6

The C++ draft states:

12.8p31 This elision of copy/move operations, called copy elision, is permitted in the following circumstances (which may be combined to eliminate multiple copies):

(...)

  • when a temporary class object that has not been bound to a reference (12.2) would be copied/moved to a class object with the same cv-unqualified type, the copy/move operation can be omitted by constructing the temporary object directly into the target of the omitted copy/move

In other words:

X MakeX() {
   return X(); // Copy elided
}

X MakeX() {
   const X& x = X(); // Copy not elided
   return x;
}

What is the reason for such restriction for references?

Please do not focus on the validity of the following examples, as they are just to exemplify that I fail to see the difference (IMHO) between temporary and a reference.

On one hand by introduction of reference we allowed other peers to alias the same object, while the caller of MakeX() expects it to be safe and clean.

class Y {
public:
    Y(const X& x) : _xRef(x) {}
private:
    const X& _xRef;
};

X MakeX() {
    const X& x = X();
    Y y{x};
    StaticStuff::send(y);
    return x; // Oops, I promised to return a clean,
              // new object, but in fact it might be silently
              // changed by someone else. 
}

But what about such case (probably it's UB ;)):

class Y {
public:
    Y(X* x) : _xPtr(x) {}
private:
    X* _xRef;
};

X MakeX() {
    X x;
    Y y{&x}; // I'm referencing a local object but I know it will be
             // copy elided so present in the outer stack frame.
    StaticStuff::send(y);
    return x; // Copy elided?
}
  • 2
    StaticStuff::send(y); does not actually introduce the possibility to modify x indirectly => it's Undefined Behavior to use a reference to x after the end of MakeX. – Matthieu M. Apr 8 '13 at 8:20
  • 1
    Oops, I promised to return a clean, new object, but in fact it might be silently changed by someone else. - what do you mean? x is const X& therefore not changeable. – BЈовић Apr 8 '13 at 8:23
  • your second version of MakeX would probably invoke the copy constructor to turn the const X& into a plain X, is that the problem you have? – didierc Apr 8 '13 at 8:23
  • @MatthieuM. In a way I expected UB, but I used this argument that even for NRVO programmer can do dirty stuff, so why to restrict the references. – Red XIII Apr 8 '13 at 8:44
  • @BЈовић Apart from having not-really-than-non-observable const (which s probably your fault) I meant that when you see X func() you expect that no one is able to reference this value as you will be the first one to get it (as you expect the value to be a copy). – Red XIII Apr 8 '13 at 8:46
3

You never know that a copy will be elided. Copy elision is never mandatory.

Therefore, either both cases are UB, or none. It depends on what StaticStuff:send does with the object you pass in. If it retains any poitner/reference to y._xRef or *y._xPtr, then dereferencing that pointer/reference after MakeX() has returned will indeed cause UB, as the original object x was one with automatic storage duration inside MakeX() and its lifetime has now ended.

It's possible that the result of this UB will be "everything works just fine" because copy ellision did take place and the pointer/reference refers to the instance in the "outer stack frame." However, this is pure coincidence and it's still UB.

  • Sure the standard states that "The elision (...) is permitted" so I can't expect anything, and yes, in those two cases I tread into UB-land. What I wanted to say is that I don't see a particular reason why const ref (which is the only way to keep temporaries) is not allowed, while a temporary is. – Red XIII Apr 8 '13 at 9:02
  • I don't think this is quite correct, at least not in C++11. What if X is move-constructible but not copy-constructible? Then, the OP's first example would still compile and the compiler will be forced t do a move elision, right? Please also see stackoverflow.com/questions/18609968/… for details – eold Jul 18 '14 at 17:14
  • @leden I don't quite follow. There is no way to force a copy/move elision to happen. Those are always optional. – Reinstate Monica Jul 19 '14 at 19:37
  • @Angew: How about this: coliru.stacked-crooked.com/a/452d037e9c21741d It doesn't elide the copy, but the copy is "promoted" to move because the lvalue is not used elsewhere and has no side effect? – eold Jul 21 '14 at 20:15
  • @leden How is this related? As per 12.8/32, any time elision is possible, an lvalue must first be "tried" as an rvalue, and only be used as an lvalue when that fails (i.e. return x; always tries to move x first, and copies it if that's not possible). Then, the copy or move can optionally (at the compiler's sole discretion) be elided. – Reinstate Monica Jul 21 '14 at 20:59

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