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From the Special method lookup for new-style classes section of the Python data model chapter in the refence:

For new-style classes, implicit invocations of special methods are only guaranteed to work correctly if defined on an object’s type, not in the object’s instance dictionary. That behaviour is the reason why the following code raises an exception (unlike the equivalent example with old-style classes):

>>> class C(object):
...     pass
...
>>> c = C()
>>> c.__len__ = lambda: 5
>>> len(c)
Traceback (most recent call last):
  File "<stdin>", line 1, in <module>
TypeError: object of type 'C' has no len()

The rationale behind this behaviour lies with a number of special methods such as __hash__() and __repr__() that are implemented by all objects, including type objects. If the implicit lookup of these methods used the conventional lookup process, they would fail when invoked on the type object itself:

>>> 1 .__hash__() == hash(1)
True
>>> int.__hash__() == hash(int)
Traceback (most recent call last):
  File "<stdin>", line 1, in <module>
TypeError: descriptor ’__hash__’ of ’int’ object needs an argument

Incorrectly attempting to invoke an unbound method of a class in this way is sometimes referred to as ‘metaclass confusion’, and is avoided by bypassing the instance when looking up special methods:

>>> type(1).__hash__(1) == hash(1)
True
>>> type(int).__hash__(int) == hash(int)
True

I can't catch the words in bold well...

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2 Answers 2

up vote 2 down vote accepted

To understand what's going on here, you need to have a (basic) understanding of the conventional attribute lookup process. Take a typical introductory object-oriented programming example - fido is a Dog:

class Dog(object):
    pass

fido = Dog()

If we say fido.walk(), the first thing Python does is to look for a function called walk in fido (as an entry in fido.__dict__) and call it with no arguments - so, one that's been defined something like this:

def walk():
   print "Yay! Walking! My favourite thing!"

fido.walk = walk

and fido.walk() will work. If we hadn't done that, it would look for an attribute walk in type(fido) (which is Dog) and call it with the instance as the first argument (ie, self) - that is triggered by the usual way we define methods in Python:

class Dog:
    def walk(self):
         print "Yay! Walking! My favourite thing!"

Now, when you call repr(fido), it ends up calling the special method __repr__. It might be (poorly, but illustratively) defined like this:

class Dog:
    def __repr__(self):
          return 'Dog()'

But, the bold text is saying that it also makes sense to do this:

 repr(Dog)

Under the lookup process I just described, the first thing it looks for is a method called __repr__ assigned to Dog... and hey, look, there is one, because we just poorly but illustratively defined it. So, Python calls:

Dog.__repr__()

And it blows up in our face:

>>> Dog.__repr__()
Traceback (most recent call last):
  File "<pyshell#38>", line 1, in <module>
    Dog.__repr__()
TypeError: __repr__() takes exactly 1 argument (0 given)

because __repr__() expects a Dog instance to be passed to it as its self argument. We could do this to make it work:

class Dog:
    def __repr__(self=None):
       if self is None:
           # return repr of Dog
       # return repr of self

But, then, we would need to do this every time we write a custom __repr__ function. That it needs to know how to find the __repr__ of the class is a problem, but not much of a one - it can just delegate to Dog's own class (type(Dog)) and call its __repr__ with Dog as its self-argument:

 if self is None:
   return type(Dog).__repr__(Dog)

But first, this breaks if the classname changes in the future, since we've needed to mention it twice in the same line. But the bigger problem is that this is basically going to be boilerplate: 99% of implementations will just delegate up the chain, or forget to and hence be buggy. So, Python takes the approach described in those paragraphs - repr(foo) skips finding an __repr__ attached to foo, and goes straight to:

type(foo).__repr__(foo) 
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Good! But how to understand 1 .__hash__() is ok while int.__hash__() is not? I think 1 and int are both instances of their types (1 from int, int from type). This inconsistency makes me crazy...x x –  Determinant Sep 1 '12 at 14:27
    
@ymfoi for the same reason that Dog.__hash__() doesn't work: int.__hash__ doesn't know how to hash int itself, only how to hash instances of int, and it expects to be given an instance of int as self. To hash int itself, we need type.__hash__(int). –  lvc Sep 1 '12 at 14:32
    
well, it's strange that 1 .__hash__() does know how to do the hash thing --- to invoke int.__hash__. But why does not int.__hash__() know it can use type.__hash__(int)? –  Determinant Sep 1 '12 at 14:36
    
@ymfoi because the lookup rules for 1 .__hash__ say that an __hash__ directly on 1 takes precedence if it exists - it doesn't exist, so Python looks for __hash__ on int, which does exist, so it uses it. For int.__hash__, the one on int does exist, so it picks that one. –  lvc Sep 1 '12 at 14:39
    
Oh~! Yes, it is. Thanks~ –  Determinant Sep 1 '12 at 14:40

What you have to remember is that classes are instances of their metaclass. Some operations need to be performed not just on instances, but on types as well. If the method on the instance was run then it would fail since the method on the instance (really a class in this case) would require an instance of the class rather than the metaclass.

class MC(type):
  def foo(self):
    print 'foo'

class C(object):
  __metaclass__ = MC
  def bar(self):
    print 'bar'

C.foo()
C().bar()
C.bar()
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..hmm..could you plz use that int and type(int) to make an example? –  Determinant Sep 1 '12 at 13:03
    
The type is unimportant. Only the method matters. –  Ignacio Vazquez-Abrams Sep 1 '12 at 14:34

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