CpuTest32.cs 19 KB

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  1. using ARMeilleure.Memory;
  2. using ARMeilleure.State;
  3. using ARMeilleure.Translation;
  4. using NUnit.Framework;
  5. using Ryujinx.Tests.Unicorn;
  6. using System;
  7. using System.Runtime.InteropServices;
  8. namespace Ryujinx.Tests.Cpu
  9. {
  10. [TestFixture]
  11. public class CpuTest32
  12. {
  13. private uint _currAddress;
  14. private long _size;
  15. private uint _entryPoint;
  16. private IntPtr _ramPointer;
  17. private MemoryManager _memory;
  18. private ExecutionContext _context;
  19. private Translator _translator;
  20. private static bool _unicornAvailable;
  21. private UnicornAArch32 _unicornEmu;
  22. private bool usingMemory;
  23. static CpuTest32()
  24. {
  25. _unicornAvailable = UnicornAArch32.IsAvailable();
  26. if (!_unicornAvailable)
  27. {
  28. Console.WriteLine("WARNING: Could not find Unicorn.");
  29. }
  30. }
  31. [SetUp]
  32. public void Setup()
  33. {
  34. _currAddress = 0x1000;
  35. _size = 0x1000;
  36. _entryPoint = _currAddress;
  37. _ramPointer = Marshal.AllocHGlobal(new IntPtr(_size * 2));
  38. _memory = new MemoryManager(_ramPointer, addressSpaceBits: 16, useFlatPageTable: true);
  39. _memory.Map((long)_currAddress, 0, _size*2);
  40. _context = new ExecutionContext();
  41. _context.IsAarch32 = true;
  42. _translator = new Translator(_memory);
  43. if (_unicornAvailable)
  44. {
  45. _unicornEmu = new UnicornAArch32();
  46. _unicornEmu.MemoryMap(_currAddress, (ulong)_size, MemoryPermission.READ | MemoryPermission.EXEC);
  47. _unicornEmu.MemoryMap((ulong)(_currAddress + _size), (ulong)_size, MemoryPermission.READ | MemoryPermission.WRITE);
  48. _unicornEmu.PC = _entryPoint;
  49. }
  50. }
  51. [TearDown]
  52. public void Teardown()
  53. {
  54. Marshal.FreeHGlobal(_ramPointer);
  55. _memory = null;
  56. _context = null;
  57. _translator = null;
  58. _unicornEmu = null;
  59. }
  60. protected void Reset()
  61. {
  62. Teardown();
  63. Setup();
  64. }
  65. protected void Opcode(uint opcode)
  66. {
  67. _memory.WriteUInt32((long)_currAddress, opcode);
  68. if (_unicornAvailable)
  69. {
  70. _unicornEmu.MemoryWrite32((ulong)_currAddress, opcode);
  71. }
  72. _currAddress += 4;
  73. }
  74. protected ExecutionContext GetContext() => _context;
  75. protected void SetContext(uint r0 = 0,
  76. uint r1 = 0,
  77. uint r2 = 0,
  78. uint r3 = 0,
  79. uint sp = 0,
  80. V128 v0 = default,
  81. V128 v1 = default,
  82. V128 v2 = default,
  83. V128 v3 = default,
  84. V128 v4 = default,
  85. V128 v5 = default,
  86. V128 v14 = default,
  87. V128 v15 = default,
  88. bool overflow = false,
  89. bool carry = false,
  90. bool zero = false,
  91. bool negative = false,
  92. int fpscr = 0)
  93. {
  94. _context.SetX(0, r0);
  95. _context.SetX(1, r1);
  96. _context.SetX(2, r2);
  97. _context.SetX(3, r3);
  98. _context.SetX(0xd, sp);
  99. _context.SetV(0, v0);
  100. _context.SetV(1, v1);
  101. _context.SetV(2, v2);
  102. _context.SetV(3, v3);
  103. _context.SetV(4, v4);
  104. _context.SetV(5, v5);
  105. _context.SetV(14, v14);
  106. _context.SetV(15, v15);
  107. _context.SetPstateFlag(PState.VFlag, overflow);
