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Vec3Tests.cpp 10 KB

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  1. // Jolt Physics Library (https://github.com/jrouwe/JoltPhysics)
  2. // SPDX-FileCopyrightText: 2021 Jorrit Rouwe
  3. // SPDX-License-Identifier: MIT
  4. #include "UnitTestFramework.h"
  5. TEST_SUITE("Vec3Tests")
  6. {
  7. TEST_CASE("TestVec3ConstructComponents")
  8. {
  9. Vec3 v(1, 2, 3);
  10. // Test component access
  11. CHECK(v.GetX() == 1);
  12. CHECK(v.GetY() == 2);
  13. CHECK(v.GetZ() == 3);
  14. // Test component access by [] operators
  15. CHECK(v[0] == 1);
  16. CHECK(v[1] == 2);
  17. CHECK(v[2] == 3);
  18. // Test == and != operators
  19. CHECK(v == Vec3(1, 2, 3));
  20. CHECK(v != Vec3(1, 2, 4));
  21. // Set the components
  22. v.SetComponent(0, 4);
  23. v.SetComponent(1, 5);
  24. v.SetComponent(2, 6);
  25. CHECK(v == Vec3(4, 5, 6));
  26. }
  27. TEST_CASE("TestVec3LoadStoreFloat3")
  28. {
  29. float f4[] = { 1, 2, 3, 4 }; // Extra element since we read one too many in sLoadFloat3Unsafe
  30. Float3 &f3 = *(Float3 *)f4;
  31. CHECK(Vec3(f3) == Vec3(1, 2, 3));
  32. CHECK(Vec3::sLoadFloat3Unsafe(f3) == Vec3(1, 2, 3));
  33. Float3 f3_out;
  34. Vec3(1, 2, 3).StoreFloat3(&f3_out);
  35. CHECK(f3 == f3_out);
  36. }
  37. TEST_CASE("TestVec3ConstructVec4")
  38. {
  39. Vec4 v4(1, 2, 3, 4);
  40. CHECK(Vec3(v4) == Vec3(1, 2, 3));
  41. }
  42. TEST_CASE("TestVec3Zero")
  43. {
  44. Vec3 v = Vec3::sZero();
  45. CHECK(v.GetX() == 0);
  46. CHECK(v.GetY() == 0);
  47. CHECK(v.GetZ() == 0);
  48. }
  49. TEST_CASE("TestVec3NaN")
  50. {
  51. Vec3 v = Vec3::sNaN();
  52. CHECK(isnan(v.GetX()));
  53. CHECK(isnan(v.GetY()));
  54. CHECK(isnan(v.GetZ()));
  55. CHECK(v.IsNaN());
  56. v.SetComponent(0, 0);
  57. CHECK(v.IsNaN());
  58. v.SetComponent(1, 0);
  59. CHECK(v.IsNaN());
  60. v.SetComponent(2, 0);
  61. CHECK(!v.IsNaN());
  62. }
  63. TEST_CASE("TestVec3Replicate")
  64. {
  65. CHECK(Vec3::sReplicate(2) == Vec3(2, 2, 2));
  66. }
  67. TEST_CASE("TestVec3MinMax")
  68. {
  69. Vec3 v1(1, 5, 3);
  70. Vec3 v2(4, 2, 6);
  71. CHECK(Vec3::sMin(v1, v2) == Vec3(1, 2, 3));
  72. CHECK(Vec3::sMax(v1, v2) == Vec3(4, 5, 6));
  73. CHECK(v1.ReduceMin() == 1);
  74. CHECK(v1.ReduceMax() == 5);
  75. CHECK(v2.ReduceMin() == 2);
  76. CHECK(v2.ReduceMax() == 6);
  77. CHECK(v1.GetLowestComponentIndex() == 0);
