题意:每组给出三个点的坐标,求外接圆标准方程和一般方程;
思路:求三角形的外心。外心到三点中任意一点距离为半径。外心为垂直平分线的交点。
#include<cstdio> #include<cstring> #include<cmath> #include<algorithm> using namespace std; const double epsi=1e-10; inline int sign(const double &x){ if(x>epsi) return 1; if(x<-epsi) return -1; return 0; } struct point{ double x,y; point(double xx=0,double yy=0):x(xx),y(yy){} point operator +(const point &op2) const{ return point(x+op2.x,y+op2.y); } point operator -(const point &op2) const{ return point(x-op2.x,y-op2.y); } point operator *(const double &d) const{ return point(x*d,y*d); } point operator /(const double &d) const{ return point(x/d,y/d); } double operator ^(const point &op2) const{ return x*op2.y-y*op2.x; } }; inline double sqr(const double &x){ return x*x; } inline double mul(const point &p0,const point &p1,const point &p2){ return (p1-p0)^(p2-p0); } inline double dis2(const point &p0,const point &p1){ return sqr(p0.x-p1.x)+sqr(p0.y-p1.y); } inline double dis(const point &p0,const point &p1){ return sqrt(dis2(p0,p1)); } struct Line{ //中垂线 double A,B,C; Line(double a=0,double b=0,double c=0):A(a),B(b),C(c){} point cross(const Line &a) const{ //计算另一条中垂线与中垂线a的交点 double xx=-(C*a.B-a.C*B)/(A*a.B-a.A*B); double yy=-(C*a.A-a.C*A)/(B*a.A-a.B*A); return point(xx,yy); } }; inline double circumcenter(const point &p1,const point &p2,const point &p3,point &p) { p=p1+Line(p3.x-p1.x,p3.y-p1.y,-dis2(p3,p1)/2.0).cross(Line(p2.x-p1.x,p2.y-p1.y,-dis2(p2,p1)/2.0));//圆心p return dis(p,p1); //返回半径 } point p1,p2,p3,p4,p; inline int print(double x){ if(x>0) printf(" + %.3f",x); else printf(" - %.3f",-x); return 0; } int main() { while(scanf("%lf%lf%lf%lf%lf%lf",&p1.x,&p1.y,&p2.x,&p2.y,&p3.x,&p3.y)!=EOF) { double r=circumcenter(p1,p2,p3,p); printf("(x"); print(-p.x); printf(")^2 + (y"); print(-p.y); printf(")^2 ="); printf(" %.3f",r); printf("^2 "); printf("x^2 + y^2"); print(-2*p.x); printf("x"); print(-2*p.y); printf("y"); print(sqr(p.x)+sqr(p.y)-sqr(r)); printf(" = 0 "); } return 0; }