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Is it possible to specialize a templatized method for enums?

Something like (the invalid code below):

template <typename T>
void f(T value);

template <>
void f<enum T>(T value);

In the case it's not possible, then supposing I have specializations for a number of types, like int, unsigned int, long long, unsigned long long, etc, then which of the specializations an enum value will use?

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2 Answers

up vote 11 down vote accepted

You can use Boost's enable_if with is_enum from Boost.TypeTraits to accomplish this.

In an answer to one of my questions, litb posted a very detailed and well-written explanation of how this can be done.

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This looks like it might work. I'm taking a look at it. Thanks! –  nilton Oct 25 '09 at 17:26
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I'm not sure if I understand your question correctly, but you can instantiate the template on specific enums:

template <typename T>
void f(T value);

enum cars { ford, volvo, saab, subaru, toyota };
enum colors { red, black, green, blue };

template <>
void f<cars>(cars) { }

template <>
void f<colors>(colors) { }

int main() {
    f(ford);
    f(red);
}
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2  
That wouldn't work because I don't have the enum type beforehand. –  nilton Oct 25 '09 at 15:42
    
in C++11 you have the type and hence you can create the enum template. A nicer topic would be to create a template based on a particular values of the enum (f<ford>). still possible with some tricker or can be avoided by just declaring classes instead of enum values. –  DarioOO Aug 25 '13 at 14:43
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