题干:
描述
编写一个程序,求两个字符串的最长公共子串。输出两个字符串的长度,输出他们的最长公共子串及子串长度。如果有多个最长公共子串请输出在第一个字符串中先出现的那一个。
特别注意公共子串中可能包含有空格,但不计回车符!
输入
两个字符串,回车结尾,每个字符串中都可能含有空格(每个字符串的长度不超过200个字符)
输出
一共有四行,前两行以Length of String1:和Length of String2:开始冒号后面分别输出两字符串的长度。 第三行Maxsubstring:输出符合题目里描述的子串。第四行是Length of Maxsubstring:加子串长度。注意!冒号后面不要输出多余的空格!
输入样例 1
this is a stringmy string is abc输出样例 1
Length of String1:16Length of String2:16Maxsubstring: stringLength of Maxsubstring:7输入样例 2
abcdefdefabc输出样例 2
Length of String1:6Length of String2:6Maxsubstring:abcLength of Maxsubstring:3输入样例 3
aabbccaabbcc输出样例 3
Length of String1:6Length of String2:6Maxsubstring:aabbccLength of Maxsubstring:6来源
QDU
解题报告:
刚开始写成了最长公共子序列了、、、对于从0开始读入的字符串问题(即cin>>s而非cin>>s+1),还调试了老半天。。结果发现题目要求公共子序列。。。数据量不大才两百个字符,果断从高往低枚举就好了。。。如果字符数多了可以二分加速一下。、
AC代码:
#include<cstdio>#include<queue>#include<string>#include<cstring>#include<cmath>#include<map>#include<iostream>#include<algorithm>#define ll long longconst ll mod = 1e9+7;using namespace std;char s1[5005],s2[5005],tmp[5005];//string s1,s2;int dp[5500][5500];int main(){cin.getline(s1+1,1004);cin.getline(s2+1,1004);int len1 = strlen(s1+1);int len2 = strlen(s2+1);//if(s1[0] == s2[0]) dp[0][0] = 1,dp[1][0] = 1,dp[0][1] = 1;//if(s1[1] == s2[0]) dp[1][0] = 1;//if(s1[0] == s2[1]) dp[0][1] = 1;//for(int i = 1; i<=len1; i++) {//for(int j = 1; j<=len2; j++) {//if(s1[i] == s2[j]) dp[i][j] = dp[i-1][j-1]+1;//else dp[i][j] = max(dp[i][j-1],dp[i-1][j]);//}//}//int ans = dp[len1][len2];//printf("ans = %d\n",ans);int ans,flag = 0;for(ans = len1; ans >=0; ans--) {for(int i = 1; i<=len1-ans+1; i++) {for(int j = 0; j<ans; j++) tmp[j] = s1[i+j];tmp[ans] = '\0';//printf("tmp=%s\n",tmp);if(strstr(s2+1,tmp) != NULL) {flag = 1;break;}}if(flag) break;}printf("Length of String1:%d\n",len1);printf("Length of String2:%d\n",len2);printf("Maxsubstring:%s\n",tmp);printf("Length of Maxsubstring:%d\n",ans);return 0 ;}
