168

If you have 2 functions like:

def A
def B

and A calls B, can you get who is calling B inside B, like:

def A () :
    B ()

def B () :
    this.caller.name
4
  • 1
    You have the source available. Why would you need such a thing?
    – S.Lott
    May 23, 2009 at 1:36
  • 37
    Because I am debugging the code in a 3rd party app's python interpreter where there is no real debugger.
    – Joan Venge
    May 25, 2009 at 17:31
  • 1
    Marking this as the duplicate since the other has more views and upvotes on the question. Aug 30, 2019 at 14:35

5 Answers 5

259

You can use the inspect module to get the info you want. Its stack method returns a list of frame records.

  • For Python 2 each frame record is a list. The third element in each record is the caller name. What you want is this:

    >>> import inspect
    >>> def f():
    ...     print inspect.stack()[1][3]
    ...
    >>> def g():
    ...     f()
    ...
    >>> g()
    g
    

  • For Python 3.5+, each frame record is a named tuple so you need to replace

    print inspect.stack()[1][3]
    

    with

    print(inspect.stack()[1].function)
    

    on the above code.

5
  • 15
    on python 3.4 at least this doesn't work, they have changed the order of the tuples. A named tuple is now being used so it's best to use inspect.stack()[1].filename
    – timeyyy
    Mar 23, 2016 at 18:53
  • 6
    Actually, you probably want inspect.currentframe().f_back.f_code.co_name, which is independent of Python version or implementation.
    – 1313e
    May 29, 2019 at 7:45
  • @1313e: also inspect.currentframe() depends from Python implementation, since if you read the source code of inspect.py, they both use sys._getframe() Oct 22, 2019 at 21:08
  • thanks. also discovered that.filename can also help when .function alone is ambiguous. for example: print(inspect.stack()[1].function, inspect.stack()[1].filename)
    – 10mjg
    Feb 22, 2020 at 22:00
  • Can it also print the full path of the function ?
    – alper
    Dec 11, 2020 at 11:16
36

There are two ways, using sys and inspect modules:

  • sys._getframe(1).f_code.co_name
  • inspect.stack()[1][3]

The stack() form is less readable and is implementation dependent since it calls sys._getframe(), see extract from inspect.py:

def stack(context=1):
    """Return a list of records for the stack above the caller's frame."""
    return getouterframes(sys._getframe(1), context)
5
  • 1
    Is this sys._getframe(1).f_code.co_name comparitively faster than inspect.stack()[1][3]? Aug 20, 2018 at 6:04
  • Before rushing to ask, did you try to time it (using timeit for instance)? I think it's faster because it doesn't seem to incurr function calls and two list lookups. But things can get hidden in Python so the best is to timeit it. Let us know what you find.
    – Eric
    Aug 21, 2018 at 7:16
  • I wanted to know why because I knew it is faster. And I don't appreciate "seem" answers. Aug 21, 2018 at 8:50
  • 5
    (getframe) 0.00419473648071 : (inspect) 29.3846197128 Here is the ratio between the two for 4000 calls. Aug 21, 2018 at 8:51
  • Great finding! I presume it's using CPython and Python version 2 or 3 doesn't affect much the result. Thanks for running the benchmark.
    – Eric
    Aug 22, 2018 at 17:28
16

Note (June 2018): today, I would probably use inspect module, see other answers

sys._getframe(1).f_code.co_name like in the example below:

>>> def foo():
...  global x
...  x = sys._getframe(1)
...
>>> def y(): foo()
...
>>> y()
>>> x.f_code.co_name
'y'
>>>  

Important note: as it's obvious from the _getframe method name (hey, it starts with an underscore), it's not an API method one should be thoughtlessly rely on.

1
  • 14
    sys._getframe is "not guaranteed to exist in all implementations of Python" - I think this is important to note.
    – RWS
    Sep 24, 2011 at 20:36
9

This works for me! :D

>>> def a():
...     import sys
...     print sys._getframe(1).f_code.co_name
...
>>> def b():
...     a()
...
...
>>> b()
b
>>>
2
  • This works great but at first it was confusing because you could have just had b() function echo it's own name. The other answers saying to use inspect. failed miserably because it wasn't defined. The authors forgot a dependency statement I guess. Sep 8, 2020 at 22:56
  • At least for me, this was much faster than inspect.stack() by at least a x1000 Feb 15, 2022 at 14:31
5

you can user the logging module and specify the %(funcName)s option in BaseConfig()

import logging
logging.basicConfig(
    filename='/tmp/test.log', 
    level=logging.DEBUG, 
    format='%(asctime)s | %(levelname)s | %(funcName)s |%(message)s',
)

def A():
    logging.info('info')
2
  • 1
    You inadvertently say %(filename)s option. It should be what you have in your code example: %(funcName)s :) Aug 8, 2014 at 12:44
  • 1
    It looks like logging uses the sys._getframe() approach under the hood, as can be seen here and here.
    – djvg
    Dec 15, 2022 at 10:35

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