gtest-printers_test.cc 51 KB
Newer Older
1
2
3
4
5
6
7
8
9
10
11
12
13
14
15
16
17
18
19
20
21
22
23
24
25
26
27
28
29
30
31
32
33
34
35
// Copyright 2007, Google Inc.
// All rights reserved.
//
// Redistribution and use in source and binary forms, with or without
// modification, are permitted provided that the following conditions are
// met:
//
//     * Redistributions of source code must retain the above copyright
// notice, this list of conditions and the following disclaimer.
//     * Redistributions in binary form must reproduce the above
// copyright notice, this list of conditions and the following disclaimer
// in the documentation and/or other materials provided with the
// distribution.
//     * Neither the name of Google Inc. nor the names of its
// contributors may be used to endorse or promote products derived from
// this software without specific prior written permission.
//
// THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS
// "AS IS" AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT
// LIMITED TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR
// A PARTICULAR PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT
// OWNER OR CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL,
// SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT
// LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
// DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
// THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
// (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE
// OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
//
// Author: wan@google.com (Zhanyong Wan)

// Google Test - The Google C++ Testing Framework
//
// This file tests the universal value printer.

36
#include "gtest/gtest-printers.h"
37
38
39
40
41
42
43
44
45
46
47
48
49
50

#include <ctype.h>
#include <limits.h>
#include <string.h>
#include <algorithm>
#include <deque>
#include <list>
#include <map>
#include <set>
#include <sstream>
#include <string>
#include <utility>
#include <vector>

51
#include "gtest/gtest.h"
52

53
54
// hash_map and hash_set are available under Visual C++, or on Linux.
#if GTEST_HAS_HASH_MAP_
55
# include <hash_map>            // NOLINT
56
57
#endif  // GTEST_HAS_HASH_MAP_
#if GTEST_HAS_HASH_SET_
58
# include <hash_set>            // NOLINT
59
#endif  // GTEST_HAS_HASH_SET_
60

kosak's avatar
kosak committed
61
62
63
64
#if GTEST_HAS_STD_FORWARD_LIST_
# include <forward_list> // NOLINT
#endif  // GTEST_HAS_STD_FORWARD_LIST_

65
66
// Some user-defined types for testing the universal value printer.

67
68
69
70
71
72
73
74
75
76
77
78
79
80
// An anonymous enum type.
enum AnonymousEnum {
  kAE1 = -1,
  kAE2 = 1
};

// An enum without a user-defined printer.
enum EnumWithoutPrinter {
  kEWP1 = -2,
  kEWP2 = 42
};

// An enum with a << operator.
enum EnumWithStreaming {
81
  kEWS1 = 10
82
83
84
85
86
87
88
89
};

std::ostream& operator<<(std::ostream& os, EnumWithStreaming e) {
  return os << (e == kEWS1 ? "kEWS1" : "invalid");
}

// An enum with a PrintTo() function.
enum EnumWithPrintTo {
90
  kEWPT1 = 1
91
92
93
94
95
96
97
98
99
100
101
102
};

void PrintTo(EnumWithPrintTo e, std::ostream* os) {
  *os << (e == kEWPT1 ? "kEWPT1" : "invalid");
}

// A class implicitly convertible to BiggestInt.
class BiggestIntConvertible {
 public:
  operator ::testing::internal::BiggestInt() const { return 42; }
};

103
104
105
106
107
108
109
110
111
112
113
114
115
116
117
118
119
120
121
// A user-defined unprintable class template in the global namespace.
template <typename T>
class UnprintableTemplateInGlobal {
 public:
  UnprintableTemplateInGlobal() : value_() {}
 private:
  T value_;
};

// A user-defined streamable type in the global namespace.
class StreamableInGlobal {
 public:
  virtual ~StreamableInGlobal() {}
};

inline void operator<<(::std::ostream& os, const StreamableInGlobal& /* x */) {
  os << "StreamableInGlobal";
}

122
123
124
125
void operator<<(::std::ostream& os, const StreamableInGlobal* /* x */) {
  os << "StreamableInGlobal*";
}

126
127
128
129
130
namespace foo {

// A user-defined unprintable type in a user namespace.
class UnprintableInFoo {
 public:
vladlosev's avatar
vladlosev committed
131
  UnprintableInFoo() : z_(0) { memcpy(xy_, "\xEF\x12\x0\x0\x34\xAB\x0\x0", 8); }
132
  double z() const { return z_; }
133
 private:
vladlosev's avatar
vladlosev committed
134
  char xy_[8];
135
136
137
138
139
140
141
142
143
144
145
146
147
  double z_;
};

// A user-defined printable type in a user-chosen namespace.
struct PrintableViaPrintTo {
  PrintableViaPrintTo() : value() {}
  int value;
};

void PrintTo(const PrintableViaPrintTo& x, ::std::ostream* os) {
  *os << "PrintableViaPrintTo: " << x.value;
}

148
149
150
151
152
153
154
155
156
// A type with a user-defined << for printing its pointer.
struct PointerPrintable {
};

::std::ostream& operator<<(::std::ostream& os,
                           const PointerPrintable* /* x */) {
  return os << "PointerPrintable*";
}

157
158
159
160
161
162
163
164
165
166
167
168
169
170
171
172
173
174
175
176
177
178
179
180
181
182
183
184
185
186
187
188
189
190
191
192
193
194
195
196
197
198
199
200
201
202
203
204
// A user-defined printable class template in a user-chosen namespace.
template <typename T>
class PrintableViaPrintToTemplate {
 public:
  explicit PrintableViaPrintToTemplate(const T& a_value) : value_(a_value) {}

  const T& value() const { return value_; }
 private:
  T value_;
};

template <typename T>
void PrintTo(const PrintableViaPrintToTemplate<T>& x, ::std::ostream* os) {
  *os << "PrintableViaPrintToTemplate: " << x.value();
}

// A user-defined streamable class template in a user namespace.
template <typename T>
class StreamableTemplateInFoo {
 public:
  StreamableTemplateInFoo() : value_() {}

  const T& value() const { return value_; }
 private:
  T value_;
};

template <typename T>
inline ::std::ostream& operator<<(::std::ostream& os,
                                  const StreamableTemplateInFoo<T>& x) {
  return os << "StreamableTemplateInFoo: " << x.value();
}

}  // namespace foo

namespace testing {
namespace gtest_printers_test {

using ::std::deque;
using ::std::list;
using ::std::make_pair;
using ::std::map;
using ::std::multimap;
using ::std::multiset;
using ::std::pair;
using ::std::set;
using ::std::vector;
using ::testing::PrintToString;
205
using ::testing::internal::FormatForComparisonFailureMessage;
206
using ::testing::internal::ImplicitCast_;
207
208
using ::testing::internal::NativeArray;
using ::testing::internal::RE;
billydonahue's avatar
billydonahue committed
209
using ::testing::internal::RelationToSourceReference;
210
211
212
using ::testing::internal::Strings;
using ::testing::internal::UniversalPrint;
using ::testing::internal::UniversalPrinter;
213
214
using ::testing::internal::UniversalTersePrint;
using ::testing::internal::UniversalTersePrintTupleFieldsToStrings;
215
216
using ::testing::internal::string;

217
218
219
220
221
222
223
224
225
// The hash_* classes are not part of the C++ standard.  STLport
// defines them in namespace std.  MSVC defines them in ::stdext.  GCC
// defines them in ::.
#ifdef _STLP_HASH_MAP  // We got <hash_map> from STLport.
using ::std::hash_map;
using ::std::hash_set;
using ::std::hash_multimap;
using ::std::hash_multiset;
#elif _MSC_VER
226
227
228
229
using ::stdext::hash_map;
using ::stdext::hash_set;
using ::stdext::hash_multimap;
using ::stdext::hash_multiset;
230
#endif
231
232
233
234
235
236
237
238
239
240
241
242
243
244
245
246
247
248
249
250

// Prints a value to a string using the universal value printer.  This
// is a helper for testing UniversalPrinter<T>::Print() for various types.
template <typename T>
string Print(const T& value) {
  ::std::stringstream ss;
  UniversalPrinter<T>::Print(value, &ss);
  return ss.str();
}

// Prints a value passed by reference to a string, using the universal
// value printer.  This is a helper for testing
// UniversalPrinter<T&>::Print() for various types.
template <typename T>
string PrintByRef(const T& value) {
  ::std::stringstream ss;
  UniversalPrinter<T&>::Print(value, &ss);
  return ss.str();
}

251
252
253
254
255
256
257
258
259
260
261
262
263
264
265
266
267
268
269
270
271
272
273
274
275
276
277
278
// Tests printing various enum types.

TEST(PrintEnumTest, AnonymousEnum) {
  EXPECT_EQ("-1", Print(kAE1));
  EXPECT_EQ("1", Print(kAE2));
}

TEST(PrintEnumTest, EnumWithoutPrinter) {
  EXPECT_EQ("-2", Print(kEWP1));
  EXPECT_EQ("42", Print(kEWP2));
}

TEST(PrintEnumTest, EnumWithStreaming) {
  EXPECT_EQ("kEWS1", Print(kEWS1));
  EXPECT_EQ("invalid", Print(static_cast<EnumWithStreaming>(0)));
}

TEST(PrintEnumTest, EnumWithPrintTo) {
  EXPECT_EQ("kEWPT1", Print(kEWPT1));
  EXPECT_EQ("invalid", Print(static_cast<EnumWithPrintTo>(0)));
}

// Tests printing a class implicitly convertible to BiggestInt.

