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I have the following operator-overloading prototypes:

 ostream& operator<<(ostream & outputstream, my_arr& arr)

 my_arr operator+(const my_arr& left, const my_arr& right)

I call:

 cout << (arr1 + arr2);

This gives me the following compiler error:

error: no match for ‘operator<<’ in ‘std::cout << operator+(const my_array&, const my_array&)((*(const my_array*)(& y)))’

This goes away if I change the signature of << to the following:

  ostream& operator<<(ostream & outputstream, const my_arr& arr)

I might be missing something basic here, but why does this happen? Thanks for your help.

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Are my_array and my_arr the same? Or is there an implicit conversion from my_array to my_arr? –  juanchopanza Jan 18 '13 at 7:37
    
Sorry that was a typo. I have fixed it in the post. My code had it correct though and was getting the error as mentioned in the post. Thanks. –  SkypeMeSM Jan 18 '13 at 7:54

3 Answers 3

up vote 4 down vote accepted

The problem is that when passing as reference, you cannot pass "temporary" (rvalue) objects such as the result of an addition. When passing a const reference, C++ rules allow passing temporaries because it's guaranteed they won't be written to.

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@billz in your example, the operator most likely takes a const std::string&, which can bind to a temporary. But you are right about my_arr and my_array. I assume it is just a distracting typo. –  juanchopanza Jan 18 '13 at 7:36
    
I see, it's C4239 extension kicks in on VS2012 like hell, my apologies –  billz Jan 18 '13 at 7:47
    
@billz I think we are misunderstanding each other. In your example, const T& binds to a temporary, as expected. And OP's code works in the analogous case. It only fails when using a non const T&. –  juanchopanza Jan 18 '13 at 7:49
    
@juanchopanza I got it just now, on VS2012 extension C4239 allows binding to temporary object and I didn't notice it just now. my apologize. –  billz Jan 18 '13 at 7:51
    
@billz Oh I finally get it. Yes, I remember something about this VS extension. I just don't have VS, so I am blissfully immune to these quirks. –  juanchopanza Jan 18 '13 at 7:55

As has been mentioned, the result of this is a temporary (an rvalue). You can also provide an overload of your output operation which has the form:

ostream& operator<<(ostream& outputstream, my_arr&& arr);

which cout << (arr1 + arr2); will then utilize.

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@billz No it isn't - see ideone.com/OsDteQ vs ideone.com/kvIaMB –  Yuushi Jan 18 '13 at 7:34
    
I see, it's C4239 extension kicks in on VS2012 like hell, my apologies –  billz Jan 18 '13 at 7:48

Because you have a typo in operator+ also you need to pass const my_arr to operator

my_array operator+(const my_arr& left, const my_arr& right)
^^^^ should be my_arr                   ^^^ need to be const

Or you have to overload operator<< for my_array

ostream& operator<<(ostream & outputstream, my_arr& arr)

Otherwise the code just compiles and runs OK: sample link

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2  
No, the problem here is really about binding a reference to a temporary. Your example with std::string in other comments obviously doesn't apply since std::basic_string defines operator<< as taking a const reference. You should only take non-const ref if you intend to modify the object and then have to live with the fact that it won't bind to temporaries. –  Fiktik Jan 18 '13 at 7:38
    
@Fiktik see my sample code ideone.com/YYvd56 –  billz Jan 18 '13 at 7:41
    
yes, your example also defines operator<< as taking a const ref. If you remove const, it will not compile –  Fiktik Jan 18 '13 at 7:42

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