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I'm trying to update my queries, but I stumble upon the same error again and again...

Fatal error: Call to a member function escape() on a non-object in ...

This is my function:

    //update activity
    public function updateActivity($db, $id) {
    $sql    = "UPDATE tblLeidingAgenda SET
    datum       = '".$db->escape($this->datum)."',
    uur         = '".$db->escape($this->uur)."',
    titel       = '".$db->escape($this->titel)."',
    uitleg      = '".$db->escape($this->uitleg)."',
    link        = '".$db->escape($this->link)."',
    aanwezig    = '".$db->escape($this->aanwezig)."',
    auteur      = '".$db->escape($this->auteur)."'
    WHERE id    = '".$id."'";
    return $db->insert($sql);
}

And this is my code:

if (empty($_POST['up_datum']) || empty($_POST['up_uur']) || empty($_POST['up_titel']) || empty($_POST['up_uitleg'])) {
        $error = 'no input';
    } else {
        $datecorrect=date('Y-m-d',strtotime($_POST['up_datum']));

        $agenda = new Leidingsactiviteit();
        $agenda->datum          = $datecorrect;
        $agenda->uur            = $_POST['up_uur'];
        $agenda->titel          = $_POST['up_titel'];
        $agenda->uitleg         = $_POST['up_uitleg'];
        $agenda->auteur         = $_SESSION['user']['naam'];

        if ($agenda->updateActivity($_DB,$_POST['id'])) {
            $feedback = 'ok';
            $bericht = 'test';
            mail('me@gmail.com', 'Update: '.$agenda->titel, $bericht);
        } 
        else {
            $feedback = 'not ok';
         }
    }

EDIT $_DB declared...

 define('MYSQL_HOST',  '***');
 define('MYSQL_DB',    '***');
 define('MYSQL_USER',  '***');
 define('MYSQL_PASSW', '**');

 // Initialize (global vars) 
 $_DB = new DBConnection(MYSQL_HOST, MYSQL_DB, MYSQL_USER, MYSQL_PASSW);
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1  
Well, $_DB is not an object. Why, is not clear from the code you show. The problem is happening earlier in the code –  Pekka 웃 Aug 27 '11 at 16:21
    
where is the $_DB declared? –  Book Of Zeus Aug 27 '11 at 16:22
    
Can I make it an object? I got more than one function, all look-a-likes, and they work just fine... –  Michiel Aug 27 '11 at 16:24
    
Well it needs to be your database object in order to escape and update the activity. –  Book Of Zeus Aug 27 '11 at 16:25
    
Where is the $_DB instantiate in your code –  Book Of Zeus Aug 27 '11 at 16:34
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1 Answer 1

up vote 1 down vote accepted

Where is the variable $_DB declared? From what you have posted, it never gets declared so I don't know what is inside the object (if it is even an object by that point to begin with).

Try var_dump($_DB); before the if ($agenda->updateActivity($_DB,$_POST['id'])) and post the results of that if you don't figure out your problem.

share|improve this answer
1  
The var_dump gives a NULL, so the $_DB is indeed empty. It's strange, cause other functions work just fine... –  Michiel Aug 27 '11 at 16:27
    
Post more code, please! –  afuzzyllama Aug 27 '11 at 16:31
    
see my edit! I hope this will do –  Michiel Aug 27 '11 at 16:32
    
Please post where $_DB = ... –  afuzzyllama Aug 27 '11 at 16:33
    
Ok, my bad. here you go! –  Michiel Aug 27 '11 at 16:34
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