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Here is a portion of my script, it prints 9 then 98 but fails to print 2 it indicates that the callback function in jQuery is not called. However before this I am printing the json returned from the php file using json_decode function and json is printed absolutely fine. How can I go about debugging it, I mean where could be the error?

$(document).ready( function() {
alert(9);
$('#charac').keyup( function() {
alert(98);
  $.getJSON('myprg.php?q='+escape($('#charac').val()), function(data) {
    alert(2);
share|improve this question
    
Do you know that the server is returning a successful response? Confirm that first. –  BZink Apr 27 '12 at 21:39
    
You can debug it with firebug. Have a look at michaelsync.net/2007/09/30/… for tutorial if you never debug with firebug before –  Hüseyin BABAL Apr 27 '12 at 21:40
    
@BZink: Server is returning an absolutely fine valid JSON (which I even validated) –  avinash shah Apr 27 '12 at 21:41
    
are you serving the file using the JSON mime type? –  gillesc Apr 27 '12 at 21:44
    
@gillesc: header( 'Content-type: application/json;' ); –  avinash shah Apr 27 '12 at 21:44

2 Answers 2

up vote 5 down vote accepted

Use the $.ajax function instead of getJSON and use the error callback to see what's going on.

$.ajax({
  url: url,
  dataType: 'json',
  data: data,
  success: callback
  error: callback(jqXHR, textStatus, errorThrown)
});

It can also be useful to inspect the actual server response with Firebug or Chrome developer tools and validate the JSON with JSONLint, some JSON libraries are more forgiving than others and ignore small errors.

share|improve this answer
    
Thanks for your help. I used the method described by you and finally it printed me status to be 200 which I printed using alert(jgXHR.status) & than I printed alert(errorThrown) which gave me the following message: "SyntaxError: JSON.parse: unexpected character" –  avinash shah Apr 27 '12 at 22:47
    
Finally solved the problem. Thanks a ton for helping me out on this. –  avinash shah Apr 27 '12 at 23:06

This may not be an answer, but the code is visualized better here.

Does the following also fail (using jQuery 1.5 or later)?

$(document).ready( function() {
    alert(9);
    $('#charac').keyup( function() {
        alert(98);
        var jqxhr = $.getJSON('myprg.php?q='+escape($('#charac').val()), function(data) {
            alert(2);
        })
        .success(function() { alert("second success"); })
        .error(function() { alert("error"); })
        .complete(function() { alert("complete"); });
    });
});

Or this:

$(document).ready( function() {
    alert(9);
    $('#charac').keyup( function() {
        alert(98);
        var jqxhr = $.getJSON('myprg.php?q='+escape($('#charac').val()), function(data) {
            alert(2);
        });

        jqxhr.success(function() { alert("second success"); });
        jqxhr.error(function() { alert("error"); });
        jqxhr.complete(function() { alert("complete"); });
    });
});
share|improve this answer
    
Thanks Mario for helping. Firebug prints this: $.getJSON("myprg.php?q=" + escape($("#charac").val()), function (data) {alert(2);}).error is not a function [Break On This Error] .error(function() { alert("error"); }) –  avinash shah Apr 27 '12 at 22:00
    
it still does not output 2 –  avinash shah Apr 27 '12 at 22:02
    
Which jQuery version are you using? Does the second example work? I mean, do you get any alert? –  Mario Apr 27 '12 at 22:05
    
<script src="jquery-1.4.2.min.js">. This time the firebug says:jqxhr.success is not a function [Break On This Error] jqxhr.success(function() { alert("second success"); }) –  avinash shah Apr 27 '12 at 22:12
    
No I dont get any alert after 98 –  avinash shah Apr 27 '12 at 22:14

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