest;
3938 return instance;
3939 #else
3940 static UnitTest instance;
3941 return &instance;
3942 #endif // (_MSC_VER == 1310 && !defined(_DEBUG)) || defined(__BORLANDC__)
3943 }
3944
3945 // Gets the number of successful test cases.
successful_test_case_count() const3946 int UnitTest::successful_test_case_count() const {
3947 return impl()->successful_test_case_count();
3948 }
3949
3950 // Gets the number of failed test cases.
failed_test_case_count() const3951 int UnitTest::failed_test_case_count() const {
3952 return impl()->failed_test_case_count();
3953 }
3954
3955 // Gets the number of all test cases.
total_test_case_count() const3956 int UnitTest::total_test_case_count() const {
3957 return impl()->total_test_case_count();
3958 }
3959
3960 // Gets the number of all test cases that contain at least one test
3961 // that should run.
test_case_to_run_count() const3962 int UnitTest::test_case_to_run_count() const {
3963 return impl()->test_case_to_run_count();
3964 }
3965
3966 // Gets the number of successful tests.
successful_test_count() const3967 int UnitTest::successful_test_count() const {
3968 return impl()->successful_test_count();
3969 }
3970
3971 // Gets the number of failed tests.
failed_test_count() const3972 int UnitTest::failed_test_count() const { return impl()->failed_test_count(); }
3973
3974 // Gets the number of disabled tests that will be reported in the XML report.
reportable_disabled_test_count() const3975 int UnitTest::reportable_disabled_test_count() const {
3976 return impl()->reportable_disabled_test_count();
3977 }
3978
3979 // Gets the number of disabled tests.
disabled_test_count() const3980 int UnitTest::disabled_test_count() const {
3981 return impl()->disabled_test_count();
3982 }
3983
3984 // Gets the number of tests to be printed in the XML report.
reportable_test_count() const3985 int UnitTest::reportable_test_count() const {
3986 return impl()->reportable_test_count();
3987 }
3988
3989 // Gets the number of all tests.
total_test_count() const3990 int UnitTest::total_test_count() const { return impl()->total_test_count(); }
3991
3992 // Gets the number of tests that should run.
test_to_run_count() const3993 int UnitTest::test_to_run_count() const { return impl()->test_to_run_count(); }
3994
3995 // Gets the time of the test program start, in ms from the start of the
3996 // UNIX epoch.
start_timestamp() const3997 internal::TimeInMillis UnitTest::start_timestamp() const {
3998 return impl()->start_timestamp();
3999 }
4000
4001 // Gets the elapsed time, in milliseconds.
elapsed_time() const4002 internal::TimeInMillis UnitTest::elapsed_time() const {
4003 return impl()->elapsed_time();
4004 }
4005
4006 // Returns true iff the unit test passed (i.e. all test cases passed).
Passed() const4007 bool UnitTest::Passed() const { return impl()->Passed(); }
4008
4009 // Returns true iff the unit test failed (i.e. some test case failed
4010 // or something outside of all tests failed).
Failed() const4011 bool UnitTest::Failed() const { return impl()->Failed(); }
4012
4013 // Gets the i-th test case among all the test cases. i can range from 0 to
4014 // total_test_case_count() - 1. If i is not in that range, returns NULL.
GetTestCase(int i) const4015 const TestCase* UnitTest::GetTestCase(int i) const {
4016 return impl()->GetTestCase(i);
4017 }
4018
4019 // Returns the TestResult containing information on test failures and
4020 // properties logged outside of individual test cases.
ad_hoc_test_result() const4021 const TestResult& UnitTest::ad_hoc_test_result() const {
4022 return *impl()->ad_hoc_test_result();
4023 }
4024
4025 // Gets the i-th test case among all the test cases. i can range from 0 to
4026 // total_test_case_count() - 1. If i is not in that range, returns NULL.
GetMutableTestCase(int i)4027 TestCase* UnitTest::GetMutableTestCase(int i) {
4028 return impl()->GetMutableTestCase(i);
4029 }
4030
4031 // Returns the list of event listeners that can be used to track events
4032 // inside Google Test.
listeners()4033 TestEventListeners& UnitTest::listeners() {
4034 return *impl()->listeners();
4035 }
4036
4037 // Registers and returns a global test environment. When a test
4038 // program is run, all global test environments will be set-up in the
4039 // order they were registered. After all tests in the program have
4040 // finished, all global test environments will be torn-down in the
4041 // *reverse* order they were registered.
4042 //
4043 // The UnitTest object takes ownership of the given environment.
4044 //
4045 // We don't protect this under mutex_, as we only support calling it
4046 // from the main thread.
AddEnvironment(Environment * env)4047 Environment* UnitTest::AddEnvironment(Environment* env) {
4048 if (env == NULL) {
4049 return NULL;
4050 }
4051
4052 impl_->environments().push_back(env);
4053 return env;
4054 }
4055
4056 // Adds a TestPartResult to the current TestResult object. All Google Test
4057 // assertion macros (e.g. ASSERT_TRUE, EXPECT_EQ, etc) eventually call
4058 // this to report their results. The user code should use the
4059 // assertion macros instead of calling this directly.
AddTestPartResult(TestPartResult::Type result_type,const char * file_name,int line_number,const std::string & message,const std::string & os_stack_trace)4060 void UnitTest::AddTestPartResult(
4061 TestPartResult::Type result_type,
4062 const char* file_name,
4063 int line_number,
4064 const std::string& message,
4065 const std::string& os_stack_trace) GTEST_LOCK_EXCLUDED_(mutex_) {
4066 Message msg;
4067 msg << message;
4068
4069 internal::MutexLock lock(&mutex_);
4070 if (impl_->gtest_trace_stack().size() > 0) {
4071 msg << "\n" << GTEST_NAME_ << " trace:";
4072
4073 for (int i = static_cast<int>(impl_->gtest_trace_stack().size());
4074 i > 0; --i) {
4075 const internal::TraceInfo& trace = impl_->gtest_trace_stack()[i - 1];
4076 msg << "\n" << internal::FormatFileLocation(trace.file, trace.line)
4077 << " " << trace.message;
4078 }
4079 }
4080
4081 if (os_stack_trace.c_str() != NULL && !os_stack_trace.empty()) {
4082 msg << internal::kStackTraceMarker << os_stack_trace;
4083 }
4084
4085 const TestPartResult result =
4086 TestPartResult(result_type, file_name, line_number,
4087 msg.GetString().c_str());
4088 impl_->GetTestPartResultReporterForCurrentThread()->
4089 ReportTestPartResult(result);
4090
4091 if (result_type != TestPartResult::kSuccess) {
4092 // gtest_break_on_failure takes precedence over
4093 // gtest_throw_on_failure. This allows a user to set the latter
4094 // in the code (perhaps in order to use Google Test assertions
4095 // with another testing framework) and specify the former on the
4096 // command line for debugging.
4097 if (GTEST_FLAG(break_on_failure)) {
4098 #if GTEST_OS_WINDOWS && !GTEST_OS_WINDOWS_PHONE && !GTEST_OS_WINDOWS_RT
4099 // Using DebugBreak on Windows allows gtest to still break into a debugger
4100 // when a failure happens and both the --gtest_break_on_failure and
4101 // the --gtest_catch_exceptions flags are specified.
4102 DebugBreak();
4103 #else
4104 // Dereference NULL through a volatile pointer to prevent the compiler
4105 // from removing. We use this rather than abort() or __builtin_trap() for
4106 // portability: Symbian doesn't implement abort() well, and some debuggers
4107 // don't correctly trap abort().
4108 *static_cast<volatile int*>(NULL) = 1;
4109 #endif // GTEST_OS_WINDOWS
4110 } else if (GTEST_FLAG(throw_on_failure)) {
4111 #if GTEST_HAS_EXCEPTIONS
4112 throw internal::GoogleTestFailureException(result);
4113 #else
4114 // We cannot call abort() as it generates a pop-up in debug mode
4115 // that cannot be suppressed in VC 7.1 or below.
