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I am trying to write JAVA code which returns path of all nodes which have same label.

In the image specified in link. I should get following o/p for label C

A->B

A

as output.

I know all possible label's. Say labels can range from A to J.

Tree's Node class is :

class Node{
 String label;
 int count;
 List<Node> children;

 public int hashCode() {
    return label.hashCode();
 }

 public boolean equals(Object obj) {
    Node other = (Node)obj;
    return other.label.equals(label);
 }
}

I am trying something like

for(each label)
 start from root
 search for all possible label location
    print path for each label location

But not able to understand how to write the code. Please help.

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1 Answer 1

up vote 0 down vote accepted

Try this:

public List<List<String>> findPaths(String label) {
    List<List<String>> result = new ArrayList<List<String>>();

    if (label.equals(this.label)) {
        result.add(new ArrayList<String>());
    }

    for (Node child : children) {
        for (List<String> subResult : child.findPaths(label)) {
            // add this.label in front
            List<String> path = new ArrayList<String>();
            path.add(this.label);
            path.addAll(subResult);
            result.add(path);
        }
    }

    return result;
}

Each path will be encoded as a ArrayList of String labels. I'm assuming that each leaf has an empty list of children. If children == null in leafs, you need to check for that, or the loop over all children will raise a NullPointerException.

Now, given some list of labels labels and a root node root:

for (String label : labels) {
    List<List<String>> paths = root.findPaths(label);
    for (List<String> path : paths) {
        printPath(path);
    }
}

I trust you can make your own function printPath(List<String> path) to print the actual path...

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Thanks a lot. Code worked fine for me. I wrote simplest printPath function private void printPath(List<String> path) { for(int i=0;i<path.size();i++) System.out.println(path.get(i)); } –  Nitish Varshney Mar 20 '13 at 6:08

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