113

Suppose myapp/foo.py contains:

def info(msg):
    caller_name = ????
    print '[%s] %s' % (caller_name, msg)

And myapp/bar.py contains:

import foo
foo.info('Hello') # => [myapp.bar] Hello

I want caller_name to be set to the __name__ attribute of the calling functions' module (which is 'myapp.foo') in this case. How can this be done?

1
  • Assume that some other entry point script invokes bar.py .. and thus caller_name cannot be __main__ Jul 8 '09 at 0:36
140

Check out the inspect module:

inspect.stack() will return the stack information.

Inside a function, inspect.stack()[1] will return your caller's stack. From there, you can get more information about the caller's function name, module, etc.

See the docs for details:

http://docs.python.org/library/inspect.html

Also, Doug Hellmann has a nice writeup of the inspect module in his PyMOTW series:

http://pymotw.com/2/inspect/index.html#module-inspect

EDIT: Here's some code which does what you want, I think:

import inspect 

def info(msg):
    frm = inspect.stack()[1]
    mod = inspect.getmodule(frm[0])
    print '[%s] %s' % (mod.__name__, msg)
8
  • 1
    So how do you get the __name__ attribute of this module using the inspect module? For example, how do I get back myapp.foo (not myapp/foo.py) in my above example? I already tried using the inspect module before posting at SO. Jul 8 '09 at 3:38
  • 6
    Be aware that this will interact strangely with import hooks, won't work on ironpython, and may behave in surprising ways on jython. It's best if you can avoid magic like this.
    – Glyph
    Jul 9 '09 at 11:24
  • 2
    Also note that keeping a reference to a stack frame can prevent Python's GC from working correctly. See warning here: docs.python.org/library/inspect.html#the-interpreter-stack Nov 9 '10 at 21:58
  • 6
    Note that if the caller function is decorated (@...), you need to access inspect.stack()[2] for the real caller. Feb 3 '13 at 8:19
  • Also note that this logic fails to work properly when you compile your python code into an exe using pyinstaller.
    – panofish
    Oct 16 '14 at 14:18
23

Confronted with a similar problem, I have found that sys._current_frames() from the sys module contains interesting information that can help you, without the need to import inspect, at least in specific use cases.

>>> sys._current_frames()
{4052: <frame object at 0x03200C98>}

You can then "move up" using f_back :

>>> f = sys._current_frames().values()[0]
>>> # for python3: f = list(sys._current_frames().values())[0]

>>> print f.f_back.f_globals['__file__']
'/base/data/home/apps/apricot/1.6456165165151/caller.py'

>>> print f.f_back.f_globals['__name__']
'__main__'

For the filename you can also use f.f_back.f_code.co_filename, as suggested by Mark Roddy above. I am not sure of the limits and caveats of this method (multiple threads will most likely be a problem) but I intend to use it in my case.

4
  • 2
    note: the inspect.stack code FAILS after compile to exe using pyinstaller, but using sys._current_frames WORKS FINE... so this is the preferred technique for me.
    – panofish
    Oct 16 '14 at 14:29
  • 12
    I think it's easier to get the previous frame by sys._getframe(1), instead of calling sys._current_frames() (btw which returns a frame mapping for every thread).
    – hooblei
    Oct 6 '15 at 14:32
  • Thank you hooblei, I haven't tested it yet but seems very useful for multi-threaded situations.
    – Louis LC
    Oct 6 '15 at 18:16
  • 1
    I prefer to use inspect.currentframe() instead of sys._current_frames().values()[0].
    – Aran-Fey
    Apr 28 '18 at 14:09
3

I don't recommend do this, but you can accomplish your goal with the following method:

def caller_name():
    frame=inspect.currentframe()
    frame=frame.f_back.f_back
    code=frame.f_code
    return code.co_filename

Then update your existing method as follows:

def info(msg):
    caller = caller_name()
    print '[%s] %s' % (caller, msg)
1

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