1 // Copyright 2007, 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 (at) google.com (Zhanyong Wan) 31 32 // Google Mock - a framework for writing C++ mock classes. 33 // 34 // This file tests some commonly used argument matchers. 35 36 #include "gmock/gmock-matchers.h" 37 #include "gmock/gmock-more-matchers.h" 38 39 #include <string.h> 40 #include <time.h> 41 #include <deque> 42 #include <functional> 43 #include <iostream> 44 #include <iterator> 45 #include <limits> 46 #include <list> 47 #include <map> 48 #include <set> 49 #include <sstream> 50 #include <string> 51 #include <utility> 52 #include <vector> 53 #include "gmock/gmock.h" 54 #include "gtest/gtest.h" 55 #include "gtest/gtest-spi.h" 56 57 #if GTEST_HAS_STD_FORWARD_LIST_ 58 # include <forward_list> // NOLINT 59 #endif 60 61 namespace testing { 62 63 namespace internal { 64 GTEST_API_ string JoinAsTuple(const Strings& fields); 65 } // namespace internal 66 67 namespace gmock_matchers_test { 68 69 using std::greater; 70 using std::less; 71 using std::list; 72 using std::make_pair; 73 using std::map; 74 using std::multimap; 75 using std::multiset; 76 using std::ostream; 77 using std::pair; 78 using std::set; 79 using std::stringstream; 80 using std::vector; 81 using testing::A; 82 using testing::AllArgs; 83 using testing::AllOf; 84 using testing::An; 85 using testing::AnyOf; 86 using testing::ByRef; 87 using testing::ContainsRegex; 88 using testing::DoubleEq; 89 using testing::DoubleNear; 90 using testing::EndsWith; 91 using testing::Eq; 92 using testing::ExplainMatchResult; 93 using testing::Field; 94 using testing::FloatEq; 95 using testing::FloatNear; 96 using testing::Ge; 97 using testing::Gt; 98 using testing::HasSubstr; 99 using testing::IsEmpty; 100 using testing::IsNull; 101 using testing::Key; 102 using testing::Le; 103 using testing::Lt; 104 using testing::MakeMatcher; 105 using testing::MakePolymorphicMatcher; 106 using testing::MatchResultListener; 107 using testing::Matcher; 108 using testing::MatcherCast; 109 using testing::MatcherInterface; 110 using testing::Matches; 111 using testing::MatchesRegex; 112 using testing::NanSensitiveDoubleEq; 113 using testing::NanSensitiveDoubleNear; 114 using testing::NanSensitiveFloatEq; 115 using testing::NanSensitiveFloatNear; 116 using testing::Ne; 117 using testing::Not; 118 using testing::NotNull; 119 using testing::Pair; 120 using testing::Pointee; 121 using testing::Pointwise; 122 using testing::PolymorphicMatcher; 123 using testing::Property; 124 using testing::Ref; 125 using testing::ResultOf; 126 using testing::SizeIs; 127 using testing::StartsWith; 128 using testing::StrCaseEq; 129 using testing::StrCaseNe; 130 using testing::StrEq; 131 using testing::StrNe; 132 using testing::StringMatchResultListener; 133 using testing::Truly; 134 using testing::TypedEq; 135 using testing::UnorderedPointwise; 136 using testing::Value; 137 using testing::WhenSorted; 138 using testing::WhenSortedBy; 139 using testing::_; 140 using testing::get; 141 using testing::internal::DummyMatchResultListener; 142 using testing::internal::ElementMatcherPair; 143 using testing::internal::ElementMatcherPairs; 144 using testing::internal::ExplainMatchFailureTupleTo; 145 using testing::internal::FloatingEqMatcher; 146 using testing::internal::FormatMatcherDescription; 147 using testing::internal::IsReadableTypeName; 148 using testing::internal::JoinAsTuple; 149 using testing::internal::linked_ptr; 150 using testing::internal::MatchMatrix; 151 using testing::internal::RE; 152 using testing::internal::scoped_ptr; 153 using testing::internal::StreamMatchResultListener; 154 using testing::internal::Strings; 155 using testing::internal::linked_ptr; 156 using testing::internal::scoped_ptr; 157 using testing::internal::string; 158 using testing::make_tuple; 159 using testing::tuple; 160 161 // For testing ExplainMatchResultTo(). 162 class GreaterThanMatcher : public MatcherInterface<int> { 163 public: 164 explicit GreaterThanMatcher(int rhs) : rhs_(rhs) {} 165 166 virtual void DescribeTo(ostream* os) const { 167 *os << "is > " << rhs_; 168 } 169 170 virtual bool MatchAndExplain(int lhs, 171 MatchResultListener* listener) const { 172 const int diff = lhs - rhs_; 173 if (diff > 0) { 174 *listener << "which is " << diff << " more than " << rhs_; 175 } else if (diff == 0) { 176 *listener << "which is the same as " << rhs_; 177 } else { 178 *listener << "which is " << -diff << " less than " << rhs_; 179 } 180 181 return lhs > rhs_; 182 } 183 184 private: 185 int rhs_; 186 }; 187 188 Matcher<int> GreaterThan(int n) { 189 return MakeMatcher(new GreaterThanMatcher(n)); 190 } 191 192 string OfType(const string& type_name) { 193 #if GTEST_HAS_RTTI 194 return " (of type " + type_name + ")"; 195 #else 196 return ""; 197 #endif 198 } 199 200 // Returns the description of the given matcher. 201 template <typename T> 202 string Describe(const Matcher<T>& m) { 203 stringstream ss; 204 m.DescribeTo(&ss); 205 return ss.str(); 206 } 207 208 // Returns the description of the negation of the given matcher. 209 template <typename T> 210 string DescribeNegation(const Matcher<T>& m) { 211 stringstream ss; 212 m.DescribeNegationTo(&ss); 213 return ss.str(); 214 } 215 216 // Returns the reason why x matches, or doesn't match, m. 217 template <typename MatcherType, typename Value> 218 string Explain(const MatcherType& m, const Value& x) { 219 StringMatchResultListener listener; 220 ExplainMatchResult(m, x, &listener); 221 return listener.str(); 222 } 223 224 TEST(MatchResultListenerTest, StreamingWorks) { 225 StringMatchResultListener listener; 226 listener << "hi" << 5; 227 EXPECT_EQ("hi5", listener.str()); 228 229 listener.Clear(); 230 EXPECT_EQ("", listener.str()); 231 232 listener << 42; 233 EXPECT_EQ("42", listener.str()); 234 235 // Streaming shouldn't crash when the underlying ostream is NULL. 236 DummyMatchResultListener dummy; 237 dummy << "hi" << 5; 238 } 239 240 TEST(MatchResultListenerTest, CanAccessUnderlyingStream) { 241 EXPECT_TRUE(DummyMatchResultListener().stream() == NULL); 242 EXPECT_TRUE(StreamMatchResultListener(NULL).stream() == NULL); 243 244 EXPECT_EQ(&std::cout, StreamMatchResultListener(&std::cout).stream()); 245 } 246 247 TEST(MatchResultListenerTest, IsInterestedWorks) { 248 EXPECT_TRUE(StringMatchResultListener().IsInterested()); 249 EXPECT_TRUE(StreamMatchResultListener(&std::cout).IsInterested()); 250 251 EXPECT_FALSE(DummyMatchResultListener().IsInterested()); 252 EXPECT_FALSE(StreamMatchResultListener(NULL).IsInterested()); 253 } 254 255 // Makes sure that the MatcherInterface<T> interface doesn't 256 // change. 257 class EvenMatcherImpl : public MatcherInterface<int> { 258 public: 259 virtual bool MatchAndExplain(int x, 260 MatchResultListener* /* listener */) const { 261 return x % 2 == 0; 262 } 263 264 virtual void DescribeTo(ostream* os) const { 265 *os << "is an even number"; 266 } 267 268 // We deliberately don't define DescribeNegationTo() and 269 // ExplainMatchResultTo() here, to make sure the definition of these 270 // two methods is optional. 271 }; 272 273 // Makes sure that the MatcherInterface API doesn't change. 274 TEST(MatcherInterfaceTest, CanBeImplementedUsingPublishedAPI) { 275 EvenMatcherImpl m; 276 } 277 278 // Tests implementing a monomorphic matcher using MatchAndExplain(). 279 280 class NewEvenMatcherImpl : public MatcherInterface<int> { 281 public: 282 virtual bool MatchAndExplain(int x, MatchResultListener* listener) const { 283 const bool match = x % 2 == 0; 284 // Verifies that we can stream to a listener directly. 285 *listener << "value % " << 2; 286 if (listener->stream() != NULL) { 287 // Verifies that we can stream to a listener's underlying stream 288 // too. 289 *listener->stream() << " == " << (x % 2); 290 } 291 return match; 292 } 293 294 virtual void DescribeTo(ostream* os) const { 295 *os << "is an even number"; 296 } 297 }; 298 299 TEST(MatcherInterfaceTest, CanBeImplementedUsingNewAPI) { 300 Matcher<int> m = MakeMatcher(new NewEvenMatcherImpl); 301 EXPECT_TRUE(m.Matches(2)); 302 EXPECT_FALSE(m.Matches(3)); 303 EXPECT_EQ("value % 2 == 0", Explain(m, 2)); 304 EXPECT_EQ("value % 2 == 1", Explain(m, 3)); 305 } 306 307 // Tests default-constructing a matcher. 308 TEST(MatcherTest, CanBeDefaultConstructed) { 309 Matcher<double> m; 310 } 311 312 // Tests that Matcher<T> can be constructed from a MatcherInterface<T>*. 313 TEST(MatcherTest, CanBeConstructedFromMatcherInterface) { 314 const MatcherInterface<int>* impl = new EvenMatcherImpl; 315 Matcher<int> m(impl); 316 EXPECT_TRUE(m.Matches(4)); 317 EXPECT_FALSE(m.Matches(5)); 318 } 319 320 // Tests that value can be used in place of Eq(value). 321 TEST(MatcherTest, CanBeImplicitlyConstructedFromValue) { 322 Matcher<int> m1 = 5; 323 EXPECT_TRUE(m1.Matches(5)); 324 EXPECT_FALSE(m1.Matches(6)); 325 } 326 327 // Tests that NULL can be used in place of Eq(NULL). 328 TEST(MatcherTest, CanBeImplicitlyConstructedFromNULL) { 329 Matcher<int*> m1 = NULL; 330 EXPECT_TRUE(m1.Matches(NULL)); 331 int n = 0; 332 EXPECT_FALSE(m1.Matches(&n)); 333 } 334 335 // Tests that matchers are copyable. 336 TEST(MatcherTest, IsCopyable) { 337 // Tests the copy constructor. 338 Matcher<bool> m1 = Eq(false); 339 EXPECT_TRUE(m1.Matches(false)); 340 EXPECT_FALSE(m1.Matches(true)); 341 342 // Tests the assignment operator. 343 m1 = Eq(true); 344 EXPECT_TRUE(m1.Matches(true)); 345 EXPECT_FALSE(m1.Matches(false)); 346 } 347 348 // Tests that Matcher<T>::DescribeTo() calls 349 // MatcherInterface<T>::DescribeTo(). 350 TEST(MatcherTest, CanDescribeItself) { 351 EXPECT_EQ("is an even number", 352 Describe(Matcher<int>(new EvenMatcherImpl))); 353 } 354 355 // Tests Matcher<T>::MatchAndExplain(). 356 TEST(MatcherTest, MatchAndExplain) { 357 Matcher<int> m = GreaterThan(0); 358 StringMatchResultListener listener1; 359 EXPECT_TRUE(m.MatchAndExplain(42, &listener1)); 360 EXPECT_EQ("which is 42 more than 0", listener1.str()); 361 362 StringMatchResultListener listener2; 363 EXPECT_FALSE(m.MatchAndExplain(-9, &listener2)); 364 EXPECT_EQ("which is 9 less than 0", listener2.str()); 365 } 366 367 // Tests that a C-string literal can be implicitly converted to a 368 // Matcher<string> or Matcher<const string&>. 369 TEST(StringMatcherTest, CanBeImplicitlyConstructedFromCStringLiteral) { 370 Matcher<string> m1 = "hi"; 371 EXPECT_TRUE(m1.Matches("hi")); 372 EXPECT_FALSE(m1.Matches("hello")); 373 374 Matcher<const string&> m2 = "hi"; 375 EXPECT_TRUE(m2.Matches("hi")); 376 EXPECT_FALSE(m2.Matches("hello")); 377 } 378 379 // Tests that a string object can be implicitly converted to a 380 // Matcher<string> or Matcher<const string&>. 381 TEST(StringMatcherTest, CanBeImplicitlyConstructedFromString) { 382 Matcher<string> m1 = string("hi"); 383 EXPECT_TRUE(m1.Matches("hi")); 384 EXPECT_FALSE(m1.Matches("hello")); 385 386 Matcher<const string&> m2 = string("hi"); 387 EXPECT_TRUE(m2.Matches("hi")); 388 EXPECT_FALSE(m2.Matches("hello")); 389 } 390 391 #if GTEST_HAS_STRING_PIECE_ 392 // Tests that a C-string literal can be implicitly converted to a 393 // Matcher<StringPiece> or Matcher<const StringPiece&>. 394 TEST(StringPieceMatcherTest, CanBeImplicitlyConstructedFromCStringLiteral) { 395 Matcher<StringPiece> m1 = "cats"; 396 EXPECT_TRUE(m1.Matches("cats")); 397 EXPECT_FALSE(m1.Matches("dogs")); 398 399 Matcher<const StringPiece&> m2 = "cats"; 400 EXPECT_TRUE(m2.Matches("cats")); 401 EXPECT_FALSE(m2.Matches("dogs")); 402 } 403 404 // Tests that a string object can be implicitly converted to a 405 // Matcher<StringPiece> or Matcher<const StringPiece&>. 406 TEST(StringPieceMatcherTest, CanBeImplicitlyConstructedFromString) { 407 Matcher<StringPiece> m1 = string("cats"); 408 EXPECT_TRUE(m1.Matches("cats")); 409 EXPECT_FALSE(m1.Matches("dogs")); 410 411 Matcher<const StringPiece&> m2 = string("cats"); 412 EXPECT_TRUE(m2.Matches("cats")); 413 EXPECT_FALSE(m2.Matches("dogs")); 414 } 415 416 // Tests that a StringPiece object can be implicitly converted to a 417 // Matcher<StringPiece> or Matcher<const StringPiece&>. 418 TEST(StringPieceMatcherTest, CanBeImplicitlyConstructedFromStringPiece) { 419 Matcher<StringPiece> m1 = StringPiece("cats"); 420 EXPECT_TRUE(m1.Matches("cats")); 421 EXPECT_FALSE(m1.Matches("dogs")); 422 423 Matcher<const StringPiece&> m2 = StringPiece("cats"); 424 EXPECT_TRUE(m2.Matches("cats")); 425 EXPECT_FALSE(m2.Matches("dogs")); 426 } 427 #endif // GTEST_HAS_STRING_PIECE_ 428 429 // Tests that MakeMatcher() constructs a Matcher<T> from a 430 // MatcherInterface* without requiring the user to explicitly 431 // write the type. 432 TEST(MakeMatcherTest, ConstructsMatcherFromMatcherInterface) { 433 const MatcherInterface<int>* dummy_impl = NULL; 434 Matcher<int> m = MakeMatcher(dummy_impl); 435 } 436 437 // Tests that MakePolymorphicMatcher() can construct a polymorphic 438 // matcher from its implementation using the old API. 439 const int g_bar = 1; 440 class ReferencesBarOrIsZeroImpl { 441 public: 442 template <typename T> 443 bool MatchAndExplain(const T& x, 444 MatchResultListener* /* listener */) const { 445 const void* p = &x; 446 return p == &g_bar || x == 0; 447 } 448 449 void DescribeTo(ostream* os) const { *os << "g_bar or zero"; } 450 451 void DescribeNegationTo(ostream* os) const { 452 *os << "doesn't reference g_bar and is not zero"; 453 } 454 }; 455 456 // This function verifies that MakePolymorphicMatcher() returns a 457 // PolymorphicMatcher<T> where T is the argument's type. 458 PolymorphicMatcher<ReferencesBarOrIsZeroImpl> ReferencesBarOrIsZero() { 459 return MakePolymorphicMatcher(ReferencesBarOrIsZeroImpl()); 460 } 461 462 TEST(MakePolymorphicMatcherTest, ConstructsMatcherUsingOldAPI) { 463 // Using a polymorphic matcher to match a reference type. 464 Matcher<const int&> m1 = ReferencesBarOrIsZero(); 465 EXPECT_TRUE(m1.Matches(0)); 466 // Verifies that the identity of a by-reference argument is preserved. 467 EXPECT_TRUE(m1.Matches(g_bar)); 468 EXPECT_FALSE(m1.Matches(1)); 469 EXPECT_EQ("g_bar or zero", Describe(m1)); 470 471 // Using a polymorphic matcher to match a value type. 472 Matcher<double> m2 = ReferencesBarOrIsZero(); 473 EXPECT_TRUE(m2.Matches(0.0)); 474 EXPECT_FALSE(m2.Matches(0.1)); 475 EXPECT_EQ("g_bar or zero", Describe(m2)); 476 } 477 478 // Tests implementing a polymorphic matcher using MatchAndExplain(). 479 480 class PolymorphicIsEvenImpl { 481 public: 482 void DescribeTo(ostream* os) const { *os << "is even"; } 483 484 void DescribeNegationTo(ostream* os) const { 485 *os << "is odd"; 486 } 487 488 template <typename T> 489 bool MatchAndExplain(const T& x, MatchResultListener* listener) const { 490 // Verifies that we can stream to the listener directly. 491 *listener << "% " << 2; 492 if (listener->stream() != NULL) { 493 // Verifies that we can stream to the listener's underlying stream 494 // too. 495 *listener->stream() << " == " << (x % 2); 496 } 497 return (x % 2) == 0; 498 } 499 }; 500 501 PolymorphicMatcher<PolymorphicIsEvenImpl> PolymorphicIsEven() { 502 return MakePolymorphicMatcher(PolymorphicIsEvenImpl()); 503 } 504 505 TEST(MakePolymorphicMatcherTest, ConstructsMatcherUsingNewAPI) { 506 // Using PolymorphicIsEven() as a Matcher<int>. 507 const Matcher<int> m1 = PolymorphicIsEven(); 508 EXPECT_TRUE(m1.Matches(42)); 509 EXPECT_FALSE(m1.Matches(43)); 510 EXPECT_EQ("is even", Describe(m1)); 511 512 const Matcher<int> not_m1 = Not(m1); 513 EXPECT_EQ("is odd", Describe(not_m1)); 514 515 EXPECT_EQ("% 2 == 0", Explain(m1, 42)); 516 517 // Using PolymorphicIsEven() as a Matcher<char>. 518 const Matcher<char> m2 = PolymorphicIsEven(); 519 EXPECT_TRUE(m2.Matches('\x42')); 520 EXPECT_FALSE(m2.Matches('\x43')); 521 EXPECT_EQ("is even", Describe(m2)); 522 523 const Matcher<char> not_m2 = Not(m2); 524 EXPECT_EQ("is odd", Describe(not_m2)); 525 526 EXPECT_EQ("% 2 == 0", Explain(m2, '\x42')); 527 } 528 529 // Tests that MatcherCast<T>(m) works when m is a polymorphic matcher. 530 TEST(MatcherCastTest, FromPolymorphicMatcher) { 531 Matcher<int> m = MatcherCast<int>(Eq(5)); 532 EXPECT_TRUE(m.Matches(5)); 533 EXPECT_FALSE(m.Matches(6)); 534 } 535 536 // For testing casting matchers between compatible types. 537 class IntValue { 538 public: 539 // An int can be statically (although not implicitly) cast to a 540 // IntValue. 541 explicit IntValue(int a_value) : value_(a_value) {} 542 543 int value() const { return value_; } 544 private: 545 int value_; 546 }; 547 548 // For testing casting matchers between compatible types. 549 bool IsPositiveIntValue(const IntValue& foo) { 550 return foo.value() > 0; 551 } 552 553 // Tests that MatcherCast<T>(m) works when m is a Matcher<U> where T 554 // can be statically converted to U. 555 TEST(MatcherCastTest, FromCompatibleType) { 556 Matcher<double> m1 = Eq(2.0); 557 Matcher<int> m2 = MatcherCast<int>(m1); 558 EXPECT_TRUE(m2.Matches(2)); 559 EXPECT_FALSE(m2.Matches(3)); 560 561 Matcher<IntValue> m3 = Truly(IsPositiveIntValue); 562 Matcher<int> m4 = MatcherCast<int>(m3); 563 // In the following, the arguments 1 and 0 are statically converted 564 // to IntValue objects, and then tested by the IsPositiveIntValue() 565 // predicate. 566 EXPECT_TRUE(m4.Matches(1)); 567 EXPECT_FALSE(m4.Matches(0)); 568 } 569 570 // Tests that MatcherCast<T>(m) works when m is a Matcher<const T&>. 571 TEST(MatcherCastTest, FromConstReferenceToNonReference) { 572 Matcher<const int&> m1 = Eq(0); 573 Matcher<int> m2 = MatcherCast<int>(m1); 574 EXPECT_TRUE(m2.Matches(0)); 575 EXPECT_FALSE(m2.Matches(1)); 576 } 577 578 // Tests that MatcherCast<T>(m) works when m is a Matcher<T&>. 579 TEST(MatcherCastTest, FromReferenceToNonReference) { 580 Matcher<int&> m1 = Eq(0); 581 Matcher<int> m2 = MatcherCast<int>(m1); 582 EXPECT_TRUE(m2.Matches(0)); 583 EXPECT_FALSE(m2.Matches(1)); 584 } 585 586 // Tests that MatcherCast<const T&>(m) works when m is a Matcher<T>. 587 TEST(MatcherCastTest, FromNonReferenceToConstReference) { 588 Matcher<int> m1 = Eq(0); 589 Matcher<const int&> m2 = MatcherCast<const int&>(m1); 590 EXPECT_TRUE(m2.Matches(0)); 591 EXPECT_FALSE(m2.Matches(1)); 592 } 593 594 // Tests that MatcherCast<T&>(m) works when m is a Matcher<T>. 595 TEST(MatcherCastTest, FromNonReferenceToReference) { 596 Matcher<int> m1 = Eq(0); 597 Matcher<int&> m2 = MatcherCast<int&>(m1); 598 int n = 0; 599 EXPECT_TRUE(m2.Matches(n)); 600 n = 1; 601 EXPECT_FALSE(m2.Matches(n)); 602 } 603 604 // Tests that MatcherCast<T>(m) works when m is a Matcher<T>. 605 TEST(MatcherCastTest, FromSameType) { 606 Matcher<int> m1 = Eq(0); 607 Matcher<int> m2 = MatcherCast<int>(m1); 608 EXPECT_TRUE(m2.Matches(0)); 609 EXPECT_FALSE(m2.Matches(1)); 610 } 611 612 // Implicitly convertible from any type. 613 struct ConvertibleFromAny { 614 ConvertibleFromAny(int a_value) : value(a_value) {} 615 template <typename T> 616 ConvertibleFromAny(const T& /*a_value*/) : value(-1) { 617 ADD_FAILURE() << "Conversion constructor called"; 618 } 619 int value; 620 }; 621 622 bool operator==(const ConvertibleFromAny& a, const ConvertibleFromAny& b) { 623 return a.value == b.value; 624 } 625 626 ostream& operator<<(ostream& os, const ConvertibleFromAny& a) { 627 return os << a.value; 628 } 629 630 TEST(MatcherCastTest, ConversionConstructorIsUsed) { 631 Matcher<ConvertibleFromAny> m = MatcherCast<ConvertibleFromAny>(1); 632 EXPECT_TRUE(m.Matches(ConvertibleFromAny(1))); 633 EXPECT_FALSE(m.Matches(ConvertibleFromAny(2))); 634 } 635 636 TEST(MatcherCastTest, FromConvertibleFromAny) { 637 Matcher<ConvertibleFromAny> m = 638 MatcherCast<ConvertibleFromAny>(Eq(ConvertibleFromAny(1))); 639 EXPECT_TRUE(m.Matches(ConvertibleFromAny(1))); 640 EXPECT_FALSE(m.Matches(ConvertibleFromAny(2))); 641 } 642 643 struct IntReferenceWrapper { 644 IntReferenceWrapper(const int& a_value) : value(&a_value) {} 645 const int* value; 646 }; 647 648 bool operator==(const IntReferenceWrapper& a, const IntReferenceWrapper& b) { 649 return a.value == b.value; 650 } 651 652 TEST(MatcherCastTest, ValueIsNotCopied) { 653 int n = 42; 654 Matcher<IntReferenceWrapper> m = MatcherCast<IntReferenceWrapper>(n); 655 // Verify that the matcher holds a reference to n, not to its temporary copy. 656 EXPECT_TRUE(m.Matches(n)); 657 } 658 659 class Base { 660 public: 661 virtual ~Base() {} 662 Base() {} 663 private: 664 GTEST_DISALLOW_COPY_AND_ASSIGN_(Base); 665 }; 666 667 class Derived : public Base { 668 public: 669 Derived() : Base() {} 670 int i; 671 }; 672 673 class OtherDerived : public Base {}; 674 675 // Tests that SafeMatcherCast<T>(m) works when m is a polymorphic matcher. 676 TEST(SafeMatcherCastTest, FromPolymorphicMatcher) { 677 Matcher<char> m2 = SafeMatcherCast<char>(Eq(32)); 678 EXPECT_TRUE(m2.Matches(' ')); 679 EXPECT_FALSE(m2.Matches('\n')); 680 } 681 682 // Tests that SafeMatcherCast<T>(m) works when m is a Matcher<U> where 683 // T and U are arithmetic types and T can be losslessly converted to 684 // U. 685 TEST(SafeMatcherCastTest, FromLosslesslyConvertibleArithmeticType) { 686 Matcher<double> m1 = DoubleEq(1.0); 687 Matcher<float> m2 = SafeMatcherCast<float>(m1); 688 EXPECT_TRUE(m2.Matches(1.0f)); 689 EXPECT_FALSE(m2.Matches(2.0f)); 690 691 Matcher<char> m3 = SafeMatcherCast<char>(TypedEq<int>('a')); 692 EXPECT_TRUE(m3.Matches('a')); 693 EXPECT_FALSE(m3.Matches('b')); 694 } 695 696 // Tests that SafeMatcherCast<T>(m) works when m is a Matcher<U> where T and U 697 // are pointers or references to a derived and a base class, correspondingly. 698 TEST(SafeMatcherCastTest, FromBaseClass) { 699 Derived d, d2; 700 Matcher<Base*> m1 = Eq(&d); 701 Matcher<Derived*> m2 = SafeMatcherCast<Derived*>(m1); 702 EXPECT_TRUE(m2.Matches(&d)); 703 EXPECT_FALSE(m2.Matches(&d2)); 704 705 Matcher<Base&> m3 = Ref(d); 706 Matcher<Derived&> m4 = SafeMatcherCast<Derived&>(m3); 707 EXPECT_TRUE(m4.Matches(d)); 708 EXPECT_FALSE(m4.Matches(d2)); 709 } 710 711 // Tests that SafeMatcherCast<T&>(m) works when m is a Matcher<const T&>. 712 TEST(SafeMatcherCastTest, FromConstReferenceToReference) { 713 int n = 0; 714 Matcher<const int&> m1 = Ref(n); 715 Matcher<int&> m2 = SafeMatcherCast<int&>(m1); 716 int n1 = 0; 717 EXPECT_TRUE(m2.Matches(n)); 718 EXPECT_FALSE(m2.Matches(n1)); 719 } 720 721 // Tests that MatcherCast<const T&>(m) works when m is a Matcher<T>. 722 TEST(SafeMatcherCastTest, FromNonReferenceToConstReference) { 723 Matcher<int> m1 = Eq(0); 724 Matcher<const int&> m2 = SafeMatcherCast<const int&>(m1); 725 EXPECT_TRUE(m2.Matches(0)); 726 EXPECT_FALSE(m2.Matches(1)); 727 } 728 729 // Tests that SafeMatcherCast<T&>(m) works when m is a Matcher<T>. 730 TEST(SafeMatcherCastTest, FromNonReferenceToReference) { 731 Matcher<int> m1 = Eq(0); 732 Matcher<int&> m2 = SafeMatcherCast<int&>(m1); 733 int n = 0; 734 EXPECT_TRUE(m2.Matches(n)); 735 n = 1; 736 EXPECT_FALSE(m2.Matches(n)); 737 } 738 739 // Tests that SafeMatcherCast<T>(m) works when m is a Matcher<T>. 740 TEST(SafeMatcherCastTest, FromSameType) { 741 Matcher<int> m1 = Eq(0); 742 Matcher<int> m2 = SafeMatcherCast<int>(m1); 743 EXPECT_TRUE(m2.Matches(0)); 744 EXPECT_FALSE(m2.Matches(1)); 745 } 746 747 TEST(SafeMatcherCastTest, ConversionConstructorIsUsed) { 748 Matcher<ConvertibleFromAny> m = SafeMatcherCast<ConvertibleFromAny>(1); 749 EXPECT_TRUE(m.Matches(ConvertibleFromAny(1))); 750 EXPECT_FALSE(m.Matches(ConvertibleFromAny(2))); 751 } 752 753 TEST(SafeMatcherCastTest, FromConvertibleFromAny) { 754 Matcher<ConvertibleFromAny> m = 755 SafeMatcherCast<ConvertibleFromAny>(Eq(ConvertibleFromAny(1))); 756 EXPECT_TRUE(m.Matches(ConvertibleFromAny(1))); 757 EXPECT_FALSE(m.Matches(ConvertibleFromAny(2))); 758 } 759 760 TEST(SafeMatcherCastTest, ValueIsNotCopied) { 761 int n = 42; 762 Matcher<IntReferenceWrapper> m = SafeMatcherCast<IntReferenceWrapper>(n); 763 // Verify that the matcher holds a reference to n, not to its temporary copy. 764 EXPECT_TRUE(m.Matches(n)); 765 } 766 767 TEST(ExpectThat, TakesLiterals) { 768 EXPECT_THAT(1, 1); 769 EXPECT_THAT(1.0, 1.0); 770 EXPECT_THAT(string(), ""); 771 } 772 773 TEST(ExpectThat, TakesFunctions) { 774 struct Helper { 775 static void Func() {} 776 }; 777 void (*func)() = Helper::Func; 778 EXPECT_THAT(func, Helper::Func); 779 EXPECT_THAT(func, &Helper::Func); 780 } 781 782 // Tests that A<T>() matches any value of type T. 783 TEST(ATest, MatchesAnyValue) { 784 // Tests a matcher for a value type. 785 Matcher<double> m1 = A<double>(); 786 EXPECT_TRUE(m1.Matches(91.43)); 787 EXPECT_TRUE(m1.Matches(-15.32)); 788 789 // Tests a matcher for a reference type. 790 int a = 2; 791 int b = -6; 792 Matcher<int&> m2 = A<int&>(); 793 EXPECT_TRUE(m2.Matches(a)); 794 EXPECT_TRUE(m2.Matches(b)); 795 } 796 797 TEST(ATest, WorksForDerivedClass) { 798 Base base; 799 Derived derived; 800 EXPECT_THAT(&base, A<Base*>()); 801 // This shouldn't compile: EXPECT_THAT(&base, A<Derived*>()); 802 EXPECT_THAT(&derived, A<Base*>()); 803 EXPECT_THAT(&derived, A<Derived*>()); 804 } 805 806 // Tests that A<T>() describes itself properly. 