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I am creating a small 'generic' pathfinding class which takes a class type of Board on which it will be finding paths,

//T - Board class type
template<class T>
class PathFinder
{...}

Whereas Board is also templated to hold the node type. (so that i can find paths on 2D or 3D vector spaces).

I would like to be able to declare and define a member function for PathFinder that will take parameters like so

//T - Board class type
PathFinder<T>::getPath( nodeType from, nodeType to);

How can I perform the type compatibility for the node type of T and nodeType that is fed into the function as parameter ?

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nodeType and T are the same? –  Denis Ermolin Nov 20 '12 at 14:36

2 Answers 2

up vote 6 down vote accepted

If I understand what you want, give board a type member and use that:

template<class nodeType>
class board {
  public:
    typedef nodeType node_type;
  // ...
};

PathFinder<T>::getPath(typename T::node_type from, typename T::node_type to);

You can also pattern match it if you can't change board:

template<class Board>
struct get_node_type;
template<class T>
struct get_node_type<board<T> > {
  typedef T type;
};

PathFinder<T>::getPath(typename get_node_type<T>::type from, typename get_node_type<T>::type to);
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what is this for? template<class Board> struct get_node_type; –  Karthik T Nov 20 '12 at 14:45
    
@KarthikT You can't partially specialize without that. –  Pubby Nov 20 '12 at 14:47

You can typedef nodeType inside class definition:

typedef typename T::nodeType TNode;
PathFinder<T>::getPath( TNode from, TNode to);
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