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Am I missing something or there really is no support for generic object type hinting in PHP 5.x?

I find it really strange that hinting arrays is supported while hinting objects is not, at least not out of the box.

I'd like to have something like this:

function foo(object $o)

Just as we have:

function foo(array $o)

Example of possible use: methods of an objects collection class.

Workaround: using an interface "Object" implemented by all classes or extending all classes from a generic class "Object" and writing something like this:

function foo(Object $o)

Well, that just ain't cute.

Edit: somebody suggested in a deleted post using stdClass. It doesn't work:

Catchable fatal error: Argument 1 passed to c::add() must be an instance of stdClass, instance of b given

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Don't use concrete types for type hinting. Either use interfaces, or read about duck typing. –  Ionuț G. Stan Oct 10 '09 at 11:41
    
If I'm to walk the no concrete types path I'd rather use is_object(). But that's not the point of this discussion. –  Marius Burz Oct 10 '09 at 11:54
5  
Look, PHP is a very inconsistent language, in which objects do not inherit from a single class, like in Java. The fact there's no type hinting for general objects is an oversight indeed, but I think you have to pass this point and prepare for other strange things. –  Ionuț G. Stan Oct 10 '09 at 12:03
6  
How is array hinting better than is_array()? Since array hinting is supported, I'd expect the same for objects. –  Marius Burz Oct 10 '09 at 12:08
1  
@IonuțG.Stan is_array checking and throwing exceptions in each function is easier than than setting up a global exception handler? You gotta be kidding me. –  SalmanPK Oct 31 '12 at 22:49

10 Answers 10

Since type hinting should make the client code adapt to your API, your solution with accepting interfaces seems just about right.

Look at it this way: yourMethod(array $input) gives yourMethod() an array to use, thereby you know exactly which native functions that applies and can be used by yourMethod().

If you specify your method like: yourSecondMethod(yourInterface $input) you'd also know which methods that can be applied to $input since you know about/can lookup which set of rules that accompanies the interface yourInterface.

In your case, accepting any object seems wrong, because you don't have any way of knowing which methods to use on the input. Example:

function foo(Object $o) {
    return $o->thisMethodMayOrMayNotExist();
}

(Not implying that syntax is valid)

share|improve this answer
    
That's not the case for an objects collection class which will be acting as a (pseudo) container that won't be invoking any methods on its children nor will it use any of their attributes / properties. Knowing a variable is an object also makes it possible to use lots of native functions on it, so I don't really see your point. –  Marius Burz Oct 10 '09 at 11:42
1  
How about using a type hint such as SplObjectStorage or ArrayObject? –  chelmertz Oct 10 '09 at 12:12

You cannot just say "object" when type casting an object... you must define WHICH object you are expecting.

From: http://php.net/manual/en/language.oop5.typehinting.php

class MyClass
{
    /**
     * A test function
     *
     * First parameter must be an object of type OtherClass
     */
    public function test(OtherClass $otherclass) {
        echo $otherclass->var;
    }


    /**
     * Another test function
     *
     * First parameter must be an array
     */
    public function test_array(array $input_array) {
        print_r($input_array);
    }
}

// Another example class
class OtherClass {
    public $var = 'Hello World';
}
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Sorry, paste of code failed, see the link for a better sample. –  Bhol Aug 26 '10 at 21:32
up vote 4 down vote accepted

No, it can't be done. I wasn't missing anything.

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not true. See my answer –  Gaz_Edge Jul 14 at 15:42

I feel your pain, but I can't find a way of doing it either.

Despite what a number of other posters have said, it makes perfect sense to want 'Object' type hinting; they just haven't considered a scenario that requires it.

I am trying to do some work with the reflection API, and because of that I don't care what class is passed to my function. All I care is that it's an object. I don't want an int, a float, a string or an array. I want an object. Given that reflection is now part of PHP, it definitely makes sense to have object type hinting.

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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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Here I have tried to explained all possible way techflirt.com/tutorials/oop-in-php/php-type-hinting.html hope people like it. –  Ankur Kumar Singh May 22 at 6:27
    
Unfortunately, this is probably the closest you're going to get in PHP, but it does mean every class you create has to implement the Object interface, which is really a lot of overhead for something as simple as this. Ahhhhh, PHP.. –  mAAdhaTTah Aug 5 at 14:22

Why would you want to hint object when you can hint an actual class name instead - this would be much more useful. Also remember that you can't hint int,float, bool, string or resource either.

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2  
Why would you want to hit an array? Remember all those other types you can't hint... Since there is no common base class from which all PHP classes descend, it makes sense to be able to hint an object, just as it makes to hint an array. My opinion, but I doubt I'm alone on this one. –  Marius Burz Oct 20 '09 at 11:31
    
Just because you cannot think of an instance for type-hinting to a generic object, doesn't mean the need never exists.The comment by Rikki is a perfect example. The fact that you cannot type hint for int, float, bool, string and resource is also an oversight, in my opinion. There have been plenty of instances where I'd have preferred to explicitly limit an argument to only an integer. So instead, I'm stuck using "is_int" nonsense calls. –  Nathan Crause May 1 at 6:35

Here's another example where it is required...

I've created a class to implement record locking. Records being one of a number of different object types. The locking class has several methods which require an object (the one to be locked) but don't care what type of object it is.

E.g.

public static function lockRecord($record, User $user, $timeout=null)
{
    if(!is_object($record)) throw new \InvalidException("Argument 1 must be an object.");

    $lock=new Lock();
    $lock->setRecord($record);
    $lock->setUser($user);
    $lock->setTimeout($timeout);
    $lock->activate();
    return($lock);
}

You'll see that my solution was to use is_object() and throw an exception, but I'd far rather be able to do it with type hinting instead.

Ok, so not the end of the world, but I think it's a shame.

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public static function cloneObject($source)
{
    if ($source === null)
    {
        return null;
    }

    return unserialize(serialize($source));
}

This is where you would need it.

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To improve the quality of your answer, please include how/why your post solves the problem. –  0x7fffffff Oct 5 '12 at 9:01

You could always hack support for it using the set_error_handler.

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Objects in php are not subclasses of some StdClass or Object as it is in other OOP languages. So there is no way of type hinting the object. But I see your point because sometimes you want to make sure that the Object is being passed, so I guess the only way is to raise the issue manually.

public function yourFunction($object){
    if(is_object($object)){
        //TODO: do something
    }else{
        throw new InvalidArgumentException;
    }
}

As of php 5.4 there is also a type hint callable. See php manual http://php.net/manual/en/language.types.callable.php

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Obligatory inheritance from a single superclass is not mandatory to be called an "actual OOP language", if such a thing can even be defined. –  underscore_d Aug 17 at 18:57
    
@underscore_d thank you for pointing it out. I made the edit. Although, it still needs to be mentioned that php OOP is just a feature and it's not enforced... maybe that's why objects are not sub-classes of stdClass. –  qwerty_igor Aug 17 at 20:49
    
I've only used OOP in languages where it's optional. Is it claimed anywhere - e.g. in any important books - that OOP-only languages need a superclass? I can see why it's used a lot in modern managed languages, but that wouldn't make it a rule. In compiled languages like C++ (an 'optional OOP' language), it would be a burden to have to subclass at all times, rather than retaining full control. But I've taught myself everything I know, so I can believe it if I'm missing something. ;-) –  underscore_d Aug 17 at 21:17

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