算法日常判断环形链表
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环形链表
题目来源:力扣(LeetCode)
链接:https://leetcode-cn.com/problems/linked-list-cycle-ii
目前考虑到两种解法,但都需要辅助空间, 第一种 O(n) 第二种 O(1)
第一种 借助辅助字典进行判断
将走过的节点都记录在字典中,通过查询字典的key值是否存在来确定是否有环
时间复杂度为 O(n) , 空间复杂度为 O(n)
代码如下:
# -*- coding: utf-8 -*-
# @Author : xaohuihui
# @Time : 19-12-6
# @File : detect_cycled.py
# Software : study
"""
检测环形链表
"""
class ListNode:
def __init__(self, x):
self.val = x
self.next = None
def has_cycle(head: ListNode) -> bool:
dict_node = dict()
i = 0
if head and head.next:
while head and head.next:
id_head = str(id(head))
if dict_node.get(id_head) is None:
dict_node[id_head] = i
else:
return True
i += 1
head = head.next
return False
else:
return False
if __name__ == ‘__main__‘:
# head=[3,2,0,4] pos= 1
node1 = ListNode(3)
node2 = ListNode(2)
node3 = ListNode(0)
node4 = ListNode(4)
node1.next = node2
node2.next = node3
node3.next = node4
node4.next = node2
print(has_cycle(node1))
输出如下:
True
第二种解法 快慢指针
# -*- coding: utf-8 -*-
# @Author : xaohuihui
# @Time : 19-12-6
# @File : detect_cycled.py
# Software : study
"""
检测环形链表
"""
class ListNode:
def __init__(self, x):
self.val = x
self.next = None
# 第二种解法
def has_cycle(head: ListNode) -> bool:
if head and head.next:
fast = slow = head
while fast and fast.next:
slow = slow.next
fast = fast.next.next
if fast == slow:
return True
else:
return False
if __name__ == ‘__main__‘:
# head=[3,2,0,4] pos= 1
node1 = ListNode(3)
node2 = ListNode(2)
node3 = ListNode(0)
node4 = ListNode(4)
node1.next = node2
node2.next = node3
node3.next = node4
node4.next = node2
print(has_cycle(node1))
输出结果
True
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