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I don't understand very well the std::move function

template <class T>
typename remove_reference<T>::type&&
move(T&& a)
{
    return a;
}

why remove_reference ? could someone give me a simple explanation ?

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2 Answers 2

up vote 17 down vote accepted

Think about what happens if T is an lvalue reference, for example MyClass &. In that case, T && would become MyClass & &&, and due to reference collapsing rules, this would be transformed into MyClass & again. To achieve the right result, typename remove_reference<MyClass&>::type&& first removes any reference decorations from the type, so MyClass & is mapped to MyClass, and then the rvalue reference is applied to it, yielding MyClass &&.

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Yeah, that is exactly correct, but obviously someone disagrees :) –  Let_Me_Be Apr 3 '11 at 12:06
1  
@Let: What do you mean? I see no downvote on my answer so far... –  FredOverflow Apr 3 '11 at 12:14
    
Uhm. I wrote the same thing 10 minutes before you and got down-voted. –  Let_Me_Be Apr 3 '11 at 12:16
1  
@Let: Hm, I would guess your explanation was a little bit too terse for someone unfamiliar with rvalue references, dunno... –  FredOverflow Apr 3 '11 at 12:26
    
Kind of weird for someone unfamiliar with the topic to downvote an answer. Not that I care. I just wanted to point out that someone disagrees with this explanation. –  Let_Me_Be Apr 3 '11 at 12:28

Because rvalue reference to lvalue reference would decay to lvalue reference, and returing lvalue reference would have different semantics from those you would expect from move.

Edit: Huh, why the downvote? Check out this code:

template < typename T > T&& func(T&& x) { return x; }

int main()
{
        int x;

        int &y = func(x);
}

Further reading: http://www.justsoftwaresolutions.co.uk/cplusplus/rvalue_references_and_perfect_forwarding.html

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