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89 lines
2.2 KiB
Java
89 lines
2.2 KiB
Java
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# LeetCode 第 203 号问题:移除链表元素
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> 本文首发于公众号「五分钟学算法」,是[图解 LeetCode ](<https://github.com/MisterBooo/LeetCodeAnimation>)系列文章之一。
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>
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> 个人网站:[https://www.cxyxiaowu.com](https://www.cxyxiaowu.com)
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题目来源于 LeetCode 上第 203 号问题:移除链表元素。题目难度为 Easy,目前通过率为 55.8% 。
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### 题目描述
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删除链表中等于给定值 **val** 的所有节点。
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**示例:**
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```
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输入: 1->2->6->3->4->5->6, val = 6
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输出: 1->2->3->4->5
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```
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### 题目解析
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主要考察了基本的链表遍历和设置指针的知识点。
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定义一个虚拟头节点`dummyHead `,遍历查看原链表,遇到与给定值相同的元素,将该元素的前后两个节点连接起来,然后删除该元素即可。
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### 动画描述
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![](https://bucket-1257126549.cos.ap-guangzhou.myqcloud.com/20181102163006.gif)
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### 代码实现
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#### 代码一
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```
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// 203. Remove Linked List Elements
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// https://leetcode.com/problems/remove-linked-list-elements/description/
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// 使用虚拟头结点
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// 时间复杂度: O(n)
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// 空间复杂度: O(1)
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class Solution {
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public:
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ListNode* removeElements(ListNode* head, int val) {
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// 创建虚拟头结点
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ListNode* dummyHead = new ListNode(0);
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dummyHead->next = head;
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ListNode* cur = dummyHead;
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while(cur->next != NULL){
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if(cur->next->val == val){
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ListNode* delNode = cur->next;
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cur->next = delNode->next;
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delete delNode;
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}
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else
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cur = cur->next;
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}
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ListNode* retNode = dummyHead->next;
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delete dummyHead;
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return retNode;
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}
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};
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```
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#### 代码二
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用递归来解。
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通过递归调用到链表末尾,然后回来,需要删的元素,将链表next指针指向下一个元素即可。
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```
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class Solution {
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public:
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ListNode* removeElements(ListNode* head, int val) {
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if (!head) return NULL;
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head->next = removeElements(head->next, val);
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return head->val == val ? head->next : head;
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}
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};
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```
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##
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![](https://bucket-1257126549.cos.ap-guangzhou.myqcloud.com/blog/fz0rq.png)
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