2021-03-20 08:57:12 +00:00
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> 如果阅读时,发现错误,或者动画不可以显示的问题可以添加我微信好友 **[tan45du_one](https://raw.githubusercontent.com/tan45du/tan45du.github.io/master/个人微信.15egrcgqd94w.jpg)** ,备注 github + 题目 + 问题 向我反馈
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>
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> 感谢支持,该仓库会一直维护,希望对各位有一丢丢帮助。
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>
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> 另外希望手机阅读的同学可以来我的 <u>[**公众号:袁厨的算法小屋**](https://raw.githubusercontent.com/tan45du/test/master/微信图片_20210320152235.2pthdebvh1c0.png)</u> 两个平台同步,想要和题友一起刷题,互相监督的同学,可以在我的小屋点击<u>[**刷题小队**](https://raw.githubusercontent.com/tan45du/test/master/微信图片_20210320152235.2pthdebvh1c0.png)</u>进入。
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#### [剑指 Offer 22. 链表中倒数第k个节点](https://leetcode-cn.com/problems/lian-biao-zhong-dao-shu-di-kge-jie-dian-lcof/)
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2021-03-19 07:07:33 +00:00
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题目:
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输入一个链表,输出该链表中倒数第k个节点。为了符合大多数人的习惯,本题从1开始计数,即链表的尾节点是倒数第1个节点。例如,一个链表有6个节点,从头节点开始,它们的值依次是1、2、3、4、5、6。这个链表的倒数第3个节点是值为4的节点。
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题目分析:
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2021-07-15 16:06:52 +00:00
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自己思考一下:
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2021-03-19 07:07:33 +00:00
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我们遇到这个题目,可能会有什么答题思路呢?
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你看我说的对不对,是不是会想到先遍历一遍链表知道 链表节点的个数,然后再计算出倒数第n个节点。
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2021-07-15 16:06:52 +00:00
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比如链表长度为10,倒数第3个节点,不就是正数第8个节点呀,这种方法当然可以啦,是可以实现的,那么我们再思考一下有没有其他方法呢?哦,对,我们可以将链表元素保存到数组里面,然后直接就可以知道倒数第k个节点了。这个方法确实比刚才那个方法省时间了,但是所耗的空间更多了,那我们还有什么方法吗?
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2021-03-19 07:07:33 +00:00
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我们可以继续利用我们的双指针呀,但是我们应该怎么做呢?
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双指针法:
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首先一个指针移动K-1位(这里可以根据你的初始化指针决定),然后另一个指针开始启动,他俩移动速度一样,所以他俩始终相差K-1位,当第一个指针到达链表尾部时,第二个指针的指向则为倒数第K个节点。
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2021-03-20 04:46:42 +00:00
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![](https://img-blog.csdnimg.cn/img_convert/506c4d70f4c50c66994711c8506462a8.gif)
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2021-03-19 07:07:33 +00:00
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感觉这个方法既巧妙又简单,大家可以自己动手打一下,这个题目是经典题目。
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2021-04-28 10:28:00 +00:00
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**题目代码**
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Java Code:
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2021-03-19 07:07:33 +00:00
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```java
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class Solution {
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2021-03-20 04:46:42 +00:00
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public ListNode getKthFromEnd (ListNode head, int k) {
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2021-03-19 07:07:33 +00:00
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//特殊情况
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2021-03-20 04:46:42 +00:00
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if (head == null) {
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2021-03-19 07:07:33 +00:00
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return head;
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}
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//初始化两个指针
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ListNode pro = new ListNode(-1);
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ListNode after = new ListNode(-1);
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//定义指针指向
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pro = head;
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after = head;
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//先移动绿指针到指定位置
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2021-03-20 04:46:42 +00:00
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for (int i = 0; i < k-1; i++) {
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pro = pro.next;
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2021-03-19 07:07:33 +00:00
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}
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//两个指针同时移动
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while (pro.next != null) {
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pro = pro.next;
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after = after.next;
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}
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//返回倒数第k个节点
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return after;
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}
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}
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```
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2021-04-28 10:28:00 +00:00
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C++ Code:
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```cpp
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class Solution {
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public:
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ListNode * getKthFromEnd(ListNode * head, int k) {
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//特殊情况
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if (head == nullptr) {
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return head;
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}
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//初始化两个指针
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ListNode * pro = new ListNode(-1);
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ListNode * after = new ListNode(-1);
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//定义指针指向
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pro = head;
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after = head;
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//先移动绿指针到指定位置
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for (int i = 0; i < k-1; i++) {
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pro = pro->next;
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}
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//两个指针同时移动
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while (pro->next != nullptr) {
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pro = pro->next;
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after = after->next;
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}
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//返回倒数第k个节点
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return after;
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}
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};
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```
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2021-05-04 20:26:39 +00:00
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JS Code:
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```javascript
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var getKthFromEnd = function(head, k) {
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2021-07-12 09:08:45 +00:00
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//特殊情况
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2021-05-04 20:26:39 +00:00
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if(!head) return head;
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2021-07-12 09:08:45 +00:00
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//初始化两个指针, 定义指针指向
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2021-05-04 20:26:39 +00:00
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let pro = head, after = head;
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2021-07-12 09:08:45 +00:00
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//先移动绿指针到指定位置
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2021-05-04 20:26:39 +00:00
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for(let i = 0; i < k - 1; i++){
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pro = pro.next;
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}
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2021-07-12 09:08:45 +00:00
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//两个指针同时移动
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2021-05-04 20:26:39 +00:00
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while(pro.next){
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pro = pro.next;
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after = after.next;
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}
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2021-07-12 09:08:45 +00:00
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//返回倒数第k个节点
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2021-05-04 20:26:39 +00:00
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return after;
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};
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2021-07-12 09:08:45 +00:00
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```
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Python Code:
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```python
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class Solution:
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def getKthFromEnd(self, head: ListNode, k: int) -> ListNode:
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# 特殊情况
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if head is None:
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return head
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# 初始化两个指针, 定义指针指向
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pro = head
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after = head
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# 先移动绿指针到指定位置
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for _ in range(k - 1):
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pro = pro.next
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# 两个指针同时移动
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while pro.next is not None:
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pro = pro.next
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after = after.next
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# 返回倒数第k个节点
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return after
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```
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2021-07-17 14:28:06 +00:00
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Swift Code:
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```swift
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class Solution {
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func getKthFromEnd(_ head: ListNode?, _ k: Int) -> ListNode? {
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//特殊情况
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if head == nil {
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return head
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}
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//初始化两个指针
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var pro = head, after = head
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//先移动绿指针到指定位置
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for i in 0..<k-1 {
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pro = pro?.next
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}
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//两个指针同时移动
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while pro?.next != nil {
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pro = pro?.next
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after = after?.next
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}
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//返回倒数第k个节点
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return after
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}
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}
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```
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