4116 exit(1);
4117 #endif
4118 }
4119 }
4120 }
4121
4122 // Adds a TestProperty to the current TestResult object when invoked from
4123 // inside a test, to current TestCase's ad_hoc_test_result_ when invoked
4124 // from SetUpTestCase or TearDownTestCase, or to the global property set
4125 // when invoked elsewhere. If the result already contains a property with
4126 // the same key, the value will be updated.
RecordProperty(const std::string & key,const std::string & value)4127 void UnitTest::RecordProperty(const std::string& key,
4128 const std::string& value) {
4129 impl_->RecordProperty(TestProperty(key, value));
4130 }
4131
4132 // Runs all tests in this UnitTest object and prints the result.
4133 // Returns 0 if successful, or 1 otherwise.
4134 //
4135 // We don't protect this under mutex_, as we only support calling it
4136 // from the main thread.
Run()4137 int UnitTest::Run() {
4138 const bool in_death_test_child_process =
4139 internal::GTEST_FLAG(internal_run_death_test).length() > 0;
4140
4141 // Google Test implements this protocol for catching that a test
4142 // program exits before returning control to Google Test:
4143 //
4144 // 1. Upon start, Google Test creates a file whose absolute path
4145 // is specified by the environment variable
4146 // TEST_PREMATURE_EXIT_FILE.
4147 // 2. When Google Test has finished its work, it deletes the file.
4148 //
4149 // This allows a test runner to set TEST_PREMATURE_EXIT_FILE before
4150 // running a Google-Test-based test program and check the existence
4151 // of the file at the end of the test execution to see if it has
4152 // exited prematurely.
4153
4154 // If we are in the child process of a death test, don't
4155 // create/delete the premature exit file, as doing so is unnecessary
4156 // and will confuse the parent process. Otherwise, create/delete
4157 // the file upon entering/leaving this function. If the program
4158 // somehow exits before this function has a chance to return, the
4159 // premature-exit file will be left undeleted, causing a test runner
4160 // that understands the premature-exit-file protocol to report the
4161 // test as having failed.
4162 const internal::ScopedPrematureExitFile premature_exit_file(
4163 in_death_test_child_process ?
4164 NULL : internal::posix::GetEnv("TEST_PREMATURE_EXIT_FILE"));
4165
4166 // Captures the value of GTEST_FLAG(catch_exceptions). This value will be
4167 // used for the duration of the program.
4168 impl()->set_catch_exceptions(GTEST_FLAG(catch_exceptions));
4169
4170 #if GTEST_HAS_SEH
4171 // Either the user wants Google Test to catch exceptions thrown by the
4172 // tests or this is executing in the context of death test child
4173 // process. In either case the user does not want to see pop-up dialogs
4174 // about crashes - they are expected.
4175 if (impl()->catch_exceptions() || in_death_test_child_process) {
4176 # if !GTEST_OS_WINDOWS_MOBILE && !GTEST_OS_WINDOWS_PHONE && !GTEST_OS_WINDOWS_RT
4177 // SetErrorMode doesn't exist on CE.
4178 SetErrorMode(SEM_FAILCRITICALERRORS | SEM_NOALIGNMENTFAULTEXCEPT |
4179 SEM_NOGPFAULTERRORBOX | SEM_NOOPENFILEERRORBOX);
4180 # endif // !GTEST_OS_WINDOWS_MOBILE
4181
4182 # if (defined(_MSC_VER) || GTEST_OS_WINDOWS_MINGW) && !GTEST_OS_WINDOWS_MOBILE
4183 // Death test children can be terminated with _abort(). On Windows,
4184 // _abort() can show a dialog with a warning message. This forces the
4185 // abort message to go to stderr instead.
4186 _set_error_mode(_OUT_TO_STDERR);
4187 # endif
4188
4189 # if _MSC_VER >= 1400 && !GTEST_OS_WINDOWS_MOBILE
4190 // In the debug version, Visual Studio pops up a separate dialog
4191 // offering a choice to debug the aborted program. We need to suppress
4192 // this dialog or it will pop up for every EXPECT/ASSERT_DEATH statement
4193 // executed. Google Test will notify the user of any unexpected
4194 // failure via stderr.
4195 //
4196 // VC++ doesn't define _set_abort_behavior() prior to the version 8.0.
4197 // Users of prior VC versions shall suffer the agony and pain of
4198 // clicking through the countless debug dialogs.
4199 // TODO(vladl@google.com): find a way to suppress the abort dialog() in the
4200 // debug mode when compiled with VC 7.1 or lower.
4201 if (!GTEST_FLAG(break_on_failure))
4202 _set_abort_behavior(
4203 0x0, // Clear the following flags:
4204 _WRITE_ABORT_MSG | _CALL_REPORTFAULT); // pop-up window, core dump.
4205 # endif
4206 }
4207 #endif // GTEST_HAS_SEH
4208
4209 return internal::HandleExceptionsInMethodIfSupported(
4210 impl(),
4211 &internal::UnitTestImpl::RunAllTests,
4212 "auxiliary test code (environments or event listeners)") ? 0 : 1;
4213 }
4214
4215 // Returns the working directory when the first TEST() or TEST_F() was
4216 // executed.
original_working_dir() const4217 const char* UnitTest::original_working_dir() const {
4218 return impl_->original_working_dir_.c_str();
4219 }
4220
4221 // Returns the TestCase object for the test that's currently running,
4222 // or NULL if no test is running.
current_test_case() const4223 const TestCase* UnitTest::current_test_case() const
4224 GTEST_LOCK_EXCLUDED_(mutex_) {
4225 internal::MutexLock lock(&mutex_);
4226 return impl_->current_test_case();
4227 }
4228
4229 // Returns the TestInfo object for the test that's currently running,
4230 // or NULL if no test is running.
current_test_info() const4231 const TestInfo* UnitTest::current_test_info() const
4232 GTEST_LOCK_EXCLUDED_(mutex_) {
4233 internal::MutexLock lock(&mutex_);
4234 return impl_->current_test_info();
4235 }
4236
4237 // Returns the random seed used at the start of the current test run.
random_seed() const4238 int UnitTest::random_seed() const { return impl_->random_seed(); }
4239
4240 #if GTEST_HAS_PARAM_TEST
4241 // Returns ParameterizedTestCaseRegistry object used to keep track of
4242 // value-parameterized tests and instantiate and register them.
4243 internal::ParameterizedTestCaseRegistry&
parameterized_test_registry()4244 UnitTest::parameterized_test_registry()
4245 GTEST_LOCK_EXCLUDED_(mutex_) {
4246 return impl_->parameterized_test_registry();
4247 }
4248 #endif // GTEST_HAS_PARAM_TEST
4249
4250 // Creates an empty UnitTest.
UnitTest()4251 UnitTest::UnitTest() {
4252 impl_ = new internal::UnitTestImpl(this);
4253 }
4254
4255 // Destructor of UnitTest.
~UnitTest()4256 UnitTest::~UnitTest() {
4257 delete impl_;
4258 }
4259
4260 // Pushes a trace defined by SCOPED_TRACE() on to the per-thread
4261 // Google Test trace stack.
PushGTestTrace(const internal::TraceInfo & trace)4262 void UnitTest::PushGTestTrace(const internal::TraceInfo& trace)
4263 GTEST_LOCK_EXCLUDED_(mutex_) {
4264 internal::MutexLock lock(&mutex_);
4265 impl_->gtest_trace_stack().push_back(trace);
4266 }
4267
4268 // Pops a trace from the per-thread Google Test trace stack.
