I have the following function:

def copy_file(source_file, target_dir):

Now I would like to use multiprocessing to execute this function at once:

p = Pool(12)
p.map(lambda x: copy_file(x,target_dir), file_list)

The problem is, lambda's can't be pickled, so this fails. What is the most neat (pythonic) way to fix this?

4 Answers 4


Use a function object:

class Copier(object):
    def __init__(self, tgtdir):
        self.target_dir = tgtdir
    def __call__(self, src):
        copy_file(src, self.target_dir)

To run your Pool.map:

p.map(Copier(target_dir), file_list)

For Python2.7+ or Python3, you could use functools.partial:

import functools
copier = functools.partial(copy_file, target_dir=target_dir)
p.map(copier, file_list)
  • 1
    This one even looks cleaner... I will decide later which one to make my answer
    – Peter Smit
    Jan 28, 2011 at 13:30
  • @Peter Smit: Oops -- you saw my post before I deleted it... I'm undeleting this just to announce it doesn't work due to a bug in Python2.
    – unutbu
    Jan 28, 2011 at 13:38
  • 1
    Still, a +1 for this answer since it's shorter (in Python 3, that is ;)
    – Fred Foo
    Jan 28, 2011 at 14:47
  • 9
    Landing here much later, as an update functools.partial is also picklable in python 2.7. Jul 18, 2013 at 22:42
  • 1
    Used this to fix a parallel search for non-isomorphic graphs. It runs 15x faster than the Fred Foo's solution Oct 23, 2019 at 2:27

Question is a bit old but if you are still use Python 2 my answer can be useful.

Trick is to use part of pathos project: multiprocess fork of multiprocessing. It get rid of annoying limitation of original multiprocess.

Installation: pip install multiprocess


>>> from multiprocess import Pool
>>> p = Pool(4)
>>> print p.map(lambda x: (lambda y:y**2)(x) + x, xrange(10))
[0, 2, 6, 12, 20, 30, 42, 56, 72, 90]

From this answer, pathos let's you run your lambda p.map(lambda x: copy_file(x,target_dir), file_list) directly, saving all the workarounds / hacks

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