svc.cpp 89 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 <mutex>
  8. #include <vector>
  9. #include "common/alignment.h"
  10. #include "common/assert.h"
  11. #include "common/logging/log.h"
  12. #include "common/microprofile.h"
  13. #include "common/string_util.h"
  14. #include "core/arm/exclusive_monitor.h"
  15. #include "core/core.h"
  16. #include "core/core_cpu.h"
  17. #include "core/core_timing.h"
  18. #include "core/hle/kernel/address_arbiter.h"
  19. #include "core/hle/kernel/client_port.h"
  20. #include "core/hle/kernel/client_session.h"
  21. #include "core/hle/kernel/errors.h"
  22. #include "core/hle/kernel/handle_table.h"
  23. #include "core/hle/kernel/kernel.h"
  24. #include "core/hle/kernel/mutex.h"
  25. #include "core/hle/kernel/process.h"
  26. #include "core/hle/kernel/readable_event.h"
  27. #include "core/hle/kernel/resource_limit.h"
  28. #include "core/hle/kernel/scheduler.h"
  29. #include "core/hle/kernel/shared_memory.h"
  30. #include "core/hle/kernel/svc.h"
  31. #include "core/hle/kernel/svc_wrap.h"
  32. #include "core/hle/kernel/thread.h"
  33. #include "core/hle/kernel/transfer_memory.h"
  34. #include "core/hle/kernel/writable_event.h"
  35. #include "core/hle/lock.h"
  36. #include "core/hle/result.h"
  37. #include "core/hle/service/service.h"
  38. #include "core/memory.h"
  39. namespace Kernel {
  40. namespace {
  41. // Checks if address + size is greater than the given address
  42. // This can return false if the size causes an overflow of a 64-bit type
  43. // or if the given size is zero.
  44. constexpr bool IsValidAddressRange(VAddr address, u64 size) {
  45. return address + size > address;
  46. }
  47. // 8 GiB
  48. constexpr u64 MAIN_MEMORY_SIZE = 0x200000000;
  49. // Helper function that performs the common sanity checks for svcMapMemory
  50. // and svcUnmapMemory. This is doable, as both functions perform their sanitizing
  51. // in the same order.
  52. ResultCode MapUnmapMemorySanityChecks(const VMManager& vm_manager, VAddr dst_addr, VAddr src_addr,
  53. u64 size) {
  54. if (!Common::Is4KBAligned(dst_addr)) {
  55. LOG_ERROR(Kernel_SVC, "Destination address is not aligned to 4KB, 0x{:016X}", dst_addr);
  56. return ERR_INVALID_ADDRESS;
  57. }
  58. if (!Common::Is4KBAligned(src_addr)) {
  59. LOG_ERROR(Kernel_SVC, "Source address is not aligned to 4KB, 0x{:016X}", src_addr);
  60. return ERR_INVALID_SIZE;
  61. }
  62. if (size == 0) {
  63. LOG_ERROR(Kernel_SVC, "Size is 0");
  64. return ERR_INVALID_SIZE;
  65. }
  66. if (!Common::Is4KBAligned(size)) {
  67. LOG_ERROR(Kernel_SVC, "Size is not aligned to 4KB, 0x{:016X}", size);
  68. return ERR_INVALID_SIZE;
  69. }
  70. if (!IsValidAddressRange(dst_addr, size)) {
  71. LOG_ERROR(Kernel_SVC,
  72. "Destination is not a valid address range, addr=0x{:016X}, size=0x{:016X}",
  73. dst_addr, size);
  74. return ERR_INVALID_ADDRESS_STATE;
  75. }
  76. if (!IsValidAddressRange(src_addr, size)) {
  77. LOG_ERROR(Kernel_SVC, "Source is not a valid address range, addr=0x{:016X}, size=0x{:016X}",
  78. src_addr, size);
  79. return ERR_INVALID_ADDRESS_STATE;
  80. }
  81. if (!vm_manager.IsWithinAddressSpace(src_addr, size)) {
  82. LOG_ERROR(Kernel_SVC,
  83. "Source is not within the address space, addr=0x{:016X}, size=0x{:016X}",
  84. src_addr, size);
  85. return ERR_INVALID_ADDRESS_STATE;
  86. }
  87. if (!vm_manager.IsWithinNewMapRegion(dst_addr, size)) {
  88. LOG_ERROR(Kernel_SVC,
  89. "Destination is not within the new map region, addr=0x{:016X}, size=0x{:016X}",
  90. dst_addr, size);
  91. return ERR_INVALID_MEMORY_RANGE;
  92. }
  93. const VAddr dst_end_address = dst_addr + size;
  94. if (dst_end_address > vm_manager.GetHeapRegionBaseAddress() &&
  95. vm_manager.GetHeapRegionEndAddress() > dst_addr) {
  96. LOG_ERROR(Kernel_SVC,
  97. "Destination does not fit within the heap region, addr=0x{:016X}, "
  98. "size=0x{:016X}, end_addr=0x{:016X}",
  99. dst_addr, size, dst_end_address);
  100. return ERR_INVALID_MEMORY_RANGE;
  101. }
  102. if (dst_end_address > vm_manager.GetMapRegionBaseAddress() &&
  103. vm_manager.GetMapRegionEndAddress() > dst_addr) {
  104. LOG_ERROR(Kernel_SVC,
  105. "Destination does not fit within the map region, addr=0x{:016X}, "
  106. "size=0x{:016X}, end_addr=0x{:016X}",
  107. dst_addr, size, dst_end_address);
  108. return ERR_INVALID_MEMORY_RANGE;
  109. }
  110. return RESULT_SUCCESS;
  111. }
  112. enum class ResourceLimitValueType {
  113. CurrentValue,
  114. LimitValue,
  115. };
  116. ResultVal<s64> RetrieveResourceLimitValue(Core::System& system, Handle resource_limit,
  117. u32 resource_type, ResourceLimitValueType value_type) {
  118. const auto type = static_cast<ResourceType>(resource_type);
  119. if (!IsValidResourceType(type)) {
  120. LOG_ERROR(Kernel_SVC, "Invalid resource limit type: '{}'", resource_type);
  121. return ERR_INVALID_ENUM_VALUE;
  122. }
  123. const auto* const current_process = system.Kernel().CurrentProcess();
  124. ASSERT(current_process != nullptr);
  125. const auto resource_limit_object =
  126. current_process->GetHandleTable().Get<ResourceLimit>(resource_limit);
  127. if (!resource_limit_object) {
  128. LOG_ERROR(Kernel_SVC, "Handle to non-existent resource limit instance used. Handle={:08X}",
  129. resource_limit);
  130. return ERR_INVALID_HANDLE;
  131. }
  132. if (value_type == ResourceLimitValueType::CurrentValue) {
  133. return MakeResult(resource_limit_object->GetCurrentResourceValue(type));
  134. }
  135. return MakeResult(resource_limit_object->GetMaxResourceValue(type));
  136. }
  137. } // Anonymous namespace
  138. /// Set the process heap to a given Size. It can both extend and shrink the heap.
  139. static ResultCode SetHeapSize(Core::System& system, VAddr* heap_addr, u64 heap_size) {
  140. LOG_TRACE(Kernel_SVC, "called, heap_size=0x{:X}", heap_size);
  141. // Size must be a multiple of 0x200000 (2MB) and be equal to or less than 8GB.
  142. if ((heap_size % 0x200000) != 0) {
  143. LOG_ERROR(Kernel_SVC, "The heap size is not a multiple of 2MB, heap_size=0x{:016X}",
  144. heap_size);
  145. return ERR_INVALID_SIZE;
  146. }
  147. if (heap_size >= 0x200000000) {
  148. LOG_ERROR(Kernel_SVC, "The heap size is not less than 8GB, heap_size=0x{:016X}", heap_size);
  149. return ERR_INVALID_SIZE;
  150. }
  151. auto& vm_manager = system.Kernel().CurrentProcess()->VMManager();
  152. const auto alloc_result = vm_manager.SetHeapSize(heap_size);
  153. if (alloc_result.Failed()) {
  154. return alloc_result.Code();
  155. }
  156. *heap_addr = *alloc_result;
  157. return RESULT_SUCCESS;
  158. }
  159. static ResultCode SetMemoryPermission(Core::System& system, VAddr addr, u64 size, u32 prot) {
  160. LOG_TRACE(Kernel_SVC, "called, addr=0x{:X}, size=0x{:X}, prot=0x{:X}", addr, size, prot);
  161. if (!Common::Is4KBAligned(addr)) {
  162. LOG_ERROR(Kernel_SVC, "Address is not aligned to 4KB, addr=0x{:016X}", addr);
  163. return ERR_INVALID_ADDRESS;
  164. }
  165. if (size == 0) {
  166. LOG_ERROR(Kernel_SVC, "Size is 0");
  167. return ERR_INVALID_SIZE;
  168. }
  169. if (!Common::Is4KBAligned(size)) {
  170. LOG_ERROR(Kernel_SVC, "Size is not aligned to 4KB, size=0x{:016X}", size);
  171. return ERR_INVALID_SIZE;
  172. }
  173. if (!IsValidAddressRange(addr, size)) {
  174. LOG_ERROR(Kernel_SVC, "Region is not a valid address range, addr=0x{:016X}, size=0x{:016X}",
  175. addr, size);
  176. return ERR_INVALID_ADDRESS_STATE;
  177. }
  178. const auto permission = static_cast<MemoryPermission>(prot);
  179. if (permission != MemoryPermission::None && permission != MemoryPermission::Read &&
  180. permission != MemoryPermission::ReadWrite) {
  181. LOG_ERROR(Kernel_SVC, "Invalid memory permission specified, Got memory permission=0x{:08X}",
  182. static_cast<u32>(permission));
  183. return ERR_INVALID_MEMORY_PERMISSIONS;
  184. }
  185. auto* const current_process = system.Kernel().CurrentProcess();
  186. auto& vm_manager = current_process->VMManager();
  187. if (!vm_manager.IsWithinAddressSpace(addr, size)) {
  188. LOG_ERROR(Kernel_SVC,
  189. "Source is not within the address space, addr=0x{:016X}, size=0x{:016X}", addr,
  190. size);
  191. return ERR_INVALID_ADDRESS_STATE;
  192. }
  193. const VMManager::VMAHandle iter = vm_manager.FindVMA(addr);
  194. if (!vm_manager.IsValidHandle(iter)) {
  195. LOG_ERROR(Kernel_SVC, "Unable to find VMA for address=0x{:016X}", addr);
  196. return ERR_INVALID_ADDRESS_STATE;
  197. }
  198. LOG_WARNING(Kernel_SVC, "Uniformity check on protected memory is not implemented.");
  199. // TODO: Performs a uniformity check to make sure only protected memory is changed (it doesn't
  200. // make sense to allow changing permissions on kernel memory itself, etc).
  201. const auto converted_permissions = SharedMemory::ConvertPermissions(permission);
  202. return vm_manager.ReprotectRange(addr, size, converted_permissions);
  203. }
  204. static ResultCode SetMemoryAttribute(Core::System& system, VAddr address, u64 size, u32 mask,
  205. u32 attribute) {
  206. LOG_DEBUG(Kernel_SVC,
  207. "called, address=0x{:016X}, size=0x{:X}, mask=0x{:08X}, attribute=0x{:08X}", address,
  208. size, mask, attribute);
  209. if (!Common::Is4KBAligned(address)) {
  210. LOG_ERROR(Kernel_SVC, "Address not page aligned (0x{:016X})", address);
  211. return ERR_INVALID_ADDRESS;
  212. }
  213. if (size == 0 || !Common::Is4KBAligned(size)) {
  214. LOG_ERROR(Kernel_SVC, "Invalid size (0x{:X}). Size must be non-zero and page aligned.",
  215. size);
  216. return ERR_INVALID_ADDRESS;
  217. }
  218. if (!IsValidAddressRange(address, size)) {
  219. LOG_ERROR(Kernel_SVC, "Address range overflowed (Address: 0x{:016X}, Size: 0x{:016X})",
  220. address, size);
  221. return ERR_INVALID_ADDRESS_STATE;
  222. }
  223. const auto mem_attribute = static_cast<MemoryAttribute>(attribute);
  224. const auto mem_mask = static_cast<MemoryAttribute>(mask);
  225. const auto attribute_with_mask = mem_attribute | mem_mask;
  226. if (attribute_with_mask != mem_mask) {
  227. LOG_ERROR(Kernel_SVC,
  228. "Memory attribute doesn't match the given mask (Attribute: 0x{:X}, Mask: {:X}",
  229. attribute, mask);
  230. return ERR_INVALID_COMBINATION;
  231. }
  232. if ((attribute_with_mask | MemoryAttribute::Uncached) != MemoryAttribute::Uncached) {
  233. LOG_ERROR(Kernel_SVC, "Specified attribute isn't equal to MemoryAttributeUncached (8).");
  234. return ERR_INVALID_COMBINATION;
  235. }
  236. auto& vm_manager = system.Kernel().CurrentProcess()->VMManager();
  237. if (!vm_manager.IsWithinAddressSpace(address, size)) {
  238. LOG_ERROR(Kernel_SVC,
  239. "Given address (0x{:016X}) is outside the bounds of the address space.", address);
  240. return ERR_INVALID_ADDRESS_STATE;
  241. }
  242. return vm_manager.SetMemoryAttribute(address, size, mem_mask, mem_attribute);
  243. }
  244. /// Maps a memory range into a different range.
