本文介绍了如何在OpenCV中最好计算光线线段的交点?并获得其交点和距原点的距离?的处理方法,对大家解决问题具有一定的参考价值,需要的朋友们下面随着小编来一起学习吧!
问题描述
我有4条线段,A,B,C和D.每条线表示为两个点.例如.线A表示为点A1和点A2.
I have 4 lines segment, A, B, C and D. Each line is represented as two points. Eg. line A is represented as point A1 and point A2.
我想要的是
- X点,A线与B线相交的点
- X和A1(原点)之间的距离
测试相交时,线A射线不应该
When testing for intersection, line A ray should not
- 与线段D相交
- 与线段C相交
我该怎么做?
推荐答案
最后使它可以在OpenCV C ++上运行.基于此 https://stackoverflow.com/a/32146853/457030 .
Finally got it working on OpenCV C++. Based on this https://stackoverflow.com/a/32146853/457030.
// return the distance of ray origin to intersection point
double GetRayToLineSegmentIntersection(Point2f rayOrigin, Point2f rayDirection, Point2f point1, Point2f point2)
{
Point2f v1 = rayOrigin - point1;
Point2f v2 = point2 - point1;
Point2f v3 = Point2f(-rayDirection.y, rayDirection.x);
float dot = v2.dot(v3);
if (abs(dot) < 0.000001)
return -1.0f;
float t1 = v2.cross(v1) / dot;
float t2 = v1.dot(v3) / dot;
if (t1 >= 0.0 && (t2 >= 0.0 && t2 <= 1.0))
return t1;
return -1.0f;
}
// use this to normalize rayDirection
Point2f NormalizeVector(Point2f pt)
{
float length = sqrt(pt.x*pt.x + pt.y*pt.y);
pt = pt / length;
return pt;
}
// gets the intersection point
Point2f GetRayIntersectionPoint(Point2f origin, Point2f vector, double distance)
{
Point2f pt;
pt.x = origin.x + vector.x * distance;
pt.y = origin.y + vector.y * distance;
return pt;
}
应该是自我解释.
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