search_pred.pass.cpp 5.4 KB

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  1. //===----------------------------------------------------------------------===//
  2. //
  3. // The LLVM Compiler Infrastructure
  4. //
  5. // This file is dual licensed under the MIT and the University of Illinois Open
  6. // Source Licenses. See LICENSE.TXT for details.
  7. //
  8. //===----------------------------------------------------------------------===//
  9. // <algorithm>
  10. // template<ForwardIterator Iter1, ForwardIterator Iter2>
  11. // requires HasEqualTo<Iter1::value_type, Iter2::value_type>
  12. // constexpr Iter1 // constexpr after C++17
  13. // search(Iter1 first1, Iter1 last1, Iter2 first2, Iter2 last2);
  14. #include <algorithm>
  15. #include <cassert>
  16. #include "test_macros.h"
  17. #include "test_iterators.h"
  18. #if TEST_STD_VER > 17
  19. TEST_CONSTEXPR bool eq(int a, int b) { return a == b; }
  20. TEST_CONSTEXPR bool test_constexpr() {
  21. int ia[] = {0, 1, 2, 3};
  22. int ib[] = {0, 1, 5, 3};
  23. int ic[] = {0, 1, 2, 0, 1, 2, 3, 0, 1, 2, 3, 4};
  24. return (std::search(std::begin(ic), std::end(ic), std::begin(ia), std::end(ia), eq) == ic+3)
  25. && (std::search(std::begin(ic), std::end(ic), std::begin(ib), std::end(ib), eq) == std::end(ic))
  26. ;
  27. }
  28. #endif
  29. struct count_equal
  30. {
  31. static unsigned count;
  32. template <class T>
  33. bool operator()(const T& x, const T& y)
  34. {++count; return x == y;}
  35. };
  36. unsigned count_equal::count = 0;
  37. template <class Iter1, class Iter2>
  38. void
  39. test()
  40. {
  41. int ia[] = {0, 1, 2, 3, 4, 5};
  42. const unsigned sa = sizeof(ia)/sizeof(ia[0]);
  43. count_equal::count = 0;
  44. assert(std::search(Iter1(ia), Iter1(ia+sa), Iter2(ia), Iter2(ia), count_equal()) == Iter1(ia));
  45. assert(count_equal::count <= 0);
  46. count_equal::count = 0;
  47. assert(std::search(Iter1(ia), Iter1(ia+sa), Iter2(ia), Iter2(ia+1), count_equal()) == Iter1(ia));
  48. assert(count_equal::count <= sa);
  49. count_equal::count = 0;
  50. assert(std::search(Iter1(ia), Iter1(ia+sa), Iter2(ia+1), Iter2(ia+2), count_equal()) == Iter1(ia+1));
  51. assert(count_equal::count <= sa);
  52. count_equal::count = 0;
  53. assert(std::search(Iter1(ia), Iter1(ia+sa), Iter2(ia+2), Iter2(ia+2), count_equal()) == Iter1(ia));
  54. assert(count_equal::count <= 0);
  55. count_equal::count = 0;
  56. assert(std::search(Iter1(ia), Iter1(ia+sa), Iter2(ia+2), Iter2(ia+3), count_equal()) == Iter1(ia+2));
  57. assert(count_equal::count <= sa);
  58. count_equal::count = 0;
  59. assert(std::search(Iter1(ia), Iter1(ia+sa), Iter2(ia+2), Iter2(ia+3), count_equal()) == Iter1(ia+2));
  60. assert(count_equal::count <= sa);
  61. count_equal::count = 0;
  62. assert(std::search(Iter1(ia), Iter1(ia), Iter2(ia+2), Iter2(ia+3), count_equal()) == Iter1(ia));
  63. assert(count_equal::count <= 0);
  64. count_equal::count = 0;
