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I have some code which attempts to check whether a user is an admin or normal user, and then compares it against an SQL table to determine which page opens up (admin page vs normal user page).

if (isset($_POST['submit']))
{
    $user = $_POST['user'];
    $pass = $_POST['pass'];
    $admin = $_POST['admin'];

    if( $user == "" || $pass == "")
    {
        echo '<div id ="errormsg">Please fill in all fields</div>';
    }

    else 
    {
        $query = mysqli_query($dbcon, "SELECT * FROM users WHERE username = '$user'
        and password = '$pass' and admin = '$admin' ") or die ("Can't query the database");
        $count = mysqli_num_rows($query);

        if($count == 1) 
        {
            if ($admin == 1)
            {
                $_SESSION['username'] = $user;
                header("location: admin.php");
            }
            else if ($admin == 0)
            {
                $_SESSION['username'] = $user;
                header("location: users.php");
            }
            else
            {
                echo '<div id="errormsg">No matches, try again</div>';
            }
        }
    }
}

There are no errors, however the admin value doesn't seem to make a difference and by default opens 'users.php' everytime. The $admin is a checkbox with value '1' when checked, the logic being to check this value against the database. Can anyone help solve this issue?

This is the html form:

<form action="<?=$_SERVER['PHP_SELF']?>" method="post">
  <fieldset>
    <label class="login">Username:</label><input type="text" name="user" /><br />
    <label class="login">Password:</label><input type="password" name="pass" /><br />
    <label class="login">Admin?:</label><input type="checkbox" value="1" name="admin" /><br/>

    <input type="submit" name="submit" value="Login" />
  </fieldset>
</form
share|improve this question
    
Show us the html for admin select –  Think Different Apr 15 '14 at 11:25
    
the admin value does work as it shows up appropriately in the sql table via phpmyadmin –  ajm Apr 15 '14 at 11:27
    
@OP: Use prepared statements correctly to avoid SQLi –  Misiur Apr 15 '14 at 11:28
    
@ajm You admin value in your code doesn't come from database. You are capturing a $_POST variable in $admin look ====> $admin = $_POST['admin']; –  Think Different Apr 15 '14 at 11:30
1  
try encapsulation the value in quotes like ($admin == "1") –  Think Different Apr 15 '14 at 11:33

3 Answers 3

The error is how you check if user is admin:

if ($admin == 1)

Replace this with:

if (isset($admin))

Also, you need to exit or die after using header():

if (isset($admin))
{
    $_SESSION['username'] = $user;
    header("location: admin.php");
    exit;
} else {
    $_SESSION['username'] = $user;
    header("location: users.php");
    exit;
}
share|improve this answer

Firstly, you need to have a read up on mysql escaping / best practices. Your script here is vulnerable to SQL injection. There are plenty of good resources online, or search SQL injection PHP on here, to help explain this to you if unsure.

How is the $_POST['admin'] value set, can you post an example of your form here? I'm guessing that the value being sent in isn't matching your conditions above so this is likely to be the cause.

It could be as simple as changing your if statement to be === rather than ==, but to be sure I'd need to see your form's source core.

share|improve this answer
    
I understand about the injections and protection it simply isn't necessary for this task which is a small private project. I have posted the html form in my edited question –  ajm Apr 15 '14 at 11:31
1  
You need to check for the admin value as a string - just put quotes around the 1 - if($admin == '1') { } –  steve Apr 15 '14 at 11:34
    
That has worked for logging on correctly, however for non-admin users i now get an error regarding the $admin variable! out of the frying pan.. –  ajm Apr 15 '14 at 11:37
    
Try using just an else for your 2nd case - they're either admin or not. I think your final 'else' actually wants to be after the if count == clause as that's where there's no match at all in the database? Good luck :) –  steve Apr 15 '14 at 11:39
    
If count == 1 that means there is a match though? I want to simplify it like you say but it may need further explaining –  ajm Apr 15 '14 at 11:43

Try this one with some correction in database query-

$query = mysqli_query($dbcon, "SELECT * FROM users WHERE username = '".$user."'' and password = '".$pass."''") or die ("Can't query the database"); 

Hope it will help.

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