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I need to do something similar to the task described in this question:
Construct tree with pre-order traversal given

There is a really helpful answer here, but I don't understand the pseudocode fully, so I was wondering if someone could help describe to me what is going on.

k = 0 // Initialize
input = ... get preorder traversal vector from user ... // Get input
Reconstruct(T) // Reconstruct method with tree input
  if input[k] == N // If element of input is N
    T = new node with label N // Make a new node with label N in tree T
    k = k + 1  // Increment k for next loop (Is this whole thing a loop? or a method call?)
    Reconstruct(T.left) // ?????
    Reconstruct(T.right) // ?????
 else // If element of input is L
    T = new node with label L // Make a new node with label L in tree T
    T.left = T.right = null // ?????
    k = k + 1 // Increment k for next loop

I have written my understanding of things in the comments and I'd really appreciate it if someone could check that my understanding is correct, and what the question mark bits are doing. Also, is this pseudocode making a new tree by running through the input and backtracking whenever an L is encountered in the input? Or is it reconstructing an existing binary tree?

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1 Answer 1

up vote 2 down vote accepted

There is no loop. k is a globally-scoped variable which can be accessed within Reconstruct(T). It is simply the current index of the character-array (the input string).

As explained in the question you referenced (Contsruct Tree with Pre-Order Traversal), The proper algorithm is to do the left-child of a node, then the right-child Which is what you see in the true section of the if. If the current node happens to be a leaf, L, then do not give it children and return to the calling function.

What this function does is follows the left edge of the tree, adding children to all N nodes and not adding children to all L nodes (aka leaves) until the string finishes.

Edit: When the author of the pseudocode says T.left = T.right = null, it means that at this point, the current node has no left or right child (because it is a leaf). This is just an assertion and does not necessarily need to be in the code.

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Thank you for the answer. So are Reconstruct(T.left) and Reconstruct(T.right) calling the method again? Or are they just written in the pseudocode to mean that I should replace those with code that would make the left-child of a node and then the right child? –  Jigglypuff May 4 '11 at 23:15
    
@Jigglypuff Those calls are indeed calls to the same function. This algorithm is recursive. Those lines should be coded just like they are in implementation. –  Puddingfox May 4 '11 at 23:49
    
Thank you. I really appreciate your help. –  Jigglypuff May 5 '11 at 3:21

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