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Why would you do this?

$a = &new <someclass>();

For example, the documentation for SimpleTest's SimpleBrowser uses this syntax (http://www.simpletest.org/en/browser_documentation.html).

$browser = &new SimpleBrowser();

Is there any use to this? Is this a relic of PHP 4?

Edit:

I understand that the ampersand returns by reference, but what is the point of returning a NEW instance of an object by reference?

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yes that's a relic, all object are passed by reference in PHP 5. –  RageZ Oct 25 '11 at 13:02
    
possible duplicate of Reference - What does this symbol mean in PHP? –  Gordon Oct 25 '11 at 13:03
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2 Answers

up vote 2 down vote accepted

In PHP5, objects are passed using opaque object handles. You can still make a reference to a variable holding such a handle and give it another value; this is what the &new construct does in PHP5. It doesn't seem to be particularly useful though – unless you clone it explicitly, there's only ever one copy of a particular object instance, and you can make references to handles to it anytime after instantiation if you want to. So my guess would be the code you found is a holdover from when &new was a necessary pattern.

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Thanks @Inerdia -- could you provide an example of "cloning it explicitly"? –  jlb Oct 25 '11 at 13:23
    
@jib You clone an object explicitly using the clone keyword –  millimoose Oct 25 '11 at 13:27
    
Ah, so this is in no relation to '&new'? You were simply referring to how many copies of an object instance exist, correct? –  jlb Oct 26 '11 at 7:40
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Since PHP5 new returns references automatically. Using =& is thus meaningless in this context (and if I'm not mistaken giving a E_STRICT message).

Pre-PHP5 the use of =& was to get a reference to the object. If you initialized the object into a variable and then assigned that to a new variable both of the variables operated on the same object, exactly like it is today in PHP5.

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Thanks @marcus. A followup, before php 5, what would be a use-case of assigning a variable to a NEW object by reference? Something to do with overwriting the variable's old value? –  jlb Oct 25 '11 at 13:06
    
Here's and old article explaining it: nefariousdesigns.co.uk/archive/2006/08/…. Look under the title "References" –  Marcus Oct 25 '11 at 13:17
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