There is a point PP at coordinate (x,y)(x,y). A line goes through the point, and intersects with the postive part of X,YX,Y axes at point A,BA,B. Please calculate the minimum possible value of |PA|*|PB|∣PA∣∗∣PB∣.

the first line contains a positive integer T,means the numbers of the test cases.

the next T lines there are two positive integers X,Y,means the coordinates of P.

T=500T=500,0< X,Y\leq 100000<X,Y≤10000.

T lines,each line contains a number,means the answer to each test case.

1

2 1

4

in the sample P(2,1)P(2,1),we make the line y=-x+3y=−x+3,which intersects the
 positive axis of X,YX,Y at (3,0),(0,3).|PA|=\sqrt{2},|PB|=2\sqrt{2},
|PA|*|PB|=4∣PA∣=√​2​​​,∣PB∣=2√​2​​​,∣PA∣∗∣PB∣=4,the answer is checked to be the best answer.
题解：简单高中数学题，算下就可以得到2xy；
代码：

#include<iostream>

#include<cstring>

#include<cstdio>

#include<cmath>

#include<algorithm>

#include<set>

using namespace std;

#define mem(x,y) memset(x,y,sizeof(x))

#define SI(x) scanf("%d",&x)

#define SL(x) scanf("%lld",&x)

#define  PI(x) printf("%d",x)

#define  PL(x) printf("%lld",x)

#define P_ printf(" ")

const int INF=0x3f3f3f3f;

const double PI=acos(-1.0);

int main(){

	int T,x,y;

	SI(T);

	while(T--){

		SI(x);SI(y);

		printf("%d\n",2*x*y);

	}

	return 0;

}