Simply Syntax
Time Limit: 1000ms, Special Time Limit:2500ms, Memory Limit:32768KB
Total submit users: 89, Accepted users: 84
Problem 10224 : No special judgement
Problem description
In the land of Hedonia the official language is Hedonian. A Hedonian professor had noticed that many of her students still did not master the syntax of Hedonian well. Tired of correcting the many syntactical mistakes, she decided to challenge the students and asked them to write a program that could check the syntactical correctness of any sentence they wrote. Similar to the nature of Hedonians, the syntax of Hedonian is also pleasantly simple. Here are the rules: 

0. The only characters in the language are the characters p through z and N, C, D, E, and I. 

1. Every character from p through z is a correct sentence. 

2. If s is a correct sentence, then so is Ns

3. If s and t are correct sentences, then so are Cst, Dst, Est, and Ist

4. Rules 0. to 3. are the only rules to determine the syntactical correctness of a sentence. 

You are asked to write a program that checks if sentences satisfy the syntax rules given in Rule 0. - Rule 4. 

Input
The input consists of a number of sentences consisting only of characters p through z and N, C, D, E, and I. Each sentence is ended by a new-line character. The collection of sentences is terminated by the end-of-file character. If necessary, you may assume that each sentence has at most 256 characters and at least 1 character. 

Output
The output consists of the answers YES for each well-formed sentence and NO for each not-well-formed sentence. The answers are given in the same order as the sentences. Each answer is followed by a new-line character, and the list of answers is followed by an end-of-file character. 

Sample Input
Cp
Isz
NIsz
Cqpq
Sample Output
NO
YES
YES
NO
Problem Source
East Central USA 1994

 

#include<iostream>
using namespace std;

short AutoMachine(char s[]) 
{
    int i=0,state=2;
    while(s[i]) 
    {
        if(s[i]>='p'&&s[i]<='z')state++; 
        else if(s[i]=='C'||s[i]=='D'||s[i]=='E'||s[i]=='I')state--;
        else if(s[i]!='N')  return 0;
        if(state>3)  return 0;
        ++i;
    }
    return state==3;
}

int main()
{
    char s[257];
    while(cin>>s)
    {
        if(AutoMachine(s))  cout<<"YES"<<endl;
        else cout<<"NO"<<endl;
    }
    return 0;
}

 

posted on 2012-07-19 21:20  黑色的铅笔  阅读(203)  评论(0编辑  收藏  举报