用牛顿迭代法求方程f(x)=x^6-x-1=0在区间【1,2】内的实根,要求|f(x(k))|
#include
#include
#define eps 1e-8
void main()
{
�double a=1,b=2;
�double t,t0,f0,f00,m,n;
�t0=(a+b)/2;
�m=pow(t0,5);
�n=pow(t0,4);
�f0=6*m-1;
�f00=30*n;
�t=t0-f0/f00;
�while(fabs(t-t0)>eps)
�{
��t0=t;
��m=pow(t0,5);
� n=pow(t0,4);
��f0=6*m-1;
� f00=30*n;
� t=t0-f0/f00;
��printf("t0=%12.10lf,t=%12.10lf\n",t0,t);
�}
�printf("用Newton切线法得:%12.10lf\n",t);
}
结果为:
t0=1.2065843621,t=0.9809945654
t0=0.9809945654,t=0.8207881793
t0=0.8207881793,t=0.7300742137
t0=0.7300742137,t=0.7013898132
t0=0.7013898132,t=0.6988457773
t0=0.6988457773,t=0.6988271198
t0=0.6988271198,t=0.6988271188
用Newton切线法得:0.6988271188
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