作业帮C语言求二元一次方程的根
来源:学生作业帮 编辑:作业帮 分类:综合作业 时间:2024/07/14 05:27:56
C语言求二元一次方程的根
以下是我写的程序,哪里错了?
#include
#include
double a,b,c;
double s;
void main()
{
double e,f;
printf("Please input coefficient:\n");
scanf("%lf,%lf,%lf",&a,&b,&c);
s=sqrt(b*b-4*a*c);
printf("The equation is %lf x^2 + %f x + %f\n",a,b,c);
double d(double a ,double b,double c,double e,double f);
double de(double a ,double b,double c);
void x(double a ,double b,double c);
if(s>0)
{
d(a,b,c,e,f);
printf("%lf\n",e);
printf("%lf\n",f);
}
else if(s=0)
{
e=de(a,b,c);
printf("%lf\n",e);
}
else if(s
以下是我写的程序,哪里错了?
#include
#include
double a,b,c;
double s;
void main()
{
double e,f;
printf("Please input coefficient:\n");
scanf("%lf,%lf,%lf",&a,&b,&c);
s=sqrt(b*b-4*a*c);
printf("The equation is %lf x^2 + %f x + %f\n",a,b,c);
double d(double a ,double b,double c,double e,double f);
double de(double a ,double b,double c);
void x(double a ,double b,double c);
if(s>0)
{
d(a,b,c,e,f);
printf("%lf\n",e);
printf("%lf\n",f);
}
else if(s=0)
{
e=de(a,b,c);
printf("%lf\n",e);
}
else if(s
#include
#include
#include
void main()
{
double a,b,c;
double s;
double *e,*f;
void d(double a ,double b,double c,double s,double* e,double* f);
void de(double a ,double b,double c,double *e);
void x();
e=(double*)malloc(sizeof(double));
f=(double*)malloc(sizeof(double));
*e=0;
*f=0;
printf("Please input coefficient:\n");
scanf("%lf%lf%lf",&a,&b,&c);
if(a==0)
{
if(b==0&&c==0)
printf("x is any number");
if(b==0&&c!=0)
x();
if(b!=0)
{
*e=-c/b;
printf("%lf",*e);
}
}
else
{
s=(b*b-4*a*c);
if(s0)
{
d(a,b,c,s,e,f);
printf("%lf\n",*e);
printf("%lf\n",*f);
}
else if(s==0)
{
de(a,b,c,e);
printf("%lf\n",*e);
}
}
}
}
void d(double a ,double b,double c,double s,double *e ,double *f)
{
double m,n;
m=-0.5*(b+s)/a;
n=-0.5*(b-s)/a;
*e=m;
*f=n;
}
void de(double a ,double b,double c,double *e)
{
double m;
m=-0.5*b/a;
*e=m;
}
void x()
{
printf("The equation has no root!\n");
}
这是改后正确的代码,以下是你代码的错误:
1.函数如果想在main中声明,不能在执行语句后声明.
2.当调用d(double a...)函数时,e和f作为参数穿过去只是他们的值,在函数内部对它们赋值是不能改变他们内存真正的值的.
3.if(s=0)是对s赋值使s=0,如果是判断应该是if(s==0).
4.x函数中参数a、b、c没有用到,而且你已经把abc设为全局变量,就不需要把他们当成参数传递,所以我把所有变量都改为局部变量.
5.d函数的算法错误,应该是e=-(b+s)/2a;f=-(b-s)/2a;
6.你没有考虑当a=0,b=0,时的情况.
7.当b2-4ac
#include
#include
void main()
{
double a,b,c;
double s;
double *e,*f;
void d(double a ,double b,double c,double s,double* e,double* f);
void de(double a ,double b,double c,double *e);
void x();
e=(double*)malloc(sizeof(double));
f=(double*)malloc(sizeof(double));
*e=0;
*f=0;
printf("Please input coefficient:\n");
scanf("%lf%lf%lf",&a,&b,&c);
if(a==0)
{
if(b==0&&c==0)
printf("x is any number");
if(b==0&&c!=0)
x();
if(b!=0)
{
*e=-c/b;
printf("%lf",*e);
}
}
else
{
s=(b*b-4*a*c);
if(s0)
{
d(a,b,c,s,e,f);
printf("%lf\n",*e);
printf("%lf\n",*f);
}
else if(s==0)
{
de(a,b,c,e);
printf("%lf\n",*e);
}
}
}
}
void d(double a ,double b,double c,double s,double *e ,double *f)
{
double m,n;
m=-0.5*(b+s)/a;
n=-0.5*(b-s)/a;
*e=m;
*f=n;
}
void de(double a ,double b,double c,double *e)
{
double m;
m=-0.5*b/a;
*e=m;
}
void x()
{
printf("The equation has no root!\n");
}
这是改后正确的代码,以下是你代码的错误:
1.函数如果想在main中声明,不能在执行语句后声明.
2.当调用d(double a...)函数时,e和f作为参数穿过去只是他们的值,在函数内部对它们赋值是不能改变他们内存真正的值的.
3.if(s=0)是对s赋值使s=0,如果是判断应该是if(s==0).
4.x函数中参数a、b、c没有用到,而且你已经把abc设为全局变量,就不需要把他们当成参数传递,所以我把所有变量都改为局部变量.
5.d函数的算法错误,应该是e=-(b+s)/2a;f=-(b-s)/2a;
6.你没有考虑当a=0,b=0,时的情况.
7.当b2-4ac