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Please help me to understand whether this symptom is an unintended error / bad optimisation / or expectable behaviour in PHP.

Here is a little code:

class Packet {
  public $length;
  public $time;
}

class Stream {
  public $packets = array();

  // Basically what I want is to make sure
  // I put my packet in the array as reference
  // because later in the code where I call this
  // function, I change my Packet object's values
  // and I want this change to appear in the
  // $this->packets array. So I pass by reference.
  // I don't want to copy the Packet object at all!
  public function addPacket(&$packet){
    $this->packets[] = &$packet; //note here the reference operator
  }
}

...

foreach($packets as $packet){
  $myPrettyStream->addPacket($packet);
}

So I explained in code comment what I want to do. My problem is: after I add all the packets to my stream in the foreach, ALL my Stream::packets array elements will contain (the reference) to the LAST $packet I added to the stream.

Seems like PHP preserves the $packet variable inside my addPacket(&$packet) function between function calls. (which could be intended or bad optimisation?) Whether or not I pass the &$packet variable by reference to the array ( basically a reference reference &&$packet) or simply the reference of $packet (&$packet), I don't think this should be the expected behaviour.

It works though, if I don't make a reference inside the function:

public function addPacket(&$packet){
  $this->packets[] = $packet;
}

Please someone explain why this behaviour makes sense!

Thanks!

=========================================================================

Solution

Thanks for the right answer I emulated a function call which just behaves the same:

// try to emulate function call inside iteration
$packet         = $packets[0];                 
$functionPacket = &$packet;            
$packetsItem[0] = &$functionPacket; //functionpacket holds a reference to $packet
var_dump($packetsItem);

echo "\nsecond iteration\n";
unset($functionPacket);
$packet         = $packets[1];                 
$functionPacket = &$packet;            
$packetsItem[1] = &$functionPacket;
var_dump($packetsItem);

output:
array(1) {
  [0]=>
  &object(Packet)#1 (2) {
    ["time"]=>
    int(1)
  }
}
array(2) {
  [0]=>
  &object(Packet)#2 (2) {
    ["time"]=>
    int(2)
  }
  [1]=>
  &object(Packet)#2 (2) {
    ["time"]=>
    int(2)
  }
}
share|improve this question

2 Answers 2

up vote 3 down vote accepted

PHP always pass objects by-reference, thus there is absolutely no need for & and in your case it's even harmful (as you already realized ;)).

The problem is, that you "reference the reference" and not the object. This means, that every item in your array is a reference to $packet from inside the method, that is itself a reference to $packet from outside the array. Now when you change $packet (the foreach-loop) it seems, that every item in the array changes, but in fact they remain the same references as before.

As a rule of thumb: If you need & for everything else than out-arguments, you should think about your design. If you require out-arguments then you should think about it too. Usually there is no need for this (anymore) and it makes many things (unnecessary) complicated. And especially: Never use & for micro-optimizations.

You can imagine, that it looks like this (even if its maybe not that accurate)

// First iteration
$packet --> $packets[0]
// Pass to method
Stream::addPackage():$packet --> $packet --> $packets[0]
// Assign to array
Stream::$packets[0] --> Stream::addPackage():$packet --> $packet --> $packets[0]

// Second iteration (!)
Stream::$packets[0] --> Stream::addPackage():$packet --> $packet --> $packets[1]

Note, how Stream::$packets[0] now "points" to $packets[1]

share|improve this answer
    
Hi, so "objects always are passed by reference" means I do not need reference operator in this case at all, right? I understand that from the array I duble reference to $packet from outside the function call. However it does not explain why the array elements refer to the same $packet inside the function. $packet inside the function behaves static. –  illEatYourPuppies Apr 6 '12 at 14:43
    
Okay, I'm getting it. I was not at all aware of that I would reference to the outside $packet variable itself this way (which is reall just a reference to the object behind it). I update my question with an emulation of a function call, which behaves the same. –  illEatYourPuppies Apr 6 '12 at 16:08
    
@illEatYourPuppies: Also read blog.golemon.com/2007/01/youre-being-lied-to.html. –  Jon Apr 6 '12 at 16:16
    
Thank you. I was wondering if $a = new Packet(1); $b = $a; $b->time = 8 would trigger a copy-on-write. But did not, since I did not assign a new value to $b but only changed a property of the same object. PHP is very strange animal :D –  illEatYourPuppies Apr 6 '12 at 16:33
    
No. Objects are always passed as reference (since PHP5). And this is not a "feature" of PHP: At least I don't know any language, were an object gets copied every it is passed to a function/method. –  KingCrunch Apr 6 '12 at 17:04

http://www.php.net/manual/en/language.references.pass.php

When you pass a variable by reference, you only need to add the & in the function declaration. Within the function you don't need to add the & in front of the variable name.

public function addPacket(&$packet){
    $this->packets[] = &$packet; //  should be $this->packets[] = $packet;
}
share|improve this answer
    
Thank you, but that was not my question. I want to know why PHP behave s as such when I do as what I explained. –  illEatYourPuppies Apr 6 '12 at 14:15

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