AlignmentTest.cpp 8.8 KB

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  1. //=== - llvm/unittest/Support/Alignment.cpp - Alignment utility tests -----===//
  2. //
  3. // Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions.
  4. // See https://llvm.org/LICENSE.txt for license information.
  5. // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception
  6. //
  7. //===----------------------------------------------------------------------===//
  8. #include "llvm/Support/Alignment.h"
  9. #include "gtest/gtest.h"
  10. #include <vector>
  11. #ifdef _MSC_VER
  12. // Disable warnings about potential divide by 0.
  13. #pragma warning(push)
  14. #pragma warning(disable : 4723)
  15. #endif
  16. using namespace llvm;
  17. namespace {
  18. std::vector<uint64_t> getValidAlignments() {
  19. std::vector<uint64_t> Out;
  20. for (size_t Shift = 0; Shift < 64; ++Shift)
  21. Out.push_back(1ULL << Shift);
  22. return Out;
  23. }
  24. TEST(AlignmentTest, AlignDefaultCTor) {
  25. EXPECT_EQ(Align().value(), 1ULL);
  26. EXPECT_EQ(Align::None().value(), 1ULL);
  27. }
  28. TEST(AlignmentTest, MaybeAlignDefaultCTor) {
  29. EXPECT_FALSE(MaybeAlign().hasValue());
  30. }
  31. TEST(AlignmentTest, ValidCTors) {
  32. for (uint64_t Value : getValidAlignments()) {
  33. EXPECT_EQ(Align(Value).value(), Value);
  34. EXPECT_EQ((*MaybeAlign(Value)).value(), Value);
  35. }
  36. }
  37. TEST(AlignmentTest, CheckMaybeAlignHasValue) {
  38. EXPECT_TRUE(MaybeAlign(1));
  39. EXPECT_TRUE(MaybeAlign(1).hasValue());
  40. EXPECT_FALSE(MaybeAlign(0));
  41. EXPECT_FALSE(MaybeAlign(0).hasValue());
  42. EXPECT_FALSE(MaybeAlign());
  43. EXPECT_FALSE(MaybeAlign().hasValue());
  44. }
  45. TEST(AlignmentTest, Division) {
  46. for (uint64_t Value : getValidAlignments()) {
  47. if (Value > 1) {
  48. EXPECT_EQ(Align(Value) / 2, Value / 2);
  49. EXPECT_EQ(MaybeAlign(Value) / 2, Value / 2);
  50. }
  51. }
  52. EXPECT_EQ(MaybeAlign(0) / 2, MaybeAlign(0));
  53. }
  54. TEST(AlignmentTest, AlignTo) {
  55. struct {
  56. uint64_t alignment;
  57. uint64_t offset;
  58. uint64_t rounded;
  59. } kTests[] = {
  60. // MaybeAlign
  61. {0, 0, 0},
  62. {0, 1, 1},
  63. {0, 5, 5},
  64. // MaybeAlign / Align
  65. {1, 0, 0},
  66. {1, 1, 1},
  67. {1, 5, 5},
  68. {2, 0, 0},
  69. {2, 1, 2},
  70. {2, 2, 2},
  71. {2, 7, 8},
  72. {2, 16, 16},
  73. {4, 0, 0},
  74. {4, 1, 4},
  75. {4, 4, 4},
  76. {4, 6, 8},
  77. };
  78. for (const auto &T : kTests) {
  79. MaybeAlign A(T.alignment);
  80. // Test MaybeAlign
  81. EXPECT_EQ(alignTo(T.offset, A), T.rounded);
  82. // Test Align
  83. if (A) {
  84. EXPECT_EQ(alignTo(T.offset, A.getValue()), T.rounded);
  85. }
  86. }
  87. }
  88. TEST(AlignmentTest, Log2) {
  89. for (uint64_t Value : getValidAlignments()) {
  90. EXPECT_EQ(Log2(Align(Value)), Log2_64(Value));
  91. EXPECT_EQ(Log2(MaybeAlign(Value)), Log2_64(Value));
  92. }
  93. }
  94. TEST(AlignmentTest, MinAlign) {
  95. struct {
  96. uint64_t A;
  97. uint64_t B;
  98. uint64_t MinAlign;
  99. } kTests[] = {
  100. // MaybeAlign
  101. {0, 0, 0},
  102. {0, 8, 8},
  103. {2, 0, 2},
  104. // MaybeAlign / Align
  105. {1, 2, 1},
  106. {8, 4, 4},
  107. };
  108. for (const auto &T : kTests) {
  109. EXPECT_EQ(commonAlignment(MaybeAlign(T.A), MaybeAlign(T.B)), T.MinAlign);
  110. EXPECT_EQ(MinAlign(T.A, T.B), T.MinAlign);
  111. if (T.A) {
