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I have a set of filenames coming from two different directories.

currList=set(['pathA/file1', 'pathA/file2', 'pathB/file3', etc.])

My code is processing the files, and need to change currList by comparing it to its content at the former iteration, say processLst. For that, I compute a symmetric difference:

toProcess=set(currList).symmetric_difference(set(processList))

Actually, I need the symmetric_difference to operate on the basename (file1...) not on the complete filename (pathA/file1).

I guess I need to reimplement the __eq__ operator, but I have no clue how to do that in python.

  1. is reimplementing __eq__ the right approach? or
  2. is there another better/equivalent approach?
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2 Answers 2

up vote 1 down vote accepted

You can do this with the magic of generator expressions.

def basename(x):
    return x.split("/")[-1]

result = set(x for x in set(currList).union(set(processList)) if (basename(x) in [basename(y) for y in currList]) != (basename(x) in [basename(y) for y in processList]))

should do the trick. It gives you all the elements X that appear in one list or the other, and whose basename-presence in the two lists is not the same.

Edit: Running this with:

currList=set(['pathA/file1', 'pathA/file2', 'pathB/file3'])
processList=set(['pathA/file1', 'pathA/file9', 'pathA/file3'])

returns:

set(['pathA/file2', 'pathA/file9'])

which would appear to be correct.

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1  
Very pythonic indeed. Thanks for your help! –  Bruno von Paris Oct 9 '12 at 9:02
    
You don't need the explicit set in the argument to union. –  larsmans Oct 9 '12 at 15:44

Here is a token (and likely poorly constructed) itertools version that should run a little bit faster if speed ever becomes a concern (although agree that @Zarkonnen's one-liner is pretty sweet, so +1 there :) ).

from itertools import ifilter

currList = set(['pathA/file1', 'pathA/file2', 'pathB/file3'])
processList=set(['pathA/file1', 'pathA/file9', 'pathA/file3'])

# This can also be a lambda inside the map functions - the speed stays the same
def FileName(f):
  return f.split('/')[-1]

# diff will be a set of filenames with no path that will be checked during
# the ifilter process
curr = map(FileName, list(currList))
process = map(FileName, list(processList))
diff = set(curr).symmetric_difference(set(process))

# This filters out any elements from the symmetric difference of the two sets
# where the filename is not in the diff set
results = set(ifilter(lambda x: x.split('/')[-1] in diff,
              currList.symmetric_difference(processList)))
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Thanks for your answer. Actually I was looking for something this way before Zarkonnen came with his one-liner. The advantage here is to be able to port it to another language. –  Bruno von Paris Oct 10 '12 at 15:31
    
@BrunovonParis No problem, and I agree that Zarkonnen's answer is more easily ported to other languages. Good luck! –  RocketDonkey Oct 10 '12 at 15:34
    
hum, well I think your's is more portable (I think it easily translate to C++ for example). Anyway, thanks! –  Bruno von Paris Oct 10 '12 at 16:04
    
@BrunovonParis Ah, gotcha - forgot that other languages probably have some of those capabilities as well :) In any case, glad you found something that works! –  RocketDonkey Oct 10 '12 at 16:15

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