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I have following scenario:

class my_base { ... }

class my_derived : public my_base { ... };


template<typename X>
struct my_traits.

I want to specialize my_traits all classes derived from my_base including: i.e.

template<typname Y> // Y is derived form my_base.
stryct my_traits { ... };

I have no problems to add any tags, members to my_base to make it simpler. I've seen some trick but I still feel lost.

How can this be done is simple and short way?

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Duplicate of stackoverflow.com/questions/281725/…, if that's good enough. –  Beta Jun 3 '10 at 18:06
    
@Beta, isn't there simpler way? As I can arbitrary change my_base so maybe it can be done without IsBaseOf? –  Artyom Jun 3 '10 at 18:12

1 Answer 1

up vote 1 down vote accepted

Well, you don't need to write your own isbaseof. You can use boost's or c++0x's.

#include <boost/utility/enable_if.hpp>

struct base {};
struct derived : base {};

template < typename T, typename Enable = void >
struct traits;

template < typename T >
struct traits< T, typename boost::enable_if<std::is_base_of<base, T>>::type >
{
  enum { value = 5 };
};

#include <iostream>
int main()
{
  std::cout << traits<derived>::value << std::endl;

  std::cin.get();
}

There are scaling issues but I don't believe they're any better or worse than the alternative in the other question.

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Thanks... It looks there is nothing simpler around, but these is at least is done with one line (and few headers) –  Artyom Jun 3 '10 at 18:23

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