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please, can you help me with this? I am a beginner in programming, so if it's a stupid question, have a patience with me. Thank you.

I have index.php page with login form (username, password) and login.php with this part of a code:

<? if(!$_POST['username'] || !$_POST['password']){
$data['msg'] = 'All fields have to be filled!';
$data['success'] = false;}else{


mysql_query("   INSERT INTO log_access(user,ip,datetime)
                            VALUES(
                            '".$_POST['username']."',
                            '".$_SERVER['REMOTE_ADDR']."',
                            NOW()
                            )");

$row = mysql_fetch_assoc(mysql_query("SELECT id,login FROM users WHERE login='".$username."' AND pwd='".md5($password)."'"));

if($row['login'])
{
    $_SESSION['login'] = $row['login'];
    $_SESSION['id'] = $row['id'];

    $data['success'] = true;
    $data['redirect'] = "index.php";    
}
else 
{
    $data['success'] = false;
    $data['msg']='Wrong username or password!';
}}echo json_encode($data);?>

If i send empty field(s) in username or/and password, login.php return $data. But if i send filled fields, no data is comming back to index.php. I have the following in index.php:

<script> 
    $(document).ready(function() 
            { 
                $('#frmLogin').submit(function() 
                { 
                    $.post('/scripts/login.php',{username: $('[name=username]').val(), password: $('[name=password]').val()}, function(data)
                        {
                            if(data.success)
                            {
                                $('#login-msg').html("Logged");
                            }
                            else
                            {
                                $('#login-msg').html(data.msg);
                            }
                        }
                        ,'json');
            return false; 
        }); 
            }); 
</script> 

I have the same problem if I put anything in the first condition, or before it (in login.php). I don't know, what i'm doing wrong :(

Thank for any help! Washa

EDIT SOLVED! I have bad connection to the DB from the login script. Beginners mistake. Thanks for all replies.

share|improve this question
1  
Can you check Firebug's console and see if the POST is happening and the response code is 200. you can also check what response is being retrieved. –  Eswar Rajesh Pinapala Jun 21 '12 at 22:42
    
Thanks for help. I checked it. The POST is happening, status 200 OK. But in response i have error msg: Warning: mysql_real_escape_string(): Can't connect to local MySQL server through socket '/tmp/mysql.sock' (2) in /DISK2/WWW/washa.cz/nexnetkm/scripts/ajax_login2.php on line 5 Warning: mysql_real_escape_string(): A link to the server could not be established in /DISK2/WWW/washa.cz/nexnetkm/scripts/ajax_login2.php on line 5 {"msg":"V\u0161echna pol\u00ed\u010dka mus\u00ed b\u00fdt vypln\u011bna!","success":false} –  Washa Jun 21 '12 at 22:58
1  
ok now you need to fix ur mysql connection and try again. –  Eswar Rajesh Pinapala Jun 21 '12 at 22:59
    
I'm not a PHP developer, but it looks like you need some data sanitization. –  raynjamin Jun 21 '12 at 23:02
    
SOLVED! Thank you very much. The FireBug helps a lot. Great plugin. The problem was really with the connection. So i added: include(db_connection.php) - which i'm using in index.php for example. It works. Thank you very much again. My mistake, small problem at all, but huge for me :D –  Washa Jun 21 '12 at 23:10

1 Answer 1

up vote 2 down vote accepted

Can you check Firebug's console and see if the POST is happening and the response code is 200? you can also check what response is being retrieved.

try calling a test.php with the following contents:

<?
 if(!$_POST['username'] || !$_POST['password']){
$data['msg'] = 'All fields have to be filled!';
$data['success'] = false;
}else{
$data['success'] = true;
$data['redirect'] = "index.php";  
echo json_encode($_POST);
}
?>

Also check if the username and password are being passed in correctly by doing

alert( $('[name=username]').val() + | + $('[name=password]).val()); 

just above $.post.

I checked your js by hardcoding username and password, they are working fine. its usually a good idea to divide and conquer. hardcode the input for your login.php page, and run it first, after its working then make your $_POST params as the input. this way you could prevent a lot of problems.

 ****Important Please ESCAPE ALL POST OR GET VARIABLES FOR MYSQL INSERT.
   Otherwise your scripts are vulnerable to SQL injections.
    ex: mysql_real_escape_string($_POST['username']);
    mysql_real_escape_string($_POST['password']);
Please ignore if you are already doing this!
share|improve this answer
    
thanks for reply, if i try only this simple code, it works. But when i add for example connection to the DB and some function like $password = mysql_real_escape_string($_POST['password']); i have an error... –  Washa Jun 21 '12 at 22:59

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