题目大意:很多人@一个人,如果那个人忍不住说话了,就轰炸成功,如果那个人没说话或者别的人没有@他或@很多个人,则轰炸失败。(具体见原题)
解题思路:字符串处理,好好用sscanf即可(细节见代码)。
C++ Code:
#include<cstring>
#include<algorithm>
#include<cstdio>
char s[1050],zha[1050],shuohua[1050],At[1050];
int q=1;
int main(){
fgets(s,1005,stdin);
sscanf(strstr(s,"@"),"@yyy loves %s",zha);
while(1){
fgets(s,1005,stdin);
if(strlen(s)<5)break;//读入结束
++q;
sscanf(s,"yyy loves %s",shuohua);
if(strcmp(zha,shuohua)==0){//油炸成功
printf("Successful @yyy loves %s attempt\n",zha);
return 0;
}
if(std::count(s,s+strlen(s),‘@‘)!=1){//队形被破坏,油炸失败
printf("Unsuccessful @yyy loves %s attempt\n%d\nyyy loves %s\n",zha,q,shuohua);
return 0;
}else{
sscanf(strstr(s,"@"),"@yyy loves %s",At);
if(strcmp(At,zha)){//队形被破坏,油炸失败
printf("Unsuccessful @yyy loves %s attempt\n%d\nyyy loves %s\n",zha,q,shuohua);
return 0;
}
}
}
//队形没有被打破
printf("Unsuccessful @yyy loves %s attempt\n%d\nGood Queue Shape\n",zha,q);
return 0;
}
[洛谷P1580]yyy loves Easter_Egg I
原文:http://www.cnblogs.com/Mrsrz/p/7248338.html