A Simple Math Problem HDU - 5974
A Simple Math Problem HDU - 5974
转自http://www.cnblogs.com/kimsimple/p/6792395.html
题意
Given two positive integers a and b,find suitable X and Y to meet the conditions:
X+Y=a
Least Common Multiple (X, Y) =b
分析
x*y = b*gcd(x,y);
设 gcd(x,y) = d;
x =i * d;
y = j * d;
a = (i + j)*d;
b = i*j*d;
gcd(a,b) = d;
x*y = b*gcd(a,b);
x + y = a;
解一元二次方程可得解
参考代码
int gcd(int a,int b)
{
return b==0?a:gcd(b,a%b);
}
int main(void)
{
int a,b;
while(~scanf("%d %d",&a,&b))
{
int tmp = a*a-4*b*gcd(a,b);
if(tmp < 0)
{
printf("No Solution\n");
continue;
}
double t = sqrt(tmp);
t = (a-t)/2;
if(t-(int)t>1e-6)
{
printf("No Solution\n");
continue;
}
tmp = t;
printf("%d %d\n",tmp,a-tmp);
}
}