173. Binary Search Tree Iterator (solution 2)
package LeetCode_173 import java.util.* /** * 173. Binary Search Tree Iterator * https://leetcode.com/problems/binary-search-tree-iterator/description/ * * Implement an iterator over a binary search tree (BST). * Your iterator will be initialized with the root node of a BST. Calling next() will return the next smallest number in the BST. Note: next() and hasNext() should run in average O(1) time and uses O(h) memory, where h is the height of the tree. You may assume that next() call will always be valid, that is, there will be at least a next smallest number in the BST when next() is called. * */ class TreeNode(var `val`: Int) { var left: TreeNode? = null var right: TreeNode? = null } /* * solution 1: in-order + ArrayList, But need O(n) space * solution 2: Stack, O(1) time and O(h) space in next() and hasNext() * */ class BSTIterator(root: TreeNode?) { val stack = Stack<TreeNode>() init { setNext(root) } /** @return the next smallest number */ fun next(): Int { val node = stack.pop() //set next for right node setNext(node.right) return node.`val` } /** @return whether we have a next smallest number */ fun hasNext(): Boolean { return stack.isNotEmpty() } private fun setNext(root_: TreeNode?) { //push the left node in stack, because left node in BST is always small //stack: first in last out var root = root_ while (root != null) { stack.push(root) root = root.left } } } /** * Your BSTIterator object will be instantiated and called as such: * var obj = BSTIterator(root) * var param_1 = obj.next() * var param_2 = obj.hasNext() */