ArrayRefTest.cpp 8.7 KB

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  1. //===- llvm/unittest/ADT/ArrayRefTest.cpp - ArrayRef unit tests -----------===//
  2. //
  3. // The LLVM Compiler Infrastructure
  4. //
  5. // This file is distributed under the University of Illinois Open Source
  6. // License. See LICENSE.TXT for details.
  7. //
  8. //===----------------------------------------------------------------------===//
  9. #include "llvm/ADT/ArrayRef.h"
  10. #include "llvm/Support/Allocator.h"
  11. #include "llvm/Support/raw_ostream.h"
  12. #include "gtest/gtest.h"
  13. #include <limits>
  14. #include <vector>
  15. using namespace llvm;
  16. // Check that the ArrayRef-of-pointer converting constructor only allows adding
  17. // cv qualifiers (not removing them, or otherwise changing the type)
  18. static_assert(
  19. std::is_convertible<ArrayRef<int *>, ArrayRef<const int *>>::value,
  20. "Adding const");
  21. static_assert(
  22. std::is_convertible<ArrayRef<int *>, ArrayRef<volatile int *>>::value,
  23. "Adding volatile");
  24. static_assert(!std::is_convertible<ArrayRef<int *>, ArrayRef<float *>>::value,
  25. "Changing pointer of one type to a pointer of another");
  26. static_assert(
  27. !std::is_convertible<ArrayRef<const int *>, ArrayRef<int *>>::value,
  28. "Removing const");
  29. static_assert(
  30. !std::is_convertible<ArrayRef<volatile int *>, ArrayRef<int *>>::value,
  31. "Removing volatile");
  32. // Check that we can't accidentally assign a temporary location to an ArrayRef.
  33. // (Unfortunately we can't make use of the same thing with constructors.)
  34. //
  35. // Disable this check under MSVC; even MSVC 2015 isn't inconsistent between
  36. // std::is_assignable and actually writing such an assignment.
  37. #if !defined(_MSC_VER)
  38. static_assert(
  39. !std::is_assignable<ArrayRef<int *>, int *>::value,
  40. "Assigning from single prvalue element");
  41. static_assert(
  42. !std::is_assignable<ArrayRef<int *>, int * &&>::value,
  43. "Assigning from single xvalue element");
  44. static_assert(
  45. std::is_assignable<ArrayRef<int *>, int * &>::value,
  46. "Assigning from single lvalue element");
  47. static_assert(
  48. !std::is_assignable<ArrayRef<int *>, std::initializer_list<int *>>::value,
  49. "Assigning from an initializer list");
  50. #endif
  51. // Check Typedefs.
  52. static_assert(
  53. std::is_same<ArrayRef<int>::value_type, int>::value,
  54. "erroneous value_type");
  55. static_assert(
  56. std::is_same<ArrayRef<const int>::value_type, int>::value,
  57. "erroneous value_type");
  58. namespace {
  59. TEST(ArrayRefTest, AllocatorCopy) {
  60. BumpPtrAllocator Alloc;
  61. static const uint16_t Words1[] = { 1, 4, 200, 37 };
  62. ArrayRef<uint16_t> Array1 = makeArrayRef(Words1, 4);
  63. static const uint16_t Words2[] = { 11, 4003, 67, 64000, 13 };
  64. ArrayRef<uint16_t> Array2 = makeArrayRef(Words2, 5);
  65. ArrayRef<uint16_t> Array1c = Array1.copy(Alloc);
  66. ArrayRef<uint16_t> Array2c = Array2.copy(Alloc);
  67. EXPECT_TRUE(Array1.equals(Array1c));
  68. EXPECT_NE(Array1.data(), Array1c.data());
  69. EXPECT_TRUE(Array2.equals(Array2c));
  70. EXPECT_NE(Array2.data(), Array2c.data());
  71. // Check that copy can cope with uninitialized memory.
  72. struct NonAssignable {
  73. const char *Ptr;
  74. NonAssignable(const char *Ptr) : Ptr(Ptr) {}
  75. NonAssignable(const NonAssignable &RHS) = default;
  76. void operator=(const NonAssignable &RHS) { assert(RHS.Ptr != nullptr); }
  77. bool operator==(const NonAssignable &RHS) const { return Ptr == RHS.Ptr; }
  78. } Array3Src[] = {"hello", "world"};
  79. ArrayRef<NonAssignable> Array3Copy = makeArrayRef(Array3Src).copy(Alloc);
  80. EXPECT_EQ(makeArrayRef(Array3Src), Array3Copy);
  81. EXPECT_NE(makeArrayRef(Array3Src).data(), Array3Copy.data());
  82. }
  83. TEST(ArrayRefTest, SizeTSizedOperations) {
  84. ArrayRef<char> AR(nullptr, std::numeric_limits<ptrdiff_t>::max());
  85. // Check that drop_back accepts size_t-sized numbers.
