kernel.cpp 44 KB

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  1. // Copyright 2021 yuzu Emulator Project
  2. // Licensed under GPLv2 or any later version
  3. // Refer to the license.txt file included.
  4. #include <array>
  5. #include <atomic>
  6. #include <bitset>
  7. #include <functional>
  8. #include <memory>
  9. #include <thread>
  10. #include <unordered_set>
  11. #include <utility>
  12. #include "common/assert.h"
  13. #include "common/logging/log.h"
  14. #include "common/microprofile.h"
  15. #include "common/scope_exit.h"
  16. #include "common/thread.h"
  17. #include "common/thread_worker.h"
  18. #include "core/arm/arm_interface.h"
  19. #include "core/arm/cpu_interrupt_handler.h"
  20. #include "core/arm/exclusive_monitor.h"
  21. #include "core/core.h"
  22. #include "core/core_timing.h"
  23. #include "core/core_timing_util.h"
  24. #include "core/cpu_manager.h"
  25. #include "core/device_memory.h"
  26. #include "core/hardware_properties.h"
  27. #include "core/hle/kernel/init/init_slab_setup.h"
  28. #include "core/hle/kernel/k_client_port.h"
  29. #include "core/hle/kernel/k_handle_table.h"
  30. #include "core/hle/kernel/k_memory_layout.h"
  31. #include "core/hle/kernel/k_memory_manager.h"
  32. #include "core/hle/kernel/k_process.h"
  33. #include "core/hle/kernel/k_resource_limit.h"
  34. #include "core/hle/kernel/k_scheduler.h"
  35. #include "core/hle/kernel/k_shared_memory.h"
  36. #include "core/hle/kernel/k_slab_heap.h"
  37. #include "core/hle/kernel/k_thread.h"
  38. #include "core/hle/kernel/k_worker_task_manager.h"
  39. #include "core/hle/kernel/kernel.h"
  40. #include "core/hle/kernel/physical_core.h"
  41. #include "core/hle/kernel/service_thread.h"
  42. #include "core/hle/kernel/time_manager.h"
  43. #include "core/hle/result.h"
  44. #include "core/hle/service/sm/sm.h"
  45. #include "core/memory.h"
  46. MICROPROFILE_DEFINE(Kernel_SVC, "Kernel", "SVC", MP_RGB(70, 200, 70));
  47. namespace Kernel {
  48. struct KernelCore::Impl {
  49. explicit Impl(Core::System& system_, KernelCore& kernel_)
  50. : time_manager{system_}, object_list_container{kernel_}, system{system_} {}
  51. void SetMulticore(bool is_multi) {
  52. is_multicore = is_multi;
  53. }
  54. void Initialize(KernelCore& kernel) {
  55. global_scheduler_context = std::make_unique<Kernel::GlobalSchedulerContext>(kernel);
  56. global_handle_table = std::make_unique<Kernel::KHandleTable>(kernel);
  57. global_handle_table->Initialize(KHandleTable::MaxTableSize);
  58. is_phantom_mode_for_singlecore = false;
  59. InitializePhysicalCores();
  60. // Derive the initial memory layout from the emulated board
  61. Init::InitializeSlabResourceCounts(kernel);
  62. KMemoryLayout memory_layout;
  63. DeriveInitialMemoryLayout(memory_layout);
  64. Init::InitializeSlabHeaps(system, memory_layout);
  65. // Initialize kernel memory and resources.
  66. InitializeSystemResourceLimit(kernel, system.CoreTiming(), memory_layout);
  67. InitializeMemoryLayout(memory_layout);
  68. InitializePageSlab();
  69. InitializeSchedulers();
  70. InitializeSuspendThreads();
  71. InitializePreemption(kernel);
  72. RegisterHostThread();
  73. }
  74. void InitializeCores() {
  75. for (u32 core_id = 0; core_id < Core::Hardware::NUM_CPU_CORES; core_id++) {
  76. cores[core_id].Initialize(current_process->Is64BitProcess());
  77. system.Memory().SetCurrentPageTable(*current_process, core_id);
  78. }
  79. }
  80. void Shutdown() {
  81. is_shutting_down.store(true, std::memory_order_relaxed);
  82. SCOPE_EXIT({ is_shutting_down.store(false, std::memory_order_relaxed); });
  83. process_list.clear();
  84. // Close all open server ports.
  85. std::unordered_set<KServerPort*> server_ports_;
  86. {
  87. std::lock_guard lk(server_ports_lock);
  88. server_ports_ = server_ports;
  89. server_ports.clear();
  90. }
  91. for (auto* server_port : server_ports_) {
  92. server_port->Close();
  93. }
  94. // Close all open server sessions.
  95. std::unordered_set<KServerSession*> server_sessions_;
  96. {
  97. std::lock_guard lk(server_sessions_lock);
  98. server_sessions_ = server_sessions;
  99. server_sessions.clear();
  100. }
  101. for (auto* server_session : server_sessions_) {
  102. server_session->Close();
  103. }
  104. // Ensure that the object list container is finalized and properly shutdown.
  105. object_list_container.Finalize();
  106. // Ensures all service threads gracefully shutdown.
  107. ClearServiceThreads();
  108. next_object_id = 0;
  109. next_kernel_process_id = KProcess::InitialKIPIDMin;
  110. next_user_process_id = KProcess::ProcessIDMin;
  111. next_thread_id = 1;
  112. cores.clear();
  113. global_handle_table->Finalize();
  114. global_handle_table.reset();
  115. preemption_event = nullptr;
  116. for (auto& iter : named_ports) {
  117. iter.second->Close();
  118. }
  119. named_ports.clear();
  120. exclusive_monitor.reset();
  121. // Cleanup persistent kernel objects
  122. auto CleanupObject = [](KAutoObject* obj) {
  123. if (obj) {
  124. obj->Close();
  125. obj = nullptr;
  126. }
  127. };
  128. CleanupObject(hid_shared_mem);
  129. CleanupObject(font_shared_mem);
  130. CleanupObject(irs_shared_mem);
  131. CleanupObject(time_shared_mem);
  132. CleanupObject(system_resource_limit);
  133. for (u32 core_id = 0; core_id < Core::Hardware::NUM_CPU_CORES; core_id++) {
  134. if (suspend_threads[core_id]) {
  135. suspend_threads[core_id]->Close();
  136. suspend_threads[core_id] = nullptr;
  137. }
  138. schedulers[core_id]->Finalize();
  139. schedulers[core_id].reset();
  140. }
  141. // Next host thead ID to use, 0-3 IDs represent core threads, >3 represent others
  142. next_host_thread_id = Core::Hardware::NUM_CPU_CORES;
  143. // Close kernel objects that were not freed on shutdown
  144. {
  145. std::lock_guard lk(registered_in_use_objects_lock);
  146. if (registered_in_use_objects.size()) {
  147. for (auto& object : registered_in_use_objects) {
  148. object->Close();
  149. }
  150. registered_in_use_objects.clear();
  151. }
  152. }
  153. // Shutdown all processes.
