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Don't derive secure_allocator from std::allocator
Affects both secure_allocator and zero_after_free_allocator. Giving the C++ Standard Committee control of the public interface of your type means they will break it. C++23 adds a new `allocate_at_least` member to `std::allocator`. Very bad things happen when, say, `std::vector` uses `allocate_at_least` from `secure_allocator`'s base to allocate memory which it then tries to free with `secure_allocator::deallocate`. Drive-by: Aggressively remove facilities unnecessary since C++11 from both allocators to keep things simple.
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6a473373d4
commit
07c59eda00
2 changed files with 40 additions and 37 deletions
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@ -17,27 +17,14 @@
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// out of memory and clears its contents before deletion.
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//
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template <typename T>
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struct secure_allocator : public std::allocator<T> {
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using base = std::allocator<T>;
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using traits = std::allocator_traits<base>;
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using size_type = typename traits::size_type;
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using difference_type = typename traits::difference_type;
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using pointer = typename traits::pointer;
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using const_pointer = typename traits::const_pointer;
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using value_type = typename traits::value_type;
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secure_allocator() noexcept {}
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secure_allocator(const secure_allocator& a) noexcept : base(a) {}
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template <typename U>
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secure_allocator(const secure_allocator<U>& a) noexcept : base(a)
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{
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}
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~secure_allocator() noexcept {}
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template <typename Other>
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struct rebind {
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typedef secure_allocator<Other> other;
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};
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struct secure_allocator {
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using value_type = T;
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T* allocate(std::size_t n, const void* hint = nullptr)
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secure_allocator() = default;
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template <typename U>
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secure_allocator(const secure_allocator<U>&) noexcept {}
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T* allocate(std::size_t n)
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{
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T* allocation = static_cast<T*>(LockedPoolManager::Instance().alloc(sizeof(T) * n));
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if (!allocation) {
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@ -53,6 +40,17 @@ struct secure_allocator : public std::allocator<T> {
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}
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LockedPoolManager::Instance().free(p);
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}
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template <typename U>
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friend bool operator==(const secure_allocator&, const secure_allocator<U>&) noexcept
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{
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return true;
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}
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template <typename U>
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friend bool operator!=(const secure_allocator&, const secure_allocator<U>&) noexcept
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{
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return false;
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}
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};
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// This is exactly like std::string, but with a custom allocator.
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@ -12,31 +12,36 @@
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#include <vector>
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template <typename T>
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struct zero_after_free_allocator : public std::allocator<T> {
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using base = std::allocator<T>;
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using traits = std::allocator_traits<base>;
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using size_type = typename traits::size_type;
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using difference_type = typename traits::difference_type;
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using pointer = typename traits::pointer;
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using const_pointer = typename traits::const_pointer;
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using value_type = typename traits::value_type;
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zero_after_free_allocator() noexcept {}
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zero_after_free_allocator(const zero_after_free_allocator& a) noexcept : base(a) {}
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struct zero_after_free_allocator {
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using value_type = T;
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zero_after_free_allocator() noexcept = default;
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template <typename U>
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zero_after_free_allocator(const zero_after_free_allocator<U>& a) noexcept : base(a)
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zero_after_free_allocator(const zero_after_free_allocator<U>&) noexcept
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{
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}
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~zero_after_free_allocator() noexcept {}
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template <typename Other>
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struct rebind {
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typedef zero_after_free_allocator<Other> other;
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};
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T* allocate(std::size_t n)
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{
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return std::allocator<T>{}.allocate(n);
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}
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void deallocate(T* p, std::size_t n)
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{
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if (p != nullptr)
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memory_cleanse(p, sizeof(T) * n);
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std::allocator<T>::deallocate(p, n);
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std::allocator<T>{}.deallocate(p, n);
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}
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template <typename U>
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friend bool operator==(const zero_after_free_allocator&, const zero_after_free_allocator<U>&) noexcept
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{
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return true;
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}
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template <typename U>
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friend bool operator!=(const zero_after_free_allocator&, const zero_after_free_allocator<U>&) noexcept
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{
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return false;
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}
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};
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