span.cpp 29 KB

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  1. ///////////////////////////////////////////////////////////////////////////////
  2. //
  3. // Copyright (c) 2015 Microsoft Corporation. All rights reserved.
  4. //
  5. // This code is licensed under the MIT License (MIT).
  6. //
  7. // THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
  8. // IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
  9. // FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL THE
  10. // AUTHORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER
  11. // LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM,
  12. // OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN
  13. // THE SOFTWARE.
  14. //
  15. ///////////////////////////////////////////////////////////////////////////////
  16. #include <range/v3/view/span.hpp>
  17. #include <array>
  18. #include <iostream>
  19. #include <list>
  20. #include <map>
  21. #include <memory>
  22. #include <regex>
  23. #include <string>
  24. #include <vector>
  25. #include "../simple_test.hpp"
  26. using ranges::span;
  27. using ranges::dynamic_extent;
  28. using ranges::make_span;
  29. using ranges::as_bytes;
  30. using ranges::as_writeable_bytes;
  31. using ranges::detail::narrow_cast;
  32. RANGES_DIAGNOSTIC_IGNORE_MISSING_BRACES
  33. namespace {
  34. struct BaseClass {};
  35. struct DerivedClass : BaseClass {};
  36. }
  37. void test_case_default_constructor()
  38. {
  39. {
  40. span<int> s;
  41. CHECK((s.size() == 0 && s.data() == nullptr));
  42. span<const int> cs;
  43. CHECK((cs.size() == 0 && cs.data() == nullptr));
  44. }
  45. {
  46. span<int, 0> s;
  47. CHECK((s.size() == 0 && s.data() == nullptr));
  48. span<const int, 0> cs;
  49. CHECK((cs.size() == 0 && cs.data() == nullptr));
  50. }
  51. {
  52. span<int, 1> s;
  53. CHECK((s.size() == 1 && s.data() == nullptr));
  54. }
  55. {
  56. span<int> s{};
  57. CHECK((s.size() == 0 && s.data() == nullptr));
  58. span<const int> cs{};
  59. CHECK((cs.size() == 0 && cs.data() == nullptr));
  60. }
  61. }
  62. void test_case_size_optimization()
  63. {
  64. {
  65. span<int> s;
  66. CHECK(sizeof(s) == sizeof(int*) + sizeof(std::ptrdiff_t));
  67. }
  68. {
  69. span<int, 0> s;
  70. CHECK(sizeof(s) == sizeof(int*));
  71. }
  72. }
  73. void test_case_from_nullptr_constructor()
  74. {
  75. // This implementation doesn't support the silly nullptr_t constructor.
  76. CPP_assert(!std::is_constructible<span<int>, std::nullptr_t>::value);
  77. CPP_assert(!std::is_constructible<span<const int>, std::nullptr_t>::value);
  78. CPP_assert(!std::is_constructible<span<int, 0>, std::nullptr_t>::value);
  79. CPP_assert(!std::is_constructible<span<const int, 0>, std::nullptr_t>::value);
  80. CPP_assert(!std::is_constructible<span<int, 1>, std::nullptr_t>::value);
  81. CPP_assert(!std::is_constructible<span<const int, 1>, std::nullptr_t>::value);
  82. }
  83. void test_case_from_nullptr_size_constructor()
  84. {
  85. {
  86. span<int> s{nullptr, static_cast<span<int>::index_type>(0)};
  87. CHECK((s.size() == 0 && s.data() == nullptr));
  88. span<const int> cs{nullptr, static_cast<span<int>::index_type>(0)};
  89. CHECK((cs.size() == 0 && cs.data() == nullptr));
  90. }
  91. {
  92. span<int, 0> s{nullptr, static_cast<span<int>::index_type>(0)};
  93. CHECK((s.size() == 0 && s.data() == nullptr));
  94. span<const int, 0> cs{nullptr, static_cast<span<int>::index_type>(0)};
  95. CHECK((cs.size() == 0 && cs.data() == nullptr));
  96. }
  97. {
  98. span<int*> s{nullptr, static_cast<span<int>::index_type>(0)};
  99. CHECK((s.size() == 0 && s.data() == nullptr));
  100. span<const int*> cs{nullptr, static_cast<span<int>::index_type>(0)};
  101. CHECK((cs.size() == 0 && cs.data() == nullptr));
  102. }
  103. }
  104. void test_case_from_pointer_size_constructor()
