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.

PHP

<?php
header('Content-type: application/json');
$return['ip'] = $_SERVER['REMOTE_ADDR'];  
$results[] = array(
      'ip' => $return['ip']
   );
echo json_encode($results);
?>

jQuery

$.getJSON("http://domain.com/json/",
        function(data){
            console.log(data.ip);
        });
    });

But when I run the jQuery I've checked Fire bug and it says the following

GET http://domain.com/json/ 200 OK 81ms

And doesn't respond with the IP that I requested for. Have I missed something?

UPDATED CODE

PHP

<?php
header('Content-type: application/json');
$return['ip'] = $_SERVER['REMOTE_ADDR'];  
$results = array(
      'ip' => $return['ip']
   );
echo json_encode($results);
?>

jQuery

$.getJSON("http://domain.com/json/", function(data){
            console.log(data.ip);
        });

Firebug Error

SyntaxError: invalid label {"ip":"XXX.XXX.XXX.X"}

An arrow points at the first quotation mark just before the word ip.

share|improve this question
    
If you're accessing JSON on a different domain, you probably need to use JSON-P instead. AJAX requests can normally only go to the same domain as the page making the request. –  Blazemonger Feb 5 '13 at 16:08
    
isn't the field called 'id'? –  David Fregoli Feb 5 '13 at 16:10
    
console.log(data) –  deceze Feb 5 '13 at 16:12
    
Look at the answer to this question. –  mccannf Feb 5 '13 at 17:01

1 Answer 1

up vote 5 down vote accepted

You are returning:

[{'ip': 'XXX.XXX.XXX.XXX'}]

But you are treating it as if you are returning:

{'ip': 'XXX.XXX.XXX.XXX'}

You either need to change your JavaScript to console.log(data[0].ip) or change your PHP to: $results = array( ... ); rather than $results[] = array( ... );

Either will fix your problem. :)

share|improve this answer
    
im getting SyntaxError: invalid label pointing to the "ip" of the return –  Donald Feb 5 '13 at 16:18
    
You also need to remove the extra }); in your code... –  Dan Feb 5 '13 at 16:19
    
have done. still the same error –  Donald Feb 5 '13 at 16:25
    
Please can you update your question with the code you're now using, and the exact error message it is giving you in response? –  Dan Feb 5 '13 at 16:27
    
Updated the code –  Donald Feb 5 '13 at 16:40

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.