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I am trying to understand ostream overloads. Consider this

#include <iostream>

using std::ostream;

enum class A{a1, a2, a3};

template <class T>
ostream& operator<<(ostream& out, const T& a)
{
  switch(a)
    {
    case T::a1 :
      return out<<"a1";
    case T::a2 :
      return out<<"a2";
    case T::a3 :
      return out<<"a3";
    };
  return out;
}
/*ostream& operator<<(ostream& out, const A& a)                               
{                                                                              
  switch(a)                                                                    
    {                                                                          
    case A::a1 :                                                               
      return out<<"a1";                                                        
    case A::a2 :                                                               
      return out<<"a2";                                                        
    case A::a3 :                                                               
      return out<<"a3";                                                        
    };                                                                         
  return out;                                                                  
  }*/

int main()
{
  A a = A::a3;
  std::cout<<a<<std::endl;
}

While compiling i get error as below

test.cpp:13:17: error: ambiguous overload for ‘operator<<’ (operand types are ‘std::ostream {aka std::basic_ostream<char>}’ and ‘const char [3]’)
       return out<<"a1";
                 ^

While uncommenting normal function and commenting template version works fine. Why ambiguity is not in normal function and why it is in templatized version

share|improve this question
up vote 3 down vote accepted

The non-template operator does not cause any ambiguity because that operator itself is not viable for resolving this call:

return out << "a1";
//     ^^^^^^^^^^^
//     This MUST be `std::operator <<`, no other valid overload of
//     operator << is found!

As well as the other similar ones.

The template version, on the other hand, is viable, since T is not bound to be any concrete type:

template <class T>
ostream& operator<<(ostream& out, const T& a)
{
    switch(a)
    {
    case T::a1 :
      return out << "a1";
//           ^^^^^^^^^^^
//           Here the compiler could invoke std::operator <<
//           OR it could invoke your operator << template,
//           which is also viable since T could be anything!
//           Which one should it pick?

    // ...
    }
}

Therefore, the compiler does not know whether to pick the overload in the std namespace or your function template (yes, that would be an attempt to establish an infinite recursion, but the compiler doesn't need to care).

Those overloads are both good, hence the ambiguity.

One way to fix your problem would be to SFINAE-constraint your template overload of operator << so that it is considered for overload resolution only when T is an enumeration type. For instance:

#include <type_traits>

template <class T, 
    typename std::enable_if<std::is_enum<T>::value>::type* = nullptr>
ostream& operator<<(ostream& out, const T& a)

Here is a live example.

share|improve this answer
    
so u mean in std namespace there exists a same function as template <class T> ostream& operator<<(ostream& out, const T& a) – Abhishek Dixit Jun 19 '13 at 13:45
    
@AbhishekDixit: No, there is a template overload that accepts different types of stream and a const char* – Andy Prowl Jun 19 '13 at 13:48

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