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I have a C++ templated class

// Definition
template <typename T>
class MyCLass {
  typedef typename T::S MyS; // <-- This is a dependent type from the template one
  MyS operator()(const MyS& x);

// Implementation
template <typename T>
MyCLass<T>::MyS MyClass<T>::operator()(const MyClass<T>::MyS& x) {...}

What I want is that overloaded operator operator() behaves differently when MyS is double.

I thought about specialization, but how to do in this case considering that the specialization should act on a type-dependent type? Thankyou

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2 Answers 2

up vote 3 down vote accepted

You could forward the work to some private overloaded function:

template <typename T>
class MyCLass {
  typedef typename T::S MyS;
  MyS operator()(const MyS& x) { return operator_impl(x); }

  template<typename U>
  U operator_impl(const U& x);

  double operator_impl(double x);
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Yeah I thought about something like this, but it seems so redoundant approach... –  Andry Sep 17 '13 at 8:40
Overloading is far less redundant than template specializations in my book, YMMV. –  jrok Sep 17 '13 at 8:42
But how about the style of your specialization... you did overload the function... is it another way to get specialization??? Cause I am trying this way but the way I do the compiler gets angry... –  Andry Sep 17 '13 at 9:11
This is the question I created for the problem I mentioned you before:… –  Andry Sep 17 '13 at 9:19
Another way is the one Yuushi showed. You could make the function a template and conditionaly enable overloads with enable_if. –  jrok Sep 17 '13 at 9:20

You can solve this by introducing an extra default parameter:

template <typename T, typename Usual = typename T::S>
class MyClass { ... };

Then you can specialize using a double:

template <typename T>
class MyClass<T, double> { ... }
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