给你一个单链表的头节点 head ,请你判断该链表是否为。回文链表如果是,返回 true ;否则,返回 false 。
示例 1:
输入:head = [1,2,2,1] 输出:true
示例 2:
输入:head = [1,2] 输出:false
解法: 先利用快慢指针,找到链表中点,然后根据中点翻转后续链表,反转后在跟第一个链表比对
class Solution {public boolean isPalindrome(ListNode head) {//首先找到链表的中点,然后反转后半部分,然后再比较前半部分ListNode slow = head;ListNode fast = head.next;while(fast !=null && fast .next != null){slow = slow.next;fast = fast.next.next;}//翻转后半部分ListNode second = reverseList(slow.next);slow.next = null;//比较前半部分ListNode first = head;while(second !=null){if(first.val == second.val){first = first.next;second = second.next;}else {return false;}}return true;}private ListNode reverseList(ListNode slow) {ListNode prev = null;ListNode cur = slow;ListNode next = null;while(cur != null){next = cur.next;cur.next = prev;prev = cur;cur = next;}return prev;}
})