TEST(PrintClassTest, BiggestIntConvertible) {
  EXPECT_EQ("42", Print(BiggestIntConvertible()));
}

279
280
281
282
283
// Tests printing various char types.

// char.
TEST(PrintCharTest, PlainChar) {
  EXPECT_EQ("'\\0'", Print('\0'));
284
285
  EXPECT_EQ("'\\'' (39, 0x27)", Print('\''));
  EXPECT_EQ("'\"' (34, 0x22)", Print('"'));
286
  EXPECT_EQ("'?' (63, 0x3F)", Print('?'));
287
  EXPECT_EQ("'\\\\' (92, 0x5C)", Print('\\'));
288
289
  EXPECT_EQ("'\\a' (7)", Print('\a'));
  EXPECT_EQ("'\\b' (8)", Print('\b'));
290
291
292
  EXPECT_EQ("'\\f' (12, 0xC)", Print('\f'));
  EXPECT_EQ("'\\n' (10, 0xA)", Print('\n'));
  EXPECT_EQ("'\\r' (13, 0xD)", Print('\r'));
293
  EXPECT_EQ("'\\t' (9)", Print('\t'));
294
  EXPECT_EQ("'\\v' (11, 0xB)", Print('\v'));
295
296
  EXPECT_EQ("'\\x7F' (127)", Print('\x7F'));
  EXPECT_EQ("'\\xFF' (255)", Print('\xFF'));
297
298
  EXPECT_EQ("' ' (32, 0x20)", Print(' '));
  EXPECT_EQ("'a' (97, 0x61)", Print('a'));
299
300
301
302
303
304
305
306
307
308
309
310
}

// signed char.
TEST(PrintCharTest, SignedChar) {
  EXPECT_EQ("'\\0'", Print(static_cast<signed char>('\0')));
  EXPECT_EQ("'\\xCE' (-50)",
            Print(static_cast<signed char>(-50)));
}

// unsigned char.
TEST(PrintCharTest, UnsignedChar) {
  EXPECT_EQ("'\\0'", Print(static_cast<unsigned char>('\0')));
311
  EXPECT_EQ("'b' (98, 0x62)",
312
313
314
315
316
317
318
319
320
321
322
323
324
325
            Print(static_cast<unsigned char>('b')));
}

// Tests printing other simple, built-in types.

// bool.
TEST(PrintBuiltInTypeTest, Bool) {
  EXPECT_EQ("false", Print(false));
  EXPECT_EQ("true", Print(true));
}

// wchar_t.
TEST(PrintBuiltInTypeTest, Wchar_t) {
  EXPECT_EQ("L'\\0'", Print(L'\0'));
326
327
  EXPECT_EQ("L'\\'' (39, 0x27)", Print(L'\''));
  EXPECT_EQ("L'\"' (34, 0x22)", Print(L'"'));
328
  EXPECT_EQ("L'?' (63, 0x3F)", Print(L'?'));
329
  EXPECT_EQ("L'\\\\' (92, 0x5C)", Print(L'\\'));
330
331
  EXPECT_EQ("L'\\a' (7)", Print(L'\a'));
  EXPECT_EQ("L'\\b' (8)", Print(L'\b'));
332
333
334
  EXPECT_EQ("L'\\f' (12, 0xC)", Print(L'\f'));
  EXPECT_EQ("L'\\n' (10, 0xA)", Print(L'\n'));
  EXPECT_EQ("L'\\r' (13, 0xD)", Print(L'\r'));
335
  EXPECT_EQ("L'\\t' (9)", Print(L'\t'));
336
  EXPECT_EQ("L'\\v' (11, 0xB)", Print(L'\v'));
337
338
  EXPECT_EQ("L'\\x7F' (127)", Print(L'\x7F'));
  EXPECT_EQ("L'\\xFF' (255)", Print(L'\xFF'));
339
340
  EXPECT_EQ("L' ' (32, 0x20)", Print(L' '));
  EXPECT_EQ("L'a' (97, 0x61)", Print(L'a'));
341
342
  EXPECT_EQ("L'\\x576' (1398)", Print(static_cast<wchar_t>(0x576)));
  EXPECT_EQ("L'\\xC74D' (51021)", Print(static_cast<wchar_t>(0xC74D)));
343
344
345
346
347
348
349
350
351
352
353
354
355
356
357
358
359
360
361
362
363
364
365
366
367
368
369
370
371
372
373
374
375
376
377
378
379
380
381
382
383
384
385
386
387
388
389
390
391
392
393
394
395
396
397
398
399
400
401
402
403
404
405
406
407
408
409
410
}

// Test that Int64 provides more storage than wchar_t.
TEST(PrintTypeSizeTest, Wchar_t) {
  EXPECT_LT(sizeof(wchar_t), sizeof(testing::internal::Int64));
}

// Various integer types.
TEST(PrintBuiltInTypeTest, Integer) {
  EXPECT_EQ("'\\xFF' (255)", Print(static_cast<unsigned char>(255)));  // uint8
  EXPECT_EQ("'\\x80' (-128)", Print(static_cast<signed char>(-128)));  // int8
  EXPECT_EQ("65535", Print(USHRT_MAX));  // uint16
  EXPECT_EQ("-32768", Print(SHRT_MIN));  // int16
  EXPECT_EQ("4294967295", Print(UINT_MAX));  // uint32
  EXPECT_EQ("-2147483648", Print(INT_MIN));  // int32
  EXPECT_EQ("18446744073709551615",
            Print(static_cast<testing::internal::UInt64>(-1)));  // uint64
  EXPECT_EQ("-9223372036854775808",
            Print(static_cast<testing::internal::Int64>(1) << 63));  // int64
}

// Size types.
TEST(PrintBuiltInTypeTest, Size_t) {
  EXPECT_EQ("1", Print(sizeof('a')));  // size_t.
#if !GTEST_OS_WINDOWS
  // Windows has no ssize_t type.
  EXPECT_EQ("-2", Print(static_cast<ssize_t>(-2)));  // ssize_t.
#endif  // !GTEST_OS_WINDOWS
}

// Floating-points.
TEST(PrintBuiltInTypeTest, FloatingPoints) {
  EXPECT_EQ("1.5", Print(1.5f));   // float
  EXPECT_EQ("-2.5", Print(-2.5));  // double
}

// Since ::std::stringstream::operator<<(const void *) formats the pointer
// output differently with different compilers, we have to create the expected
// output first and use it as our expectation.
static string PrintPointer(const void *p) {
  ::std::stringstream expected_result_stream;
  expected_result_stream << p;
  return expected_result_stream.str();
}

// Tests printing C strings.

// const char*.
TEST(PrintCStringTest, Const) {
  const char* p = "World";
  EXPECT_EQ(PrintPointer(p) + " pointing to \"World\"", Print(p));
}

// char*.
TEST(PrintCStringTest, NonConst) {
  char p[] = "Hi";
  EXPECT_EQ(PrintPointer(p) + " pointing to \"Hi\"",
            Print(static_cast<char*>(p)));
}

// NULL C string.
TEST(PrintCStringTest, Null) {
  const char* p = NULL;
  EXPECT_EQ("NULL", Print(p));
}

// Tests that C strings are escaped properly.
TEST(PrintCStringTest, EscapesProperly) {
411
412
  const char* p = "'\"?\\\a\b\f\n\r\t\v\x7F\xFF a";
  EXPECT_EQ(PrintPointer(p) + " pointing to \"'\\\"?\\\\\\a\\b\\f"
413
414
415
416
417
418
419
420
421
422
423
424
425
426
427
428
429
430
431
432
433
434
435
436
437
438
439
440
441
442
443
444
445
            "\\n\\r\\t\\v\\x7F\\xFF a\"",
            Print(p));
}

// MSVC compiler can be configured to define whar_t as a typedef
// of unsigned short. Defining an overload for const wchar_t* in that case
// would cause pointers to unsigned shorts be printed as wide strings,
// possibly accessing more memory than intended and causing invalid
// memory accesses. MSVC defines _NATIVE_WCHAR_T_DEFINED symbol when
// wchar_t is implemented as a native type.
#if !defined(_MSC_VER) || defined(_NATIVE_WCHAR_T_DEFINED)

// const wchar_t*.
TEST(PrintWideCStringTest, Const) {
  const wchar_t* p = L"World";
  EXPECT_EQ(PrintPointer(p) + " pointing to L\"World\"", Print(p));
}

// wchar_t*.
TEST(PrintWideCStringTest, NonConst) {
  wchar_t p[] = L"Hi";
  EXPECT_EQ(PrintPointer(p) + " pointing to L\"Hi\"",
            Print(static_cast<wchar_t*>(p)));
}

// NULL wide C string.
TEST(PrintWideCStringTest, Null) {
  const wchar_t* p = NULL;
  EXPECT_EQ("NULL", Print(p));
}

// Tests that wide C strings are escaped properly.
TEST(PrintWideCStringTest, EscapesProperly) {
446
  const wchar_t s[] = {'\'', '"', '?', '\\', '\a', '\b', '\f', '\n', '\r',
447
                       '\t', '\v', 0xD3, 0x576, 0x8D3, 0xC74D, ' ', 'a', '\0'};
448
  EXPECT_EQ(PrintPointer(s) + " pointing to L\"'\\\"?\\\\\\a\\b\\f"
449
            "\\n\\r\\t\\v\\xD3\\x576\\x8D3\\xC74D a\"",
450
            Print(static_cast<const wchar_t*>(s)));
451
452
453
454
455
456
457
458
459
460
461
462
463
464
465
466
467
468
469
470
471
472
473
474
475
476
477
478
479
480
481
482
483
484
485
486
487
488
489
490
491
492
493
494
495
496
497
498
499
500
501
502
503
504
505
506
507
508
509
510
511
512
513
514
515
516
517
518
519
520
521
522
523
524
525
526
527
528
529
530
531
532
533
534
535
536
537
538
539
540
541
542
543
544
545
546
547
548
549
550
551
552
553
554
555
556
557
558
559
560
561
562
563
564
565
566
567
568
569
570
571
572
573
574
575
576
577
578
579
580
581
582
583
584
585
586
587
588
589
590
591
592
593
594
595
596
597
598
599
600
601
602
603
604
605
606
607
608
609
610
611
612
613
614
615
616
617
618
619
}
#endif  // native wchar_t

// Tests printing pointers to other char types.

