core: hle: kernel: k_handle_table: Refresh.
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1f21fa866d
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6636b81573
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@ -5,14 +5,11 @@
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namespace Kernel {
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KHandleTable::KHandleTable(KernelCore& kernel_) : kernel{kernel_} {}
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KHandleTable::~KHandleTable() = default;
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Result KHandleTable::Finalize() {
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// Get the table and clear our record of it.
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u16 saved_table_size = 0;
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{
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KScopedDisableDispatch dd(kernel);
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KScopedDisableDispatch dd{m_kernel};
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KScopedSpinLock lk(m_lock);
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std::swap(m_table_size, saved_table_size);
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@ -25,28 +22,28 @@ Result KHandleTable::Finalize() {
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}
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}
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return ResultSuccess;
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R_SUCCEED();
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}
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bool KHandleTable::Remove(Handle handle) {
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// Don't allow removal of a pseudo-handle.
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if (Svc::IsPseudoHandle(handle)) {
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if (Svc::IsPseudoHandle(handle)) [[unlikely]] {
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return false;
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}
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// Handles must not have reserved bits set.
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const auto handle_pack = HandlePack(handle);
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if (handle_pack.reserved != 0) {
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if (handle_pack.reserved != 0) [[unlikely]] {
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return false;
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}
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// Find the object and free the entry.
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KAutoObject* obj = nullptr;
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{
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KScopedDisableDispatch dd(kernel);
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KScopedDisableDispatch dd{m_kernel};
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KScopedSpinLock lk(m_lock);
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if (this->IsValidHandle(handle)) {
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if (this->IsValidHandle(handle)) [[likely]] {
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const auto index = handle_pack.index;
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obj = m_objects[index];
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@ -57,13 +54,13 @@ bool KHandleTable::Remove(Handle handle) {
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}
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// Close the object.
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kernel.UnregisterInUseObject(obj);
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m_kernel.UnregisterInUseObject(obj);
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obj->Close();
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return true;
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}
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Result KHandleTable::Add(Handle* out_handle, KAutoObject* obj) {
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KScopedDisableDispatch dd(kernel);
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KScopedDisableDispatch dd{m_kernel};
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KScopedSpinLock lk(m_lock);
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// Never exceed our capacity.
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@ -82,22 +79,22 @@ Result KHandleTable::Add(Handle* out_handle, KAutoObject* obj) {
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*out_handle = EncodeHandle(static_cast<u16>(index), linear_id);
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}
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return ResultSuccess;
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R_SUCCEED();
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}
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Result KHandleTable::Reserve(Handle* out_handle) {
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KScopedDisableDispatch dd(kernel);
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KScopedDisableDispatch dd{m_kernel};
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KScopedSpinLock lk(m_lock);
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// Never exceed our capacity.
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R_UNLESS(m_count < m_table_size, ResultOutOfHandles);
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*out_handle = EncodeHandle(static_cast<u16>(this->AllocateEntry()), this->AllocateLinearId());
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return ResultSuccess;
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R_SUCCEED();
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}
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void KHandleTable::Unreserve(Handle handle) {
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KScopedDisableDispatch dd(kernel);
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KScopedDisableDispatch dd{m_kernel};
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KScopedSpinLock lk(m_lock);
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// Unpack the handle.
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@ -108,7 +105,7 @@ void KHandleTable::Unreserve(Handle handle) {
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ASSERT(reserved == 0);
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ASSERT(linear_id != 0);
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if (index < m_table_size) {
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if (index < m_table_size) [[likely]] {
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// NOTE: This code does not check the linear id.
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ASSERT(m_objects[index] == nullptr);
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this->FreeEntry(index);
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@ -116,7 +113,7 @@ void KHandleTable::Unreserve(Handle handle) {
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}
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void KHandleTable::Register(Handle handle, KAutoObject* obj) {
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KScopedDisableDispatch dd(kernel);
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KScopedDisableDispatch dd{m_kernel};
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KScopedSpinLock lk(m_lock);
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// Unpack the handle.
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@ -127,7 +124,7 @@ void KHandleTable::Register(Handle handle, KAutoObject* obj) {
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ASSERT(reserved == 0);
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ASSERT(linear_id != 0);
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if (index < m_table_size) {
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if (index < m_table_size) [[likely]] {
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// Set the entry.
