Given a linked list, return the node where the cycle begins. If there is no cycle, return null.
Note: Do not modify the linked list.
Follow up:
Can you solve it without using extra space?
解题思路:
这题涉及两个部分:
1. 检测linked list是否有环:用双指针追击法:
快指针fast一次走两步,慢指针slow一次走一步。如果有环,两指针必定在某一时间相遇。fast不会跳过slow。因为如果fast跳过slow,那么前一步它们必已经相遇。
2. 如果有环,如何判断环的起始点。
假设linked list从head到环起始点s的长度为L,环的周长为C(两节点之间的长度为之间link的数量)
当fast与slow第一次相遇的位置记为m1,并假设m1离开环起始点s距离X,由于fast走的总路程一定是slow的两倍:
(L + X)*2 = L + n*C + X => L = n*C - X
从m1出发,走n*C - X的路程将回到s,而这段路程正好等于head到s之间的路程!所以第一次相遇后,将slow移到head,然后slow/fast同时以一次走一步的速度前进,直到它们第二次相遇,便是s了。
Java code:
/** * Definition for singly-linked list. * class ListNode { * int val; * ListNode next; * ListNode(int x) { * val = x; * next = null; * } * } */ public class Solution { public ListNode detectCycle(ListNode head) { ListNode fast = head; //fast pointer moves two steps forward ListNode slow = head; //slow pointer moves one step forward while(fast != null && fast.next != null){ slow = slow.next; fast = fast.next.next; if(slow == fast){ slow = head; while(slow != fast){ slow = slow.next; fast = fast.next; } return slow; } } return null; } }
Reference:
1. http://bangbingsyb.blogspot.com/2014/11/leetcode-linked-list-cycle-i-ii.html
2. https://leetcode.com/discuss/65724/concise-java-solution-based-on-slow-fast-pointers