LeetCode | 面试题06. 从尾到头打印链表【剑指Offer】【Python】
LeetCode 面试题06. 从尾到头打印链表【剑指Offer】【Easy】【Python】【链表】
问题
输入一个链表的头节点,从尾到头反过来返回每个节点的值(用数组返回)。
示例 1:
输入:head = [1,3,2] 输出:[2,3,1]
限制:
0 <= 链表长度 <= 10000
思路
解法一
reverse函数
时间复杂度: O(n),n为 head 链表长度。
空间复杂度: O(n),n为 head 链表长度。
Python3代码
# Definition for singly-linked list. # class ListNode: # def __init__(self, x): # self.val = x # self.next = None class Solution: def reversePrint(self, head: ListNode) -> List[int]: # solution one: reverse res = [] while head: res.append(head.val) head = head.next res.reverse() return res
解法二
栈
时间复杂度: O(n),n为 head 链表长度。
空间复杂度: O(n),n为 head 链表长度。
Python3代码
# Definition for singly-linked list. # class ListNode: # def __init__(self, x): # self.val = x # self.next = None class Solution: def reversePrint(self, head: ListNode) -> List[int]: # solution two: 栈 stack = [] while head: # push stack.append(head.val) head = head.next res = [] while stack: # pop res.append(stack.pop()) return res
解法三
递归
Python3代码
# Definition for singly-linked list. # class ListNode: # def __init__(self, x): # self.val = x # self.next = None class Solution: def reversePrint(self, head: ListNode) -> List[int]: # solution three: 递归 return self.reversePrint(head.next) + [head.val] if head else []
代码地址
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