题目链接: B. Duff in Beach time limit per test 2 seconds memory limit per test 256 megabytes input standard input output standard output While Duff was resting in the beach, she accidentally found a strange array b0, b1, ..., bl - 1 consisting of l posit…

D. Duff in Beach Time Limit: 1 Sec Memory Limit: 256 MB 题目连接 http://codeforces.com/contest/588/problem/D Description While Duff was resting in the beach, she accidentally found a strange array b0, b1, ..., bl - 1 consisting of l positive integers. Th…

[Codeforces 865C]Gotta Go Fast(期望dp+二分答案) 题面 一个游戏一共有n个关卡,对于第i关,用a[i]时间通过的概率为p[i],用b[i]通过的时间为1-p[i],每通过一关后可以选择继续下一关或者时间清0并从第一关开始,先要求通过所有关卡的时间和不能超过R才算彻底通关,问直到彻底通关位置的游戏时间的期望值为多少 分析 二分从头开始通关的用时期望mid 设\(dp[i][j]\)表示通前i关,当前时间为j的期望,倒推期望. 若超时重新开始,则\(dp[i][j]…

[CodeForces - 1225E]Rock Is Push [dp][前缀和] 标签:题解 codeforces题解 dp 前缀和 题目描述 Time limit 2000 ms Memory limit 524288 kB Source Technocup 2020 - Elimination Round 2 Tags binary search dp *2200 Site https://codeforces.com/problemset/problem/1225/E 题面 Examp…

[Codeforces 553E]Kyoya and Train(期望DP+Floyd+分治FFT) 题面 给出一个\(n\)个点\(m\)条边的有向图(可能有环),走每条边需要支付一个价格\(c_i\),需要的时间为\([1,T]\)中随机的整数,时间为\(j\)的概率为\(p_{i,j}\).从\(1\)出发走到\(n\),如果到\(n\)的时间超过\(T\),就需要再支付\(X\).找出一条路径,使得支付钱数的期望值最小.输出最小期望. \(n \leq 50,m \leq 100,T \…

http://codeforces.com/gym/100405 D题 题在pdf里 codeforces.com/gym/100405/attachments/download/2331/20132014-acmicpc-northwestern-european-regional-contest-nwerc-13-en.pdf D - Diagrams & TableauxA Young diagram is an arrangement of boxes in rows and colum…

题目 Source http://codeforces.com/contest/467/problem/C Description The new ITone 6 has been released recently and George got really keen to buy it. Unfortunately, he didn't have enough money, so George was going to work as a programmer. Now he faced t…

C. Balance 题目链接 http://codeforces.com/contest/17/problem/C 题面 Nick likes strings very much, he likes to rotate them, sort them, rearrange characters within a string... Once he wrote a random string of characters a, b, c on a piece of paper and began…

题目链接:http://codeforces.com/contest/451/problem/A 解题报告:有n跟红色的棍子横着放,m根蓝色的棍子竖着放,它们形成n*m个交点,两个人轮流在里面选择交点,选到的交点将把经过这个点的棍子都拿掉,最后没有点可选的人输,另一方赢. n*m个交点不管选哪个点取效果都是一样的,dp[n][m] = !dp[n-1][m-1]   (n > 1 && m >1) #include<cstdio> #include<cstri…

题目链接:http://codeforces.com/contest/597/problem/C 思路:dp[i][j]表示长度为i,以j结尾的上升子序列,则有dp[i][j]= ∑dp[i-1][k](1<=k<j),由于要求前缀和,可以用树状数组优化 #include<bits/stdc++.h> #define lowbit(x) x&(-x) typedef long long ll; const int N=1e5+3; ll dp[12][N]; using n…