Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free.

On the job today I had a argue with a collage about passing large data between scopes. The myth was that reference uses less memory/CPU usage when passing between 2 scopes. We build a proof of concept who was right... so:

function by_return($dummy=null) {
    $dummy = str_repeat("1",100 * 1024 * 1024);
    return $dummy;
}

function by_reference(&$dummy) {
    $dummy = null;
    $dummy = str_repeat("1",100 * 1024 * 1024);
}
echo memory_get_usage()."/".memory_get_peak_usage()."\n";
//1 always returns: 105493696/105496656
$nagid = by_return();
echo memory_get_usage()."/".memory_get_peak_usage()."\n";
unset($nagid);
//2 always returns:  105493696/210354184 even if we comment 1st part
by_reference($dummy);
echo memory_get_usage()."/".memory_get_peak_usage()."\n";
unset($dummy);

But it seems that by reference it consumes more memory according to function "memory_get_peak_usage()"

As you see, using large data for returning is much smarter than using as reference but the question is, why? Any enlightening is welcomed :)

share|improve this question

1 Answer 1

up vote 9 down vote accepted

This is due to the way php handles variables, and is a bit counter-intuitive to anyone who has worked in C or C++.

Passing by reference to be smarter than PHP isn't advised. PHP doesn't actually make copies of data unless it needs to (i.e. you change a variable's value when there's more than 1 reference to it), an optimization strategy very similar to copy-on-write for shared memory pages.

So, let's say you have a variable that you pass by value several times in a given script. If you then take this variable and pass it by reference, you're actually duplicating the variable rather than just getting a pointer to the object.

This is because internally, PHP zvals (the data structure PHP uses to store variables) can only be reference variables or non-reference variables. So it doesn't matter what the zval's ref_count field is, because it's not a reference variable (the is_ref field of the zval structure). So internally, PHP is forced to create a new zval and set its is_ref field to true, thus doubling the memory.

Tell your co-worker to stop trying to outsmart PHP. Passing by reference unless done 100% perfectly throughout the code will cause a lot of overhead and double the memory usage.

For a more detailed discussion, please see this link: http://porteightyeight.com/2008/03/18/the-truth-about-php-variables/

share|improve this answer
    
this is only given answer and it's good one. Thanks! :) –  confiq May 25 '11 at 18:33
    
The link seems dead :( I guess this is a mirror site: porteightyeight.wordpress.com/2008/03/18/… –  confiq Feb 3 '13 at 9:28

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.