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I have this issue which I have possibly overcomplicated in my head. I've been at it for a long time now and I would appreciate if someone could give me some direction.

So what I'm trying to do, is map coordinates on an image taken from the sky, to a coordinate on a flat surface on the ground. This is fine from directly above a point, I can just scale my coordinates by some factor calculated using basic trigonometry.

The problem is if the camera was at an angle.

http://i61.tinypic.com/359wsok.png [Note, Height is the Z axis here]

I hope my diagram makes sense. The centre line (the one which ends at (x2,y2) bisects the 2 other lines i.e. each of the outer lines are (1/2)a degrees from the centre one. I understand that this could get very complicated. The more horizontal the camera points, the more surface is going to be in view of the image. Clearly this means that the distance between 2 pixels at the furtherest away parts of the image is greater than the distance between the closer pixels which are 'magnified' in a sense. If I could manage something that works reasonably well for even just 40 degrees from vertical, that would be great.

My first attempt was to get the size of the surface that is in view, then use that to scale my coordinates. However, I do not believe this worked. (x2,y2) may not be in the centre of the captured surface and also there is some kind of offset that needs to be added to the coordinates since the captured surface is not directly below.

I hope that was all clear. If you need more information please let me know. I'm just going around in circles a bit.

Thanks

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So you have an aerial image and you want to know where a specific point in the image is on the ground? His is a classical problem of aerial mapping. You need the size of the image sensor, the focal length of the camera and of course position and orientation of where the image was taken. Then its a simple ray-surface intersection. I'll be able to explain the details later. –  PMF Mar 22 '14 at 18:20
    
@PMF Yes, that is exactly what I mean! When you say size of the image sensor, what do you mean? One thing I should say, is that these are images of a virtual surface so are not taken from a 'real' camera. –  Jason Mar 22 '14 at 18:26

1 Answer 1

up vote 1 down vote accepted

I'll try to give an overview over the algorithm used to solve this kind of problem. First, we need to know the physical characteristics of the camera, that is focal length and real size of the images it takes, together with the size in pixels. If I'm saying the "real" size of the image that really means the size of the image (or maybe, easier imaginable, the size of the negative of a classical film camera). Example values for a typical medium format camera for aerial mapping would be 50mm focal length, 9000*6800 pixels, with 6microns pixel size, giving ~40x54mm image size.

The algorithm to compute the position of one pixel on the ground is (adapted to use an LSR system, one might do it with geographic coordinates as well):

public void ImageToGround(Camera sensor, double posx, double posy, double posz, 
    double dDeltaX, double dDeltaY, 
    Matrix4D rotationMatrixItg, 
    double groundheight, out double resultx, out double resultx)
    {
        // The rotation matrix is right-handed, with x pointing in flight direction, y to the right and z down.
        // The image cs is increasing x to the right and y to the bottom (y = 0 is front in flight direction)
        Vector3D imagePointRelativeToFocalPoint = new Vector3D(
             dDeltaX,
             dDeltaY,
             -sensor.MetricFocalLength);

         // Transform from img to camera coord system and rotate.
         // The rotation Matrix contains the transformation from image coordinate system to camera
         // coordinate system. 
         Vector3D imagePointRotated = rotationMatrixItg * imagePointRelativeToFocalPoint;

         double dir, dist;

         // Create a horizontal plane at groundheight, pointing upwards. (Z still points down)
         Plane plane = new Plane(new Vector3D(0, 0, -1), new Vector3D(0, 0, -groundheight));

         // And a ray, starting at the given image point (including the real height of the image position).
         // Direction is opposite to the vector given above (from image to focal point). 
         Ray start = new Ray(new Vector3D(imagePointRotated.X, imagePointRotated.Y, imagePointRotated.Z - evHASL), 
    -(new Vector3D(imagePointRotated.X, imagePointRotated.Y, imagePointRotated.Z)));

         // Find the point where the ray intersects the plane (this is on the opposite side of the
         // x and y axes, because the ray goes trough the origin). 
         IntersectionPair p = start.Intersects(plane);
         if (p.NumIntersections < 1)
         {
             resultx = 0;
             resulty = 0;
             return;
         }

         resultx = p.Intersection1.x;
         resulty = p.Intersection1.y;

   }

with posx, posy, posz: Position of image center; dDeltaX, dDeltaY: Position (in meters) of the pixel on the focal plane; rotationMatrixItg: Image to ground rotation matrix, created from yaw, pitch, roll of the image; groundheight: Elevation of the ground; resultx, resulty: Result position on the ground. I have simplified the algorithm, so you might need to adjust it to meet your needs.

The problem gets more complex when the terrain is not flat. If the whole image needs to be projected to the ground, one usually goes the inverse way, because that is more easy for interpolation and can be done in parallel.

I don't exactly know what you mean by "virtual" images, because also those are created by a projection, so there exist some theoretical image parameters that can be used.

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Right, I see. This looks far more reliable than my previous method. What I meant was that all this exists in a kind of game world. I will give it a try, thanks a lot! –  Jason Mar 23 '14 at 12:47
    
It isn't really different in a game world. If you created the image by creating a screen shot, then you have most of the values given already: Screen size in pixels = image size in pixels; focal length = near plane; The real image size can be computed from the field of view. –  PMF Mar 23 '14 at 13:02
    
Yes I was using the field of view to compute this. It was the focal lengthy part that confused me, makes sense now. –  Jason Mar 23 '14 at 13:32

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