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I have fixed this, there was a problem in the clean function and a few other little errors, thankyou for all your help.

I seem to have a problem with my PHP Code. I keep getting the errors:

Warning: mysql_fetch_array() expects parameter 1 to be resource, boolean given Warning: mysql_num_rows() expects parameter 1 to be resource, string given

        public function __construct() {
            global $db, $core;

            $this->sessionID = $core->encrypt(session_id());

            $sessionQuery = $db->query("SELECT * FROM sessions WHERE `session_id` = '{$this->sessionId}'");
            $sessionRow = $db->assoc($sessionQuery);

            if($db->num($sessionQuery) > 0) {
                $userQ = $db->query("SELECT * FROM users WHERE id = '{$sessionRow['user_id']}'");
                $this->loggedIn = true;
                $this->userData = $db->assoc($userQ);
            }       
        }       
    }
    $user = new User();

?>  <br /><br />



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closed as too localized by casperOne Jul 13 '12 at 15:26

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1  
That is not the code we are looking for –  levu Apr 20 '11 at 17:36
    
It is, it has all the queries in it, the functions work fine. –  Joshwaa Apr 20 '11 at 17:37
    
No, they don't work. Error messages mean, there is something wrong. Where do you call these mysql_ functions? –  levu Apr 20 '11 at 17:38
    
If we don't know, what $db is, how can we help him? –  levu Apr 20 '11 at 17:39
    
@Josh This is not the code we are looking for. Your errors are caused by the mysql_* functions which do not appear int he code you've posted. I suspect they are called from within whatever wrapper class $db is an instance of. We need to see that class. –  meagar Apr 20 '11 at 17:39

5 Answers 5

You're passing $this->sessionId instead of $this->sessionID to the query. Note the difference in capitalization.

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Thankyou! Someone who read the code that I posted and tried to find the error. There's still an error though :/ –  Joshwaa Apr 20 '11 at 17:44
    
If there's still an error, that means that your query either has a syntax error or is not returning anything(like Codemonkey noted in his answer). Are you encrypting sessionID before storing it in the database? If you aren't you shouldn't be encrypting it before trying to query it($this->sessionID = $core->encrypt(session_id())). What happens if you run the query manually(command line/shell/query browser)? –  Sean Walsh Apr 20 '11 at 17:47
    
I've changed a few things and I'm getting https://lh3.googleusercontent.com/-zjy4uQGU_3k/TW1AU5fqS9I/AAAAAAAADvc/ecAc2LfX‌​OaA/s1600/WOMEN-Y-U-NO-MAKE-SENSE.jpg –  Joshwaa Apr 20 '11 at 17:56
    
I'm not sure I understand that comment. –  Sean Walsh Apr 20 '11 at 17:59

$sessionQuery is not a valid mysql resource because you are passing the wrong variable in query hence query got failed.

I would suggest to handle mysql error to avoid this type of warnings.

You are storing session id in $this->sessionID and using the $this->sessionId in query it should be

$db->query("SELECT * FROM sessions WHERE `session_id` = '{$this->sessionID}'");
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public function __construct() {
            global $db, $core;

            $this->sessionID = $core->encrypt(session_id());

            $sessionQuery = $db->query("SELECT * FROM sessions WHERE `session_id` = '{$this->sessionID}'");
            if($sessionQuery){ // newly added line      
            $sessionRow = $db->assoc($sessionQuery);

            if($db->num($sessionQuery) > 0) {
                $userQ = $db->query("SELECT * FROM users WHERE id = '{$sessionRow['user_id']}'");
                $this->loggedIn = true;
                $this->userData = $db->assoc($userQ);
            } 
            } // newly added line      
        }       
    }
    $user = new User();
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I've done that and I'm now getting Notice: Undefined property: User::$sessionId in C:\xampp\htdocs\habcms\inc\user.inc.php on line 13 d97d0031704680f93b135e138e1f514b –  Joshwaa Apr 20 '11 at 17:53
    
Now I have edited the QUERY line, there your have saved session at $this->$sessionID but used in query as $sessionId. This is the problem. –  mahadeb Apr 20 '11 at 17:55
    
Just look at the $this->sessionID and $sessionQuery = $db->query("SELECT * FROM sessions WHERE session_id = '{$this->sessionID}'"); –  mahadeb Apr 20 '11 at 17:57

This happens when there is a syntax error in your query. Please confirm that your query has no syntax errors by running the query in PhpMyAdmin.

Also you should make sure that PHP is set to report warnings
http://php.net/manual/en/function.error-reporting.php

You can check your connection for errors programmatically using mysql_error
http://php.net/manual/en/function.mysql-error.php

Check for errors after you've created your connection and after every query you run. The resource object is only false if there was a syntax error in your query, and it is easily identifiable by using mysql_error

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A query that doesn't return any rows still produces a result set that happens to have no rows in it. FALSE is only returned when the query fails due to an error. –  Marc B Apr 20 '11 at 17:45
    
True, it is mysql_fetch_* functions that return FALSE if there are no rows. Pardon the mixup, I'll correct the answer :-) –  Hubro Apr 20 '11 at 17:55

You are passing the entire SQL string to mysql_real_escape_string in your clean function (which for some reason you deleted from your question).

This causes the passed single quotes to be escaped which results in a malformed SQL string which results in FALSE being returned, instead of a valid resource.

$sessionQuery = $db->query("SELECT * FROM sessions WHERE `session_id` = '{$this->sessionId}'");

public function query($string) {
    global $core;
    $string = $core->clean($string);
    return mysql_query($string);
}

public function clean($string, $fordb = true) {
    if(is_array($string)) {
        foreach($string as $key => $value) {
            $string[$key] = $this->clean($value, $fordb);
        }

        return $string;
    } else {

        $string = trim($string);
        $input = htmlentities($input, ENT_COMPAT);

        if($fordb == true) {
            $string = mysql_real_escape_string($string);
            return $string;
        }
    }
}
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