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I came across THIS geeksforgeeks post to find nodes at distance k from the given node in a binary tree.

I am not able to understand it even after spending multiple hours. Specially the part to find the nodes at distance k in ancestors.

Can someone please please help me with a small dry run on the code/algorithm in the geeksforgeeks post? Or any other easy to understand solution without using parent pointer?

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Let's say the depth of target node is D.

  1. If the nodes you want is in the subtree rooted with target node, their depth should be D+k.
  2. After that, you need to find all ancestors of the target node. For each ancestor, if the depth is d, the distance between this ancestor to the target node is D-d. So the final step is to find nodes in the other subtree of this ancestor whose distance is k - (D-d).
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  • Thanks for replying. I know the basic idea but not able to see how this is getting done in code. :(
    – Walt
    Jan 7 '15 at 7:54
  • Which parts of the code? printkdistanceNodeDown(root, k) find all nodes whose distance to "root" is k under the node "root". printkdistanceNode() will check if the target node was found in left subtree (if (dl != -1)), right subtree (if (dr != -1)), or not its child (return -1).
    – iForests
    Jan 7 '15 at 8:23
  • THanks again. I did not get the right subtree part.
    – Walt
    Jan 7 '15 at 9:02
  • It's almost the same as the left subtree. dr is the distance from current node to your target, or -1 if the target is not part of the right subtree. So, you need to find out all nodes in left subtree that the distance is k-dr-2 by this function printkdistanceNodeDown(root->left, k-dr-2);.
    – iForests
    Jan 7 '15 at 9:16
  • I meant to ask when it checks for right subtree. Part where they are saying: // MIRROR OF ABOVE CODE FOR RIGHT SUBTREE // Note that we reach here only when node was not found in left subtree Can we please chat for 5 minutes ?
    – Walt
    Jan 7 '15 at 9:18

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