KProcess.cs 34 KB

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  1. using ARMeilleure.State;
  2. using Ryujinx.Common;
  3. using Ryujinx.Cpu;
  4. using Ryujinx.HLE.Exceptions;
  5. using Ryujinx.HLE.HOS.Kernel.Common;
  6. using Ryujinx.HLE.HOS.Kernel.Memory;
  7. using Ryujinx.HLE.HOS.Kernel.Threading;
  8. using System;
  9. using System.Collections.Generic;
  10. using System.Linq;
  11. using System.Threading;
  12. namespace Ryujinx.HLE.HOS.Kernel.Process
  13. {
  14. class KProcess : KSynchronizationObject
  15. {
  16. public const int KernelVersionMajor = 10;
  17. public const int KernelVersionMinor = 4;
  18. public const int KernelVersionRevision = 0;
  19. public const int KernelVersionPacked =
  20. (KernelVersionMajor << 19) |
  21. (KernelVersionMinor << 15) |
  22. (KernelVersionRevision << 0);
  23. public KMemoryManager MemoryManager { get; private set; }
  24. private SortedDictionary<ulong, KTlsPageInfo> _fullTlsPages;
  25. private SortedDictionary<ulong, KTlsPageInfo> _freeTlsPages;
  26. public int DefaultCpuCore { get; set; }
  27. public bool Debug { get; private set; }
  28. public KResourceLimit ResourceLimit { get; private set; }
  29. public ulong PersonalMmHeapPagesCount { get; private set; }
  30. public ProcessState State { get; private set; }
  31. private object _processLock;
  32. private object _threadingLock;
  33. public KAddressArbiter AddressArbiter { get; private set; }
  34. public long[] RandomEntropy { get; private set; }
  35. private bool _signaled;
  36. private bool _useSystemMemBlocks;
  37. public string Name { get; private set; }
  38. private int _threadCount;
  39. public int MmuFlags { get; private set; }
  40. private MemoryRegion _memRegion;
  41. public KProcessCapabilities Capabilities { get; private set; }
  42. public ulong TitleId { get; private set; }
  43. public long Pid { get; private set; }
  44. private long _creationTimestamp;
  45. private ulong _entrypoint;
  46. private ulong _imageSize;
  47. private ulong _mainThreadStackSize;
  48. private ulong _memoryUsageCapacity;
  49. private int _version;
  50. public KHandleTable HandleTable { get; private set; }
  51. public ulong UserExceptionContextAddress { get; private set; }
  52. private LinkedList<KThread> _threads;
  53. public bool IsPaused { get; private set; }
  54. public MemoryManager CpuMemory { get; private set; }
  55. public CpuContext CpuContext { get; private set; }
  56. public HleProcessDebugger Debugger { get; private set; }
  57. public KProcess(KernelContext context) : base(context)
  58. {
  59. _processLock = new object();
  60. _threadingLock = new object();
  61. AddressArbiter = new KAddressArbiter(context);
  62. _fullTlsPages = new SortedDictionary<ulong, KTlsPageInfo>();
  63. _freeTlsPages = new SortedDictionary<ulong, KTlsPageInfo>();
  64. Capabilities = new KProcessCapabilities();
  65. RandomEntropy = new long[KScheduler.CpuCoresCount];
  66. _threads = new LinkedList<KThread>();
  67. Debugger = new HleProcessDebugger(this);
  68. }
  69. public KernelResult InitializeKip(
  70. ProcessCreationInfo creationInfo,
  71. int[] caps,
  72. KPageList pageList,
  73. KResourceLimit resourceLimit,
  74. MemoryRegion memRegion)
  75. {
  76. ResourceLimit = resourceLimit;
  77. _memRegion = memRegion;
  78. AddressSpaceType addrSpaceType = (AddressSpaceType)((creationInfo.MmuFlags >> 1) & 7);
  79. InitializeMemoryManager(addrSpaceType, memRegion);
  80. bool aslrEnabled = ((creationInfo.MmuFlags >> 5) & 1) != 0;
  81. ulong codeAddress = creationInfo.CodeAddress;
  82. ulong codeSize = (ulong)creationInfo.CodePagesCount * KMemoryManager.PageSize;
  83. KMemoryBlockAllocator memoryBlockAllocator = (MmuFlags & 0x40) != 0
  84. ? KernelContext.LargeMemoryBlockAllocator
  85. : KernelContext.SmallMemoryBlockAllocator;
