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How to from this list:

list = [
    [],
    ['', 'subitem'],
    [[]],
    'item',
    [
        'item',
        'item',
        [''],
        []
    ],
    []
]

I can get this:

list = [
    ['subitem'],
    'item',
    [
        'item',
        'item'
    ]
]

How do I remove recursively all empty nested lists, zero-strings, and lists with nested zero-strings?

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2  
Can you show us what you have tried? What didn't work about it? –  tcaswell Dec 4 '13 at 5:59
    
What if the list is just []? Should we attempt to somehow remove the top-level list? –  user2357112 Dec 4 '13 at 6:04
3  
dont name your list 'list' –  bcorso Dec 4 '13 at 6:06

4 Answers 4

up vote 2 down vote accepted

A one-liner:

def remove_empty(l):
    return tuple(filter(lambda x:not isinstance(x, (str, list, tuple)) or x, (remove_empty(x) if isinstance(x, (tuple, list)) else x for x in l)))
share|improve this answer

Recursion:

def remove_lst(lst):
    if not isinstance(lst, list):
        return lst
    else:
        return [x for x in map(remove_lst, lst) if (x != [] and x != '')]
share|improve this answer
    
Looks very pretty, but what i'm doing wrong?: >>> block = [1, 2, [], [], ['', [12]], 'sd'] >>> def remove_empty_nested_list(root_list): if not isinstance(root_list, list): return root_list else: return [ x for x in map( remove_empty_nested_list, root_list ) if ( root_list != [] and root_list != '' ) ] >>> remove_empty_nested_list(block) [1, 2, [], [], ['', [12]], 'sd'] –  DmitryLogvinenko Dec 4 '13 at 9:04
    
@DmitryLogvinenko you copied with error. root_list != [] is a wrong comparaison. –  alko Dec 4 '13 at 9:46
    
@DmitryLogvinenko, alko is right, x != [] not root_lst. –  realli Dec 4 '13 at 10:04
    
O, bad! I have yet another fall: it does not work with Python 2.6 –  DmitryLogvinenko Dec 5 '13 at 7:58
def purify(l):
    for (i, sl) in enumerate(l):
        if type(sl) == list:
            l[i] = purify(sl)
    return [i for i in l if i != [] and i != '']

l1 = [ [], ['', 'subitem'], [[]], 'item', [ 'item', 'item', [''], [] ], [] ]
print purify(l1)

Prints:

[['subitem'], 'item', ['item', 'item']]
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this also removes zeros and Nones, try with l1 = [[], 0, None] –  alko Dec 4 '13 at 6:37

Maybe something like this?

#!/usr/local/cpython-3.3/bin/python

'''Demonstrate a way of removing empty lists and empty strings from a nested list'''

import pprint

def remove_empty_recursive(input_obj):
    '''Remove empty lists and strings - worker function'''
    if isinstance(input_obj, str):
        if input_obj:
            # it's a nonempty string, pass it through
            return input_obj
        else:
            # string is empty, delete it
            return None
    elif isinstance(input_obj, list):
        if input_obj:
            new_obj = []
            for element in input_obj:
                subresult = remove_empty_recursive(element)
                if subresult is None:
                    pass
                else:
                    new_obj.append(subresult)
            if new_obj:
                return new_obj
            else:
                return None
        else:
            return None

def remove_empty(list_):
    '''Remove empty lists and strings - user callable portion'''
    result = remove_empty_recursive(list_)
    return result

def for_comparison():
    '''Show what the O.P. wanted, for comparison's sake'''
    list_ = [
        ['subitem'],
        'item',
        [
            'item',
            'item'
        ]
    ]
    return pprint.pformat(list_)

def main():
    '''Main function'''

    list_ = [
        [],
        ['', 'subitem'],
        [[]],
        'item',
        [
            'item',
            'item',
            [''],
            []
        ],
        []
    ]

    result = remove_empty(list_)
    print('actual result:')
    pprint.pprint(result)
    print('desired result:')
    print(for_comparison())

main()

If that's not quite it, you may want to share a more detailed example that this fails on.

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