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I'm trying to convert the following list:


To this list of lists:


Does anyone know a quick way to do this? I'm going to be running this on a very long list. This is in python.

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closed as unclear what you're asking by Wooble, jonrsharpe, tcooc, mu 無, Linger Aug 1 '14 at 19:26

Please clarify your specific problem or add additional details to highlight exactly what you need. As it's currently written, it’s hard to tell exactly what you're asking. See the How to Ask page for help clarifying this question.If this question can be reworded to fit the rules in the help center, please edit the question.

This is a bad question because it doesn't show what you've tried or that you have any understanding of the problem. It's clear what you're asking, but a good StackOverflow question will also demonstrate why you're having trouble with it. That being said, what you're looking to do can be easily done with a sort followed by a reduce. –  Crisfole Aug 1 '14 at 18:10
1- What does this have to do with JSON? 2- Your result list doesn't make sense as written (I assume there should be a third 2 in the list of lists?) At least describe what you're wanting the result list to be. –  Stonz2 Aug 1 '14 at 18:39
Sort the list. Create a new list of lists. Append the items in the list to the last list in the list of lists. –  JuJoDi Aug 1 '14 at 19:08
Why do you have this tagged JSON? –  dawg Aug 1 '14 at 19:24

1 Answer 1

Her you go:

>>> from itertools import groupby
>>> [list(g) for k, g in groupby(sorted([1,2,2,4,2,1,5,4,3]))]
[[1, 1], [2, 2, 2], [3], [4, 4], [5]]

If by 'long list' you may want to sort the list in place before grouping, you can do:

>>> li.sort()
>>> [list(g) for k, g in groupby(li)]
[[1, 1], [2, 2, 2], [3], [4, 4], [5]]

Even better still (but unspecified in your question) is if you could leave the groups as iterators that would be calculated as needed, you can do:

>>> for k, grp in groupby(li):
...    print k, grp
1 <itertools._grouper object at 0x106ded210>
2 <itertools._grouper object at 0x106ded190>
3 <itertools._grouper object at 0x106ded210>
4 <itertools._grouper object at 0x106ded190>
5 <itertools._grouper object at 0x106ded210>

Then the items in grp are calculated (once) as you need them, as seen here:

>>> for k, grp in groupby(li):
...    print k, list(grp)
1 [1, 1]
2 [2, 2, 2]
3 [3]
4 [4, 4]
5 [5]
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For long lists, as the OP mentioned, .sort() might actually be more beneficial than sorted as it sorts in-place. –  Maciej Gol Aug 1 '14 at 18:38

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