  86. KernelResult result = MemoryManager.InitializeForProcess(
  87. addrSpaceType,
  88. aslrEnabled,
  89. !aslrEnabled,
  90. memRegion,
  91. codeAddress,
  92. codeSize,
  93. memoryBlockAllocator);
  94. if (result != KernelResult.Success)
  95. {
  96. return result;
  97. }
  98. if (!ValidateCodeAddressAndSize(codeAddress, codeSize))
  99. {
  100. return KernelResult.InvalidMemRange;
  101. }
  102. result = MemoryManager.MapPages(
  103. codeAddress,
  104. pageList,
  105. MemoryState.CodeStatic,
  106. MemoryPermission.None);
  107. if (result != KernelResult.Success)
  108. {
  109. return result;
  110. }
  111. result = Capabilities.InitializeForKernel(caps, MemoryManager);
  112. if (result != KernelResult.Success)
  113. {
  114. return result;
  115. }
  116. Pid = KernelContext.NewKipId();
  117. if (Pid == 0 || (ulong)Pid >= KernelConstants.InitialProcessId)
  118. {
  119. throw new InvalidOperationException($"Invalid KIP Id {Pid}.");
  120. }
  121. result = ParseProcessInfo(creationInfo);
  122. return result;
  123. }
  124. public KernelResult Initialize(
  125. ProcessCreationInfo creationInfo,
  126. int[] caps,
  127. KResourceLimit resourceLimit,
  128. MemoryRegion memRegion)
  129. {
  130. ResourceLimit = resourceLimit;
  131. _memRegion = memRegion;
  132. ulong personalMmHeapSize = GetPersonalMmHeapSize((ulong)creationInfo.PersonalMmHeapPagesCount, memRegion);
  133. ulong codePagesCount = (ulong)creationInfo.CodePagesCount;
  134. ulong neededSizeForProcess = personalMmHeapSize + codePagesCount * KMemoryManager.PageSize;
  135. if (neededSizeForProcess != 0 && resourceLimit != null)
  136. {
  137. if (!resourceLimit.Reserve(LimitableResource.Memory, neededSizeForProcess))
  138. {
  139. return KernelResult.ResLimitExceeded;
  140. }
  141. }
  142. void CleanUpForError()
  143. {
  144. if (neededSizeForProcess != 0 && resourceLimit != null)
  145. {
  146. resourceLimit.Release(LimitableResource.Memory, neededSizeForProcess);
  147. }
  148. }
  149. PersonalMmHeapPagesCount = (ulong)creationInfo.PersonalMmHeapPagesCount;
  150. KMemoryBlockAllocator memoryBlockAllocator;
  151. if (PersonalMmHeapPagesCount != 0)
  152. {
  153. memoryBlockAllocator = new KMemoryBlockAllocator(PersonalMmHeapPagesCount * KMemoryManager.PageSize);
  154. }
  155. else
  156. {
  157. memoryBlockAllocator = (MmuFlags & 0x40) != 0
  158. ? KernelContext.LargeMemoryBlockAllocator
  159. : KernelContext.SmallMemoryBlockAllocator;
  160. }
  161. AddressSpaceType addrSpaceType = (AddressSpaceType)((creationInfo.MmuFlags >> 1) & 7);
  162. InitializeMemoryManager(addrSpaceType, memRegion);
  163. bool aslrEnabled = ((creationInfo.MmuFlags >> 5) & 1) != 0;
  164. ulong codeAddress = creationInfo.CodeAddress;
  165. ulong codeSize = codePagesCount * KMemoryManager.PageSize;
  166. KernelResult result = MemoryManager.InitializeForProcess(
  167. addrSpaceType,
  168. aslrEnabled,
  169. !aslrEnabled,
  170. memRegion,
  171. codeAddress,
  172. codeSize,
  173. memoryBlockAllocator);
  174. if (result != KernelResult.Success)
  175. {
  176. CleanUpForError();
  177. return result;
  178. }
  179. if (!ValidateCodeAddressAndSize(codeAddress, codeSize))
  180. {
  181. CleanUpForError();
  182. return KernelResult.InvalidMemRange;
  183. }
  184. result = MemoryManager.MapNewProcessCode(
  185. codeAddress,
  186. codePagesCount,
  187. MemoryState.CodeStatic,
  188. MemoryPermission.None);
  189. if (result != KernelResult.Success)
  190. {
  191. CleanUpForError();
  192. return result;
  193. }
  194. result = Capabilities.InitializeForUser(caps, MemoryManager);
  195. if (result != KernelResult.Success)
  196. {
  197. CleanUpForError();
  198. return result;
  199. }
  200. Pid = KernelContext.NewProcessId();
  201. if (Pid == -1 || (ulong)Pid < KernelConstants.InitialProcessId)
  202. {
