process.cpp 17 KB

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  1. // Copyright 2015 Citra Emulator Project
  2. // Licensed under GPLv2 or any later version
  3. // Refer to the license.txt file included.
  4. #include <algorithm>
  5. #include <bitset>
  6. #include <ctime>
  7. #include <memory>
  8. #include <random>
  9. #include "common/alignment.h"
  10. #include "common/assert.h"
  11. #include "common/logging/log.h"
  12. #include "common/settings.h"
  13. #include "core/core.h"
  14. #include "core/device_memory.h"
  15. #include "core/file_sys/program_metadata.h"
  16. #include "core/hle/kernel/code_set.h"
  17. #include "core/hle/kernel/k_memory_block_manager.h"
  18. #include "core/hle/kernel/k_page_table.h"
  19. #include "core/hle/kernel/k_resource_limit.h"
  20. #include "core/hle/kernel/k_scheduler.h"
  21. #include "core/hle/kernel/k_scoped_resource_reservation.h"
  22. #include "core/hle/kernel/k_slab_heap.h"
  23. #include "core/hle/kernel/k_thread.h"
  24. #include "core/hle/kernel/kernel.h"
  25. #include "core/hle/kernel/process.h"
  26. #include "core/hle/kernel/svc_results.h"
  27. #include "core/hle/lock.h"
  28. #include "core/memory.h"
  29. namespace Kernel {
  30. namespace {
  31. /**
  32. * Sets up the primary application thread
  33. *
  34. * @param system The system instance to create the main thread under.
  35. * @param owner_process The parent process for the main thread
  36. * @param priority The priority to give the main thread
  37. */
  38. void SetupMainThread(Core::System& system, Process& owner_process, u32 priority, VAddr stack_top) {
  39. const VAddr entry_point = owner_process.PageTable().GetCodeRegionStart();
  40. ASSERT(owner_process.GetResourceLimit()->Reserve(LimitableResource::Threads, 1));
  41. KThread* thread = KThread::Create(system.Kernel());
  42. ASSERT(KThread::InitializeUserThread(system, thread, entry_point, 0, stack_top, priority,
  43. owner_process.GetIdealCoreId(), &owner_process)
  44. .IsSuccess());
  45. // Register 1 must be a handle to the main thread
  46. Handle thread_handle{};
  47. owner_process.GetHandleTable().Add(&thread_handle, thread);
  48. thread->SetName("main");
  49. thread->GetContext32().cpu_registers[0] = 0;
  50. thread->GetContext64().cpu_registers[0] = 0;
  51. thread->GetContext32().cpu_registers[1] = thread_handle;
  52. thread->GetContext64().cpu_registers[1] = thread_handle;
  53. auto& kernel = system.Kernel();
  54. // Threads by default are dormant, wake up the main thread so it runs when the scheduler fires
  55. {
  56. KScopedSchedulerLock lock{kernel};
  57. thread->SetState(ThreadState::Runnable);
  58. }
  59. }
  60. } // Anonymous namespace
  61. // Represents a page used for thread-local storage.
  62. //
  63. // Each TLS page contains slots that may be used by processes and threads.
  64. // Every process and thread is created with a slot in some arbitrary page
  65. // (whichever page happens to have an available slot).
  66. class TLSPage {
  67. public:
  68. static constexpr std::size_t num_slot_entries =
  69. Core::Memory::PAGE_SIZE / Core::Memory::TLS_ENTRY_SIZE;
  70. explicit TLSPage(VAddr address) : base_address{address} {}
  71. bool HasAvailableSlots() const {
  72. return !is_slot_used.all();
  73. }
  74. VAddr GetBaseAddress() const {
  75. return base_address;
  76. }
  77. std::optional<VAddr> ReserveSlot() {
  78. for (std::size_t i = 0; i < is_slot_used.size(); i++) {
  79. if (is_slot_used[i]) {
  80. continue;
  81. }
  82. is_slot_used[i] = true;
  83. return base_address + (i * Core::Memory::TLS_ENTRY_SIZE);
  84. }
  85. return std::nullopt;
  86. }
  87. void ReleaseSlot(VAddr address) {
  88. // Ensure that all given addresses are consistent with how TLS pages
  89. // are intended to be used when releasing slots.
