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Here is a stripped down version of what I use to authenticate users, it works fine on my php v5.0.2/mysql 4.0.21 server, but fails on my php v5.1.6/mysql v5.0.45 server.

In the code below, should I be aware of anything that might not be supported by the newer version of php & mysql? Global variables have been enabled.

<?php
  if(!isset($HTTP_POST_VARS['username'])&&!isset($HTTP_POST_VARS['password']))
  {
    //Visitor needs to enter a name and password
?>
    <h1>Please Log In</h1>
    This page is secret.
    <form method="post" action="<?php echo $PHP_SELF;?>">
    <table border="1">
    <tr>
      <th> Username </th>
      <td> <input type="text" name="username"> </td>
    </tr>
    <tr>
      <th> Password </th>
      <td> <input type="password" name="password"> </td>
    </tr>
    <tr>
      <td colspan="2" align="center">
        <input type="submit" value="Log In">
      </td>
    </tr>
    </table>
    </form>
<?php
  }
  else
  {
    // connect to mysql
    include('../cgi-bin/db.php');

    $username = $HTTP_POST_VARS['username'];
    $password = md5($HTTP_POST_VARS['password']);

    if(!$db)
    {
      echo 'Cannot connect to database.';
      exit;
    }
    // select the appropriate database
    $mysql = mysql_select_db('quickwebcms');
    if(!$mysql)
    {
      echo 'Cannot select database.';
      exit;
    }

    // query the database to see if there is a record which matches
    $query = "select count(*) from auth where
              username = '$username' and
              password = '$password'";

    $result = mysql_query( $query );
    if(!$result)
    {
      echo 'Cannot run query.';
      exit;
    }

    $count = mysql_result( $result, 0, 0 );

    if ( $count > 0 )
    {
      // visitor's name and password combination are correct
      echo '<h1>Here it is!</h1>';
      echo 'I bet you are glad you can see this secret page.';
    }
    else
    {
      // visitor's name and password combination are not correct
      echo '<h1>Go Away!</h1>';
      echo 'You are not authorized to view this resource.';
    }
  }
?>
share|improve this question
    
What does mysql_error() say the issue with the connection is? –  Scott S. Oct 16 '09 at 23:24

2 Answers 2

up vote 4 down vote accepted

I'm guessing it might be because of $HTTP_POST_VARS. Try replacing that with $_POST. If it still doesn't work, try putting the following snippet right after <?php:

// Enable displaying errors
error_reporting(E_ALL);
ini_set('display_errors', '1');
share|improve this answer

Try setting register_long_arrays = On in php.ini and see if that fixes your issues.

On another note you shouldn't be building your queries up like that. Look into using PHP MySQL escaping.

share|improve this answer
    
Nice catch re: escaping vars –  changelog Oct 20 '08 at 18:18
    
Escaping is a critical point (regarding "username = '$username'" for example). Safely handling user input is a deep topic. While you're on SO you could start your reading here: stackoverflow.com/questions/129677/… –  micahwittman Oct 20 '08 at 18:35

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