48

Suppose o is a Python object, and I want all of the fields of o, without any methods or __stuff__. How can this be done?

I've tried things like:

[f for f in dir(o) if not callable(f)]

[f for f in dir(o) if not inspect.ismethod(f)]

but these return the same as dir(o), presumably because dir gives a list of strings. Also, things like __class__ would be returned here, even if I get this to work.

62
0

You can get it via the __dict__ attribute, or the built-in vars function, which is just a shortcut:

>>> class A(object):
...     foobar = 42
...     def __init__(self):
...         self.foo = 'baz'
...         self.bar = 3
...     def method(self, arg):
...         return True
...
>>> a = A()
>>> a.__dict__
{'foo': 'baz', 'bar': 3}
>>> vars(a)
{'foo': 'baz', 'bar': 3}

There's only attributes of the object. Methods and class attributes aren't present.

| improve this answer | |
  • 2
    This is per-instance. – 2rs2ts Feb 21 '14 at 21:04
  • 4
    This is probably the best approximation you're going to get, but it should be noted that this considers callable instance attributes (which are sometimes used and are effectively like methods) as non-methods and considers class attributes with no corresponding instance attribute not a field (even though it acts like one for most purposes). It also ignores properties and fails on classes with __slots__, which may or may not matter. – user395760 Feb 21 '14 at 21:06
11
0

You could use the built-in method vars()

| improve this answer | |
  • I'm in favor of calling other methods instead of mangled magic methods and properties in Python. I think this is much more Pythonic way. So, take my +1. – Erdin Eray Apr 28 '19 at 1:01
9
0

The basic answer is "you can't do so reliably". See this question.

You can get an approximation with [attr for attr in dir(obj) if attr[:2] + attr[-2:] != '____' and not callable(getattr(obj,attr))].

However, you shouldn't rely on this, because:

Because dir() is supplied primarily as a convenience for use at an interactive prompt, it tries to supply an interesting set of names more than it tries to supply a rigorously or consistently defined set of names, and its detailed behavior may change across releases.

In other words, there is no canonical way to get a list of "all of an object's attributes" (or "all of an object's methods").

If you're doing some kind of dynamic programming that requires you to iterate over unknwon fields of an object, the only reliable way to do it is to implement your own way of keeping track of those fields. For instance, you could use an attribute naming convention, or a special "fields" object, or, most simply, a dictionary.

| improve this answer | |
  • I'm not sure, but if you can create your own members surrounded by double underscores, this'll break. – 2rs2ts Feb 21 '14 at 21:07
  • 3
    @2rs2ts: Yes, that is true. There is no way around that. There's no way to programatically tell if a double-underscore name is "magic" or not; you have to read the documentation. – BrenBarn Feb 21 '14 at 21:08
  • 3
    These are naming conventions, you shouldn't create your own members by surrounding them with double underscores. – Benjamin Toueg Feb 21 '14 at 21:11
  • @Benjamin: Indeed. At the end of the Descriptive: Naming Styles section of PEP 8 - Style Guide for Python Code, regarding names with both double-underscore-prefix & suffixes, it says "Never invent such names; only use them as documented." – martineau Feb 18 '18 at 16:25
6
0

You can iterate through an instance's __dict__ attribute and look for non-method things. For example:

CALLABLES = types.FunctionType, types.MethodType
for key, value in A().__dict__.items():
    if not isinstance(value, CALLABLES):
        print(key)

Output:

foo
bar

You can do it in a single statement with a list comprehension:

print([key for key, value in A.__dict__.items() if not isinstance(value, CALLABLES)])

Which would print ['foo', 'bar'].

| improve this answer | |
  • There's no need to filter out methods, since they're in the class __dict__, not the instance __dict__s. – Blckknght Feb 21 '14 at 21:58
  • @Blckknght: I put the test in because a class is an object, too. However, I realized after your comment the need to check for than one type of callable, and have modified my answer. Thanks. If one can assume that the object is a new-style class instance, then what you said is true and the for loops could be simplified. – martineau Feb 21 '14 at 22:25
4
0

This should work for callables:

[f for f in dir(o) if not callable(getattr(o,f))]

You could get rid of the rest with:

[f for f in dir(o) if not callable(getattr(o,f)) and not f.startswith('__')]
| improve this answer | |
  • Almost. I got ['__dict__', '__doc__', '__module__', '__weakref__', 'a', 'b'] with a dummy class with a and b as class members. – 2rs2ts Feb 21 '14 at 21:05
  • Close, but still includes __dict__, __doc__, etc. – Eric Wilson Feb 21 '14 at 21:06

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