-1

Previously There are some posts to solve this problem but they are providing solution for the First Next Greater Element to the right rather than the Next Greater Element to the right .

Suppose the input array is [4, 15, 2, 9, 20, 11, 13 ,16 ,3]

The Next Greater Element to the right output is

4 -> 9 ,
15 -> 16 ,
2->3 ,
9->11 ,
20->-1 ,
11->13 ,
13->16 ,
16->-1 ,
3->-1 ,

The First Next Greater Element Output is like

4->15 ,
15->20 ,
2->9 ,
9->20 ,
20->-1
11->13
13-> 16
16-> -1
3-> -1

I hope you guys have understood the difference.

Almost all online sources[Up to my knowledge] have provided solution for the second case.

I want the solution [ Algorithm ] for the First case in optimistic manner [ < O(n^2) ]

Any type of data structure is fine for me.

Thanks in Advance.

2
  • if the input case contains [12, 11,13] , Sorting will lead to [11,12,13 ] . So the answer is 12 but it is actually 13 [The next greater element to the right]
    – sai
    Dec 17 '15 at 12:54
  • Right, sorting wont solve the problem. My bad.
    – Haris
    Dec 17 '15 at 13:03
3

This is called the surpasser problem. It can be solved by putting the items in revese order (i.e. from last to first) into a self-balancing BST. After you insert a node into the tree, you can find its next greater element by looking at the smallest element in the subtree of its right child, or (if it doesn't have a right child), the next greater element is the first ancestor that the node belongs to its left subtree (the first ancestor greater than the inserted node).

Complexity: O(n log n)

There is an alternative solution using am algorithm similar to merge sort.

see here

1
  • Great Idea...!! Thanks :)
    – sai
    Dec 17 '15 at 15:45

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