  78. CHECK(v1.GetHighestComponentIndex() == 1);
  79. CHECK(v2.GetLowestComponentIndex() == 1);
  80. CHECK(v2.GetHighestComponentIndex() == 2);
  81. }
  82. TEST_CASE("TestVec3Clamp")
  83. {
  84. Vec3 v1(1, 2, 3);
  85. Vec3 v2(4, 5, 6);
  86. Vec3 v(-1, 3, 7);
  87. CHECK(Vec3::sClamp(v, v1, v2) == Vec3(1, 3, 6));
  88. }
  89. TEST_CASE("TestVec3Comparisons")
  90. {
  91. CHECK(Vec3::sEquals(Vec3(1, 2, 3), Vec3(1, 4, 3)) == UVec4(0xffffffffU, 0, 0xffffffffU, 0xffffffffU)); // W is always Z for comparisons
  92. CHECK(Vec3::sLess(Vec3(1, 2, 4), Vec3(1, 4, 3)) == UVec4(0, 0xffffffffU, 0, 0));
  93. CHECK(Vec3::sLessOrEqual(Vec3(1, 2, 4), Vec3(1, 4, 3)) == UVec4(0xffffffffU, 0xffffffffU, 0, 0));
  94. CHECK(Vec3::sGreater(Vec3(1, 2, 4), Vec3(1, 4, 3)) == UVec4(0, 0, 0xffffffffU, 0xffffffffU));
  95. CHECK(Vec3::sGreaterOrEqual(Vec3(1, 2, 4), Vec3(1, 4, 3)) == UVec4(0xffffffffU, 0, 0xffffffffU, 0xffffffffU));
  96. }
  97. TEST_CASE("TestVec3FMA")
  98. {
  99. CHECK(Vec3::sFusedMultiplyAdd(Vec3(1, 2, 3), Vec3(4, 5, 6), Vec3(7, 8, 9)) == Vec3(1 * 4 + 7, 2 * 5 + 8, 3 * 6 + 9));
  100. }
  101. TEST_CASE("TestVec3Select")
  102. {
  103. CHECK(Vec3::sSelect(Vec3(1, 2, 3), Vec3(4, 5, 6), UVec4(0x80000000U, 0, 0x80000000U, 0)) == Vec3(4, 2, 6));
  104. CHECK(Vec3::sSelect(Vec3(1, 2, 3), Vec3(4, 5, 6), UVec4(0, 0x80000000U, 0, 0x80000000U)) == Vec3(1, 5, 3));
  105. }
  106. TEST_CASE("TestVec3BitOps")
  107. {
  108. // Test all bit permutations
  109. Vec3 v1(UVec4(0b0011, 0b00110, 0b001100, 0).ReinterpretAsFloat());
  110. Vec3 v2(UVec4(0b0101, 0b01010, 0b010100, 0).ReinterpretAsFloat());
  111. CHECK(Vec3::sOr(v1, v2) == Vec3(UVec4(0b0111, 0b01110, 0b011100, 0).ReinterpretAsFloat()));
  112. CHECK(Vec3::sXor(v1, v2) == Vec3(UVec4(0b0110, 0b01100, 0b011000, 0).ReinterpretAsFloat()));
  113. CHECK(Vec3::sAnd(v1, v2) == Vec3(UVec4(0b0001, 0b00010, 0b000100, 0).ReinterpretAsFloat()));
  114. }
  115. TEST_CASE("TestVec3Close")
  116. {
  117. CHECK(Vec3(1, 2, 3).IsClose(Vec3(1.001f, 2.001f, 3.001f), 1.0e-4f));
  118. CHECK(!Vec3(1, 2, 3).IsClose(Vec3(1.001f, 2.001f, 3.001f), 1.0e-6f));
  119. CHECK(Vec3(1.001f, 0, 0).IsNormalized(1.0e-2f));
  120. CHECK(!Vec3(0, 1.001f, 0).IsNormalized(1.0e-4f));
  121. CHECK(Vec3(-1.0e-7f, 1.0e-7f, 1.0e-8f).IsNearZero());
  122. CHECK(!Vec3(-1.0e-7f, 1.0e-7f, -1.0e-5f).IsNearZero());
  123. }
  124. TEST_CASE("TestVec3Operators")
