SimdInt32x4Operation.cpp 12 KB

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  1. //-------------------------------------------------------------------------------------------------------
  2. // Copyright (C) Microsoft Corporation and contributors. All rights reserved.
  3. // Licensed under the MIT license. See LICENSE.txt file in the project root for full license information.
  4. //-------------------------------------------------------------------------------------------------------
  5. #include "RuntimeLanguagePch.h"
  6. #if defined(_M_ARM32_OR_ARM64)
  7. namespace Js
  8. {
  9. SIMDValue SIMDInt32x4Operation::OpInt32x4(int x, int y, int z, int w)
  10. {
  11. SIMDValue result;
  12. result.i32[SIMD_X] = x;
  13. result.i32[SIMD_Y] = y;
  14. result.i32[SIMD_Z] = z;
  15. result.i32[SIMD_W] = w;
  16. return result;
  17. }
  18. SIMDValue SIMDInt32x4Operation::OpSplat(int x)
  19. {
  20. SIMDValue result;
  21. result.i32[SIMD_X] = result.i32[SIMD_Y] = result.i32[SIMD_Z] = result.i32[SIMD_W] = x;
  22. return result;
  23. }
  24. SIMDValue SIMDInt32x4Operation::OpBool(int x, int y, int z, int w)
  25. {
  26. SIMDValue result;
  27. int nX = x ? -1 : 0x0;
  28. int nY = y ? -1 : 0x0;
  29. int nZ = z ? -1 : 0x0;
  30. int nW = w ? -1 : 0x0;
  31. result.i32[SIMD_X] = nX;
  32. result.i32[SIMD_Y] = nY;
  33. result.i32[SIMD_Z] = nZ;
  34. result.i32[SIMD_W] = nW;
  35. return result;
  36. }
  37. SIMDValue SIMDInt32x4Operation::OpBool(const SIMDValue& v)
  38. {
  39. SIMDValue result;
  40. // incoming 4 signed integers has to be 0 or -1
  41. Assert(v.i32[SIMD_X] == 0 || v.i32[SIMD_X] == -1);
  42. Assert(v.i32[SIMD_Y] == 0 || v.i32[SIMD_Y] == -1);
  43. Assert(v.i32[SIMD_Z] == 0 || v.i32[SIMD_Z] == -1);
  44. Assert(v.i32[SIMD_W] == 0 || v.i32[SIMD_W] == -1);
  45. result = v;
  46. return result;
  47. }
  48. SIMDValue SIMDInt32x4Operation::OpFromFloat32x4(const SIMDValue& v, bool &throws)
  49. {
  50. SIMDValue result = { 0 };
  51. const int MIN_INT = 0x80000000, MAX_INT = 0x7FFFFFFF;
  52. for (uint i = 0; i < 4; i++)
  53. {
  54. if (v.f32[i] >= MIN_INT && v.f32[i] <= MAX_INT)
  55. {
  56. result.u32[i] = (int)(v.f32[i]);
  57. }
  58. else
  59. {
  60. // out of range. Caller should throw.
  61. throws = true;
  62. return result;
  63. }
  64. }
  65. return result;
  66. }
  67. SIMDValue SIMDInt32x4Operation::OpFromFloat64x2(const SIMDValue& v)
  68. {
  69. SIMDValue result;
  70. result.i32[SIMD_X] = (int)(v.f64[SIMD_X]);
  71. result.i32[SIMD_Y] = (int)(v.f64[SIMD_Y]);
  72. result.i32[SIMD_Z] = result.i32[SIMD_W] = 0;
  73. return result;
  74. }
  75. // Unary Ops
  76. SIMDValue SIMDInt32x4Operation::OpAbs(const SIMDValue& value)
  77. {
  78. SIMDValue result;
  79. result.i32[SIMD_X] = (value.i32[SIMD_X] < 0) ? -1 * value.i32[SIMD_X] : value.i32[SIMD_X];
  80. result.i32[SIMD_Y] = (value.i32[SIMD_Y] < 0) ? -1 * value.i32[SIMD_Y] : value.i32[SIMD_Y];
  81. result.i32[SIMD_Z] = (value.i32[SIMD_Z] < 0) ? -1 * value.i32[SIMD_Z] : value.i32[SIMD_Z];
