EndianTest.cpp 7.4 KB

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  1. //===- unittests/Support/EndianTest.cpp - Endian.h 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/Support/Endian.h"
  10. #include "llvm/Support/DataTypes.h"
  11. #include "gtest/gtest.h"
  12. #include <cstdlib>
  13. #include <ctime>
  14. using namespace llvm;
  15. using namespace support;
  16. #undef max
  17. namespace {
  18. TEST(Endian, Read) {
  19. // These are 5 bytes so we can be sure at least one of the reads is unaligned.
  20. unsigned char bigval[] = {0x00, 0x01, 0x02, 0x03, 0x04};
  21. unsigned char littleval[] = {0x00, 0x04, 0x03, 0x02, 0x01};
  22. int32_t BigAsHost = 0x00010203;
  23. EXPECT_EQ(BigAsHost, (endian::read<int32_t, big, unaligned>(bigval)));
  24. int32_t LittleAsHost = 0x02030400;
  25. EXPECT_EQ(LittleAsHost,(endian::read<int32_t, little, unaligned>(littleval)));
  26. EXPECT_EQ((endian::read<int32_t, big, unaligned>(bigval + 1)),
  27. (endian::read<int32_t, little, unaligned>(littleval + 1)));
  28. }
  29. TEST(Endian, ReadBitAligned) {
  30. // Simple test to make sure we properly pull out the 0x0 word.
  31. unsigned char littleval[] = {0x3f, 0x00, 0x00, 0x00, 0xc0, 0xff, 0xff, 0xff};
  32. unsigned char bigval[] = {0x00, 0x00, 0x00, 0x3f, 0xff, 0xff, 0xff, 0xc0};
  33. EXPECT_EQ(
  34. (endian::readAtBitAlignment<int, little, unaligned>(&littleval[0], 6)),
  35. 0x0);
  36. EXPECT_EQ((endian::readAtBitAlignment<int, big, unaligned>(&bigval[0], 6)),
  37. 0x0);
  38. // Test to make sure that signed right shift of 0xf0000000 is masked
  39. // properly.
  40. unsigned char littleval2[] = {0x00, 0x00, 0x00, 0xf0, 0x00, 0x00, 0x00, 0x00};
  41. unsigned char bigval2[] = {0xf0, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00};
  42. EXPECT_EQ(
  43. (endian::readAtBitAlignment<int, little, unaligned>(&littleval2[0], 4)),
  44. 0x0f000000);
  45. EXPECT_EQ((endian::readAtBitAlignment<int, big, unaligned>(&bigval2[0], 4)),
  46. 0x0f000000);
  47. // Test to make sure left shift of start bit doesn't overflow.
  48. EXPECT_EQ(
  49. (endian::readAtBitAlignment<int, little, unaligned>(&littleval2[0], 1)),
  50. 0x78000000);
  51. EXPECT_EQ((endian::readAtBitAlignment<int, big, unaligned>(&bigval2[0], 1)),
  52. 0x78000000);
  53. // Test to make sure 64-bit int doesn't overflow.
  54. unsigned char littleval3[] = {0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0xf0,
  55. 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00};
  56. unsigned char bigval3[] = {0xf0, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
  57. 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00};
  58. EXPECT_EQ((endian::readAtBitAlignment<int64_t, little, unaligned>(
  59. &littleval3[0], 4)),
  60. 0x0f00000000000000);
  61. EXPECT_EQ(
  62. (endian::readAtBitAlignment<int64_t, big, unaligned>(&bigval3[0], 4)),
  63. 0x0f00000000000000);
  64. }
  65. TEST(Endian, WriteBitAligned) {
  66. // This test ensures that signed right shift of 0xffffaa is masked
  67. // properly.
  68. unsigned char bigval[8] = {0x00};
  69. endian::writeAtBitAlignment<int32_t, big, unaligned>(bigval, (int)0xffffaaaa,
  70. 4);
  71. EXPECT_EQ(bigval[0], 0xff);
  72. EXPECT_EQ(bigval[1], 0xfa);
  73. EXPECT_EQ(bigval[2], 0xaa);
  74. EXPECT_EQ(bigval[3], 0xa0);
  75. EXPECT_EQ(bigval[4], 0x00);
  76. EXPECT_EQ(bigval[5], 0x00);
  77. EXPECT_EQ(bigval[6], 0x00);
  78. EXPECT_EQ(bigval[7], 0x0f);
  79. unsigned char littleval[8] = {0x00};
  80. endian::writeAtBitAlignment<int32_t, little, unaligned>(littleval,
  81. (int)0xffffaaaa, 4);
  82. EXPECT_EQ(littleval[0], 0xa0);
  83. EXPECT_EQ(littleval[1], 0xaa);
  84. EXPECT_EQ(littleval[2], 0xfa);
  85. EXPECT_EQ(littleval[3], 0xff);
  86. EXPECT_EQ(littleval[4], 0x0f);
  87. EXPECT_EQ(littleval[5], 0x00);
  88. EXPECT_EQ(littleval[6], 0x00);
  89. EXPECT_EQ(littleval[7], 0x00);
  90. // This test makes sure 1<<31 doesn't overflow.
  91. // Test to make sure left shift of start bit doesn't overflow.
