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My problem is that I want to validate an email address with jquery. Not only the syntax but rather if the email is already registered. There are some tutorials but they are not working! At first the Jquery Code:

<script id="demo" type="text/javascript"> 
$(document).ready(function() {
 // validate signup form on keyup and submit
 var validator = $("form#signupform").validate({
  rules: {
   Vorname: {
    required: true,
    minlength: 3
   },
   Nachname:{
    required: true,
    minlength: 4
   },
   password: {
    required: true,
    minlength: 5
   },
   password_confirm: {
    required: true,
    minlength: 5,
    equalTo: "#password"
   },
   Email: {
    required: true,
    email: true,
    type: "POST",
    remote: "remotemail.php"
   },
   dateformat: "required",
  ...
</script> 

And now the PHP Code:

<?php
    include('dbsettings.php');

    $conn = mysql_connect($dbhost,$dbuser,$dbpw); 
    mysql_select_db($dbdb,$conn);

    $auslesen1 = "SELECT Email FROM flo_user"; 
    $auslesen2 = mysql_query($auslesen1,$conn); 
    $registered_email = mysql_fetch_assoc($auslesen2);
    $requested_email  = $_POST['Email'];

    if( in_array($requested_email, $registered_email) ){
        echo "false";
    }
    else{
        echo "true";
    }
?>

I tried return TRUE/ return FALSE as well, but this displays "Email is registered" all the time. json_encode didn't work either.

Thanks a lot!

share|improve this question
    
Grats, you must be German! –  Sune Rasmussen May 11 '10 at 8:39
1  
German (and any other non-english) code is ugly. I'm also German btw. Give your variables meaningful, english names. "Auslesen" ("read") is not meaningful. For example, instead of $auslesen1 you should use $sql and $result instead of $auslesen2. Additionally, your code will throw a E_NOTICE if $_POST['Email'] is not present. –  ThiefMaster May 11 '10 at 10:58

2 Answers 2

Modify remotemail.php to return false no matter what email address is used. See if you get this to work (i.e. fail validation). Secondly, your PHP code for checking emails looks in-correct... it only checks the first email address in the table and will probably return true for all email addresses. It should be re-written as follows:

// do not forget to add addslashes in the line below, if necessary
$auslesen1 = "SELECT 1 FROM flo_user WHERE Email = '" . $_POST['Email'] . "'"; 
$auslesen2 = mysql_query($auslesen1, $conn); 
$auslesen3 = mysql_fetch_assoc($auslesen2);

echo $auslesen3 === false
    ? "true"   // email does not exist
    : "false"; // email exists
share|improve this answer
    
Instead of that SELECT 1 it would be much cleaner to SELECT COUNT(*). –  ThiefMaster May 11 '10 at 10:59
    
I am checking for the presence or absence of record in the next lines of PHP code. As an alternate, yes, I could have used COUNT(*) AS Foo and then check $auslesen3['Foo'] == '0'. –  Salman A May 11 '10 at 11:12

From the docs the value seems to be passed as a get parameter. Replace $_POST['Email'] with $_GET['Email'] and see if that works for you.

Also in_array doesn't handle multidimensional arrays, which the array is. Maybe a better technique would be to add a WHERE clause to your SQL statement something like

$email = mysql_real_escape_string($_GET['Email']);
$sql = 'select Email from users where Email = '.$email;
$result = mysql_query($query, $dbconn);
$resultAsArray = mysql_fetch_assoc($result);
if(count($resultAsArray)==0) {
    echo true;
}
else {
    echo false;
}
share|improve this answer

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