Sign up ×
Stack Overflow is a community of 4.7 million programmers, just like you, helping each other. Join them; it only takes a minute:

Is there a way to get PHP to return an AJAX error code if the PHP script fails somewhere? I was following a tutorial and typed this in to my PHP:

$return['error'] = true;
$return['msg'] = "Could not connect to DB";

And all was well, until I realised it was JSON data. Is there a way to return errors using standard $_POST and returned HTML data (as in, trigger jQuery's AJAX error: event?

share|improve this question

3 Answers 3

up vote 45 down vote accepted

I don't know about jQuery, but if it distinguishes between successful and unsuccessful (HTTP 200 OK vs. HTTP != 200) Ajax requests, you might want your PHP script respond with an HTTP code not equal to 200:

if ($everything_is_ok)
        header('Content-Type: application/json');
        print json_encode($result);
        header('HTTP/1.1 500 Internal Server Booboo');
        header('Content-Type: application/json; charset=UTF-8');
        die(json_encode(array('message' => 'ERROR', 'code' => 1337)));
share|improve this answer
Thank you :-) looks simple! Also, is Booboo official, or can it be anything? – Bojangles Dec 12 '10 at 10:04
Hehe. It can be anything. The "official" term is "Internal Server Error", though. – Linus Kleen Dec 12 '10 at 13:35
@Bojangles comment of the century lol ^_^ Could not prevent myself from commenting. :p – noc2spam ツ Nov 28 '14 at 9:30

try this out. Hope it helps.

<!-- This is index.php --->
            <script src="js/jquery.js" type="text/javascript"></script><!-- link to jQuery -->
            <script language="javascript"> 
            $(document).ready(function () {
                    /* Empty div#error and div#result incase they contain info from the last submission */
                    /* Client-side validation */
                    var name = $("input#name").val();
                    var age = $("input#age").val();
                    if (name==''){
                        alert('Insert your name.');
                    else if (age==''){
                        alert('Insert your age.');
                    } else { 
                        var params = 'name=' + name + '&age=' + age;   
                             cache: false,            
                        function data (html) {
                            var $html = $( html ); // create DOM elements in a jQuery object
                            /* Return errors from 'b.php' */
                            /* Return valid Post */
                            /* Clear name input */
                            /* Clear age input */
            <style type='text/css'>
            <div id="error"></div><!-- View Errors -->
            <div id="result"></div><!-- View valid Post -->
            <input type='text' name='name' id="name" value='' /><br/ >
            <input type='text' name='age' id="age" value='' /><br/ >
            <input type='submit' name='send' id="send" value='Send' />

/* This is b.php */
    $error = '<div id="err">Error: Fill in ALL fields.</div>';
} elseif(is_numeric($_POST['name'])){
    $error = '<div id="err">Error: Name should NOT contain numbers.</div>';
} elseif(!is_numeric($_POST['age'])){
    $error = '<div id="err">Error: Age should ONLY contain numbers.</div>';
} else{
    $result = '<div id="res">Hi '.$_POST['name'].', you are '.$_POST['age'].' years old.</div>';
echo $error;
echo $result;
share|improve this answer
$return = array();
$return['msg'] = "Could not connect to DB";

    header('Cache-Control: no-cache, must-revalidate');
    header('Expires: Mon, 26 Jul 1997 05:00:00 GMT');
    header('Content-type: application/json');
share|improve this answer
You need to force your requests with $_SERVER['HTTP_X_REQUESTED_WITH']. browsers like Firefox wont evaluate the response when the Accept header does not match. – Webist Dec 12 '10 at 10:19

Your Answer


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.