  86. EXPECT_EQ(1U, AR.drop_back(AR.size() - 1).size());
  87. // Check that drop_front accepts size_t-sized numbers.
  88. EXPECT_EQ(1U, AR.drop_front(AR.size() - 1).size());
  89. // Check that slice accepts size_t-sized numbers.
  90. EXPECT_EQ(1U, AR.slice(AR.size() - 1).size());
  91. EXPECT_EQ(AR.size() - 1, AR.slice(1, AR.size() - 1).size());
  92. }
  93. TEST(ArrayRefTest, DropBack) {
  94. static const int TheNumbers[] = {4, 8, 15, 16, 23, 42};
  95. ArrayRef<int> AR1(TheNumbers);
  96. ArrayRef<int> AR2(TheNumbers, AR1.size() - 1);
  97. EXPECT_TRUE(AR1.drop_back().equals(AR2));
  98. }
  99. TEST(ArrayRefTest, DropFront) {
  100. static const int TheNumbers[] = {4, 8, 15, 16, 23, 42};
  101. ArrayRef<int> AR1(TheNumbers);
  102. ArrayRef<int> AR2(&TheNumbers[2], AR1.size() - 2);
  103. EXPECT_TRUE(AR1.drop_front(2).equals(AR2));
  104. }
  105. TEST(ArrayRefTest, DropWhile) {
  106. static const int TheNumbers[] = {1, 3, 5, 8, 10, 11};
  107. ArrayRef<int> AR1(TheNumbers);
  108. ArrayRef<int> Expected = AR1.drop_front(3);
  109. EXPECT_EQ(Expected, AR1.drop_while([](const int &N) { return N % 2 == 1; }));
  110. EXPECT_EQ(AR1, AR1.drop_while([](const int &N) { return N < 0; }));
  111. EXPECT_EQ(ArrayRef<int>(),
  112. AR1.drop_while([](const int &N) { return N > 0; }));
  113. }
  114. TEST(ArrayRefTest, DropUntil) {
  115. static const int TheNumbers[] = {1, 3, 5, 8, 10, 11};
  116. ArrayRef<int> AR1(TheNumbers);
  117. ArrayRef<int> Expected = AR1.drop_front(3);
  118. EXPECT_EQ(Expected, AR1.drop_until([](const int &N) { return N % 2 == 0; }));
  119. EXPECT_EQ(ArrayRef<int>(),
  120. AR1.drop_until([](const int &N) { return N < 0; }));
  121. EXPECT_EQ(AR1, AR1.drop_until([](const int &N) { return N > 0; }));
  122. }
  123. TEST(ArrayRefTest, TakeBack) {
  124. static const int TheNumbers[] = {4, 8, 15, 16, 23, 42};
  125. ArrayRef<int> AR1(TheNumbers);
  126. ArrayRef<int> AR2(AR1.end() - 1, 1);
  127. EXPECT_TRUE(AR1.take_back().equals(AR2));
  128. }
  129. TEST(ArrayRefTest, TakeFront) {
  130. static const int TheNumbers[] = {4, 8, 15, 16, 23, 42};
  131. ArrayRef<int> AR1(TheNumbers);
  132. ArrayRef<int> AR2(AR1.data(), 2);
  133. EXPECT_TRUE(AR1.take_front(2).equals(AR2));
  134. }
  135. TEST(ArrayRefTest, TakeWhile) {
  136. static const int TheNumbers[] = {1, 3, 5, 8, 10, 11};
  137. ArrayRef<int> AR1(TheNumbers);
  138. ArrayRef<int> Expected = AR1.take_front(3);
  139. EXPECT_EQ(Expected, AR1.take_while([](const int &N) { return N % 2 == 1; }));
  140. EXPECT_EQ(ArrayRef<int>(),
  141. AR1.take_while([](const int &N) { return N < 0; }));
  142. EXPECT_EQ(AR1, AR1.take_while([](const int &N) { return N > 0; }));
  143. }
  144. TEST(ArrayRefTest, TakeUntil) {
  145. static const int TheNumbers[] = {1, 3, 5, 8, 10, 11};
  146. ArrayRef<int> AR1(TheNumbers);
  147. ArrayRef<int> Expected = AR1.take_front(3);
  148. EXPECT_EQ(Expected, AR1.take_until([](const int &N) { return N % 2 == 0; }));