PopGTestTrace()4269 void UnitTest::PopGTestTrace()
4270 GTEST_LOCK_EXCLUDED_(mutex_) {
4271 internal::MutexLock lock(&mutex_);
4272 impl_->gtest_trace_stack().pop_back();
4273 }
4274
4275 namespace internal {
4276
UnitTestImpl(UnitTest * parent)4277 UnitTestImpl::UnitTestImpl(UnitTest* parent)
4278 : parent_(parent),
4279 GTEST_DISABLE_MSC_WARNINGS_PUSH_(4355 /* using this in initializer */)
4280 default_global_test_part_result_reporter_(this),
4281 default_per_thread_test_part_result_reporter_(this),
4282 GTEST_DISABLE_MSC_WARNINGS_POP_()
4283 global_test_part_result_repoter_(
4284 &default_global_test_part_result_reporter_),
4285 per_thread_test_part_result_reporter_(
4286 &default_per_thread_test_part_result_reporter_),
4287 #if GTEST_HAS_PARAM_TEST
4288 parameterized_test_registry_(),
4289 parameterized_tests_registered_(false),
4290 #endif // GTEST_HAS_PARAM_TEST
4291 last_death_test_case_(-1),
4292 current_test_case_(NULL),
4293 current_test_info_(NULL),
4294 ad_hoc_test_result_(),
4295 os_stack_trace_getter_(NULL),
4296 post_flag_parse_init_performed_(false),
4297 random_seed_(0), // Will be overridden by the flag before first use.
4298 random_(0), // Will be reseeded before first use.
4299 start_timestamp_(0),
4300 elapsed_time_(0),
4301 #if GTEST_HAS_DEATH_TEST
4302 death_test_factory_(new DefaultDeathTestFactory),
4303 #endif
4304 // Will be overridden by the flag before first use.
4305 catch_exceptions_(false) {
4306 listeners()->SetDefaultResultPrinter(new PrettyUnitTestResultPrinter);
4307 }
4308
~UnitTestImpl()4309 UnitTestImpl::~UnitTestImpl() {
4310 // Deletes every TestCase.
4311 ForEach(test_cases_, internal::Delete<TestCase>);
4312
4313 // Deletes every Environment.
4314 ForEach(environments_, internal::Delete<Environment>);
4315
4316 delete os_stack_trace_getter_;
4317 }
4318
4319 // Adds a TestProperty to the current TestResult object when invoked in a
4320 // context of a test, to current test case's ad_hoc_test_result when invoke
4321 // from SetUpTestCase/TearDownTestCase, or to the global property set
4322 // otherwise. If the result already contains a property with the same key,
4323 // the value will be updated.
RecordProperty(const TestProperty & test_property)4324 void UnitTestImpl::RecordProperty(const TestProperty& test_property) {
4325 std::string xml_element;
4326 TestResult* test_result; // TestResult appropriate for property recording.
4327
4328 if (current_test_info_ != NULL) {
4329 xml_element = "testcase";
4330 test_result = &(current_test_info_->result_);
4331 } else if (current_test_case_ != NULL) {
4332 xml_element = "testsuite";
4333 test_result = &(current_test_case_->ad_hoc_test_result_);
4334 } else {
4335 xml_element = "testsuites";
4336 test_result = &ad_hoc_test_result_;
4337 }
4338 test_result->RecordProperty(xml_element, test_property);
4339 }
4340
4341 #if GTEST_HAS_DEATH_TEST
4342 // Disables event forwarding if the control is currently in a death test
4343 // subprocess. Must not be called before InitGoogleTest.
SuppressTestEventsIfInSubprocess()4344 void UnitTestImpl::SuppressTestEventsIfInSubprocess() {
4345 if (internal_run_death_test_flag_.get() != NULL)
4346 listeners()->SuppressEventForwarding();
4347 }
4348 #endif // GTEST_HAS_DEATH_TEST
4349
4350 // Initializes event listeners performing XML output as specified by
4351 // UnitTestOptions. Must not be called before InitGoogleTest.
ConfigureXmlOutput()4352 void UnitTestImpl::ConfigureXmlOutput() {
4353 const std::string& output_format = UnitTestOptions::GetOutputFormat();
4354 if (output_format == "xml") {
4355 listeners()->SetDefaultXmlGenerator(new XmlUnitTestResultPrinter(
4356 UnitTestOptions::GetAbsolutePathToOutputFile().c_str()));
4357 } else if (output_format != "") {
4358 printf("WARNING: unrecognized output format \"%s\" ignored.\n",
4359 output_format.c_str());
4360 fflush(stdout);
4361 }
4362 }
4363
4364 #if GTEST_CAN_STREAM_RESULTS_
4365 // Initializes event listeners for streaming test results in string form.
4366 // Must not be called before InitGoogleTest.
ConfigureStreamingOutput()4367 void UnitTestImpl::ConfigureStreamingOutput() {
4368 const std::string& target = GTEST_FLAG(stream_result_to);
4369 if (!target.empty()) {
4370 const size_t pos = target.find(':');
4371 if (pos != std::string::npos) {
4372 listeners()->Append(new StreamingListener(target.substr(0, pos),
4373 target.substr(pos+1)));
4374 } else {
4375 printf("WARNING: unrecognized streaming target \"%s\" ignored.\n",
4376 target.c_str());
4377 fflush(stdout);
4378 }
4379 }
4380 }
4381 #endif // GTEST_CAN_STREAM_RESULTS_
4382
4383 // Performs initialization dependent upon flag values obtained in
4384 // ParseGoogleTestFlagsOnly. Is called from InitGoogleTest after the call to
4385 // ParseGoogleTestFlagsOnly. In case a user neglects to call InitGoogleTest
4386 // this function is also called from RunAllTests. Since this function can be
4387 // called more than once, it has to be idempotent.
PostFlagParsingInit()4388 void UnitTestImpl::PostFlagParsingInit() {
4389 // Ensures that this function does not execute more than once.
4390 if (!post_flag_parse_init_performed_) {
4391 post_flag_parse_init_performed_ = true;
4392
4393 #if GTEST_HAS_DEATH_TEST
4394 InitDeathTestSubprocessControlInfo();
4395 SuppressTestEventsIfInSubprocess();
4396 #endif // GTEST_HAS_DEATH_TEST
4397
4398 // Registers parameterized tests. This makes parameterized tests
4399 // available to the UnitTest reflection API without running
4400 // RUN_ALL_TESTS.
4401 RegisterParameterizedTests();
4402
4403 // Configures listeners for XML output. This makes it possible for users
4404 // to shut down the default XML output before invoking RUN_ALL_TESTS.
4405 ConfigureXmlOutput();
4406
4407 #if GTEST_CAN_STREAM_RESULTS_
4408 // Configures listeners for streaming test results to the specified server.
4409 ConfigureStreamingOutput();
4410 #endif // GTEST_CAN_STREAM_RESULTS_
4411 }
4412 }
4413
4414 // A predicate that checks the name of a TestCase against a known
4415 // value.
4416 //
4417 // This is used for implementation of the UnitTest class only. We put
4418 // it in the anonymous namespace to prevent polluting the outer
4419 // namespace.
4420 //
4421 // TestCaseNameIs is copyable.
4422 class TestCaseNameIs {
4423 public:
4424 // Constructor.
TestCaseNameIs(const std::string & name)4425 explicit TestCaseNameIs(const std::string& name)
4426 : name_(name) {}
4427
4428 // Returns true iff the name of test_case matches name_.
operator ()(const TestCase * test_case) const4429 bool operator()(const TestCase* test_case) const {
4430 return test_case != NULL && strcmp(test_case->name(), name_.c_str()) == 0;
4431 }
4432
4433 private:
4434 std::string name_;
4435 };
4436
4437 // Finds and returns a TestCase with the given name. If one doesn't
4438 // exist, creates one and returns it. It's the CALLER'S
4439 // RESPONSIBILITY to ensure that this function is only called WHEN THE
4440 // TESTS ARE NOT SHUFFLED.
4441 //
4442 // Arguments:
4443 //
4444 // test_case_name: name of the test case
4445 // type_param: the name of the test case's type parameter, or NULL if
4446 // this is not a typed or a type-parameterized test case.
