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I have written the below code for recursively searching binary tree . Even though my system.out statement is getting executed , the return statement is not returning out of entire recursion and thus this method not returning true.

Can anyone suggest how can I return out of entire recursion.?

public static boolean isElementinTree(int num, BinaryTreeNode root) 
{
    if (root != null)
    {
        int rootVal = root.getData();
        BinaryTreeNode left = root.getLeft();
        BinaryTreeNode right = root.getRight();
        if (left != null)
        {
            isElementinTree(num,left);

        }
        if (right != null)
        {
            isElementinTree(num,right);
        }
        if (num == rootVal)
        {
            System.out.println("------ MATCH -----");               
            return true;
        }           
    }   
    return false;
}
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1  
I think you should first check if the data in the node matches and only if it doesn't, you should move to the left or to the right subtree. –  Radu Murzea Aug 7 '12 at 13:52

4 Answers 4

up vote 8 down vote accepted

This is the problem:

if (left != null)
{
    isElementinTree(num,left);

}
if (right != null)
{
    isElementinTree(num,right);
}

You're calling the method in those cases - but ignoring the result. I suspect you just want to change each of those to return immediately if it's found:

if (left != null && isElementinTree(num, left))
{
    return true;
}
if (right != null && isElementinTree(num, right))
{
    return true;
}

Or to make the whole thing more declarative, you can do it more simply:

public static boolean isElementinTree(int num, BinaryTreeNode root) 
{
    return root != null && (root.getData() == num ||
                            isElementInTree(num, root.getLeft()) ||
                            isElementInTree(num, root.getRight()));
}

It's fine to call isElementInTree with a null second argument, as you're already protecting against that with the first part.

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that would never return true for elements in the right half of the tree –  Claudiu Aug 7 '12 at 13:52
    
That would only search the first branch, or am I missing something? –  pcalcao Aug 7 '12 at 13:52
    
Was fixing - check now :) –  Jon Skeet Aug 7 '12 at 13:54
    
Yep, that'll do the trick. –  pcalcao Aug 7 '12 at 13:55
1  
I'd say the three line version is more readable as it captures the essence of the algorithm precisely - the value you are looking for is in the tree if it matches the root node, or is in the left subtree, or is in the right subtree. –  Ian Roberts Aug 7 '12 at 14:01

You need to check if the value is in one of the branches, and save that result.

Initialize a variable boolean found = false;.

When you do the recursive call, you need to do something like:

found = isElementinTree(num,left)

same thing for the right side.

At the end, instead of returning false, check if the value was found on a branch, simply return found;

Also, first check if the number you are looking for isn't on the Node itself, instead of searching each branch first. Simply switch the order of the if's.

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If you do find the element you're looking for in the left or right subtrees you need to return this fact back up to the caller:

    if (left != null)
    {
        if(isElementinTree(num,left)) return true;
    }
    if (right != null)
    {
        if(isElementinTree(num,right)) return true;
    }

Only if you find it in none of the left tree, right tree and current node do you eventually fall through to the final return false.

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Recursion solution:

boolean isElementinTree (int num, BinaryTreeNode root)
{
  if(root == null)
   return false;

  if(root.value == num)
   return true;

  boolean n1 = isElementinTree(num,root.getLeft());
  boolean n2 = isElementinTree(num,root.getRight());

  return n1 ? n1 : n2;

}
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