大意:中文题,很好理解,搞清楚各种变量就行。
思路:我知道的好像有两种解法,一种是求土匪的头心与子弹射出的直线求点到直线距离,在判断一下方向对不对;另一种是求出子弹射出点与土匪头心连线,求出子弹的射出的直线,求两直线的夹角, 求出子弹射出点与土匪头心连线,求出求出子弹射出点与土匪头的切线,求两直线的夹角,比较这两个夹角的大小判断是不是会打到。
这里我用第一种方法过的,就贴第一种的吧。
struct point
{
double x, y, z;
} A, B, C;
///计算cross product U x V
point xmult(point u,point v){
point ret;
ret.x=u.y*v.z-v.y*u.z;
ret.y=u.z*v.x-u.x*v.z;
ret.z=u.x*v.y-u.y*v.x;
return ret;
}
///两点距离,单参数取向量大小
double Distance(point p1,point p2){
return sqrt((p1.x-p2.x)*(p1.x-p2.x)+(p1.y-p2.y)*(p1.y-p2.y)+(p1.z-p2.z)*(p1.z-p2.z));
}
///矢量差 U - V
point subt(point u,point v){
point ret;
ret.x=u.x-v.x;
ret.y=u.y-v.y;
ret.z=u.z-v.z;
return ret;
}
///向量大小
double vlen(point p){
return sqrt(p.x*p.x+p.y*p.y+p.z*p.z);
}
double ptoline(point p,point l1,point l2){
return vlen(xmult(subt(p,l1),subt(l2,l1)))/Distance(l1,l2);
}
int n;
double h1,r1;
double h2,r2,x3,y3,z3;
void Solve()
{
scanf("%d", &n);
while(n--)
{
scanf("%lf%lf%lf%lf%lf", &h1, &r1, &A.x, &A.y, &A.z);
scanf("%lf%lf%lf%lf%lf%lf%lf%lf", &h2, &r2, &B.x, &B.y, &B.z, &C.x, &C.y, &C.z);
A.z = A.z+h1-r1;
B.z = B.z+h2*0.9-r2;
double x = A.x-B.x;
double y = A.y-B.y;
double z = A.z-B.z;
//printf("%lf %lf %lf\n", x, y, z);
point D;
D.x = C.x+B.x;
D.y = C.y+B.y;
D.z = C.z+B.z;
double d = ptoline(A, B, D);
//printf("%lf\n", d);
if(d <= r1 && (x*C.x+y*C.y+z*C.z > 0))
{
printf("YES\n");
}
else
{
printf("NO\n");
}
}
}Android 预置默认的语音信箱号码,布布扣,bubuko.com
原文:http://blog.csdn.net/fanmengke_im/article/details/23821595