解题思路:1、判断deta的值;deta>0,x1=-b+sqrt(deta)/2*a;x2=-b-sqrt(deta)/2*a;
deta=0,x1、x2=-b/2*a;此题不需考虑复数解得情况,若考虑,则在子函数中增加else条件就可以了。
注意事项:C++中,用sqrt()时,应加上头文件manth.h,否则会报错;
参考代码:
#include
#include
#include
using namespace std;
double qdeta(double a, double b, double c)
{
double deta;
deta = pow(b, 2) - 4.0*a*c;
return deta;
}
void result(double deta, double a, double b, double c)
{
double x1, x2;
if (deta > 0)
{
x1 = (-b + sqrt(deta)) / (2.0*a);
x2 = (-b - sqrt(deta)) / (2.0*a);
cout << fixed<
}
else if (deta == 0)
{
x1 = x2 = -b / (2.0*a);
cout << fixed << setprecision(2) << x1 << ' ' << x2 << endl;
}
}
int main()
{
double a, b, c, deta;
while (cin >> a >> b >> c)
{
deta = qdeta(a, b, c);
result(deta, a, b, c);
}
return 0;
}
扫一扫
被折叠的 条评论
为什么被折叠?
到【灌水乐园】发言
