26

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
    Why the functional programming tag? – sepp2k Jan 25 '13 at 20:08
  • to get an answer using functional programming methods of python – ppaulojr Jan 25 '13 at 20:41
26

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
    nice cheat! for the lambda, it can be improved like lambda x: not x or just operator.not_ – Jean-François Fabre Apr 3 '18 at 19:33
4

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
>>> 
  • 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 Jan 25 '13 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 Jan 25 '13 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
    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. – Aaron Dufour Jan 25 '13 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: This is probably the fastest. Btw instead of LC you could have simple done list(split_seq(ll,"") – Abhijit Jan 25 '13 at 21:06
0

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
    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']]

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