  203. throw new InvalidOperationException($"Invalid Process Id {Pid}.");
  204. }
  205. result = ParseProcessInfo(creationInfo);
  206. if (result != KernelResult.Success)
  207. {
  208. CleanUpForError();
  209. }
  210. return result;
  211. }
  212. private bool ValidateCodeAddressAndSize(ulong address, ulong size)
  213. {
  214. ulong codeRegionStart;
  215. ulong codeRegionSize;
  216. switch (MemoryManager.AddrSpaceWidth)
  217. {
  218. case 32:
  219. codeRegionStart = 0x200000;
  220. codeRegionSize = 0x3fe00000;
  221. break;
  222. case 36:
  223. codeRegionStart = 0x8000000;
  224. codeRegionSize = 0x78000000;
  225. break;
  226. case 39:
  227. codeRegionStart = 0x8000000;
  228. codeRegionSize = 0x7ff8000000;
  229. break;
  230. default: throw new InvalidOperationException("Invalid address space width on memory manager.");
  231. }
  232. ulong endAddr = address + size;
  233. ulong codeRegionEnd = codeRegionStart + codeRegionSize;
  234. if (endAddr <= address ||
  235. endAddr - 1 > codeRegionEnd - 1)
  236. {
  237. return false;
  238. }
  239. if (MemoryManager.InsideHeapRegion (address, size) ||
  240. MemoryManager.InsideAliasRegion(address, size))
  241. {
  242. return false;
  243. }
  244. return true;
  245. }
  246. private KernelResult ParseProcessInfo(ProcessCreationInfo creationInfo)
  247. {
  248. // Ensure that the current kernel version is equal or above to the minimum required.
  249. uint requiredKernelVersionMajor = (uint)Capabilities.KernelReleaseVersion >> 19;
  250. uint requiredKernelVersionMinor = ((uint)Capabilities.KernelReleaseVersion >> 15) & 0xf;
  251. if (KernelContext.EnableVersionChecks)
  252. {
  253. if (requiredKernelVersionMajor > KernelVersionMajor)
  254. {
  255. return KernelResult.InvalidCombination;
  256. }
  257. if (requiredKernelVersionMajor != KernelVersionMajor && requiredKernelVersionMajor < 3)
  258. {
  259. return KernelResult.InvalidCombination;
  260. }
  261. if (requiredKernelVersionMinor > KernelVersionMinor)
  262. {
  263. return KernelResult.InvalidCombination;
  264. }
  265. }
  266. KernelResult result = AllocateThreadLocalStorage(out ulong userExceptionContextAddress);
  267. if (result != KernelResult.Success)
  268. {
  269. return result;
  270. }
  271. UserExceptionContextAddress = userExceptionContextAddress;
  272. MemoryHelper.FillWithZeros(CpuMemory, (long)userExceptionContextAddress, KTlsPageInfo.TlsEntrySize);
  273. Name = creationInfo.Name;
  274. State = ProcessState.Created;
  275. _creationTimestamp = PerformanceCounter.ElapsedMilliseconds;
  276. MmuFlags = creationInfo.MmuFlags;
  277. _version = creationInfo.Version;
  278. TitleId = creationInfo.TitleId;
  279. _entrypoint = creationInfo.CodeAddress;
  280. _imageSize = (ulong)creationInfo.CodePagesCount * KMemoryManager.PageSize;
  281. _useSystemMemBlocks = ((MmuFlags >> 6) & 1) != 0;
  282. switch ((AddressSpaceType)((MmuFlags >> 1) & 7))
  283. {
  284. case AddressSpaceType.Addr32Bits:
  285. case AddressSpaceType.Addr36Bits:
  286. case AddressSpaceType.Addr39Bits:
  287. _memoryUsageCapacity = MemoryManager.HeapRegionEnd -
  288. MemoryManager.HeapRegionStart;
  289. break;
  290. case AddressSpaceType.Addr32BitsNoMap:
  291. _memoryUsageCapacity = MemoryManager.HeapRegionEnd -
  292. MemoryManager.HeapRegionStart +
  293. MemoryManager.AliasRegionEnd -
  294. MemoryManager.AliasRegionStart;
  295. break;
  296. default: throw new InvalidOperationException($"Invalid MMU flags value 0x{MmuFlags:x2}.");
  297. }
  298. GenerateRandomEntropy();
  299. return KernelResult.Success;
  300. }
  301. public KernelResult AllocateThreadLocalStorage(out ulong address)
  302. {
  303. KernelContext.CriticalSection.Enter();
  304. KernelResult result;
  305. if (_freeTlsPages.Count > 0)
  306. {
  307. // If we have free TLS pages available, just use the first one.
