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I have an assignment question that ask to implement the interface method isHamiltonian, I tried to solve the problem by using recursion.

The idea is simply try all paths from a node, if there is a path that satisfy the conditions

  • travel all the nodes only once
  • the last node is directly connected to the first node

I will say it is Hamiltonian.

I have tried these code, but it does not work

public static boolean isHamiltonian(Graph g) throws InvalidGraphException {
    if (g == null || !(g instanceof GraphI) || ((GraphI) g).getDirected()) {
        throw new InvalidGraphException();
    }

    NodeI[] nodes = (NodeI[]) g.nodes();
    if (nodes.length < 3)
        return false;

    return isHamiltonian(nodes[0], nodes[0], new HashSet<NodeI>());
}

private static boolean isHamiltonian(NodeI start, NodeI n, HashSet<NodeI> hs) {
    hs.add(n);
    NodeI[] nodes = n.getReachableNeighbours();
    boolean connectedWithStart = false;
    for (int i = 0; i < nodes.length; i++) {
        if (nodes[i].compareTo(start) == 0) {
            connectedWithStart = true;
            break;
        }
    }
    if (hs.size() == n.getGraph().nodes().length && connectedWithStart) {
        return true;
    }
    for (int i = 0; i < nodes.length; i++) {
        if (!hs.contains(nodes[i]))
            isHamiltonian(start, nodes[i], hs);
    }

    return false;
}
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does not work is a very general thing to say. What is not working? –  Ivaylo Strandjev Feb 12 '13 at 10:17

1 Answer 1

up vote 1 down vote accepted

It looks to me that your backtracking is the problem. You greedily add nodes to your hs to build your path but you don't remove them when you fail to make a cycle/don't have any way to go.

The first thing I would do is put hs.remove(n) before the final return false.Then I would also save the result of isHamiltonian(start,nodes[i],hs) and exit when it's true. Something like this

boolean result = isHamiltonian(start,nodes[i],hs);
if(result)return true;`

That should fix up a lot. I do think that this exhaustive search will be quite slow.

EDIT: the whole thing should look like this:

private static boolean isHamiltonian(NodeI start, NodeI n, HashSet<NodeI> hs) {
    hs.add(n);
    NodeI[] nodes = n.getReachableNeighbours();
    boolean connectedWithStart = false;
    for (int i = 0; i < nodes.length; i++) {
        if (nodes[i].compareTo(start) == 0) {
            connectedWithStart = true;
            break;
        }
    }
    if (hs.size() == n.getGraph().nodes().length && connectedWithStart) {
        return true;
    }
    for (int i = 0; i < nodes.length; i++) {
        if (!hs.contains(nodes[i])){
            boolean result=isHamiltonian(start, nodes[i], hs);
            if(result)return true;
        }
    }
    hs.remove(n);
    return false;
}

The problem itself is NP-hard so don't expect fast solutions for general graphs. Read up on some basic algorithms and decide if it's worth the time to implement for your application.

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