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Suppose you already have the basic binary tree procedures isempty(bt), root(bt), left(bt), and right(bt). Write a procedure isLeaf(bt) that returns true if the binary tree bt is a leaf node and false if it is not.

This is what I have:

proc isLeaf(bt)
if (isEmpty(bt))
error('The binary tree is empty.');
elseif (left(bt) < right(bt))
return true;
else return false;

Then write a procedure numLeaves(bt) that returns the number of leaves in the binary tree bt.

This is what I have:

proc numLeaves(bt)
if (isEmpty(bt))
error ('The binary tree is empty.');
elseif (count left(bt) + right(bt));
return (left(bt) + right(bt);

please could you correct?

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1  
what do you think is wrong with it? –  Matt Feb 8 '11 at 11:05
1  
This looks like a homework question. If so, please follow the guidelines for asking homework questions on StackOverflow, as well as Jon Skeet's guidelines on asking the perfect question. Lastly, when asking a question you should always say what you expect to happen and what actually happens. Otherwise, we can only guess at what you want or mean. Right now, my guess is you want your functions to be friendlier. –  outis Feb 8 '11 at 11:10
2  
This doesn't look like Java code - is it pseudocode? Please post the actual code you're having trouble with. –  bdonlan Feb 8 '11 at 11:11
1  
Surely if it's a leaf node then there are no left or right nodes? The isLeft(bt) functionality looks like the sort function you'd use to organize the tree. –  trojanfoe Feb 8 '11 at 11:18
2  
Even for pseudocode proper indentation helps ... –  Paŭlo Ebermann Feb 8 '11 at 11:59

3 Answers 3

You'll learn very little to nothing if you don't try to solve this yourself, but just for people coming here looking for an answer:

boolean isLeaf (BinaryTree bt) {
    return !isempty(bt) && isempty(left(bt)) && isempty(right(bt));
}

int numLeaves (BinaryTree bt) {
    if (isempty(bt))
        return 0;
    else if (isLeaf(bt))
        return 1;
    else
        return numLeaves(left(bt)) + numLeaves(right(bt));
}
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The main idea here is to use recursion:

The number of leaves a node has is the sum of the number of leaves its left child has, and the number of leaves its right child has.

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As @jeffrey greenham said that we can use recursion

int countleaves(struct node* root){

 if(root!=null)
{
countleaves(root->left);
if(root->left==NULL&&root->right==NULL)
{
count++;
}
countleaves(root->right);
}

}
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