D. Minimum Triangulation time limit per test 2 seconds memory limit per test 256 megabytes input standard input output standard output You are given a regular polygon with nn vertices labeled from 11 to nn in counter-clockwise order. The triangulatio…

https://www.luogu.org/problemnew/show/P3146 一道区间dp的题,以区间长度为阶段; 但由于要处理相邻的问题,就变得有点麻烦; 最开始想了一个我知道有漏洞的方程 ][j]) f[i][j] = max(f[i][k],f[k + ][j]); ); 可能f[i][k] = f[i][j],但他们可合并的并未相邻; 可以这样 #include <bits/stdc++.h> #define read read() #define up(i,l,r) for…

We give the following inductive definition of a “regular brackets” sequence: the empty sequence is a regular brackets sequence, if s is a regular brackets sequence, then (s) and [s] are regular brackets sequences, and if a and b are regular brackets…

前言:蒟蒻太弱了,全打的暴力QAQ. --------------------- T1 小Z的求和 题目大意:求$\sum\limits_{i=1}^n \sum\limits_{j=i}^n kth\max(a_i,a_{i+1},\cdots ,a_j)+kth\min(a_i,a_{i+1},\cdots ,a_j)$.其中$kthmax$指第$k$大,$kthmin$指第$k$小. 听hs-black说是链表维护,时间复杂度是$O(nk)$.然而并不会做……听了听学长的讲解. 对于这类问…

D - Fox And Jumping Time Limit:2000MS     Memory Limit:262144KB     64bit IO Format:%I64d & %I64u Submit Status Practice CodeForces 512B Description Fox Ciel is playing a game. In this game there is an infinite long tape with cells indexed by integer…

标签: ACM 题目 Gappu has a very busy weekend ahead of him. Because, next weekend is Halloween, and he is planning to attend as many parties as he can. Since it's Halloween, these parties are all costume parties, Gappu always selects his costumes in such…

第一道自己做出来的区间dp题,兴奋ing,虽然说这题并不难. 从后向前考虑: 状态转移方程:dp[i][j]=dp[i+1][j](i<=j<len); dp[i][j]=Max(dp[i][j],dp[i+1][k-1]+dp[k+1][j]+1),(a[i]==a[j]&&i<len,j<len,k<len); #include<stdio.h> #include<string.h> #define N 300 int dp[N][…

补一下codeforces前天教育场的题.当时只A了一道题. 大致题意: 定义一个x - y - counter :是一个加法计数器.初始值为0,之后可以任意选择+x或者+y而我们由每次累加结果的最后一位生成一个数列. 例如:4 - 2 - counter 进行+4 +4 +4 +4 +2 +4操作会生成数列 04824.每步要加上x或y是任意的. 给你一个数列(由0~9组成的字符串),问你0~9中全部两个数字生成这个包含这个子串的数列中间至少要插入多少数字.以10 * 10矩阵格式输出. 例如…

题面 传送门 分析 法1(区间DP): 首先,我们可以把连续的相等区间缩成一个数,用unique来实现,不影响结果 {1,2,2,3,3,3,5,3,4}->{1,2,3,5,3,4} 先从一个极端情况来考虑,a={1,2,3,4,5},此时答案显然为4,从1个点出发,先把它变成和左边的点相等,再把它变成和右边的点相等,一共需n-1次 假设我们已经把中间某个区间[i,j]变成相同颜色的一段,如{1,5,5,5,5,4} 如果a[i-1]!=a[j+1],则需要变两次,如果a[i-1]=a[j+1…

和紫书上的Blocks UVA - 10559几乎是同一道题,只不过是得分计算不同 不过看了半天紫书上的题才会的,当时理解不够深刻啊 不过这是一道很好区间DP题 细节看代码 #include<cstdio> #include<iostream> #include<algorithm> using namespace std; #define endl "\n" #define maxn 100+5 int n; char s[maxn]; long…