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I have never done this sort of thing before,but what I am doing is making a 3D sphere (which has earth like texture) like shape where I want to plot locations onto it using the latitude and longitude from google maps of specific locations.Now I am wondering , my sphere radius is obviously smaller than earths radius, would this still effect the position of the latitude and longitude values to xyz given the following formula:

tx = radiusOfSphere * cos(latitude) * cos(longitude);
ty = radiusOfSphere * -sin(latitude);
tz = radiusOfSphere * cos(latitude) * sin(longitude);
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up vote 1 down vote accepted

Yes.

  • tx^2 + ty^2 + tz^2 = radius^2 & math = radius^2, so you are on your sphere.
  • if latitude=0, then ty = 0, so you are on a circle parallel to the equator.
  • if longitude=0, then tz = 0 so you are on the a meridian.

Just check that you are in xyz not xzy or zyx, and that North is x>0 and East y>0, or whatever signs are compatible with point of view of your 3D rendering soft.

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Ok,well I am using processing which is a java library.So if I use 6371 as earths radius,would I be able to somehow rescale/extract the new longitude and latitude values if my sphere is of radius 250. – Tohmas Mar 4 '13 at 22:55
    
Best way is to try. I remember a day spend in changing the sing of y (which was a z in the soft) before to realize that I was in fact plotting point inside the sphere. – AlainD Mar 4 '13 at 23:06
    
Hmm,tried changing the x,y,z around to see what happens,get really weird results,not what I was expecting. :/ – Tohmas Mar 4 '13 at 23:08
    
Best way is to try. I remember a day spend in changing the sing of y (which was a z in the soft) before to realize that I was in fact plotting point inside the sphere -- Try London, Paris, Boston, New York, Washington and Melbourne to see if you agree with Processing's space representation. – AlainD Mar 4 '13 at 23:15

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