svc.cpp 34 KB

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  1. // Copyright 2018 yuzu emulator team
  2. // Licensed under GPLv2 or any later version
  3. // Refer to the license.txt file included.
  4. #include <algorithm>
  5. #include <cinttypes>
  6. #include <iterator>
  7. #include "common/logging/log.h"
  8. #include "common/microprofile.h"
  9. #include "common/string_util.h"
  10. #include "core/core.h"
  11. #include "core/core_timing.h"
  12. #include "core/hle/kernel/client_port.h"
  13. #include "core/hle/kernel/client_session.h"
  14. #include "core/hle/kernel/event.h"
  15. #include "core/hle/kernel/handle_table.h"
  16. #include "core/hle/kernel/mutex.h"
  17. #include "core/hle/kernel/object_address_table.h"
  18. #include "core/hle/kernel/process.h"
  19. #include "core/hle/kernel/resource_limit.h"
  20. #include "core/hle/kernel/shared_memory.h"
  21. #include "core/hle/kernel/svc.h"
  22. #include "core/hle/kernel/svc_wrap.h"
  23. #include "core/hle/kernel/thread.h"
  24. #include "core/hle/lock.h"
  25. #include "core/hle/result.h"
  26. #include "core/hle/service/service.h"
  27. namespace Kernel {
  28. /// Set the process heap to a given Size. It can both extend and shrink the heap.
  29. static ResultCode SetHeapSize(VAddr* heap_addr, u64 heap_size) {
  30. NGLOG_TRACE(Kernel_SVC, "called, heap_size={:#X}", heap_size);
  31. auto& process = *Core::CurrentProcess();
  32. CASCADE_RESULT(*heap_addr,
  33. process.HeapAllocate(Memory::HEAP_VADDR, heap_size, VMAPermission::ReadWrite));
  34. return RESULT_SUCCESS;
  35. }
  36. static ResultCode SetMemoryAttribute(VAddr addr, u64 size, u32 state0, u32 state1) {
  37. NGLOG_WARNING(Kernel_SVC, "(STUBBED) called, addr={:#X}", addr);
  38. return RESULT_SUCCESS;
  39. }
  40. /// Maps a memory range into a different range.
  41. static ResultCode MapMemory(VAddr dst_addr, VAddr src_addr, u64 size) {
  42. NGLOG_TRACE(Kernel_SVC, "called, dst_addr={:#X}, src_addr={:#X}, size={:#X}", dst_addr,
  43. src_addr, size);
  44. return Core::CurrentProcess()->MirrorMemory(dst_addr, src_addr, size);
  45. }
  46. /// Unmaps a region that was previously mapped with svcMapMemory
  47. static ResultCode UnmapMemory(VAddr dst_addr, VAddr src_addr, u64 size) {
  48. NGLOG_TRACE(Kernel_SVC, "called, dst_addr={:#X}, src_addr={:#X}, size={:#X}", dst_addr,
  49. src_addr, size);
  50. return Core::CurrentProcess()->UnmapMemory(dst_addr, src_addr, size);
  51. }
  52. /// Connect to an OS service given the port name, returns the handle to the port to out
  53. static ResultCode ConnectToNamedPort(Handle* out_handle, VAddr port_name_address) {
  54. if (!Memory::IsValidVirtualAddress(port_name_address))
  55. return ERR_NOT_FOUND;
  56. static constexpr std::size_t PortNameMaxLength = 11;
  57. // Read 1 char beyond the max allowed port name to detect names that are too long.
  58. std::string port_name = Memory::ReadCString(port_name_address, PortNameMaxLength + 1);
  59. if (port_name.size() > PortNameMaxLength)
  60. return ERR_PORT_NAME_TOO_LONG;
  61. NGLOG_TRACE(Kernel_SVC, "called port_name={}", port_name);
  62. auto it = Service::g_kernel_named_ports.find(port_name);
  63. if (it == Service::g_kernel_named_ports.end()) {
  64. NGLOG_WARNING(Kernel_SVC, "tried to connect to unknown port: {}", port_name);
  65. return ERR_NOT_FOUND;
  66. }
  67. auto client_port = it->second;
  68. SharedPtr<ClientSession> client_session;
  69. CASCADE_RESULT(client_session, client_port->Connect());
  70. // Return the client session
  71. CASCADE_RESULT(*out_handle, g_handle_table.Create(client_session));
  72. return RESULT_SUCCESS;
  73. }
  74. /// Makes a blocking IPC call to an OS service.
  75. static ResultCode SendSyncRequest(Handle handle) {
  76. SharedPtr<ClientSession> session = g_handle_table.Get<ClientSession>(handle);
  77. if (!session) {
  78. NGLOG_ERROR(Kernel_SVC, "called with invalid handle={:#010X}", handle);
  79. return ERR_INVALID_HANDLE;
  80. }
  81. NGLOG_TRACE(Kernel_SVC, "called handle={:#010X}({})", handle, session->GetName());
  82. Core::System::GetInstance().PrepareReschedule();
  83. // TODO(Subv): svcSendSyncRequest should put the caller thread to sleep while the server
  84. // responds and cause a reschedule.
  85. return session->SendSyncRequest(GetCurrentThread());
  86. }
  87. /// Get the ID for the specified thread.
