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I know this is covered in the php docs but I got confused with this issue .

From the php docs :

$instance = new SimpleClass();
$assigned   =  $instance;
$reference  =& $instance;
$instance->var = '$assigned will have this value';
$instance = null; // $instance and $reference become null
var_dump($instance);
var_dump($reference);
var_dump($assigned);
?>

The above example will output:

NULL
NULL
object(SimpleClass)#1 (1) {
["var"]=>
 string(30) "$assigned will have this value"
}

OK so I see that $assigned 'survived' the original object ($instance) being assigned to NULL , so obviously $assigned isn't a reference but a copy of $instance . So what is the difference between

 $assigned = $instance 

and

 $assigned = clone $instance
share|improve this question
    
'$assigned will have this value' it will not because you use '' –  Robert Jun 3 '13 at 9:48
3  
@Robert In this case "$assigned" is meant to be literally "$assigned", not a value substitution. –  deceze Jun 3 '13 at 9:59

5 Answers 5

Objects are abstract data in memory. A variable always holds a reference to this data in memory. Imagine that $foo = new Bar creates an object instance of Bar somewhere in memory, assigns it some id #42, and $foo now holds this #42 as reference to this object. Assigning this reference to other variables by reference or normally works the same as with any other values. Many variables can hold a copy if this reference, but all point to the same object.

clone explicitly creates a copy of the object itself, not just of the reference that points to the object.

$foo = new Bar;   // $foo holds a reference to an instance of Bar
$bar = $foo;      // $bar holds a copy of the reference to the instance of Bar
$baz =& $foo;     // $baz references the same reference to the instance of Bar as $foo

Just don't confuse "reference" as in =& with "reference" as in object identifier.

$blarg = clone $foo;  // the instance of Bar that $foo referenced was copied
                      // into a new instance of Bar and $blarg now holds a reference
                      // to that new instance
share|improve this answer
2  
Good explanation. –  Ian Brindley Jun 3 '13 at 10:00
    
nice explained I agree +1 PHP references may be confusing. –  Robert Jun 3 '13 at 10:03

The difference between

 $assigned = $instance 

and

 $assigned = clone $instance

is that when you use clone keyword you can use magic method __clone() which gives you better control on object cloning. From php manual:

Once the cloning is complete, if a __clone() method is defined, then the newly created object's __clone() method will be called, to allow any necessary properties that need to be changed.

Moreover, objects in PHP 5 are assigned by reference if you want to create copy of object you should use clone.

From manual:

A PHP reference is an alias, which allows two different variables to write to the same value. As of PHP 5, an object variable doesn't contain the object itself as value anymore. It only contains an object identifier which allows object accessors to find the actual object. When an object is sent by argument, returned or assigned to another variable, the different variables are not aliases: they hold a copy of the identifier, which points to the same object.

share|improve this answer
 $assigned = $instance 

Above will assign $instance to $assigned, the most basic assign.

 $assigned = clone $instance 

This is for object clone. Assign a copy of object $instance to $assigned.

Without clone, $assigned and $instance has same object id, which means they are pointing to same object.

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but the other person saying so obviously $assigned isn't a reference but a copy of $instance –  pinkpanther Jun 3 '13 at 9:52

well, basically those variables are nothing but pointers to the memory space, where object resides. If you store pointer value in another pointer, and then reset original pointer, nothing will happen to the memory area they both once pointed to.

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Keeping it Short & Simple Here :

Here $reference is like an Alias to the object $instance...

whereas initially $assignment, $reference are pointing to the data space for the object $instance....

and when there is a change in the value that is being pointed by $instance it will be changed everywhere...

but when $instance = null.. here we are making the $instance to point to null and since $reference is an alias so... $reference -> $instance -> null....

whereas $assignment still holds the pointer to data space for object created by $instance...

but now $instance no longer needs the same...

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