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When discussing metaclasses, the docs state:

You can of course also override other class methods (or add new methods); for example defining a custom __call__() method in the metaclass allows custom behavior when the class is called, e.g. not always creating a new instance.

My questions is: suppose I want to have custom behavior when the class is called, for example caching instead of creating fresh objects. I can do this by overriding the __new__ method of the class. When would I want to define a metaclass with __call__ instead? What does this approach give that isn't achievable with __new__?

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3 Answers

up vote 8 down vote accepted

The direct answer to your question is: when you want to do more than just customize instance creation, or when you want to separate what the class does from how it's created.

See my answer to Creating a singleton in python and the associated discussion.

There are several advantages.

  1. It allows you to separate what the class does from the details of how it's created. The metaclass and class are each responsible for one thing.

  2. You can write the code once in a metaclass, and use it for customizing several classes' call behavior without worrying about multiple inheritance.

  3. Subclasses can override behavior in their __new__ method, but __call__ on a metaclass doesn't have to even call __new__ at all.

  4. If there is setup work, you can do it in the __new__ method of the metaclass, and it only happens once, instead of every time the class is called.

There are certainly lots of cases where customizing __new__ works just as well if you're not worried about the single responsibility principle.

But there are other use cases that have to happen earlier, when the class is created, rather than when the instance is created. It's when these come in to play that a metaclass is necessary. See What are your (concrete) use-cases for metaclasses in Python? for lots of great examples.

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One difference is that by defining a metaclass __call__ method you are demanding that it gets called before any of the class's or subclasses's __new__ methods get an opportunity to be called.

class MetaFoo(type):
    def __call__(cls,*args,**kwargs):
        print('MetaFoo: {c},{a},{k}'.format(c=cls,a=args,k=kwargs))
class Foo(object):
    __metaclass__=MetaFoo
class SubFoo(Foo):
    def __new__(self,*args,**kwargs):
        # This never gets called
        print('Foo.__new__: {a},{k}'.format(a=args,k=kwargs))
 sub=SubFoo()
 foo=Foo()

 # MetaFoo: <class '__main__.SubFoo'>, (),{}
 # MetaFoo: <class '__main__.Foo'>, (),{}

Notice that SubFoo.__new__ never gets called. In contrast, if you define Foo.__new__ without a metaclass, you allow subclasses to override Foo.__new__.

Of course, you could define MetaFoo.__call__ to call cls.__new__, but that's up to you. By refusing to do so, you can prevent subclasses from having their __new__ method called.

I don't see a compelling advantage to using a metaclass here. And since "Simple is better than complex", I'd recommend using __new__.

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It's a matter of lifecycle phases and what you have access to. __call__ gets called after __new__ and is passed the initialization parameters before they get passed on to __init__, so you can manipulate them. Try this code and study its output:

class Meta(type):
    def __new__(cls, name, bases, newattrs):
        print "new: %r %r %r %r" % (cls, name, bases, newattrs,)
        return super(Meta, cls).__new__(cls, name, bases, newattrs)

    def __call__(self, *args, **kw):
        print "call: %r %r %r" % (self, args, kw)
        return super(Meta, self).__call__(*args, **kw)

class Foo:
    __metaclass__ = Meta

    def __init__(self, *args, **kw):
        print "init: %r %r %r" % (self, args, kw)

f = Foo('bar')
print "main: %r" % f
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No! __new__ on the metaclass happens when the class is created, not an instance. __call__ happens when __new__ would happen without the metaclass. –  agf Aug 6 '11 at 12:56
    
Where do I say that __new__ is related to instance creation? –  pyroscope Aug 6 '11 at 12:59
2  
I was actually asking about the class's __new__, not the metaclass's __new__. –  Eli Bendersky Aug 6 '11 at 13:01
    
It certainly sounds like you're talking about the class' __new__ there rather than the metaclass __new__. –  agf Aug 6 '11 at 13:03
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