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I made a login script which works perfectly except the fact that it logs in even when the username and Password is incorrect.

Here is the code:

<?php
//SQL ENTRY
$username_db = "root";
$password_db = "";
$host = "127.0.0.1";
$db = "teach_login";

//Requested
$usern = $_POST['username'];
$pw = $_POST['password'];

//Make it safe
$usern = htmlspecialchars($usern);
$pw = htmlspecialchars($pw);
$pwmd5 = md5($pw);

//SQL SETTINGS  
$db_handle = mysql_connect($host, $username_db, $password_db);
$db_open = mysql_select_db($db, $db_handle);
echo $db_open."<br />";
if ($db_open){
    $SQL = "SELECT `username` FROM userpassword WHERE (username = '$usern' && password = '$pwmd5') ";
    $result = mysql_query($SQL);
    echo $result."<br />";;
    if ($result >= 1){
        $SQL_name = "SELECT * FROM `userpassword` WHERE (username = '$usern') ";
        $result_new = mysql_query($SQL_name);
        while($row = mysql_fetch_assoc($result_new)){
            $name = $row['full_name'];
            echo $name;
            echo "<br />";
            echo $row['password']."<br>";
            $SQL = "UPDATE `userpassword` SET `logged_in`=[1] WHERE `username` = '$usern' ";
            $result = mysql_query($SQL);
            if ($result > 0){
                mysql_close($db_handle);
            }else{
                echo "Data Not written";
            }
        }
        /*echo $result_new."<br />";            
        echo $result_name_array."<br />";
        $name = $result_name_array[1];
        echo $name."<br />";
        session_start();
        $_SESSION['login_name'] = $name;
        $_SESSION['login'] = 1;
        mysql_close($db_handle);
        //header ("location: teach_home.php");
        */
    }else{

        echo "Cannot Login";
        //header ("location: teach_login.php");
        mysql_close($db_handle);
    }

}else {
    echo ('DATABASE NOT FOUND');
    mysql_close($db_handle);
}
?>

The output is this which is the SQL ENTRY:

1<br>
Resource id #4<br>
Salik Sadruddin<br>
14918756cc99b9e6ce69f4c943680efc<br>
Data Not written<br>
share|improve this question
    
There's quite a lot wrong with that script and the approaches you're taking, particularly from the point of view of good security. I'd recommend you use a pre-written library to handle authentication - there are some good ones listed here –  Ian Gregory Jun 10 '12 at 11:16
1  
For update, if UPDATE statement is succeeded $result will give you 0. For Insert it will give you 1 –  Fahim Parkar Jun 10 '12 at 11:21
    
thank you but can u please tell me wher im wrong, for future use. –  ZackValentine Jun 10 '12 at 11:22
4  
Please stop writing new code with the ancient mysql_* functions. They are no longer maintained and community has begun the deprecation process . Instead you should learn about prepared statements and use either PDO or MySQLi. If you cannot decide, this article will help to choose. If you care to learn, here is a quite good PDO-related tutorial. –  tereško Jun 10 '12 at 11:23
    
If you're new to this then you really should switch to PDO_MYSQL or, alternatively, MySQLi. Using the MySQL extension is discouraged. See also the PHP manual. –  Arjan Jun 10 '12 at 11:31
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2 Answers

This is where the flaw is:

$result = mysql_query($SQL);
if ($result >= 1){
    // …
}

The returned value of mysql_query is not the number of selected rows but:

For SELECT, SHOW, DESCRIBE, EXPLAIN and other statements returning resultset, mysql_query() returns a resource on success, or FALSE on error.

In your case the query will probably succeed but select no record, however mysql_query will return a resource that will fulfill the expression $result >= 1.

To fix this, use mysql_num_rows to get the number of selected rows:

if ($result && mysql_num_rows($result) === 1){
    // …
}

Also consider using MySQLi or PDO_MYSQL instead of standard MySQL extension. An you should also read about SQL injections as your current code is vulnerable.

share|improve this answer
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For update, if UPDATE statement is succeeded $result will give you 0. For Insert it will give you 1

$SQL = "UPDATE `userpassword` SET `logged_in`=[1] WHERE `username` = '$usern' ";
        $result = mysql_query($SQL);
        if ($result == 0){
            echo "Data Updated";
            mysql_close($db_handle);
        }else{
            echo "Data Not written";
        }
share|improve this answer
    
yes it works thank you :D bt login problem remains same –  ZackValentine Jun 10 '12 at 12:36
    
@ZackValentine : What login problem? I don't get you... –  Fahim Parkar Jun 10 '12 at 15:24
    
th scripts logs me in even if the user pw is incorrect –  ZackValentine Jun 11 '12 at 14:57
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