// signed char*.
TEST(PrintCharPointerTest, SignedChar) {
  signed char* p = reinterpret_cast<signed char*>(0x1234);
  EXPECT_EQ(PrintPointer(p), Print(p));
  p = NULL;
  EXPECT_EQ("NULL", Print(p));
}

// const signed char*.
TEST(PrintCharPointerTest, ConstSignedChar) {
  signed char* p = reinterpret_cast<signed char*>(0x1234);
  EXPECT_EQ(PrintPointer(p), Print(p));
  p = NULL;
  EXPECT_EQ("NULL", Print(p));
}

// unsigned char*.
TEST(PrintCharPointerTest, UnsignedChar) {
  unsigned char* p = reinterpret_cast<unsigned char*>(0x1234);
  EXPECT_EQ(PrintPointer(p), Print(p));
  p = NULL;
  EXPECT_EQ("NULL", Print(p));
}

// const unsigned char*.
TEST(PrintCharPointerTest, ConstUnsignedChar) {
  const unsigned char* p = reinterpret_cast<const unsigned char*>(0x1234);
  EXPECT_EQ(PrintPointer(p), Print(p));
  p = NULL;
  EXPECT_EQ("NULL", Print(p));
}

// Tests printing pointers to simple, built-in types.

// bool*.
TEST(PrintPointerToBuiltInTypeTest, Bool) {
  bool* p = reinterpret_cast<bool*>(0xABCD);
  EXPECT_EQ(PrintPointer(p), Print(p));
  p = NULL;
  EXPECT_EQ("NULL", Print(p));
}

// void*.
TEST(PrintPointerToBuiltInTypeTest, Void) {
  void* p = reinterpret_cast<void*>(0xABCD);
  EXPECT_EQ(PrintPointer(p), Print(p));
  p = NULL;
  EXPECT_EQ("NULL", Print(p));
}

// const void*.
TEST(PrintPointerToBuiltInTypeTest, ConstVoid) {
  const void* p = reinterpret_cast<const void*>(0xABCD);
  EXPECT_EQ(PrintPointer(p), Print(p));
  p = NULL;
  EXPECT_EQ("NULL", Print(p));
}

// Tests printing pointers to pointers.
TEST(PrintPointerToPointerTest, IntPointerPointer) {
  int** p = reinterpret_cast<int**>(0xABCD);
  EXPECT_EQ(PrintPointer(p), Print(p));
  p = NULL;
  EXPECT_EQ("NULL", Print(p));
}

// Tests printing (non-member) function pointers.

void MyFunction(int /* n */) {}

TEST(PrintPointerTest, NonMemberFunctionPointer) {
  // We cannot directly cast &MyFunction to const void* because the
  // standard disallows casting between pointers to functions and
  // pointers to objects, and some compilers (e.g. GCC 3.4) enforce
  // this limitation.
  EXPECT_EQ(
      PrintPointer(reinterpret_cast<const void*>(
          reinterpret_cast<internal::BiggestInt>(&MyFunction))),
      Print(&MyFunction));
  int (*p)(bool) = NULL;  // NOLINT
  EXPECT_EQ("NULL", Print(p));
}

// An assertion predicate determining whether a one string is a prefix for
// another.
template <typename StringType>
AssertionResult HasPrefix(const StringType& str, const StringType& prefix) {
  if (str.find(prefix, 0) == 0)
    return AssertionSuccess();

  const bool is_wide_string = sizeof(prefix[0]) > 1;
  const char* const begin_string_quote = is_wide_string ? "L\"" : "\"";
  return AssertionFailure()
      << begin_string_quote << prefix << "\" is not a prefix of "
      << begin_string_quote << str << "\"\n";
}

// Tests printing member variable pointers.  Although they are called
// pointers, they don't point to a location in the address space.
// Their representation is implementation-defined.  Thus they will be
// printed as raw bytes.

struct Foo {
 public:
  virtual ~Foo() {}
  int MyMethod(char x) { return x + 1; }
  virtual char MyVirtualMethod(int /* n */) { return 'a'; }

  int value;
};

TEST(PrintPointerTest, MemberVariablePointer) {
  EXPECT_TRUE(HasPrefix(Print(&Foo::value),
                        Print(sizeof(&Foo::value)) + "-byte object "));
  int (Foo::*p) = NULL;  // NOLINT
  EXPECT_TRUE(HasPrefix(Print(p),
                        Print(sizeof(p)) + "-byte object "));
}

// Tests printing member function pointers.  Although they are called
// pointers, they don't point to a location in the address space.
// Their representation is implementation-defined.  Thus they will be
// printed as raw bytes.
TEST(PrintPointerTest, MemberFunctionPointer) {
  EXPECT_TRUE(HasPrefix(Print(&Foo::MyMethod),
                        Print(sizeof(&Foo::MyMethod)) + "-byte object "));
  EXPECT_TRUE(
      HasPrefix(Print(&Foo::MyVirtualMethod),
                Print(sizeof((&Foo::MyVirtualMethod))) + "-byte object "));
  int (Foo::*p)(char) = NULL;  // NOLINT
  EXPECT_TRUE(HasPrefix(Print(p),
                        Print(sizeof(p)) + "-byte object "));
}

// Tests printing C arrays.

// The difference between this and Print() is that it ensures that the
// argument is a reference to an array.
template <typename T, size_t N>
string PrintArrayHelper(T (&a)[N]) {
  return Print(a);
}

// One-dimensional array.
TEST(PrintArrayTest, OneDimensionalArray) {
  int a[5] = { 1, 2, 3, 4, 5 };
  EXPECT_EQ("{ 1, 2, 3, 4, 5 }", PrintArrayHelper(a));
}

// Two-dimensional array.
TEST(PrintArrayTest, TwoDimensionalArray) {
  int a[2][5] = {
    { 1, 2, 3, 4, 5 },
    { 6, 7, 8, 9, 0 }
  };
  EXPECT_EQ("{ { 1, 2, 3, 4, 5 }, { 6, 7, 8, 9, 0 } }", PrintArrayHelper(a));
}

// Array of const elements.
TEST(PrintArrayTest, ConstArray) {
  const bool a[1] = { false };
  EXPECT_EQ("{ false }", PrintArrayHelper(a));
}

620
621
622
623
624
625
626
627
628
629
630
631
632
633
634
// char array without terminating NUL.
TEST(PrintArrayTest, CharArrayWithNoTerminatingNul) {
  // Array a contains '\0' in the middle and doesn't end with '\0'.
  char a[] = { 'H', '\0', 'i' };
  EXPECT_EQ("\"H\\0i\" (no terminating NUL)", PrintArrayHelper(a));
}

// const char array with terminating NUL.
TEST(PrintArrayTest, ConstCharArrayWithTerminatingNul) {
  const char a[] = "\0Hi";
  EXPECT_EQ("\"\\0Hi\"", PrintArrayHelper(a));
}

// const wchar_t array without terminating NUL.
TEST(PrintArrayTest, WCharArrayWithNoTerminatingNul) {
635
  // Array a contains '\0' in the middle and doesn't end with '\0'.
636
637
  const wchar_t a[] = { L'H', L'\0', L'i' };
  EXPECT_EQ("L\"H\\0i\" (no terminating NUL)", PrintArrayHelper(a));
638
639
}

640
641
642
643
// wchar_t array with terminating NUL.
TEST(PrintArrayTest, WConstCharArrayWithTerminatingNul) {
  const wchar_t a[] = L"\0Hi";
  EXPECT_EQ("L\"\\0Hi\"", PrintArrayHelper(a));
644
645
646
647
648
649
650
651
652
653
654
655
656
657
658
659
660
661
662
663
}

// Array of objects.
TEST(PrintArrayTest, ObjectArray) {
  string a[3] = { "Hi", "Hello", "Ni hao" };
  EXPECT_EQ("{ \"Hi\", \"Hello\", \"Ni hao\" }", PrintArrayHelper(a));
}

// Array with many elements.
TEST(PrintArrayTest, BigArray) {
  int a[100] = { 1, 2, 3 };
  EXPECT_EQ("{ 1, 2, 3, 0, 0, 0, 0, 0, ..., 0, 0, 0, 0, 0, 0, 0, 0 }",
            PrintArrayHelper(a));
}

// Tests printing ::string and ::std::string.

