A. Substring and Subsequence   One day Polycarpus got hold of two non-empty strings s and t, consisting of lowercase Latin letters. Polycarpus is quite good with strings, so he immediately wondered, how many different pairs of "x y" are there, s…

A. Substring and Subsequence 题目连接: http://codeforces.com/contest/163/problem/A Description One day Polycarpus got hold of two non-empty strings s and t, consisting of lowercase Latin letters. Polycarpus is quite good with strings, so he immediately w…

Substring and Subsequence 题意 给出两个字符串s,t,求出有多少对s的子串和t的子序列相等. 思路 类似于最长公共子序列的dp数组. dp[i][j]表示s中以i为结尾的子串和t中前j个的子序列相等的个数. 转移的时候dp[i][j]=dp[i][j-1];. 如果s[i]==t[j]那么dp[i][j]+=dp[i-1][j-1]+1;,1是s[i]自身作为子串的情况. 最后统计dp[i][lent]的和 代码 #include<bits/stdc++.h> #de…

题目链接:http://codeforces.com/problemset/problem/163/A 题意: 给你两个字符串a,b,问你有多少对"(a的子串,b的子序列)"可以匹配. 题解: 表示状态: dp[i][j] = pairs a的子串以a[i]结尾,b的子序列以b[1 to j]结尾的方案数. 找出答案: ans = ∑ dp[i][lb] (la,lb代表a和b的长度) 如何转移: dp[i][j] = dp[i][j-1] if(a[i] == b[j]) dp[i]…

UVA - 11404 Palindromic Subsequence 题意:一个字符串,删去0个或多个字符,输出字典序最小且最长的回文字符串 不要求路径区间DP都可以做 然而要字典序最小 倒过来求LCS,转移同时维护f[i][j].s为当前状态字典序最小最优解 f[n][n].s的前半部分一定是回文串的前半部分(想想就行了) 当s的长度为奇时要多输出一个(因为这样长度+1,并且字典序保证最小(如axyzb  bzyxa,就是axb|||不全是回文串的原因是后半部分的字典序回文串可能不是最小,多…

Common Subsequence Time Limit: 2 Sec  Memory Limit: 64 MBSubmit: 951  Solved: 374 Description A subsequence of a given sequence is the given sequence with some elements (possible none) left out. Given a sequence X = <X1, x2, ..., xm>another sequence…

Bracket Substring 这么垃圾的题怎么以前都不会写啊, 现在一眼怎么就会啊.... 考虑dp[ i ][ j ][ k ][ op ] 表示 已经填了 i 个空格, 末尾串匹配到 所给串的 第 j 个, 已经放了 k 个左括号, 是否存在所给串的方案数. 因为不匹配的不是从头开始的, 所以暴力求下一个或者直接ac自动机都可以. #include<bits/stdc++.h> #define LL long long #define LD long double #define u…

Problem C: Longest Common Subsequence Sequence 1: Sequence 2: Given two sequences of characters, print the length of the longest common subsequence of both sequences. For example, the longest common subsequence of the following two sequences: abcdgh…

题目链接:HDU 5677 ztr loves substring 题意:有n个字符串,任选k个回文子串,问其长度之和能否等于L. 题解:用manacher算法求出所有回文子串的长度,并记录各长度回文子串的个数,再用背包思想判断是否有解. dp[i][j]:选取i个回文子串,长度之和是否为j 其中用到二进制分解思想,将回文串长为i的数量cnt[i]拆成1+2+4+8+…形式,进行优化. #include<cstdio> #include<algorithm> #include<…

D. Longest Subsequence 题目连接: http://www.codeforces.com/contest/632/problem/D Description You are given array a with n elements and the number m. Consider some subsequence of a and the value of least common multiple (LCM) of its elements. Denote LCM a…