I would like to extract the GPS EXIF tag from pictures using php. I'm using the exif_read_data() that returns a array of all tags + data :

GPS.GPSLatitudeRef: N
GPS.GPSLatitude:Array ( [0] => 46/1 [1] => 5403/100 [2] => 0/1 ) 
GPS.GPSLongitudeRef: E
GPS.GPSLongitude:Array ( [0] => 7/1 [1] => 880/100 [2] => 0/1 ) 
GPS.GPSAltitudeRef: 
GPS.GPSAltitude: 634/1

I don't know how to interpret 46/1 5403/100 and 0/1 ? 46 might be 46° but what about the rest especially 0/1 ?

angle/1 5403/100 0/1

What is this structure about ?

How to convert them to "standard" ones (like 46°56′48″N 7°26′39″E from wikipedia) ? I would like to pass thoses coordinates to the google maps api to display the pictures positions on a map !

  • 1
    @Kami: I updated my answer with some code – Kip Mar 26 '10 at 20:38

13 Answers 13

up vote 18 down vote accepted

According to http://en.wikipedia.org/wiki/Geotagging, ( [0] => 46/1 [1] => 5403/100 [2] => 0/1 ) should mean 46/1 degrees, 5403/100 minutes, 0/1 seconds, i.e. 46°54.03′0″N. Normalizing the seconds gives 46°54′1.8″N.

This code below should work, as long as you don't get negative coordinates (given that you get N/S and E/W as a separate coordinate, you shouldn't ever have negative coordinates). Let me know if there is a bug (I don't have a PHP environment handy at the moment).

//Pass in GPS.GPSLatitude or GPS.GPSLongitude or something in that format
function getGps($exifCoord)
{
  $degrees = count($exifCoord) > 0 ? gps2Num($exifCoord[0]) : 0;
  $minutes = count($exifCoord) > 1 ? gps2Num($exifCoord[1]) : 0;
  $seconds = count($exifCoord) > 2 ? gps2Num($exifCoord[2]) : 0;

  //normalize
  $minutes += 60 * ($degrees - floor($degrees));
  $degrees = floor($degrees);

  $seconds += 60 * ($minutes - floor($minutes));
  $minutes = floor($minutes);

  //extra normalization, probably not necessary unless you get weird data
  if($seconds >= 60)
  {
    $minutes += floor($seconds/60.0);
    $seconds -= 60*floor($seconds/60.0);
  }

  if($minutes >= 60)
  {
    $degrees += floor($minutes/60.0);
    $minutes -= 60*floor($minutes/60.0);
  }

  return array('degrees' => $degrees, 'minutes' => $minutes, 'seconds' => $seconds);
}

function gps2Num($coordPart)
{
  $parts = explode('/', $coordPart);

  if(count($parts) <= 0)// jic
    return 0;
  if(count($parts) == 1)
    return $parts[0];

  return floatval($parts[0]) / floatval($parts[1]);
}

This is my modified version. The other ones didn't work for me. It will give you the decimal versions of the GPS coordinates.

The code to process the EXIF data:

$exif = exif_read_data($filename);
$lon = getGps($exif["GPSLongitude"], $exif['GPSLongitudeRef']);
$lat = getGps($exif["GPSLatitude"], $exif['GPSLatitudeRef']);
var_dump($lat, $lon);

Prints out in this format:

float(-33.8751666667)
float(151.207166667)

Here are the functions:

function getGps($exifCoord, $hemi) {

    $degrees = count($exifCoord) > 0 ? gps2Num($exifCoord[0]) : 0;
    $minutes = count($exifCoord) > 1 ? gps2Num($exifCoord[1]) : 0;
    $seconds = count($exifCoord) > 2 ? gps2Num($exifCoord[2]) : 0;

    $flip = ($hemi == 'W' or $hemi == 'S') ? -1 : 1;

    return $flip * ($degrees + $minutes / 60 + $seconds / 3600);

}

function gps2Num($coordPart) {

    $parts = explode('/', $coordPart);

    if (count($parts) <= 0)
        return 0;

    if (count($parts) == 1)
        return $parts[0];

    return floatval($parts[0]) / floatval($parts[1]);
}
  • 3
    I found that the latest releases of PHP have an extra layer of array in the exif object requiring them to be called like: getGps($exif['GPS']["GPSLongitude"], $exif['GPS']['GPSLongitudeRef']) – Orbiting Eden Mar 20 '13 at 8:43
  • @OrbitingEden This behaviour is enabled by 3rd parameter. Disabled by default. – Max Tsepkov Nov 17 '16 at 1:26

This is a refactored version of Gerald Kaszuba's code (currently the most widely accepted answer). The result should be identical, but I've made several micro-optimizations and combined the two separate functions into one. In my benchmark testing, this version shaved about 5 microseconds off the runtime, which is probably negligible for most applications, but might be useful for applications which involve a large number of repeated calculations.

