139

Python: How to get the caller's method name in the called method?

Assume I have 2 methods:

def method1(self):
    ...
    a = A.method2()

def method2(self):
    ...

If I don't want to do any change for method1, how to get the name of the caller (in this example, the name is method1) in method2?

185

inspect.getframeinfo and other related functions in inspect can help:

>>> import inspect
>>> def f1(): f2()
... 
>>> def f2():
...   curframe = inspect.currentframe()
...   calframe = inspect.getouterframes(curframe, 2)
...   print('caller name:', calframe[1][3])
... 
>>> f1()
caller name: f1

this introspection is intended to help debugging and development; it's not advisable to rely on it for production-functionality purposes.

  • 14
    "it's not advisable to rely on it for production-functionality purposes." Why not? – beltsonata Nov 11 '14 at 19:52
  • 17
    @beltsonata it's dependent on the CPython implementation, so code using this will break if you ever try to use PyPy or Jython or other runtimes. that's fine if you're just developing and debugging locally but not really something you want in your production system. – robru Feb 10 '15 at 2:08
  • 2
    Hi guys! After all. Is it still not production ready? – Eugene Krevenets Aug 7 '16 at 14:14
  • @EugeneKrevenets no, plese read Robru's comment. – Marcus Dec 19 '16 at 21:42
  • @EugeneKrevenets Beyond just the python version, i just ran into an issue with it where it makes code that runs under a second run in multiple minutes once introduced. it grossly inefficient – Dmitry Apr 7 '17 at 21:35
75

Shorter version:

import inspect

def f1(): f2()

def f2():
    print 'caller name:', inspect.stack()[1][3]

f1()

(with thanks to @Alex, and Stefaan Lippen)

  • Hello, I am getting below error when i run this: File "/usr/lib/python2.7/inspect.py", line 528, in findsource if not sourcefile and file[0] + file[-1] != '<>': IndexError: string index out of range Can u please provide suggestion. Thanx in advance. – Pooja Aug 13 '14 at 11:07
  • This approach gave me an error: KeyError: 'main' – Praxiteles Oct 1 '16 at 3:30
40

This seems to work just fine:

import sys
print sys._getframe().f_back.f_code.co_name
  • 1
    This seems to be much faster than inspect.stack – kentwait Feb 23 at 7:08
25

I've come up with a slightly longer version that tries to build a full method name including module and class.

https://gist.github.com/2151727 (rev 9cccbf)

# Public Domain, i.e. feel free to copy/paste
# Considered a hack in Python 2

import inspect

def caller_name(skip=2):
    """Get a name of a caller in the format module.class.method

       `skip` specifies how many levels of stack to skip while getting caller
       name. skip=1 means "who calls me", skip=2 "who calls my caller" etc.

       An empty string is returned if skipped levels exceed stack height
    """
    stack = inspect.stack()
    start = 0 + skip
    if len(stack) < start + 1:
      return ''
    parentframe = stack[start][0]    

    name = []
    module = inspect.getmodule(parentframe)
    # `modname` can be None when frame is executed directly in console
    # TODO(techtonik): consider using __main__
    if module:
        name.append(module.__name__)
    # detect classname
    if 'self' in parentframe.f_locals:
        # I don't know any way to detect call from the object method
        # XXX: there seems to be no way to detect static method call - it will
        #      be just a function call
        name.append(parentframe.f_locals['self'].__class__.__name__)
    codename = parentframe.f_code.co_name
    if codename != '<module>':  # top level usually
        name.append( codename ) # function or a method

    ## Avoid circular refs and frame leaks
    #  https://docs.python.org/2.7/library/inspect.html#the-interpreter-stack
    del parentframe, stack

    return ".".join(name)
  • Awesome, this worked well for me in my logging code, where I can be called from a lot of different places. Thanks very much. – little_birdie Jul 24 '15 at 6:50
  • Unless you delete also stack, it still leaks frames due to cirular refs as explained in the inspect-docs – ankostis Dec 10 '16 at 11:56
  • @ankostis do you have some test code to prove that? – anatoly techtonik Dec 15 '16 at 16:17
  • Difficult to show in a comment... Copy-paste in an editor this driving code (typing from memory) and try both versions of your code: ``` import weakref class C: pass def kill(): print('Killed') def leaking(): caller_name() local_var = C() weakref.finalize(local_var, kill) leaking() print("Local_var must have been killed") ``` You should get: ``` Killed Local_var must have been killed ``` and not: ``` Local_var must have been killed Killed ``` – ankostis Dec 15 '16 at 18:42
  • Awesome! That worked when other solutions failed! I am using class methods and lambda-expressions so it's tricky. – osa Sep 19 '17 at 0:04
10

Bit of an amalgamation of the stuff above. But here's my crack at it.

def print_caller_name(stack_size=3):
    def wrapper(fn):
        def inner(*args, **kwargs):
            import inspect
            stack = inspect.stack()

            modules = [(index, inspect.getmodule(stack[index][0]))
                       for index in reversed(range(1, stack_size))]
            module_name_lengths = [len(module.__name__)
                                   for _, module in modules]

            s = '{index:>5} : {module:^%i} : {name}' % (max(module_name_lengths) + 4)
            callers = ['',
                       s.format(index='level', module='module', name='name'),
                       '-' * 50]

            for index, module in modules:
                callers.append(s.format(index=index,
                                        module=module.__name__,
                                        name=stack[index][3]))

            callers.append(s.format(index=0,
                                    module=fn.__module__,
                                    name=fn.__name__))
            callers.append('')
            print('\n'.join(callers))

            fn(*args, **kwargs)
        return inner
    return wrapper

Use:

@print_caller_name(4)
def foo():
    return 'foobar'

def bar():
    return foo()

def baz():
    return bar()

def fizz():
    return baz()

fizz()

output is

level :             module             : name
--------------------------------------------------
    3 :              None              : fizz
    2 :              None              : baz
    1 :              None              : bar
    0 :            __main__            : foo
  • This will raise an IndexError if the requeted stack depth is greater than the actual. Use modules = [(index, inspect.getmodule(stack[index][0])) for index in reversed(range(1, min(stack_size, len(inspect.stack()))))] to get the modules. – jake77 Feb 27 '18 at 13:37
1

I found a way if you're going across classes and want the class the method belongs to AND the method. It takes a bit of extraction work but it makes its point. This works in Python 2.7.13.

import inspect, os

class ClassOne:
    def method1(self):
        classtwoObj.method2()

class ClassTwo:
    def method2(self):
        curframe = inspect.currentframe()
        calframe = inspect.getouterframes(curframe, 4)
        print '\nI was called from', calframe[1][3], \
        'in', calframe[1][4][0][6: -2]

# create objects to access class methods
classoneObj = ClassOne()
classtwoObj = ClassTwo()

# start the program
os.system('cls')
classoneObj.method1()
-1
#!/usr/bin/env python
import inspect

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

def caller1():
    print "inside: ",called()

def caller2():
    print "inside: ",called()

if __name__=='__main__':
    caller1()
    caller2()
shahid@shahid-VirtualBox:~/Documents$ python test_func.py 
inside:  caller1
inside:  caller2
shahid@shahid-VirtualBox:~/Documents$

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