Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Related question: Time Complexity of InOrder Tree Traversal of Binary Tree O(N)?, however it is based on a traversal via recursion (so in O(log N) space) while iterators allow a consumption of only O(1) space.

In C++, there normally is a requirement that incrementing an iterator of a standard container be a O(1) operation. With most containers it's trivially proved, however with map and such, it seems a little more difficult.

  • If a map were implemented as a skip-list, then the result would be obvious
  • However they are often implemented as red-black trees (or at least as binary search trees)

So, during an in-order traversal there are moments where the "next" value is not so easily reached. For example should you be pointing at the bottom-right leaf of the left subtree, then the next node to traverse is the root, which is depth steps away.

I have tried "proving" that the algorithmic complexity (in terms of "steps") was amortized O(1), which seems alright. However I don't have the demonstration down yet.

Here is a small diagram I traced for a tree with a depth of 4, the numbers (in the place of the nodes) represent the number of steps to go from that node to the next one during an in-order traversal:

       3
   2       2
 1   1   1   1
1 2 1 3 1 2 1 4

Note: the right-most leaf has a cost of 4 in case this would be a sub-tree of a larger tree.

The sum is 28, for a total number of nodes of 15: thus a cost less than 2 per node, in average, which (if it holds up) would be a nice amortized cost. So:

  • During in-order traversal, is incrementing the iterator really O(1) for a balanced (and full) binary search tree ?
  • May the result be extended to cover non-full binary search trees ?
share|improve this question
    
Not sure I am following, the "next node" of the second leaf from left - why is it 4? the next node after it is its grandparent when doing in-order traversal (so I'd expect only 2), same applies later on to other 4's. Is it a mistake or I am misunderstanding the diagram? :\ –  amit Oct 14 '12 at 13:02
    
Do you mean O(1) memory overall or amortized time to increment the iterator? in-order traversal cannot be O(1) time overall. –  IVlad Oct 14 '12 at 13:04
    
@IVlad: I meant O(1) for incrementing, obviously! The question would be rather silly otherwise, let me correct that ;) –  Matthieu M. Oct 14 '12 at 13:34
    
@amit: good point, for some reason I wanted to get to the right leaf of the other subtree directly... –  Matthieu M. Oct 14 '12 at 13:35
add comment

1 Answer

up vote 5 down vote accepted

Yes, the amortized cost is indeed O(1) per iteration, for a any tree.

The proof is based on the number of times you "visit" each node.
Leaves are visited only once. None leaves are visited at most 3 times:

  1. when going from the parent to the node itself.
  2. when coming back from the left subtree
  3. when coming back from the right subtree

There are no more visits to any nodes, thus if we sum the number of visits of each node, we get a number that is smaller then 3n, so the total number of visits of all nodes combined is O(n), which gives us O(1) per step amortized.

(Note since in a full tree there are n/2 leaves, we are getting the 2n you were encountering, I believe one can show that the sum of visits will be smaller then 2n for any tree, but this "optimization" is out of scope here IMO).


The worst case per step is O(h), which is O(logn) in a balanced tree, but might be O(n) in some cases.


P.S. I have no idea how Red-Black trees are implemented in C++, but if your tree data structure contains a parent field from each node, it can replace the recursive stack and allow O(1) space consumption. (This is of course "cheating" because storing n such fields is O(n) itself).

share|improve this answer
    
Ah, nice idea counting the number of visits rather than trying to infer a recursion from the number of steps per node! That's elegant. Regarding the implementation, yes each node generally have one pointer for the parent and two for the left and right subtrees. I would not consider it cheating though, because this storage cost is independent from the number of traversals going on at any moment, whereas the O(log N) cost of a traversal in the Java example is payed for each traversal. In C++, it's more important to make iterators cheap to copy in general. –  Matthieu M. Oct 14 '12 at 13:33
add comment

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.