#if GTEST_HAS_GLOBAL_STRING
// ::string.
TEST(PrintStringTest, StringInGlobalNamespace) {
664
  const char s[] = "'\"?\\\a\b\f\n\0\r\t\v\x7F\xFF a";
665
  const ::string str(s, sizeof(s));
666
  EXPECT_EQ("\"'\\\"?\\\\\\a\\b\\f\\n\\0\\r\\t\\v\\x7F\\xFF a\\0\"",
667
668
669
670
671
672
            Print(str));
}
#endif  // GTEST_HAS_GLOBAL_STRING

// ::std::string.
TEST(PrintStringTest, StringInStdNamespace) {
673
  const char s[] = "'\"?\\\a\b\f\n\0\r\t\v\x7F\xFF a";
674
  const ::std::string str(s, sizeof(s));
675
  EXPECT_EQ("\"'\\\"?\\\\\\a\\b\\f\\n\\0\\r\\t\\v\\x7F\\xFF a\\0\"",
676
677
678
            Print(str));
}

679
680
681
682
683
684
685
686
687
688
689
690
691
692
TEST(PrintStringTest, StringAmbiguousHex) {
  // "\x6BANANA" is ambiguous, it can be interpreted as starting with either of:
  // '\x6', '\x6B', or '\x6BA'.

  // a hex escaping sequence following by a decimal digit
  EXPECT_EQ("\"0\\x12\" \"3\"", Print(::std::string("0\x12" "3")));
  // a hex escaping sequence following by a hex digit (lower-case)
  EXPECT_EQ("\"mm\\x6\" \"bananas\"", Print(::std::string("mm\x6" "bananas")));
  // a hex escaping sequence following by a hex digit (upper-case)
  EXPECT_EQ("\"NOM\\x6\" \"BANANA\"", Print(::std::string("NOM\x6" "BANANA")));
  // a hex escaping sequence following by a non-xdigit
  EXPECT_EQ("\"!\\x5-!\"", Print(::std::string("!\x5-!")));
}

693
694
695
696
697
// Tests printing ::wstring and ::std::wstring.

#if GTEST_HAS_GLOBAL_WSTRING
// ::wstring.
TEST(PrintWideStringTest, StringInGlobalNamespace) {
698
  const wchar_t s[] = L"'\"?\\\a\b\f\n\0\r\t\v\xD3\x576\x8D3\xC74D a";
699
  const ::wstring str(s, sizeof(s)/sizeof(wchar_t));
700
  EXPECT_EQ("L\"'\\\"?\\\\\\a\\b\\f\\n\\0\\r\\t\\v"
701
702
703
704
705
706
707
708
            "\\xD3\\x576\\x8D3\\xC74D a\\0\"",
            Print(str));
}
#endif  // GTEST_HAS_GLOBAL_WSTRING

#if GTEST_HAS_STD_WSTRING
// ::std::wstring.
TEST(PrintWideStringTest, StringInStdNamespace) {
709
  const wchar_t s[] = L"'\"?\\\a\b\f\n\0\r\t\v\xD3\x576\x8D3\xC74D a";
710
  const ::std::wstring str(s, sizeof(s)/sizeof(wchar_t));
711
  EXPECT_EQ("L\"'\\\"?\\\\\\a\\b\\f\\n\\0\\r\\t\\v"
712
713
714
            "\\xD3\\x576\\x8D3\\xC74D a\\0\"",
            Print(str));
}
715
716
717
718
719
720
721
722
723
724

TEST(PrintWideStringTest, StringAmbiguousHex) {
  // same for wide strings.
  EXPECT_EQ("L\"0\\x12\" L\"3\"", Print(::std::wstring(L"0\x12" L"3")));
  EXPECT_EQ("L\"mm\\x6\" L\"bananas\"",
            Print(::std::wstring(L"mm\x6" L"bananas")));
  EXPECT_EQ("L\"NOM\\x6\" L\"BANANA\"",
            Print(::std::wstring(L"NOM\x6" L"BANANA")));
  EXPECT_EQ("L\"!\\x5-!\"", Print(::std::wstring(L"!\x5-!")));
}
725
726
727
728
729
730
731
732
733
734
735
736
737
738
739
740
741
742
743
744
745
746
747
748
749
750
751
752
753
754
755
756
757
758
759
760
761
762
763
764
765
766
767
768
769
770
771
772
773
774
775
776
777
778
779
780
781
782
783
784
785
786
787
788
789
790
791
792
793
794
795
796
797
798
799
800
801
802
803
804
805
806
807
808
809
810
811
812
813
814
815
816
817
818
819
820
#endif  // GTEST_HAS_STD_WSTRING

// Tests printing types that support generic streaming (i.e. streaming
// to std::basic_ostream<Char, CharTraits> for any valid Char and
// CharTraits types).

// Tests printing a non-template type that supports generic streaming.

class AllowsGenericStreaming {};

template <typename Char, typename CharTraits>
std::basic_ostream<Char, CharTraits>& operator<<(
    std::basic_ostream<Char, CharTraits>& os,
    const AllowsGenericStreaming& /* a */) {
  return os << "AllowsGenericStreaming";
}

TEST(PrintTypeWithGenericStreamingTest, NonTemplateType) {
  AllowsGenericStreaming a;
  EXPECT_EQ("AllowsGenericStreaming", Print(a));
}

// Tests printing a template type that supports generic streaming.

template <typename T>
class AllowsGenericStreamingTemplate {};

template <typename Char, typename CharTraits, typename T>
std::basic_ostream<Char, CharTraits>& operator<<(
    std::basic_ostream<Char, CharTraits>& os,
    const AllowsGenericStreamingTemplate<T>& /* a */) {
  return os << "AllowsGenericStreamingTemplate";
}

TEST(PrintTypeWithGenericStreamingTest, TemplateType) {
  AllowsGenericStreamingTemplate<int> a;
  EXPECT_EQ("AllowsGenericStreamingTemplate", Print(a));
}

// Tests printing a type that supports generic streaming and can be
// implicitly converted to another printable type.

template <typename T>
class AllowsGenericStreamingAndImplicitConversionTemplate {
 public:
  operator bool() const { return false; }
};

template <typename Char, typename CharTraits, typename T>
std::basic_ostream<Char, CharTraits>& operator<<(
    std::basic_ostream<Char, CharTraits>& os,
    const AllowsGenericStreamingAndImplicitConversionTemplate<T>& /* a */) {
  return os << "AllowsGenericStreamingAndImplicitConversionTemplate";
}

TEST(PrintTypeWithGenericStreamingTest, TypeImplicitlyConvertible) {
  AllowsGenericStreamingAndImplicitConversionTemplate<int> a;
  EXPECT_EQ("AllowsGenericStreamingAndImplicitConversionTemplate", Print(a));
}

#if GTEST_HAS_STRING_PIECE_

// Tests printing StringPiece.

TEST(PrintStringPieceTest, SimpleStringPiece) {
  const StringPiece sp = "Hello";
  EXPECT_EQ("\"Hello\"", Print(sp));
}

TEST(PrintStringPieceTest, UnprintableCharacters) {
  const char str[] = "NUL (\0) and \r\t";
  const StringPiece sp(str, sizeof(str) - 1);
  EXPECT_EQ("\"NUL (\\0) and \\r\\t\"", Print(sp));
}

#endif  // GTEST_HAS_STRING_PIECE_

// Tests printing STL containers.

TEST(PrintStlContainerTest, EmptyDeque) {
  deque<char> empty;
  EXPECT_EQ("{}", Print(empty));
}

TEST(PrintStlContainerTest, NonEmptyDeque) {
  deque<int> non_empty;
  non_empty.push_back(1);
  non_empty.push_back(3);
  EXPECT_EQ("{ 1, 3 }", Print(non_empty));
}

#if GTEST_HAS_HASH_MAP_

TEST(PrintStlContainerTest, OneElementHashMap) {
  hash_map<int, char> map1;
  map1[1] = 'a';
821
  EXPECT_EQ("{ (1, 'a' (97, 0x61)) }", Print(map1));
822
823
824
825
826
827
828
829
830
831
832
833
834
835
836
837
838
839
840
841
842
843
844
845
846
847
848
849
850
851
852
853
854
855
856
857
858
859
860
}

TEST(PrintStlContainerTest, HashMultiMap) {
  hash_multimap<int, bool> map1;
  map1.insert(make_pair(5, true));
  map1.insert(make_pair(5, false));

  // Elements of hash_multimap can be printed in any order.
  const string result = Print(map1);
  EXPECT_TRUE(result == "{ (5, true), (5, false) }" ||
              result == "{ (5, false), (5, true) }")
                  << " where Print(map1) returns \"" << result << "\".";
}

#endif  // GTEST_HAS_HASH_MAP_

#if GTEST_HAS_HASH_SET_

TEST(PrintStlContainerTest, HashSet) {
  hash_set<string> set1;
  set1.insert("hello");
  EXPECT_EQ("{ \"hello\" }", Print(set1));
}

TEST(PrintStlContainerTest, HashMultiSet) {
  const int kSize = 5;
  int a[kSize] = { 1, 1, 2, 5, 1 };
  hash_multiset<int> set1(a, a + kSize);

  // Elements of hash_multiset can be printed in any order.
  const string result = Print(set1);
  const string expected_pattern = "{ d, d, d, d, d }";  // d means a digit.