4447 // set_up_tc: pointer to the function that sets up the test case
4448 // tear_down_tc: pointer to the function that tears down the test case
GetTestCase(const char * test_case_name,const char * type_param,Test::SetUpTestCaseFunc set_up_tc,Test::TearDownTestCaseFunc tear_down_tc)4449 TestCase* UnitTestImpl::GetTestCase(const char* test_case_name,
4450 const char* type_param,
4451 Test::SetUpTestCaseFunc set_up_tc,
4452 Test::TearDownTestCaseFunc tear_down_tc) {
4453 // Can we find a TestCase with the given name?
4454 const std::vector<TestCase*>::const_iterator test_case =
4455 std::find_if(test_cases_.begin(), test_cases_.end(),
4456 TestCaseNameIs(test_case_name));
4457
4458 if (test_case != test_cases_.end())
4459 return *test_case;
4460
4461 // No. Let's create one.
4462 TestCase* const new_test_case =
4463 new TestCase(test_case_name, type_param, set_up_tc, tear_down_tc);
4464
4465 // Is this a death test case?
4466 if (internal::UnitTestOptions::MatchesFilter(test_case_name,
4467 kDeathTestCaseFilter)) {
4468 // Yes. Inserts the test case after the last death test case
4469 // defined so far. This only works when the test cases haven't
4470 // been shuffled. Otherwise we may end up running a death test
4471 // after a non-death test.
4472 ++last_death_test_case_;
4473 test_cases_.insert(test_cases_.begin() + last_death_test_case_,
4474 new_test_case);
4475 } else {
4476 // No. Appends to the end of the list.
4477 test_cases_.push_back(new_test_case);
4478 }
4479
4480 test_case_indices_.push_back(static_cast<int>(test_case_indices_.size()));
4481 return new_test_case;
4482 }
4483
4484 // Helpers for setting up / tearing down the given environment. They
4485 // are for use in the ForEach() function.
SetUpEnvironment(Environment * env)4486 static void SetUpEnvironment(Environment* env) { env->SetUp(); }
TearDownEnvironment(Environment * env)4487 static void TearDownEnvironment(Environment* env) { env->TearDown(); }
4488
4489 // Runs all tests in this UnitTest object, prints the result, and
4490 // returns true if all tests are successful. If any exception is
4491 // thrown during a test, the test is considered to be failed, but the
4492 // rest of the tests will still be run.
4493 //
4494 // When parameterized tests are enabled, it expands and registers
4495 // parameterized tests first in RegisterParameterizedTests().
4496 // All other functions called from RunAllTests() may safely assume that
4497 // parameterized tests are ready to be counted and run.
RunAllTests()4498 bool UnitTestImpl::RunAllTests() {
4499 // Makes sure InitGoogleTest() was called.
4500 if (!GTestIsInitialized()) {
4501 printf("%s",
4502 "\nThis test program did NOT call ::testing::InitGoogleTest "
4503 "before calling RUN_ALL_TESTS(). Please fix it.\n");
4504 return false;
4505 }
4506
4507 // Do not run any test if the --help flag was specified.
4508 if (g_help_flag)
4509 return true;
4510
4511 // Repeats the call to the post-flag parsing initialization in case the
4512 // user didn't call InitGoogleTest.
4513 PostFlagParsingInit();
4514
4515 // Even if sharding is not on, test runners may want to use the
4516 // GTEST_SHARD_STATUS_FILE to query whether the test supports the sharding
4517 // protocol.
4518 internal::WriteToShardStatusFileIfNeeded();
4519
4520 // True iff we are in a subprocess for running a thread-safe-style
4521 // death test.
4522 bool in_subprocess_for_death_test = false;
4523
4524 #if GTEST_HAS_DEATH_TEST
4525 in_subprocess_for_death_test = (internal_run_death_test_flag_.get() != NULL);
4526 #endif // GTEST_HAS_DEATH_TEST
4527
4528 const bool should_shard = ShouldShard(kTestTotalShards, kTestShardIndex,
4529 in_subprocess_for_death_test);
4530
4531 // Compares the full test names with the filter to decide which
4532 // tests to run.
4533 const bool has_tests_to_run = FilterTests(should_shard
4534 ? HONOR_SHARDING_PROTOCOL
4535 : IGNORE_SHARDING_PROTOCOL) > 0;
4536
4537 // Lists the tests and exits if the --gtest_list_tests flag was specified.
4538 if (GTEST_FLAG(list_tests)) {
4539 // This must be called *after* FilterTests() has been called.
4540 ListTestsMatchingFilter();
4541 return true;
4542 }
4543
4544 random_seed_ = GTEST_FLAG(shuffle) ?
4545 GetRandomSeedFromFlag(GTEST_FLAG(random_seed)) : 0;
4546
4547 // True iff at least one test has failed.
4548 bool failed = false;
4549
4550 TestEventListener* repeater = listeners()->repeater();
4551
4552 start_timestamp_ = GetTimeInMillis();
4553 repeater->OnTestProgramStart(*parent_);
4554
4555 // How many times to repeat the tests? We don't want to repeat them
4556 // when we are inside the subprocess of a death test.
4557 const int repeat = in_subprocess_for_death_test ? 1 : GTEST_FLAG(repeat);
4558 // Repeats forever if the repeat count is negative.
4559 const bool forever = repeat < 0;
4560 for (int i = 0; forever || i != repeat; i++) {
4561 // We want to preserve failures generated by ad-hoc test
4562 // assertions executed before RUN_ALL_TESTS().
4563 ClearNonAdHocTestResult();
4564
4565 const TimeInMillis start = GetTimeInMillis();
4566
4567 // Shuffles test cases and tests if requested.
4568 if (has_tests_to_run && GTEST_FLAG(shuffle)) {
4569 random()->Reseed(random_seed_);
4570 // This should be done before calling OnTestIterationStart(),
4571 // such that a test event listener can see the actual test order
4572 // in the event.
4573 ShuffleTests();
4574 }
4575
4576 // Tells the unit test event listeners that the tests are about to start.
4577 repeater->OnTestIterationStart(*parent_, i);
4578
4579 // Runs each test case if there is at least one test to run.
4580 if (has_tests_to_run) {
4581 // Sets up all environments beforehand.
4582 repeater->OnEnvironmentsSetUpStart(*parent_);
4583 ForEach(environments_, SetUpEnvironment);
4584 repeater->OnEnvironmentsSetUpEnd(*parent_);
4585
4586 // Runs the tests only if there was no fatal failure during global
4587 // set-up.
4588 if (!Test::HasFatalFailure()) {
4589 for (int test_index = 0; test_index < total_test_case_count();
4590 test_index++) {
4591 GetMutableTestCase(test_index)->Run();
4592 }
4593 }
4594
4595 // Tears down all environments in reverse order afterwards.
4596 repeater->OnEnvironmentsTearDownStart(*parent_);
4597 std::for_each(environments_.rbegin(), environments_.rend(),
4598 TearDownEnvironment);
4599 repeater->OnEnvironmentsTearDownEnd(*parent_);
4600 }
4601
4602 elapsed_time_ = GetTimeInMillis() - start;
4603
4604 // Tells the unit test event listener that the tests have just finished.
4605 repeater->OnTestIterationEnd(*parent_, i);
4606
4607 // Gets the result and clears it.
4608 if (!Passed()) {
4609 failed = true;
4610 }
4611
4612 // Restores the original test order after the iteration. This
4613 // allows the user to quickly repro a failure that happens in the
4614 // N-th iteration without repeating the first (N - 1) iterations.
4615 // This is not enclosed in "if (GTEST_FLAG(shuffle)) { ... }", in
4616 // case the user somehow changes the value of the flag somewhere
4617 // (it's always safe to unshuffle the tests).
4618 UnshuffleTests();
4619
4620 if (GTEST_FLAG(shuffle)) {
4621 // Picks a new random seed for each iteration.
4622 random_seed_ = GetNextRandomSeed(random_seed_);
4623 }
4624 }
4625
4626 repeater->OnTestProgramEnd(*parent_);
4627
4628 return !failed;
4629 }
4630
4631 // Reads the GTEST_SHARD_STATUS_FILE environment variable, and creates the file
4632 // if the variable is present. If a file already exists at this location, this
4633 // function will write over it. If the variable is present, but the file cannot
4634 // be created, prints an error and exits.
