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How can I find the preorder listing of a tree if only the postorder listing is given and vice versa. Also, in the tree, every non-leaf node has two children (i.e. Each node has either two or zero children.)

EDIT: Another given assumption is that the label of each node is unique and has a field that will identify it as an internal node or a leaf. I think that ought to get rid of the ambiguity of a single preorder or postorder being able to uniquely identify a tree.

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3 Answers 3

up vote 7 down vote accepted

Without assuming that nodes in the tree have a field that idenrify themselves as internal or leaf, you can't find a unique answer for your question. That assumption or inorder listing must be available to find a unique tree. In this case, to find one possible answer, you can construct a tree of the form shown below to match any given postorder listing: (suppose postorder listing is: 1 2 3 4 5 6 7 8 9)

9[7[5[3[1,2],4],6],8]

Now you can make preorder listing using this tree.

Assuming nodes in the tree have a field that identify themselves as internal or leaf, we can make a unique tree out of a postorder listing for this kind of trees with this algorithm:

  1. Sweep from the beginning of the postorder list and find the first internal node. This node will have exactly two leaf children which precede this node in postorder listing.
  2. In your tree structure add that internal node and make two preceding nodes in the listing its children.
  3. Remove those two children from listing and make that internal node a leaf.
  4. Go to step 1 and repeat until listing becomes empty.
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That would be correct for a regular binary tree. But I am looking at a binary tree in which each node has 0 or 2 children. I think that makes the preorder and postorder listings unique. –  Jaelebi Aug 2 '09 at 21:46
    
No, that would not make it unique. Consider this example: 5[1,4[2,3]] and 5[3[1,2],4]. Preorder traversal of both trees results in 1 2 3 4 5. –  Mohammad Alinia Aug 2 '09 at 21:58
    
What if the node had a field that was able to identify itself a leaf or an internal node? –  Jaelebi Aug 2 '09 at 22:12
    
That would make it unique. I'm posting an answer for it. –  Mohammad Alinia Aug 3 '09 at 8:02

Consider the recursive structure of a preorder traversal:

T(r) = [r, T(r->left), T(r->right)]
where T(r) is the preorder traversal of tree rooted at node r

Then we know that the root of a tree described by T(r) is always the first node in the traversal.

Knowing this, and knowing that a root is always higher in a tree than its subtrees, think about how you would use this information to rebuild the tree. Think recursively.

Caveat: this can only be done if this is a binary search tree, which constrains nodes such that left-child < root < right-child. In general, trees cannot be reconstructed from a single traversal. See this excellent resource for a more detailed explanation.

Ambiguity still exists regardless of the rule about 0 or 2 children:

    4
   / \
  2   5
 / \ / \
 1 3 6 7

    4
   / \
  2   7
 / \
1   3
   / \
  5   6

Both have the preorder traversal [4 2 1 3 5 6 7]

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The trees in the example have nodes that have only 1 child. The trees that I am interested in have nodes with either 0 children, or 2 children. No node is allowed to have only 1 child. So the problem of ambiguity should not exist here. –  Jaelebi Aug 2 '09 at 21:56
    
I've edited my answer to show a counterexample proving that ambiguity still exists. –  alanlcode Aug 2 '09 at 22:04
    
You should print out the postorder traversal for both trees to prove ambiguity, since only traversals are compared. –  Kenan E. K. Aug 2 '09 at 22:10
    
What if every node had a field that was able to identify itself a leaf or an internal node? –  Jaelebi Aug 2 '09 at 22:31
    
@Jaelebi - yes, that would work then. Interesting aside, you can reconstruct the tree if you had both pre and post-order traversal --as I recall. –  nlucaroni Aug 3 '09 at 13:37

For example: you are required to convert postorder form to preorder form.this can be done in the following way. post order: DEBFCA preorder: ABDECF we see that A is the root. and from preorder we can determine that the node B is left to A.therefore we create two subclasses that are (BED) (CF).now when we traverse B we take it as a root and we see that after B, D IS PRESENT ,it means D is left to B and E is right to B .now we traverse C.take it as a root.then F is present after C so it is taken as left.

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