  108. _context.SetPstateFlag(PState.CFlag, carry);
  109. _context.SetPstateFlag(PState.ZFlag, zero);
  110. _context.SetPstateFlag(PState.NFlag, negative);
  111. _context.Fpsr = FPSR.A32Mask & (FPSR)fpscr;
  112. _context.Fpcr = FPCR.A32Mask & (FPCR)fpscr;
  113. if (_unicornAvailable)
  114. {
  115. _unicornEmu.R[0] = r0;
  116. _unicornEmu.R[1] = r1;
  117. _unicornEmu.R[2] = r2;
  118. _unicornEmu.R[3] = r3;
  119. _unicornEmu.SP = sp;
  120. _unicornEmu.Q[0] = V128ToSimdValue(v0);
  121. _unicornEmu.Q[1] = V128ToSimdValue(v1);
  122. _unicornEmu.Q[2] = V128ToSimdValue(v2);
  123. _unicornEmu.Q[3] = V128ToSimdValue(v3);
  124. _unicornEmu.Q[4] = V128ToSimdValue(v4);
  125. _unicornEmu.Q[5] = V128ToSimdValue(v5);
  126. _unicornEmu.Q[14] = V128ToSimdValue(v14);
  127. _unicornEmu.Q[15] = V128ToSimdValue(v15);
  128. _unicornEmu.OverflowFlag = overflow;
  129. _unicornEmu.CarryFlag = carry;
  130. _unicornEmu.ZeroFlag = zero;
  131. _unicornEmu.NegativeFlag = negative;
  132. _unicornEmu.Fpscr = fpscr;
  133. }
  134. }
  135. protected void ExecuteOpcodes()
  136. {
  137. _translator.Execute(_context, _entryPoint);
  138. if (_unicornAvailable)
  139. {
  140. _unicornEmu.RunForCount((ulong)(_currAddress - _entryPoint - 4) / 4);
  141. }
  142. }
  143. protected ExecutionContext SingleOpcode(uint opcode,
  144. uint r0 = 0,
  145. uint r1 = 0,
  146. uint r2 = 0,
  147. uint r3 = 0,
  148. uint sp = 0,
  149. V128 v0 = default,
  150. V128 v1 = default,
  151. V128 v2 = default,
  152. V128 v3 = default,
  153. V128 v4 = default,
  154. V128 v5 = default,
  155. V128 v14 = default,
  156. V128 v15 = default,
  157. bool overflow = false,
  158. bool carry = false,
  159. bool zero = false,
  160. bool negative = false,
  161. int fpscr = 0,
  162. bool copyFpFlags = false)
  163. {
  164. Opcode(opcode);
  165. if (copyFpFlags)
  166. {
  167. Opcode(0xeef1fa10);
  168. }
  169. Opcode(0xe12fff1e); // BX LR
  170. SetContext(r0, r1, r2, r3, sp, v0, v1, v2, v3, v4, v5, v14, v15, overflow, carry, zero, negative, fpscr);
  171. ExecuteOpcodes();
  172. return GetContext();
  173. }
  174. protected void SetWorkingMemory(byte[] data)
  175. {
  176. _memory.WriteBytes(0x2000, data);
  177. if (_unicornAvailable)
  178. {
  179. _unicornEmu.MemoryWrite((ulong)(0x2000), data);
  180. }
  181. usingMemory = true; // When true, CompareAgainstUnicorn checks the working memory for equality too.
  182. }
  183. /// <summary>Rounding Mode control field.</summary>
  184. public enum RMode
  185. {
  186. /// <summary>Round to Nearest mode.</summary>
  187. Rn,
  188. /// <summary>Round towards Plus Infinity mode.</summary>
  189. Rp,
  190. /// <summary>Round towards Minus Infinity mode.</summary>
  191. Rm,
  192. /// <summary>Round towards Zero mode.</summary>
  193. Rz
  194. };
  195. /// <summary>Floating-point Control Register.</summary>
  196. protected enum Fpcr
  197. {
  198. /// <summary>Rounding Mode control field.</summary>
  199. RMode = 22,
  200. /// <summary>Flush-to-zero mode control bit.</summary>
  201. Fz = 24,
  202. /// <summary>Default NaN mode control bit.</summary>
  203. Dn = 25,
  204. /// <summary>Alternative half-precision control bit.</summary>