  125. {
  126. CHECK(-Vec3(1, 2, 3) == Vec3(-1, -2, -3));
  127. CHECK(Vec3(1, 2, 3) + Vec3(4, 5, 6) == Vec3(5, 7, 9));
  128. CHECK(Vec3(1, 2, 3) - Vec3(6, 5, 4) == Vec3(-5, -3, -1));
  129. CHECK(Vec3(1, 2, 3) * Vec3(4, 5, 6) == Vec3(4, 10, 18));
  130. CHECK(Vec3(1, 2, 3) * 2 == Vec3(2, 4, 6));
  131. CHECK(4 * Vec3(1, 2, 3) == Vec3(4, 8, 12));
  132. CHECK(Vec3(1, 2, 3) / 2 == Vec3(0.5f, 1.0f, 1.5f));
  133. CHECK(Vec3(1, 2, 3) / Vec3(2, 8, 24) == Vec3(0.5f, 0.25f, 0.125f));
  134. Vec3 v = Vec3(1, 2, 3);
  135. v *= Vec3(4, 5, 6);
  136. CHECK(v == Vec3(4, 10, 18));
  137. v *= 2;
  138. CHECK(v == Vec3(8, 20, 36));
  139. v /= 2;
  140. CHECK(v == Vec3(4, 10, 18));
  141. v += Vec3(1, 2, 3);
  142. CHECK(v == Vec3(5, 12, 21));
  143. v -= Vec3(1, 2, 3);
  144. CHECK(v == Vec3(4, 10, 18));
  145. CHECK(Vec3(2, 4, 8).Reciprocal() == Vec3(0.5f, 0.25f, 0.125f));
  146. }
  147. TEST_CASE("TestVec3Swizzle")
  148. {
  149. Vec3 v(1, 2, 3);
  150. CHECK(v.SplatX() == Vec4::sReplicate(1));
  151. CHECK(v.SplatY() == Vec4::sReplicate(2));
  152. CHECK(v.SplatZ() == Vec4::sReplicate(3));
  153. CHECK(v.Swizzle<SWIZZLE_X, SWIZZLE_X, SWIZZLE_X>() == Vec3(1, 1, 1));
  154. CHECK(v.Swizzle<SWIZZLE_X, SWIZZLE_X, SWIZZLE_Y>() == Vec3(1, 1, 2));
  155. CHECK(v.Swizzle<SWIZZLE_X, SWIZZLE_X, SWIZZLE_Z>() == Vec3(1, 1, 3));
  156. CHECK(v.Swizzle<SWIZZLE_X, SWIZZLE_Y, SWIZZLE_X>() == Vec3(1, 2, 1));
  157. CHECK(v.Swizzle<SWIZZLE_X, SWIZZLE_Y, SWIZZLE_Y>() == Vec3(1, 2, 2));
  158. CHECK(v.Swizzle<SWIZZLE_X, SWIZZLE_Y, SWIZZLE_Z>() == Vec3(1, 2, 3));
  159. CHECK(v.Swizzle<SWIZZLE_X, SWIZZLE_Z, SWIZZLE_X>() == Vec3(1, 3, 1));
  160. CHECK(v.Swizzle<SWIZZLE_X, SWIZZLE_Z, SWIZZLE_Y>() == Vec3(1, 3, 2));
  161. CHECK(v.Swizzle<SWIZZLE_X, SWIZZLE_Z, SWIZZLE_Z>() == Vec3(1, 3, 3));
  162. CHECK(v.Swizzle<SWIZZLE_Y, SWIZZLE_X, SWIZZLE_X>() == Vec3(2, 1, 1));
  163. CHECK(v.Swizzle<SWIZZLE_Y, SWIZZLE_X, SWIZZLE_Y>() == Vec3(2, 1, 2));
  164. CHECK(v.Swizzle<SWIZZLE_Y, SWIZZLE_X, SWIZZLE_Z>() == Vec3(2, 1, 3));
  165. CHECK(v.Swizzle<SWIZZLE_Y, SWIZZLE_Y, SWIZZLE_X>() == Vec3(2, 2, 1));
  166. CHECK(v.Swizzle<SWIZZLE_Y, SWIZZLE_Y, SWIZZLE_Y>() == Vec3(2, 2, 2));
  167. CHECK(v.Swizzle<SWIZZLE_Y, SWIZZLE_Y, SWIZZLE_Z>() == Vec3(2, 2, 3));
  168. CHECK(v.Swizzle<SWIZZLE_Y, SWIZZLE_Z, SWIZZLE_X>() == Vec3(2, 3, 1));
  169. CHECK(v.Swizzle<SWIZZLE_Y, SWIZZLE_Z, SWIZZLE_Y>() == Vec3(2, 3, 2));