807 TEST(ATest, CanDescribeSelf) { 808 EXPECT_EQ("is anything", Describe(A<bool>())); 809 } 810 811 // Tests that An<T>() matches any value of type T. 812 TEST(AnTest, MatchesAnyValue) { 813 // Tests a matcher for a value type. 814 Matcher<int> m1 = An<int>(); 815 EXPECT_TRUE(m1.Matches(9143)); 816 EXPECT_TRUE(m1.Matches(-1532)); 817 818 // Tests a matcher for a reference type. 819 int a = 2; 820 int b = -6; 821 Matcher<int&> m2 = An<int&>(); 822 EXPECT_TRUE(m2.Matches(a)); 823 EXPECT_TRUE(m2.Matches(b)); 824 } 825 826 // Tests that An<T>() describes itself properly. 827 TEST(AnTest, CanDescribeSelf) { 828 EXPECT_EQ("is anything", Describe(An<int>())); 829 } 830 831 // Tests that _ can be used as a matcher for any type and matches any 832 // value of that type. 833 TEST(UnderscoreTest, MatchesAnyValue) { 834 // Uses _ as a matcher for a value type. 835 Matcher<int> m1 = _; 836 EXPECT_TRUE(m1.Matches(123)); 837 EXPECT_TRUE(m1.Matches(-242)); 838 839 // Uses _ as a matcher for a reference type. 840 bool a = false; 841 const bool b = true; 842 Matcher<const bool&> m2 = _; 843 EXPECT_TRUE(m2.Matches(a)); 844 EXPECT_TRUE(m2.Matches(b)); 845 } 846 847 // Tests that _ describes itself properly. 848 TEST(UnderscoreTest, CanDescribeSelf) { 849 Matcher<int> m = _; 850 EXPECT_EQ("is anything", Describe(m)); 851 } 852 853 // Tests that Eq(x) matches any value equal to x. 854 TEST(EqTest, MatchesEqualValue) { 855 // 2 C-strings with same content but different addresses. 856 const char a1[] = "hi"; 857 const char a2[] = "hi"; 858 859 Matcher<const char*> m1 = Eq(a1); 860 EXPECT_TRUE(m1.Matches(a1)); 861 EXPECT_FALSE(m1.Matches(a2)); 862 } 863 864 // Tests that Eq(v) describes itself properly. 865 866 class Unprintable { 867 public: 868 Unprintable() : c_('a') {} 869 870 bool operator==(const Unprintable& /* rhs */) { return true; } 871 private: 872 char c_; 873 }; 874 875 TEST(EqTest, CanDescribeSelf) { 876 Matcher<Unprintable> m = Eq(Unprintable()); 877 EXPECT_EQ("is equal to 1-byte object <61>", Describe(m)); 878 } 879 880 // Tests that Eq(v) can be used to match any type that supports 881 // comparing with type T, where T is v's type. 882 TEST(EqTest, IsPolymorphic) { 883 Matcher<int> m1 = Eq(1); 884 EXPECT_TRUE(m1.Matches(1)); 885 EXPECT_FALSE(m1.Matches(2)); 886 887 Matcher<char> m2 = Eq(1); 888 EXPECT_TRUE(m2.Matches('\1')); 889 EXPECT_FALSE(m2.Matches('a')); 890 } 891 892 // Tests that TypedEq<T>(v) matches values of type T that's equal to v. 893 TEST(TypedEqTest, ChecksEqualityForGivenType) { 894 Matcher<char> m1 = TypedEq<char>('a'); 895 EXPECT_TRUE(m1.Matches('a')); 896 EXPECT_FALSE(m1.Matches('b')); 897 898 Matcher<int> m2 = TypedEq<int>(6); 899 EXPECT_TRUE(m2.Matches(6)); 900 EXPECT_FALSE(m2.Matches(7)); 901 } 902 903 // Tests that TypedEq(v) describes itself properly. 904 TEST(TypedEqTest, CanDescribeSelf) { 905 EXPECT_EQ("is equal to 2", Describe(TypedEq<int>(2))); 906 } 907 908 // Tests that TypedEq<T>(v) has type Matcher<T>. 909 910 // Type<T>::IsTypeOf(v) compiles iff the type of value v is T, where T 911 // is a "bare" type (i.e. not in the form of const U or U&). If v's 912 // type is not T, the compiler will generate a message about 913 // "undefined referece". 914 template <typename T> 915 struct Type { 916 static bool IsTypeOf(const T& /* v */) { return true; } 917 918 template <typename T2> 919 static void IsTypeOf(T2 v); 920 }; 921 922 TEST(TypedEqTest, HasSpecifiedType) { 923 // Verfies that the type of TypedEq<T>(v) is Matcher<T>. 924 Type<Matcher<int> >::IsTypeOf(TypedEq<int>(5)); 925 Type<Matcher<double> >::IsTypeOf(TypedEq<double>(5)); 926 } 927 928 // Tests that Ge(v) matches anything >= v. 929 TEST(GeTest, ImplementsGreaterThanOrEqual) { 930 Matcher<int> m1 = Ge(0); 931 EXPECT_TRUE(m1.Matches(1)); 932 EXPECT_TRUE(m1.Matches(0)); 933 EXPECT_FALSE(m1.Matches(-1)); 934 } 935 936 // Tests that Ge(v) describes itself properly. 937 TEST(GeTest, CanDescribeSelf) { 938 Matcher<int> m = Ge(5); 939 EXPECT_EQ("is >= 5", Describe(m)); 940 } 941 942 // Tests that Gt(v) matches anything > v. 943 TEST(GtTest, ImplementsGreaterThan) { 944 Matcher<double> m1 = Gt(0); 945 EXPECT_TRUE(m1.Matches(1.0)); 946 EXPECT_FALSE(m1.Matches(0.0)); 947 EXPECT_FALSE(m1.Matches(-1.0)); 948 } 949 950 // Tests that Gt(v) describes itself properly. 951 TEST(GtTest, CanDescribeSelf) { 952 Matcher<int> m = Gt(5); 953 EXPECT_EQ("is > 5", Describe(m)); 954 } 955 956 // Tests that Le(v) matches anything <= v. 957 TEST(LeTest, ImplementsLessThanOrEqual) { 958 Matcher<char> m1 = Le('b'); 959 EXPECT_TRUE(m1.Matches('a')); 960 EXPECT_TRUE(m1.Matches('b')); 961 EXPECT_FALSE(m1.Matches('c')); 962 } 963 964 // Tests that Le(v) describes itself properly. 965 TEST(LeTest, CanDescribeSelf) { 966 Matcher<int> m = Le(5); 967 EXPECT_EQ("is <= 5", Describe(m)); 968 } 969 970 // Tests that Lt(v) matches anything < v. 971 TEST(LtTest, ImplementsLessThan) { 972 Matcher<const string&> m1 = Lt("Hello"); 973 EXPECT_TRUE(m1.Matches("Abc")); 974 EXPECT_FALSE(m1.Matches("Hello")); 975 EXPECT_FALSE(m1.Matches("Hello, world!")); 976 } 977 978 // Tests that Lt(v) describes itself properly. 979 TEST(LtTest, CanDescribeSelf) { 980 Matcher<int> m = Lt(5); 981 EXPECT_EQ("is < 5", Describe(m)); 982 } 983 984 // Tests that Ne(v) matches anything != v. 985 TEST(NeTest, ImplementsNotEqual) { 986 Matcher<int> m1 = Ne(0); 987 EXPECT_TRUE(m1.Matches(1)); 988 EXPECT_TRUE(m1.Matches(-1)); 989 EXPECT_FALSE(m1.Matches(0)); 990 } 991 992 // Tests that Ne(v) describes itself properly. 993 TEST(NeTest, CanDescribeSelf) { 994 Matcher<int> m = Ne(5); 995 EXPECT_EQ("isn't equal to 5", Describe(m)); 996 } 997 998 // Tests that IsNull() matches any NULL pointer of any type. 999 TEST(IsNullTest, MatchesNullPointer) { 1000 Matcher<int*> m1 = IsNull(); 1001 int* p1 = NULL; 1002 int n = 0; 1003 EXPECT_TRUE(m1.Matches(p1)); 1004 EXPECT_FALSE(m1.Matches(&n)); 1005 1006 Matcher<const char*> m2 = IsNull(); 1007 const char* p2 = NULL; 1008 EXPECT_TRUE(m2.Matches(p2)); 1009 EXPECT_FALSE(m2.Matches("hi")); 1010 1011 #if !GTEST_OS_SYMBIAN 1012 // Nokia's Symbian compiler generates: 1013 // gmock-matchers.h: ambiguous access to overloaded function 1014 // gmock-matchers.h: 'testing::Matcher<void *>::Matcher(void *)' 1015 // gmock-matchers.h: 'testing::Matcher<void *>::Matcher(const testing:: 1016 // MatcherInterface<void *> *)' 1017 // gmock-matchers.h: (point of instantiation: 'testing:: 1018 // gmock_matchers_test::IsNullTest_MatchesNullPointer_Test::TestBody()') 1019 // gmock-matchers.h: (instantiating: 'testing::PolymorphicMatc 1020 Matcher<void*> m3 = IsNull(); 1021 void* p3 = NULL; 1022 EXPECT_TRUE(m3.Matches(p3)); 1023 EXPECT_FALSE(m3.Matches(reinterpret_cast<void*>(0xbeef))); 1024 #endif 1025 } 1026 1027 TEST(IsNullTest, LinkedPtr) { 1028 const Matcher<linked_ptr<int> > m = IsNull(); 1029 const linked_ptr<int> null_p; 1030 const linked_ptr<int> non_null_p(new int); 1031 1032 EXPECT_TRUE(m.Matches(null_p)); 1033 EXPECT_FALSE(m.Matches(non_null_p)); 1034 } 1035 1036 TEST(IsNullTest, ReferenceToConstLinkedPtr) { 1037 const Matcher<const linked_ptr<double>&> m = IsNull(); 1038 const linked_ptr<double> null_p; 1039 const linked_ptr<double> non_null_p(new double); 1040 1041 EXPECT_TRUE(m.Matches(null_p)); 1042 EXPECT_FALSE(m.Matches(non_null_p)); 1043 } 1044 1045 #if GTEST_LANG_CXX11 1046 TEST(IsNullTest, StdFunction) { 1047 const Matcher<std::function<void()>> m = IsNull(); 1048 1049 EXPECT_TRUE(m.Matches(std::function<void()>())); 1050 EXPECT_FALSE(m.Matches([]{})); 1051 } 1052 #endif // GTEST_LANG_CXX11 1053 1054 // Tests that IsNull() describes itself properly. 1055 TEST(IsNullTest, CanDescribeSelf) { 1056 Matcher<int*> m = IsNull(); 1057 EXPECT_EQ("is NULL", Describe(m)); 1058 EXPECT_EQ("isn't NULL", DescribeNegation(m)); 1059 } 1060 1061 // Tests that NotNull() matches any non-NULL pointer of any type. 1062 TEST(NotNullTest, MatchesNonNullPointer) { 1063 Matcher<int*> m1 = NotNull(); 1064 int* p1 = NULL; 1065 int n = 0; 1066 EXPECT_FALSE(m1.Matches(p1)); 1067 EXPECT_TRUE(m1.Matches(&n)); 1068 1069 Matcher<const char*> m2 = NotNull(); 1070 const char* p2 = NULL; 1071 EXPECT_FALSE(m2.Matches(p2)); 1072 EXPECT_TRUE(m2.Matches("hi")); 1073 } 1074 1075 TEST(NotNullTest, LinkedPtr) { 1076 const Matcher<linked_ptr<int> > m = NotNull(); 1077 const linked_ptr<int> null_p; 1078 const linked_ptr<int> non_null_p(new int); 1079 1080 EXPECT_FALSE(m.Matches(null_p)); 1081 EXPECT_TRUE(m.Matches(non_null_p)); 1082 } 1083 1084 TEST(NotNullTest, ReferenceToConstLinkedPtr) { 1085 const Matcher<const linked_ptr<double>&> m = NotNull(); 1086 const linked_ptr<double> null_p; 1087 const linked_ptr<double> non_null_p(new double); 1088 1089 EXPECT_FALSE(m.Matches(null_p)); 1090 EXPECT_TRUE(m.Matches(non_null_p)); 1091 } 1092 1093 #if GTEST_LANG_CXX11 1094 TEST(NotNullTest, StdFunction) { 1095 const Matcher<std::function<void()>> m = NotNull(); 1096 1097 EXPECT_TRUE(m.Matches([]{})); 1098 EXPECT_FALSE(m.Matches(std::function<void()>())); 1099 } 1100 #endif // GTEST_LANG_CXX11 1101 1102 // Tests that NotNull() describes itself properly. 1103 TEST(NotNullTest, CanDescribeSelf) { 1104 Matcher<int*> m = NotNull(); 1105 EXPECT_EQ("isn't NULL", Describe(m)); 1106 } 1107 1108 // Tests that Ref(variable) matches an argument that references 1109 // 'variable'. 1110 TEST(RefTest, MatchesSameVariable) { 1111 int a = 0; 1112 int b = 0; 1113 Matcher<int&> m = Ref(a); 1114 EXPECT_TRUE(m.Matches(a)); 1115 EXPECT_FALSE(m.Matches(b)); 1116 } 1117 1118 // Tests that Ref(variable) describes itself properly. 1119 TEST(RefTest, CanDescribeSelf) { 1120 int n = 5; 1121 Matcher<int&> m = Ref(n); 1122 stringstream ss; 1123 ss << "references the variable @" << &n << " 5"; 1124 EXPECT_EQ(string(ss.str()), Describe(m)); 1125 } 1126 1127 // Test that Ref(non_const_varialbe) can be used as a matcher for a 1128 // const reference. 1129 TEST(RefTest, CanBeUsedAsMatcherForConstReference) { 1130 int a = 0; 1131 int b = 0; 1132 Matcher<const int&> m = Ref(a); 1133 EXPECT_TRUE(m.Matches(a)); 1134 EXPECT_FALSE(m.Matches(b)); 1135 } 1136 1137 // Tests that Ref(variable) is covariant, i.e. Ref(derived) can be 1138 // used wherever Ref(base) can be used (Ref(derived) is a sub-type 1139 // of Ref(base), but not vice versa. 1140 1141 TEST(RefTest, IsCovariant) { 1142 Base base, base2; 1143 Derived derived; 1144 Matcher<const Base&> m1 = Ref(base); 1145 EXPECT_TRUE(m1.Matches(base)); 1146 EXPECT_FALSE(m1.Matches(base2)); 1147 EXPECT_FALSE(m1.Matches(derived)); 1148 1149 m1 = Ref(derived); 1150 EXPECT_TRUE(m1.Matches(derived)); 1151 EXPECT_FALSE(m1.Matches(base)); 1152 EXPECT_FALSE(m1.Matches(base2)); 1153 } 1154 1155 TEST(RefTest, ExplainsResult) { 1156 int n = 0; 1157 EXPECT_THAT(Explain(Matcher<const int&>(Ref(n)), n), 1158 StartsWith("which is located @")); 1159 1160 int m = 0; 1161 EXPECT_THAT(Explain(Matcher<const int&>(Ref(n)), m), 1162 StartsWith("which is located @")); 1163 } 1164 1165 // Tests string comparison matchers. 1166 1167 TEST(StrEqTest, MatchesEqualString) { 1168 Matcher<const char*> m = StrEq(string("Hello")); 1169 EXPECT_TRUE(m.Matches("Hello")); 1170 EXPECT_FALSE(m.Matches("hello")); 1171 EXPECT_FALSE(m.Matches(NULL)); 1172 1173 Matcher<const string&> m2 = StrEq("Hello"); 1174 EXPECT_TRUE(m2.Matches("Hello")); 1175 EXPECT_FALSE(m2.Matches("Hi")); 1176 } 1177 1178 TEST(StrEqTest, CanDescribeSelf) { 1179 Matcher<string> m = StrEq("Hi-\'\"?\\\a\b\f\n\r\t\v\xD3"); 1180 EXPECT_EQ("is equal to \"Hi-\'\\\"?\\\\\\a\\b\\f\\n\\r\\t\\v\\xD3\"", 1181 Describe(m)); 1182 1183 string str("01204500800"); 1184 str[3] = '\0'; 1185 Matcher<string> m2 = StrEq(str); 1186 EXPECT_EQ("is equal to \"012\\04500800\"", Describe(m2)); 1187 str[0] = str[6] = str[7] = str[9] = str[10] = '\0'; 1188 Matcher<string> m3 = StrEq(str); 1189 EXPECT_EQ("is equal to \"\\012\\045\\0\\08\\0\\0\"", Describe(m3)); 1190 } 1191 1192 TEST(StrNeTest, MatchesUnequalString) { 1193 Matcher<const char*> m = StrNe("Hello"); 1194 EXPECT_TRUE(m.Matches("")); 1195 EXPECT_TRUE(m.Matches(NULL)); 1196 EXPECT_FALSE(m.Matches("Hello")); 1197 1198 Matcher<string> m2 = StrNe(string("Hello")); 1199 EXPECT_TRUE(m2.Matches("hello")); 1200 EXPECT_FALSE(m2.Matches("Hello")); 1201 } 1202 1203 TEST(StrNeTest, CanDescribeSelf) { 1204 Matcher<const char*> m = StrNe("Hi"); 1205 EXPECT_EQ("isn't equal to \"Hi\"", Describe(m)); 1206 } 1207 1208 TEST(StrCaseEqTest, MatchesEqualStringIgnoringCase) { 1209 Matcher<const char*> m = StrCaseEq(string("Hello")); 1210 EXPECT_TRUE(m.Matches("Hello")); 1211 EXPECT_TRUE(m.Matches("hello")); 1212 EXPECT_FALSE(m.Matches("Hi")); 1213 EXPECT_FALSE(m.Matches(NULL)); 1214 1215 Matcher<const string&> m2 = StrCaseEq("Hello"); 1216 EXPECT_TRUE(m2.Matches("hello")); 1217 EXPECT_FALSE(m2.Matches("Hi")); 1218 } 1219 1220 TEST(StrCaseEqTest, MatchesEqualStringWith0IgnoringCase) { 1221 string str1("oabocdooeoo"); 1222 string str2("OABOCDOOEOO"); 1223 Matcher<const string&> m0 = StrCaseEq(str1); 1224 EXPECT_FALSE(m0.Matches(str2 + string(1, '\0'))); 1225 1226 str1[3] = str2[3] = '\0'; 1227 Matcher<const string&> m1 = StrCaseEq(str1); 1228 EXPECT_TRUE(m1.Matches(str2)); 1229 1230 str1[0] = str1[6] = str1[7] = str1[10] = '\0'; 1231 str2[0] = str2[6] = str2[7] = str2[10] = '\0'; 1232 Matcher<const string&> m2 = StrCaseEq(str1); 1233 str1[9] = str2[9] = '\0'; 1234 EXPECT_FALSE(m2.Matches(str2)); 1235 1236 Matcher<const string&> m3 = StrCaseEq(str1); 1237 EXPECT_TRUE(m3.Matches(str2)); 1238 1239 EXPECT_FALSE(m3.Matches(str2 + "x")); 1240 str2.append(1, '\0'); 1241 EXPECT_FALSE(m3.Matches(str2)); 1242 EXPECT_FALSE(m3.Matches(string(str2, 0, 9))); 1243 } 1244 1245 TEST(StrCaseEqTest, CanDescribeSelf) { 1246 Matcher<string> m = StrCaseEq("Hi"); 1247 EXPECT_EQ("is equal to (ignoring case) \"Hi\"", Describe(m)); 1248 } 1249 1250 TEST(StrCaseNeTest, MatchesUnequalStringIgnoringCase) { 1251 Matcher<const char*> m = StrCaseNe("Hello"); 1252 EXPECT_TRUE(m.Matches("Hi")); 1253 EXPECT_TRUE(m.Matches(NULL)); 1254 EXPECT_FALSE(m.Matches("Hello")); 1255 EXPECT_FALSE(m.Matches("hello")); 1256 1257 Matcher<string> m2 = StrCaseNe(string("Hello")); 1258 EXPECT_TRUE(m2.Matches("")); 1259 EXPECT_FALSE(m2.Matches("Hello")); 1260 } 1261 1262 TEST(StrCaseNeTest, CanDescribeSelf) { 1263 Matcher<const char*> m = StrCaseNe("Hi"); 1264 EXPECT_EQ("isn't equal to (ignoring case) \"Hi\"", Describe(m)); 1265 } 1266 1267 // Tests that HasSubstr() works for matching string-typed values. 1268 TEST(HasSubstrTest, WorksForStringClasses) { 1269 const Matcher<string> m1 = HasSubstr("foo"); 1270 EXPECT_TRUE(m1.Matches(string("I love food."))); 1271 EXPECT_FALSE(m1.Matches(string("tofo"))); 1272 1273 const Matcher<const std::string&> m2 = HasSubstr("foo"); 1274 EXPECT_TRUE(m2.Matches(std::string("I love food."))); 1275 EXPECT_FALSE(m2.Matches(std::string("tofo"))); 1276 } 1277 1278 // Tests that HasSubstr() works for matching C-string-typed values. 1279 TEST(HasSubstrTest, WorksForCStrings) { 1280 const Matcher<char*> m1 = HasSubstr("foo"); 1281 EXPECT_TRUE(m1.Matches(const_cast<char*>("I love food."))); 1282 EXPECT_FALSE(m1.Matches(const_cast<char*>("tofo"))); 1283 EXPECT_FALSE(m1.Matches(NULL)); 1284 1285 const Matcher<const char*> m2 = HasSubstr("foo"); 1286 EXPECT_TRUE(m2.Matches("I love food.")); 1287 EXPECT_FALSE(m2.Matches("tofo")); 1288 EXPECT_FALSE(m2.Matches(NULL)); 1289 } 1290 1291 // Tests that HasSubstr(s) describes itself properly. 1292 TEST(HasSubstrTest, CanDescribeSelf) { 1293 Matcher<string> m = HasSubstr("foo\n\""); 1294 EXPECT_EQ("has substring \"foo\\n\\\"\"", Describe(m)); 1295 } 1296 1297 TEST(KeyTest, CanDescribeSelf) { 1298 Matcher<const pair<std::string, int>&> m = Key("foo"); 1299 EXPECT_EQ("has a key that is equal to \"foo\"", Describe(m)); 1300 EXPECT_EQ("doesn't have a key that is equal to \"foo\"", DescribeNegation(m)); 1301 } 1302 1303 TEST(KeyTest, ExplainsResult) { 1304 Matcher<pair<int, bool> > m = Key(GreaterThan(10)); 1305 EXPECT_EQ("whose first field is a value which is 5 less than 10", 1306 Explain(m, make_pair(5, true))); 1307 EXPECT_EQ("whose first field is a value which is 5 more than 10", 1308 Explain(m, make_pair(15, true))); 1309 } 1310 1311 TEST(KeyTest, MatchesCorrectly) { 1312 pair<int, std::string> p(25, "foo"); 1313 EXPECT_THAT(p, Key(25)); 1314 EXPECT_THAT(p, Not(Key(42))); 1315 EXPECT_THAT(p, Key(Ge(20))); 1316 EXPECT_THAT(p, Not(Key(Lt(25)))); 1317 } 1318 1319 TEST(KeyTest, SafelyCastsInnerMatcher) { 1320 Matcher<int> is_positive = Gt(0); 1321 Matcher<int> is_negative = Lt(0); 1322 pair<char, bool> p('a', true); 1323 EXPECT_THAT(p, Key(is_positive)); 1324 EXPECT_THAT(p, Not(Key(is_negative))); 1325 } 1326 1327 TEST(KeyTest, InsideContainsUsingMap) { 1328 map<int, char> container; 1329 container.insert(make_pair(1, 'a')); 1330 container.insert(make_pair(2, 'b')); 1331 container.insert(make_pair(4, 'c')); 1332 EXPECT_THAT(container, Contains(Key(1))); 1333 EXPECT_THAT(container, Not(Contains(Key(3)))); 1334 } 1335 1336 TEST(KeyTest, InsideContainsUsingMultimap) { 1337 multimap<int, char> container; 1338 container.insert(make_pair(1, 'a')); 1339 container.insert(make_pair(2, 'b')); 1340 container.insert(make_pair(4, 'c')); 1341 1342 EXPECT_THAT(container, Not(Contains(Key(25)))); 1343 container.insert(make_pair(25, 'd')); 1344 EXPECT_THAT(container, Contains(Key(25))); 1345 container.insert(make_pair(25, 'e')); 1346 EXPECT_THAT(container, Contains(Key(25))); 1347 1348 EXPECT_THAT(container, Contains(Key(1))); 1349 EXPECT_THAT(container, Not(Contains(Key(3)))); 1350 } 1351 1352 TEST(PairTest, Typing) { 1353 // Test verifies the following type conversions can be compiled. 1354 Matcher<const pair<const char*, int>&> m1 = Pair("foo", 42); 1355 Matcher<const pair<const char*, int> > m2 = Pair("foo", 42); 1356 Matcher<pair<const char*, int> > m3 = Pair("foo", 42); 1357 1358 Matcher<pair<int, const std::string> > m4 = Pair(25, "42"); 1359 Matcher<pair<const std::string, int> > m5 = Pair("25", 42); 1360 } 1361 1362 TEST(PairTest, CanDescribeSelf) { 1363 Matcher<const pair<std::string, int>&> m1 = Pair("foo", 42); 1364 EXPECT_EQ("has a first field that is equal to \"foo\"" 1365 ", and has a second field that is equal to 42", 1366 Describe(m1)); 1367 EXPECT_EQ("has a first field that isn't equal to \"foo\"" 1368 ", or has a second field that isn't equal to 42", 1369 DescribeNegation(m1)); 1370 // Double and triple negation (1 or 2 times not and description of negation). 1371 Matcher<const pair<int, int>&> m2 = Not(Pair(Not(13), 42)); 1372 EXPECT_EQ("has a first field that isn't equal to 13" 1373 ", and has a second field that is equal to 42", 1374 DescribeNegation(m2)); 1375 } 1376 1377 TEST(PairTest, CanExplainMatchResultTo) { 1378 // If neither field matches, Pair() should explain about the first 1379 // field. 1380 const Matcher<pair<int, int> > m = Pair(GreaterThan(0), GreaterThan(0)); 1381 EXPECT_EQ("whose first field does not match, which is 1 less than 0", 1382 Explain(m, make_pair(-1, -2))); 1383 1384 // If the first field matches but the second doesn't, Pair() should 1385 // explain about the second field. 1386 EXPECT_EQ("whose second field does not match, which is 2 less than 0", 1387 Explain(m, make_pair(1, -2))); 1388 1389 // If the first field doesn't match but the second does, Pair() 1390 // should explain about the first field. 1391 EXPECT_EQ("whose first field does not match, which is 1 less than 0", 1392 Explain(m, make_pair(-1, 2))); 1393 1394 // If both fields match, Pair() should explain about them both. 1395 EXPECT_EQ("whose both fields match, where the first field is a value " 1396 "which is 1 more than 0, and the second field is a value " 1397 "which is 2 more than 0", 1398 Explain(m, make_pair(1, 2))); 1399 1400 // If only the first match has an explanation, only this explanation should 1401 // be printed. 1402 const Matcher<pair<int, int> > explain_first = Pair(GreaterThan(0), 0); 1403 EXPECT_EQ("whose both fields match, where the first field is a value " 1404 "which is 1 more than 0", 1405 Explain(explain_first, make_pair(1, 0))); 1406 1407 // If only the second match has an explanation, only this explanation should 1408 // be printed. 1409 const Matcher<pair<int, int> > explain_second = Pair(0, GreaterThan(0)); 1410 EXPECT_EQ("whose both fields match, where the second field is a value " 1411 "which is 1 more than 0", 1412 Explain(explain_second, make_pair(0, 1))); 1413 } 1414 1415 TEST(PairTest, MatchesCorrectly) { 1416 pair<int, std::string> p(25, "foo"); 1417 1418 // Both fields match. 1419 EXPECT_THAT(p, Pair(25, "foo")); 1420 EXPECT_THAT(p, Pair(Ge(20), HasSubstr("o"))); 1421 1422 // 'first' doesnt' match, but 'second' matches. 1423 EXPECT_THAT(p, Not(Pair(42, "foo"))); 1424 EXPECT_THAT(p, Not(Pair(Lt(25), "foo"))); 1425 1426 // 'first' matches, but 'second' doesn't match. 1427 EXPECT_THAT(p, Not(Pair(25, "bar"))); 1428 EXPECT_THAT(p, Not(Pair(25, Not("foo")))); 1429 1430 // Neither field matches. 1431 EXPECT_THAT(p, Not(Pair(13, "bar"))); 1432 EXPECT_THAT(p, Not(Pair(Lt(13), HasSubstr("a")))); 1433 } 1434 1435 TEST(PairTest, SafelyCastsInnerMatchers) { 1436 Matcher<int> is_positive = Gt(0); 1437 Matcher<int> is_negative = Lt(0); 1438 pair<char, bool> p('a', true); 1439 EXPECT_THAT(p, Pair(is_positive, _)); 1440 EXPECT_THAT(p, Not(Pair(is_negative, _))); 1441 EXPECT_THAT(p, Pair(_, is_positive)); 1442 EXPECT_THAT(p, Not(Pair(_, is_negative))); 1443 } 1444 1445 TEST(PairTest, InsideContainsUsingMap) { 1446 map<int, char> container; 1447 container.insert(make_pair(1, 'a')); 1448 container.insert(make_pair(2, 'b')); 1449 container.insert(make_pair(4, 'c')); 1450 EXPECT_THAT(container, Contains(Pair(1, 'a'))); 1451 EXPECT_THAT(container, Contains(Pair(1, _))); 1452 EXPECT_THAT(container, Contains(Pair(_, 'a'))); 1453 EXPECT_THAT(container, Not(Contains(Pair(3, _)))); 1454 } 1455 1456 // Tests StartsWith(s). 1457 1458 TEST(StartsWithTest, MatchesStringWithGivenPrefix) { 1459 const Matcher<const char*> m1 = StartsWith(string("")); 1460 EXPECT_TRUE(m1.Matches("Hi")); 1461 EXPECT_TRUE(m1.Matches("")); 1462 EXPECT_FALSE(m1.Matches(NULL)); 1463 1464 const Matcher<const string&> m2 = StartsWith("Hi"); 1465 EXPECT_TRUE(m2.Matches("Hi")); 1466 EXPECT_TRUE(m2.Matches("Hi Hi!")); 1467 EXPECT_TRUE(m2.Matches("High")); 1468 EXPECT_FALSE(m2.Matches("H")); 1469 EXPECT_FALSE(m2.Matches(" Hi")); 1470 } 1471 1472 TEST(StartsWithTest, CanDescribeSelf) { 1473 Matcher<const std::string> m = StartsWith("Hi"); 1474 EXPECT_EQ("starts with \"Hi\"", Describe(m)); 1475 } 1476 1477 // Tests EndsWith(s). 1478 1479 TEST(EndsWithTest, MatchesStringWithGivenSuffix) { 1480 const Matcher<const char*> m1 = EndsWith(""); 1481 EXPECT_TRUE(m1.Matches("Hi")); 1482 EXPECT_TRUE(m1.Matches("")); 1483 EXPECT_FALSE(m1.Matches(NULL)); 1484 1485 const Matcher<const string&> m2 = EndsWith(string("Hi")); 1486 EXPECT_TRUE(m2.Matches("Hi")); 1487 EXPECT_TRUE(m2.Matches("Wow Hi Hi")); 1488 EXPECT_TRUE(m2.Matches("Super Hi")); 1489 EXPECT_FALSE(m2.Matches("i")); 1490 EXPECT_FALSE(m2.Matches("Hi ")); 1491 } 1492 1493 TEST(EndsWithTest, CanDescribeSelf) { 1494 Matcher<const std::string> m = EndsWith("Hi"); 1495 EXPECT_EQ("ends with \"Hi\"", Describe(m)); 1496 } 1497 1498 // Tests MatchesRegex(). 1499 1500 TEST(MatchesRegexTest, MatchesStringMatchingGivenRegex) { 1501 const Matcher<const char*> m1 = MatchesRegex("a.*z"); 1502 EXPECT_TRUE(m1.Matches("az")); 1503 EXPECT_TRUE(m1.Matches("abcz")); 1504 EXPECT_FALSE(m1.Matches(NULL)); 1505 1506 const Matcher<const string&> m2 = MatchesRegex(new RE("a.*z")); 1507 EXPECT_TRUE(m2.Matches("azbz")); 1508 EXPECT_FALSE(m2.Matches("az1")); 1509 EXPECT_FALSE(m2.Matches("1az")); 1510 } 1511 1512 TEST(MatchesRegexTest, CanDescribeSelf) { 1513 Matcher<const std::string> m1 = MatchesRegex(string("Hi.