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I have a typedef inside a class and I would like to overload the operator<< for it to be able to print it in ostream. However, the compiler cannot find the overloaded operator. How can I declare it so that it works?

#include <iostream>
#include <set>

using namespace std;

template <class C>
struct K {

    typedef std::set<C> Cset;

    Cset s;
    // and many more elements here

    friend ostream& operator<<(ostream& oo, const Cset& ss){
        typename Cset::const_iterator it=ss.begin();
        oo << "[";
        for(; it!=ss.end(); ++it) oo << (*it) << ",";
        oo << "]";
        return oo;
    }

    void DoSomething(){
        // do something complicated here
        cout << s << endl;
        // do something complicated here
    }

};


int main(){
    K <int> k;
    k.s.insert(5);
    k.s.insert(3);
    k.DoSomething();

}

gcc version 4.4.5 20101112 (Red Hat 4.4.5-2) (GCC)

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1  
Is the reason why you want it defined inside the class so that the function remains invisible outside struct K? –  dasblinkenlight Oct 18 '12 at 16:19
    
@dasblinkenlight And is defining it outsid a good idea? I mean, can it collide with a smiliar definition by someone else (in different header file for instance?) Anyways, this seems to work, thanks a lot! –  yo' Oct 18 '12 at 16:25
    
His code compiles and runs fine for me on VC 2010 & G++ 3.3.3 –  user93353 Oct 18 '12 at 16:26

2 Answers 2

up vote 4 down vote accepted

When a friend function is defined inline and there is no forward declaration outside the class, it is only found by ADL. However, your overload will never be found by ADL as it does not involve K arguments (note that K<int>::CSet is a typedef for std::set<C>).

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1  
The argument is K<int>::CSet. So it does involve K. Anyway, the code compiles and runs for me on VC 2010 & G++ 3.3.3. Not that that proves it's good code, but .. –  user93353 Oct 18 '12 at 16:28
1  
@user93353: K<int>::CSet is a typedef for std::set<C> and C is int, not K. –  K-ballo Oct 18 '12 at 16:29

Just for completeness: final version of the code for operator<<:

template <class T, class U>
std::ostream& operator<<(std::ostream& oo, const std::set <T,U> & ss){
    typename std::set <T,U> ::const_iterator it=ss.begin();
    oo << "[";
    if(it!=ss.end()) oo << (*it++);
    while(it!=ss.end()) oo << "," << (*it++);
    oo << "]";
    return oo;
}   
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