  92. unsigned char bigval2[8] = {0x00};
  93. endian::writeAtBitAlignment<int32_t, big, unaligned>(bigval2, (int)0xffffffff,
  94. 1);
  95. EXPECT_EQ(bigval2[0], 0xff);
  96. EXPECT_EQ(bigval2[1], 0xff);
  97. EXPECT_EQ(bigval2[2], 0xff);
  98. EXPECT_EQ(bigval2[3], 0xfe);
  99. EXPECT_EQ(bigval2[4], 0x00);
  100. EXPECT_EQ(bigval2[5], 0x00);
  101. EXPECT_EQ(bigval2[6], 0x00);
  102. EXPECT_EQ(bigval2[7], 0x01);
  103. unsigned char littleval2[8] = {0x00};
  104. endian::writeAtBitAlignment<int32_t, little, unaligned>(littleval2,
  105. (int)0xffffffff, 1);
  106. EXPECT_EQ(littleval2[0], 0xfe);
  107. EXPECT_EQ(littleval2[1], 0xff);
  108. EXPECT_EQ(littleval2[2], 0xff);
  109. EXPECT_EQ(littleval2[3], 0xff);
  110. EXPECT_EQ(littleval2[4], 0x01);
  111. EXPECT_EQ(littleval2[5], 0x00);
  112. EXPECT_EQ(littleval2[6], 0x00);
  113. EXPECT_EQ(littleval2[7], 0x00);
  114. // Test to make sure 64-bit int doesn't overflow.
  115. unsigned char bigval64[16] = {0x00};
  116. endian::writeAtBitAlignment<int64_t, big, unaligned>(
  117. bigval64, (int64_t)0xffffffffffffffff, 1);
  118. EXPECT_EQ(bigval64[0], 0xff);
  119. EXPECT_EQ(bigval64[1], 0xff);
  120. EXPECT_EQ(bigval64[2], 0xff);
  121. EXPECT_EQ(bigval64[3], 0xff);
  122. EXPECT_EQ(bigval64[4], 0xff);
  123. EXPECT_EQ(bigval64[5], 0xff);
  124. EXPECT_EQ(bigval64[6], 0xff);
  125. EXPECT_EQ(bigval64[7], 0xfe);
  126. EXPECT_EQ(bigval64[8], 0x00);
  127. EXPECT_EQ(bigval64[9], 0x00);
  128. EXPECT_EQ(bigval64[10], 0x00);
  129. EXPECT_EQ(bigval64[11], 0x00);
  130. EXPECT_EQ(bigval64[12], 0x00);
  131. EXPECT_EQ(bigval64[13], 0x00);
  132. EXPECT_EQ(bigval64[14], 0x00);
  133. EXPECT_EQ(bigval64[15], 0x01);
  134. unsigned char littleval64[16] = {0x00};
  135. endian::writeAtBitAlignment<int64_t, little, unaligned>(
  136. littleval64, (int64_t)0xffffffffffffffff, 1);
  137. EXPECT_EQ(littleval64[0], 0xfe);
  138. EXPECT_EQ(littleval64[1], 0xff);
  139. EXPECT_EQ(littleval64[2], 0xff);
  140. EXPECT_EQ(littleval64[3], 0xff);
  141. EXPECT_EQ(littleval64[4], 0xff);
  142. EXPECT_EQ(littleval64[5], 0xff);
  143. EXPECT_EQ(littleval64[6], 0xff);
  144. EXPECT_EQ(littleval64[7], 0xff);
  145. EXPECT_EQ(littleval64[8], 0x01);
  146. EXPECT_EQ(littleval64[9], 0x00);
  147. EXPECT_EQ(littleval64[10], 0x00);
  148. EXPECT_EQ(littleval64[11], 0x00);
  149. EXPECT_EQ(littleval64[12], 0x00);
  150. EXPECT_EQ(littleval64[13], 0x00);
  151. EXPECT_EQ(littleval64[14], 0x00);
  152. EXPECT_EQ(littleval64[15], 0x00);
  153. }
  154. TEST(Endian, Write) {
  155. unsigned char data[5];
  156. endian::write<int32_t, big, unaligned>(data, -1362446643);
  157. EXPECT_EQ(data[0], 0xAE);
  158. EXPECT_EQ(data[1], 0xCA);
  159. EXPECT_EQ(data[2], 0xB6);
  160. EXPECT_EQ(data[3], 0xCD);
  161. endian::write<int32_t, big, unaligned>(data + 1, -1362446643);
  162. EXPECT_EQ(data[1], 0xAE);
  163. EXPECT_EQ(data[2], 0xCA);
  164. EXPECT_EQ(data[3], 0xB6);
  165. EXPECT_EQ(data[4], 0xCD);
  166. endian::write<int32_t, little, unaligned>(data, -1362446643);
  167. EXPECT_EQ(data[0], 0xCD);
  168. EXPECT_EQ(data[1], 0xB6);
  169. EXPECT_EQ(data[2], 0xCA);
  170. EXPECT_EQ(data[3], 0xAE);
  171. endian::write<int32_t, little, unaligned>(data + 1, -1362446643);
  172. EXPECT_EQ(data[1], 0xCD);
  173. EXPECT_EQ(data[2], 0xB6);
  174. EXPECT_EQ(data[3], 0xCA);
  175. EXPECT_EQ(data[4], 0xAE);
  176. }
  177. TEST(Endian, PackedEndianSpecificIntegral) {
  178. // These are 5 bytes so we can be sure at least one of the reads is unaligned.
  179. unsigned char big[] = {0x00, 0x01, 0x02, 0x03, 0x04};
  180. unsigned char little[] = {0x00, 0x04, 0x03, 0x02, 0x01};
  181. big32_t *big_val =
  182. reinterpret_cast<big32_t *>(big + 1);
  183. little32_t *little_val =
  184. reinterpret_cast<little32_t *>(little + 1);
  185. EXPECT_EQ(*big_val, *little_val);
  186. }
  187. } // end anon namespace