  154. if (current_process) {
  155. current_process->Finalize();
  156. // current_process->Close();
  157. // TODO: The current process should be destroyed based on accurate ref counting after
  158. // calling Close(). Adding a manual Destroy() call instead to avoid a memory leak.
  159. current_process->Destroy();
  160. current_process = nullptr;
  161. }
  162. // Track kernel objects that were not freed on shutdown
  163. {
  164. std::lock_guard lk(registered_objects_lock);
  165. if (registered_objects.size()) {
  166. LOG_WARNING(Kernel, "{} kernel objects were dangling on shutdown!",
  167. registered_objects.size());
  168. registered_objects.clear();
  169. }
  170. }
  171. }
  172. void InitializePhysicalCores() {
  173. exclusive_monitor =
  174. Core::MakeExclusiveMonitor(system.Memory(), Core::Hardware::NUM_CPU_CORES);
  175. for (u32 i = 0; i < Core::Hardware::NUM_CPU_CORES; i++) {
  176. schedulers[i] = std::make_unique<Kernel::KScheduler>(system, i);
  177. cores.emplace_back(i, system, *schedulers[i], interrupts);
  178. }
  179. }
  180. void InitializeSchedulers() {
  181. for (u32 i = 0; i < Core::Hardware::NUM_CPU_CORES; i++) {
  182. cores[i].Scheduler().Initialize();
  183. }
  184. }
  185. // Creates the default system resource limit
  186. void InitializeSystemResourceLimit(KernelCore& kernel,
  187. const Core::Timing::CoreTiming& core_timing,
  188. const KMemoryLayout& memory_layout) {
  189. system_resource_limit = KResourceLimit::Create(system.Kernel());
  190. system_resource_limit->Initialize(&core_timing);
  191. const auto [total_size, kernel_size] = memory_layout.GetTotalAndKernelMemorySizes();
  192. // If setting the default system values fails, then something seriously wrong has occurred.
  193. ASSERT(system_resource_limit->SetLimitValue(LimitableResource::PhysicalMemory, total_size)
  194. .IsSuccess());
  195. ASSERT(system_resource_limit->SetLimitValue(LimitableResource::Threads, 800).IsSuccess());
  196. ASSERT(system_resource_limit->SetLimitValue(LimitableResource::Events, 900).IsSuccess());
  197. ASSERT(system_resource_limit->SetLimitValue(LimitableResource::TransferMemory, 200)
  198. .IsSuccess());
  199. ASSERT(system_resource_limit->SetLimitValue(LimitableResource::Sessions, 1133).IsSuccess());
  200. system_resource_limit->Reserve(LimitableResource::PhysicalMemory, kernel_size);
  201. // Reserve secure applet memory, introduced in firmware 5.0.0
  202. constexpr u64 secure_applet_memory_size{4_MiB};
  203. ASSERT(system_resource_limit->Reserve(LimitableResource::PhysicalMemory,
  204. secure_applet_memory_size));
  205. // This memory seems to be reserved on hardware, but is not reserved/used by yuzu.
  206. // Likely Horizon OS reserved memory
  207. // TODO(ameerj): Derive the memory rather than hardcode it.
  208. constexpr u64 unknown_reserved_memory{0x2f896000};
  209. ASSERT(system_resource_limit->Reserve(LimitableResource::PhysicalMemory,
  210. unknown_reserved_memory));
  211. }
  212. void InitializePreemption(KernelCore& kernel) {
  213. preemption_event = Core::Timing::CreateEvent(
  214. "PreemptionCallback", [this, &kernel](std::uintptr_t, std::chrono::nanoseconds) {
  215. {
  216. KScopedSchedulerLock lock(kernel);
  217. global_scheduler_context->PreemptThreads();
  218. }
  219. const auto time_interval = std::chrono::nanoseconds{std::chrono::milliseconds(10)};
  220. system.CoreTiming().ScheduleEvent(time_interval, preemption_event);
  221. });
  222. const auto time_interval = std::chrono::nanoseconds{std::chrono::milliseconds(10)};
  223. system.CoreTiming().ScheduleEvent(time_interval, preemption_event);
  224. }
  225. void InitializeSuspendThreads() {
  226. for (u32 core_id = 0; core_id < Core::Hardware::NUM_CPU_CORES; core_id++) {
  227. suspend_threads[core_id] = KThread::Create(system.Kernel());
  228. ASSERT(KThread::InitializeHighPriorityThread(system, suspend_threads[core_id], {}, {},
  229. core_id)
  230. .IsSuccess());
  231. suspend_threads[core_id]->SetName(fmt::format("SuspendThread:{}", core_id));
  232. }
  233. }
  234. void MakeCurrentProcess(KProcess* process) {
  235. current_process = process;
  236. }
  237. static inline thread_local u32 host_thread_id = UINT32_MAX;
  238. /// Gets the host thread ID for the caller, allocating a new one if this is the first time
  239. u32 GetHostThreadId(std::size_t core_id) {
  240. if (host_thread_id == UINT32_MAX) {
  241. // The first four slots are reserved for CPU core threads
  242. ASSERT(core_id < Core::Hardware::NUM_CPU_CORES);
  243. host_thread_id = static_cast<u32>(core_id);
  244. }
  245. return host_thread_id;
  246. }
  247. /// Gets the host thread ID for the caller, allocating a new one if this is the first time
  248. u32 GetHostThreadId() {
  249. if (host_thread_id == UINT32_MAX) {
  250. host_thread_id = next_host_thread_id++;
  251. }
  252. return host_thread_id;
  253. }
  254. // Gets the dummy KThread for the caller, allocating a new one if this is the first time
  255. KThread* GetHostDummyThread() {
  256. auto make_thread = [this]() {
  257. std::lock_guard lk(dummy_thread_lock);
  258. auto& thread = dummy_threads.emplace_back(std::make_unique<KThread>(system.Kernel()));
  259. KAutoObject::Create(thread.get());
  260. ASSERT(KThread::InitializeDummyThread(thread.get()).IsSuccess());
  261. thread->SetName(fmt::format("DummyThread:{}", GetHostThreadId()));
  262. return thread.get();
  263. };
  264. thread_local KThread* saved_thread = make_thread();
  265. return saved_thread;
  266. }
  267. /// Registers a CPU core thread by allocating a host thread ID for it
  268. void RegisterCoreThread(std::size_t core_id) {
  269. ASSERT(core_id < Core::Hardware::NUM_CPU_CORES);
  270. const auto this_id = GetHostThreadId(core_id);
  271. if (!is_multicore) {
  272. single_core_thread_id = this_id;
  273. }
  274. }
  275. /// Registers a new host thread by allocating a host thread ID for it
  276. void RegisterHostThread() {
  277. [[maybe_unused]] const auto this_id = GetHostThreadId();
  278. [[maybe_unused]] const auto dummy_thread = GetHostDummyThread();
  279. }
  280. [[nodiscard]] u32 GetCurrentHostThreadID() {
  281. const auto this_id = GetHostThreadId();
  282. if (!is_multicore && single_core_thread_id == this_id) {
  283. return static_cast<u32>(system.GetCpuManager().CurrentCore());
  284. }
  285. return this_id;
  286. }
  287. bool IsPhantomModeForSingleCore() const {
  288. return is_phantom_mode_for_singlecore;
  289. }
  290. void SetIsPhantomModeForSingleCore(bool value) {
  291. ASSERT(!is_multicore);
  292. is_phantom_mode_for_singlecore = value;
  293. }
  294. bool IsShuttingDown() const {
  295. return is_shutting_down.load(std::memory_order_relaxed);
  296. }
  297. KThread* GetCurrentEmuThread() {
  298. // If we are shutting down the kernel, none of this is relevant anymore.