WriteToShardStatusFileIfNeeded()4635 void WriteToShardStatusFileIfNeeded() {
4636 const char* const test_shard_file = posix::GetEnv(kTestShardStatusFile);
4637 if (test_shard_file != NULL) {
4638 FILE* const file = posix::FOpen(test_shard_file, "w");
4639 if (file == NULL) {
4640 ColoredPrintf(COLOR_RED,
4641 "Could not write to the test shard status file \"%s\" "
4642 "specified by the %s environment variable.\n",
4643 test_shard_file, kTestShardStatusFile);
4644 fflush(stdout);
4645 exit(EXIT_FAILURE);
4646 }
4647 fclose(file);
4648 }
4649 }
4650
4651 // Checks whether sharding is enabled by examining the relevant
4652 // environment variable values. If the variables are present,
4653 // but inconsistent (i.e., shard_index >= total_shards), prints
4654 // an error and exits. If in_subprocess_for_death_test, sharding is
4655 // disabled because it must only be applied to the original test
4656 // process. Otherwise, we could filter out death tests we intended to execute.
ShouldShard(const char * total_shards_env,const char * shard_index_env,bool in_subprocess_for_death_test)4657 bool ShouldShard(const char* total_shards_env,
4658 const char* shard_index_env,
4659 bool in_subprocess_for_death_test) {
4660 if (in_subprocess_for_death_test) {
4661 return false;
4662 }
4663
4664 const Int32 total_shards = Int32FromEnvOrDie(total_shards_env, -1);
4665 const Int32 shard_index = Int32FromEnvOrDie(shard_index_env, -1);
4666
4667 if (total_shards == -1 && shard_index == -1) {
4668 return false;
4669 } else if (total_shards == -1 && shard_index != -1) {
4670 const Message msg = Message()
4671 << "Invalid environment variables: you have "
4672 << kTestShardIndex << " = " << shard_index
4673 << ", but have left " << kTestTotalShards << " unset.\n";
4674 ColoredPrintf(COLOR_RED, msg.GetString().c_str());
4675 fflush(stdout);
4676 exit(EXIT_FAILURE);
4677 } else if (total_shards != -1 && shard_index == -1) {
4678 const Message msg = Message()
4679 << "Invalid environment variables: you have "
4680 << kTestTotalShards << " = " << total_shards
4681 << ", but have left " << kTestShardIndex << " unset.\n";
4682 ColoredPrintf(COLOR_RED, msg.GetString().c_str());
4683 fflush(stdout);
4684 exit(EXIT_FAILURE);
4685 } else if (shard_index < 0 || shard_index >= total_shards) {
4686 const Message msg = Message()
4687 << "Invalid environment variables: we require 0 <= "
4688 << kTestShardIndex << " < " << kTestTotalShards
4689 << ", but you have " << kTestShardIndex << "=" << shard_index
4690 << ", " << kTestTotalShards << "=" << total_shards << ".\n";
4691 ColoredPrintf(COLOR_RED, msg.GetString().c_str());
4692 fflush(stdout);
4693 exit(EXIT_FAILURE);
4694 }
4695
4696 return total_shards > 1;
4697 }
4698
4699 // Parses the environment variable var as an Int32. If it is unset,
4700 // returns default_val. If it is not an Int32, prints an error
4701 // and aborts.
Int32FromEnvOrDie(const char * var,Int32 default_val)4702 Int32 Int32FromEnvOrDie(const char* var, Int32 default_val) {
4703 const char* str_val = posix::GetEnv(var);
4704 if (str_val == NULL) {
4705 return default_val;
4706 }
4707
4708 Int32 result;
4709 if (!ParseInt32(Message() << "The value of environment variable " << var,
4710 str_val, &result)) {
4711 exit(EXIT_FAILURE);
4712 }
4713 return result;
4714 }
4715
4716 // Given the total number of shards, the shard index, and the test id,
4717 // returns true iff the test should be run on this shard. The test id is
4718 // some arbitrary but unique non-negative integer assigned to each test
4719 // method. Assumes that 0 <= shard_index < total_shards.
ShouldRunTestOnShard(int total_shards,int shard_index,int test_id)4720 bool ShouldRunTestOnShard(int total_shards, int shard_index, int test_id) {
4721 return (test_id % total_shards) == shard_index;
4722 }
4723
4724 // Compares the name of each test with the user-specified filter to
4725 // decide whether the test should be run, then records the result in
4726 // each TestCase and TestInfo object.
4727 // If shard_tests == true, further filters tests based on sharding
4728 // variables in the environment - see
4729 // http://code.google.com/p/googletest/wiki/GoogleTestAdvancedGuide.
4730 // Returns the number of tests that should run.
FilterTests(ReactionToSharding shard_tests)4731 int UnitTestImpl::FilterTests(ReactionToSharding shard_tests) {
4732 const Int32 total_shards = shard_tests == HONOR_SHARDING_PROTOCOL ?
4733 Int32FromEnvOrDie(kTestTotalShards, -1) : -1;
4734 const Int32 shard_index = shard_tests == HONOR_SHARDING_PROTOCOL ?
4735 Int32FromEnvOrDie(kTestShardIndex, -1) : -1;
4736
4737 // num_runnable_tests are the number of tests that will
4738 // run across all shards (i.e., match filter and are not disabled).
4739 // num_selected_tests are the number of tests to be run on
4740 // this shard.
4741 int num_runnable_tests = 0;
4742 int num_selected_tests = 0;
4743 for (size_t i = 0; i < test_cases_.size(); i++) {
4744 TestCase* const test_case = test_cases_[i];
4745 const std::string &test_case_name = test_case->name();
4746 test_case->set_should_run(false);
4747
4748 for (size_t j = 0; j < test_case->test_info_list().size(); j++) {
4749 TestInfo* const test_info = test_case->test_info_list()[j];
4750 const std::string test_name(test_info->name());
4751 // A test is disabled if test case name or test name matches
4752 // kDisableTestFilter.
4753 const bool is_disabled =
4754 internal::UnitTestOptions::MatchesFilter(test_case_name,
4755 kDisableTestFilter) ||
4756 internal::UnitTestOptions::MatchesFilter(test_name,
4757 kDisableTestFilter);
4758 test_info->is_disabled_ = is_disabled;
4759
4760 const bool matches_filter =
4761 internal::UnitTestOptions::FilterMatchesTest(test_case_name,
4762 test_name);
4763 test_info->matches_filter_ = matches_filter;
4764
4765 const bool is_runnable =
4766 (GTEST_FLAG(also_run_disabled_tests) || !is_disabled) &&
4767 matches_filter;
4768
4769 const bool is_selected = is_runnable &&
4770 (shard_tests == IGNORE_SHARDING_PROTOCOL ||
4771 ShouldRunTestOnShard(total_shards, shard_index,
4772 num_runnable_tests));
4773
4774 num_runnable_tests += is_runnable;
4775 num_selected_tests += is_selected;
4776
4777 test_info->should_run_ = is_selected;
4778 test_case->set_should_run(test_case->should_run() || is_selected);
4779 }
4780 }
4781 return num_selected_tests;
4782 }
4783
4784 // Prints the given C-string on a single line by replacing all '\n'
4785 // characters with string "\\n". If the output takes more than
4786 // max_length characters, only prints the first max_length characters
4787 // and "...".
PrintOnOneLine(const char * str,int max_length)4788 static void PrintOnOneLine(const char* str, int max_length) {
4789 if (str != NULL) {
4790 for (int i = 0; *str != '\0'; ++str) {
4791 if (i >= max_length) {
4792 printf("...");
4793 break;
4794 }
4795 if (*str == '\n') {
4796 printf("\\n");
4797 i += 2;
4798 } else {
4799 printf("%c", *str);
4800 ++i;
4801 }
4802 }
4803 }
4804 }
4805
4806 // Prints the names of the tests matching the user-specified filter flag.
