Given a binary tree, imagine yourself standing on the right side of it, return the values of the nodes you can see ordered from top to bottom.
Example:
Input: [1,2,3,null,5,null,4] Output: [1, 3, 4] Explanation: 1 <--- / 2 3 <--- \ 5 4 <---
M1: BFS
level order traverse,,每次遍历完一层后,只把这一层最右的数字加入res中
time: O(n), space: O(N) -- N: most number of nodes in one level
/**
* Definition for a binary tree node.
* public class TreeNode {
* int val;
* TreeNode left;
* TreeNode right;
* TreeNode(int x) { val = x; }
* }
*/
class Solution {
public List<Integer> rightSideView(TreeNode root) {
List<Integer> res = new ArrayList<>();
if(root == null) {
return res;
}
Queue<TreeNode> q = new LinkedList<>();
q.offer(root);
while(!q.isEmpty()) {
List<Integer> tmp = new ArrayList<>();
int size = q.size();
for(int i = 0; i < size; i++) {
TreeNode t = q.poll();
tmp.add(t.val);
if(t.left != null) {
q.offer(t.left);
}
if(t.right != null) {
q.offer(t.right);
}
}
res.add(tmp.get(tmp.size() - 1));
}
return res;
}
}
M2: DFS
time: O(n), space: O(n)
/**
* Definition for a binary tree node.
* public class TreeNode {
* int val;
* TreeNode left;
* TreeNode right;
* TreeNode(int x) { val = x; }
* }
*/
class Solution {
public List<Integer> rightSideView(TreeNode root) {
List<Integer> res = new ArrayList<>();
if(root == null) {
return res;
}
dfs(root, 0, res);
return res;
}
public void dfs(TreeNode node, int curLevel, List<Integer> list) {
if(node == null) {
return;
}
if(curLevel == list.size()) {
list.add(node.val);
}
dfs(node.right, curLevel + 1, list);
dfs(node.left, curLevel + 1, list);
}
}
原文地址:https://www.cnblogs.com/fatttcat/p/10201742.html
时间: 2024-10-10 05:09:20