这里给出了4种4种常用的单链表翻转的方法,分别是:

开辟辅助数组,新建表头反转,就地反转,递归反转

# -*- coding: utf-8 -*-
'''
链表逆序
'''
class ListNode:
def __init__(self,x):
self.val=x
self.next=None '''
第一种方法:
对于一个长度为n的单链表head,用一个大小为n的数组arr储存从单链表从头
到尾遍历的所有元素,在从arr尾到头读取元素简历一个新的单链表
时间消耗O(n),空间消耗O(n)
'''
def reverse_linkedlist1(head):
if head == None or head.next == None: #边界条件
return head
arr = [] # 空间消耗为n,n为单链表的长度
while head:
arr.append(head.val)
head = head.next
newhead = ListNode(0)
tmp = newhead
for i in arr[::-1]:
tmp.next = ListNode(i)
tmp = tmp.next
return newhead.next '''
开始以单链表的第一个元素为循环变量cur,并设置2个辅助变量tmp,保存数据;
newhead,新的翻转链表的表头。
时间消耗O(n),空间消耗O(1)
''' def reverse_linkedlist2(head):
if head == None or head.next == None: #边界条件
return head
cur = head #循环变量
tmp = None #保存数据的临时变量
newhead = None #新的翻转单链表的表头
while cur:
tmp = cur.next
cur.next = newhead
newhead = cur # 更新 新链表的表头
cur = tmp
return newhead '''
开始以单链表的第二个元素为循环变量,用2个变量循环向后操作,并设置1个辅助变量tmp,保存数据;
时间消耗O(n),空间消耗O(1)
''' def reverse_linkedlist3(head):
if head == None or head.next == None: #边界条件
return head
p1 = head #循环变量1
p2 = head.next #循环变量2
tmp = None #保存数据的临时变量
while p2:
tmp = p2.next
p2.next = p1
p1 = p2
p2 = tmp
head.next = None
return p1 '''
递归操作,先将从第一个点开始翻转转换从下一个节点开始翻转
直至只剩一个节点
时间消耗O(n),空间消耗O(1)
''' def reverse_linkedlist4(head):
if head is None or head.next is None:
return head
else:
newhead=reverse_linkedlist4(head.next)
head.next.next=head
head.next=None
return newhead def create_ll(arr):
pre = ListNode(0)
tmp = pre
for i in arr:
tmp.next = ListNode(i)
tmp = tmp.next
return pre.next def print_ll(head):
tmp = head
while tmp:
print tmp.val
tmp=tmp.next a = create_ll(range(5))
print_ll(a) # 0 1 2 3 4
a = reverse_linkedlist1(a)
print_ll(a) # 4 3 2 1 0
a = reverse_linkedlist2(a)
print_ll(a) # 0 1 2 3 4
a = reverse_linkedlist3(a)
print_ll(a) # 4 3 2 1 0
a = reverse_linkedlist4(a)
print_ll(a) # 0 1 2 3 4

本文转载自:https://blog.csdn.net/u011452172/article/details/78127836 

05-11 21:55