Reverse a linked list from position m to n. Do it in-place and in one-pass.
For example:
Given 1->2->3->4->5->NULL
, m = 2 and n =
4,
return 1->4->3->2->5->NULL
.
Note:
Given m, n satisfy the following condition:
1 ≤ m ≤ n ≤ length of list.
思路:与传统的反转链表差不多,只是要判断下开始和结束条件。
代码如下:
/** * Definition for singly-linked list. * public class ListNode { * int val; * ListNode next; * ListNode(int x) { val = x; } * } */ public class Solution { public ListNode reverseBetween(ListNode head, int m, int n) { /** * 本题思想是将m,n中间的链表遍历,同时计数 * 3放在2前面,1-3-2-4-5 * 然后4放在3前面,1-4-3-2-5 * 当计数到了,结束循环 */ ListNode first = new ListNode(0); //头结点,方便统一处理 first.next = head; ListNode temp = null; ListNode p = null; ListNode pHead = first;//不需要反转的最后一个节点 ListNode pLast = null;//需要反转节点的第一个节点,将反转到最后 int len = 0; while(head != null){ if(++len < m){ pHead = head;//记录未变动的节点末尾值,如例题中的1 head = head.next; } else if(len == m){ //记录开始位置 p = pLast = head; head = head.next; pLast.next = null;//此句很重要,斩断之后的连接 }else if(len >= m && len <= n){ //新插入节点 temp = head; head = head.next;//必须放这里,不然出错 temp.next = p; p = temp; pHead.next = p; }else if(len > n){ pLast.next = head;//将已交换的链表连接上不需交换的末尾,如本例5 break; } } return first.next; } }
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leetCode 92.Reverse Linked List II (反转链表II) 解题思路和方法
原文地址:http://blog.csdn.net/xygy8860/article/details/47074087