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How to count the number of right children in a binary tree?

This means that I only want the children marked as right.

Ex.

(Left | Right)

      F(Root)    
  G   |   H     
T   U |  I  J  

The right children would be U,H,and J.

What would be the algorithm to find these.

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Do you really mean "children" or "proper descendants"? Because if it's the former, it's either going to be 1 or 0. –  polygenelubricants Apr 14 '10 at 4:42

4 Answers 4

up vote 6 down vote accepted
int count(Tree *r){
    if(r == NULL) return 0;
    int num_l=0, num_r=0;
    if(r->left != NULL) 
        num_l = count(r->left);
    if(r->right != NULL) 
        num_r = count(r->right)+1;
    return num_l+num_r
}
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You've not taken care of the the case r == NULL If I pass a NULL to your function it will crash. –  codaddict Apr 14 '10 at 4:52
    
@unicornaddict: good point! –  zsong Apr 14 '10 at 4:56
    
Looks good now :) +1 –  codaddict Apr 14 '10 at 4:57

In recursive approach,

You would be calling a function to traverse your tree, for current node, you need to: check if current node has right child (then increment the counter), and then call the function recursively for right node. check if current node has left child, call the function recursively for left node.

This should work.

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Do a simple traversal on the tree (i.e. post order, in order) and for each node do +1 if it has right child.

Example (didn't try to compile and check it):

int countRightChildren(Node root)
{
   if (root == null) return 0;
   int selfCount =  (root.getRightChild() != null) ? 1 : 0;
   return selfCount + countRightChildren(root.getLeftChild()) + countRightChildren(root.getRightChild());
}
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You can do it recursively as:

  • If tree does not exist, there are no R children.
  • If tree exists, then # R children = # R children in R-subtree + # R children in L-subtree

.

  int countRChildren(Node *root) {
        if(!root)  // tree does not exist.
            return 0;

        // tree exists...now see if R node exits or not.
        if(root->right) // right node exist

            // return 1 + # of R children in L/R subtree.
            return 1 + countRChildren(root->right) + countRChildren(root->left);

        else // right nodes does not exist.
            // total count of R children will come from left subtree.
            return countRChildren(root->left);
    }
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