590

In Python, without using the traceback module, is there a way to determine a function's name from within that function?

Say I have a module foo with a function bar. When executing foo.bar(), is there a way for bar to know bar's name? Or better yet, foo.bar's name?

#foo.py  
def bar():
    print "my name is", __myname__ # <== how do I calculate this at runtime?
3
  • 13
    I do not understand why the accepted answer is not that from Andreas Young (or any other that shows how to do it). Instead, the accepted answer is "you can't do that", which seems wrong; the only requirement by the OP was not using traceback. Not even the times of answers and comments seem to back it. Dec 25 '16 at 8:55
  • 1
    Hey @Rob, could you please elaborate on why you've picked the accepted answer as accepted? It seems like it's not currently relevant in this context, as other answers did work (for me) while the accepted one said this is impossible Apr 9 at 18:00
  • For the simplest unaccepted answer for Python 3.x + see Vagiz Duseev's answer below Answer.
    – DevPlayer
    May 23 at 13:27

23 Answers 23

483
import inspect

def foo():
   print(inspect.stack()[0][3])
   print(inspect.stack()[1][3])  # will give the caller of foos name, if something called foo
6
  • 77
    You could also use: print(inspect.currentframe().f_code.co_name) or to get the caller's name: print(inspect.currentframe().f_back.f_code.co_name). I think it should be faster since you don't retrieve a list of all the stack frames as inspect.stack() does.
    – Michael
    Feb 23 '14 at 10:25
  • 8
    inspect.currentframe().f_back.f_code.co_name doesn't work with a decorated method whereas inspect.stack()[0][3] does... Feb 15 '16 at 18:08
  • 6
    Please note: inspect.stack() can incur heavy performance overhead so use sparingly! On my arm box it took 240ms to complete (for some reason)
    – gardarh
    Dec 8 '16 at 12:59
  • Seems to me like something present in the Python recursion machinery might be employed to do this more efficiently Jul 26 '17 at 8:18
  • 1
    @Michael please post your comment as an answer . May 17 '20 at 19:15
251

Python doesn't have a feature to access the function or its name within the function itself. It has been proposed but rejected. If you don't want to play with the stack yourself, you should either use "bar" or bar.__name__ depending on context.

The given rejection notice is:

This PEP is rejected. It is not clear how it should be implemented or what the precise semantics should be in edge cases, and there aren't enough important use cases given. response has been lukewarm at best.

7
  • 24
    inspect.currentframe() is one such way.
    – Yuval
    Sep 20 '14 at 10:47
  • 60
    Combining @CamHart's approach with @Yuval's avoids "hidden" and potentially deprecated methods in @RoshOxymoron's answer as well as numerical indexing into the stack for @neuro/@AndreasJung's answer: print(inspect.currentframe().f_code.co_name)
    – hobs
    Mar 17 '15 at 21:43
  • 3
    is it possible to summarize why its been rejected? Jun 15 '17 at 18:27
  • 7
    why is this the chosen answer? Question isn't about accessing the current function or the module itself, just the name. And the stacktrace/debugging features already have this information.
    – nurettin
    Apr 3 '19 at 11:23
  • As of today, tested within my CPython 3.7.2 bar.__name__ does work. For the simplest unaccepted answer for Python 3.x + see Vagiz Duseev's answer below Answer.
    – DevPlayer
    May 23 at 13:29
209

There are few ways to get the same result:

import sys
import inspect

def what_is_my_name():
    print(inspect.stack()[0][0].f_code.co_name)
    print(inspect.stack()[0][3])
    print(inspect.currentframe().f_code.co_name)
    print(sys._getframe().f_code.co_name)

Note that the inspect.stack calls are thousands of times slower than the alternatives:

$ python -m timeit -s 'import inspect, sys' 'inspect.stack()[0][0].f_code.co_name'
1000 loops, best of 3: 499 usec per loop
$ python -m timeit -s 'import inspect, sys' 'inspect.stack()[0][3]'
1000 loops, best of 3: 497 usec per loop
$ python -m timeit -s 'import inspect, sys' 'inspect.currentframe().f_code.co_name'
10000000 loops, best of 3: 0.1 usec per loop
$ python -m timeit -s 'import inspect, sys' 'sys._getframe().f_code.co_name'
10000000 loops, best of 3: 0.135 usec per loop

