You are policeman and you are playing a game with Slavik. The game is turn-based and each turn consists of two phases. During the first phase you make your move and during the second phase Slavik makes his move. There are nn doors, the ii-th door ini…

题目链接:Doors Breaking and Repairing 题目大意:有n个门,先手攻击力为x(摧毁),后手恢复力为y(恢复),输入每个门的初始“生命值”,当把门的生命值攻为0时,就无法恢复了.问:最多可以把几个门的生命值攻为0. 思路:(1)当 x>y 的时候肯定所有的门的生命值都能降为0: (2)当 x<=y 的时候,先手的最优策略就是每次去攻击那些当前“生命值”比自己攻击力小的门,使它们的生命值降为0: 后手的最优策略就是去提高那些“生命值”比先手小的门的“生命值”,来减少先手“…

题意:有\(n\)扇门,你每次可以攻击某个门,使其hp减少\(x\)(\(\le 0\)后就不可修复了),之后警察会修复某个门,使其hp增加\(y\),问你最多可以破坏多少扇门? 题解:首先如果\(x>y\),那么我肯定全部都能破坏,否则,统计\(hp\le x\)的门的个数,谁先碰门谁先赢,而我是先手,所以能破坏的门的个数就是\(\lceil \frac{cnt}{2} \rceil\). 代码: int n,x,y; int a[N]; int main() { //ios::sync_wi…

Descirbe You are policeman and you are playing a game with Slavik. The game is turn-based and each turn consists of two phases. During the first phase you make your move and during the second phase Slavik makes his move. There are n doors, the i-th d…

Squats Time Limit: 1000MS   Memory Limit: 262144KB   64bit IO Format: %I64d & %I64u Submit Status Description Pasha has many hamsters and he makes them work out. Today, n hamsters (n is even) came to work out. The hamsters lined up and each hamster e…

https://codeforces.com/contest/1060/problem/E 题意 给一颗树,在原始的图中假如两个点连向同一个点,这两个点之间就可以连一条边,定义两点之间的长度为两点之间的最少边数,求加边之后任意两点长度之和 思路 一看到求任意两点,知道需要用每条边的贡献计算(每条边使用了多少次) 每条边的贡献等于边左边的点数*边右边的点数 然后就一直不知道怎么解决加边后的问题,不知道要标记哪些东西,怎么减去 单独看一条路径,加边之后, 假如边数是偶数的话,边数/2 假如边数是奇数…

https://codeforces.com/problemset/problem/353/D 大意:给定字符串, 每一秒, 若F在M的右侧, 则交换M与F, 求多少秒后F全在M左侧 $dp[i]$为位置$i$处的$F$复位所花费时间, 有 $dp[i] = max(dp[i-1]+1,cnt_i)$, $cnt_i$为前$i$位$M$的个数 $dp$最大值即为答案 #include <iostream> #include <algorithm> #include <cstd…

(点击此处查看原题) 题意分析 已知 n , p , w, d ,求x , y, z的值 ,他们的关系为: x + y + z = n x * w + y * d = p 思维法 当 y < w 的时候,我们最多通过1e5次枚举确定答案 而当 y >= w 的时候,平局所得分为:y * d = (y-w)*d + w*d ,可以看作平局的局数为 y - w ,多出的w*d贡献给 (w*d)/w = d 局胜局,所以胜局为 x + d ,说明此时用x+y局胜局和平局得到的分数可以由 x + d…

Crash Time Limit: 1000MS   Memory Limit: 262144KB   64bit IO Format: %I64d & %I64u Submit Status Description During the "Russian Code Cup" programming competition, the testing system stores all sent solutions for each participant. We know th…

Elimination Time Limit: 1000MS   Memory Limit: 262144KB   64bit IO Format: %I64d & %I64u Submit Status Description The finalists of the "Russian Code Cup" competition in 2214 will be the participants who win in one of the elimination rounds.…