  245. static ResultCode MapMemory(Core::System& system, VAddr dst_addr, VAddr src_addr, u64 size) {
  246. LOG_TRACE(Kernel_SVC, "called, dst_addr=0x{:X}, src_addr=0x{:X}, size=0x{:X}", dst_addr,
  247. src_addr, size);
  248. auto& vm_manager = system.Kernel().CurrentProcess()->VMManager();
  249. const auto result = MapUnmapMemorySanityChecks(vm_manager, dst_addr, src_addr, size);
  250. if (result.IsError()) {
  251. return result;
  252. }
  253. return vm_manager.MirrorMemory(dst_addr, src_addr, size, MemoryState::Stack);
  254. }
  255. /// Unmaps a region that was previously mapped with svcMapMemory
  256. static ResultCode UnmapMemory(Core::System& system, VAddr dst_addr, VAddr src_addr, u64 size) {
  257. LOG_TRACE(Kernel_SVC, "called, dst_addr=0x{:X}, src_addr=0x{:X}, size=0x{:X}", dst_addr,
  258. src_addr, size);
  259. auto& vm_manager = system.Kernel().CurrentProcess()->VMManager();
  260. const auto result = MapUnmapMemorySanityChecks(vm_manager, dst_addr, src_addr, size);
  261. if (result.IsError()) {
  262. return result;
  263. }
  264. return vm_manager.UnmapRange(dst_addr, size);
  265. }
  266. /// Connect to an OS service given the port name, returns the handle to the port to out
  267. static ResultCode ConnectToNamedPort(Core::System& system, Handle* out_handle,
  268. VAddr port_name_address) {
  269. if (!Memory::IsValidVirtualAddress(port_name_address)) {
  270. LOG_ERROR(Kernel_SVC,
  271. "Port Name Address is not a valid virtual address, port_name_address=0x{:016X}",
  272. port_name_address);
  273. return ERR_NOT_FOUND;
  274. }
  275. static constexpr std::size_t PortNameMaxLength = 11;
  276. // Read 1 char beyond the max allowed port name to detect names that are too long.
  277. std::string port_name = Memory::ReadCString(port_name_address, PortNameMaxLength + 1);
  278. if (port_name.size() > PortNameMaxLength) {
  279. LOG_ERROR(Kernel_SVC, "Port name is too long, expected {} but got {}", PortNameMaxLength,
  280. port_name.size());
  281. return ERR_OUT_OF_RANGE;
  282. }
  283. LOG_TRACE(Kernel_SVC, "called port_name={}", port_name);
  284. auto& kernel = system.Kernel();
  285. const auto it = kernel.FindNamedPort(port_name);
  286. if (!kernel.IsValidNamedPort(it)) {
  287. LOG_WARNING(Kernel_SVC, "tried to connect to unknown port: {}", port_name);
  288. return ERR_NOT_FOUND;
  289. }
  290. auto client_port = it->second;
  291. SharedPtr<ClientSession> client_session;
  292. CASCADE_RESULT(client_session, client_port->Connect());
  293. // Return the client session
  294. auto& handle_table = kernel.CurrentProcess()->GetHandleTable();
  295. CASCADE_RESULT(*out_handle, handle_table.Create(client_session));
  296. return RESULT_SUCCESS;
  297. }
  298. /// Makes a blocking IPC call to an OS service.
  299. static ResultCode SendSyncRequest(Core::System& system, Handle handle) {
  300. const auto& handle_table = system.Kernel().CurrentProcess()->GetHandleTable();
  301. SharedPtr<ClientSession> session = handle_table.Get<ClientSession>(handle);
  302. if (!session) {
  303. LOG_ERROR(Kernel_SVC, "called with invalid handle=0x{:08X}", handle);
  304. return ERR_INVALID_HANDLE;
  305. }
  306. LOG_TRACE(Kernel_SVC, "called handle=0x{:08X}({})", handle, session->GetName());
  307. system.PrepareReschedule();
  308. // TODO(Subv): svcSendSyncRequest should put the caller thread to sleep while the server
  309. // responds and cause a reschedule.
  310. return session->SendSyncRequest(system.CurrentScheduler().GetCurrentThread());
  311. }
  312. /// Get the ID for the specified thread.
  313. static ResultCode GetThreadId(Core::System& system, u64* thread_id, Handle thread_handle) {
  314. LOG_TRACE(Kernel_SVC, "called thread=0x{:08X}", thread_handle);
  315. const auto& handle_table = system.Kernel().CurrentProcess()->GetHandleTable();
  316. const SharedPtr<Thread> thread = handle_table.Get<Thread>(thread_handle);
  317. if (!thread) {
  318. LOG_ERROR(Kernel_SVC, "Thread handle does not exist, handle=0x{:08X}", thread_handle);
  319. return ERR_INVALID_HANDLE;
  320. }
  321. *thread_id = thread->GetThreadID();
  322. return RESULT_SUCCESS;
  323. }
  324. /// Gets the ID of the specified process or a specified thread's owning process.
  325. static ResultCode GetProcessId(Core::System& system, u64* process_id, Handle handle) {
  326. LOG_DEBUG(Kernel_SVC, "called handle=0x{:08X}", handle);
  327. const auto& handle_table = system.Kernel().CurrentProcess()->GetHandleTable();
  328. const SharedPtr<Process> process = handle_table.Get<Process>(handle);
  329. if (process) {
  330. *process_id = process->GetProcessID();
  331. return RESULT_SUCCESS;
  332. }
  333. const SharedPtr<Thread> thread = handle_table.Get<Thread>(handle);
  334. if (thread) {
  335. const Process* const owner_process = thread->GetOwnerProcess();
  336. if (!owner_process) {
  337. LOG_ERROR(Kernel_SVC, "Non-existent owning process encountered.");
  338. return ERR_INVALID_HANDLE;
  339. }
  340. *process_id = owner_process->GetProcessID();
  341. return RESULT_SUCCESS;
  342. }
  343. // NOTE: This should also handle debug objects before returning.
  344. LOG_ERROR(Kernel_SVC, "Handle does not exist, handle=0x{:08X}", handle);
  345. return ERR_INVALID_HANDLE;
  346. }
  347. /// Default thread wakeup callback for WaitSynchronization
  348. static bool DefaultThreadWakeupCallback(ThreadWakeupReason reason, SharedPtr<Thread> thread,
  349. SharedPtr<WaitObject> object, std::size_t index) {
  350. ASSERT(thread->GetStatus() == ThreadStatus::WaitSynchAny);
  351. if (reason == ThreadWakeupReason::Timeout) {
  352. thread->SetWaitSynchronizationResult(RESULT_TIMEOUT);
  353. return true;
  354. }
  355. ASSERT(reason == ThreadWakeupReason::Signal);
  356. thread->SetWaitSynchronizationResult(RESULT_SUCCESS);
  357. thread->SetWaitSynchronizationOutput(static_cast<u32>(index));
  358. return true;
  359. };
  360. /// Wait for the given handles to synchronize, timeout after the specified nanoseconds
  361. static ResultCode WaitSynchronization(Core::System& system, Handle* index, VAddr handles_address,
  362. u64 handle_count, s64 nano_seconds) {
  363. LOG_TRACE(Kernel_SVC, "called handles_address=0x{:X}, handle_count={}, nano_seconds={}",
  364. handles_address, handle_count, nano_seconds);
  365. if (!Memory::IsValidVirtualAddress(handles_address)) {
  366. LOG_ERROR(Kernel_SVC,
  367. "Handle address is not a valid virtual address, handle_address=0x{:016X}",
  368. handles_address);
  369. return ERR_INVALID_POINTER;
  370. }
  371. static constexpr u64 MaxHandles = 0x40;
  372. if (handle_count > MaxHandles) {
  373. LOG_ERROR(Kernel_SVC, "Handle count specified is too large, expected {} but got {}",
  374. MaxHandles, handle_count);
  375. return ERR_OUT_OF_RANGE;
  376. }
  377. auto* const thread = system.CurrentScheduler().GetCurrentThread();
  378. using ObjectPtr = Thread::ThreadWaitObjects::value_type;
  379. Thread::ThreadWaitObjects objects(handle_count);
  380. const auto& handle_table = system.Kernel().CurrentProcess()->GetHandleTable();
  381. for (u64 i = 0; i < handle_count; ++i) {
  382. const Handle handle = Memory::Read32(handles_address + i * sizeof(Handle));
  383. const auto object = handle_table.Get<WaitObject>(handle);
  384. if (object == nullptr) {
  385. LOG_ERROR(Kernel_SVC, "Object is a nullptr");
  386. return ERR_INVALID_HANDLE;
  387. }
  388. objects[i] = object;
  389. }
  390. // Find the first object that is acquirable in the provided list of objects
  391. auto itr = std::find_if(objects.begin(), objects.end(), [thread](const ObjectPtr& object) {
  392. return !object->ShouldWait(thread);
  393. });
  394. if (itr != objects.end()) {
  395. // We found a ready object, acquire it and set the result value
  396. WaitObject* object = itr->get();
  397. object->Acquire(thread);
  398. *index = static_cast<s32>(std::distance(objects.begin(), itr));
  399. return RESULT_SUCCESS;
  400. }
  401. // No objects were ready to be acquired, prepare to suspend the thread.
  402. // If a timeout value of 0 was provided, just return the Timeout error code instead of
  403. // suspending the thread.
  404. if (nano_seconds == 0) {
  405. return RESULT_TIMEOUT;
  406. }
  407. for (auto& object : objects) {
  408. object->AddWaitingThread(thread);
  409. }
  410. thread->SetWaitObjects(std::move(objects));
  411. thread->SetStatus(ThreadStatus::WaitSynchAny);
  412. // Create an event to wake the thread up after the specified nanosecond delay has passed
  413. thread->WakeAfterDelay(nano_seconds);
  414. thread->SetWakeupCallback(DefaultThreadWakeupCallback);
  415. system.CpuCore(thread->GetProcessorID()).PrepareReschedule();
  416. return RESULT_TIMEOUT;
  417. }
  418. /// Resumes a thread waiting on WaitSynchronization
  419. static ResultCode CancelSynchronization(Core::System& system, Handle thread_handle) {
  420. LOG_TRACE(Kernel_SVC, "called thread=0x{:X}", thread_handle);
  421. const auto& handle_table = system.Kernel().CurrentProcess()->GetHandleTable();
  422. const SharedPtr<Thread> thread = handle_table.Get<Thread>(thread_handle);
  423. if (!thread) {
  424. LOG_ERROR(Kernel_SVC, "Thread handle does not exist, thread_handle=0x{:08X}",
  425. thread_handle);
  426. return ERR_INVALID_HANDLE;
  427. }
  428. ASSERT(thread->GetStatus() == ThreadStatus::WaitSynchAny);
  429. thread->SetWaitSynchronizationResult(ERR_SYNCHRONIZATION_CANCELED);
  430. thread->ResumeFromWait();
  431. return RESULT_SUCCESS;
  432. }
  433. /// Attempts to locks a mutex, creating it if it does not already exist
  434. static ResultCode ArbitrateLock(Core::System& system, Handle holding_thread_handle,
  435. VAddr mutex_addr, Handle requesting_thread_handle) {
  436. LOG_TRACE(Kernel_SVC,
  437. "called holding_thread_handle=0x{:08X}, mutex_addr=0x{:X}, "
  438. "requesting_current_thread_handle=0x{:08X}",
  439. holding_thread_handle, mutex_addr, requesting_thread_handle);
  440. if (Memory::IsKernelVirtualAddress(mutex_addr)) {
  441. LOG_ERROR(Kernel_SVC, "Mutex Address is a kernel virtual address, mutex_addr={:016X}",
  442. mutex_addr);
  443. return ERR_INVALID_ADDRESS_STATE;
  444. }
  445. if (!Common::IsWordAligned(mutex_addr)) {
  446. LOG_ERROR(Kernel_SVC, "Mutex Address is not word aligned, mutex_addr={:016X}", mutex_addr);
  447. return ERR_INVALID_ADDRESS;
  448. }
  449. auto* const current_process = system.Kernel().CurrentProcess();
  450. return current_process->GetMutex().TryAcquire(mutex_addr, holding_thread_handle,
  451. requesting_thread_handle);
  452. }
  453. /// Unlock a mutex
  454. static ResultCode ArbitrateUnlock(Core::System& system, VAddr mutex_addr) {
  455. LOG_TRACE(Kernel_SVC, "called mutex_addr=0x{:X}", mutex_addr);
  456. if (Memory::IsKernelVirtualAddress(mutex_addr)) {
  457. LOG_ERROR(Kernel_SVC, "Mutex Address is a kernel virtual address, mutex_addr={:016X}",
  458. mutex_addr);
  459. return ERR_INVALID_ADDRESS_STATE;
  460. }
  461. if (!Common::IsWordAligned(mutex_addr)) {
  462. LOG_ERROR(Kernel_SVC, "Mutex Address is not word aligned, mutex_addr={:016X}", mutex_addr);
  463. return ERR_INVALID_ADDRESS;
  464. }
  465. auto* const current_process = system.Kernel().CurrentProcess();
  466. return current_process->GetMutex().Release(mutex_addr);
  467. }
  468. enum class BreakType : u32 {
  469. Panic = 0,
  470. AssertionFailed = 1,
  471. PreNROLoad = 3,
  472. PostNROLoad = 4,
  473. PreNROUnload = 5,
  474. PostNROUnload = 6,
  475. CppException = 7,
  476. };
  477. struct BreakReason {
  478. union {
  479. u32 raw;
  480. BitField<0, 30, BreakType> break_type;
  481. BitField<31, 1, u32> signal_debugger;
  482. };
  483. };
  484. /// Break program execution
  485. static void Break(Core::System& system, u32 reason, u64 info1, u64 info2) {
  486. BreakReason break_reason{reason};
  487. bool has_dumped_buffer{};
  488. const auto handle_debug_buffer = [&](VAddr addr, u64 sz) {
  489. if (sz == 0 || addr == 0 || has_dumped_buffer) {
  490. return;
  491. }
  492. // This typically is an error code so we're going to assume this is the case
  493. if (sz == sizeof(u32)) {
  494. LOG_CRITICAL(Debug_Emulated, "debug_buffer_err_code={:X}", Memory::Read32(addr));
  495. } else {
  496. // We don't know what's in here so we'll hexdump it
  497. std::vector<u8> debug_buffer(sz);
  498. Memory::ReadBlock(addr, debug_buffer.data(), sz);
  499. std::string hexdump;
  500. for (std::size_t i = 0; i < debug_buffer.size(); i++) {
  501. hexdump += fmt::format("{:02X} ", debug_buffer[i]);
  502. if (i != 0 && i % 16 == 0) {
  503. hexdump += '\n';
  504. }
  505. }
  506. LOG_CRITICAL(Debug_Emulated, "debug_buffer=\n{}", hexdump);
  507. }
  508. has_dumped_buffer = true;
  509. };
  510. switch (break_reason.break_type) {
  511. case BreakType::Panic:
  512. LOG_CRITICAL(Debug_Emulated, "Signalling debugger, PANIC! info1=0x{:016X}, info2=0x{:016X}",
  513. info1, info2);
  514. handle_debug_buffer(info1, info2);
  515. break;