  299. if (IsShuttingDown()) {
  300. return {};
  301. }
  302. const auto thread_id = GetCurrentHostThreadID();
  303. if (thread_id >= Core::Hardware::NUM_CPU_CORES) {
  304. return GetHostDummyThread();
  305. }
  306. return schedulers[thread_id]->GetCurrentThread();
  307. }
  308. void DeriveInitialMemoryLayout(KMemoryLayout& memory_layout) {
  309. // Insert the root region for the virtual memory tree, from which all other regions will
  310. // derive.
  311. memory_layout.GetVirtualMemoryRegionTree().InsertDirectly(
  312. KernelVirtualAddressSpaceBase,
  313. KernelVirtualAddressSpaceBase + KernelVirtualAddressSpaceSize - 1);
  314. // Insert the root region for the physical memory tree, from which all other regions will
  315. // derive.
  316. memory_layout.GetPhysicalMemoryRegionTree().InsertDirectly(
  317. KernelPhysicalAddressSpaceBase,
  318. KernelPhysicalAddressSpaceBase + KernelPhysicalAddressSpaceSize - 1);
  319. // Save start and end for ease of use.
  320. const VAddr code_start_virt_addr = KernelVirtualAddressCodeBase;
  321. const VAddr code_end_virt_addr = KernelVirtualAddressCodeEnd;
  322. // Setup the containing kernel region.
  323. constexpr size_t KernelRegionSize = 1_GiB;
  324. constexpr size_t KernelRegionAlign = 1_GiB;
  325. constexpr VAddr kernel_region_start =
  326. Common::AlignDown(code_start_virt_addr, KernelRegionAlign);
  327. size_t kernel_region_size = KernelRegionSize;
  328. if (!(kernel_region_start + KernelRegionSize - 1 <= KernelVirtualAddressSpaceLast)) {
  329. kernel_region_size = KernelVirtualAddressSpaceEnd - kernel_region_start;
  330. }
  331. ASSERT(memory_layout.GetVirtualMemoryRegionTree().Insert(
  332. kernel_region_start, kernel_region_size, KMemoryRegionType_Kernel));
  333. // Setup the code region.
  334. constexpr size_t CodeRegionAlign = PageSize;
  335. constexpr VAddr code_region_start =
  336. Common::AlignDown(code_start_virt_addr, CodeRegionAlign);
  337. constexpr VAddr code_region_end = Common::AlignUp(code_end_virt_addr, CodeRegionAlign);
  338. constexpr size_t code_region_size = code_region_end - code_region_start;
  339. ASSERT(memory_layout.GetVirtualMemoryRegionTree().Insert(
  340. code_region_start, code_region_size, KMemoryRegionType_KernelCode));
  341. // Setup board-specific device physical regions.
  342. Init::SetupDevicePhysicalMemoryRegions(memory_layout);
  343. // Determine the amount of space needed for the misc region.
  344. size_t misc_region_needed_size;
  345. {
  346. // Each core has a one page stack for all three stack types (Main, Idle, Exception).
  347. misc_region_needed_size = Core::Hardware::NUM_CPU_CORES * (3 * (PageSize + PageSize));
  348. // Account for each auto-map device.
  349. for (const auto& region : memory_layout.GetPhysicalMemoryRegionTree()) {
  350. if (region.HasTypeAttribute(KMemoryRegionAttr_ShouldKernelMap)) {
  351. // Check that the region is valid.
  352. ASSERT(region.GetEndAddress() != 0);
  353. // Account for the region.
  354. misc_region_needed_size +=
  355. PageSize + (Common::AlignUp(region.GetLastAddress(), PageSize) -
  356. Common::AlignDown(region.GetAddress(), PageSize));
  357. }
  358. }
  359. // Multiply the needed size by three, to account for the need for guard space.
  360. misc_region_needed_size *= 3;
  361. }
  362. // Decide on the actual size for the misc region.
  363. constexpr size_t MiscRegionAlign = KernelAslrAlignment;
  364. constexpr size_t MiscRegionMinimumSize = 32_MiB;
  365. const size_t misc_region_size = Common::AlignUp(
  366. std::max(misc_region_needed_size, MiscRegionMinimumSize), MiscRegionAlign);
  367. ASSERT(misc_region_size > 0);
  368. // Setup the misc region.
  369. const VAddr misc_region_start =
  370. memory_layout.GetVirtualMemoryRegionTree().GetRandomAlignedRegion(
  371. misc_region_size, MiscRegionAlign, KMemoryRegionType_Kernel);
  372. ASSERT(memory_layout.GetVirtualMemoryRegionTree().Insert(
  373. misc_region_start, misc_region_size, KMemoryRegionType_KernelMisc));
  374. // Setup the stack region.
