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I trying to create a simple user registration, that saves data into a database. But I have an error I cant defeat. Its says

Notice: Undefined index: pass_conf in C:\wamp\www\book\reg.php on line 27

But my pass_config seems to be right.

Any ideas whats the problem ? this is the php code

/// Updating my code, this one works

    <?php
$host = "localhost";
$dbuser = "root";
$dbpass = "";
$dbname = "pagination";

$connection = mysql_connect($host,$dbuser,$dbpass);
$db = mysql_select_db($dbname,$connection);
/*
$name = $_POST["username"];
$pass = $_POST["password"];
$pass_conf = $_POST["pass_conf"];
$email = $_POST["email"];
$ip = $_POST["ip"]; */

$name = isset($_POST['username']) ? $_POST['username'] : 0;
$pass = isset($_POST['password']) ? $_POST['password'] : 0;
$pass_conf = isset($_POST["pass_conf"]) ? $_POST["pass_conf"] : 0; // 0 equals your default off value.
$email = isset($_POST['email']) ? $_POST['email'] : 0;
$ip = isset($_POST['ip']) ? $_POST['ip'] : 0;

if($name == false || $pass == false || $pass_conf == false || $email == false){
echo "Please fill in all the required fields.";
};
if($pass != $pass_conf){
echo "Passwords do not match.";
}else {
$connection = mysql_connect($host,$dbuser,$dbpass);
$db = mysql_select_db($dbname,$connection);
$sql = "INSERT INTO user (username,password,email,ip) VALUES ($name, $pass, $email, $ip)";
$result = mysql_query($sql);
echo "Thank you for your registration to Our Site";
};

?>

I Will add my form.php also since I got a request for it.

<?php
$IP = $_SERVER['REMOTE_ADDR']; 
?>

<form name=reg action=reg.php method=post>

Username : <input type=text name=username><br>

Password : <input type=password name=password><br>

Confirm :<input type=password name=pass_conf><br>

Email : <input type=text name=email><br>

<input type=hidden name=ip value='<?php echo $IP ?>'>
<input type=submit value='Register'>
</form>

Thanks

share|improve this question
1  
Does $_POST["pass_conf"] actually have a value/is it set? Can you post a var_dump()? –  Bono Apr 21 '12 at 15:04
    
Could you post the html form that submits to this PHP script? –  gimg1 Apr 21 '12 at 15:07
2  
Let me also warn you that your code is susceptible to SQL injection. –  Jasper Apr 21 '12 at 15:08
    
When I reload the reg.php it creates a new column in my database, but the form seems to be wrong =/ –  Dymond Apr 21 '12 at 16:26
    
All good, found the error.. I needed the '' around my entries in the $sql variable. :) –  Dymond Apr 21 '12 at 17:13

4 Answers 4

instead of $x = $_POST['x'] use $x = isset($_POST['x']) ? $_POST['x'], null.

Or use:

function post($key, $default = null) {
   return isset($_POST[$key]) ? $_POST[$key] : $default;
}
share|improve this answer

First off, good job on using E_ALL while creating your app! Your "pass_conf" value is probably a checkbox that isn't selected when submitting your form and so no value is ever sent. A simple:

$pass_conf = isset($_POST["pass_conf"]) ? $_POST["pass_conf"] : 0; // 0 equals your default off value.

share|improve this answer
    
It seems much more logical to me it is a password input that you have to type the same password in again. –  Jasper Apr 21 '12 at 15:54
    
If you don't select a checkbox input, then nothing is sent around that input name, same as a password. –  iLLin Apr 22 '12 at 13:41

That message means that the value you are trying to get is not present in the array. So either the value is not filled in or is not passed thru correctly (check the fields name, it has to be exactly the same).

share|improve this answer

Have you tried:

if (array_key_exists("pass_conf", $_POST))
  $pass_conf = mysql_real_escape_string($_POST["pass_conf"]);
else
  $pass_conf = null;

$sql =
"INSERT INTO events (username, password, email, ip) " . 
"VALUES ('{$name}','{$pass}','{$email}','{$ip}')";

See this question that I asked for my full example and scroll down to how it was answered by user dldnh; it's similar to yours, so maybe it will help you: [link] Undefined index notice

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