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I have this code but when I try to load the page it is blank: (I replaced the actual names of the cookies with USERCOOKIEID and PASSCOOKIEID and removed the code that happens when the user is signed in)

if(isset($_COOKIE['USERCOOKIEID'])) { 
$user = $_COOKIE['USERCOOKIEID']; 
$pass = $_COOKIE['PASSCOOKIEID'];
$check = mysql_query("SELECT * FROM users WHERE username = '$user'")or die();
while($info = mysql_fetch_array($check)) {
    if ($pass != $info['password']) {           
    }else{
    //This is were the code goes for a user that is signed on
    }
}

}else{//what happens if they don't have the cookie
header("Location: login.php");

}

Thanks

closed as too localized by casperOne Apr 8 '12 at 3:53

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  • Using an IDE with basic syntax highlighting will prevent these types of errors – nathanjosiah Apr 6 '12 at 22:05
  • 1
    Also, this code is very insecure in its current state, always sanitize ANY data that comes from the user, including cookies – nathanjosiah Apr 6 '12 at 22:06
  • 1
    For a secure architecture, no system should be storing plaintext passwords. Always irreversibly encrypt or hash them, preferably with adequate salt, including combining the hash with the username, a per-user salt, and a systemwide salt. These steps render rainbow table attacks useless. – wallyk Apr 6 '12 at 22:10
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should look like like

if(isset($_COOKIE['USERCOOKIEID']))
{ 
    $user = $_COOKIE['USERCOOKIEID']; 
    $pass = $_COOKIE['PASSCOOKIEID'];
    $check = mysql_query("SELECT * FROM `users` WHERE `username`='$user'") or die();
    if (mysql_result($check, 0, 'passwordcolnum') == $pass) {
    } else {
        //This is were the code goes for a user that is signed on
    }
} else { //what happens if they don't have the cookie
    header("Location: login.php");
}

also, instead of mysql_fetch_array, why don't you use mysql_result as surely there would only be one record

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