  112. EXPECT_EQ(commonAlignment(Align(T.A), MaybeAlign(T.B)), T.MinAlign);
  113. }
  114. if (T.B) {
  115. EXPECT_EQ(commonAlignment(MaybeAlign(T.A), Align(T.B)), T.MinAlign);
  116. }
  117. if (T.A && T.B) {
  118. EXPECT_EQ(commonAlignment(Align(T.A), Align(T.B)), T.MinAlign);
  119. }
  120. }
  121. }
  122. TEST(AlignmentTest, Encode_Decode) {
  123. for (uint64_t Value : getValidAlignments()) {
  124. {
  125. Align Actual(Value);
  126. Align Expected = decodeMaybeAlign(encode(Actual)).getValue();
  127. EXPECT_EQ(Expected, Actual);
  128. }
  129. {
  130. MaybeAlign Actual(Value);
  131. MaybeAlign Expected = decodeMaybeAlign(encode(Actual));
  132. EXPECT_EQ(Expected, Actual);
  133. }
  134. }
  135. MaybeAlign Actual(0);
  136. MaybeAlign Expected = decodeMaybeAlign(encode(Actual));
  137. EXPECT_EQ(Expected, Actual);
  138. }
  139. TEST(AlignmentTest, isAligned) {
  140. struct {
  141. uint64_t alignment;
  142. uint64_t offset;
  143. bool isAligned;
  144. } kTests[] = {
  145. // MaybeAlign / Align
  146. {1, 0, true}, {1, 1, true}, {1, 5, true}, {2, 0, true},
  147. {2, 1, false}, {2, 2, true}, {2, 7, false}, {2, 16, true},
  148. {4, 0, true}, {4, 1, false}, {4, 4, true}, {4, 6, false},
  149. };
  150. for (const auto &T : kTests) {
  151. MaybeAlign A(T.alignment);
  152. // Test MaybeAlign
  153. EXPECT_EQ(isAligned(A, T.offset), T.isAligned);
  154. // Test Align
  155. if (A) {
  156. EXPECT_EQ(isAligned(A.getValue(), T.offset), T.isAligned);
  157. }
  158. }
  159. }
  160. TEST(AlignmentTest, AlignComparisons) {
  161. std::vector<uint64_t> ValidAlignments = getValidAlignments();
  162. std::sort(ValidAlignments.begin(), ValidAlignments.end());
  163. for (size_t I = 1; I < ValidAlignments.size(); ++I) {
  164. assert(I >= 1);
  165. const Align A(ValidAlignments[I - 1]);
  166. const Align B(ValidAlignments[I]);
  167. EXPECT_EQ(A, A);
  168. EXPECT_NE(A, B);
  169. EXPECT_LT(A, B);
  170. EXPECT_GT(B, A);
  171. EXPECT_LE(A, B);
  172. EXPECT_GE(B, A);
  173. EXPECT_LE(A, A);
  174. EXPECT_GE(A, A);
  175. EXPECT_EQ(A, A.value());
  176. EXPECT_NE(A, B.value());
  177. EXPECT_LT(A, B.value());
  178. EXPECT_GT(B, A.value());
  179. EXPECT_LE(A, B.value());
  180. EXPECT_GE(B, A.value());
  181. EXPECT_LE(A, A.value());
  182. EXPECT_GE(A, A.value());
  183. EXPECT_EQ(std::max(A, B), B);
  184. EXPECT_EQ(std::min(A, B), A);
  185. const MaybeAlign MA(ValidAlignments[I - 1]);
  186. const MaybeAlign MB(ValidAlignments[I]);
  187. EXPECT_EQ(MA, MA);
  188. EXPECT_NE(MA, MB);
  189. EXPECT_LT(MA, MB);
  190. EXPECT_GT(MB, MA);
  191. EXPECT_LE(MA, MB);
  192. EXPECT_GE(MB, MA);
  193. EXPECT_LE(MA, MA);
  194. EXPECT_GE(MA, MA);
  195. EXPECT_EQ(MA, MA ? (*MA).value() : 0);
  196. EXPECT_NE(MA, MB ? (*MB).value() : 0);
  197. EXPECT_LT(MA, MB ? (*MB).value() : 0);
  198. EXPECT_GT(MB, MA ? (*MA).value() : 0);
  199. EXPECT_LE(MA, MB ? (*MB).value() : 0);
  200. EXPECT_GE(MB, MA ? (*MA).value() : 0);
  201. EXPECT_LE(MA, MA ? (*MA).value() : 0);
  202. EXPECT_GE(MA, MA ? (*MA).value() : 0);
  203. EXPECT_EQ(std::max(A, B), B);
  204. EXPECT_EQ(std::min(A, B), A);
  205. }
  206. }
  207. TEST(AlignmentTest, AssumeAligned) {
  208. EXPECT_EQ(assumeAligned(0), Align(1));
  209. EXPECT_EQ(assumeAligned(0), Align());
  210. EXPECT_EQ(assumeAligned(1), Align(1));
  211. EXPECT_EQ(assumeAligned(1), Align());
  212. }
  213. // Death tests reply on assert which is disabled in release mode.
