2

So, I have a list like following

potential_labels = ['foo', 'foo::bar', 'foo::bar::baz', "abc", "abc::cde::def", "bleh"]

The desired_output = ['foo::bar::baz', "abc::cde::def", "bleh"]

This is because.. for root "foo", 'foo::bar::baz' is the longest sequence for "abc", "abc::cde::def", and for "bleh" it "bleh"

Is there any python inbuilt function which does this.. I feel like there is almost something in itertools which does this but cant seem to figure this out.

2 Answers 2

3

Option 1
max + groupby should do it.

r = [max(g, key=len) for _, g in \
          itertools.groupby(data, key=lambda x: x.split('::')[0])]

r
['foo::bar::baz', 'abc::cde::def', 'bleh']

Option 2
A much simpler solution would involve the collections.OrderedDict:

from collections import OrderedDict

o = OrderedDict()    
for x in data:
    o.setdefault(x.split('::')[0], []).append(x)

r = [sorted(o[k], key=len)[-1] for k in o]

r
['foo::bar::baz', 'abc::cde::def', 'bleh']

Not exactly a one liner, but what is pythonic is subjective after all.

5
  • It is only inefficient by a log(n) factor; you need to traverse the list anyway, probably twice to (1) get the maxlen, and (2) to extract the values. Commented Oct 25, 2017 at 9:47
  • @ReblochonMasque Thanks, that was informative. I can think of doing this with a loop and dict, that would probably speed things up a bit.
    – cs95
    Commented Oct 25, 2017 at 9:48
  • 1
    The OP sort of asked for a pythonic way, & your answer delivers. Commented Oct 25, 2017 at 9:51
  • @cᴏʟᴅsᴘᴇᴇᴅ I think you can use max instead of sorted, e.g. [max(list(g), key=len) for ...]
    – pylang
    Commented Oct 25, 2017 at 12:19
  • 1
    @pylang Yes, absolutely. Wonder why I didn’t see that. Thank you.
    – cs95
    Commented Oct 25, 2017 at 12:48
1

You can do a simple list comprehension taking advantage of a condition:

>>> [label for label in potential_labels if "\0".join(potential_labels).count("\0{}".format(label))==1]
['foo::bar::baz', 'abc::cde::def', 'bleh']
1
  • This doesnt work if potential_labels=[u'Reggae', u'Reggae::Dancehall', u'Reggae::Reggae-Pop', u'Reggae::Contemporary Reggae', u'Reggae::Ragga', u'Reggae', u'Reggae::Dancehall', u'Reggae::Reggae-Pop', u'Reggae::Contemporary Reggae', u'Reggae::Ragga']
    – frazman
    Commented Oct 29, 2017 at 8:58

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