*")); 1514 EXPECT_EQ("matches regular expression \"Hi.*\"", Describe(m1)); 1515 1516 Matcher<const char*> m2 = MatchesRegex(new RE("a.*")); 1517 EXPECT_EQ("matches regular expression \"a.*\"", Describe(m2)); 1518 } 1519 1520 // Tests ContainsRegex(). 1521 1522 TEST(ContainsRegexTest, MatchesStringContainingGivenRegex) { 1523 const Matcher<const char*> m1 = ContainsRegex(string("a.*z")); 1524 EXPECT_TRUE(m1.Matches("az")); 1525 EXPECT_TRUE(m1.Matches("0abcz1")); 1526 EXPECT_FALSE(m1.Matches(NULL)); 1527 1528 const Matcher<const string&> m2 = ContainsRegex(new RE("a.*z")); 1529 EXPECT_TRUE(m2.Matches("azbz")); 1530 EXPECT_TRUE(m2.Matches("az1")); 1531 EXPECT_FALSE(m2.Matches("1a")); 1532 } 1533 1534 TEST(ContainsRegexTest, CanDescribeSelf) { 1535 Matcher<const std::string> m1 = ContainsRegex("Hi.*"); 1536 EXPECT_EQ("contains regular expression \"Hi.*\"", Describe(m1)); 1537 1538 Matcher<const char*> m2 = ContainsRegex(new RE("a.*")); 1539 EXPECT_EQ("contains regular expression \"a.*\"", Describe(m2)); 1540 } 1541 1542 // Tests for wide strings. 1543 #if GTEST_HAS_STD_WSTRING 1544 TEST(StdWideStrEqTest, MatchesEqual) { 1545 Matcher<const wchar_t*> m = StrEq(::std::wstring(L"Hello")); 1546 EXPECT_TRUE(m.Matches(L"Hello")); 1547 EXPECT_FALSE(m.Matches(L"hello")); 1548 EXPECT_FALSE(m.Matches(NULL)); 1549 1550 Matcher<const ::std::wstring&> m2 = StrEq(L"Hello"); 1551 EXPECT_TRUE(m2.Matches(L"Hello")); 1552 EXPECT_FALSE(m2.Matches(L"Hi")); 1553 1554 Matcher<const ::std::wstring&> m3 = StrEq(L"\xD3\x576\x8D3\xC74D"); 1555 EXPECT_TRUE(m3.Matches(L"\xD3\x576\x8D3\xC74D")); 1556 EXPECT_FALSE(m3.Matches(L"\xD3\x576\x8D3\xC74E")); 1557 1558 ::std::wstring str(L"01204500800"); 1559 str[3] = L'\0'; 1560 Matcher<const ::std::wstring&> m4 = StrEq(str); 1561 EXPECT_TRUE(m4.Matches(str)); 1562 str[0] = str[6] = str[7] = str[9] = str[10] = L'\0'; 1563 Matcher<const ::std::wstring&> m5 = StrEq(str); 1564 EXPECT_TRUE(m5.Matches(str)); 1565 } 1566 1567 TEST(StdWideStrEqTest, CanDescribeSelf) { 1568 Matcher< ::std::wstring> m = StrEq(L"Hi-\'\"?\\\a\b\f\n\r\t\v"); 1569 EXPECT_EQ("is equal to L\"Hi-\'\\\"?\\\\\\a\\b\\f\\n\\r\\t\\v\"", 1570 Describe(m)); 1571 1572 Matcher< ::std::wstring> m2 = StrEq(L"\xD3\x576\x8D3\xC74D"); 1573 EXPECT_EQ("is equal to L\"\\xD3\\x576\\x8D3\\xC74D\"", 1574 Describe(m2)); 1575 1576 ::std::wstring str(L"01204500800"); 1577 str[3] = L'\0'; 1578 Matcher<const ::std::wstring&> m4 = StrEq(str); 1579 EXPECT_EQ("is equal to L\"012\\04500800\"", Describe(m4)); 1580 str[0] = str[6] = str[7] = str[9] = str[10] = L'\0'; 1581 Matcher<const ::std::wstring&> m5 = StrEq(str); 1582 EXPECT_EQ("is equal to L\"\\012\\045\\0\\08\\0\\0\"", Describe(m5)); 1583 } 1584 1585 TEST(StdWideStrNeTest, MatchesUnequalString) { 1586 Matcher<const wchar_t*> m = StrNe(L"Hello"); 1587 EXPECT_TRUE(m.Matches(L"")); 1588 EXPECT_TRUE(m.Matches(NULL)); 1589 EXPECT_FALSE(m.Matches(L"Hello")); 1590 1591 Matcher< ::std::wstring> m2 = StrNe(::std::wstring(L"Hello")); 1592 EXPECT_TRUE(m2.Matches(L"hello")); 1593 EXPECT_FALSE(m2.Matches(L"Hello")); 1594 } 1595 1596 TEST(StdWideStrNeTest, CanDescribeSelf) { 1597 Matcher<const wchar_t*> m = StrNe(L"Hi"); 1598 EXPECT_EQ("isn't equal to L\"Hi\"", Describe(m)); 1599 } 1600 1601 TEST(StdWideStrCaseEqTest, MatchesEqualStringIgnoringCase) { 1602 Matcher<const wchar_t*> m = StrCaseEq(::std::wstring(L"Hello")); 1603 EXPECT_TRUE(m.Matches(L"Hello")); 1604 EXPECT_TRUE(m.Matches(L"hello")); 1605 EXPECT_FALSE(m.Matches(L"Hi")); 1606 EXPECT_FALSE(m.Matches(NULL)); 1607 1608 Matcher<const ::std::wstring&> m2 = StrCaseEq(L"Hello"); 1609 EXPECT_TRUE(m2.Matches(L"hello")); 1610 EXPECT_FALSE(m2.Matches(L"Hi")); 1611 } 1612 1613 TEST(StdWideStrCaseEqTest, MatchesEqualStringWith0IgnoringCase) { 1614 ::std::wstring str1(L"oabocdooeoo"); 1615 ::std::wstring str2(L"OABOCDOOEOO"); 1616 Matcher<const ::std::wstring&> m0 = StrCaseEq(str1); 1617 EXPECT_FALSE(m0.Matches(str2 + ::std::wstring(1, L'\0'))); 1618 1619 str1[3] = str2[3] = L'\0'; 1620 Matcher<const ::std::wstring&> m1 = StrCaseEq(str1); 1621 EXPECT_TRUE(m1.Matches(str2)); 1622 1623 str1[0] = str1[6] = str1[7] = str1[10] = L'\0'; 1624 str2[0] = str2[6] = str2[7] = str2[10] = L'\0'; 1625 Matcher<const ::std::wstring&> m2 = StrCaseEq(str1); 1626 str1[9] = str2[9] = L'\0'; 1627 EXPECT_FALSE(m2.Matches(str2)); 1628 1629 Matcher<const ::std::wstring&> m3 = StrCaseEq(str1); 1630 EXPECT_TRUE(m3.Matches(str2)); 1631 1632 EXPECT_FALSE(m3.Matches(str2 + L"x")); 1633 str2.append(1, L'\0'); 1634 EXPECT_FALSE(m3.Matches(str2)); 1635 EXPECT_FALSE(m3.Matches(::std::wstring(str2, 0, 9))); 1636 } 1637 1638 TEST(StdWideStrCaseEqTest, CanDescribeSelf) { 1639 Matcher< ::std::wstring> m = StrCaseEq(L"Hi"); 1640 EXPECT_EQ("is equal to (ignoring case) L\"Hi\"", Describe(m)); 1641 } 1642 1643 TEST(StdWideStrCaseNeTest, MatchesUnequalStringIgnoringCase) { 1644 Matcher<const wchar_t*> m = StrCaseNe(L"Hello"); 1645 EXPECT_TRUE(m.Matches(L"Hi")); 1646 EXPECT_TRUE(m.Matches(NULL)); 1647 EXPECT_FALSE(m.Matches(L"Hello")); 1648 EXPECT_FALSE(m.Matches(L"hello")); 1649 1650 Matcher< ::std::wstring> m2 = StrCaseNe(::std::wstring(L"Hello")); 1651 EXPECT_TRUE(m2.Matches(L"")); 1652 EXPECT_FALSE(m2.Matches(L"Hello")); 1653 } 1654 1655 TEST(StdWideStrCaseNeTest, CanDescribeSelf) { 1656 Matcher<const wchar_t*> m = StrCaseNe(L"Hi"); 1657 EXPECT_EQ("isn't equal to (ignoring case) L\"Hi\"", Describe(m)); 1658 } 1659 1660 // Tests that HasSubstr() works for matching wstring-typed values. 1661 TEST(StdWideHasSubstrTest, WorksForStringClasses) { 1662 const Matcher< ::std::wstring> m1 = HasSubstr(L"foo"); 1663 EXPECT_TRUE(m1.Matches(::std::wstring(L"I love food."))); 1664 EXPECT_FALSE(m1.Matches(::std::wstring(L"tofo"))); 1665 1666 const Matcher<const ::std::wstring&> m2 = HasSubstr(L"foo"); 1667 EXPECT_TRUE(m2.Matches(::std::wstring(L"I love food."))); 1668 EXPECT_FALSE(m2.Matches(::std::wstring(L"tofo"))); 1669 } 1670 1671 // Tests that HasSubstr() works for matching C-wide-string-typed values. 1672 TEST(StdWideHasSubstrTest, WorksForCStrings) { 1673 const Matcher<wchar_t*> m1 = HasSubstr(L"foo"); 1674 EXPECT_TRUE(m1.Matches(const_cast<wchar_t*>(L"I love food."))); 1675 EXPECT_FALSE(m1.Matches(const_cast<wchar_t*>(L"tofo"))); 1676 EXPECT_FALSE(m1.Matches(NULL)); 1677 1678 const Matcher<const wchar_t*> m2 = HasSubstr(L"foo"); 1679 EXPECT_TRUE(m2.Matches(L"I love food.")); 1680 EXPECT_FALSE(m2.Matches(L"tofo")); 1681 EXPECT_FALSE(m2.Matches(NULL)); 1682 } 1683 1684 // Tests that HasSubstr(s) describes itself properly. 1685 TEST(StdWideHasSubstrTest, CanDescribeSelf) { 1686 Matcher< ::std::wstring> m = HasSubstr(L"foo\n\""); 1687 EXPECT_EQ("has substring L\"foo\\n\\\"\"", Describe(m)); 1688 } 1689 1690 // Tests StartsWith(s). 1691 1692 TEST(StdWideStartsWithTest, MatchesStringWithGivenPrefix) { 1693 const Matcher<const wchar_t*> m1 = StartsWith(::std::wstring(L"")); 1694 EXPECT_TRUE(m1.Matches(L"Hi")); 1695 EXPECT_TRUE(m1.Matches(L"")); 1696 EXPECT_FALSE(m1.Matches(NULL)); 1697 1698 const Matcher<const ::std::wstring&> m2 = StartsWith(L"Hi"); 1699 EXPECT_TRUE(m2.Matches(L"Hi")); 1700 EXPECT_TRUE(m2.Matches(L"Hi Hi!")); 1701 EXPECT_TRUE(m2.Matches(L"High")); 1702 EXPECT_FALSE(m2.Matches(L"H")); 1703 EXPECT_FALSE(m2.Matches(L" Hi")); 1704 } 1705 1706 TEST(StdWideStartsWithTest, CanDescribeSelf) { 1707 Matcher<const ::std::wstring> m = StartsWith(L"Hi"); 1708 EXPECT_EQ("starts with L\"Hi\"", Describe(m)); 1709 } 1710 1711 // Tests EndsWith(s). 1712 1713 TEST(StdWideEndsWithTest, MatchesStringWithGivenSuffix) { 1714 const Matcher<const wchar_t*> m1 = EndsWith(L""); 1715 EXPECT_TRUE(m1.Matches(L"Hi")); 1716 EXPECT_TRUE(m1.Matches(L"")); 1717 EXPECT_FALSE(m1.Matches(NULL)); 1718 1719 const Matcher<const ::std::wstring&> m2 = EndsWith(::std::wstring(L"Hi")); 1720 EXPECT_TRUE(m2.Matches(L"Hi")); 1721 EXPECT_TRUE(m2.Matches(L"Wow Hi Hi")); 1722 EXPECT_TRUE(m2.Matches(L"Super Hi")); 1723 EXPECT_FALSE(m2.Matches(L"i")); 1724 EXPECT_FALSE(m2.Matches(L"Hi ")); 1725 } 1726 1727 TEST(StdWideEndsWithTest, CanDescribeSelf) { 1728 Matcher<const ::std::wstring> m = EndsWith(L"Hi"); 1729 EXPECT_EQ("ends with L\"Hi\"", Describe(m)); 1730 } 1731 1732 #endif // GTEST_HAS_STD_WSTRING 1733 1734 #if GTEST_HAS_GLOBAL_WSTRING 1735 TEST(GlobalWideStrEqTest, MatchesEqual) { 1736 Matcher<const wchar_t*> m = StrEq(::wstring(L"Hello")); 1737 EXPECT_TRUE(m.Matches(L"Hello")); 1738 EXPECT_FALSE(m.Matches(L"hello")); 1739 EXPECT_FALSE(m.Matches(NULL)); 1740 1741 Matcher<const ::wstring&> m2 = StrEq(L"Hello"); 1742 EXPECT_TRUE(m2.Matches(L"Hello")); 1743 EXPECT_FALSE(m2.Matches(L"Hi")); 1744 1745 Matcher<const ::wstring&> m3 = StrEq(L"\xD3\x576\x8D3\xC74D"); 1746 EXPECT_TRUE(m3.Matches(L"\xD3\x576\x8D3\xC74D")); 1747 EXPECT_FALSE(m3.Matches(L"\xD3\x576\x8D3\xC74E")); 1748 1749 ::wstring str(L"01204500800"); 1750 str[3] = L'\0'; 1751 Matcher<const ::wstring&> m4 = StrEq(str); 1752 EXPECT_TRUE(m4.Matches(str)); 1753 str[0] = str[6] = str[7] = str[9] = str[10] = L'\0'; 1754 Matcher<const ::wstring&> m5 = StrEq(str); 1755 EXPECT_TRUE(m5.Matches(str)); 1756 } 1757 1758 TEST(GlobalWideStrEqTest, CanDescribeSelf) { 1759 Matcher< ::wstring> m = StrEq(L"Hi-\'\"?\\\a\b\f\n\r\t\v"); 1760 EXPECT_EQ("is equal to L\"Hi-\'\\\"?\\\\\\a\\b\\f\\n\\r\\t\\v\"", 1761 Describe(m)); 1762 1763 Matcher< ::wstring> m2 = StrEq(L"\xD3\x576\x8D3\xC74D"); 1764 EXPECT_EQ("is equal to L\"\\xD3\\x576\\x8D3\\xC74D\"", 1765 Describe(m2)); 1766 1767 ::wstring str(L"01204500800"); 1768 str[3] = L'\0'; 1769 Matcher<const ::wstring&> m4 = StrEq(str); 1770 EXPECT_EQ("is equal to L\"012\\04500800\"", Describe(m4)); 1771 str[0] = str[6] = str[7] = str[9] = str[10] = L'\0'; 1772 Matcher<const ::wstring&> m5 = StrEq(str); 1773 EXPECT_EQ("is equal to L\"\\012\\045\\0\\08\\0\\0\"", Describe(m5)); 1774 } 1775 1776 TEST(GlobalWideStrNeTest, MatchesUnequalString) { 1777 Matcher<const wchar_t*> m = StrNe(L"Hello"); 1778 EXPECT_TRUE(m.Matches(L"")); 1779 EXPECT_TRUE(m.Matches(NULL)); 1780 EXPECT_FALSE(m.Matches(L"Hello")); 1781 1782 Matcher< ::wstring> m2 = StrNe(::wstring(L"Hello")); 1783 EXPECT_TRUE(m2.Matches(L"hello")); 1784 EXPECT_FALSE(m2.Matches(L"Hello")); 1785 } 1786 1787 TEST(GlobalWideStrNeTest, CanDescribeSelf) { 1788 Matcher<const wchar_t*> m = StrNe(L"Hi"); 1789 EXPECT_EQ("isn't equal to L\"Hi\"", Describe(m)); 1790 } 1791 1792 TEST(GlobalWideStrCaseEqTest, MatchesEqualStringIgnoringCase) { 1793 Matcher<const wchar_t*> m = StrCaseEq(::wstring(L"Hello")); 1794 EXPECT_TRUE(m.Matches(L"Hello")); 1795 EXPECT_TRUE(m.Matches(L"hello")); 1796 EXPECT_FALSE(m.Matches(L"Hi")); 1797 EXPECT_FALSE(m.Matches(NULL)); 1798 1799 Matcher<const ::wstring&> m2 = StrCaseEq(L"Hello"); 1800 EXPECT_TRUE(m2.Matches(L"hello")); 1801 EXPECT_FALSE(m2.Matches(L"Hi")); 1802 } 1803 1804 TEST(GlobalWideStrCaseEqTest, MatchesEqualStringWith0IgnoringCase) { 1805 ::wstring str1(L"oabocdooeoo"); 1806 ::wstring str2(L"OABOCDOOEOO"); 1807 Matcher<const ::wstring&> m0 = StrCaseEq(str1); 1808 EXPECT_FALSE(m0.Matches(str2 + ::wstring(1, L'\0'))); 1809 1810 str1[3] = str2[3] = L'\0'; 1811 Matcher<const ::wstring&> m1 = StrCaseEq(str1); 1812 EXPECT_TRUE(m1.Matches(str2)); 1813 1814 str1[0] = str1[6] = str1[7] = str1[10] = L'\0'; 1815 str2[0] = str2[6] = str2[7] = str2[10] = L'\0'; 1816 Matcher<const ::wstring&> m2 = StrCaseEq(str1); 1817 str1[9] = str2[9] = L'\0'; 1818 EXPECT_FALSE(m2.Matches(str2)); 1819 1820 Matcher<const ::wstring&> m3 = StrCaseEq(str1); 1821 EXPECT_TRUE(m3.Matches(str2)); 1822 1823 EXPECT_FALSE(m3.Matches(str2 + L"x")); 1824 str2.append(1, L'\0'); 1825 EXPECT_FALSE(m3.Matches(str2)); 1826 EXPECT_FALSE(m3.Matches(::wstring(str2, 0, 9))); 1827 } 1828 1829 TEST(GlobalWideStrCaseEqTest, CanDescribeSelf) { 1830 Matcher< ::wstring> m = StrCaseEq(L"Hi"); 1831 EXPECT_EQ("is equal to (ignoring case) L\"Hi\"", Describe(m)); 1832 } 1833 1834 TEST(GlobalWideStrCaseNeTest, MatchesUnequalStringIgnoringCase) { 1835 Matcher<const wchar_t*> m = StrCaseNe(L"Hello"); 1836 EXPECT_TRUE(m.Matches(L"Hi")); 1837 EXPECT_TRUE(m.Matches(NULL)); 1838 EXPECT_FALSE(m.Matches(L"Hello")); 1839 EXPECT_FALSE(m.Matches(L"hello")); 1840 1841 Matcher< ::wstring> m2 = StrCaseNe(::wstring(L"Hello")); 1842 EXPECT_TRUE(m2.Matches(L"")); 1843 EXPECT_FALSE(m2.Matches(L"Hello")); 1844 } 1845 1846 TEST(GlobalWideStrCaseNeTest, CanDescribeSelf) { 1847 Matcher<const wchar_t*> m = StrCaseNe(L"Hi"); 1848 EXPECT_EQ("isn't equal to (ignoring case) L\"Hi\"", Describe(m)); 1849 } 1850 1851 // Tests that HasSubstr() works for matching wstring-typed values. 1852 TEST(GlobalWideHasSubstrTest, WorksForStringClasses) { 1853 const Matcher< ::wstring> m1 = HasSubstr(L"foo"); 1854 EXPECT_TRUE(m1.Matches(::wstring(L"I love food."))); 1855 EXPECT_FALSE(m1.Matches(::wstring(L"tofo"))); 1856 1857 const Matcher<const ::wstring&> m2 = HasSubstr(L"foo"); 1858 EXPECT_TRUE(m2.Matches(::wstring(L"I love food."))); 1859 EXPECT_FALSE(m2.Matches(::wstring(L"tofo"))); 1860 } 1861 1862 // Tests that HasSubstr() works for matching C-wide-string-typed values. 1863 TEST(GlobalWideHasSubstrTest, WorksForCStrings) { 1864 const Matcher<wchar_t*> m1 = HasSubstr(L"foo"); 1865 EXPECT_TRUE(m1.Matches(const_cast<wchar_t*>(L"I love food."))); 1866 EXPECT_FALSE(m1.Matches(const_cast<wchar_t*>(L"tofo"))); 1867 EXPECT_FALSE(m1.Matches(NULL)); 1868 1869 const Matcher<const wchar_t*> m2 = HasSubstr(L"foo"); 1870 EXPECT_TRUE(m2.Matches(L"I love food.")); 1871 EXPECT_FALSE(m2.Matches(L"tofo")); 1872 EXPECT_FALSE(m2.Matches(NULL)); 1873 } 1874 1875 // Tests that HasSubstr(s) describes itself properly. 1876 TEST(GlobalWideHasSubstrTest, CanDescribeSelf) { 1877 Matcher< ::wstring> m = HasSubstr(L"foo\n\""); 1878 EXPECT_EQ("has substring L\"foo\\n\\\"\"", Describe(m)); 1879 } 1880 1881 // Tests StartsWith(s). 1882 1883 TEST(GlobalWideStartsWithTest, MatchesStringWithGivenPrefix) { 1884 const Matcher<const wchar_t*> m1 = StartsWith(::wstring(L"")); 1885 EXPECT_TRUE(m1.Matches(L"Hi")); 1886 EXPECT_TRUE(m1.Matches(L"")); 1887 EXPECT_FALSE(m1.Matches(NULL)); 1888 1889 const Matcher<const ::wstring&> m2 = StartsWith(L"Hi"); 1890 EXPECT_TRUE(m2.Matches(L"Hi")); 1891 EXPECT_TRUE(m2.Matches(L"Hi Hi!")); 1892 EXPECT_TRUE(m2.Matches(L"High")); 1893 EXPECT_FALSE(m2.Matches(L"H")); 1894 EXPECT_FALSE(m2.Matches(L" Hi")); 1895 } 1896 1897 TEST(GlobalWideStartsWithTest, CanDescribeSelf) { 1898 Matcher<const ::wstring> m = StartsWith(L"Hi"); 1899 EXPECT_EQ("starts with L\"Hi\"", Describe(m)); 1900 } 1901 1902 // Tests EndsWith(s). 1903 1904 TEST(GlobalWideEndsWithTest, MatchesStringWithGivenSuffix) { 1905 const Matcher<const wchar_t*> m1 = EndsWith(L""); 1906 EXPECT_TRUE(m1.Matches(L"Hi")); 1907 EXPECT_TRUE(m1.Matches(L"")); 1908 EXPECT_FALSE(m1.Matches(NULL)); 1909 1910 const Matcher<const ::wstring&> m2 = EndsWith(::wstring(L"Hi")); 1911 EXPECT_TRUE(m2.Matches(L"Hi")); 1912 EXPECT_TRUE(m2.Matches(L"Wow Hi Hi")); 1913 EXPECT_TRUE(m2.Matches(L"Super Hi")); 1914 EXPECT_FALSE(m2.Matches(L"i")); 1915 EXPECT_FALSE(m2.Matches(L"Hi ")); 1916 } 1917 1918 TEST(GlobalWideEndsWithTest, CanDescribeSelf) { 1919 Matcher<const ::wstring> m = EndsWith(L"Hi"); 1920 EXPECT_EQ("ends with L\"Hi\"", Describe(m)); 1921 } 1922 1923 #endif // GTEST_HAS_GLOBAL_WSTRING 1924 1925 1926 typedef ::testing::tuple<long, int> Tuple2; // NOLINT 1927 1928 // Tests that Eq() matches a 2-tuple where the first field == the 1929 // second field. 1930 TEST(Eq2Test, MatchesEqualArguments) { 1931 Matcher<const Tuple2&> m = Eq(); 1932 EXPECT_TRUE(m.Matches(Tuple2(5L, 5))); 1933 EXPECT_FALSE(m.Matches(Tuple2(5L, 6))); 1934 } 1935 1936 // Tests that Eq() describes itself properly. 1937 TEST(Eq2Test, CanDescribeSelf) { 1938 Matcher<const Tuple2&> m = Eq(); 1939 EXPECT_EQ("are an equal pair", Describe(m)); 1940 } 1941 1942 // Tests that Ge() matches a 2-tuple where the first field >= the 1943 // second field. 1944 TEST(Ge2Test, MatchesGreaterThanOrEqualArguments) { 1945 Matcher<const Tuple2&> m = Ge(); 1946 EXPECT_TRUE(m.Matches(Tuple2(5L, 4))); 1947 EXPECT_TRUE(m.Matches(Tuple2(5L, 5))); 1948 EXPECT_FALSE(m.Matches(Tuple2(5L, 6))); 1949 } 1950 1951 // Tests that Ge() describes itself properly. 1952 TEST(Ge2Test, CanDescribeSelf) { 1953 Matcher<const Tuple2&> m = Ge(); 1954 EXPECT_EQ("are a pair where the first >= the second", Describe(m)); 1955 } 1956 1957 // Tests that Gt() matches a 2-tuple where the first field > the 1958 // second field. 1959 TEST(Gt2Test, MatchesGreaterThanArguments) { 1960 Matcher<const Tuple2&> m = Gt(); 1961 EXPECT_TRUE(m.Matches(Tuple2(5L, 4))); 1962 EXPECT_FALSE(m.Matches(Tuple2(5L, 5))); 1963 EXPECT_FALSE(m.Matches(Tuple2(5L, 6))); 1964 } 1965 1966 // Tests that Gt() describes itself properly. 1967 TEST(Gt2Test, CanDescribeSelf) { 1968 Matcher<const Tuple2&> m = Gt(); 1969 EXPECT_EQ("are a pair where the first > the second", Describe(m)); 1970 } 1971 1972 // Tests that Le() matches a 2-tuple where the first field <= the 1973 // second field. 1974 TEST(Le2Test, MatchesLessThanOrEqualArguments) { 1975 Matcher<const Tuple2&> m = Le(); 1976 EXPECT_TRUE(m.Matches(Tuple2(5L, 6))); 1977 EXPECT_TRUE(m.Matches(Tuple2(5L, 5))); 1978 EXPECT_FALSE(m.Matches(Tuple2(5L, 4))); 1979 } 1980 1981 // Tests that Le() describes itself properly. 1982 TEST(Le2Test, CanDescribeSelf) { 1983 Matcher<const Tuple2&> m = Le(); 1984 EXPECT_EQ("are a pair where the first <= the second", Describe(m)); 1985 } 1986 1987 // Tests that Lt() matches a 2-tuple where the first field < the 1988 // second field. 1989 TEST(Lt2Test, MatchesLessThanArguments) { 1990 Matcher<const Tuple2&> m = Lt(); 1991 EXPECT_TRUE(m.Matches(Tuple2(5L, 6))); 1992 EXPECT_FALSE(m.Matches(Tuple2(5L, 5))); 1993 EXPECT_FALSE(m.Matches(Tuple2(5L, 4))); 1994 } 1995 1996 // Tests that Lt() describes itself properly. 1997 TEST(Lt2Test, CanDescribeSelf) { 1998 Matcher<const Tuple2&> m = Lt(); 1999 EXPECT_EQ("are a pair where the first < the second", Describe(m)); 2000 } 2001 2002 // Tests that Ne() matches a 2-tuple where the first field != the 2003 // second field. 2004 TEST(Ne2Test, MatchesUnequalArguments) { 2005 Matcher<const Tuple2&> m = Ne(); 2006 EXPECT_TRUE(m.Matches(Tuple2(5L, 6))); 2007 EXPECT_TRUE(m.Matches(Tuple2(5L, 4))); 2008 EXPECT_FALSE(m.Matches(Tuple2(5L, 5))); 2009 } 2010 2011 // Tests that Ne() describes itself properly. 2012 TEST(Ne2Test, CanDescribeSelf) { 2013 Matcher<const Tuple2&> m = Ne(); 2014 EXPECT_EQ("are an unequal pair", Describe(m)); 2015 } 2016 2017 // Tests that Not(m) matches any value that doesn't match m. 2018 TEST(NotTest, NegatesMatcher) { 2019 Matcher<int> m; 2020 m = Not(Eq(2)); 2021 EXPECT_TRUE(m.Matches(3)); 2022 EXPECT_FALSE(m.Matches(2)); 2023 } 2024 2025 // Tests that Not(m) describes itself properly. 2026 TEST(NotTest, CanDescribeSelf) { 2027 Matcher<int> m = Not(Eq(5)); 2028 EXPECT_EQ("isn't equal to 5", Describe(m)); 2029 } 2030 2031 // Tests that monomorphic matchers are safely cast by the Not matcher. 2032 TEST(NotTest, NotMatcherSafelyCastsMonomorphicMatchers) { 2033 // greater_than_5 is a monomorphic matcher. 2034 Matcher<int> greater_than_5 = Gt(5); 2035 2036 Matcher<const int&> m = Not(greater_than_5); 2037 Matcher<int&> m2 = Not(greater_than_5); 2038 Matcher<int&> m3 = Not(m); 2039 } 2040 2041 // Helper to allow easy testing of AllOf matchers with num parameters. 2042 void AllOfMatches(int num, const Matcher<int>& m) { 2043 SCOPED_TRACE(Describe(m)); 2044 EXPECT_TRUE(m.Matches(0)); 2045 for (int i = 1; i <= num; ++i) { 2046 EXPECT_FALSE(m.Matches(i)); 2047 } 2048 EXPECT_TRUE(m.Matches(num + 1)); 2049 } 2050 2051 // Tests that AllOf(m1, ..., mn) matches any value that matches all of 2052 // the given matchers. 2053 TEST(AllOfTest, MatchesWhenAllMatch) { 2054 Matcher<int> m; 2055 m = AllOf(Le(2), Ge(1)); 2056 EXPECT_TRUE(m.Matches(1)); 2057 EXPECT_TRUE(m.Matches(2)); 2058 EXPECT_FALSE(m.Matches(0)); 2059 EXPECT_FALSE(m.Matches(3)); 2060 2061 m = AllOf(Gt(0), Ne(1), Ne(2)); 2062 EXPECT_TRUE(m.Matches(3)); 2063 EXPECT_FALSE(m.Matches(2)); 2064 EXPECT_FALSE(m.Matches(1)); 2065 EXPECT_FALSE(m.Matches(0)); 2066 2067 m = AllOf(Gt(0), Ne(1), Ne(2), Ne(3)); 2068 EXPECT_TRUE(m.Matches(4)); 2069 EXPECT_FALSE(m.Matches(3)); 2070 EXPECT_FALSE(m.Matches(2)); 2071 EXPECT_FALSE(m.Matches(1)); 2072 EXPECT_FALSE(m.Matches(0)); 2073 2074 m = AllOf(Ge(0), Lt(10), Ne(3), Ne(5), Ne(7)); 2075 EXPECT_TRUE(m.Matches(0)); 2076 EXPECT_TRUE(m.Matches(1)); 2077 EXPECT_FALSE(m.Matches(3)); 2078 2079 // The following tests for varying number of sub-matchers. Due to the way 2080 // the sub-matchers are handled it is enough to test every sub-matcher once 2081 // with sub-matchers using the same matcher type. Varying matcher types are 2082 // checked for above. 2083 AllOfMatches(2, AllOf(Ne(1), Ne(2))); 2084 AllOfMatches(3, AllOf(Ne(1), Ne(2), Ne(3))); 2085 AllOfMatches(4, AllOf(Ne(1), Ne(2), Ne(3), Ne(4))); 2086 AllOfMatches(5, AllOf(Ne(1), Ne(2), Ne(3), Ne(4), Ne(5))); 2087 AllOfMatches(6, AllOf(Ne(1), Ne(2), Ne(3), Ne(4), Ne(5), Ne(6))); 2088 AllOfMatches(7, AllOf(Ne(1), Ne(2), Ne(3), Ne(4), Ne(5), Ne(6), Ne(7))); 2089 AllOfMatches(8, AllOf(Ne(1), Ne(2), Ne(3), Ne(4), Ne(5), Ne(6), Ne(7), 2090 Ne(8))); 2091 AllOfMatches(9, AllOf(Ne(1), Ne(2), Ne(3), Ne(4), Ne(5), Ne(6), Ne(7), 2092 Ne(8), Ne(9))); 2093 AllOfMatches(10, AllOf(Ne(1), Ne(2), Ne(3), Ne(4), Ne(5), Ne(6), Ne(7), Ne(8), 2094 Ne(9), Ne(10))); 2095 } 2096 2097 #if GTEST_LANG_CXX11 2098 // Tests the variadic version of the AllOfMatcher. 2099 TEST(AllOfTest, VariadicMatchesWhenAllMatch) { 2100 // Make sure AllOf is defined in the right namespace and does not depend on 2101 // ADL. 2102 ::testing::AllOf(1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11); 2103 Matcher<int> m = AllOf(Ne(1), Ne(2), Ne(3), Ne(4), Ne(5), Ne(6), Ne(7), Ne(8), 2104 Ne(9), Ne(10), Ne(11)); 2105 EXPECT_THAT(Describe(m), EndsWith("and (isn't equal to 11))))))))))")); 2106 AllOfMatches(11, m); 2107 AllOfMatches(50, AllOf(Ne(1), Ne(2), Ne(3), Ne(4), Ne(5), Ne(6), Ne(7), Ne(8), 2108 Ne(9), Ne(10), Ne(11), Ne(12), Ne(13), Ne(14), Ne(15), 2109 Ne(16), Ne(17), Ne(18), Ne(19), Ne(20), Ne(21), Ne(22), 2110 Ne(23), Ne(24), Ne(25), Ne(26), Ne(27), Ne(28), Ne(29), 2111 Ne(30), Ne(31), Ne(32), Ne(33), Ne(34), Ne(35), Ne(36), 2112 Ne(37), Ne(38), Ne(39), Ne(40), Ne(41), Ne(42), Ne(43), 2113 Ne(44), Ne(45), Ne(46), Ne(47), Ne(48), Ne(49), 2114 Ne(50))); 2115 } 2116 2117 #endif // GTEST_LANG_CXX11 2118 2119 // Tests that AllOf(m1, ..., mn) describes itself properly. 2120 TEST(AllOfTest, CanDescribeSelf) { 2121 Matcher<int> m; 2122 m = AllOf(Le(2), Ge(1)); 2123 EXPECT_EQ("(is <= 2) and (is >= 1)", Describe(m)); 2124 2125 m = AllOf(Gt(0), Ne(1), Ne(2)); 2126 EXPECT_EQ("(is > 0) and " 2127 "((isn't equal to 1) and " 2128 "(isn't equal to 2))", 2129 Describe(m)); 2130 2131 2132 m = AllOf(Gt(0), Ne(1), Ne(2), Ne(3)); 2133 EXPECT_EQ("((is > 0) and " 2134 "(isn't equal to 1)) and " 2135 "((isn't equal to 2) and " 2136 "(isn't equal to 3))", 2137 Describe(m)); 2138 2139 2140 m = AllOf(Ge(0), Lt(10), Ne(3), Ne(5), Ne(7)); 2141 EXPECT_EQ("((is >= 0) and " 2142 "(is < 10)) and " 2143 "((isn't equal to 3) and " 2144 "((isn't equal to 5) and " 2145 "(isn't equal to 7)))", 2146 Describe(m)); 2147 } 2148 2149 // Tests that AllOf(m1, ..., mn) describes its negation properly. 2150 TEST(AllOfTest, CanDescribeNegation) { 2151 Matcher<int> m; 2152 m = AllOf(Le(2), Ge(1)); 2153 EXPECT_EQ("(isn't <= 2) or " 2154 "(isn't >= 1)", 2155 DescribeNegation(m)); 2156 2157 m = AllOf(Gt(0), Ne(1), Ne(2)); 2158 EXPECT_EQ("(isn't > 0) or " 2159 "((is equal to 1) or " 2160 "(is equal to 2))", 2161 DescribeNegation(m)); 2162 2163 2164 m = AllOf(Gt(0), Ne(1), Ne(2), Ne(3)); 2165 EXPECT_EQ("((isn't > 0) or " 2166 "(is equal to 1)) or " 2167 "((is equal to 2) or " 2168 "(is equal to 3))", 2169 DescribeNegation(m)); 2170 2171 2172 m = AllOf(Ge(0), Lt(10), Ne(3), Ne(5), Ne(7)); 2173 EXPECT_EQ("((isn't >= 0) or " 2174 "(isn't < 10)) or " 2175 "((is equal to 3) or " 2176 "((is equal to 5) or " 2177 "(is equal to 7)))", 2178 DescribeNegation(m)); 2179 } 2180 2181 // Tests that monomorphic matchers are safely cast by the AllOf matcher. 2182 TEST(AllOfTest, AllOfMatcherSafelyCastsMonomorphicMatchers) { 2183 // greater_than_5 and less_than_10 are monomorphic matchers. 