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I have a variable, x, and I want to know whether it is pointing to a function or not.

I had hoped I could do something like:

>>> isinstance(x, function)

But that gives me:

Traceback (most recent call last):
  File "<stdin>", line 1, in ?
NameError: name 'function' is not defined

The reason I picked that is because

>>> type(x)
<type 'function'>
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3  
I'm depressed by the number of answers working around the problem by looking for some call attribute or callable function... A clean way is about type(a) == types.functionType as suggested by @ryan –  AsTeR Sep 20 '13 at 12:09
    
@AsTeR The proper way to check properties of duck-typed objects is to ask them if they quack, not to see if they fit in a duck-sized container. The "compare it directly" approach will give the wrong answer for many functions, like builtins. –  John Feminella Jun 2 at 16:58
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17 Answers

up vote 215 down vote accepted

Just check if the object has a __call__ attribute. Don't use callable(), as this is being deprecated. You can check this with:

hasattr(obj, '__call__')

Update: callable() is now un-deprecated as of Python 3.2, so you can use it again. You can read the discussion here: http://bugs.python.org/issue10518

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27  
This also won't tell you if it's a function--just if it can be called. –  Chris B. Mar 9 '09 at 4:02
85  
Arguably, you shouldn't care about that distinction.. –  John Fouhy Mar 9 '09 at 4:54
7  
Depends on the application whether the distinction matters or not; I suspect you're right that it doesn't for the original question, but that's far from certain. –  Chris B. Mar 9 '09 at 5:33
18  
the "duck typing" concept makes this the better answer, e.g. "what does it matter if it's a function as long as it behaves like one?" –  jcomeau_ictx Jan 2 '12 at 4:02
9  
Note that callable is not deprecated any more in 3.2, it's only deprecated in 3.0 and 3.1: docs.python.org/3/library/functions.html#callable –  Emile Jul 30 '13 at 13:10
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Builtin types that don't have constructors (e.g. functions, generators, methods) are in the types module. You can use types.FunctionType in an isinstance call.

In [1]: import types
In [2]: types.FunctionType
Out[2]: <type 'function'>
In [3]: def f(): pass
   ...:
In [4]: isinstance(f, types.FunctionType)
Out[4]: True
In [5]: isinstance(lambda x : None, types.FunctionType)
Out[5]: True
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3  
+1 answering the question. However, trying to guess whether an object is a function — or even if it is any callable object — is usually a mistake. Without further information from the OP it's difficult to dismiss it out of hand of course, but still... –  bobince Mar 9 '09 at 4:49
20  
It will actually return False for builtin functions, like 'open' for eg. So to be specific you will have to use isinstance(f, (types.FunctionType, types.BuiltinFunctionType)). And of course if you strictly want just functions, not callables nor methods. –  Lukasz Korzybski Apr 20 '11 at 14:06
1  
@ŁukaszKorzybski and to be more precdise... you should also check for functools.partial: isinstance(f, (types.FunctionType, types.BuiltinFunctionType, functools.partial)) or checking f.func in such a case. –  estani Jan 17 '13 at 12:04
    
@bobince, how about this usecase: I want to write a decorator @foo that I can use both as @foo and as @foo(some_parameter). It then needs to check what it is being called with, e.g. the function to decorate (first case) or the parameter (the second case, in which it needs to return a further decorator). –  Turion Dec 6 '13 at 22:24
    
Anyone else think this is the best answer, since it directly address the OP question? I mean, I'm all for duck typing, but for PyCharm to give me AutoCompleteness, I need this specific check... Oh darn, it still doesn't work. –  Mazyod Mar 5 at 23:07
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Since Python 2.1 you can import isfunction from the inspect module.

