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I have one list of the form:

>>> my_list = ['BLA1', 'BLA2', 'BLA3', 'ELE1', 'ELE2', 'ELE3', 'PRI1', 'PRI2', 'NEA1', 'NEA2', 'MAU1', 'MAU2', 'MAU3']

and I want to create a new list, grouping the repeated elements into lists inside my new list, so at the end I will have:

>>> new_list = [['BLA1', 'BLA2', 'BLA3'], ['ELE1', 'ELE2', 'ELE3'], ['PRI1', 'PRI2'], ['NEA1', 'NEA2'], ['MAU1', 'MAU2', 'MAU3']]
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3 Answers 3

up vote 6 down vote accepted

Use itertools.groupby:

import itertools

[list(group) for key, group in itertools.groupby(my_list, key=lambda v: v[:3])]

The key argument is needed here to extract just the part of the value you wanted to group on; the first 3 characters.

Result:

>>> my_list = ['BLA1', 'BLA2', 'BLA3', 'ELE1', 'ELE2', 'ELE3', 'PRI1', 'PRI2', 'NEA1', 'NEA2', 'MAU1', 'MAU2', 'MAU3']
>>> [list(group) for key, group in itertools.groupby(my_list, key=lambda v: v[:3])]
[['BLA1', 'BLA2', 'BLA3'], ['ELE1', 'ELE2', 'ELE3'], ['PRI1', 'PRI2'], ['NEA1', 'NEA2'], ['MAU1', 'MAU2', 'MAU3']]

groupby will combine successive keys that are equal into 1 group. If you have disjoint groups (so same value, but with other values in between) it'll create separate groups for those:

>>> my_list = ['a1', 'a2', 'b1', 'b2', 'a3', 'a4']
>>> [list(group) for key, group in itertools.groupby(my_list)]
[['a1', 'a2'], ['b1', 'b2'], ['a3', 'a4']]

If that is not what you want you will have to sort my_list first.

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sorry, I did not explain myself correctly. my list is: >>> my_list = ['BLA1', 'BLA2', 'BLA3', 'ELE1', 'ELE2', 'ELE3', 'PRI1', 'PRI2', 'NEA1', 'NEA2', 'MAU1', 'MAU2', 'MAU3'] And i want to obtain: new_list = [['BLA1', 'BLA2', 'BLA3'], ['ELE1', 'ELE2', 'ELE3'], ['PRI1', 'PRI2'], ['NEA1', 'NEA2'], ['MAU1', 'MAU2', 'MAU3']] –  user2208885 Mar 26 '13 at 13:15
    
@user2208885: Not sure what is missing in your explanation then; your input and output are matched. –  Martijn Pieters Mar 26 '13 at 13:18
    
Yes, what you answered was correct, was my mistake in the explanation of the problem ^^ –  user2208885 Mar 26 '13 at 13:21
    
@user2208885: easily updated. –  Martijn Pieters Mar 26 '13 at 13:23
    
Awesome! Thank you very much! :) –  user2208885 Mar 26 '13 at 13:32

Make sure it's sorted and use

itertools.groupy
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As an alternative to groupby, you could use collections.Counter:

In [40]: from collections import Counter

In [41]: [ [k]*v for (k,v) in Counter(my_list).iteritems() ]
Out[41]: 
[['PRI', 'PRI'],
 ['NEA', 'NEA'],
 ['BLA', 'BLA', 'BLA'],
 ['MAU', 'MAU', 'MAU'],
 ['ELE', 'ELE', 'ELE']]

This will work without the need to sort the list if the elements are all jumbled up, unlike groupby.

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With the updated question, your solution no longer works, I fear. –  Martijn Pieters Mar 26 '13 at 13:25
    
@Martijn - so I see. In that case I would go with your updated solution. –  Dave Kirby Mar 26 '13 at 13:34

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