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I need to know what kind invokes a static method, without sending as parameter

class foo
{
    public static function test($clase)
    {
        echo "Class invoke:" . FUNCTION();
    }
}

class A { public function x { foo::test(); } }
class B { public function y { foo::test(); } }
class C { public function z { foo::test(); } }
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7  
You could use debug_backtrace(), but I hope this isn't for production use? –  Colin M Feb 19 '13 at 21:52
    
You could pass get_class() as an argument to test(). –  Nicholas Pickering Feb 19 '13 at 22:00

1 Answer 1

You can use late static bindings and get_called_class() (PHP >= 5.3) if you make all of your classes extend foo, like this:

class foo
{
    public static function test($clase)
    {
        echo "Class invoke:" . get_called_class();
    }
}

class A extends foo { public function x() { self::test(''); } }
class B extends foo { public function y() { self::test(''); } }
class C extends foo { public function z() { self::test(''); } }

With these objects:

$a = new A; $a->x();
$b = new B; $b->y();
$c = new C; $c->z();

You'll get as output:

Class invoke:A
Class invoke:B
Class invoke:C 
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Thanks for the reply, is there any way without inheritance? –  Ronald Feb 20 '13 at 0:32
    
Not without passing the class name to test(). –  nickb Feb 20 '13 at 2:05
    
@nickb No, there is :). Using debug_backtrace(). But again, not a good idea for any sort of production use. –  Colin M Feb 20 '13 at 13:00
    
I'll have to send an object as a parameter, thanks @ nickb, because as Colin Morelli says use debug_backtrace "not a good idea for any sort of production use." –  Ronald Feb 20 '13 at 14:04
    
@Colin - I don't consider debug_backtrace() as a viable or valid solution... If you have to suffix a suggestion with "don't use it in production", it's not a viable solution. –  nickb Feb 20 '13 at 14:21

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