Update 08/2021 (original post was written for Python2.7)

Python 3.9.1 (default, Dec 11 2020, 14:32:07)
[GCC 7.3.0] :: Anaconda, Inc. on linux

python -m timeit -s 'import inspect, sys' 'inspect.stack()[0][0].f_code.co_name'
500 loops, best of 5: 390 usec per loop
python -m timeit -s 'import inspect, sys' 'inspect.stack()[0][3]'
500 loops, best of 5: 398 usec per loop
python -m timeit -s 'import inspect, sys' 'inspect.currentframe().f_code.co_name'
2000000 loops, best of 5: 176 nsec per loop
python -m timeit -s 'import inspect, sys' 'sys._getframe().f_code.co_name'
5000000 loops, best of 5: 62.8 nsec per loop
10
  • 11
    inspect.currentframe() seems a good tradeoff between execution time and use of private members Aug 27 '16 at 9:44
  • 1
    @mbdevpl My numbers are 1.25ms, 1.24ms, 0.5us, 0.16us normal (nonpythonic :) ) seconds accordingly (win7x64, python3.5.1) Jan 5 '17 at 20:55
  • Just so no one thinks@mbdevpl is crazy :) - I submitted an edit for the output of the 3rd run, since it didn't make any sense. No idea if the result should've been 0.100 usec or 0.199 usec but either way - hundreds of times faster than options 1 and 2, comparable with option 4 (though Antony Hatchkins found option 3 three times faster than option 4).
    – dwanderson
    Jan 13 '17 at 16:03
  • 3
    I use sys._getframe().f_code.co_name over inspect.currentframe().f_code.co_name simply because I have already imported the sys module. Is that a reasonable decision? (considering the speeds appear quite similar)
    – PatrickT
    Jun 6 '20 at 19:05
  • 3
    This is fullblow answer and should be the accepted one in my view
    – Nam G VU
    Aug 27 '20 at 4:29
53

You can get the name that it was defined with using the approach that @Andreas Jung shows, but that may not be the name that the function was called with:

import inspect

def Foo():
   print inspect.stack()[0][3]

Foo2 = Foo

>>> Foo()
Foo

>>> Foo2()
Foo

Whether that distinction is important to you or not I can't say.

4
  • 4
    Same situation as with .func_name. Worth remembering that class names and function names in Python is one thing and variables referring to them is another.
    – Kos
    Dec 13 '12 at 11:48
  • Sometimes you may want Foo2() to print Foo. For example: Foo2 = function_dict['Foo']; Foo2(). In this case, Foo2 is a function pointer for perhaps a command line parser.
    – Harvey
    Jun 1 '13 at 20:02
  • What kind of speed implication does this have? Feb 20 '14 at 20:29
  • 3
    Speed implication with regard to what? Is there a situation where you'd need to have this information in a hard realtime situation or something?
    – bgporter
    Feb 23 '14 at 15:27
53
functionNameAsString = sys._getframe().f_code.co_name

I wanted a very similar thing because I wanted to put the function name in a log string that went in a number of places in my code. Probably not the best way to do that, but here's a way to get the name of the current function.

6
  • 2
    Totally working, just using sys, don't need to load more modules, but not soo easy to remember it :V
    – m3nda
    Jun 13 '16 at 20:29
  • @erm3nda See my answer. Aug 26 '18 at 20:18
  • 1
    @nerdfever.com My problem is not about to create a function, is to not remember what to put inside that function. Is not easy to remember so i will need always to see some note to build that again. I'll try to keep in mind f for frame and co for code. I don't use that so much so the better if just i save that in some snippet :-)
    – m3nda
    Sep 6 '18 at 17:33
  • 1
    @m3nda My answer was "deleted" and is visible only to me (I have no idea why!) It's this: import sys def thisFunctionName(): """Returns a string with the name of the function it's called from""" return sys._getframe(1).f_code.co_name Apr 14 at 23:09
  • 1
    @Greenonline My answer was an elaboration of Ron Davis's answer, solving m3nda's problem, that was "deleted by moderator" and is visible only to me (I have no idea why! Maybe "plagiarism", but I credited Ron Davis's answer!) It's this: import sys def thisFunctionName(): """Returns a string with the name of the function it's called from""" return sys._getframe(1).f_code.co_name Apr 14 at 23:23
31

