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POJ 1936 All in All(string)
All in All
Time Limit: 1000MS | Memory Limit: 30000K | |
Description
You have devised a new encryption technique which encodes a message by inserting between its characters randomly generated strings in a clever way. Because of pending patent issues we will not discuss in detail how the strings are generated and inserted into the original message. To validate your method, however, it is necessary to write a program that checks if the message is really encoded in the final string.
Given two strings s and t, you have to decide whether s is a subsequence of t, i.e. if you can remove characters from t such that the concatenation of the remaining characters is s.
Given two strings s and t, you have to decide whether s is a subsequence of t, i.e. if you can remove characters from t such that the concatenation of the remaining characters is s.
Input
The input contains several testcases. Each is specified by two strings s, t of alphanumeric ASCII characters separated by whitespace.The length of s and t will no more than 100000.
Output
For each test case output "Yes", if s is a subsequence of t,otherwise output "No".
Sample Input
sequence subsequence person compression VERDI vivaVittorioEmanueleReDiItalia caseDoesMatter CaseDoesMatter
Sample Output
Yes No Yes No
题目大意:
问是否字符串1是字符串2的子列。
解题思路:
对第一个字符串进行枚举,然后和第二个字符串匹配,匹配正确记录位置,然后进行下一个字符的匹配。(匹配是找离当前最近的并且靠右的)。
代码:
#include<iostream> #include<cstdio> #include<string> using namespace std; string str1,str2; void solve(){ bool ans = true; int pos=0; for(int i=0;i<str1.length();i++){ for(int j=pos;j<str2.length();j++){ if(str1[i]==str2[j]){ pos=j+1; break; } if(j==str2.length()-1&&str2[j]!=str1[i]){ ans =false; } } } if(!ans) printf("No\n"); else printf("Yes\n"); } int main(){ while(cin>>str1>>str2){//cin都是以空格,tab,换行结束的,getline是以换行结束的. solve(); } return 0; }
POJ 1936 All in All(string)
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