  90. ASSERT(IsWithinPage(address));
  91. ASSERT((address % Core::Memory::TLS_ENTRY_SIZE) == 0);
  92. const std::size_t index = (address - base_address) / Core::Memory::TLS_ENTRY_SIZE;
  93. is_slot_used[index] = false;
  94. }
  95. private:
  96. bool IsWithinPage(VAddr address) const {
  97. return base_address <= address && address < base_address + Core::Memory::PAGE_SIZE;
  98. }
  99. VAddr base_address;
  100. std::bitset<num_slot_entries> is_slot_used;
  101. };
  102. ResultCode Process::Initialize(Process* process, Core::System& system, std::string name,
  103. ProcessType type) {
  104. auto& kernel = system.Kernel();
  105. process->name = std::move(name);
  106. process->resource_limit = kernel.GetSystemResourceLimit();
  107. process->status = ProcessStatus::Created;
  108. process->program_id = 0;
  109. process->process_id = type == ProcessType::KernelInternal ? kernel.CreateNewKernelProcessID()
  110. : kernel.CreateNewUserProcessID();
  111. process->capabilities.InitializeForMetadatalessProcess();
  112. process->is_initialized = true;
  113. std::mt19937 rng(Settings::values.rng_seed.GetValue().value_or(std::time(nullptr)));
  114. std::uniform_int_distribution<u64> distribution;
  115. std::generate(process->random_entropy.begin(), process->random_entropy.end(),
  116. [&] { return distribution(rng); });
  117. kernel.AppendNewProcess(process);
  118. return RESULT_SUCCESS;
  119. }
  120. std::shared_ptr<KResourceLimit> Process::GetResourceLimit() const {
  121. return resource_limit;
  122. }
  123. void Process::IncrementThreadCount() {
  124. ASSERT(num_threads >= 0);
  125. num_created_threads++;
  126. if (const auto count = ++num_threads; count > peak_num_threads) {
  127. peak_num_threads = count;
  128. }
  129. }
  130. void Process::DecrementThreadCount() {
  131. ASSERT(num_threads > 0);
  132. if (const auto count = --num_threads; count == 0) {
  133. UNIMPLEMENTED_MSG("Process termination is not implemented!");
  134. }
  135. }
  136. u64 Process::GetTotalPhysicalMemoryAvailable() const {
  137. const u64 capacity{resource_limit->GetFreeValue(LimitableResource::PhysicalMemory) +
  138. page_table->GetTotalHeapSize() + GetSystemResourceSize() + image_size +
  139. main_thread_stack_size};
  140. ASSERT(capacity == kernel.MemoryManager().GetSize(KMemoryManager::Pool::Application));
  141. if (capacity < memory_usage_capacity) {
  142. return capacity;
  143. }
  144. return memory_usage_capacity;
  145. }
  146. u64 Process::GetTotalPhysicalMemoryAvailableWithoutSystemResource() const {
  147. return GetTotalPhysicalMemoryAvailable() - GetSystemResourceSize();
  148. }
  149. u64 Process::GetTotalPhysicalMemoryUsed() const {
  150. return image_size + main_thread_stack_size + page_table->GetTotalHeapSize() +
  151. GetSystemResourceSize();
  152. }
  153. u64 Process::GetTotalPhysicalMemoryUsedWithoutSystemResource() const {
  154. return GetTotalPhysicalMemoryUsed() - GetSystemResourceUsage();
  155. }
  156. bool Process::ReleaseUserException(KThread* thread) {
  157. KScopedSchedulerLock sl{kernel};
  158. if (exception_thread == thread) {
  159. exception_thread = nullptr;
  160. // Remove waiter thread.