  88. static ResultCode GetThreadId(u32* thread_id, Handle thread_handle) {
  89. NGLOG_TRACE(Kernel_SVC, "called thread={:#010X}", thread_handle);
  90. const SharedPtr<Thread> thread = g_handle_table.Get<Thread>(thread_handle);
  91. if (!thread) {
  92. return ERR_INVALID_HANDLE;
  93. }
  94. *thread_id = thread->GetThreadId();
  95. return RESULT_SUCCESS;
  96. }
  97. /// Get the ID of the specified process
  98. static ResultCode GetProcessId(u32* process_id, Handle process_handle) {
  99. NGLOG_TRACE(Kernel_SVC, "called process={:#010X}", process_handle);
  100. const SharedPtr<Process> process = g_handle_table.Get<Process>(process_handle);
  101. if (!process) {
  102. return ERR_INVALID_HANDLE;
  103. }
  104. *process_id = process->process_id;
  105. return RESULT_SUCCESS;
  106. }
  107. /// Default thread wakeup callback for WaitSynchronization
  108. static bool DefaultThreadWakeupCallback(ThreadWakeupReason reason, SharedPtr<Thread> thread,
  109. SharedPtr<WaitObject> object, size_t index) {
  110. ASSERT(thread->status == THREADSTATUS_WAIT_SYNCH_ANY);
  111. if (reason == ThreadWakeupReason::Timeout) {
  112. thread->SetWaitSynchronizationResult(RESULT_TIMEOUT);
  113. return true;
  114. }
  115. ASSERT(reason == ThreadWakeupReason::Signal);
  116. thread->SetWaitSynchronizationResult(RESULT_SUCCESS);
  117. thread->SetWaitSynchronizationOutput(static_cast<u32>(index));
  118. return true;
  119. };
  120. /// Wait for a kernel object to synchronize, timeout after the specified nanoseconds
  121. static ResultCode WaitSynchronization1(
  122. SharedPtr<WaitObject> object, Thread* thread, s64 nano_seconds = -1,
  123. std::function<Thread::WakeupCallback> wakeup_callback = DefaultThreadWakeupCallback) {
  124. if (!object) {
  125. return ERR_INVALID_HANDLE;
  126. }
  127. if (object->ShouldWait(thread)) {
  128. if (nano_seconds == 0) {
  129. return RESULT_TIMEOUT;
  130. }
  131. thread->wait_objects = {object};
  132. object->AddWaitingThread(thread);
  133. thread->status = THREADSTATUS_WAIT_SYNCH_ANY;
  134. // Create an event to wake the thread up after the specified nanosecond delay has passed
  135. thread->WakeAfterDelay(nano_seconds);
  136. thread->wakeup_callback = wakeup_callback;
  137. Core::System::GetInstance().PrepareReschedule();
  138. } else {
  139. object->Acquire(thread);
  140. }
  141. return RESULT_SUCCESS;
  142. }
  143. /// Wait for the given handles to synchronize, timeout after the specified nanoseconds
  144. static ResultCode WaitSynchronization(Handle* index, VAddr handles_address, u64 handle_count,
  145. s64 nano_seconds) {
  146. NGLOG_TRACE(Kernel_SVC, "called handles_address={:#X}, handle_count={}, nano_seconds={}",
  147. handles_address, handle_count, nano_seconds);
  148. if (!Memory::IsValidVirtualAddress(handles_address))
  149. return ERR_INVALID_POINTER;
  150. static constexpr u64 MaxHandles = 0x40;
  151. if (handle_count > MaxHandles)
  152. return ResultCode(ErrorModule::Kernel, ErrCodes::TooLarge);
  153. auto thread = GetCurrentThread();
  154. using ObjectPtr = SharedPtr<WaitObject>;
  155. std::vector<ObjectPtr> objects(handle_count);
  156. for (int i = 0; i < handle_count; ++i) {
  157. Handle handle = Memory::Read32(handles_address + i * sizeof(Handle));
  158. auto object = g_handle_table.Get<WaitObject>(handle);
  159. if (object == nullptr)
  160. return ERR_INVALID_HANDLE;
  161. objects[i] = object;
  162. }
  163. // Find the first object that is acquirable in the provided list of objects
  164. auto itr = std::find_if(objects.begin(), objects.end(), [thread](const ObjectPtr& object) {
  165. return !object->ShouldWait(thread);
  166. });
  167. if (itr != objects.end()) {
  168. // We found a ready object, acquire it and set the result value
  169. WaitObject* object = itr->get();
  170. object->Acquire(thread);
  171. *index = static_cast<s32>(std::distance(objects.begin(), itr));
  172. return RESULT_SUCCESS;
  173. }
  174. // No objects were ready to be acquired, prepare to suspend the thread.
  175. // If a timeout value of 0 was provided, just return the Timeout error code instead of
  176. // suspending the thread.
