[LeetCode] Reverse Linked List II

时间:2023-09-10 21:46:38

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->NULLm = 2 and n = 4,

return 1->4->3->2->5->NULL.

Note:
Given mn satisfy the following condition:
1 ≤ m ≤ n ≤ length of list.

/**

 * Definition for singly-linked list.

 * function ListNode(val) {

 *     this.val = val;

 *     this.next = null;

 * }

 */

/**

 * @param {ListNode} head

 * @param {number} m

 * @param {number} n

 * @return {ListNode}

 */

var reverseBetween = function(head, m, n) {

    var prev = null;

    var now = head;

    var next = head.next;

    var iprev = null;

    var inext = null;

    var ihead = null;

    var itail = null;

    var s = 1;

    var newhead = false;

    while (now) {

        if (s >= m && s <= n) {

            if (s == m) {

                itail = now;

                iprev = prev;

            }

            if (s == n) {

                ihead = now;

                inext = next;

            }

            now.next = prev;

            prev = now;

            now = next;

            if (now) {

                next = now.next;

            }

            if (s == n) {

                if (!iprev) {

                    head = ihead;

                } else {

                    iprev.next = ihead;

                }

                itail.next = inext;

                break;

            }

        } else {

            prev = now;

            now = next;

            if (now) {

                next = now.next;

            }

        }

        s++;

    }

    return head;

};

代码比较丑,用了大量的零时变量来存东西,思路跟翻转整个链表那题如出一辙。简述一下思路就是:用三指针prev, now, next 遍历链表,当到达指定范围后开始翻转操作,并顺便记录翻转那部分的头和尾(ihead, itail)还有相应接头部分的指针(iprev, inext)以便最后翻转完了以后把两部分接起来。特别注意的是链表的头可能会被改变。

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