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In C++ when you want a function to be able to read from an object, but not modify it, you pass a const reference to the function. What is the equivalent way of doing this in php?

I know objects in php5 are passed by reference by default, but for readability I think I will continue to use the ampersand before the variable name, like this:

function foo(&$obj)
{

}
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1 Answer 1

up vote 3 down vote accepted

If you want to pass an object but not by reference you can clone the object beforehand.

<?php
function changeObject($obj) {
  $obj->name = 'Mike';
}

$obj = new StdClass;
$obj->name = 'John';

changeObject(clone $obj);
echo $obj->name; // John

changeObject($obj);
echo $obj->name; // Mike

I know objects in php5 are passed by reference by default, but for readability I think I will continue to use the ampersand before the variable name

That's your call but I find that would simply make it read more like C++. Alternativly, you can show that an object is being passed in by using type-hinting in your function definition:

function foo(StdClass $obj)
{

}

Once it's clear that $obj is an object it can be assumed that it's being passed by reference.

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Wouldn't that degrade performance? (I have several dozen objects that each need to be independently passed to about half a dozen different functions) –  Nate Jul 6 '12 at 19:01
1  
@Nate PHP uses copy-on-write so AFAIK it won't be a waste of a variable unless you modify the object. –  Mike B Jul 6 '12 at 19:02
    
So if I pass the object with the clone keyword beforehand, will it copy the object without calling the object's constructor? Do I have to write a __clone() method? –  Nate Jul 6 '12 at 19:08
    
@Nate It won't invoke the constructor. The __clone() method is optional.. only needed if you wanted to do things when an object is cloned. –  Mike B Jul 6 '12 at 19:10

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