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I'm new to PHP.

Currently in 'tutorials stage'.

I'm doing some exercises from Beginners PHP & MySQL by Mr. Tucker.

On his example everything works fine, but on my PC there is an error:

Notice: Undefined variable: passwordRetrieved in C:\wamp\www\loginForm.php on line 39.

Full PHP code for this example: - please note table does exist, password, connection to the DB etc... are correct

<?php


{       //  Secure Connection Script
        include('htconfig/dbConfig.php'); 
        $dbSuccess = false;
        $dbConnected = mysql_connect($db['hostname'],$db['username'],$db['password']);

        if ($dbConnected) {     
            $dbSelected = mysql_select_db($db['database'],$dbConnected);
            if ($dbSelected) {
                $dbSuccess = true;
            }   
        }
        //  END Secure Connection Script
}

$thisScriptName = "loginForm.php";

echo '<h2>Login Form </h2>';

    $username = $_POST['username'];

    if(isset($username)) {
        $password = $_POST['password'];
        echo "username = ".$username."<br />";
        echo "password = ".$password."<br />";

        {   //      SELECT password for this user from the DB and see it it matches 
            $tUser_SQLselect = "SELECT password FROM tUser ";
            $tUser_SQLselect .= "WHERE username = '".$username."' ";    

            $tUser_SQLselect_Query = mysql_query($tUser_SQLselect);     
            while ($row = mysql_fetch_array($tUser_SQLselect_Query, MYSQL_ASSOC)) {
                $passwordRetrieved = $row['password'];
            }
            mysql_free_result($tUser_SQLselect_Query);

            echo "passwordRetrieved = ".$passwordRetrieved."<br />";

            if (!empty($passwordRetrieved) AND ($password == $passwordRetrieved)) {

                    echo "YES. Password matches.<br /><br />";
                    echo '<a href="'.$thisScriptName.'">Logout</a>';            
            } else {
                echo "Access denied.<br /><br />";      
                echo '<a href="'.$thisScriptName.'">Try again</a>';         
            }
        }

    } else {

        echo '<form name="postLoginHid" action="'.$thisScriptName.'" method="post">';   
                echo '
                    <P>User name: 
                    <INPUT TYPE=text NAME=username value=""></P>
                    <P>Password: 
                    <INPUT TYPE=password NAME=password value=""></P>
                    <input type="submit"  value="Login" />
                ';
        echo '</form>';

    }

echo '<h2>--------- END Login Form --------</h2>';

?>
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9 Answers

up vote 1 down vote accepted

just before while where you set variable $passwordRetrieved declare it so it should look like this

$tUser_SQLselect_Query = mysql_query($tUser_SQLselect);    
$passwordRetrieved = ""; 
            while ($row = mysql_fetch_array($tUser_SQLselect_Query, MYSQL_ASSOC)) {
                $passwordRetrieved = $row['password'];
            }
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Does it not mean that my $passwordRetrieved is an empty string? Where it should take this value from the form? –  User789 Aug 4 '11 at 13:23
    
no, your value will be assigned in while loop –  Senad Meškin Aug 4 '11 at 13:43
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That's because your query returned nothing and your

while ($row = mysql_fetch_array($tUser_SQLselect_Query, MYSQL_ASSOC)) {

didn't fill

$passwordRetrieved

You can disable E_NOTICE notices because it's not something that would hurt

Or add

$passwordRetrieved = "";

before your

while ($row = mysql_fetch_array($tUser_SQLselect_Query, MYSQL_ASSOC)) {
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while ($row = mysql_fetch_array($tUser_SQLselect_Query, MYSQL_ASSOC)) {
  $passwordRetrieved = $row['password'];
}

this is the only place where a value may be assigned to the variable $passwordRetrieved.
If there is no record in the result set the body of the while-loop is never executed and therefore no value ever is assigned to $passwordRetrieved and therefore $passwordRetrieved does not exist/is undefined at line 39 -> Notice: Undefined variable: passwordRetrieved in C:\wamp\www\loginForm.php on line 39.

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You are trying to access the variable $passwordRetrieved when it has not yet been given a value. The access is done here:

echo "passwordRetrieved = ".$passwordRetrieved."<br />";

The variable would be set just above:

while ($row = mysql_fetch_array($tUser_SQLselect_Query, MYSQL_ASSOC)) {
    $passwordRetrieved = $row['password'];  // VARIABLE SET HERE
}

The important thing is that the variable only gets set if the query returns a matching row (i.e., on a successful login). If the login is not valid, the variable is not set.

To check if a variable is set without getting a notice, you would use either isset or empty (there are subtle differences, but as a rule of thumb you can use either most of the time). Your code actually already does this just below:

// Checking if $passwordRetrieved has been set using empty()
if (!empty($passwordRetrieved) AND ($password == $passwordRetrieved)) {
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if your query returned no results, then $passwordRetrieved is undefined (just like the message says). you should throw an error when you couldnt find any users with username=$username (which is also an invalid login)

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you simply use an undefined variable if your while loop doesn't work your variable steel undefined so you obtain an error :)

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do a check using mysql_num_rows($result) to make sure you actually got something.

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You should define $passwordRetrieved before use it. This notice does not effect at all. To avoid this define it:

$thisScriptName = "loginForm.php";

$passwordRetrieved;
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As this question has already been answered, I would also add instead of using mysql_fetch_array with the MYSQL_ASSOC parameter, you can just use mysql_fetch_assoc() :)

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