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Im having some trouble retieving data using Ajax. Could someone tell me what is wrong with my code? I have a feeling it has something to do with the fact that im using JSON and Ajax in the same function?

JQuery

function updateImage() {
     var knownid = document.location.hash.substring(1); // remove #     

    $.ajax({ //Make the Ajax Request
         type: "POST",
         url: "testimagelook.php", //file name
         data: {boxid: knownid},
         success: function(server_response){
            $.getJSON("testimagelook.php", function(data) {             
            var id = data.id;
            document.location.hash = id;

            known_images[id] = [];
            known_images[id] ['name'] = data.name;
            known_images[id] ['average'] = data.average;
            known_images[id] ['votes'] = data.votes;
            known_images[id] ['username'] = data.username;
            known_images[id] ['userid'] = data.userid;

            });
         }
     });

     $('#design').attr('src','img/boxes/'+knownid+'.png');
     $("#lblName").html(known_images[knownid]['name']);
     $('#lblRating').html(known_images[knownid] ['average'] + " (" + known_images[knownid] ['votes'] + ") (<a href='User.php?uid=" + known_images[knownid] ['userid'] + "'>" + known_images[knownid] ['username'] + "</a>)");
}

my PHP file that Ajax connects to is as follows:

PHP

<?php

include('config.php');

if (isset($_POST['boxid']))
{
$knownid = $_POST['boxid'];
$query = mysql_query("SELECT b.id as boxid, b.name, b.date_added, u.username, u.id as userid, u.active, b.active, b.active_admin, b.average as average, b.votes as votes FROM BOXES b, USERS u WHERE b.user_id = u.id AND b.id >= $knownid LIMIT 0,1");

$userData = mysql_fetch_array($query, MYSQL_ASSOC);

echo json_encode(array("id" => $userData['boxid'], "name" => $userData['name'], "average" => $userData['average'], "votes" => $userData['votes'], "username" => $userData['username'], "userid" => $userData['userid']));
}
?>
share|improve this question
    
you don't "use json". json's just an encoding/transport format. .getJSON() is just a standard GET ajax request, that happens to expect the response to be in JSON format. How is this code not working? wrong answer? crashes something? kicks your dog? As well, you are wide open to SQL injection attacks. –  Marc B Feb 14 '13 at 15:56
    
you should add an error callback to the ajax options so you can see what the error details are. Also, $.getJSON calls $.ajax internally, you probably don't want to make the same ajax call twice. –  jbabey Feb 14 '13 at 15:56
1  
@MarcB You kick my dog!? –  Jack Feb 14 '13 at 15:59
    
@jbabey Is there any way you could provide me with some example code as to how to retrieve the data I need without sending two requests? –  Glen Robson Feb 14 '13 at 16:00
1  
@GlenRobson - you only need the ajax request, with the data returned in server_response. The code above makes an ajax call, which waits for a response and then makes the exact same call again. –  Archer Feb 14 '13 at 16:01

1 Answer 1

up vote 1 down vote accepted

You don't need two requests. Specifying dataType: 'json' in the first request tells jQuery to parse the response as JSON.

function updateImage() {
     var knownid = document.location.hash.substring(1); // remove #     

    $.ajax({ //Make the Ajax Request
         type: "POST",
         url: "testimagelook.php", //file name
         data: {boxid: knownid},
         dataType: 'json',
         success: function(data){
            var id = data.id;
            document.location.hash = id;   
            known_images[id] = data;
            $("#lblName").html(data.name);
            $('#lblRating').html(data.average + " (" + data.votes + ") (<a href='User.php?uid=" + data.userid + "'>" + data.username + "</a>)");
         }
     });

     $('#design').attr('src','img/boxes/'+knownid+'.png');


}
share|improve this answer
    
This looks good however when i change my code to yours everywhere the data should be shown it says 'undefined' –  Glen Robson Feb 14 '13 at 16:08
    
See my updated answer. You need to fill in #lblName and #lblRating in the callback. –  Barmar Feb 14 '13 at 16:11
    
I am still getting undefined everywhere –  Glen Robson Feb 14 '13 at 16:16
    
What does console.log(data) show? –  Barmar Feb 14 '13 at 16:32
    
Oh i worked it out. It is returning the correct information: {"id":"9","name":"Test5","average":"4.83","votes":"63","username":"TestUser","us‌​erid":"14"} –  Glen Robson Feb 14 '13 at 16:48

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