ListTestsMatchingFilter()4807 void UnitTestImpl::ListTestsMatchingFilter() {
4808 // Print at most this many characters for each type/value parameter.
4809 const int kMaxParamLength = 250;
4810
4811 for (size_t i = 0; i < test_cases_.size(); i++) {
4812 const TestCase* const test_case = test_cases_[i];
4813 bool printed_test_case_name = false;
4814
4815 for (size_t j = 0; j < test_case->test_info_list().size(); j++) {
4816 const TestInfo* const test_info =
4817 test_case->test_info_list()[j];
4818 if (test_info->matches_filter_) {
4819 if (!printed_test_case_name) {
4820 printed_test_case_name = true;
4821 printf("%s.", test_case->name());
4822 if (test_case->type_param() != NULL) {
4823 printf(" # %s = ", kTypeParamLabel);
4824 // We print the type parameter on a single line to make
4825 // the output easy to parse by a program.
4826 PrintOnOneLine(test_case->type_param(), kMaxParamLength);
4827 }
4828 printf("\n");
4829 }
4830 printf(" %s", test_info->name());
4831 if (test_info->value_param() != NULL) {
4832 printf(" # %s = ", kValueParamLabel);
4833 // We print the value parameter on a single line to make the
4834 // output easy to parse by a program.
4835 PrintOnOneLine(test_info->value_param(), kMaxParamLength);
4836 }
4837 printf("\n");
4838 }
4839 }
4840 }
4841 fflush(stdout);
4842 }
4843
4844 // Sets the OS stack trace getter.
4845 //
4846 // Does nothing if the input and the current OS stack trace getter are
4847 // the same; otherwise, deletes the old getter and makes the input the
4848 // current getter.
set_os_stack_trace_getter(OsStackTraceGetterInterface * getter)4849 void UnitTestImpl::set_os_stack_trace_getter(
4850 OsStackTraceGetterInterface* getter) {
4851 if (os_stack_trace_getter_ != getter) {
4852 delete os_stack_trace_getter_;
4853 os_stack_trace_getter_ = getter;
4854 }
4855 }
4856
4857 // Returns the current OS stack trace getter if it is not NULL;
4858 // otherwise, creates an OsStackTraceGetter, makes it the current
4859 // getter, and returns it.
os_stack_trace_getter()4860 OsStackTraceGetterInterface* UnitTestImpl::os_stack_trace_getter() {
4861 if (os_stack_trace_getter_ == NULL) {
4862 os_stack_trace_getter_ = new OsStackTraceGetter;
4863 }
4864
4865 return os_stack_trace_getter_;
4866 }
4867
4868 // Returns the TestResult for the test that's currently running, or
4869 // the TestResult for the ad hoc test if no test is running.
current_test_result()4870 TestResult* UnitTestImpl::current_test_result() {
4871 return current_test_info_ ?
4872 &(current_test_info_->result_) : &ad_hoc_test_result_;
4873 }
4874
4875 // Shuffles all test cases, and the tests within each test case,
4876 // making sure that death tests are still run first.
ShuffleTests()4877 void UnitTestImpl::ShuffleTests() {
4878 // Shuffles the death test cases.
4879 ShuffleRange(random(), 0, last_death_test_case_ + 1, &test_case_indices_);
4880
4881 // Shuffles the non-death test cases.
4882 ShuffleRange(random(), last_death_test_case_ + 1,
4883 static_cast<int>(test_cases_.size()), &test_case_indices_);
4884
4885 // Shuffles the tests inside each test case.
4886 for (size_t i = 0; i < test_cases_.size(); i++) {
4887 test_cases_[i]->ShuffleTests(random());
4888 }
4889 }
4890
4891 // Restores the test cases and tests to their order before the first shuffle.
UnshuffleTests()4892 void UnitTestImpl::UnshuffleTests() {
4893 for (size_t i = 0; i < test_cases_.size(); i++) {
4894 // Unshuffles the tests in each test case.
4895 test_cases_[i]->UnshuffleTests();
4896 // Resets the index of each test case.
4897 test_case_indices_[i] = static_cast<int>(i);
4898 }
4899 }
4900
4901 // Returns the current OS stack trace as an std::string.
4902 //
4903 // The maximum number of stack frames to be included is specified by
4904 // the gtest_stack_trace_depth flag. The skip_count parameter
4905 // specifies the number of top frames to be skipped, which doesn't
4906 // count against the number of frames to be included.
4907 //
4908 // For example, if Foo() calls Bar(), which in turn calls
4909 // GetCurrentOsStackTraceExceptTop(..., 1), Foo() will be included in
4910 // the trace but Bar() and GetCurrentOsStackTraceExceptTop() won't.
GetCurrentOsStackTraceExceptTop(UnitTest *,int skip_count)4911 std::string GetCurrentOsStackTraceExceptTop(UnitTest* /*unit_test*/,
4912 int skip_count) {
4913 // We pass skip_count + 1 to skip this wrapper function in addition
4914 // to what the user really wants to skip.
4915 return GetUnitTestImpl()->CurrentOsStackTraceExceptTop(skip_count + 1);
4916 }
4917
4918 // Used by the GTEST_SUPPRESS_UNREACHABLE_CODE_WARNING_BELOW_ macro to
4919 // suppress unreachable code warnings.
4920 namespace {
4921 class ClassUniqueToAlwaysTrue {};
4922 }
4923
IsTrue(bool condition)4924 bool IsTrue(bool condition) { return condition; }
4925
AlwaysTrue()4926 bool AlwaysTrue() {
4927 #if GTEST_HAS_EXCEPTIONS
4928 // This condition is always false so AlwaysTrue() never actually throws,
4929 // but it makes the compiler think that it may throw.
4930 if (IsTrue(false))
4931 throw ClassUniqueToAlwaysTrue();
4932 #endif // GTEST_HAS_EXCEPTIONS
4933 return true;
4934 }
4935
4936 // If *pstr starts with the given prefix, modifies *pstr to be right
4937 // past the prefix and returns true; otherwise leaves *pstr unchanged
4938 // and returns false. None of pstr, *pstr, and prefix can be NULL.
SkipPrefix(const char * prefix,const char ** pstr)4939 bool SkipPrefix(const char* prefix, const char** pstr) {
4940 const size_t prefix_len = strlen(prefix);
4941 if (strncmp(*pstr, prefix, prefix_len) == 0) {
4942 *pstr += prefix_len;
4943 return true;
4944 }
4945 return false;
4946 }
4947
4948 // Parses a string as a command line flag. The string should have
4949 // the format "--flag=value". When def_optional is true, the "=value"
4950 // part can be omitted.
4951 //
4952 // Returns the value of the flag, or NULL if the parsing failed.
ParseFlagValue(const char * str,const char * flag,bool def_optional)4953 const char* ParseFlagValue(const char* str,
4954 const char* flag,
4955 bool def_optional) {
4956 // str and flag must not be NULL.
4957 if (str == NULL || flag == NULL) return NULL;
4958
4959 // The flag must start with "--" followed by GTEST_FLAG_PREFIX_.
4960 const std::string flag_str = std::string("--") + GTEST_FLAG_PREFIX_ + flag;
4961 const size_t flag_len = flag_str.length();
4962 if (strncmp(str, flag_str.c_str(), flag_len) != 0) return NULL;
4963
4964 // Skips the flag name.
4965 const char* flag_end = str + flag_len;
4966
4967 // When def_optional is true, it's OK to not have a "=value" part.
4968 if (def_optional && (flag_end[0] == '\0')) {
4969 return flag_end;
4970 }
4971
4972 // If def_optional is true and there are more characters after the
4973 // flag name, or if def_optional is false, there must be a '=' after
4974 // the flag name.
4975 if (flag_end[0] != '=') return NULL;
4976
4977 // Returns the string after "=".
4978 return flag_end + 1;
4979 }
4980
4981 // Parses a string for a bool flag, in the form of either
4982 // "--flag=value" or "--flag".
4983 //
4984 // In the former case, the value is taken as true as long as it does
4985 // not start with '0', 'f', or 'F'.
