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Say I have some class template:

template<typename T>
class {
// ....
}

I can partially specialize this template for ALL pointers by:

template<typename T>
class<T *> {
// ....
}

Can I somehow specialize the template for ALL enums? i.e., do something like: (this doesn't work, though)

template<typename T>
class<enum T> {
// ....
}
share|improve this question
    
no, you can't.. –  BЈовић Oct 4 '12 at 12:09

1 Answer 1

up vote 10 down vote accepted

use C++11 and SFINAE.

#include <type_traits>

template<typename T, typename = void>
struct Specialize
{
};

template<typename T>
struct Specialize<T, typename std::enable_if<std::is_enum<T>::value>::type>
{
   void convert() { }
};

enum E
{
};

int main()
{
   Specialize<E> spec;
   spec.convert();
}

Without C++11 use boost::enable_if and boost::is_enum

share|improve this answer
    
Thx, that did the trick. –  qwer1304 Oct 4 '12 at 12:56
    
@qwer1304 function template specializations is not good idea. You cannot partial specialize function templates, only explicit specializations. –  ForEveR Oct 5 '12 at 8:11
    
This scheme works fine for classes, but I have trouble using it with function templates, e.g.: template <typename U, typename = void> U f(int i); template<typename U, typename std::enable_if<std::is_enum<U>::value, U>::type> U f(int i) { ...; } enum myenum {A,B,C,D}; main () { myenum xx; xx = f<myenum>(1); // [1] xx = f<myenum,myenum>(2); // [2] } With gcc 4.7.2 and using -std=c++11, [1] results in undefined reference to 'myenum f<myenum,void>(int)' and [2] in undefined reference to 'myenum f<myenum,myenum>(int)'. Ideas? –  qwer1304 Oct 5 '12 at 8:19
    
@qwer1304 use some kind of overload. Like this for example liveworkspace.org/code/84c8a46e254f91599261dd6068821e0d –  ForEveR Oct 5 '12 at 8:28
    
Thx, that did the trick. –  qwer1304 Oct 5 '12 at 10:37

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