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@ -317,7 +317,7 @@ void KScheduler::RotateScheduledQueue(s32 cpu_core_id, s32 priority) {
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{
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KThread* best_thread = priority_queue.GetScheduledFront(cpu_core_id);
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if (best_thread == GetCurrentThread()) {
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if (best_thread == GetCurrentThreadPointer(kernel)) {
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best_thread = priority_queue.GetScheduledNext(cpu_core_id, best_thread);
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}
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@ -424,7 +424,7 @@ void KScheduler::YieldWithoutCoreMigration(KernelCore& kernel) {
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ASSERT(kernel.CurrentProcess() != nullptr);
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// Get the current thread and process.
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KThread& cur_thread = Kernel::GetCurrentThread(kernel);
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KThread& cur_thread = GetCurrentThread(kernel);
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KProcess& cur_process = *kernel.CurrentProcess();
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// If the thread's yield count matches, there's nothing for us to do.
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@ -463,7 +463,7 @@ void KScheduler::YieldWithCoreMigration(KernelCore& kernel) {
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ASSERT(kernel.CurrentProcess() != nullptr);
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// Get the current thread and process.
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KThread& cur_thread = Kernel::GetCurrentThread(kernel);
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KThread& cur_thread = GetCurrentThread(kernel);
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KProcess& cur_process = *kernel.CurrentProcess();
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// If the thread's yield count matches, there's nothing for us to do.
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@ -551,7 +551,7 @@ void KScheduler::YieldToAnyThread(KernelCore& kernel) {
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ASSERT(kernel.CurrentProcess() != nullptr);
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// Get the current thread and process.
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KThread& cur_thread = Kernel::GetCurrentThread(kernel);
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KThread& cur_thread = GetCurrentThread(kernel);
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KProcess& cur_process = *kernel.CurrentProcess();
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// If the thread's yield count matches, there's nothing for us to do.
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@ -642,7 +642,7 @@ KScheduler::~KScheduler() {
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ASSERT(!idle_thread);
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}
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KThread* KScheduler::GetCurrentThread() const {
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KThread* KScheduler::GetSchedulerCurrentThread() const {
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if (auto result = current_thread.load(); result) {
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return result;
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}
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@ -654,7 +654,7 @@ u64 KScheduler::GetLastContextSwitchTicks() const {
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}
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void KScheduler::RescheduleCurrentCore() {
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ASSERT(GetCurrentThread()->GetDisableDispatchCount() == 1);
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ASSERT(GetCurrentThread(system.Kernel()).GetDisableDispatchCount() == 1);
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auto& phys_core = system.Kernel().PhysicalCore(core_id);
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if (phys_core.IsInterrupted()) {
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@ -665,7 +665,7 @@ void KScheduler::RescheduleCurrentCore() {
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if (state.needs_scheduling.load()) {
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Schedule();
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} else {
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GetCurrentThread()->EnableDispatch();
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GetCurrentThread(system.Kernel()).EnableDispatch();
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guard.Unlock();
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}
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}
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@ -718,13 +718,18 @@ void KScheduler::Reload(KThread* thread) {
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void KScheduler::SwitchContextStep2() {
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// Load context of new thread
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Reload(GetCurrentThread());
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Reload(GetCurrentThreadPointer(system.Kernel()));
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RescheduleCurrentCore();
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}
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void KScheduler::Schedule() {
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ASSERT(GetCurrentThread(system.Kernel()).GetDisableDispatchCount() == 1);
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this->ScheduleImpl();
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}
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void KScheduler::ScheduleImpl() {
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KThread* previous_thread = GetCurrentThread();
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KThread* previous_thread = GetCurrentThreadPointer(system.Kernel());
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KThread* next_thread = state.highest_priority_thread;
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state.needs_scheduling.store(false);
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@ -762,6 +767,7 @@ void KScheduler::ScheduleImpl() {
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old_context = &previous_thread->GetHostContext();
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// Set the new thread.
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SetCurrentThread(system.Kernel(), next_thread);
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current_thread.store(next_thread);
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guard.Unlock();
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@ -805,6 +811,7 @@ void KScheduler::SwitchToCurrent() {
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}
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}
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auto thread = next_thread ? next_thread : idle_thread;
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SetCurrentThread(system.Kernel(), thread);
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Common::Fiber::YieldTo(switch_fiber, *thread->GetHostContext());
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} while (!is_switch_pending());
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}
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