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I have the following data:

data = [['AB', 'BS, BT'], ['AH', 'AH'], ['AS', 'AS, GS']]

I would like to iterate through the lists of list to produce a list of tuples.

new_data = [('AB', 'BS'), ('AB', 'BT'), ('AH', 'AH'), ('AS', 'AS') ('AS', 'GS')]

I was thinking about using the zip() function, but wasn't sure if I was using the right logic.

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3 Answers 3

up vote 2 down vote accepted

zip wouldn't be my first choice. My first choice would be itertools.product and itertools.chain

In [103]: data = [['AB', 'BS, BT'], ['AH', 'AH'], ['AS', 'AS, GS']]

In [104]: [list(itertools.product([d[0]], d[1].split(','))) for d in data]
Out[104]: [[('AB', 'BS'), ('AB', ' BT')], [('AH', 'AH')], [('AS', 'AS'), ('AS', ' GS')]]

In [105]: list(itertools.chain.from_iterable([list(itertools.product([d[0]], d[1].split(','))) for d in data]))
Out[105]: [('AB', 'BS'), ('AB', ' BT'), ('AH', 'AH'), ('AS', 'AS'), ('AS', ' GS')]

Hope this helps

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itertools.product is a nice way of doing this, +1. It's worth noting that in normal usage, you don't need the extra list() calls. –  Lattyware Oct 15 '12 at 20:09
    
I can definitely see how the inner call is redundant. But wouldn't the outer list call be required? –  inspectorG4dget Oct 15 '12 at 20:11
1  
If a list is strictly needed, yes, but 99% of the time an iterator does the job. –  Lattyware Oct 15 '12 at 20:46

This can be done easily enough with itertools.repeat(). We use this to repeat the first item for each of the other items, which we get by splitting on ",", then zipping up to generate our tuples. We then use itertools.chain.from_iterable() to generate a single list.

>>> import itertools
>>> data = [['AB', 'BS, BT'], ['AH', 'AH'], ['AS', 'AS, GS']]
>>> for item in itertools.chain.from_iterable(zip(itertools.repeat(first), second.split(",")) for first, second in data):
...     print(item)
... 
('AB', 'BS')
('AB', ' BT')
('AH', 'AH')
('AS', 'AS')
('AS', ' GS')
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using zip():

In [32]: data
Out[32]: [['AB', 'BS, BT'], ['AH', 'AH'], ['AS', 'AS, GS']]

In [33]: [zip([x[0]]*len(x[1].split(",")),x[1].split(",")) for x in data]
Out[33]: [[('AB', 'BS'), ('AB', ' BT')], [('AH', 'AH')], [('AS', 'AS'), ('AS', ' GS')]]

use chain() to get the expected output:

In [34]: lis=[zip([x[0]]*len(x[1].split(",")),x[1].split(",")) for x in data]

In [35]: list(chain(*lis))
Out[35]: [('AB', 'BS'), ('AB', ' BT'), ('AH', 'AH'), ('AS', 'AS'), ('AS', ' GS')]

using izip_longest, with fillvalue equal to first element of each sublist:

In [47]: from itertools import chain,izip_longest

In [48]: lis=[tuple(izip_longest([x[0]],x[1].split(","),fillvalue=x[0])) for x in data]

In [49]: lis
Out[49]: [(('AB', 'BS'), ('AB', ' BT')), (('AH', 'AH'),), (('AS', 'AS'), ('AS', ' GS'))]

In [50]: list(chain(*lis))
Out[50]: [('AB', 'BS'), ('AB', ' BT'), ('AH', 'AH'), ('AS', 'AS'), ('AS', ' GS')]
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