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When I've got a template with certain type parameters, is it allowed for a function to return an object of this same template, but with different types? In other words, is the following allowed?

template<class edgeDecor, class vertexDecor, bool dir>
Graph<edgeDecor,int,dir> Graph<edgeDecor,vertexDecor,dir>::Dijkstra(vertex s, bool 
print = false) const
{
    /* Construct new Graph with apropriate decorators */
    Graph<edgeDecor,int,dir> span = new Graph<edgeDecor,int,dir>();    

    /* ... */

    return span;
};

If this is not allowed, how can I accomplish the same kind of thing?

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3  
Why? If you're going to force everything else to be an int, why not just ditch the middle template parameter and finish it off? – GManNickG Mar 23 '10 at 6:39
    
Did you try and see? – Potatoswatter Mar 23 '10 at 7:01
    
@potatoswatter: It compiles just fine, I haven't gotten to a point yet where I can run the whole thing. @gman: It is only with this one function that I want it to be int, in the rest of the Graph it may be anything else. Or am I misunderstanding you? – Niel de Wet Mar 23 '10 at 7:06
up vote 2 down vote accepted

Allowed. Some corrections to your code sample:

template<class edgeDecor, class vertexDecor, bool dir>
Graph<edgeDecor,int,dir> *Graph<edgeDecor,vertexDecor,dir>::Dijkstra(vertex s, bool 
print = false) const
{
    /* Construct new Graph with apropriate decorators */
    Graph<edgeDecor,int,dir> *span = new Graph<edgeDecor,int,dir>();    

    /* ... */

    return span;
};
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@agnel-kurian Is it not OK to return-by-value a copy of the Graph? Or is it that I must always use a pointer with the new keyword? – Niel de Wet Mar 23 '10 at 6:59
    
You must use a pointer with the new keyword. Returning a copy is fine. – Agnel Kurian Mar 23 '10 at 7:09
    
@agnel Returning a local pointer is a bad idea. I think better is still return a copy, but create new graph like that: Graph<edgeDecor,int,dir> span = Graph<edgeDecor,int,dir>::Graph<edgeDecor,int,dir>(); – Draco Ater Mar 23 '10 at 7:09
    
@agnel-kurian: So if I use new, I HAVE TO do it the way you are suggesting? – Niel de Wet Mar 23 '10 at 7:27
    
@draco-ater: Would that be equivalent to saying Graph<edgeDecor,int,dir>::Graph<edgeDecor,int,dir> span(); ? Or even just saying Graph<edgeDecor,int,dir>::Graph<edgeDecor,int,dir> span; ? – Niel de Wet Mar 23 '10 at 7:29

Its certainly possible. To me the above code appears valid

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In fact, you can return whatever you want. You can even return something that depends on the template parameters:

namespace result_of
{
  template <class T>
  struct method { typedef T type; };

  template <class T>
  struct method<T&> { typedef T type; }

  template <class T>
  struct method<T*> { typedef T type; }

  template <class T, class A>
  struct method< std::vector<T,A> > { typedef T type; }
}

template <class T>
typename result_of::method<T>::type method(const T&) { /** **/ };
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