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I'm using jQuery AJAX to grab some data from a PHP page and using a loading GIF image in the placeholder to let the user know the results are on the way.

$(".project").change(function(){
            $(".custName").html("<img src='/admin/images/ajax-loader.gif' />");
            $(".projectDesc").html("<img src='/admin/images/ajax-loader.gif' />");
            var project_num=$(this).val();
            var dataString = 'project='+ project_num;

                $.ajax
                    ({
                        type: "POST",
                        url: "customerfilter.php",
                        dataType: "json",
                        data: dataString,
                        cache: false,
                        success: function(data)
                        {
                            $(".custName").html(data.message1);
                            $(".projectDesc").html(data.message2);
                        }
                    });


        });

When i click the trigger and open up Firebug console i can see the POST go and come back and the data is correct. However the loading gif never goes away and never gets replaced by the correct data - no idea why!?

This is a screenshot of Firebug and the RESPONSE window:

alt text

Relative PHP:

while ($row = mysql_fetch_array($result)) {
                echo json_encode(array(
                    "message1" => $row['cust_name'],
                    "message2" => $row['description'],
                ));

$result is a mysql_query

share|improve this question
    
show us the data that comes back and possibly the php that generates it. –  jondavidjohn Jan 10 '11 at 15:17
    
Check if the 'success' callback works. Put a console.log into for example. When the response is not valid json, the callback is not being called correctly. –  Peter Porfy Jan 10 '11 at 15:18
1  
Have you used a debugger to step through the "success" callback? –  Pointy Jan 10 '11 at 15:18
    
Your PHP return the Content-Type: application/json header ? If you do console.log(data) inside your success function, do you see something like this: { message1: 'asd', message2: 'qwe' } ? –  joksnet Jan 10 '11 at 15:19
    
That response is not a valid json. –  Peter Porfy Jan 10 '11 at 15:21

2 Answers 2

up vote 5 down vote accepted

That response is not a valid json. Try this:


$output = Array();
while ($row = mysql_fetch_array($result)) {
                $output[] = Array(
                    "message1" => $row['cust_name'],
                    "message2" => $row['description'],
                );
}
echo json_encode($output);

EDIT: additionally, you have to change your 'success' javascript callback too:


success: function(data) {
  $(".custName, .projectDesc").empty();
  for(var x in data) {
     $(".custName").append(data[x].message1);
     $(".projectDesc").append(data[x].message2);
  }
}
share|improve this answer
    
+1 - This is almost certainly the problem/solution. –  Topher Fangio Jan 10 '11 at 15:26
    
The 'success' callback runs now? –  Peter Porfy Jan 10 '11 at 15:28
    
apologies, since you added the jQuery...perfect! Thanks alot –  benhowdle89 Jan 10 '11 at 15:30
    
youre welcome :) –  Peter Porfy Jan 10 '11 at 15:32

I've run into similar problems when setting the type to be JSON. If the PHP doesn't return 100% correct JSON, then jQuery will not run the success function.

So try this:

  1. Put a console.log("success was called") statement inside of the success method so that you can see when it's called.

  2. Ensure that your PHP code is creating proper JSON by using the json_encode function.

  3. Post any new information you have so we can continue to help you debug :-)

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