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I understand, or at least have an Idea of, why the following code does not work:

class Spambar {
    public:
        Spambar() {};
        Spambar(Spambar& sb) {};

        Spambar operator + (Spambar sb) {
            Spambar new_sb;
            return new_sb;
        }
};

int main() {
    Spambar sb1;
    Spambar sb2;
    Spambar sb3 = sb1 + sb2;  // <<< Error: "No matching function for call to ... "
}

I guess, the problem is that the copy-constructor expects a reference to a Spambar instance. As no reference but a shallow instance is returned, the compilation fails.

So, how do I get that to work?

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The copy constructor, as well as the operator+, should really have a const Spambar& for an operand. –  Mr Lister Apr 13 '12 at 16:12
    
And the problem, why it doesn't work, is because it doesn't do anything. Or is this not the real code? –  Mr Lister Apr 13 '12 at 16:14

2 Answers 2

up vote 3 down vote accepted

The problem is that the result of sb1 + sb2 is a temporary; the copy constructor used to initialise sb3 requires a non-const reference; and you can't take a non-const reference to a temporary.

You almost certainly want to fix this by changing the constructor's parameter type to Spambar const &. While you're at it, you should almost certainly do the same to operator+, and also make the operator itself const:

Spambar(Spambar const &);
Spambar operator + (Spambar const &) const;

If you're doing something very strange, and actually want the copy-constructor to modify its argument, then you'll have to either avoid passing temporaries to it, or do some nasty hackery with mutable or const_cast. In C++11, you would use a move constructor, with parameter type Spambar &&, for this sort of thing.

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Your class does not have a copy constructor taking a const reference. Normally, a copy constructor looks like:

Spambar(const Spambar&);

The form you show is used in only very rare circumstances, and it is probably preventing your code from working.

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2  
Specifically, the reason it doesn't work is that the immediate result of operator+ is an rvalue, and rvalues cannot bind to non-const lvalue references. –  ildjarn Apr 13 '12 at 16:13
    
Ahhhh right. I remember. :) Anyway, I don't understand what the const keyword does when expressing it in "human terms". Is the value returned by the member-function operator + constant or why does that work now? // Edit: Thanks @ildjarn ^^ –  Niklas R Apr 13 '12 at 16:14
    
Oh, I thought the reason it doesn't work is because it has {} for a function body. –  Mr Lister Apr 13 '12 at 16:15
    
@MrLister : The class has no data members -- what exactly do you think should go in the constructor body? –  ildjarn Apr 13 '12 at 16:17
    
@ildjarn Silly me, I hadn't noticed. I was thrown off by the OP's remark about shallow instances. –  Mr Lister Apr 13 '12 at 16:23

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