  105. {
  106. int arr[4] = {1, 2, 3, 4};
  107. {
  108. span<int> s{&arr[0], 2};
  109. CHECK((s.size() == 2 && s.data() == &arr[0]));
  110. CHECK((s[0] == 1 && s[1] == 2));
  111. }
  112. {
  113. span<int, 2> s{&arr[0], 2};
  114. CHECK((s.size() == 2 && s.data() == &arr[0]));
  115. CHECK((s[0] == 1 && s[1] == 2));
  116. }
  117. {
  118. int* p = nullptr;
  119. span<int> s{p, static_cast<span<int>::index_type>(0)};
  120. CHECK((s.size() == 0 && s.data() == nullptr));
  121. }
  122. {
  123. auto s = make_span(&arr[0], 2);
  124. CHECK((s.size() == 2 && s.data() == &arr[0]));
  125. CHECK((s[0] == 1 && s[1] == 2));
  126. }
  127. {
  128. int* p = nullptr;
  129. auto s = make_span(p, static_cast<span<int>::index_type>(0));
  130. CHECK((s.size() == 0 && s.data() == nullptr));
  131. }
  132. {
  133. int i = 42;
  134. span<int> s{&i, 0};
  135. CHECK((s.size() == 0 && s.data() == &i));
  136. span<const int> cs{&i, 0};
  137. CHECK((s.size() == 0 && s.data() == &i));
  138. }
  139. }
  140. void test_case_from_pointer_pointer_constructor()
  141. {
  142. int arr[4] = {1, 2, 3, 4};
  143. {
  144. span<int> s{&arr[0], &arr[2]};
  145. CHECK((s.size() == 2 && s.data() == &arr[0]));
  146. CHECK((s[0] == 1 && s[1] == 2));
  147. }
  148. {
  149. span<int, 2> s{&arr[0], &arr[2]};
  150. CHECK((s.size() == 2 && s.data() == &arr[0]));
  151. CHECK((s[0] == 1 && s[1] == 2));
  152. }
  153. {
  154. span<int> s{&arr[0], &arr[0]};
  155. CHECK((s.size() == 0 && s.data() == &arr[0]));
  156. }
  157. {
  158. span<int, 0> s{&arr[0], &arr[0]};
  159. CHECK((s.size() == 0 && s.data() == &arr[0]));
  160. }
  161. {
  162. int* p = nullptr;
  163. span<int> s{p, p};
  164. CHECK((s.size() == 0 && s.data() == nullptr));
  165. }
  166. {
  167. int* p = nullptr;
  168. span<int, 0> s{p, p};
  169. CHECK((s.size() == 0 && s.data() == nullptr));
  170. }
  171. {
  172. auto s = make_span(&arr[0], &arr[2]);
  173. CHECK((s.size() == 2 && s.data() == &arr[0]));
  174. CHECK((s[0] == 1 && s[1] == 2));
  175. }
  176. {
  177. auto s = make_span(&arr[0], &arr[0]);
  178. CHECK((s.size() == 0 && s.data() == &arr[0]));
  179. }
  180. {
  181. int* p = nullptr;
  182. auto s = make_span(p, p);
  183. CHECK((s.size() == 0 && s.data() == nullptr));
  184. }
  185. }
  186. void test_case_from_array_constructor()
  187. {
  188. int arr[5] = {1, 2, 3, 4, 5};
  189. {
  190. span<int> s{arr};
  191. CHECK((s.size() == 5 && s.data() == &arr[0]));
  192. }
  193. {
  194. span<int, 5> s{arr};
  195. CHECK((s.size() == 5 && s.data() == &arr[0]));
  196. }
  197. int arr2d[2][3] = {1, 2, 3, 4, 5, 6};
  198. CPP_assert(!std::is_constructible<span<int, 6>, int(&)[5]>::value);
  199. CPP_assert(!std::is_constructible<span<int, 0>, int(&)[5]>::value);
  200. CPP_assert(!std::is_constructible<span<int>, decltype((arr2d))>::value);
  201. CPP_assert(!std::is_constructible<span<int, 0>, decltype((arr2d))>::value);
  202. CPP_assert(!std::is_constructible<span<int, 6>, decltype((arr2d))>::value);
  203. {
  204. span<int[3]> s{&(arr2d[0]), 1};
  205. CHECK((s.size() == 1 && s.data() == &arr2d[0]));
  206. }
  207. int arr3d[2][3][2] = {1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12};
  208. CPP_assert(!std::is_constructible<span<int>, decltype((arr3d))>::value);
  209. CPP_assert(!std::is_constructible<span<int, 0>, decltype((arr3d))>::value);
  210. CPP_assert(!std::is_constructible<span<int, 11>, decltype((arr3d))>::value);
  211. CPP_assert(!std::is_constructible<span<int, 12>, decltype((arr3d))>::value);
  212. {
  213. span<int[3][2]> s{&arr3d[0], 1};
  214. CHECK((s.size() == 1 && s.data() == &arr3d[0]));
  215. }
  216. {
  217. auto s = make_span(arr);
  218. CHECK((s.size() == 5 && s.data() == &arr[0]));
  219. }
  220. {
  221. auto s = make_span(&(arr2d[0]), 1);
  222. CHECK((s.size() == 1 && s.data() == &arr2d[0]));