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ASSERT(m_objects[index] == nullptr);
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@ -21,33 +21,38 @@ namespace Kernel {
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class KernelCore;
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class KHandleTable {
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public:
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YUZU_NON_COPYABLE(KHandleTable);
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YUZU_NON_MOVEABLE(KHandleTable);
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public:
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static constexpr size_t MaxTableSize = 1024;
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explicit KHandleTable(KernelCore& kernel_);
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~KHandleTable();
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public:
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explicit KHandleTable(KernelCore& kernel) : m_kernel(kernel) {}
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Result Initialize(s32 size) {
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// Check that the table size is valid.
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R_UNLESS(size <= static_cast<s32>(MaxTableSize), ResultOutOfMemory);
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// Lock.
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KScopedDisableDispatch dd{m_kernel};
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KScopedSpinLock lk(m_lock);
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// Initialize all fields.
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m_max_count = 0;
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m_table_size = static_cast<u16>((size <= 0) ? MaxTableSize : size);
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m_table_size = static_cast<s16>((size <= 0) ? MaxTableSize : size);
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m_next_linear_id = MinLinearId;
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m_count = 0;
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m_free_head_index = -1;
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// Free all entries.
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for (s16 i = 0; i < static_cast<s16>(m_table_size); ++i) {
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for (s32 i = 0; i < static_cast<s32>(m_table_size); ++i) {
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m_objects[i] = nullptr;
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m_entry_infos[i].next_free_index = i - 1;
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m_entry_infos[i].next_free_index = static_cast<s16>(i - 1);
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m_free_head_index = i;
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}
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return ResultSuccess;
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R_SUCCEED();
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}
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size_t GetTableSize() const {
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@ -66,13 +71,13 @@ public:
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template <typename T = KAutoObject>
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KScopedAutoObject<T> GetObjectWithoutPseudoHandle(Handle handle) const {
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// Lock and look up in table.
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KScopedDisableDispatch dd(kernel);
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KScopedDisableDispatch dd{m_kernel};
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KScopedSpinLock lk(m_lock);
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if constexpr (std::is_same_v<T, KAutoObject>) {
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if constexpr (std::is_same<T, KAutoObject>::value) {
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return this->GetObjectImpl(handle);
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} else {
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if (auto* obj = this->GetObjectImpl(handle); obj != nullptr) {
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if (auto* obj = this->GetObjectImpl(handle); obj != nullptr) [[likely]] {
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return obj->DynamicCast<T*>();
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} else {
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return nullptr;
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@ -85,13 +90,13 @@ public:
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// Handle pseudo-handles.
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if constexpr (std::derived_from<KProcess, T>) {
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if (handle == Svc::PseudoHandle::CurrentProcess) {
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auto* const cur_process = kernel.CurrentProcess();
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auto* const cur_process = m_kernel.CurrentProcess();
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ASSERT(cur_process != nullptr);
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return cur_process;
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}
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} else if constexpr (std::derived_from<KThread, T>) {
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if (handle == Svc::PseudoHandle::CurrentThread) {
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auto* const cur_thread = GetCurrentThreadPointer(kernel);
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auto* const cur_thread = GetCurrentThreadPointer(m_kernel);
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ASSERT(cur_thread != nullptr);
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return cur_thread;
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}
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@ -100,6 +105,37 @@ public:
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return this->template GetObjectWithoutPseudoHandle<T>(handle);
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}
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KScopedAutoObject<KAutoObject> GetObjectForIpcWithoutPseudoHandle(Handle handle) const {
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// Lock and look up in table.
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KScopedDisableDispatch dd{m_kernel};
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KScopedSpinLock lk(m_lock);
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return this->GetObjectImpl(handle);
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}
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KScopedAutoObject<KAutoObject> GetObjectForIpc(Handle handle, KThread* cur_thread) const {
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// Handle pseudo-handles.
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ASSERT(cur_thread != nullptr);
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if (handle == Svc::PseudoHandle::CurrentProcess) {
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auto* const cur_process =
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static_cast<KAutoObject*>(static_cast<void*>(cur_thread->GetOwnerProcess()));
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ASSERT(cur_process != nullptr);
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return cur_process;
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}
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if (handle == Svc::PseudoHandle::CurrentThread) {
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return static_cast<KAutoObject*>(cur_thread);
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}
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return GetObjectForIpcWithoutPseudoHandle(handle);
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}
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KScopedAutoObject<KAutoObject> GetObjectByIndex(Handle* out_handle, size_t index) const {
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KScopedDisableDispatch dd{m_kernel};
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KScopedSpinLock lk(m_lock);
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return this->GetObjectByIndexImpl(out_handle, index);
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}
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Result Reserve(Handle* out_handle);
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void Unreserve(Handle handle);
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@ -112,7 +148,7 @@ public:
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size_t num_opened;
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{
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// Lock the table.