  // Verifies the result matches the expected pattern; also extracts
  // the numbers in the result.
  ASSERT_EQ(expected_pattern.length(), result.length());
  std::vector<int> numbers;
  for (size_t i = 0; i != result.length(); i++) {
    if (expected_pattern[i] == 'd') {
861
      ASSERT_NE(isdigit(static_cast<unsigned char>(result[i])), 0);
862
863
864
865
866
867
868
869
870
871
872
873
874
875
876
877
      numbers.push_back(result[i] - '0');
    } else {
      EXPECT_EQ(expected_pattern[i], result[i]) << " where result is "
                                                << result;
    }
  }

  // Makes sure the result contains the right numbers.
  std::sort(numbers.begin(), numbers.end());
  std::sort(a, a + kSize);
  EXPECT_TRUE(std::equal(a, a + kSize, numbers.begin()));
}

#endif  // GTEST_HAS_HASH_SET_

TEST(PrintStlContainerTest, List) {
878
  const string a[] = {
879
880
881
882
883
884
885
886
887
888
889
890
891
892
893
894
895
    "hello",
    "world"
  };
  const list<string> strings(a, a + 2);
  EXPECT_EQ("{ \"hello\", \"world\" }", Print(strings));
}

TEST(PrintStlContainerTest, Map) {
  map<int, bool> map1;
  map1[1] = true;
  map1[5] = false;
  map1[3] = true;
  EXPECT_EQ("{ (1, true), (3, true), (5, false) }", Print(map1));
}

TEST(PrintStlContainerTest, MultiMap) {
  multimap<bool, int> map1;
896
897
898
899
900
901
902
903
904
  // The make_pair template function would deduce the type as
  // pair<bool, int> here, and since the key part in a multimap has to
  // be constant, without a templated ctor in the pair class (as in
  // libCstd on Solaris), make_pair call would fail to compile as no
  // implicit conversion is found.  Thus explicit typename is used
  // here instead.
  map1.insert(pair<const bool, int>(true, 0));
  map1.insert(pair<const bool, int>(true, 1));
  map1.insert(pair<const bool, int>(false, 2));
905
906
907
908
909
910
911
912
913
914
915
916
917
918
919
  EXPECT_EQ("{ (false, 2), (true, 0), (true, 1) }", Print(map1));
}

TEST(PrintStlContainerTest, Set) {
  const unsigned int a[] = { 3, 0, 5 };
  set<unsigned int> set1(a, a + 3);
  EXPECT_EQ("{ 0, 3, 5 }", Print(set1));
}

TEST(PrintStlContainerTest, MultiSet) {
  const int a[] = { 1, 1, 2, 5, 1 };
  multiset<int> set1(a, a + 5);
  EXPECT_EQ("{ 1, 1, 1, 2, 5 }", Print(set1));
}

kosak's avatar
kosak committed
920
921
922
923
924
925
926
927
928
929
930
#if GTEST_HAS_STD_FORWARD_LIST_
// <slist> is available on Linux in the google3 mode, but not on
// Windows or Mac OS X.

TEST(PrintStlContainerTest, SinglyLinkedList) {
  int a[] = { 9, 2, 8 };
  const std::forward_list<int> ints(a, a + 3);
  EXPECT_EQ("{ 9, 2, 8 }", Print(ints));
}
#endif  // GTEST_HAS_STD_FORWARD_LIST_

931
932
933
934
935
936
937
938
939
940
941
942
943
944
945
946
947
948
949
950
951
952
953
954
955
956
957
958
959
960
961
962
963
TEST(PrintStlContainerTest, Pair) {
  pair<const bool, int> p(true, 5);
  EXPECT_EQ("(true, 5)", Print(p));
}

TEST(PrintStlContainerTest, Vector) {
  vector<int> v;
  v.push_back(1);
  v.push_back(2);
  EXPECT_EQ("{ 1, 2 }", Print(v));
}

TEST(PrintStlContainerTest, LongSequence) {
  const int a[100] = { 1, 2, 3 };
  const vector<int> v(a, a + 100);
  EXPECT_EQ("{ 1, 2, 3, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, "
            "0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, ... }", Print(v));
}

TEST(PrintStlContainerTest, NestedContainer) {
  const int a1[] = { 1, 2 };
  const int a2[] = { 3, 4, 5 };
  const list<int> l1(a1, a1 + 2);
  const list<int> l2(a2, a2 + 3);

  vector<list<int> > v;
  v.push_back(l1);
  v.push_back(l2);
  EXPECT_EQ("{ { 1, 2 }, { 3, 4, 5 } }", Print(v));
}

TEST(PrintStlContainerTest, OneDimensionalNativeArray) {
  const int a[3] = { 1, 2, 3 };
billydonahue's avatar
billydonahue committed
964
  NativeArray<int> b(a, 3, RelationToSourceReference());
965
966
967
968
969
  EXPECT_EQ("{ 1, 2, 3 }", Print(b));
}

TEST(PrintStlContainerTest, TwoDimensionalNativeArray) {
  const int a[2][3] = { { 1, 2, 3 }, { 4, 5, 6 } };
billydonahue's avatar
billydonahue committed
970
  NativeArray<int[3]> b(a, 2, RelationToSourceReference());
971
972
973
  EXPECT_EQ("{ { 1, 2, 3 }, { 4, 5, 6 } }", Print(b));
}

974
975
976
977
978
979
980
981
982
983
984
985
986
987
988
989
990
991
992
993
994
995
// Tests that a class named iterator isn't treated as a container.

struct iterator {
  char x;
};

TEST(PrintStlContainerTest, Iterator) {
  iterator it = {};
  EXPECT_EQ("1-byte object <00>", Print(it));
}

// Tests that a class named const_iterator isn't treated as a container.

struct const_iterator {
  char x;
};

TEST(PrintStlContainerTest, ConstIterator) {
  const_iterator it = {};
  EXPECT_EQ("1-byte object <00>", Print(it));
}

996
#if GTEST_HAS_TR1_TUPLE
997
// Tests printing ::std::tr1::tuples.
998
999

// Tuples of various arities.
1000
1001
TEST(PrintTr1TupleTest, VariousSizes) {
  ::std::tr1::tuple<> t0;
1002
1003
  EXPECT_EQ("()", Print(t0));

1004
  ::std::tr1::tuple<int> t1(5);
1005
1006
  EXPECT_EQ("(5)", Print(t1));

1007
  ::std::tr1::tuple<char, bool> t2('a', true);
1008
  EXPECT_EQ("('a' (97, 0x61), true)", Print(t2));
1009

1010
  ::std::tr1::tuple<bool, int, int> t3(false, 2, 3);
1011
1012
  EXPECT_EQ("(false, 2, 3)", Print(t3));

1013
  ::std::tr1::tuple<bool, int, int, int> t4(false, 2, 3, 4);
1014
1015
  EXPECT_EQ("(false, 2, 3, 4)", Print(t4));

1016
  ::std::tr1::tuple<bool, int, int, int, bool> t5(false, 2, 3, 4, true);
1017
1018
  EXPECT_EQ("(false, 2, 3, 4, true)", Print(t5));

1019
  ::std::tr1::tuple<bool, int, int, int, bool, int> t6(false, 2, 3, 4, true, 6);
1020
1021
  EXPECT_EQ("(false, 2, 3, 4, true, 6)", Print(t6));

1022
1023
  ::std::tr1::tuple<bool, int, int, int, bool, int, int> t7(
      false, 2, 3, 4, true, 6, 7);
1024
1025
  EXPECT_EQ("(false, 2, 3, 4, true, 6, 7)", Print(t7));

1026
  ::std::tr1::tuple<bool, int, int, int, bool, int, int, bool> t8(
1027
1028
1029
      false, 2, 3, 4, true, 6, 7, true);
  EXPECT_EQ("(false, 2, 3, 4, true, 6, 7, true)", Print(t8));

1030
  ::std::tr1::tuple<bool, int, int, int, bool, int, int, bool, int> t9(
1031
1032
1033
1034
      false, 2, 3, 4, true, 6, 7, true, 9);
  EXPECT_EQ("(false, 2, 3, 4, true, 6, 7, true, 9)", Print(t9));

  const char* const str = "8";
1035
1036
  // VC++ 2010's implementation of tuple of C++0x is deficient, requiring
  // an explicit type cast of NULL to be used.
1037
  ::std::tr1::tuple<bool, char, short, testing::internal::Int32,  // NOLINT
1038
      testing::internal::Int64, float, double, const char*, void*, string>
1039
1040
      t10(false, 'a', 3, 4, 5, 1.5F, -2.5, str,
          ImplicitCast_<void*>(NULL), "10");
1041
  EXPECT_EQ("(false, 'a' (97, 0x61), 3, 4, 5, 1.5, -2.5, " + PrintPointer(str) +
1042
1043
1044
1045
1046
            " pointing to \"8\", NULL, \"10\")",
            Print(t10));
}

// Nested tuples.
1047
1048
1049
TEST(PrintTr1TupleTest, NestedTuple) {
  ::std::tr1::tuple< ::std::tr1::tuple<int, bool>, char> nested(
      ::std::tr1::make_tuple(5, true), 'a');
1050
  EXPECT_EQ("((5, true), 'a' (97, 0x61))", Print(nested));
1051
1052
1053
1054
}

#endif  // GTEST_HAS_TR1_TUPLE

1055
#if GTEST_HAS_STD_TUPLE_
1056
1057
1058
1059
1060
1061
1062
1063
1064
1065
1066
1067
1068
1069
1070
1071
1072
1073
1074
1075
1076
1077
1078
1079
1080
1081
1082
1083
1084
1085
1086
1087
1088
1089
1090
1091
1092
1093
1094
1095
1096
1097
1098
1099
1100
1101
1102
1103
1104
1105
1106
1107
1108
1109
1110
1111
1112
1113
// Tests printing ::std::tuples.