  82. result.i32[SIMD_W] = (value.i32[SIMD_W] < 0) ? -1 * value.i32[SIMD_W] : value.i32[SIMD_W];
  83. return result;
  84. }
  85. SIMDValue SIMDInt32x4Operation::OpNeg(const SIMDValue& value)
  86. {
  87. SIMDValue result;
  88. result.i32[SIMD_X] = -1 * value.i32[SIMD_X];
  89. result.i32[SIMD_Y] = -1 * value.i32[SIMD_Y];
  90. result.i32[SIMD_Z] = -1 * value.i32[SIMD_Z];
  91. result.i32[SIMD_W] = -1 * value.i32[SIMD_W];
  92. return result;
  93. }
  94. SIMDValue SIMDInt32x4Operation::OpNot(const SIMDValue& value)
  95. {
  96. SIMDValue result;
  97. result.i32[SIMD_X] = ~(value.i32[SIMD_X]);
  98. result.i32[SIMD_Y] = ~(value.i32[SIMD_Y]);
  99. result.i32[SIMD_Z] = ~(value.i32[SIMD_Z]);
  100. result.i32[SIMD_W] = ~(value.i32[SIMD_W]);
  101. return result;
  102. }
  103. SIMDValue SIMDInt32x4Operation::OpAdd(const SIMDValue& aValue, const SIMDValue& bValue)
  104. {
  105. SIMDValue result;
  106. result.i32[SIMD_X] = aValue.i32[SIMD_X] + bValue.i32[SIMD_X];
  107. result.i32[SIMD_Y] = aValue.i32[SIMD_Y] + bValue.i32[SIMD_Y];
  108. result.i32[SIMD_Z] = aValue.i32[SIMD_Z] + bValue.i32[SIMD_Z];
  109. result.i32[SIMD_W] = aValue.i32[SIMD_W] + bValue.i32[SIMD_W];
  110. return result;
  111. }
  112. SIMDValue SIMDInt32x4Operation::OpSub(const SIMDValue& aValue, const SIMDValue& bValue)
  113. {
  114. SIMDValue result;
  115. result.i32[SIMD_X] = aValue.i32[SIMD_X] - bValue.i32[SIMD_X];
  116. result.i32[SIMD_Y] = aValue.i32[SIMD_Y] - bValue.i32[SIMD_Y];
  117. result.i32[SIMD_Z] = aValue.i32[SIMD_Z] - bValue.i32[SIMD_Z];
  118. result.i32[SIMD_W] = aValue.i32[SIMD_W] - bValue.i32[SIMD_W];
  119. return result;
  120. }
  121. SIMDValue SIMDInt32x4Operation::OpMul(const SIMDValue& aValue, const SIMDValue& bValue)
  122. {
  123. SIMDValue result;
  124. result.i32[SIMD_X] = aValue.i32[SIMD_X] * bValue.i32[SIMD_X];
  125. result.i32[SIMD_Y] = aValue.i32[SIMD_Y] * bValue.i32[SIMD_Y];
  126. result.i32[SIMD_Z] = aValue.i32[SIMD_Z] * bValue.i32[SIMD_Z];
  127. result.i32[SIMD_W] = aValue.i32[SIMD_W] * bValue.i32[SIMD_W];
  128. return result;
  129. }
  130. SIMDValue SIMDInt32x4Operation::OpAnd(const SIMDValue& aValue, const SIMDValue& bValue)
  131. {
  132. SIMDValue result;
  133. result.i32[SIMD_X] = aValue.i32[SIMD_X] & bValue.i32[SIMD_X];
  134. result.i32[SIMD_Y] = aValue.i32[SIMD_Y] & bValue.i32[SIMD_Y];
  135. result.i32[SIMD_Z] = aValue.i32[SIMD_Z] & bValue.i32[SIMD_Z];
  136. result.i32[SIMD_W] = aValue.i32[SIMD_W] & bValue.i32[SIMD_W];
  137. return result;
  138. }
  139. SIMDValue SIMDInt32x4Operation::OpOr(const SIMDValue& aValue, const SIMDValue& bValue)
  140. {
  141. SIMDValue result;
  142. result.i32[SIMD_X] = aValue.i32[SIMD_X] | bValue.i32[SIMD_X];
  143. result.i32[SIMD_Y] = aValue.i32[SIMD_Y] | bValue.i32[SIMD_Y];
  144. result.i32[SIMD_Z] = aValue.i32[SIMD_Z] | bValue.i32[SIMD_Z];
  145. result.i32[SIMD_W] = aValue.i32[SIMD_W] | bValue.i32[SIMD_W];
  146. return result;
  147. }
  148. SIMDValue SIMDInt32x4Operation::OpXor(const SIMDValue& aValue, const SIMDValue& bValue)