2184 Matcher<int> greater_than_5 = Gt(5); 2185 Matcher<int> less_than_10 = Lt(10); 2186 2187 Matcher<const int&> m = AllOf(greater_than_5, less_than_10); 2188 Matcher<int&> m2 = AllOf(greater_than_5, less_than_10); 2189 Matcher<int&> m3 = AllOf(greater_than_5, m2); 2190 2191 // Tests that BothOf works when composing itself. 2192 Matcher<const int&> m4 = AllOf(greater_than_5, less_than_10, less_than_10); 2193 Matcher<int&> m5 = AllOf(greater_than_5, less_than_10, less_than_10); 2194 } 2195 2196 TEST(AllOfTest, ExplainsResult) { 2197 Matcher<int> m; 2198 2199 // Successful match. Both matchers need to explain. The second 2200 // matcher doesn't give an explanation, so only the first matcher's 2201 // explanation is printed. 2202 m = AllOf(GreaterThan(10), Lt(30)); 2203 EXPECT_EQ("which is 15 more than 10", Explain(m, 25)); 2204 2205 // Successful match. Both matchers need to explain. 2206 m = AllOf(GreaterThan(10), GreaterThan(20)); 2207 EXPECT_EQ("which is 20 more than 10, and which is 10 more than 20", 2208 Explain(m, 30)); 2209 2210 // Successful match. All matchers need to explain. The second 2211 // matcher doesn't given an explanation. 2212 m = AllOf(GreaterThan(10), Lt(30), GreaterThan(20)); 2213 EXPECT_EQ("which is 15 more than 10, and which is 5 more than 20", 2214 Explain(m, 25)); 2215 2216 // Successful match. All matchers need to explain. 2217 m = AllOf(GreaterThan(10), GreaterThan(20), GreaterThan(30)); 2218 EXPECT_EQ("which is 30 more than 10, and which is 20 more than 20, " 2219 "and which is 10 more than 30", 2220 Explain(m, 40)); 2221 2222 // Failed match. The first matcher, which failed, needs to 2223 // explain. 2224 m = AllOf(GreaterThan(10), GreaterThan(20)); 2225 EXPECT_EQ("which is 5 less than 10", Explain(m, 5)); 2226 2227 // Failed match. The second matcher, which failed, needs to 2228 // explain. Since it doesn't given an explanation, nothing is 2229 // printed. 2230 m = AllOf(GreaterThan(10), Lt(30)); 2231 EXPECT_EQ("", Explain(m, 40)); 2232 2233 // Failed match. The second matcher, which failed, needs to 2234 // explain. 2235 m = AllOf(GreaterThan(10), GreaterThan(20)); 2236 EXPECT_EQ("which is 5 less than 20", Explain(m, 15)); 2237 } 2238 2239 // Helper to allow easy testing of AnyOf matchers with num parameters. 2240 void AnyOfMatches(int num, const Matcher<int>& m) { 2241 SCOPED_TRACE(Describe(m)); 2242 EXPECT_FALSE(m.Matches(0)); 2243 for (int i = 1; i <= num; ++i) { 2244 EXPECT_TRUE(m.Matches(i)); 2245 } 2246 EXPECT_FALSE(m.Matches(num + 1)); 2247 } 2248 2249 // Tests that AnyOf(m1, ..., mn) matches any value that matches at 2250 // least one of the given matchers. 2251 TEST(AnyOfTest, MatchesWhenAnyMatches) { 2252 Matcher<int> m; 2253 m = AnyOf(Le(1), Ge(3)); 2254 EXPECT_TRUE(m.Matches(1)); 2255 EXPECT_TRUE(m.Matches(4)); 2256 EXPECT_FALSE(m.Matches(2)); 2257 2258 m = AnyOf(Lt(0), Eq(1), Eq(2)); 2259 EXPECT_TRUE(m.Matches(-1)); 2260 EXPECT_TRUE(m.Matches(1)); 2261 EXPECT_TRUE(m.Matches(2)); 2262 EXPECT_FALSE(m.Matches(0)); 2263 2264 m = AnyOf(Lt(0), Eq(1), Eq(2), Eq(3)); 2265 EXPECT_TRUE(m.Matches(-1)); 2266 EXPECT_TRUE(m.Matches(1)); 2267 EXPECT_TRUE(m.Matches(2)); 2268 EXPECT_TRUE(m.Matches(3)); 2269 EXPECT_FALSE(m.Matches(0)); 2270 2271 m = AnyOf(Le(0), Gt(10), 3, 5, 7); 2272 EXPECT_TRUE(m.Matches(0)); 2273 EXPECT_TRUE(m.Matches(11)); 2274 EXPECT_TRUE(m.Matches(3)); 2275 EXPECT_FALSE(m.Matches(2)); 2276 2277 // The following tests for varying number of sub-matchers. Due to the way 2278 // the sub-matchers are handled it is enough to test every sub-matcher once 2279 // with sub-matchers using the same matcher type. Varying matcher types are 2280 // checked for above. 2281 AnyOfMatches(2, AnyOf(1, 2)); 2282 AnyOfMatches(3, AnyOf(1, 2, 3)); 2283 AnyOfMatches(4, AnyOf(1, 2, 3, 4)); 2284 AnyOfMatches(5, AnyOf(1, 2, 3, 4, 5)); 2285 AnyOfMatches(6, AnyOf(1, 2, 3, 4, 5, 6)); 2286 AnyOfMatches(7, AnyOf(1, 2, 3, 4, 5, 6, 7)); 2287 AnyOfMatches(8, AnyOf(1, 2, 3, 4, 5, 6, 7, 8)); 2288 AnyOfMatches(9, AnyOf(1, 2, 3, 4, 5, 6, 7, 8, 9)); 2289 AnyOfMatches(10, AnyOf(1, 2, 3, 4, 5, 6, 7, 8, 9, 10)); 2290 } 2291 2292 #if GTEST_LANG_CXX11 2293 // Tests the variadic version of the AnyOfMatcher. 2294 TEST(AnyOfTest, VariadicMatchesWhenAnyMatches) { 2295 // Also make sure AnyOf is defined in the right namespace and does not depend 2296 // on ADL. 2297 Matcher<int> m = ::testing::AnyOf(1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11); 2298 2299 EXPECT_THAT(Describe(m), EndsWith("or (is equal to 11))))))))))")); 2300 AnyOfMatches(11, m); 2301 AnyOfMatches(50, AnyOf(1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 2302 11, 12, 13, 14, 15, 16, 17, 18, 19, 20, 2303 21, 22, 23, 24, 25, 26, 27, 28, 29, 30, 2304 31, 32, 33, 34, 35, 36, 37, 38, 39, 40, 2305 41, 42, 43, 44, 45, 46, 47, 48, 49, 50)); 2306 } 2307 2308 #endif // GTEST_LANG_CXX11 2309 2310 // Tests that AnyOf(m1, ..., mn) describes itself properly. 2311 TEST(AnyOfTest, CanDescribeSelf) { 2312 Matcher<int> m; 2313 m = AnyOf(Le(1), Ge(3)); 2314 EXPECT_EQ("(is <= 1) or (is >= 3)", 2315 Describe(m)); 2316 2317 m = AnyOf(Lt(0), Eq(1), Eq(2)); 2318 EXPECT_EQ("(is < 0) or " 2319 "((is equal to 1) or (is equal to 2))", 2320 Describe(m)); 2321 2322 m = AnyOf(Lt(0), Eq(1), Eq(2), Eq(3)); 2323 EXPECT_EQ("((is < 0) or " 2324 "(is equal to 1)) or " 2325 "((is equal to 2) or " 2326 "(is equal to 3))", 2327 Describe(m)); 2328 2329 m = AnyOf(Le(0), Gt(10), 3, 5, 7); 2330 EXPECT_EQ("((is <= 0) or " 2331 "(is > 10)) or " 2332 "((is equal to 3) or " 2333 "((is equal to 5) or " 2334 "(is equal to 7)))", 2335 Describe(m)); 2336 } 2337 2338 // Tests that AnyOf(m1, ..., mn) describes its negation properly. 2339 TEST(AnyOfTest, CanDescribeNegation) { 2340 Matcher<int> m; 2341 m = AnyOf(Le(1), Ge(3)); 2342 EXPECT_EQ("(isn't <= 1) and (isn't >= 3)", 2343 DescribeNegation(m)); 2344 2345 m = AnyOf(Lt(0), Eq(1), Eq(2)); 2346 EXPECT_EQ("(isn't < 0) and " 2347 "((isn't equal to 1) and (isn't equal to 2))", 2348 DescribeNegation(m)); 2349 2350 m = AnyOf(Lt(0), Eq(1), Eq(2), Eq(3)); 2351 EXPECT_EQ("((isn't < 0) and " 2352 "(isn't equal to 1)) and " 2353 "((isn't equal to 2) and " 2354 "(isn't equal to 3))", 2355 DescribeNegation(m)); 2356 2357 m = AnyOf(Le(0), Gt(10), 3, 5, 7); 2358 EXPECT_EQ("((isn't <= 0) and " 2359 "(isn't > 10)) and " 2360 "((isn't equal to 3) and " 2361 "((isn't equal to 5) and " 2362 "(isn't equal to 7)))", 2363 DescribeNegation(m)); 2364 } 2365 2366 // Tests that monomorphic matchers are safely cast by the AnyOf matcher. 2367 TEST(AnyOfTest, AnyOfMatcherSafelyCastsMonomorphicMatchers) { 2368 // greater_than_5 and less_than_10 are monomorphic matchers. 2369 Matcher<int> greater_than_5 = Gt(5); 2370 Matcher<int> less_than_10 = Lt(10); 2371 2372 Matcher<const int&> m = AnyOf(greater_than_5, less_than_10); 2373 Matcher<int&> m2 = AnyOf(greater_than_5, less_than_10); 2374 Matcher<int&> m3 = AnyOf(greater_than_5, m2); 2375 2376 // Tests that EitherOf works when composing itself. 2377 Matcher<const int&> m4 = AnyOf(greater_than_5, less_than_10, less_than_10); 2378 Matcher<int&> m5 = AnyOf(greater_than_5, less_than_10, less_than_10); 2379 } 2380 2381 TEST(AnyOfTest, ExplainsResult) { 2382 Matcher<int> m; 2383 2384 // Failed match. Both matchers need to explain. The second 2385 // matcher doesn't give an explanation, so only the first matcher's 2386 // explanation is printed. 2387 m = AnyOf(GreaterThan(10), Lt(0)); 2388 EXPECT_EQ("which is 5 less than 10", Explain(m, 5)); 2389 2390 // Failed match. Both matchers need to explain. 2391 m = AnyOf(GreaterThan(10), GreaterThan(20)); 2392 EXPECT_EQ("which is 5 less than 10, and which is 15 less than 20", 2393 Explain(m, 5)); 2394 2395 // Failed match. All matchers need to explain. The second 2396 // matcher doesn't given an explanation. 2397 m = AnyOf(GreaterThan(10), Gt(20), GreaterThan(30)); 2398 EXPECT_EQ("which is 5 less than 10, and which is 25 less than 30", 2399 Explain(m, 5)); 2400 2401 // Failed match. All matchers need to explain. 2402 m = AnyOf(GreaterThan(10), GreaterThan(20), GreaterThan(30)); 2403 EXPECT_EQ("which is 5 less than 10, and which is 15 less than 20, " 2404 "and which is 25 less than 30", 2405 Explain(m, 5)); 2406 2407 // Successful match. The first matcher, which succeeded, needs to 2408 // explain. 2409 m = AnyOf(GreaterThan(10), GreaterThan(20)); 2410 EXPECT_EQ("which is 5 more than 10", Explain(m, 15)); 2411 2412 // Successful match. The second matcher, which succeeded, needs to 2413 // explain. Since it doesn't given an explanation, nothing is 2414 // printed. 2415 m = AnyOf(GreaterThan(10), Lt(30)); 2416 EXPECT_EQ("", Explain(m, 0)); 2417 2418 // Successful match. The second matcher, which succeeded, needs to 2419 // explain. 2420 m = AnyOf(GreaterThan(30), GreaterThan(20)); 2421 EXPECT_EQ("which is 5 more than 20", Explain(m, 25)); 2422 } 2423 2424 // The following predicate function and predicate functor are for 2425 // testing the Truly(predicate) matcher. 2426 2427 // Returns non-zero if the input is positive. Note that the return 2428 // type of this function is not bool. It's OK as Truly() accepts any 2429 // unary function or functor whose return type can be implicitly 2430 // converted to bool. 2431 int IsPositive(double x) { 2432 return x > 0 ? 1 : 0; 2433 } 2434 2435 // This functor returns true if the input is greater than the given 2436 // number. 2437 class IsGreaterThan { 2438 public: 2439 explicit IsGreaterThan(int threshold) : threshold_(threshold) {} 2440 2441 bool operator()(int n) const { return n > threshold_; } 2442 2443 private: 2444 int threshold_; 2445 }; 2446 2447 // For testing Truly(). 2448 const int foo = 0; 2449 2450 // This predicate returns true iff the argument references foo and has 2451 // a zero value. 2452 bool ReferencesFooAndIsZero(const int& n) { 2453 return (&n == &foo) && (n == 0); 2454 } 2455 2456 // Tests that Truly(predicate) matches what satisfies the given 2457 // predicate. 2458 TEST(TrulyTest, MatchesWhatSatisfiesThePredicate) { 2459 Matcher<double> m = Truly(IsPositive); 2460 EXPECT_TRUE(m.Matches(2.0)); 2461 EXPECT_FALSE(m.Matches(-1.5)); 2462 } 2463 2464 // Tests that Truly(predicate_functor) works too. 2465 TEST(TrulyTest, CanBeUsedWithFunctor) { 2466 Matcher<int> m = Truly(IsGreaterThan(5)); 2467 EXPECT_TRUE(m.Matches(6)); 2468 EXPECT_FALSE(m.Matches(4)); 2469 } 2470 2471 // A class that can be implicitly converted to bool. 2472 class ConvertibleToBool { 2473 public: 2474 explicit ConvertibleToBool(int number) : number_(number) {} 2475 operator bool() const { return number_ != 0; } 2476 2477 private: 2478 int number_; 2479 }; 2480 2481 ConvertibleToBool IsNotZero(int number) { 2482 return ConvertibleToBool(number); 2483 } 2484 2485 // Tests that the predicate used in Truly() may return a class that's 2486 // implicitly convertible to bool, even when the class has no 2487 // operator!(). 2488 TEST(TrulyTest, PredicateCanReturnAClassConvertibleToBool) { 2489 Matcher<int> m = Truly(IsNotZero); 2490 EXPECT_TRUE(m.Matches(1)); 2491 EXPECT_FALSE(m.Matches(0)); 2492 } 2493 2494 // Tests that Truly(predicate) can describe itself properly. 2495 TEST(TrulyTest, CanDescribeSelf) { 2496 Matcher<double> m = Truly(IsPositive); 2497 EXPECT_EQ("satisfies the given predicate", 2498 Describe(m)); 2499 } 2500 2501 // Tests that Truly(predicate) works when the matcher takes its 2502 // argument by reference. 2503 TEST(TrulyTest, WorksForByRefArguments) { 2504 Matcher<const int&> m = Truly(ReferencesFooAndIsZero); 2505 EXPECT_TRUE(m.Matches(foo)); 2506 int n = 0; 2507 EXPECT_FALSE(m.Matches(n)); 2508 } 2509 2510 // Tests that Matches(m) is a predicate satisfied by whatever that 2511 // matches matcher m. 2512 TEST(MatchesTest, IsSatisfiedByWhatMatchesTheMatcher) { 2513 EXPECT_TRUE(Matches(Ge(0))(1)); 2514 EXPECT_FALSE(Matches(Eq('a'))('b')); 2515 } 2516 2517 // Tests that Matches(m) works when the matcher takes its argument by 2518 // reference. 2519 TEST(MatchesTest, WorksOnByRefArguments) { 2520 int m = 0, n = 0; 2521 EXPECT_TRUE(Matches(AllOf(Ref(n), Eq(0)))(n)); 2522 EXPECT_FALSE(Matches(Ref(m))(n)); 2523 } 2524 2525 // Tests that a Matcher on non-reference type can be used in 2526 // Matches(). 2527 TEST(MatchesTest, WorksWithMatcherOnNonRefType) { 2528 Matcher<int> eq5 = Eq(5); 2529 EXPECT_TRUE(Matches(eq5)(5)); 2530 EXPECT_FALSE(Matches(eq5)(2)); 2531 } 2532 2533 // Tests Value(value, matcher). Since Value() is a simple wrapper for 2534 // Matches(), which has been tested already, we don't spend a lot of 2535 // effort on testing Value(). 2536 TEST(ValueTest, WorksWithPolymorphicMatcher) { 2537 EXPECT_TRUE(Value("hi", StartsWith("h"))); 2538 EXPECT_FALSE(Value(5, Gt(10))); 2539 } 2540 2541 TEST(ValueTest, WorksWithMonomorphicMatcher) { 2542 const Matcher<int> is_zero = Eq(0); 2543 EXPECT_TRUE(Value(0, is_zero)); 2544 EXPECT_FALSE(Value('a', is_zero)); 2545 2546 int n = 0; 2547 const Matcher<const int&> ref_n = Ref(n); 2548 EXPECT_TRUE(Value(n, ref_n)); 2549 EXPECT_FALSE(Value(1, ref_n)); 2550 } 2551 2552 TEST(ExplainMatchResultTest, WorksWithPolymorphicMatcher) { 2553 StringMatchResultListener listener1; 2554 EXPECT_TRUE(ExplainMatchResult(PolymorphicIsEven(), 42, &listener1)); 2555 EXPECT_EQ("% 2 == 0", listener1.str()); 2556 2557 StringMatchResultListener listener2; 2558 EXPECT_FALSE(ExplainMatchResult(Ge(42), 1.5, &listener2)); 2559 EXPECT_EQ("", listener2.str()); 2560 } 2561 2562 TEST(ExplainMatchResultTest, WorksWithMonomorphicMatcher) { 2563 const Matcher<int> is_even = PolymorphicIsEven(); 2564 StringMatchResultListener listener1; 2565 EXPECT_TRUE(ExplainMatchResult(is_even, 42, &listener1)); 2566 EXPECT_EQ("% 2 == 0", listener1.str()); 2567 2568 const Matcher<const double&> is_zero = Eq(0); 2569 StringMatchResultListener listener2; 2570 EXPECT_FALSE(ExplainMatchResult(is_zero, 1.5, &listener2)); 2571 EXPECT_EQ("", listener2.str()); 2572 } 2573 2574 MATCHER_P(Really, inner_matcher, "") { 2575 return ExplainMatchResult(inner_matcher, arg, result_listener); 2576 } 2577 2578 TEST(ExplainMatchResultTest, WorksInsideMATCHER) { 2579 EXPECT_THAT(0, Really(Eq(0))); 2580 } 2581 2582 TEST(AllArgsTest, WorksForTuple) { 2583 EXPECT_THAT(make_tuple(1, 2L), AllArgs(Lt())); 2584 EXPECT_THAT(make_tuple(2L, 1), Not(AllArgs(Lt()))); 2585 } 2586 2587 TEST(AllArgsTest, WorksForNonTuple) { 2588 EXPECT_THAT(42, AllArgs(Gt(0))); 2589 EXPECT_THAT('a', Not(AllArgs(Eq('b')))); 2590 } 2591 2592 class AllArgsHelper { 2593 public: 2594 AllArgsHelper() {} 2595 2596 MOCK_METHOD2(Helper, int(char x, int y)); 2597 2598 private: 2599 GTEST_DISALLOW_COPY_AND_ASSIGN_(AllArgsHelper); 2600 }; 2601 2602 TEST(AllArgsTest, WorksInWithClause) { 2603 AllArgsHelper helper; 2604 ON_CALL(helper, Helper(_, _)) 2605 .With(AllArgs(Lt())) 2606 .WillByDefault(Return(1)); 2607 EXPECT_CALL(helper, Helper(_, _)); 2608 EXPECT_CALL(helper, Helper(_, _)) 2609 .With(AllArgs(Gt())) 2610 .WillOnce(Return(2)); 2611 2612 EXPECT_EQ(1, helper.Helper('\1', 2)); 2613 EXPECT_EQ(2, helper.Helper('a', 1)); 2614 } 2615 2616 // Tests that ASSERT_THAT() and EXPECT_THAT() work when the value 2617 // matches the matcher. 2618 TEST(MatcherAssertionTest, WorksWhenMatcherIsSatisfied) { 2619 ASSERT_THAT(5, Ge(2)) << "This should succeed."; 2620 ASSERT_THAT("Foo", EndsWith("oo")); 2621 EXPECT_THAT(2, AllOf(Le(7), Ge(0))) << "This should succeed too."; 2622 EXPECT_THAT("Hello", StartsWith("Hell")); 2623 } 2624 2625 // Tests that ASSERT_THAT() and EXPECT_THAT() work when the value 2626 // doesn't match the matcher. 2627 TEST(MatcherAssertionTest, WorksWhenMatcherIsNotSatisfied) { 2628 // 'n' must be static as it is used in an EXPECT_FATAL_FAILURE(), 2629 // which cannot reference auto variables. 2630 static unsigned short n; // NOLINT 2631 n = 5; 2632 2633 // VC++ prior to version 8.0 SP1 has a bug where it will not see any 2634 // functions declared in the namespace scope from within nested classes. 2635 // EXPECT/ASSERT_(NON)FATAL_FAILURE macros use nested classes so that all 2636 // namespace-level functions invoked inside them need to be explicitly 2637 // resolved. 2638 EXPECT_FATAL_FAILURE(ASSERT_THAT(n, ::testing::Gt(10)), 2639 "Value of: n\n" 2640 "Expected: is > 10\n" 2641 " Actual: 5" + OfType("unsigned short")); 2642 n = 0; 2643 EXPECT_NONFATAL_FAILURE( 2644 EXPECT_THAT(n, ::testing::AllOf(::testing::Le(7), ::testing::Ge(5))), 2645 "Value of: n\n" 2646 "Expected: (is <= 7) and (is >= 5)\n" 2647 " Actual: 0" + OfType("unsigned short")); 2648 } 2649 2650 // Tests that ASSERT_THAT() and EXPECT_THAT() work when the argument 2651 // has a reference type. 2652 TEST(MatcherAssertionTest, WorksForByRefArguments) { 2653 // We use a static variable here as EXPECT_FATAL_FAILURE() cannot 2654 // reference auto variables. 2655 static int n; 2656 n = 0; 2657 EXPECT_THAT(n, AllOf(Le(7), Ref(n))); 2658 EXPECT_FATAL_FAILURE(ASSERT_THAT(n, ::testing::Not(::testing::Ref(n))), 2659 "Value of: n\n" 2660 "Expected: does not reference the variable @"); 2661 // Tests the "Actual" part. 2662 EXPECT_FATAL_FAILURE(ASSERT_THAT(n, ::testing::Not(::testing::Ref(n))), 2663 "Actual: 0" + OfType("int") + ", which is located @"); 2664 } 2665 2666 #if !GTEST_OS_SYMBIAN 2667 // Tests that ASSERT_THAT() and EXPECT_THAT() work when the matcher is 2668 // monomorphic. 2669 2670 // ASSERT_THAT("hello", starts_with_he) fails to compile with Nokia's 2671 // Symbian compiler: it tries to compile 2672 // template<T, U> class MatcherCastImpl { ... 2673 // virtual bool MatchAndExplain(T x, ...) const { 2674 // return source_matcher_.MatchAndExplain(static_cast<U>(x), ...); 2675 // with U == string and T == const char* 2676 // With ASSERT_THAT("hello"...) changed to ASSERT_THAT(string("hello") ... ) 2677 // the compiler silently crashes with no output. 2678 // If MatcherCastImpl is changed to use U(x) instead of static_cast<U>(x) 2679 // the code compiles but the converted string is bogus. 2680 TEST(MatcherAssertionTest, WorksForMonomorphicMatcher) { 2681 Matcher<const char*> starts_with_he = StartsWith("he"); 2682 ASSERT_THAT("hello", starts_with_he); 2683 2684 Matcher<const string&> ends_with_ok = EndsWith("ok"); 2685 ASSERT_THAT("book", ends_with_ok); 2686 const string bad = "bad"; 2687 EXPECT_NONFATAL_FAILURE(EXPECT_THAT(bad, ends_with_ok), 2688 "Value of: bad\n" 2689 "Expected: ends with \"ok\"\n" 2690 " Actual: \"bad\""); 2691 Matcher<int> is_greater_than_5 = Gt(5); 2692 EXPECT_NONFATAL_FAILURE(EXPECT_THAT(5, is_greater_than_5), 2693 "Value of: 5\n" 2694 "Expected: is > 5\n" 2695 " Actual: 5" + OfType("int")); 2696 } 2697 #endif // !GTEST_OS_SYMBIAN 2698 2699 // Tests floating-point matchers. 2700 template <typename RawType> 2701 class FloatingPointTest : public testing::Test { 2702 protected: 2703 typedef testing::internal::FloatingPoint<RawType> Floating; 2704 typedef typename Floating::Bits Bits; 2705 2706 FloatingPointTest() 2707 : max_ulps_(Floating::kMaxUlps), 2708 zero_bits_(Floating(0).bits()), 2709 one_bits_(Floating(1).bits()), 2710 infinity_bits_(Floating(Floating::Infinity()).bits()), 2711 close_to_positive_zero_( 2712 Floating::ReinterpretBits(zero_bits_ + max_ulps_/2)), 2713 close_to_negative_zero_( 2714 -Floating::ReinterpretBits(zero_bits_ + max_ulps_ - max_ulps_/2)), 2715 further_from_negative_zero_(-Floating::ReinterpretBits( 2716 zero_bits_ + max_ulps_ + 1 - max_ulps_/2)), 2717 close_to_one_(Floating::ReinterpretBits(one_bits_ + max_ulps_)), 2718 further_from_one_(Floating::ReinterpretBits(one_bits_ + max_ulps_ + 1)), 2719 infinity_(Floating::Infinity()), 2720 close_to_infinity_( 2721 Floating::ReinterpretBits(infinity_bits_ - max_ulps_)), 2722 further_from_infinity_( 2723 Floating::ReinterpretBits(infinity_bits_ - max_ulps_ - 1)), 2724 max_(Floating::Max()), 2725 nan1_(Floating::ReinterpretBits(Floating::kExponentBitMask | 1)), 2726 nan2_(Floating::ReinterpretBits(Floating::kExponentBitMask | 200)) { 2727 } 2728 2729 void TestSize() { 2730 EXPECT_EQ(sizeof(RawType), sizeof(Bits)); 2731 } 2732 2733 // A battery of tests for FloatingEqMatcher::Matches. 2734 // matcher_maker is a pointer to a function which creates a FloatingEqMatcher. 2735 void TestMatches( 2736 testing::internal::FloatingEqMatcher<RawType> (*matcher_maker)(RawType)) { 2737 Matcher<RawType> m1 = matcher_maker(0.0); 2738 EXPECT_TRUE(m1.Matches(-0.0)); 2739 EXPECT_TRUE(m1.Matches(close_to_positive_zero_)); 2740 EXPECT_TRUE(m1.Matches(close_to_negative_zero_)); 2741 EXPECT_FALSE(m1.Matches(1.0)); 2742 2743 Matcher<RawType> m2 = matcher_maker(close_to_positive_zero_); 2744 EXPECT_FALSE(m2.Matches(further_from_negative_zero_)); 2745 2746 Matcher<RawType> m3 = matcher_maker(1.0); 2747 EXPECT_TRUE(m3.Matches(close_to_one_)); 2748 EXPECT_FALSE(m3.Matches(further_from_one_)); 2749 2750 // Test commutativity: matcher_maker(0.0).Matches(1.0) was tested above. 2751 EXPECT_FALSE(m3.Matches(0.0)); 2752 2753 Matcher<RawType> m4 = matcher_maker(-infinity_); 2754 EXPECT_TRUE(m4.Matches(-close_to_infinity_)); 2755 2756 Matcher<RawType> m5 = matcher_maker(infinity_); 2757 EXPECT_TRUE(m5.Matches(close_to_infinity_)); 2758 2759 // This is interesting as the representations of infinity_ and nan1_ 2760 // are only 1 DLP apart. 2761 EXPECT_FALSE(m5.Matches(nan1_)); 2762 2763 // matcher_maker can produce a Matcher<const RawType&>, which is needed in 2764 // some cases. 2765 Matcher<const RawType&> m6 = matcher_maker(0.0); 2766 EXPECT_TRUE(m6.Matches(-0.0)); 2767 EXPECT_TRUE(m6.Matches(close_to_positive_zero_)); 2768 EXPECT_FALSE(m6.Matches(1.0)); 2769 2770 // matcher_maker can produce a Matcher<RawType&>, which is needed in some 2771 // cases. 2772 Matcher<RawType&> m7 = matcher_maker(0.0); 2773 RawType x = 0.0; 2774 EXPECT_TRUE(m7.Matches(x)); 2775 x = 0.01f; 2776 EXPECT_FALSE(m7.Matches(x)); 2777 } 2778 2779 // Pre-calculated numbers to be used by the tests. 2780 2781 const size_t max_ulps_; 2782 2783 const Bits zero_bits_; // The bits that represent 0.0. 2784 const Bits one_bits_; // The bits that represent 1.0. 2785 const Bits infinity_bits_; // The bits that represent +infinity. 2786 2787 // Some numbers close to 0.0. 2788 const RawType close_to_positive_zero_; 2789 const RawType close_to_negative_zero_; 2790 const RawType further_from_negative_zero_; 2791 2792 // Some numbers close to 1.0. 2793 const RawType close_to_one_; 2794 const RawType further_from_one_; 2795 2796 // Some numbers close to +infinity. 2797 const RawType infinity_; 2798 const RawType close_to_infinity_; 2799 const RawType further_from_infinity_; 2800 2801 // Maximum representable value that's not infinity. 2802 const RawType max_; 2803 2804 // Some NaNs. 2805 const RawType nan1_; 2806 const RawType nan2_; 2807 }; 2808 2809 // Tests floating-point matchers with fixed epsilons. 2810 template <typename RawType> 2811 class FloatingPointNearTest : public FloatingPointTest<RawType> { 2812 protected: 2813 typedef FloatingPointTest<RawType> ParentType; 2814 2815 // A battery of tests for FloatingEqMatcher::Matches with a fixed epsilon. 2816 // matcher_maker is a pointer to a function which creates a FloatingEqMatcher. 2817 void TestNearMatches( 2818 testing::internal::FloatingEqMatcher<RawType> 2819 (*matcher_maker)(RawType, RawType)) { 2820 Matcher<RawType> m1 = matcher_maker(0.0, 0.0); 2821 EXPECT_TRUE(m1.Matches(0.0)); 2822 EXPECT_TRUE(m1.Matches(-0.0)); 2823 EXPECT_FALSE(m1.Matches(ParentType::close_to_positive_zero_)); 2824 EXPECT_FALSE(m1.Matches(ParentType::close_to_negative_zero_)); 2825 EXPECT_FALSE(m1.Matches(1.0)); 2826 2827 Matcher<RawType> m2 = matcher_maker(0.0, 1.0); 2828 EXPECT_TRUE(m2.Matches(0.0)); 2829 EXPECT_TRUE(m2.Matches(-0.0)); 2830 EXPECT_TRUE(m2.Matches(1.0)); 2831 EXPECT_TRUE(m2.Matches(-1.0)); 2832 EXPECT_FALSE(m2.Matches(ParentType::close_to_one_)); 2833 EXPECT_FALSE(m2.Matches(-ParentType::close_to_one_)); 2834 2835 // Check that inf matches inf, regardless of the of the specified max 2836 // absolute error. 2837 Matcher<RawType> m3 = matcher_maker(ParentType::infinity_, 0.0); 2838 EXPECT_TRUE(m3.Matches(ParentType::infinity_)); 2839 EXPECT_FALSE(m3.Matches(ParentType::close_to_infinity_)); 2840 EXPECT_FALSE(m3.Matches(-ParentType::infinity_)); 2841 2842 Matcher<RawType> m4 = matcher_maker(-ParentType::infinity_, 0.0); 2843 EXPECT_TRUE(m4.Matches(-ParentType::infinity_)); 2844 EXPECT_FALSE(m4.Matches(-ParentType::close_to_infinity_)); 2845 EXPECT_FALSE(m4.Matches(ParentType::infinity_)); 2846 2847 // Test various overflow scenarios. 