Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I have in my database car incidents for example. These incidents have a latitude and longitude. On a mobile using the GPS, I get the user's location with his coordinates. The user can select a radius that he wants to know if there are incidents around him. So let's say he want to know incidents 2 miles around him.

So I send from the phone to a web service the user's latitude, longitude and the radius he selected. I need to make a SQL query to get the incidents 2 miles around the user.

Do you have any idea how to do that?

share|improve this question

5 Answers 5

Calculating the distance is pretty computationally expensive, as others have said. Returning huge datasets is also not a very good idea - specially considering PHP isn't that great in performance.

I would use a heuristic, like approximating the distance with simple addition and subtraction.

1 minute = 1.86 kilometers = 1.15 miles

Just search the db with incidents within that range (effectively a square, rather than a circle), and then you can work on those with PHP.


EDIT: Here's an alternative; an approximation that's way less computationally expensive:

Approximate distance in miles:

sqrt(x * x + y * y)

where x = 69.1 * (lat2 - lat1) 
and y = 53.0 * (lon2 - lon1) 

You can improve the accuracy of this approximate distance calculation by adding the cosine math function:

Improved approximate distance in miles:

sqrt(x * x + y * y)

where x = 69.1 * (lat2 - lat1) 
and y = 69.1 * (lon2 - lon1) * cos(lat1/57.3) 

Source: http://www.meridianworlddata.com/Distance-Calculation.asp


EDIT 2: I ran a bunch of tests with randomly generated datasets.

  • The difference in accuracy for the 3 algorithms is minimal, especially at short distances
  • The slowest algorithm (the one with the whole bunch of trig functions) is 4x slower than the other two.

Definitely not worth it. Just go with an approximation.

Code is here: http://pastebin.org/424186

share|improve this answer
    
Another good heuristic. Use the smallest possible distance that a minute (or relevant subdivision thereof) can be, and use that to exclude any candidate points that are clearly more than two miles away. Of course, you could get smarter about this and use various approximations based on the user's position. –  timdev Jul 28 '10 at 4:23
function distance($lat1,$lon1,$lat2,$lon2,$unit)
  {
  $theta=$lon1-$lon2;
  $dist=sin(deg2rad($lat1))*sin(deg2rad($lat2))+cos(deg2rad($lat1))*cos(deg2rad($lat2))*cos(deg2rad($theta));
  $dist=acos($dist);
  $dist=rad2deg($dist);
  $miles=$dist*60*1.1515;
  $unit=strtoupper($unit);
  if ($unit=="K")
    {
    return ($miles*1.609344);
    }
    else if ($unit=="N")
    {
    return ($miles*0.8684);
    }
    else
    {
    return $miles;
    }
  } // end function

$x_lat=center_of_serach;
$x_lon=center_of_serach;
$_distance=some_distance_in_miles;
$query1 = "SELECT * FROM `location_table` WHERE somefield=somefilter";
$result=mysql_db_query($db_conn, $query1);
$max_rows=mysql_num_rows($result); 
if ($max_rows>0)
  {
while ( $data1=mysql_fetch_assoc($result) )
  {
  if ( distance($x_lat,$x_lon,$data1['lat'],$data1['lng'],'m')<$_distance )
    {
    //do stuff
    }
  }

Its faster to fetch all the data and run it through a function, rather than use a query if your database isn't too big.

It works for Kilos and Nautical miles too. ;)

share|improve this answer
    
LOL i just noticed the link you had.. and yes, that works. ;) –  Talvi Watia Jul 28 '10 at 4:09

There is a formula to compute the distance between two lat/lon coordinates. Beware though -- it's rather computationally expensive, so if you have lots of incidents, you'll want to be smart about it. First up, read about the maths involved.

As for PHP code, a quick google turned up this link, which looks like it probably works.

Now, you probably want to use some more efficient method to divide your incident points into two sets: those points that might be within range (hopefully a smallish set), and those that you can discount entirely. Checking more than a few dozen incident coordinates is likely to be a performance issue.

I don't have any particular insight into that, but if nobody else comes along with something clever, I'll try to come up with something myself later, time permitting.

share|improve this answer
    
I'd recommend this as well. I'd consider doing two passes on the data set. The first pass will just check if an incident longitude is within X miles of the location longitude and if the incident latitude is within X miles of the location latitude. This is a very simple query that will return a smaller data set to work with. With this smaller data set, start doing some trig to determine the linear distance of the incidents to the user's location, which requires more complicated math but you are at least working with a smaller data set now. –  Jakobud Jul 28 '10 at 4:11
    
@Jakobud you can run that filter in the same query: WHERE lat<='".$_distance."' AND lng<='".$_distance."'"; –  Talvi Watia Jul 28 '10 at 4:15
    
Yeah, something like that. To visualize Jackobud's method, your're first checking if any candidate point is in a 4-mile square (16 square mile) area with the user's coordinates in the center. If it is, then you do the more expensive computation to figure out if it's with the circle incribed within that square [en.wikipedia.org/wiki/Inscribed_circle] –  timdev Jul 28 '10 at 4:19
    
@Talvi Watia - huh? That doesn't seem right -- the units don't match. –  timdev Jul 28 '10 at 4:20
    
@timedev whoa. yeah. I posted that too fast.. add $distance/69.1 to convert to degrees roughly.. –  Talvi Watia Jul 28 '10 at 5:04

I did a quick search and turned up this blog post which gives a good explanation and SQL to select records in a given radius.

In the comments, he suggests "For speed on large datasets you probably want to grab a square block around the origin point first by adding a mile or so to and from both lat/lon for origin and then using the above as a subselect to work from the middle out" which sounds to me like the way to go.

share|improve this answer
    
Link is broken.. –  Zeus Jul 22 at 16:47
    
While this link may answer the question, it is better to include the essential parts of the answer here and provide the link for reference. Link-only answers can become invalid if the linked page changes. –  MrLore Jul 22 at 16:57
    
Linked page archived at web.archive.org –  showdev Jul 22 at 17:23
 SELECT 3963 * ACOS(
    SIN(RADIANS($pointAlat)) * SIN(RADIANS($pointAlat)) + COS(RADIANS($pointAlat))  * COS(RADIANS($pointBlat)) * COS(RADIANS($pointAlong) - RADIANS($pointBlong)))
 AS
 distance;

Also, if you're looking for a good read/tutorial on this.. Check here http://www.phpfreaks.com/forums/index.php/topic,208965.0.html

share|improve this answer
    
Not useful, since you can't use aliases in the WHERE clause - that would force him to calculate a bunch of transcendental functions twice. Ouch. On a potentially huge dataset. Double Ouch. –  NullUserException Jul 28 '10 at 4:17

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.