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Keep getting Error: admin login when logging in as admin(admin form). Customers don't yet have a table(the db_table_customers).

Edit: Using Wamp it gives me this


( ! ) Warning: mysqli_num_rows() expects parameter 1 to be mysqli_result, boolean given in C:\wamp\www\dev6\login.php on line 36
Call Stack
#   Time    Memory  Function    Location
1   0.0003  692264  {main}( )   ..\login.php:0
2   0.0121  710400  mysqli_num_rows ( ) ..\login.php:36

Line 36 is $rows = mysqli_num_rows($result);

Also, var_dump()ing $result and $row respectively prints the following in the web browser:

boolean false

null


Which should mean that the login.php can't match the provided login for admin in my db_table_admins table. But I'm providing the correct login information for admin. Checked multiple times.

Form

<form name="admin_login" method="POST" action="login.php">
        <h3>Admin:</h3>
        Username: <input type="text" id="username" name="admin_login[username]"><br>
        Password: <input type="password" id="password" name="admin_login[password]"><br>
        <input type="submit" name="admin_submit" value="Login">
</form> 

<form name="customer_login" method="POST" action="login.php">
        <h3>Customer:</h3>
        Username: <input type="text" id="username" name="customer_login[username]"><br>
        Password: <input type="password" id="password" name="customer_login[password]"><br>
        <input type="submit" name="customer_submit" value="Login">
</form> 

Login.php

<?php

    require('connection.inc.php');

    $username = null;
    $password = null;
    $administrator = false;
    $result = null;

    $link = mysqli_connect($db_host, $db_username, $db_password, $db_database) or die("Can't connect");

    if(isset($_POST['admin_submit'])){
            $administrator = true;
            $username = $_POST['admin_login']['username'];
            $passname = $_POST['admin_login']['password'];
    }else{
            $username = $_POST['customer_login']['username'];
            $passname = $_POST['customer_login']['password'];
    }

    if($administrator){
        $query = "SELECT * FROM $db_table_admins WHERE username='$username' AND password='$password'";
        $result = mysqli_query($link, $query);
        $rows = mysqli_num_rows($result);

        if($rows == 1){
            $_SESSION['admin'] = true;
            header("location:login_success.php");
        }else{
            echo "Error: admin login";
        }
    }else{
        $query = "SELECT * FROM $db_table_customers WHERE username='$username' AND password='$password'";
        $result = mysqli_query($link, $query);
        $rows = mysqli_num_rows($result);

        if($rows == 1){
            $_SESSION['admin'] = false;
            header("location:login_success.php");
        }else{
            echo "Error: customer login";
        }
    }
?>
share|improve this question
    
You're vulnerable to SQL injection. Please read up on prepared statements and bound variables. – Quentin Feb 4 '13 at 17:08
    
And don't store passwords in plain text. owasp.org/index.php/Password_Storage_Cheat_Sheet – Quentin Feb 4 '13 at 17:09
    
@Quentin I've omitted the part of the code that prevent SQL injection. – Gentoo Feb 4 '13 at 17:12
    
@Quentin I'm aware of that. I was going to implement the password encryption after this anyways. – Gentoo Feb 4 '13 at 17:13
2  
"I've omitted the part of the code that prevent SQL injection." -- really? so this is not even your code? then what are we trying to fix here? – Ja͢ck Feb 4 '13 at 17:18

You have $administrator = true; but you test if($admin){

share|improve this answer
    
That was a post typo. Problem still persists. – Gentoo Feb 4 '13 at 17:11
    
@Gentoo Don't retype code from your existing code unless it's to obfuscate passwords and other sensitive info. – Ja͢ck Feb 4 '13 at 17:19

Your admin login button is called admin_submit:

 <input type="submit" name="admin_submit" value="Login">

but in your code you check for admin_login:

if($_POST['admin_login']){

You need to check for (and change to...) admin_submit as admin_login is already used for your text fields

Edit: As pointed out, you have an sql injection problem. That means that for example a ' character in your $_POST will break your query.

Apart from that, you seem to be using variables for your table names; where do these come from / are they set?

share|improve this answer
    
Doesn't seem to work, still. Gives the same error. – Gentoo Feb 4 '13 at 17:28
    
I've omitted the SQL injection prevention piece due to clarity of the code snippet. So, that should be fine and taken care of. The variables for my table names are set in a separate include file(the connection.inc.php) and are correct. I've checked. – Gentoo Feb 4 '13 at 17:42

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