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I've a question regarding a line in camera coordinate.

Suppose the pixel/screen coordinate of a point is (u,v). And the camera coordinate (coordinate system relative to camera) of (u,v) is (p,q,r) where (u,v) is given and a line L goes through the point (0,0,0) [origin camera location] and (p,q,r) where r is given. Is it possible to find (p,q)?

I know that the parametric equation of a line is:

(x-a, y-b, z-c)= t(x_0, y_0, z_0)

But I know only (a,b,c) which is (0,0,0) and z_0 which is r. Can anyone kindly tell me if it is possible to find the value of (p,q)? Can I use (u,v) in some way?

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1 Answer 1

up vote 2 down vote accepted

It's not possible until you have more information about what something like (u, v) represents. Think of it this way. Suppose you claimed you could figure it out just based on (u, v) and r. Now, what if I just relabeled your pixels? A pixel doesn't have to represent any specific distance, so if I said (125, 100) was (250, 200) instead, that would make sense too. Suppose I just swap in a higher resolution chip for a lower resolution chip.

To actually recover (p, q), you'd have to know what physical distance a pixel corresponds to. You'd also have to know whether the pinhole in your camera model is (0,0) in your pixel reference frame, etc.

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Thanks for your reply. So if I know pixel size and know that if the pinhole is located at (0,0) can i then find (p,q)? What other factors do I need know? –  mvr950 Dec 19 '11 at 12:55
    
Thanks for your reply. Sorry for not understanding but you mentioned two factors. 1) what physical distance each pixel represents and 2) whether pinhole is located at (0,0) What other factors do I need to know to use the parametric equation of the line given above? Is it possible to mention them all? Again thanks for your help. –  mvr950 Dec 19 '11 at 13:07
    
That's it. If you know that points with coordinates (0, 0, z) project to (0, 0) (or (x, y) or whatever), and you also know the physical distance a pixel represents, you'll be able to find (p, q). –  Gravity Dec 19 '11 at 19:15
    
Sorry for misunderstanding. I just like to make sure. Are you saying that the camera location (0,0,0), screen/pixel plane point (0,0,z) and the projected point (p,q,r) all collinear? –  mvr950 Dec 19 '11 at 21:28
    
Thanks. I understand now. –  mvr950 Dec 19 '11 at 21:44

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