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Asked: 2026-05-13T13:11:52+00:00

I was going through the auto_ptr documentation on this link auto_ptr There is something

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I was going through the auto_ptr documentation on this link auto_ptr
There is something which i could not fully understand why is it done. In the interface section there are two declarations for its copy constructor

1)

auto_ptr(auto_ptr<X>&) throw ();

2) 

template <class Y> 
     auto_ptr(auto_ptr<Y>&) throw();

What purpose is this for.

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1 Answer

  1. Editorial Team

    It’s there in case you can implicitly convert the pointers:

    struct base {};
struct derived : base {};

std::auto_ptr<derived> d(new derived);
std::auto_ptr<base> b(d); // converts

    Also, you didn’t ask but you’ll notice the copy-constructor is non-const. This is because the auto_ptr will take ownership of the pointer. In the sample above, after b is constructed, d holds on to nothing. This makes auto_ptr unsuitable for use in containers, because it can’t be copied around.

    C++0x ditches auto_ptr and makes one called unique_ptr. This pointer has the same goals, but accomplishes them correctly because of move-semantics. That is, while it cannot be copied, it can “move” ownership:

    std::unique_ptr<derived> d(new derived);

std::unique_ptr<base> b(d); // nope, cannot be copied
std::unique_ptr<base> b(std::move(d)); // but can be moved

    This makes unique_ptr suitable for use in containers, because they no longer copy their values, they move them.

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