题解 | #链表中的节点每k个一组翻转#
链表中的节点每k个一组翻转
https://www.nowcoder.com/practice/b49c3dc907814e9bbfa8437c251b028e
using System;
using System.Collections.Generic;
/*
public class ListNode
{
public int val;
public ListNode next;
public ListNode (int x)
{
val = x;
}
}
*/
class Solution {
/**
* 代码中的类名、方法名、参数名已经指定,请勿修改,直接返回方法规定的值即可
*
*
* @param head ListNode类
* @param k int整型
* @return ListNode类
*/
public ListNode reverseKGroup (ListNode head, int k) {
int groups = GetLongth(head) / k;
if (groups == 0 || k == 1) return head;
ListNode pre = null;
ListNode cur = head;
ListNode nex;
ListNode pf = null;//上一组的第一个
ListNode pl;//这一组的第一个
ListNode newHead = null;
for (int i = 0; i < groups; i++) {
pl = cur;
pre = cur;
cur = cur.next;
for (int j = 1; j < k; j++) {
nex = cur.next;
cur.next = pre;
pre = cur;
cur = nex;
}
pl.next = cur;
if (pf != null) pf.next = pre;
pf = pl;
newHead = newHead == null ? pre : newHead;
}
return newHead;
}
public int GetLongth(ListNode head) {
int length = 0;
while (head != null) {
head = head.next;
length++;
}
return length;
}
}