>>> from inspect import isfunction
>>> def f(): pass
>>> isfunction(f)
True
>>> isfunction(lambda x: x)
True
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Nice, but it seems to return False for builtin functions like open and hasattr. –  Zecc May 4 '13 at 19:43
4  
@Zecc isbuiltin is for that. –  Guandalino May 5 '13 at 7:16
3  
See the inspect.isfunction docstring: "Return true if the object is a user-defined function." –  Mark Mikofski Aug 6 '13 at 20:27
    
Note that 'isfunction' does not recognize functool.partial functions. –  ishmael Dec 5 '13 at 19:16
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callable(x) will return true if the object passed can be called in Python, but the function does not exist in Python 3.0, and properly speaking will not distinguish between:

class A(object):
    def __call__(self):
        return 'Foo'

def B():
    return 'Bar'

a = A()
b = B

print type(a), callable(a)
print type(b), callable(b)

You'll get <class 'A'> True and <type function> True as output.

isinstance works perfectly well to determine if something is a function (try isinstance(b, types.FunctionType)); if you're really interested in knowing if something can be called, you can either use hasattr(b, '__call__') or just try it.

test_as_func = True
try:
    b()
except TypeError:
    test_as_func = False
except:
    pass

This, of course, won't tell you whether it's callable but throws a TypeError when it executes, or isn't callable in the first place. That may not matter to you.

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3  
Calling it is a bad idea. What if it has side-effects, or actually does something but takes a really long time? –  asmeurer May 15 '13 at 22:01
    
@asmeurer - Why else would you need to know if it's a function if you're not calling it? –  detly Jun 6 '13 at 6:22
1  
@detly: for debugging I regularly want to print all variables in an object, the methods are usually not useful to me so I wouldn't want to execute them. In the end I just list every non-callable property with the corresponding values :) –  Wolph Jun 6 '13 at 7:39
    
Just because you're not calling it doesn't mean it's not being called. Maybe you're doing dispatch. –  asmeurer Jun 6 '13 at 13:52
    
There's a big problem with using exceptions to know whether it was callable or not; what if it is callable, but calling it raises an exception you're looking for? You'll both silently ignore an error and misdiagnose whether it was callable. When you're using EAFP you really want to avoid putting too much in the try, but there's no way to do that for this use case. –  Ben Sep 9 '13 at 21:03
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The following should return a boolean:

callable(x)
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1  
That solves his problem, but he's still created a mystery: if x is of class 'function' in module builtin, and help(x.__class__) describes "class function", why is "function" apparently "not defined"? –  Ken Mar 9 '09 at 3:52
1  
"function" isn't a keyword or a built-in type. The type of functions is defined in the "types" module, as "types.FunctionType" –  Chris B. Mar 9 '09 at 4:03
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Python's 2to3 tool (http://docs.python.org/dev/library/2to3.html) suggests:

import collections
isinstance(obj, collections.Callable)

It seems this was chosen instead of the hasattr(x, '__call__') method because of http://bugs.python.org/issue7006.

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If you want to detect everything that syntactically looks like a function: a function, method, built-in fun/meth, lambda ... but exclude callable objects (objects with __call__ method defined), then try this one:

import types
isinstance(x, (types.FunctionType, types.BuiltinFunctionType, types.MethodType, types.BuiltinMethodType, types.UnboundMethodType))

I compared this with the code of is*() checks in inspect module and the expression above is much more complete, especially if your goal is filtering out any functions or detecting regular properties of an object.

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The accepted answer was at the time it was offered thought to be correct; As it turns out, there is no substitute for callable(), which is back in python 3.2: Specifically, callable() checks the tp_call field of the object being tested. There is no plain python equivalent. Most of the suggested tests are correct most of the time:

>>> class Spam(object):
...     def __call__(self):
...         return 'OK'
>>> can_o_spam = Spam()


>>> can_o_spam()
'OK'
>>> callable(can_o_spam)
True
>>> hasattr(can_o_spam, '__call__')
True
>>> import collections
>>> isinstance(can_o_spam, collections.Callable)
True

We can throw a monkey-wrench into this by removing the __call__ from the class. And just to keep things extra exciting, add a fake __call__ to the instance!

>>> del Spam.__call__
>>> can_o_spam.__call__ = lambda *args: 'OK?'