$exif = exif_read_data($filename);
$latitude = gps($exif["GPSLatitude"], $exif['GPSLatitudeRef']);
$longitude = gps($exif["GPSLongitude"], $exif['GPSLongitudeRef']);

function gps($coordinate, $hemisphere) {
  if (is_string($coordinate)) {
    $coordinate = array_map("trim", explode(",", $coordinate));
  }
  for ($i = 0; $i < 3; $i++) {
    $part = explode('/', $coordinate[$i]);
    if (count($part) == 1) {
      $coordinate[$i] = $part[0];
    } else if (count($part) == 2) {
      $coordinate[$i] = floatval($part[0])/floatval($part[1]);
    } else {
      $coordinate[$i] = 0;
    }
  }
  list($degrees, $minutes, $seconds) = $coordinate;
  $sign = ($hemisphere == 'W' || $hemisphere == 'S') ? -1 : 1;
  return $sign * ($degrees + $minutes/60 + $seconds/3600);
}
  • tthhiiisss. I've been blindly copy and pasting PHP exif code snippets from Stack overflow for days now without doing any research of my own. (really) And they have all ranged from sorta wrong to really really wrong. Producing varying degrees of incorrect data. THIS ONE WORKS. The one thing I DID do was verify the output against known good sourced. And this one is 100% correct. 10/10 would copy pasta again. – Adam Mar 22 '17 at 7:24

I know this question has been asked a long time ago, but I came across it while searching in google and the solutions proposed here did not worked for me. So, after further searching, here is what worked for me.

I'm putting it here so that anybody who comes here through some googling, can find different approaches to solve the same problem:

function triphoto_getGPS($fileName, $assoc = false)
{
    //get the EXIF
    $exif = exif_read_data($fileName);

    //get the Hemisphere multiplier
    $LatM = 1; $LongM = 1;
    if($exif["GPSLatitudeRef"] == 'S')
    {
    $LatM = -1;
    }
    if($exif["GPSLongitudeRef"] == 'W')
    {
    $LongM = -1;
    }

    //get the GPS data
    $gps['LatDegree']=$exif["GPSLatitude"][0];
    $gps['LatMinute']=$exif["GPSLatitude"][1];
    $gps['LatgSeconds']=$exif["GPSLatitude"][2];
    $gps['LongDegree']=$exif["GPSLongitude"][0];
    $gps['LongMinute']=$exif["GPSLongitude"][1];
    $gps['LongSeconds']=$exif["GPSLongitude"][2];

    //convert strings to numbers
    foreach($gps as $key => $value)
    {
    $pos = strpos($value, '/');
    if($pos !== false)
    {
        $temp = explode('/',$value);
        $gps[$key] = $temp[0] / $temp[1];
    }
    }

    //calculate the decimal degree
    $result['latitude'] = $LatM * ($gps['LatDegree'] + ($gps['LatMinute'] / 60) + ($gps['LatgSeconds'] / 3600));
    $result['longitude'] = $LongM * ($gps['LongDegree'] + ($gps['LongMinute'] / 60) + ($gps['LongSeconds'] / 3600));

    if($assoc)
    {
    return $result;
    }

    return json_encode($result);
}
  • I used this answer and it was great! Just remember, the new PHP makes the exif array so that GPS has its own key. EG $gps['LatDegree']=$exif["GPSLatitude"][0]; becomes $gps['LatDegree']=$exif["GPS"]["GPSLatitude"][0]; – Osmium USA Jul 1 '13 at 18:10
  • 1
    This solution worked for me, and I made this answer into a composer package - with a few changes. You can find it here: github.com/diversen/gps-from-exif – dennis Feb 13 '16 at 10:09

This is an old question but felt it could use a more eloquent solution (OOP approach and lambda to process the fractional parts)