  161. s32 num_waiters{};
  162. KThread* next = thread->RemoveWaiterByKey(
  163. std::addressof(num_waiters),
  164. reinterpret_cast<uintptr_t>(std::addressof(exception_thread)));
  165. if (next != nullptr) {
  166. if (next->GetState() == ThreadState::Waiting) {
  167. next->SetState(ThreadState::Runnable);
  168. } else {
  169. KScheduler::SetSchedulerUpdateNeeded(kernel);
  170. }
  171. }
  172. return true;
  173. } else {
  174. return false;
  175. }
  176. }
  177. void Process::PinCurrentThread() {
  178. ASSERT(kernel.GlobalSchedulerContext().IsLocked());
  179. // Get the current thread.
  180. const s32 core_id = GetCurrentCoreId(kernel);
  181. KThread* cur_thread = GetCurrentThreadPointer(kernel);
  182. // Pin it.
  183. PinThread(core_id, cur_thread);
  184. cur_thread->Pin();
  185. // An update is needed.
  186. KScheduler::SetSchedulerUpdateNeeded(kernel);
  187. }
  188. void Process::UnpinCurrentThread() {
  189. ASSERT(kernel.GlobalSchedulerContext().IsLocked());
  190. // Get the current thread.
  191. const s32 core_id = GetCurrentCoreId(kernel);
  192. KThread* cur_thread = GetCurrentThreadPointer(kernel);
  193. // Unpin it.
  194. cur_thread->Unpin();
  195. UnpinThread(core_id, cur_thread);
  196. // An update is needed.
  197. KScheduler::SetSchedulerUpdateNeeded(kernel);
  198. }
  199. void Process::RegisterThread(const KThread* thread) {
  200. thread_list.push_back(thread);
  201. }
  202. void Process::UnregisterThread(const KThread* thread) {
  203. thread_list.remove(thread);
  204. }
  205. ResultCode Process::Reset() {
  206. // Lock the process and the scheduler.
  207. KScopedLightLock lk(state_lock);
  208. KScopedSchedulerLock sl{kernel};
  209. // Validate that we're in a state that we can reset.
  210. R_UNLESS(status != ProcessStatus::Exited, ResultInvalidState);
  211. R_UNLESS(is_signaled, ResultInvalidState);
  212. // Clear signaled.
  213. is_signaled = false;
  214. return RESULT_SUCCESS;
  215. }
  216. ResultCode Process::LoadFromMetadata(const FileSys::ProgramMetadata& metadata,
  217. std::size_t code_size) {
  218. program_id = metadata.GetTitleID();
  219. ideal_core = metadata.GetMainThreadCore();
  220. is_64bit_process = metadata.Is64BitProgram();
  221. system_resource_size = metadata.GetSystemResourceSize();
  222. image_size = code_size;
  223. KScopedResourceReservation memory_reservation(resource_limit, LimitableResource::PhysicalMemory,
  224. code_size + system_resource_size);
  225. if (!memory_reservation.Succeeded()) {
  226. LOG_ERROR(Kernel, "Could not reserve process memory requirements of size {:X} bytes",
  227. code_size + system_resource_size);
  228. return ResultLimitReached;
  229. }
  230. // Initialize proces address space
  231. if (const ResultCode result{
  232. page_table->InitializeForProcess(metadata.GetAddressSpaceType(), false, 0x8000000,
  233. code_size, KMemoryManager::Pool::Application)};
  234. result.IsError()) {
  235. return result;
  236. }
  237. // Map process code region
  238. if (const ResultCode result{page_table->MapProcessCode(page_table->GetCodeRegionStart(),
