36

If we have a list of strings in python and want to create sublists based on some special string how should we do?

For instance:

l = ["data","more data","","data 2","more data 2","danger","","date3","lll"]
p = split_special(l,"")

would generate:

p = [["data","more data"],["data 2","more data 2","danger"],["date3","lll"]]
2
  • 2
    Why the functional programming tag?
    – sepp2k
    Commented Jan 25, 2013 at 20:08
  • 2
    to get an answer using functional programming methods of python
    – ppaulojr
    Commented Jan 25, 2013 at 20:41

7 Answers 7

44

itertools.groupby is one approach (as it often is):

>>> l = ["data","more data","","data 2","more data 2","danger","","date3","lll"]
>>> from itertools import groupby
>>> groupby(l, lambda x: x == "")
<itertools.groupby object at 0x9ce06bc>
>>> [list(group) for k, group in groupby(l, lambda x: x == "") if not k]
[['data', 'more data'], ['data 2', 'more data 2', 'danger'], ['date3', 'lll']]

We can even cheat a little because of this particular case:

>>> [list(group) for k, group in groupby(l, bool) if k]
[['data', 'more data'], ['data 2', 'more data 2', 'danger'], ['date3', 'lll']]
1
  • 1
    nice cheat! for the lambda, it can be improved like lambda x: not x or just operator.not_ Commented Apr 3, 2018 at 19:33
5

One possible implementation using itertools

>>> l
['data', 'more data', '', 'data 2', 'more data 2', 'danger', '', 'date3', 'lll']
>>> it_l = iter(l)
>>> from itertools import takewhile, dropwhile
>>> [[e] + list(takewhile(lambda e: e != "", it_l)) for e in it_l if e != ""]
[['data', 'more data'], ['data 2', 'more data 2', 'danger'], ['date3', 'lll']]

Note*

This is as fast as using groupby

>>> stmt_dsm = """
[list(group) for k, group in groupby(l, lambda x: x == "") if not k]
"""
>>> stmt_ab = """
it_l = iter(l)
[[e] + list(takewhile(lambda e: e != "", it_l)) for e in it_l if e != ""]
"""
>>> t_ab = timeit.Timer(stmt = stmt_ab, setup = "from __main__ import l, dropwhile, takewhile")
>>> t_dsm = timeit.Timer(stmt = stmt_dsm, setup = "from __main__ import l, groupby")
>>> t_ab.timeit(100000)
1.6863486541265047
>>> t_dsm.timeit(100000)
1.5298066765462863
>>> t_ab.timeit(100000)
1.735611326163962
>>> 
2
  • Why are you including the purely-for-example groupby(l, lambda x: x ="") line? It does nothing. Moreover, [list(group) for k, group in groupby(l, bool) if k] should be 10%+ faster.
    – DSM
    Commented Jan 25, 2013 at 20:50
  • @DSM: I had erroneously added it, but removing it is not much of a distance. Btw, as you mentioned, in similar ways, [list(takewhile(bool, it_l)) for e in it_l if e != ""] should also be equally faster, but I still feel, the difference is negligible and comparable.
    – Abhijit
    Commented Jan 25, 2013 at 20:58
2

reduce comes to mind:

def split(iterable, where):
    def splitter(acc, item, where=where):
        if item == where:
            acc.append([])
        else:
            acc[-1].append(item)
        return acc
    return reduce(splitter, iterable, [[]])


data = ["data","more data","","data 2","more data 2","danger","","date3","lll"]
print split(data, '')

Result:

[['data', 'more data'], ['data 2', 'more data 2', 'danger'], ['date3', 'lll']]
1
  • 1
    One thing to note is that reduce in python is actually foldl in CS terms - the CS reduce must be used on a function that does not care in what order the inputs come in. This can get you into trouble if you try to reduce in other languages. Commented Jan 25, 2013 at 20:56
1

I'm not sure wether this is the most "pythonic" way of solving it.

def split_seq(seq, sep):
    start = 0
    while start < len(seq):
        try:
           stop = start + seq[start:].index(sep)
           yield seq[start:stop]
           start = stop + 1
        except ValueError:
           yield seq[start:]
           break

ll = ["data","more data","","data 2","more data 2","danger","","date3","lll"]
p = [i for i in split_seq(ll,"")]
1
  • +1: This is probably the fastest. Btw instead of LC you could have simple done list(split_seq(ll,"")
    – Abhijit
    Commented Jan 25, 2013 at 21:06
1

Heres one idea. :)

def spec_split(seq,sep):
    # Ideally this separator will never be in your list
    odd_sep = "!@#$%^&*()"

    # Join all the items with the odd separator and split
    # anywhere the odd separator + separator + odd seperator meet
    # This makes a list of items broken by the separator
    jumble = odd_sep.join(seq).split(odd_sep+sep+odd_sep)

    # split the remaining items broken by odd separators into sublists
    return [item.split(odd_sep) for item in jumble] 
0

Using recursion:

def split_special(x, on):
    try:
        ix = x.index(on)
    except ValueError:
        return [x]
    return [x[:ix], *split_special(x[(ix + 1):], on=on)]

Edge cases, e.g. when on is not present in x, or when it appears as first or last element, are not handled well by this solution.

-1
    lst = ["data","more data","","data 2","more data 2","danger","","date3","lll"]
    join_list = ",".join(lst)
    split_list = join_list.split(",,")
    result = [i.split() for i in split_list]
    #result =[['data,more', 'data'], ['data', '2,more', 'data', '2,danger'],  ['date3,lll']]
1
  • This is not at all the result that the topikstarter wanted.
    – Vlad Kisly
    Commented Aug 2, 2022 at 6:57

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service and acknowledge you have read our privacy policy.

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