/*
Problem D
Time Limit : 2000/1000ms (Java/Other) Memory Limit : 32768/32768K (Java/Other)
Total Submission(s) : 21 Accepted Submission(s) : 3
Problem Description
对给定的字符串(只包含'z','o','j'三种字符),判断他是否能AC。
是否AC的规则如下:
1. zoj能AC;
2. 若字符串形式为xzojx,则也能AC,其中x可以是N个'o' 或者为空;
3. 若azbjc 能AC,则azbojac也能AC,其中a,b,c为N个'o'或者为空;
Input
输入包含多组测试用例,每行有一个只包含'z','o','j'三种字符的字符串,字符串长度小于等于1000;
Output
对于给定的字符串,如果能AC则请输出字符串“Accepted”,否则请输出“Wrong Answer”。
Sample Input
zojozojoozoojoooozoojoooozoojozojooooozojozojoooo
Sample Output
AcceptedAcceptedAcceptedAcceptedAcceptedAcceptedWrong AnswerWrong Answer
*/
#include<iostream>
#include<string.h>
#include<stdio.h>
#include<stack>
using namespace std;
int main()
{
char c[1010];
stack<char>s;
stack<char>s1;
stack<char>s2;
while(cin>>c)
{
int i=0,tar=1,k1=0,k2=0,sum=0;
while(c[i]=='o')
s1.push(c[i++]);
while(c[i]!='j'&&i<strlen(c))
s.push(c[i++]);
s.push(c[i++]);
while(i<strlen(c))
s2.push(c[i++]);
while(!s1.empty())
{
if(s1.top()=='o')
k1++;
else
{
tar=0;
break;
}
s1.pop();
}
while(!s2.empty())
{
if(s2.top()=='o')
k2++;
else
{
tar=0;
break;
}
s2.pop();
}
if(tar==0)
{
printf("Wrong Answer\n");
while(!s.empty())
s.pop();
while(!s1.empty())
s1.pop();
while(!s2.empty())
s2.pop();
continue;
}
while(s.size()>=3&&!s.empty())
{
if(s.top()=='j')
s.pop();
else
break;
while(!s.empty()&&s.top()=='o')
{
sum++;
s.pop();
}
if(!s.empty()&&s.top()=='z')
s.pop();
else
tar=0;
break;
}
if(((k1==k2&&sum==1)||(k2==sum*k1))&&s.empty()&&tar==1&&sum>0)
printf("Accepted\n");
else
printf("Wrong Answer\n");
while(!s.empty())
s.pop();
while(!s1.empty())
s1.pop();
while(!s2.empty())
s2.pop();
}
return 0;
}
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