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I'm getting this error and I don't quite understand why. I've been going over this for hours now, tried looking into it via research, no luck.

In my PHP login system, I check if the row is selected:

//Start session
    session_start();

    //Include database connection details
    require_once('config.php');

    //Array to store validation errors
    $errmsg_arr = array();

    //Validation error flag
    $errflag = false;

    //Connect to mysql server
    $link = mysql_connect(DB_HOST, DB_USER, DB_PASSWORD);
    if(!$link) {
        die('Failed to connect to server: ' . mysql_error());
    }

    //Select database
    $db = mysql_select_db(DB_DATABASE);
    if(!$db) {
        die("Unable to select database");
    }

    //Prevent SQL injection.
    function clean($str) {
        $str = @trim($str);
        if(get_magic_quotes_gpc()) {
            $str = stripslashes($str);
        }
        return mysql_real_escape_string($str);
    }

    //Sanitize the POST values
    $login = clean($_POST['login']);
    $password = clean($_POST['password']);

    //Input Validations
    if($login == '') {
        $errmsg_arr[] = 'Login ID missing';
        $errflag = true;
    }
    if($password == '') {
        $errmsg_arr[] = 'Password missing';
        $errflag = true;
    }

    //If there are input validations, redirect back to the login form
    if($errflag) {
        $_SESSION['ERRMSG_ARR'] = $errmsg_arr;
        session_write_close();
        echo "input validation";
        exit();
    }

    //Create query
    $qry="SELECT * FROM details WHERE USERNAME='$login' AND PASSWORD='".md5($_POST['password'])."'";
    $result=mysql_query($qry);

    //Check whether the query was successful or not
    if($result) {
        if(mysql_num_rows($result) == 1) {
            //Login Successful
            session_regenerate_id();
            $member = mysql_fetch_assoc($result);
            $_SESSION['MEMBER_ID'] = $member['USERNAME'];


            session_write_close();
            header("location: client-index.php");
            exit();
        }else {
            //Login failed
            echo "login failed?";
            exit();
        }
    }else {
        die("Query failed");
    }
?>   

It echos "failed", for whatever reason.

share|improve this question
    
can we see the html part? My first guess is that your post are not submited –  PL Audet Oct 5 '12 at 0:06
    
That entire page is nothing but PHP. –  Jason Y Oct 5 '12 at 0:10
    
Where does the $_POST variable come from then ? –  PL Audet Oct 5 '12 at 0:10
1  
Please take note of: bobby-tables.com –  Ben Oct 5 '12 at 0:11
    
Seriously, until we can see your HTML no one will be able to help you. –  PL Audet Oct 5 '12 at 0:13
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3 Answers 3

If you told us what the error is, it might help us answer your question better.

But at any rate, this is emphatically the WRONG way to go about this. There are many serious problems with this system.

First of all, you're not sanitizing your inputs. Since you're mixing your data and commands together, all a user would have to do is enter a username of "x' or 1 = 1' --" to get into the system. Here's why: the only command the SQL server would get is "SELECT * FROM details WHERE USERNAME = 'x' or 1 = 1". In other words, if the username is x or 1 = 1 (which it is), then the SQL server would respond with a positive result. (The two dashes at the end of the "username" denote a comment in SQL, so everything after that in the query would be ignored).

A truly malicious attacker could even wreak havoc on your system by entering a username "x'--; DROP TABLES;', and your entire database would be gone. (See this comic for where I got this.)

In fact, you shouldn't even really be using mysql_query at all. According to the PHP documentation:

Use of this extension is discouraged. Instead, the MySQLi or PDO_MySQL extension should be used.

I would do a bit more reading on the subject if I were you. Even if this is just for practice, it's still best to get things right the first time. Look into PDO: it's not too hard to learn, yet quite useful. Its main advantage is that it does not mix data and commands, so you won't have the same problem of unsanitized inputs messing up your database.

Also, while it's good to see that you're hashing your passwords--and you'd be amazed at how many companies that should know better do not--MD5 is no longer considered cryptographically secure. It's relatively easy to get what's called a "hash collision," where two different plaintexts produce the same hash. Now, SHA-256 should be the minimum you use.

Also, on the subject of hashing, you should be adding something called salt. A salt is some kind of random text that you add to your plaintext in order to further obfuscate it. The reason for this is that there are what's called rainbow tables out there. A rainbow table is a list of pre-calculated hashes of all common passwords. If someone were to get a hold of your database, they could then compare all the passwords to rainbow tables to find their plaintexts.

Finally, in order to slow down brute force attacks--where an attacker tries all alphanumeric combinations until they get the password--you should also be using a loop where the hash algorithm gets re-calculated x number of times, usually between 1000 and 10000 times. PHP's crypt does this very nicely.

And BTW: don't feel bad. I've done all these things before, too. That's why I know that you shouldn't do them. Don't worry--you'll get there soon enough. Keep at it!

share|improve this answer
    
This would be more appropriate as (shorter) comment. In addition, the question was updated quite a while ago to show that the inputs actually are being sanitized. –  user622367 Oct 5 '12 at 0:30
    
I'd imagine he was typing before I edited the post. I do greatly appreciate that kind of info, so I'll keep it in mind. Thank you. –  Jason Y Oct 5 '12 at 0:33
    
I was indeed typing my answer as the code was being edited. Plus, I don't have enough reputation to leave comments on anyone else's posts yet. –  blainarmstrong Oct 5 '12 at 0:35
add comment

I am new to site so can not add comments maybe this wont help much but ill give it a go anyway

in your sql query it looks like you passing variable $login as text not variable value

$qry="SELECT * FROM details WHERE USERNAME='$login' AND PASSWORD='".md5($_POST['password'])."'";

and it should be

$qry="SELECT * FROM details WHERE USERNAME=".$login." AND PASSWORD='".md5($_POST['password'])."'";
share|improve this answer
    
That didn't change anything :s –  Jason Y Oct 5 '12 at 1:03
    
i just edited code , try it with this ... if it still fails i give up –  Veljko89 Oct 5 '12 at 1:14
    
Interesting. That made it initiate the "die("Query failed");" line? –  Jason Y Oct 5 '12 at 1:34
    
In that case mate best is to just go with break point line by line , just check how your query looks like and how $result looks like after running that query and you will find out problem in no time –  Veljko89 Oct 6 '12 at 9:19
add comment

is it a query failed or login failed?

anyway if query failed : try to change your query in to this : surrounds your fields with backtick (not single quote)

$qry="SELECT * FROM details WHERE `USERNAME`='$login' AND `PASSWORD`='".md5($_POST['password'])."'";

if login failed :

if(mysql_num_rows($result) == 1) {
    //Login successful
}else {
    //Login failed
}

are you sure that the query will only have 1 result? because with this condition, if results is greater than 1 it will also failed to login.

share|improve this answer
    
Well..yeah? I would think so. The row is unique to the user. –  Jason Y Oct 5 '12 at 1:58
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