• Codeforces Round #564 (Div. 2)A


    A. Nauuo and Votes

    题目链接:http://codeforces.com/contest/1173/problem/A

    题目

    Nauuo is a girl who loves writing comments.

    One day, she posted a comment on Codeforces, wondering whether she would get upvotes or downvotes.

    It's known that there were xpersons who would upvote, yy  y persons who would downvote, and there were also another z persons who would vote, but you don't know whether they would upvote or downvote. Note that each of the x+y+z people would vote exactly one time.

    There are three different results: if there are more people upvote than downvote, the result will be "+"; if there are more people downvote than upvote, the result will be "-"; otherwise the result will be "0".

    Because of the z z   unknown persons, the result may be uncertain (i.e. there are more than one possible results). More formally, the result is uncertain if and only if there exist two different situations of how the z  z    persons vote, that the results are different in the two situations.

    Tell Nauuo the result or report that the result is uncertain.

    Input

    The only line contains three integers x,y,z(0=<x,y,z<=100) x, corresponding to the number of persons who would upvote, downvote or unknown.

    Output

    If there is only one possible result, print the result : "+", "-" or "0".

    Otherwise, print "?" to report that the result is uncertain.

    Example

    intput

    3 7 0

    output

    -

    题意

    There are there numbers  , they are x , y and z.   you can give z to x and y,

    if x are the most ,you can output "+",

    if y are the most ,you can output "-",

    if you are not sure which are the most,you should output "?".

    思路

    it's a easy problem,you can compare  a and b+c,b and a+c.

    #include<bits/stdc++.h>
    using namespace std;
    int main()
    {
    
        int a,b,c;
        while(cin>>a>>b>>c)
        {
            if(a==b&&c==0)
                cout<<0<<endl;
            else if(a>b+c)
                cout<<"+"<<endl;
            else if(b>a+c)
                cout<<"-"<<endl;
            else
                cout<<"?"<<endl;
        }
        return 0;
    }
  • 相关阅读:
    JAVA反射机制--静态加载与动态加载
    MyEclipse导入Hibernate出现Path must include project and resource;/project name
    服务器和java程序的桥梁--jdbc/hibernate
    AndroidStudio快捷键大全
    AndroidStudio怎么实现微信分享功能
    《一面》
    java泛型
    java设计模式-Observer(2)
    java设计模式-Observe
    HashSet的自定义实现
  • 原文地址:https://www.cnblogs.com/Vampire6/p/10992347.html
Copyright © 2020-2023  润新知