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https://git.h3cjp.net/H3cJP/citra.git
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Kernel: Convert Mutex to not use Handles
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38e7122f23
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882b6fed75
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@ -13,59 +13,30 @@
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namespace Kernel {
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class Mutex : public WaitObject {
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public:
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std::string GetTypeName() const override { return "Mutex"; }
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std::string GetName() const override { return name; }
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static const HandleType HANDLE_TYPE = HandleType::Mutex;
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HandleType GetHandleType() const override { return HANDLE_TYPE; }
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bool initial_locked; ///< Initial lock state when mutex was created
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bool locked; ///< Current locked state
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std::string name; ///< Name of mutex (optional)
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SharedPtr<Thread> holding_thread; ///< Thread that has acquired the mutex
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bool ShouldWait() override;
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void Acquire() override;
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};
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////////////////////////////////////////////////////////////////////////////////////////////////////
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typedef std::multimap<SharedPtr<Thread>, SharedPtr<Mutex>> MutexMap;
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static MutexMap g_mutex_held_locks;
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/**
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* Acquires the specified mutex for the specified thread
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* @param mutex Mutex that is to be acquired
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* @param thread Thread that will acquire the mutex
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*/
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static void MutexAcquireLock(Mutex* mutex, Thread* thread) {
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g_mutex_held_locks.insert(std::make_pair(thread, mutex));
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mutex->holding_thread = thread;
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}
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/**
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* Resumes a thread waiting for the specified mutex
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* @param mutex The mutex that some thread is waiting on
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*/
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static void ResumeWaitingThread(Mutex* mutex) {
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// Reset mutex lock thread handle, nothing is waiting
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mutex->locked = false;
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mutex->holding_thread = nullptr;
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// Find the next waiting thread for the mutex...
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auto next_thread = mutex->WakeupNextThread();
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if (next_thread != nullptr) {
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MutexAcquireLock(mutex, next_thread);
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} else {
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// Reset mutex lock thread handle, nothing is waiting
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mutex->locked = false;
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mutex->holding_thread = nullptr;
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mutex->Acquire(next_thread);
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}
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}
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void ReleaseThreadMutexes(Thread* thread) {
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auto locked = g_mutex_held_locks.equal_range(thread);
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auto locked_range = g_mutex_held_locks.equal_range(thread);
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// Release every mutex that the thread holds, and resume execution on the waiting threads
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for (auto iter = locked.first; iter != locked.second; ++iter) {
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for (auto iter = locked_range.first; iter != locked_range.second; ++iter) {
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ResumeWaitingThread(iter->second.get());
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}
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@ -73,62 +44,21 @@ void ReleaseThreadMutexes(Thread* thread) {
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g_mutex_held_locks.erase(thread);
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}
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static bool ReleaseMutex(Mutex* mutex) {
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if (mutex->locked) {
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auto locked = g_mutex_held_locks.equal_range(mutex->holding_thread);
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ResultVal<SharedPtr<Mutex>> Mutex::Create(bool initial_locked, std::string name) {
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SharedPtr<Mutex> mutex(new Mutex);
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// TOOD(yuriks): Don't create Handle (see Thread::Create())
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CASCADE_RESULT(auto unused, Kernel::g_handle_table.Create(mutex));
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for (MutexMap::iterator iter = locked.first; iter != locked.second; ++iter) {
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if (iter->second == mutex) {
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g_mutex_held_locks.erase(iter);
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break;
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}
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}
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ResumeWaitingThread(mutex);
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}
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return true;
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}
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ResultCode ReleaseMutex(Handle handle) {
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Mutex* mutex = Kernel::g_handle_table.Get<Mutex>(handle).get();
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if (mutex == nullptr) return InvalidHandle(ErrorModule::Kernel);
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if (!ReleaseMutex(mutex)) {
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// TODO(yuriks): Verify error code, this one was pulled out of thin air. I'm not even sure
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// what error condition this is supposed to be signaling.
