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Let's ignore the balancing part of the BST for now.

type 'a bst = 
  | Leaf
  | Node of 'a bst * 'a * 'a bst

A typical insert will look like this:

let rec insert x = function
  | Leaf -> Node (Leaf, x, Leaf)
  | Node (l, k, r) as n ->
    if x = k then n
    else if x < k then Node (insert x l, k, r)
    else Node (l, k, insert x r)

No doubts, the function insert will create new nodes / make a copy of nodes along the search path.

So my question is is there a way to avoid this copying?

This question comes from Exercise 2.3 of the book Purely Functional Data Structures:

Exercise 2.3 Inserting an existing eleemtn into a binary search tree copies the entire search path even though the copied nodes are indistinguishable from the originals. Rewrite insert using exceptions to avoid this copying. Establish only one handler per insertion rather than one handler per iteration.

I actually quite don't follow the exercise.

  1. What does it mean by "using exceptions to avoid this copying"?
  2. Why use "exceptions"?
  3. What means "one handler per insertion"?
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1 Answer 1

up vote 1 down vote accepted

Note that the copying is avoidable only when inserting an element that's already there! It shouldn't be too hard to see how to do this.

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ahh, ok, I thought it can be totally avoided –  Jackson Tale Oct 28 '13 at 17:16
    
wait, r u sure about this? Should I just do a mem test before real insertion? –  Jackson Tale Oct 28 '13 at 17:19
    
If you read the text you copied it says "inserting an existing element into a binary search tree..." (emphasis mine). You can just do mem test, sure. Just a small constant slowdown. You could throw exception from the bottom of the search, pass back extra state, etc. –  Jeffrey Scofield Oct 28 '13 at 17:27
    
lol thanks, I overlooked existing, thanks –  Jackson Tale Oct 28 '13 at 19:05

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