  177. if (nano_seconds == 0)
  178. return RESULT_TIMEOUT;
  179. for (auto& object : objects)
  180. object->AddWaitingThread(thread);
  181. thread->wait_objects = std::move(objects);
  182. thread->status = THREADSTATUS_WAIT_SYNCH_ANY;
  183. // Create an event to wake the thread up after the specified nanosecond delay has passed
  184. thread->WakeAfterDelay(nano_seconds);
  185. thread->wakeup_callback = DefaultThreadWakeupCallback;
  186. Core::System::GetInstance().PrepareReschedule();
  187. return RESULT_TIMEOUT;
  188. }
  189. /// Resumes a thread waiting on WaitSynchronization
  190. static ResultCode CancelSynchronization(Handle thread_handle) {
  191. NGLOG_TRACE(Kernel_SVC, "called thread={:#X}", thread_handle);
  192. const SharedPtr<Thread> thread = g_handle_table.Get<Thread>(thread_handle);
  193. if (!thread) {
  194. return ERR_INVALID_HANDLE;
  195. }
  196. ASSERT(thread->status == THREADSTATUS_WAIT_SYNCH_ANY);
  197. thread->SetWaitSynchronizationResult(
  198. ResultCode(ErrorModule::Kernel, ErrCodes::SynchronizationCanceled));
  199. thread->ResumeFromWait();
  200. return RESULT_SUCCESS;
  201. }
  202. /// Attempts to locks a mutex, creating it if it does not already exist
  203. static ResultCode ArbitrateLock(Handle holding_thread_handle, VAddr mutex_addr,
  204. Handle requesting_thread_handle) {
  205. NGLOG_TRACE(Kernel_SVC,
  206. "called holding_thread_handle={:#010X}, mutex_addr={:#X}, "
  207. "requesting_current_thread_handle={:#010X}",
  208. holding_thread_handle, mutex_addr, requesting_thread_handle);
  209. return Mutex::TryAcquire(mutex_addr, holding_thread_handle, requesting_thread_handle);
  210. }
  211. /// Unlock a mutex
  212. static ResultCode ArbitrateUnlock(VAddr mutex_addr) {
  213. NGLOG_TRACE(Kernel_SVC, "called mutex_addr={:#X}", mutex_addr);
  214. return Mutex::Release(mutex_addr);
  215. }
  216. /// Break program execution
  217. static void Break(u64 unk_0, u64 unk_1, u64 unk_2) {
  218. NGLOG_CRITICAL(Debug_Emulated, "Emulated program broke execution!");
  219. ASSERT(false);
  220. }
  221. /// Used to output a message on a debug hardware unit - does nothing on a retail unit
  222. static void OutputDebugString(VAddr address, s32 len) {
  223. std::string str(len, '\0');
  224. Memory::ReadBlock(address, str.data(), str.size());
  225. NGLOG_DEBUG(Debug_Emulated, "{}", str);
  226. }
  227. /// Gets system/memory information for the current process
  228. static ResultCode GetInfo(u64* result, u64 info_id, u64 handle, u64 info_sub_id) {
  229. NGLOG_TRACE(Kernel_SVC, "called info_id={:#X}, info_sub_id={:#X}, handle={:#010X}", info_id,
  230. info_sub_id, handle);
  231. auto& vm_manager = Core::CurrentProcess()->vm_manager;
  232. switch (static_cast<GetInfoType>(info_id)) {
  233. case GetInfoType::AllowedCpuIdBitmask:
  234. *result = Core::CurrentProcess()->allowed_processor_mask;
  235. break;
  236. case GetInfoType::AllowedThreadPrioBitmask:
  237. *result = Core::CurrentProcess()->allowed_thread_priority_mask;
  238. break;
  239. case GetInfoType::MapRegionBaseAddr:
  240. *result = Memory::MAP_REGION_VADDR;
  241. break;
  242. case GetInfoType::MapRegionSize:
  243. *result = Memory::MAP_REGION_SIZE;
  244. break;
  245. case GetInfoType::HeapRegionBaseAddr:
  246. *result = Memory::HEAP_VADDR;
  247. break;
  248. case GetInfoType::HeapRegionSize:
  249. *result = Memory::HEAP_SIZE;
  250. break;
  251. case GetInfoType::TotalMemoryUsage:
  252. *result = vm_manager.GetTotalMemoryUsage();
  253. break;
  254. case GetInfoType::TotalHeapUsage:
  255. *result = vm_manager.GetTotalHeapUsage();
  256. break;
  257. case GetInfoType::IsCurrentProcessBeingDebugged:
  258. *result = 0;
  259. break;
  260. case GetInfoType::RandomEntropy:
  261. *result = 0;
  262. break;
  263. case GetInfoType::AddressSpaceBaseAddr:
  264. *result = vm_manager.GetAddressSpaceBaseAddr();
  265. break;
  266. case GetInfoType::AddressSpaceSize:
  267. *result = vm_manager.GetAddressSpaceSize();
  268. break;
  269. case GetInfoType::NewMapRegionBaseAddr:
  270. *result = Memory::NEW_MAP_REGION_VADDR;
  271. break;
  272. case GetInfoType::NewMapRegionSize:
  273. *result = Memory::NEW_MAP_REGION_SIZE;
  274. break;
  275. case GetInfoType::IsVirtualAddressMemoryEnabled:
  276. *result = Core::CurrentProcess()->is_virtual_address_memory_enabled;
  277. break;
  278. case GetInfoType::TitleId:
  279. NGLOG_WARNING(Kernel_SVC, "(STUBBED) Attempted to query titleid, returned 0");
  280. *result = 0;
  281. break;
  282. case GetInfoType::PrivilegedProcessId:
  283. NGLOG_WARNING(Kernel_SVC,
  284. "(STUBBED) Attempted to query privileged process id bounds, returned 0");
  285. *result = 0;
  286. break;
  287. default:
  288. UNIMPLEMENTED();
  289. }
  290. return RESULT_SUCCESS;
  291. }
  292. /// Sets the thread activity
  293. static ResultCode SetThreadActivity(Handle handle, u32 unknown) {
  294. NGLOG_WARNING(Kernel_SVC, "(STUBBED) called, handle={:#010X}, unknown={:#010X}", handle,
  295. unknown);
  296. return RESULT_SUCCESS;
  297. }
  298. /// Gets the thread context
  299. static ResultCode GetThreadContext(Handle handle, VAddr addr) {
  300. NGLOG_WARNING(Kernel_SVC, "(STUBBED) called, handle={:#010X}, addr={:#X}", handle, addr);
  301. return RESULT_SUCCESS;
  302. }
  303. /// Gets the priority for the specified thread
  304. static ResultCode GetThreadPriority(u32* priority, Handle handle) {
  305. const SharedPtr<Thread> thread = g_handle_table.Get<Thread>(handle);
  306. if (!thread)
  307. return ERR_INVALID_HANDLE;
  308. *priority = thread->GetPriority();
  309. return RESULT_SUCCESS;
  310. }
  311. /// Sets the priority for the specified thread
  312. static ResultCode SetThreadPriority(Handle handle, u32 priority) {
  313. if (priority > THREADPRIO_LOWEST) {
  314. return ERR_OUT_OF_RANGE;
  315. }
  316. SharedPtr<Thread> thread = g_handle_table.Get<Thread>(handle);
  317. if (!thread)
  318. return ERR_INVALID_HANDLE;
  319. // Note: The kernel uses the current process's resource limit instead of
  320. // the one from the thread owner's resource limit.