  65. assert(std::search(Iter1(ia), Iter1(ia+sa), Iter2(ia+sa-1), Iter2(ia+sa), count_equal()) == Iter1(ia+sa-1));
  66. assert(count_equal::count <= sa);
  67. count_equal::count = 0;
  68. assert(std::search(Iter1(ia), Iter1(ia+sa), Iter2(ia+sa-3), Iter2(ia+sa), count_equal()) == Iter1(ia+sa-3));
  69. assert(count_equal::count <= sa*3);
  70. count_equal::count = 0;
  71. assert(std::search(Iter1(ia), Iter1(ia+sa), Iter2(ia), Iter2(ia+sa), count_equal()) == Iter1(ia));
  72. assert(count_equal::count <= sa*sa);
  73. count_equal::count = 0;
  74. assert(std::search(Iter1(ia), Iter1(ia+sa-1), Iter2(ia), Iter2(ia+sa), count_equal()) == Iter1(ia+sa-1));
  75. assert(count_equal::count <= (sa-1)*sa);
  76. count_equal::count = 0;
  77. assert(std::search(Iter1(ia), Iter1(ia+1), Iter2(ia), Iter2(ia+sa), count_equal()) == Iter1(ia+1));
  78. assert(count_equal::count <= sa);
  79. count_equal::count = 0;
  80. int ib[] = {0, 1, 2, 0, 1, 2, 3, 0, 1, 2, 3, 4};
  81. const unsigned sb = sizeof(ib)/sizeof(ib[0]);
  82. int ic[] = {1};
  83. assert(std::search(Iter1(ib), Iter1(ib+sb), Iter2(ic), Iter2(ic+1), count_equal()) == Iter1(ib+1));
  84. assert(count_equal::count <= sb);
  85. count_equal::count = 0;
  86. int id[] = {1, 2};
  87. assert(std::search(Iter1(ib), Iter1(ib+sb), Iter2(id), Iter2(id+2), count_equal()) == Iter1(ib+1));
  88. assert(count_equal::count <= sb*2);
  89. count_equal::count = 0;
  90. int ie[] = {1, 2, 3};
  91. assert(std::search(Iter1(ib), Iter1(ib+sb), Iter2(ie), Iter2(ie+3), count_equal()) == Iter1(ib+4));
  92. assert(count_equal::count <= sb*3);
  93. count_equal::count = 0;
  94. int ig[] = {1, 2, 3, 4};
  95. assert(std::search(Iter1(ib), Iter1(ib+sb), Iter2(ig), Iter2(ig+4), count_equal()) == Iter1(ib+8));
  96. assert(count_equal::count <= sb*4);
  97. count_equal::count = 0;
  98. int ih[] = {0, 1, 1, 1, 1, 2, 3, 0, 1, 2, 3, 4};
  99. const unsigned sh = sizeof(ih)/sizeof(ih[0]);
  100. int ii[] = {1, 1, 2};
  101. assert(std::search(Iter1(ih), Iter1(ih+sh), Iter2(ii), Iter2(ii+3), count_equal()) == Iter1(ih+3));
  102. assert(count_equal::count <= sh*3);
  103. }
  104. int main()
  105. {
  106. test<forward_iterator<const int*>, forward_iterator<const int*> >();
  107. test<forward_iterator<const int*>, bidirectional_iterator<const int*> >();
  108. test<forward_iterator<const int*>, random_access_iterator<const int*> >();
  109. test<bidirectional_iterator<const int*>, forward_iterator<const int*> >();
  110. test<bidirectional_iterator<const int*>, bidirectional_iterator<const int*> >();
  111. test<bidirectional_iterator<const int*>, random_access_iterator<const int*> >();
  112. test<random_access_iterator<const int*>, forward_iterator<const int*> >();
  113. test<random_access_iterator<const int*>, bidirectional_iterator<const int*> >();
  114. test<random_access_iterator<const int*>, random_access_iterator<const int*> >();
  115. #if TEST_STD_VER > 17
  116. static_assert(test_constexpr());
  117. #endif
  118. }