// Tuples of various arities.
TEST(PrintStdTupleTest, VariousSizes) {
  ::std::tuple<> t0;
  EXPECT_EQ("()", Print(t0));

  ::std::tuple<int> t1(5);
  EXPECT_EQ("(5)", Print(t1));

  ::std::tuple<char, bool> t2('a', true);
  EXPECT_EQ("('a' (97, 0x61), true)", Print(t2));

  ::std::tuple<bool, int, int> t3(false, 2, 3);
  EXPECT_EQ("(false, 2, 3)", Print(t3));

  ::std::tuple<bool, int, int, int> t4(false, 2, 3, 4);
  EXPECT_EQ("(false, 2, 3, 4)", Print(t4));

  ::std::tuple<bool, int, int, int, bool> t5(false, 2, 3, 4, true);
  EXPECT_EQ("(false, 2, 3, 4, true)", Print(t5));

  ::std::tuple<bool, int, int, int, bool, int> t6(false, 2, 3, 4, true, 6);
  EXPECT_EQ("(false, 2, 3, 4, true, 6)", Print(t6));

  ::std::tuple<bool, int, int, int, bool, int, int> t7(
      false, 2, 3, 4, true, 6, 7);
  EXPECT_EQ("(false, 2, 3, 4, true, 6, 7)", Print(t7));

  ::std::tuple<bool, int, int, int, bool, int, int, bool> t8(
      false, 2, 3, 4, true, 6, 7, true);
  EXPECT_EQ("(false, 2, 3, 4, true, 6, 7, true)", Print(t8));

  ::std::tuple<bool, int, int, int, bool, int, int, bool, int> t9(
      false, 2, 3, 4, true, 6, 7, true, 9);
  EXPECT_EQ("(false, 2, 3, 4, true, 6, 7, true, 9)", Print(t9));

  const char* const str = "8";
  // VC++ 2010's implementation of tuple of C++0x is deficient, requiring
  // an explicit type cast of NULL to be used.
  ::std::tuple<bool, char, short, testing::internal::Int32,  // NOLINT
      testing::internal::Int64, float, double, const char*, void*, string>
      t10(false, 'a', 3, 4, 5, 1.5F, -2.5, str,
          ImplicitCast_<void*>(NULL), "10");
  EXPECT_EQ("(false, 'a' (97, 0x61), 3, 4, 5, 1.5, -2.5, " + PrintPointer(str) +
            " pointing to \"8\", NULL, \"10\")",
            Print(t10));
}

// Nested tuples.
TEST(PrintStdTupleTest, NestedTuple) {
  ::std::tuple< ::std::tuple<int, bool>, char> nested(
      ::std::make_tuple(5, true), 'a');
  EXPECT_EQ("((5, true), 'a' (97, 0x61))", Print(nested));
}

#endif  // GTEST_LANG_CXX11

1114
1115
1116
1117
1118
// Tests printing user-defined unprintable types.

// Unprintable types in the global namespace.
TEST(PrintUnprintableTypeTest, InGlobalNamespace) {
  EXPECT_EQ("1-byte object <00>",
1119
            Print(UnprintableTemplateInGlobal<char>()));
1120
1121
1122
1123
}

// Unprintable types in a user namespace.
TEST(PrintUnprintableTypeTest, InUserNamespace) {
1124
  EXPECT_EQ("16-byte object <EF-12 00-00 34-AB 00-00 00-00 00-00 00-00 00-00>",
1125
1126
1127
1128
1129
1130
1131
1132
1133
1134
1135
            Print(::foo::UnprintableInFoo()));
}

// Unprintable types are that too big to be printed completely.

struct Big {
  Big() { memset(array, 0, sizeof(array)); }
  char array[257];
};

TEST(PrintUnpritableTypeTest, BigObject) {
1136
1137
1138
1139
1140
1141
1142
  EXPECT_EQ("257-byte object <00-00 00-00 00-00 00-00 00-00 00-00 "
            "00-00 00-00 00-00 00-00 00-00 00-00 00-00 00-00 00-00 00-00 "
            "00-00 00-00 00-00 00-00 00-00 00-00 00-00 00-00 00-00 00-00 "
            "00-00 00-00 00-00 00-00 00-00 00-00 ... 00-00 00-00 00-00 "
            "00-00 00-00 00-00 00-00 00-00 00-00 00-00 00-00 00-00 00-00 "
            "00-00 00-00 00-00 00-00 00-00 00-00 00-00 00-00 00-00 00-00 "
            "00-00 00-00 00-00 00-00 00-00 00-00 00-00 00-00 00>",
1143
1144
1145
1146
1147
1148
1149
            Print(Big()));
}

// Tests printing user-defined streamable types.

// Streamable types in the global namespace.
TEST(PrintStreamableTypeTest, InGlobalNamespace) {
1150
1151
1152
  StreamableInGlobal x;
  EXPECT_EQ("StreamableInGlobal", Print(x));
  EXPECT_EQ("StreamableInGlobal*", Print(&x));
1153
1154
1155
1156
1157
1158
1159
1160
1161
1162
1163
1164
1165
1166
}

// Printable template types in a user namespace.
TEST(PrintStreamableTypeTest, TemplateTypeInUserNamespace) {
  EXPECT_EQ("StreamableTemplateInFoo: 0",
            Print(::foo::StreamableTemplateInFoo<int>()));
}

// Tests printing user-defined types that have a PrintTo() function.
TEST(PrintPrintableTypeTest, InUserNamespace) {
  EXPECT_EQ("PrintableViaPrintTo: 0",
            Print(::foo::PrintableViaPrintTo()));
}

1167
1168
1169
1170
1171
1172
1173
// Tests printing a pointer to a user-defined type that has a <<
// operator for its pointer.
TEST(PrintPrintableTypeTest, PointerInUserNamespace) {
  ::foo::PointerPrintable x;
  EXPECT_EQ("PointerPrintable*", Print(&x));
}

1174
1175
1176
1177
1178
1179
1180
1181
1182
1183
1184
1185
1186
1187
1188
1189
1190
1191
1192
1193
1194
// Tests printing user-defined class template that have a PrintTo() function.
TEST(PrintPrintableTypeTest, TemplateInUserNamespace) {
  EXPECT_EQ("PrintableViaPrintToTemplate: 5",
            Print(::foo::PrintableViaPrintToTemplate<int>(5)));
}

// Tests that the universal printer prints both the address and the
// value of a reference.
TEST(PrintReferenceTest, PrintsAddressAndValue) {
  int n = 5;
  EXPECT_EQ("@" + PrintPointer(&n) + " 5", PrintByRef(n));

  int a[2][3] = {
    { 0, 1, 2 },
    { 3, 4, 5 }
  };
  EXPECT_EQ("@" + PrintPointer(a) + " { { 0, 1, 2 }, { 3, 4, 5 } }",
            PrintByRef(a));

  const ::foo::UnprintableInFoo x;
  EXPECT_EQ("@" + PrintPointer(&x) + " 16-byte object "
1195
            "<EF-12 00-00 34-AB 00-00 00-00 00-00 00-00 00-00>",
1196
1197
1198
1199
1200
1201
1202
1203
1204
1205
1206
1207
1208
1209
1210
1211
1212
1213
1214
1215
1216
1217
1218
1219
1220
1221
1222
1223
1224
1225
1226
1227
1228
1229
1230
1231
1232
1233
1234
1235
1236
1237
1238
1239
            PrintByRef(x));
}

// Tests that the universal printer prints a function pointer passed by
// reference.
TEST(PrintReferenceTest, HandlesFunctionPointer) {
  void (*fp)(int n) = &MyFunction;
  const string fp_pointer_string =
      PrintPointer(reinterpret_cast<const void*>(&fp));
  // We cannot directly cast &MyFunction to const void* because the
  // standard disallows casting between pointers to functions and
  // pointers to objects, and some compilers (e.g. GCC 3.4) enforce
  // this limitation.
  const string fp_string = PrintPointer(reinterpret_cast<const void*>(
      reinterpret_cast<internal::BiggestInt>(fp)));
  EXPECT_EQ("@" + fp_pointer_string + " " + fp_string,
            PrintByRef(fp));
}

// Tests that the universal printer prints a member function pointer
// passed by reference.
TEST(PrintReferenceTest, HandlesMemberFunctionPointer) {
  int (Foo::*p)(char ch) = &Foo::MyMethod;
  EXPECT_TRUE(HasPrefix(
      PrintByRef(p),
      "@" + PrintPointer(reinterpret_cast<const void*>(&p)) + " " +
          Print(sizeof(p)) + "-byte object "));

  char (Foo::*p2)(int n) = &Foo::MyVirtualMethod;
  EXPECT_TRUE(HasPrefix(
      PrintByRef(p2),
      "@" + PrintPointer(reinterpret_cast<const void*>(&p2)) + " " +
          Print(sizeof(p2)) + "-byte object "));
}

// Tests that the universal printer prints a member variable pointer
// passed by reference.
TEST(PrintReferenceTest, HandlesMemberVariablePointer) {
  int (Foo::*p) = &Foo::value;  // NOLINT
  EXPECT_TRUE(HasPrefix(
      PrintByRef(p),
      "@" + PrintPointer(&p) + " " + Print(sizeof(p)) + "-byte object "));
}

1240
1241
1242
1243
1244
1245
1246
1247
1248
1249
1250
1251
1252
1253
1254
1255
1256
1257
1258
1259
1260
1261
1262
1263
1264
1265
1266
1267
1268
1269
1270
1271
1272
1273
1274
1275
1276
1277
1278
1279
1280
1281
1282
1283
1284
1285
1286
1287
1288
1289
1290
1291
1292
1293
1294
1295
1296
1297
1298
1299
1300
1301
1302
1303
1304
1305
1306
1307
1308
1309
1310
1311
1312
1313
1314
1315
1316
1317
1318
1319
1320
1321
1322
1323
1324
1325
1326
1327
1328
1329
1330
1331
1332
1333
1334
1335
1336
1337
1338
1339
1340
1341
1342
1343
1344
1345
1346
1347
1348
1349
1350
1351
1352
1353
1354
1355
1356
1357
1358
1359
1360
1361
1362
1363
1364
1365
1366
1367
1368
1369
1370
1371
1372
1373
1374
1375
1376
1377
1378
1379
1380
1381
1382
1383
1384
1385
1386
1387
1388
1389
1390
1391
1392
1393
1394
1395
1396
1397
1398
1399
1400
1401
1402
1403
1404
1405
1406
1407
1408
1409
1410
1411
1412
1413
1414
1415
1416
1417
1418
1419
1420
1421
1422
1423
1424
1425
1426
1427
1428
1429
1430
1431
1432
1433
1434
1435
1436
1437
1438
1439
1440
// Tests that FormatForComparisonFailureMessage(), which is used to print
// an operand in a comparison assertion (e.g. ASSERT_EQ) when the assertion
// fails, formats the operand in the desired way.

