Strange fuction |
| Time Limit: 2000/1000 MS (Java/Others) Memory Limit: 32768/32768 K (Java/Others) |
| Total Submission(s): 269 Accepted Submission(s): 233 |
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Problem Description
Now, here is a fuction: F(x) = 6 * x^7+8*x^6+7*x^3+5*x^2-y*x (0 <= x <=100) Can you find the minimum value when x is between 0 and 100.
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Input
The first line of the input contains an integer T(1<=T<=100) which means the number of test cases. Then T lines follow, each line has only one real numbers Y.(0 < Y <1e10)
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Output
Just the minimum value (accurate up to 4 decimal places),when x is between 0 and 100.
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Sample Input
2 100 200 |
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Sample Output
-74.4291 -178.8534 |
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Author
Redow
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Recommend
lcy
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分析:方法一、对导数二分求的导数为0点;方法二、直接对函数三分求最值。
二分代码:
#include<cstdio> #include<cmath> #define eps 1e-15 double f(double x,double y) { return 6 * pow(x,7)+8*pow(x,6)+7*x*x*x+5*x*x-y*x; } double g(double x) { return 42*pow(x,6)+48*pow(x,5)+21*x*x+10*x; } int main() { int T; double y,a,b,m; scanf("%d",&T); while(T--) { scanf("%lf",&y); if(g(0.0)>=y) printf("%.4f\n",f(0.0,y)); else if(g(100.0)<=y) printf("%.4f\n",f(100.0,y)); else { a=0.0; b=100.0; while(b-a>eps) { m=(a+b)/2; if(g(m)>y) b=m; else a=m; } printf("%.4f\n",f(m,y)); } } return 0; }
三分代码:
#include<cstdio> #include<cmath> #define eps 1e-15 double y; double f(double x) { return 6 * pow(x, 7) + 8 * pow(x, 6) + 7 * x * x * x + 5 * x * x - y*x; } int main() { int T; double a, b, c, d; scanf("%d", &T); while (T--) { scanf("%lf", &y); a = 0.0; b = 100.0; while (b - a > eps) { c = (a + b) / 2; d = (b + c) / 2; if (f(c) < f(d)) b = d; else a = c; } printf("%.4f\n", f(a)); } return 0; }