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I have different vendors saved with their own latitudinal and longitudinal positions in my database.

I then use google maps to pin point them on a map, however you also have a search function where you can input any address you want with a 5/10/20 km/miles "around".

So for example when i search London and 10 km around, i would expect to get all the vendors from the london returned lat and long + 10km around that point.

right now i have the function worked out with a slight difference (obviously without the radius option)

private function findServicesNearLocation($filter = array(), $lat, $lng) {
    // set radius
    $difference = 0.07;

    // build filter
    $latitude_from = floatval($lat) - $difference;
    $latitude_to = floatval($lat) + $difference;
    $longitude_from = floatval($lng) - $difference;
    $longitude_to = floatval($lng) + $difference;

    $filter[] = "a.gps_latitude >= {$latitude_from}";
    $filter[] = "a.gps_latitude <= {$latitude_to}";
    $filter[] = "a.gps_longitude >= {$longitude_from}";
    $filter[] = "a.gps_longitude <= {$longitude_to}";

    // return services
    return $this->vendors->getVendors(implode(' AND ', $filter));
}

How would i have to change the above function to make an appropriate estimate and to select all the vendors from a specific "10 km around" those lat and long.

Thank you

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You might want to have a look at this similar question on SO. –  eggyal Apr 25 '12 at 14:45
    
it is not similar, the person had to calculate distance between two points, i have just 1 point in space as lat, long and i need to select all my vendors around that position by 20 km or more –  Highstrike Apr 25 '12 at 15:04
    
The principle is the same. But I grant you, your problem extends to how that principle gets applied in your case. –  eggyal Apr 25 '12 at 15:05
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2 Answers 2

up vote 1 down vote accepted

I think this is an answer to what you are asking. Latitude and longitude degrees are approximately 111km apart, so you can figure that into your math. I hope this is what you are asking.

private function findServicesNearLocation($filter = array(), $lat, $lng, $distanceKilometers=0) {
    // set radius
    $difference = 0.07;
    $distance=$distanceKilometers!=0?ceil($distanceKilometers/111):0;
    // build filter
    $latitude_from = floatval($lat) - $difference - $distance;
    $latitude_to = floatval($lat) + $difference + $distance;
    $longitude_from = floatval($lng) - $difference - $distance;
    $longitude_to = floatval($lng) + $difference + $distance;

    $filter[] = "a.gps_latitude >= {$latitude_from}";
    $filter[] = "a.gps_latitude <= {$latitude_to}";
    $filter[] = "a.gps_longitude >= {$longitude_from}";
    $filter[] = "a.gps_longitude <= {$longitude_to}";

    // return services
    return $this->vendors->getVendors(implode(' AND ', $filter));
}
share|improve this answer
1  
At very least, you should probably introduce Pythogras' theorem to get a radius rather than a rectangle... –  eggyal Apr 25 '12 at 14:57
    
@eggyal could you help me out with that? –  Highstrike Apr 25 '12 at 15:01
1  
@Highstrike: You want (a.gps_lat-$lat_from)^2 + (a.gps_long-$long_from)^2 <= $distance^2 –  eggyal Apr 25 '12 at 15:03
    
@eggyal would i still have to keep the $difference variable? as it once helped me to get vendors near those points but now that i have $distance which could be >= 10 and <= 100 i could probably scratch that right? –  Highstrike Apr 25 '12 at 15:12
1  
Using 111km as an approximation works fine for longitude, which is mostly invariant, but the length of a degree of latitude changes drastically with longitude. What you really want to use is the Haversine formula (en.wikipedia.org/wiki/Haversine_formula). –  Ethan Brown Apr 25 '12 at 17:30
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Look like your are searching on a rectangle, not in a radius.

For that you could use MySQL Spatial Extension and read more about implementation here : Geo-Distance-Search-with-MySQL

But for your information, mongoDB can do that with a simple "SELECT". Give him a position and a range and it's done. More infos : MongoDB Geospatial Indexing

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while this would probably be the best way to do it, installing an extension is out of the question for the owners are very strict about this, i do however like the following query –  Highstrike Apr 25 '12 at 15:16
    
SELECT destination.*,3956 * 2 * ASIN(SQRT( POWER(SIN((orig.lat -dest.lat) * pi()/180 / 2), 2) +COS(orig.lat * pi()/180) * COS(dest.lat * pi()/180) *POWER(SIN((orig.lon -dest.lon) * pi()/180 / 2), 2) )) asdistance FROM users destination, users originWHERE origin.id=userid and destination.longitude between lon1 and lon2 and destination.latitude between lat1 and lat2 having distance < dist ORDER BY Distance limit 10; –  Highstrike Apr 25 '12 at 15:17
    
while this would have been my choice as an answer, because of the strict owners i cannot use this, sorry. –  Highstrike Apr 25 '12 at 15:17
    
please see stackoverflow.com/questions/10318002/… –  Highstrike Apr 25 '12 at 15:48
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