  321. SharedPtr<ResourceLimit>& resource_limit = Core::CurrentProcess()->resource_limit;
  322. if (resource_limit->GetMaxResourceValue(ResourceType::Priority) > priority) {
  323. return ERR_NOT_AUTHORIZED;
  324. }
  325. thread->SetPriority(priority);
  326. Core::System::GetInstance().PrepareReschedule();
  327. return RESULT_SUCCESS;
  328. }
  329. /// Get which CPU core is executing the current thread
  330. static u32 GetCurrentProcessorNumber() {
  331. NGLOG_WARNING(Kernel_SVC, "(STUBBED) called, defaulting to processor 0");
  332. return 0;
  333. }
  334. static ResultCode MapSharedMemory(Handle shared_memory_handle, VAddr addr, u64 size,
  335. u32 permissions) {
  336. NGLOG_TRACE(Kernel_SVC,
  337. "called, shared_memory_handle={:#X}, addr={:#X}, size={:#X}, permissions={:#010X}",
  338. shared_memory_handle, addr, size, permissions);
  339. SharedPtr<SharedMemory> shared_memory = g_handle_table.Get<SharedMemory>(shared_memory_handle);
  340. if (!shared_memory) {
  341. return ERR_INVALID_HANDLE;
  342. }
  343. MemoryPermission permissions_type = static_cast<MemoryPermission>(permissions);
  344. switch (permissions_type) {
  345. case MemoryPermission::Read:
  346. case MemoryPermission::Write:
  347. case MemoryPermission::ReadWrite:
  348. case MemoryPermission::Execute:
  349. case MemoryPermission::ReadExecute:
  350. case MemoryPermission::WriteExecute:
  351. case MemoryPermission::ReadWriteExecute:
  352. case MemoryPermission::DontCare:
  353. return shared_memory->Map(Core::CurrentProcess().get(), addr, permissions_type,
  354. MemoryPermission::DontCare);
  355. default:
  356. NGLOG_ERROR(Kernel_SVC, "unknown permissions={:#010X}", permissions);
  357. }
  358. return RESULT_SUCCESS;
  359. }
  360. static ResultCode UnmapSharedMemory(Handle shared_memory_handle, VAddr addr, u64 size) {
  361. NGLOG_WARNING(Kernel_SVC, "called, shared_memory_handle={:#010X}, addr={:#X}, size={:#X}",
  362. shared_memory_handle, addr, size);
  363. SharedPtr<SharedMemory> shared_memory = g_handle_table.Get<SharedMemory>(shared_memory_handle);
  364. return shared_memory->Unmap(Core::CurrentProcess().get(), addr);
  365. }
  366. /// Query process memory
  367. static ResultCode QueryProcessMemory(MemoryInfo* memory_info, PageInfo* /*page_info*/,
  368. Handle process_handle, u64 addr) {
  369. SharedPtr<Process> process = g_handle_table.Get<Process>(process_handle);
  370. if (!process) {
  371. return ERR_INVALID_HANDLE;
  372. }
  373. auto vma = process->vm_manager.FindVMA(addr);
  374. memory_info->attributes = 0;
  375. if (vma == Core::CurrentProcess()->vm_manager.vma_map.end()) {
  376. memory_info->base_address = 0;
  377. memory_info->permission = static_cast<u32>(VMAPermission::None);
  378. memory_info->size = 0;
  379. memory_info->type = static_cast<u32>(MemoryState::Unmapped);
  380. } else {
  381. memory_info->base_address = vma->second.base;
  382. memory_info->permission = static_cast<u32>(vma->second.permissions);
  383. memory_info->size = vma->second.size;
  384. memory_info->type = static_cast<u32>(vma->second.meminfo_state);
  385. }
  386. NGLOG_TRACE(Kernel_SVC, "called process={:#010X} addr={:X}", process_handle, addr);
  387. return RESULT_SUCCESS;
  388. }
  389. /// Query memory
  390. static ResultCode QueryMemory(MemoryInfo* memory_info, PageInfo* page_info, VAddr addr) {
  391. NGLOG_TRACE(Kernel_SVC, "called, addr={:X}", addr);
  392. return QueryProcessMemory(memory_info, page_info, CurrentProcess, addr);
  393. }
  394. /// Exits the current process
  395. static void ExitProcess() {
  396. NGLOG_INFO(Kernel_SVC, "Process {} exiting", Core::CurrentProcess()->process_id);
  397. ASSERT_MSG(Core::CurrentProcess()->status == ProcessStatus::Running,
  398. "Process has already exited");
  399. Core::CurrentProcess()->status = ProcessStatus::Exited;
  400. // Stop all the process threads that are currently waiting for objects.
