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Well, something going wrong here. I type username and password which are exist in my DB. It should echo this string in such situations

need to activate

but it echo this

You need to reg

init.php

<?php
    //error_reporting(0);
    session_start();

    require 'dbconnect.php';//this works okay so i wouldn't post this file code
    require 'users.php';

    $errors = array();
?>

users.php

        <?php

        function user_exists($username){
            $username = mysql_real_escape_string($username);

            $query = mysql_query("SELECT COUNT('user_id') FROM `users` WHERE 'username' = '$username'");

            if (!$query) {
                die('Could not query:' . mysql_error());
            }

            return (mysql_result($query, 0) == 1) ? true : false;

        }

        function user_active($username){

            $username = mysql_real_escape_string($username);

            $querytoo = mysql_query("SELECT COUNT('user_id') FROM `users` WHERE 'username' = '$username' AND 'active' = 1");

            if (!$querytoo) {
                die('Could not query:' . mysql_error());
            }

            return (mysql_result($querytoo , 0) == 1) ? true : false;

        }
    ?>

login.php

<?php
include 'init.php';


if(empty($_POST) === false){
    $username = $_POST['username'];
    $password = $_POST['password'];

    if(empty($username) === true || empty($password) === true){
        $errors[]='You need to enter a username and password';
    } 
    elseif(user_exists($username) === false){
        $errors[]='You need to reg';
    } 
    elseif(user_active($username) === false){
        $errors[]='need to activate';
    } 
    else {
    //
    }

    print_r($errors);
}



?>

part of html

<form action="login.php" method = "post">
                    <ul id="login">
                        <li>
                            username:<br>
                            <input type="text" name="username" size="30" value=""/></li>
                        <li>password:<br>
                            <input type="password" name="password" size="30" value=""/></li>
                        <li><input type = "submit" value ="Log in"></li>
                        <li>
                            <a href="register.php"> Register</a>
                        </li>
                    </ul>

P.S. text of querys is works fine, i checked it in mysql. in php code when I type `` instead of '' here

SELECT COUNT('user_id') FROM users WHERE 'username' = '$username' AND 'active' = 1

appears

'Could not query:'

thing

and i tried elseif and else if things so i don't think that problems is there

share|improve this question
1  
Please, don't use mysql_* functions to write new code. They are no longer maintained and the community has begun deprecation process. See the red box? Instead you should learn about prepared statements and use either PDO or MySQLi. If you can't decide which, this article will help you. If you pick PDO, here is good tutorial. –  Robik Oct 13 '12 at 17:07
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4 Answers

up vote 6 down vote accepted

Your SQL is wrong. You are comparing a static strings to your value, not a column name:

    SELECT COUNT('user_id') FROM users WHERE 'username' = '$username' AND 'active' = 1

should be

SELECT COUNT(user_id) FROM users WHERE username = '$username' AND active = 1

Note that I removed the ' from the column names. It is also valid to use backticks:

SELECT COUNT(`user_id`) FROM users WHERE `username` = '$username' AND `active` = 1
share|improve this answer
    
It says >Could not query:Unknown column 'user_id' in 'field list' –  Danil Gholtsman Oct 13 '12 at 17:28
    
but column user_id is exist i checked it –  Danil Gholtsman Oct 13 '12 at 17:31
    
could you run SHOW CREATE TABLE users? –  Bart Friederichs Oct 13 '12 at 17:33
    
weel, if i understood you right i typed echo mysql_query("SHOW CREATE TABLE users"); inside function user_exists and now it's says Resource id #6 Could not query:Unknown column 'user_id' in 'field list' –  Danil Gholtsman Oct 13 '12 at 17:38
    
oh damn guys it was smth with sql i just reebot it and now it works fine –  Danil Gholtsman Oct 13 '12 at 17:43
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using ' around table/field names in a query turns them into strings, and they will not longer be treated as field/table names. That's why there's backticks, for escaping such field/table names that happen to be keywords. The ONLY time you HAVE to escape field/table names is if they're reserved words.

Which means that...

SELECT COUNT('user_id')
             ^-      ^-
FROM `users`
WHERE 'username' = '$username' AND 'active' = 1");
      ^--      ^--                 ^-     ^-

is completely wrong. You're counting a fixed string, you're comparing the provided username against a string whose value is username, and ditto for active.

share|improve this answer
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Your query to check the existence of a user is probably one of your problem :

$query = mysql_query("SELECT COUNT('user_id') FROM `users` WHERE 'username' = '$username'");

In that query, you are using single quotes on your column name. Which results in comparing two strings, and, unless you have a user name called username, it will always return 0. Escape your columns with an ` char.

$query = mysql_query("SELECT COUNT(`user_id`) FROM `users` WHERE `username` = '$username'");

or don't use anything

$query = mysql_query("SELECT COUNT(user_id) FROM `users` WHERE username = '$username'");
share|improve this answer
    
same here Could not query:Unknown column 'user_id' in 'field list' –  Danil Gholtsman Oct 13 '12 at 17:32
    
I just used what you wrote (user_id). However, I'm glad it worked now that you rebooted. –  Yanick Rochon Oct 13 '12 at 17:49
    
thanks! and now is apache crushes gyazo.com/a3e65d30d251d5dd94608893c73d3c59 i think i should reinstall Denwer. again. oh. –  Danil Gholtsman Oct 13 '12 at 17:55
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Have you remembered to register the username into the session, as well as get it afterwards?

$username = $_SESSION['username'];
share|improve this answer
    
nope, but it should work fine without such thing isn't it? –  Danil Gholtsman Oct 13 '12 at 17:35
    
Well where are the $username variable coming from? –  Schart Oct 14 '12 at 17:45
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