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This is my database table (spots).

enter image description here

Given a point on map P(longitude, latitude), what I want to retrieve from the database is the set of points within a given radius where P is the center. I tried a simple query using the simple formula of Longitude and Latitude, unfortunately the result is always null :( . What am I doing wrong here? Any idea?

$sql = "SELECT * FROM $tbl_name 
WHERE ACOS(SIN('".$latitude."') * SIN(spots.latitude) + COS('".$latitude."') * COS(spots.latitude) * COS(spots.longitude - '".$longitude    ."')) * 6371 <= '".$radius."'";
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Try to see if this helps, Im not sure: $sql = "SELECT * FROM $tbl_name WHERE ACOS(SIN($latitude) * SIN(spots.latitude) + COS($latitude) * COS(spots.latitude) * COS(spots.longitude - $longitude)) * 6371 <= $radius"; –  Dimme Dec 25 '11 at 17:48
    
PostgreSQL has great support for geo queries :-) –  Sergio Tulentsev Dec 25 '11 at 17:48
    
I'm confused. You ware trying to retrieve rows where the longitude & latitude are within a given radius? –  MrGlass Dec 25 '11 at 17:51
    
@Dimme: You meant I don't need the extra single quotes? –  Chan Dec 25 '11 at 17:52
    
@MrGlass: Yes, I just realize I interpreted my question badly. Edited. –  Chan Dec 25 '11 at 17:53

3 Answers 3

The way I would solve this problem is create a geographic "box", simply by choosing lat between lat + max lat distance using radius and lat - max lat distance (the same for longitude).

Then, I would calculate in PHP which of those points actually satisfy your criteria (the circle inscribed in the box) rather than perform a complex calculation on every row. This should make the calculation easier and increase performance.

Here is a C# example of the query (lon1 and lat1 being the center lat and lon). I am not proficient enough in PHP to create a PHP example and if someone would like to add one that would be great:

        double minLon = lon1 - maxDistance / Math.Abs(Math.Cos((lat1 / 180) * Math.PI) * 69);
        double maxLon = lon1 + maxDistance / Math.Abs(Math.Cos((lat1 / 180) * Math.PI) * 69);
        double minLat = lat1 - (maxDistance / 69);
        double maxLat = lat1 + (maxDistance / 69);
        String query = "SELECT [idColumn], [latitude], [longitude] FROM [db].[dbo].[table] WHERE [latitude] BETWEEN " + minLat + " AND " + maxLat + " AND [longitude] BETWEEN " + minLon + " AND " + maxLon;

And here is how I calculated the distance from these points:

        double r = 3956.087107103049;
        return (r * 2) * Math.Asin(Math.Sqrt(Math.Pow(Math.Sin((lat1 - lat2) / 2), 2) + Math.Cos(lat1) * Math.Cos(lat2) * Math.Pow(Math.Sin((lon1 - lon2) / 2), 2)));
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Thanks a lot for the info. Could you elaborate it by providing a brief example? –  Chan Dec 25 '11 at 17:50
    
Yes, I added an example in C# that shows the query creation and later calculating actual distance. –  Cameron S Dec 25 '11 at 18:05
1  
Thank you for posting the example. –  Chan Dec 25 '11 at 18:21
    
Could you elaborate what you did sir? I'm not getting it.. –  Gauraw Yadav Nov 24 '12 at 4:31
    
@Guarav, we can easily use the above Haversine formula to calculate the difference between two points (the last line), but we don't want to do that on all the points in the database since it's not necessary. We can first select a rectangle around the ellipse we're testing for from the database by overestimating the range of lat/long. Then, for those points inside the rectangle, we actually run the full comparison. –  Cameron S Nov 26 '12 at 23:17
up vote 1 down vote accepted

Based on Cameron S's & MrGlass's ideas, and a bit searching over the Internet, I found one working solution:

$R = 6371;
$max_lat = $lat + rad2deg($r/$R);
$min_lat = $lat - rad2deg($r/$R);

$max_lon = $lon + rad2deg($r/$R/cos(deg2rad($lat)));
$min_lon = $lon - rad2deg($r/$R/cos(deg2rad($lat)));
$lat = deg2rad($lat);
$lon = deg2rad($lon);

$sql = "
select id, name, description, latitude, longitude, 
       acos(sin($lat)*sin(radians(latitude)) + cos($lat)*cos(radians(latitude))*cos(radians(longitude)-$lon)) * $R as D
from (
  select id, name, description, latitude, longitude 
  from $tbl_name 
  where latitude > $min_lat and latitude < $max_lat
    and longitude > $min_lon and longitude < $max_lon
  ) as first_cut 
where acos(sin($lat)*sin(radians(latitude)) + cos($lat)*cos(radians(latitude))*cos(radians(longitude) - $lon)) * $R < $r
order by D";
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I would calculate the max/min possible values for latitude and longitude in PHP. Then, you can select all the locations within that range with pretty simple SQL:

$sql = "SELECT * from locations where latitude >= $minLat and latitude <= $maxLat and longitude >= $minLong and longitude <= $maxLong
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How would I calculate the max/min possible values for latitude and longitude? What's the formula should I use? By the way, thanks. –  Chan Dec 25 '11 at 18:02
    
If you have a center long/lat and radius, this is easy: $maxLong = $long + $radius; $minLong = $long - $radius; $maxLat = $lat + $radius; $minLat = $lat - $radius; –  MrGlass Dec 25 '11 at 18:06
1  
From my understanding, latitude and longitude are coordinate of a point on the sphere though. From my table, they are in degree, so finding max/min is not simple as +/- radius. –  Chan Dec 25 '11 at 18:11
    
@Chan You are correct, you will need to use the logic from the first two lines of code in my example. A bit of math is required to change the radius to calculate a max longitude and latitude. –  Cameron S Dec 25 '11 at 18:13

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