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I have a template class that has a template member function that needs to be specialized, as in:

template <typename T>
class X
{
public:
    template <typename U>
    void Y() {}

    template <>
    void Y<int>() {}
};

Altough VC handles this correctly, apperantly this isn't standard and GCC complains: explicit specialization in non-namespace scope 'class X<T>'

I tried:

template <typename T>
class X
{
public:
    template <typename U>
    void Y() {}
};

template <typename T>
// Also tried `template<>` here
void X<T>::Y<int>() {}

But this causes both VC and GCC to complain.

What's the right way to do this?

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1 Answer 1

up vote 7 down vote accepted

Very common problem. One way to solve it is through overloading

template <typename T>
struct type2type { typedef T type; };

template <typename T>
class X
{
public:
    template <typename U>
    void Y() { Y(type2type<U>()); }

private:
    template<typename U>
    void Y(type2type<U>) { }

    void Y(type2type<int>) { }
};
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Thanks. Unfortunately my template argument is actually an integer (as in template <int N>), didn't think it'd make a difference. Any ideas? –  uj2 Jun 14 '10 at 19:56
1  
just replace typename T and U with int N and you are served fine :) This will work just like the type way. –  Johannes Schaub - litb Jun 14 '10 at 19:58
    
@JohannesSchaub-litb and if T and a non-type template arg are both used? As in, the class is template<typename T> but the function is template<size_t N> and you want to specialize for <0> on the function, while keeping the class open on T. Is that possible? Thx. –  WhozCraig Sep 9 at 11:51
    
@WhozCraig there should be no difference, other than mechanical replacements. Please post a new StackOverflow question if you have any problems adopting this to that situation. –  Johannes Schaub - litb Sep 11 at 17:55

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