Notice this really isn't callable:

>>> can_o_spam()
Traceback (most recent call last):
  ...
TypeError: 'Spam' object is not callable

callable() returns the correct result:

>>> callable(can_o_spam)
False

But hasattr is wrong:

>>> hasattr(can_o_spam, '__call__')
True

can_o_spam does have that attribute after all, its just not used when calling the instance.

Even more subtle, isinstance() also gets this wrong:

>>> isinstance(can_o_spam, collections.Callable)
True

Because we used this check earlier and later deleted the method, abc.ABCMeta caches the result. Arguably this is a bug in abc.ABCMeta. That said, there's really no possible way it could produce a more accurate result than the result than by using callable() itself, since the typeobject->tp_call slot method is not accessible in any other way.

Just use callable()

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Try using callable(x).

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A function is just a class with a __call__ method, so you can do

hasattr(obj, '__call__')

For example:

>>> hasattr(x, '__call__')
True

>>> x = 2
>>> hasattr(x, '__call__')
False

That is the "best" way of doing it, but depending on why you need to know if it's callable or note, you could just put it in a try/execpt block:

try:
    x()
except TypeError:
    print "was not callable"

It's arguable if try/except is more Python'y than doing if hasattr(x, '__call__'): x().. I would say hasattr is more accurate, since you wont accidently catch the wrong TypeError, for example:

>>> def x():
...     raise TypeError
... 
>>> hasattr(x, '__call__')
True # Correct
>>> try:
...     x()
... except TypeError:
...     print "x was not callable"
... 
x was not callable # Wrong!
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Use exception handling to protect against unexpected behavior only, never for logic flow--that is definitely not Pythonic. –  gotgenes Mar 9 '09 at 5:49
    
Well, hasattr basically does a getattr in a try/except block (albeit in C). blog.jancewicz.net/2007/10/reflection-hasattr.html –  dbr Mar 9 '09 at 7:22
    
@dbr: But hasattr is more aesthetic. –  Nikhil Chelliah Mar 9 '09 at 20:53
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In Python3 I came up with type (f) == type (lambda x:x) which yields True if f is a function and False if it is not. But I think I prefer isinstance (f, types.FunctionType), which feels less ad hoc. I wanted to do type (f) is function, but that doesn't work.

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Whatever function is a class so you can take the name of the class of instance x and compare:


if(x.__class__.__name__ == 'function'):
     print "it's a function"
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Following previous replies, I came up with this:

from pprint import pprint

def print_callables_of(obj):
    li = []
    for name in dir(obj):
        attr = getattr(obj, name)
        if hasattr(attr, '__call__'):
            li.append(name)
    pprint(li)
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Instead of checking for '__call__' (which is not exclusive to functions), you can check whether a user-defined function has attributes func_name, func_doc, etc. This does not work for methods.

>>> def x(): pass
... 
>>> hasattr(x, 'func_name')
True

Another way of checking is using the isfunction() method from the inspect module.

>>> import inspect
>>> inspect.isfunction(x)
True

To check if an object is a method, use inspect.ismethod()

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If the code will go on to perform the call if the value is callable, just perform the call and catch TypeError.

def myfunc(x):
  try:
    x()
  except TypeError:
    raise Exception("Not callable")
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The solutions using hasattr(obj, '__call__') and callable(.) mentioned in some of the answers have a main drawback: both also return True for classes and instances of classes with a __call__() method. Eg.

>>> import collections
>>> Test = collections.namedtuple('Test', [])
>>> callable(Test)
True
>>> hasattr(Test, '__call__')
True

One proper way of checking if an object is a user-defined function (and nothing but a that) is to use isfunction(.):

>>> import inspect
>>> inspect.isfunction(Test)
False
>>> def t(): pass
>>> inspect.isfunction(t)
True

If you need to check for other types, have a look at inspect — Inspect live objects.

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Here's a couple of other ways:

def isFunction1(f) :
    return type(f) == type(lambda x: x);

def isFunction2(f) :
    return 'function' in str(type(f));

Here's how I came up with the second:

>>> type(lambda x: x);
<type 'function'>
>>> str(type(lambda x: x));
"<type 'function'>"
# Look Maa, function! ... I ACTUALLY told my mom about this!
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