  375. constexpr size_t StackRegionSize = 14_MiB;
  376. constexpr size_t StackRegionAlign = KernelAslrAlignment;
  377. const VAddr stack_region_start =
  378. memory_layout.GetVirtualMemoryRegionTree().GetRandomAlignedRegion(
  379. StackRegionSize, StackRegionAlign, KMemoryRegionType_Kernel);
  380. ASSERT(memory_layout.GetVirtualMemoryRegionTree().Insert(
  381. stack_region_start, StackRegionSize, KMemoryRegionType_KernelStack));
  382. // Determine the size of the resource region.
  383. const size_t resource_region_size = memory_layout.GetResourceRegionSizeForInit();
  384. // Determine the size of the slab region.
  385. const size_t slab_region_size =
  386. Common::AlignUp(Init::CalculateTotalSlabHeapSize(system.Kernel()), PageSize);
  387. ASSERT(slab_region_size <= resource_region_size);
  388. // Setup the slab region.
  389. const PAddr code_start_phys_addr = KernelPhysicalAddressCodeBase;
  390. const PAddr code_end_phys_addr = code_start_phys_addr + code_region_size;
  391. const PAddr slab_start_phys_addr = code_end_phys_addr;
  392. const PAddr slab_end_phys_addr = slab_start_phys_addr + slab_region_size;
  393. constexpr size_t SlabRegionAlign = KernelAslrAlignment;
  394. const size_t slab_region_needed_size =
  395. Common::AlignUp(code_end_phys_addr + slab_region_size, SlabRegionAlign) -
  396. Common::AlignDown(code_end_phys_addr, SlabRegionAlign);
  397. const VAddr slab_region_start =
  398. memory_layout.GetVirtualMemoryRegionTree().GetRandomAlignedRegion(
  399. slab_region_needed_size, SlabRegionAlign, KMemoryRegionType_Kernel) +
  400. (code_end_phys_addr % SlabRegionAlign);
  401. ASSERT(memory_layout.GetVirtualMemoryRegionTree().Insert(
  402. slab_region_start, slab_region_size, KMemoryRegionType_KernelSlab));
  403. // Setup the temp region.
  404. constexpr size_t TempRegionSize = 128_MiB;
  405. constexpr size_t TempRegionAlign = KernelAslrAlignment;
  406. const VAddr temp_region_start =
  407. memory_layout.GetVirtualMemoryRegionTree().GetRandomAlignedRegion(
  408. TempRegionSize, TempRegionAlign, KMemoryRegionType_Kernel);
  409. ASSERT(memory_layout.GetVirtualMemoryRegionTree().Insert(temp_region_start, TempRegionSize,
  410. KMemoryRegionType_KernelTemp));
  411. // Automatically map in devices that have auto-map attributes.
  412. for (auto& region : memory_layout.GetPhysicalMemoryRegionTree()) {
  413. // We only care about kernel regions.
  414. if (!region.IsDerivedFrom(KMemoryRegionType_Kernel)) {
  415. continue;
  416. }
  417. // Check whether we should map the region.
  418. if (!region.HasTypeAttribute(KMemoryRegionAttr_ShouldKernelMap)) {
  419. continue;
  420. }
  421. // If this region has already been mapped, no need to consider it.
  422. if (region.HasTypeAttribute(KMemoryRegionAttr_DidKernelMap)) {
  423. continue;
  424. }
  425. // Check that the region is valid.
  426. ASSERT(region.GetEndAddress() != 0);
  427. // Set the attribute to note we've mapped this region.
  428. region.SetTypeAttribute(KMemoryRegionAttr_DidKernelMap);
  429. // Create a virtual pair region and insert it into the tree.
  430. const PAddr map_phys_addr = Common::AlignDown(region.GetAddress(), PageSize);
  431. const size_t map_size =
  432. Common::AlignUp(region.GetEndAddress(), PageSize) - map_phys_addr;
  433. const VAddr map_virt_addr =
  434. memory_layout.GetVirtualMemoryRegionTree().GetRandomAlignedRegionWithGuard(
  435. map_size, PageSize, KMemoryRegionType_KernelMisc, PageSize);
  436. ASSERT(memory_layout.GetVirtualMemoryRegionTree().Insert(
  437. map_virt_addr, map_size, KMemoryRegionType_KernelMiscMappedDevice));
  438. region.SetPairAddress(map_virt_addr + region.GetAddress() - map_phys_addr);
  439. }
  440. Init::SetupDramPhysicalMemoryRegions(memory_layout);
  441. // Insert a physical region for the kernel code region.
  442. ASSERT(memory_layout.GetPhysicalMemoryRegionTree().Insert(
  443. code_start_phys_addr, code_region_size, KMemoryRegionType_DramKernelCode));
  444. // Insert a physical region for the kernel slab region.
  445. ASSERT(memory_layout.GetPhysicalMemoryRegionTree().Insert(
  446. slab_start_phys_addr, slab_region_size, KMemoryRegionType_DramKernelSlab));
  447. // Determine size available for kernel page table heaps, requiring > 8 MB.
  448. const PAddr resource_end_phys_addr = slab_start_phys_addr + resource_region_size;
  449. const size_t page_table_heap_size = resource_end_phys_addr - slab_end_phys_addr;
  450. ASSERT(page_table_heap_size / 4_MiB > 2);
  451. // Insert a physical region for the kernel page table heap region
  452. ASSERT(memory_layout.GetPhysicalMemoryRegionTree().Insert(
  453. slab_end_phys_addr, page_table_heap_size, KMemoryRegionType_DramKernelPtHeap));
  454. // All DRAM regions that we haven't tagged by this point will be mapped under the linear
  455. // mapping. Tag them.
  456. for (auto& region : memory_layout.GetPhysicalMemoryRegionTree()) {
  457. if (region.GetType() == KMemoryRegionType_Dram) {
  458. // Check that the region is valid.
  459. ASSERT(region.GetEndAddress() != 0);
  460. // Set the linear map attribute.
  461. region.SetTypeAttribute(KMemoryRegionAttr_LinearMapped);
  462. }
  463. }
  464. // Get the linear region extents.
  465. const auto linear_extents =
  466. memory_layout.GetPhysicalMemoryRegionTree().GetDerivedRegionExtents(
  467. KMemoryRegionAttr_LinearMapped);
  468. ASSERT(linear_extents.GetEndAddress() != 0);
  469. // Setup the linear mapping region.
