forked from boostorg/unordered
		
	
		
			
				
	
	
		
			325 lines
		
	
	
		
			9.5 KiB
		
	
	
	
		
			C++
		
	
	
	
	
	
			
		
		
	
	
			325 lines
		
	
	
		
			9.5 KiB
		
	
	
	
		
			C++
		
	
	
	
	
	
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// Copyright 2006-2009 Daniel James.
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// Distributed under the Boost Software License, Version 1.0. (See accompanying
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// file LICENSE_1_0.txt or copy at http://www.boost.org/LICENSE_1_0.txt)
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// Define some minimal classes which provide the bare minimum concepts to
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// test that the containers don't rely on something that they shouldn't.
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// They are not intended to be good examples of how to implement the concepts.
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#if !defined(BOOST_UNORDERED_OBJECTS_MINIMAL_HEADER)
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#define BOOST_UNORDERED_OBJECTS_MINIMAL_HEADER
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#include <cstddef>
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#if defined(BOOST_MSVC)
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#pragma warning(push)
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#pragma warning(disable:4100) // unreferenced formal parameter
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#endif
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namespace test
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{
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namespace minimal
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{
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    class copy_constructible;
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    class copy_constructible_equality_comparable;
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    class default_copy_constructible;
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    class assignable;
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    template <class T> class hash;
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    template <class T> class equal_to;
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    template <class T> class ptr;
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    template <class T> class const_ptr;
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    template <class T> class allocator;
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    class copy_constructible
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    {
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    public:
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        static copy_constructible create() { return copy_constructible(); }
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        copy_constructible(copy_constructible const&) {}
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        ~copy_constructible() {}
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    private:
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        copy_constructible& operator=(copy_constructible const&);
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        copy_constructible() {}
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    };
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    class copy_constructible_equality_comparable
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    {
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    public:
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        static copy_constructible_equality_comparable create() {
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            return copy_constructible_equality_comparable();
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        }
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        copy_constructible_equality_comparable(
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            copy_constructible_equality_comparable const&)
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        {
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        }
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        ~copy_constructible_equality_comparable()
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        {
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        }
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    private:
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        copy_constructible_equality_comparable& operator=(
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            copy_constructible_equality_comparable const&);
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        copy_constructible_equality_comparable() {}
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    };
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    bool operator==(
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        copy_constructible_equality_comparable,
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        copy_constructible_equality_comparable)
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    {
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        return true;
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    }
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    bool operator!=(
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        copy_constructible_equality_comparable,
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        copy_constructible_equality_comparable)
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    {
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        return false;
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    }
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    class default_copy_constructible
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    {
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    public:
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        static default_copy_constructible create()
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        {
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            return default_copy_constructible();
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        }
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        default_copy_constructible()
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        {
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        }
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        default_copy_constructible(default_copy_constructible const&)
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        {
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        }
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        ~default_copy_constructible()
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        {
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        }
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    private:
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        default_copy_constructible& operator=(
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            default_copy_constructible const&);
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    };
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    class assignable
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    {
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    public:
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        static assignable create() { return assignable(); }
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        assignable(assignable const&) {}
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        assignable& operator=(assignable const&) { return *this; }
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        ~assignable() {}
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    private:
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        assignable() {}
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    };
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    template <class T>
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    class hash
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    {
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    public:
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        static hash create() { return hash<T>(); }
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        hash() {}
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        hash(hash const&) {}
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        hash& operator=(hash const&) { return *this; }
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        ~hash() {}
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        std::size_t operator()(T const&) const { return 0; }
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    };
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    template <class T>
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    class equal_to
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    {
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    public:
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        static equal_to create() { return equal_to<T>(); }
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        equal_to() {}
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        equal_to(equal_to const&) {}
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        equal_to& operator=(equal_to const&) { return *this; }
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        ~equal_to() {}
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        bool operator()(T const&, T const&) const { return true; }
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    };
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    template <class T> class ptr;
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    template <class T> class const_ptr;
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    template <class T>
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    class ptr
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    {
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        friend class allocator<T>;
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        friend class const_ptr<T>;
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        T* ptr_;
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        ptr(T* x) : ptr_(x) {}
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    public:
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        ptr() : ptr_(0) {}
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        T& operator*() const { return *ptr_; }
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        T* operator->() const { return ptr_; }
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        ptr& operator++() { ++ptr_; return *this; }
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        ptr operator++(int) { ptr tmp(*this); ++ptr_; return tmp; }
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        ptr operator+(std::ptrdiff_t s) const { return ptr<T>(ptr_ + s); }
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        friend ptr operator+(std::ptrdiff_t s, ptr p)
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            { return ptr<T>(s + p.ptr_); }
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        T& operator[](std::ptrdiff_t s) const { return ptr_[s]; }
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        bool operator!() const { return !ptr_; }
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        // I'm not using the safe bool idiom because the containers should be
