给你单链表的头指针 head 和两个整数 left 和 right ,其中 left <= right 。请你反转从位置 left 到位置 right 的链表节点,返回 反转后的链表 。

    示例 1:
    image.png

    输入:head = [1,2,3,4,5], left = 2, right = 4
    输出:[1,4,3,2,5]
    示例 2:

    输入:head = [5], left = 1, right = 1
    输出:[5]

    提示:

    链表中节点数目为 n
    1 <= n <= 500
    -500 <= Node.val <= 500
    1 <= left <= right <= n

    进阶: 你可以使用一趟扫描完成反转吗?

    1. class Solution {
    2.     public ListNode reverseBetween(ListNode head, int left, int right) {
    3.         ListNode dummy = new ListNode(-1);
    4.         dummy.next = head;
    5.         ListNode hh = dummy;
    6.         right -= left;
    7.         while (--left > 0) hh = hh.next;
    8.         ListNode a = hh.next, b = hh.next.next;
    9.         while (right-- > 0) {
    10.             ListNode tem = b.next;
    11.             b.next = a;
    12.             a = b;
    13.             b = tem;
    14.         }
    15.         hh.next.next = b;       //1,2,3,4,5 -> 1,4,3,2,5 hh.next = 2, a = 4, b = 5
    16.         hh.next = a;
    17.         return dummy.next;
    18.     }
    19. }