leetcode 144 145 94
2020-08-17 本文已影响0人
就是果味熊
二叉树遍历
前序遍历
非递归
class Solution:
def preorderTraversal(self, root: TreeNode) -> List[int]:
res = []
stack = []
if not root:
return res
stack.append(root)
while stack:
item = stack.pop()
res.append(item.val)
if item.right:
stack.append(item.right)
if item.left:
stack.append(item.left)
return res
递归
class Solution:
def postorderTraversal(self, root: TreeNode) -> List[int]:
res = []
def dfs(root):
if not root:
return
res.append(root.val)
dfs(root.left)
dfs(root.right)
dfs(root)
return res
中序遍历
非递归
class Solution:
def inorderTraversal(self, root: TreeNode) -> List[int]:
res = []
stack = []
while stack or root:
while root:
stack.append(root)
root = root.left
root = stack.pop()
res.append(root.val)
root = root.right
return res
递归
class Solution:
def postorderTraversal(self, root: TreeNode) -> List[int]:
res = []
def dfs(root):
if not root:
return
dfs(root.left)
res.append(root.val)
dfs(root.right)
dfs(root)
return res
后序遍历
非递归
class Solution:
def postorderTraversal(self, root: TreeNode) -> List[int]:
res = []
stack = []
if not root: return res
stack.append(root)
while stack:
item = stack.pop()
res.append(item.val)
if item.left:
stack.append(item.left)
if item.right:
stack.append(item.right)
return reversed(res)
递归
class Solution:
def postorderTraversal(self, root: TreeNode) -> List[int]:
res = []
def dfs(root):
if not root:
return
dfs(root.left)
dfs(root.right)
res.append(root.val)
dfs(root)
return res