  401. auto& thread_list = Core::System::GetInstance().Scheduler().GetThreadList();
  402. for (auto& thread : thread_list) {
  403. if (thread->owner_process != Core::CurrentProcess())
  404. continue;
  405. if (thread == GetCurrentThread())
  406. continue;
  407. // TODO(Subv): When are the other running/ready threads terminated?
  408. ASSERT_MSG(thread->status == THREADSTATUS_WAIT_SYNCH_ANY ||
  409. thread->status == THREADSTATUS_WAIT_SYNCH_ALL,
  410. "Exiting processes with non-waiting threads is currently unimplemented");
  411. thread->Stop();
  412. }
  413. // Kill the current thread
  414. GetCurrentThread()->Stop();
  415. Core::System::GetInstance().PrepareReschedule();
  416. }
  417. /// Creates a new thread
  418. static ResultCode CreateThread(Handle* out_handle, VAddr entry_point, u64 arg, VAddr stack_top,
  419. u32 priority, s32 processor_id) {
  420. std::string name = fmt::format("unknown-{:X}", entry_point);
  421. if (priority > THREADPRIO_LOWEST) {
  422. return ERR_OUT_OF_RANGE;
  423. }
  424. SharedPtr<ResourceLimit>& resource_limit = Core::CurrentProcess()->resource_limit;
  425. if (resource_limit->GetMaxResourceValue(ResourceType::Priority) > priority) {
  426. return ERR_NOT_AUTHORIZED;
  427. }
  428. if (processor_id == THREADPROCESSORID_DEFAULT) {
  429. // Set the target CPU to the one specified in the process' exheader.
  430. processor_id = Core::CurrentProcess()->ideal_processor;
  431. ASSERT(processor_id != THREADPROCESSORID_DEFAULT);
  432. }
  433. switch (processor_id) {
  434. case THREADPROCESSORID_0:
  435. break;
  436. case THREADPROCESSORID_1:
  437. case THREADPROCESSORID_2:
  438. case THREADPROCESSORID_3:
  439. // TODO(bunnei): Implement support for other processor IDs
  440. NGLOG_ERROR(Kernel_SVC,
  441. "Newly created thread must run in another thread ({}), unimplemented.",
  442. processor_id);
  443. break;
  444. default:
  445. ASSERT_MSG(false, "Unsupported thread processor ID: {}", processor_id);
  446. break;
  447. }
  448. CASCADE_RESULT(SharedPtr<Thread> thread,
  449. Thread::Create(name, entry_point, priority, arg, processor_id, stack_top,
  450. Core::CurrentProcess()));
  451. CASCADE_RESULT(thread->guest_handle, g_handle_table.Create(thread));
  452. *out_handle = thread->guest_handle;
  453. Core::System::GetInstance().PrepareReschedule();
  454. NGLOG_TRACE(Kernel_SVC,
  455. "called entrypoint={:#010X} ({}), arg={:#010X}, stacktop={:#010X}, "
  456. "threadpriority={:#010X}, processorid={:#010X} : created handle={:#010X}",
  457. entry_point, name, arg, stack_top, priority, processor_id, *out_handle);
  458. return RESULT_SUCCESS;
  459. }
  460. /// Starts the thread for the provided handle
  461. static ResultCode StartThread(Handle thread_handle) {
  462. NGLOG_TRACE(Kernel_SVC, "called thread={:#010X}", thread_handle);
  463. const SharedPtr<Thread> thread = g_handle_table.Get<Thread>(thread_handle);
  464. if (!thread) {
  465. return ERR_INVALID_HANDLE;
  466. }
  467. thread->ResumeFromWait();
  468. return RESULT_SUCCESS;
  469. }
  470. /// Called when a thread exits
  471. static void ExitThread() {
  472. NGLOG_TRACE(Kernel_SVC, "called, pc={:#010X}", Core::CPU().GetPC());
  473. ExitCurrentThread();
  474. Core::System::GetInstance().PrepareReschedule();
  475. }
  476. /// Sleep the current thread
  477. static void SleepThread(s64 nanoseconds) {
  478. NGLOG_TRACE(Kernel_SVC, "called nanoseconds={}", nanoseconds);
  479. // Don't attempt to yield execution if there are no available threads to run,
  480. // this way we avoid a useless reschedule to the idle thread.
  481. if (nanoseconds == 0 && !Core::System::GetInstance().Scheduler().HaveReadyThreads())
  482. return;
  483. // Sleep current thread and check for next thread to schedule
  484. WaitCurrentThread_Sleep();
  485. // Create an event to wake the thread up after the specified nanosecond delay has passed
  486. GetCurrentThread()->WakeAfterDelay(nanoseconds);
  487. Core::System::GetInstance().PrepareReschedule();
  488. }
  489. /// Signal process wide key atomic
  490. static ResultCode WaitProcessWideKeyAtomic(VAddr mutex_addr, VAddr condition_variable_addr,
  491. Handle thread_handle, s64 nano_seconds) {
  492. NGLOG_TRACE(
  493. Kernel_SVC,
  494. "called mutex_addr={:X}, condition_variable_addr={:X}, thread_handle={:#010X}, timeout={}",
  495. mutex_addr, condition_variable_addr, thread_handle, nano_seconds);
  496. SharedPtr<Thread> thread = g_handle_table.Get<Thread>(thread_handle);
  497. ASSERT(thread);
  498. CASCADE_CODE(Mutex::Release(mutex_addr));
  499. SharedPtr<Thread> current_thread = GetCurrentThread();
  500. current_thread->condvar_wait_address = condition_variable_addr;
  501. current_thread->mutex_wait_address = mutex_addr;
  502. current_thread->wait_handle = thread_handle;
  503. current_thread->status = THREADSTATUS_WAIT_MUTEX;
  504. current_thread->wakeup_callback = nullptr;
  505. current_thread->WakeAfterDelay(nano_seconds);
  506. // Note: Deliberately don't attempt to inherit the lock owner's priority.
