295

I'd like to call a function in python using a dictionary.

Here is some code:

d = dict(param='test')

def f(param):
    print(param)

f(d)

This prints {'param': 'test'} but I'd like it to just print test.

I'd like it to work similarly for more parameters:

d = dict(p1=1, p2=2)
def f2(p1, p2):
    print(p1, p2)
f2(d)

Is this possible?

456

Figured it out for myself in the end. It is simple, I was just missing the ** operator to unpack the dictionary

So my example becomes:

d = dict(p1=1, p2=2)
def f2(p1,p2):
    print p1, p2
f2(**d)
  • 46
    if you'd want this to help others, you should rephrase your question: the problem wasn't passing a dictionary, what you wanted was turning a dict into keyword parameters – Javier Dec 2 '08 at 17:28
  • 10
    It's worth noting that you can also unpack lists to positional arguments: f2(*[1,2]) – Matthew Trevor Dec 2 '08 at 23:44
  • 10
    "dereference": the usual term, in this Python context, is "unpack". :) – mipadi Jul 2 '09 at 18:05
  • 2
    This is great, just used it with argparse/__dict__ to make it really easy to do command line argument parsing directly into options for a class object. – Horus Jun 14 '12 at 3:47
  • 1
    what is the reason we would want to unpack a dictionary when passing it as an argument to a function? – Mona Jalal May 30 '16 at 6:07
89
In[1]: def myfunc(a=1, b=2):
In[2]:    print(a, b)

In[3]: mydict = {'a': 100, 'b': 200}

In[4]: myfunc(**mydict)
100 200

A few extra details that might be helpful to know (questions I had after reading this and went and tested):

  1. The function can have parameters that are not included in the dictionary
  2. You can not override a parameter that is already in the dictionary
  3. The dictionary can not have parameters that aren't in the function.

Examples:

Number 1: The function can have parameters that are not included in the dictionary

In[5]: mydict = {'a': 100}
In[6]: myfunc(**mydict)
100 2

Number 2: You can not override a parameter that is already in the dictionary

In[7]: mydict = {'a': 100, 'b': 200}
In[8]: myfunc(a=3, **mydict)

TypeError: myfunc() got multiple values for keyword argument 'a'

Number 3: The dictionary can not have parameters that aren't in the function.

In[9]:  mydict = {'a': 100, 'b': 200, 'c': 300}
In[10]: myfunc(**mydict)

TypeError: myfunc() got an unexpected keyword argument 'c'

As requested in comments, a solution to Number 3 is to filter the dictionary based on the keyword arguments available in the function:

In[11]: import inspect
In[12]: mydict = {'a': 100, 'b': 200, 'c': 300}
In[13]: filtered_mydict = {k: v for k, v in mydict.items() if k in [p.name for p in inspect.signature(myfunc).parameters.values()]}
In[14]: myfunc(**filtered_mydict)
100 200

Another option is to accept (and ignore) additional kwargs in your function:

In[15]: def myfunc2(a=None, **kwargs):
In[16]:    print(a)

In[17]: mydict = {'a': 100, 'b': 200, 'c': 300}

In[18]: myfunc2(**mydict)
100

Notice further than you can use positional arguments and lists or tuples in effectively the same way as kwargs, here's a more advanced example incorporating everything above:

In[19]: def myfunc3(a, *posargs, b=2, **kwargs):
In[20]:    print(a, b)
In[21]:    print(posargs)
In[22]:    print(kwargs)

In[23]: mylist = [10, 20, 30]
In[24]: mydict = {'b': 200, 'c': 300}

In[25]: myfunc3(*mylist, **mydict)
10 200
(20, 30)
{'c': 300}
  • 3
    Using unpacking with print.format is particularly useful. eg: 'hello {greeting} {name}'.format( **{'name': 'Andrew', 'greeting': 'Mr'}) – Martlark Nov 2 '17 at 0:12
  • 4
    This should be the accepted answer. – Harsh Trivedi Jun 19 '18 at 16:43
  • Old question but still very relevant. Thanks for the detailed response. Do you know any ways to work around case 3? Meaning pythonically map the items of the dictionary to the function parameters, when there are more items in the dictionary than there are parameters? – spencer Apr 25 at 14:22
  • 2
    @spencer a solution has been added to the answer. – David Parks May 2 at 17:37
30

In python, this is called "unpacking", and you can find a bit about it in the tutorial. The documentation of it sucks, I agree, especially because of how fantasically useful it is.

  • 14
    It is better to copy the relevant content of the link into your answer, rather than relying on the link surviving until the end of time. – Richard Jul 26 '14 at 20:06
  • 3
    @Richard that's a deep philosophical opinion about the web, with which I couldn't disagree more heartily! Alas, I lack the space in this here margin to share my wonderful proof... – llimllib Jul 28 '14 at 16:02
  • @llimllib, I shall have to ask Dr. Wiles then! – Richard Jul 28 '14 at 19:49
6

Here ya go - works just any other iterable:

d = {'param' : 'test'}

def f(dictionary):
    for key in dictionary:
        print key

f(d)
  • It seems that people are downvoting this as it answered the original question, not the rephrased question. I suggest just removing this post now. – dotancohen Dec 10 '13 at 8:00
  • @dotancohen no it was never correct, it fails the second block of code that was always with the question. It took it too literally, the print was an example. – Dave Hillier Feb 26 '14 at 21:28
  • It does answer the question though, it just doesn't do it via dictionary unpacking. His approach is perfectly valid based on the question posted. – Natecat Nov 30 '16 at 1:19

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.