  223. }
  224. {
  225. auto s = make_span(&arr3d[0], 1);
  226. CHECK((s.size() == 1 && s.data() == &arr3d[0]));
  227. }
  228. }
  229. void test_case_from_std_array_constructor()
  230. {
  231. std::array<int, 4> arr = {1, 2, 3, 4};
  232. {
  233. span<int> s{arr};
  234. CHECK((s.size() == narrow_cast<std::ptrdiff_t>(arr.size()) && s.data() == arr.data()));
  235. span<const int> cs{arr};
  236. CHECK((cs.size() == narrow_cast<std::ptrdiff_t>(arr.size()) && cs.data() == arr.data()));
  237. }
  238. {
  239. span<int, 4> s{arr};
  240. CHECK((s.size() == narrow_cast<std::ptrdiff_t>(arr.size()) && s.data() == arr.data()));
  241. span<const int, 4> cs{arr};
  242. CHECK((cs.size() == narrow_cast<std::ptrdiff_t>(arr.size()) && cs.data() == arr.data()));
  243. }
  244. CPP_assert(!std::is_constructible<span<int, 2>, decltype((arr))>::value);
  245. CPP_assert(!std::is_constructible<span<const int, 2>, decltype((arr))>::value);
  246. CPP_assert(!std::is_constructible<span<int, 0>, decltype((arr))>::value);
  247. CPP_assert(!std::is_constructible<span<const int, 0>, decltype((arr))>::value);
  248. CPP_assert(!std::is_constructible<span<int, 5>, decltype((arr))>::value);
  249. {
  250. auto get_an_array = []() -> std::array<int, 4> { return {1, 2, 3, 4}; };
  251. auto take_a_span = [](span<int>) {};
  252. take_a_span(get_an_array());
  253. }
  254. {
  255. auto get_an_array = []() -> std::array<int, 4> { return {1, 2, 3, 4}; };
  256. auto take_a_span = [](span<const int>) {};
  257. take_a_span(get_an_array());
  258. }
  259. {
  260. auto s = make_span(arr);
  261. CHECK((s.size() == narrow_cast<std::ptrdiff_t>(arr.size()) && s.data() == arr.data()));
  262. }
  263. }
  264. void test_case_from_const_std_array_constructor()
  265. {
  266. const std::array<int, 4> arr = {1, 2, 3, 4};
  267. {
  268. span<const int> s{arr};
  269. CHECK((s.size() == narrow_cast<std::ptrdiff_t>(arr.size()) && s.data() == arr.data()));
  270. }
  271. {
  272. span<const int, 4> s{arr};
  273. CHECK((s.size() == narrow_cast<std::ptrdiff_t>(arr.size()) && s.data() == arr.data()));
  274. }
  275. CPP_assert(!std::is_constructible<span<const int, 2>, decltype((arr))>::value);
  276. CPP_assert(!std::is_constructible<span<const int, 0>, decltype((arr))>::value);
  277. CPP_assert(!std::is_constructible<span<const int, 5>, decltype((arr))>::value);
  278. {
  279. auto get_an_array = []() -> const std::array<int, 4> { return {1, 2, 3, 4}; };
  280. auto take_a_span = [](span<const int>) {};
  281. take_a_span(get_an_array());
  282. }
  283. {
  284. auto s = make_span(arr);
  285. CHECK((s.size() == narrow_cast<std::ptrdiff_t>(arr.size()) && s.data() == arr.data()));
  286. }
  287. }
  288. void test_case_from_std_array_const_constructor()
  289. {
  290. std::array<const int, 4> arr = {1, 2, 3, 4};
  291. {
  292. span<const int> s{arr};
  293. CHECK((s.size() == narrow_cast<std::ptrdiff_t>(arr.size()) && s.data() == arr.data()));
  294. }
  295. {
  296. span<const int, 4> s{arr};
  297. CHECK((s.size() == narrow_cast<std::ptrdiff_t>(arr.size()) && s.data() == arr.data()));
  298. }
  299. CPP_assert(!std::is_constructible<span<const int, 2>, decltype((arr))>::value);
  300. CPP_assert(!std::is_constructible<span<const int, 0>, decltype((arr))>::value);
  301. CPP_assert(!std::is_constructible<span<const int, 5>, decltype((arr))>::value);
  302. CPP_assert(!std::is_constructible<span<int, 4>, decltype((arr))>::value);
  303. {
  304. auto s = make_span(arr);
  305. CHECK((s.size() == narrow_cast<std::ptrdiff_t>(arr.size()) && s.data() == arr.data()));
  306. }
  307. }
  308. void test_case_from_container_constructor()
  309. {
  310. std::vector<int> v = {1, 2, 3};
  311. const std::vector<int> cv = v;
  312. {
  313. span<int> s{v};
  314. CHECK((s.size() == narrow_cast<std::ptrdiff_t>(v.size()) && s.data() == v.data()));