  214. #ifndef NDEBUG
  215. // We use a subset of valid alignments for DEATH_TESTs as they are particularly
  216. // slow.
  217. std::vector<uint64_t> getValidAlignmentsForDeathTest() {
  218. return {1, 1ULL << 31, 1ULL << 63};
  219. }
  220. std::vector<uint64_t> getNonPowerOfTwo() { return {3, 10, 15}; }
  221. TEST(AlignmentDeathTest, Log2) {
  222. EXPECT_DEATH(Log2(MaybeAlign(0)), ".* should be defined");
  223. }
  224. TEST(AlignmentDeathTest, CantConvertUnsetMaybe) {
  225. EXPECT_DEATH((MaybeAlign(0).getValue()), ".*");
  226. }
  227. TEST(AlignmentDeathTest, Division) {
  228. EXPECT_DEATH(Align(1) / 2, "Can't halve byte alignment");
  229. EXPECT_DEATH(MaybeAlign(1) / 2, "Can't halve byte alignment");
  230. EXPECT_DEATH(Align(8) / 0, "Divisor must be positive and a power of 2");
  231. EXPECT_DEATH(Align(8) / 3, "Divisor must be positive and a power of 2");
  232. }
  233. TEST(AlignmentDeathTest, InvalidCTors) {
  234. EXPECT_DEATH((Align(0)), "Value must not be 0");
  235. for (uint64_t Value : getNonPowerOfTwo()) {
  236. EXPECT_DEATH((Align(Value)), "Alignment is not a power of 2");
  237. EXPECT_DEATH((MaybeAlign(Value)),
  238. "Alignment is neither 0 nor a power of 2");
  239. }
  240. }
  241. TEST(AlignmentDeathTest, ComparisonsWithZero) {
  242. for (uint64_t Value : getValidAlignmentsForDeathTest()) {
  243. EXPECT_DEATH((void)(Align(Value) == 0), ".* should be defined");
  244. EXPECT_DEATH((void)(Align(Value) != 0), ".* should be defined");
  245. EXPECT_DEATH((void)(Align(Value) >= 0), ".* should be defined");
  246. EXPECT_DEATH((void)(Align(Value) <= 0), ".* should be defined");
  247. EXPECT_DEATH((void)(Align(Value) > 0), ".* should be defined");
  248. EXPECT_DEATH((void)(Align(Value) < 0), ".* should be defined");
  249. }
  250. }
  251. TEST(AlignmentDeathTest, CompareMaybeAlignToZero) {
  252. for (uint64_t Value : getValidAlignmentsForDeathTest()) {
  253. // MaybeAlign is allowed to be == or != 0
  254. (void)(MaybeAlign(Value) == 0);
  255. (void)(MaybeAlign(Value) != 0);
  256. EXPECT_DEATH((void)(MaybeAlign(Value) >= 0), ".* should be defined");
  257. EXPECT_DEATH((void)(MaybeAlign(Value) <= 0), ".* should be defined");
  258. EXPECT_DEATH((void)(MaybeAlign(Value) > 0), ".* should be defined");
  259. EXPECT_DEATH((void)(MaybeAlign(Value) < 0), ".* should be defined");
  260. }
  261. }
  262. TEST(AlignmentDeathTest, CompareAlignToUndefMaybeAlign) {
  263. for (uint64_t Value : getValidAlignmentsForDeathTest()) {
  264. EXPECT_DEATH((void)(Align(Value) == MaybeAlign(0)), ".* should be defined");
  265. EXPECT_DEATH((void)(Align(Value) != MaybeAlign(0)), ".* should be defined");
  266. EXPECT_DEATH((void)(Align(Value) >= MaybeAlign(0)), ".* should be defined");
  267. EXPECT_DEATH((void)(Align(Value) <= MaybeAlign(0)), ".* should be defined");
  268. EXPECT_DEATH((void)(Align(Value) > MaybeAlign(0)), ".* should be defined");
  269. EXPECT_DEATH((void)(Align(Value) < MaybeAlign(0)), ".* should be defined");
  270. }
  271. }
  272. #endif // NDEBUG
  273. } // end anonymous namespace
  274. #ifdef _MSC_VER
  275. #pragma warning(pop)
  276. #endif