  516. case BreakType::AssertionFailed:
  517. LOG_CRITICAL(Debug_Emulated,
  518. "Signalling debugger, Assertion failed! info1=0x{:016X}, info2=0x{:016X}",
  519. info1, info2);
  520. handle_debug_buffer(info1, info2);
  521. break;
  522. case BreakType::PreNROLoad:
  523. LOG_WARNING(
  524. Debug_Emulated,
  525. "Signalling debugger, Attempting to load an NRO at 0x{:016X} with size 0x{:016X}",
  526. info1, info2);
  527. break;
  528. case BreakType::PostNROLoad:
  529. LOG_WARNING(Debug_Emulated,
  530. "Signalling debugger, Loaded an NRO at 0x{:016X} with size 0x{:016X}", info1,
  531. info2);
  532. break;
  533. case BreakType::PreNROUnload:
  534. LOG_WARNING(
  535. Debug_Emulated,
  536. "Signalling debugger, Attempting to unload an NRO at 0x{:016X} with size 0x{:016X}",
  537. info1, info2);
  538. break;
  539. case BreakType::PostNROUnload:
  540. LOG_WARNING(Debug_Emulated,
  541. "Signalling debugger, Unloaded an NRO at 0x{:016X} with size 0x{:016X}", info1,
  542. info2);
  543. break;
  544. case BreakType::CppException:
  545. LOG_CRITICAL(Debug_Emulated, "Signalling debugger. Uncaught C++ exception encountered.");
  546. break;
  547. default:
  548. LOG_WARNING(
  549. Debug_Emulated,
  550. "Signalling debugger, Unknown break reason {}, info1=0x{:016X}, info2=0x{:016X}",
  551. static_cast<u32>(break_reason.break_type.Value()), info1, info2);
  552. handle_debug_buffer(info1, info2);
  553. break;
  554. }
  555. if (!break_reason.signal_debugger) {
  556. LOG_CRITICAL(
  557. Debug_Emulated,
  558. "Emulated program broke execution! reason=0x{:016X}, info1=0x{:016X}, info2=0x{:016X}",
  559. reason, info1, info2);
  560. handle_debug_buffer(info1, info2);
  561. auto* const current_thread = system.CurrentScheduler().GetCurrentThread();
  562. const auto thread_processor_id = current_thread->GetProcessorID();
  563. system.ArmInterface(static_cast<std::size_t>(thread_processor_id)).LogBacktrace();
  564. ASSERT(false);
  565. system.Kernel().CurrentProcess()->PrepareForTermination();
  566. // Kill the current thread
  567. current_thread->Stop();
  568. system.PrepareReschedule();
  569. }
  570. }
  571. /// Used to output a message on a debug hardware unit - does nothing on a retail unit
  572. static void OutputDebugString([[maybe_unused]] Core::System& system, VAddr address, u64 len) {
  573. if (len == 0) {
  574. return;
  575. }
  576. std::string str(len, '\0');
  577. Memory::ReadBlock(address, str.data(), str.size());
  578. LOG_DEBUG(Debug_Emulated, "{}", str);
  579. }
  580. /// Gets system/memory information for the current process
  581. static ResultCode GetInfo(Core::System& system, u64* result, u64 info_id, u64 handle,
  582. u64 info_sub_id) {
  583. LOG_TRACE(Kernel_SVC, "called info_id=0x{:X}, info_sub_id=0x{:X}, handle=0x{:08X}", info_id,
  584. info_sub_id, handle);
  585. enum class GetInfoType : u64 {
  586. // 1.0.0+
  587. AllowedCPUCoreMask = 0,
  588. AllowedThreadPriorityMask = 1,
  589. MapRegionBaseAddr = 2,
  590. MapRegionSize = 3,
  591. HeapRegionBaseAddr = 4,
  592. HeapRegionSize = 5,
  593. TotalMemoryUsage = 6,
  594. TotalPhysicalMemoryUsed = 7,
  595. IsCurrentProcessBeingDebugged = 8,
  596. RegisterResourceLimit = 9,
  597. IdleTickCount = 10,
  598. RandomEntropy = 11,
  599. PerformanceCounter = 0xF0000002,
  600. // 2.0.0+
  601. ASLRRegionBaseAddr = 12,
  602. ASLRRegionSize = 13,
  603. NewMapRegionBaseAddr = 14,
  604. NewMapRegionSize = 15,
  605. // 3.0.0+
  606. IsVirtualAddressMemoryEnabled = 16,
  607. PersonalMmHeapUsage = 17,
  608. TitleId = 18,
  609. // 4.0.0+
  610. PrivilegedProcessId = 19,
  611. // 5.0.0+
  612. UserExceptionContextAddr = 20,
  613. ThreadTickCount = 0xF0000002,
  614. };
  615. const auto info_id_type = static_cast<GetInfoType>(info_id);
  616. switch (info_id_type) {
  617. case GetInfoType::AllowedCPUCoreMask:
  618. case GetInfoType::AllowedThreadPriorityMask:
  619. case GetInfoType::MapRegionBaseAddr:
  620. case GetInfoType::MapRegionSize:
  621. case GetInfoType::HeapRegionBaseAddr:
  622. case GetInfoType::HeapRegionSize:
  623. case GetInfoType::ASLRRegionBaseAddr:
  624. case GetInfoType::ASLRRegionSize:
  625. case GetInfoType::NewMapRegionBaseAddr:
  626. case GetInfoType::NewMapRegionSize:
  627. case GetInfoType::TotalMemoryUsage:
  628. case GetInfoType::TotalPhysicalMemoryUsed:
  629. case GetInfoType::IsVirtualAddressMemoryEnabled:
  630. case GetInfoType::PersonalMmHeapUsage:
  631. case GetInfoType::TitleId:
  632. case GetInfoType::UserExceptionContextAddr: {
  633. if (info_sub_id != 0) {
  634. return ERR_INVALID_ENUM_VALUE;
  635. }
  636. const auto& current_process_handle_table =
  637. system.Kernel().CurrentProcess()->GetHandleTable();
  638. const auto process = current_process_handle_table.Get<Process>(static_cast<Handle>(handle));
  639. if (!process) {
  640. return ERR_INVALID_HANDLE;
  641. }
  642. switch (info_id_type) {
  643. case GetInfoType::AllowedCPUCoreMask:
  644. *result = process->GetCoreMask();
  645. return RESULT_SUCCESS;
  646. case GetInfoType::AllowedThreadPriorityMask:
  647. *result = process->GetPriorityMask();
  648. return RESULT_SUCCESS;
  649. case GetInfoType::MapRegionBaseAddr:
  650. *result = process->VMManager().GetMapRegionBaseAddress();
  651. return RESULT_SUCCESS;
  652. case GetInfoType::MapRegionSize:
  653. *result = process->VMManager().GetMapRegionSize();
  654. return RESULT_SUCCESS;
  655. case GetInfoType::HeapRegionBaseAddr:
  656. *result = process->VMManager().GetHeapRegionBaseAddress();
  657. return RESULT_SUCCESS;
  658. case GetInfoType::HeapRegionSize:
  659. *result = process->VMManager().GetHeapRegionSize();
  660. return RESULT_SUCCESS;
  661. case GetInfoType::ASLRRegionBaseAddr:
  662. *result = process->VMManager().GetASLRRegionBaseAddress();
  663. return RESULT_SUCCESS;
  664. case GetInfoType::ASLRRegionSize:
  665. *result = process->VMManager().GetASLRRegionSize();
  666. return RESULT_SUCCESS;
  667. case GetInfoType::NewMapRegionBaseAddr:
  668. *result = process->VMManager().GetNewMapRegionBaseAddress();
  669. return RESULT_SUCCESS;
  670. case GetInfoType::NewMapRegionSize:
  671. *result = process->VMManager().GetNewMapRegionSize();
  672. return RESULT_SUCCESS;
  673. case GetInfoType::TotalMemoryUsage:
  674. *result = process->VMManager().GetTotalMemoryUsage();
  675. return RESULT_SUCCESS;
  676. case GetInfoType::TotalPhysicalMemoryUsed:
  677. *result = process->GetTotalPhysicalMemoryUsed();
  678. return RESULT_SUCCESS;
  679. case GetInfoType::IsVirtualAddressMemoryEnabled:
  680. *result = process->IsVirtualMemoryEnabled();
  681. return RESULT_SUCCESS;
  682. case GetInfoType::TitleId:
  683. *result = process->GetTitleID();
  684. return RESULT_SUCCESS;
  685. case GetInfoType::UserExceptionContextAddr:
  686. LOG_WARNING(Kernel_SVC,
  687. "(STUBBED) Attempted to query user exception context address, returned 0");
  688. *result = 0;
  689. return RESULT_SUCCESS;
  690. default:
  691. break;
  692. }
  693. LOG_WARNING(Kernel_SVC, "(STUBBED) Unimplemented svcGetInfo id=0x{:016X}", info_id);
  694. return ERR_INVALID_ENUM_VALUE;
  695. }
  696. case GetInfoType::IsCurrentProcessBeingDebugged:
  697. *result = 0;
  698. return RESULT_SUCCESS;
  699. case GetInfoType::RegisterResourceLimit: {
  700. if (handle != 0) {
  701. return ERR_INVALID_HANDLE;
  702. }
  703. if (info_sub_id != 0) {
  704. return ERR_INVALID_COMBINATION;
  705. }
  706. Process* const current_process = system.Kernel().CurrentProcess();
  707. HandleTable& handle_table = current_process->GetHandleTable();
  708. const auto resource_limit = current_process->GetResourceLimit();
  709. if (!resource_limit) {
  710. *result = KernelHandle::InvalidHandle;
  711. // Yes, the kernel considers this a successful operation.
  712. return RESULT_SUCCESS;
  713. }
  714. const auto table_result = handle_table.Create(resource_limit);
  715. if (table_result.Failed()) {
  716. return table_result.Code();
  717. }
  718. *result = *table_result;
  719. return RESULT_SUCCESS;
  720. }
  721. case GetInfoType::RandomEntropy:
  722. if (handle != 0) {
  723. LOG_ERROR(Kernel_SVC, "Process Handle is non zero, expected 0 result but got {:016X}",
  724. handle);
  725. return ERR_INVALID_HANDLE;
  726. }
  727. if (info_sub_id >= Process::RANDOM_ENTROPY_SIZE) {
  728. LOG_ERROR(Kernel_SVC, "Entropy size is out of range, expected {} but got {}",
  729. Process::RANDOM_ENTROPY_SIZE, info_sub_id);
  730. return ERR_INVALID_COMBINATION;
  731. }
  732. *result = system.Kernel().CurrentProcess()->GetRandomEntropy(info_sub_id);
  733. return RESULT_SUCCESS;
  734. case GetInfoType::PrivilegedProcessId:
  735. LOG_WARNING(Kernel_SVC,
  736. "(STUBBED) Attempted to query privileged process id bounds, returned 0");
  737. *result = 0;
  738. return RESULT_SUCCESS;
  739. case GetInfoType::ThreadTickCount: {
  740. constexpr u64 num_cpus = 4;
  741. if (info_sub_id != 0xFFFFFFFFFFFFFFFF && info_sub_id >= num_cpus) {
  742. LOG_ERROR(Kernel_SVC, "Core count is out of range, expected {} but got {}", num_cpus,
  743. info_sub_id);
  744. return ERR_INVALID_COMBINATION;
  745. }
  746. const auto thread = system.Kernel().CurrentProcess()->GetHandleTable().Get<Thread>(
  747. static_cast<Handle>(handle));
  748. if (!thread) {
  749. LOG_ERROR(Kernel_SVC, "Thread handle does not exist, handle=0x{:08X}",
  750. static_cast<Handle>(handle));
  751. return ERR_INVALID_HANDLE;
  752. }
  753. const auto& core_timing = system.CoreTiming();
  754. const auto& scheduler = system.CurrentScheduler();
  755. const auto* const current_thread = scheduler.GetCurrentThread();
  756. const bool same_thread = current_thread == thread;
  757. const u64 prev_ctx_ticks = scheduler.GetLastContextSwitchTicks();
  758. u64 out_ticks = 0;
  759. if (same_thread && info_sub_id == 0xFFFFFFFFFFFFFFFF) {
  760. const u64 thread_ticks = current_thread->GetTotalCPUTimeTicks();
  761. out_ticks = thread_ticks + (core_timing.GetTicks() - prev_ctx_ticks);
  762. } else if (same_thread && info_sub_id == system.CurrentCoreIndex()) {
  763. out_ticks = core_timing.GetTicks() - prev_ctx_ticks;
  764. }
  765. *result = out_ticks;
  766. return RESULT_SUCCESS;
  767. }
  768. default:
  769. LOG_WARNING(Kernel_SVC, "(STUBBED) Unimplemented svcGetInfo id=0x{:016X}", info_id);
  770. return ERR_INVALID_ENUM_VALUE;
  771. }
  772. }
  773. /// Sets the thread activity
  774. static ResultCode SetThreadActivity(Core::System& system, Handle handle, u32 activity) {
  775. LOG_DEBUG(Kernel_SVC, "called, handle=0x{:08X}, activity=0x{:08X}", handle, activity);
  776. if (activity > static_cast<u32>(ThreadActivity::Paused)) {
  777. return ERR_INVALID_ENUM_VALUE;
  778. }
  779. const auto* current_process = system.Kernel().CurrentProcess();
  780. const SharedPtr<Thread> thread = current_process->GetHandleTable().Get<Thread>(handle);
  781. if (!thread) {
  782. LOG_ERROR(Kernel_SVC, "Thread handle does not exist, handle=0x{:08X}", handle);
  783. return ERR_INVALID_HANDLE;
  784. }
  785. if (thread->GetOwnerProcess() != current_process) {
  786. LOG_ERROR(Kernel_SVC,
  787. "The current process does not own the current thread, thread_handle={:08X} "
  788. "thread_pid={}, "
  789. "current_process_pid={}",
  790. handle, thread->GetOwnerProcess()->GetProcessID(),
  791. current_process->GetProcessID());
  792. return ERR_INVALID_HANDLE;
  793. }
  794. if (thread == system.CurrentScheduler().GetCurrentThread()) {
  795. LOG_ERROR(Kernel_SVC, "The thread handle specified is the current running thread");
  796. return ERR_BUSY;
  797. }
  798. thread->SetActivity(static_cast<ThreadActivity>(activity));
  799. return RESULT_SUCCESS;
  800. }
  801. /// Gets the thread context
  802. static ResultCode GetThreadContext(Core::System& system, VAddr thread_context, Handle handle) {
  803. LOG_DEBUG(Kernel_SVC, "called, context=0x{:08X}, thread=0x{:X}", thread_context, handle);
  804. const auto* current_process = system.Kernel().CurrentProcess();
  805. const SharedPtr<Thread> thread = current_process->GetHandleTable().Get<Thread>(handle);
  806. if (!thread) {
  807. LOG_ERROR(Kernel_SVC, "Thread handle does not exist, handle=0x{:08X}", handle);
  808. return ERR_INVALID_HANDLE;
  809. }
  810. if (thread->GetOwnerProcess() != current_process) {
  811. LOG_ERROR(Kernel_SVC,
  812. "The current process does not own the current thread, thread_handle={:08X} "
  813. "thread_pid={}, "
  814. "current_process_pid={}",
  815. handle, thread->GetOwnerProcess()->GetProcessID(),
  816. current_process->GetProcessID());
  817. return ERR_INVALID_HANDLE;
  818. }
  819. if (thread == system.CurrentScheduler().GetCurrentThread()) {
  820. LOG_ERROR(Kernel_SVC, "The thread handle specified is the current running thread");
  821. return ERR_BUSY;
  822. }
  823. Core::ARM_Interface::ThreadContext ctx = thread->GetContext();
  824. // Mask away mode bits, interrupt bits, IL bit, and other reserved bits.