2848 Matcher<RawType> m5 = matcher_maker(ParentType::max_, ParentType::max_); 2849 EXPECT_TRUE(m5.Matches(ParentType::max_)); 2850 EXPECT_FALSE(m5.Matches(-ParentType::max_)); 2851 2852 Matcher<RawType> m6 = matcher_maker(-ParentType::max_, ParentType::max_); 2853 EXPECT_FALSE(m6.Matches(ParentType::max_)); 2854 EXPECT_TRUE(m6.Matches(-ParentType::max_)); 2855 2856 Matcher<RawType> m7 = matcher_maker(ParentType::max_, 0); 2857 EXPECT_TRUE(m7.Matches(ParentType::max_)); 2858 EXPECT_FALSE(m7.Matches(-ParentType::max_)); 2859 2860 Matcher<RawType> m8 = matcher_maker(-ParentType::max_, 0); 2861 EXPECT_FALSE(m8.Matches(ParentType::max_)); 2862 EXPECT_TRUE(m8.Matches(-ParentType::max_)); 2863 2864 // The difference between max() and -max() normally overflows to infinity, 2865 // but it should still match if the max_abs_error is also infinity. 2866 Matcher<RawType> m9 = matcher_maker( 2867 ParentType::max_, ParentType::infinity_); 2868 EXPECT_TRUE(m8.Matches(-ParentType::max_)); 2869 2870 // matcher_maker can produce a Matcher<const RawType&>, which is needed in 2871 // some cases. 2872 Matcher<const RawType&> m10 = matcher_maker(0.0, 1.0); 2873 EXPECT_TRUE(m10.Matches(-0.0)); 2874 EXPECT_TRUE(m10.Matches(ParentType::close_to_positive_zero_)); 2875 EXPECT_FALSE(m10.Matches(ParentType::close_to_one_)); 2876 2877 // matcher_maker can produce a Matcher<RawType&>, which is needed in some 2878 // cases. 2879 Matcher<RawType&> m11 = matcher_maker(0.0, 1.0); 2880 RawType x = 0.0; 2881 EXPECT_TRUE(m11.Matches(x)); 2882 x = 1.0f; 2883 EXPECT_TRUE(m11.Matches(x)); 2884 x = -1.0f; 2885 EXPECT_TRUE(m11.Matches(x)); 2886 x = 1.1f; 2887 EXPECT_FALSE(m11.Matches(x)); 2888 x = -1.1f; 2889 EXPECT_FALSE(m11.Matches(x)); 2890 } 2891 }; 2892 2893 // Instantiate FloatingPointTest for testing floats. 2894 typedef FloatingPointTest<float> FloatTest; 2895 2896 TEST_F(FloatTest, FloatEqApproximatelyMatchesFloats) { 2897 TestMatches(&FloatEq); 2898 } 2899 2900 TEST_F(FloatTest, NanSensitiveFloatEqApproximatelyMatchesFloats) { 2901 TestMatches(&NanSensitiveFloatEq); 2902 } 2903 2904 TEST_F(FloatTest, FloatEqCannotMatchNaN) { 2905 // FloatEq never matches NaN. 2906 Matcher<float> m = FloatEq(nan1_); 2907 EXPECT_FALSE(m.Matches(nan1_)); 2908 EXPECT_FALSE(m.Matches(nan2_)); 2909 EXPECT_FALSE(m.Matches(1.0)); 2910 } 2911 2912 TEST_F(FloatTest, NanSensitiveFloatEqCanMatchNaN) { 2913 // NanSensitiveFloatEq will match NaN. 2914 Matcher<float> m = NanSensitiveFloatEq(nan1_); 2915 EXPECT_TRUE(m.Matches(nan1_)); 2916 EXPECT_TRUE(m.Matches(nan2_)); 2917 EXPECT_FALSE(m.Matches(1.0)); 2918 } 2919 2920 TEST_F(FloatTest, FloatEqCanDescribeSelf) { 2921 Matcher<float> m1 = FloatEq(2.0f); 2922 EXPECT_EQ("is approximately 2", Describe(m1)); 2923 EXPECT_EQ("isn't approximately 2", DescribeNegation(m1)); 2924 2925 Matcher<float> m2 = FloatEq(0.5f); 2926 EXPECT_EQ("is approximately 0.5", Describe(m2)); 2927 EXPECT_EQ("isn't approximately 0.5", DescribeNegation(m2)); 2928 2929 Matcher<float> m3 = FloatEq(nan1_); 2930 EXPECT_EQ("never matches", Describe(m3)); 2931 EXPECT_EQ("is anything", DescribeNegation(m3)); 2932 } 2933 2934 TEST_F(FloatTest, NanSensitiveFloatEqCanDescribeSelf) { 2935 Matcher<float> m1 = NanSensitiveFloatEq(2.0f); 2936 EXPECT_EQ("is approximately 2", Describe(m1)); 2937 EXPECT_EQ("isn't approximately 2", DescribeNegation(m1)); 2938 2939 Matcher<float> m2 = NanSensitiveFloatEq(0.5f); 2940 EXPECT_EQ("is approximately 0.5", Describe(m2)); 2941 EXPECT_EQ("isn't approximately 0.5", DescribeNegation(m2)); 2942 2943 Matcher<float> m3 = NanSensitiveFloatEq(nan1_); 2944 EXPECT_EQ("is NaN", Describe(m3)); 2945 EXPECT_EQ("isn't NaN", DescribeNegation(m3)); 2946 } 2947 2948 // Instantiate FloatingPointTest for testing floats with a user-specified 2949 // max absolute error. 2950 typedef FloatingPointNearTest<float> FloatNearTest; 2951 2952 TEST_F(FloatNearTest, FloatNearMatches) { 2953 TestNearMatches(&FloatNear); 2954 } 2955 2956 TEST_F(FloatNearTest, NanSensitiveFloatNearApproximatelyMatchesFloats) { 2957 TestNearMatches(&NanSensitiveFloatNear); 2958 } 2959 2960 TEST_F(FloatNearTest, FloatNearCanDescribeSelf) { 2961 Matcher<float> m1 = FloatNear(2.0f, 0.5f); 2962 EXPECT_EQ("is approximately 2 (absolute error <= 0.5)", Describe(m1)); 2963 EXPECT_EQ( 2964 "isn't approximately 2 (absolute error > 0.5)", DescribeNegation(m1)); 2965 2966 Matcher<float> m2 = FloatNear(0.5f, 0.5f); 2967 EXPECT_EQ("is approximately 0.5 (absolute error <= 0.5)", Describe(m2)); 2968 EXPECT_EQ( 2969 "isn't approximately 0.5 (absolute error > 0.5)", DescribeNegation(m2)); 2970 2971 Matcher<float> m3 = FloatNear(nan1_, 0.0); 2972 EXPECT_EQ("never matches", Describe(m3)); 2973 EXPECT_EQ("is anything", DescribeNegation(m3)); 2974 } 2975 2976 TEST_F(FloatNearTest, NanSensitiveFloatNearCanDescribeSelf) { 2977 Matcher<float> m1 = NanSensitiveFloatNear(2.0f, 0.5f); 2978 EXPECT_EQ("is approximately 2 (absolute error <= 0.5)", Describe(m1)); 2979 EXPECT_EQ( 2980 "isn't approximately 2 (absolute error > 0.5)", DescribeNegation(m1)); 2981 2982 Matcher<float> m2 = NanSensitiveFloatNear(0.5f, 0.5f); 2983 EXPECT_EQ("is approximately 0.5 (absolute error <= 0.5)", Describe(m2)); 2984 EXPECT_EQ( 2985 "isn't approximately 0.5 (absolute error > 0.5)", DescribeNegation(m2)); 2986 2987 Matcher<float> m3 = NanSensitiveFloatNear(nan1_, 0.1f); 2988 EXPECT_EQ("is NaN", Describe(m3)); 2989 EXPECT_EQ("isn't NaN", DescribeNegation(m3)); 2990 } 2991 2992 TEST_F(FloatNearTest, FloatNearCannotMatchNaN) { 2993 // FloatNear never matches NaN. 2994 Matcher<float> m = FloatNear(ParentType::nan1_, 0.1f); 2995 EXPECT_FALSE(m.Matches(nan1_)); 2996 EXPECT_FALSE(m.Matches(nan2_)); 2997 EXPECT_FALSE(m.Matches(1.0)); 2998 } 2999 3000 TEST_F(FloatNearTest, NanSensitiveFloatNearCanMatchNaN) { 3001 // NanSensitiveFloatNear will match NaN. 3002 Matcher<float> m = NanSensitiveFloatNear(nan1_, 0.1f); 3003 EXPECT_TRUE(m.Matches(nan1_)); 3004 EXPECT_TRUE(m.Matches(nan2_)); 3005 EXPECT_FALSE(m.Matches(1.0)); 3006 } 3007 3008 // Instantiate FloatingPointTest for testing doubles. 3009 typedef FloatingPointTest<double> DoubleTest; 3010 3011 TEST_F(DoubleTest, DoubleEqApproximatelyMatchesDoubles) { 3012 TestMatches(&DoubleEq); 3013 } 3014 3015 TEST_F(DoubleTest, NanSensitiveDoubleEqApproximatelyMatchesDoubles) { 3016 TestMatches(&NanSensitiveDoubleEq); 3017 } 3018 3019 TEST_F(DoubleTest, DoubleEqCannotMatchNaN) { 3020 // DoubleEq never matches NaN. 3021 Matcher<double> m = DoubleEq(nan1_); 3022 EXPECT_FALSE(m.Matches(nan1_)); 3023 EXPECT_FALSE(m.Matches(nan2_)); 3024 EXPECT_FALSE(m.Matches(1.0)); 3025 } 3026 3027 TEST_F(DoubleTest, NanSensitiveDoubleEqCanMatchNaN) { 3028 // NanSensitiveDoubleEq will match NaN. 3029 Matcher<double> m = NanSensitiveDoubleEq(nan1_); 3030 EXPECT_TRUE(m.Matches(nan1_)); 3031 EXPECT_TRUE(m.Matches(nan2_)); 3032 EXPECT_FALSE(m.Matches(1.0)); 3033 } 3034 3035 TEST_F(DoubleTest, DoubleEqCanDescribeSelf) { 3036 Matcher<double> m1 = DoubleEq(2.0); 3037 EXPECT_EQ("is approximately 2", Describe(m1)); 3038 EXPECT_EQ("isn't approximately 2", DescribeNegation(m1)); 3039 3040 Matcher<double> m2 = DoubleEq(0.5); 3041 EXPECT_EQ("is approximately 0.5", Describe(m2)); 3042 EXPECT_EQ("isn't approximately 0.5", DescribeNegation(m2)); 3043 3044 Matcher<double> m3 = DoubleEq(nan1_); 3045 EXPECT_EQ("never matches", Describe(m3)); 3046 EXPECT_EQ("is anything", DescribeNegation(m3)); 3047 } 3048 3049 TEST_F(DoubleTest, NanSensitiveDoubleEqCanDescribeSelf) { 3050 Matcher<double> m1 = NanSensitiveDoubleEq(2.0); 3051 EXPECT_EQ("is approximately 2", Describe(m1)); 3052 EXPECT_EQ("isn't approximately 2", DescribeNegation(m1)); 3053 3054 Matcher<double> m2 = NanSensitiveDoubleEq(0.5); 3055 EXPECT_EQ("is approximately 0.5", Describe(m2)); 3056 EXPECT_EQ("isn't approximately 0.5", DescribeNegation(m2)); 3057 3058 Matcher<double> m3 = NanSensitiveDoubleEq(nan1_); 3059 EXPECT_EQ("is NaN", Describe(m3)); 3060 EXPECT_EQ("isn't NaN", DescribeNegation(m3)); 3061 } 3062 3063 // Instantiate FloatingPointTest for testing floats with a user-specified 3064 // max absolute error. 3065 typedef FloatingPointNearTest<double> DoubleNearTest; 3066 3067 TEST_F(DoubleNearTest, DoubleNearMatches) { 3068 TestNearMatches(&DoubleNear); 3069 } 3070 3071 TEST_F(DoubleNearTest, NanSensitiveDoubleNearApproximatelyMatchesDoubles) { 3072 TestNearMatches(&NanSensitiveDoubleNear); 3073 } 3074 3075 TEST_F(DoubleNearTest, DoubleNearCanDescribeSelf) { 3076 Matcher<double> m1 = DoubleNear(2.0, 0.5); 3077 EXPECT_EQ("is approximately 2 (absolute error <= 0.5)", Describe(m1)); 3078 EXPECT_EQ( 3079 "isn't approximately 2 (absolute error > 0.5)", DescribeNegation(m1)); 3080 3081 Matcher<double> m2 = DoubleNear(0.5, 0.5); 3082 EXPECT_EQ("is approximately 0.5 (absolute error <= 0.5)", Describe(m2)); 3083 EXPECT_EQ( 3084 "isn't approximately 0.5 (absolute error > 0.5)", DescribeNegation(m2)); 3085 3086 Matcher<double> m3 = DoubleNear(nan1_, 0.0); 3087 EXPECT_EQ("never matches", Describe(m3)); 3088 EXPECT_EQ("is anything", DescribeNegation(m3)); 3089 } 3090 3091 TEST_F(DoubleNearTest, ExplainsResultWhenMatchFails) { 3092 EXPECT_EQ("", Explain(DoubleNear(2.0, 0.1), 2.05)); 3093 EXPECT_EQ("which is 0.2 from 2", Explain(DoubleNear(2.0, 0.1), 2.2)); 3094 EXPECT_EQ("which is -0.3 from 2", Explain(DoubleNear(2.0, 0.1), 1.7)); 3095 3096 const string explanation = Explain(DoubleNear(2.1, 1e-10), 2.1 + 1.2e-10); 3097 // Different C++ implementations may print floating-point numbers 3098 // slightly differently. 3099 EXPECT_TRUE(explanation == "which is 1.2e-10 from 2.1" || // GCC 3100 explanation == "which is 1.2e-010 from 2.1") // MSVC 3101 << " where explanation is \"" << explanation << "\"."; 3102 } 3103 3104 TEST_F(DoubleNearTest, NanSensitiveDoubleNearCanDescribeSelf) { 3105 Matcher<double> m1 = NanSensitiveDoubleNear(2.0, 0.5); 3106 EXPECT_EQ("is approximately 2 (absolute error <= 0.5)", Describe(m1)); 3107 EXPECT_EQ( 3108 "isn't approximately 2 (absolute error > 0.5)", DescribeNegation(m1)); 3109 3110 Matcher<double> m2 = NanSensitiveDoubleNear(0.5, 0.5); 3111 EXPECT_EQ("is approximately 0.5 (absolute error <= 0.5)", Describe(m2)); 3112 EXPECT_EQ( 3113 "isn't approximately 0.5 (absolute error > 0.5)", DescribeNegation(m2)); 3114 3115 Matcher<double> m3 = NanSensitiveDoubleNear(nan1_, 0.1); 3116 EXPECT_EQ("is NaN", Describe(m3)); 3117 EXPECT_EQ("isn't NaN", DescribeNegation(m3)); 3118 } 3119 3120 TEST_F(DoubleNearTest, DoubleNearCannotMatchNaN) { 3121 // DoubleNear never matches NaN. 3122 Matcher<double> m = DoubleNear(ParentType::nan1_, 0.1); 3123 EXPECT_FALSE(m.Matches(nan1_)); 3124 EXPECT_FALSE(m.Matches(nan2_)); 3125 EXPECT_FALSE(m.Matches(1.0)); 3126 } 3127 3128 TEST_F(DoubleNearTest, NanSensitiveDoubleNearCanMatchNaN) { 3129 // NanSensitiveDoubleNear will match NaN. 3130 Matcher<double> m = NanSensitiveDoubleNear(nan1_, 0.1); 3131 EXPECT_TRUE(m.Matches(nan1_)); 3132 EXPECT_TRUE(m.Matches(nan2_)); 3133 EXPECT_FALSE(m.Matches(1.0)); 3134 } 3135 3136 TEST(PointeeTest, RawPointer) { 3137 const Matcher<int*> m = Pointee(Ge(0)); 3138 3139 int n = 1; 3140 EXPECT_TRUE(m.Matches(&n)); 3141 n = -1; 3142 EXPECT_FALSE(m.Matches(&n)); 3143 EXPECT_FALSE(m.Matches(NULL)); 3144 } 3145 3146 TEST(PointeeTest, RawPointerToConst) { 3147 const Matcher<const double*> m = Pointee(Ge(0)); 3148 3149 double x = 1; 3150 EXPECT_TRUE(m.Matches(&x)); 3151 x = -1; 3152 EXPECT_FALSE(m.Matches(&x)); 3153 EXPECT_FALSE(m.Matches(NULL)); 3154 } 3155 3156 TEST(PointeeTest, ReferenceToConstRawPointer) { 3157 const Matcher<int* const &> m = Pointee(Ge(0)); 3158 3159 int n = 1; 3160 EXPECT_TRUE(m.Matches(&n)); 3161 n = -1; 3162 EXPECT_FALSE(m.Matches(&n)); 3163 EXPECT_FALSE(m.Matches(NULL)); 3164 } 3165 3166 TEST(PointeeTest, ReferenceToNonConstRawPointer) { 3167 const Matcher<double* &> m = Pointee(Ge(0)); 3168 3169 double x = 1.0; 3170 double* p = &x; 3171 EXPECT_TRUE(m.Matches(p)); 3172 x = -1; 3173 EXPECT_FALSE(m.Matches(p)); 3174 p = NULL; 3175 EXPECT_FALSE(m.Matches(p)); 3176 } 3177 3178 MATCHER_P(FieldIIs, inner_matcher, "") { 3179 return ExplainMatchResult(inner_matcher, arg.i, result_listener); 3180 } 3181 3182 TEST(WhenDynamicCastToTest, SameType) { 3183 Derived derived; 3184 derived.i = 4; 3185 3186 // Right type. A pointer is passed down. 3187 Base* as_base_ptr = &derived; 3188 EXPECT_THAT(as_base_ptr, WhenDynamicCastTo<Derived*>(Not(IsNull()))); 3189 EXPECT_THAT(as_base_ptr, WhenDynamicCastTo<Derived*>(Pointee(FieldIIs(4)))); 3190 EXPECT_THAT(as_base_ptr, 3191 Not(WhenDynamicCastTo<Derived*>(Pointee(FieldIIs(5))))); 3192 } 3193 3194 TEST(WhenDynamicCastToTest, WrongTypes) { 3195 Base base; 3196 Derived derived; 3197 OtherDerived other_derived; 3198 3199 // Wrong types. NULL is passed. 3200 EXPECT_THAT(&base, Not(WhenDynamicCastTo<Derived*>(Pointee(_)))); 3201 EXPECT_THAT(&base, WhenDynamicCastTo<Derived*>(IsNull())); 3202 Base* as_base_ptr = &derived; 3203 EXPECT_THAT(as_base_ptr, Not(WhenDynamicCastTo<OtherDerived*>(Pointee(_)))); 3204 EXPECT_THAT(as_base_ptr, WhenDynamicCastTo<OtherDerived*>(IsNull())); 3205 as_base_ptr = &other_derived; 3206 EXPECT_THAT(as_base_ptr, Not(WhenDynamicCastTo<Derived*>(Pointee(_)))); 3207 EXPECT_THAT(as_base_ptr, WhenDynamicCastTo<Derived*>(IsNull())); 3208 } 3209 3210 TEST(WhenDynamicCastToTest, AlreadyNull) { 3211 // Already NULL. 3212 Base* as_base_ptr = NULL; 3213 EXPECT_THAT(as_base_ptr, WhenDynamicCastTo<Derived*>(IsNull())); 3214 } 3215 3216 struct AmbiguousCastTypes { 3217 class VirtualDerived : public virtual Base {}; 3218 class DerivedSub1 : public VirtualDerived {}; 3219 class DerivedSub2 : public VirtualDerived {}; 3220 class ManyDerivedInHierarchy : public DerivedSub1, public DerivedSub2 {}; 3221 }; 3222 3223 TEST(WhenDynamicCastToTest, AmbiguousCast) { 3224 AmbiguousCastTypes::DerivedSub1 sub1; 3225 AmbiguousCastTypes::ManyDerivedInHierarchy many_derived; 3226 // Multiply derived from Base. dynamic_cast<> returns NULL. 3227 Base* as_base_ptr = 3228 static_cast<AmbiguousCastTypes::DerivedSub1*>(&many_derived); 3229 EXPECT_THAT(as_base_ptr, 3230 WhenDynamicCastTo<AmbiguousCastTypes::VirtualDerived*>(IsNull())); 3231 as_base_ptr = &sub1; 3232 EXPECT_THAT( 3233 as_base_ptr, 3234 WhenDynamicCastTo<AmbiguousCastTypes::VirtualDerived*>(Not(IsNull()))); 3235 } 3236 3237 TEST(WhenDynamicCastToTest, Describe) { 3238 Matcher<Base*> matcher = WhenDynamicCastTo<Derived*>(Pointee(_)); 3239 #if GTEST_HAS_RTTI 3240 const string prefix = 3241 "when dynamic_cast to " + internal::GetTypeName<Derived*>() + ", "; 3242 #else // GTEST_HAS_RTTI 3243 const string prefix = "when dynamic_cast, "; 3244 #endif // GTEST_HAS_RTTI 3245 EXPECT_EQ(prefix + "points to a value that is anything", Describe(matcher)); 3246 EXPECT_EQ(prefix + "does not point to a value that is anything", 3247 DescribeNegation(matcher)); 3248 } 3249 3250 TEST(WhenDynamicCastToTest, Explain) { 3251 Matcher<Base*> matcher = WhenDynamicCastTo<Derived*>(Pointee(_)); 3252 Base* null = NULL; 3253 EXPECT_THAT(Explain(matcher, null), HasSubstr("NULL")); 3254 Derived derived; 3255 EXPECT_TRUE(matcher.Matches(&derived)); 3256 EXPECT_THAT(Explain(matcher, &derived), HasSubstr("which points to ")); 3257 3258 // With references, the matcher itself can fail. Test for that one. 3259 Matcher<const Base&> ref_matcher = WhenDynamicCastTo<const OtherDerived&>(_); 3260 EXPECT_THAT(Explain(ref_matcher, derived), 3261 HasSubstr("which cannot be dynamic_cast")); 3262 } 3263 3264 TEST(WhenDynamicCastToTest, GoodReference) { 3265 Derived derived; 3266 derived.i = 4; 3267 Base& as_base_ref = derived; 3268 EXPECT_THAT(as_base_ref, WhenDynamicCastTo<const Derived&>(FieldIIs(4))); 3269 EXPECT_THAT(as_base_ref, WhenDynamicCastTo<const Derived&>(Not(FieldIIs(5)))); 3270 } 3271 3272 TEST(WhenDynamicCastToTest, BadReference) { 3273 Derived derived; 3274 Base& as_base_ref = derived; 3275 EXPECT_THAT(as_base_ref, Not(WhenDynamicCastTo<const OtherDerived&>(_))); 3276 } 3277 3278 // Minimal const-propagating pointer. 3279 template <typename T> 3280 class ConstPropagatingPtr { 3281 public: 3282 typedef T element_type; 3283 3284 ConstPropagatingPtr() : val_() {} 3285 explicit ConstPropagatingPtr(T* t) : val_(t) {} 3286 ConstPropagatingPtr(const ConstPropagatingPtr& other) : val_(other.val_) {} 3287 3288 T* get() { return val_; } 3289 T& operator*() { return *val_; } 3290 // Most smart pointers return non-const T* and T& from the next methods. 3291 const T* get() const { return val_; } 3292 const T& operator*() const { return *val_; } 3293 3294 private: 3295 T* val_; 3296 }; 3297 3298 TEST(PointeeTest, WorksWithConstPropagatingPointers) { 3299 const Matcher< ConstPropagatingPtr<int> > m = Pointee(Lt(5)); 3300 int three = 3; 3301 const ConstPropagatingPtr<int> co(&three); 3302 ConstPropagatingPtr<int> o(&three); 3303 EXPECT_TRUE(m.Matches(o)); 3304 EXPECT_TRUE(m.Matches(co)); 3305 *o = 6; 3306 EXPECT_FALSE(m.Matches(o)); 3307 EXPECT_FALSE(m.Matches(ConstPropagatingPtr<int>())); 3308 } 3309 3310 TEST(PointeeTest, NeverMatchesNull) { 3311 const Matcher<const char*> m = Pointee(_); 3312 EXPECT_FALSE(m.Matches(NULL)); 3313 } 3314 3315 // Tests that we can write Pointee(value) instead of Pointee(Eq(value)). 3316 TEST(PointeeTest, MatchesAgainstAValue) { 3317 const Matcher<int*> m = Pointee(5); 3318 3319 int n = 5; 3320 EXPECT_TRUE(m.Matches(&n)); 3321 n = -1; 3322 EXPECT_FALSE(m.Matches(&n)); 3323 EXPECT_FALSE(m.Matches(NULL)); 3324 } 3325 3326 TEST(PointeeTest, CanDescribeSelf) { 3327 const Matcher<int*> m = Pointee(Gt(3)); 3328 EXPECT_EQ("points to a value that is > 3", Describe(m)); 3329 EXPECT_EQ("does not point to a value that is > 3", 3330 DescribeNegation(m)); 3331 } 3332 3333 TEST(PointeeTest, CanExplainMatchResult) { 3334 const Matcher<const string*> m = Pointee(StartsWith("Hi")); 3335 3336 EXPECT_EQ("", Explain(m, static_cast<const string*>(NULL))); 3337 3338 const Matcher<long*> m2 = Pointee(GreaterThan(1)); // NOLINT 3339 long n = 3; // NOLINT 3340 EXPECT_EQ("which points to 3" + OfType("long") + ", which is 2 more than 1", 3341 Explain(m2, &n)); 3342 } 3343 3344 TEST(PointeeTest, AlwaysExplainsPointee) { 3345 const Matcher<int*> m = Pointee(0); 3346 int n = 42; 3347 EXPECT_EQ("which points to 42" + OfType("int"), Explain(m, &n)); 3348 } 3349 3350 // An uncopyable class. 3351 class Uncopyable { 3352 public: 3353 Uncopyable() : value_(-1) {} 3354 explicit Uncopyable(int a_value) : value_(a_value) {} 3355 3356 int value() const { return value_; } 3357 void set_value(int i) { value_ = i; } 3358 3359 private: 3360 int value_; 3361 GTEST_DISALLOW_COPY_AND_ASSIGN_(Uncopyable); 3362 }; 3363 3364 // Returns true iff x.value() is positive. 3365 bool ValueIsPositive(const Uncopyable& x) { return x.value() > 0; } 3366 3367 MATCHER_P(UncopyableIs, inner_matcher, "") { 3368 return ExplainMatchResult(inner_matcher, arg.value(), result_listener); 3369 } 3370 3371 // A user-defined struct for testing Field(). 3372 struct AStruct { 3373 AStruct() : x(0), y(1.0), z(5), p(NULL) {} 3374 AStruct(const AStruct& rhs) 3375 : x(rhs.x), y(rhs.y), z(rhs.z.value()), p(rhs.p) {} 3376 3377 int x; // A non-const field. 3378 const double y; // A const field. 3379 Uncopyable z; // An uncopyable field. 3380 const char* p; // A pointer field. 3381 3382 private: 3383 GTEST_DISALLOW_ASSIGN_(AStruct); 3384 }; 3385 3386 // A derived struct for testing Field(). 3387 struct DerivedStruct : public AStruct { 3388 char ch; 3389 3390 private: 3391 GTEST_DISALLOW_ASSIGN_(DerivedStruct); 3392 }; 3393 3394 // Tests that Field(&Foo::field, ...) works when field is non-const. 3395 TEST(FieldTest, WorksForNonConstField) { 3396 Matcher<AStruct> m = Field(&AStruct::x, Ge(0)); 3397 3398 AStruct a; 3399 EXPECT_TRUE(m.Matches(a)); 3400 a.x = -1; 3401 EXPECT_FALSE(m.Matches(a)); 3402 } 3403 3404 // Tests that Field(&Foo::field, ...) works when field is const. 3405 TEST(FieldTest, WorksForConstField) { 3406 AStruct a; 3407 3408 Matcher<AStruct> m = Field(&AStruct::y, Ge(0.0)); 3409 EXPECT_TRUE(m.Matches(a)); 3410 m = Field(&AStruct::y, Le(0.0)); 3411 EXPECT_FALSE(m.Matches(a)); 3412 } 3413 3414 // Tests that Field(&Foo::field, ...) works when field is not copyable. 3415 TEST(FieldTest, WorksForUncopyableField) { 3416 AStruct a; 3417 3418 Matcher<AStruct> m = Field(&AStruct::z, Truly(ValueIsPositive)); 3419 EXPECT_TRUE(m.Matches(a)); 3420 m = Field(&AStruct::z, Not(Truly(ValueIsPositive))); 3421 EXPECT_FALSE(m.Matches(a)); 3422 } 3423 3424 // Tests that Field(&Foo::field, ...) works when field is a pointer. 3425 TEST(FieldTest, WorksForPointerField) { 3426 // Matching against NULL. 3427 Matcher<AStruct> m = Field(&AStruct::p, static_cast<const char*>(NULL)); 3428 AStruct a; 3429 EXPECT_TRUE(m.Matches(a)); 3430 a.p = "hi"; 3431 EXPECT_FALSE(m.Matches(a)); 3432 3433 // Matching a pointer that is not NULL. 3434 m = Field(&AStruct::p, StartsWith("hi")); 3435 a.p = "hill"; 3436 EXPECT_TRUE(m.Matches(a)); 3437 a.p = "hole"; 3438 EXPECT_FALSE(m.Matches(a)); 3439 } 3440 3441 // Tests that Field() works when the object is passed by reference. 3442 TEST(FieldTest, WorksForByRefArgument) { 3443 Matcher<const AStruct&> m = Field(&AStruct::x, Ge(0)); 3444 3445 AStruct a; 3446 EXPECT_TRUE(m.Matches(a)); 3447 a.x = -1; 3448 EXPECT_FALSE(m.Matches(a)); 3449 } 3450 3451 // Tests that Field(&Foo::field, ...) works when the argument's type 3452 // is a sub-type of Foo. 3453 TEST(FieldTest, WorksForArgumentOfSubType) { 3454 // Note that the matcher expects DerivedStruct but we say AStruct 3455 // inside Field(). 3456 Matcher<const DerivedStruct&> m = Field(&AStruct::x, Ge(0)); 3457 3458 DerivedStruct d; 3459 EXPECT_TRUE(m.Matches(d)); 3460 d.x = -1; 3461 EXPECT_FALSE(m.Matches(d)); 3462 } 3463 3464 // Tests that Field(&Foo::field, m) works when field's type and m's 3465 // argument type are compatible but not the same. 3466 TEST(FieldTest, WorksForCompatibleMatcherType) { 3467 // The field is an int, but the inner matcher expects a signed char. 3468 Matcher<const AStruct&> m = Field(&AStruct::x, 3469 Matcher<signed char>(Ge(0))); 3470 3471 AStruct a; 3472 EXPECT_TRUE(m.Matches(a)); 3473 a.x = -1; 3474 EXPECT_FALSE(m.Matches(a)); 3475 } 3476 3477 // Tests that Field() can describe itself. 3478 TEST(FieldTest, CanDescribeSelf) { 3479 Matcher<const AStruct&> m = Field(&AStruct::x, Ge(0)); 3480 3481 EXPECT_EQ("is an object whose given field is >= 0", Describe(m)); 3482 EXPECT_EQ("is an object whose given field isn't >= 0", DescribeNegation(m)); 3483 } 3484 3485 // Tests that Field() can explain the match result. 3486 TEST(FieldTest, CanExplainMatchResult) { 3487 Matcher<const AStruct&> m = Field(&AStruct::x, Ge(0)); 3488 3489 AStruct a; 3490 a.x = 1; 3491 EXPECT_EQ("whose given field is 1" + OfType("int"), Explain(m, a)); 3492 3493 m = Field(&AStruct::x, GreaterThan(0)); 3494 EXPECT_EQ( 3495 "whose given field is 1" + OfType("int") + ", which is 1 more than 0", 3496 Explain(m, a)); 3497 } 3498 3499 // Tests that Field() works when the argument is a pointer to const. 3500 TEST(FieldForPointerTest, WorksForPointerToConst) { 3501 Matcher<const AStruct*> m = Field(&AStruct::x, Ge(0)); 3502 3503 AStruct a; 3504 EXPECT_TRUE(m.Matches(&a)); 3505 a.x = -1; 3506 EXPECT_FALSE(m.Matches(&a)); 3507 } 3508 3509 // Tests that Field() works when the argument is a pointer to non-const. 3510 TEST(FieldForPointerTest, WorksForPointerToNonConst) { 3511 Matcher<AStruct*> m = Field(&AStruct::x, Ge(0)); 3512 3513 AStruct a; 3514 EXPECT_TRUE(m.Matches(&a)); 3515 a.x = -1; 3516 EXPECT_FALSE(m.Matches(&a)); 3517 } 3518 3519 // Tests that Field() works when the argument is a reference to a const pointer. 3520 TEST(FieldForPointerTest, WorksForReferenceToConstPointer) { 3521 Matcher<AStruct* const&> m = Field(&AStruct::x, Ge(0)); 3522 3523 AStruct a; 3524 EXPECT_TRUE(m.Matches(&a)); 3525 a.x = -1; 3526 EXPECT_FALSE(m.Matches(&a)); 3527 } 3528 3529 // Tests that Field() does not match the NULL pointer. 3530 TEST(FieldForPointerTest, DoesNotMatchNull) { 3531 Matcher<const AStruct*> m = Field(&AStruct::x, _); 3532 EXPECT_FALSE(m.Matches(NULL)); 3533 } 3534 3535 // Tests that Field(&Foo::field, ...) works when the argument's type 3536 // is a sub-type of const Foo*. 3537 TEST(FieldForPointerTest, WorksForArgumentOfSubType) { 3538 // Note that the matcher expects DerivedStruct but we say AStruct 3539 // inside Field(). 