  308. KTlsPageInfo pageInfo = _freeTlsPages.Values.First();
  309. if (!pageInfo.TryGetFreePage(out address))
  310. {
  311. throw new InvalidOperationException("Unexpected failure getting free TLS page!");
  312. }
  313. if (pageInfo.IsFull())
  314. {
  315. _freeTlsPages.Remove(pageInfo.PageAddr);
  316. _fullTlsPages.Add(pageInfo.PageAddr, pageInfo);
  317. }
  318. result = KernelResult.Success;
  319. }
  320. else
  321. {
  322. // Otherwise, we need to create a new one.
  323. result = AllocateTlsPage(out KTlsPageInfo pageInfo);
  324. if (result == KernelResult.Success)
  325. {
  326. if (!pageInfo.TryGetFreePage(out address))
  327. {
  328. throw new InvalidOperationException("Unexpected failure getting free TLS page!");
  329. }
  330. _freeTlsPages.Add(pageInfo.PageAddr, pageInfo);
  331. }
  332. else
  333. {
  334. address = 0;
  335. }
  336. }
  337. KernelContext.CriticalSection.Leave();
  338. return result;
  339. }
  340. private KernelResult AllocateTlsPage(out KTlsPageInfo pageInfo)
  341. {
  342. pageInfo = default;
  343. if (!KernelContext.UserSlabHeapPages.TryGetItem(out ulong tlsPagePa))
  344. {
  345. return KernelResult.OutOfMemory;
  346. }
  347. ulong regionStart = MemoryManager.TlsIoRegionStart;
  348. ulong regionSize = MemoryManager.TlsIoRegionEnd - regionStart;
  349. ulong regionPagesCount = regionSize / KMemoryManager.PageSize;
  350. KernelResult result = MemoryManager.AllocateOrMapPa(
  351. 1,
  352. KMemoryManager.PageSize,
  353. tlsPagePa,
  354. true,
  355. regionStart,
  356. regionPagesCount,
  357. MemoryState.ThreadLocal,
  358. MemoryPermission.ReadAndWrite,
  359. out ulong tlsPageVa);
  360. if (result != KernelResult.Success)
  361. {
  362. KernelContext.UserSlabHeapPages.Free(tlsPagePa);
  363. }
  364. else
  365. {
  366. pageInfo = new KTlsPageInfo(tlsPageVa);
  367. MemoryHelper.FillWithZeros(CpuMemory, (long)tlsPageVa, KMemoryManager.PageSize);
  368. }
  369. return result;
  370. }
  371. public KernelResult FreeThreadLocalStorage(ulong tlsSlotAddr)
  372. {
  373. ulong tlsPageAddr = BitUtils.AlignDown(tlsSlotAddr, KMemoryManager.PageSize);
  374. KernelContext.CriticalSection.Enter();
  375. KernelResult result = KernelResult.Success;
  376. KTlsPageInfo pageInfo = null;
  377. if (_fullTlsPages.TryGetValue(tlsPageAddr, out pageInfo))
  378. {
  379. // TLS page was full, free slot and move to free pages tree.
  380. _fullTlsPages.Remove(tlsPageAddr);
  381. _freeTlsPages.Add(tlsPageAddr, pageInfo);
  382. }
  383. else if (!_freeTlsPages.TryGetValue(tlsPageAddr, out pageInfo))
  384. {
  385. result = KernelResult.InvalidAddress;
  386. }
  387. if (pageInfo != null)
  388. {
  389. pageInfo.FreeTlsSlot(tlsSlotAddr);
  390. if (pageInfo.IsEmpty())
  391. {
  392. // TLS page is now empty, we should ensure it is removed
  393. // from all trees, and free the memory it was using.
