相当于y是个常数求 F(x) = 6 * x^7+8*x^6+7*x^3+5*x^2-y*x (0 <= x <=100)这个函数的最小值,令F' = 0,得出x,y的方程,用二分法解方程得x0(易证得x0>=0 && x0<=100),则F'(x0) = 0,由F'' 在[0-100]上恒大于0,所以F'在[0-100]上单增,所以F'(x)<0(x<x0),F'(x)>0(x>x0),所以F(x)在x=x0处取得最小值,所以本题主要就是二分求解方程的x0,然后直接带入x0,y计算即可。


#include<cstdio>
#include<cmath>
#include<cstdlib>
const double eps = 1e-6;
double cal(double x){
    return 42*pow(x,6.0)+48*pow(x,5.0)+21*pow(x,2.0)+10*x;
}
double gao(double x,double y){
    return 6*pow(x,7)+8*pow(x,6)+7*pow(x,3)+5*pow(x,2)-x*y;
}

int main()
{
    int t;
    double low,high,y,x,res;

    scanf("%d",&t);
    while(t--){
        scanf("%lf",&y);
        low=0.0;
        high=100.0;
        while(high-low>eps){
            x=(low+high)/2;
            res=cal(x);
            if(res<y) {
                low = x + 1e-8;
            }else {
                high = x - 1e-8;
            }
        }
        printf("%0.4lf\n",gao(x,y));
    }
    return 0;
}