#Leetcode# 725. Split Linked List in Parts
2024-08-26 20:11:32
https://leetcode.com/problems/split-linked-list-in-parts/
Given a (singly) linked list with head node root, write a function to split the linked list into k consecutive linked list "parts".
The length of each part should be as equal as possible: no two parts should have a size differing by more than 1. This may lead to some parts being null.
The parts should be in order of occurrence in the input list, and parts occurring earlier should always have a size greater than or equal parts occurring later.
Return a List of ListNode's representing the linked list parts that are formed.
Examples 1->2->3->4, k = 5 // 5 equal parts [ [1], [2], [3], [4], null ]
Example 1:
Input:
root = [1, 2, 3], k = 5
Output: [[1],[2],[3],[],[]]
Explanation:
The input and each element of the output are ListNodes, not arrays.
For example, the input root has root.val = 1, root.next.val = 2, \root.next.next.val = 3, and root.next.next.next = null.
The first element output[0] has output[0].val = 1, output[0].next = null.
The last element output[4] is null, but it's string representation as a ListNode is [].
Example 2:
Input:
root = [1, 2, 3, 4, 5, 6, 7, 8, 9, 10], k = 3
Output: [[1, 2, 3, 4], [5, 6, 7], [8, 9, 10]]
Explanation:
The input has been split into consecutive parts with size difference at most 1, and earlier parts are a larger size than the later parts.
Note:
- The length of
rootwill be in the range[0, 1000]. - Each value of a node in the input will be an integer in the range
[0, 999]. kwill be an integer in the range[1, 50].
代码:
/**
* Definition for singly-linked list.
* struct ListNode {
* int val;
* ListNode *next;
* ListNode(int x) : val(x), next(NULL) {}
* };
*/
class Solution {
public:
vector<ListNode*> splitListToParts(ListNode* root, int k) {
vector<ListNode*> ans(k);
ListNode* head = root;
int len = 1;
while(head && head -> next) {
head = head -> next;
len ++;
}
int ave = len / k;
int yu = len % k;
for(int i = 0; i < k && root; i ++) {
ans[i] = root;
for(int j = 1; j < ave + (i < yu); j ++)
root = root -> next; ListNode* t = root -> next;
root -> next = NULL;
root = t;
} return ans;
}
};
睡到自然醒 再赖一会床简直不能再美好了 很惋惜这个假期真的真的浪费了很多时间和精神 希望一切都好吧
最新文章
- 用原生js获取class
- Oracle访问数据的存取方法
- About GAC
- 浅谈android的selector,背景选择器
- jquery中validate插件表单验证
- 6.Hibernate单向的多对一 关联映射
- 程序员要拥抱变化,聊聊Android即将支持的Java 8
- Java中的内存分配
- Intellij IDEA 设置启动JVM参数
- Spring 学习——Spring常用注解——@Component、@Scope、@Repository、@Service、@Controller、@Required、@Autowired、@Qualifier、@Configuration、@ImportResource、@Value
- 100M双绞线接头的标准接法
- jQuery使用scrollTop获取div标签的滚动条已滚动高度(jQuery版本1.6+时,用prop()方法代替attr()方法)
- pymssql
- ios之mknetworkkit笔记
- 使用JDBC连接MySql时出现:The server time zone value '�й���ʱ��' is unrecognized or represents more than one time zone. You must configure either the server or JDBC driver (via the serverTimezone configuration
- Qt ------ 截图、获取鼠标指定的RGB值
- UVA12995 Farey Sequence [欧拉函数,欧拉筛]
- Github上的iOS App源码 (中文)
- SSH连接linux时,长时间不操作就断开的解决方案(增强版)
- node好用的东东