unique_pred.pass.cpp 6.6 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 Iter, EquivalenceRelation<auto, Iter::value_type> Pred>
  11. // requires OutputIterator<Iter, RvalueOf<Iter::reference>::type>
  12. // && CopyConstructible<Pred>
  13. // constexpr Iter // constexpr after C++17
  14. // unique(Iter first, Iter last, Pred pred);
  15. #include <algorithm>
  16. #include <cassert>
  17. #include <memory>
  18. #include "test_macros.h"
  19. #include "test_iterators.h"
  20. #if TEST_STD_VER > 17
  21. TEST_CONSTEXPR bool test_constexpr() {
  22. int ia[] = {0, 1, 1, 3, 4};
  23. const int expected[] = {0, 1, 3, 4};
  24. const size_t N = 4;
  25. auto it = std::unique(std::begin(ia), std::end(ia), [](int a, int b) {return a == b; });
  26. return it == (std::begin(ia) + N)
  27. && std::equal(std::begin(ia), it, std::begin(expected), std::end(expected))
  28. ;
  29. }
  30. #endif
  31. struct count_equal
  32. {
  33. static unsigned count;
  34. template <class T>
  35. bool operator()(const T& x, const T& y)
  36. {++count; return x == y;}
  37. };
  38. unsigned count_equal::count = 0;
  39. template <class Iter>
  40. void
  41. test()
  42. {
  43. int ia[] = {0};
  44. const unsigned sa = sizeof(ia)/sizeof(ia[0]);
  45. count_equal::count = 0;
  46. Iter r = std::unique(Iter(ia), Iter(ia+sa), count_equal());
  47. assert(base(r) == ia + sa);
  48. assert(ia[0] == 0);
  49. assert(count_equal::count == sa-1);
  50. int ib[] = {0, 1};
  51. const unsigned sb = sizeof(ib)/sizeof(ib[0]);
  52. count_equal::count = 0;
  53. r = std::unique(Iter(ib), Iter(ib+sb), count_equal());
  54. assert(base(r) == ib + sb);
  55. assert(ib[0] == 0);
  56. assert(ib[1] == 1);
  57. assert(count_equal::count == sb-1);
  58. int ic[] = {0, 0};
  59. const unsigned sc = sizeof(ic)/sizeof(ic[0]);
  60. count_equal::count = 0;
  61. r = std::unique(Iter(ic), Iter(ic+sc), count_equal());
  62. assert(base(r) == ic + 1);
  63. assert(ic[0] == 0);
  64. assert(count_equal::count == sc-1);
  65. int id[] = {0, 0, 1};
  66. const unsigned sd = sizeof(id)/sizeof(id[0]);
  67. count_equal::count = 0;
  68. r = std::unique(Iter(id), Iter(id+sd), count_equal());
  69. assert(base(r) == id + 2);
  70. assert(id[0] == 0);
  71. assert(id[1] == 1);
  72. assert(count_equal::count == sd-1);
  73. int ie[] = {0, 0, 1, 0};
  74. const unsigned se = sizeof(ie)/sizeof(ie[0]);
  75. count_equal::count = 0;
  76. r = std::unique(Iter(ie), Iter(ie+se), count_equal());
  77. assert(base(r) == ie + 3);
  78. assert(ie[0] == 0);
  79. assert(ie[1] == 1);
  80. assert(ie[2] == 0);
  81. assert(count_equal::count == se-1);
  82. int ig[] = {0, 0, 1, 1};
  83. const unsigned sg = sizeof(ig)/sizeof(ig[0]);
  84. count_equal::count = 0;
  85. r = std::unique(Iter(ig), Iter(ig+sg), count_equal());
  86. assert(base(r) == ig + 2);
  87. assert(ig[0] == 0);
  88. assert(ig[1] == 1);
  89. assert(count_equal::count == sg-1);
  90. int ih[] = {0, 1, 1};
  91. const unsigned sh = sizeof(ih)/sizeof(ih[0]);
  92. count_equal::count = 0;
  93. r = std::unique(Iter(ih), Iter(ih+sh), count_equal());
  94. assert(base(r) == ih + 2);
  95. assert(ih[0] == 0);
  96. assert(ih[1] == 1);
  97. assert(count_equal::count == sh-1);
  98. int ii[] = {0, 1, 1, 1, 2, 2, 2};
  99. const unsigned si = sizeof(ii)/sizeof(ii[0]);
  100. count_equal::count = 0;
  101. r = std::unique(Iter(ii), Iter(ii+si), count_equal());
  102. assert(base(r) == ii + 3);
  103. assert(ii[0] == 0);
  104. assert(ii[1] == 1);
  105. assert(ii[2] == 2);