/**
 * Example coordinate values
 *
 * Latitude - 49/1, 4/1, 2881/100, N
 * Longitude - 121/1, 58/1, 4768/100, W
 */
protected function _toDecimal($deg, $min, $sec, $ref) {

    $float = function($v) {
        return (count($v = explode('/', $v)) > 1) ? $v[0] / $v[1] : $v[0];
    };

    $d = $float($deg) + (($float($min) / 60) + ($float($sec) / 3600));
    return ($ref == 'S' || $ref == 'W') ? $d *= -1 : $d;
}


public function getCoordinates() {

    $exif = @exif_read_data('image_with_exif_data.jpeg');

    $coord = (isset($exif['GPSLatitude'], $exif['GPSLongitude'])) ? implode(',', array(
        'latitude' => sprintf('%.6f', $this->_toDecimal($exif['GPSLatitude'][0], $exif['GPSLatitude'][1], $exif['GPSLatitude'][2], $exif['GPSLatitudeRef'])),
        'longitude' => sprintf('%.6f', $this->_toDecimal($exif['GPSLongitude'][0], $exif['GPSLongitude'][1], $exif['GPSLongitude'][2], $exif['GPSLongitudeRef']))
    )) : null;

}

The code I've used in the past is something like (in reality, it also checks that the data is vaguely valid):

// Latitude
$northing = -1;
if( $gpsblock['GPSLatitudeRef'] && 'N' == $gpsblock['GPSLatitudeRef'] )
{
    $northing = 1;
}

$northing *= defraction( $gpsblock['GPSLatitude'][0] ) + ( defraction($gpsblock['GPSLatitude'][1] ) / 60 ) + ( defraction( $gpsblock['GPSLatitude'][2] ) / 3600 );

// Longitude
$easting = -1;
if( $gpsblock['GPSLongitudeRef'] && 'E' == $gpsblock['GPSLongitudeRef'] )
{
    $easting = 1;
}

$easting *= defraction( $gpsblock['GPSLongitude'][0] ) + ( defraction( $gpsblock['GPSLongitude'][1] ) / 60 ) + ( defraction( $gpsblock['GPSLongitude'][2] ) / 3600 );

Where you also have:

function defraction( $fraction )
{
    list( $nominator, $denominator ) = explode( "/", $fraction );

    if( $denominator )
    {
        return ( $nominator / $denominator );
    }
    else
    {
        return $fraction;
    }
}
  • Any idea why this got downvoted? I'd love to be able to fix my code up if required. – Rowland Shaw Apr 4 '10 at 7:01

To get the altitude value, you can use the following 3 lines:

$data     = exif_read_data($path_to_your_photo, 0, TRUE);
$alt      = explode('/', $data["GPS"]["GPSAltitude"]);
$altitude = (isset($alt[1])) ? ($alt[0] / $alt[1]) : $alt[0];

In case you need a function to read Coordinates from Imagick Exif here we go, I hope it saves you time. Tested under PHP 7.

function create_gps_imagick($coordinate, $hemi) {

  $exifCoord = explode(', ', $coordinate);

  $degrees = count($exifCoord) > 0 ? gps2Num($exifCoord[0]) : 0;
  $minutes = count($exifCoord) > 1 ? gps2Num($exifCoord[1]) : 0;
  $seconds = count($exifCoord) > 2 ? gps2Num($exifCoord[2]) : 0;

  $flip = ($hemi == 'W' or $hemi == 'S') ? -1 : 1;

  return $flip * ($degrees + $minutes / 60 + $seconds / 3600);

}

function gps2Num($coordPart) {

    $parts = explode('/', $coordPart);

    if (count($parts) <= 0)
        return 0;

    if (count($parts) == 1)
        return $parts[0];

    return floatval($parts[0]) / floatval($parts[1]);
}

I'm using the modified version from Gerald Kaszuba but it's not accurate. so i change the formula a bit.

from:

return $flip * ($degrees + $minutes / 60);

changed to:

return floatval($flip * ($degrees +($minutes/60)+($seconds/3600)));

It works for me.