  205. Ahp = 26
  206. }
  207. /// <summary>Floating-point Status Register.</summary>
  208. [Flags]
  209. protected enum Fpsr
  210. {
  211. None = 0,
  212. /// <summary>Invalid Operation cumulative floating-point exception bit.</summary>
  213. Ioc = 1 << 0,
  214. /// <summary>Divide by Zero cumulative floating-point exception bit.</summary>
  215. Dzc = 1 << 1,
  216. /// <summary>Overflow cumulative floating-point exception bit.</summary>
  217. Ofc = 1 << 2,
  218. /// <summary>Underflow cumulative floating-point exception bit.</summary>
  219. Ufc = 1 << 3,
  220. /// <summary>Inexact cumulative floating-point exception bit.</summary>
  221. Ixc = 1 << 4,
  222. /// <summary>Input Denormal cumulative floating-point exception bit.</summary>
  223. Idc = 1 << 7,
  224. /// <summary>Cumulative saturation bit.</summary>
  225. Qc = 1 << 27,
  226. /// <summary>NZCV flags</summary>
  227. Nzcv = (1 << 28) | (1 << 29) | (1 << 30) | (1 << 31)
  228. }
  229. [Flags]
  230. protected enum FpSkips
  231. {
  232. None = 0,
  233. IfNaNS = 1,
  234. IfNaND = 2,
  235. IfUnderflow = 4,
  236. IfOverflow = 8
  237. }
  238. protected enum FpTolerances
  239. {
  240. None,
  241. UpToOneUlpsS,
  242. UpToOneUlpsD
  243. }
  244. protected void CompareAgainstUnicorn(
  245. Fpsr fpsrMask = Fpsr.None,
  246. FpSkips fpSkips = FpSkips.None,
  247. FpTolerances fpTolerances = FpTolerances.None)
  248. {
  249. if (!_unicornAvailable)
  250. {
  251. return;
  252. }
  253. if (fpSkips != FpSkips.None)
  254. {
  255. ManageFpSkips(fpSkips);
  256. }
  257. Assert.That(_context.GetX(0), Is.EqualTo(_unicornEmu.R[0]));
  258. Assert.That(_context.GetX(1), Is.EqualTo(_unicornEmu.R[1]));
  259. Assert.That(_context.GetX(2), Is.EqualTo(_unicornEmu.R[2]));
  260. Assert.That(_context.GetX(3), Is.EqualTo(_unicornEmu.R[3]));
  261. Assert.That(_context.GetX(4), Is.EqualTo(_unicornEmu.R[4]));
  262. Assert.That(_context.GetX(5), Is.EqualTo(_unicornEmu.R[5]));
  263. Assert.That(_context.GetX(6), Is.EqualTo(_unicornEmu.R[6]));
  264. Assert.That(_context.GetX(7), Is.EqualTo(_unicornEmu.R[7]));
  265. Assert.That(_context.GetX(8), Is.EqualTo(_unicornEmu.R[8]));
  266. Assert.That(_context.GetX(9), Is.EqualTo(_unicornEmu.R[9]));
  267. Assert.That(_context.GetX(10), Is.EqualTo(_unicornEmu.R[10]));
  268. Assert.That(_context.GetX(11), Is.EqualTo(_unicornEmu.R[11]));
  269. Assert.That(_context.GetX(12), Is.EqualTo(_unicornEmu.R[12]));
  270. Assert.That(_context.GetX(13), Is.EqualTo(_unicornEmu.R[13]));
  271. Assert.That(_context.GetX(14), Is.EqualTo(_unicornEmu.R[14]));
  272. if (fpTolerances == FpTolerances.None)
  273. {
  274. Assert.That(V128ToSimdValue(_context.GetV(0)), Is.EqualTo(_unicornEmu.Q[0]));
  275. }
  276. else
  277. {
  278. ManageFpTolerances(fpTolerances);
  279. }
  280. Assert.That(V128ToSimdValue(_context.GetV(1)), Is.EqualTo(_unicornEmu.Q[1]));
  281. Assert.That(V128ToSimdValue(_context.GetV(2)), Is.EqualTo(_unicornEmu.Q[2]));
  282. Assert.That(V128ToSimdValue(_context.GetV(3)), Is.EqualTo(_unicornEmu.Q[3]));
  283. Assert.That(V128ToSimdValue(_context.GetV(4)), Is.EqualTo(_unicornEmu.Q[4]));
  284. Assert.That(V128ToSimdValue(_context.GetV(5)), Is.EqualTo(_unicornEmu.Q[5]));
