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I've been working on code that's intended to be used with objects, without really caring what the kidn of object is. I wanted to type hint that the method being written expected an object of any type, but ran into some difficulty.

I tried function myFunc (object $obj) and function myFunc (stdClass $obj) but both of these generated errors when I tried to pass objects in:

Catchable fatal error: Argument 1 passed to MyClass::MyFunc() must be an instance of object, instance of ObjectActualClass given

The same happened with stdClass as well

What am I missing? I thought that all classes that didn't explicitly inherit from another class inherited from stdClass, meaning that the base class of every class in PHP would be stdClass. Is this not the case?

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possible duplicate of PHP Type Hinting: array supported, object NOT? –  Jon Oct 20 '11 at 16:24
    
see my answer at the bottom for a complete solution –  Gaz_Edge Apr 28 at 9:49

7 Answers 7

up vote 10 down vote accepted

stdClass is NOT a base class! PHP classes do not automatically inherit from any class. All classes are standalone, unless they explicitly extend another class. PHP differs from many object-oriented languages in this respect.

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this is correct, but for a complete solution to this problem, see my answer below –  Gaz_Edge Sep 12 at 13:03

There is no base class that all objects extend from. You should just remove the typehint and document the expected type in the @param annotation.

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Although there is no type hinting for objects, you can use:

if (!is_object($arg)) {
    return;
}
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You could do something like this:

function myFunc ($obj)
{
     if ($obj instanceof stdClass) { .... }
}
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There is no built-in mechanism to do this without requiring all users of your interface to extend a specified class. But why would you want to do this anyway? What do all object types have in common that's enough to make them suitable input for your API?

In all probability you wouldn't gain anything even if able to type hint like this. On the other hand, type hinting a parameter to implement an interface (such as Traversable) would be much more meaningful.

If you still want something akin to type hinting, the best you can do is substitute a runtime check with is_object on the parameter.

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Typehint for stdClass works since PHP 5.3+ (if I am not wrong). Following is valid code using typehint for stdClass construct:

class Test{
    function hello(stdClass $o){
        echo $o->name;
    }
}

class Arg2 extends stdClass{
    public $name = 'John';
    function sayHello(){
        echo 'Hello world!';
    }
}

$Arg1 = new stdClass();
$Arg1->name = 'Peter';

$Arg2 = new Arg2();
$Arg2->sayHello();

$test = new Test();

// OK
$test->hello($Arg1);
$test->hello($Arg2);

// fails
$test->hello(1);

Prints out:

Hello world! Peter John

Catchable fatal error: Argument 1 passed to Test::hello() must be an instance of stdClass, integer given, called in D:_projects....\web\test.php on line 32 and defined in D:_projects...\web\test.php on line 5

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The best way to enforce this would be to create a degenerate interface called Object. A degenerate interface means it has no defined methods.

interface Object {

   // leave blank

}

Then in your base classes, you can implement Object.

class SomeBase implements Object {

   // your implementation

}

You can now call your function as you wanted to

function myFunc (Object $obj);

myFunc($someBase);

If you pass any object which inherits from your Object interface, this type hint will pass. If you pass in an array, int, string etc, the type hint will fail.

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+1 because this is the best oop answer.. you should always type hint on interfaces only –  DerDu Sep 12 at 8:57
    
If your class structure is more hierarchical, couldn't you just extends stdClass in the base classes? –  wes.hysell Nov 20 at 20:30
    
well yeah, of course you can. –  Gaz_Edge Nov 20 at 23:35

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