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I am writing a class in which I want to create member function template specialization like this

namespace aha
{
class Foo
{
public:
    template < typename T >
    T To() const
    {
        // some code here
    }
};
template <>
bool Foo::To < bool > () const
{
    // some other code here
}
}

gcc is giving the error:

Explicit instantiation of 'To < bool >' after instantiation

I would like to do it with template specialization of member functions only so that the users of my library would get the same function while converting Foo to different datatypes like

Foo obj;
bool b( obj.To < std::string > () );
int i( obj.To < int > () );
float f( obj.To < float > () );

and so on.

Please let me know what I am doing wrong in the code.

share|improve this question
    
Your example compiles fine with g++ 4.6.3. –  Vaughn Cato Nov 21 '12 at 15:35
    
Do you mean "Explicit specialization of 'To<bool>' after instantiation"? Are you using To<bool> somewhere before you specialize it? –  Joseph Mansfield Nov 21 '12 at 15:40
    
Compiles fine with gcc-4.7.2 and Comeau C++ Online. Which compiler are you using? –  Maxim Yegorushkin Nov 21 '12 at 16:06

1 Answer 1

up vote 2 down vote accepted

Explicit instantiation of 'To < bool >' after instantiation

The above says it all: it gets specialized after the generic version of it has already been used.

Function template specialization can be simulated with overloading, which is a more flexible mechanism (for example, there is no partial specialization for function templates, yet one can achieve the desired effect with overloading):

template<class T> struct Type {}; // similar to boost::type<>

class Foo
{
    template<class T>
    T doTo(Type<T>) const; // the generic version

    bool doTo(Type<bool>) const; // an overload for bool only
    // add more overloads as you please

public:
    template < typename T >
    T To() const {
        return this->doTo(Type<T>());
    }
};
share|improve this answer
1  
Did you forget const on your doTo methods? –  Mark B Nov 21 '12 at 16:12
    
@Mark No, I did not forget const in my doTo methods. Your technique solves my problem. However, I am not sure what is the need of template<class T> struct Type {}; I made my doTo methods with simple non template types like this bool doTo( bool ) const; and it works fine. –  Saurabh Sinha Nov 25 '12 at 15:15
    
@SaurabhSinha Type<T> creates a distinct type for T, not convertible to any other Type<U>. It is useful primarily overload functions based on the exact type of the argument. Like in the code above. –  Maxim Yegorushkin Nov 25 '12 at 19:41

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