  394. _freeTlsPages.Remove(tlsPageAddr);
  395. KernelContext.CriticalSection.Leave();
  396. FreeTlsPage(pageInfo);
  397. return KernelResult.Success;
  398. }
  399. }
  400. KernelContext.CriticalSection.Leave();
  401. return result;
  402. }
  403. private KernelResult FreeTlsPage(KTlsPageInfo pageInfo)
  404. {
  405. if (!MemoryManager.TryConvertVaToPa(pageInfo.PageAddr, out ulong tlsPagePa))
  406. {
  407. throw new InvalidOperationException("Unexpected failure translating virtual address to physical.");
  408. }
  409. KernelResult result = MemoryManager.UnmapForKernel(pageInfo.PageAddr, 1, MemoryState.ThreadLocal);
  410. if (result == KernelResult.Success)
  411. {
  412. KernelContext.UserSlabHeapPages.Free(tlsPagePa);
  413. }
  414. return result;
  415. }
  416. private void GenerateRandomEntropy()
  417. {
  418. // TODO.
  419. }
  420. public KernelResult Start(int mainThreadPriority, ulong stackSize)
  421. {
  422. lock (_processLock)
  423. {
  424. if (State > ProcessState.CreatedAttached)
  425. {
  426. return KernelResult.InvalidState;
  427. }
  428. if (ResourceLimit != null && !ResourceLimit.Reserve(LimitableResource.Thread, 1))
  429. {
  430. return KernelResult.ResLimitExceeded;
  431. }
  432. KResourceLimit threadResourceLimit = ResourceLimit;
  433. KResourceLimit memoryResourceLimit = null;
  434. if (_mainThreadStackSize != 0)
  435. {
  436. throw new InvalidOperationException("Trying to start a process with a invalid state!");
  437. }
  438. ulong stackSizeRounded = BitUtils.AlignUp(stackSize, KMemoryManager.PageSize);
  439. ulong neededSize = stackSizeRounded + _imageSize;
  440. // Check if the needed size for the code and the stack will fit on the
  441. // memory usage capacity of this Process. Also check for possible overflow
  442. // on the above addition.
  443. if (neededSize > _memoryUsageCapacity ||
  444. neededSize < stackSizeRounded)
  445. {
  446. threadResourceLimit?.Release(LimitableResource.Thread, 1);
  447. return KernelResult.OutOfMemory;
  448. }
  449. if (stackSizeRounded != 0 && ResourceLimit != null)
  450. {
  451. memoryResourceLimit = ResourceLimit;
  452. if (!memoryResourceLimit.Reserve(LimitableResource.Memory, stackSizeRounded))
  453. {
  454. threadResourceLimit?.Release(LimitableResource.Thread, 1);
  455. return KernelResult.ResLimitExceeded;
  456. }
  457. }
  458. KernelResult result;
  459. KThread mainThread = null;
  460. ulong stackTop = 0;
  461. void CleanUpForError()
  462. {
  463. HandleTable.Destroy();
  464. mainThread?.DecrementReferenceCount();
  465. if (_mainThreadStackSize != 0)
  466. {
  467. ulong stackBottom = stackTop - _mainThreadStackSize;
  468. ulong stackPagesCount = _mainThreadStackSize / KMemoryManager.PageSize;
  469. MemoryManager.UnmapForKernel(stackBottom, stackPagesCount, MemoryState.Stack);
  470. _mainThreadStackSize = 0;
  471. }
  472. memoryResourceLimit?.Release(LimitableResource.Memory, stackSizeRounded);
  473. threadResourceLimit?.Release(LimitableResource.Thread, 1);
  474. }
  475. if (stackSizeRounded != 0)
  476. {
  477. ulong stackPagesCount = stackSizeRounded / KMemoryManager.PageSize;
  478. ulong regionStart = MemoryManager.StackRegionStart;
  479. ulong regionSize = MemoryManager.StackRegionEnd - regionStart;
  480. ulong regionPagesCount = regionSize / KMemoryManager.PageSize;
  481. result = MemoryManager.AllocateOrMapPa(
  482. stackPagesCount,
  483. KMemoryManager.PageSize,
  484. 0,
  485. false,
  486. regionStart,
  487. regionPagesCount,
  488. MemoryState.Stack,
  489. MemoryPermission.ReadAndWrite,
  490. out ulong stackBottom);
  491. if (result != KernelResult.Success)
  492. {
  493. CleanUpForError();