  239. code_size / PageSize, KMemoryState::Code,
  240. KMemoryPermission::None)};
  241. result.IsError()) {
  242. return result;
  243. }
  244. // Initialize process capabilities
  245. const auto& caps{metadata.GetKernelCapabilities()};
  246. if (const ResultCode result{
  247. capabilities.InitializeForUserProcess(caps.data(), caps.size(), *page_table)};
  248. result.IsError()) {
  249. return result;
  250. }
  251. // Set memory usage capacity
  252. switch (metadata.GetAddressSpaceType()) {
  253. case FileSys::ProgramAddressSpaceType::Is32Bit:
  254. case FileSys::ProgramAddressSpaceType::Is36Bit:
  255. case FileSys::ProgramAddressSpaceType::Is39Bit:
  256. memory_usage_capacity = page_table->GetHeapRegionEnd() - page_table->GetHeapRegionStart();
  257. break;
  258. case FileSys::ProgramAddressSpaceType::Is32BitNoMap:
  259. memory_usage_capacity = page_table->GetHeapRegionEnd() - page_table->GetHeapRegionStart() +
  260. page_table->GetAliasRegionEnd() - page_table->GetAliasRegionStart();
  261. break;
  262. default:
  263. UNREACHABLE();
  264. }
  265. // Create TLS region
  266. tls_region_address = CreateTLSRegion();
  267. memory_reservation.Commit();
  268. return handle_table.SetSize(capabilities.GetHandleTableSize());
  269. }
  270. void Process::Run(s32 main_thread_priority, u64 stack_size) {
  271. AllocateMainThreadStack(stack_size);
  272. resource_limit->Reserve(LimitableResource::Threads, 1);
  273. resource_limit->Reserve(LimitableResource::PhysicalMemory, main_thread_stack_size);
  274. const std::size_t heap_capacity{memory_usage_capacity - main_thread_stack_size - image_size};
  275. ASSERT(!page_table->SetHeapCapacity(heap_capacity).IsError());
  276. ChangeStatus(ProcessStatus::Running);
  277. SetupMainThread(kernel.System(), *this, main_thread_priority, main_thread_stack_top);
  278. }
  279. void Process::PrepareForTermination() {
  280. ChangeStatus(ProcessStatus::Exiting);
  281. const auto stop_threads = [this](const std::vector<KThread*>& thread_list) {
  282. for (auto& thread : thread_list) {
  283. if (thread->GetOwnerProcess() != this)
  284. continue;
  285. if (thread == kernel.CurrentScheduler()->GetCurrentThread())
  286. continue;
  287. // TODO(Subv): When are the other running/ready threads terminated?
  288. ASSERT_MSG(thread->GetState() == ThreadState::Waiting,
  289. "Exiting processes with non-waiting threads is currently unimplemented");
  290. thread->Exit();
  291. }
  292. };
  293. stop_threads(kernel.System().GlobalSchedulerContext().GetThreadList());
  294. FreeTLSRegion(tls_region_address);
  295. tls_region_address = 0;
  296. if (resource_limit) {
  297. resource_limit->Release(LimitableResource::PhysicalMemory,
  298. main_thread_stack_size + image_size);
  299. }
  300. ChangeStatus(ProcessStatus::Exited);
  301. }
  302. /**
  303. * Attempts to find a TLS page that contains a free slot for
  304. * use by a thread.
  305. *
  306. * @returns If a page with an available slot is found, then an iterator
  307. * pointing to the page is returned. Otherwise the end iterator
  308. * is returned instead.
