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The following is the beginning of header.php, which is a file included at the top of all my pages. As it is now, every page it's included on comes out blank in the browser -- what can I have done wrong? (The login credentials for the database, here replaced with x:es, are correct.)

session_start();

if (isset($_POST['log_out'])) {
    session_unset();
    session_destroy();
    $_SESSION = array();
}

if (isset($_POST['username']) && isset($_POST['password'])) {

    $salt1 = "ghjfdghpuaqXC"
    $salt2 = "GHLUYKRGrtuuh"
    $password = sha1($salt1 . $_POST['password'] . $salt2);

    $db_hostname = 'xxxxxxxx';
    $db_username = 'xxxxxxxx';
    $db_password = 'xxxxxxxx';
    $db_database = 'xxxxxxxx';

$db_server = mysql_connect($db_hostname, $db_username, $db_password);

if (!$db_server) die("Unable to connect to MySQL: " . mysql_error());

    mysql_select_db($db_database)
        or die("Unable to select database: " . mysql_error());

    $query = "SELECT password FROM users WHERE name = '" . $_POST['username'] . "'";
    $passwordindatabase = mysql_query($query);

    if ($password == $passwordindatabase) {
        $_SESSION['logged_in'] = true;
        $_SESSION['user'] = $_POST['username'];
        unset($_POST['username']);
        unset($_POST['password']);
    }
}
share|improve this question
    
parse error? otherwise, error_reporting(-1); ini_set('display_errors', 'On'); at the top of your script. –  Ja͢ck May 15 '12 at 7:02
    
Thanks. Page was still blank even after turning error reporting on, but I'll keep it in mind for next time. –  Johanna May 15 '12 at 11:57
    
Yeah it wouldn't have mattered in this case, because there are no errors ... it's just the default response when I see white screen of death :) –  Ja͢ck May 15 '12 at 12:55

3 Answers 3

up vote 0 down vote accepted

mysql_query returns a MySQL resource. This resource must first be 'converted' to some PHP value, e.g. a string or an array.

You want to compare a resource (as returned by mysql_query) with a string (the password). Those, of course, will never match. So you must first convert the resource to a string. For any future queries with multiple selected columns, I'll first convert it to an array:

$resultarray = mysql_fetch_assoc($passwordindatabase);

Then the password can be fetched from this array:

$resultstring = $resultarray['password'];

As a sidenote, may I point out that you must ABSOLUTELY escape raw POST results like $_POST['username'] with mysql_real_escape_string before feeding them to your database?

share|improve this answer
    
Thanks. Adding this and a couple of missing semicolons made the page show. Also thanks for the reminder about mysql_real_escape_string. I'm still not able to retrieve and compare the password from the database, but I'll create a new question for that with the updated code for the complete web page. –  Johanna May 15 '12 at 10:31

i guess you should use mysql_fetch_row or mysql_fetch_assoc on your password query to use the output

$passwordindatabase = mysql_fetch_row(mysql_query($query));
share|improve this answer

The lines

$passwordindatabase = mysql_query($query);

and

if ($password == $passwordindatabase) {

dont make sense. You should use:

$passwordindatabase just contains the query, not a result ! and then, after getting the result, you should assign the exact result variable, like this:

if (mysql_num_rows($passwordindatabase != 0) {
    $row = mysql_fetch_assoc($result);
    $passwordindatabase = $row["password"];
}
share|improve this answer

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