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.
思路:BST的中序遍历就是一个升序,满足题目的迭代要求。考虑到要O(h)的空间复杂度,用栈可以保存当前最小node的父节点,每次最小值在栈顶,O(1)的时间复杂度。
public class BSTIterator {
Stack<TreeNode> stack = new Stack<>();
public BSTIterator(TreeNode root) {
while (root != null) {
stack.push(root);
root = root.left;
}
}
/** @return whether we have a next smallest number */
public boolean hasNext() {
return !stack.isEmpty();
}
/** @return the next smallest number */
public int next() {
TreeNode node = stack.pop();
TreeNode dummy = node.right;
while (dummy != null) {
stack.push(dummy);
dummy = dummy.left;
}
return node.val;
}
}