| Time Limit: 1000MS | Memory Limit: 30000K | |
| Total Submissions: 33318 | Accepted: 13901 |
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
Source
问题链接:UVA10340 POJ1936 ZOJ1970 All in All。入门练习题,用C语言编写程序。
题意简述:输入两个字符串s和t,看s是否是t的子串。t中的字符可以任意删除。
问题分析:顺序匹配字符串即可。
程序说明:(略)
AC的C语言程序如下:
/* UVA10340 POJ1936 ZOJ1970 All in All */
#include <stdio.h>
#include <string.h>
#define MAXN 110000
char s[MAXN], t[MAXN];
int delstrcmp(char *s, char *t)
{
int i, j, slen, tlen;
slen = strlen(s);
tlen = strlen(t);
for(i=0, j=0; i<slen && j<tlen;) {
if(s[i] == t[j]) {
i++;
j++;
} else
j++;
}
return i == slen;
}
int main(void)
{
while(scanf("%s%s", s, t) != EOF)
printf("%s
", delstrcmp(s, t) ? "Yes" : "No");
return 0;
}