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Although I get it that

$a = new b()

would be initializing an object for the class b, but what would

$a = new $b()

mean because I came across some code that happens to work otherwise!

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I'm not quite sure, as you've said $a = new b() would initialize class b, I don't actually think $a = new $b() should work... Strange, I hope to find the answer also. –  Luke Berry Aug 18 '11 at 14:46
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2 Answers

up vote 6 down vote accepted

It's a reflexive reference to the class with a name that matches the value of $b.

Example:

$foo = "Bar";

class Bar
{
   ...code...
}

$baz = new $foo();

//$baz is a new Bar

Update just to support: you can call functions this way too:

function test(){
    echo 123;
}
$a = "test";
$a(); //123 printed
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That's strange, but I suppose it makes sense, what possible advantage could that have over $baz = new Bar(); though? –  Luke Berry Aug 18 '11 at 14:47
1  
@LukeBerry, the advantages are in inheritance and extensibility. If I make a CMS i could allow users to provide plugin classes and specify the names of the enabled ones in a database. I could then instantiate all the enabled plugins reflexively by iterating over the names. It has niche uses, but significantly improves the modularity of code. I never need to know the name of the class I'm making in advance. –  zzzzBov Aug 18 '11 at 14:50
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This code:

$b = "Foo";
$a = new $b();

is equivalent to the following:

$a = new Foo();

Meaning that you can use syntax like $b() to dynamically refer to a function name or a class name.

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