  470. constexpr size_t LinearRegionAlign = 1_GiB;
  471. const PAddr aligned_linear_phys_start =
  472. Common::AlignDown(linear_extents.GetAddress(), LinearRegionAlign);
  473. const size_t linear_region_size =
  474. Common::AlignUp(linear_extents.GetEndAddress(), LinearRegionAlign) -
  475. aligned_linear_phys_start;
  476. const VAddr linear_region_start =
  477. memory_layout.GetVirtualMemoryRegionTree().GetRandomAlignedRegionWithGuard(
  478. linear_region_size, LinearRegionAlign, KMemoryRegionType_None, LinearRegionAlign);
  479. const u64 linear_region_phys_to_virt_diff = linear_region_start - aligned_linear_phys_start;
  480. // Map and create regions for all the linearly-mapped data.
  481. {
  482. PAddr cur_phys_addr = 0;
  483. u64 cur_size = 0;
  484. for (auto& region : memory_layout.GetPhysicalMemoryRegionTree()) {
  485. if (!region.HasTypeAttribute(KMemoryRegionAttr_LinearMapped)) {
  486. continue;
  487. }
  488. ASSERT(region.GetEndAddress() != 0);
  489. if (cur_size == 0) {
  490. cur_phys_addr = region.GetAddress();
  491. cur_size = region.GetSize();
  492. } else if (cur_phys_addr + cur_size == region.GetAddress()) {
  493. cur_size += region.GetSize();
  494. } else {
  495. cur_phys_addr = region.GetAddress();
  496. cur_size = region.GetSize();
  497. }
  498. const VAddr region_virt_addr =
  499. region.GetAddress() + linear_region_phys_to_virt_diff;
  500. ASSERT(memory_layout.GetVirtualMemoryRegionTree().Insert(
  501. region_virt_addr, region.GetSize(),
  502. GetTypeForVirtualLinearMapping(region.GetType())));
  503. region.SetPairAddress(region_virt_addr);
  504. KMemoryRegion* virt_region =
  505. memory_layout.GetVirtualMemoryRegionTree().FindModifiable(region_virt_addr);
  506. ASSERT(virt_region != nullptr);
  507. virt_region->SetPairAddress(region.GetAddress());
  508. }
  509. }
  510. // Insert regions for the initial page table region.
  511. ASSERT(memory_layout.GetPhysicalMemoryRegionTree().Insert(
  512. resource_end_phys_addr, KernelPageTableHeapSize, KMemoryRegionType_DramKernelInitPt));
  513. ASSERT(memory_layout.GetVirtualMemoryRegionTree().Insert(
  514. resource_end_phys_addr + linear_region_phys_to_virt_diff, KernelPageTableHeapSize,
  515. KMemoryRegionType_VirtualDramKernelInitPt));
  516. // All linear-mapped DRAM regions that we haven't tagged by this point will be allocated to
  517. // some pool partition. Tag them.
  518. for (auto& region : memory_layout.GetPhysicalMemoryRegionTree()) {
  519. if (region.GetType() == (KMemoryRegionType_Dram | KMemoryRegionAttr_LinearMapped)) {
  520. region.SetType(KMemoryRegionType_DramPoolPartition);
  521. }
  522. }
  523. // Setup all other memory regions needed to arrange the pool partitions.
  524. Init::SetupPoolPartitionMemoryRegions(memory_layout);
  525. // Cache all linear regions in their own trees for faster access, later.
  526. memory_layout.InitializeLinearMemoryRegionTrees(aligned_linear_phys_start,
  527. linear_region_start);
  528. }
  529. void InitializeMemoryLayout(const KMemoryLayout& memory_layout) {
  530. const auto system_pool = memory_layout.GetKernelSystemPoolRegionPhysicalExtents();
  531. const auto applet_pool = memory_layout.GetKernelAppletPoolRegionPhysicalExtents();
  532. const auto application_pool = memory_layout.GetKernelApplicationPoolRegionPhysicalExtents();
  533. // Initialize memory managers
  534. memory_manager = std::make_unique<KMemoryManager>();
  535. memory_manager->InitializeManager(KMemoryManager::Pool::Application,
  536. application_pool.GetAddress(),
  537. application_pool.GetEndAddress());
  538. memory_manager->InitializeManager(KMemoryManager::Pool::Applet, applet_pool.GetAddress(),
  539. applet_pool.GetEndAddress());
  540. memory_manager->InitializeManager(KMemoryManager::Pool::System, system_pool.GetAddress(),
  541. system_pool.GetEndAddress());
  542. // Setup memory regions for emulated processes
  543. // TODO(bunnei): These should not be hardcoded regions initialized within the kernel
  544. constexpr std::size_t hid_size{0x40000};
  545. constexpr std::size_t font_size{0x1100000};
  546. constexpr std::size_t irs_size{0x8000};
  547. constexpr std::size_t time_size{0x1000};
  548. const PAddr hid_phys_addr{system_pool.GetAddress()};
  549. const PAddr font_phys_addr{system_pool.GetAddress() + hid_size};
  550. const PAddr irs_phys_addr{system_pool.GetAddress() + hid_size + font_size};
  551. const PAddr time_phys_addr{system_pool.GetAddress() + hid_size + font_size + irs_size};
  552. hid_shared_mem = KSharedMemory::Create(system.Kernel());
  553. font_shared_mem = KSharedMemory::Create(system.Kernel());
  554. irs_shared_mem = KSharedMemory::Create(system.Kernel());
  555. time_shared_mem = KSharedMemory::Create(system.Kernel());
  556. hid_shared_mem->Initialize(system.DeviceMemory(), nullptr,
  557. {hid_phys_addr, hid_size / PageSize},
  558. Svc::MemoryPermission::None, Svc::MemoryPermission::Read,
  559. hid_phys_addr, hid_size, "HID:SharedMemory");
  560. font_shared_mem->Initialize(system.DeviceMemory(), nullptr,
  561. {font_phys_addr, font_size / PageSize},
  562. Svc::MemoryPermission::None, Svc::MemoryPermission::Read,
  563. font_phys_addr, font_size, "Font:SharedMemory");
  564. irs_shared_mem->Initialize(system.DeviceMemory(), nullptr,
  565. {irs_phys_addr, irs_size / PageSize},
  566. Svc::MemoryPermission::None, Svc::MemoryPermission::Read,
  567. irs_phys_addr, irs_size, "IRS:SharedMemory");