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return ResultCode(ErrorDescription::AlreadyDone, ErrorModule::Kernel,
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ErrorSummary::NothingHappened, ErrorLevel::Temporary);
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}
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return RESULT_SUCCESS;
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}
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/**
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* Creates a mutex
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* @param handle Reference to handle for the newly created mutex
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* @param initial_locked Specifies if the mutex should be locked initially
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* @param name Optional name of mutex
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* @return Pointer to new Mutex object
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*/
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static Mutex* CreateMutex(Handle& handle, bool initial_locked, const std::string& name) {
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Mutex* mutex = new Mutex;
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// TODO(yuriks): Fix error reporting
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handle = Kernel::g_handle_table.Create(mutex).ValueOr(INVALID_HANDLE);
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mutex->locked = mutex->initial_locked = initial_locked;
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mutex->name = name;
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mutex->initial_locked = initial_locked;
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mutex->locked = false;
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mutex->name = std::move(name);
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mutex->holding_thread = nullptr;
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// Acquire mutex with current thread if initialized as locked...
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if (mutex->locked)
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MutexAcquireLock(mutex, GetCurrentThread());
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if (initial_locked)
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mutex->Acquire();
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return mutex;
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}
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Handle CreateMutex(bool initial_locked, const std::string& name) {
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Handle handle;
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Mutex* mutex = CreateMutex(handle, initial_locked, name);
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return handle;
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return MakeResult<SharedPtr<Mutex>>(mutex);
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}
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bool Mutex::ShouldWait() {
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@ -136,9 +66,34 @@ bool Mutex::ShouldWait() {
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}
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void Mutex::Acquire() {
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Acquire(GetCurrentThread());
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}
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void Mutex::Acquire(Thread* thread) {
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_assert_msg_(Kernel, !ShouldWait(), "object unavailable!");
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if (locked)
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return;
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locked = true;
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MutexAcquireLock(this, GetCurrentThread());
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g_mutex_held_locks.insert(std::make_pair(thread, this));
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holding_thread = thread;
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}
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void Mutex::Release() {
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if (!locked)
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return;
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auto locked_range = g_mutex_held_locks.equal_range(holding_thread);
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for (MutexMap::iterator iter = locked_range.first; iter != locked_range.second; ++iter) {
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if (iter->second == this) {
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g_mutex_held_locks.erase(iter);
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break;
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}
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}
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ResumeWaitingThread(this);
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}
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} // namespace
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@ -4,25 +4,51 @@
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#pragma once
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#include <string>
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#include "common/common_types.h"
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#include "core/hle/kernel/kernel.h"
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namespace Kernel {
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/**
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* Releases a mutex
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* @param handle Handle to mutex to release
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*/
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ResultCode ReleaseMutex(Handle handle);
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class Thread;
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/**
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* Creates a mutex
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* @param initial_locked Specifies if the mutex should be locked initially
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* @param name Optional name of mutex
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* @return Handle to newly created object
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*/
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Handle CreateMutex(bool initial_locked, const std::string& name="Unknown");
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class Mutex : public WaitObject {
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public:
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/**
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* Creates a mutex.
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* @param initial_locked Specifies if the mutex should be locked initially
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* @param name Optional name of mutex
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* @return Pointer to new Mutex object
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*/
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static ResultVal<SharedPtr<Mutex>> Create(bool initial_locked, std::string name = "Unknown");
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std::string GetTypeName() const override { return "Mutex"; }
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std::string GetName() const override { return name; }
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static const HandleType HANDLE_TYPE = HandleType::Mutex;
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HandleType GetHandleType() const override { return HANDLE_TYPE; }
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bool initial_locked; ///< Initial lock state when mutex was created
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bool locked; ///< Current locked state
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std::string name; ///< Name of mutex (optional)
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SharedPtr<Thread> holding_thread; ///< Thread that has acquired the mutex
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bool ShouldWait() override;
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void Acquire() override;
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/**
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* Acquires the specified mutex for the specified thread
