Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.
function do_sth_with_var($variable) {
  if (is_by_reference($variable)) {
    $variable = something($variable)
  }
  else {
    return something($variable);
  }
}

so for example if 'something' was strtoupper:

do_sth_with_var(&$str); // would make $str uppercase, but
$str = do_sth_with_var($str); // that way should it be done if ommitting that '&'
share|improve this question
2  
Okay, amuse me. Why would the person writing the function not know whether or not it was passed by reference... –  Ignacio Vazquez-Abrams Jun 22 '11 at 8:13
1  
As long as you know what your doing (read all the answers below), this question is legitimate. –  Matthieu Napoli Jun 22 '11 at 8:48

5 Answers 5

Disclaimer: This does not directly answer the OP's question, but I'm providing this answer in the hope that it will help him/her.

I'd say, provide a consistent interface. Declare the function parameter as reference:

function do_sth_with_var(&$variable) {

and it will always be a reference.

You could also to the contrary and always copy the value:

function do_sth_with_var($variable) {
    $val = $variable;
    // work with $val here
    return $val;
}

No built-in PHP function I know changes its behaviour based on whether you pass a reference or not. They are clearly defined to either treat an argument as reference or not and I would argue that users are used to this clear definitions and can deal with them.

For example, sort always sorts an array in place. You know that. So if you want to keep the original, you make a copy before the call.

It depends on your function whether it makes sense to perform an in-place operation or not. E.g. it makes sense for sort but I'd say it does not make sense for string processing.

Also, as you are using PHP 5.3, passing variables by reference at call-time is deprecated:

As of PHP 5.3.0, you will get a warning saying that "call-time pass-by-reference" is deprecated when you use & in foo(&$a);.

So you (or whoever) should not do that anyway.

share|improve this answer
    
Yes but it would be nice from the user point of this function to determine it's behavior by passing variable to it as reference or not, passing by reference means that is ok for me to function replacing that variable with sth else. –  rsk82 Jun 22 '11 at 8:17
    
@user393087: As said, passing a variable as reference like you should in your example is deprecated. Why would you want to consider it? There is no buillt-in PHP function that distinguishes between reference or not. They either return always a value, or always a reference. Be consistent, that is the most important thing. –  Felix Kling Jun 22 '11 at 8:20
1  
in real world it makes sense to ask those questions. and in real world people sometimes have to deal with deprecated code. -> (-1) –  Raffael Jun 22 '11 at 8:26
1  
yes I do ... right below your answer. and your answer isn't useless. though I hate those wise answers myself. it distracts from the core of the question. sometimes it's not all about best practices, but about how thinks actually work. –  Raffael Jun 22 '11 at 8:33
1  
your answer is not useful ... it is not answering the question ... :-) –  Raffael Jun 22 '11 at 8:37

to answer your question literally, you can try experimenting with debug_zval_dump. Refcounts will be different for by val and by reference parameters.

function xxx($a) {
    debug_zval_dump($a);
}

$b = 123;
xxx($b);   // long(123) refcount(4)
xxx(&$b);  // long(123) refcount(1)
share|improve this answer
    
I was thinking about that function, too, but how reliable is that? –  Gordon Jun 22 '11 at 8:48

In your specific case you don't need to know if the value is passed by reference or not you can do something like:

function do_sth_with_var($variable) {
  $variable = something($variable)
  return $variable;
}

It should do exactly what you ask in your question

I don't know any good and safe way to control that a passed parameter is a reference and not just a value inside the body of a function at running time.

share|improve this answer
    
@user393087 even down voted I can assure you that my answer respond to your need, just give it a try. But as stated in other comments, don't forget the deprecation of call-time pass-by-reference in php 5.3 –  malko Jun 22 '11 at 9:46

calltime-pass-by-ref is considered deprecated as of 5.3.

apart from that ... answering the question academically; I don't think there is any way to determine that propperly, b/c there is no difference between a "reference" and a usual parameter. In PHP every variable is a pointer to section in the symbol table. A reference just makes another variable point to the same section.

in PHP there are no references as C knows them for example. every variable is a pointer and every "reference" too.

PS: @Gordon: I forgot about the Reflection-Classes. Of course, they work on a meta-level. My answer is more directed at how PHP actually deals with paramters and variables.

share|improve this answer

This topic is covered very well by the first comment here (official php manual)

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.