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Possible Duplicate:
std::endl is of unknown type when overloading operator<<

#include <iostream>

using namespace std;

struct OutputStream
{
    template<class T>
    OutputStream& operator <<(const T& obj)
    {
        cout << obj;

        return *this;
    }
};

OutputStream os;

int main()
{    
    os << 3.14159 << endl; // Compilation Failure!
}

The VC++ 2012 compiler complains:

error C2676: binary '<<' : 'OutputStream' does not define this operator or a conversion to a type acceptable to the predefined operator

share|improve this question

marked as duplicate by Cheers and hth. - Alf, Luchian Grigore, Nate Kohl, xmllmx, StoryTeller Feb 5 '13 at 23:23

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

    
You didn't define endl – Simon G. Feb 5 '13 at 23:15
    
Does T not apply to endl? – xmllmx Feb 5 '13 at 23:18
    
I thought it would apply, but the code does compile without endl. I'll just wait for brighter guys to answer. :p – Simon G. Feb 5 '13 at 23:19
    
Well, since it's an exact duplicate... remove this? – Simon G. Feb 5 '13 at 23:22
    
I have voted to close this post of mine. – xmllmx Feb 5 '13 at 23:23
up vote 4 down vote accepted

The reason is that the compiler cannot deduce the type of T, because std::endl is a function template defined as

template <class charT, class traits>
  basic_ostream<charT,traits>& endl ( basic_ostream<charT,traits>& os );

The way it is overcome in IOStreams is by providing an appropriate overload of operator<<:

OutputStream& operator <<(std::ostream& ( *pf )(std::ostream&))
{
  cout << pf;
  return *this;
}
share|improve this answer
    
Good answer! Concise and generic! – xmllmx Feb 5 '13 at 23:24
    
@xmllmx: Thanks – vitaut Feb 5 '13 at 23:25

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