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* @param mutex Mutex that is to be acquired
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* @param thread Thread that will acquire the mutex
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*/
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void Acquire(Thread* thread);
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void Release();
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private:
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Mutex() = default;
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};
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/**
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* Releases all the mutexes held by the specified thread
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@ -10,6 +10,7 @@
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#include "core/hle/kernel/event.h"
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#include "core/hle/kernel/mutex.h"
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#include "core/hle/kernel/shared_memory.h"
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#include "core/hle/kernel/thread.h"
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#include "core/hle/service/apt_s.h"
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////////////////////////////////////////////////////////////////////////////////////////////////////
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@ -10,6 +10,7 @@
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#include "core/hle/kernel/event.h"
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#include "core/hle/kernel/mutex.h"
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#include "core/hle/kernel/shared_memory.h"
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#include "core/hle/kernel/thread.h"
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#include "core/hle/service/apt_u.h"
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////////////////////////////////////////////////////////////////////////////////////////////////////
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@ -28,7 +29,7 @@ static const VAddr SHARED_FONT_VADDR = 0x18000000;
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/// Handle to shared memory region designated to for shared system font
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static Kernel::SharedPtr<Kernel::SharedMemory> shared_font_mem;
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static Handle lock_handle = 0;
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static Kernel::SharedPtr<Kernel::Mutex> lock;
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static Handle notification_event_handle = 0; ///< APT notification event handle
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static Handle pause_event_handle = 0; ///< APT pause event handle
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static std::vector<u8> shared_font;
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@ -76,8 +77,8 @@ void Initialize(Service::Interface* self) {
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Kernel::ClearEvent(notification_event_handle);
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Kernel::SignalEvent(pause_event_handle); // Fire start event
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_assert_msg_(KERNEL, (0 != lock_handle), "Cannot initialize without lock");
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Kernel::ReleaseMutex(lock_handle);
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_assert_msg_(KERNEL, (nullptr != lock), "Cannot initialize without lock");
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lock->Release();
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cmd_buff[1] = RESULT_SUCCESS.raw; // No error
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}
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@ -103,10 +104,9 @@ void GetLockHandle(Service::Interface* self) {
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u32* cmd_buff = Kernel::GetCommandBuffer();
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u32 flags = cmd_buff[1]; // TODO(bunnei): Figure out the purpose of the flag field
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if (0 == lock_handle) {
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if (nullptr == lock) {
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// TODO(bunnei): Verify if this is created here or at application boot?
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lock_handle = Kernel::CreateMutex(false, "APT_U:Lock");
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Kernel::ReleaseMutex(lock_handle);
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lock = Kernel::Mutex::Create(false, "APT_U:Lock").MoveFrom();
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}
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cmd_buff[1] = RESULT_SUCCESS.raw; // No error
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cmd_buff[3] = 0;
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cmd_buff[4] = 0;
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cmd_buff[5] = lock_handle;
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cmd_buff[5] = Kernel::g_handle_table.Create(lock).MoveFrom();
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LOG_TRACE(Service_APT, "called handle=0x%08X", cmd_buff[5]);
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}
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shared_font_mem = nullptr;
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}
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lock_handle = 0;
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lock = nullptr;
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Register(FunctionTable, ARRAY_SIZE(FunctionTable));
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}
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@ -364,18 +364,32 @@ static Result SetThreadPriority(Handle handle, s32 priority) {
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}
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/// Create a mutex
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static Result CreateMutex(Handle* mutex, u32 initial_locked) {
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*mutex = Kernel::CreateMutex((initial_locked != 0));
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static Result CreateMutex(Handle* handle, u32 initial_locked) {
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using Kernel::Mutex;
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auto mutex_res = Mutex::Create(initial_locked != 0);
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if (mutex_res.Failed())
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return mutex_res.Code().raw;
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SharedPtr<Mutex> mutex = mutex_res.MoveFrom();
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*handle = Kernel::g_handle_table.Create(mutex).MoveFrom();
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LOG_TRACE(Kernel_SVC, "called initial_locked=%s : created handle=0x%08X",
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initial_locked ? "true" : "false", *mutex);
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initial_locked ? "true" : "false", *handle);
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return 0;
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}
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/// Release a mutex
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static Result ReleaseMutex(Handle handle) {
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using Kernel::Mutex;
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LOG_TRACE(Kernel_SVC, "called handle=0x%08X", handle);
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ResultCode res = Kernel::ReleaseMutex(handle);
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return res.raw;
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SharedPtr<Mutex> mutex = Kernel::g_handle_table.Get<Mutex>(handle);
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if (mutex == nullptr)
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return InvalidHandle(ErrorModule::Kernel).raw;
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mutex->Release();
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return RESULT_SUCCESS.raw;
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}
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/// Get the ID for the specified thread.
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