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<?php
$a = 3;
echo 'typeof $a is : ' . gettype($a) . "\n"; // integer

$b = &$a;
echo 'typeof  $b es : ' . gettype($b) . "\n"; // integer

$c = new stdClass;
$c->name = "charles";

$b = $c;
$b->name = "bill";

echo '$c->name : ' . $c->name . "\n";
echo 'typeof $b es : ' . gettype($b) . "\n";


echo 'typeof $a is : ' . gettype($a) . "\n"; // object
echo 'The value of $a is : ' . $a->name; // bill
?>

Output:

typeof $a is : integer
typeof  $b is : integer
$c->name : bill
typeof  $b is : object
typeof $a is : object
The value of $a is : bill
share|improve this question
1  
Can you post the output of your code? –  GWW Mar 11 '11 at 15:47
2  
Your code has a syntax error. –  Lightness Races in Orbit Mar 11 '11 at 15:48
    
Output here: ideone.com/R2Ii6 –  Tom Medley Mar 11 '11 at 15:49
    
Do you understand the situation now? –  Michiel Pater Mar 11 '11 at 15:54

6 Answers 6

It's because you're setting $b to share the same memory address as $a. So when you change $b, $a gets changed as well.

Set $b = $a instead of $b = &$a if the results are undesirable.

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Output of my code is : typeof $a is : integer typeof $b is : integer $c->name :bill typeof $b is : object typeof $a is : object The value of $a is : bill –  beginnerPHP Mar 11 '11 at 15:52
1  
No, you paste your output in your question and format it correctly. stackoverflow.com/editing-help –  BoltClock Mar 11 '11 at 15:53
    
Thanks PMV. I got it now. –  beginnerPHP Mar 11 '11 at 16:09
  • $b is a reference to $a.
  • You make $b equal to $c, an object.
  • That means $b is now an object...
  • ...and since $b is just a reference to $a, $a is an object too.
share|improve this answer

You tell $b to be a reference to $a:

$b = &$a;

Then you tell $b to refer to the object that is referred to by $c:

$b = $c;

Since $b and $a are "linked" to the same value, both are the same reference to the same object, and $a loses its integer value.

You now have two distinct references to a single stdClass object: one belongs to $c, which is obtained by creating the object and assigning it. The other is created by assigning the reference of $c, by value to $b, so it's copied. This is then shared by linking $b and $a together (assigning by reference).

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Thanks BoltClock. I got it now. –  beginnerPHP Mar 11 '11 at 16:01

Here is the php documentation on references, must read: http://php.net/manual/en/language.references.php

Because a is a reference (not a copy - thanks Tomalak) of b, because you use the &, so whenever b changes a will change also. So when later on you make b=c (which currently c is an object) b becomes an object and thus a (the reference of b) becomes one too.

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1  
-1: a is not a copy of b. b is a reference to a: they are the same object. –  Lightness Races in Orbit Mar 11 '11 at 15:50
    
thanks man, i updated it. –  amosrivera Mar 11 '11 at 15:52
    
Cheers; downvote removed. –  Lightness Races in Orbit Mar 11 '11 at 15:54

Because $b = &$a refer to $a, so $b and $a are the same thing, and any references to either are interchangeable.

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Thanks Fredley. It's clear now. –  beginnerPHP Mar 11 '11 at 16:08

Your problem centers around creating this reference:

$b = &$a; 

When you afterwards assign an object to $b it will be inherited by $a. The assignment does not overwrite the reference. Instead $b is a name alias for $a's content, so all changes that you apply to $b will actually show up in $a instead. $b only retains the reference, not the properties.

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Yes Mario. It's just a little confusing at times. –  beginnerPHP Mar 11 '11 at 16:03

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