In the following code, I don't understand why useless_func has the same id when it belongs to two different objects?

class parent(object):
   @classmethod
   def a_class_method(cls):
     print "in class method %s" % cls

   @staticmethod
   def a_static_method():
     print "static method"

   def useless_func(self):
     pass

 p1, p2 = parent(),parent()

 id(p1) == id(p2) // False

 id(p1.useless_func) == id(p2.useless_func) // True
up vote 7 down vote accepted

Here is what I think is happening:

  1. When you dereference p1.useless_func, a copy of it is created in memory. This memory location is returned by id
  2. Since there are no references to the copy of the method just created, it gets reclaimed by the GC, and the memory address is available again
  3. When you dereference p2.useless_func, a copy of it is created in the same memory address (it was available), which you retrieve using id again.
  4. The second copy is GCd

If you were to run a bunch of other code and check the ids of the instance methods again, I'll bet the ids would be identical to each other, but different from the original run.

Additionally, you might notice that in David Wolver's example, as soon as a lasting reference to the method copy is obtained the ids become different.

To confirm this theory, here is a shell session using Jython (same result with PyPy), which does not utilize CPython's reference counting garbage collection:

Jython 2.5.2 (Debian:hg/91332231a448, Jun 3 2012, 09:02:34) 
[OpenJDK Server VM (Oracle Corporation)] on java1.7.0_21
Type "help", "copyright", "credits" or "license" for more information.
>>> class parent(object):
...     def m(self):
...             pass
... 
>>> p1, p2 = parent(), parent()
>>> id(p1.m) == id(p2.m)
False
  • 3
    Ah, we have a winner! That makes perfect sense. Very nice answer. – David Wolever May 24 '13 at 4:23
  • @jamylak That is a very generous edit. I believe there is enough content there to warrant a separate answer, in fact. – Asad Saeeduddin May 24 '13 at 4:47
  • @Asad I don't believe so, it belongs here – jamylak May 24 '13 at 4:50

This is a very interesting question!

Under your conditions, they do appear the same:

Python 2.7.2 (default, Oct 11 2012, 20:14:37) 
[GCC 4.2.1 Compatible Apple Clang 4.0 (tags/Apple/clang-418.0.60)] on darwin
Type "help", "copyright", "credits" or "license" for more information.
>>> class Foo(object):
...   def method(self): pass
... 
>>> a, b = Foo(), Foo()
>>> a.method == b.method
False
>>> id(a.method), id(b.method)
(4547151904, 4547151904)

However, notice that once you do anything with them, they become different:

>>> a_m = a.method
>>> b_m = b.method
>>> id(a_m), id(b_m)
(4547151*9*04, 4547151*5*04)

And then, when tested again, they have changed again!

>>> id(b.method)
4547304416
>>> id(a.method)
4547304416

When a method on an instance is accessed, an instance of "bound method" is returned. A bound method stores a reference to both the instance and to the method's function object:

>>> a_m
<bound method Foo.method of <__main__.Foo object at 0x10f0e9a90>>
>>> a_m.im_func is Foo.__dict__['method']
True
>>> a_m.im_self is a
True

(note that I need to use Foo.__dict__['method'], not Foo.method, because Foo.method will yield an "unbound method"… the purpose of which is left as an exercise to the reader)

The purpose of this "bound method" object is to make methods "behave sensibly" when they are passed around like functions. For example, when I call function a_m(), that is identical to calling a.method(), even though we don't have an explicit reference to a any more. Contrast this behaviour with JavaScript (for example), where var method = foo.method; method() does not produce the same result as foo.method().

SO! This brings us back to the initial question: why does it seem that id(a.method) yields the same value as id(b.method)? I believe that Asad is correct: it has to do with Python's reference-counting garbage collector*: when the expression id(a.method) is evaluated, a bound method is allocated, the ID is computed, and the bound method is deallocated. When the next bound method — for b.method — is allocated, it is allocated to exactly the same location in memory, since there haven't been any (or have been a balanced number of) allocations since the bound method for a.method was allocated. This means that a.method appears to have the same memory location as b.method.

Finally, this explains why the memory locations appear to change the second time they are checked: the other allocations which have taken place between the first and the second check mean that, the second time, they are allocated at a different location (note: they are re-allocated because all references to them were lost; bound methods are cached†, so accessing the same method twice will return the same instance: a_m0 = a.method; a_m1 = a.method; a_m0 is a_m1 => True).

*: pedants note: actually, this has nothing to do with the actual garbage collector, which only exists to deal with circular references… but… that's a story for another day.
†: at least in CPython 2.7; CPython 2.6 doesn't seem to cache bound methods, which would lead me to expect that the behaviour isn't specified.

  • 2
    I believe in your second examples, you've got two different references, but a.method and b.method still have the same id. – Hamish May 24 '13 at 4:19
  • 1
    @Hamish That's not how id works: a = [] b = a id(a) == id(b) True – Patashu May 24 '13 at 4:20
  • 2
    lst = [1,2,3]; len({id(lst2.append) for _ in range(1000000)}) actally yields different results for different runs (usually between 1-3)...should look at the source to see how it's handled exactly... – root May 24 '13 at 4:57
  • 1
    Actually, I only seems to be inconsistent when running on the IPython console...(that I think is making some other calls behind the scenes?) – root May 24 '13 at 6:00
  • 1
    @DavidWolever Bound methods are cached, so accessing the same method twice will return the same instance a_m0 = a.method; a_m1 = a.method; a_m0 is a_m1 => True . This is not necessarily true. I am on 2.6.5 (r265:79063, Apr 16 2010, 13:57:41) [GCC 4.4.3]. – abc Aug 14 '13 at 5:42

Your Answer

 

By clicking "Post Your Answer", you acknowledge that you have read our updated terms of service, privacy policy and cookie policy, and that your continued use of the website is subject to these policies.

Not the answer you're looking for? Browse other questions tagged or ask your own question.