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CF--1624B.Make AP

mm_tang 2022-05-01 阅读 61

Polycarp has 33 positive integers aa, bb and cc. He can perform the following operation exactly once.

  • Choose a positive integer mm and multiply exactly one of the integers aa, bb or cc by mm.

Can Polycarp make it so that after performing the operation, the sequence of three numbers aa, bb, cc (in this order) forms an arithmetic progression? Note that you cannot change the order of aa, bb and cc.

Formally, a sequence x_1, x_2, \dots, x_nx1​,x2​,…,xn​ is called an arithmetic progression (AP) if there exists a number dd (called "common difference") such that x_{i+1}=x_i+dxi+1​=xi​+d for all ii from 11 to n-1n−1. In this problem, n=3n=3.

For example, the following sequences are AP: [5, 10, 15][5,10,15], [3, 2, 1][3,2,1], [1, 1, 1][1,1,1], and [13, 10, 7][13,10,7]. The following sequences are not AP: [1, 2, 4][1,2,4], [0, 1, 0][0,1,0] and [1, 3, 2][1,3,2].

You need to answer tt independent test cases.

Input

The first line contains the number tt (1 \le t \le 10^41≤t≤104) — the number of test cases.

Each of the following tt lines contains 33 integers aa, bb, cc (1 \le a, b, c \le 10^81≤a,b,c≤108).

Output

For each test case print "YES" (without quotes) if Polycarp can choose a positive integer mm and multiply exactly one of the integers aa, bb or cc by mm to make [a, b, c][a,b,c] be an arithmetic progression. Print "NO" (without quotes) otherwise.

You can print YES and NO in any (upper or lower) case (for example, the strings yEs, yes, Yes and YES will be recognized as a positive answer).

Sample 1

InputcopyOutputcopy
11
10 5 30
30 5 10
1 2 3
1 6 3
2 6 3
1 1 1
1 1 2
1 1 3
1 100000000 1
2 1 1
1 2 2
YES
YES
YES
YES
NO
YES
NO
YES
YES
NO
YES

Note

In the first and second test cases, you can choose the number m=4m=4 and multiply the second number (b=5b=5) by 44.

In the first test case the resulting sequence will be [10, 20, 30][10,20,30]. This is an AP with a difference d=10d=10.

In the second test case the resulting sequence will be [30, 20, 10][30,20,10]. This is an AP with a difference d=-10d=−10.

In the third test case, you can choose m=1m=1 and multiply any number by 11. The resulting sequence will be [1, 2, 3][1,2,3]. This is an AP with a difference d=1d=1.

In the fourth test case, you can choose m=9m=9 and multiply the first number (a=1a=1) by 99. The resulting sequence will be [9, 6, 3][9,6,3]. This is an AP with a difference d=-3d=−3.

In the fifth test case, it is impossible to make an AP.

#include<bits/stdc++.h>
using namespace std;
int a,b,c;

int main()
{
	int t;
	cin>>t;
	while(t--)
	{
		cin>>a>>b>>c;
		if((a+c)>(2*b))//a+c大了,那么就让b也变大 
		{
			if((a+c)%(2*b)==0)
			cout<<"YES"<<endl;
			else
			cout<<"NO"<<endl;
		}
		else if((a+c)<(2*b))//为了使两边相等,那么增大a或者是c 
		{
			if(((2*b)-a)%c==0)
			cout<<"YES"<<endl;
			else if(((2*b)-c)%a==0)
			cout<<"YES"<<endl;
			else 
			cout<<"NO"<<endl;
			 
		}
		else
		{
			cout<<"YES"<<endl;
		}
	}
	return 0;
}
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