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Ok, background to the problem:

I'm writing a little application that looks at the graph and looks at all the paths from any two given points.

Points are A B C D E and the connections on the graph are as follows...

A->B, A->D, A->E

B->C

C->D, C->E

D->C, D->E

E->B

I need to code it so that it looks at all possible paths which are less than a certain length (say 30). The quirky bit of the spec is that it can visit the destination as part of the path, e.g:

Start at C going to C can follow:

CDC, CEBC, CEBCDC, CDCEBC, CDEBC, CEBCEBC, CEBCEBCEBC

Now my code is as follows...

private void findAllPaths(LinkedList path, Junction node, Junction end)
{   
    path.add(node);
    if(node == end && path.size() > 1)
    {
        System.out.println(path);
    }
    else
    {
        for(Road r : node.getAdjacencies())
        {
            if(path.size() < 30) findAllPaths(path, r.getTarget(), end);
        }
    }
}

And this gives me the paths: [C, D, C] [C, D, C, E, B, C] [C, D, C, E, B, C, E, B, C]

My problem is that the recursion doesnt seem to happen in the way that i expect. It only ever follows the first adjaceny for each node and never recurses back to try the others.

If anyone can see where im going ridiculously wrong or see my problem please post! All help would be greatly appreciated...

Cheers,

Djoodle

share|improve this question
    
I wouldn't use a for loop with recursion. I personally would go in a single path and go back one step, not trying to get all paths for a single node. – m0skit0 Feb 28 '12 at 13:33
    
Look into implementing Dijkstra's Algorithm and then run it once with each of your two starting nodes. It might be simpler than what you're trying to do. – Marvin Pinto Feb 28 '12 at 13:35
up vote 2 down vote accepted

You're not removing the node again after you have tried it:

private void findAllPaths(LinkedList path, Junction node, Junction end)
{   
    path.add(node);
    // etc...
    path.removeLast();
}
share|improve this answer
    
haha! I knew it was something silly... Thankyou my friend, much apreciated! – DJOodle Feb 28 '12 at 13:49
    
@DJOodle Consider accepting this answer if it's solved your problem. – Hedja Feb 28 '12 at 13:54

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