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I'm using an online video example of a login/logout/member page, trying to implement it for my website. I have a live server from justhost, I created a db and put in some dummy user information into my users table. I created a connect.php file which does just that, and I ecchoed out a success message if it will connect to my database and it worked. When I try to login to display a link to the member page, I continuously get an error message saying the email I entered is not found, but the email is in the database table. What am I doing wrong? here's the login.php file, sorry for the length of it.

<?php
error_reporting (E_ALL ^ E_NOTICE);
session_start();
?>
<!DOCTYPE html PUBLIC "-//W3C//DTD XHTML 1.0 Transitional//EN" "http://www.w3.org/TR/xhtml1/DTD/xhtml1-transitional.dtd">
<html xmlns="http://www.w3.org/1999/xhtml">
<head>
    <meta http-equiv="Content-Type" content="text/html; charset=utf-8" />
    <title>Member System - Login</title>
</head>
<body>

    <?php

        $form = "<form action='./login.php' method='post'>
        <table>
        <tr>
            <td>Email:</td>
            <td><input type='text' name='user'/></td>
        </tr>
        <tr>
            <td>Password:</td>
            <td><input type='password' name='password'/></td>
        </tr>
        <tr>
            <td></td>
            <td><input type='submit' name='loginbtn' value='Login' /></td>
        </tr>
        </table>
        </form>";

    if($_POST['loginbtn']){
        $email = $_POST['user'];
        $password = $_POST['password'];

        if ($email){
            if ($password){
                require("connect.php");

                $password = md5(md5("sdf5jkl".$password."jfdkSDf4"));

                $query = mysql_query("SELECT * FROM users WHERE email='$email'");
                $numrows = mysql_num_rows($query);
                if($numrows == 1){
                    $row = mysql_fetch_assoc($query);
                    $dbid = $row['id'];
                    $dbpass = $row['password'];
                    $dbemail = $row['email'];
                    $dbactive = $row['active'];

                    if($password == $dbpass){
                        if($dbactive == 1){
                            //set session info
                            $_SESSION['id'] = $dbid;
                            $_SESSION['email'] = $dbemail;

                            echo "You have been logged in as <b>$dbemail</b>.  <a href='./member.php'>Click here</a> to go to the member page.";

                        }
                        else
                            echo "You must activate your account to login. $form";
                    }
                    else
                        echo "You did not enter the correct password. $form";
                }
                else
                    echo "The email you entered was not found. $form";

                mysql_close();
            }
            else
                echo "You must enter your password. $form";
        }
        else
            echo "You must enter your email. $form";
    }
    else
        echo $form;

    ?>

</body>
</html>
share|improve this question
    
check your tricky password md5 generation and protect $email parameter from sql injection ;) –  Alessandro Cabutto Dec 11 '12 at 13:23
    
Try print_r $_POST and see what it outputs. –  RonaldBarzell Dec 11 '12 at 13:26
    
Try to echo your $query you'll see if there is something wrong with it. Also, note that your script is vulnerable to SQL injection. –  Aurélien Grimpard Dec 11 '12 at 13:28
    
I thought that encryption could be a problem. I just tested the encryption. I set the password originally to "password", then I displayed the encrypted password on the screen and changed it to the encrypted in the database. But the password isn't the problem...problem is it's not finding my $email from the database... –  denikov Dec 11 '12 at 13:30
    
We know the password isn't the issue because the message you're getting comes from the if($numrows == 1) which is coming from the query. As mentioned above, do a print_r($_POST); and see if there's any values. –  SeanWM Dec 11 '12 at 13:33

2 Answers 2

I don't see anything wrong with your code in terms of not managing to find the user. Here are a few things to try.

$email = $_POST['user'];
$password = $_POST['password'];

Should be:

$email = mysql_real_escape_string(trim($_POST['user']));
$password = mysql_real_escape_string(trim($_POST['password']));

trim() will remove any extra spaces that could be messing up the query and mysql_real_escape_string() escapes special characters.

If you are getting the the data correctly by checking print_r($_POST) and the query looks fine by running echo "SELECT * FROM users WHERE email='$email'"; or running SELECT * FROM users WHERE email='your_email' in phpmyadmin, then maybe you have duplicate emails in your user table? If you do, you shouldn't. Try removing the duplicate. You should also check the password at the same time you're checking the email. Here's an example:

$query = mysql_query("SELECT * FROM users WHERE email = '$email' AND password = '$password'");

share|improve this answer
    
Tried it, no luck. In phpmyadmin, I typed in my email in the end and it showed all the rows with my information, so it found me as a user. I don't know what's wrong. Maybe I'll just keep searching online to find better examples. As everyone says, this sample I found isn't very safe anyway, maybe another example will work. Thanks for your advice, Sean –  denikov Dec 11 '12 at 18:33
    
Like I said, nothing seems wrong with the code. Has to be something small. Maybe try limiting it to 1 record to make sure you're only getting one record. $query = mysql_query("SELECT * FROM users WHERE email='$email' LIMIT 1"); –  SeanWM Dec 11 '12 at 18:38
    
I only have the one "user" inserted in the table, my data, just to test it out. Could it be something with mysql on my server? I'm using justhost.com...maybe it's something with my domain name folder inside public_html? –  denikov Dec 11 '12 at 18:46
    
But if you can connect to the database then I don't see the issue. –  SeanWM Dec 11 '12 at 18:50
    
True. Oh well, on to the next one. I might be coming back to ask you some more questions later if you don't mind :) –  denikov Dec 11 '12 at 19:02

About halfway down your code, you have these lines:

$query = mysql_query("SELECT * FROM users WHERE email='$email'");
$numrows = mysql_num_rows($query);

Let's change it temporarily to this:

$sql = "SELECT * FROM users WHERE email='$email'";
echo '<pre>'. $sql .'</pre>';
$query = mysql_query($sql);
$numrows = mysql_num_rows($query);
echo '<pre>'. $numrows .'</pre>';

When you try to log in now, you'll probably see something like this at the top of your page:

SELECT * FROM users WHERE email='thenamethatijusttypedin'
2

If the number is equal to 1, then your code should work as you wrote it. If the number is something else, then you can learn more by copying the SQL query above it, then running it in your database platform (i.e.: phpMyAdmin).

As others have mentioned previously, you should clean up your input. You can remove leading and trailing whitespace with the trim($email); command.

Once you feel a bit more confident with coding, you should look into a database query tool called PDO. Right now, your query is vulnerable to something called SQL Injection. If I were to put an apostrophe in the user field, then the query would break. Hackers can use this to break into your website. PDO protects against this and makes writing queries a bit easier.

share|improve this answer
    
I found another example that I think uses PDO...even though I don't know exactly what it is. I changed my code to the one you provided and on the top it gave me the reply with a 1...so as you say, it should work but it doesn't. I don't know what's wrong. As I wrote to Sean above, I'll just try to look for a better login/logout/memberpage tutorial examples and hopefully those will work. Thanks for the advice –  denikov Dec 11 '12 at 18:35

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