  825. ctx.pstate &= 0xFF0FFE20;
  826. // If 64-bit, we can just write the context registers directly and we're good.
  827. // However, if 32-bit, we have to ensure some registers are zeroed out.
  828. if (!current_process->Is64BitProcess()) {
  829. std::fill(ctx.cpu_registers.begin() + 15, ctx.cpu_registers.end(), 0);
  830. std::fill(ctx.vector_registers.begin() + 16, ctx.vector_registers.end(), u128{});
  831. }
  832. Memory::WriteBlock(thread_context, &ctx, sizeof(ctx));
  833. return RESULT_SUCCESS;
  834. }
  835. /// Gets the priority for the specified thread
  836. static ResultCode GetThreadPriority(Core::System& system, u32* priority, Handle handle) {
  837. LOG_TRACE(Kernel_SVC, "called");
  838. const auto& handle_table = system.Kernel().CurrentProcess()->GetHandleTable();
  839. const SharedPtr<Thread> thread = handle_table.Get<Thread>(handle);
  840. if (!thread) {
  841. LOG_ERROR(Kernel_SVC, "Thread handle does not exist, handle=0x{:08X}", handle);
  842. return ERR_INVALID_HANDLE;
  843. }
  844. *priority = thread->GetPriority();
  845. return RESULT_SUCCESS;
  846. }
  847. /// Sets the priority for the specified thread
  848. static ResultCode SetThreadPriority(Core::System& system, Handle handle, u32 priority) {
  849. LOG_TRACE(Kernel_SVC, "called");
  850. if (priority > THREADPRIO_LOWEST) {
  851. LOG_ERROR(
  852. Kernel_SVC,
  853. "An invalid priority was specified, expected {} but got {} for thread_handle={:08X}",
  854. THREADPRIO_LOWEST, priority, handle);
  855. return ERR_INVALID_THREAD_PRIORITY;
  856. }
  857. const auto* const current_process = system.Kernel().CurrentProcess();
  858. SharedPtr<Thread> thread = current_process->GetHandleTable().Get<Thread>(handle);
  859. if (!thread) {
  860. LOG_ERROR(Kernel_SVC, "Thread handle does not exist, handle=0x{:08X}", handle);
  861. return ERR_INVALID_HANDLE;
  862. }
  863. thread->SetPriority(priority);
  864. system.CpuCore(thread->GetProcessorID()).PrepareReschedule();
  865. return RESULT_SUCCESS;
  866. }
  867. /// Get which CPU core is executing the current thread
  868. static u32 GetCurrentProcessorNumber(Core::System& system) {
  869. LOG_TRACE(Kernel_SVC, "called");
  870. return system.CurrentScheduler().GetCurrentThread()->GetProcessorID();
  871. }
  872. static ResultCode MapSharedMemory(Core::System& system, Handle shared_memory_handle, VAddr addr,
  873. u64 size, u32 permissions) {
  874. LOG_TRACE(Kernel_SVC,
  875. "called, shared_memory_handle=0x{:X}, addr=0x{:X}, size=0x{:X}, permissions=0x{:08X}",
  876. shared_memory_handle, addr, size, permissions);
  877. if (!Common::Is4KBAligned(addr)) {
  878. LOG_ERROR(Kernel_SVC, "Address is not aligned to 4KB, addr=0x{:016X}", addr);
  879. return ERR_INVALID_ADDRESS;
  880. }
  881. if (size == 0) {
  882. LOG_ERROR(Kernel_SVC, "Size is 0");
  883. return ERR_INVALID_SIZE;
  884. }
  885. if (!Common::Is4KBAligned(size)) {
  886. LOG_ERROR(Kernel_SVC, "Size is not aligned to 4KB, size=0x{:016X}", size);
  887. return ERR_INVALID_SIZE;
  888. }
  889. if (!IsValidAddressRange(addr, size)) {
  890. LOG_ERROR(Kernel_SVC, "Region is not a valid address range, addr=0x{:016X}, size=0x{:016X}",
  891. addr, size);
  892. return ERR_INVALID_ADDRESS_STATE;
  893. }
  894. const auto permissions_type = static_cast<MemoryPermission>(permissions);
  895. if (permissions_type != MemoryPermission::Read &&
  896. permissions_type != MemoryPermission::ReadWrite) {
  897. LOG_ERROR(Kernel_SVC, "Expected Read or ReadWrite permission but got permissions=0x{:08X}",
  898. permissions);
  899. return ERR_INVALID_MEMORY_PERMISSIONS;
  900. }
  901. auto* const current_process = system.Kernel().CurrentProcess();
  902. auto shared_memory = current_process->GetHandleTable().Get<SharedMemory>(shared_memory_handle);
  903. if (!shared_memory) {
  904. LOG_ERROR(Kernel_SVC, "Shared memory does not exist, shared_memory_handle=0x{:08X}",
  905. shared_memory_handle);
  906. return ERR_INVALID_HANDLE;
  907. }
  908. const auto& vm_manager = current_process->VMManager();
  909. if (!vm_manager.IsWithinASLRRegion(addr, size)) {
  910. LOG_ERROR(Kernel_SVC, "Region is not within the ASLR region. addr=0x{:016X}, size={:016X}",
  911. addr, size);
  912. return ERR_INVALID_MEMORY_RANGE;
  913. }
  914. return shared_memory->Map(*current_process, addr, permissions_type, MemoryPermission::DontCare);
  915. }
  916. static ResultCode UnmapSharedMemory(Core::System& system, Handle shared_memory_handle, VAddr addr,
  917. u64 size) {
  918. LOG_WARNING(Kernel_SVC, "called, shared_memory_handle=0x{:08X}, addr=0x{:X}, size=0x{:X}",
  919. shared_memory_handle, addr, size);
  920. if (!Common::Is4KBAligned(addr)) {
  921. LOG_ERROR(Kernel_SVC, "Address is not aligned to 4KB, addr=0x{:016X}", addr);
  922. return ERR_INVALID_ADDRESS;
  923. }
  924. if (size == 0) {
  925. LOG_ERROR(Kernel_SVC, "Size is 0");
  926. return ERR_INVALID_SIZE;
  927. }
  928. if (!Common::Is4KBAligned(size)) {
  929. LOG_ERROR(Kernel_SVC, "Size is not aligned to 4KB, size=0x{:016X}", size);
  930. return ERR_INVALID_SIZE;
  931. }
  932. if (!IsValidAddressRange(addr, size)) {
  933. LOG_ERROR(Kernel_SVC, "Region is not a valid address range, addr=0x{:016X}, size=0x{:016X}",
  934. addr, size);
  935. return ERR_INVALID_ADDRESS_STATE;
  936. }
  937. auto* const current_process = system.Kernel().CurrentProcess();
  938. auto shared_memory = current_process->GetHandleTable().Get<SharedMemory>(shared_memory_handle);
  939. if (!shared_memory) {
  940. LOG_ERROR(Kernel_SVC, "Shared memory does not exist, shared_memory_handle=0x{:08X}",
  941. shared_memory_handle);
  942. return ERR_INVALID_HANDLE;
  943. }
  944. const auto& vm_manager = current_process->VMManager();
  945. if (!vm_manager.IsWithinASLRRegion(addr, size)) {
  946. LOG_ERROR(Kernel_SVC, "Region is not within the ASLR region. addr=0x{:016X}, size={:016X}",
  947. addr, size);
  948. return ERR_INVALID_MEMORY_RANGE;
  949. }
  950. return shared_memory->Unmap(*current_process, addr, size);
  951. }
  952. static ResultCode QueryProcessMemory(Core::System& system, VAddr memory_info_address,
  953. VAddr page_info_address, Handle process_handle,
  954. VAddr address) {
  955. LOG_TRACE(Kernel_SVC, "called process=0x{:08X} address={:X}", process_handle, address);
  956. const auto& handle_table = system.Kernel().CurrentProcess()->GetHandleTable();
  957. SharedPtr<Process> process = handle_table.Get<Process>(process_handle);
  958. if (!process) {
  959. LOG_ERROR(Kernel_SVC, "Process handle does not exist, process_handle=0x{:08X}",
  960. process_handle);
  961. return ERR_INVALID_HANDLE;
  962. }
  963. const auto& vm_manager = process->VMManager();
  964. const MemoryInfo memory_info = vm_manager.QueryMemory(address);
  965. Memory::Write64(memory_info_address, memory_info.base_address);
  966. Memory::Write64(memory_info_address + 8, memory_info.size);
  967. Memory::Write32(memory_info_address + 16, memory_info.state);
  968. Memory::Write32(memory_info_address + 20, memory_info.attributes);
  969. Memory::Write32(memory_info_address + 24, memory_info.permission);
  970. Memory::Write32(memory_info_address + 32, memory_info.ipc_ref_count);
  971. Memory::Write32(memory_info_address + 28, memory_info.device_ref_count);
  972. Memory::Write32(memory_info_address + 36, 0);
  973. // Page info appears to be currently unused by the kernel and is always set to zero.
