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@ -26,9 +26,13 @@ void CpuManager::ThreadStart(CpuManager& cpu_manager, std::size_t core) {
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void CpuManager::Initialize() {
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running_mode = true;
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for (std::size_t core = 0; core < Core::Hardware::NUM_CPU_CORES; core++) {
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core_data[core].host_thread =
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std::make_unique<std::thread>(ThreadStart, std::ref(*this), core);
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if (is_multicore) {
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for (std::size_t core = 0; core < Core::Hardware::NUM_CPU_CORES; core++) {
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core_data[core].host_thread =
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std::make_unique<std::thread>(ThreadStart, std::ref(*this), core);
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}
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} else {
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core_data[0].host_thread = std::make_unique<std::thread>(ThreadStart, std::ref(*this), 0);
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}
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}
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@ -41,26 +45,6 @@ void CpuManager::Shutdown() {
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}
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}
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void CpuManager::GuestThreadFunction(void* cpu_manager_) {
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CpuManager* cpu_manager = static_cast<CpuManager*>(cpu_manager_);
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cpu_manager->RunGuestThread();
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}
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void CpuManager::GuestRewindFunction(void* cpu_manager_) {
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CpuManager* cpu_manager = static_cast<CpuManager*>(cpu_manager_);
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cpu_manager->RunGuestLoop();
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}
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void CpuManager::IdleThreadFunction(void* cpu_manager_) {
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CpuManager* cpu_manager = static_cast<CpuManager*>(cpu_manager_);
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cpu_manager->RunIdleThread();
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}
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void CpuManager::SuspendThreadFunction(void* cpu_manager_) {
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CpuManager* cpu_manager = static_cast<CpuManager*>(cpu_manager_);
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cpu_manager->RunSuspendThread();
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}
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std::function<void(void*)> CpuManager::GetGuestThreadStartFunc() {
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return std::function<void(void*)>(GuestThreadFunction);
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}
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@ -73,20 +57,60 @@ std::function<void(void*)> CpuManager::GetSuspendThreadStartFunc() {
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return std::function<void(void*)>(SuspendThreadFunction);
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}
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void CpuManager::GuestThreadFunction(void* cpu_manager_) {
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CpuManager* cpu_manager = static_cast<CpuManager*>(cpu_manager_);
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if (cpu_manager->is_multicore) {
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cpu_manager->MultiCoreRunGuestThread();
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} else {
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cpu_manager->SingleCoreRunGuestThread();
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}
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}
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void CpuManager::GuestRewindFunction(void* cpu_manager_) {
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CpuManager* cpu_manager = static_cast<CpuManager*>(cpu_manager_);
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if (cpu_manager->is_multicore) {
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cpu_manager->MultiCoreRunGuestLoop();
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} else {
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cpu_manager->SingleCoreRunGuestLoop();
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}
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}
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void CpuManager::IdleThreadFunction(void* cpu_manager_) {
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CpuManager* cpu_manager = static_cast<CpuManager*>(cpu_manager_);
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if (cpu_manager->is_multicore) {
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cpu_manager->MultiCoreRunIdleThread();
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} else {
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cpu_manager->SingleCoreRunIdleThread();
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}
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}
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void CpuManager::SuspendThreadFunction(void* cpu_manager_) {
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CpuManager* cpu_manager = static_cast<CpuManager*>(cpu_manager_);
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if (cpu_manager->is_multicore) {
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cpu_manager->MultiCoreRunSuspendThread();
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} else {
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cpu_manager->SingleCoreRunSuspendThread();
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}
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}
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void* CpuManager::GetStartFuncParamater() {
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return static_cast<void*>(this);
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}
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void CpuManager::RunGuestThread() {
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///////////////////////////////////////////////////////////////////////////////
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/// MultiCore ///
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///////////////////////////////////////////////////////////////////////////////
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void CpuManager::MultiCoreRunGuestThread() {
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auto& kernel = system.Kernel();
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{
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auto& sched = kernel.CurrentScheduler();
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sched.OnThreadStart();
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}
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RunGuestLoop();
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MultiCoreRunGuestLoop();
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}
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void CpuManager::RunGuestLoop() {
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void CpuManager::MultiCoreRunGuestLoop() {
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auto& kernel = system.Kernel();
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auto* thread = kernel.CurrentScheduler().GetCurrentThread();
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auto host_context = thread->GetHostContext();
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@ -103,7 +127,7 @@ void CpuManager::RunGuestLoop() {
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}
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}
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void CpuManager::RunIdleThread() {
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void CpuManager::MultiCoreRunIdleThread() {
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auto& kernel = system.Kernel();
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while (true) {
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auto& physical_core = kernel.CurrentPhysicalCore();
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@ -113,7 +137,7 @@ void CpuManager::RunIdleThread() {
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}
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}
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void CpuManager::RunSuspendThread() {
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void CpuManager::MultiCoreRunSuspendThread() {
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auto& kernel = system.Kernel();
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{
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auto& sched = kernel.CurrentScheduler();
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@ -130,7 +154,7 @@ void CpuManager::RunSuspendThread() {
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}
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}
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void CpuManager::Pause(bool paused) {