  315. span<const int> cs{v};
  316. CHECK((cs.size() == narrow_cast<std::ptrdiff_t>(v.size()) && cs.data() == v.data()));
  317. }
  318. std::string str = "hello";
  319. const std::string cstr = "hello";
  320. {
  321. span<char> s{str};
  322. CHECK((s.size() == narrow_cast<std::ptrdiff_t>(str.size()) && s.data() == str.data()));
  323. }
  324. {
  325. auto get_temp_string = []() -> std::string { return {}; };
  326. auto use_span = [](span<char>) {};
  327. use_span(get_temp_string());
  328. }
  329. {
  330. span<const char> cs{str};
  331. CHECK((cs.size() == narrow_cast<std::ptrdiff_t>(str.size()) && cs.data() == str.data()));
  332. }
  333. {
  334. auto get_temp_string = []() -> std::string { return {}; };
  335. auto use_span = [](span<const char>) {};
  336. use_span(get_temp_string());
  337. }
  338. {
  339. CPP_assert(!std::is_constructible<span<char>, decltype((cstr))>::value);
  340. span<const char> cs{cstr};
  341. CHECK((cs.size() == narrow_cast<std::ptrdiff_t>(cstr.size()) &&
  342. cs.data() == cstr.data()));
  343. }
  344. {
  345. auto get_temp_vector = []() -> std::vector<int> { return {}; };
  346. auto use_span = [](span<int>) {};
  347. use_span(get_temp_vector());
  348. }
  349. {
  350. auto get_temp_vector = []() -> std::vector<int> { return {}; };
  351. auto use_span = [](span<const int>) {};
  352. use_span(get_temp_vector());
  353. }
  354. CPP_assert(!ranges::detail::is_convertible<const std::vector<int>, span<const char>>::value);
  355. {
  356. auto get_temp_string = []() -> const std::string { return {}; };
  357. auto use_span = [](span<const char> s) { static_cast<void>(s); };
  358. use_span(get_temp_string());
  359. }
  360. CPP_assert(!std::is_constructible<span<int>, std::map<int, int>&>::value);
  361. {
  362. auto s = make_span(v);
  363. CHECK((s.size() == narrow_cast<std::ptrdiff_t>(v.size()) && s.data() == v.data()));
  364. auto cs = make_span(cv);
  365. CHECK((cs.size() == narrow_cast<std::ptrdiff_t>(cv.size()) && cs.data() == cv.data()));
  366. }
  367. }
  368. void test_case_from_convertible_span_constructor()
  369. {
  370. {
  371. span<DerivedClass> avd;
  372. span<const DerivedClass> avcd = avd;
  373. static_cast<void>(avcd);
  374. }
  375. CPP_assert(!std::is_constructible<span<BaseClass>, span<DerivedClass>>::value);
  376. CPP_assert(!std::is_constructible<span<DerivedClass>, span<BaseClass>>::value);
  377. CPP_assert(!std::is_constructible<span<unsigned int>, span<int>>::value);
  378. CPP_assert(!std::is_constructible<span<const unsigned int>, span<int>>::value);
  379. CPP_assert(!std::is_constructible<span<short>, span<int>>::value);
  380. }
  381. void test_case_copy_move_and_assignment()
  382. {
  383. span<int> s1;
  384. CHECK(s1.empty());
  385. int arr[] = {3, 4, 5};
  386. span<const int> s2 = arr;
  387. CHECK((s2.size() == 3 && s2.data() == &arr[0]));
  388. s2 = s1;
  389. CHECK(s2.empty());
  390. auto get_temp_span = [&]() -> span<int> { return {&arr[1], 2}; };
  391. auto use_span = [&](span<const int> s) { CHECK((s.size() == 2 && s.data() == &arr[1])); };
  392. use_span(get_temp_span());
  393. s1 = get_temp_span();
  394. CHECK((s1.size() == 2 && s1.data() == &arr[1]));
  395. }
  396. void test_case_class_template_argument_deduction()
  397. {
  398. #if RANGES_CXX_DEDUCTION_GUIDES >= RANGES_CXX_DEDUCTION_GUIDES_17
  399. #if defined(__clang__) && __clang_major__ < 6
  400. // Workaround https://bugs.llvm.org/show_bug.cgi?id=33314
  401. RANGES_DIAGNOSTIC_PUSH
  402. RANGES_DIAGNOSTIC_IGNORE_UNDEFINED_FUNC_TEMPLATE
  403. #endif
  404. {
  405. int arr[] = {1, 2, 3, 4, 5};
  406. {
  407. span s{arr};
  408. CPP_assert(std::is_same<span<int, 5>, decltype(s)>::value);
  409. }
  410. {
  411. span s{ranges::data(arr), ranges::size(arr)};