4986 //
4987 // In the latter case, the value is taken as true.
4988 //
4989 // On success, stores the value of the flag in *value, and returns
4990 // true. On failure, returns false without changing *value.
ParseBoolFlag(const char * str,const char * flag,bool * value)4991 bool ParseBoolFlag(const char* str, const char* flag, bool* value) {
4992 // Gets the value of the flag as a string.
4993 const char* const value_str = ParseFlagValue(str, flag, true);
4994
4995 // Aborts if the parsing failed.
4996 if (value_str == NULL) return false;
4997
4998 // Converts the string value to a bool.
4999 *value = !(*value_str == '0' || *value_str == 'f' || *value_str == 'F');
5000 return true;
5001 }
5002
5003 // Parses a string for an Int32 flag, in the form of
5004 // "--flag=value".
5005 //
5006 // On success, stores the value of the flag in *value, and returns
5007 // true. On failure, returns false without changing *value.
ParseInt32Flag(const char * str,const char * flag,Int32 * value)5008 bool ParseInt32Flag(const char* str, const char* flag, Int32* value) {
5009 // Gets the value of the flag as a string.
5010 const char* const value_str = ParseFlagValue(str, flag, false);
5011
5012 // Aborts if the parsing failed.
5013 if (value_str == NULL) return false;
5014
5015 // Sets *value to the value of the flag.
5016 return ParseInt32(Message() << "The value of flag --" << flag,
5017 value_str, value);
5018 }
5019
5020 // Parses a string for a string flag, in the form of
5021 // "--flag=value".
5022 //
5023 // On success, stores the value of the flag in *value, and returns
5024 // true. On failure, returns false without changing *value.
ParseStringFlag(const char * str,const char * flag,std::string * value)5025 bool ParseStringFlag(const char* str, const char* flag, std::string* value) {
5026 // Gets the value of the flag as a string.
5027 const char* const value_str = ParseFlagValue(str, flag, false);
5028
5029 // Aborts if the parsing failed.
5030 if (value_str == NULL) return false;
5031
5032 // Sets *value to the value of the flag.
5033 *value = value_str;
5034 return true;
5035 }
5036
5037 // Determines whether a string has a prefix that Google Test uses for its
5038 // flags, i.e., starts with GTEST_FLAG_PREFIX_ or GTEST_FLAG_PREFIX_DASH_.
5039 // If Google Test detects that a command line flag has its prefix but is not
5040 // recognized, it will print its help message. Flags starting with
5041 // GTEST_INTERNAL_PREFIX_ followed by "internal_" are considered Google Test
5042 // internal flags and do not trigger the help message.
HasGoogleTestFlagPrefix(const char * str)5043 static bool HasGoogleTestFlagPrefix(const char* str) {
5044 return (SkipPrefix("--", &str) ||
5045 SkipPrefix("-", &str) ||
5046 SkipPrefix("/", &str)) &&
5047 !SkipPrefix(GTEST_FLAG_PREFIX_ "internal_", &str) &&
5048 (SkipPrefix(GTEST_FLAG_PREFIX_, &str) ||
5049 SkipPrefix(GTEST_FLAG_PREFIX_DASH_, &str));
5050 }
5051
5052 // Prints a string containing code-encoded text. The following escape
5053 // sequences can be used in the string to control the text color:
5054 //
5055 // @@ prints a single '@' character.
5056 // @R changes the color to red.
5057 // @G changes the color to green.
5058 // @Y changes the color to yellow.
5059 // @D changes to the default terminal text color.
5060 //
5061 // TODO(wan@google.com): Write tests for this once we add stdout
5062 // capturing to Google Test.
PrintColorEncoded(const char * str)5063 static void PrintColorEncoded(const char* str) {
5064 GTestColor color = COLOR_DEFAULT; // The current color.
5065
5066 // Conceptually, we split the string into segments divided by escape
5067 // sequences. Then we print one segment at a time. At the end of
5068 // each iteration, the str pointer advances to the beginning of the
5069 // next segment.
5070 for (;;) {
5071 const char* p = strchr(str, '@');
5072 if (p == NULL) {
5073 ColoredPrintf(color, "%s", str);
5074 return;
5075 }
5076
5077 ColoredPrintf(color, "%s", std::string(str, p).c_str());
5078
5079 const char ch = p[1];
5080 str = p + 2;
5081 if (ch == '@') {
5082 ColoredPrintf(color, "@");
5083 } else if (ch == 'D') {
5084 color = COLOR_DEFAULT;
5085 } else if (ch == 'R') {
5086 color = COLOR_RED;
5087 } else if (ch == 'G') {
5088 color = COLOR_GREEN;
5089 } else if (ch == 'Y') {
5090 color = COLOR_YELLOW;
5091 } else {
5092 --str;
5093 }
5094 }
5095 }
5096
5097 static const char kColorEncodedHelpMessage[] =
5098 "This program contains tests written using " GTEST_NAME_ ". You can use the\n"
5099 "following command line flags to control its behavior:\n"
5100 "\n"
5101 "Test Selection:\n"
5102 " @G--" GTEST_FLAG_PREFIX_ "list_tests@D\n"
5103 " List the names of all tests instead of running them. The name of\n"
5104 " TEST(Foo, Bar) is \"Foo.Bar\".\n"
5105 " @G--" GTEST_FLAG_PREFIX_ "filter=@YPOSTIVE_PATTERNS"
5106 "[@G-@YNEGATIVE_PATTERNS]@D\n"
5107 " Run only the tests whose name matches one of the positive patterns but\n"
5108 " none of the negative patterns. '?' matches any single character; '*'\n"
5109 " matches any substring; ':' separates two patterns.\n"
5110 " @G--" GTEST_FLAG_PREFIX_ "also_run_disabled_tests@D\n"
5111 " Run all disabled tests too.\n"
5112 "\n"
5113 "Test Execution:\n"
5114 " @G--" GTEST_FLAG_PREFIX_ "repeat=@Y[COUNT]@D\n"
5115 " Run the tests repeatedly; use a negative count to repeat forever.\n"
5116 " @G--" GTEST_FLAG_PREFIX_ "shuffle@D\n"
5117 " Randomize tests' orders on every iteration.\n"
5118 " @G--" GTEST_FLAG_PREFIX_ "random_seed=@Y[NUMBER]@D\n"
5119 " Random number seed to use for shuffling test orders (between 1 and\n"
5120 " 99999, or 0 to use a seed based on the current time).\n"
5121 "\n"
5122 "Test Output:\n"
5123 " @G--" GTEST_FLAG_PREFIX_ "color=@Y(@Gyes@Y|@Gno@Y|@Gauto@Y)@D\n"
5124 " Enable/disable colored output. The default is @Gauto@D.\n"
5125 " -@G-" GTEST_FLAG_PREFIX_ "print_time=0@D\n"
5126 " Don't print the elapsed time of each test.\n"
5127 " @G--" GTEST_FLAG_PREFIX_ "output=xml@Y[@G:@YDIRECTORY_PATH@G"
5128 GTEST_PATH_SEP_ "@Y|@G:@YFILE_PATH]@D\n"
5129 " Generate an XML report in the given directory or with the given file\n"
5130 " name. @YFILE_PATH@D defaults to @Gtest_details.xml@D.\n"
5131 #if GTEST_CAN_STREAM_RESULTS_
5132 " @G--" GTEST_FLAG_PREFIX_ "stream_result_to=@YHOST@G:@YPORT@D\n"
5133 " Stream test results to the given server.\n"
5134 #endif // GTEST_CAN_STREAM_RESULTS_
5135 "\n"
5136 "Assertion Behavior:\n"
5137 #if GTEST_HAS_DEATH_TEST && !GTEST_OS_WINDOWS
5138 " @G--" GTEST_FLAG_PREFIX_ "death_test_style=@Y(@Gfast@Y|@Gthreadsafe@Y)@D\n"
5139 " Set the default death test style.\n"
5140 #endif // GTEST_HAS_DEATH_TEST && !GTEST_OS_WINDOWS
5141 " @G--" GTEST_FLAG_PREFIX_ "break_on_failure@D\n"
5142 " Turn assertion failures into debugger break-points.\n"
5143 " @G--" GTEST_FLAG_PREFIX_ "throw_on_failure@D\n"
5144 " Turn assertion failures into C++ exceptions.\n"
5145 " @G--" GTEST_FLAG_PREFIX_ "catch_exceptions=0@D\n"
5146 " Do not report exceptions as test failures. Instead, allow them\n"
5147 " to crash the program or throw a pop-up (on Windows).\n"
5148 "\n"
5149 "Except for @G--" GTEST_FLAG_PREFIX_ "list_tests@D, you can alternatively set "
5150 "the corresponding\n"
5151 "environment variable of a flag (all letters in upper-case). For example, to\n"
5152 "disable colored text output, you can either specify @G--" GTEST_FLAG_PREFIX_
5153 "color=no@D or set\n"
5154 "the @G" GTEST_FLAG_PREFIX_UPPER_ "COLOR@D environment variable to @Gno@D.\n"
5155 "\n"
5156 "For more information, please read the " GTEST_NAME_ " documentation at\n"
5157 "@G" GTEST_PROJECT_URL_ "@D. If you find a bug in " GTEST_NAME_ "\n"
5158 "(not one in your own code or tests), please report it to\n"
5159 "@G<" GTEST_DEV_EMAIL_ ">@D.\n";
5160
5161 // Parses the command line for Google Test flags, without initializing
5162 // other parts of Google Test. The type parameter CharType can be
5163 // instantiated to either char or wchar_t.