// scalar
TEST(FormatForComparisonFailureMessageTest, WorksForScalar) {
  EXPECT_STREQ("123",
               FormatForComparisonFailureMessage(123, 124).c_str());
}

// non-char pointer
TEST(FormatForComparisonFailureMessageTest, WorksForNonCharPointer) {
  int n = 0;
  EXPECT_EQ(PrintPointer(&n),
            FormatForComparisonFailureMessage(&n, &n).c_str());
}

// non-char array
TEST(FormatForComparisonFailureMessageTest, FormatsNonCharArrayAsPointer) {
  // In expression 'array == x', 'array' is compared by pointer.
  // Therefore we want to print an array operand as a pointer.
  int n[] = { 1, 2, 3 };
  EXPECT_EQ(PrintPointer(n),
            FormatForComparisonFailureMessage(n, n).c_str());
}

// Tests formatting a char pointer when it's compared with another pointer.
// In this case we want to print it as a raw pointer, as the comparision is by
// pointer.

// char pointer vs pointer
TEST(FormatForComparisonFailureMessageTest, WorksForCharPointerVsPointer) {
  // In expression 'p == x', where 'p' and 'x' are (const or not) char
  // pointers, the operands are compared by pointer.  Therefore we
  // want to print 'p' as a pointer instead of a C string (we don't
  // even know if it's supposed to point to a valid C string).

  // const char*
  const char* s = "hello";
  EXPECT_EQ(PrintPointer(s),
            FormatForComparisonFailureMessage(s, s).c_str());

  // char*
  char ch = 'a';
  EXPECT_EQ(PrintPointer(&ch),
            FormatForComparisonFailureMessage(&ch, &ch).c_str());
}

// wchar_t pointer vs pointer
TEST(FormatForComparisonFailureMessageTest, WorksForWCharPointerVsPointer) {
  // In expression 'p == x', where 'p' and 'x' are (const or not) char
  // pointers, the operands are compared by pointer.  Therefore we
  // want to print 'p' as a pointer instead of a wide C string (we don't
  // even know if it's supposed to point to a valid wide C string).

  // const wchar_t*
  const wchar_t* s = L"hello";
  EXPECT_EQ(PrintPointer(s),
            FormatForComparisonFailureMessage(s, s).c_str());

  // wchar_t*
  wchar_t ch = L'a';
  EXPECT_EQ(PrintPointer(&ch),
            FormatForComparisonFailureMessage(&ch, &ch).c_str());
}

// Tests formatting a char pointer when it's compared to a string object.
// In this case we want to print the char pointer as a C string.

#if GTEST_HAS_GLOBAL_STRING
// char pointer vs ::string
TEST(FormatForComparisonFailureMessageTest, WorksForCharPointerVsString) {
  const char* s = "hello \"world";
  EXPECT_STREQ("\"hello \\\"world\"",  // The string content should be escaped.
               FormatForComparisonFailureMessage(s, ::string()).c_str());

  // char*
  char str[] = "hi\1";
  char* p = str;
  EXPECT_STREQ("\"hi\\x1\"",  // The string content should be escaped.
               FormatForComparisonFailureMessage(p, ::string()).c_str());
}
#endif

// char pointer vs std::string
TEST(FormatForComparisonFailureMessageTest, WorksForCharPointerVsStdString) {
  const char* s = "hello \"world";
  EXPECT_STREQ("\"hello \\\"world\"",  // The string content should be escaped.
               FormatForComparisonFailureMessage(s, ::std::string()).c_str());

  // char*
  char str[] = "hi\1";
  char* p = str;
  EXPECT_STREQ("\"hi\\x1\"",  // The string content should be escaped.
               FormatForComparisonFailureMessage(p, ::std::string()).c_str());
}

#if GTEST_HAS_GLOBAL_WSTRING
// wchar_t pointer vs ::wstring
TEST(FormatForComparisonFailureMessageTest, WorksForWCharPointerVsWString) {
  const wchar_t* s = L"hi \"world";
  EXPECT_STREQ("L\"hi \\\"world\"",  // The string content should be escaped.
               FormatForComparisonFailureMessage(s, ::wstring()).c_str());

  // wchar_t*
  wchar_t str[] = L"hi\1";
  wchar_t* p = str;
  EXPECT_STREQ("L\"hi\\x1\"",  // The string content should be escaped.
               FormatForComparisonFailureMessage(p, ::wstring()).c_str());
}
#endif

#if GTEST_HAS_STD_WSTRING
// wchar_t pointer vs std::wstring
TEST(FormatForComparisonFailureMessageTest, WorksForWCharPointerVsStdWString) {
  const wchar_t* s = L"hi \"world";
  EXPECT_STREQ("L\"hi \\\"world\"",  // The string content should be escaped.
               FormatForComparisonFailureMessage(s, ::std::wstring()).c_str());

  // wchar_t*
  wchar_t str[] = L"hi\1";
  wchar_t* p = str;
  EXPECT_STREQ("L\"hi\\x1\"",  // The string content should be escaped.
               FormatForComparisonFailureMessage(p, ::std::wstring()).c_str());
}
#endif

// Tests formatting a char array when it's compared with a pointer or array.
// In this case we want to print the array as a row pointer, as the comparison
// is by pointer.

// char array vs pointer
TEST(FormatForComparisonFailureMessageTest, WorksForCharArrayVsPointer) {
  char str[] = "hi \"world\"";
  char* p = NULL;
  EXPECT_EQ(PrintPointer(str),
            FormatForComparisonFailureMessage(str, p).c_str());
}

// char array vs char array
TEST(FormatForComparisonFailureMessageTest, WorksForCharArrayVsCharArray) {
  const char str[] = "hi \"world\"";
  EXPECT_EQ(PrintPointer(str),
            FormatForComparisonFailureMessage(str, str).c_str());
}

// wchar_t array vs pointer
TEST(FormatForComparisonFailureMessageTest, WorksForWCharArrayVsPointer) {
  wchar_t str[] = L"hi \"world\"";
  wchar_t* p = NULL;
  EXPECT_EQ(PrintPointer(str),
            FormatForComparisonFailureMessage(str, p).c_str());
}

// wchar_t array vs wchar_t array
TEST(FormatForComparisonFailureMessageTest, WorksForWCharArrayVsWCharArray) {
  const wchar_t str[] = L"hi \"world\"";
  EXPECT_EQ(PrintPointer(str),
            FormatForComparisonFailureMessage(str, str).c_str());
}

// Tests formatting a char array when it's compared with a string object.
// In this case we want to print the array as a C string.

#if GTEST_HAS_GLOBAL_STRING
// char array vs string
TEST(FormatForComparisonFailureMessageTest, WorksForCharArrayVsString) {
  const char str[] = "hi \"w\0rld\"";
  EXPECT_STREQ("\"hi \\\"w\"",  // The content should be escaped.
                                // Embedded NUL terminates the string.
               FormatForComparisonFailureMessage(str, ::string()).c_str());
}
#endif

// char array vs std::string
TEST(FormatForComparisonFailureMessageTest, WorksForCharArrayVsStdString) {
  const char str[] = "hi \"world\"";
  EXPECT_STREQ("\"hi \\\"world\\\"\"",  // The content should be escaped.
               FormatForComparisonFailureMessage(str, ::std::string()).c_str());
}

#if GTEST_HAS_GLOBAL_WSTRING
// wchar_t array vs wstring
TEST(FormatForComparisonFailureMessageTest, WorksForWCharArrayVsWString) {
  const wchar_t str[] = L"hi \"world\"";
  EXPECT_STREQ("L\"hi \\\"world\\\"\"",  // The content should be escaped.
               FormatForComparisonFailureMessage(str, ::wstring()).c_str());
}
#endif

#if GTEST_HAS_STD_WSTRING
// wchar_t array vs std::wstring
TEST(FormatForComparisonFailureMessageTest, WorksForWCharArrayVsStdWString) {
  const wchar_t str[] = L"hi \"w\0rld\"";
  EXPECT_STREQ(
      "L\"hi \\\"w\"",  // The content should be escaped.
                        // Embedded NUL terminates the string.
      FormatForComparisonFailureMessage(str, ::std::wstring()).c_str());
}
#endif