  149. {
  150. SIMDValue result;
  151. result.i32[SIMD_X] = aValue.i32[SIMD_X] ^ bValue.i32[SIMD_X];
  152. result.i32[SIMD_Y] = aValue.i32[SIMD_Y] ^ bValue.i32[SIMD_Y];
  153. result.i32[SIMD_Z] = aValue.i32[SIMD_Z] ^ bValue.i32[SIMD_Z];
  154. result.i32[SIMD_W] = aValue.i32[SIMD_W] ^ bValue.i32[SIMD_W];
  155. return result;
  156. }
  157. SIMDValue SIMDInt32x4Operation::OpMin(const SIMDValue& aValue, const SIMDValue& bValue)
  158. {
  159. SIMDValue result;
  160. result.i32[SIMD_X] = (aValue.i32[SIMD_X] < bValue.i32[SIMD_X]) ? aValue.i32[SIMD_X] : bValue.i32[SIMD_X];
  161. result.i32[SIMD_Y] = (aValue.i32[SIMD_Y] < bValue.i32[SIMD_Y]) ? aValue.i32[SIMD_Y] : bValue.i32[SIMD_Y];
  162. result.i32[SIMD_Z] = (aValue.i32[SIMD_Z] < bValue.i32[SIMD_Z]) ? aValue.i32[SIMD_Z] : bValue.i32[SIMD_Z];
  163. result.i32[SIMD_W] = (aValue.i32[SIMD_W] < bValue.i32[SIMD_W]) ? aValue.i32[SIMD_W] : bValue.i32[SIMD_W];
  164. return result;
  165. }
  166. SIMDValue SIMDInt32x4Operation::OpMax(const SIMDValue& aValue, const SIMDValue& bValue)
  167. {
  168. SIMDValue result;
  169. result.i32[SIMD_X] = (aValue.i32[SIMD_X] > bValue.i32[SIMD_X]) ? aValue.i32[SIMD_X] : bValue.i32[SIMD_X];
  170. result.i32[SIMD_Y] = (aValue.i32[SIMD_Y] > bValue.i32[SIMD_Y]) ? aValue.i32[SIMD_Y] : bValue.i32[SIMD_Y];
  171. result.i32[SIMD_Z] = (aValue.i32[SIMD_Z] > bValue.i32[SIMD_Z]) ? aValue.i32[SIMD_Z] : bValue.i32[SIMD_Z];
  172. result.i32[SIMD_W] = (aValue.i32[SIMD_W] > bValue.i32[SIMD_W]) ? aValue.i32[SIMD_W] : bValue.i32[SIMD_W];
  173. return result;
  174. }
  175. SIMDValue SIMDInt32x4Operation::OpLessThan(const SIMDValue& aValue, const SIMDValue& bValue)
  176. {
  177. SIMDValue result;
  178. result.i32[SIMD_X] = (aValue.i32[SIMD_X] < bValue.i32[SIMD_X]) ? 0xffffffff : 0x0;
  179. result.i32[SIMD_Y] = (aValue.i32[SIMD_Y] < bValue.i32[SIMD_Y]) ? 0xffffffff : 0x0;
  180. result.i32[SIMD_Z] = (aValue.i32[SIMD_Z] < bValue.i32[SIMD_Z]) ? 0xffffffff : 0x0;
  181. result.i32[SIMD_W] = (aValue.i32[SIMD_W] < bValue.i32[SIMD_W]) ? 0xffffffff : 0x0;
  182. return result;
  183. }
  184. SIMDValue SIMDInt32x4Operation::OpLessThanOrEqual(const SIMDValue& aValue, const SIMDValue& bValue)
  185. {
  186. SIMDValue result;
  187. result.i32[SIMD_X] = (aValue.i32[SIMD_X] <= bValue.i32[SIMD_X]) ? 0xffffffff : 0x0;
  188. result.i32[SIMD_Y] = (aValue.i32[SIMD_Y] <= bValue.i32[SIMD_Y]) ? 0xffffffff : 0x0;
  189. result.i32[SIMD_Z] = (aValue.i32[SIMD_Z] <= bValue.i32[SIMD_Z]) ? 0xffffffff : 0x0;
  190. result.i32[SIMD_W] = (aValue.i32[SIMD_W] <= bValue.i32[SIMD_W]) ? 0xffffffff : 0x0;
  191. return result;
  192. }
  193. SIMDValue SIMDInt32x4Operation::OpEqual(const SIMDValue& aValue, const SIMDValue& bValue)
  194. {
  195. SIMDValue result;
  196. result.i32[SIMD_X] = (aValue.i32[SIMD_X] == bValue.i32[SIMD_X]) ? 0xffffffff : 0x0;
  197. result.i32[SIMD_Y] = (aValue.i32[SIMD_Y] == bValue.i32[SIMD_Y]) ? 0xffffffff : 0x0;
  198. result.i32[SIMD_Z] = (aValue.i32[SIMD_Z] == bValue.i32[SIMD_Z]) ? 0xffffffff : 0x0;