  568. time_shared_mem->Initialize(system.DeviceMemory(), nullptr,
  569. {time_phys_addr, time_size / PageSize},
  570. Svc::MemoryPermission::None, Svc::MemoryPermission::Read,
  571. time_phys_addr, time_size, "Time:SharedMemory");
  572. }
  573. void InitializePageSlab() {
  574. // Allocate slab heaps
  575. user_slab_heap_pages =
  576. std::make_unique<KSlabHeap<Page>>(KSlabHeap<Page>::AllocationType::Guest);
  577. // TODO(ameerj): This should be derived, not hardcoded within the kernel
  578. constexpr u64 user_slab_heap_size{0x3de000};
  579. // Reserve slab heaps
  580. ASSERT(
  581. system_resource_limit->Reserve(LimitableResource::PhysicalMemory, user_slab_heap_size));
  582. // Initialize slab heap
  583. user_slab_heap_pages->Initialize(
  584. system.DeviceMemory().GetPointer(Core::DramMemoryMap::SlabHeapBase),
  585. user_slab_heap_size);
  586. }
  587. KClientPort* CreateNamedServicePort(std::string name) {
  588. auto search = service_interface_factory.find(name);
  589. if (search == service_interface_factory.end()) {
  590. UNIMPLEMENTED();
  591. return {};
  592. }
  593. KClientPort* port = &search->second(system.ServiceManager(), system);
  594. {
  595. std::lock_guard lk(server_ports_lock);
  596. server_ports.insert(&port->GetParent()->GetServerPort());
  597. }
  598. return port;
  599. }
  600. std::weak_ptr<Kernel::ServiceThread> CreateServiceThread(KernelCore& kernel,
  601. const std::string& name) {
  602. auto service_thread = std::make_shared<Kernel::ServiceThread>(kernel, 1, name);
  603. {
  604. std::lock_guard lk(service_threads_lock);
  605. service_threads.emplace(service_thread);
  606. }
  607. return service_thread;
  608. }
  609. void ReleaseServiceThread(std::weak_ptr<Kernel::ServiceThread> service_thread) {
  610. auto strong_ptr = service_thread.lock();
  611. {
  612. std::lock_guard lk(service_threads_lock);
  613. service_threads.erase(strong_ptr);
  614. }
  615. }
  616. void ClearServiceThreads() {
  617. std::lock_guard lk(service_threads_lock);
  618. service_threads.clear();
  619. }
  620. std::mutex server_ports_lock;
  621. std::mutex server_sessions_lock;
  622. std::mutex registered_objects_lock;
  623. std::mutex registered_in_use_objects_lock;
  624. std::mutex dummy_thread_lock;
  625. std::mutex service_threads_lock;
  626. std::atomic<u32> next_object_id{0};
  627. std::atomic<u64> next_kernel_process_id{KProcess::InitialKIPIDMin};
  628. std::atomic<u64> next_user_process_id{KProcess::ProcessIDMin};
  629. std::atomic<u64> next_thread_id{1};
  630. // Lists all processes that exist in the current session.
  631. std::vector<KProcess*> process_list;
  632. KProcess* current_process{};
  633. std::unique_ptr<Kernel::GlobalSchedulerContext> global_scheduler_context;
  634. Kernel::TimeManager time_manager;
  635. Init::KSlabResourceCounts slab_resource_counts{};
  636. KResourceLimit* system_resource_limit{};
  637. std::shared_ptr<Core::Timing::EventType> preemption_event;
  638. // This is the kernel's handle table or supervisor handle table which
  639. // stores all the objects in place.
  640. std::unique_ptr<KHandleTable> global_handle_table;
  641. KAutoObjectWithListContainer object_list_container;
  642. /// Map of named ports managed by the kernel, which can be retrieved using
  643. /// the ConnectToPort SVC.
  644. std::unordered_map<std::string, ServiceInterfaceFactory> service_interface_factory;
  645. NamedPortTable named_ports;
  646. std::unordered_set<KServerPort*> server_ports;
  647. std::unordered_set<KServerSession*> server_sessions;
  648. std::unordered_set<KAutoObject*> registered_objects;
  649. std::unordered_set<KAutoObject*> registered_in_use_objects;
  650. std::unique_ptr<Core::ExclusiveMonitor> exclusive_monitor;
  651. std::vector<Kernel::PhysicalCore> cores;
  652. // Next host thead ID to use, 0-3 IDs represent core threads, >3 represent others
  653. std::atomic<u32> next_host_thread_id{Core::Hardware::NUM_CPU_CORES};
  654. // Kernel memory management
  655. std::unique_ptr<KMemoryManager> memory_manager;
  656. std::unique_ptr<KSlabHeap<Page>> user_slab_heap_pages;
  657. // Shared memory for services
  658. Kernel::KSharedMemory* hid_shared_mem{};
  659. Kernel::KSharedMemory* font_shared_mem{};
  660. Kernel::KSharedMemory* irs_shared_mem{};
  661. Kernel::KSharedMemory* time_shared_mem{};
  662. // Threads used for services
  663. std::unordered_set<std::shared_ptr<Kernel::ServiceThread>> service_threads;
  664. std::array<KThread*, Core::Hardware::NUM_CPU_CORES> suspend_threads;
  665. std::array<Core::CPUInterruptHandler, Core::Hardware::NUM_CPU_CORES> interrupts{};
  666. std::array<std::unique_ptr<Kernel::KScheduler>, Core::Hardware::NUM_CPU_CORES> schedulers{};
  667. // Specifically tracked to be automatically destroyed with kernel
  668. std::vector<std::unique_ptr<KThread>> dummy_threads;
  669. bool is_multicore{};
  670. std::atomic_bool is_shutting_down{};
  671. bool is_phantom_mode_for_singlecore{};
  672. u32 single_core_thread_id{};
  673. std::array<u64, Core::Hardware::NUM_CPU_CORES> svc_ticks{};
  674. KWorkerTaskManager worker_task_manager;
  675. // System context
  676. Core::System& system;
  677. };
  678. KernelCore::KernelCore(Core::System& system) : impl{std::make_unique<Impl>(system, *this)} {}
  679. KernelCore::~KernelCore() = default;
  680. void KernelCore::SetMulticore(bool is_multicore) {
  681. impl->SetMulticore(is_multicore);
  682. }
  683. void KernelCore::Initialize() {
