147

When you call the object.__repr__() method in Python you get something like this back:

<__main__.Test object at 0x2aba1c0cf890> 

Is there any way to get a hold of the memory address if you overload __repr__(), other then calling super(Class, obj).__repr__() and regexing it out?

182

The Python manual has this to say about id():

Return the "identity'' of an object. This is an integer (or long integer) which is guaranteed to be unique and constant for this object during its lifetime. Two objects with non-overlapping lifetimes may have the same id() value. (Implementation note: this is the address of the object.)

So in CPython, this will be the address of the object. No such guarantee for any other Python interpreter, though.

Note that if you're writing a C extension, you have full access to the internals of the Python interpreter, including access to the addresses of objects directly.

  • 5
    This is not a universal answer to the question; it only applies to CPython. – DilithiumMatrix Oct 9 '14 at 16:41
  • 3
    Note to self: The guarantee does not apply to multiprocessing – Rufus Feb 9 '17 at 3:33
  • Some ways to use it (to compare the value it contains): forum.freecodecamp.com/t/python-id-object/19207 – J. Does Mar 15 '17 at 21:33
  • What does an object's lifetime (and what does it mean for lifetime to overlap/not overlap) refer to in this context? – Minh Tran May 31 '18 at 14:42
  • 1
    @MinhTran because the id is the memory address of the object, it is guaranteed unique within the process, and while the object exists. Some time after the object is garbage collected the memory may be reused. A non overlapping lifetime would mean the original object no longer exists when the new object is created. So this limitation means you can't safely use id() to create a hash of an object to store off, free it, and later reinstate it. – Joshua Clayton Aug 2 '18 at 19:44
64

You could reimplement the default repr this way:

def __repr__(self):
    return '<%s.%s object at %s>' % (
        self.__class__.__module__,
        self.__class__.__name__,
        hex(id(self))
    )
  • 1
    I know this is old, but you can just do return object.__repr__(self) or even just do object.__repr__(obj) whenever you need this instead of making a new class – Artyer Nov 2 '16 at 19:56
  • 2
    @Artyer: What does this comment have to do with the original question? The answer posted here is recreating the address as requested by the original question. Wouldn't you have to string mangle if you did it the way you suggest? – Rafe Mar 13 '17 at 20:03
  • 1
    This seems like the best answer to me. Just try making an object(), print it, then print hex(id(object)) and the results match – Rafe Mar 13 '17 at 20:05
  • @Rafe Your answer is a long winded way of doing __repr__ = object.__repr__, and isn't nearly as fool proof, as there are a variety of situations where this doesn't work, e.g. an overrided __getattribute__ or a non-CPython implementation where the id isn't the memory location. It also doesn't z-fill, so you would have to work out if the system is 64bit and add the zeroes as necessary. – Artyer Mar 14 '17 at 21:57
  • @Artyer: My example shows how to construct a repr. We often add custom information (and I would say this is good coding practice as it aids in debugging). We use this style heavily and I have never run in to your edge cases. Thanks for sharing them! – Rafe Jul 18 '17 at 16:08
46

Just use

id(object)
  • 5
    which gives a number. ... What's next? Can i access the object with that number? – JLT Dec 5 '16 at 16:25
  • You can check this id() @JLT – Billal Begueradj Apr 5 '17 at 11:35
21

There are a few issues here that aren't covered by any of the other answers.

First, id only returns:

the “identity” of an object. This is an integer (or long integer) which is guaranteed to be unique and constant for this object during its lifetime. Two objects with non-overlapping lifetimes may have the same id() value.


In CPython, this happens to be the pointer to the PyObject that represents the object in the interpreter, which is the same thing that object.__repr__ displays. But this is just an implementation detail of CPython, not something that's true of Python in general. Jython doesn't deal in pointers, it deals in Java references (which the JVM of course probably represents as pointers, but you can't see those—and wouldn't want to, because the GC is allowed to move them around). PyPy lets different types have different kinds of id, but the most general is just an index into a table of objects you've called id on, which is obviously not going to be a pointer. I'm not sure about IronPython, but I'd suspect it's more like Jython than like CPython in this regard. So, in most Python implementations, there's no way to get whatever showed up in that repr, and no use if you did.


But what if you only care about CPython? That's a pretty common case, after all.

