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I am unsure as to what I need to do to search for a string stored in a binary tree. I have the search method written but I don't quite understand what to pass it. I need to search for the string before adding it to the tree. If it is found, I just need to increase the counter within the node object rather than adding a new one. The tree is unsorted by the way.

My question is how do I search for it before adding it?

System.out.println("Enter string to be stored");
stringValue = k.nextLine();
if (theString.isEmpty() == true) {
    node.add(stringValue, count);
} else {
    // I am not sure what to do here
    // How do I send the string to my search method?
    stringValue.treeSearch();
}

public Node treeSearch(String s, TreeNode root){

    if(root.toString().equals(s)){

        return root;
    }
    if(left != null){

        left.treeSearch(s, root.left);
        if(root.toString().equals(s)){
            return root;
        }
    }
    if(right != null){

        right.treeSearch(s, root.right);
        if(root.toString().equals(s)){
            return root;
        }
    }else{
          return null;
            }
}

I update the search method to this.

 public Node treeSearch(String s, Node root){

 if(root.toString().equals(s)){

    return root;
    }
    if(left != null){

       left.treeSearch(s, root.left);
       return root;
    }
    if(right != null){

      right.treeSearch(s, root.right);
          return root;
    }else{
         return null;
    }
}
share|improve this question
    
You're looking for a String, so pass the method the String you're looking for. Where is your treeSearch() method implemented? – Sotirios Delimanolis Apr 1 '13 at 14:14
    
According to the signature of your treeSearch method you need to pass String to search for and Node object for the root of your tree. – PM 77-1 Apr 1 '13 at 14:22

There is a bug in the the way you search the left and right subtrees. For example:

if (left != null) {
    left.treeSearch(s, root.left);
    if (root.toString().equals(s)) {
        return root;
    }
}

So ... you search the left subtree, but ignore the result of the search and compare s against root ... again.

The same pattern is repeated for the right subtree.

(Since this smells like a "learning exercise", I'll leave you to figure out the fix.)


Having said that, if you don't order the elements of a binary tree, it is pretty much useless as a data structure. You would be better off storing the elements in a list or array. (The complexity of your treeSearch is O(N) ... just like searching a list or array.)

share|improve this answer
    
@user2054868 - Like what? – Stephen C Apr 1 '13 at 15:07
    
I edited the search. – Raymond G Apr 1 '13 at 15:12
    
No. Not right. The searchTree method is supposed to return the node containing the element you found ... And you did a BAD THING by editing the question like that. Now most people won't know what your original question was about. – Stephen C Apr 1 '13 at 15:17
    
So are you saying that it should return the node each time no matter what and that I should do the comparison elsewhere? – Raymond G Apr 1 '13 at 15:25
    
Your comment is unclear. But I'm pretty sure that is not what I am saying. – Stephen C Apr 1 '13 at 15:42

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