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Why is this code compiling? I thought that rvalues returned by ctor are not located in memory and therefore can't be used as lvalues.

#include <iostream>
#include <vector>

class Y {
public :
    explicit Y(size_t num = 0)
    : m_resource {std::vector<int>(num)}
    {
    }

    std::vector<int> m_resource;
};

int main(int argc, const char * argv[]) {
    Y(1) = Y(0); // WHAT?!?
    return 0;
}
share|improve this question
    
The member function operator= may be called on any object. Your code is the same as Y(1).operator=(Y(0)); – M.M Jan 17 at 6:28
up vote 7 down vote accepted

The synthesized assignment operator is declared as one of these (if it can be synthesized and isn't declared as deleted) according to see 12.8 [class.copy] paragraph 18:

  • Y& Y::operator=(Y const&)
  • Y& Y::operator=(Y&) ()

That is, like for any other member function which isn't specifically declared with ref-qualifiers it is applicable to rvalues.

If you want to prevent a temporary object on the left hand side of the assignment you'd need to declare it correspondingly:

class Y {
public :
    explicit Y(std::size_t num = 0);
    Y& operator= (Y const&) & = default;
};

The standard uses the name ref-qualifier for the & before the = default. The relevant proposal is N2439. I don't know where there is a good description of ref-qualifiers. There is some information at this question.

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1  
I tried this and it works. What is the '&' just before '= default' called and where can I read more about this unfamiliar syntax? – John Difool Jan 17 at 6:37
1  
@JohnDifool here is another thread on the topic. If you search stackoverflow for "ref qualifier" you should find a few more – M.M Jan 17 at 6:52
1  
@JohnDifool: my answer mentioned "reference qualifiers" but I agree that this informal name isn't really that helpful and I have changed the answer accordingly. – Dietmar Kühl Jan 17 at 6:54
    
I found this in C++ Primer book: "Reference Qualifier: Symbol used to indicate that a nonstatic member function can be called on an lvalue or an rvalue. The qualifier, & or &&, follows the parameter list or the const qualifier if there is one. A function qualified by & may be called only on lvalues; a function qualified by && may be called only on rvalues." I may need to do some digging to understand what the last part means. – John Difool Jan 17 at 7:55
    
After doing more reading and more thinking, I still have one question if I may: You suggestion for adding "Y& operator= (Y const&) & = default;" works but isn't it equivalent as saying that you need to default 'synthetized' behaviour? In other word, why does it work with 'default' while I believe it should have been 'delete'? – John Difool Jan 17 at 15:32

Not sure where you got that specific rule of thumb. If any, a rule of thumb would be (from Scott Meyers): if it has a name, it's an lvalue.

In this case, you're creating a temporary object and passing it to an assignment method/function. There is no problem with that. In fact, it might even make sense to do so, as in

// Applies foo to a copy, not the original.
(Y(1) = y).foo()

It is true that Y(*) don't have names here, though, and hence they are rvalues.

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