  149. EXPECT_EQ(AR1, AR1.take_until([](const int &N) { return N < 0; }));
  150. EXPECT_EQ(ArrayRef<int>(),
  151. AR1.take_until([](const int &N) { return N > 0; }));
  152. }
  153. TEST(ArrayRefTest, Equals) {
  154. static const int A1[] = {1, 2, 3, 4, 5, 6, 7, 8};
  155. ArrayRef<int> AR1(A1);
  156. EXPECT_TRUE(AR1.equals({1, 2, 3, 4, 5, 6, 7, 8}));
  157. EXPECT_FALSE(AR1.equals({8, 1, 2, 4, 5, 6, 6, 7}));
  158. EXPECT_FALSE(AR1.equals({2, 4, 5, 6, 6, 7, 8, 1}));
  159. EXPECT_FALSE(AR1.equals({0, 1, 2, 4, 5, 6, 6, 7}));
  160. EXPECT_FALSE(AR1.equals({1, 2, 42, 4, 5, 6, 7, 8}));
  161. EXPECT_FALSE(AR1.equals({42, 2, 3, 4, 5, 6, 7, 8}));
  162. EXPECT_FALSE(AR1.equals({1, 2, 3, 4, 5, 6, 7, 42}));
  163. EXPECT_FALSE(AR1.equals({1, 2, 3, 4, 5, 6, 7}));
  164. EXPECT_FALSE(AR1.equals({1, 2, 3, 4, 5, 6, 7, 8, 9}));
  165. ArrayRef<int> AR1a = AR1.drop_back();
  166. EXPECT_TRUE(AR1a.equals({1, 2, 3, 4, 5, 6, 7}));
  167. EXPECT_FALSE(AR1a.equals({1, 2, 3, 4, 5, 6, 7, 8}));
  168. ArrayRef<int> AR1b = AR1a.slice(2, 4);
  169. EXPECT_TRUE(AR1b.equals({3, 4, 5, 6}));
  170. EXPECT_FALSE(AR1b.equals({2, 3, 4, 5, 6}));
  171. EXPECT_FALSE(AR1b.equals({3, 4, 5, 6, 7}));
  172. }
  173. TEST(ArrayRefTest, EmptyEquals) {
  174. EXPECT_TRUE(ArrayRef<unsigned>() == ArrayRef<unsigned>());
  175. }
  176. TEST(ArrayRefTest, ConstConvert) {
  177. int buf[4];
  178. for (int i = 0; i < 4; ++i)
  179. buf[i] = i;
  180. static int *A[] = {&buf[0], &buf[1], &buf[2], &buf[3]};
  181. ArrayRef<const int *> a((ArrayRef<int *>(A)));
  182. a = ArrayRef<int *>(A);
  183. }
  184. static std::vector<int> ReturnTest12() { return {1, 2}; }
  185. static void ArgTest12(ArrayRef<int> A) {
  186. EXPECT_EQ(2U, A.size());
  187. EXPECT_EQ(1, A[0]);
  188. EXPECT_EQ(2, A[1]);
  189. }
  190. TEST(ArrayRefTest, InitializerList) {
  191. std::initializer_list<int> init_list = { 0, 1, 2, 3, 4 };
  192. ArrayRef<int> A = init_list;
  193. for (int i = 0; i < 5; ++i)
  194. EXPECT_EQ(i, A[i]);
  195. std::vector<int> B = ReturnTest12();
  196. A = B;
  197. EXPECT_EQ(1, A[0]);
  198. EXPECT_EQ(2, A[1]);
  199. ArgTest12({1, 2});
  200. }
  201. TEST(ArrayRefTest, EmptyInitializerList) {
  202. ArrayRef<int> A = {};
  203. EXPECT_TRUE(A.empty());
  204. A = {};
  205. EXPECT_TRUE(A.empty());
  206. }
  207. // Test that makeArrayRef works on ArrayRef (no-op)
  208. TEST(ArrayRefTest, makeArrayRef) {
  209. static const int A1[] = {1, 2, 3, 4, 5, 6, 7, 8};
  210. // No copy expected for non-const ArrayRef (true no-op)
  211. ArrayRef<int> AR1(A1);
  212. ArrayRef<int> &AR1Ref = makeArrayRef(AR1);
  213. EXPECT_EQ(&AR1, &AR1Ref);
  214. // A copy is expected for non-const ArrayRef (thin copy)
  215. const ArrayRef<int> AR2(A1);
  216. const ArrayRef<int> &AR2Ref = makeArrayRef(AR2);
  217. EXPECT_NE(&AR2Ref, &AR2);
  218. EXPECT_TRUE(AR2.equals(AR2Ref));
  219. }
  220. } // end anonymous namespace