396

In a similar way to using varargs in C or C++:

fn(a, b)
fn(a, b, c, d, ...)
4

6 Answers 6

Reset to default
502

Yes. You can use *args as a non-keyword argument. You will then be able to pass any number of arguments.

def manyArgs(*arg):
  print "I was called with", len(arg), "arguments:", arg

>>> manyArgs(1)
I was called with 1 arguments: (1,)
>>> manyArgs(1, 2, 3)
I was called with 3 arguments: (1, 2, 3)

As you can see, Python will unpack the arguments as a single tuple with all the arguments.

For keyword arguments you need to accept those as a separate actual argument, as shown in Skurmedel's answer.

5
  • 10
    Also important...one may find a time when they have to pass an unknown number of arguments to a function. In a case like this call your "manyArgs" by creating a list called "args" and passing that to manyArgs like this "manyArgs(*args)"
    – wilbbe01
    Feb 16, 2011 at 6:02
  • 4
    This is close, but this is unfortunately not general enough: manyArgs(x = 3) fails with TypeError. Skumedel's answer shows the solution to this. The key point is that the general signature of a function is f(*list_args, **keyword_args) (not f(*list_args)).
    – Eric O Lebigot
    Mar 15, 2013 at 3:36
  • 4
    The type of args is tuple. kwargs means keyword args. The type of kwargs is dictionary.
    – RoboAlex
    Feb 4, 2019 at 7:36
  • 1
    Just for arg in args: for iterating through passed args
    – MasterControlProgram
    Sep 17, 2019 at 13:48
  • I have to pass variable number of integer parameters followed by optional string, can I call use xxx(*arg: int, log: str = "") ? The variety in the number of parameters is small 0, 1, 2 or 3, so I can use overloads but it seems like it is not not available in python.
    – uuu777
    Jan 1, 2021 at 15:19
248

Adding to unwinds post:

You can send multiple key-value args too.

def myfunc(**kwargs):
    # kwargs is a dictionary.
    for k,v in kwargs.iteritems():
         print "%s = %s" % (k, v)

myfunc(abc=123, efh=456)
# abc = 123
# efh = 456

And you can mix the two:

def myfunc2(*args, **kwargs):
   for a in args:
       print a
   for k,v in kwargs.iteritems():
       print "%s = %s" % (k, v)

myfunc2(1, 2, 3, banan=123)
# 1
# 2
# 3
# banan = 123

They must be both declared and called in that order, that is the function signature needs to be *args, **kwargs, and called in that order.

5
  • 2
    Not sure how you got myfunc(abc=123, def=456) to work, but in mine (2.7), 'def' can't be passed in this function without getting a SyntaxError. I assume this is because def has meaning in python. Try myfunc(abc=123,fgh=567) instead. (Otherwise, great answer and thanks for it!)
    – Dannid
    Aug 15, 2013 at 20:46
  • @Dannid: No idea either haha... doesn't work on 2.6 or 3.2 either. I'll rename it.
    – Skurmedel
    Aug 16, 2013 at 9:01
  • When you say 'called in that order', do you mean passed in that order? Or something else?
    – Nikhil Prabhu
    Sep 25, 2016 at 16:17
  • 1
    @NikhilPrabhu: Yeah. Keyword arguments must come last when you call it. They always come last if you have non-keyword arguments in the call too.
    – Skurmedel
    Sep 26, 2016 at 17:26
  • 3
    For Python 3: Just exchange print a with print(a), and kwargs.iteritems(): with kwargs.items().
    – MasterControlProgram
    Sep 17, 2019 at 13:51
28

If I may, Skurmedel's code is for python 2; to adapt it to python 3, change iteritems to items and add parenthesis to print. That could prevent beginners like me to bump into: AttributeError: 'dict' object has no attribute 'iteritems' and search elsewhere (e.g. Error “ 'dict' object has no attribute 'iteritems' ” when trying to use NetworkX's write_shp()) why this is happening.

def myfunc(**kwargs):
for k,v in kwargs.items():
   print("%s = %s" % (k, v))

myfunc(abc=123, efh=456)
# abc = 123
# efh = 456

and:

def myfunc2(*args, **kwargs):
   for a in args:
       print(a)
   for k,v in kwargs.items():
       print("%s = %s" % (k, v))

myfunc2(1, 2, 3, banan=123)
# 1
# 2
# 3
# banan = 123
13

Adding to the other excellent posts.

Sometimes you don't want to specify the number of arguments and want to use keys for them (the compiler will complain if one argument passed in a dictionary is not used in the method).

def manyArgs1(args):
  print args.a, args.b #note args.c is not used here

def manyArgs2(args):
  print args.c #note args.b and .c are not used here

class Args: pass

args = Args()
args.a = 1
args.b = 2
args.c = 3

manyArgs1(args) #outputs 1 2
manyArgs2(args) #outputs 3

Then you can do things like

myfuns = [manyArgs1, manyArgs2]
for fun in myfuns:
  fun(args)
0
2 
def f(dic):
    if 'a' in dic:
        print dic['a'],
        pass
    else: print 'None',

    if 'b' in dic:
        print dic['b'],
        pass
    else: print 'None',

    if 'c' in dic:
        print dic['c'],
        pass
    else: print 'None',
    print
    pass
f({})
f({'a':20,
   'c':30})
f({'a':20,
   'c':30,
   'b':'red'})
____________

the above code will output

None None None
20 None 30
20 red 30

This is as good as passing variable arguments by means of a dictionary

1
  • 3
    This is terrible code. Far better would be: f = lambda **dic: ' '.join(dic.get(key, 'None') for key in 'abc')
    – metaperture
    Dec 22, 2016 at 20:35
1

Another way to go about it, besides the nice answers already mentioned, depends upon the fact that you can pass optional named arguments by position. For example, 

def f(x,y=None):
    print(x)
    if y is not None:
        print(y)

Yields

In [11]: f(1,2)
1
2

In [12]: f(1)
1

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