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I'm a long running fan of stackoverflow, first time poster. I'd love to see if someone can help me with this. Let me dig in with a little code, then I'll explain my problem. I have the following wrapper classes:

class mysqli_wrapper
{
    private static $mysqli_obj;
    function __construct() // Recycles the mysqli object
    {
        if (!isset(self::$mysqli_obj))
        {
            self::$mysqli_obj = new mysqli(MYSQL_SERVER, MYSQL_USER, MYSQL_PASS, MYSQL_DBNAME);
        }
    }
    function __call($method, $args)
    {
        return call_user_func_array(array(self::$mysqli_obj, $method), $args);
    }
    function __get($para)
    {
        return self::$mysqli_obj->$para;
    }
    function prepare($query) // Overloaded, returns statement wrapper
    {
        return new mysqli_stmt_wrapper(self::$mysqli_obj, $query);
    }
}

class mysqli_stmt_wrapper
{
    private $stmt_obj;
    function __construct($link, $query)
    {
        $this->stmt_obj = mysqli_prepare($link, $query);
    }
    function __call($method, $args)
    {
        return call_user_func_array(array($this->stmt_obj, $method), $args);
    }
    function __get($para)
    {
        return $this->stmt_obj->$para;
    }
    // Other methods will be added here
}

My problem is that when I call bind_result() on the mysqli_stmt_wrapper class, my variables don't seem to be passed by reference and nothing gets returned. To illustrate, if I run this section of code, I only get NULL's:

$mysqli = new mysqli_wrapper;

$stmt = $mysqli->prepare("SELECT cfg_key, cfg_value FROM config");
$stmt->execute();
$stmt->bind_result($cfg_key, $cfg_value);

while ($stmt->fetch())
{
    var_dump($cfg_key);
    var_dump($cfg_value);
}
$stmt->close();

I also get a nice error from PHP which tells me: PHP Warning: Parameter 1 to mysqli_stmt::bind_result() expected to be a reference, value given in test.php on line 48


I've tried to overload the bind_param() function, but I can't figure out how to get a variable number of arguments by reference. func_get_args() doesn't seem to be able to help either.

If I pass the variables by reference as in $stmt->bind_result(&$cfg_key, &$cfg_value) it should work, but this is deprecated behaviour and throws more errors.

Does anyone have some ideas around this? Thanks so much for your time.

share|improve this question
    
Why the need of a wrapper class and not choose to directly extend the mysqli class? Seems like you're making it hard on yourself? class my_db extends mysqli {} –  ChrisR Apr 2 '10 at 11:14
    
The reason I don't want to extend the mysqli class, is because then I'd have to call the parent::__construct() and then I wouldn't be able to recycle the one mysqli object. What I didn't think of, though, was extending the mysqli_stmt object that I get from the prepare method. Thanks anyway for the input. –  Dave Apr 3 '10 at 9:50

3 Answers 3

up vote 2 down vote accepted

If you'll extend from the mysqli_stmt class you'll bypass the reference problem. (which has no clean solution)

class mysqli_stmt_wrapper extends mysqli_stmt {
  public function __construct($link, $query) {
    parent::__construct($link, $query);
  }
}

class mysqli_wrapper extends mysqli {
  public function prepare($query) {
    return new mysqli_stmt_wrapper($this, $query);
  }
}
share|improve this answer
    
Hi bob. Thanks, that's perfect! I didn't realise you could just construct a new mysqli_stmt object like that. I thought some other 'magic stuff' was happening inside the original mysqli->prepare method so I would have to call the parent's prepare to get my object. Thanks again. stackoverflow FTW –  Dave Apr 3 '10 at 9:47

I'm guessing this is because the original function signature specifies that it expects references, whereas your __call cannot do so. Therefore, try not using __call but explicitly adding the bind_result with the same function signature as the original.

share|improve this answer
    
Yea, that's why I say, I've tried to overload bind_result, but the problem is that the bind_result function can accept any number of arguments, and it need each to be passed by reference. func_get_args() doesn't seem to do this for me. –  Dave Apr 2 '10 at 12:22
    
Oh, right, didn't quite catch that. Sorry! I think you're in a bit of a bind, here. Badum! (And sorry again, for that.) –  janmoesen Apr 2 '10 at 12:39

With a little help from the guys from the #php irc channel I came up with the following solution:

// We have to explicitly declare all parameters as references, otherwise it does not seem possible to pass them on without
// losing the reference property.
public function bind_result (&$v1 = null, &$v2 = null, &$v3 = null, &$v4 = null, &$v5 = null, &$v6 = null, &$v7 = null, &$v8 = null, &$v9 = null, &$v10 = null, &$v11 = null, &$v12 = null, &$v13 = null, &$v14 = null, &$v15 = null, &$v16 = null, &$v17 = null, &$v18 = null, &$v19 = null, &$v20 = null, &$v21 = null, &$v22 = null, &$v23 = null, &$v24 = null, &$v25 = null, &$v26 = null, &$v27 = null, &$v28 = null, &$v29 = null, &$v30 = null, &$v31 = null, &$v32 = null, &$v33 = null, &$v34 = null, &$v35 = null) {
    // debug_backtrace returns arguments by reference, see comments at http://php.net/manual/de/function.func-get-args.php
    $trace = debug_backtrace();
    $args = &$trace[0]['args'];
    return call_user_func_array(array($this->mysqlObj, 'bind_result'), $args);
}
share|improve this answer

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