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https://github.com/RGBCube/serenity
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Kernel: Implement aligned operator new
and use it
The compiler will use these to allocate objects that have alignment requirements greater than that of our normal `operator new` (4/8 byte aligned). This means we can now use smart pointers for over-aligned types. Fixes a FIXME.
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parent
c176680443
commit
dd4ed4d22d
4 changed files with 41 additions and 10 deletions
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@ -301,6 +301,16 @@ size_t kmalloc_good_size(size_t size)
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return size;
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}
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[[gnu::malloc, gnu::alloc_size(1), gnu::alloc_align(2)]] static void* kmalloc_aligned_cxx(size_t size, size_t alignment)
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{
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VERIFY(alignment <= 4096);
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void* ptr = kmalloc(size + alignment + sizeof(ptrdiff_t));
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size_t max_addr = (size_t)ptr + alignment;
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void* aligned_ptr = (void*)(max_addr - (max_addr % alignment));
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((ptrdiff_t*)aligned_ptr)[-1] = (ptrdiff_t)((u8*)aligned_ptr - (u8*)ptr);
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return aligned_ptr;
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}
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void* operator new(size_t size)
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{
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void* ptr = kmalloc(size);
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@ -313,6 +323,18 @@ void* operator new(size_t size, const std::nothrow_t&) noexcept
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return kmalloc(size);
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}
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void* operator new(size_t size, std::align_val_t al)
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{
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void* ptr = kmalloc_aligned_cxx(size, (size_t)al);
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VERIFY(ptr);
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return ptr;
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}
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void* operator new(size_t size, std::align_val_t al, const std::nothrow_t&) noexcept
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{
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return kmalloc_aligned_cxx(size, (size_t)al);
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}
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void* operator new[](size_t size)
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{
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void* ptr = kmalloc(size);
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@ -336,6 +358,11 @@ void operator delete(void* ptr, size_t size) noexcept
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return kfree_sized(ptr, size);
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}
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void operator delete(void* ptr, size_t, std::align_val_t) noexcept
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{
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return kfree_aligned(ptr);
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}
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void operator delete[](void*) noexcept
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{
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// All deletes in kernel code should have a known size.
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@ -34,6 +34,8 @@ struct nothrow_t {
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};
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extern const nothrow_t nothrow;
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enum class align_val_t : size_t {};
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};
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void kmalloc_init();
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@ -59,10 +61,16 @@ inline void* operator new[](size_t, void* p) { return p; }
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[[nodiscard]] void* operator new(size_t size);
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[[nodiscard]] void* operator new(size_t size, const std::nothrow_t&) noexcept;
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[[nodiscard]] void* operator new(size_t size, std::align_val_t);
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[[nodiscard]] void* operator new(size_t size, std::align_val_t, const std::nothrow_t&) noexcept;
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void operator delete(void* ptr) noexcept;
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void operator delete(void* ptr, size_t) noexcept;
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void operator delete(void* ptr, size_t, std::align_val_t) noexcept;
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[[nodiscard]] void* operator new[](size_t size);
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[[nodiscard]] void* operator new[](size_t size, const std::nothrow_t&) noexcept;
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void operator delete[](void* ptrs) noexcept;
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void operator delete[](void* ptr, size_t) noexcept;
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@ -38,11 +38,9 @@ UNMAP_AFTER_INIT void Thread::initialize()
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KResultOr<NonnullRefPtr<Thread>> Thread::try_create(NonnullRefPtr<Process> process)
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{
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// FIXME: Once we have aligned + nothrow operator new, we can avoid the manual kfree.
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FPUState* fpu_state = (FPUState*)kmalloc_aligned<16>(sizeof(FPUState));
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auto fpu_state = try_make<FPUState>();
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if (!fpu_state)
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return ENOMEM;
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ArmedScopeGuard fpu_guard([fpu_state]() { kfree_aligned(fpu_state); });
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auto kernel_stack_region = MM.allocate_kernel_region(default_kernel_stack_size, {}, Region::Access::Read | Region::Access::Write, AllocationStrategy::AllocateNow);
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if (!kernel_stack_region)
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@ -53,18 +51,17 @@ KResultOr<NonnullRefPtr<Thread>> Thread::try_create(NonnullRefPtr<Process> proce
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if (!block_timer)
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return ENOMEM;
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auto thread = adopt_ref_if_nonnull(new (nothrow) Thread(move(process), kernel_stack_region.release_nonnull(), block_timer.release_nonnull(), fpu_state));
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auto thread = adopt_ref_if_nonnull(new (nothrow) Thread(move(process), kernel_stack_region.release_nonnull(), block_timer.release_nonnull(), fpu_state.release_nonnull()));
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if (!thread)
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return ENOMEM;
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fpu_guard.disarm();
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return thread.release_nonnull();
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}
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Thread::Thread(NonnullRefPtr<Process> process, NonnullOwnPtr<Region> kernel_stack_region, NonnullRefPtr<Timer> block_timer, FPUState* fpu_state)
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Thread::Thread(NonnullRefPtr<Process> process, NonnullOwnPtr<Region> kernel_stack_region, NonnullRefPtr<Timer> block_timer, NonnullOwnPtr<FPUState> fpu_state)
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: m_process(move(process))
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, m_kernel_stack_region(move(kernel_stack_region))
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, m_fpu_state(fpu_state)
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, m_fpu_state(move(fpu_state))
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, m_name(m_process->name())
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, m_block_timer(block_timer)
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, m_global_procfs_inode_index(ProcFSComponentRegistry::the().allocate_inode_index())
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@ -533,7 +530,6 @@ void Thread::finalize()
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if (m_dump_backtrace_on_finalization)
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dbgln("{}", backtrace());
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kfree_aligned(m_fpu_state);
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drop_thread_count(false);
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}
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@ -1192,7 +1192,7 @@ public:
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String backtrace();
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private:
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Thread(NonnullRefPtr<Process>, NonnullOwnPtr<Region>, NonnullRefPtr<Timer>, FPUState*);
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Thread(NonnullRefPtr<Process>, NonnullOwnPtr<Region>, NonnullRefPtr<Timer>, NonnullOwnPtr<FPUState>);
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IntrusiveListNode<Thread> m_process_thread_list_node;
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int m_runnable_priority { -1 };
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@ -1318,7 +1318,7 @@ private:
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unsigned m_ipv4_socket_read_bytes { 0 };
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unsigned m_ipv4_socket_write_bytes { 0 };
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FPUState* m_fpu_state { nullptr };
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OwnPtr<FPUState> m_fpu_state;
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State m_state { Invalid };
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String m_name;
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u32 m_priority { THREAD_PRIORITY_NORMAL };
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