I keep this handy utility nearby:

import inspect
myself = lambda: inspect.stack()[1][3]

Usage:

myself()
3
  • 1
    How would this be done with the alternative proposed here? "myself = lambda: sys._getframe().f_code.co_name" doesn't work (the output is "<lambda>"; I think because the result is determined at definition time, not later at call time. Hmm.
    – NYCeyes
    May 22 '17 at 22:42
  • 2
    @prismalytics.io: If you call myself (myself()) and don't just use its value (myself), you'll get what you're looking for.
    – ijw
    Dec 27 '17 at 19:56
  • NYCeyes was right, the name is resolved inside the lambda and thus the result is <lambda>. The sys._getframe() and inspect.currentframe() methods MUST be executed directly inside the function you want to get the name of. The inspect.stack() method works because you can specify the index 1, doing inspect.stack()[0][3] also yields <lambda>.
    – kikones34
    Nov 22 '19 at 13:16
28

I guess inspect is the best way to do this. For example:

import inspect
def bar():
    print("My name is", inspect.stack()[0][3])
1
  • 5
    Instead if using inspect.stack()[0][3], use inspect.stack()[0].function which should be more robust even when semantics in stack traces change.
    – Tom Pohl
    Oct 7 '20 at 6:16
23

I found a wrapper that will write the function name

from functools import wraps

def tmp_wrap(func):
    @wraps(func)
    def tmp(*args, **kwargs):
        print func.__name__
        return func(*args, **kwargs)
    return tmp

@tmp_wrap
def my_funky_name():
    print "STUB"

my_funky_name()

This will print

my_funky_name

STUB

2
  • 1
    As a decorator noob, I wonder if there is a way to access func.__name__ inside the context of my_funky_name (so I can retrieve its value and use it inside my_funky_name)
    – cowbert
    Jun 29 '17 at 21:57
  • The way to do that inside the my_funky_name function is my_funky_name.__name__. You could pass the func.__name__ into the function as a new parameter. func(*args, **kwargs, my_name=func.__name__). To get your decorators name from inside your function, I think that would require using inspect. But getting the name of the function controlling my function within my running function ... well that just sounds like the start of a beautiful meme :)
    – cad106uk
    Jul 2 '17 at 13:00
19

This is actually derived from the other answers to the question.

Here's my take:

import sys

# for current func name, specify 0 or no argument.
# for name of caller of current func, specify 1.
# for name of caller of caller of current func, specify 2. etc.
currentFuncName = lambda n=0: sys._getframe(n + 1).f_code.co_name


def testFunction():
    print "You are in function:", currentFuncName()
    print "This function's caller was:", currentFuncName(1)    


def invokeTest():
    testFunction()


invokeTest()

# end of file

The likely advantage of this version over using inspect.stack() is that it should be thousands of times faster [see Alex Melihoff's post and timings regarding using sys._getframe() versus using inspect.stack() ].

17

print(inspect.stack()[0].function) seems to work too (Python 3.5).

0
16

Here's a future-proof approach.