  507. Core::System::GetInstance().PrepareReschedule();
  508. return RESULT_SUCCESS;
  509. }
  510. /// Signal process wide key
  511. static ResultCode SignalProcessWideKey(VAddr condition_variable_addr, s32 target) {
  512. NGLOG_TRACE(Kernel_SVC, "called, condition_variable_addr={:#X}, target={:#010X}",
  513. condition_variable_addr, target);
  514. u32 processed = 0;
  515. auto& thread_list = Core::System::GetInstance().Scheduler().GetThreadList();
  516. for (auto& thread : thread_list) {
  517. if (thread->condvar_wait_address != condition_variable_addr)
  518. continue;
  519. // Only process up to 'target' threads, unless 'target' is -1, in which case process
  520. // them all.
  521. if (target != -1 && processed >= target)
  522. break;
  523. // If the mutex is not yet acquired, acquire it.
  524. u32 mutex_val = Memory::Read32(thread->mutex_wait_address);
  525. if (mutex_val == 0) {
  526. // We were able to acquire the mutex, resume this thread.
  527. Memory::Write32(thread->mutex_wait_address, thread->wait_handle);
  528. ASSERT(thread->status == THREADSTATUS_WAIT_MUTEX);
  529. thread->ResumeFromWait();
  530. auto lock_owner = thread->lock_owner;
  531. if (lock_owner)
  532. lock_owner->RemoveMutexWaiter(thread);
  533. thread->lock_owner = nullptr;
  534. thread->mutex_wait_address = 0;
  535. thread->condvar_wait_address = 0;
  536. thread->wait_handle = 0;
  537. } else {
  538. // Couldn't acquire the mutex, block the thread.
  539. Handle owner_handle = static_cast<Handle>(mutex_val & Mutex::MutexOwnerMask);
  540. auto owner = g_handle_table.Get<Thread>(owner_handle);
  541. ASSERT(owner);
  542. ASSERT(thread->status != THREADSTATUS_RUNNING);
  543. thread->status = THREADSTATUS_WAIT_MUTEX;
  544. thread->wakeup_callback = nullptr;
  545. // Signal that the mutex now has a waiting thread.
  546. Memory::Write32(thread->mutex_wait_address, mutex_val | Mutex::MutexHasWaitersFlag);
  547. owner->AddMutexWaiter(thread);
  548. Core::System::GetInstance().PrepareReschedule();
  549. }
  550. ++processed;
  551. }
  552. return RESULT_SUCCESS;
  553. }
  554. /// This returns the total CPU ticks elapsed since the CPU was powered-on
  555. static u64 GetSystemTick() {
  556. const u64 result{CoreTiming::GetTicks()};
  557. // Advance time to defeat dumb games that busy-wait for the frame to end.
  558. CoreTiming::AddTicks(400);
  559. return result;
  560. }
  561. /// Close a handle
  562. static ResultCode CloseHandle(Handle handle) {
  563. NGLOG_TRACE(Kernel_SVC, "Closing handle {:#010X}", handle);
  564. return g_handle_table.Close(handle);
  565. }
  566. /// Reset an event
  567. static ResultCode ResetSignal(Handle handle) {
  568. NGLOG_WARNING(Kernel_SVC, "(STUBBED) called handle {:#010X}", handle);
  569. auto event = g_handle_table.Get<Event>(handle);
  570. ASSERT(event != nullptr);
  571. event->Clear();
  572. return RESULT_SUCCESS;
  573. }
  574. /// Creates a TransferMemory object
  575. static ResultCode CreateTransferMemory(Handle* handle, VAddr addr, u64 size, u32 permissions) {
  576. NGLOG_WARNING(Kernel_SVC, "(STUBBED) called addr={:#X}, size={:#X}, perms={:010X}", addr, size,
  577. permissions);
  578. *handle = 0;
  579. return RESULT_SUCCESS;
  580. }
  581. static ResultCode GetThreadCoreMask(Handle handle, u32* mask, u64* unknown) {
  582. NGLOG_WARNING(Kernel_SVC, "(STUBBED) called, handle={:010X}", handle);
  583. *mask = 0x0;
  584. *unknown = 0xf;
  585. return RESULT_SUCCESS;
  586. }
  587. static ResultCode SetThreadCoreMask(Handle handle, u32 mask, u64 unknown) {
  588. NGLOG_WARNING(Kernel_SVC, "(STUBBED) called, handle={:#010X}, mask={:#010X}, unknown={:#X}",
  589. handle, mask, unknown);
  590. return RESULT_SUCCESS;
  591. }
  592. static ResultCode CreateSharedMemory(Handle* handle, u64 size, u32 local_permissions,
  593. u32 remote_permissions) {
  594. NGLOG_TRACE(Kernel_SVC, "called, size={:#X}, localPerms={:#010X}, remotePerms={:#010X}", size,
  595. local_permissions, remote_permissions);