3540 Matcher<DerivedStruct*> m = Field(&AStruct::x, Ge(0)); 3541 3542 DerivedStruct d; 3543 EXPECT_TRUE(m.Matches(&d)); 3544 d.x = -1; 3545 EXPECT_FALSE(m.Matches(&d)); 3546 } 3547 3548 // Tests that Field() can describe itself when used to match a pointer. 3549 TEST(FieldForPointerTest, CanDescribeSelf) { 3550 Matcher<const AStruct*> m = Field(&AStruct::x, Ge(0)); 3551 3552 EXPECT_EQ("is an object whose given field is >= 0", Describe(m)); 3553 EXPECT_EQ("is an object whose given field isn't >= 0", DescribeNegation(m)); 3554 } 3555 3556 // Tests that Field() can explain the result of matching a pointer. 3557 TEST(FieldForPointerTest, CanExplainMatchResult) { 3558 Matcher<const AStruct*> m = Field(&AStruct::x, Ge(0)); 3559 3560 AStruct a; 3561 a.x = 1; 3562 EXPECT_EQ("", Explain(m, static_cast<const AStruct*>(NULL))); 3563 EXPECT_EQ("which points to an object whose given field is 1" + OfType("int"), 3564 Explain(m, &a)); 3565 3566 m = Field(&AStruct::x, GreaterThan(0)); 3567 EXPECT_EQ("which points to an object whose given field is 1" + OfType("int") + 3568 ", which is 1 more than 0", Explain(m, &a)); 3569 } 3570 3571 // A user-defined class for testing Property(). 3572 class AClass { 3573 public: 3574 AClass() : n_(0) {} 3575 3576 // A getter that returns a non-reference. 3577 int n() const { return n_; } 3578 3579 void set_n(int new_n) { n_ = new_n; } 3580 3581 // A getter that returns a reference to const. 3582 const string& s() const { return s_; } 3583 3584 void set_s(const string& new_s) { s_ = new_s; } 3585 3586 // A getter that returns a reference to non-const. 3587 double& x() const { return x_; } 3588 private: 3589 int n_; 3590 string s_; 3591 3592 static double x_; 3593 }; 3594 3595 double AClass::x_ = 0.0; 3596 3597 // A derived class for testing Property(). 3598 class DerivedClass : public AClass { 3599 public: 3600 int k() const { return k_; } 3601 private: 3602 int k_; 3603 }; 3604 3605 // Tests that Property(&Foo::property, ...) works when property() 3606 // returns a non-reference. 3607 TEST(PropertyTest, WorksForNonReferenceProperty) { 3608 Matcher<const AClass&> m = Property(&AClass::n, Ge(0)); 3609 3610 AClass a; 3611 a.set_n(1); 3612 EXPECT_TRUE(m.Matches(a)); 3613 3614 a.set_n(-1); 3615 EXPECT_FALSE(m.Matches(a)); 3616 } 3617 3618 // Tests that Property(&Foo::property, ...) works when property() 3619 // returns a reference to const. 3620 TEST(PropertyTest, WorksForReferenceToConstProperty) { 3621 Matcher<const AClass&> m = Property(&AClass::s, StartsWith("hi")); 3622 3623 AClass a; 3624 a.set_s("hill"); 3625 EXPECT_TRUE(m.Matches(a)); 3626 3627 a.set_s("hole"); 3628 EXPECT_FALSE(m.Matches(a)); 3629 } 3630 3631 // Tests that Property(&Foo::property, ...) works when property() 3632 // returns a reference to non-const. 3633 TEST(PropertyTest, WorksForReferenceToNonConstProperty) { 3634 double x = 0.0; 3635 AClass a; 3636 3637 Matcher<const AClass&> m = Property(&AClass::x, Ref(x)); 3638 EXPECT_FALSE(m.Matches(a)); 3639 3640 m = Property(&AClass::x, Not(Ref(x))); 3641 EXPECT_TRUE(m.Matches(a)); 3642 } 3643 3644 // Tests that Property(&Foo::property, ...) works when the argument is 3645 // passed by value. 3646 TEST(PropertyTest, WorksForByValueArgument) { 3647 Matcher<AClass> m = Property(&AClass::s, StartsWith("hi")); 3648 3649 AClass a; 3650 a.set_s("hill"); 3651 EXPECT_TRUE(m.Matches(a)); 3652 3653 a.set_s("hole"); 3654 EXPECT_FALSE(m.Matches(a)); 3655 } 3656 3657 // Tests that Property(&Foo::property, ...) works when the argument's 3658 // type is a sub-type of Foo. 3659 TEST(PropertyTest, WorksForArgumentOfSubType) { 3660 // The matcher expects a DerivedClass, but inside the Property() we 3661 // say AClass. 3662 Matcher<const DerivedClass&> m = Property(&AClass::n, Ge(0)); 3663 3664 DerivedClass d; 3665 d.set_n(1); 3666 EXPECT_TRUE(m.Matches(d)); 3667 3668 d.set_n(-1); 3669 EXPECT_FALSE(m.Matches(d)); 3670 } 3671 3672 // Tests that Property(&Foo::property, m) works when property()'s type 3673 // and m's argument type are compatible but different. 3674 TEST(PropertyTest, WorksForCompatibleMatcherType) { 3675 // n() returns an int but the inner matcher expects a signed char. 3676 Matcher<const AClass&> m = Property(&AClass::n, 3677 Matcher<signed char>(Ge(0))); 3678 3679 AClass a; 3680 EXPECT_TRUE(m.Matches(a)); 3681 a.set_n(-1); 3682 EXPECT_FALSE(m.Matches(a)); 3683 } 3684 3685 // Tests that Property() can describe itself. 3686 TEST(PropertyTest, CanDescribeSelf) { 3687 Matcher<const AClass&> m = Property(&AClass::n, Ge(0)); 3688 3689 EXPECT_EQ("is an object whose given property is >= 0", Describe(m)); 3690 EXPECT_EQ("is an object whose given property isn't >= 0", 3691 DescribeNegation(m)); 3692 } 3693 3694 // Tests that Property() can explain the match result. 3695 TEST(PropertyTest, CanExplainMatchResult) { 3696 Matcher<const AClass&> m = Property(&AClass::n, Ge(0)); 3697 3698 AClass a; 3699 a.set_n(1); 3700 EXPECT_EQ("whose given property is 1" + OfType("int"), Explain(m, a)); 3701 3702 m = Property(&AClass::n, GreaterThan(0)); 3703 EXPECT_EQ( 3704 "whose given property is 1" + OfType("int") + ", which is 1 more than 0", 3705 Explain(m, a)); 3706 } 3707 3708 // Tests that Property() works when the argument is a pointer to const. 3709 TEST(PropertyForPointerTest, WorksForPointerToConst) { 3710 Matcher<const AClass*> m = Property(&AClass::n, Ge(0)); 3711 3712 AClass a; 3713 a.set_n(1); 3714 EXPECT_TRUE(m.Matches(&a)); 3715 3716 a.set_n(-1); 3717 EXPECT_FALSE(m.Matches(&a)); 3718 } 3719 3720 // Tests that Property() works when the argument is a pointer to non-const. 3721 TEST(PropertyForPointerTest, WorksForPointerToNonConst) { 3722 Matcher<AClass*> m = Property(&AClass::s, StartsWith("hi")); 3723 3724 AClass a; 3725 a.set_s("hill"); 3726 EXPECT_TRUE(m.Matches(&a)); 3727 3728 a.set_s("hole"); 3729 EXPECT_FALSE(m.Matches(&a)); 3730 } 3731 3732 // Tests that Property() works when the argument is a reference to a 3733 // const pointer. 3734 TEST(PropertyForPointerTest, WorksForReferenceToConstPointer) { 3735 Matcher<AClass* const&> m = Property(&AClass::s, StartsWith("hi")); 3736 3737 AClass a; 3738 a.set_s("hill"); 3739 EXPECT_TRUE(m.Matches(&a)); 3740 3741 a.set_s("hole"); 3742 EXPECT_FALSE(m.Matches(&a)); 3743 } 3744 3745 // Tests that Property() does not match the NULL pointer. 3746 TEST(PropertyForPointerTest, WorksForReferenceToNonConstProperty) { 3747 Matcher<const AClass*> m = Property(&AClass::x, _); 3748 EXPECT_FALSE(m.Matches(NULL)); 3749 } 3750 3751 // Tests that Property(&Foo::property, ...) works when the argument's 3752 // type is a sub-type of const Foo*. 3753 TEST(PropertyForPointerTest, WorksForArgumentOfSubType) { 3754 // The matcher expects a DerivedClass, but inside the Property() we 3755 // say AClass. 3756 Matcher<const DerivedClass*> m = Property(&AClass::n, Ge(0)); 3757 3758 DerivedClass d; 3759 d.set_n(1); 3760 EXPECT_TRUE(m.Matches(&d)); 3761 3762 d.set_n(-1); 3763 EXPECT_FALSE(m.Matches(&d)); 3764 } 3765 3766 // Tests that Property() can describe itself when used to match a pointer. 3767 TEST(PropertyForPointerTest, CanDescribeSelf) { 3768 Matcher<const AClass*> m = Property(&AClass::n, Ge(0)); 3769 3770 EXPECT_EQ("is an object whose given property is >= 0", Describe(m)); 3771 EXPECT_EQ("is an object whose given property isn't >= 0", 3772 DescribeNegation(m)); 3773 } 3774 3775 // Tests that Property() can explain the result of matching a pointer. 3776 TEST(PropertyForPointerTest, CanExplainMatchResult) { 3777 Matcher<const AClass*> m = Property(&AClass::n, Ge(0)); 3778 3779 AClass a; 3780 a.set_n(1); 3781 EXPECT_EQ("", Explain(m, static_cast<const AClass*>(NULL))); 3782 EXPECT_EQ( 3783 "which points to an object whose given property is 1" + OfType("int"), 3784 Explain(m, &a)); 3785 3786 m = Property(&AClass::n, GreaterThan(0)); 3787 EXPECT_EQ("which points to an object whose given property is 1" + 3788 OfType("int") + ", which is 1 more than 0", 3789 Explain(m, &a)); 3790 } 3791 3792 // Tests ResultOf. 3793 3794 // Tests that ResultOf(f, ...) compiles and works as expected when f is a 3795 // function pointer. 3796 string IntToStringFunction(int input) { return input == 1 ? "foo" : "bar"; } 3797 3798 TEST(ResultOfTest, WorksForFunctionPointers) { 3799 Matcher<int> matcher = ResultOf(&IntToStringFunction, Eq(string("foo"))); 3800 3801 EXPECT_TRUE(matcher.Matches(1)); 3802 EXPECT_FALSE(matcher.Matches(2)); 3803 } 3804 3805 // Tests that ResultOf() can describe itself. 3806 TEST(ResultOfTest, CanDescribeItself) { 3807 Matcher<int> matcher = ResultOf(&IntToStringFunction, StrEq("foo")); 3808 3809 EXPECT_EQ("is mapped by the given callable to a value that " 3810 "is equal to \"foo\"", Describe(matcher)); 3811 EXPECT_EQ("is mapped by the given callable to a value that " 3812 "isn't equal to \"foo\"", DescribeNegation(matcher)); 3813 } 3814 3815 // Tests that ResultOf() can explain the match result. 3816 int IntFunction(int input) { return input == 42 ? 80 : 90; } 3817 3818 TEST(ResultOfTest, CanExplainMatchResult) { 3819 Matcher<int> matcher = ResultOf(&IntFunction, Ge(85)); 3820 EXPECT_EQ("which is mapped by the given callable to 90" + OfType("int"), 3821 Explain(matcher, 36)); 3822 3823 matcher = ResultOf(&IntFunction, GreaterThan(85)); 3824 EXPECT_EQ("which is mapped by the given callable to 90" + OfType("int") + 3825 ", which is 5 more than 85", Explain(matcher, 36)); 3826 } 3827 3828 // Tests that ResultOf(f, ...) compiles and works as expected when f(x) 3829 // returns a non-reference. 3830 TEST(ResultOfTest, WorksForNonReferenceResults) { 3831 Matcher<int> matcher = ResultOf(&IntFunction, Eq(80)); 3832 3833 EXPECT_TRUE(matcher.Matches(42)); 3834 EXPECT_FALSE(matcher.Matches(36)); 3835 } 3836 3837 // Tests that ResultOf(f, ...) compiles and works as expected when f(x) 3838 // returns a reference to non-const. 3839 double& DoubleFunction(double& input) { return input; } // NOLINT 3840 3841 Uncopyable& RefUncopyableFunction(Uncopyable& obj) { // NOLINT 3842 return obj; 3843 } 3844 3845 TEST(ResultOfTest, WorksForReferenceToNonConstResults) { 3846 double x = 3.14; 3847 double x2 = x; 3848 Matcher<double&> matcher = ResultOf(&DoubleFunction, Ref(x)); 3849 3850 EXPECT_TRUE(matcher.Matches(x)); 3851 EXPECT_FALSE(matcher.Matches(x2)); 3852 3853 // Test that ResultOf works with uncopyable objects 3854 Uncopyable obj(0); 3855 Uncopyable obj2(0); 3856 Matcher<Uncopyable&> matcher2 = 3857 ResultOf(&RefUncopyableFunction, Ref(obj)); 3858 3859 EXPECT_TRUE(matcher2.Matches(obj)); 3860 EXPECT_FALSE(matcher2.Matches(obj2)); 3861 } 3862 3863 // Tests that ResultOf(f, ...) compiles and works as expected when f(x) 3864 // returns a reference to const. 3865 const string& StringFunction(const string& input) { return input; } 3866 3867 TEST(ResultOfTest, WorksForReferenceToConstResults) { 3868 string s = "foo"; 3869 string s2 = s; 3870 Matcher<const string&> matcher = ResultOf(&StringFunction, Ref(s)); 3871 3872 EXPECT_TRUE(matcher.Matches(s)); 3873 EXPECT_FALSE(matcher.Matches(s2)); 3874 } 3875 3876 // Tests that ResultOf(f, m) works when f(x) and m's 3877 // argument types are compatible but different. 3878 TEST(ResultOfTest, WorksForCompatibleMatcherTypes) { 3879 // IntFunction() returns int but the inner matcher expects a signed char. 3880 Matcher<int> matcher = ResultOf(IntFunction, Matcher<signed char>(Ge(85))); 3881 3882 EXPECT_TRUE(matcher.Matches(36)); 3883 EXPECT_FALSE(matcher.Matches(42)); 3884 } 3885 3886 // Tests that the program aborts when ResultOf is passed 3887 // a NULL function pointer. 3888 TEST(ResultOfDeathTest, DiesOnNullFunctionPointers) { 3889 EXPECT_DEATH_IF_SUPPORTED( 3890 ResultOf(static_cast<string(*)(int dummy)>(NULL), Eq(string("foo"))), 3891 "NULL function pointer is passed into ResultOf\\(\\)\\."); 3892 } 3893 3894 // Tests that ResultOf(f, ...) compiles and works as expected when f is a 3895 // function reference. 3896 TEST(ResultOfTest, WorksForFunctionReferences) { 3897 Matcher<int> matcher = ResultOf(IntToStringFunction, StrEq("foo")); 3898 EXPECT_TRUE(matcher.Matches(1)); 3899 EXPECT_FALSE(matcher.Matches(2)); 3900 } 3901 3902 // Tests that ResultOf(f, ...) compiles and works as expected when f is a 3903 // function object. 3904 struct Functor : public ::std::unary_function<int, string> { 3905 result_type operator()(argument_type input) const { 3906 return IntToStringFunction(input); 3907 } 3908 }; 3909 3910 TEST(ResultOfTest, WorksForFunctors) { 3911 Matcher<int> matcher = ResultOf(Functor(), Eq(string("foo"))); 3912 3913 EXPECT_TRUE(matcher.Matches(1)); 3914 EXPECT_FALSE(matcher.Matches(2)); 3915 } 3916 3917 // Tests that ResultOf(f, ...) compiles and works as expected when f is a 3918 // functor with more then one operator() defined. ResultOf() must work 3919 // for each defined operator(). 3920 struct PolymorphicFunctor { 3921 typedef int result_type; 3922 int operator()(int n) { return n; } 3923 int operator()(const char* s) { return static_cast<int>(strlen(s)); } 3924 }; 3925 3926 TEST(ResultOfTest, WorksForPolymorphicFunctors) { 3927 Matcher<int> matcher_int = ResultOf(PolymorphicFunctor(), Ge(5)); 3928 3929 EXPECT_TRUE(matcher_int.Matches(10)); 3930 EXPECT_FALSE(matcher_int.Matches(2)); 3931 3932 Matcher<const char*> matcher_string = ResultOf(PolymorphicFunctor(), Ge(5)); 3933 3934 EXPECT_TRUE(matcher_string.Matches("long string")); 3935 EXPECT_FALSE(matcher_string.Matches("shrt")); 3936 } 3937 3938 const int* ReferencingFunction(const int& n) { return &n; } 3939 3940 struct ReferencingFunctor { 3941 typedef const int* result_type; 3942 result_type operator()(const int& n) { return &n; } 3943 }; 3944 3945 TEST(ResultOfTest, WorksForReferencingCallables) { 3946 const int n = 1; 3947 const int n2 = 1; 3948 Matcher<const int&> matcher2 = ResultOf(ReferencingFunction, Eq(&n)); 3949 EXPECT_TRUE(matcher2.Matches(n)); 3950 EXPECT_FALSE(matcher2.Matches(n2)); 3951 3952 Matcher<const int&> matcher3 = ResultOf(ReferencingFunctor(), Eq(&n)); 3953 EXPECT_TRUE(matcher3.Matches(n)); 3954 EXPECT_FALSE(matcher3.Matches(n2)); 3955 } 3956 3957 class DivisibleByImpl { 3958 public: 3959 explicit DivisibleByImpl(int a_divider) : divider_(a_divider) {} 3960 3961 // For testing using ExplainMatchResultTo() with polymorphic matchers. 3962 template <typename T> 3963 bool MatchAndExplain(const T& n, MatchResultListener* listener) const { 3964 *listener << "which is " << (n % divider_) << " modulo " 3965 << divider_; 3966 return (n % divider_) == 0; 3967 } 3968 3969 void DescribeTo(ostream* os) const { 3970 *os << "is divisible by " << divider_; 3971 } 3972 3973 void DescribeNegationTo(ostream* os) const { 3974 *os << "is not divisible by " << divider_; 3975 } 3976 3977 void set_divider(int a_divider) { divider_ = a_divider; } 3978 int divider() const { return divider_; } 3979 3980 private: 3981 int divider_; 3982 }; 3983 3984 PolymorphicMatcher<DivisibleByImpl> DivisibleBy(int n) { 3985 return MakePolymorphicMatcher(DivisibleByImpl(n)); 3986 } 3987 3988 // Tests that when AllOf() fails, only the first failing matcher is 3989 // asked to explain why. 3990 TEST(ExplainMatchResultTest, AllOf_False_False) { 3991 const Matcher<int> m = AllOf(DivisibleBy(4), DivisibleBy(3)); 3992 EXPECT_EQ("which is 1 modulo 4", Explain(m, 5)); 3993 } 3994 3995 // Tests that when AllOf() fails, only the first failing matcher is 3996 // asked to explain why. 3997 TEST(ExplainMatchResultTest, AllOf_False_True) { 3998 const Matcher<int> m = AllOf(DivisibleBy(4), DivisibleBy(3)); 3999 EXPECT_EQ("which is 2 modulo 4", Explain(m, 6)); 4000 } 4001 4002 // Tests that when AllOf() fails, only the first failing matcher is 4003 // asked to explain why. 4004 TEST(ExplainMatchResultTest, AllOf_True_False) { 4005 const Matcher<int> m = AllOf(Ge(1), DivisibleBy(3)); 4006 EXPECT_EQ("which is 2 modulo 3", Explain(m, 5)); 4007 } 4008 4009 // Tests that when AllOf() succeeds, all matchers are asked to explain 4010 // why. 4011 TEST(ExplainMatchResultTest, AllOf_True_True) { 4012 const Matcher<int> m = AllOf(DivisibleBy(2), DivisibleBy(3)); 4013 EXPECT_EQ("which is 0 modulo 2, and which is 0 modulo 3", Explain(m, 6)); 4014 } 4015 4016 TEST(ExplainMatchResultTest, AllOf_True_True_2) { 4017 const Matcher<int> m = AllOf(Ge(2), Le(3)); 4018 EXPECT_EQ("", Explain(m, 2)); 4019 } 4020 4021 TEST(ExplainmatcherResultTest, MonomorphicMatcher) { 4022 const Matcher<int> m = GreaterThan(5); 4023 EXPECT_EQ("which is 1 more than 5", Explain(m, 6)); 4024 } 4025 4026 // The following two tests verify that values without a public copy 4027 // ctor can be used as arguments to matchers like Eq(), Ge(), and etc 4028 // with the help of ByRef(). 4029 4030 class NotCopyable { 4031 public: 4032 explicit NotCopyable(int a_value) : value_(a_value) {} 4033 4034 int value() const { return value_; } 4035 4036 bool operator==(const NotCopyable& rhs) const { 4037 return value() == rhs.value(); 4038 } 4039 4040 bool operator>=(const NotCopyable& rhs) const { 4041 return value() >= rhs.value(); 4042 } 4043 private: 4044 int value_; 4045 4046 GTEST_DISALLOW_COPY_AND_ASSIGN_(NotCopyable); 4047 }; 4048 4049 TEST(ByRefTest, AllowsNotCopyableConstValueInMatchers) { 4050 const NotCopyable const_value1(1); 4051 const Matcher<const NotCopyable&> m = Eq(ByRef(const_value1)); 4052 4053 const NotCopyable n1(1), n2(2); 4054 EXPECT_TRUE(m.Matches(n1)); 4055 EXPECT_FALSE(m.Matches(n2)); 4056 } 4057 4058 TEST(ByRefTest, AllowsNotCopyableValueInMatchers) { 4059 NotCopyable value2(2); 4060 const Matcher<NotCopyable&> m = Ge(ByRef(value2)); 4061 4062 NotCopyable n1(1), n2(2); 4063 EXPECT_FALSE(m.Matches(n1)); 4064 EXPECT_TRUE(m.Matches(n2)); 4065 } 4066 4067 TEST(IsEmptyTest, ImplementsIsEmpty) { 4068 vector<int> container; 4069 EXPECT_THAT(container, IsEmpty()); 4070 container.push_back(0); 4071 EXPECT_THAT(container, Not(IsEmpty())); 4072 container.push_back(1); 4073 EXPECT_THAT(container, Not(IsEmpty())); 4074 } 4075 4076 TEST(IsEmptyTest, WorksWithString) { 4077 string text; 4078 EXPECT_THAT(text, IsEmpty()); 4079 text = "foo"; 4080 EXPECT_THAT(text, Not(IsEmpty())); 4081 text = string("\0", 1); 4082 EXPECT_THAT(text, Not(IsEmpty())); 4083 } 4084 4085 TEST(IsEmptyTest, CanDescribeSelf) { 4086 Matcher<vector<int> > m = IsEmpty(); 4087 EXPECT_EQ("is empty", Describe(m)); 4088 EXPECT_EQ("isn't empty", DescribeNegation(m)); 4089 } 4090 4091 TEST(IsEmptyTest, ExplainsResult) { 4092 Matcher<vector<int> > m = IsEmpty(); 4093 vector<int> container; 4094 EXPECT_EQ("", Explain(m, container)); 4095 container.push_back(0); 4096 EXPECT_EQ("whose size is 1", Explain(m, container)); 4097 } 4098 4099 TEST(SizeIsTest, ImplementsSizeIs) { 4100 vector<int> container; 4101 EXPECT_THAT(container, SizeIs(0)); 4102 EXPECT_THAT(container, Not(SizeIs(1))); 4103 container.push_back(0); 4104 EXPECT_THAT(container, Not(SizeIs(0))); 4105 EXPECT_THAT(container, SizeIs(1)); 4106 container.push_back(0); 4107 EXPECT_THAT(container, Not(SizeIs(0))); 4108 EXPECT_THAT(container, SizeIs(2)); 4109 } 4110 4111 TEST(SizeIsTest, WorksWithMap) { 4112 map<string, int> container; 4113 EXPECT_THAT(container, SizeIs(0)); 4114 EXPECT_THAT(container, Not(SizeIs(1))); 4115 container.insert(make_pair("foo", 1)); 4116 EXPECT_THAT(container, Not(SizeIs(0))); 4117 EXPECT_THAT(container, SizeIs(1)); 4118 container.insert(make_pair("bar", 2)); 4119 EXPECT_THAT(container, Not(SizeIs(0))); 4120 EXPECT_THAT(container, SizeIs(2)); 4121 } 4122 4123 TEST(SizeIsTest, WorksWithReferences) { 4124 vector<int> container; 4125 Matcher<const vector<int>&> m = SizeIs(1); 4126 EXPECT_THAT(container, Not(m)); 4127 container.push_back(0); 4128 EXPECT_THAT(container, m); 4129 } 4130 4131 TEST(SizeIsTest, CanDescribeSelf) { 4132 Matcher<vector<int> > m = SizeIs(2); 4133 EXPECT_EQ("size is equal to 2", Describe(m)); 4134 EXPECT_EQ("size isn't equal to 2", DescribeNegation(m)); 4135 } 4136 4137 TEST(SizeIsTest, ExplainsResult) { 4138 Matcher<vector<int> > m1 = SizeIs(2); 4139 Matcher<vector<int> > m2 = SizeIs(Lt(2u)); 4140 Matcher<vector<int> > m3 = SizeIs(AnyOf(0, 3)); 4141 Matcher<vector<int> > m4 = SizeIs(GreaterThan(1)); 4142 vector<int> container; 4143 EXPECT_EQ("whose size 0 doesn't match", Explain(m1, container)); 4144 EXPECT_EQ("whose size 0 matches", Explain(m2, container)); 4145 EXPECT_EQ("whose size 0 matches", Explain(m3, container)); 4146 EXPECT_EQ("whose size 0 doesn't match, which is 1 less than 1", 4147 Explain(m4, container)); 4148 container.push_back(0); 4149 container.push_back(0); 4150 EXPECT_EQ("whose size 2 matches", Explain(m1, container)); 4151 EXPECT_EQ("whose size 2 doesn't match", Explain(m2, container)); 4152 EXPECT_EQ("whose size 2 doesn't match", Explain(m3, container)); 4153 EXPECT_EQ("whose size 2 matches, which is 1 more than 1", 4154 Explain(m4, container)); 4155 } 4156 4157 #if GTEST_HAS_TYPED_TEST 4158 // Tests ContainerEq with different container types, and 4159 // different element types. 4160 4161 template <typename T> 4162 class ContainerEqTest : public testing::Test {}; 4163 4164 typedef testing::Types< 4165 set<int>, 4166 vector<size_t>, 4167 multiset<size_t>, 4168 list<int> > 4169 ContainerEqTestTypes; 4170 4171 TYPED_TEST_CASE(ContainerEqTest, ContainerEqTestTypes); 4172 4173 // Tests that the filled container is equal to itself. 4174 TYPED_TEST(ContainerEqTest, EqualsSelf) { 4175 static const int vals[] = {1, 1, 2, 3, 5, 8}; 4176 TypeParam my_set(vals, vals + 6); 4177 const Matcher<TypeParam> m = ContainerEq(my_set); 4178 EXPECT_TRUE(m.Matches(my_set)); 4179 EXPECT_EQ("", Explain(m, my_set)); 4180 } 4181 4182 // Tests that missing values are reported. 4183 TYPED_TEST(ContainerEqTest, ValueMissing) { 4184 static const int vals[] = {1, 1, 2, 3, 5, 8}; 4185 static const int test_vals[] = {2, 1, 8, 5}; 4186 TypeParam my_set(vals, vals + 6); 4187 TypeParam test_set(test_vals, test_vals + 4); 4188 const Matcher<TypeParam> m = ContainerEq(my_set); 4189 EXPECT_FALSE(m.Matches(test_set)); 4190 EXPECT_EQ("which doesn't have these expected elements: 3", 4191 Explain(m, test_set)); 4192 } 4193 4194 // Tests that added values are reported. 4195 TYPED_TEST(ContainerEqTest, ValueAdded) { 4196 static const int vals[] = {1, 1, 2, 3, 5, 8}; 4197 static const int test_vals[] = {1, 2, 3, 5, 8, 46}; 4198 TypeParam my_set(vals, vals + 6); 4199 TypeParam test_set(test_vals, test_vals + 6); 4200 const Matcher<const TypeParam&> m = ContainerEq(my_set); 4201 EXPECT_FALSE(m.Matches(test_set)); 4202 EXPECT_EQ("which has these unexpected elements: 46", Explain(m, test_set)); 4203 } 4204 4205 // Tests that added and missing values are reported together. 4206 TYPED_TEST(ContainerEqTest, ValueAddedAndRemoved) { 4207 static const int vals[] = {1, 1, 2, 3, 5, 8}; 4208 static const int test_vals[] = {1, 2, 3, 8, 46}; 4209 TypeParam my_set(vals, vals + 6); 4210 TypeParam test_set(test_vals, test_vals + 5); 4211 const Matcher<TypeParam> m = ContainerEq(my_set); 4212 EXPECT_FALSE(m.Matches(test_set)); 4213 EXPECT_EQ("which has these unexpected elements: 46,\n" 4214 "and doesn't have these expected elements: 5", 4215 Explain(m, test_set)); 4216 } 4217 4218 // Tests duplicated value -- expect no explanation. 4219 TYPED_TEST(ContainerEqTest, DuplicateDifference) { 4220 static const int vals[] = {1, 1, 2, 3, 5, 8}; 4221 static const int test_vals[] = {1, 2, 3, 5, 8}; 4222 TypeParam my_set(vals, vals + 6); 4223 TypeParam test_set(test_vals, test_vals + 5); 4224 const Matcher<const TypeParam&> m = ContainerEq(my_set); 4225 // Depending on the container, match may be true or false 4226 // But in any case there should be no explanation. 4227 EXPECT_EQ("", Explain(m, test_set)); 4228 } 4229 #endif // GTEST_HAS_TYPED_TEST 4230 4231 // Tests that mutliple missing values are reported. 4232 // Using just vector here, so order is predicatble. 4233 TEST(ContainerEqExtraTest, MultipleValuesMissing) { 4234 static const int vals[] = {1, 1, 2, 3, 5, 8}; 4235 static const int test_vals[] = {2, 1, 5}; 4236 vector<int> my_set(vals, vals + 6); 4237 vector<int> test_set(test_vals, test_vals + 3); 4238 const Matcher<vector<int> > m = ContainerEq(my_set); 4239 EXPECT_FALSE(m.Matches(test_set)); 4240 EXPECT_EQ("which doesn't have these expected elements: 3, 8", 4241 Explain(m, test_set)); 4242 } 4243 4244 // Tests that added values are reported. 4245 // Using just vector here, so order is predicatble. 