  684. slab_heap_container = std::make_unique<SlabHeapContainer>();
  685. impl->Initialize(*this);
  686. }
  687. void KernelCore::InitializeCores() {
  688. impl->InitializeCores();
  689. }
  690. void KernelCore::Shutdown() {
  691. impl->Shutdown();
  692. }
  693. const KResourceLimit* KernelCore::GetSystemResourceLimit() const {
  694. return impl->system_resource_limit;
  695. }
  696. KResourceLimit* KernelCore::GetSystemResourceLimit() {
  697. return impl->system_resource_limit;
  698. }
  699. KScopedAutoObject<KThread> KernelCore::RetrieveThreadFromGlobalHandleTable(Handle handle) const {
  700. return impl->global_handle_table->GetObject<KThread>(handle);
  701. }
  702. void KernelCore::AppendNewProcess(KProcess* process) {
  703. impl->process_list.push_back(process);
  704. }
  705. void KernelCore::MakeCurrentProcess(KProcess* process) {
  706. impl->MakeCurrentProcess(process);
  707. }
  708. KProcess* KernelCore::CurrentProcess() {
  709. return impl->current_process;
  710. }
  711. const KProcess* KernelCore::CurrentProcess() const {
  712. return impl->current_process;
  713. }
  714. const std::vector<KProcess*>& KernelCore::GetProcessList() const {
  715. return impl->process_list;
  716. }
  717. Kernel::GlobalSchedulerContext& KernelCore::GlobalSchedulerContext() {
  718. return *impl->global_scheduler_context;
  719. }
  720. const Kernel::GlobalSchedulerContext& KernelCore::GlobalSchedulerContext() const {
  721. return *impl->global_scheduler_context;
  722. }
  723. Kernel::KScheduler& KernelCore::Scheduler(std::size_t id) {
  724. return *impl->schedulers[id];
  725. }
  726. const Kernel::KScheduler& KernelCore::Scheduler(std::size_t id) const {
  727. return *impl->schedulers[id];
  728. }
  729. Kernel::PhysicalCore& KernelCore::PhysicalCore(std::size_t id) {
  730. return impl->cores[id];
  731. }
  732. const Kernel::PhysicalCore& KernelCore::PhysicalCore(std::size_t id) const {
  733. return impl->cores[id];
  734. }
  735. size_t KernelCore::CurrentPhysicalCoreIndex() const {
  736. const u32 core_id = impl->GetCurrentHostThreadID();
  737. if (core_id >= Core::Hardware::NUM_CPU_CORES) {
  738. return Core::Hardware::NUM_CPU_CORES - 1;
  739. }
  740. return core_id;
  741. }
  742. Kernel::PhysicalCore& KernelCore::CurrentPhysicalCore() {
  743. return impl->cores[CurrentPhysicalCoreIndex()];
  744. }
  745. const Kernel::PhysicalCore& KernelCore::CurrentPhysicalCore() const {
  746. return impl->cores[CurrentPhysicalCoreIndex()];
  747. }
  748. Kernel::KScheduler* KernelCore::CurrentScheduler() {
  749. u32 core_id = impl->GetCurrentHostThreadID();
  750. if (core_id >= Core::Hardware::NUM_CPU_CORES) {
  751. // This is expected when called from not a guest thread
  752. return {};
  753. }
  754. return impl->schedulers[core_id].get();
  755. }
  756. std::array<Core::CPUInterruptHandler, Core::Hardware::NUM_CPU_CORES>& KernelCore::Interrupts() {
  757. return impl->interrupts;
  758. }
  759. const std::array<Core::CPUInterruptHandler, Core::Hardware::NUM_CPU_CORES>& KernelCore::Interrupts()
  760. const {
  761. return impl->interrupts;
  762. }
  763. Kernel::TimeManager& KernelCore::TimeManager() {
  764. return impl->time_manager;
  765. }
  766. const Kernel::TimeManager& KernelCore::TimeManager() const {
  767. return impl->time_manager;
  768. }
  769. Core::ExclusiveMonitor& KernelCore::GetExclusiveMonitor() {
  770. return *impl->exclusive_monitor;
  771. }
  772. const Core::ExclusiveMonitor& KernelCore::GetExclusiveMonitor() const {
  773. return *impl->exclusive_monitor;
  774. }
  775. KAutoObjectWithListContainer& KernelCore::ObjectListContainer() {
  776. return impl->object_list_container;
  777. }
  778. const KAutoObjectWithListContainer& KernelCore::ObjectListContainer() const {
  779. return impl->object_list_container;
  780. }
  781. void KernelCore::InvalidateAllInstructionCaches() {
  782. for (auto& physical_core : impl->cores) {
  783. physical_core.ArmInterface().ClearInstructionCache();
  784. }
  785. }
  786. void KernelCore::InvalidateCpuInstructionCacheRange(VAddr addr, std::size_t size) {
  787. for (auto& physical_core : impl->cores) {
  788. if (!physical_core.IsInitialized()) {
  789. continue;
  790. }
  791. physical_core.ArmInterface().InvalidateCacheRange(addr, size);
  792. }
  793. }
  794. void KernelCore::PrepareReschedule(std::size_t id) {
  795. // TODO: Reimplement, this
  796. }
  797. void KernelCore::RegisterNamedService(std::string name, ServiceInterfaceFactory&& factory) {
  798. impl->service_interface_factory.emplace(std::move(name), factory);
  799. }
  800. KClientPort* KernelCore::CreateNamedServicePort(std::string name) {
  801. return impl->CreateNamedServicePort(std::move(name));
  802. }
  803. void KernelCore::RegisterServerSession(KServerSession* server_session) {
  804. std::lock_guard lk(impl->server_sessions_lock);
  805. impl->server_sessions.insert(server_session);
  806. }
  807. void KernelCore::UnregisterServerSession(KServerSession* server_session) {
  808. std::lock_guard lk(impl->server_sessions_lock);
  809. impl->server_sessions.erase(server_session);
  810. }
  811. void KernelCore::RegisterKernelObject(KAutoObject* object) {
  812. std::lock_guard lk(impl->registered_objects_lock);
  813. impl->registered_objects.insert(object);
  814. }
  815. void KernelCore::UnregisterKernelObject(KAutoObject* object) {
  816. std::lock_guard lk(impl->registered_objects_lock);
