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I would like to know the height and width of a given pixel given the zoom level of a Google Map.

I can see that different zoom levels affect the scale: http://maps.google.com/maps?q=10.0,0.0&z=2 and http://maps.google.com/maps?q=10.0,0.0&z=3 have different sized Niger, for example.

Also, I can see that the latitude matters: On http://maps.google.com/maps?q=50.0,0.0&z=3, Spain and Iceland appear to be the same width but Spain is actually about twice as wide.

Map bounds seem not to matter because resizing the window or dragging the view around doesn't affect the size of countries. (The scale legend is affected, however, but I don't care about it.)

It seems that the answer should depend on some combination of zoom level and latitude of pixel in question. It seems that both width and height are affected. Longitude seems to have no effect. An numerical solution would be best.

(I want this so that I can pre-process a list of coordinates to remove coordinates that would appear in the same pixel.)

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What do you mean by 'width'? Distance by kms or miles of 1 pixel? Or how much (delta_lat,delta_lng) is 1 pixel? –  Engineer May 17 '12 at 9:20
    
Yes. The width of a pixel in meters along the Earth's surface. –  Eyal May 17 '12 at 9:22

1 Answer 1

I found something close enough from my purposes. This will convert lat,lng to x,y.

#from view-source:https://google-developers.appspot.com/maps/documentation/javascript/examples/map-coordinates
sub lat_lng_zoom_to_point ($$$) {
  my ($lat, $lng, $zoom) = @_;
  my $x = 128 + $lng * (256/360);
  my $siny = sin(deg2rad($lat));
  $siny = $siny < -0.9999 ? -0.9999 : $siny > 0.9999 ? 0.9999 : $siny;
  my $y = 128 + 0.5 * log((1 + $siny) / (1 - $siny)) * -(256/(2 * pi));
  return($x * (1 << $zoom), $y * (1 << $zoom));
}
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I've been working on a lot of Google Maps-related stuff lately, and I've come across a few algorithms that might help you out, if you're still interested. It seems that your question can be broken down into two questions: "what's the width of a pixel, in metres?", which is still unanswered, and your ultimate objective, which is pre-processing a list of coordinates to get rid of multiple coordinates per pixel, which is solved by your answer. But if we want to complete the first half of this question, I can post a few bits of code too. –  Paul d'Aoust Jul 24 '12 at 17:48

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