  285. Assert.That(V128ToSimdValue(_context.GetV(6)), Is.EqualTo(_unicornEmu.Q[6]));
  286. Assert.That(V128ToSimdValue(_context.GetV(7)), Is.EqualTo(_unicornEmu.Q[7]));
  287. Assert.That(V128ToSimdValue(_context.GetV(8)), Is.EqualTo(_unicornEmu.Q[8]));
  288. Assert.That(V128ToSimdValue(_context.GetV(9)), Is.EqualTo(_unicornEmu.Q[9]));
  289. Assert.That(V128ToSimdValue(_context.GetV(10)), Is.EqualTo(_unicornEmu.Q[10]));
  290. Assert.That(V128ToSimdValue(_context.GetV(11)), Is.EqualTo(_unicornEmu.Q[11]));
  291. Assert.That(V128ToSimdValue(_context.GetV(12)), Is.EqualTo(_unicornEmu.Q[12]));
  292. Assert.That(V128ToSimdValue(_context.GetV(13)), Is.EqualTo(_unicornEmu.Q[13]));
  293. Assert.That(V128ToSimdValue(_context.GetV(14)), Is.EqualTo(_unicornEmu.Q[14]));
  294. Assert.That(V128ToSimdValue(_context.GetV(15)), Is.EqualTo(_unicornEmu.Q[15]));
  295. Assert.That((int)_context.Fpcr | ((int)_context.Fpsr & (int)fpsrMask), Is.EqualTo(_unicornEmu.Fpscr));
  296. Assert.That(_context.GetPstateFlag(PState.QFlag), Is.EqualTo(_unicornEmu.QFlag));
  297. Assert.That(_context.GetPstateFlag(PState.VFlag), Is.EqualTo(_unicornEmu.OverflowFlag));
  298. Assert.That(_context.GetPstateFlag(PState.CFlag), Is.EqualTo(_unicornEmu.CarryFlag));
  299. Assert.That(_context.GetPstateFlag(PState.ZFlag), Is.EqualTo(_unicornEmu.ZeroFlag));
  300. Assert.That(_context.GetPstateFlag(PState.NFlag), Is.EqualTo(_unicornEmu.NegativeFlag));
  301. if (usingMemory)
  302. {
  303. byte[] meilleureMem = _memory.ReadBytes((long)(0x2000), _size);
  304. byte[] unicornMem = _unicornEmu.MemoryRead((ulong)(0x2000), (ulong)_size);
  305. for (int i = 0; i < _size; i++)
  306. {
  307. Assert.AreEqual(meilleureMem[i], unicornMem[i]);
  308. }
  309. }
  310. }
  311. private void ManageFpSkips(FpSkips fpSkips)
  312. {
  313. if (fpSkips.HasFlag(FpSkips.IfNaNS))
  314. {
  315. if (float.IsNaN(_unicornEmu.Q[0].AsFloat()))
  316. {
  317. Assert.Ignore("NaN test.");
  318. }
  319. }
  320. else if (fpSkips.HasFlag(FpSkips.IfNaND))
  321. {
  322. if (double.IsNaN(_unicornEmu.Q[0].AsDouble()))
  323. {
  324. Assert.Ignore("NaN test.");
  325. }
  326. }
  327. if (fpSkips.HasFlag(FpSkips.IfUnderflow))
  328. {
  329. if ((_unicornEmu.Fpscr & (int)Fpsr.Ufc) != 0)
  330. {
  331. Assert.Ignore("Underflow test.");
  332. }
  333. }
  334. if (fpSkips.HasFlag(FpSkips.IfOverflow))
  335. {
  336. if ((_unicornEmu.Fpscr & (int)Fpsr.Ofc) != 0)
  337. {
  338. Assert.Ignore("Overflow test.");
  339. }
  340. }
  341. }
  342. private void ManageFpTolerances(FpTolerances fpTolerances)
  343. {
  344. bool IsNormalOrSubnormalS(float f) => float.IsNormal(f) || float.IsSubnormal(f);
  345. bool IsNormalOrSubnormalD(double d) => double.IsNormal(d) || double.IsSubnormal(d);
  346. if (!Is.EqualTo(_unicornEmu.Q[0]).ApplyTo(V128ToSimdValue(_context.GetV(0))).IsSuccess)
  347. {
  348. if (fpTolerances == FpTolerances.UpToOneUlpsS)
  349. {
  350. if (IsNormalOrSubnormalS(_unicornEmu.Q[0].AsFloat()) &&
  351. IsNormalOrSubnormalS(_context.GetV(0).AsFloat()))
  352. {
  353. Assert.That(_context.GetV(0).GetFloat(0),
  354. Is.EqualTo(_unicornEmu.Q[0].GetFloat(0)).Within(1).Ulps);
  355. Assert.That(_context.GetV(0).GetFloat(1),