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void CpuManager::MultiCorePause(bool paused) {
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if (!paused) {
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bool all_not_barrier = false;
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while (!all_not_barrier) {
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@ -171,10 +195,120 @@ void CpuManager::Pause(bool paused) {
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paused_state = paused;
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}
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///////////////////////////////////////////////////////////////////////////////
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/// SingleCore ///
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///////////////////////////////////////////////////////////////////////////////
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void CpuManager::SingleCoreRunGuestThread() {
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auto& kernel = system.Kernel();
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{
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auto& sched = kernel.CurrentScheduler();
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sched.OnThreadStart();
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}
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SingleCoreRunGuestLoop();
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}
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void CpuManager::SingleCoreRunGuestLoop() {
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auto& kernel = system.Kernel();
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auto* thread = kernel.CurrentScheduler().GetCurrentThread();
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auto host_context = thread->GetHostContext();
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host_context->SetRewindPoint(std::function<void(void*)>(GuestRewindFunction), this);
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host_context.reset();
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while (true) {
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auto& physical_core = kernel.CurrentPhysicalCore();
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while (!physical_core.IsInterrupted()) {
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physical_core.Run();
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preemption_count++;
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if (preemption_count % max_cycle_runs == 0) {
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break;
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}
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}
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physical_core.ClearExclusive();
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PreemptSingleCore();
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auto& scheduler = physical_core.Scheduler();
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scheduler.TryDoContextSwitch();
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}
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}
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void CpuManager::SingleCoreRunIdleThread() {
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auto& kernel = system.Kernel();
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while (true) {
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auto& physical_core = kernel.CurrentPhysicalCore();
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PreemptSingleCore();
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auto& scheduler = physical_core.Scheduler();
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scheduler.TryDoContextSwitch();
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}
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}
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void CpuManager::SingleCoreRunSuspendThread() {
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auto& kernel = system.Kernel();
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{
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auto& sched = kernel.CurrentScheduler();
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sched.OnThreadStart();
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}
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while (true) {
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auto core = kernel.GetCurrentHostThreadID();
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auto& scheduler = kernel.CurrentScheduler();
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Kernel::Thread* current_thread = scheduler.GetCurrentThread();
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Common::Fiber::YieldTo(current_thread->GetHostContext(), core_data[0].host_context);
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ASSERT(scheduler.ContextSwitchPending());
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ASSERT(core == kernel.GetCurrentHostThreadID());
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scheduler.TryDoContextSwitch();
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}
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}
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void CpuManager::PreemptSingleCore() {
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preemption_count = 0;
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std::size_t old_core = current_core;
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current_core = (current_core + 1) % Core::Hardware::NUM_CPU_CORES;
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auto& scheduler = system.Kernel().Scheduler(old_core);
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Kernel::Thread* current_thread = system.Kernel().Scheduler(old_core).GetCurrentThread();
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Kernel::Thread* next_thread = system.Kernel().Scheduler(current_core).GetCurrentThread();
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Common::Fiber::YieldTo(current_thread->GetHostContext(), next_thread->GetHostContext());
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}
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void CpuManager::SingleCorePause(bool paused) {
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if (!paused) {
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bool all_not_barrier = false;
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while (!all_not_barrier) {
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all_not_barrier = !core_data[0].is_running.load() && core_data[0].initialized.load();
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}
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core_data[0].enter_barrier->Set();
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if (paused_state.load()) {
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bool all_barrier = false;
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while (!all_barrier) {
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all_barrier = core_data[0].is_paused.load() && core_data[0].initialized.load();
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}
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core_data[0].exit_barrier->Set();
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}
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} else {
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/// Wait until all cores are paused.
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bool all_barrier = false;
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while (!all_barrier) {
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all_barrier = core_data[0].is_paused.load() && core_data[0].initialized.load();
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}
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/// Don't release the barrier
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}
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paused_state = paused;
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}
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void CpuManager::Pause(bool paused) {
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if (is_multicore) {
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MultiCorePause(paused);
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} else {
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SingleCorePause(paused);
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}
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}
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void CpuManager::RunThread(std::size_t core) {
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/// Initialization
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system.RegisterCoreThread(core);
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std::string name = "yuzu:CoreHostThread_" + std::to_string(core);
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std::string name;
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if (is_multicore) {
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name = "yuzu:CoreCPUThread_" + std::to_string(core);
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} else {
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name = "yuzu:CPUThread";
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}
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MicroProfileOnThreadCreate(name.c_str());
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Common::SetCurrentThreadName(name.c_str());
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auto& data = core_data[core];
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