  974. Memory::Write32(page_info_address, 0);
  975. return RESULT_SUCCESS;
  976. }
  977. static ResultCode QueryMemory(Core::System& system, VAddr memory_info_address,
  978. VAddr page_info_address, VAddr query_address) {
  979. LOG_TRACE(Kernel_SVC,
  980. "called, memory_info_address=0x{:016X}, page_info_address=0x{:016X}, "
  981. "query_address=0x{:016X}",
  982. memory_info_address, page_info_address, query_address);
  983. return QueryProcessMemory(system, memory_info_address, page_info_address, CurrentProcess,
  984. query_address);
  985. }
  986. static ResultCode MapProcessCodeMemory(Core::System& system, Handle process_handle, u64 dst_address,
  987. u64 src_address, u64 size) {
  988. LOG_DEBUG(Kernel_SVC,
  989. "called. process_handle=0x{:08X}, dst_address=0x{:016X}, "
  990. "src_address=0x{:016X}, size=0x{:016X}",
  991. process_handle, dst_address, src_address, size);
  992. if (!Common::Is4KBAligned(src_address)) {
  993. LOG_ERROR(Kernel_SVC, "src_address is not page-aligned (src_address=0x{:016X}).",
  994. src_address);
  995. return ERR_INVALID_ADDRESS;
  996. }
  997. if (!Common::Is4KBAligned(dst_address)) {
  998. LOG_ERROR(Kernel_SVC, "dst_address is not page-aligned (dst_address=0x{:016X}).",
  999. dst_address);
  1000. return ERR_INVALID_ADDRESS;
  1001. }
  1002. if (size == 0 || !Common::Is4KBAligned(size)) {
  1003. LOG_ERROR(Kernel_SVC, "Size is zero or not page-aligned (size=0x{:016X})", size);
  1004. return ERR_INVALID_SIZE;
  1005. }
  1006. if (!IsValidAddressRange(dst_address, size)) {
  1007. LOG_ERROR(Kernel_SVC,
  1008. "Destination address range overflows the address space (dst_address=0x{:016X}, "
  1009. "size=0x{:016X}).",
  1010. dst_address, size);
  1011. return ERR_INVALID_ADDRESS_STATE;
  1012. }
  1013. if (!IsValidAddressRange(src_address, size)) {
  1014. LOG_ERROR(Kernel_SVC,
  1015. "Source address range overflows the address space (src_address=0x{:016X}, "
  1016. "size=0x{:016X}).",
  1017. src_address, size);
  1018. return ERR_INVALID_ADDRESS_STATE;
  1019. }
  1020. const auto& handle_table = system.Kernel().CurrentProcess()->GetHandleTable();
  1021. auto process = handle_table.Get<Process>(process_handle);
  1022. if (!process) {
  1023. LOG_ERROR(Kernel_SVC, "Invalid process handle specified (handle=0x{:08X}).",
  1024. process_handle);
  1025. return ERR_INVALID_HANDLE;
  1026. }
  1027. auto& vm_manager = process->VMManager();
  1028. if (!vm_manager.IsWithinAddressSpace(src_address, size)) {
  1029. LOG_ERROR(Kernel_SVC,
  1030. "Source address range is not within the address space (src_address=0x{:016X}, "
  1031. "size=0x{:016X}).",
  1032. src_address, size);
  1033. return ERR_INVALID_ADDRESS_STATE;
  1034. }
  1035. if (!vm_manager.IsWithinASLRRegion(dst_address, size)) {
  1036. LOG_ERROR(Kernel_SVC,
  1037. "Destination address range is not within the ASLR region (dst_address=0x{:016X}, "
  1038. "size=0x{:016X}).",
  1039. dst_address, size);
  1040. return ERR_INVALID_MEMORY_RANGE;
  1041. }
  1042. return vm_manager.MapCodeMemory(dst_address, src_address, size);
  1043. }
  1044. /// Exits the current process
  1045. static void ExitProcess(Core::System& system) {
  1046. auto* current_process = system.Kernel().CurrentProcess();
  1047. LOG_INFO(Kernel_SVC, "Process {} exiting", current_process->GetProcessID());
  1048. ASSERT_MSG(current_process->GetStatus() == ProcessStatus::Running,
  1049. "Process has already exited");
  1050. current_process->PrepareForTermination();
  1051. // Kill the current thread
  1052. system.CurrentScheduler().GetCurrentThread()->Stop();
  1053. system.PrepareReschedule();
  1054. }
  1055. /// Creates a new thread
  1056. static ResultCode CreateThread(Core::System& system, Handle* out_handle, VAddr entry_point, u64 arg,
  1057. VAddr stack_top, u32 priority, s32 processor_id) {
  1058. LOG_TRACE(Kernel_SVC,
  1059. "called entrypoint=0x{:08X}, arg=0x{:08X}, stacktop=0x{:08X}, "
  1060. "threadpriority=0x{:08X}, processorid=0x{:08X} : created handle=0x{:08X}",
  1061. entry_point, arg, stack_top, priority, processor_id, *out_handle);
  1062. auto* const current_process = system.Kernel().CurrentProcess();
  1063. if (processor_id == THREADPROCESSORID_IDEAL) {
  1064. // Set the target CPU to the one specified by the process.
  1065. processor_id = current_process->GetIdealCore();
  1066. ASSERT(processor_id != THREADPROCESSORID_IDEAL);
  1067. }
  1068. if (processor_id < THREADPROCESSORID_0 || processor_id > THREADPROCESSORID_3) {
  1069. LOG_ERROR(Kernel_SVC, "Invalid thread processor ID: {}", processor_id);
  1070. return ERR_INVALID_PROCESSOR_ID;
  1071. }
  1072. const u64 core_mask = current_process->GetCoreMask();
  1073. if ((core_mask | (1ULL << processor_id)) != core_mask) {
  1074. LOG_ERROR(Kernel_SVC, "Invalid thread core specified ({})", processor_id);
  1075. return ERR_INVALID_PROCESSOR_ID;
  1076. }
  1077. if (priority > THREADPRIO_LOWEST) {
  1078. LOG_ERROR(Kernel_SVC,
  1079. "Invalid thread priority specified ({}). Must be within the range 0-64",
  1080. priority);
  1081. return ERR_INVALID_THREAD_PRIORITY;
  1082. }
  1083. if (((1ULL << priority) & current_process->GetPriorityMask()) == 0) {
  1084. LOG_ERROR(Kernel_SVC, "Invalid thread priority specified ({})", priority);
  1085. return ERR_INVALID_THREAD_PRIORITY;
  1086. }
  1087. const std::string name = fmt::format("thread-{:X}", entry_point);
  1088. auto& kernel = system.Kernel();
  1089. CASCADE_RESULT(SharedPtr<Thread> thread,
  1090. Thread::Create(kernel, name, entry_point, priority, arg, processor_id, stack_top,
  1091. *current_process));
  1092. const auto new_guest_handle = current_process->GetHandleTable().Create(thread);
  1093. if (new_guest_handle.Failed()) {
  1094. LOG_ERROR(Kernel_SVC, "Failed to create handle with error=0x{:X}",
  1095. new_guest_handle.Code().raw);
  1096. return new_guest_handle.Code();
  1097. }
  1098. thread->SetGuestHandle(*new_guest_handle);
  1099. *out_handle = *new_guest_handle;
  1100. system.CpuCore(thread->GetProcessorID()).PrepareReschedule();
  1101. return RESULT_SUCCESS;
  1102. }
  1103. /// Starts the thread for the provided handle
  1104. static ResultCode StartThread(Core::System& system, Handle thread_handle) {
  1105. LOG_TRACE(Kernel_SVC, "called thread=0x{:08X}", thread_handle);
  1106. const auto& handle_table = system.Kernel().CurrentProcess()->GetHandleTable();
  1107. const SharedPtr<Thread> thread = handle_table.Get<Thread>(thread_handle);
  1108. if (!thread) {
  1109. LOG_ERROR(Kernel_SVC, "Thread handle does not exist, thread_handle=0x{:08X}",
  1110. thread_handle);
  1111. return ERR_INVALID_HANDLE;
  1112. }
  1113. ASSERT(thread->GetStatus() == ThreadStatus::Dormant);
  1114. thread->ResumeFromWait();
  1115. if (thread->GetStatus() == ThreadStatus::Ready) {
  1116. system.CpuCore(thread->GetProcessorID()).PrepareReschedule();
  1117. }
  1118. return RESULT_SUCCESS;
  1119. }
  1120. /// Called when a thread exits
  1121. static void ExitThread(Core::System& system) {
  1122. LOG_TRACE(Kernel_SVC, "called, pc=0x{:08X}", system.CurrentArmInterface().GetPC());
  1123. auto* const current_thread = system.CurrentScheduler().GetCurrentThread();
  1124. current_thread->Stop();
  1125. system.CurrentScheduler().RemoveThread(current_thread);
  1126. system.PrepareReschedule();
  1127. }
  1128. /// Sleep the current thread
  1129. static void SleepThread(Core::System& system, s64 nanoseconds) {
  1130. LOG_TRACE(Kernel_SVC, "called nanoseconds={}", nanoseconds);
  1131. enum class SleepType : s64 {
  1132. YieldWithoutLoadBalancing = 0,
  1133. YieldWithLoadBalancing = -1,
  1134. YieldAndWaitForLoadBalancing = -2,
  1135. };
  1136. auto& scheduler = system.CurrentScheduler();
  1137. auto* const current_thread = scheduler.GetCurrentThread();
  1138. if (nanoseconds <= 0) {
  1139. switch (static_cast<SleepType>(nanoseconds)) {
  1140. case SleepType::YieldWithoutLoadBalancing:
  1141. scheduler.YieldWithoutLoadBalancing(current_thread);
  1142. break;
  1143. case SleepType::YieldWithLoadBalancing:
  1144. scheduler.YieldWithLoadBalancing(current_thread);
  1145. break;
  1146. case SleepType::YieldAndWaitForLoadBalancing:
  1147. scheduler.YieldAndWaitForLoadBalancing(current_thread);
  1148. break;
  1149. default:
  1150. UNREACHABLE_MSG("Unimplemented sleep yield type '{:016X}'!", nanoseconds);
  1151. }
  1152. } else {
  1153. current_thread->Sleep(nanoseconds);
  1154. }
  1155. // Reschedule all CPU cores
  1156. for (std::size_t i = 0; i < Core::NUM_CPU_CORES; ++i) {
  1157. system.CpuCore(i).PrepareReschedule();
  1158. }
  1159. }
  1160. /// Wait process wide key atomic
  1161. static ResultCode WaitProcessWideKeyAtomic(Core::System& system, VAddr mutex_addr,
  1162. VAddr condition_variable_addr, Handle thread_handle,
  1163. s64 nano_seconds) {
  1164. LOG_TRACE(
  1165. Kernel_SVC,
  1166. "called mutex_addr={:X}, condition_variable_addr={:X}, thread_handle=0x{:08X}, timeout={}",
  1167. mutex_addr, condition_variable_addr, thread_handle, nano_seconds);
  1168. if (Memory::IsKernelVirtualAddress(mutex_addr)) {
  1169. LOG_ERROR(
  1170. Kernel_SVC,
  1171. "Given mutex address must not be within the kernel address space. address=0x{:016X}",
  1172. mutex_addr);
  1173. return ERR_INVALID_ADDRESS_STATE;
  1174. }
  1175. if (!Common::IsWordAligned(mutex_addr)) {
  1176. LOG_ERROR(Kernel_SVC, "Given mutex address must be word-aligned. address=0x{:016X}",
  1177. mutex_addr);
  1178. return ERR_INVALID_ADDRESS;
  1179. }
  1180. auto* const current_process = system.Kernel().CurrentProcess();
  1181. const auto& handle_table = current_process->GetHandleTable();
  1182. SharedPtr<Thread> thread = handle_table.Get<Thread>(thread_handle);
  1183. ASSERT(thread);
  1184. const auto release_result = current_process->GetMutex().Release(mutex_addr);
  1185. if (release_result.IsError()) {
  1186. return release_result;
  1187. }
  1188. SharedPtr<Thread> current_thread = system.CurrentScheduler().GetCurrentThread();
  1189. current_thread->SetCondVarWaitAddress(condition_variable_addr);
  1190. current_thread->SetMutexWaitAddress(mutex_addr);
  1191. current_thread->SetWaitHandle(thread_handle);
  1192. current_thread->SetStatus(ThreadStatus::WaitCondVar);
  1193. current_thread->InvalidateWakeupCallback();
  1194. current_thread->WakeAfterDelay(nano_seconds);
  1195. // Note: Deliberately don't attempt to inherit the lock owner's priority.
  1196. system.CpuCore(current_thread->GetProcessorID()).PrepareReschedule();
  1197. return RESULT_SUCCESS;
  1198. }
  1199. /// Signal process wide key
  1200. static ResultCode SignalProcessWideKey(Core::System& system, VAddr condition_variable_addr,
  1201. s32 target) {
  1202. LOG_TRACE(Kernel_SVC, "called, condition_variable_addr=0x{:X}, target=0x{:08X}",
  1203. condition_variable_addr, target);
  1204. const auto RetrieveWaitingThreads = [&system](std::size_t core_index,
  1205. std::vector<SharedPtr<Thread>>& waiting_threads,
  1206. VAddr condvar_addr) {
  1207. const auto& scheduler = system.Scheduler(core_index);
  1208. const auto& thread_list = scheduler.GetThreadList();
  1209. for (const auto& thread : thread_list) {
  1210. if (thread->GetCondVarWaitAddress() == condvar_addr)
  1211. waiting_threads.push_back(thread);
  1212. }
  1213. };
  1214. // Retrieve a list of all threads that are waiting for this condition variable.
  1215. std::vector<SharedPtr<Thread>> waiting_threads;
  1216. RetrieveWaitingThreads(0, waiting_threads, condition_variable_addr);
  1217. RetrieveWaitingThreads(1, waiting_threads, condition_variable_addr);
  1218. RetrieveWaitingThreads(2, waiting_threads, condition_variable_addr);
  1219. RetrieveWaitingThreads(3, waiting_threads, condition_variable_addr);
  1220. // Sort them by priority, such that the highest priority ones come first.
  1221. std::sort(waiting_threads.begin(), waiting_threads.end(),
  1222. [](const SharedPtr<Thread>& lhs, const SharedPtr<Thread>& rhs) {
  1223. return lhs->GetPriority() < rhs->GetPriority();
  1224. });
  1225. // Only process up to 'target' threads, unless 'target' is -1, in which case process
  1226. // them all.
  1227. std::size_t last = waiting_threads.size();
  1228. if (target != -1)
  1229. last = std::min(waiting_threads.size(), static_cast<std::size_t>(target));
  1230. // If there are no threads waiting on this condition variable, just exit
  1231. if (last == 0)
  1232. return RESULT_SUCCESS;
  1233. for (std::size_t index = 0; index < last; ++index) {
  1234. auto& thread = waiting_threads[index];
  1235. ASSERT(thread->GetCondVarWaitAddress() == condition_variable_addr);
  1236. // liberate Cond Var Thread.
  1237. thread->SetCondVarWaitAddress(0);
  1238. const std::size_t current_core = system.CurrentCoreIndex();
  1239. auto& monitor = system.Monitor();
  1240. // Atomically read the value of the mutex.
  1241. u32 mutex_val = 0;
  1242. do {
  1243. monitor.SetExclusive(current_core, thread->GetMutexWaitAddress());
  1244. // If the mutex is not yet acquired, acquire it.
  1245. mutex_val = Memory::Read32(thread->GetMutexWaitAddress());
  1246. if (mutex_val != 0) {
  1247. monitor.ClearExclusive();
  1248. break;
  1249. }
  1250. } while (!monitor.ExclusiveWrite32(current_core, thread->GetMutexWaitAddress(),
  1251. thread->GetWaitHandle()));
  1252. if (mutex_val == 0) {
  1253. // We were able to acquire the mutex, resume this thread.
