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What I am trying to do is I have entries in the database which have a lat/long stored with them. I want to calculate the distance between users lat/long and entries lat/long (in DB). After that, I want to echo the ones with distance less than 500 meters. So far I am able to do this using foreach.

<?php
mysql_connect("localhost", "beepbee_kunwarh", "kunwar") or die('MySQL Error.');
mysql_select_db("beepbee_demotest") or die('MySQL Error.');

$Lat = $_REQUEST['Lat'];
$long = $_REQUEST['long'];

$query = mysql_query("SELECT a.*, 3956 * 2 * ASIN(SQRT( POWER(SIN(($Lat - Lat) * pi()/180 / 2), 2) + COS($Lat * pi()/180) * COS(Lat * pi()/180) *POWER(SIN(($long - long) * pi()/180 / 2), 2) )) as distance FROM userResponse GROUP BY beepid HAVING distance <= 500 ORDER by distance ASC;");
$data = array();
while ($row = mysql_fetch_array($query)) {
    $data[] = $row;
}
echo json_encode($data);
?>
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What is wrong with your code? –  Matthieu Napoli Oct 6 '11 at 10:00
    
its is calculating same distance for all entries basically i have no idea wat values are getting passed in $lon2 = $data[$to]["long"]; $lat2 = $data[$to]["Lat"]; –  iPhoneDev Oct 6 '11 at 10:02
    
possible duplicate of Fastest distance lookup given latitude/longitude? –  hakre Oct 6 '11 at 10:09
    
You completely changed the code in your question... It's now calculating in SQL and not in PHP. Can you explain why/what's the problem now? –  Matthieu Napoli Oct 6 '11 at 11:15
    
its giving me error on line while ($row = mysql_fetch_array($query)) –  iPhoneDev Oct 6 '11 at 11:27
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5 Answers 5

up vote 6 down vote accepted

I did this a few weeks ago.

This link is your best bet:

http://code.google.com/apis/maps/articles/phpsqlsearch.html

Even if you don't use their API, their PHP and SQL query helped really well.

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i there query wat is the target lat/long and wat is the entries in database lat/long its not mentioned –  iPhoneDev Oct 6 '11 at 10:23
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i would not recommend dumping distance calculations in your sql statement, even though i admit that the solution presented by 'denil' is ingenious.

there are 3 downsides: code maintenance, sql server overload AND (above all) the earth is not symmetrical (it is like an old dented baseball that was run over by a truck). this means that you might want to change the code in the future (there are some VERY sophisticated algorithms out there - http://en.wikipedia.org/wiki/Geographical_distance).

i recommend using a separate function that calculates distance with a simple common algorithm (similar if not identical to denil's). i submit this code which is pure php (no need to use googlemaps api):

<?php

function distanceGeoPoints ($lat1, $lng1, $lat2, $lng2) {

    $earthRadius = 3958.75;

    $dLat = deg2rad($lat2-$lat1);
    $dLng = deg2rad($lng2-$lng1);


    $a = sin($dLat/2) * sin($dLat/2) +
       cos(deg2rad($lat1)) * cos(deg2rad($lat2)) *
       sin($dLng/2) * sin($dLng/2);
    $c = 2 * atan2(sqrt($a), sqrt(1-$a));
    $dist = $earthRadius * $c;

    // from miles
    $meterConversion = 1609;
    $geopointDistance = $dist * $meterConversion;

    return $geopointDistance;
}

// YOUR CODE HERE
echo distanceGeoPoints(22,50,22.1,50.1);

?>

there are a number of free softwares (try gps trackmaker) that will allow you to check the margin of error for your part of the globe (if you need precision). for the above lat/long pair, the error is within +/- 0.1% (according to local topographers).

ATTENTION: this formula gives you CARTOGRAPHIC distance (distance at sea level), not TOPOGRAPHIC distance (disconsiders topography).

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so what's the units? metres? –  ErichBSchulz Mar 7 at 11:53
2  
@ErichBSchulz yes, meters. my bad :( –  tony gil Mar 13 at 23:06
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Try this query. I found this one when googling but forgot who created it

SELECT a.*,
            3956 * 2 * ASIN(SQRT( POWER(SIN(($lat - lat) * pi()/180 / 2), 2) + COS($lat * pi()/180) * COS(lat * pi()/180) *
            POWER(SIN(($long - longi) * pi()/180 / 2), 2) )) as
            distance FROM table
            GROUP BY id HAVING distance <= 500 ORDER by distance ASC

$lat and $long variable is the current position of user. lat and longi is the latitude and longitudle of entries

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This stackoverflow question/answer shows you how to do this purely within mysql.

You should be able to work out the php side yourself

Fastest distance lookup given latitude/longitude?

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This query was perfect for me:

$latitude = "23.139422";  //your current lat
$longitude = "-82.382617"; //your current long

SELECT ( 3959 * acos( cos( radians( '.$latitude.' ) ) * cos( radians( latitude ) ) * 
 cos( radians( longitude ) - radians( '.$longitude.' ) ) + sin( radians( '.$latitude.' )
 ) * sin( radians( latitude ) ) ) ) AS distance from TABLE 
 HAVING distance <= 100 ORDER BY distance ASC
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