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Given the following class

class Foo {
    struct Bar {
        ...
    };
    ...
    std::deque<Bar> m_bar;
};

I want to reuse most of it and add new function for which I need to change the type of m_bar from std::deque to my version of deque. I think to make Foo<T> templated class, where T is the type of deque and inherit from the specification for my version of deque:

class MyFoo : Foo<MyDeque> {
    ...
};

I have two questions:

  1. Is this a good idea?
  2. If so, how would you modify the declaration of class Foo to make this possible?

EDIT: Note that MyDeque does not have the same template parameters as std::deque.

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2 Answers 2

up vote 1 down vote accepted

Why not just make an adaptor for containers that not fit? A bit modified code below:

#include <deque>

template <class T>
struct MyDeque  {
};


template <class T>
struct StdDequeAdaptor: public std::deque<T> {};

template <
  template<class T> class Container >
  class Foo {
        struct Bar {
                int i;
                  };
          Container<Bar> m_bar;
  };

int main () {
      Foo<StdDequeAdaptor> m_bar;
        Foo<MyDeque> m_bar2;
}
share|improve this answer
    
I can't modify MyDeque. –  grigy Mar 26 '12 at 21:31
    
Did you read my answer? It's not about modifying MyDeque. –  peper0 Mar 26 '12 at 21:49
    
Oh I see, got it now. Thanks! –  grigy Mar 26 '12 at 22:06

2) If MyDeque and std::deque have precisely the same template signature, you could pass the template name in as a template parameter of Foo:

#include <deque>

template <class T, class>
struct MyDeque  {
};

template < 
  template<class T, class Alloc = std::allocator<T> > class Container >
class Foo {
  struct Bar {
    int i;
  };
  Container<Bar> m_bar;
};

int main () {
  Foo<std::deque> m_bar;
  Foo<MyDeque> m_bar2;
}

1) It makes perfect sense to do what you ask for. In particular, I like to do it that way so I can specify std::list<>, std::vector<> or other standard containers easily.


If you can't make your template signatures compatible, and if you have C++11 features, you could try this template declaration:

template < template <typename ...> class Container >
class Foo { … };
share|improve this answer
    
Thanks for quick answer, but unfortunately no, they don't. Particularly MyDeque does not take the allocator type, only the data type T. –  grigy Mar 26 '12 at 20:44
    
I figured as much. That's why I added the unused dummy parameter to MyDeque. –  Robᵩ Mar 26 '12 at 20:51
    
@grigy - If you have C++11, try the template declaration in my edit. –  Robᵩ Mar 27 '12 at 0:42
    
Unfortunately. But your solution combined with the adapter idea from paper0's answer should work. I didn't have chance to try yet. –  grigy Mar 27 '12 at 1:49

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