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In my experimentation with templates I've come across a confusing predicament. I'm defining a templated struct F who default argument is int. It has a templated member function g. I'm defining it below the struct definition. I figured this was the correct way to go about it, however, I receive an error. And only one error:

prog.cpp:9:62: error: default argument for template parameter for class enclosing 'void F< >::g()'

template <typename = int> struct F {

    template <typename> void g();

};

template <typename T = int> template <typename> void F<T>::g() {}

int main() {

    F<>f;

}

It's quite vague. I couldn't exactly understand what it means. So I tried changing some things around. I figured it was the default template arguments for the definition of F. So I changed:

template <typename = int> struct F {

to

template <typename T = int> struct F {

I also tried giving g template arguments:

template <typename T = int> template <typename U> void F<T>::g<U>() {}

But then I received the errors:

prog.cpp:9:67: error: function template partial specialization 'g' is not allowed
prog.cpp:9:67: error: default argument for template parameter for class enclosing 'void F::g()'

I even tried specifying that g was a template function:

template <typename T = int> template <typename U> void F<T>::template g<U>() {}

But it didn't help. What am I doing wrong?

share|improve this question
up vote 6 down vote accepted

Default template parameters must be used only on function declarations, not on definitions:

template <typename T/* = int*/> template <typename> void F<T>::g() {}
share|improve this answer
    
Which is consistent with function argument default parameters. – pmr Oct 20 '12 at 14:01
    
@pmr exactly :D – mfontanini Oct 20 '12 at 14:01
    
But... the default parameter does appear in a definition, namely that of F. Not to mention the rules for function default parameters are more lenient than those for template default parameters. – Luc Danton Oct 20 '12 at 14:24

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