来源:力扣(LeetCode)
给你单链表的头节点 head ,请你反转链表,并返回反转后的链表。
示例 1:
输入:head = [1,2,3,4,5]
输出:[5,4,3,2,1]
示例 2:
输入:head = [1,2]
输出:[2,1]
示例 3:
输入:head = []
输出:[]
提示:
- 链表中节点的数目范围是 [0, 5000]
- -5000 <= Node.val <= 5000
方法一:迭代
var reverseList = function(head) {
let cur = head;
let pre = null;
while (cur) {
let temp = cur.next;
cur.next = pre;
pre = cur;
cur = temp
}
return pre;
};
- 时间复杂度:O(n)
- 空间复杂度:O(1)O(1)。
方法二:递归
如果要让节点1和节点2反转的话,可以这样做:
head.next.next = head;
head.next = null; // 1 <= 2
我们递归就是不断地利用这种思想:
reverseList: head=1
reverseList: head=2
reverseList: head=3
reverseList:head=4
reverseList:head=5
终止返回
cur = 5
4.next.next->4,即5->4
cur = 5 -> 4 -> null
3.next.next->3,即4->3
cur = 5 -> 4 -> 3 -> null
2.next.next->2,即3->2
cur = 5 -> 4 -> 3 -> 2 -> null
1.next.next->1,即2->1
cur = 5 -> 4 -> 3 -> 2 -> 1 -> null
请看代码:
var reverseList = function(head) {
if (head == null || head.next == null) {
return head;
};
let newHead = reverseList(head.next);
head.next.next = head;
head.next = null;
return newHead;
};
- 时间复杂度:O(n)
- 空间复杂度:O(n)