  596. auto sharedMemHandle =
  597. SharedMemory::Create(g_handle_table.Get<Process>(KernelHandle::CurrentProcess), size,
  598. static_cast<MemoryPermission>(local_permissions),
  599. static_cast<MemoryPermission>(remote_permissions));
  600. CASCADE_RESULT(*handle, g_handle_table.Create(sharedMemHandle));
  601. return RESULT_SUCCESS;
  602. }
  603. static ResultCode ClearEvent(Handle handle) {
  604. NGLOG_TRACE(Kernel_SVC, "called, event={:010X}", handle);
  605. SharedPtr<Event> evt = g_handle_table.Get<Event>(handle);
  606. if (evt == nullptr)
  607. return ERR_INVALID_HANDLE;
  608. evt->Clear();
  609. return RESULT_SUCCESS;
  610. }
  611. namespace {
  612. struct FunctionDef {
  613. using Func = void();
  614. u32 id;
  615. Func* func;
  616. const char* name;
  617. };
  618. } // namespace
  619. static const FunctionDef SVC_Table[] = {
  620. {0x00, nullptr, "Unknown"},
  621. {0x01, SvcWrap<SetHeapSize>, "SetHeapSize"},
  622. {0x02, nullptr, "SetMemoryPermission"},
  623. {0x03, SvcWrap<SetMemoryAttribute>, "SetMemoryAttribute"},
  624. {0x04, SvcWrap<MapMemory>, "MapMemory"},
  625. {0x05, SvcWrap<UnmapMemory>, "UnmapMemory"},
  626. {0x06, SvcWrap<QueryMemory>, "QueryMemory"},
  627. {0x07, SvcWrap<ExitProcess>, "ExitProcess"},
  628. {0x08, SvcWrap<CreateThread>, "CreateThread"},
  629. {0x09, SvcWrap<StartThread>, "StartThread"},
  630. {0x0A, SvcWrap<ExitThread>, "ExitThread"},
  631. {0x0B, SvcWrap<SleepThread>, "SleepThread"},
  632. {0x0C, SvcWrap<GetThreadPriority>, "GetThreadPriority"},
  633. {0x0D, SvcWrap<SetThreadPriority>, "SetThreadPriority"},
  634. {0x0E, SvcWrap<GetThreadCoreMask>, "GetThreadCoreMask"},
  635. {0x0F, SvcWrap<SetThreadCoreMask>, "SetThreadCoreMask"},
  636. {0x10, SvcWrap<GetCurrentProcessorNumber>, "GetCurrentProcessorNumber"},
  637. {0x11, nullptr, "SignalEvent"},
  638. {0x12, SvcWrap<ClearEvent>, "ClearEvent"},
  639. {0x13, SvcWrap<MapSharedMemory>, "MapSharedMemory"},
  640. {0x14, SvcWrap<UnmapSharedMemory>, "UnmapSharedMemory"},
  641. {0x15, SvcWrap<CreateTransferMemory>, "CreateTransferMemory"},
  642. {0x16, SvcWrap<CloseHandle>, "CloseHandle"},
  643. {0x17, SvcWrap<ResetSignal>, "ResetSignal"},
  644. {0x18, SvcWrap<WaitSynchronization>, "WaitSynchronization"},
  645. {0x19, SvcWrap<CancelSynchronization>, "CancelSynchronization"},
  646. {0x1A, SvcWrap<ArbitrateLock>, "ArbitrateLock"},
  647. {0x1B, SvcWrap<ArbitrateUnlock>, "ArbitrateUnlock"},
  648. {0x1C, SvcWrap<WaitProcessWideKeyAtomic>, "WaitProcessWideKeyAtomic"},
  649. {0x1D, SvcWrap<SignalProcessWideKey>, "SignalProcessWideKey"},
  650. {0x1E, SvcWrap<GetSystemTick>, "GetSystemTick"},
  651. {0x1F, SvcWrap<ConnectToNamedPort>, "ConnectToNamedPort"},
  652. {0x20, nullptr, "SendSyncRequestLight"},
  653. {0x21, SvcWrap<SendSyncRequest>, "SendSyncRequest"},
  654. {0x22, nullptr, "SendSyncRequestWithUserBuffer"},
  655. {0x23, nullptr, "SendAsyncRequestWithUserBuffer"},
  656. {0x24, SvcWrap<GetProcessId>, "GetProcessId"},
  657. {0x25, SvcWrap<GetThreadId>, "GetThreadId"},
  658. {0x26, SvcWrap<Break>, "Break"},
  659. {0x27, SvcWrap<OutputDebugString>, "OutputDebugString"},
  660. {0x28, nullptr, "ReturnFromException"},
  661. {0x29, SvcWrap<GetInfo>, "GetInfo"},
  662. {0x2A, nullptr, "FlushEntireDataCache"},
  663. {0x2B, nullptr, "FlushDataCache"},
  664. {0x2C, nullptr, "MapPhysicalMemory"},
  665. {0x2D, nullptr, "UnmapPhysicalMemory"},
  666. {0x2E, nullptr, "GetNextThreadInfo"},
  667. {0x2F, nullptr, "GetLastThreadInfo"},
  668. {0x30, nullptr, "GetResourceLimitLimitValue"},
  669. {0x31, nullptr, "GetResourceLimitCurrentValue"},
  670. {0x32, SvcWrap<SetThreadActivity>, "SetThreadActivity"},
  671. {0x33, SvcWrap<GetThreadContext>, "GetThreadContext"},
  672. {0x34, nullptr, "WaitForAddress"},
  673. {0x35, nullptr, "SignalToAddress"},
  674. {0x36, nullptr, "Unknown"},
  675. {0x37, nullptr, "Unknown"},
  676. {0x38, nullptr, "Unknown"},
  677. {0x39, nullptr, "Unknown"},
  678. {0x3A, nullptr, "Unknown"},
  679. {0x3B, nullptr, "Unknown"},
