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I just started learning mysqli last night and am currently having an issue with a function I created. The function should log in the user. However, when I type in an existing username with the authentic or a made up password, the login page reloads displaying the $user_id. I'm at a lost at what is wrong. I didn't have this problem when I had mysql.

/** 
 * Returns FALSE, if no valid user found
 * Returns user_id of matching user with $username and $password
 */
function login ($mysqli, $username, $password) {

    // not required at all
    // $user_id = user_id_from_username($mysqli, $username);

    // initialize, in case we do not get a mysqli-statement
    $userID = FALSE;
    $password = md5($password);
    $stmt = $mysqli->prepare(
                     "SELECT `user_id`          "
                   . "  FROM `users`            "
                   . " WHERE ( `username` = ? ) "
                   . "   AND ( `password` = ? ) "
            );

    if ( $stmt ) {
        $stmt->bind_param('ss', $username, $password);  
        $stmt->execute();
        $stmt->bind_result($userID);
        if ( TRUE !== $stmt->fetch()) {
            $userID = FALSE;
        }
    }
    $stmt->close();
    return $userID; 
}

And here is when I call the function login in the login page. $mysqli is the variable containing the connection to the database.

// Now, needs to check against FALSE to work [changed by @SteAp]

//   var_dump( $login ); returns with int(1) 
//   and this is what I want, the integer 1

//Sends me to start.php but start.php does not recognize 
//the variable $_SESSION['user_id']
if ( FALSE === ($login = login($mysqli, $username, $password)) ) {  
  $errors[] = 'That username/password combination is incorrect';
} else {
  $_SESSION['user_id'] = $login;
  header('Location: start.php');
  exit();
}

if (empty($errors) === false) {
  echo '<div>'. output_errors($errors) . '</div>';
}
share|improve this question
1  
PLEASE DON'T MD5 PASSWORDS! md5 HAS been broken MANY times and with today's computing power can be broken relatively quick. –  Cole Johnson Sep 2 '12 at 0:08
    
Thanks for the suggestion. –  jason328 Sep 2 '12 at 0:12
    
Regarding password hashing php.net/manual/en/faq.passwords.php –  SteAp Sep 2 '12 at 0:16
    
If you run the query directly in the DB (phpAdmin) does it return a valid result ? –  alfasin Sep 2 '12 at 0:18
    
Yes, it returns the valid result. –  jason328 Sep 2 '12 at 0:26

2 Answers 2

up vote 0 down vote accepted

Return the user_id, not the count:

if ($stmt = $mysqli->prepare("SELECT `user_id` FROM `users` WHERE `username` = ? 

Then use it like this:

$stmt->bind_result($return);

if ( TRUE !== $stmt->fetch() ) {
  $return = FALSE
}

$stmt->close();

return $return;

Now, $return if either FALSE or the user_id of the found record.

And, certainly, you need to start a session, before any assignment to $_SESSION gets passed along. Example from PHP manual:

page1.php

session_start();

echo 'Welcome to page #1';

$_SESSION['favcolor'] = 'green';
$_SESSION['animal']   = 'cat';
$_SESSION['time']     = time();

// Works if session cookie was accepted
echo '<br /><a href="page2.php">page 2</a>';

page2.php

session_start();

echo 'Welcome to page #2<br />';

echo $_SESSION['favcolor']; // green
echo $_SESSION['animal'];   // cat
echo date('Y m d H:i:s', $_SESSION['time']);

// You may want to use SID here, like we did in page1.php
echo '<br /><a href="page1.php">page 1</a>';
share|improve this answer
    
This would only return true if $return were 1, else it would return false. –  Eduard Luca Sep 1 '12 at 22:44
    
What's the problem? Few systems use identical userID/PWD combinations for multiple users. If exactly one user is found, user should be logged in. If more than one is found, system should throw an exception. –  SteAp Sep 1 '12 at 22:45
    
Yes, but he wants to return the user_id, not true/false –  Eduard Luca Sep 1 '12 at 22:50
    
What does $return refer to? It was never created before it was called? –  jason328 Sep 1 '12 at 22:50
    
Isn't it set by bind_result($return)? –  SteAp Sep 1 '12 at 22:51

Replace the following line:

if ($return == 1) {echo $user_id;} else {return false;}

with

if ($return == 1) {return $user_id;} else {return false;}

In your example, you are writing the $user_id variable in the browser, instead of returning it to the function that calls it.

share|improve this answer
    
Still got the same result. –  jason328 Sep 1 '12 at 22:45

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