  412. CPP_assert(std::is_same<span<int>, decltype(s)>::value);
  413. }
  414. {
  415. span s{ranges::begin(arr), ranges::end(arr)};
  416. CPP_assert(std::is_same<span<int>, decltype(s)>::value);
  417. }
  418. }
  419. {
  420. std::array<int, 5> arr = {1, 2, 3, 4, 5};
  421. {
  422. span s{arr};
  423. CPP_assert(std::is_same<span<int, 5>, decltype(s)>::value);
  424. }
  425. }
  426. {
  427. std::vector<int> vec = {1, 2, 3, 4, 5};
  428. {
  429. span s{vec};
  430. CPP_assert(std::is_same<span<int>, decltype(s)>::value);
  431. }
  432. }
  433. #if defined(__clang__) && __clang_major__ < 6
  434. RANGES_DIAGNOSTIC_POP
  435. #endif // clang bug workaround
  436. #endif // use deduction guides
  437. }
  438. void test_case_first()
  439. {
  440. int arr[5] = {1, 2, 3, 4, 5};
  441. {
  442. span<int, 5> av = arr;
  443. CHECK(av.first<2>().size() == 2);
  444. CHECK(av.first(2).size() == 2);
  445. }
  446. {
  447. span<int, 5> av = arr;
  448. CHECK(av.first<0>().size() == 0);
  449. CHECK(av.first(0).size() == 0);
  450. }
  451. {
  452. span<int, 5> av = arr;
  453. CHECK(av.first<5>().size() == 5);
  454. CHECK(av.first(5).size() == 5);
  455. }
  456. {
  457. span<int> av;
  458. CHECK(av.first<0>().size() == 0);
  459. CHECK(av.first(0).size() == 0);
  460. }
  461. }
  462. void test_case_last()
  463. {
  464. int arr[5] = {1, 2, 3, 4, 5};
  465. {
  466. span<int, 5> av = arr;
  467. CHECK(av.last<2>().size() == 2);
  468. CHECK(av.last(2).size() == 2);
  469. }
  470. {
  471. span<int, 5> av = arr;
  472. CHECK(av.last<0>().size() == 0);
  473. CHECK(av.last(0).size() == 0);
  474. }
  475. {
  476. span<int, 5> av = arr;
  477. CHECK(av.last<5>().size() == 5);
  478. CHECK(av.last(5).size() == 5);
  479. }
  480. {
  481. span<int> av;
  482. CHECK(av.last<0>().size() == 0);
  483. CHECK(av.last(0).size() == 0);
  484. }
  485. }
  486. void test_case_subspan()
  487. {
  488. int arr[5] = {1, 2, 3, 4, 5};
  489. {
  490. span<int, 5> av = arr;
  491. CHECK((av.subspan<2, 2>().size() == 2));
  492. CHECK(av.subspan(2, 2).size() == 2);
  493. CHECK(av.subspan(2, 3).size() == 3);
  494. }
  495. {
  496. span<int, 5> av = arr;
  497. CHECK((av.subspan<0, 0>().size() == 0));
  498. CHECK(av.subspan(0, 0).size() == 0);
  499. }
  500. {
  501. span<int, 5> av = arr;
  502. CHECK((av.subspan<0, 5>().size() == 5));
  503. CHECK(av.subspan(0, 5).size() == 5);
  504. }
  505. {
  506. span<int, 5> av = arr;
  507. CHECK((av.subspan<4, 0>().size() == 0));
  508. CHECK(av.subspan(4, 0).size() == 0);
  509. CHECK(av.subspan(5, 0).size() == 0);
  510. }
  511. {
  512. span<int> av;
  513. CHECK((av.subspan<0, 0>().size() == 0));
  514. CHECK(av.subspan(0, 0).size() == 0);
  515. }
  516. {
  517. span<int> av;
  518. CHECK(av.subspan(0).size() == 0);
  519. }
  520. {
  521. span<int> av = arr;
  522. CHECK(av.subspan(0).size() == 5);
  523. CHECK(av.subspan(1).size() == 4);
  524. CHECK(av.subspan(4).size() == 1);
  525. CHECK(av.subspan(5).size() == 0);
  526. const auto av2 = av.subspan(1);
  527. for (int i = 0; i < 4; ++i) CHECK(av2[i] == i + 2);
  528. }
  529. {
  530. span<int, 5> av = arr;
  531. CHECK(av.subspan(0).size() == 5);
  532. CHECK(av.subspan(1).size() == 4);
  533. CHECK(av.subspan(4).size() == 1);
  534. CHECK(av.subspan(5).size() == 0);
  535. const auto av2 = av.subspan(1);
  536. for (int i = 0; i < 4; ++i) CHECK(av2[i] == i + 2);
  537. }
  538. {
  539. span<int, 5> av = arr;
  540. CHECK(decltype(av.subspan<0, dynamic_extent>())::extent == 5);
  541. CHECK((av.subspan<0, dynamic_extent>().size() == 5));
  542. CHECK(decltype(av.subspan<1, dynamic_extent>())::extent == 4);
  543. CHECK((av.subspan<1, dynamic_extent>().size() == 4));
  544. CHECK(decltype(av.subspan<2, dynamic_extent>())::extent == 3);
  545. CHECK((av.subspan<2, dynamic_extent>().size() == 3));