  494. return result;
  495. }
  496. _mainThreadStackSize += stackSizeRounded;
  497. stackTop = stackBottom + stackSizeRounded;
  498. }
  499. ulong heapCapacity = _memoryUsageCapacity - _mainThreadStackSize - _imageSize;
  500. result = MemoryManager.SetHeapCapacity(heapCapacity);
  501. if (result != KernelResult.Success)
  502. {
  503. CleanUpForError();
  504. return result;
  505. }
  506. HandleTable = new KHandleTable(KernelContext);
  507. result = HandleTable.Initialize(Capabilities.HandleTableSize);
  508. if (result != KernelResult.Success)
  509. {
  510. CleanUpForError();
  511. return result;
  512. }
  513. mainThread = new KThread(KernelContext);
  514. result = mainThread.Initialize(
  515. _entrypoint,
  516. 0,
  517. stackTop,
  518. mainThreadPriority,
  519. DefaultCpuCore,
  520. this);
  521. if (result != KernelResult.Success)
  522. {
  523. CleanUpForError();
  524. return result;
  525. }
  526. result = HandleTable.GenerateHandle(mainThread, out int mainThreadHandle);
  527. if (result != KernelResult.Success)
  528. {
  529. CleanUpForError();
  530. return result;
  531. }
  532. mainThread.SetEntryArguments(0, mainThreadHandle);
  533. ProcessState oldState = State;
  534. ProcessState newState = State != ProcessState.Created
  535. ? ProcessState.Attached
  536. : ProcessState.Started;
  537. SetState(newState);
  538. // TODO: We can't call KThread.Start from a non-guest thread.
  539. // We will need to make some changes to allow the creation of
  540. // dummy threads that will be used to initialize the current
  541. // thread on KCoreContext so that GetCurrentThread doesn't fail.
  542. /* Result = MainThread.Start();
  543. if (Result != KernelResult.Success)
  544. {
  545. SetState(OldState);
  546. CleanUpForError();
  547. } */
  548. mainThread.Reschedule(ThreadSchedState.Running);
  549. if (result == KernelResult.Success)
  550. {
  551. mainThread.IncrementReferenceCount();
  552. }
  553. mainThread.DecrementReferenceCount();
  554. return result;
  555. }
  556. }
  557. private void SetState(ProcessState newState)
  558. {
  559. if (State != newState)
  560. {
  561. State = newState;
  562. _signaled = true;
  563. Signal();
  564. }
  565. }
  566. public KernelResult InitializeThread(
  567. KThread thread,
  568. ulong entrypoint,
  569. ulong argsPtr,
  570. ulong stackTop,
  571. int priority,
  572. int cpuCore)
  573. {
  574. lock (_processLock)
  575. {
  576. return thread.Initialize(entrypoint, argsPtr, stackTop, priority, cpuCore, this);
  577. }
  578. }
  579. public void SubscribeThreadEventHandlers(ARMeilleure.State.ExecutionContext context)
  580. {
  581. context.Interrupt += InterruptHandler;
  582. context.SupervisorCall += KernelContext.SyscallHandler.SvcCall;
  583. context.Undefined += UndefinedInstructionHandler;
  584. }
  585. private void InterruptHandler(object sender, EventArgs e)
  586. {
  587. KernelContext.Scheduler.ContextSwitch();
  588. }
  589. public void IncrementThreadCount()
  590. {
  591. Interlocked.Increment(ref _threadCount);
  592. KernelContext.ThreadCounter.AddCount();
  593. }
  594. public void DecrementThreadCountAndTerminateIfZero()
  595. {
  596. KernelContext.ThreadCounter.Signal();
  597. if (Interlocked.Decrement(ref _threadCount) == 0)
  598. {
  599. Terminate();
  600. }
  601. }
  602. public void DecrementToZeroWhileTerminatingCurrent()
  603. {
  604. KernelContext.ThreadCounter.Signal();
  605. while (Interlocked.Decrement(ref _threadCount) != 0)
  606. {
  607. Destroy();
  608. TerminateCurrentProcess();
  609. }
  610. // Nintendo panic here because if it reaches this point, the current thread should be already dead.
