35

I understand that my question is somehow wrong, but I'm still trying to solve this problem.

I have an interface Programmer:

interface Programmer {
    public function writeCode();
}

and a couple of namespaced classes:

  • Students\BjarneProgrammer (implements Programmer)
  • Students\CharlieActor (implements Actor)

I have this class names stored in array $students = array("BjarneProgrammer", "CharlieActor");

I want to write a function, that will return an instance of class if it's implementing Programmer interface.

Examples:

getStudentObject($students[0]); - It should return an instance of BjarneProgrammer because it's implementing Programmer.

getStudentObject($students[1]); - It should return false because Charlie is not a Programmer.

I tried it using instanceof operator, but the main problem is that I do not want to instantiate an object if it's not implementing Programmer.

I checked How to load php code dynamically and check if classes implement interface, but there is no appropriate answer as I don't want to create object unless it's returned by function.

1
  • @how: The OP says they don't want to instantiate the class. Commented Nov 18, 2015 at 23:06

3 Answers 3

36

You can use class_implements (requires PHP 5.1.0)

interface MyInterface { }
class MyClass implements MyInterface { }

$interfaces = class_implements('MyClass');
if($interfaces && in_array('MyInterface', $interfaces)) {
    // Class MyClass implements interface MyInterface
}

You can pass the class name as a string as function's argument. Also, you may use Reflection

$class = new ReflectionClass('MyClass');
if ( $class->implementsInterface('MyInterface') ) {
    // Class MyClass implements interface MyInterface
}

Update : (You may try something like this)

interface Programmer {
    public function writeCode();
}

interface Actor {
    // ...
}

class BjarneProgrammer implements Programmer {
    public function writeCode()
    {
        echo 'Implemented writeCode method from Programmer Interface!';
    }
}

Function that checks and returns instanse/false

function getStudentObject($cls)
{
    $class = new ReflectionClass($cls);
    if ( $class->implementsInterface('Programmer') ) {
        return new $cls;
    }
    return false;
}

Get an instance or false

$students = array("BjarneProgrammer", "CharlieActor");
$c = getStudentObject($students[0]);
if($c) {
    $c->writeCode();
}

Update: Since PHP - 5.3.9+ you may use is_a, example taken from PHP Manual:

interface Test {
    public function a();
}

class TestImplementor implements Test {
    public function a() {
        print "A";
    }
}

$testImpl = new TestImplementor();

var_dump(is_a($testImpl, 'Test')); // true

Working example here.

3
  • Thanks, your answer helped me. I used just ReflectionClass - codepad.org/EvZRbaWZ
    – Stichoza
    Commented Nov 24, 2013 at 1:24
  • I'm using method from ReflectionClass return $class->newInstance(); instead of return new $cls;. Thanks again :>
    – Stichoza
    Commented Nov 24, 2013 at 1:36
  • That's fine I think :-)
    – The Alpha
    Commented Nov 24, 2013 at 1:36
27

If you're using a modern version of PHP (5.3.9+), then the easiest (and best) way would be to use is_a() with the third parameter true:

$a = "Stdclass";

var_dump(is_a($a, "stdclass", true));
var_dump(is_a($a, $a, true));

Both of those will return true.

2
  • 3
    PHP documentation is kind of misleading (if you don't care to read every sentence :) ) - it says first parameter of is_a is an object. But if you read on - you find out it can actually be a string... Commented Nov 3, 2017 at 9:45
  • For me, this was the more elegant solution Commented Dec 24, 2022 at 13:09
10

Use PHP's function is_subclass_of():

use App\MyClass;
use App\MyInterface;

if (is_subclass_of(MyClass::class, MyInterface::class)) {
    // ...
}

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