This is a javascript port of the PHP-code posted @Gerald above. This way you can figure out the location of an image without ever uploading the image, in conjunction with libraries like dropzone.js and Javascript-Load-Image

define(function(){

    function parseExif(map) {
        var gps = {
            lng : getGps(map.get('GPSLongitude'), data.get('GPSLongitudeRef')),
            lat : getGps(map.get('GPSLatitude'), data.get('GPSLatitudeRef'))
        }
        return gps;
    }

    function getGps(exifCoord, hemi) {
        var degrees = exifCoord.length > 0 ? parseFloat(gps2Num(exifCoord[0])) : 0,
            minutes = exifCoord.length > 1 ? parseFloat(gps2Num(exifCoord[1])) : 0,
            seconds = exifCoord.length > 2 ? parseFloat(gps2Num(exifCoord[2])) : 0,
            flip = (/w|s/i.test(hemi)) ? -1 : 1;
        return flip * (degrees + (minutes / 60) + (seconds / 3600));
    }

    function gps2Num(coordPart) {
        var parts = (""+coordPart).split('/');
        if (parts.length <= 0) {
            return 0;
        }
        if (parts.length === 1) {
            return parts[0];
        }
        return parts[0] / parts[1];
    }       

    return {
        parseExif: parseExif
    };

});

short story. First part N Leave the grade multiply the minutes with 60 devide the seconds with 100. count the grades,minuts and seconds with eachother.

Second part E Leave the grade multiply the minutes with 60 devide the seconds with ...1000 cöunt the grades, minutes and seconds with each other

i have seen nobody mentioned this: https://pypi.python.org/pypi/LatLon/1.0.2

from fractions import Fraction
from LatLon import LatLon, Longitude, Latitude

latSigned = GPS.GPSLatitudeRef == "N" ? 1 : -1
longSigned = GPS.GPSLongitudeRef == "E" ? 1 : -1

latitudeObj = Latitude(
              degree = float(Fraction(GPS.GPSLatitude[0]))*latSigned , 
              minute = float(Fraction(GPS.GPSLatitude[0]))*latSigned , 
              second = float(Fraction(GPS.GPSLatitude[0])*latSigned)
longitudeObj = Latitude(
              degree = float(Fraction(GPS.GPSLongitude[0]))*longSigned , 
              minute = float(Fraction(GPS.GPSLongitude[0]))*longSigned , 
              second = float(Fraction(GPS.GPSLongitude[0])*longSigned )
Coordonates = LatLon(latitudeObj, longitudeObj )

now using the Coordonates objecct you can do what you want: Example:

(like 46°56′48″N 7°26′39″E from wikipedia)

print Coordonates.to_string('d%°%m%′%S%″%H')

You than have to convert from ascii, and you are done:

('5\xc2\xb052\xe2\x80\xb259.88\xe2\x80\xb3N', '162\xc2\xb04\xe2\x80\xb259.88\xe2\x80\xb3W')

and than printing example:

print "Latitude:" + Latitude.to_string('d%°%m%′%S%″%H')[0].decode('utf8')

>> Latitude: 5°52′59.88″N
  • 2
    Yes, because this is a python answer on a php question – CodeBrauer Jan 2 '17 at 14:26
  • aha, you are right – Thanatos11th Sep 22 '17 at 13:57

With this GPS data:

    ["GPSLatitudeRef"]=>
    string(1) "N"
    ["GPSLatitude"]=>
    array(3) {
        [0]=>
        string(7) "65539/0"
        [1]=>
        string(17) "-1542717440/65539"
        [2]=>
        string(8) "196608/0"
    }
    ["GPSLongitudeRef"]=>
    string(1) "E"
    ["GPSLongitude"]=>
    array(3) {
        [0]=>
        string(20) "39321600/-1166016512"
        [1]=>
        string(21) "1111490956/1811939343"
        [2]=>
        string(22) "1111491292/-1725956081"
    }

Using the above code (thanks Gerald) I get these Latitude & Longitude values:

-392.31537456069,-0.023678137550796

This is not correct. It's doing my head in as the code works, but the answer is wrong in this case! Many other images work fine, there just seems to be some logic missing to cater for something in this dat. For example, when I load the image in to iPhoto (sorry for the Apple example to those without Macs) it gets the answer right; this EXIF data is for a picture near the Red Sea.

  • 1
    Still can't get to the bottom of this. But, is there something in the fact that the second half of GPSLatitude[0] is 0? Maybe a division by zero problem? – Pete Aug 23 '13 at 11:05

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