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Codeforces Round #353 (Div. 2) A. Infinite Sequence

时间:2016-05-22 16:44:49      阅读:126      评论:0      收藏:0      [点我收藏+]

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Vasya likes everything infinite. Now he is studying the properties of a sequence s, such that its first element is equal to a (s1 = a), and the difference between any two neighbouring elements is equal to c (si - si - 1 = c). In particular, Vasya wonders if his favourite integer bappears in this sequence, that is, there exists a positive integer i, such that si = b. Of course, you are the person he asks for a help.

Input

The first line of the input contain three integers ab and c ( - 109 ≤ a, b, c ≤ 109) — the first element of the sequence, Vasya‘s favorite number and the difference between any two neighbouring elements of the sequence, respectively.

Output

If b appears in the sequence s print "YES" (without quotes), otherwise print "NO" (without quotes).

Examples
input
1 7 3
output
YES
input
10 10 0
output
YES
input
1 -4 5
output
NO
input
0 60 50
output
NO
Note

In the first sample, the sequence starts from integers 1, 4, 7, so 7 is its element.

In the second sample, the favorite integer of Vasya is equal to the first element of the sequence.

In the third sample all elements of the sequence are greater than Vasya‘s favorite integer.

In the fourth sample, the sequence starts from 0, 50, 100, and all the following elements are greater than Vasya‘s favorite integer.

 

 都是细节问题 害的我WA了一发

#include<iostream>
#include<cmath>
using namespace std;
int main()
{
    int a1,s,d,q=0;
    cin>>a1>>s>>d;
    if(a1==s)
    cout<<"YES"<<endl;
    else if(a1!=s&&d==0)
    {
        if(a1==s)
        cout<<"YES"<<endl;
        else
        cout<<"NO"<<endl;
    }
    else if((s-a1)/d>0&&(s-a1)%d==0)
    cout<<"YES"<<endl;
    else
    cout<<"NO"<<endl;
} 

 

Codeforces Round #353 (Div. 2) A. Infinite Sequence

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原文地址:http://www.cnblogs.com/wangmenghan/p/5516932.html

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