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KScopedDisableDispatch dd(kernel);
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KScopedDisableDispatch dd{m_kernel};
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KScopedSpinLock lk(m_lock);
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for (num_opened = 0; num_opened < num_handles; num_opened++) {
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// Get the current handle.
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// Get the object for the current handle.
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KAutoObject* cur_object = this->GetObjectImpl(cur_handle);
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if (cur_object == nullptr) {
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if (cur_object == nullptr) [[unlikely]] {
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break;
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}
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// Cast the current object to the desired type.
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T* cur_t = cur_object->DynamicCast<T*>();
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if (cur_t == nullptr) {
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if (cur_t == nullptr) [[unlikely]] {
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break;
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}
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}
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// If we converted every object, succeed.
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if (num_opened == num_handles) {
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if (num_opened == num_handles) [[likely]] {
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return true;
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}
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@ -191,21 +227,21 @@ private:
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ASSERT(reserved == 0);
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// Validate our indexing information.
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if (raw_value == 0) {
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if (raw_value == 0) [[unlikely]] {
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return false;
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}
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if (linear_id == 0) {
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if (linear_id == 0) [[unlikely]] {
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return false;
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}
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if (index >= m_table_size) {
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if (index >= m_table_size) [[unlikely]] {
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return false;
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}
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// Check that there's an object, and our serial id is correct.
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if (m_objects[index] == nullptr) {
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if (m_objects[index] == nullptr) [[unlikely]] {
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return false;
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}
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if (m_entry_infos[index].GetLinearId() != linear_id) {
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if (m_entry_infos[index].GetLinearId() != linear_id) [[unlikely]] {
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return false;
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}
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KAutoObject* GetObjectImpl(Handle handle) const {
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// Handles must not have reserved bits set.
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const auto handle_pack = HandlePack(handle);
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if (handle_pack.reserved != 0) {
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if (handle_pack.reserved != 0) [[unlikely]] {
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return nullptr;
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}
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if (this->IsValidHandle(handle)) {
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if (this->IsValidHandle(handle)) [[likely]] {
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return m_objects[handle_pack.index];
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} else {
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return nullptr;
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}
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KAutoObject* GetObjectByIndexImpl(Handle* out_handle, size_t index) const {
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// Index must be in bounds.
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if (index >= m_table_size) {
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if (index >= m_table_size) [[unlikely]] {
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return nullptr;
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}
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private:
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union HandlePack {
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HandlePack() = default;
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HandlePack(Handle handle) : raw{static_cast<u32>(handle)} {}
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constexpr HandlePack() = default;
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constexpr HandlePack(Handle handle) : raw{static_cast<u32>(handle)} {}
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u32 raw;
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u32 raw{};
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BitField<0, 15, u32> index;
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BitField<15, 15, u32> linear_id;
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BitField<30, 2, u32> reserved;
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};
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static constexpr u16 MinLinearId = 1;
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static constexpr u16 MaxLinearId = 0x7FFF;
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static constexpr Handle EncodeHandle(u16 index, u16 linear_id) {
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HandlePack handle{};
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handle.index.Assign(index);
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return handle.raw;
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}
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private:
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static constexpr u16 MinLinearId = 1;
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static constexpr u16 MaxLinearId = 0x7FFF;
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union EntryInfo {
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u16 linear_id;
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s16 next_free_index;
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constexpr u16 GetLinearId() const {
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return linear_id;
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}
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constexpr s16 GetNextFreeIndex() const {
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constexpr s32 GetNextFreeIndex() const {
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return next_free_index;
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}
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};
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private:
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KernelCore& m_kernel;
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std::array<EntryInfo, MaxTableSize> m_entry_infos{};
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std::array<KAutoObject*, MaxTableSize> m_objects{};
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s32 m_free_head_index{-1};
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mutable KSpinLock m_lock;
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s32 m_free_head_index{};
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u16 m_table_size{};
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u16 m_max_count{};
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u16 m_next_linear_id{MinLinearId};
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u16 m_next_linear_id{};
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u16 m_count{};
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mutable KSpinLock m_lock;
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KernelCore& kernel;
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};
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} // namespace Kernel
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