以上是朋友圈中一奇葩贴:“2月14情人节了,我决定造福大家。第2个赞和第14个赞的,我介绍你俩认识…………咱三吃饭…你俩请…”。现给出此贴下点赞的朋友名单,请你找出那两位要请客的倒霉蛋。
输入格式:
输入按照点赞的先后顺序给出不知道多少个点赞的人名,每个人名占一行,为不超过10个英文字母的非空单词,以回车结束。一个英文句点.标志输入的结束,这个符号不算在点赞名单里。
输出格式:
根据点赞情况在一行中输出结论:若存在第2个人A和第14个人B,则输出“A and B are inviting you to dinner...”;若只有A没有B,则输出“A is the only one for you...”;若连A都没有,则输出“Momo... No one is for you ...”。
输入样例1:
GaoXZh
Magi
Einst
Quark
LaoLao
FatMouse
ZhaShen
fantacy
latesum
SenSen
QuanQuan
whatever
whenever
Potaty
hahaha
.
输出样例1:
Magi and Potaty are inviting you to dinner...
输入样例2:
LaoLao
FatMouse
whoever
.
输出样例2:
FatMouse is the only one for you...
输入样例3:
LaoLao
.
输出样例3:
Momo... No one is for you ...代码:
#include<iostream>
#include<string>
#include<vector>
#define N 1000
using namespace std;
vector<string> nameList;
int main()
{
//创建名单
string name;
while(cin>>name)
{
if(name==".") break;
nameList.push_back(name);
}
if(nameList.size()<14&&nameList.size()>=2)//zhiyouA
{
cout<<nameList[1]<<" is the only one for you...";
}
else if(nameList.size()>=14)//douyou
{
cout<<nameList[1]<<" and "<<nameList[13]<<" are inviting you to dinner...";
}
else//nothing
{
cout<<"Momo... No one is for you ...";
}
return 0;
}