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I'm working on trying to display the path from the root node of a BST to a target node. The function I have works fine for the first two layers, but then messes up after that. For example, the test numbers are 6, 9, 4, 11, 10(inserted in that order). If I search for 6, 9, or 4, it works (ex: "6 9"). But if I try 11 or 10, it displays them both, and out of order. I'm kind of stumped as to why. Any ideas would be awesome!

template <class T>
void BST<T>::displayPath(T searchKey, BST<T> *node)
{
    if (searchKey == node->mData)
    {
        cout << node->mData << " ";
    }

    else if (searchKey < node->mData )
    {
        cout << node->mData << " ";
        displayPath(searchKey, node->mLeft);
    }
    else// (searchKey > node->mData)
    {
        cout << node->mData << " ";
        displayPath(searchKey, node->mRight);
    }
}

This is the insert function. The numbers are inserted in the order above.

template <class T>
void BST<T>::insert(BST<T> *&node, T data)
{
   // If the tree is empty, make a new node and make it 
   // the root of the tree.
   if (node == NULL)
   { 
      node = new BST<T>(data, NULL, NULL);
      return;
   }

   // If num is already in tree: return.
   if (node->mData == data)
      return;

   // The tree is not empty: insert the new node into the
   // left or right subtree.
   if (data < node->mData)
          insert(node->mLeft, data);
   else
      insert(node->mRight, data);
}
share|improve this question
    
This code looks fine. Any chance your tree is incorrectly constructed? – Alexey Frunze Oct 24 '12 at 7:06
3  
Nothing wrong with the code posted. Probably the error is in the code to build the BST. That is more complex code after all. – john Oct 24 '12 at 7:06
3  
There is a different problem in the code - when you search for a node that is not there, a bogus path will be printed. I assume the problem in here is the tree insertion - I suspect you always insert elements as leaves, and not keeping the tree balanced or something. Remember - there are a LOT of ways to build a BST for a certain set of elements. Thus - the order is not what you expect - but is in fact the actual path of the tree. – amit Oct 24 '12 at 7:08
    
@amit To me BST means Binary Search Tree, not Balanced Search Tree. – john Oct 24 '12 at 7:12
    
Ah, I see now. I was just confused, as you guys said, by the way the tree is laid out, due to a lack of balance. Thanks! – nym_kalahi Oct 24 '12 at 7:14

Your code confirms my suspicion. Your method is fine - this is the tree you built from inserting 6, 9, 4, 11, 10 in this order:

first (6):

 6

second (9)

 6
  \
   9

3rd (4)

  6
 / \
4   9

4th (11):

   6
  / \
 /   \
4     9
       \
        \
         11

5th (10):

   6
  / \
 /   \
4     9
       \
        \
         11
         /
        /
       10

So searching for 10, will give you the path (6,9,11,10).

Note that the path from root to an element in a BST is NOT guaranteed to be sorted - if that was what you expected. In fact, it will be sorted only if the node is on the path to the rightest leaf in the tree.


Another issue in the code: searching for 7 (or any element that does not exist in the tree) will give you some bogus path.

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