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I learned that STL can forbid programmer putting an auto_ptr into a container. For example following code wouldn't compile:

    auto_ptr<int> a(new int(10));
    vector<auto_ptr<int> > v;
    v.push_back(a);

auto_ptr has the copy constructor, why this code can even compile?

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I know I should not use the auto_ptr in stl because of the copy semantic. But my question is how the stl is implemented so it can forbid you doing so? In my sample code, it cannot even compile. –  frinker Sep 9 '11 at 9:09
1  
Can you post the compile error? –  R. Martinho Fernandes Sep 9 '11 at 9:09
    
@xanatos: No copy constructors are const! –  Lightness Races in Orbit Sep 9 '11 at 9:16
    
@xanatos: No references are const! They are already inherently immutable! –  Lightness Races in Orbit Sep 9 '11 at 9:22
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4 Answers

up vote 11 down vote accepted

Looking at the definition of std::auto_ptr:

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();
    };

}

Although there is a copy-constructor, it takes a reference to non-const. Temporaries may not bind to this, so the type is effectively prohibited from working inside containers in any place where temporaries are used; in addition, push_back accepts a reference to const, so due to const-correctness it's impossible for the new, internal element to by copy-constructed from push_back's argument.

(That Wikipedia page says that "because of its copy semantics, auto_ptr may not be used in STL containers that may perform element copies in their operations"; this doesn't mean that containers magically examine the code inside the copy constructor to decide whether it wants to make the type work as an element type. Instead, it's just about the function signature.)

Anyway, std::auto_ptr is deprecated as of C++11 because, in the opinion of some, std::auto_ptr is silly. Sorry, std::auto_ptr.

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+1, also discussed here: stackoverflow.com/q/3316514 –  sharptooth Sep 9 '11 at 9:11
1  
I strongly disagree, std::auto_ptr is perfect to solve a set of problems. Sadly the developers misuse it. –  Alessandro Teruzzi Sep 9 '11 at 9:16
    
+1, I see, thanks man! –  frinker Sep 9 '11 at 9:19
3  
@Alessandro: I strongly disagree, std::unique_ptr is perfect to solve that set of problems. Luckily, it's much harder to misuse it. :) –  R. Martinho Fernandes Sep 9 '11 at 9:21
1  
Because the syntax is unusual and generate confusion (as many other thing in c++). It will be a long discussion, in my personal opinion the biggest problem with auto_ptr was the fact that it was the only smart_ptr in the standard library and the developers try to use it in an improper way. –  Alessandro Teruzzi Sep 9 '11 at 9:31
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On the particular issue of how does the compiler detect that situation (or how does the STL cause an error there), you should read the exact output of the compiler, it will contain a bunch of errors that will lead to failure to perform a conversion from const X to X as it discards the const qualifier, where X can either be std::auto_ptr<> directly or else an internal detail type.

In particular, std::vector::push_back takes the argument by const &, and internally it will try to copy construct an element inside the dynamic array using the available copy constructor, which in the case of std::auto_ptr requires a non-const reference. Something in the lines of:

void push_back( std::auto_ptr<int> const & x ) {
    // ensure enough capacity if needed...
    new (buffer + size()) std::auto_ptr<int>( x ); // !!! cannot bind x to non-const&
    // complete the operation (adjust end pointer, and such)
}
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Because std::auto_ptr is not compatible with stl container.

std::auto_ptr is using single ownership copy semantic, the stl container needs to copy construct an object (and some algorithms need to assign it)

You should use a reference counted smart pointer (boost::shared_ptr)

EDIT

For example, this is the signature of push_back

void push_back ( const T& x );

The problem is that std::auto_ptr is special and the copy constructor and assign operator signature are different. They are NOT const. You modify an auto_ptr if you copy it.

auto_ptr& operator= (auto_ptr& a) throw();

auto_ptr (auto_ptr& a) throw();

You cannot provide an auto_ptr that fulfil the requirement of push_back.

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Or a decent single ownership pointer with move semantics, like std::unique_ptr. –  R. Martinho Fernandes Sep 9 '11 at 9:03
    
have a look at items 13-17 of Effective C++, it is not specific with auto_ptr, but it is very useful to understand your problem. –  Alessandro Teruzzi Sep 9 '11 at 9:04
2  
I know I should not use the auto_ptr in stl because of the copy semantic. But my question is how the stl is implemented so it can forbid you doing so? In my sample code, it cannot even compile. –  frinker Sep 9 '11 at 9:06
    
It's not just about push_back. A container needs to copy elements around internally, too. –  Lightness Races in Orbit Sep 9 '11 at 9:15
    
of course, it was just an exemple –  Alessandro Teruzzi Sep 9 '11 at 9:17
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The other answers are bang on about auto_ptr.

To do what you are trying to do use std::unique_ptr if its available to you (C++11) if not you can use a shared_ptr

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