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Possible Duplicate:
Getting method parameter names in python

Is there an easy way to be inside a python function and get a list of the parameter names?

For example:

def func(a,b,c):
    print magic_that_does_what_I_want()

>>> func()
['a','b','c']

Thanks

marked as duplicate by tripleee, sloth, Martijn Pieters, Ria, Andro Selva Sep 25 '12 at 7:43

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

150

If you also want the values you can use the inspect module

import inspect

def func(a, b, c):
    frame = inspect.currentframe()
    args, _, _, values = inspect.getargvalues(frame)
    print 'function name "%s"' % inspect.getframeinfo(frame)[2]
    for i in args:
        print "    %s = %s" % (i, values[i])
    return [(i, values[i]) for i in args]

>>> func(1, 2, 3)
function name "func"
    a = 1
    b = 2
    c = 3
[('a', 1), ('b', 2), ('c', 3)]
  • 11
    Kelly Yancey's blog has a great post explaining this in detail and giving a slightly more refined version, plos a comparison with, e.g. unbeknown's solution. Recommended. – dan mackinlay Feb 4 '11 at 0:53
  • what about def foo(first, second, third, *therest):? – MeadowMuffins Apr 27 '17 at 11:27
243

Well we don't actually need inspect here.

>>> func = lambda x, y: (x, y)
>>> 
>>> func.__code__.co_argcount
2
>>> func.__code__.co_varnames
('x', 'y')
>>>
>>> def func2(x,y=3):
...  print(func2.__code__.co_varnames)
...  pass # Other things
... 
>>> func2(3,3)
('x', 'y')
>>> 
>>> func2.__defaults__
(3,)

For Python 2.5 and older, use func_code instead of __code__, and func_defaults instead of __defaults__.

  • 13
    that'd be func.func_code.co_varnames[:func.func_code.co_argcount] since co_varnames is a tuple of all variables present in the function – squirrel Nov 7 '13 at 0:31
  • 21
    In python3 this would be func.__code__.co_varnames – michaelJohn Jan 10 '14 at 6:44
  • This only works for non 'builtin_function_or_method'. – MagSec Aug 21 '15 at 13:40
  • 1
    @mikeschuldt Updated answer for Python3 – CharlesB Oct 15 '15 at 9:20
  • 3
    I use Python 2.7.8, and __code__ seems to be backported. func_code also still works. – Def_Os Dec 7 '15 at 22:51
173

locals() (docs for Python 2, Python 3) returns a dictionary with local names:

def func(a,b,c):
    print locals().keys()

prints the list of parameters. If you use other local variables those will be included in this list. But you could make a copy at the beginning of your function.

  • 2
    print locals().keys() will return ['arg']. I used print locals.get('arg') – Droogans Nov 7 '12 at 22:32
  • @Droogans please check again. The solution from @unbeknown prints ['a', 'b', 'c'] (possibly not in a-b-c order), as expected. Your solution (a) doesn't work, raises an AttributeError -- maybe you meant print locals().get('arg')? and (b) if that's what you were trying to do, that prints the value of the parameter, not the name of the parameter as the OP requested. – Chris Johnson Sep 23 '13 at 10:00
  • 9
    Thank you! I have a new love for "found {thing} in {place}, took {action}, resulting in {result}".format(**locals()) instead of "found {thing} in {place}, took {action}, resulting in {result}".format(thing=thing, place=place, action=action, result=result) – Bruno Bronosky Mar 26 '15 at 13:13
90
import inspect

def func(a,b,c=5):
    pass

inspect.getargspec(func)  # inspect.signature(func) in Python 3

(['a', 'b', 'c'], None, None, (5,))
  • 1
    That's not inside the function.. – R S Feb 24 '09 at 15:34
  • 11
    you can do it inside the function too – Oli Feb 25 '09 at 7:23
  • 4
    this is actually better, since it shows how to get at parameters of method you didn't write yourself. – Dannid Jun 2 '14 at 16:53
  • 2
    Use inspect.signature in Python 3. – David C Nov 17 '16 at 22:18
  • How can this be done inside the function, though? – Unverified Contact Jun 20 '18 at 8:19

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