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I'm searching now a while for a method, which gave me all path of a given tree. Imagine the following Tree:

A
  B
  C
    D
      E
    F
  G

Now I want to get all path as separate String:

  • AB
  • ACDE
  • ACF
  • AG

---------------Update-----------------

As already mention in the comments, I'm looking for all treepaths rather than subtrees. I found the following solution, but I'm unsure if it's gonna be a good one:

  private ArrayList<ArrayList<String>> abstractProperties;

    ........

    getTreePath(abstractHw, new ArrayList<String>());

.......

    private void getTreePath(Node hw, ArrayList<String> path) {
        path.add(hw.getName());
        if (hw.getNodes().isEmpty()) {
            abstractProperties.add(path);
        } else {
               for (Node subHw : hw.Nodes()) {
                getTreePath(subHw, new ArrayList<String>(path));
               }
            }
    }

What do you think?

share|improve this question
    
possible duplicate of Using recursion to generate all substrings of a given string –  Zong Zheng Li Nov 19 '13 at 18:50
    
@ZongZhengLi that's really not a duplicate. ph09: what representation do you have for the tree? –  Cruncher Nov 19 '13 at 18:52
    
No, not a duplicate of that question at all. –  David Wallace Nov 19 '13 at 18:53
    
@Cruncher Yep, not anymore (after hyde's edit). Initially, the "tree" was given as "A B C D E F G". –  Zong Zheng Li Nov 19 '13 at 18:53
    
What exactly do you mean by "subtree"? From your example, it looks like you mean every path from the root to a leaf. If this is what you mean, then this is just the same as traversing through all the leaf nodes (in whichever order makes sense), and outputting the full path to that leaf. If that's not what you intend, please clarify the question. –  David Wallace Nov 19 '13 at 18:54

2 Answers 2

You could use a BFS algorithm (a graph algorithm explained on Wikipedia), starting from the node you want to make root.

The algorithm behaves like this:

procedure BFS(G,v,btree):
      create a queue Q
      enqueue v onto Q
      mark v
      btree = new Tree(v);//Create a tree structure with v as root
      while Q is not empty:
          t ← Q.dequeue()
          btree.add(t) // Here its where you add elements to your tree
          for all edges e in G.incidentEdges(t) do
             o ← G.opposite(t,e)
             if o is not marked:
                  mark o
                  enqueue o onto Q

When Q is empty means you processed all the possible nodes and all of them have been added to your binary tree (btree).

Once you have your btree you can apply any simple algorithm to obtain what you need

share|improve this answer
1  
Personally, if you are not searching for something as shallow as possible, I would use DFS en.wikipedia.org/wiki/Depth-first_search –  Cruncher Nov 19 '13 at 18:57
    
I don't have a binary tree, so I think this doesn't work for me –  ph09 Nov 19 '13 at 20:55
    
btree isn't short for binary tree, though I would prefer Btree. –  MxyL Nov 19 '13 at 21:21

You implementation of the tree (or more accurately the nodes) need to be able to return whether or not they have children.

If you want a more detailed answer show what you have tried and show us how you are storing your tree.

share|improve this answer
    
I provided a code example..Maybe you can tell me what you think of it –  ph09 Nov 19 '13 at 20:56
    
@ph09 is Node your own class or from a java package? –  Dodd10x Nov 19 '13 at 21:02
    
It's my class..just as an example –  ph09 Nov 19 '13 at 21:52

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