This question is almost same as the previous one.
I just use a stack (another vector) of vector<int> to store the level result. Then reverse it.
1 /**
2 * Definition for binary tree
3 * struct TreeNode {
4 * int val;
5 * TreeNode *left;
6 * TreeNode *right;
7 * TreeNode(int x) : val(x), left(NULL), right(NULL) {}
8 * };
9 */
10 class Solution {
11 public:
12 vector<vector<int> > levelOrderBottom(TreeNode *root) {
13 vector<vector<int> > result;
14 if (!root) return result;
15 stack<vector<int> > s;
16 queue<TreeNode *> q;
17 vector<int> level;
18 q.push(root);
19 int current = 1, future = 0;
20 while (!q.empty()) {
21 TreeNode *tmp = q.front();
22 q.pop(), current--;
23 if (tmp->left) {
24 q.push(tmp->left);
25 future++;
26 }
27 if (tmp->right) {
28 q.push(tmp->right);
29 future++;
30 }
31 level.push_back(tmp->val);
32 if (!current) {
33 current = future;
34 future = 0;
35 s.push(level);
36 level.clear();
37 }
38 }
39 while (!s.empty()) {
40 result.push_back(s.top());
41 s.pop();
42 }
43 return result;
44 }
45 };
时间: 2024-11-03 21:51:34