  817. impl->registered_objects.erase(object);
  818. }
  819. void KernelCore::RegisterInUseObject(KAutoObject* object) {
  820. std::lock_guard lk(impl->registered_in_use_objects_lock);
  821. impl->registered_in_use_objects.insert(object);
  822. }
  823. void KernelCore::UnregisterInUseObject(KAutoObject* object) {
  824. std::lock_guard lk(impl->registered_in_use_objects_lock);
  825. impl->registered_in_use_objects.erase(object);
  826. }
  827. bool KernelCore::IsValidNamedPort(NamedPortTable::const_iterator port) const {
  828. return port != impl->named_ports.cend();
  829. }
  830. u32 KernelCore::CreateNewObjectID() {
  831. return impl->next_object_id++;
  832. }
  833. u64 KernelCore::CreateNewThreadID() {
  834. return impl->next_thread_id++;
  835. }
  836. u64 KernelCore::CreateNewKernelProcessID() {
  837. return impl->next_kernel_process_id++;
  838. }
  839. u64 KernelCore::CreateNewUserProcessID() {
  840. return impl->next_user_process_id++;
  841. }
  842. KHandleTable& KernelCore::GlobalHandleTable() {
  843. return *impl->global_handle_table;
  844. }
  845. const KHandleTable& KernelCore::GlobalHandleTable() const {
  846. return *impl->global_handle_table;
  847. }
  848. void KernelCore::RegisterCoreThread(std::size_t core_id) {
  849. impl->RegisterCoreThread(core_id);
  850. }
  851. void KernelCore::RegisterHostThread() {
  852. impl->RegisterHostThread();
  853. }
  854. u32 KernelCore::GetCurrentHostThreadID() const {
  855. return impl->GetCurrentHostThreadID();
  856. }
  857. KThread* KernelCore::GetCurrentEmuThread() const {
  858. return impl->GetCurrentEmuThread();
  859. }
  860. KMemoryManager& KernelCore::MemoryManager() {
  861. return *impl->memory_manager;
  862. }
  863. const KMemoryManager& KernelCore::MemoryManager() const {
  864. return *impl->memory_manager;
  865. }
  866. KSlabHeap<Page>& KernelCore::GetUserSlabHeapPages() {
  867. return *impl->user_slab_heap_pages;
  868. }
  869. const KSlabHeap<Page>& KernelCore::GetUserSlabHeapPages() const {
  870. return *impl->user_slab_heap_pages;
  871. }
  872. Kernel::KSharedMemory& KernelCore::GetHidSharedMem() {
  873. return *impl->hid_shared_mem;
  874. }
  875. const Kernel::KSharedMemory& KernelCore::GetHidSharedMem() const {
  876. return *impl->hid_shared_mem;
  877. }
  878. Kernel::KSharedMemory& KernelCore::GetFontSharedMem() {
  879. return *impl->font_shared_mem;
  880. }
  881. const Kernel::KSharedMemory& KernelCore::GetFontSharedMem() const {
  882. return *impl->font_shared_mem;
  883. }
  884. Kernel::KSharedMemory& KernelCore::GetIrsSharedMem() {
  885. return *impl->irs_shared_mem;
  886. }
  887. const Kernel::KSharedMemory& KernelCore::GetIrsSharedMem() const {
  888. return *impl->irs_shared_mem;
  889. }
  890. Kernel::KSharedMemory& KernelCore::GetTimeSharedMem() {
  891. return *impl->time_shared_mem;
  892. }
  893. const Kernel::KSharedMemory& KernelCore::GetTimeSharedMem() const {
  894. return *impl->time_shared_mem;
  895. }
  896. void KernelCore::Suspend(bool in_suspention) {
  897. const bool should_suspend = exception_exited || in_suspention;
  898. {
  899. KScopedSchedulerLock lock(*this);
  900. const auto state = should_suspend ? ThreadState::Runnable : ThreadState::Waiting;
  901. for (u32 core_id = 0; core_id < Core::Hardware::NUM_CPU_CORES; core_id++) {
  902. impl->suspend_threads[core_id]->SetState(state);
  903. impl->suspend_threads[core_id]->SetWaitReasonForDebugging(
  904. ThreadWaitReasonForDebugging::Suspended);
  905. if (!should_suspend) {
  906. impl->suspend_threads[core_id]->DisableDispatch();
  907. }
  908. }
  909. }
  910. }
  911. bool KernelCore::IsMulticore() const {
  912. return impl->is_multicore;
  913. }
  914. bool KernelCore::IsShuttingDown() const {
  915. return impl->IsShuttingDown();
  916. }
  917. void KernelCore::ExceptionalExit() {
  918. exception_exited = true;
  919. Suspend(true);
  920. }
  921. void KernelCore::EnterSVCProfile() {
  922. impl->svc_ticks[CurrentPhysicalCoreIndex()] = MicroProfileEnter(MICROPROFILE_TOKEN(Kernel_SVC));
  923. }
  924. void KernelCore::ExitSVCProfile() {
  925. MicroProfileLeave(MICROPROFILE_TOKEN(Kernel_SVC), impl->svc_ticks[CurrentPhysicalCoreIndex()]);
  926. }
  927. std::weak_ptr<Kernel::ServiceThread> KernelCore::CreateServiceThread(const std::string& name) {
  928. return impl->CreateServiceThread(*this, name);
  929. }
  930. void KernelCore::ReleaseServiceThread(std::weak_ptr<Kernel::ServiceThread> service_thread) {
  931. impl->ReleaseServiceThread(service_thread);
  932. }
  933. Init::KSlabResourceCounts& KernelCore::SlabResourceCounts() {
  934. return impl->slab_resource_counts;
  935. }
  936. const Init::KSlabResourceCounts& KernelCore::SlabResourceCounts() const {
  937. return impl->slab_resource_counts;
  938. }
  939. KWorkerTaskManager& KernelCore::WorkerTaskManager() {
  940. return impl->worker_task_manager;
  941. }
  942. const KWorkerTaskManager& KernelCore::WorkerTaskManager() const {
  943. return impl->worker_task_manager;
  944. }
  945. bool KernelCore::IsPhantomModeForSingleCore() const {
  946. return impl->IsPhantomModeForSingleCore();
  947. }
  948. void KernelCore::SetIsPhantomModeForSingleCore(bool value) {
  949. impl->SetIsPhantomModeForSingleCore(value);
  950. }
  951. Core::System& KernelCore::System() {
  952. return impl->system;
  953. }
  954. const Core::System& KernelCore::System() const {
  955. return impl->system;
  956. }
  957. } // namespace Kernel