  680. {0x3C, nullptr, "DumpInfo"},
  681. {0x3D, nullptr, "DumpInfoNew"},
  682. {0x3E, nullptr, "Unknown"},
  683. {0x3F, nullptr, "Unknown"},
  684. {0x40, nullptr, "CreateSession"},
  685. {0x41, nullptr, "AcceptSession"},
  686. {0x42, nullptr, "ReplyAndReceiveLight"},
  687. {0x43, nullptr, "ReplyAndReceive"},
  688. {0x44, nullptr, "ReplyAndReceiveWithUserBuffer"},
  689. {0x45, nullptr, "CreateEvent"},
  690. {0x46, nullptr, "Unknown"},
  691. {0x47, nullptr, "Unknown"},
  692. {0x48, nullptr, "AllocateUnsafeMemory"},
  693. {0x49, nullptr, "FreeUnsafeMemory"},
  694. {0x4A, nullptr, "SetUnsafeAllocationLimit"},
  695. {0x4B, nullptr, "CreateJitMemory"},
  696. {0x4C, nullptr, "MapJitMemory"},
  697. {0x4D, nullptr, "SleepSystem"},
  698. {0x4E, nullptr, "ReadWriteRegister"},
  699. {0x4F, nullptr, "SetProcessActivity"},
  700. {0x50, SvcWrap<CreateSharedMemory>, "CreateSharedMemory"},
  701. {0x51, nullptr, "MapTransferMemory"},
  702. {0x52, nullptr, "UnmapTransferMemory"},
  703. {0x53, nullptr, "CreateInterruptEvent"},
  704. {0x54, nullptr, "QueryPhysicalAddress"},
  705. {0x55, nullptr, "QueryIoMapping"},
  706. {0x56, nullptr, "CreateDeviceAddressSpace"},
  707. {0x57, nullptr, "AttachDeviceAddressSpace"},
  708. {0x58, nullptr, "DetachDeviceAddressSpace"},
  709. {0x59, nullptr, "MapDeviceAddressSpaceByForce"},
  710. {0x5A, nullptr, "MapDeviceAddressSpaceAligned"},
  711. {0x5B, nullptr, "MapDeviceAddressSpace"},
  712. {0x5C, nullptr, "UnmapDeviceAddressSpace"},
  713. {0x5D, nullptr, "InvalidateProcessDataCache"},
  714. {0x5E, nullptr, "StoreProcessDataCache"},
  715. {0x5F, nullptr, "FlushProcessDataCache"},
  716. {0x60, nullptr, "DebugActiveProcess"},
  717. {0x61, nullptr, "BreakDebugProcess"},
  718. {0x62, nullptr, "TerminateDebugProcess"},
  719. {0x63, nullptr, "GetDebugEvent"},
  720. {0x64, nullptr, "ContinueDebugEvent"},
  721. {0x65, nullptr, "GetProcessList"},
  722. {0x66, nullptr, "GetThreadList"},
  723. {0x67, nullptr, "GetDebugThreadContext"},
  724. {0x68, nullptr, "SetDebugThreadContext"},
  725. {0x69, nullptr, "QueryDebugProcessMemory"},
  726. {0x6A, nullptr, "ReadDebugProcessMemory"},
  727. {0x6B, nullptr, "WriteDebugProcessMemory"},
  728. {0x6C, nullptr, "SetHardwareBreakPoint"},
  729. {0x6D, nullptr, "GetDebugThreadParam"},
  730. {0x6E, nullptr, "Unknown"},
  731. {0x6F, nullptr, "GetMemoryInfo"},
  732. {0x70, nullptr, "CreatePort"},
  733. {0x71, nullptr, "ManageNamedPort"},
  734. {0x72, nullptr, "ConnectToPort"},
  735. {0x73, nullptr, "SetProcessMemoryPermission"},
  736. {0x74, nullptr, "MapProcessMemory"},
  737. {0x75, nullptr, "UnmapProcessMemory"},
  738. {0x76, nullptr, "QueryProcessMemory"},
  739. {0x77, nullptr, "MapProcessCodeMemory"},
  740. {0x78, nullptr, "UnmapProcessCodeMemory"},
  741. {0x79, nullptr, "CreateProcess"},
  742. {0x7A, nullptr, "StartProcess"},
  743. {0x7B, nullptr, "TerminateProcess"},
  744. {0x7C, nullptr, "GetProcessInfo"},
  745. {0x7D, nullptr, "CreateResourceLimit"},
  746. {0x7E, nullptr, "SetResourceLimitLimitValue"},
  747. {0x7F, nullptr, "CallSecureMonitor"},
  748. };
  749. static const FunctionDef* GetSVCInfo(u32 func_num) {
  750. if (func_num >= std::size(SVC_Table)) {
  751. NGLOG_ERROR(Kernel_SVC, "Unknown svc={:#04X}", func_num);
  752. return nullptr;
  753. }
  754. return &SVC_Table[func_num];
  755. }
  756. MICROPROFILE_DEFINE(Kernel_SVC, "Kernel", "SVC", MP_RGB(70, 200, 70));
  757. void CallSVC(u32 immediate) {
  758. MICROPROFILE_SCOPE(Kernel_SVC);
  759. // Lock the global kernel mutex when we enter the kernel HLE.
  760. std::lock_guard<std::recursive_mutex> lock(HLE::g_hle_lock);
  761. const FunctionDef* info = GetSVCInfo(immediate);
  762. if (info) {
  763. if (info->func) {
  764. info->func();
  765. } else {
  766. NGLOG_CRITICAL(Kernel_SVC, "Unimplemented SVC function {}(..)", info->name);
  767. }
  768. } else {
  769. NGLOG_CRITICAL(Kernel_SVC, "Unknown SVC function {:#X}", immediate);
  770. }
  771. }
  772. } // namespace Kernel