poj 1458
来源:互联网 发布:电脑网络 编辑:程序博客网 时间:2024/05/29 09:21
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 Z = < z1, z2, ..., zk > is a subsequence of X if there exists a strictly increasing sequence < i1, i2, ..., ik > of indices of X such that for all j = 1,2,...,k, x ij = zj. For example, Z = < a, b, f, c > is a subsequence of X = < a, b, c, f, b, c > with index sequence < 1, 2, 4, 6 >. Given two sequences X and Y the problem is to find the length of the maximum-length common subsequence of X and Y.
Input
The program input is from the std input. Each data set in the input contains two strings representing the given sequences. The sequences are separated by any number of white spaces. The input data are correct.
Output
For each set of data the program prints on the standard output the length of the maximum-length common subsequence from the beginning of a separate line.
Sample Input
abcfbc abfcabprogramming contest abcd mnp
Sample Output
420
题意:
我们称序列 Z = < z1, z2, ..., zk >是序列X = < x1, x2, ..., xm >的子序列当且仅当存在严格上升的序列< i1, i2, ..., ik >,使得对j = 1, 2, ... ,k, 有xij = zj。比如Z = < a, b, f, c > 是X = < a, b,c, f, b, c >的子序列。现在给出两个序列X 和Y,你的任务是找到X 和Y 的最大公共子序列,也就是说要找到一个最长的序列Z,使得Z 既是X 的子序列也是Y 的子序列.
思路:
设d(i,j)为A1,A2,...Ai和B1,B2,..Bj的LCS的长度,则当A[i]=A[j]时d(I,j)d(i-1,j-1)+1,否则d(i,j)=max{d(i-1,j),d(i,j-1)},时间复杂度为O(nm),其中n和m分别是序列A和B的长度。
代码:
#include<cstdio>#include<algorithm>#include<cstring>using namespace std;int n,m;int const maxn=1000;char s[maxn],t[maxn];int dp[maxn+1][maxn+1];void solve(){ for(int i=0; i<n; i++) { for(int j=0; j<m; j++) { if(s[i]==t[j]) { dp[i+1][j+1]=dp[i][j]+1; } else { dp[i+1][j+1]=max(dp[i][j+1],dp[i+1][j]); } } } printf("%d\n",dp[n][m]);}int main(){ while(scanf("%s%s",&s,&t)!=EOF) { n=strlen(s); m=strlen(t); solve(); } return 0;}
0 0
- poj 1458
- poj 1458
- POJ 1458
- poj 1458
- poj--1458
- poj 1458
- poj 1458
- poj 1458
- POJ-1458
- POJ 1458
- Common Subsequence--poj--1458
- poj 1458 Common Subsequence
- poj 1458 Common Subsequence
- Poj 1458 Common Subsequence
- poj 1458 C++解法
- POJ 1458题解
- POJ 1458 Common Subsequence
- poj 1458 Common Subsequence
- dup,dup2,2>&1,tee用法
- OC - Method
- 自组织特征映射神经网络(SOFM)
- 九度 Online Judge 算法 刷题 题目1059:abc
- poj3070
- poj 1458
- 九度 Online Judge 算法 刷题 题目1062:分段函数
- Gradle 发布公共模块到maven库(android版)
- IOS开发中rss解析数据解析
- java反照机制模拟按键输入
- Out of Hay
- new/delete和mallco/free的深入理解
- POJ 1181 大整数是否为素数以及求大整数的质因数-数论-(Miller_rabin+Pollard_rho)
- ZOJ 3537 Cake 凸包+区间DP+记忆化搜索