  546. CHECK(decltype(av.subspan<3, dynamic_extent>())::extent == 2);
  547. CHECK((av.subspan<3, dynamic_extent>().size() == 2));
  548. CHECK(decltype(av.subspan<4, dynamic_extent>())::extent == 1);
  549. CHECK((av.subspan<4, dynamic_extent>().size() == 1));
  550. CHECK(decltype(av.subspan<5, dynamic_extent>())::extent == 0);
  551. CHECK((av.subspan<5, dynamic_extent>().size() == 0));
  552. }
  553. {
  554. span<int> av = arr;
  555. CHECK(decltype(av.subspan<0, dynamic_extent>())::extent == dynamic_extent);
  556. CHECK((av.subspan<0, dynamic_extent>().size() == 5));
  557. CHECK(decltype(av.subspan<1, dynamic_extent>())::extent == dynamic_extent);
  558. CHECK((av.subspan<1, dynamic_extent>().size() == 4));
  559. CHECK(decltype(av.subspan<2, dynamic_extent>())::extent == dynamic_extent);
  560. CHECK((av.subspan<2, dynamic_extent>().size() == 3));
  561. CHECK(decltype(av.subspan<3, dynamic_extent>())::extent == dynamic_extent);
  562. CHECK((av.subspan<3, dynamic_extent>().size() == 2));
  563. CHECK(decltype(av.subspan<4, dynamic_extent>())::extent == dynamic_extent);
  564. CHECK((av.subspan<4, dynamic_extent>().size() == 1));
  565. CHECK(decltype(av.subspan<5, dynamic_extent>())::extent == dynamic_extent);
  566. CHECK((av.subspan<5, dynamic_extent>().size() == 0));
  567. }
  568. }
  569. void test_case_iterator_value_init()
  570. {
  571. span<int>::iterator it1{};
  572. span<int>::iterator it2{};
  573. CHECK(it1 == it2);
  574. }
  575. void test_case_iterator_comparisons()
  576. {
  577. int a[] = {1, 2, 3, 4};
  578. {
  579. span<int> s = a;
  580. auto it = s.begin();
  581. CPP_assert(ranges::same_as<decltype(it), span<int>::iterator>);
  582. auto it2 = it + 1;
  583. CHECK(it == it);
  584. CHECK(it != it2);
  585. CHECK(it2 != it);
  586. CHECK(it != s.end());
  587. CHECK(it2 != s.end());
  588. CHECK(s.end() != it);
  589. CHECK(it < it2);
  590. CHECK(it <= it2);
  591. CHECK(it2 <= s.end());
  592. CHECK(it < s.end());
  593. CHECK(it2 > it);
  594. CHECK(it2 >= it);
  595. CHECK(s.end() > it2);
  596. CHECK(s.end() >= it2);
  597. }
  598. }
  599. void test_case_begin_end()
  600. {
  601. {
  602. int a[] = {1, 2, 3, 4};
  603. span<int> s = a;
  604. span<int>::iterator it = s.begin();
  605. span<int>::iterator it2 = ranges::begin(s);
  606. CHECK(it == it2);
  607. it = s.end();
  608. it2 = ranges::end(s);
  609. CHECK(it == it2);
  610. }
  611. {
  612. int a[] = {1, 2, 3, 4};
  613. span<int> s = a;
  614. auto it = s.begin();
  615. auto first = it;
  616. CHECK(it == first);
  617. CHECK(*it == 1);
  618. auto beyond = s.end();
  619. CHECK(it != beyond);
  620. CHECK((beyond - first) == 4);
  621. CHECK((first - first) == 0);
  622. CHECK((beyond - beyond) == 0);
  623. ++it;
  624. CHECK((it - first) == 1);
  625. CHECK(*it == 2);
  626. *it = 22;
  627. CHECK(*it == 22);
  628. CHECK((beyond - it) == 3);
  629. it = first;
  630. CHECK(it == first);
  631. while (it != s.end()) {
  632. *it = 5;
  633. ++it;
  634. }
  635. CHECK(it == beyond);
  636. CHECK((it - beyond) == 0);
  637. for (const auto& n : s) {
  638. CHECK(n == 5);
  639. }
  640. }
  641. }
  642. void test_case_rbegin_rend()
  643. {
  644. {
  645. int a[] = {1, 2, 3, 4};
  646. span<int> s = a;
  647. auto it = s.rbegin();
  648. auto first = it;
  649. CHECK(it == first);
  650. CHECK(*it == 4);
  651. auto beyond = s.rend();
  652. CHECK(it != beyond);
  653. CHECK((beyond - first) == 4);
  654. CHECK((first - first) == 0);
  655. CHECK((beyond - beyond) == 0);
  656. ++it;
  657. CHECK((it - first) == 1);
  658. CHECK(*it == 3);
  659. *it = 22;
  660. CHECK(*it == 22);
  661. CHECK((beyond - it) == 3);
  662. it = first;
  663. CHECK(it == first);
  664. while (it != s.rend()) {
  665. *it = 5;
  666. ++it;
  667. }
  668. CHECK(it == beyond);
  669. CHECK((it - beyond) == 0);
  670. for (const auto& n : s) {
