Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I have a list of lists with uneven numbers of elements:

[['a','b','c'], ['d','e'], [], ['f','g','h','i']]

I'm displaying a table in Reportlab, and I want to display those as columns. As I understand it, RL only takes data for tables (Platypus) in the row form that I have above.

I can use a loop to make the switch, but I feel like there's a list comprehension that would be faster and more Pythonic. I'll need a blank space in the columns that run out of elements, too.

The desired product would be:

[['a','d','','f'],['b','e','','g'],['c','','','h'],['','','','i']]

EDIT: the example should be string, rather than numbers

Thanks for the help!

share|improve this question
1  

4 Answers 4

up vote 9 down vote accepted

itertools.izip_longest() takes a fillvalue argument. On Python 3, it's itertools.zip_longest().

>>> l = [[1,2,3], [4,5], [], [6,7,8,9]]
>>> import itertools
>>> list(itertools.izip_longest(*l, fillvalue=""))
[(1, 4, '', 6), (2, 5, '', 7), (3, '', '', 8), ('', '', '', 9)]

If you do need sublists instead of tuples:

>>> [list(tup) for tup in itertools.izip_longest(*l, fillvalue="")]
[[1, 4, '', 6], [2, 5, '', 7], [3, '', '', 8], ['', '', '', 9]]

Of course this also works for strings:

>>> l = [['a','b','c'], ['d','e'], [], ['f','g','h','i']]
>>> import itertools
>>> list(itertools.izip_longest(*l, fillvalue=""))
[('a', 'd', '', 'f'), ('b', 'e', '', 'g'), ('c', '', '', 'h'), ('', '', '', 'i')]

It even works like this:

>>> l = ["abc", "de", "", "fghi"]
>>> list(itertools.izip_longest(*l, fillvalue=""))
[('a', 'd', '', 'f'), ('b', 'e', '', 'g'), ('c', '', '', 'h'), ('', '', '', 'i')]
share|improve this answer
    
(+1) Nice...... –  NPE Dec 15 '12 at 15:28
    
Will this work for strings? In trying to make my example easy, I think that I mislead as to my purpose. –  DeltaG Dec 15 '12 at 15:46
    
Yes, why shouldn't it? You know, it's easy to find out... –  Tim Pietzcker Dec 15 '12 at 15:49
    
Absolutely - I thought that... well, I don't really conceptually understand list comprehensions, so I misinterpreted what it was doing. It works beautifully; thanks so much for your prompt and elegant solution! –  DeltaG Dec 15 '12 at 15:55

Here is another way:

>>> map(lambda *z: map(lambda x: x and x or '', z), *l)
[['a', 'd', '', 'f'], ['b', 'e', '', 'g'], ['c', '', '', 'h'], ['', '', '', 'i']]
share|improve this answer

yet another way that I think is simpler if you can tolerate None values instead of empty strings:

a = [['a','b','c'], ['d','e'], [], ['f','g','h','i']]
map(lambda *z: list(z), *a)
#[['a', 'd', None, 'f'], ['b', 'e', None, 'g'], ['c', None, None, 'h'], [None, None, None, 'i']]
share|improve this answer
map(lambda *z: [s if s else '' for s in z], *a)

or

map(lambda *z: [('', s)[s>None] for s in z], *a)
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.