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Declarations of auto_ptr from C++ Standard Library

namespace std {

template <class Y> struct auto_ptr_ref {};


template <class X>
class auto_ptr {
public:
    typedef X element_type;

    // 20.4.5.1 construct/copy/destroy:
    explicit           auto_ptr(X* p =0) throw();
                       auto_ptr(auto_ptr&) throw();
    template <class Y> auto_ptr(auto_ptr<Y>&) throw();

    auto_ptr&                      operator=(auto_ptr&) throw();
    template <class Y> auto_ptr&   operator=(auto_ptr<Y>&) throw();
    auto_ptr&                      operator=(auto_ptr_ref<X>) throw();

    ~auto_ptr() throw();

    // 20.4.5.2 members:
    X&     operator*() const throw();
    X*     operator->() const throw();
    X*     get() const throw();
    X*     release() throw();
    void   reset(X* p =0) throw();

    // 20.4.5.3 conversions:
                                auto_ptr(auto_ptr_ref<X>) throw();
    template <class Y> operator auto_ptr_ref<Y>() throw();
    template <class Y> operator auto_ptr<Y>() throw();
};

}

I don't understand the purpose of this part:

template <class Y> struct auto_ptr_ref {};

Without declaring any variable, how can these be valid:

auto_ptr&                      operator=(auto_ptr_ref<X>) throw();

and these too:

auto_ptr(auto_ptr_ref<X>) throw();
    template <class Y> operator auto_ptr_ref<Y>() throw();

Edit: and also (I just notice) I don't understand how the "operator" are used for the last two lines. Isn't the syntax something like "return-type operatoroperand;", where is the return type? operand?

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ah i simply never know about that though (still new to here) –  user385261 Jul 23 '10 at 9:09
1  
@user385261: When you are new to a website, read their FAQ. It's not there for kicks. –  Lightness Races in Orbit Sep 9 '11 at 9:17

2 Answers 2

up vote 4 down vote accepted

Google search for "auto_ptr_ref" reveals this detailed explanation.

I don't quite get that explanation, but looks like it is for the following. Without that trick you could pass an auto_ptr into a function that would get ownership of the object and assign your variable to a null pointer. With the extra class trick above you will get a compile error in such case.

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You've copied the text from the wikipedia entry on auto_ptr, didn't you? This is only the public interface to auto_ptr and co., not an excerpt from an implementation. They left the auto_ptr_ref body empty in the article to indicate, that there is noting inside for a user of a library.

The last two lines here:

 template <class Y> operator auto_ptr_ref<Y>() throw();
 template <class Y> operator auto_ptr<Y>() throw();

are conversion operators. The syntax of conversion operators differs a little, because it makes no sense to declare the return type of a converion operator (it's the name already!), so you don't write int operator int(); but just operator int();

If you need a discussion how auto_ptr_ref is used in auto_ref, SO has a couple of them. For example here: http://stackoverflow.com/questions/2121844/what-is-auto-ptr-ref-what-it-achieves-and-how-it-achieves-it

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