  671. CHECK(n == 5);
  672. }
  673. }
  674. }
  675. void test_case_comparison_operators()
  676. {
  677. {
  678. span<int> s1;
  679. span<int> s2;
  680. CHECK(s1 == s2);
  681. CHECK(!(s1 != s2));
  682. CHECK(!(s1 < s2));
  683. CHECK(s1 <= s2);
  684. CHECK(!(s1 > s2));
  685. CHECK(s1 >= s2);
  686. CHECK(s2 == s1);
  687. CHECK(!(s2 != s1));
  688. CHECK(!(s2 < s1));
  689. CHECK(s2 <= s1);
  690. CHECK(!(s2 > s1));
  691. CHECK(s2 >= s1);
  692. }
  693. {
  694. int arr[] = {2, 1};
  695. span<int> s1 = arr;
  696. span<int> s2 = arr;
  697. CHECK(s1 == s2);
  698. CHECK(!(s1 != s2));
  699. CHECK(!(s1 < s2));
  700. CHECK(s1 <= s2);
  701. CHECK(!(s1 > s2));
  702. CHECK(s1 >= s2);
  703. CHECK(s2 == s1);
  704. CHECK(!(s2 != s1));
  705. CHECK(!(s2 < s1));
  706. CHECK(s2 <= s1);
  707. CHECK(!(s2 > s1));
  708. CHECK(s2 >= s1);
  709. }
  710. {
  711. int arr[] = {2, 1}; // bigger
  712. span<int> s1;
  713. span<int> s2 = arr;
  714. CHECK(s1 != s2);
  715. CHECK(s2 != s1);
  716. CHECK(!(s1 == s2));
  717. CHECK(!(s2 == s1));
  718. CHECK(s1 < s2);
  719. CHECK(!(s2 < s1));
  720. CHECK(s1 <= s2);
  721. CHECK(!(s2 <= s1));
  722. CHECK(s2 > s1);
  723. CHECK(!(s1 > s2));
  724. CHECK(s2 >= s1);
  725. CHECK(!(s1 >= s2));
  726. }
  727. {
  728. int arr1[] = {1, 2};
  729. int arr2[] = {1, 2};
  730. span<int> s1 = arr1;
  731. span<int> s2 = arr2;
  732. CHECK(s1 == s2);
  733. CHECK(!(s1 != s2));
  734. CHECK(!(s1 < s2));
  735. CHECK(s1 <= s2);
  736. CHECK(!(s1 > s2));
  737. CHECK(s1 >= s2);
  738. CHECK(s2 == s1);
  739. CHECK(!(s2 != s1));
  740. CHECK(!(s2 < s1));
  741. CHECK(s2 <= s1);
  742. CHECK(!(s2 > s1));
  743. CHECK(s2 >= s1);
  744. }
  745. {
  746. int arr[] = {1, 2, 3};
  747. span<int> s1 = {&arr[0], 2}; // shorter
  748. span<int> s2 = arr; // longer
  749. CHECK(s1 != s2);
  750. CHECK(s2 != s1);
  751. CHECK(!(s1 == s2));
  752. CHECK(!(s2 == s1));
  753. CHECK(s1 < s2);
  754. CHECK(!(s2 < s1));
  755. CHECK(s1 <= s2);
  756. CHECK(!(s2 <= s1));
  757. CHECK(s2 > s1);
  758. CHECK(!(s1 > s2));
  759. CHECK(s2 >= s1);
  760. CHECK(!(s1 >= s2));
  761. }
  762. {
  763. int arr1[] = {1, 2}; // smaller
  764. int arr2[] = {2, 1}; // bigger
  765. span<int> s1 = arr1;
  766. span<int> s2 = arr2;
  767. CHECK(s1 != s2);
  768. CHECK(s2 != s1);
  769. CHECK(!(s1 == s2));
  770. CHECK(!(s2 == s1));
  771. CHECK(s1 < s2);
  772. CHECK(!(s2 < s1));
  773. CHECK(s1 <= s2);
  774. CHECK(!(s2 <= s1));
  775. CHECK(s2 > s1);
  776. CHECK(!(s1 > s2));
  777. CHECK(s2 >= s1);
  778. CHECK(!(s1 >= s2));
  779. }
  780. }
  781. void test_case_as_bytes()
  782. {
  783. int a[] = {1, 2, 3, 4};
  784. {
  785. const span<const int> s = a;
  786. CHECK(s.size() == 4);
  787. const auto bs = as_bytes(s);
  788. CHECK(static_cast<const void*>(bs.data()) == static_cast<const void*>(s.data()));
  789. CHECK(bs.size() == s.size_bytes());
  790. }
  791. {
  792. span<int> s;
  793. const auto bs = as_bytes(s);
  794. CHECK(bs.size() == s.size());
  795. CHECK(bs.size() == 0);
  796. CHECK(bs.size_bytes() == 0);
  797. CHECK(static_cast<const void*>(bs.data()) == static_cast<const void*>(s.data()));
  798. CHECK(bs.data() == nullptr);
  799. }
  800. {
  801. span<int> s = a;
  802. const auto bs = as_bytes(s);
  803. CHECK(static_cast<const void*>(bs.data()) == static_cast<const void*>(s.data()));
  804. CHECK(bs.size() == s.size_bytes());
  805. }
  806. }
  807. void test_case_as_writeable_bytes()
  808. {
  809. int a[] = {1, 2, 3, 4};
  810. {
  811. span<int> s;
  812. const auto bs = as_writeable_bytes(s);
  813. CHECK(bs.size() == s.size());
  814. CHECK(bs.size() == 0);
  815. CHECK(bs.size_bytes() == 0);
  816. CHECK(static_cast<void*>(bs.data()) == static_cast<void*>(s.data()));
  817. CHECK(bs.data() == nullptr);
  818. }
  819. {
  820. span<int> s = a;
  821. const auto bs = as_writeable_bytes(s);
