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If I have a string, I can split it up around whitespace with the str.split method:

"hello world!".split()

returns

['hello', 'world!']

If I have a list like

['hey', 1, None, 2.0, 'string', 'another string', None, 3.0]

Is there a split method that will split around None and give me

[['hey', 1], [2.0, 'string', 'another string'], [3.0]]

If there is no built-in method, what would be the most Pythonic/elegant way to do it?

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You did not specify the behavior for [None, 1, None, None, 2, None], which I assume should yield [[],[1],[],[2],[]] –  ninjagecko Aug 19 '12 at 14:21

5 Answers 5

up vote 6 down vote accepted

A concise solution can be produced using itertools:

groups = []
for k,g in itertools.groupby(input_list, lambda x: x is not None):
    if k:
        groups.append(list(g))
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Change your lambda to lambda x: x is not None and you can simplify your if statement to if k (since k will be true only if the group is not a group of Nones). And nice answer - +1! –  Sean Vieira Aug 19 '12 at 2:46
    
Nice suggestions, thanks. –  cmh Aug 19 '12 at 2:47
    
typo: "concise" –  ninjagecko Aug 19 '12 at 2:50

import itertools.groupby, then:

list(list(g) for k,g in groupby(inputList, lambda x: x!=None) if k)
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There is not a built-in way to do this. Here's one possible implementation:

def split_list_by_none(a_list):
    result = []
    current_set = []
    for item in a_list:
        if item is None:
            result.append(current_set)
            current_set = []
        else:
            current_set.append(item)
    result.append(current_set)
    return result
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# Practicality beats purity
final = []
row = []
for el in the_list:
    if el is None:
        if row:
            final.append(row)
        row = []
        continue
    row.append(el)
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"Practicality beats purity"? –  cmh Aug 19 '12 at 2:44
    
@cmh - Basically, if you need to do something right now, sometimes the simplest way is what you need - avoid digging for hours to find the most "Pythonic" way to do something. But if you find a better way to do it (as your answer most certainly is), then by all means, use it :-) –  Sean Vieira Aug 19 '12 at 2:48
def splitNone(toSplit:[]):
    try:
        first = toSplit.index(None)
        yield toSplit[:first]
        for x in splitNone(toSplit[first+1:]):
            yield x
    except ValueError:
        yield toSplit

 

>>> list(splitNone(['hey', 1, None, 2.0, 'string', 'another string', None, 3.0]))
[['hey', 1], [2.0, 'string', 'another string'], [3.0]]
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