题目链接:http://acm.zju.edu.cn/onlinejudge/showProblem.do?problemCode=4056 题意:有一个按钮,时间倒计器和计数器,在时间[0,t]内,某个数如果是a的倍数则按c次按钮,如果是b的倍数则按d次按钮.按钮的规则为:每次按完之后时间倒计器设为v+0.5,如果当时 led 灯是灭的则变亮,否则计数器+1,时间倒计器到0时led 灯变灭.(时间倒计器无时无刻在减小,最小为0)问最后计数器的数值. 题解:如果在按按钮之前led灯为灭的话,则这…

ACM-ICPC 2018 徐州赛区网络预赛 J. Maze Designer J. Maze Designer After the long vacation, the maze designer master has to do his job. A tour company gives him a map which is a rectangle. The map consists of N \times MN×M little squares. That is to say, the h…

A square-free integer is an integer which is indivisible by any square number except 11. For example, 6 = 2 \cdot 36=2⋅3 is square-free, but 12 = 2^2 \cdot 312=22⋅3 is not, because 2^222 is a square number. Some integers could be decomposed into prod…

J. Sum 26.87% 1000ms 512000K   A square-free integer is an integer which is indivisible by any square number except 11. For example, 6 = 2 \cdot 36=2⋅3 is square-free, but 12 = 2^2 \cdot 312=22⋅3 is not, because 2^222 is a square number. Some integer…

J. Ka Chang Given a rooted tree ( the root is node 11 ) of NN nodes. Initially, each node has zero point. Then, you need to handle QQ operations. There're two types: 1\ L\ X1 L X: Increase points by XX of all nodes whose depth equals LL ( the depth o…

Jessie and Justin want to participate in e-sports. E-sports contain many games, but they don't know which one to choose, so they use a way to make decisions. They have several boxes of candies, and there are ii candies in the i^{th}ith box, each cand…

 目录: K Airdrop I Soldier Game L Sub-cycle Graph G Repair the Artwork ———————————————————— ps:楼主脑残有点严重,很容易写错别字和语言组织混乱,如果在读文章时遇到,可以在评论区里回复一下,我好改(花式骗评论) 补题地址:http://acm.zju.edu.cn/onlinejudge/showProblems.do?contestId=1&pageNumber=31 顺便好人做到底,给大家凑个11/13的…

题目链接:https://nanti.jisuanke.com/t/30999 参考自博客:https://kuangbin.github.io/2018/09/01/2018-ACM-ICPC-Nanjing-online-J/ 题目中文: 1000毫秒 512000K 无方形整数是一个整数,除了1以外的任何平方数都不可分 这个数.例如,6 = 2 *3,6=2*3,6是无方形整数,但12 = 2 ^ 2*3,,因为2 ^ 2是正方形数.有些整数可以分解为两个无方形整数的乘积,可能有多种分解方…

https://nanti.jisuanke.com/t/31462 题意 一个N*M的矩形,每个格点到其邻近点的边有其权值,需要构建出一个迷宫,使得构建迷宫的边权之和最小,之后Q次查询,每次给出两点坐标,给出两点之间的最短路径 分析 可以把每个格点视作视作图的点,隔开两点的边视作图的边,则构建迷宫可以视作求其生成树,剩余的边就是组成迷宫的墙.因为要花费最小,所以使删去的墙权置最大即可,呢么就是求最大生成树即可.然后每次查询相当于查这个最大生成树上任意两点的最短距离,到这一步就是个LCA了. 这…

Jessie and Justin want to participate in e-sports. E-sports contain many games, but they don't know which one to choose, so they use a way to make decisions. They have several boxes of candies, and there are ii candies in the i^{th}i th box, each can…