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What is the current way to chunk a list of the following form: ["record_a:", "x"*N, "record_b:", "y"*M, ...], i.e. a list where the start of each record is denoted by a string ending in ":", and includes all the elements up until the next record. So the following list:

["record_a:", "a", "b", "record_b:", "1", "2", "3", "4"]

would be split into:

[["record_a", "a", "b"], ["record_b", "1", "2", "3", "4"]]

The list contains an arbitrary number of records, and each record contains an arbitrary number of list items (up until when the next records begins or when there are no more records.) how can this be done efficiently?

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You are asking as if there were an "standard" way to do this –  Alexander Jan 29 '13 at 22:45
    
@Alexander: No, I am asking for an efficient and elegant way to do it. Standard is irrelevant. –  user248237dfsf Jan 29 '13 at 22:46

5 Answers 5

up vote 4 down vote accepted

Use a generator:

def chunkRecords(records):
    record = []
    for r in records:
        if r[-1] == ':':
            if record:
                yield record
            record = [r[:-1]]
        else:
            record.append(r)
    if record:
        yield record 

Then loop over that:

for record in chunkRecords(records):
    # record is a list

or turn in into a list again:

records = list(chunkRecords(records))

The latter results in:

>>> records = ["record_a:", "a", "b", "record_b:", "1", "2", "3", "4"]
>>> records = list(chunkRecords(records))
>>> records
[['record_a', 'a', 'b'], ['record_b', '1', '2', '3', '4']]
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1  
ugh - I have an undecipherable one liner using itertools - won't both posting that one though :) –  Jon Clements Jan 29 '13 at 23:25
    
@JonClements: Resist the temptation to create one-liners! –  Martijn Pieters Jan 29 '13 at 23:26

First I make an empty output container, and then I make a generator:

>>> lst = ["record_a:", "a", "b", "record_b:", "1", "2", "3", "4"]
>>> lst_ = []
>>> g = (lst_.append([x[:-1]]) if x.endswith(':') else lst_[-1].append(x) for x in lst)

Then eat generator with itertools consume recipe, or simply

>>> for x in gen:
...   pass
... 
>>> lst_
[['record_a', 'a', 'b'], ['record_b', '1', '2', '3', '4']]
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If you don't mind to be a bit of a cowboy, you could also just use a list comprehension for the side-effects instead of mucking around with the generator –  wim Jan 29 '13 at 23:41
from itertools import groupby,izip,chain

l = ["record_a:", "a", "b", "record_b:", "1", "2", "3", "4"]

[list(chain([x[0][0].strip(':')], x[1])) for x in izip(*[(list(g) 
            for _,g in groupby(l,lambda x: x.endswith(':')))]*2)]

out:

[['record_a', 'a', 'b'], ['record_b', '1', '2', '3', '4']]
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Okay, here's my end-of-work-day crazy itertools solution:

>>> from itertools import groupby, count
>>> d = ["record_a:", "a", "b", "record_b:", "1", "2", "3", "4"]
>>> groups = (list(g) for _, g in groupby(d, lambda x: x.endswith(":")))
>>> git = iter(groups)
>>> paired = ((next(git), next(git)) for _ in count())
>>> combined = [ [a[0][:-1]] + b for a,b in paired]
>>> 
>>> combined
[['record_a', 'a', 'b'], ['record_b', '1', '2', '3', '4']]

(Done more as an example of the sorts of things one can do than as a piece of code I'd necessarily use.)

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lst = ["record_a:", "a", "b", "record_b:", "1", "2", "3", "4"]
out = []
for x in lst:
    if x[-1] == ':':
        out.append([x])
    else:
        out[-1].append(x)
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