  356. Is.EqualTo(_unicornEmu.Q[0].GetFloat(1)).Within(1).Ulps);
  357. Assert.That(_context.GetV(0).GetFloat(2),
  358. Is.EqualTo(_unicornEmu.Q[0].GetFloat(2)).Within(1).Ulps);
  359. Assert.That(_context.GetV(0).GetFloat(3),
  360. Is.EqualTo(_unicornEmu.Q[0].GetFloat(3)).Within(1).Ulps);
  361. Console.WriteLine(fpTolerances);
  362. }
  363. else
  364. {
  365. Assert.That(V128ToSimdValue(_context.GetV(0)), Is.EqualTo(_unicornEmu.Q[0]));
  366. }
  367. }
  368. if (fpTolerances == FpTolerances.UpToOneUlpsD)
  369. {
  370. if (IsNormalOrSubnormalD(_unicornEmu.Q[0].AsDouble()) &&
  371. IsNormalOrSubnormalD(_context.GetV(0).AsDouble()))
  372. {
  373. Assert.That(_context.GetV(0).GetDouble(0),
  374. Is.EqualTo(_unicornEmu.Q[0].GetDouble(0)).Within(1).Ulps);
  375. Assert.That(_context.GetV(0).GetDouble(1),
  376. Is.EqualTo(_unicornEmu.Q[0].GetDouble(1)).Within(1).Ulps);
  377. Console.WriteLine(fpTolerances);
  378. }
  379. else
  380. {
  381. Assert.That(V128ToSimdValue(_context.GetV(0)), Is.EqualTo(_unicornEmu.Q[0]));
  382. }
  383. }
  384. }
  385. }
  386. private static SimdValue V128ToSimdValue(V128 value)
  387. {
  388. return new SimdValue(value.GetUInt64(0), value.GetUInt64(1));
  389. }
  390. protected static V128 MakeVectorScalar(float value) => new V128(value);
  391. protected static V128 MakeVectorScalar(double value) => new V128(value);
  392. protected static V128 MakeVectorE0(ulong e0) => new V128(e0, 0);
  393. protected static V128 MakeVectorE1(ulong e1) => new V128(0, e1);
  394. protected static V128 MakeVectorE0E1(ulong e0, ulong e1) => new V128(e0, e1);
  395. protected static ulong GetVectorE0(V128 vector) => vector.GetUInt64(0);
  396. protected static ulong GetVectorE1(V128 vector) => vector.GetUInt64(1);
  397. protected static ushort GenNormalH()
  398. {
  399. uint rnd;
  400. do rnd = TestContext.CurrentContext.Random.NextUShort();
  401. while ((rnd & 0x7C00u) == 0u ||
  402. (~rnd & 0x7C00u) == 0u);
  403. return (ushort)rnd;
  404. }
  405. protected static ushort GenSubnormalH()
  406. {
  407. uint rnd;
  408. do rnd = TestContext.CurrentContext.Random.NextUShort();
  409. while ((rnd & 0x03FFu) == 0u);
  410. return (ushort)(rnd & 0x83FFu);
  411. }
  412. protected static uint GenNormalS()
  413. {
  414. uint rnd;
  415. do rnd = TestContext.CurrentContext.Random.NextUInt();
  416. while ((rnd & 0x7F800000u) == 0u ||
  417. (~rnd & 0x7F800000u) == 0u);
  418. return rnd;
  419. }
  420. protected static uint GenSubnormalS()
  421. {
  422. uint rnd;
  423. do rnd = TestContext.CurrentContext.Random.NextUInt();
  424. while ((rnd & 0x007FFFFFu) == 0u);
  425. return rnd & 0x807FFFFFu;
  426. }
  427. protected static ulong GenNormalD()
  428. {
  429. ulong rnd;
  430. do rnd = TestContext.CurrentContext.Random.NextULong();
  431. while ((rnd & 0x7FF0000000000000ul) == 0ul ||
  432. (~rnd & 0x7FF0000000000000ul) == 0ul);
  433. return rnd;
  434. }
  435. protected static ulong GenSubnormalD()
  436. {
  437. ulong rnd;
  438. do rnd = TestContext.CurrentContext.Random.NextULong();
  439. while ((rnd & 0x000FFFFFFFFFFFFFul) == 0ul);
  440. return rnd & 0x800FFFFFFFFFFFFFul;
  441. }
  442. }
  443. }