0

I am attempting to get the city attribute out of an ip geolocation api. Sample of what is returned from the api:

{"as":"AS38484 Virgin Broadband VISP","city":"Adelaide","country":"Australia","countryCode":"AU","isp":"iseek Communications","lat":-27,"lon":133,"org":"iseek Communications","query":"1.178.0.144","region":"","regionName":"","status":"success","timezone":"","zip":""}

My code:

$query = '{"as":"AS38484 Virgin Broadband VISP","city":"Adelaide","country":"Australia","countryCode":"AU","isp":"iseek Communications","lat":-27,"lon":133,"org":"iseek Communications","query":"1.178.0.144","region":"","regionName":"","status":"success","timezone":"","zip":""}';
$query = @unserialize($query);
if($query && $query['status'] == 'success') {
    if(!empty($query['city'])) {
        $city =  $query['city'];
        // routine that uses $city gets called
    } else {
        $lat = $query['lat'];
        $lon = $query['lon'];
        // routine that uses $lat, $lon gets called
    }
}

Basically, the if(!empty($query['city'])) is not behaving as expected (not that I would really know, I have been using PHP for that last week). I have also attempted setting $city before the if statement and then testing if($city != '').

Question: No combination of condition finds and then sets the city attribute to city? And when there is not a city attribute it also skips the else part and doesn't set the lat/lon.

Note: the reason for the differentiation between city and lat/lon is the weather api I am querying prefers city but not every ip is able to provide one.

Thanks

2
  • Also what's the question?
    – Rizier123
    Commented Jan 7, 2015 at 23:09
  • Semicolon is there in the code :). City attribute is never found is the problem sorry will edit.
    – Lanzafame
    Commented Jan 7, 2015 at 23:10

3 Answers 3

2

$query is not a serialized PHP array, you'd see it if you didn't use '@' before unserialize call. it looks like JSON, so maybe json_decode is what you're looking for?

1

Two issues:

1) You need to be using json_decode to unserialize the json data

2) Since it will deserialize to an object you will access the fields with

 $query->city;

not

 $query['city'];
0

As @kao3991 and @andrew says, your data is JSON and not a serialized array. Try this:

$query = '{"as":"AS38484 Virgin Broadband VISP","city":"Adelaide","country":"Australia","countryCode":"AU","isp":"iseek Communications","lat":-27,"lon":133,"org":"iseek Communications","query":"1.178.0.144","region":"","regionName":"","status":"success","timezone":"","zip":""}';
$query = json_decode($query, true);
if($query && $query['status'] == 'success') {
    if(!empty($query['city'])) {
        $city =  $query['city'];
        // routine that uses $city gets called
    } else {
        $lat = $query['lat'];
        $lon = $query['lon'];
        // routine that uses $lat, $lon gets called
    }
}

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service and acknowledge you have read our privacy policy.

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