Combining @CamHart's and @Yuval's suggestions with @RoshOxymoron's accepted answer has the benefit of avoiding:

  • _hidden and potentially deprecated methods
  • indexing into the stack (which could be reordered in future pythons)

So I think this plays nice with future python versions (tested on 2.7.3 and 3.3.2):

from __future__ import print_function
import inspect

def bar():
    print("my name is '{}'".format(inspect.currentframe().f_code.co_name))

Update: tested on 3.7.10, 3.8.10, and 3.9.5

0
14
import inspect

def whoami():
    return inspect.stack()[1][3]

def whosdaddy():
    return inspect.stack()[2][3]

def foo():
    print "hello, I'm %s, daddy is %s" % (whoami(), whosdaddy())
    bar()

def bar():
    print "hello, I'm %s, daddy is %s" % (whoami(), whosdaddy())

foo()
bar()

In IDE the code outputs

hello, I'm foo, daddy is

hello, I'm bar, daddy is foo

hello, I'm bar, daddy is

14

I am not sure why people make it complicated:

import sys 
print("%s/%s" %(sys._getframe().f_code.co_filename, sys._getframe().f_code.co_name))
2
13
import sys

def func_name():
    """
    :return: name of caller
    """
    return sys._getframe(1).f_code.co_name

class A(object):
    def __init__(self):
        pass
    def test_class_func_name(self):
        print(func_name())

def test_func_name():
    print(func_name())

Test:

a = A()
a.test_class_func_name()
test_func_name()

Output:

test_class_func_name
test_func_name
10

You can use a decorator:

def my_function(name=None):
    return name

def get_function_name(function):
    return function(name=function.__name__)

>>> get_function_name(my_function)
'my_function'
5
  • 1
    How is that answering the poster's question? Can you expand this to include an example how the function name is known from within the function?
    – parvus
    Mar 18 '19 at 12:37
  • @parvus: my answer as is is an example that demonstrates an answer to OP's question Mar 22 '19 at 4:01
  • Ok, my_function is the random user's function of the OP. Blame this to my lack of understanding of decorators. Where the @? How will this work for functions whose arguments you don't want to adapt? How I understand your solution: when I want to know the function name, I have to append it with @get_function_name, and add the name argument, hoping it is not already there for another purpose. I'm likely missing something, sorry for that.
    – parvus
    Mar 29 '19 at 6:41
  • Without starting my own python course inside a comment: 1. functions are objects; 2. you could attach a name attribute to the function, print/log the name, or do any number of things with the "name" inside the decorator; 3. decorators can be attached multiple ways (e.g. @ or in my example); 4. decorators can use @wraps and/or be classes themselves; 5. I could go on, but, happy programming! Mar 30 '19 at 15:57
  • 1
    This just looks like a convoluted way to get to the __name__ attribute of a function. The usage requires knowing the thing you are trying to get, which doesn't seem very useful to me in simple cases where functions aren't defined on the fly.
    – Avi
    May 14 '19 at 17:55
7

Use __name__ attribute:

# foo.py
def bar():
    print(f"my name is {bar.__name__}")

You can easily access function's name from within the function using __name__ attribute.

>>> def bar():
...     print(f"my name is {bar.__name__}")
...
>>> bar()
my name is bar

I've come across this question myself several times, looking for the ways to do it. Correct answer is contained in the Python's documentation (see Callable types section).

Every function has a __name__ parameter that returns its name and even __qualname__ parameter that returns its full name, including which class it belongs to (see Qualified name).

2
  • 4
    What would be the point of this if the function name "bar" would have to be known already to perform this?
    – PyNoob
    Jul 22 at 13:33
  • @PyNoob: After renaming bar to foo, print('bar') happily prints (incorrectly) "bar", whereas print(bar.__name__) fails.
    – Gerhard
    Oct 22 at 21:47
6

I suggest not to rely on stack elements. If someone use your code within different contexts (python interpreter for instance) your stack will change and break your index ([0][3]).

I suggest you something like that:

class MyClass:

    def __init__(self):
        self.function_name = None

    def _Handler(self, **kwargs):
        print('Calling function {} with parameters {}'.format(self.function_name, kwargs))
        self.function_name = None

    def __getattr__(self, attr):
        self.function_name = attr
        return self._Handler


mc = MyClass()
mc.test(FirstParam='my', SecondParam='test')
mc.foobar(OtherParam='foobar')
6

This is pretty easy to accomplish with a decorator.