  611. // As we handle the death of the thread in the post SVC handler and inside the CPU emulator, we don't panic here.
  612. }
  613. public ulong GetMemoryCapacity()
  614. {
  615. ulong totalCapacity = (ulong)ResourceLimit.GetRemainingValue(LimitableResource.Memory);
  616. totalCapacity += MemoryManager.GetTotalHeapSize();
  617. totalCapacity += GetPersonalMmHeapSize();
  618. totalCapacity += _imageSize + _mainThreadStackSize;
  619. if (totalCapacity <= _memoryUsageCapacity)
  620. {
  621. return totalCapacity;
  622. }
  623. return _memoryUsageCapacity;
  624. }
  625. public ulong GetMemoryUsage()
  626. {
  627. return _imageSize + _mainThreadStackSize + MemoryManager.GetTotalHeapSize() + GetPersonalMmHeapSize();
  628. }
  629. public ulong GetMemoryCapacityWithoutPersonalMmHeap()
  630. {
  631. return GetMemoryCapacity() - GetPersonalMmHeapSize();
  632. }
  633. public ulong GetMemoryUsageWithoutPersonalMmHeap()
  634. {
  635. return GetMemoryUsage() - GetPersonalMmHeapSize();
  636. }
  637. private ulong GetPersonalMmHeapSize()
  638. {
  639. return GetPersonalMmHeapSize(PersonalMmHeapPagesCount, _memRegion);
  640. }
  641. private static ulong GetPersonalMmHeapSize(ulong personalMmHeapPagesCount, MemoryRegion memRegion)
  642. {
  643. if (memRegion == MemoryRegion.Applet)
  644. {
  645. return 0;
  646. }
  647. return personalMmHeapPagesCount * KMemoryManager.PageSize;
  648. }
  649. public void AddThread(KThread thread)
  650. {
  651. lock (_threadingLock)
  652. {
  653. thread.ProcessListNode = _threads.AddLast(thread);
  654. }
  655. }
  656. public void RemoveThread(KThread thread)
  657. {
  658. lock (_threadingLock)
  659. {
  660. _threads.Remove(thread.ProcessListNode);
  661. }
  662. }
  663. public bool IsCpuCoreAllowed(int core)
  664. {
  665. return (Capabilities.AllowedCpuCoresMask & (1L << core)) != 0;
  666. }
  667. public bool IsPriorityAllowed(int priority)
  668. {
  669. return (Capabilities.AllowedThreadPriosMask & (1L << priority)) != 0;
  670. }
  671. public override bool IsSignaled()
  672. {
  673. return _signaled;
  674. }
  675. public KernelResult Terminate()
  676. {
  677. KernelResult result;
  678. bool shallTerminate = false;
  679. KernelContext.CriticalSection.Enter();
  680. lock (_processLock)
  681. {
  682. if (State >= ProcessState.Started)
  683. {
  684. if (State == ProcessState.Started ||
  685. State == ProcessState.Crashed ||
  686. State == ProcessState.Attached ||
  687. State == ProcessState.DebugSuspended)
  688. {
  689. SetState(ProcessState.Exiting);
  690. shallTerminate = true;
  691. }
  692. result = KernelResult.Success;
  693. }
  694. else
  695. {
  696. result = KernelResult.InvalidState;
  697. }
  698. }
  699. KernelContext.CriticalSection.Leave();
  700. if (shallTerminate)
  701. {
  702. UnpauseAndTerminateAllThreadsExcept(KernelContext.Scheduler.GetCurrentThread());
  703. HandleTable.Destroy();
  704. SignalExitToDebugTerminated();
  705. SignalExit();
  706. }
  707. return result;
  708. }
  709. public void TerminateCurrentProcess()
  710. {
  711. bool shallTerminate = false;
  712. KernelContext.CriticalSection.Enter();
  713. lock (_processLock)
  714. {
  715. if (State >= ProcessState.Started)
  716. {
  717. if (State == ProcessState.Started ||
  718. State == ProcessState.Attached ||
  719. State == ProcessState.DebugSuspended)
  720. {
  721. SetState(ProcessState.Exiting);
  722. shallTerminate = true;
  723. }
  724. }
  725. }
  726. KernelContext.CriticalSection.Leave();
  727. if (shallTerminate)
  728. {
  729. UnpauseAndTerminateAllThreadsExcept(KernelContext.Scheduler.GetCurrentThread());
  730. HandleTable.Destroy();
  731. // NOTE: this is supposed to be called in receiving of the mailbox.
