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I'm trying to build a simple email signup, and I came across this tutorial which seemed to be exactly what I wanted to do ( I don't have much programming knowledge, so this was my best bet at getting something up and running. I followed the tutorial, but unfortunately, I'm having some problems with it.

My problem is when I try to submit an email address, I get Uncaught SyntaxError: Unexpected token < in jquery.js, on line 565. When I expand the error in Dev Tools, it shows:

jQuery.extend.parseJSON                jquery.js:565
$.ajax.success                         common.js:36                  jquery.js:1046
jQuery.Callbacks.self.fireWith         jquery.js:1164
done                                   jquery.js:7399
jQuery.ajaxTransport.send.callback     jquery.js:8180

As I said, I'm a rookie with this, so I greatly appreciate any help. I've been researching for a while, but haven't found any issue the same as mine. Some were similar, but I couldn't fix the issue with any of the solutions I came across.

This is the form code:

<form id="newsletter-signup" action="?action=signup" method="post">
    <label for="signup-email">Sign up for email offers, news & events:</label>
    <input type="text" name="signup-email" id="signup-email" />
    <input type="submit" id="signup-button" value="Sign Me Up!" />
    <p id="signup-response"></p>

This is the signup JS:

/* SIGNUP */

    //check the form is not currently submitting
    if($(this).data('formstatus') !== 'submitting'){

        //setup variables
        var form = $(this),
            formData = form.serialize(),
            formUrl = form.attr('action'),
            formMethod = form.attr('method'), 
            responseMsg = $('#signup-response');

        //add status data to form'formstatus','submitting');

        //show response message - waiting
                   .text('Please Wait...')

        //send data to server for validation
            url: formUrl,
            type: formMethod,
            data: formData,

                //setup variables
                var responseData = jQuery.parseJSON(data), 
                    klass = '';

                //response conditional
                    case 'error':
                        klass = 'response-error';
                    case 'success':
                        klass = 'response-success';

                //show reponse message
                               //set timeout to hide response message

    //prevent form from submitting
    return false;

And this is the PHP:

//email signup ajax call
if($_GET['action'] == 'signup'){


//sanitize data
$email = mysql_real_escape_string($_POST['signup-email']);

//validate email address - check if input was empty
    $status = "error";
    $message = "You did not enter an email address!";
else if(!preg_match('/^[^\W][a-zA-Z0-9_]+(\.[a-zA-Z0-9_]+)*\@[a-zA-Z0-9_]+(\.[a-zA-Z0-9_]+)*\.[a-zA-Z]{2,4}$/', $email)){ //validate email address - check if is a valid email address
        $status = "error";
        $message = "You have entered an invalid email address!";
else {
    $existingSignup = mysql_query("SELECT * FROM signups WHERE signup_email_address='$email'");   
    if(mysql_num_rows($existingSignup) < 1){

        $date = date('Y-m-d');
        $time = date('H:i:s');

        $insertSignup = mysql_query("INSERT INTO signups (signup_email_address, signup_date, signup_time) VALUES ('$email','$date','$time')");
        if($insertSignup){ //if insert is successful
            $status = "success";
            $message = "You have been signed up!";  
        else { //if insert fails
            $status = "error";
            $message = "Ooops, Theres been a technical error!"; 
    else { //if already signed up
        $status = "error";
        $message = "This email address has already been registered!";

//return json response
$data = array(
    'status' => $status,
    'message' => $message

echo json_encode($data);


UPDATE: Shad - I inserted that code right after 'success:function(data){' Is that correct? After doing that, when trying to submit an email address, I get this in the console, pointing to the line with the newly added code:

arguments: Array[1]
get message: function getter() { [native code] }
get stack: function getter() { [native code] }
set message: function setter() { [native code] }
set stack: function setter() { [native code] }
type: "unexpected_token"
__proto__: Error
<br />
<b>Warning</b>:  mysql_num_rows(): supplied argument is not a valid MySQL result resource in <b>/homepages/37/d403623864/htdocs/_php/launch_notify.php</b> on line <b>22</b><br />
{"status":"error","message":"Ooops, Theres been a technical error!"}

Screenshot of Dev Tools with that error. Let me know if you need to see any of the lines expanded or anything:

UPDATE #2: Using the code provided by satoshi, I think I made a little progress on figuring out the issue, but I still haven't solved it. I think I narrowed it down to a MySQL connection issue. I tried this code:

or die(mysql_error());
echo "Connected to MySQL<br />";
or die(mysql_error());
echo "Connected to Database";

And the response I get is:

Connected to MySQL
Access denied for user '[USER]'@'%' to database 'signups'

I've tried a bunch of things, but can't figure it out. My host is 1&1, and I created the table through there using PHPMyAdmin. I've tried different tables, all get the same issue. Here's a screenshot showing the table in PHPMyAdmin:

Thanks again for all the help so far everyone. I appreciate it.

share|improve this question
What does the php page response look like? –  Kevin B Feb 19 '12 at 4:00
First thing i would recommend is catching the error =) (in a useful way:) try {responseData = jQuery.parseJSON(data)} catch (e) {console.log('Failed: ', e, data);} –  Shad Feb 19 '12 at 4:09
Shad - I updated the original post. Thanks. –  user1218743 Feb 20 '12 at 0:00
I know it might sound really stupid, but are you sure that you specified the correct login/db details? –  satoshi Feb 23 '12 at 14:09
Yeah, positive. I even tried different databases, and had the same issue. –  user1218743 Feb 23 '12 at 20:09

1 Answer 1

Your PHP file is warning you because $existingSignup is not a valid resource. This is because your SQL query is invalid. For this reason, because PHP is outputting something unexpected, the page doesn't return a valid JSON response.

Please verify that your mysql_query(...) call returns a valid resource before calling mysql_num_rows(...), like this:

$existingSignup = mysql_query("SELECT * FROM signups WHERE signup_email_address='$email'");
if($existingSignup !== FALSE)
    if(mysql_num_rows($existingSignup) < 1){
        // ...
    else { //if already signed up
        $status = "error";
        $message = "This email address has already been registered!";
else {
    $status = "error";
    $message = mysql_error();

Edit: please note that the query is syntactically correct, I guess you face the problem because you didn't set up the DB table correctly.

share|improve this answer
Thanks for the help. I updated the original post in response to this. –  user1218743 Feb 21 '12 at 2:44

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