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If I make a copy of a reference variable. Is the new variable a pointer or does it hold the value of the variable the pointer was referring to?

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References are not pointers. See php.net/manual/en/language.references.arent.php –  Artefacto May 15 '10 at 13:06
    
You do not want to use references. Really. They are very badly implemented and will cause any sort of problem. If you try to use them, you are thinking C-like. Some aspects of PHP are similar to C, but it's not C. Try a different approach. –  Lohoris May 15 '10 at 13:23
    
Sometimes you must use them, for instance when implementing offsetget. Though no doubt that references in PHP are a mess. –  Artefacto May 15 '10 at 13:49

2 Answers 2

up vote 3 down vote accepted

It holds the value. If you wanted to point, use the & operator to copy another reference:

$a = 'test';
$b = &$a;
$c = &$b;
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Don't say "point". he'll think there's some difference between $a, $b and $c (like a pointer and a pointed). –  Artefacto May 15 '10 at 13:51

Let's make a quick test:

<?php

$base = 'hello';
$ref =& $base;
$copy = $ref;

$copy = 'world';

echo $base;

Output is hello, therefore $copy isn't a reference to %base.

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1  
Which should be expected - the point of $ref being a reference to $base is that $copy = $ref should have the exact same effect as $copy = $base. –  Tgr May 15 '10 at 13:06
    
This made me understand references far better. For some reason i though that to copy a reference you could $copy = $ref;. Now i understand that is like a dereference and copies the data that the reference references. I think using C pointers makes this confusing as you have to dereference manually. –  Lightbulb1 Jul 2 at 13:46
    
@Lightbulb1: That's because PHP's references are more like C++ references than C/C++ pointers. ;) –  Crozin Jul 2 at 14:22
    
Pointers and references are very confusing. I think i'm getting there haha –  Lightbulb1 Jul 2 at 15:14

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