  732. SignalExitToDebugExited();
  733. SignalExit();
  734. }
  735. }
  736. private void UnpauseAndTerminateAllThreadsExcept(KThread currentThread)
  737. {
  738. lock (_threadingLock)
  739. {
  740. KernelContext.CriticalSection.Enter();
  741. foreach (KThread thread in _threads)
  742. {
  743. if ((thread.SchedFlags & ThreadSchedState.LowMask) != ThreadSchedState.TerminationPending)
  744. {
  745. thread.PrepareForTermination();
  746. }
  747. }
  748. KernelContext.CriticalSection.Leave();
  749. }
  750. KThread blockedThread = null;
  751. lock (_threadingLock)
  752. {
  753. foreach (KThread thread in _threads)
  754. {
  755. if (thread != currentThread && (thread.SchedFlags & ThreadSchedState.LowMask) != ThreadSchedState.TerminationPending)
  756. {
  757. thread.IncrementReferenceCount();
  758. blockedThread = thread;
  759. break;
  760. }
  761. }
  762. }
  763. if (blockedThread != null)
  764. {
  765. blockedThread.Terminate();
  766. blockedThread.DecrementReferenceCount();
  767. }
  768. }
  769. private void SignalExitToDebugTerminated()
  770. {
  771. // TODO: Debug events.
  772. }
  773. private void SignalExitToDebugExited()
  774. {
  775. // TODO: Debug events.
  776. }
  777. private void SignalExit()
  778. {
  779. if (ResourceLimit != null)
  780. {
  781. ResourceLimit.Release(LimitableResource.Memory, GetMemoryUsage());
  782. }
  783. KernelContext.CriticalSection.Enter();
  784. SetState(ProcessState.Exited);
  785. KernelContext.CriticalSection.Leave();
  786. }
  787. public KernelResult ClearIfNotExited()
  788. {
  789. KernelResult result;
  790. KernelContext.CriticalSection.Enter();
  791. lock (_processLock)
  792. {
  793. if (State != ProcessState.Exited && _signaled)
  794. {
  795. _signaled = false;
  796. result = KernelResult.Success;
  797. }
  798. else
  799. {
  800. result = KernelResult.InvalidState;
  801. }
  802. }
  803. KernelContext.CriticalSection.Leave();
  804. return result;
  805. }
  806. public void StopAllThreads()
  807. {
  808. lock (_threadingLock)
  809. {
  810. foreach (KThread thread in _threads)
  811. {
  812. KernelContext.Scheduler.ExitThread(thread);
  813. KernelContext.Scheduler.CoreManager.Set(thread.HostThread);
  814. }
  815. }
  816. }
  817. private void InitializeMemoryManager(AddressSpaceType addrSpaceType, MemoryRegion memRegion)
  818. {
  819. int addrSpaceBits = addrSpaceType switch
  820. {
  821. AddressSpaceType.Addr32Bits => 32,
  822. AddressSpaceType.Addr36Bits => 36,
  823. AddressSpaceType.Addr32BitsNoMap => 32,
  824. AddressSpaceType.Addr39Bits => 39,
  825. _ => throw new ArgumentException(nameof(addrSpaceType))
  826. };
  827. CpuMemory = new MemoryManager(KernelContext.Memory, 1UL << addrSpaceBits);
  828. CpuContext = new CpuContext(CpuMemory);
  829. // TODO: This should eventually be removed.
  830. // The GPU shouldn't depend on the CPU memory manager at all.
  831. KernelContext.Device.Gpu.SetVmm(CpuMemory);
  832. MemoryManager = new KMemoryManager(KernelContext, CpuMemory);
  833. }
  834. public void PrintCurrentThreadStackTrace()
  835. {
  836. KernelContext.Scheduler.GetCurrentThread().PrintGuestStackTrace();
  837. }
  838. private void UndefinedInstructionHandler(object sender, InstUndefinedEventArgs e)
  839. {
  840. throw new UndefinedInstructionException(e.Address, e.OpCode);
  841. }
  842. protected override void Destroy()
  843. {
  844. CpuMemory.Dispose();
  845. }
  846. }
  847. }