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111 lines
2.2 KiB
Markdown
111 lines
2.2 KiB
Markdown
# [234. Palindrome Linked List](https://leetcode.com/problems/palindrome-linked-list/)
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## 题目
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Given a singly linked list, determine if it is a palindrome.
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**Example 1**:
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```
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Input: 1->2
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Output: false
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```
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**Example 2**:
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```
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Input: 1->2->2->1
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Output: true
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```
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**Follow up**:
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Could you do it in O(n) time and O(1) space?
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## 题目大意
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判断一个链表是否是回文链表。要求时间复杂度 O(n),空间复杂度 O(1)。
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## 解题思路
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这道题只需要在第 143 题上面改改就可以了。思路是完全一致的。先找到中间结点,然后反转中间结点后面到结尾的所有结点。最后一一判断头结点开始的结点和中间结点往后开始的结点是否相等。如果一直相等,就是回文链表,如果有不相等的,直接返回不是回文链表。
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## 代码
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```go
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package leetcode
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/**
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* Definition for singly-linked list.
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* type ListNode struct {
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* Val int
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* Next *ListNode
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* }
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*/
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// 此题和 143 题 Reorder List 思路基本一致
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func isPalindrome234(head *ListNode) bool {
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if head == nil || head.Next == nil {
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return true
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}
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res := true
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// 寻找中间结点
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p1 := head
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p2 := head
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for p2.Next != nil && p2.Next.Next != nil {
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p1 = p1.Next
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p2 = p2.Next.Next
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}
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// 反转链表后半部分 1->2->3->4->5->6 to 1->2->3->6->5->4
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preMiddle := p1
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preCurrent := p1.Next
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for preCurrent.Next != nil {
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current := preCurrent.Next
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preCurrent.Next = current.Next
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current.Next = preMiddle.Next
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preMiddle.Next = current
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}
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// 扫描表,判断是否是回文
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p1 = head
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p2 = preMiddle.Next
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// fmt.Printf("p1 = %v p2 = %v preMiddle = %v head = %v\n", p1.Val, p2.Val, preMiddle.Val, L2ss(head))
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for p1 != preMiddle {
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// fmt.Printf("*****p1 = %v p2 = %v preMiddle = %v head = %v\n", p1, p2, preMiddle, L2ss(head))
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if p1.Val == p2.Val {
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p1 = p1.Next
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p2 = p2.Next
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// fmt.Printf("-------p1 = %v p2 = %v preMiddle = %v head = %v\n", p1, p2, preMiddle, L2ss(head))
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} else {
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res = false
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break
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}
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}
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if p1 == preMiddle {
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if p2 != nil && p1.Val != p2.Val {
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return false
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}
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}
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return res
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}
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// L2ss define
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func L2ss(head *ListNode) []int {
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res := []int{}
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for head != nil {
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res = append(res, head.Val)
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head = head.Next
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}
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return res
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}
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``` |