4246 TEST(ContainerEqExtraTest, MultipleValuesAdded) { 4247 static const int vals[] = {1, 1, 2, 3, 5, 8}; 4248 static const int test_vals[] = {1, 2, 92, 3, 5, 8, 46}; 4249 list<size_t> my_set(vals, vals + 6); 4250 list<size_t> test_set(test_vals, test_vals + 7); 4251 const Matcher<const list<size_t>&> m = ContainerEq(my_set); 4252 EXPECT_FALSE(m.Matches(test_set)); 4253 EXPECT_EQ("which has these unexpected elements: 92, 46", 4254 Explain(m, test_set)); 4255 } 4256 4257 // Tests that added and missing values are reported together. 4258 TEST(ContainerEqExtraTest, MultipleValuesAddedAndRemoved) { 4259 static const int vals[] = {1, 1, 2, 3, 5, 8}; 4260 static const int test_vals[] = {1, 2, 3, 92, 46}; 4261 list<size_t> my_set(vals, vals + 6); 4262 list<size_t> test_set(test_vals, test_vals + 5); 4263 const Matcher<const list<size_t> > m = ContainerEq(my_set); 4264 EXPECT_FALSE(m.Matches(test_set)); 4265 EXPECT_EQ("which has these unexpected elements: 92, 46,\n" 4266 "and doesn't have these expected elements: 5, 8", 4267 Explain(m, test_set)); 4268 } 4269 4270 // Tests to see that duplicate elements are detected, 4271 // but (as above) not reported in the explanation. 4272 TEST(ContainerEqExtraTest, MultiSetOfIntDuplicateDifference) { 4273 static const int vals[] = {1, 1, 2, 3, 5, 8}; 4274 static const int test_vals[] = {1, 2, 3, 5, 8}; 4275 vector<int> my_set(vals, vals + 6); 4276 vector<int> test_set(test_vals, test_vals + 5); 4277 const Matcher<vector<int> > m = ContainerEq(my_set); 4278 EXPECT_TRUE(m.Matches(my_set)); 4279 EXPECT_FALSE(m.Matches(test_set)); 4280 // There is nothing to report when both sets contain all the same values. 4281 EXPECT_EQ("", Explain(m, test_set)); 4282 } 4283 4284 // Tests that ContainerEq works for non-trivial associative containers, 4285 // like maps. 4286 TEST(ContainerEqExtraTest, WorksForMaps) { 4287 map<int, std::string> my_map; 4288 my_map[0] = "a"; 4289 my_map[1] = "b"; 4290 4291 map<int, std::string> test_map; 4292 test_map[0] = "aa"; 4293 test_map[1] = "b"; 4294 4295 const Matcher<const map<int, std::string>&> m = ContainerEq(my_map); 4296 EXPECT_TRUE(m.Matches(my_map)); 4297 EXPECT_FALSE(m.Matches(test_map)); 4298 4299 EXPECT_EQ("which has these unexpected elements: (0, \"aa\"),\n" 4300 "and doesn't have these expected elements: (0, \"a\")", 4301 Explain(m, test_map)); 4302 } 4303 4304 TEST(ContainerEqExtraTest, WorksForNativeArray) { 4305 int a1[] = {1, 2, 3}; 4306 int a2[] = {1, 2, 3}; 4307 int b[] = {1, 2, 4}; 4308 4309 EXPECT_THAT(a1, ContainerEq(a2)); 4310 EXPECT_THAT(a1, Not(ContainerEq(b))); 4311 } 4312 4313 TEST(ContainerEqExtraTest, WorksForTwoDimensionalNativeArray) { 4314 const char a1[][3] = {"hi", "lo"}; 4315 const char a2[][3] = {"hi", "lo"}; 4316 const char b[][3] = {"lo", "hi"}; 4317 4318 // Tests using ContainerEq() in the first dimension. 4319 EXPECT_THAT(a1, ContainerEq(a2)); 4320 EXPECT_THAT(a1, Not(ContainerEq(b))); 4321 4322 // Tests using ContainerEq() in the second dimension. 4323 EXPECT_THAT(a1, ElementsAre(ContainerEq(a2[0]), ContainerEq(a2[1]))); 4324 EXPECT_THAT(a1, ElementsAre(Not(ContainerEq(b[0])), ContainerEq(a2[1]))); 4325 } 4326 4327 TEST(ContainerEqExtraTest, WorksForNativeArrayAsTuple) { 4328 const int a1[] = {1, 2, 3}; 4329 const int a2[] = {1, 2, 3}; 4330 const int b[] = {1, 2, 3, 4}; 4331 4332 const int* const p1 = a1; 4333 EXPECT_THAT(make_tuple(p1, 3), ContainerEq(a2)); 4334 EXPECT_THAT(make_tuple(p1, 3), Not(ContainerEq(b))); 4335 4336 const int c[] = {1, 3, 2}; 4337 EXPECT_THAT(make_tuple(p1, 3), Not(ContainerEq(c))); 4338 } 4339 4340 TEST(ContainerEqExtraTest, CopiesNativeArrayParameter) { 4341 std::string a1[][3] = { 4342 {"hi", "hello", "ciao"}, 4343 {"bye", "see you", "ciao"} 4344 }; 4345 4346 std::string a2[][3] = { 4347 {"hi", "hello", "ciao"}, 4348 {"bye", "see you", "ciao"} 4349 }; 4350 4351 const Matcher<const std::string(&)[2][3]> m = ContainerEq(a2); 4352 EXPECT_THAT(a1, m); 4353 4354 a2[0][0] = "ha"; 4355 EXPECT_THAT(a1, m); 4356 } 4357 4358 TEST(WhenSortedByTest, WorksForEmptyContainer) { 4359 const vector<int> numbers; 4360 EXPECT_THAT(numbers, WhenSortedBy(less<int>(), ElementsAre())); 4361 EXPECT_THAT(numbers, Not(WhenSortedBy(less<int>(), ElementsAre(1)))); 4362 } 4363 4364 TEST(WhenSortedByTest, WorksForNonEmptyContainer) { 4365 vector<unsigned> numbers; 4366 numbers.push_back(3); 4367 numbers.push_back(1); 4368 numbers.push_back(2); 4369 numbers.push_back(2); 4370 EXPECT_THAT(numbers, WhenSortedBy(greater<unsigned>(), 4371 ElementsAre(3, 2, 2, 1))); 4372 EXPECT_THAT(numbers, Not(WhenSortedBy(greater<unsigned>(), 4373 ElementsAre(1, 2, 2, 3)))); 4374 } 4375 4376 TEST(WhenSortedByTest, WorksForNonVectorContainer) { 4377 list<string> words; 4378 words.push_back("say"); 4379 words.push_back("hello"); 4380 words.push_back("world"); 4381 EXPECT_THAT(words, WhenSortedBy(less<string>(), 4382 ElementsAre("hello", "say", "world"))); 4383 EXPECT_THAT(words, Not(WhenSortedBy(less<string>(), 4384 ElementsAre("say", "hello", "world")))); 4385 } 4386 4387 TEST(WhenSortedByTest, WorksForNativeArray) { 4388 const int numbers[] = {1, 3, 2, 4}; 4389 const int sorted_numbers[] = {1, 2, 3, 4}; 4390 EXPECT_THAT(numbers, WhenSortedBy(less<int>(), ElementsAre(1, 2, 3, 4))); 4391 EXPECT_THAT(numbers, WhenSortedBy(less<int>(), 4392 ElementsAreArray(sorted_numbers))); 4393 EXPECT_THAT(numbers, Not(WhenSortedBy(less<int>(), ElementsAre(1, 3, 2, 4)))); 4394 } 4395 4396 TEST(WhenSortedByTest, CanDescribeSelf) { 4397 const Matcher<vector<int> > m = WhenSortedBy(less<int>(), ElementsAre(1, 2)); 4398 EXPECT_EQ("(when sorted) has 2 elements where\n" 4399 "element #0 is equal to 1,\n" 4400 "element #1 is equal to 2", 4401 Describe(m)); 4402 EXPECT_EQ("(when sorted) doesn't have 2 elements, or\n" 4403 "element #0 isn't equal to 1, or\n" 4404 "element #1 isn't equal to 2", 4405 DescribeNegation(m)); 4406 } 4407 4408 TEST(WhenSortedByTest, ExplainsMatchResult) { 4409 const int a[] = {2, 1}; 4410 EXPECT_EQ("which is { 1, 2 } when sorted, whose element #0 doesn't match", 4411 Explain(WhenSortedBy(less<int>(), ElementsAre(2, 3)), a)); 4412 EXPECT_EQ("which is { 1, 2 } when sorted", 4413 Explain(WhenSortedBy(less<int>(), ElementsAre(1, 2)), a)); 4414 } 4415 4416 // WhenSorted() is a simple wrapper on WhenSortedBy(). Hence we don't 4417 // need to test it as exhaustively as we test the latter. 4418 4419 TEST(WhenSortedTest, WorksForEmptyContainer) { 4420 const vector<int> numbers; 4421 EXPECT_THAT(numbers, WhenSorted(ElementsAre())); 4422 EXPECT_THAT(numbers, Not(WhenSorted(ElementsAre(1)))); 4423 } 4424 4425 TEST(WhenSortedTest, WorksForNonEmptyContainer) { 4426 list<string> words; 4427 words.push_back("3"); 4428 words.push_back("1"); 4429 words.push_back("2"); 4430 words.push_back("2"); 4431 EXPECT_THAT(words, WhenSorted(ElementsAre("1", "2", "2", "3"))); 4432 EXPECT_THAT(words, Not(WhenSorted(ElementsAre("3", "1", "2", "2")))); 4433 } 4434 4435 TEST(WhenSortedTest, WorksForMapTypes) { 4436 map<string, int> word_counts; 4437 word_counts["and"] = 1; 4438 word_counts["the"] = 1; 4439 word_counts["buffalo"] = 2; 4440 EXPECT_THAT(word_counts, WhenSorted(ElementsAre( 4441 Pair("and", 1), Pair("buffalo", 2), Pair("the", 1)))); 4442 EXPECT_THAT(word_counts, Not(WhenSorted(ElementsAre( 4443 Pair("and", 1), Pair("the", 1), Pair("buffalo", 2))))); 4444 } 4445 4446 TEST(WhenSortedTest, WorksForMultiMapTypes) { 4447 multimap<int, int> ifib; 4448 ifib.insert(make_pair(8, 6)); 4449 ifib.insert(make_pair(2, 3)); 4450 ifib.insert(make_pair(1, 1)); 4451 ifib.insert(make_pair(3, 4)); 4452 ifib.insert(make_pair(1, 2)); 4453 ifib.insert(make_pair(5, 5)); 4454 EXPECT_THAT(ifib, WhenSorted(ElementsAre(Pair(1, 1), 4455 Pair(1, 2), 4456 Pair(2, 3), 4457 Pair(3, 4), 4458 Pair(5, 5), 4459 Pair(8, 6)))); 4460 EXPECT_THAT(ifib, Not(WhenSorted(ElementsAre(Pair(8, 6), 4461 Pair(2, 3), 4462 Pair(1, 1), 4463 Pair(3, 4), 4464 Pair(1, 2), 4465 Pair(5, 5))))); 4466 } 4467 4468 TEST(WhenSortedTest, WorksForPolymorphicMatcher) { 4469 std::deque<int> d; 4470 d.push_back(2); 4471 d.push_back(1); 4472 EXPECT_THAT(d, WhenSorted(ElementsAre(1, 2))); 4473 EXPECT_THAT(d, Not(WhenSorted(ElementsAre(2, 1)))); 4474 } 4475 4476 TEST(WhenSortedTest, WorksForVectorConstRefMatcher) { 4477 std::deque<int> d; 4478 d.push_back(2); 4479 d.push_back(1); 4480 Matcher<const std::vector<int>&> vector_match = ElementsAre(1, 2); 4481 EXPECT_THAT(d, WhenSorted(vector_match)); 4482 Matcher<const std::vector<int>&> not_vector_match = ElementsAre(2, 1); 4483 EXPECT_THAT(d, Not(WhenSorted(not_vector_match))); 4484 } 4485 4486 // Deliberately bare pseudo-container. 4487 // Offers only begin() and end() accessors, yielding InputIterator. 4488 template <typename T> 4489 class Streamlike { 4490 private: 4491 class ConstIter; 4492 public: 4493 typedef ConstIter const_iterator; 4494 typedef T value_type; 4495 4496 template <typename InIter> 4497 Streamlike(InIter first, InIter last) : remainder_(first, last) {} 4498 4499 const_iterator begin() const { 4500 return const_iterator(this, remainder_.begin()); 4501 } 4502 const_iterator end() const { 4503 return const_iterator(this, remainder_.end()); 4504 } 4505 4506 private: 4507 class ConstIter : public std::iterator<std::input_iterator_tag, 4508 value_type, 4509 ptrdiff_t, 4510 const value_type*, 4511 const value_type&> { 4512 public: 4513 ConstIter(const Streamlike* s, 4514 typename std::list<value_type>::iterator pos) 4515 : s_(s), pos_(pos) {} 4516 4517 const value_type& operator*() const { return *pos_; } 4518 const value_type* operator->() const { return &*pos_; } 4519 ConstIter& operator++() { 4520 s_->remainder_.erase(pos_++); 4521 return *this; 4522 } 4523 4524 // *iter++ is required to work (see std::istreambuf_iterator). 4525 // (void)iter++ is also required to work. 4526 class PostIncrProxy { 4527 public: 4528 explicit PostIncrProxy(const value_type& value) : value_(value) {} 4529 value_type operator*() const { return value_; } 4530 private: 4531 value_type value_; 4532 }; 4533 PostIncrProxy operator++(int) { 4534 PostIncrProxy proxy(**this); 4535 ++(*this); 4536 return proxy; 4537 } 4538 4539 friend bool operator==(const ConstIter& a, const ConstIter& b) { 4540 return a.s_ == b.s_ && a.pos_ == b.pos_; 4541 } 4542 friend bool operator!=(const ConstIter& a, const ConstIter& b) { 4543 return !(a == b); 4544 } 4545 4546 private: 4547 const Streamlike* s_; 4548 typename std::list<value_type>::iterator pos_; 4549 }; 4550 4551 friend std::ostream& operator<<(std::ostream& os, const Streamlike& s) { 4552 os << "["; 4553 typedef typename std::list<value_type>::const_iterator Iter; 4554 const char* sep = ""; 4555 for (Iter it = s.remainder_.begin(); it != s.remainder_.end(); ++it) { 4556 os << sep << *it; 4557 sep = ","; 4558 } 4559 os << "]"; 4560 return os; 4561 } 4562 4563 mutable std::list<value_type> remainder_; // modified by iteration 4564 }; 4565 4566 TEST(StreamlikeTest, Iteration) { 4567 const int a[5] = {2, 1, 4, 5, 3}; 4568 Streamlike<int> s(a, a + 5); 4569 Streamlike<int>::const_iterator it = s.begin(); 4570 const int* ip = a; 4571 while (it != s.end()) { 4572 SCOPED_TRACE(ip - a); 4573 EXPECT_EQ(*ip++, *it++); 4574 } 4575 } 4576 4577 #if GTEST_HAS_STD_FORWARD_LIST_ 4578 TEST(BeginEndDistanceIsTest, WorksWithForwardList) { 4579 std::forward_list<int> container; 4580 EXPECT_THAT(container, BeginEndDistanceIs(0)); 4581 EXPECT_THAT(container, Not(BeginEndDistanceIs(1))); 4582 container.push_front(0); 4583 EXPECT_THAT(container, Not(BeginEndDistanceIs(0))); 4584 EXPECT_THAT(container, BeginEndDistanceIs(1)); 4585 container.push_front(0); 4586 EXPECT_THAT(container, Not(BeginEndDistanceIs(0))); 4587 EXPECT_THAT(container, BeginEndDistanceIs(2)); 4588 } 4589 #endif // GTEST_HAS_STD_FORWARD_LIST_ 4590 4591 TEST(BeginEndDistanceIsTest, WorksWithNonStdList) { 4592 const int a[5] = {1, 2, 3, 4, 5}; 4593 Streamlike<int> s(a, a + 5); 4594 EXPECT_THAT(s, BeginEndDistanceIs(5)); 4595 } 4596 4597 TEST(BeginEndDistanceIsTest, CanDescribeSelf) { 4598 Matcher<vector<int> > m = BeginEndDistanceIs(2); 4599 EXPECT_EQ("distance between begin() and end() is equal to 2", Describe(m)); 4600 EXPECT_EQ("distance between begin() and end() isn't equal to 2", 4601 DescribeNegation(m)); 4602 } 4603 4604 TEST(BeginEndDistanceIsTest, ExplainsResult) { 4605 Matcher<vector<int> > m1 = BeginEndDistanceIs(2); 4606 Matcher<vector<int> > m2 = BeginEndDistanceIs(Lt(2)); 4607 Matcher<vector<int> > m3 = BeginEndDistanceIs(AnyOf(0, 3)); 4608 Matcher<vector<int> > m4 = BeginEndDistanceIs(GreaterThan(1)); 4609 vector<int> container; 4610 EXPECT_EQ("whose distance between begin() and end() 0 doesn't match", 4611 Explain(m1, container)); 4612 EXPECT_EQ("whose distance between begin() and end() 0 matches", 4613 Explain(m2, container)); 4614 EXPECT_EQ("whose distance between begin() and end() 0 matches", 4615 Explain(m3, container)); 4616 EXPECT_EQ( 4617 "whose distance between begin() and end() 0 doesn't match, which is 1 " 4618 "less than 1", 4619 Explain(m4, container)); 4620 container.push_back(0); 4621 container.push_back(0); 4622 EXPECT_EQ("whose distance between begin() and end() 2 matches", 4623 Explain(m1, container)); 4624 EXPECT_EQ("whose distance between begin() and end() 2 doesn't match", 4625 Explain(m2, container)); 4626 EXPECT_EQ("whose distance between begin() and end() 2 doesn't match", 4627 Explain(m3, container)); 4628 EXPECT_EQ( 4629 "whose distance between begin() and end() 2 matches, which is 1 more " 4630 "than 1", 4631 Explain(m4, container)); 4632 } 4633 4634 TEST(WhenSortedTest, WorksForStreamlike) { 4635 // Streamlike 'container' provides only minimal iterator support. 4636 // Its iterators are tagged with input_iterator_tag. 4637 const int a[5] = {2, 1, 4, 5, 3}; 4638 Streamlike<int> s(a, a + GTEST_ARRAY_SIZE_(a)); 4639 EXPECT_THAT(s, WhenSorted(ElementsAre(1, 2, 3, 4, 5))); 4640 EXPECT_THAT(s, Not(WhenSorted(ElementsAre(2, 1, 4, 5, 3)))); 4641 } 4642 4643 TEST(WhenSortedTest, WorksForVectorConstRefMatcherOnStreamlike) { 4644 const int a[] = {2, 1, 4, 5, 3}; 4645 Streamlike<int> s(a, a + GTEST_ARRAY_SIZE_(a)); 4646 Matcher<const std::vector<int>&> vector_match = ElementsAre(1, 2, 3, 4, 5); 4647 EXPECT_THAT(s, WhenSorted(vector_match)); 4648 EXPECT_THAT(s, Not(WhenSorted(ElementsAre(2, 1, 4, 5, 3)))); 4649 } 4650 4651 // Tests using ElementsAre() and ElementsAreArray() with stream-like 4652 // "containers". 4653 4654 TEST(ElemensAreStreamTest, WorksForStreamlike) { 4655 const int a[5] = {1, 2, 3, 4, 5}; 4656 Streamlike<int> s(a, a + GTEST_ARRAY_SIZE_(a)); 4657 EXPECT_THAT(s, ElementsAre(1, 2, 3, 4, 5)); 4658 EXPECT_THAT(s, Not(ElementsAre(2, 1, 4, 5, 3))); 4659 } 4660 4661 TEST(ElemensAreArrayStreamTest, WorksForStreamlike) { 4662 const int a[5] = {1, 2, 3, 4, 5}; 4663 Streamlike<int> s(a, a + GTEST_ARRAY_SIZE_(a)); 4664 4665 vector<int> expected; 4666 expected.push_back(1); 4667 expected.push_back(2); 4668 expected.push_back(3); 4669 expected.push_back(4); 4670 expected.push_back(5); 4671 EXPECT_THAT(s, ElementsAreArray(expected)); 4672 4673 expected[3] = 0; 4674 EXPECT_THAT(s, Not(ElementsAreArray(expected))); 4675 } 4676 4677 TEST(ElementsAreTest, WorksWithUncopyable) { 4678 Uncopyable objs[2]; 4679 objs[0].set_value(-3); 4680 objs[1].set_value(1); 4681 EXPECT_THAT(objs, ElementsAre(UncopyableIs(-3), Truly(ValueIsPositive))); 4682 } 4683 4684 TEST(ElementsAreTest, TakesStlContainer) { 4685 const int actual[] = {3, 1, 2}; 4686 4687 ::std::list<int> expected; 4688 expected.push_back(3); 4689 expected.push_back(1); 4690 expected.push_back(2); 4691 EXPECT_THAT(actual, ElementsAreArray(expected)); 4692 4693 expected.push_back(4); 4694 EXPECT_THAT(actual, Not(ElementsAreArray(expected))); 4695 } 4696 4697 // Tests for UnorderedElementsAreArray() 4698 4699 TEST(UnorderedElementsAreArrayTest, SucceedsWhenExpected) { 4700 const int a[] = {0, 1, 2, 3, 4}; 4701 std::vector<int> s(a, a + GTEST_ARRAY_SIZE_(a)); 4702 do { 4703 StringMatchResultListener listener; 4704 EXPECT_TRUE(ExplainMatchResult(UnorderedElementsAreArray(a), 4705 s, &listener)) << listener.str(); 4706 } while (std::next_permutation(s.begin(), s.end())); 4707 } 4708 4709 TEST(UnorderedElementsAreArrayTest, VectorBool) { 4710 const bool a[] = {0, 1, 0, 1, 1}; 4711 const bool b[] = {1, 0, 1, 1, 0}; 4712 std::vector<bool> expected(a, a + GTEST_ARRAY_SIZE_(a)); 4713 std::vector<bool> actual(b, b + GTEST_ARRAY_SIZE_(b)); 4714 StringMatchResultListener listener; 4715 EXPECT_TRUE(ExplainMatchResult(UnorderedElementsAreArray(expected), 4716 actual, &listener)) << listener.str(); 4717 } 4718 4719 TEST(UnorderedElementsAreArrayTest, WorksForStreamlike) { 4720 // Streamlike 'container' provides only minimal iterator support. 4721 // Its iterators are tagged with input_iterator_tag, and it has no 4722 // size() or empty() methods. 4723 const int a[5] = {2, 1, 4, 5, 3}; 4724 Streamlike<int> s(a, a + GTEST_ARRAY_SIZE_(a)); 4725 4726 ::std::vector<int> expected; 4727 expected.push_back(1); 4728 expected.push_back(2); 4729 expected.push_back(3); 4730 expected.push_back(4); 4731 expected.push_back(5); 4732 EXPECT_THAT(s, UnorderedElementsAreArray(expected)); 4733 4734 expected.push_back(6); 4735 EXPECT_THAT(s, Not(UnorderedElementsAreArray(expected))); 4736 } 4737 4738 TEST(UnorderedElementsAreArrayTest, TakesStlContainer) { 4739 const int actual[] = {3, 1, 2}; 4740 4741 ::std::list<int> expected; 4742 expected.push_back(1); 4743 expected.push_back(2); 4744 expected.push_back(3); 4745 EXPECT_THAT(actual, UnorderedElementsAreArray(expected)); 4746 4747 expected.push_back(4); 4748 EXPECT_THAT(actual, Not(UnorderedElementsAreArray(expected))); 4749 } 4750 4751 #if GTEST_HAS_STD_INITIALIZER_LIST_ 4752 4753 TEST(UnorderedElementsAreArrayTest, TakesInitializerList) { 4754 const int a[5] = {2, 1, 4, 5, 3}; 4755 EXPECT_THAT(a, UnorderedElementsAreArray({1, 2, 3, 4, 5})); 4756 EXPECT_THAT(a, Not(UnorderedElementsAreArray({1, 2, 3, 4, 6}))); 4757 } 4758 4759 TEST(UnorderedElementsAreArrayTest, TakesInitializerListOfCStrings) { 4760 const string a[5] = {"a", "b", "c", "d", "e"}; 4761 EXPECT_THAT(a, UnorderedElementsAreArray({"a", "b", "c", "d", "e"})); 4762 EXPECT_THAT(a, Not(UnorderedElementsAreArray({"a", "b", "c", "d", "ef"}))); 4763 } 4764 4765 TEST(UnorderedElementsAreArrayTest, TakesInitializerListOfSameTypedMatchers) { 4766 const int a[5] = {2, 1, 4, 5, 3}; 4767 EXPECT_THAT(a, UnorderedElementsAreArray( 4768 {Eq(1), Eq(2), Eq(3), Eq(4), Eq(5)})); 4769 EXPECT_THAT(a, Not(UnorderedElementsAreArray( 4770 {Eq(1), Eq(2), Eq(3), Eq(4), Eq(6)}))); 4771 } 4772 4773 TEST(UnorderedElementsAreArrayTest, 4774 TakesInitializerListOfDifferentTypedMatchers) { 4775 const int a[5] = {2, 1, 4, 5, 3}; 4776 // The compiler cannot infer the type of the initializer list if its 4777 // elements have different types. We must explicitly specify the 4778 // unified element type in this case. 4779 EXPECT_THAT(a, UnorderedElementsAreArray<Matcher<int> >( 4780 {Eq(1), Ne(-2), Ge(3), Le(4), Eq(5)})); 4781 EXPECT_THAT(a, Not(UnorderedElementsAreArray<Matcher<int> >( 4782 {Eq(1), Ne(-2), Ge(3), Le(4), Eq(6)}))); 4783 } 4784 4785 #endif // GTEST_HAS_STD_INITIALIZER_LIST_ 4786 4787 class UnorderedElementsAreTest : public testing::Test { 4788 protected: 4789 typedef std::vector<int> IntVec; 4790 }; 4791 4792 TEST_F(UnorderedElementsAreTest, WorksWithUncopyable) { 4793 Uncopyable objs[2]; 4794 objs[0].set_value(-3); 4795 objs[1].set_value(1); 4796 EXPECT_THAT(objs, 4797 UnorderedElementsAre(Truly(ValueIsPositive), UncopyableIs(-3))); 4798 } 4799 4800 TEST_F(UnorderedElementsAreTest, SucceedsWhenExpected) { 4801 const int a[] = {1, 2, 3}; 4802 std::vector<int> s(a, a + GTEST_ARRAY_SIZE_(a)); 4803 do { 4804 StringMatchResultListener listener; 4805 EXPECT_TRUE(ExplainMatchResult(UnorderedElementsAre(1, 2, 3), 4806 s, &listener)) << listener.str(); 4807 } while (std::next_permutation(s.begin(), s.end())); 4808 } 4809 4810 TEST_F(UnorderedElementsAreTest, FailsWhenAnElementMatchesNoMatcher) { 4811 const int a[] = {1, 2, 3}; 4812 std::vector<int> s(a, a + GTEST_ARRAY_SIZE_(a)); 4813 std::vector<Matcher<int> > mv; 4814 mv.push_back(1); 4815 mv.push_back(2); 4816 mv.push_back(2); 4817 // The element with value '3' matches nothing: fail fast. 4818 StringMatchResultListener listener; 4819 EXPECT_FALSE(ExplainMatchResult(UnorderedElementsAreArray(mv), 4820 s, &listener)) << listener.str(); 4821 } 4822 4823 TEST_F(UnorderedElementsAreTest, WorksForStreamlike) { 4824 // Streamlike 'container' provides only minimal iterator support. 4825 // Its iterators are tagged with input_iterator_tag, and it has no 4826 // size() or empty() methods. 4827 const int a[5] = {2, 1, 4, 5, 3}; 4828 Streamlike<int> s(a, a + GTEST_ARRAY_SIZE_(a)); 4829 4830 EXPECT_THAT(s, UnorderedElementsAre(1, 2, 3, 4, 5)); 4831 EXPECT_THAT(s, Not(UnorderedElementsAre(2, 2, 3, 4, 5))); 4832 } 4833 4834 // One naive implementation of the matcher runs in O(N!) time, which is too 4835 // slow for many real-world inputs. This test shows that our matcher can match 4836 // 100 inputs very quickly (a few milliseconds). An O(100!) is 10^158 4837 // iterations and obviously effectively incomputable. 4838 // [ RUN ] UnorderedElementsAreTest.Performance 4839 // [ OK ] UnorderedElementsAreTest.Performance (4 ms) 4840 TEST_F(UnorderedElementsAreTest, Performance) { 4841 std::vector<int> s; 4842 std::vector<Matcher<int> > mv; 4843 for (int i = 0; i < 100; ++i) { 4844 s.push_back(i); 4845 mv.push_back(_); 4846 } 4847 mv[50] = Eq(0); 4848 StringMatchResultListener listener; 4849 EXPECT_TRUE(ExplainMatchResult(UnorderedElementsAreArray(mv), 4850 s, &listener)) << listener.str(); 4851 } 4852 4853 // Another variant of 'Performance' with similar expectations. 4854 // [ RUN ] UnorderedElementsAreTest.PerformanceHalfStrict 4855 // [ OK ] UnorderedElementsAreTest.PerformanceHalfStrict (4 ms) 4856 TEST_F(UnorderedElementsAreTest, PerformanceHalfStrict) { 4857 std::vector<int> s; 4858 std::vector<Matcher<int> > mv; 4859 for (int i = 0; i < 100; ++i) { 4860 s.push_back(i); 4861 if (i & 1) { 4862 mv.push_back(_); 4863 } else { 4864 mv.push_back(i); 4865 } 4866 } 4867 StringMatchResultListener listener; 4868 EXPECT_TRUE(ExplainMatchResult(UnorderedElementsAreArray(mv), 4869 s, &listener)) << listener.str(); 4870 } 4871 4872 TEST_F(UnorderedElementsAreTest, FailMessageCountWrong) { 4873 std::vector<int> v; 4874 v.push_back(4); 4875 StringMatchResultListener listener; 4876 EXPECT_FALSE(ExplainMatchResult(UnorderedElementsAre(1, 2, 3), 4877 v, &listener)) << listener.str(); 4878 EXPECT_THAT(listener.str(), Eq("which has 1 element")); 4879 } 4880 4881 TEST_F(UnorderedElementsAreTest, FailMessageCountWrongZero) { 4882 std::vector<int> v; 4883 StringMatchResultListener listener; 4884 EXPECT_FALSE(ExplainMatchResult(UnorderedElementsAre(1, 2, 3), 4885 v, &listener)) << listener.str(); 4886 EXPECT_THAT(listener.str(), Eq("")); 4887 } 4888 4889 TEST_F(UnorderedElementsAreTest, FailMessageUnmatchedMatchers) { 4890 std::vector<int> v; 4891 v.push_back(1); 4892 v.push_back(1); 4893 StringMatchResultListener listener; 4894 EXPECT_FALSE(ExplainMatchResult(UnorderedElementsAre(1, 2), 4895 v, &listener)) << listener.str(); 4896 EXPECT_THAT( 4897 listener.str(), 4898 Eq("where the following matchers don't match any elements:\n" 4899 "matcher #1: is equal to 2")); 4900 } 4901 4902 TEST_F(UnorderedElementsAreTest, FailMessageUnmatchedElements) { 4903 std::vector<int> v; 4904 v.push_back(1); 4905 v.push_back(2); 4906 StringMatchResultListener listener; 4907 EXPECT_FALSE(ExplainMatchResult(UnorderedElementsAre(1, 1), 4908 v, &listener)) << listener.str(); 4909 EXPECT_THAT( 4910 listener.str(), 4911 Eq("where the following elements don't match any matchers:\n" 4912 "element #1: 2")); 4913 } 4914 4915 TEST_F(UnorderedElementsAreTest, FailMessageUnmatchedMatcherAndElement) { 4916 std::vector<int> v; 4917 v.push_back(2); 4918 v.push_back(3); 4919 StringMatchResultListener listener; 4920 EXPECT_FALSE(ExplainMatchResult(UnorderedElementsAre(1, 2), 4921 v, &listener)) << listener.str(); 4922 EXPECT_THAT( 4923 listener.str(), 4924 Eq("where" 4925 " the following matchers don't match any elements:\n" 4926 "matcher #0: is equal to 1\n" 4927 "and" 4928 " where" 4929 " the following elements don't match any matchers:\n" 4930 "element #1: 3")); 4931 } 4932 4933 // Test helper for formatting element, matcher index pairs in expectations. 