题目链接:Barcelonian Distance
题意:给定方格坐标,方格坐标上有两个点A,B和一条直线。规定:直线上沿直线走,否则沿方格走。求A到B的最短距离。
题解:通过直线到达的:A、B两点都有两种方式到直线上,最多4种情况,每种情况求出A、B点到直线的距离和直线上新的两点间距离,取4种情况中最优的。
不通过直线到达:$abs(x1-x2)+abs(y1-y2)$,最后与通过直线到达的最优情况比较,得到最优解。
#include <cmath>
#include <cstdio>
#include <algorithm>
using namespace std; double a,b,c,ans;
double x1,y1,x2,y2; double calx(double y){
return (-c-b*y)/a;
} double caly(double x){
return (-c-a*x)/b;
} double cal1(double x1,double x2){
double X1,X2,Y1,Y2;
double res=;
X1=x1;Y1=caly(x1);
res+=abs(Y1-y1);
X2=x2;Y2=caly(x2);
res+=abs(Y2-y2);
res+=sqrt((X1-X2)*(X1-X2)+(Y1-Y2)*(Y1-Y2));
return res;
} double cal2(double x1,double y2){
double X1,X2,Y1,Y2;
double res=;
X1=x1;Y1=caly(x1);
res+=abs(Y1-y1);
X2=calx(y2);Y2=y2;
res+=abs(X2-x2);
res+=sqrt((X1-X2)*(X1-X2)+(Y1-Y2)*(Y1-Y2));
return res;
} double cal3(double y1,double x2){
double X1,X2,Y1,Y2;
double res=;
X1=calx(y1);Y1=y1;
res+=abs(X1-x1);
X2=x2;Y2=caly(x2);
res+=abs(Y2-y2);
res+=sqrt((X1-X2)*(X1-X2)+(Y1-Y2)*(Y1-Y2));
return res;
} double cal4(double y1,double y2){
double X1,X2,Y1,Y2;
double res=;
X1=calx(y1);Y1=y1;
res+=abs(X1-x1);
X2=calx(y2);Y2=y2;
res+=abs(X2-x2);
res+=sqrt((X1-X2)*(X1-X2)+(Y1-Y2)*(Y1-Y2));
return res;
} int main(){
scanf("%lf%lf%lf",&a,&b,&c);
scanf("%lf%lf%lf%lf",&x1,&y1,&x2,&y2);
double ans=abs(x1-x2)+abs(y1-y2);
if(a==||b==){
printf("%.10f\n",abs(x1-x2)+abs(y1-y2));
return ;
}
ans=min(ans,cal1(x1,x2));
ans=min(ans,cal2(x1,y2));
ans=min(ans,cal3(y1,x2));
ans=min(ans,cal4(y1,y2));
printf("%.10f\n",ans);
return ;
}