  199. result.i32[SIMD_W] = (aValue.i32[SIMD_W] == bValue.i32[SIMD_W]) ? 0xffffffff : 0x0;
  200. return result;
  201. }
  202. SIMDValue SIMDInt32x4Operation::OpNotEqual(const SIMDValue& aValue, const SIMDValue& bValue)
  203. {
  204. SIMDValue result;
  205. result.i32[SIMD_X] = (aValue.i32[SIMD_X] != bValue.i32[SIMD_X]) ? 0xffffffff : 0x0;
  206. result.i32[SIMD_Y] = (aValue.i32[SIMD_Y] != bValue.i32[SIMD_Y]) ? 0xffffffff : 0x0;
  207. result.i32[SIMD_Z] = (aValue.i32[SIMD_Z] != bValue.i32[SIMD_Z]) ? 0xffffffff : 0x0;
  208. result.i32[SIMD_W] = (aValue.i32[SIMD_W] != bValue.i32[SIMD_W]) ? 0xffffffff : 0x0;
  209. return result;
  210. }
  211. SIMDValue SIMDInt32x4Operation::OpGreaterThan(const SIMDValue& aValue, const SIMDValue& bValue)
  212. {
  213. SIMDValue result;
  214. result.i32[SIMD_X] = (aValue.i32[SIMD_X] > bValue.i32[SIMD_X]) ? 0xffffffff : 0x0;
  215. result.i32[SIMD_Y] = (aValue.i32[SIMD_Y] > bValue.i32[SIMD_Y]) ? 0xffffffff : 0x0;
  216. result.i32[SIMD_Z] = (aValue.i32[SIMD_Z] > bValue.i32[SIMD_Z]) ? 0xffffffff : 0x0;
  217. result.i32[SIMD_W] = (aValue.i32[SIMD_W] > bValue.i32[SIMD_W]) ? 0xffffffff : 0x0;
  218. return result;
  219. }
  220. SIMDValue SIMDInt32x4Operation::OpGreaterThanOrEqual(const SIMDValue& aValue, const SIMDValue& bValue)
  221. {
  222. SIMDValue result;
  223. result.i32[SIMD_X] = (aValue.i32[SIMD_X] >= bValue.i32[SIMD_X]) ? 0xffffffff : 0x0;
  224. result.i32[SIMD_Y] = (aValue.i32[SIMD_Y] >= bValue.i32[SIMD_Y]) ? 0xffffffff : 0x0;
  225. result.i32[SIMD_Z] = (aValue.i32[SIMD_Z] >= bValue.i32[SIMD_Z]) ? 0xffffffff : 0x0;
  226. result.i32[SIMD_W] = (aValue.i32[SIMD_W] >= bValue.i32[SIMD_W]) ? 0xffffffff : 0x0;
  227. return result;
  228. }
  229. SIMDValue SIMDInt32x4Operation::OpShiftLeftByScalar(const SIMDValue& value, int count)
  230. {
  231. SIMDValue result;
  232. count = count & SIMDUtils::SIMDGetShiftAmountMask(4);
  233. result.i32[SIMD_X] = value.i32[SIMD_X] << count;
  234. result.i32[SIMD_Y] = value.i32[SIMD_Y] << count;
  235. result.i32[SIMD_Z] = value.i32[SIMD_Z] << count;
  236. result.i32[SIMD_W] = value.i32[SIMD_W] << count;
  237. return result;
  238. }
  239. SIMDValue SIMDInt32x4Operation::OpShiftRightByScalar(const SIMDValue& value, int count)
  240. {
  241. SIMDValue result;
  242. count = count & SIMDUtils::SIMDGetShiftAmountMask(4);
  243. result.i32[SIMD_X] = value.i32[SIMD_X] >> count;
  244. result.i32[SIMD_Y] = value.i32[SIMD_Y] >> count;
  245. result.i32[SIMD_Z] = value.i32[SIMD_Z] >> count;
  246. result.i32[SIMD_W] = value.i32[SIMD_W] >> count;
  247. return result;
  248. }
  249. SIMDValue SIMDInt32x4Operation::OpSelect(const SIMDValue& mV, const SIMDValue& tV, const SIMDValue& fV)
  250. {
  251. SIMDValue result;
  252. SIMDValue trueResult = SIMDInt32x4Operation::OpAnd(mV, tV);
  253. SIMDValue notValue = SIMDInt32x4Operation::OpNot(mV);
  254. SIMDValue falseResult = SIMDInt32x4Operation::OpAnd(notValue, fV);
  255. result = SIMDInt32x4Operation::OpOr(trueResult, falseResult);
  256. return result;
  257. }
  258. }
  259. #endif