Problem
Given an n-ary tree, return the postorder traversal of its nodes' values.
Nary-Tree input serialization is represented in their level order traversal, each group of children is separated by the null value (See examples).
Follow up:
Recursive solution is trivial, could you do it iteratively?
Example 1:
Input: root = [1,null,3,2,4,null,5,6] Output: [5,6,3,2,4,1]
Example 2:
Input: root = [1,null,2,3,4,5,null,null,6,7,null,8,null,9,10,null,null,11,null,12,null,13,null,null,14] Output: [2,6,14,11,7,3,12,8,4,13,9,10,5,1]
Constraints:
- The height of the n-ary tree is less than or equal to
1000 - The total number of nodes is between
[0, 10^4]
问题
给定一个 N 叉树,返回其节点值的后序遍历。
例如,给定一个 3叉树 :
返回其后序遍历: [5,6,3,2,4,1].
说明: 递归法很简单,你可以使用迭代法完成此题吗?
思路
DFS
Python3 代码
"""
# Definition for a Node.
class Node:
def __init__(self, val=None, children=None):
self.val = val
self.children = children
"""
class Solution:
def postorder(self, root: 'Node') -> List[int]:
# DFS
res = []
def dfs(root):
if not root:
return
for child in root.children:
dfs(child)
res.append(root.val)
dfs(root)
return res BFS
遍历子树的时候加入顺序是类似根右左,因此最后要做一下逆序。
Python3 代码
"""
# Definition for a Node.
class Node:
def __init__(self, val=None, children=None):
self.val = val
self.children = children
"""
class Solution:
def postorder(self, root: 'Node') -> List[int]:
# BFS
if not root:
return []
q = [root]
res = []
while q:
# 弹出列表尾部的一个元素
node = q.pop()
res.append(node.val)
# 顺序加入
for child in node.children:
q.append(child)
return res[::-1] 
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