  1254. ASSERT(thread->GetStatus() == ThreadStatus::WaitCondVar);
  1255. thread->ResumeFromWait();
  1256. auto* const lock_owner = thread->GetLockOwner();
  1257. if (lock_owner != nullptr) {
  1258. lock_owner->RemoveMutexWaiter(thread);
  1259. }
  1260. thread->SetLockOwner(nullptr);
  1261. thread->SetMutexWaitAddress(0);
  1262. thread->SetWaitHandle(0);
  1263. system.CpuCore(thread->GetProcessorID()).PrepareReschedule();
  1264. } else {
  1265. // Atomically signal that the mutex now has a waiting thread.
  1266. do {
  1267. monitor.SetExclusive(current_core, thread->GetMutexWaitAddress());
  1268. // Ensure that the mutex value is still what we expect.
  1269. u32 value = Memory::Read32(thread->GetMutexWaitAddress());
  1270. // TODO(Subv): When this happens, the kernel just clears the exclusive state and
  1271. // retries the initial read for this thread.
  1272. ASSERT_MSG(mutex_val == value, "Unhandled synchronization primitive case");
  1273. } while (!monitor.ExclusiveWrite32(current_core, thread->GetMutexWaitAddress(),
  1274. mutex_val | Mutex::MutexHasWaitersFlag));
  1275. // The mutex is already owned by some other thread, make this thread wait on it.
  1276. const Handle owner_handle = static_cast<Handle>(mutex_val & Mutex::MutexOwnerMask);
  1277. const auto& handle_table = system.Kernel().CurrentProcess()->GetHandleTable();
  1278. auto owner = handle_table.Get<Thread>(owner_handle);
  1279. ASSERT(owner);
  1280. ASSERT(thread->GetStatus() == ThreadStatus::WaitCondVar);
  1281. thread->InvalidateWakeupCallback();
  1282. thread->SetStatus(ThreadStatus::WaitMutex);
  1283. owner->AddMutexWaiter(thread);
  1284. }
  1285. }
  1286. return RESULT_SUCCESS;
  1287. }
  1288. // Wait for an address (via Address Arbiter)
  1289. static ResultCode WaitForAddress(Core::System& system, VAddr address, u32 type, s32 value,
  1290. s64 timeout) {
  1291. LOG_WARNING(Kernel_SVC, "called, address=0x{:X}, type=0x{:X}, value=0x{:X}, timeout={}",
  1292. address, type, value, timeout);
  1293. // If the passed address is a kernel virtual address, return invalid memory state.
  1294. if (Memory::IsKernelVirtualAddress(address)) {
  1295. LOG_ERROR(Kernel_SVC, "Address is a kernel virtual address, address={:016X}", address);
  1296. return ERR_INVALID_ADDRESS_STATE;
  1297. }
  1298. // If the address is not properly aligned to 4 bytes, return invalid address.
  1299. if (!Common::IsWordAligned(address)) {
  1300. LOG_ERROR(Kernel_SVC, "Address is not word aligned, address={:016X}", address);
  1301. return ERR_INVALID_ADDRESS;
  1302. }
  1303. const auto arbitration_type = static_cast<AddressArbiter::ArbitrationType>(type);
  1304. auto& address_arbiter = system.Kernel().CurrentProcess()->GetAddressArbiter();
  1305. return address_arbiter.WaitForAddress(address, arbitration_type, value, timeout);
  1306. }
  1307. // Signals to an address (via Address Arbiter)
  1308. static ResultCode SignalToAddress(Core::System& system, VAddr address, u32 type, s32 value,
  1309. s32 num_to_wake) {
  1310. LOG_WARNING(Kernel_SVC, "called, address=0x{:X}, type=0x{:X}, value=0x{:X}, num_to_wake=0x{:X}",
  1311. address, type, value, num_to_wake);
  1312. // If the passed address is a kernel virtual address, return invalid memory state.
  1313. if (Memory::IsKernelVirtualAddress(address)) {
  1314. LOG_ERROR(Kernel_SVC, "Address is a kernel virtual address, address={:016X}", address);
  1315. return ERR_INVALID_ADDRESS_STATE;
  1316. }
  1317. // If the address is not properly aligned to 4 bytes, return invalid address.
  1318. if (!Common::IsWordAligned(address)) {
  1319. LOG_ERROR(Kernel_SVC, "Address is not word aligned, address={:016X}", address);
  1320. return ERR_INVALID_ADDRESS;
  1321. }
  1322. const auto signal_type = static_cast<AddressArbiter::SignalType>(type);
  1323. auto& address_arbiter = system.Kernel().CurrentProcess()->GetAddressArbiter();
  1324. return address_arbiter.SignalToAddress(address, signal_type, value, num_to_wake);
  1325. }
  1326. /// This returns the total CPU ticks elapsed since the CPU was powered-on
  1327. static u64 GetSystemTick(Core::System& system) {
  1328. LOG_TRACE(Kernel_SVC, "called");
  1329. auto& core_timing = system.CoreTiming();
  1330. const u64 result{core_timing.GetTicks()};
  1331. // Advance time to defeat dumb games that busy-wait for the frame to end.
  1332. core_timing.AddTicks(400);
  1333. return result;
  1334. }
  1335. /// Close a handle
  1336. static ResultCode CloseHandle(Core::System& system, Handle handle) {
  1337. LOG_TRACE(Kernel_SVC, "Closing handle 0x{:08X}", handle);
  1338. auto& handle_table = system.Kernel().CurrentProcess()->GetHandleTable();
  1339. return handle_table.Close(handle);
  1340. }
  1341. /// Clears the signaled state of an event or process.
  1342. static ResultCode ResetSignal(Core::System& system, Handle handle) {
  1343. LOG_DEBUG(Kernel_SVC, "called handle 0x{:08X}", handle);
  1344. const auto& handle_table = system.Kernel().CurrentProcess()->GetHandleTable();
  1345. auto event = handle_table.Get<ReadableEvent>(handle);
  1346. if (event) {
  1347. return event->Reset();
  1348. }
  1349. auto process = handle_table.Get<Process>(handle);
  1350. if (process) {
  1351. return process->ClearSignalState();
  1352. }
  1353. LOG_ERROR(Kernel_SVC, "Invalid handle (0x{:08X})", handle);
  1354. return ERR_INVALID_HANDLE;
  1355. }
  1356. /// Creates a TransferMemory object
  1357. static ResultCode CreateTransferMemory(Core::System& system, Handle* handle, VAddr addr, u64 size,
  1358. u32 permissions) {
  1359. LOG_DEBUG(Kernel_SVC, "called addr=0x{:X}, size=0x{:X}, perms=0x{:08X}", addr, size,
  1360. permissions);
  1361. if (!Common::Is4KBAligned(addr)) {
  1362. LOG_ERROR(Kernel_SVC, "Address ({:016X}) is not page aligned!", addr);
  1363. return ERR_INVALID_ADDRESS;
  1364. }
  1365. if (!Common::Is4KBAligned(size) || size == 0) {
  1366. LOG_ERROR(Kernel_SVC, "Size ({:016X}) is not page aligned or equal to zero!", size);
  1367. return ERR_INVALID_ADDRESS;
  1368. }
  1369. if (!IsValidAddressRange(addr, size)) {
  1370. LOG_ERROR(Kernel_SVC, "Address and size cause overflow! (address={:016X}, size={:016X})",
  1371. addr, size);
  1372. return ERR_INVALID_ADDRESS_STATE;
  1373. }
  1374. const auto perms = static_cast<MemoryPermission>(permissions);
  1375. if (perms != MemoryPermission::None && perms != MemoryPermission::Read &&
  1376. perms != MemoryPermission::ReadWrite) {
  1377. LOG_ERROR(Kernel_SVC, "Invalid memory permissions for transfer memory! (perms={:08X})",
  1378. permissions);
  1379. return ERR_INVALID_MEMORY_PERMISSIONS;
  1380. }
  1381. auto& kernel = system.Kernel();
  1382. auto transfer_mem_handle = TransferMemory::Create(kernel, addr, size, perms);
  1383. auto& handle_table = kernel.CurrentProcess()->GetHandleTable();
  1384. const auto result = handle_table.Create(std::move(transfer_mem_handle));
  1385. if (result.Failed()) {
  1386. return result.Code();
  1387. }
  1388. *handle = *result;
  1389. return RESULT_SUCCESS;
  1390. }
  1391. static ResultCode MapTransferMemory(Core::System& system, Handle handle, VAddr address, u64 size,
  1392. u32 permission_raw) {
  1393. LOG_DEBUG(Kernel_SVC,
  1394. "called. handle=0x{:08X}, address=0x{:016X}, size=0x{:016X}, permissions=0x{:08X}",
  1395. handle, address, size, permission_raw);
  1396. if (!Common::Is4KBAligned(address)) {
  1397. LOG_ERROR(Kernel_SVC, "Transfer memory addresses must be 4KB aligned (size=0x{:016X}).",
  1398. address);
  1399. return ERR_INVALID_ADDRESS;
  1400. }
  1401. if (size == 0 || !Common::Is4KBAligned(size)) {
  1402. LOG_ERROR(Kernel_SVC,
  1403. "Transfer memory sizes must be 4KB aligned and not be zero (size=0x{:016X}).",
  1404. size);
  1405. return ERR_INVALID_SIZE;
  1406. }
  1407. if (!IsValidAddressRange(address, size)) {
  1408. LOG_ERROR(Kernel_SVC,
  1409. "Given address and size overflows the 64-bit range (address=0x{:016X}, "
  1410. "size=0x{:016X}).",
  1411. address, size);
  1412. return ERR_INVALID_ADDRESS_STATE;
  1413. }
  1414. const auto permissions = static_cast<MemoryPermission>(permission_raw);
  1415. if (permissions != MemoryPermission::None && permissions != MemoryPermission::Read &&
  1416. permissions != MemoryPermission::ReadWrite) {
  1417. LOG_ERROR(Kernel_SVC, "Invalid transfer memory permissions given (permissions=0x{:08X}).",
  1418. permission_raw);
  1419. return ERR_INVALID_STATE;
  1420. }
  1421. const auto& kernel = system.Kernel();
  1422. const auto* const current_process = kernel.CurrentProcess();
  1423. const auto& handle_table = current_process->GetHandleTable();
  1424. auto transfer_memory = handle_table.Get<TransferMemory>(handle);
  1425. if (!transfer_memory) {
  1426. LOG_ERROR(Kernel_SVC, "Nonexistent transfer memory handle given (handle=0x{:08X}).",
  1427. handle);
  1428. return ERR_INVALID_HANDLE;
  1429. }
  1430. if (!current_process->VMManager().IsWithinASLRRegion(address, size)) {
  1431. LOG_ERROR(Kernel_SVC,
  1432. "Given address and size don't fully fit within the ASLR region "
  1433. "(address=0x{:016X}, size=0x{:016X}).",
  1434. address, size);
  1435. return ERR_INVALID_MEMORY_RANGE;
  1436. }
  1437. return transfer_memory->MapMemory(address, size, permissions);
  1438. }
  1439. static ResultCode UnmapTransferMemory(Core::System& system, Handle handle, VAddr address,
  1440. u64 size) {
  1441. LOG_DEBUG(Kernel_SVC, "called. handle=0x{:08X}, address=0x{:016X}, size=0x{:016X}", handle,
  1442. address, size);
  1443. if (!Common::Is4KBAligned(address)) {
  1444. LOG_ERROR(Kernel_SVC, "Transfer memory addresses must be 4KB aligned (size=0x{:016X}).",
  1445. address);
  1446. return ERR_INVALID_ADDRESS;
  1447. }
  1448. if (size == 0 || !Common::Is4KBAligned(size)) {
  1449. LOG_ERROR(Kernel_SVC,
  1450. "Transfer memory sizes must be 4KB aligned and not be zero (size=0x{:016X}).",
  1451. size);
  1452. return ERR_INVALID_SIZE;
  1453. }
  1454. if (!IsValidAddressRange(address, size)) {
  1455. LOG_ERROR(Kernel_SVC,
  1456. "Given address and size overflows the 64-bit range (address=0x{:016X}, "
  1457. "size=0x{:016X}).",
  1458. address, size);
  1459. return ERR_INVALID_ADDRESS_STATE;
  1460. }
  1461. const auto& kernel = system.Kernel();
  1462. const auto* const current_process = kernel.CurrentProcess();
  1463. const auto& handle_table = current_process->GetHandleTable();
  1464. auto transfer_memory = handle_table.Get<TransferMemory>(handle);
  1465. if (!transfer_memory) {
  1466. LOG_ERROR(Kernel_SVC, "Nonexistent transfer memory handle given (handle=0x{:08X}).",
  1467. handle);
  1468. return ERR_INVALID_HANDLE;
  1469. }
  1470. if (!current_process->VMManager().IsWithinASLRRegion(address, size)) {
  1471. LOG_ERROR(Kernel_SVC,
  1472. "Given address and size don't fully fit within the ASLR region "
  1473. "(address=0x{:016X}, size=0x{:016X}).",
  1474. address, size);
  1475. return ERR_INVALID_MEMORY_RANGE;
  1476. }
  1477. return transfer_memory->UnmapMemory(address, size);
  1478. }
  1479. static ResultCode GetThreadCoreMask(Core::System& system, Handle thread_handle, u32* core,
  1480. u64* mask) {
  1481. LOG_TRACE(Kernel_SVC, "called, handle=0x{:08X}", thread_handle);
  1482. const auto& handle_table = system.Kernel().CurrentProcess()->GetHandleTable();
  1483. const SharedPtr<Thread> thread = handle_table.Get<Thread>(thread_handle);
  1484. if (!thread) {
  1485. LOG_ERROR(Kernel_SVC, "Thread handle does not exist, thread_handle=0x{:08X}",
  1486. thread_handle);
  1487. return ERR_INVALID_HANDLE;
  1488. }
  1489. *core = thread->GetIdealCore();
  1490. *mask = thread->GetAffinityMask();
  1491. return RESULT_SUCCESS;
  1492. }
  1493. static ResultCode SetThreadCoreMask(Core::System& system, Handle thread_handle, u32 core,
  1494. u64 mask) {
  1495. LOG_DEBUG(Kernel_SVC, "called, handle=0x{:08X}, mask=0x{:016X}, core=0x{:X}", thread_handle,
  1496. mask, core);
  1497. const auto& handle_table = system.Kernel().CurrentProcess()->GetHandleTable();
  1498. const SharedPtr<Thread> thread = handle_table.Get<Thread>(thread_handle);
  1499. if (!thread) {
  1500. LOG_ERROR(Kernel_SVC, "Thread handle does not exist, thread_handle=0x{:08X}",
  1501. thread_handle);
  1502. return ERR_INVALID_HANDLE;
  1503. }
  1504. if (core == static_cast<u32>(THREADPROCESSORID_IDEAL)) {
  1505. const u8 ideal_cpu_core = thread->GetOwnerProcess()->GetIdealCore();
  1506. ASSERT(ideal_cpu_core != static_cast<u8>(THREADPROCESSORID_IDEAL));
  1507. // Set the target CPU to the ideal core specified by the process.