  309. */
  310. static auto FindTLSPageWithAvailableSlots(std::vector<TLSPage>& tls_pages) {
  311. return std::find_if(tls_pages.begin(), tls_pages.end(),
  312. [](const auto& page) { return page.HasAvailableSlots(); });
  313. }
  314. VAddr Process::CreateTLSRegion() {
  315. KScopedSchedulerLock lock(kernel);
  316. if (auto tls_page_iter{FindTLSPageWithAvailableSlots(tls_pages)};
  317. tls_page_iter != tls_pages.cend()) {
  318. return *tls_page_iter->ReserveSlot();
  319. }
  320. Page* const tls_page_ptr{kernel.GetUserSlabHeapPages().Allocate()};
  321. ASSERT(tls_page_ptr);
  322. const VAddr start{page_table->GetKernelMapRegionStart()};
  323. const VAddr size{page_table->GetKernelMapRegionEnd() - start};
  324. const PAddr tls_map_addr{kernel.System().DeviceMemory().GetPhysicalAddr(tls_page_ptr)};
  325. const VAddr tls_page_addr{page_table
  326. ->AllocateAndMapMemory(1, PageSize, true, start, size / PageSize,
  327. KMemoryState::ThreadLocal,
  328. KMemoryPermission::ReadAndWrite,
  329. tls_map_addr)
  330. .ValueOr(0)};
  331. ASSERT(tls_page_addr);
  332. std::memset(tls_page_ptr, 0, PageSize);
  333. tls_pages.emplace_back(tls_page_addr);
  334. const auto reserve_result{tls_pages.back().ReserveSlot()};
  335. ASSERT(reserve_result.has_value());
  336. return *reserve_result;
  337. }
  338. void Process::FreeTLSRegion(VAddr tls_address) {
  339. KScopedSchedulerLock lock(kernel);
  340. const VAddr aligned_address = Common::AlignDown(tls_address, Core::Memory::PAGE_SIZE);
  341. auto iter =
  342. std::find_if(tls_pages.begin(), tls_pages.end(), [aligned_address](const auto& page) {
  343. return page.GetBaseAddress() == aligned_address;
  344. });
  345. // Something has gone very wrong if we're freeing a region
  346. // with no actual page available.
  347. ASSERT(iter != tls_pages.cend());
  348. iter->ReleaseSlot(tls_address);
  349. }
  350. void Process::LoadModule(CodeSet code_set, VAddr base_addr) {
  351. std::lock_guard lock{HLE::g_hle_lock};
  352. const auto ReprotectSegment = [&](const CodeSet::Segment& segment,
  353. KMemoryPermission permission) {
  354. page_table->SetCodeMemoryPermission(segment.addr + base_addr, segment.size, permission);
  355. };
  356. kernel.System().Memory().WriteBlock(*this, base_addr, code_set.memory.data(),
  357. code_set.memory.size());
  358. ReprotectSegment(code_set.CodeSegment(), KMemoryPermission::ReadAndExecute);
  359. ReprotectSegment(code_set.RODataSegment(), KMemoryPermission::Read);
  360. ReprotectSegment(code_set.DataSegment(), KMemoryPermission::ReadAndWrite);
  361. }
  362. bool Process::IsSignaled() const {
  363. ASSERT(kernel.GlobalSchedulerContext().IsLocked());
  364. return is_signaled;
  365. }
  366. Process::Process(KernelCore& kernel)
  367. : KAutoObjectWithSlabHeapAndContainer{kernel},
  368. page_table{std::make_unique<KPageTable>(kernel.System())}, handle_table{kernel},
  369. address_arbiter{kernel.System()}, condition_var{kernel.System()}, state_lock{kernel} {}
  370. Process::~Process() = default;
  371. void Process::ChangeStatus(ProcessStatus new_status) {
  372. if (status == new_status) {
  373. return;
  374. }
  375. status = new_status;
  376. is_signaled = true;
  377. NotifyAvailable();
  378. }
  379. ResultCode Process::AllocateMainThreadStack(std::size_t stack_size) {
  380. ASSERT(stack_size);
  381. // The kernel always ensures that the given stack size is page aligned.
  382. main_thread_stack_size = Common::AlignUp(stack_size, PageSize);
  383. const VAddr start{page_table->GetStackRegionStart()};
  384. const std::size_t size{page_table->GetStackRegionEnd() - start};
  385. CASCADE_RESULT(main_thread_stack_top,
  386. page_table->AllocateAndMapMemory(
  387. main_thread_stack_size / PageSize, PageSize, false, start, size / PageSize,
  388. KMemoryState::Stack, KMemoryPermission::ReadAndWrite));
  389. main_thread_stack_top += main_thread_stack_size;
  390. return RESULT_SUCCESS;
  391. }
  392. } // namespace Kernel