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i am just writing down different function, which are operation what can be done on a binary tree. I am wondering what is the running time of this function, trying to get rid with them:

  getMaxDepth(Tree) //What can be the time complexity here? 
    if Tree.root = NIL return 0 // BaseCase
    leftDepth := 1 + getMaxDepth(Tree.root.left)
    rightDepth := 1 + getMaxDepth(Tree.root.right)
    if leftDepth > rightDepth then return leftDepth;
    else return rightDepth;


  internalNodeCount(Node n) // And here?
    if isLeaf(n) then return 0
    return 1 + internalNodeCount(n.left) + internalNodeCount(n.right)

  isLeaf(Node n)
    return n=NIL OR (n.left=NIL AND n.right=nil);

GetMaxDepth i assume the time complexity is O(n) because i need to traverse the whole tree recursively for ever node....what can be a good explanation?

InternalNodeCount i guess it is the same complexity O(n) for the same reason.....

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1 Answer 1

From what I understood it looks like you are looking for some proof.

For getMaxDepth here is the explanation:

T(1) = c1
T(n) = T(k) + T(n-k-1) + c2
where
T(n) = Time to process tree of n nodes 
n = number of nodes
k = nodes in left subtree
n-k-1 = nodes in right subtree
c1, c2 = constants (not dependent upon n) 
(Time to calculate the depth of the tree from given left and right subtree depth)

The same could be applied to internalNode too excepts the contants would be different.

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