  1508. core = ideal_cpu_core;
  1509. mask = 1ULL << core;
  1510. }
  1511. if (mask == 0) {
  1512. LOG_ERROR(Kernel_SVC, "Mask is 0");
  1513. return ERR_INVALID_COMBINATION;
  1514. }
  1515. /// This value is used to only change the affinity mask without changing the current ideal core.
  1516. static constexpr u32 OnlyChangeMask = static_cast<u32>(-3);
  1517. if (core == OnlyChangeMask) {
  1518. core = thread->GetIdealCore();
  1519. } else if (core >= Core::NUM_CPU_CORES && core != static_cast<u32>(-1)) {
  1520. LOG_ERROR(Kernel_SVC, "Invalid core specified, got {}", core);
  1521. return ERR_INVALID_PROCESSOR_ID;
  1522. }
  1523. // Error out if the input core isn't enabled in the input mask.
  1524. if (core < Core::NUM_CPU_CORES && (mask & (1ull << core)) == 0) {
  1525. LOG_ERROR(Kernel_SVC, "Core is not enabled for the current mask, core={}, mask={:016X}",
  1526. core, mask);
  1527. return ERR_INVALID_COMBINATION;
  1528. }
  1529. thread->ChangeCore(core, mask);
  1530. return RESULT_SUCCESS;
  1531. }
  1532. static ResultCode CreateSharedMemory(Core::System& system, Handle* handle, u64 size,
  1533. u32 local_permissions, u32 remote_permissions) {
  1534. LOG_TRACE(Kernel_SVC, "called, size=0x{:X}, localPerms=0x{:08X}, remotePerms=0x{:08X}", size,
  1535. local_permissions, remote_permissions);
  1536. if (size == 0) {
  1537. LOG_ERROR(Kernel_SVC, "Size is 0");
  1538. return ERR_INVALID_SIZE;
  1539. }
  1540. if (!Common::Is4KBAligned(size)) {
  1541. LOG_ERROR(Kernel_SVC, "Size is not aligned to 4KB, 0x{:016X}", size);
  1542. return ERR_INVALID_SIZE;
  1543. }
  1544. if (size >= MAIN_MEMORY_SIZE) {
  1545. LOG_ERROR(Kernel_SVC, "Size is not less than 8GB, 0x{:016X}", size);
  1546. return ERR_INVALID_SIZE;
  1547. }
  1548. const auto local_perms = static_cast<MemoryPermission>(local_permissions);
  1549. if (local_perms != MemoryPermission::Read && local_perms != MemoryPermission::ReadWrite) {
  1550. LOG_ERROR(Kernel_SVC,
  1551. "Invalid local memory permissions, expected Read or ReadWrite but got "
  1552. "local_permissions={}",
  1553. static_cast<u32>(local_permissions));
  1554. return ERR_INVALID_MEMORY_PERMISSIONS;
  1555. }
  1556. const auto remote_perms = static_cast<MemoryPermission>(remote_permissions);
  1557. if (remote_perms != MemoryPermission::Read && remote_perms != MemoryPermission::ReadWrite &&
  1558. remote_perms != MemoryPermission::DontCare) {
  1559. LOG_ERROR(Kernel_SVC,
  1560. "Invalid remote memory permissions, expected Read, ReadWrite or DontCare but got "
  1561. "remote_permissions={}",
  1562. static_cast<u32>(remote_permissions));
  1563. return ERR_INVALID_MEMORY_PERMISSIONS;
  1564. }
  1565. auto& kernel = system.Kernel();
  1566. auto process = kernel.CurrentProcess();
  1567. auto& handle_table = process->GetHandleTable();
  1568. auto shared_mem_handle = SharedMemory::Create(kernel, process, size, local_perms, remote_perms);
  1569. CASCADE_RESULT(*handle, handle_table.Create(shared_mem_handle));
  1570. return RESULT_SUCCESS;
  1571. }
  1572. static ResultCode CreateEvent(Core::System& system, Handle* write_handle, Handle* read_handle) {
  1573. LOG_DEBUG(Kernel_SVC, "called");
  1574. auto& kernel = system.Kernel();
  1575. const auto [readable_event, writable_event] =
  1576. WritableEvent::CreateEventPair(kernel, ResetType::Sticky, "CreateEvent");
  1577. HandleTable& handle_table = kernel.CurrentProcess()->GetHandleTable();
  1578. const auto write_create_result = handle_table.Create(writable_event);
  1579. if (write_create_result.Failed()) {
  1580. return write_create_result.Code();
  1581. }
  1582. *write_handle = *write_create_result;
  1583. const auto read_create_result = handle_table.Create(readable_event);
  1584. if (read_create_result.Failed()) {
  1585. handle_table.Close(*write_create_result);
  1586. return read_create_result.Code();
  1587. }
  1588. *read_handle = *read_create_result;
  1589. LOG_DEBUG(Kernel_SVC,
  1590. "successful. Writable event handle=0x{:08X}, Readable event handle=0x{:08X}",
  1591. *write_create_result, *read_create_result);
  1592. return RESULT_SUCCESS;
  1593. }
  1594. static ResultCode ClearEvent(Core::System& system, Handle handle) {
  1595. LOG_TRACE(Kernel_SVC, "called, event=0x{:08X}", handle);
  1596. const auto& handle_table = system.Kernel().CurrentProcess()->GetHandleTable();
  1597. auto writable_event = handle_table.Get<WritableEvent>(handle);
  1598. if (writable_event) {
  1599. writable_event->Clear();
  1600. return RESULT_SUCCESS;
  1601. }
  1602. auto readable_event = handle_table.Get<ReadableEvent>(handle);
  1603. if (readable_event) {
  1604. readable_event->Clear();
  1605. return RESULT_SUCCESS;
  1606. }
  1607. LOG_ERROR(Kernel_SVC, "Event handle does not exist, handle=0x{:08X}", handle);
  1608. return ERR_INVALID_HANDLE;
  1609. }
  1610. static ResultCode SignalEvent(Core::System& system, Handle handle) {
  1611. LOG_DEBUG(Kernel_SVC, "called. Handle=0x{:08X}", handle);
  1612. HandleTable& handle_table = system.Kernel().CurrentProcess()->GetHandleTable();
  1613. auto writable_event = handle_table.Get<WritableEvent>(handle);
  1614. if (!writable_event) {
  1615. LOG_ERROR(Kernel_SVC, "Non-existent writable event handle used (0x{:08X})", handle);
  1616. return ERR_INVALID_HANDLE;
  1617. }
  1618. writable_event->Signal();
  1619. return RESULT_SUCCESS;
  1620. }
  1621. static ResultCode GetProcessInfo(Core::System& system, u64* out, Handle process_handle, u32 type) {
  1622. LOG_DEBUG(Kernel_SVC, "called, handle=0x{:08X}, type=0x{:X}", process_handle, type);
  1623. // This function currently only allows retrieving a process' status.
  1624. enum class InfoType {
  1625. Status,
  1626. };
  1627. const auto& handle_table = system.Kernel().CurrentProcess()->GetHandleTable();
  1628. const auto process = handle_table.Get<Process>(process_handle);
  1629. if (!process) {
  1630. LOG_ERROR(Kernel_SVC, "Process handle does not exist, process_handle=0x{:08X}",
  1631. process_handle);
  1632. return ERR_INVALID_HANDLE;
  1633. }
  1634. const auto info_type = static_cast<InfoType>(type);
  1635. if (info_type != InfoType::Status) {
  1636. LOG_ERROR(Kernel_SVC, "Expected info_type to be Status but got {} instead", type);
  1637. return ERR_INVALID_ENUM_VALUE;
  1638. }
  1639. *out = static_cast<u64>(process->GetStatus());
  1640. return RESULT_SUCCESS;
  1641. }
  1642. static ResultCode CreateResourceLimit(Core::System& system, Handle* out_handle) {
  1643. LOG_DEBUG(Kernel_SVC, "called");
  1644. auto& kernel = system.Kernel();
  1645. auto resource_limit = ResourceLimit::Create(kernel);
  1646. auto* const current_process = kernel.CurrentProcess();
  1647. ASSERT(current_process != nullptr);
  1648. const auto handle = current_process->GetHandleTable().Create(std::move(resource_limit));
  1649. if (handle.Failed()) {
  1650. return handle.Code();
  1651. }
  1652. *out_handle = *handle;
  1653. return RESULT_SUCCESS;
  1654. }
  1655. static ResultCode GetResourceLimitLimitValue(Core::System& system, u64* out_value,
  1656. Handle resource_limit, u32 resource_type) {
  1657. LOG_DEBUG(Kernel_SVC, "called. Handle={:08X}, Resource type={}", resource_limit, resource_type);
  1658. const auto limit_value = RetrieveResourceLimitValue(system, resource_limit, resource_type,
  1659. ResourceLimitValueType::LimitValue);
  1660. if (limit_value.Failed()) {
  1661. return limit_value.Code();
  1662. }
  1663. *out_value = static_cast<u64>(*limit_value);
  1664. return RESULT_SUCCESS;
  1665. }
  1666. static ResultCode GetResourceLimitCurrentValue(Core::System& system, u64* out_value,
  1667. Handle resource_limit, u32 resource_type) {
  1668. LOG_DEBUG(Kernel_SVC, "called. Handle={:08X}, Resource type={}", resource_limit, resource_type);
  1669. const auto current_value = RetrieveResourceLimitValue(system, resource_limit, resource_type,
  1670. ResourceLimitValueType::CurrentValue);
  1671. if (current_value.Failed()) {
  1672. return current_value.Code();
  1673. }
  1674. *out_value = static_cast<u64>(*current_value);
  1675. return RESULT_SUCCESS;
  1676. }
  1677. static ResultCode SetResourceLimitLimitValue(Core::System& system, Handle resource_limit,
  1678. u32 resource_type, u64 value) {
  1679. LOG_DEBUG(Kernel_SVC, "called. Handle={:08X}, Resource type={}, Value={}", resource_limit,
  1680. resource_type, value);
  1681. const auto type = static_cast<ResourceType>(resource_type);
  1682. if (!IsValidResourceType(type)) {
  1683. LOG_ERROR(Kernel_SVC, "Invalid resource limit type: '{}'", resource_type);
  1684. return ERR_INVALID_ENUM_VALUE;
  1685. }
  1686. auto* const current_process = system.Kernel().CurrentProcess();
  1687. ASSERT(current_process != nullptr);
  1688. auto resource_limit_object =
  1689. current_process->GetHandleTable().Get<ResourceLimit>(resource_limit);
  1690. if (!resource_limit_object) {
  1691. LOG_ERROR(Kernel_SVC, "Handle to non-existent resource limit instance used. Handle={:08X}",
  1692. resource_limit);
  1693. return ERR_INVALID_HANDLE;
  1694. }
  1695. const auto set_result = resource_limit_object->SetLimitValue(type, static_cast<s64>(value));
  1696. if (set_result.IsError()) {
  1697. LOG_ERROR(
  1698. Kernel_SVC,
  1699. "Attempted to lower resource limit ({}) for category '{}' below its current value ({})",
  1700. resource_limit_object->GetMaxResourceValue(type), resource_type,
  1701. resource_limit_object->GetCurrentResourceValue(type));
  1702. return set_result;
  1703. }
  1704. return RESULT_SUCCESS;
  1705. }
  1706. static ResultCode GetProcessList(Core::System& system, u32* out_num_processes,
  1707. VAddr out_process_ids, u32 out_process_ids_size) {
  1708. LOG_DEBUG(Kernel_SVC, "called. out_process_ids=0x{:016X}, out_process_ids_size={}",
  1709. out_process_ids, out_process_ids_size);
  1710. // If the supplied size is negative or greater than INT32_MAX / sizeof(u64), bail.
  1711. if ((out_process_ids_size & 0xF0000000) != 0) {
  1712. LOG_ERROR(Kernel_SVC,
  1713. "Supplied size outside [0, 0x0FFFFFFF] range. out_process_ids_size={}",
  1714. out_process_ids_size);
  1715. return ERR_OUT_OF_RANGE;
  1716. }
  1717. const auto& kernel = system.Kernel();
  1718. const auto& vm_manager = kernel.CurrentProcess()->VMManager();
  1719. const auto total_copy_size = out_process_ids_size * sizeof(u64);
  1720. if (out_process_ids_size > 0 &&
  1721. !vm_manager.IsWithinAddressSpace(out_process_ids, total_copy_size)) {
  1722. LOG_ERROR(Kernel_SVC, "Address range outside address space. begin=0x{:016X}, end=0x{:016X}",
  1723. out_process_ids, out_process_ids + total_copy_size);
  1724. return ERR_INVALID_ADDRESS_STATE;
  1725. }
  1726. const auto& process_list = kernel.GetProcessList();
  1727. const auto num_processes = process_list.size();
  1728. const auto copy_amount = std::min(std::size_t{out_process_ids_size}, num_processes);
  1729. for (std::size_t i = 0; i < copy_amount; ++i) {
  1730. Memory::Write64(out_process_ids, process_list[i]->GetProcessID());
  1731. out_process_ids += sizeof(u64);
  1732. }
  1733. *out_num_processes = static_cast<u32>(num_processes);
  1734. return RESULT_SUCCESS;
  1735. }
  1736. ResultCode GetThreadList(Core::System& system, u32* out_num_threads, VAddr out_thread_ids,
  1737. u32 out_thread_ids_size, Handle debug_handle) {
  1738. // TODO: Handle this case when debug events are supported.