1441
1442
1443
1444
1445
1446
1447
// Useful for testing PrintToString().  We cannot use EXPECT_EQ()
// there as its implementation uses PrintToString().  The caller must
// ensure that 'value' has no side effect.
#define EXPECT_PRINT_TO_STRING_(value, expected_string)         \
  EXPECT_TRUE(PrintToString(value) == (expected_string))        \
      << " where " #value " prints as " << (PrintToString(value))

1448
TEST(PrintToStringTest, WorksForScalar) {
1449
  EXPECT_PRINT_TO_STRING_(123, "123");
1450
1451
1452
1453
}

TEST(PrintToStringTest, WorksForPointerToConstChar) {
  const char* p = "hello";
1454
  EXPECT_PRINT_TO_STRING_(p, "\"hello\"");
1455
1456
1457
1458
1459
}

TEST(PrintToStringTest, WorksForPointerToNonConstChar) {
  char s[] = "hello";
  char* p = s;
1460
  EXPECT_PRINT_TO_STRING_(p, "\"hello\"");
1461
1462
}

1463
1464
1465
1466
1467
1468
1469
1470
1471
1472
1473
TEST(PrintToStringTest, EscapesForPointerToConstChar) {
  const char* p = "hello\n";
  EXPECT_PRINT_TO_STRING_(p, "\"hello\\n\"");
}

TEST(PrintToStringTest, EscapesForPointerToNonConstChar) {
  char s[] = "hello\1";
  char* p = s;
  EXPECT_PRINT_TO_STRING_(p, "\"hello\\x1\"");
}

1474
1475
TEST(PrintToStringTest, WorksForArray) {
  int n[3] = { 1, 2, 3 };
1476
  EXPECT_PRINT_TO_STRING_(n, "{ 1, 2, 3 }");
1477
1478
}

1479
1480
1481
1482
1483
1484
1485
1486
1487
1488
1489
1490
1491
TEST(PrintToStringTest, WorksForCharArray) {
  char s[] = "hello";
  EXPECT_PRINT_TO_STRING_(s, "\"hello\"");
}

TEST(PrintToStringTest, WorksForCharArrayWithEmbeddedNul) {
  const char str_with_nul[] = "hello\0 world";
  EXPECT_PRINT_TO_STRING_(str_with_nul, "\"hello\\0 world\"");

  char mutable_str_with_nul[] = "hello\0 world";
  EXPECT_PRINT_TO_STRING_(mutable_str_with_nul, "\"hello\\0 world\"");
}

1492
1493
#undef EXPECT_PRINT_TO_STRING_

1494
1495
1496
1497
1498
1499
1500
1501
1502
1503
1504
1505
1506
1507
1508
1509
1510
1511
1512
1513
1514
1515
1516
1517
1518
1519
1520
1521
1522
1523
1524
1525
1526
1527
1528
1529
1530
1531
1532
1533
1534
1535
1536
1537
1538
1539
1540
1541
1542
1543
1544
1545
1546
1547
1548
1549
1550
1551
1552
1553
TEST(UniversalTersePrintTest, WorksForNonReference) {
  ::std::stringstream ss;
  UniversalTersePrint(123, &ss);
  EXPECT_EQ("123", ss.str());
}

TEST(UniversalTersePrintTest, WorksForReference) {
  const int& n = 123;
  ::std::stringstream ss;
  UniversalTersePrint(n, &ss);
  EXPECT_EQ("123", ss.str());
}

TEST(UniversalTersePrintTest, WorksForCString) {
  const char* s1 = "abc";
  ::std::stringstream ss1;
  UniversalTersePrint(s1, &ss1);
  EXPECT_EQ("\"abc\"", ss1.str());

  char* s2 = const_cast<char*>(s1);
  ::std::stringstream ss2;
  UniversalTersePrint(s2, &ss2);
  EXPECT_EQ("\"abc\"", ss2.str());

  const char* s3 = NULL;
  ::std::stringstream ss3;
  UniversalTersePrint(s3, &ss3);
  EXPECT_EQ("NULL", ss3.str());
}

TEST(UniversalPrintTest, WorksForNonReference) {
  ::std::stringstream ss;
  UniversalPrint(123, &ss);
  EXPECT_EQ("123", ss.str());
}

TEST(UniversalPrintTest, WorksForReference) {
  const int& n = 123;
  ::std::stringstream ss;
  UniversalPrint(n, &ss);
  EXPECT_EQ("123", ss.str());
}

TEST(UniversalPrintTest, WorksForCString) {
  const char* s1 = "abc";
  ::std::stringstream ss1;
  UniversalPrint(s1, &ss1);
  EXPECT_EQ(PrintPointer(s1) + " pointing to \"abc\"", string(ss1.str()));

  char* s2 = const_cast<char*>(s1);
  ::std::stringstream ss2;
  UniversalPrint(s2, &ss2);
  EXPECT_EQ(PrintPointer(s2) + " pointing to \"abc\"", string(ss2.str()));

  const char* s3 = NULL;
  ::std::stringstream ss3;
  UniversalPrint(s3, &ss3);
  EXPECT_EQ("NULL", ss3.str());
}

1554
1555
1556
1557
1558
1559
1560
1561
1562
1563
1564
TEST(UniversalPrintTest, WorksForCharArray) {
  const char str[] = "\"Line\0 1\"\nLine 2";
  ::std::stringstream ss1;
  UniversalPrint(str, &ss1);
  EXPECT_EQ("\"\\\"Line\\0 1\\\"\\nLine 2\"", ss1.str());

  const char mutable_str[] = "\"Line\0 1\"\nLine 2";
  ::std::stringstream ss2;
  UniversalPrint(mutable_str, &ss2);
  EXPECT_EQ("\"\\\"Line\\0 1\\\"\\nLine 2\"", ss2.str());
}
1565
1566
1567

#if GTEST_HAS_TR1_TUPLE

1568
1569
1570
TEST(UniversalTersePrintTupleFieldsToStringsTestWithTr1, PrintsEmptyTuple) {
  Strings result = UniversalTersePrintTupleFieldsToStrings(
      ::std::tr1::make_tuple());
1571
1572
1573
  EXPECT_EQ(0u, result.size());
}

1574
1575
1576
TEST(UniversalTersePrintTupleFieldsToStringsTestWithTr1, PrintsOneTuple) {
  Strings result = UniversalTersePrintTupleFieldsToStrings(
      ::std::tr1::make_tuple(1));
1577
1578
1579
1580
  ASSERT_EQ(1u, result.size());
  EXPECT_EQ("1", result[0]);
}

1581
1582
1583
TEST(UniversalTersePrintTupleFieldsToStringsTestWithTr1, PrintsTwoTuple) {
  Strings result = UniversalTersePrintTupleFieldsToStrings(
      ::std::tr1::make_tuple(1, 'a'));
1584
1585
  ASSERT_EQ(2u, result.size());
  EXPECT_EQ("1", result[0]);
1586
  EXPECT_EQ("'a' (97, 0x61)", result[1]);
1587
1588
}

1589
TEST(UniversalTersePrintTupleFieldsToStringsTestWithTr1, PrintsTersely) {
1590
1591
  const int n = 1;
  Strings result = UniversalTersePrintTupleFieldsToStrings(
1592
      ::std::tr1::tuple<const int&, const char*>(n, "a"));
1593
1594
1595
1596
1597
1598
1599
  ASSERT_EQ(2u, result.size());
  EXPECT_EQ("1", result[0]);
  EXPECT_EQ("\"a\"", result[1]);
}

#endif  // GTEST_HAS_TR1_TUPLE

1600
1601
1602
1603
1604
1605
1606
1607
1608
1609
1610
1611
1612
1613
1614
1615
1616
1617
1618
1619
1620
1621
1622
1623
1624
1625
1626
1627
1628
1629
1630
1631
1632
#if GTEST_HAS_STD_TUPLE_

TEST(UniversalTersePrintTupleFieldsToStringsTestWithStd, PrintsEmptyTuple) {
  Strings result = UniversalTersePrintTupleFieldsToStrings(::std::make_tuple());
  EXPECT_EQ(0u, result.size());
}

TEST(UniversalTersePrintTupleFieldsToStringsTestWithStd, PrintsOneTuple) {
  Strings result = UniversalTersePrintTupleFieldsToStrings(
      ::std::make_tuple(1));
  ASSERT_EQ(1u, result.size());
  EXPECT_EQ("1", result[0]);
}

TEST(UniversalTersePrintTupleFieldsToStringsTestWithStd, PrintsTwoTuple) {
  Strings result = UniversalTersePrintTupleFieldsToStrings(
      ::std::make_tuple(1, 'a'));
  ASSERT_EQ(2u, result.size());
  EXPECT_EQ("1", result[0]);
  EXPECT_EQ("'a' (97, 0x61)", result[1]);
}

TEST(UniversalTersePrintTupleFieldsToStringsTestWithStd, PrintsTersely) {
  const int n = 1;
  Strings result = UniversalTersePrintTupleFieldsToStrings(
      ::std::tuple<const int&, const char*>(n, "a"));
  ASSERT_EQ(2u, result.size());
  EXPECT_EQ("1", result[0]);
  EXPECT_EQ("\"a\"", result[1]);
}

#endif  // GTEST_HAS_STD_TUPLE_

1633
1634
}  // namespace gtest_printers_test
}  // namespace testing
billydonahue's avatar
billydonahue committed
1635