Well, first, you may notice that id is an integer;* if you want that 0x2aba1c0cf890 string instead of the number 46978822895760, you're going to have to format it yourself. Under the covers, I believe object.__repr__ is ultimately using printf's %p format, which you don't have from Python… but you can always do this:

format(id(spam), '#010x' if sys.maxsize.bit_length() <= 32 else '#18x')

* In 3.x, it's an int. In 2.x, it's an int if that's big enough to hold a pointer—which is may not be because of signed number issues on some platforms—and a long otherwise.

Is there anything you can do with these pointers besides print them out? Sure (again, assuming you only care about CPython).

All of the C API functions take a pointer to a PyObject or a related type. For those related types, you can just call PyFoo_Check to make sure it really is a Foo object, then cast with (PyFoo *)p. So, if you're writing a C extension, the id is exactly what you need.

What if you're writing pure Python code? You can call the exact same functions with pythonapi from ctypes.


Finally, a few of the other answers have brought up ctypes.addressof. That isn't relevant here. This only works for ctypes objects like c_int32 (and maybe a few memory-buffer-like objects, like those provided by numpy). And, even there, it isn't giving you the address of the c_int32 value, it's giving you the address of the C-level int32 that the c_int32 wraps up.

That being said, more often than not, if you really think you need the address of something, you didn't want a native Python object in the first place, you wanted a ctypes object.

  • well this is the only way to store mutable objects in maps/sets when identity is important... – Enerccio Aug 10 '18 at 16:08
  • @Enerccio The other uses of id—including using them to hold mutable values in a seen set or a cache dict—don’t depend on any way on the id being a pointer, or related in any way to the repr. Which is exactly why such code works in all Python implementations, instead of only working in CPython. – abarnert Aug 10 '18 at 17:46
  • yeah, I used id for it, but I mean still even in java you can get address of object, seems strange there is no way in (C)Python since that one has actually stable gc that won't move objects thus address stays the same – Enerccio Aug 10 '18 at 19:41
  • @Enerccio But you don't want to use the address of an object for a cacheable value—you want to use the id fo an object, whether it's an address or not. For example, in PyPy, id is still just as useful as a key in CPython, even though it's usually just an index into some hidden table in the implementation, but a pointer would be useless, because (like Java) the object can be moved in memory. – abarnert Aug 10 '18 at 21:00
  • @Enerccio Anyway, there is a way to get a pointer in CPython. As explained in the answer, CPython explicitly documents, as an implementation-specific detail, that the id of an object is the pointer to the object's location in memory. So, if you have any use for the pointer value (which you almost never do, as also explained in the answer) in CPython-specific code, there is a way to get it that's documented and guaranteed to work. – abarnert Aug 10 '18 at 21:03
13

Just in response to Torsten, I wasn't able to call addressof() on a regular python object. Furthermore, id(a) != addressof(a). This is in CPython, don't know about anything else.

>>> from ctypes import c_int, addressof
>>> a = 69
>>> addressof(a)
Traceback (most recent call last):
  File "<stdin>", line 1, in <module>
TypeError: invalid type
>>> b = c_int(69)
>>> addressof(b)
4300673472
>>> id(b)
4300673392
  • That's a good pick! Did you find out anymore on this? – edam Jan 20 '15 at 14:59
4

With ctypes, you can achieve the same thing with

>>> import ctypes
>>> a = (1,2,3)
>>> ctypes.addressof(a)
3077760748L

Documentation:

addressof(C instance) -> integer
Return the address of the C instance internal buffer

Note that in CPython, currently id(a) == ctypes.addressof(a), but ctypes.addressof should return the real address for each Python implementation, if

  • ctypes is supported
  • memory pointers are a valid notion.

Edit: added information about interpreter-independence of ctypes

  • 9
    >>> import ctypes >>> a = (1,2,3) >>> ctypes.addressof(a) Traceback (most recent call last): File "<input>", line 1, in <module> TypeError: invalid type >>> id(a) 4493268872 >>> – user246672 Aug 28 '11 at 12:28
  • 3
    I concur with Barry: the above code results in TypeError: invalid type when I try it with Python 3.4. – Brandon Rhodes Jun 24 '14 at 19:22
2

You can get something suitable for that purpose with:

id(self)
0

While it's true that id(object) gets the object's address in the default CPython implementation, this is generally useless... you can't do anything with the address from pure Python code.

The only time you would actually be able to use the address is from a C extension library... in which case it is trivial to get the object's address since Python objects are always passed around as C pointers.

  • 1
    Unless you use the built-in ctypes toolkit in the Standard Library. In which case you can do all sorts of things with the address :) – Brandon Rhodes Jun 24 '14 at 19:22

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