  822. CHECK(static_cast<void*>(bs.data()) == static_cast<void*>(s.data()));
  823. CHECK(bs.size() == s.size_bytes());
  824. }
  825. }
  826. void test_case_fixed_size_conversions()
  827. {
  828. int arr[] = {1, 2, 3, 4};
  829. // converting to an span from an equal size array is ok
  830. span<int, 4> s4 = arr;
  831. CHECK(s4.size() == 4);
  832. // converting to dynamic_range is always ok
  833. {
  834. span<int> s = s4;
  835. CHECK(s.size() == s4.size());
  836. static_cast<void>(s);
  837. }
  838. // initialization or assignment to static span that REDUCES size is NOT ok
  839. CPP_assert(!ranges::detail::is_convertible<decltype((arr)), span<int, 2>>::value);
  840. CPP_assert(!ranges::detail::is_convertible<span<int, 4>, span<int, 2>>::value);
  841. // you can convert statically
  842. {
  843. const span<int, 2> s2 = {arr, 2};
  844. static_cast<void>(s2);
  845. }
  846. {
  847. const span<int, 1> s1 = s4.first<1>();
  848. static_cast<void>(s1);
  849. }
  850. // ...or dynamically
  851. {
  852. // NB: implicit conversion to span<int,1> from span<int>
  853. span<int, 1> s1 = s4.first(1);
  854. static_cast<void>(s1);
  855. }
  856. // initialization or assignment to static span that requires size INCREASE is not ok.
  857. int arr2[2] = {1, 2};
  858. (void)arr2;
  859. CPP_assert(!std::is_constructible<span<int, 4>, decltype((arr2))>::value);
  860. CPP_assert(!std::is_constructible<span<int, 4>, span<int, 2>>::value);
  861. }
  862. void test_case_interop_with_std_regex()
  863. {
  864. char lat[] = {'1', '2', '3', '4', '5', '6', 'E', 'F', 'G'};
  865. span<char> s = lat;
  866. const auto f_it = s.begin() + 7;
  867. std::match_results<span<char>::iterator> match;
  868. std::regex_match(s.begin(), s.end(), match, std::regex(".*"));
  869. CHECK(match.ready());
  870. CHECK(!match.empty());
  871. CHECK(match[0].matched);
  872. CHECK(match[0].first == s.begin());
  873. CHECK(match[0].second == s.end());
  874. std::regex_search(s.begin(), s.end(), match, std::regex("F"));
  875. CHECK(match.ready());
  876. CHECK(!match.empty());
  877. CHECK(match[0].matched);
  878. CHECK(match[0].first == f_it);
  879. CHECK(match[0].second == (f_it + 1));
  880. }
  881. void test_case_default_constructible()
  882. {
  883. CHECK((std::is_default_constructible<span<int>>::value));
  884. CHECK((std::is_default_constructible<span<int, 0>>::value));
  885. CHECK((std::is_default_constructible<span<int, 42>>::value));
  886. }
  887. int main() {
  888. test_case_default_constructor();
  889. test_case_size_optimization();
  890. test_case_from_nullptr_constructor();
  891. test_case_from_nullptr_size_constructor();
  892. test_case_from_pointer_size_constructor();
  893. test_case_from_pointer_pointer_constructor();
  894. test_case_from_array_constructor();
  895. test_case_from_std_array_constructor();
  896. test_case_from_const_std_array_constructor();
  897. test_case_from_std_array_const_constructor();
  898. test_case_from_container_constructor();
  899. test_case_from_convertible_span_constructor();
  900. test_case_copy_move_and_assignment();
  901. test_case_class_template_argument_deduction();
  902. test_case_first();
  903. test_case_last();
  904. test_case_subspan();
  905. test_case_iterator_value_init();
  906. test_case_iterator_comparisons();
  907. test_case_begin_end();
  908. test_case_rbegin_rend();
  909. test_case_comparison_operators();
  910. test_case_as_bytes();
  911. test_case_as_writeable_bytes();
  912. test_case_fixed_size_conversions();
  913. test_case_interop_with_std_regex();
  914. test_case_default_constructible();
  915. CPP_assert(ranges::view_<span<int>>);
  916. CPP_assert(ranges::contiguous_range<span<int>>);
  917. CPP_assert(ranges::view_<span<int, 42>>);
  918. CPP_assert(ranges::contiguous_range<span<int, 42>>);
  919. }