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#ifndef BOOST_WEAK_PTR_HPP_INCLUDED
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#define BOOST_WEAK_PTR_HPP_INCLUDED
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//
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// weak_ptr.hpp
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//
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// Copyright (c) 2001, 2002, 2003 Peter Dimov
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//
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// Distributed under the Boost Software License, Version 1.0. (See
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// accompanying file LICENSE_1_0.txt or copy at
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// http://www.boost.org/LICENSE_1_0.txt)
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//
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// See http://www.boost.org/libs/smart_ptr/weak_ptr.htm for documentation.
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//
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#include <boost/shared_ptr.hpp>
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#ifdef BOOST_MSVC // moved here to work around VC++ compiler crash
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# pragma warning(push)
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# pragma warning(disable:4284) // odd return type for operator->
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#endif
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namespace boost
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{
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template<class T> class weak_ptr
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{
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private:
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// Borland 5.5.1 specific workarounds
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typedef weak_ptr<T> this_type;
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public:
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typedef T element_type;
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weak_ptr(): px(0), pn() // never throws in 1.30+
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{
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}
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// generated copy constructor, assignment, destructor are fine
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//
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// The "obvious" converting constructor implementation:
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//
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// template<class Y>
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// weak_ptr(weak_ptr<Y> const & r): px(r.px), pn(r.pn) // never throws
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// {
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// }
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//
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// has a serious problem.
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//
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// r.px may already have been invalidated. The px(r.px)
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// conversion may require access to *r.px (virtual inheritance).
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//
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// It is not possible to avoid spurious access violations since
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// in multithreaded programs r.px may be invalidated at any point.
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//
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template<class Y>
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weak_ptr(weak_ptr<Y> const & r): pn(r.pn) // never throws
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{
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px = r.lock().get();
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}
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template<class Y>
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weak_ptr(shared_ptr<Y> const & r): px(r.px), pn(r.pn) // never throws
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{
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}
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#if !defined(BOOST_MSVC) || (BOOST_MSVC > 1200)
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template<class Y>
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weak_ptr & operator=(weak_ptr<Y> const & r) // never throws
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{
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px = r.lock().get();
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pn = r.pn;
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return *this;
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}
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template<class Y>
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weak_ptr & operator=(shared_ptr<Y> const & r) // never throws
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{
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px = r.px;
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pn = r.pn;
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return *this;
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}
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#endif
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shared_ptr<T> lock() const // never throws
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{
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#if defined(BOOST_HAS_THREADS)
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// optimization: avoid throw overhead
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if(expired())
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{
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return shared_ptr<element_type>();
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}
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try
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{
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return shared_ptr<element_type>(*this);
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}
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catch(bad_weak_ptr const &)
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{
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// Q: how can we get here?
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// A: another thread may have invalidated r after the use_count test above.
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return shared_ptr<element_type>();
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}
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#else
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// optimization: avoid try/catch overhead when single threaded
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return expired()? shared_ptr<element_type>(): shared_ptr<element_type>(*this);
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#endif
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}
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long use_count() const // never throws
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{
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return pn.use_count();
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}
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bool expired() const // never throws
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{
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return pn.use_count() == 0;
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}
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void reset() // never throws in 1.30+
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{
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this_type().swap(*this);
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}
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void swap(this_type & other) // never throws
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{
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std::swap(px, other.px);
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pn.swap(other.pn);
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}
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void _internal_assign(T * px2, detail::shared_count const & pn2)
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{
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px = px2;
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pn = pn2;
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}
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template<class Y> bool _internal_less(weak_ptr<Y> const & rhs) const
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{
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return pn < rhs.pn;
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}
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// Tasteless as this may seem, making all members public allows member templates
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// to work in the absence of member template friends. (Matthew Langston)
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#ifndef BOOST_NO_MEMBER_TEMPLATE_FRIENDS
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private:
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template<class Y> friend class weak_ptr;
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template<class Y> friend class shared_ptr;
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#endif
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T * px; // contained pointer
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detail::weak_count pn; // reference counter
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}; // weak_ptr
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template<class T, class U> inline bool operator<(weak_ptr<T> const & a, weak_ptr<U> const & b)
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{
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return a._internal_less(b);
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}
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template<class T> void swap(weak_ptr<T> & a, weak_ptr<T> & b)
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{
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a.swap(b);
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}
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// deprecated, provided for backward compatibility
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template<class T> shared_ptr<T> make_shared(weak_ptr<T> const & r)
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{
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return r.lock();
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}
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} // namespace boost
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#ifdef BOOST_MSVC
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# pragma warning(pop)
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#endif
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#endif // #ifndef BOOST_WEAK_PTR_HPP_INCLUDED
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