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I have the [simplified] code:

class AClass{
public:
    AClass( BigClass && bc ) : m_bc{std::move(bc)} {}

private:
    BigClass m_bc;
};

AClass * aFunction( BigClass && bc ){
    return new AClass( std::move(bc) );
}

It works. But Is it correct? The BigClass data is move along calls without creating temporaries?

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1  
Looks fine, yes. –  Marc Glisse Mar 14 '13 at 16:33
    
I wasn't sure, I did'n known if I should use std::forward in the aFucntion but it fails. –  Zhen Mar 14 '13 at 16:50
    
std::forward is for templates. –  Marc Glisse Mar 14 '13 at 18:21
1  
All std::move does is change an lvalue to an rvalue. It doesn't actually do any moving. –  Xeo Mar 14 '13 at 18:28
1  
std::forward is for universal references, which are subtly different from rvalue references. –  Michael Kristofik Mar 15 '13 at 13:06

1 Answer 1

up vote 0 down vote accepted

Yes, what you have is correct. You need to use std::move or the code won't compile. It may not be immediately obvious why. If we call your function like this:

AClass *a = aFunction(BigClass{});

aFunction is called with an rvalue, the return value from BigClass's default constructor. But inside aFunction, the variable bc is an lvalue. Remember, if it has a name, it's an lvalue. We have to turn bc into an rvalue with std::move in order to use AClass's move constructor.

To see this more clearly, let's add some printouts (and a copy constructor) to AClass:

AClass( BigClass & bc ) : m_bc{bc} { std::cout << "Copy\n"; }
AClass( BigClass && bc ) : m_bc{std::move(bc)} { std::cout << "Move\n"; }

If you leave std::move out of aFunction, you'll get the copy. With it, you'll get the move.

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Thanks, I think that the key is "if it has a name, it's a lvalue" phrase :) –  Zhen Mar 15 '13 at 8:20

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