  170. CHECK(v.Swizzle<SWIZZLE_Y, SWIZZLE_Z, SWIZZLE_Z>() == Vec3(2, 3, 3));
  171. CHECK(v.Swizzle<SWIZZLE_Z, SWIZZLE_X, SWIZZLE_X>() == Vec3(3, 1, 1));
  172. CHECK(v.Swizzle<SWIZZLE_Z, SWIZZLE_X, SWIZZLE_Y>() == Vec3(3, 1, 2));
  173. CHECK(v.Swizzle<SWIZZLE_Z, SWIZZLE_X, SWIZZLE_Z>() == Vec3(3, 1, 3));
  174. CHECK(v.Swizzle<SWIZZLE_Z, SWIZZLE_Y, SWIZZLE_X>() == Vec3(3, 2, 1));
  175. CHECK(v.Swizzle<SWIZZLE_Z, SWIZZLE_Y, SWIZZLE_Y>() == Vec3(3, 2, 2));
  176. CHECK(v.Swizzle<SWIZZLE_Z, SWIZZLE_Y, SWIZZLE_Z>() == Vec3(3, 2, 3));
  177. CHECK(v.Swizzle<SWIZZLE_Z, SWIZZLE_Z, SWIZZLE_X>() == Vec3(3, 3, 1));
  178. CHECK(v.Swizzle<SWIZZLE_Z, SWIZZLE_Z, SWIZZLE_Y>() == Vec3(3, 3, 2));
  179. CHECK(v.Swizzle<SWIZZLE_Z, SWIZZLE_Z, SWIZZLE_Z>() == Vec3(3, 3, 3));
  180. }
  181. TEST_CASE("TestVec3Abs")
  182. {
  183. CHECK(Vec3(1, -2, 3).Abs() == Vec3(1, 2, 3));
  184. CHECK(Vec3(-1, 2, -3).Abs() == Vec3(1, 2, 3));
  185. }
  186. TEST_CASE("TestVec3Dot")
  187. {
  188. CHECK(Vec3(1, 2, 3).Dot(Vec3(4, 5, 6)) == float(1 * 4 + 2 * 5 + 3 * 6));
  189. CHECK(Vec3(1, 2, 3).DotV(Vec3(4, 5, 6)) == Vec3::sReplicate(1 * 4 + 2 * 5 + 3 * 6));
  190. CHECK(Vec3(1, 2, 3).DotV4(Vec3(4, 5, 6)) == Vec4::sReplicate(1 * 4 + 2 * 5 + 3 * 6));
  191. }
  192. TEST_CASE("TestVec3Length")
  193. {
  194. CHECK(Vec3(1, 2, 3).LengthSq() == float(1 + 4 + 9));
  195. CHECK(Vec3(1, 2, 3).Length() == sqrt(float(1 + 4 + 9)));
  196. }
  197. TEST_CASE("TestVec3Sqrt")
  198. {
  199. CHECK_APPROX_EQUAL(Vec3(13, 15, 17).Sqrt(), Vec3(sqrt(13.0f), sqrt(15.0f), sqrt(17.0f)));
  200. }
  201. TEST_CASE("TestVec3Cross")
  202. {
  203. CHECK(Vec3(1, 0, 0).Cross(Vec3(0, 1, 0)) == Vec3(0, 0, 1));
  204. CHECK(Vec3(0, 1, 0).Cross(Vec3(1, 0, 0)) == Vec3(0, 0, -1));
  205. CHECK(Vec3(0, 1, 0).Cross(Vec3(0, 0, 1)) == Vec3(1, 0, 0));
  206. CHECK(Vec3(0, 0, 1).Cross(Vec3(0, 1, 0)) == Vec3(-1, 0, 0));
  207. CHECK(Vec3(0, 0, 1).Cross(Vec3(1, 0, 0)) == Vec3(0, 1, 0));
  208. CHECK(Vec3(1, 0, 0).Cross(Vec3(0, 0, 1)) == Vec3(0, -1, 0));
  209. }
  210. TEST_CASE("TestVec3Normalize")
  211. {
  212. CHECK(Vec3(3, 2, 1).Normalized() == Vec3(3, 2, 1) / sqrt(9.0f + 4.0f + 1.0f));
  213. CHECK(Vec3(3, 2, 1).NormalizedOr(Vec3(1, 2, 3)) == Vec3(3, 2, 1) / sqrt(9.0f + 4.0f + 1.0f));
  214. CHECK(Vec3::sZero().NormalizedOr(Vec3(1, 2, 3)) == Vec3(1, 2, 3));
  215. }
  216. TEST_CASE("TestVec3Cast")
