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I have two template classes FibonacciHeap and Adapter. Both of them have the same interface.

template< typename PRIO, typename VALUE, typename CMP = std::less<PRIO> >
class FibonacciHeap;

template<typename PRIO,typename VALUE >
class BinaryHeap;

I have another function dijkstra. It can use either BinaryHeap<double,int> or FibonacciHeap<double,int> as its priority queue. I want to pass the type of priority queue as argument.

How can I do that? I know writing an abstract class is an option, but I don't really want to do that. I am looking for other options.

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1  
Can you make dijkstra to be templated function? –  marcinj Apr 2 '14 at 8:42
1  
Make dijkstra a function template. –  Kerrek SB Apr 2 '14 at 8:43

2 Answers 2

up vote 2 down vote accepted

The previous answer is functionally good, but a bit unusual.

The usual solution avoids the argument:

template <class H> int dijkstra()
{
    H heap;
}

You call the function passing the intended heap type.

int dist0 = dijkstra<FibonacciHeap<double,int>>();
int dist1 = dijkstra<BinaryHeap<double,int>>();

As an alternative, use a template template parameter:

template <template H<class, class>> int dijkstra()
{
    H<double, int> heap;
}
int dist0 = dijkstra<FibonacciHeap>();
int dist1 = dijkstra<BinaryHeap>();
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Make dijkstra a templated function.

template <class H>
int dijkstra(H heap)
{
  // just use heap
}

You can call this function like that:

FibonacciHeap<double,int> heapFibo;
BinaryHeap<double,int> heapBina;

int dist0 = dijkstra(heapFibo);
int dist1 = dijkstra(heapBina);

The template magic is done by the compiler.

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Can I pass FibonacciHeap<double,int> or BinaryHeap<double,int> objects to dijkstra? I'm not very thorough with templates. –  user3349665 Apr 2 '14 at 8:48
    
I also want to use BinaryHeap<double,int>::item in dijkstra. Will H::item work? –  user3349665 Apr 2 '14 at 8:55
2  
you might have to use typename there, is BinaryHeap<double,int>::item a type? –  sp2danny Apr 2 '14 at 8:57
1  
@user3349665 Yes, if both heaps have an ::item. Otherwise the compiler will complain. –  usr1234567 Apr 2 '14 at 8:57
1  
Then item is a dependent name, and you need a typename. Otherwise the compiler won't know that H::item is a type until it sees H==BinaryHeap, and that's too late. –  MSalters Apr 2 '14 at 8:59

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