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#include <iostream>

class Foo { };

Foo createFoo() { return Foo(); }

void bar(Foo &&) { std::cout << "in bar(Foo &&)\n"; }

void bar(Foo const &) { std::cout << "in bar(Foo const &)\n"; }

void baz(Foo &&f) {
    std::cout << "in baz, ";
    bar(f);
    // bar(std::move(f));
}

int main()
{
    baz(createFoo());
    return 0;
}

My expected output is: in baz, in bar(Foo &&), but I'm getting: in baz, in bar(Foo const &). If I switch the calls to bar (see the comment) I get the expected output, but this seems wrong to me. Is there some reason the compiler can't call bar(Foo &&) without me converting a Foo&& to a Foo&&?

Thanks in advance!

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5  
f in Foo &&f is an lvalue, since it is named, so it will not bind directly to an rvalue reference. –  ildjarn May 15 '12 at 15:48

2 Answers 2

up vote 13 down vote accepted

Inside baz(Foo&& f), f is an lvalue. Therefore, to pass it on to bar as an rvalue reference you have to cast it to an rvalue. You can do this with a static_cast<Foo&&>(f), or with std::move(f).

This is to avoid accidentally moving things multiple times in the same function e.g. with multiple calls to bar(f) inside baz.

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3  
Please not with static_cast! –  leftaroundabout May 15 '12 at 15:55
    
@leftaroundabout: Why not static_cast? Obviously std::move is cleaner to read and will always work, but is there some other reason static_cast would be bad? –  Stephen Newell May 15 '12 at 15:57
1  
@Stephen Newell static_cast doesn't clearly express the intention, potentially misleading your readers into thinking you for example mistyped & as &&. –  Mark B May 15 '12 at 16:03
1  
@StephenNewell: There is the content and there is the presentation. In this case both are equivalent from a content point of view, but one is specific (and thus clear) while the other is a generic construct (and thus questions arose as to why it was used, if it was used correctly, if it was really intended, ....) –  Matthieu M. May 15 '12 at 16:24
2  
@AnthonyWilliams: Strictly, f is an rvalue reference, and an lvalue. The result of static_cast<Foo&&>(f) is also an rvalue reference, but an xvalue (a type of rvalue). I.e. you're using static_cast to convert from type T to itself, but as a side effect you're changing the l/r-valueness. Otherwise your explanation is excellent. –  ndkrempel May 15 '12 at 16:49

In short, the rule is that a named rvalue reference is an lvalue. This is to prevent automatically moving out of a named variable that you then need to use later. In contrast unnamed temporaries can never be used again and so can be automatically moved from.

I found this series http://cpp-next.com/archive/2009/08/want-speed-pass-by-value/ to be pretty helpful even though it's a little bit old.

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