133

for example:

Beta_ab&&
Beta::toAB() const {
    return move(Beta_ab(1, 1));
}
246
Beta_ab&&
Beta::toAB() const {
    return move(Beta_ab(1, 1));
}

This returns a dangling reference, just like with the lvalue reference case. After the function returns, the temporary object will get destructed. You should return Beta_ab by value, like the following

Beta_ab
Beta::toAB() const {
    return Beta_ab(1, 1);
}

Now, it's properly moving a temporary Beta_ab object into the return value of the function. If the compiler can, it will avoid the move altogether, by using RVO (return value optimization). Now, you can do the following

Beta_ab ab = others.toAB();

And it will move construct the temporary into ab, or do RVO to omit doing a move or copy altogether. I recommend you to read BoostCon09 Rvalue References 101 which explains the matter, and how (N)RVO happens to interact with this.


Your case of returning an rvalue reference would be a good idea in other occasions. Imagine you have a getAB() function which you often invoke on a temporary. It's not optimal to make it return a const lvalue reference for rvalue temporaries. You may implement it like this

struct Beta {
  Beta_ab ab;
  Beta_ab const& getAB() const& { return ab; }
  Beta_ab && getAB() && { return move(ab); }
};

Note that move in this case is not optional, because ab is neither a local automatic nor a temporary rvalue. Now, the ref-qualifier && says that the second function is invoked on rvalue temporaries, making the following move, instead of copy

Beta_ab ab = Beta().getAB();
| improve this answer | |
  • 51
    I had always assumed the dangling reference problem went away automagically when the return type was an r-value reference. Glad I got that straighted out before it bit me. Stack smashing bugs suck. – deft_code Jul 15 '09 at 3:03
  • 31
    :) Really, rvalue references are "just references" like lvalue references are. they don't copy or store anything. – Johannes Schaub - litb Mar 10 '10 at 2:17
  • 9
    what does the const & qualifier on a member function more than a simple const ? – galinette Apr 11 '14 at 11:33
  • 4
    +1-ed, but broken link: BoostCon09 Rvalue References 101 – Siu Ching Pong -Asuka Kenji- Mar 30 '15 at 0:45
  • 3
    @galinette These are ref-qualifiers. – Malcolm Oct 20 '15 at 10:55
2

It can be more efficient, for example, in a bit different context:

template <typename T>
T&& min_(T&& a, T &&b) {
    return std::move(a < b? a: b);
}

int main() {
   const std::string s = min_(std::string("A"), std::string("B"));
   fprintf(stderr, "min: %s\n", s.c_str());
   return 0;
}

As an interesting observation, on my machine clang++ -O3 generates 54 instructions for code above versus 62 instructions for regular std::min. However, with -O0 it generates 518 instructions for code above versus 481 for regular std::min.

| improve this answer | |
  • I'm confused by your answer. Had tried a similar (maybe) version but failed: ideone.com/4GyUbZ Could you explain why? – Deqing Apr 11 '18 at 0:25
  • You used reference on temporary object in for(:) and integrating over deallocated object. Fix: ideone.com/tQVOal – wonder.mice Apr 11 '18 at 17:42
  • 3
    isn't this answer actually wrong? for template parameter T, T&& is not an r-value reference, but rather a universal reference, and for that case, we should always call std::forward<T>, not std::move! Not to mention, that this answer directly contradicts the top-voted one above. – xdavidliu Nov 3 '19 at 17:49
  • @xdavidliu this answer is a contrived example how returning by rvalue can be more efficient. std::move() is just used as an explicit cast to illustrate the point more clearly. It's not a code you would copy-paste into your project. It doesn't contradict top-voted answer, because there temporary object is created inside the function. Here returned object is one of the arguments (temporary objects are destroyed as the last step in evaluating the full-expression that (lexically) contains the point where they were created). – wonder.mice Apr 15 at 19:08
  • 2
    @wonder.mice then please replace T with std::string; there's no need to use templates at all here, and using T&& as a r-value reference is just awful style that unnecessarily confuses people new to templates and r-values. – xdavidliu Apr 15 at 19:14

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