双指针解法为两个指针,一个指向头元素,一个指向尾元素。两个指针逐步向中间靠拢并比较路过的元素:
/** * @Author Niuxy * @Date 2020/6/23 8:22 下午 * @Description 双指针 */ public final boolean isPalindrome(ListNode head) { if (head == null) { return true; } ListNode temp = head; //链表长度 int length = 1; while (temp.next != null) { temp = temp.next; length++; } //双指针 int before = 0; int after = length - 1; while (after > before) { if (getNode(head, before).val != getNode(head, after).val) { return false; } before++; after--; } return true; } private final ListNode getNode(ListNode head, int index) { while (index != 0) { head = head.next; index--; } return head; }
快慢指针解法为通过快慢指针找到中点,从中点断开链表。翻转其中一个链表后,比较两个链表是否相同:
/** * @Author Niuxy * @Date 2020/6/23 8:22 下午 * @Description 快慢指针翻转链表 */ public final boolean isPalindrome2(ListNode head) { if (head == null || head.next == null) { return true; } ListNode slow = head; ListNode fast = head.next.next; //快慢指针找中点 while (fast != null && fast.next != null) { slow=slow.next; fast=fast.next.next; } ListNode seHead=revoleList(slow.next); slow.next=null; ListNode fiHead=head; while(fiHead!=null&&seHead!=null){ if(fiHead.val!=seHead.val){ return false; } fiHead=fiHead.next; seHead=seHead.next; } return true; } //翻转链表 private static ListNode revoleList(ListNode head) { if (head == null || head.next == null) { return null; } ListNode next = head.next.next; ListNode node = head.next; ListNode pre = head; head.next = null; while (node != null) { node.next = pre; if (next == null) { return node; } pre = node; node = next; next = next.next; } return node; }
两种解法均有空间复杂度为 O(1) 的实现方式,快慢指针解法耗时更少:
