CF49A Sleuth

题目描述

Vasya plays the sleuth with his friends. The rules of the game are as follows: those who play for the first time, that is Vasya is the sleuth, he should investigate a "crime" and find out what is happening. He can ask any questions whatsoever that can be answered with "Yes" or "No". All the rest agree beforehand to answer the questions like that: if the question’s last letter is a vowel, they answer "Yes" and if the last letter is a consonant, they answer "No". Of course, the sleuth knows nothing about it and his task is to understand that.

Unfortunately, Vasya is not very smart. After 5 hours of endless stupid questions everybody except Vasya got bored. That’s why Vasya’s friends ask you to write a program that would give answers instead of them.

The English alphabet vowels are: A, E, I, O, U, Y

The English alphabet consonants are: B, C, D, F, G, H, J, K, L, M, N, P, Q, R, S, T, V, W, X, Z

输入输出格式

输入格式:

 

The single line contains a question represented by a non-empty line consisting of large and small Latin letters, spaces and a question mark. The line length does not exceed 100. It is guaranteed that the question mark occurs exactly once in the line — as the last symbol and that the line contains at least one letter.

 

输出格式:

 

Print answer for the question in a single line: YES if the answer is "Yes", NO if the answer is "No".

Remember that in the reply to the question the last letter, not the last character counts. I. e. the spaces and the question mark do not count as letters.

 

输入输出样例

输入样例#1: 复制
Is it a melon?
输出样例#1: 复制
NO
输入样例#2: 复制
Is it an apple?
输出样例#2: 复制
YES
输入样例#3: 复制
  Is     it a banana ?
输出样例#3: 复制
YES
输入样例#4: 复制
Is   it an apple  and a  banana   simultaneouSLY?
输出样例#4: 复制
YES

#include<cstdio>
#include<cstring>
#include<iostream>
#include<algorithm>
using namespace std;
char s[1000];
int main(){
    scanf("%[^\n]",s);
    int len=strlen(s)-1;
    for(int i=len;i>=0;i--)
        if(s[i]>='a'&&s[i]<='z'||s[i]>='A'&&s[i]<='Z'){
            if(s[i]=='A'||s[i]=='a'||s[i]=='E'||s[i]=='e'||s[i]=='I'||s[i]=='i'||s[i]=='O'||s[i]=='o'||s[i]=='U'||s[i]=='u'||s[i]=='Y'||s[i]=='y')    cout<<"YES";
            else cout<<"NO";
            return 0;
        }
}

 

posted @ 2018-02-11 11:29  一蓑烟雨任生平  阅读(287)  评论(0编辑  收藏  举报