4934 static string EMString(int element, int matcher) { 4935 stringstream ss; 4936 ss << "(element #" << element << ", matcher #" << matcher << ")"; 4937 return ss.str(); 4938 } 4939 4940 TEST_F(UnorderedElementsAreTest, FailMessageImperfectMatchOnly) { 4941 // A situation where all elements and matchers have a match 4942 // associated with them, but the max matching is not perfect. 4943 std::vector<string> v; 4944 v.push_back("a"); 4945 v.push_back("b"); 4946 v.push_back("c"); 4947 StringMatchResultListener listener; 4948 EXPECT_FALSE(ExplainMatchResult( 4949 UnorderedElementsAre("a", "a", AnyOf("b", "c")), v, &listener)) 4950 << listener.str(); 4951 4952 string prefix = 4953 "where no permutation of the elements can satisfy all matchers, " 4954 "and the closest match is 2 of 3 matchers with the " 4955 "pairings:\n"; 4956 4957 // We have to be a bit loose here, because there are 4 valid max matches. 4958 EXPECT_THAT( 4959 listener.str(), 4960 AnyOf(prefix + "{\n " + EMString(0, 0) + 4961 ",\n " + EMString(1, 2) + "\n}", 4962 prefix + "{\n " + EMString(0, 1) + 4963 ",\n " + EMString(1, 2) + "\n}", 4964 prefix + "{\n " + EMString(0, 0) + 4965 ",\n " + EMString(2, 2) + "\n}", 4966 prefix + "{\n " + EMString(0, 1) + 4967 ",\n " + EMString(2, 2) + "\n}")); 4968 } 4969 4970 TEST_F(UnorderedElementsAreTest, Describe) { 4971 EXPECT_THAT(Describe<IntVec>(UnorderedElementsAre()), 4972 Eq("is empty")); 4973 EXPECT_THAT( 4974 Describe<IntVec>(UnorderedElementsAre(345)), 4975 Eq("has 1 element and that element is equal to 345")); 4976 EXPECT_THAT( 4977 Describe<IntVec>(UnorderedElementsAre(111, 222, 333)), 4978 Eq("has 3 elements and there exists some permutation " 4979 "of elements such that:\n" 4980 " - element #0 is equal to 111, and\n" 4981 " - element #1 is equal to 222, and\n" 4982 " - element #2 is equal to 333")); 4983 } 4984 4985 TEST_F(UnorderedElementsAreTest, DescribeNegation) { 4986 EXPECT_THAT(DescribeNegation<IntVec>(UnorderedElementsAre()), 4987 Eq("isn't empty")); 4988 EXPECT_THAT( 4989 DescribeNegation<IntVec>(UnorderedElementsAre(345)), 4990 Eq("doesn't have 1 element, or has 1 element that isn't equal to 345")); 4991 EXPECT_THAT( 4992 DescribeNegation<IntVec>(UnorderedElementsAre(123, 234, 345)), 4993 Eq("doesn't have 3 elements, or there exists no permutation " 4994 "of elements such that:\n" 4995 " - element #0 is equal to 123, and\n" 4996 " - element #1 is equal to 234, and\n" 4997 " - element #2 is equal to 345")); 4998 } 4999 5000 namespace { 5001 5002 // Used as a check on the more complex max flow method used in the 5003 // real testing::internal::FindMaxBipartiteMatching. This method is 5004 // compatible but runs in worst-case factorial time, so we only 5005 // use it in testing for small problem sizes. 5006 template <typename Graph> 5007 class BacktrackingMaxBPMState { 5008 public: 5009 // Does not take ownership of 'g'. 5010 explicit BacktrackingMaxBPMState(const Graph* g) : graph_(g) { } 5011 5012 ElementMatcherPairs Compute() { 5013 if (graph_->LhsSize() == 0 || graph_->RhsSize() == 0) { 5014 return best_so_far_; 5015 } 5016 lhs_used_.assign(graph_->LhsSize(), kUnused); 5017 rhs_used_.assign(graph_->RhsSize(), kUnused); 5018 for (size_t irhs = 0; irhs < graph_->RhsSize(); ++irhs) { 5019 matches_.clear(); 5020 RecurseInto(irhs); 5021 if (best_so_far_.size() == graph_->RhsSize()) 5022 break; 5023 } 5024 return best_so_far_; 5025 } 5026 5027 private: 5028 static const size_t kUnused = static_cast<size_t>(-1); 5029 5030 void PushMatch(size_t lhs, size_t rhs) { 5031 matches_.push_back(ElementMatcherPair(lhs, rhs)); 5032 lhs_used_[lhs] = rhs; 5033 rhs_used_[rhs] = lhs; 5034 if (matches_.size() > best_so_far_.size()) { 5035 best_so_far_ = matches_; 5036 } 5037 } 5038 5039 void PopMatch() { 5040 const ElementMatcherPair& back = matches_.back(); 5041 lhs_used_[back.first] = kUnused; 5042 rhs_used_[back.second] = kUnused; 5043 matches_.pop_back(); 5044 } 5045 5046 bool RecurseInto(size_t irhs) { 5047 if (rhs_used_[irhs] != kUnused) { 5048 return true; 5049 } 5050 for (size_t ilhs = 0; ilhs < graph_->LhsSize(); ++ilhs) { 5051 if (lhs_used_[ilhs] != kUnused) { 5052 continue; 5053 } 5054 if (!graph_->HasEdge(ilhs, irhs)) { 5055 continue; 5056 } 5057 PushMatch(ilhs, irhs); 5058 if (best_so_far_.size() == graph_->RhsSize()) { 5059 return false; 5060 } 5061 for (size_t mi = irhs + 1; mi < graph_->RhsSize(); ++mi) { 5062 if (!RecurseInto(mi)) return false; 5063 } 5064 PopMatch(); 5065 } 5066 return true; 5067 } 5068 5069 const Graph* graph_; // not owned 5070 std::vector<size_t> lhs_used_; 5071 std::vector<size_t> rhs_used_; 5072 ElementMatcherPairs matches_; 5073 ElementMatcherPairs best_so_far_; 5074 }; 5075 5076 template <typename Graph> 5077 const size_t BacktrackingMaxBPMState<Graph>::kUnused; 5078 5079 } // namespace 5080 5081 // Implement a simple backtracking algorithm to determine if it is possible 5082 // to find one element per matcher, without reusing elements. 5083 template <typename Graph> 5084 ElementMatcherPairs 5085 FindBacktrackingMaxBPM(const Graph& g) { 5086 return BacktrackingMaxBPMState<Graph>(&g).Compute(); 5087 } 5088 5089 class BacktrackingBPMTest : public ::testing::Test { }; 5090 5091 // Tests the MaxBipartiteMatching algorithm with square matrices. 5092 // The single int param is the # of nodes on each of the left and right sides. 5093 class BipartiteTest : public ::testing::TestWithParam<int> { }; 5094 5095 // Verify all match graphs up to some moderate number of edges. 5096 TEST_P(BipartiteTest, Exhaustive) { 5097 int nodes = GetParam(); 5098 MatchMatrix graph(nodes, nodes); 5099 do { 5100 ElementMatcherPairs matches = 5101 internal::FindMaxBipartiteMatching(graph); 5102 EXPECT_EQ(FindBacktrackingMaxBPM(graph).size(), matches.size()) 5103 << "graph: " << graph.DebugString(); 5104 // Check that all elements of matches are in the graph. 5105 // Check that elements of first and second are unique. 5106 std::vector<bool> seen_element(graph.LhsSize()); 5107 std::vector<bool> seen_matcher(graph.RhsSize()); 5108 SCOPED_TRACE(PrintToString(matches)); 5109 for (size_t i = 0; i < matches.size(); ++i) { 5110 size_t ilhs = matches[i].first; 5111 size_t irhs = matches[i].second; 5112 EXPECT_TRUE(graph.HasEdge(ilhs, irhs)); 5113 EXPECT_FALSE(seen_element[ilhs]); 5114 EXPECT_FALSE(seen_matcher[irhs]); 5115 seen_element[ilhs] = true; 5116 seen_matcher[irhs] = true; 5117 } 5118 } while (graph.NextGraph()); 5119 } 5120 5121 INSTANTIATE_TEST_CASE_P(AllGraphs, BipartiteTest, 5122 ::testing::Range(0, 5)); 5123 5124 // Parameterized by a pair interpreted as (LhsSize, RhsSize). 5125 class BipartiteNonSquareTest 5126 : public ::testing::TestWithParam<std::pair<size_t, size_t> > { 5127 }; 5128 5129 TEST_F(BipartiteNonSquareTest, SimpleBacktracking) { 5130 // ....... 5131 // 0:-----\ : 5132 // 1:---\ | : 5133 // 2:---\ | : 5134 // 3:-\ | | : 5135 // :.......: 5136 // 0 1 2 5137 MatchMatrix g(4, 3); 5138 static const int kEdges[][2] = {{0, 2}, {1, 1}, {2, 1}, {3, 0}}; 5139 for (size_t i = 0; i < GTEST_ARRAY_SIZE_(kEdges); ++i) { 5140 g.SetEdge(kEdges[i][0], kEdges[i][1], true); 5141 } 5142 EXPECT_THAT(FindBacktrackingMaxBPM(g), 5143 ElementsAre(Pair(3, 0), 5144 Pair(AnyOf(1, 2), 1), 5145 Pair(0, 2))) << g.DebugString(); 5146 } 5147 5148 // Verify a few nonsquare matrices. 5149 TEST_P(BipartiteNonSquareTest, Exhaustive) { 5150 size_t nlhs = GetParam().first; 5151 size_t nrhs = GetParam().second; 5152 MatchMatrix graph(nlhs, nrhs); 5153 do { 5154 EXPECT_EQ(FindBacktrackingMaxBPM(graph).size(), 5155 internal::FindMaxBipartiteMatching(graph).size()) 5156 << "graph: " << graph.DebugString() 5157 << "\nbacktracking: " 5158 << PrintToString(FindBacktrackingMaxBPM(graph)) 5159 << "\nmax flow: " 5160 << PrintToString(internal::FindMaxBipartiteMatching(graph)); 5161 } while (graph.NextGraph()); 5162 } 5163 5164 INSTANTIATE_TEST_CASE_P(AllGraphs, BipartiteNonSquareTest, 5165 testing::Values( 5166 std::make_pair(1, 2), 5167 std::make_pair(2, 1), 5168 std::make_pair(3, 2), 5169 std::make_pair(2, 3), 5170 std::make_pair(4, 1), 5171 std::make_pair(1, 4), 5172 std::make_pair(4, 3), 5173 std::make_pair(3, 4))); 5174 5175 class BipartiteRandomTest 5176 : public ::testing::TestWithParam<std::pair<int, int> > { 5177 }; 5178 5179 // Verifies a large sample of larger graphs. 5180 TEST_P(BipartiteRandomTest, LargerNets) { 5181 int nodes = GetParam().first; 5182 int iters = GetParam().second; 5183 MatchMatrix graph(nodes, nodes); 5184 5185 testing::internal::Int32 seed = GTEST_FLAG(random_seed); 5186 if (seed == 0) { 5187 seed = static_cast<testing::internal::Int32>(time(NULL)); 5188 } 5189 5190 for (; iters > 0; --iters, ++seed) { 5191 srand(static_cast<int>(seed)); 5192 graph.Randomize(); 5193 EXPECT_EQ(FindBacktrackingMaxBPM(graph).size(), 5194 internal::FindMaxBipartiteMatching(graph).size()) 5195 << " graph: " << graph.DebugString() 5196 << "\nTo reproduce the failure, rerun the test with the flag" 5197 " --" << GTEST_FLAG_PREFIX_ << "random_seed=" << seed; 5198 } 5199 } 5200 5201 // Test argument is a std::pair<int, int> representing (nodes, iters). 5202 INSTANTIATE_TEST_CASE_P(Samples, BipartiteRandomTest, 5203 testing::Values( 5204 std::make_pair(5, 10000), 5205 std::make_pair(6, 5000), 5206 std::make_pair(7, 2000), 5207 std::make_pair(8, 500), 5208 std::make_pair(9, 100))); 5209 5210 // Tests IsReadableTypeName(). 5211 5212 TEST(IsReadableTypeNameTest, ReturnsTrueForShortNames) { 5213 EXPECT_TRUE(IsReadableTypeName("int")); 5214 EXPECT_TRUE(IsReadableTypeName("const unsigned char*")); 5215 EXPECT_TRUE(IsReadableTypeName("MyMap<int, void*>")); 5216 EXPECT_TRUE(IsReadableTypeName("void (*)(int, bool)")); 5217 } 5218 5219 TEST(IsReadableTypeNameTest, ReturnsTrueForLongNonTemplateNonFunctionNames) { 5220 EXPECT_TRUE(IsReadableTypeName("my_long_namespace::MyClassName")); 5221 EXPECT_TRUE(IsReadableTypeName("int [5][6][7][8][9][10][11]")); 5222 EXPECT_TRUE(IsReadableTypeName("my_namespace::MyOuterClass::MyInnerClass")); 5223 } 5224 5225 TEST(IsReadableTypeNameTest, ReturnsFalseForLongTemplateNames) { 5226 EXPECT_FALSE( 5227 IsReadableTypeName("basic_string<char, std::char_traits<char> >")); 5228 EXPECT_FALSE(IsReadableTypeName("std::vector<int, std::alloc_traits<int> >")); 5229 } 5230 5231 TEST(IsReadableTypeNameTest, ReturnsFalseForLongFunctionTypeNames) { 5232 EXPECT_FALSE(IsReadableTypeName("void (&)(int, bool, char, float)")); 5233 } 5234 5235 // Tests JoinAsTuple(). 5236 5237 TEST(JoinAsTupleTest, JoinsEmptyTuple) { 5238 EXPECT_EQ("", JoinAsTuple(Strings())); 5239 } 5240 5241 TEST(JoinAsTupleTest, JoinsOneTuple) { 5242 const char* fields[] = {"1"}; 5243 EXPECT_EQ("1", JoinAsTuple(Strings(fields, fields + 1))); 5244 } 5245 5246 TEST(JoinAsTupleTest, JoinsTwoTuple) { 5247 const char* fields[] = {"1", "a"}; 5248 EXPECT_EQ("(1, a)", JoinAsTuple(Strings(fields, fields + 2))); 5249 } 5250 5251 TEST(JoinAsTupleTest, JoinsTenTuple) { 5252 const char* fields[] = {"1", "2", "3", "4", "5", "6", "7", "8", "9", "10"}; 5253 EXPECT_EQ("(1, 2, 3, 4, 5, 6, 7, 8, 9, 10)", 5254 JoinAsTuple(Strings(fields, fields + 10))); 5255 } 5256 5257 // Tests FormatMatcherDescription(). 5258 5259 TEST(FormatMatcherDescriptionTest, WorksForEmptyDescription) { 5260 EXPECT_EQ("is even", 5261 FormatMatcherDescription(false, "IsEven", Strings())); 5262 EXPECT_EQ("not (is even)", 5263 FormatMatcherDescription(true, "IsEven", Strings())); 5264 5265 const char* params[] = {"5"}; 5266 EXPECT_EQ("equals 5", 5267 FormatMatcherDescription(false, "Equals", 5268 Strings(params, params + 1))); 5269 5270 const char* params2[] = {"5", "8"}; 5271 EXPECT_EQ("is in range (5, 8)", 5272 FormatMatcherDescription(false, "IsInRange", 5273 Strings(params2, params2 + 2))); 5274 } 5275 5276 // Tests PolymorphicMatcher::mutable_impl(). 5277 TEST(PolymorphicMatcherTest, CanAccessMutableImpl) { 5278 PolymorphicMatcher<DivisibleByImpl> m(DivisibleByImpl(42)); 5279 DivisibleByImpl& impl = m.mutable_impl(); 5280 EXPECT_EQ(42, impl.divider()); 5281 5282 impl.set_divider(0); 5283 EXPECT_EQ(0, m.mutable_impl().divider()); 5284 } 5285 5286 // Tests PolymorphicMatcher::impl(). 5287 TEST(PolymorphicMatcherTest, CanAccessImpl) { 5288 const PolymorphicMatcher<DivisibleByImpl> m(DivisibleByImpl(42)); 5289 const DivisibleByImpl& impl = m.impl(); 5290 EXPECT_EQ(42, impl.divider()); 5291 } 5292 5293 TEST(MatcherTupleTest, ExplainsMatchFailure) { 5294 stringstream ss1; 5295 ExplainMatchFailureTupleTo(make_tuple(Matcher<char>(Eq('a')), GreaterThan(5)), 5296 make_tuple('a', 10), &ss1); 5297 EXPECT_EQ("", ss1.str()); // Successful match. 5298 5299 stringstream ss2; 5300 ExplainMatchFailureTupleTo(make_tuple(GreaterThan(5), Matcher<char>(Eq('a'))), 5301 make_tuple(2, 'b'), &ss2); 5302 EXPECT_EQ(" Expected arg #0: is > 5\n" 5303 " Actual: 2, which is 3 less than 5\n" 5304 " Expected arg #1: is equal to 'a' (97, 0x61)\n" 5305 " Actual: 'b' (98, 0x62)\n", 5306 ss2.str()); // Failed match where both arguments need explanation. 5307 5308 stringstream ss3; 5309 ExplainMatchFailureTupleTo(make_tuple(GreaterThan(5), Matcher<char>(Eq('a'))), 5310 make_tuple(2, 'a'), &ss3); 5311 EXPECT_EQ(" Expected arg #0: is > 5\n" 5312 " Actual: 2, which is 3 less than 5\n", 5313 ss3.str()); // Failed match where only one argument needs 5314 // explanation. 5315 } 5316 5317 // Tests Each(). 5318 5319 TEST(EachTest, ExplainsMatchResultCorrectly) { 5320 set<int> a; // empty 5321 5322 Matcher<set<int> > m = Each(2); 5323 EXPECT_EQ("", Explain(m, a)); 5324 5325 Matcher<const int(&)[1]> n = Each(1); // NOLINT 5326 5327 const int b[1] = {1}; 5328 EXPECT_EQ("", Explain(n, b)); 5329 5330 n = Each(3); 5331 EXPECT_EQ("whose element #0 doesn't match", Explain(n, b)); 5332 5333 a.insert(1); 5334 a.insert(2); 5335 a.insert(3); 5336 m = Each(GreaterThan(0)); 5337 EXPECT_EQ("", Explain(m, a)); 5338 5339 m = Each(GreaterThan(10)); 5340 EXPECT_EQ("whose element #0 doesn't match, which is 9 less than 10", 5341 Explain(m, a)); 5342 } 5343 5344 TEST(EachTest, DescribesItselfCorrectly) { 5345 Matcher<vector<int> > m = Each(1); 5346 EXPECT_EQ("only contains elements that is equal to 1", Describe(m)); 5347 5348 Matcher<vector<int> > m2 = Not(m); 5349 EXPECT_EQ("contains some element that isn't equal to 1", Describe(m2)); 5350 } 5351 5352 TEST(EachTest, MatchesVectorWhenAllElementsMatch) { 5353 vector<int> some_vector; 5354 EXPECT_THAT(some_vector, Each(1)); 5355 some_vector.push_back(3); 5356 EXPECT_THAT(some_vector, Not(Each(1))); 5357 EXPECT_THAT(some_vector, Each(3)); 5358 some_vector.push_back(1); 5359 some_vector.push_back(2); 5360 EXPECT_THAT(some_vector, Not(Each(3))); 5361 EXPECT_THAT(some_vector, Each(Lt(3.5))); 5362 5363 vector<string> another_vector; 5364 another_vector.push_back("fee"); 5365 EXPECT_THAT(another_vector, Each(string("fee"))); 5366 another_vector.push_back("fie"); 5367 another_vector.push_back("foe"); 5368 another_vector.push_back("fum"); 5369 EXPECT_THAT(another_vector, Not(Each(string("fee")))); 5370 } 5371 5372 TEST(EachTest, MatchesMapWhenAllElementsMatch) { 5373 map<const char*, int> my_map; 5374 const char* bar = "a string"; 5375 my_map[bar] = 2; 5376 EXPECT_THAT(my_map, Each(make_pair(bar, 2))); 5377 5378 map<string, int> another_map; 5379 EXPECT_THAT(another_map, Each(make_pair(string("fee"), 1))); 5380 another_map["fee"] = 1; 5381 EXPECT_THAT(another_map, Each(make_pair(string("fee"), 1))); 5382 another_map["fie"] = 2; 5383 another_map["foe"] = 3; 5384 another_map["fum"] = 4; 5385 EXPECT_THAT(another_map, Not(Each(make_pair(string("fee"), 1)))); 5386 EXPECT_THAT(another_map, Not(Each(make_pair(string("fum"), 1)))); 5387 EXPECT_THAT(another_map, Each(Pair(_, Gt(0)))); 5388 } 5389 5390 TEST(EachTest, AcceptsMatcher) { 5391 const int a[] = {1, 2, 3}; 5392 EXPECT_THAT(a, Each(Gt(0))); 5393 EXPECT_THAT(a, Not(Each(Gt(1)))); 5394 } 5395 5396 TEST(EachTest, WorksForNativeArrayAsTuple) { 5397 const int a[] = {1, 2}; 5398 const int* const pointer = a; 5399 EXPECT_THAT(make_tuple(pointer, 2), Each(Gt(0))); 5400 EXPECT_THAT(make_tuple(pointer, 2), Not(Each(Gt(1)))); 5401 } 5402 5403 // For testing Pointwise(). 5404 class IsHalfOfMatcher { 5405 public: 5406 template <typename T1, typename T2> 5407 bool MatchAndExplain(const tuple<T1, T2>& a_pair, 5408 MatchResultListener* listener) const { 5409 if (get<0>(a_pair) == get<1>(a_pair)/2) { 5410 *listener << "where the second is " << get<1>(a_pair); 5411 return true; 5412 } else { 5413 *listener << "where the second/2 is " << get<1>(a_pair)/2; 5414 return false; 5415 } 5416 } 5417 5418 void DescribeTo(ostream* os) const { 5419 *os << "are a pair where the first is half of the second"; 5420 } 5421 5422 void DescribeNegationTo(ostream* os) const { 5423 *os << "are a pair where the first isn't half of the second"; 5424 } 5425 }; 5426 5427 PolymorphicMatcher<IsHalfOfMatcher> IsHalfOf() { 5428 return MakePolymorphicMatcher(IsHalfOfMatcher()); 5429 } 5430 5431 TEST(PointwiseTest, DescribesSelf) { 5432 vector<int> rhs; 5433 rhs.push_back(1); 5434 rhs.push_back(2); 5435 rhs.push_back(3); 5436 const Matcher<const vector<int>&> m = Pointwise(IsHalfOf(), rhs); 5437 EXPECT_EQ("contains 3 values, where each value and its corresponding value " 5438 "in { 1, 2, 3 } are a pair where the first is half of the second", 5439 Describe(m)); 5440 EXPECT_EQ("doesn't contain exactly 3 values, or contains a value x at some " 5441 "index i where x and the i-th value of { 1, 2, 3 } are a pair " 5442 "where the first isn't half of the second", 5443 DescribeNegation(m)); 5444 } 5445 5446 TEST(PointwiseTest, MakesCopyOfRhs) { 5447 list<signed char> rhs; 5448 rhs.push_back(2); 5449 rhs.push_back(4); 5450 5451 int lhs[] = {1, 2}; 5452 const Matcher<const int (&)[2]> m = Pointwise(IsHalfOf(), rhs); 5453 EXPECT_THAT(lhs, m); 5454 5455 // Changing rhs now shouldn't affect m, which made a copy of rhs. 5456 rhs.push_back(6); 5457 EXPECT_THAT(lhs, m); 5458 } 5459 5460 TEST(PointwiseTest, WorksForLhsNativeArray) { 5461 const int lhs[] = {1, 2, 3}; 5462 vector<int> rhs; 5463 rhs.push_back(2); 5464 rhs.push_back(4); 5465 rhs.push_back(6); 5466 EXPECT_THAT(lhs, Pointwise(Lt(), rhs)); 5467 EXPECT_THAT(lhs, Not(Pointwise(Gt(), rhs))); 5468 } 5469 5470 TEST(PointwiseTest, WorksForRhsNativeArray) { 5471 const int rhs[] = {1, 2, 3}; 5472 vector<int> lhs; 5473 lhs.push_back(2); 5474 lhs.push_back(4); 5475 lhs.push_back(6); 5476 EXPECT_THAT(lhs, Pointwise(Gt(), rhs)); 5477 EXPECT_THAT(lhs, Not(Pointwise(Lt(), rhs))); 5478 } 5479 5480 #if GTEST_HAS_STD_INITIALIZER_LIST_ 5481 5482 TEST(PointwiseTest, WorksForRhsInitializerList) { 5483 const vector<int> lhs{2, 4, 6}; 5484 EXPECT_THAT(lhs, Pointwise(Gt(), {1, 2, 3})); 5485 EXPECT_THAT(lhs, Not(Pointwise(Lt(), {3, 3, 7}))); 5486 } 5487 5488 #endif // GTEST_HAS_STD_INITIALIZER_LIST_ 5489 5490 TEST(PointwiseTest, RejectsWrongSize) { 5491 const double lhs[2] = {1, 2}; 5492 const int rhs[1] = {0}; 5493 EXPECT_THAT(lhs, Not(Pointwise(Gt(), rhs))); 5494 EXPECT_EQ("which contains 2 values", 5495 Explain(Pointwise(Gt(), rhs), lhs)); 5496 5497 const int rhs2[3] = {0, 1, 2}; 5498 EXPECT_THAT(lhs, Not(Pointwise(Gt(), rhs2))); 5499 } 5500 5501 TEST(PointwiseTest, RejectsWrongContent) { 5502 const double lhs[3] = {1, 2, 3}; 5503 const int rhs[3] = {2, 6, 4}; 5504 EXPECT_THAT(lhs, Not(Pointwise(IsHalfOf(), rhs))); 5505 EXPECT_EQ("where the value pair (2, 6) at index #1 don't match, " 5506 "where the second/2 is 3", 5507 Explain(Pointwise(IsHalfOf(), rhs), lhs)); 5508 } 5509 5510 TEST(PointwiseTest, AcceptsCorrectContent) { 5511 const double lhs[3] = {1, 2, 3}; 5512 const int rhs[3] = {2, 4, 6}; 5513 EXPECT_THAT(lhs, Pointwise(IsHalfOf(), rhs)); 5514 EXPECT_EQ("", Explain(Pointwise(IsHalfOf(), rhs), lhs)); 5515 } 5516 5517 TEST(PointwiseTest, AllowsMonomorphicInnerMatcher) { 5518 const double lhs[3] = {1, 2, 3}; 5519 const int rhs[3] = {2, 4, 6}; 5520 const Matcher<tuple<const double&, const int&> > m1 = IsHalfOf(); 5521 EXPECT_THAT(lhs, Pointwise(m1, rhs)); 5522 EXPECT_EQ("", Explain(Pointwise(m1, rhs), lhs)); 5523 5524 // This type works as a tuple<const double&, const int&> can be 5525 // implicitly cast to tuple<double, int>. 5526 const Matcher<tuple<double, int> > m2 = IsHalfOf(); 5527 EXPECT_THAT(lhs, Pointwise(m2, rhs)); 5528 EXPECT_EQ("", Explain(Pointwise(m2, rhs), lhs)); 5529 } 5530 5531 TEST(UnorderedPointwiseTest, DescribesSelf) { 5532 vector<int> rhs; 5533 rhs.push_back(1); 5534 rhs.push_back(2); 5535 rhs.push_back(3); 5536 const Matcher<const vector<int>&> m = UnorderedPointwise(IsHalfOf(), rhs); 5537 EXPECT_EQ( 5538 "has 3 elements and there exists some permutation of elements such " 5539 "that:\n" 5540 " - element #0 and 1 are a pair where the first is half of the second, " 5541 "and\n" 5542 " - element #1 and 2 are a pair where the first is half of the second, " 5543 "and\n" 5544 " - element #2 and 3 are a pair where the first is half of the second", 5545 Describe(m)); 5546 EXPECT_EQ( 5547 "doesn't have 3 elements, or there exists no permutation of elements " 5548 "such that:\n" 5549 " - element #0 and 1 are a pair where the first is half of the second, " 5550 "and\n" 5551 " - element #1 and 2 are a pair where the first is half of the second, " 5552 "and\n" 5553 " - element #2 and 3 are a pair where the first is half of the second", 5554 DescribeNegation(m)); 5555 } 5556 5557 TEST(UnorderedPointwiseTest, MakesCopyOfRhs) { 5558 list<signed char> rhs; 5559 rhs.push_back(2); 5560 rhs.push_back(4); 5561 5562 int lhs[] = {2, 1}; 5563 const Matcher<const int (&)[2]> m = UnorderedPointwise(IsHalfOf(), rhs); 5564 EXPECT_THAT(lhs, m); 5565 5566 // Changing rhs now shouldn't affect m, which made a copy of rhs. 5567 rhs.push_back(6); 5568 EXPECT_THAT(lhs, m); 5569 } 5570 5571 TEST(UnorderedPointwiseTest, WorksForLhsNativeArray) { 5572 const int lhs[] = {1, 2, 3}; 5573 vector<int> rhs; 5574 rhs.push_back(4); 5575 rhs.push_back(6); 5576 rhs.push_back(2); 5577 EXPECT_THAT(lhs, UnorderedPointwise(Lt(), rhs)); 5578 EXPECT_THAT(lhs, Not(UnorderedPointwise(Gt(), rhs))); 5579 } 5580 5581 TEST(UnorderedPointwiseTest, WorksForRhsNativeArray) { 5582 const int rhs[] = {1, 2, 3}; 5583 vector<int> lhs; 5584 lhs.push_back(4); 5585 lhs.push_back(2); 5586 lhs.push_back(6); 5587 EXPECT_THAT(lhs, UnorderedPointwise(Gt(), rhs)); 5588 EXPECT_THAT(lhs, Not(UnorderedPointwise(Lt(), rhs))); 5589 } 5590 5591 #if GTEST_HAS_STD_INITIALIZER_LIST_ 5592 5593 TEST(UnorderedPointwiseTest, WorksForRhsInitializerList) { 5594 const vector<int> lhs{2, 4, 6}; 5595 EXPECT_THAT(lhs, UnorderedPointwise(Gt(), {5, 1, 3})); 5596 EXPECT_THAT(lhs, Not(UnorderedPointwise(Lt(), {1, 1, 7}))); 5597 } 5598 5599 #endif // GTEST_HAS_STD_INITIALIZER_LIST_ 5600 5601 TEST(UnorderedPointwiseTest, RejectsWrongSize) { 5602 const double lhs[2] = {1, 2}; 5603 const int rhs[1] = {0}; 5604 EXPECT_THAT(lhs, Not(UnorderedPointwise(Gt(), rhs))); 5605 EXPECT_EQ("which has 2 elements", 5606 Explain(UnorderedPointwise(Gt(), rhs), lhs)); 5607 5608 const int rhs2[3] = {0, 1, 2}; 5609 EXPECT_THAT(lhs, Not(UnorderedPointwise(Gt(), rhs2))); 5610 } 5611 5612 TEST(UnorderedPointwiseTest, RejectsWrongContent) { 5613 const double lhs[3] = {1, 2, 3}; 5614 const int rhs[3] = {2, 6, 6}; 5615 EXPECT_THAT(lhs, Not(UnorderedPointwise(IsHalfOf(), rhs))); 5616 EXPECT_EQ("where the following elements don't match any matchers:\n" 5617 "element #1: 2", 5618 Explain(UnorderedPointwise(IsHalfOf(), rhs), lhs)); 5619 } 5620 5621 TEST(UnorderedPointwiseTest, AcceptsCorrectContentInSameOrder) { 5622 const double lhs[3] = {1, 2, 3}; 5623 const int rhs[3] = {2, 4, 6}; 5624 EXPECT_THAT(lhs, UnorderedPointwise(IsHalfOf(), rhs)); 5625 } 5626 5627 TEST(UnorderedPointwiseTest, AcceptsCorrectContentInDifferentOrder) { 5628 const double lhs[3] = {1, 2, 3}; 5629 const int rhs[3] = {6, 4, 2}; 5630 EXPECT_THAT(lhs, UnorderedPointwise(IsHalfOf(), rhs)); 5631 } 5632 5633 TEST(UnorderedPointwiseTest, AllowsMonomorphicInnerMatcher) { 5634 const double lhs[3] = {1, 2, 3}; 5635 const int rhs[3] = {4, 6, 2}; 5636 const Matcher<tuple<const double&, const int&> > m1 = IsHalfOf(); 5637 EXPECT_THAT(lhs, UnorderedPointwise(m1, rhs)); 5638 5639 // This type works as a tuple<const double&, const int&> can be 5640 // implicitly cast to tuple<double, int>. 5641 const Matcher<tuple<double, int> > m2 = IsHalfOf(); 5642 EXPECT_THAT(lhs, UnorderedPointwise(m2, rhs)); 5643 } 5644 5645 } // namespace gmock_matchers_test 5646 } // namespace testing 5647