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I currently have a class method/function in this form:

function set_option(&$content,$opt ,$key, $val){

   //...Some checking to ensure the necessary keys exist before the assignment goes here.

   $content['options'][$key][$opt] = $val;


Now, I am looking into modification the function a bit to make the first argument optional, allowing me to pass just 3 parameters. In which case, a class property content is used in place of the one I omit.

The first thing that comes to mind is using func_num_args() & func_get_args() in conjunction with this, something like:

function set_option(){

    $args = func_get_args();

    if(func_num_args() == 3){



       //...Some checking to ensure the necessary keys exist before the assignment goes here.

       $args[0]['options'][$args[1]][$args[2]] = $args[3];



How can I specify that I am passing the first argument for this as a reference? (I am using PHP5 so specifying that the variable is passed by reference on function call isn't really one of my better options.)

(I know I can just modify the parameter list so that the last parameter would be optional, doing it like function set_option($opt,$key,$val,&$cont = false), but I'm curious if passing by reference is possible in conjunction with function definitions like above. If it is I'd rather use it.)

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Just for sure, I'm pretty sure this could would result in a stack overflow (since you're looping set_option over and over again ...). –  Tim Sep 7 '11 at 16:15
Haha yeah, edited it. Sorry for any confusion. –  Bez Sep 7 '11 at 16:17
This question didn't deserve a downvote, as it's an interesting problem and well described, even if it does lead to obfuscated code! –  Paul Dixon Sep 7 '11 at 16:34

1 Answer 1

up vote 4 down vote accepted

Without a parameter list in the function declaration, there's no way to have an argument used as a reference. What you'd need to do is something like

function set_option(&$p1, $p2, $p3, $p4=null){

    if(func_num_args() == 3){
        $this->set_option($this->content,$p1, $p2, $p3);
        $p1['options'][$p2][$p3] = $p4;

So, depending on the result of func_num_args(), interpret what each parameter really is.

Pretty ugly, and makes for code you wouldn't want to maintain later :)

share|improve this answer
Thanks, Paul. :) –  Bez Sep 7 '11 at 18:22
Sorry, Paul, had to uncheck it. At first glance it seemed okay but using this, passing a string for the first parameter would throw an error, wouldn't it not? Only variables can be passed to a function by reference. –  Bez Sep 12 '11 at 14:14

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