kernel: Various 64-bit fixes in memory/process/thread
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@ -13,9 +13,9 @@ namespace Kernel {
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class VMManager;
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class VMManager;
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struct MemoryRegionInfo {
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struct MemoryRegionInfo {
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u32 base; // Not an address, but offset from start of FCRAM
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u64 base; // Not an address, but offset from start of FCRAM
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u32 size;
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u64 size;
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u32 used;
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u64 used;
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std::shared_ptr<std::vector<u8>> linear_heap_memory;
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std::shared_ptr<std::vector<u8>> linear_heap_memory;
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};
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};
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@ -167,7 +167,7 @@ VAddr Process::GetLinearHeapLimit() const {
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return GetLinearHeapBase() + memory_region->size;
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return GetLinearHeapBase() + memory_region->size;
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}
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}
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ResultVal<VAddr> Process::HeapAllocate(VAddr target, u32 size, VMAPermission perms) {
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ResultVal<VAddr> Process::HeapAllocate(VAddr target, u64 size, VMAPermission perms) {
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if (target < Memory::HEAP_VADDR || target + size > Memory::HEAP_VADDR_END ||
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if (target < Memory::HEAP_VADDR || target + size > Memory::HEAP_VADDR_END ||
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target + size < target) {
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target + size < target) {
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return ERR_INVALID_ADDRESS;
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return ERR_INVALID_ADDRESS;
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@ -19,7 +19,7 @@ namespace Kernel {
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struct AddressMapping {
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struct AddressMapping {
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// Address and size must be page-aligned
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// Address and size must be page-aligned
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VAddr address;
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VAddr address;
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u32 size;
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u64 size;
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bool read_only;
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bool read_only;
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bool unk_flag;
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bool unk_flag;
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};
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};
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@ -154,7 +154,7 @@ public:
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// The left/right bounds of the address space covered by heap_memory.
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// The left/right bounds of the address space covered by heap_memory.
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VAddr heap_start = 0, heap_end = 0;
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VAddr heap_start = 0, heap_end = 0;
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u32 heap_used = 0, linear_heap_used = 0, misc_memory_used = 0;
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u64 heap_used = 0, linear_heap_used = 0, misc_memory_used = 0;
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MemoryRegionInfo* memory_region = nullptr;
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MemoryRegionInfo* memory_region = nullptr;
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@ -171,7 +171,7 @@ public:
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VAddr GetLinearHeapBase() const;
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VAddr GetLinearHeapBase() const;
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VAddr GetLinearHeapLimit() const;
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VAddr GetLinearHeapLimit() const;
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ResultVal<VAddr> HeapAllocate(VAddr target, u32 size, VMAPermission perms);
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ResultVal<VAddr> HeapAllocate(VAddr target, u64 size, VMAPermission perms);
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ResultCode HeapFree(VAddr target, u32 size);
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ResultCode HeapFree(VAddr target, u32 size);
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ResultVal<VAddr> LinearAllocate(VAddr target, u32 size, VMAPermission perms);
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ResultVal<VAddr> LinearAllocate(VAddr target, u32 size, VMAPermission perms);
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@ -103,8 +103,8 @@ void Thread::Stop() {
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ReleaseThreadMutexes(this);
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ReleaseThreadMutexes(this);
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// Mark the TLS slot in the thread's page as free.
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// Mark the TLS slot in the thread's page as free.
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u32 tls_page = (tls_address - Memory::TLS_AREA_VADDR) / Memory::PAGE_SIZE;
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u64 tls_page = (tls_address - Memory::TLS_AREA_VADDR) / Memory::PAGE_SIZE;
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u32 tls_slot =
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u64 tls_slot =
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((tls_address - Memory::TLS_AREA_VADDR) % Memory::PAGE_SIZE) / Memory::TLS_ENTRY_SIZE;
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((tls_address - Memory::TLS_AREA_VADDR) % Memory::PAGE_SIZE) / Memory::TLS_ENTRY_SIZE;
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Kernel::g_current_process->tls_slots[tls_page].reset(tls_slot);
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Kernel::g_current_process->tls_slots[tls_page].reset(tls_slot);
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}
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}
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@ -184,7 +184,7 @@ static void SwitchContext(Thread* new_thread) {
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}
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}
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Core::CPU().LoadContext(new_thread->context);
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Core::CPU().LoadContext(new_thread->context);
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Core::CPU().SetCP15Register(CP15_THREAD_URO, new_thread->GetTLSAddress());
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Core::CPU().SetTlsAddress(new_thread->GetTLSAddress());
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} else {
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} else {
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current_thread = nullptr;
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current_thread = nullptr;
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// Note: We do not reset the current process and current page table when idling because
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// Note: We do not reset the current process and current page table when idling because
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@ -369,7 +369,7 @@ static void ResetThreadContext(ARM_Interface::ThreadContext& context, VAddr stac
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}
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}
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ResultVal<SharedPtr<Thread>> Thread::Create(std::string name, VAddr entry_point, u32 priority,
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ResultVal<SharedPtr<Thread>> Thread::Create(std::string name, VAddr entry_point, u32 priority,
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u32 arg, s32 processor_id, VAddr stack_top,
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u64 arg, s32 processor_id, VAddr stack_top,
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SharedPtr<Process> owner_process) {
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SharedPtr<Process> owner_process) {
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// Check if priority is in ranged. Lowest priority -> highest priority id.
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// Check if priority is in ranged. Lowest priority -> highest priority id.
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if (priority > THREADPRIO_LOWEST) {
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if (priority > THREADPRIO_LOWEST) {
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@ -493,7 +493,7 @@ void Thread::BoostPriority(u32 priority) {
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current_priority = priority;
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current_priority = priority;
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}
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}
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SharedPtr<Thread> SetupMainThread(u32 entry_point, u32 priority, SharedPtr<Process> owner_process) {
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SharedPtr<Thread> SetupMainThread(VAddr entry_point, u32 priority, SharedPtr<Process> owner_process) {
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// Setup page table so we can write to memory
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// Setup page table so we can write to memory
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SetCurrentPageTable(&Kernel::g_current_process->vm_manager.page_table);
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SetCurrentPageTable(&Kernel::g_current_process->vm_manager.page_table);
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@ -65,7 +65,7 @@ public:
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* @return A shared pointer to the newly created thread
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* @return A shared pointer to the newly created thread
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*/
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*/
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static ResultVal<SharedPtr<Thread>> Create(std::string name, VAddr entry_point, u32 priority,
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static ResultVal<SharedPtr<Thread>> Create(std::string name, VAddr entry_point, u32 priority,
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u32 arg, s32 processor_id, VAddr stack_top,
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u64 arg, s32 processor_id, VAddr stack_top,
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SharedPtr<Process> owner_process);
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SharedPtr<Process> owner_process);
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std::string GetName() const override {
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std::string GetName() const override {
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@ -234,7 +234,7 @@ private:
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* @param owner_process The parent process for the main thread
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* @param owner_process The parent process for the main thread
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* @return A shared pointer to the main thread
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* @return A shared pointer to the main thread
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*/
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*/
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SharedPtr<Thread> SetupMainThread(u32 entry_point, u32 priority, SharedPtr<Process> owner_process);
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SharedPtr<Thread> SetupMainThread(VAddr entry_point, u32 priority, SharedPtr<Process> owner_process);
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/**
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/**
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* Returns whether there are any threads that are ready to run.
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* Returns whether there are any threads that are ready to run.
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