Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I am attempting to calculate the point of intersection between lines for a Optical Flow algorithm using a Hough Transform. However, I am not getting the points that I should be when I use my algorithm for calculating the intersections.

I save the Lines as an instance of a class that I created called ImageLine. Here is the code for my intersection method.

Point ImageLine::intersectionWith(ImageLine other)
{
    float A2 = other.Y2() - other.Y1();
    float B2 = other.X2() - other.X1();
    float C2 = A2*other.X1() + B2*other.Y1();

    float A1 = y2 - y1;
    float B1 = x2 - x1;
    float C1 = A1 * x1 + B1 * y1;

   float det = A1*B2 - A2*B1;
   if (det == 0)
   {
        return Point(-1,-1);
   }
   Point d = Point((B2 * C1 - B1 * C2) / det, -(A1 * C2 - A2 * C1) / det);
   return d;
}

Is this method correct, or did I do something wrong? As far as I can tell, it should work, as it does for a single point that I hard-coded through, however, I have not been able to get a good intersection when using real data.

share|improve this question

3 Answers 3

(det == 0) is unlikely to be true when you're using floating-point arithmetic, because it isn't precise.

Something like (fabs(det) < epsilon) is commonly used, for some suitable value of epsilon (say, 1e-6).

If that doesn't fix it, show some actual numbers, along with the expected result and the actual result.

share|improve this answer
    
When dealing with real data, nearly parallel lines are also unlikely... but that isn't the real issue, what happens is that where real lines are supposed to intersect is not returned. (I visually display the data for debugging purposes. –  AndrewSchade May 13 '13 at 14:40
    
So what is returned? What are your inputs? What are the intermediate values? –  Useless May 13 '13 at 15:07

I will talk a little on the maths side...

y = m1 * x + c1
y = m2 * x + c2

The point of intersection is X , Y is the point which satisfies both equation i.e.

Y = m1 * X + c1 
Y = m2 * X + c2

i.e

m1 * X + c1 = m2 * X + c2
  => X = - (c2-c1)/(m2-m1)

And

(Y-c1) / m1 = (Y - c2)/m2  
=> Y = m1c2 - c1m2 / m2-m1

How to calculate c1,m1 and c2,m2? Get any 2 points of a line and put them in the line equations

share|improve this answer
    
Y = m1c2 - c1m2 / m2-m1 = m1c2 - c1-m1 ??? –  Nick X Tsui Mar 18 at 4:55

Assuming your formulas are correct, try declaring all your intermediate arguments as 'double'. Taking the difference of nearly parallel lines could result in your products being very close to each other, so 'float' may not preserve enough precision.

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.