LeetCode Hot100 148.排序链表

题目：

给你链表的头结点?head?，请将其按?升序?排列并返回?排序后的链表?。

class Solution {
    public ListNode sortList(ListNode head) {
        return sortList(head, null);
    }

    private ListNode sortList(ListNode head, ListNode tail) {
        if (head == null)
            return null;
        if (head.next == tail) {
            head.next = null;
            return head;
        }
        // 找到链表的中点
        ListNode slow = head, fast = head;
        while (fast != tail && fast.next != tail) {
            slow = slow.next;
            fast = fast.next.next;
        } // 循环结束 slow是中点
        ListNode mid = slow;
        ListNode list1 = sortList(head, mid);
        ListNode list2 = sortList(mid, tail);
        ListNode sorted = merge(list1, list2);
        return sorted;
    }
    // 合并两个有序链表
    private ListNode merge(ListNode head1, ListNode head2) {
        ListNode dummyHead = new ListNode(0); // 哨兵
        ListNode temp = dummyHead, temp1 = head1, temp2 = head2;
        while(temp1 != null && temp2 != null) {
            if (temp1.val <= temp2.val) {
                temp.next = temp1;
                temp1 = temp1.next;
            } else {
                temp.next = temp2;
                temp2 = temp2.next;
            }
            temp = temp.next;
        }
        if (temp1 != null) {
            temp.next = temp1;
        } else if (temp2 != null) {
            temp.next = temp2;
        }
        return dummyHead.next;
    }
}

class Solution {
    // 自底向顶，从单独的1个有序开始合并
     public ListNode sortList(ListNode head) {
        if (head == null) {
            return head;
        }
        int length = 0;
        ListNode node = head;
        while (node != null) {
            length++;
            node = node.next;
        }
        ListNode dummyHead = new ListNode(0, head); // 哨兵
        for (int subLength = 1; subLength < length; subLength <<= 1) {
            ListNode prev = dummyHead, curr = dummyHead.next;
            while (curr != null) {
                // 前两个有序子链
                ListNode head1 = curr;
                for (int i = 1; i < subLength && curr.next != null; i++) {
                    curr = curr.next;
                }
                ListNode head2 = curr.next;
                curr.next = null;
                curr = head2;
                for (int i = 1; i < subLength && curr != null && curr.next != null; i++) {
                    curr = curr.next;
                }
                // 处理第 3 4个子链开始需要的情况
                ListNode next = null;
                if (curr != null) {
                    next = curr.next;
                    curr.next = null;
                }
                ListNode merged = merge(head1, head2);
                prev.next = merged;
                // 找到第3个子链的head
                while (prev.next != null) {
                    prev = prev.next;
                }
                curr = next;
            }
        }
        return dummyHead.next;
    }
}