  106. assert(count_equal::count == si-1);
  107. }
  108. #if TEST_STD_VER >= 11
  109. struct do_nothing
  110. {
  111. void operator()(void*) const {}
  112. };
  113. typedef std::unique_ptr<int, do_nothing> Ptr;
  114. template <class Iter>
  115. void
  116. test1()
  117. {
  118. int one = 1;
  119. int two = 2;
  120. Ptr ia[1];
  121. const unsigned sa = sizeof(ia)/sizeof(ia[0]);
  122. count_equal::count = 0;
  123. Iter r = std::unique(Iter(ia), Iter(ia+sa), count_equal());
  124. assert(base(r) == ia + sa);
  125. assert(ia[0] == 0);
  126. assert(count_equal::count == sa-1);
  127. Ptr ib[2];
  128. ib[1].reset(&one);
  129. const unsigned sb = sizeof(ib)/sizeof(ib[0]);
  130. count_equal::count = 0;
  131. r = std::unique(Iter(ib), Iter(ib+sb), count_equal());
  132. assert(base(r) == ib + sb);
  133. assert(ib[0] == 0);
  134. assert(*ib[1] == 1);
  135. assert(count_equal::count == sb-1);
  136. Ptr ic[2];
  137. const unsigned sc = sizeof(ic)/sizeof(ic[0]);
  138. count_equal::count = 0;
  139. r = std::unique(Iter(ic), Iter(ic+sc), count_equal());
  140. assert(base(r) == ic + 1);
  141. assert(ic[0] == 0);
  142. assert(count_equal::count == sc-1);
  143. Ptr id[3];
  144. id[2].reset(&one);
  145. const unsigned sd = sizeof(id)/sizeof(id[0]);
  146. count_equal::count = 0;
  147. r = std::unique(Iter(id), Iter(id+sd), count_equal());
  148. assert(base(r) == id + 2);
  149. assert(id[0] == 0);
  150. assert(*id[1] == 1);
  151. assert(count_equal::count == sd-1);
  152. Ptr ie[4];
  153. ie[2].reset(&one);
  154. const unsigned se = sizeof(ie)/sizeof(ie[0]);
  155. count_equal::count = 0;
  156. r = std::unique(Iter(ie), Iter(ie+se), count_equal());
  157. assert(base(r) == ie + 3);
  158. assert(ie[0] == 0);
  159. assert(*ie[1] == 1);
  160. assert(ie[2] == 0);
  161. assert(count_equal::count == se-1);
  162. Ptr ig[4];
  163. ig[2].reset(&one);
  164. ig[3].reset(&one);
  165. const unsigned sg = sizeof(ig)/sizeof(ig[0]);
  166. count_equal::count = 0;
  167. r = std::unique(Iter(ig), Iter(ig+sg), count_equal());
  168. assert(base(r) == ig + 2);
  169. assert(ig[0] == 0);
  170. assert(*ig[1] == 1);
  171. assert(count_equal::count == sg-1);
  172. Ptr ih[3];
  173. ih[1].reset(&one);
  174. ih[2].reset(&one);
  175. const unsigned sh = sizeof(ih)/sizeof(ih[0]);
  176. count_equal::count = 0;
  177. r = std::unique(Iter(ih), Iter(ih+sh), count_equal());
  178. assert(base(r) == ih + 2);
  179. assert(ih[0] == 0);
  180. assert(*ih[1] == 1);
  181. assert(count_equal::count == sh-1);
  182. Ptr ii[7];
  183. ii[1].reset(&one);
  184. ii[2].reset(&one);
  185. ii[3].reset(&one);
  186. ii[4].reset(&two);
  187. ii[5].reset(&two);
  188. ii[6].reset(&two);
  189. const unsigned si = sizeof(ii)/sizeof(ii[0]);
  190. count_equal::count = 0;
  191. r = std::unique(Iter(ii), Iter(ii+si), count_equal());
  192. assert(base(r) == ii + 3);
  193. assert(ii[0] == 0);
  194. assert(*ii[1] == 1);
  195. assert(*ii[2] == 2);
  196. assert(count_equal::count == si-1);
  197. }
  198. #endif // TEST_STD_VER >= 11
  199. int main()
  200. {
  201. test<forward_iterator<int*> >();
  202. test<bidirectional_iterator<int*> >();
  203. test<random_access_iterator<int*> >();
  204. test<int*>();
  205. #if TEST_STD_VER >= 11
  206. test1<forward_iterator<Ptr*> >();
  207. test1<bidirectional_iterator<Ptr*> >();
  208. test1<random_access_iterator<Ptr*> >();
  209. test1<Ptr*>();
  210. #endif
  211. #if TEST_STD_VER > 17
  212. static_assert(test_constexpr());
  213. #endif
  214. }