  1739. UNIMPLEMENTED_IF(debug_handle != InvalidHandle);
  1740. LOG_DEBUG(Kernel_SVC, "called. out_thread_ids=0x{:016X}, out_thread_ids_size={}",
  1741. out_thread_ids, out_thread_ids_size);
  1742. // If the size is negative or larger than INT32_MAX / sizeof(u64)
  1743. if ((out_thread_ids_size & 0xF0000000) != 0) {
  1744. LOG_ERROR(Kernel_SVC, "Supplied size outside [0, 0x0FFFFFFF] range. size={}",
  1745. out_thread_ids_size);
  1746. return ERR_OUT_OF_RANGE;
  1747. }
  1748. const auto* const current_process = system.Kernel().CurrentProcess();
  1749. const auto& vm_manager = current_process->VMManager();
  1750. const auto total_copy_size = out_thread_ids_size * sizeof(u64);
  1751. if (out_thread_ids_size > 0 &&
  1752. !vm_manager.IsWithinAddressSpace(out_thread_ids, total_copy_size)) {
  1753. LOG_ERROR(Kernel_SVC, "Address range outside address space. begin=0x{:016X}, end=0x{:016X}",
  1754. out_thread_ids, out_thread_ids + total_copy_size);
  1755. return ERR_INVALID_ADDRESS_STATE;
  1756. }
  1757. const auto& thread_list = current_process->GetThreadList();
  1758. const auto num_threads = thread_list.size();
  1759. const auto copy_amount = std::min(std::size_t{out_thread_ids_size}, num_threads);
  1760. auto list_iter = thread_list.cbegin();
  1761. for (std::size_t i = 0; i < copy_amount; ++i, ++list_iter) {
  1762. Memory::Write64(out_thread_ids, (*list_iter)->GetThreadID());
  1763. out_thread_ids += sizeof(u64);
  1764. }
  1765. *out_num_threads = static_cast<u32>(num_threads);
  1766. return RESULT_SUCCESS;
  1767. }
  1768. namespace {
  1769. struct FunctionDef {
  1770. using Func = void(Core::System&);
  1771. u32 id;
  1772. Func* func;
  1773. const char* name;
  1774. };
  1775. } // namespace
  1776. static const FunctionDef SVC_Table[] = {
  1777. {0x00, nullptr, "Unknown"},
  1778. {0x01, SvcWrap<SetHeapSize>, "SetHeapSize"},
  1779. {0x02, SvcWrap<SetMemoryPermission>, "SetMemoryPermission"},
  1780. {0x03, SvcWrap<SetMemoryAttribute>, "SetMemoryAttribute"},
  1781. {0x04, SvcWrap<MapMemory>, "MapMemory"},
  1782. {0x05, SvcWrap<UnmapMemory>, "UnmapMemory"},
  1783. {0x06, SvcWrap<QueryMemory>, "QueryMemory"},
  1784. {0x07, SvcWrap<ExitProcess>, "ExitProcess"},
  1785. {0x08, SvcWrap<CreateThread>, "CreateThread"},
  1786. {0x09, SvcWrap<StartThread>, "StartThread"},
  1787. {0x0A, SvcWrap<ExitThread>, "ExitThread"},
  1788. {0x0B, SvcWrap<SleepThread>, "SleepThread"},
  1789. {0x0C, SvcWrap<GetThreadPriority>, "GetThreadPriority"},
  1790. {0x0D, SvcWrap<SetThreadPriority>, "SetThreadPriority"},
  1791. {0x0E, SvcWrap<GetThreadCoreMask>, "GetThreadCoreMask"},
  1792. {0x0F, SvcWrap<SetThreadCoreMask>, "SetThreadCoreMask"},
  1793. {0x10, SvcWrap<GetCurrentProcessorNumber>, "GetCurrentProcessorNumber"},
  1794. {0x11, SvcWrap<SignalEvent>, "SignalEvent"},
  1795. {0x12, SvcWrap<ClearEvent>, "ClearEvent"},
  1796. {0x13, SvcWrap<MapSharedMemory>, "MapSharedMemory"},
  1797. {0x14, SvcWrap<UnmapSharedMemory>, "UnmapSharedMemory"},
  1798. {0x15, SvcWrap<CreateTransferMemory>, "CreateTransferMemory"},
  1799. {0x16, SvcWrap<CloseHandle>, "CloseHandle"},
  1800. {0x17, SvcWrap<ResetSignal>, "ResetSignal"},
  1801. {0x18, SvcWrap<WaitSynchronization>, "WaitSynchronization"},
  1802. {0x19, SvcWrap<CancelSynchronization>, "CancelSynchronization"},
  1803. {0x1A, SvcWrap<ArbitrateLock>, "ArbitrateLock"},
  1804. {0x1B, SvcWrap<ArbitrateUnlock>, "ArbitrateUnlock"},
  1805. {0x1C, SvcWrap<WaitProcessWideKeyAtomic>, "WaitProcessWideKeyAtomic"},
  1806. {0x1D, SvcWrap<SignalProcessWideKey>, "SignalProcessWideKey"},
  1807. {0x1E, SvcWrap<GetSystemTick>, "GetSystemTick"},
  1808. {0x1F, SvcWrap<ConnectToNamedPort>, "ConnectToNamedPort"},
  1809. {0x20, nullptr, "SendSyncRequestLight"},
  1810. {0x21, SvcWrap<SendSyncRequest>, "SendSyncRequest"},
  1811. {0x22, nullptr, "SendSyncRequestWithUserBuffer"},
  1812. {0x23, nullptr, "SendAsyncRequestWithUserBuffer"},
  1813. {0x24, SvcWrap<GetProcessId>, "GetProcessId"},
  1814. {0x25, SvcWrap<GetThreadId>, "GetThreadId"},
  1815. {0x26, SvcWrap<Break>, "Break"},
  1816. {0x27, SvcWrap<OutputDebugString>, "OutputDebugString"},
  1817. {0x28, nullptr, "ReturnFromException"},
  1818. {0x29, SvcWrap<GetInfo>, "GetInfo"},
  1819. {0x2A, nullptr, "FlushEntireDataCache"},
  1820. {0x2B, nullptr, "FlushDataCache"},
  1821. {0x2C, nullptr, "MapPhysicalMemory"},
  1822. {0x2D, nullptr, "UnmapPhysicalMemory"},
  1823. {0x2E, nullptr, "GetFutureThreadInfo"},
  1824. {0x2F, nullptr, "GetLastThreadInfo"},
  1825. {0x30, SvcWrap<GetResourceLimitLimitValue>, "GetResourceLimitLimitValue"},
  1826. {0x31, SvcWrap<GetResourceLimitCurrentValue>, "GetResourceLimitCurrentValue"},
  1827. {0x32, SvcWrap<SetThreadActivity>, "SetThreadActivity"},
  1828. {0x33, SvcWrap<GetThreadContext>, "GetThreadContext"},
  1829. {0x34, SvcWrap<WaitForAddress>, "WaitForAddress"},
  1830. {0x35, SvcWrap<SignalToAddress>, "SignalToAddress"},
  1831. {0x36, nullptr, "Unknown"},
  1832. {0x37, nullptr, "Unknown"},
  1833. {0x38, nullptr, "Unknown"},
  1834. {0x39, nullptr, "Unknown"},
  1835. {0x3A, nullptr, "Unknown"},
  1836. {0x3B, nullptr, "Unknown"},
  1837. {0x3C, nullptr, "DumpInfo"},
  1838. {0x3D, nullptr, "DumpInfoNew"},
  1839. {0x3E, nullptr, "Unknown"},
  1840. {0x3F, nullptr, "Unknown"},
  1841. {0x40, nullptr, "CreateSession"},
  1842. {0x41, nullptr, "AcceptSession"},
  1843. {0x42, nullptr, "ReplyAndReceiveLight"},
  1844. {0x43, nullptr, "ReplyAndReceive"},
  1845. {0x44, nullptr, "ReplyAndReceiveWithUserBuffer"},
  1846. {0x45, SvcWrap<CreateEvent>, "CreateEvent"},
  1847. {0x46, nullptr, "Unknown"},
  1848. {0x47, nullptr, "Unknown"},
  1849. {0x48, nullptr, "MapPhysicalMemoryUnsafe"},
  1850. {0x49, nullptr, "UnmapPhysicalMemoryUnsafe"},
  1851. {0x4A, nullptr, "SetUnsafeLimit"},
  1852. {0x4B, nullptr, "CreateCodeMemory"},
  1853. {0x4C, nullptr, "ControlCodeMemory"},
  1854. {0x4D, nullptr, "SleepSystem"},
  1855. {0x4E, nullptr, "ReadWriteRegister"},
  1856. {0x4F, nullptr, "SetProcessActivity"},
  1857. {0x50, SvcWrap<CreateSharedMemory>, "CreateSharedMemory"},
  1858. {0x51, SvcWrap<MapTransferMemory>, "MapTransferMemory"},
  1859. {0x52, SvcWrap<UnmapTransferMemory>, "UnmapTransferMemory"},
  1860. {0x53, nullptr, "CreateInterruptEvent"},
  1861. {0x54, nullptr, "QueryPhysicalAddress"},
  1862. {0x55, nullptr, "QueryIoMapping"},
  1863. {0x56, nullptr, "CreateDeviceAddressSpace"},
  1864. {0x57, nullptr, "AttachDeviceAddressSpace"},
  1865. {0x58, nullptr, "DetachDeviceAddressSpace"},
  1866. {0x59, nullptr, "MapDeviceAddressSpaceByForce"},
  1867. {0x5A, nullptr, "MapDeviceAddressSpaceAligned"},
  1868. {0x5B, nullptr, "MapDeviceAddressSpace"},
  1869. {0x5C, nullptr, "UnmapDeviceAddressSpace"},
  1870. {0x5D, nullptr, "InvalidateProcessDataCache"},
  1871. {0x5E, nullptr, "StoreProcessDataCache"},
  1872. {0x5F, nullptr, "FlushProcessDataCache"},
  1873. {0x60, nullptr, "DebugActiveProcess"},
  1874. {0x61, nullptr, "BreakDebugProcess"},
  1875. {0x62, nullptr, "TerminateDebugProcess"},
  1876. {0x63, nullptr, "GetDebugEvent"},
  1877. {0x64, nullptr, "ContinueDebugEvent"},
  1878. {0x65, SvcWrap<GetProcessList>, "GetProcessList"},
  1879. {0x66, SvcWrap<GetThreadList>, "GetThreadList"},
  1880. {0x67, nullptr, "GetDebugThreadContext"},
  1881. {0x68, nullptr, "SetDebugThreadContext"},
  1882. {0x69, nullptr, "QueryDebugProcessMemory"},
  1883. {0x6A, nullptr, "ReadDebugProcessMemory"},
  1884. {0x6B, nullptr, "WriteDebugProcessMemory"},
  1885. {0x6C, nullptr, "SetHardwareBreakPoint"},
  1886. {0x6D, nullptr, "GetDebugThreadParam"},
  1887. {0x6E, nullptr, "Unknown"},
  1888. {0x6F, nullptr, "GetSystemInfo"},
  1889. {0x70, nullptr, "CreatePort"},
  1890. {0x71, nullptr, "ManageNamedPort"},
  1891. {0x72, nullptr, "ConnectToPort"},
  1892. {0x73, nullptr, "SetProcessMemoryPermission"},
  1893. {0x74, nullptr, "MapProcessMemory"},
  1894. {0x75, nullptr, "UnmapProcessMemory"},
  1895. {0x76, SvcWrap<QueryProcessMemory>, "QueryProcessMemory"},
  1896. {0x77, SvcWrap<MapProcessCodeMemory>, "MapProcessCodeMemory"},
  1897. {0x78, nullptr, "UnmapProcessCodeMemory"},
  1898. {0x79, nullptr, "CreateProcess"},
  1899. {0x7A, nullptr, "StartProcess"},
  1900. {0x7B, nullptr, "TerminateProcess"},
  1901. {0x7C, SvcWrap<GetProcessInfo>, "GetProcessInfo"},
  1902. {0x7D, SvcWrap<CreateResourceLimit>, "CreateResourceLimit"},
  1903. {0x7E, SvcWrap<SetResourceLimitLimitValue>, "SetResourceLimitLimitValue"},
  1904. {0x7F, nullptr, "CallSecureMonitor"},
  1905. };
  1906. static const FunctionDef* GetSVCInfo(u32 func_num) {
  1907. if (func_num >= std::size(SVC_Table)) {
  1908. LOG_ERROR(Kernel_SVC, "Unknown svc=0x{:02X}", func_num);
  1909. return nullptr;
  1910. }
  1911. return &SVC_Table[func_num];
  1912. }
  1913. MICROPROFILE_DEFINE(Kernel_SVC, "Kernel", "SVC", MP_RGB(70, 200, 70));
  1914. void CallSVC(Core::System& system, u32 immediate) {
  1915. MICROPROFILE_SCOPE(Kernel_SVC);
  1916. // Lock the global kernel mutex when we enter the kernel HLE.
  1917. std::lock_guard lock{HLE::g_hle_lock};
  1918. const FunctionDef* info = GetSVCInfo(immediate);
  1919. if (info) {
  1920. if (info->func) {
  1921. info->func(system);
  1922. } else {
  1923. LOG_CRITICAL(Kernel_SVC, "Unimplemented SVC function {}(..)", info->name);
  1924. }
  1925. } else {
  1926. LOG_CRITICAL(Kernel_SVC, "Unknown SVC function 0x{:X}", immediate);
  1927. }
  1928. }
  1929. } // namespace Kernel