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        // able to cope with bool conversions.
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        operator bool() const { return !!ptr_; }
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        bool operator==(ptr const& x) const { return ptr_ == x.ptr_; }
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        bool operator!=(ptr const& x) const { return ptr_ != x.ptr_; }
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        bool operator<(ptr const& x) const { return ptr_ < x.ptr_; }
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        bool operator>(ptr const& x) const { return ptr_ > x.ptr_; }
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        bool operator<=(ptr const& x) const { return ptr_ <= x.ptr_; }
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        bool operator>=(ptr const& x) const { return ptr_ >= x.ptr_; }
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        bool operator==(const_ptr<T> const& x) const { return ptr_ == x.ptr_; }
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        bool operator!=(const_ptr<T> const& x) const { return ptr_ != x.ptr_; }
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        bool operator<(const_ptr<T> const& x) const { return ptr_ < x.ptr_; }
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        bool operator>(const_ptr<T> const& x) const { return ptr_ > x.ptr_; }
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        bool operator<=(const_ptr<T> const& x) const { return ptr_ <= x.ptr_; }
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        bool operator>=(const_ptr<T> const& x) const { return ptr_ >= x.ptr_; }
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    };
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    template <class T>
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    class const_ptr
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    {
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        friend class allocator<T>;
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        T const* ptr_;
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        const_ptr(T const* ptr) : ptr_(ptr) {}
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    public:
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        const_ptr() : ptr_(0) {}
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        const_ptr(ptr<T> const& x) : ptr_(x.ptr_) {}
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        T const& operator*() const { return *ptr_; }
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        T const* operator->() const { return ptr_; }
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        const_ptr& operator++() { ++ptr_; return *this; }
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        const_ptr operator++(int) { const_ptr tmp(*this); ++ptr_; return tmp; }
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        const_ptr operator+(std::ptrdiff_t s) const
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            { return const_ptr(ptr_ + s); }
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        friend const_ptr operator+(std::ptrdiff_t s, const_ptr p)
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            { return ptr<T>(s + p.ptr_); }
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        T const& operator[](int s) const { return ptr_[s]; }
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        bool operator!() const { return !ptr_; }
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        operator bool() const { return !!ptr_; }
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        bool operator==(ptr<T> const& x) const { return ptr_ == x.ptr_; }
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        bool operator!=(ptr<T> const& x) const { return ptr_ != x.ptr_; }
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        bool operator<(ptr<T> const& x) const { return ptr_ < x.ptr_; }
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        bool operator>(ptr<T> const& x) const { return ptr_ > x.ptr_; }
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        bool operator<=(ptr<T> const& x) const { return ptr_ <= x.ptr_; }
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        bool operator>=(ptr<T> const& x) const { return ptr_ >= x.ptr_; }
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        bool operator==(const_ptr const& x) const { return ptr_ == x.ptr_; }
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        bool operator!=(const_ptr const& x) const { return ptr_ != x.ptr_; }
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        bool operator<(const_ptr const& x) const { return ptr_ < x.ptr_; }
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        bool operator>(const_ptr const& x) const { return ptr_ > x.ptr_; }
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        bool operator<=(const_ptr const& x) const { return ptr_ <= x.ptr_; }
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        bool operator>=(const_ptr const& x) const { return ptr_ >= x.ptr_; }
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    };
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    template <class T>
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    class allocator
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    {
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    public:
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        typedef std::size_t size_type;
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        typedef std::ptrdiff_t difference_type;
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        typedef ptr<T> pointer;
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        typedef const_ptr<T> const_pointer;
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        typedef T& reference;
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        typedef T const& const_reference;
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        typedef T value_type;
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        template <class U> struct rebind { typedef allocator<U> other; };
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        allocator() {}
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        template <class Y> allocator(allocator<Y> const&) {}
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        allocator(allocator const&) {}
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        ~allocator() {}
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        pointer address(reference r) { return pointer(&r); }
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        const_pointer address(const_reference r) { return const_pointer(&r); }
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        pointer allocate(size_type n) {
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            return pointer(static_cast<T*>(::operator new(n * sizeof(T))));
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        }
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        template <class Y>
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        pointer allocate(size_type n, const_ptr<Y> u)
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        {
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            return pointer(static_cast<T*>(::operator new(n * sizeof(T))));
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        }
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        void deallocate(pointer p, size_type)
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        {
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            ::operator delete((void*) p.ptr_);
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        }
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        void construct(pointer p, T const& t) { new((void*)p.ptr_) T(t); }
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#if defined(BOOST_UNORDERED_STD_FORWARD)
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        template<class... Args> void construct(pointer p, Args&&... args) {
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            new((void*)p.ptr_) T(std::forward<Args>(args)...);
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        }
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#endif
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        void destroy(pointer p) { ((T*)p.ptr_)->~T(); }
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        size_type max_size() const { return 1000; }
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#if defined(BOOST_NO_ARGUMENT_DEPENDENT_LOOKUP) || \
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        BOOST_WORKAROUND(BOOST_MSVC, <= 1300)
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    public: allocator& operator=(allocator const&) { return *this;}
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#else
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    private: allocator& operator=(allocator const&);
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#endif
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    };
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    template <class T>
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    inline bool operator==(allocator<T> const&, allocator<T> const&)
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    {
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        return true;
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    }
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    template <class T>
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    inline bool operator!=(allocator<T> const&, allocator<T> const&)
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    {
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        return false;
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    }
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    template <class T>
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    void swap(allocator<T>&, allocator<T>&)
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    {
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    }
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}
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}
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#if defined(BOOST_NO_ARGUMENT_DEPENDENT_LOOKUP)
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namespace boost {
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#else
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namespace test {
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namespace minimal {
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#endif
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    std::size_t hash_value(
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        test::minimal::copy_constructible_equality_comparable)
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    {
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        return 1;
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    }
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#if !defined(BOOST_NO_ARGUMENT_DEPENDENT_LOOKUP)
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}}
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#else
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}
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#endif
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#if defined(BOOST_MSVC)
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#pragma warning(pop)
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#endif
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#endif
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