  217. {
  218. CHECK(UVec4::sEquals(Vec3(1, 2, 3).ToInt(), UVec4(1, 2, 3, 0)).TestAllXYZTrue());
  219. CHECK(UVec4::sEquals(Vec3(1, 2, 3).ReinterpretAsInt(), UVec4(0x3f800000U, 0x40000000U, 0x40400000U, 0)).TestAllXYZTrue());
  220. }
  221. TEST_CASE("TestVec3NormalizedPerpendicular")
  222. {
  223. UnitTestRandom random;
  224. uniform_real_distribution<float> one_to_ten(1.0f, 10.0f);
  225. for (int i = 0; i < 100; ++i)
  226. {
  227. Vec3 v = Vec3::sRandom(random);
  228. CHECK(v.IsNormalized());
  229. v *= one_to_ten(random);
  230. Vec3 p = v.GetNormalizedPerpendicular();
  231. CHECK(p.IsNormalized());
  232. CHECK(abs(v.Dot(p)) < 1.0e-6f);
  233. }
  234. }
  235. TEST_CASE("TestVec3Sign")
  236. {
  237. CHECK(Vec3(1.2345f, -6.7891f, 0).GetSign() == Vec3(1, -1, 1));
  238. CHECK(Vec3(0, 2.3456f, -7.8912f).GetSign() == Vec3(1, 1, -1));
  239. }
  240. #ifdef JPH_FLOATING_POINT_EXCEPTIONS_ENABLED
  241. TEST_CASE("TestVec3SyncW")
  242. {
  243. {
  244. // Check that W equals Z
  245. Vec3 v(1, 2, 3);
  246. CHECK(Vec4(v) == Vec4(1, 2, 3, 3));
  247. }
  248. {
  249. // Check that setting individual components syncs W and Z
  250. Vec3 v;
  251. v.SetComponent(2, 3);
  252. v.SetComponent(1, 2);
  253. v.SetComponent(0, 1);
  254. CHECK(v == Vec3(1, 2, 3));
  255. CHECK(Vec4(v) == Vec4(1, 2, 3, 3));
  256. }
  257. {
  258. // Check that W and Z are still synced after a simple addition
  259. CHECK(Vec4(Vec3(1, 2, 3) + Vec3(4, 5, 6)) == Vec4(5, 7, 9, 9));
  260. }
  261. {
  262. // Test that casting a Vec4 to Vec3 syncs W and Z
  263. CHECK(Vec4(Vec3(Vec4(1, 2, 3, 4))) == Vec4(1, 2, 3, 3));
  264. }
  265. {
  266. // Test that loading from Float3 syncs W and Z
  267. CHECK(Vec4(Vec3(Float3(1, 2, 3))) == Vec4(1, 2, 3, 3));
  268. }
  269. {
  270. // Test that loading unsafe from Float3 syncs W and Z
  271. Float4 v(1, 2, 3, 4);
  272. CHECK(Vec4(Vec3::sLoadFloat3Unsafe(*(Float3 *)&v)) == Vec4(1, 2, 3, 3));
  273. }
  274. {
  275. // Test swizzle syncs W and Z
  276. CHECK(Vec4(Vec3(1, 2, 3).Swizzle<SWIZZLE_Z, SWIZZLE_Y, SWIZZLE_X>()) == Vec4(3, 2, 1, 1));
  277. }
  278. {
  279. // Test cross product syncs W and Z
  280. CHECK(Vec4(Vec3(1, 0, 0).Cross(Vec3(0, 1, 0))) == Vec4(0, 0, 1, 1));
  281. CHECK(Vec4(Vec3(0, 1, 0).Cross(Vec3(0, 0, 1))) == Vec4(1, 0, 0, 0));
  282. }
  283. }
  284. #endif // JPH_FLOATING_POINT_EXCEPTIONS_ENABLED
  285. }