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I have for example the following list:

['|', u'MOM', u'DAD', '|', u'GRAND', '|', u'MOM', u'MAX', u'JULES', '|']

and want it to be split by the "|" so the result would look like:

[[u'MOM', u'DAD'],[ u'GRAND'], [u'MOM', u'MAX', u'JULES']]

How can I do this? I only find examples of sublists on the net which need a length of the elements. e.g

http://blog.samat.org/2005/06/05/splitting_a_sequence_into_subsequences_with_python

greets

Christian

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4 Answers

up vote 12 down vote accepted
>>> [list(x[1]) for x in itertools.groupby(['|', u'MOM', u'DAD', '|', u'GRAND', '|', u'MOM', u'MAX', u'JULES', '|'], lambda x: x=='|') if not x[0]]
[[u'MOM', u'DAD'], [u'GRAND'], [u'MOM', u'MAX', u'JULES']]
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This solution for me is full of magic but works perfect! Thank you –  W0bble May 28 '11 at 21:07
2  
Read the groupby documentation for a start. :-) –  Martijn Pieters May 28 '11 at 21:10
    
The full line is, for clarity: [list(x[1]) for x in itertools.groupby(myList, lambda x: x=='|') if not x[0]] –  ninjagecko May 28 '11 at 22:04
    
@ninjagecko: That's why I split out the list and the lambda in my answer. –  Johnsyweb May 28 '11 at 22:42
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itertools.groupby() does this very nicely...

>>> import itertools
>>> l = ['|', u'MOM', u'DAD', '|', u'GRAND', '|', u'MOM', u'MAX', u'JULES', '|']
>>> key = lambda sep: sep == '|'
>>> [list(group) for is_key, group in itertools.groupby(l, key) if not is_key]
[[u'MOM', u'DAD'], [u'GRAND'], [u'MOM', u'MAX', u'JULES']]
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Damn! Too slow! –  Johnsyweb May 28 '11 at 21:14
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Simple solution using plain old for-loop (was beaten to it for the groupby solution, which BTW is better!)

seq = ['|', u'MOM', u'DAD', '|', u'GRAND', '|', u'MOM', u'MAX', u'JULES', '|']

S=[]
tmp=[]

for i in seq:
    if i == '|':
        S.append(tmp)
        tmp = []
    else:
        tmp.append(i)

# Remove empty lists
while True:
    try:
        S.remove([])
    except ValueError:
        break

print S

Gives

[[u'MOM', u'DAD'], [u'GRAND'], [u'MOM', u'MAX', u'JULES']]
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>>> reduce(
        lambda acc,x: acc+[[]] if x=='|' else acc[:-1]+[acc[-1]+[x]], 
        myList,
        [[]]
    )
[[], ['MOM', 'DAD'], ['GRAND'], ['MOM', 'MAX', 'JULES'], []]

Of course you'd want to use itertools.groupby, though you may wish to note that my approach "correctly" puts empty lists on the ends. =)

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When you say "correctly", how does that match with the desired output from the question or the linked article? –  Johnsyweb May 28 '11 at 22:04
1  
@Johnsyweb I am well aware. Nevertheless the semantics of the specification however are inelegant and should be equivalent to [].split(token); the input should just leave off the '|' on the ends. –  ninjagecko May 28 '11 at 22:05
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