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In a class template, how to detect if the template parameter is an enumeration type ?

Here is a simplified example of what I would like to do : http://ideone.com/3CafY. How would you implement IsTEnum() so that the output is correct ?

I feel there should be a boost function that solves this problem, however I am not allowed to use boost (nor the standard library std:: functions) in my current project.
Nonetheless, I would also be interested to know both methods using boost or not (even if the solution does not handle pointer or const types).

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You can use C++11's std::is_enum for that purpose. You are right in that boost has the same solution. If you cannot use boost or C++11, you can always look at the implementations for inspiration.

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Indeed I cannot use C++11 neither. Thank you for the link to boost function, its implementation seems to require the inclusion of other boost functions (is_arithmetic, is_reference..). I would be interested to know the "smallest implementation" in term of code volume. – wil Jun 29 '12 at 6:25
    
I just glanced at several of the implementations, this is non-trivial. If you want a portable and mostly complete solution use you'll have to extract it from boost or a std library. – Zac Jun 29 '12 at 6:41
    
For a discussion on the topic see here – Zac Jun 29 '12 at 6:48
    
@wil it is a non-trivial task. If you only want to detect enums you may be able to simplify what is done in boost. I might have a look at that later. – juanchopanza Jun 29 '12 at 8:05

If you can't use C++11 then write:

#include <tr1/type_traits>
#include <iostream>
using namespace std;

int main() {
   cout << tr1::is_enum<int>::value << "\n";
   return 0;
}

The namespace tr1 includes some header files from C++11 which can be used in pre standard C++.

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Ufortunately I cannot include <tr1/type_traits> in my project. I think the C++ dialect it uses might be ISO/IEC 14882:1998. – wil Jul 3 '12 at 8:17

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