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If I have a template class, like so:

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

Without modifying Type in any way, is there a simple way to specialize it for all such types that match a compile-time condition? For example, if I wanted to specialize Type for all integral types, I'd like to do something like this (only something that works, that is):

template<typename T>
class Type<std::enable_if<std::is_integral<T>, T>::type> { /* ... */ };
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1 Answer 1

up vote 3 down vote accepted

This should work:

template<typename T, bool B = std::is_integral<T>::value>
class Type;

// doesn't have to be a specialization, although I think it's more clear this way
template<typename T>
class Type<T, false> { /* ... */ };

template<typename T>
class Type<T, true> { /* ... */ };
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"Without modifying Type in any way" -- this doesn't qualify. –  ildjarn Dec 21 '11 at 20:01
    
Close enough (I can see multiple reasons for why the idea I sought is unfeasible for compiler writers, or, indeed, standard authors.) –  asc Dec 22 '11 at 8:22
    
Maybe Type was modified, but from the point of view of the rest of the code it looks pretty much the same. –  Aaron McDaid Dec 23 '11 at 12:03

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