>>> from functools import wraps

>>> def named(func):
...     @wraps(func)
...     def _(*args, **kwargs):
...         return func(func.__name__, *args, **kwargs)
...     return _
... 

>>> @named
... def my_func(name, something_else):
...     return name, something_else
... 

>>> my_func('hello, world')
('my_func', 'hello, world')
5

I do my own approach used for calling super with safety inside multiple inheritance scenario (I put all the code)

def safe_super(_class, _inst):
    """safe super call"""
    try:
        return getattr(super(_class, _inst), _inst.__fname__)
    except:
        return (lambda *x,**kx: None)


def with_name(function):
    def wrap(self, *args, **kwargs):
        self.__fname__ = function.__name__
        return function(self, *args, **kwargs)
return wrap

sample usage:

class A(object):

    def __init__():
        super(A, self).__init__()

    @with_name
    def test(self):
        print 'called from A\n'
        safe_super(A, self)()

class B(object):

    def __init__():
        super(B, self).__init__()

    @with_name
    def test(self):
        print 'called from B\n'
        safe_super(B, self)()

class C(A, B):

    def __init__():
        super(C, self).__init__()

    @with_name
    def test(self):
        print 'called from C\n'
        safe_super(C, self)()

testing it :

a = C()
a.test()

output:

called from C
called from A
called from B

Inside each @with_name decorated method you have access to self.__fname__ as the current function name.

5

I recently tried to use the above answers to access the docstring of a function from the context of that function but as the above questions were only returning the name string it did not work.

Fortunately I found a simple solution. If like me, you want to refer to the function rather than simply get the string representing the name you can apply eval() to the string of the function name.

import sys
def foo():
    """foo docstring"""
    print(eval(sys._getframe().f_code.co_name).__doc__)
1

Sincesys._getframe().f_back.f_code.co_name does not work at all in python 3.9, following could be used from now:

from inspect import currentframe


def testNameFunction() -> str:
    return currentframe().f_back.f_code.co_name


print(f'function name is {testNameFunction()}(...)')

Result:

function name is testNameFunction(...)
3
  • 1
    Except that the question is not about line numbers.
    – MEMark
    Aug 20 at 7:35
  • @MEMark i updated my answer accordently, you should have noticed the textual error, but i have also investigate the issue, and i came to the conclusion, that the call sys._getframe().f_back.f_code.co_name works allthough the IDE PyCharm does not recognize it Cannot find reference '_getframe' in 'sys.pyi | sys.pyi'. That,s why i wrote that answer before. Aug 20 at 10:30
  • @MEMark here is the post, i wrote on this issue : https://stackoverflow.com/q/68772415/5667103 Aug 20 at 10:42
0
str(str(inspect.currentframe())).split(' ')[-1][:-1]
0

I like the idea of using a decorator but I'd prefer to avoid touching the function arguments. Hence, I'm providing yet another alternative:

import functools

def withname(f):
    @functools.wraps(f)
    def wrapper(*args, **kwargs):
        global __name
        __saved_name = globals().get("__name")
        __name = f.__name__
        ret = f(*args, **kwargs)
        __name = __saved_name
        return ret
    return wrapper

@withname
def f():
    print(f"in f: __name=={__name}")
    g()
    print(f"back in f: __name=={__name}")

@withname
def g():
    print(f"in g: __name=={__name}")

We need to save and restore __name when calling the function as consequence of it being a global variable. Calling f() above produces:

in f: __name==f
in g: __name==g
back in f: __name==f

Unfortunately, there is no alternative to the global variable if we don't change the function arguments. Referencing a variable, that is not created in the context of the function, will generate code that would look for a global variable:

>>> def f(): print(__function__)
>>> from dis import dis
>>> dis(f)
  1           0 LOAD_GLOBAL              0 (print)
              2 LOAD_GLOBAL              1 (__function__)
              4 CALL_FUNCTION            1
              6 POP_TOP
              8 LOAD_CONST               0 (None)
             10 RETURN_VALUE

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