5164 template <typename CharType>
ParseGoogleTestFlagsOnlyImpl(int * argc,CharType ** argv)5165 void ParseGoogleTestFlagsOnlyImpl(int* argc, CharType** argv) {
5166 for (int i = 1; i < *argc; i++) {
5167 const std::string arg_string = StreamableToString(argv[i]);
5168 const char* const arg = arg_string.c_str();
5169
5170 using internal::ParseBoolFlag;
5171 using internal::ParseInt32Flag;
5172 using internal::ParseStringFlag;
5173
5174 // Do we see a Google Test flag?
5175 if (ParseBoolFlag(arg, kAlsoRunDisabledTestsFlag,
5176 >EST_FLAG(also_run_disabled_tests)) ||
5177 ParseBoolFlag(arg, kBreakOnFailureFlag,
5178 >EST_FLAG(break_on_failure)) ||
5179 ParseBoolFlag(arg, kCatchExceptionsFlag,
5180 >EST_FLAG(catch_exceptions)) ||
5181 ParseStringFlag(arg, kColorFlag, >EST_FLAG(color)) ||
5182 ParseStringFlag(arg, kDeathTestStyleFlag,
5183 >EST_FLAG(death_test_style)) ||
5184 ParseBoolFlag(arg, kDeathTestUseFork,
5185 >EST_FLAG(death_test_use_fork)) ||
5186 ParseStringFlag(arg, kFilterFlag, >EST_FLAG(filter)) ||
5187 ParseStringFlag(arg, kInternalRunDeathTestFlag,
5188 >EST_FLAG(internal_run_death_test)) ||
5189 ParseBoolFlag(arg, kListTestsFlag, >EST_FLAG(list_tests)) ||
5190 ParseStringFlag(arg, kOutputFlag, >EST_FLAG(output)) ||
5191 ParseBoolFlag(arg, kPrintTimeFlag, >EST_FLAG(print_time)) ||
5192 ParseInt32Flag(arg, kRandomSeedFlag, >EST_FLAG(random_seed)) ||
5193 ParseInt32Flag(arg, kRepeatFlag, >EST_FLAG(repeat)) ||
5194 ParseBoolFlag(arg, kShuffleFlag, >EST_FLAG(shuffle)) ||
5195 ParseInt32Flag(arg, kStackTraceDepthFlag,
5196 >EST_FLAG(stack_trace_depth)) ||
5197 ParseStringFlag(arg, kStreamResultToFlag,
5198 >EST_FLAG(stream_result_to)) ||
5199 ParseBoolFlag(arg, kThrowOnFailureFlag,
5200 >EST_FLAG(throw_on_failure))
5201 ) {
5202 // Yes. Shift the remainder of the argv list left by one. Note
5203 // that argv has (*argc + 1) elements, the last one always being
5204 // NULL. The following loop moves the trailing NULL element as
5205 // well.
5206 for (int j = i; j != *argc; j++) {
5207 argv[j] = argv[j + 1];
5208 }
5209
5210 // Decrements the argument count.
5211 (*argc)--;
5212
5213 // We also need to decrement the iterator as we just removed
5214 // an element.
5215 i--;
5216 } else if (arg_string == "--help" || arg_string == "-h" ||
5217 arg_string == "-?" || arg_string == "/?" ||
5218 HasGoogleTestFlagPrefix(arg)) {
5219 // Both help flag and unrecognized Google Test flags (excluding
5220 // internal ones) trigger help display.
5221 g_help_flag = true;
5222 }
5223 }
5224
5225 if (g_help_flag) {
5226 // We print the help here instead of in RUN_ALL_TESTS(), as the
5227 // latter may not be called at all if the user is using Google
5228 // Test with another testing framework.
5229 PrintColorEncoded(kColorEncodedHelpMessage);
5230 }
5231 }
5232
5233 // Parses the command line for Google Test flags, without initializing
5234 // other parts of Google Test.
ParseGoogleTestFlagsOnly(int * argc,char ** argv)5235 void ParseGoogleTestFlagsOnly(int* argc, char** argv) {
5236 ParseGoogleTestFlagsOnlyImpl(argc, argv);
5237 }
ParseGoogleTestFlagsOnly(int * argc,wchar_t ** argv)5238 void ParseGoogleTestFlagsOnly(int* argc, wchar_t** argv) {
5239 ParseGoogleTestFlagsOnlyImpl(argc, argv);
5240 }
5241
5242 // The internal implementation of InitGoogleTest().
5243 //
5244 // The type parameter CharType can be instantiated to either char or
5245 // wchar_t.
5246 template <typename CharType>
InitGoogleTestImpl(int * argc,CharType ** argv)5247 void InitGoogleTestImpl(int* argc, CharType** argv) {
5248 g_init_gtest_count++;
5249
5250 // We don't want to run the initialization code twice.
5251 if (g_init_gtest_count != 1) return;
5252
5253 if (*argc <= 0) return;
5254
5255 internal::g_executable_path = internal::StreamableToString(argv[0]);
5256
5257 #if GTEST_HAS_DEATH_TEST
5258
5259 g_argvs.clear();
5260 for (int i = 0; i != *argc; i++) {
5261 g_argvs.push_back(StreamableToString(argv[i]));
5262 }
5263
5264 #endif // GTEST_HAS_DEATH_TEST
5265
5266 ParseGoogleTestFlagsOnly(argc, argv);
5267 GetUnitTestImpl()->PostFlagParsingInit();
5268 }
5269
5270 } // namespace internal
5271
5272 // Initializes Google Test. This must be called before calling
5273 // RUN_ALL_TESTS(). In particular, it parses a command line for the
5274 // flags that Google Test recognizes. Whenever a Google Test flag is
5275 // seen, it is removed from argv, and *argc is decremented.
5276 //
5277 // No value is returned. Instead, the Google Test flag variables are
5278 // updated.
5279 //
5280 // Calling the function for the second time has no user-visible effect.
InitGoogleTest(int * argc,char ** argv)5281 void InitGoogleTest(int* argc, char** argv) {
5282 internal::InitGoogleTestImpl(argc, argv);
5283 }
5284
5285 // This overloaded version can be used in Windows programs compiled in
5286 // UNICODE mode.
InitGoogleTest(int * argc,wchar_t ** argv)5287 void InitGoogleTest(int* argc, wchar_t** argv) {
5288 internal::InitGoogleTestImpl(argc, argv);
5289 }
5290
5291 } // namespace testing
5292