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Suppose you have:

template<class T>
class A {
  template<class T1> 
  void foo(const T1& t1) {}

  //
  // Lots of other definitions (all templated)
  // 
};

and you would like to specialize foo(const T1&) but only for a specialized A<bool>. Like this:

template<>
class A<bool> {
  template<class T1> 
  void foo(const T1& t1) {
    // Code for specialized A<boo>::foo
  }

  //
  // Repeating the former definitions, how to avoid this ??
  // 
};

But to get this to work I have to duplicate all the code that is defined in the class template class A and include it again in class A<bool>.

I tried to define only the member specialization:

template<>
void A<bool>::template<class T1> foo(const T1&) {}

Neither does this work:

template <class T1> void A<bool>::foo(const T1&) {}

But the compiler doesn't like it. What's the way to deal with this code duplication?

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Seems you are wrong about the syntax. error: prototype for ‘void A<bool>::foo(const T1&)’ does not match any in class ‘A<bool>’ –  wpunkt Oct 16 '12 at 10:48
    
a good question like that with just my up vote, sad... –  Rodrigo Gurgel Oct 16 '12 at 11:22
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2 Answers

up vote 6 down vote accepted

Syntax? See this answer. Try:

template<>
template<typename T1>
void A<bool>::foo(const T1&){}

You certainly don't need to copy the whole class template.

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Cool! Seems I can never remember the syntax for this –  wpunkt Oct 16 '12 at 10:56
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You could provide a function and a class template, then define a couple of typedefs:

template<class T, class TArg> 
class A 
{   
    void foo(const TArg& arg) {}

    // Lots of other definitions (all templated)
};

typedef A<MyType, MyType> NormalClass;
typedef A<MyType, bool>   BoolClass;
share|improve this answer
    
Thanks, but this is not an option. At instantiation time of A I have no knowledge on what type foo will be used. Sorry –  wpunkt Oct 16 '12 at 10:47
    
You mean you don't know at compile time the type or at runtime? –  Graeme Oct 16 '12 at 10:50
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