题目:从上往下打印二叉树
从上往下打印出二叉树的每个节点,同层节点从左至右打印。
思路:即层次遍历。使用列表res来存储遍历结点的值。再使用两个栈来存储当前层次的结点,以及下一层次的结点。
我写的略复杂了,可以更简洁。
# -*- coding:utf-8 -*-
# class TreeNode:
# def __init__(self, x):
# self.val = x
# self.left = None
# self.right = None
class Solution:
# 返回从上到下每个节点值列表,例:[1,2,3]
def PrintFromTopToBottom(self, root):
# write code here
if root is None:
return []
pre_level = [root]
res = [root.val]
next_level = []
while True:
while pre_level:
cur_node = pre_level.pop(0)
if cur_node.left:
next_level.append(cur_node.left)
res.append(cur_node.left.val)
if cur_node.right:
next_level.append(cur_node.right)
res.append(cur_node.right.val)
if next_level == []:
break
pre_level = next_level
next_level = []
return res简介版
# -*- coding:utf-8 -*-
# class TreeNode:
# def __init__(self, x):
# self.val = x
# self.left = None
# self.right = None
class Solution:
# 返回从上到下每个节点值列表,例:[1,2,3]
def PrintFromTopToBottom(self, root):
# write code here
if root is None:
return []
res = []
cur_stack = [root]
while cur_stack:
nxt_stack = []
for i in cur_stack:
if i.left:
nxt_stack.append(i.left)
if i.right:
nxt_stack.append(i.right)
res.append(i.val)
cur_stack = nxt_stack
return res