7

i have several nested lists, which are all permutations of each other within sublists:

x = [
['a', [['b', 'c', [['e', 'd']]]]],
['a', [['b', [['e', 'd']], 'c']]],
[[['b', 'c', [['e', 'd']]]], 'a'],
['a', [[[['d', 'e']], 'c', 'b']]], 
['a', [['b', [['d', 'e']], 'c']]]
]

I want to select only those, which comply with this requirement: if sublists contains element 'd' or 'b' in it, it must have index 0 in that sublist. So among lists in x only

['a', [['b', [['d', 'e']], 'c']]]

must be selected, because 'd' has index 0 in its sublist and at the same time 'b' has index 0 in its sublist. I tried this function:

def limitation(root, nested):
    result = []
    for i in nested:
        if isinstance(i, list):
            return limitation(root, i)
        else:
            if (i in ['d', 'b']  and nested.index(i) == 0):
                return root
for i in x:
    print(limitation(i, i))

But the output was this:

['a', [['b', 'c', [['e', 'd']]]]]
['a', [['b', [['e', 'd']], 'c']]]
[[['b', 'c', [['e', 'd']]]], 'a']
['a', [[[['d', 'e']], 'c', 'b']]]
['a', [['b', [['d', 'e']], 'c']]]

So it didn't consider that both 'd' and 'b' must have index 0 in there sublists. Could you please help me to fix it?

  • ['a', [[[['d', 'e']], 'c', 'b']]], why this is not valid ? – Charif DZ Nov 3 '19 at 12:21
  • because in sublist [[[['d', 'e']], 'c', 'b']] 'b' hasn't index 0, it has index 2. so both 'd' and 'b' must have indexes 0. that's why this one ['a', [['b', [['d', 'e']], 'c']]] is the only right variant – manabou11 Nov 3 '19 at 12:23
3

If a sub-list contains 'b' or 'd' that element must be in the first index [0]:

x = [
['a', [['b', 'c', [['e', 'd']]]]],
['a', [['b', [['e', 'd']], 'c']]],
[[['b', 'c', [['e', 'd']]]], 'a'],
['a', [[[['d', 'e']], 'c', 'b']]],
['a', [['b', [['d', 'e']], 'c']]]
]


def limitation(nested):
    for index, subelement in enumerate(nested):
        if isinstance(subelement, list):
            if not limitation(subelement):
                return False
        else:
            if subelement in ['d', 'b'] and not index:
                return False
    return True


for element in x:
    if limitation(element):
        print(element)  # ['a', [['b', [['d', 'e']], 'c']]]
| improve this answer | |
1

You can do it this way:

x = [
['a', [['b', 'c', [['e', 'd']]]]],
['a', [['b', [['e', 'd']], 'c']]],
[[['b', 'c', [['e', 'd']]]], 'a'],
['a', [[[['d', 'e']], 'c', 'b']]], 
['a', [['b', [['d', 'e']], 'c']]]
]

def is_valid(sub, seen=0):
    if sub[0] in ('b', 'd'):
        if seen == 1:
            # we found 'b' and 'd' at the right positions
            return True
        else:
            # we found the first one of them
            seen = 1

    elif any(item in sub for item in ('b', 'd')):
        # this sublist has 'b' or 'd' in other than first position
        return False

    # still undecided, we check the sublists recursively
    for item in sub:
        if isinstance(item, list):
            return is_valid(item, seen)

[s for s in x if is_valid(s)]
# [['a', [['b', [['d', 'e']], 'c']]]]
| improve this answer | |
0

The problem is that you stop looking for more lists within the lists one you have found either a single 'b' or a single 'd'. For example, call the function as:

limitation(x[0], x[0])

First it will check if the 'a' in ['a', [['b', 'c', [['e', 'd']]]]] is a list -> it is not a list, so it goes on to check if it is 'b' or 'd' -> it is not, so the loop goes to the next item. Now it will check if [['b', 'c', [['e', 'd']]]] is a list -> it is, so it calls the function again with ['b', 'c', [['e', 'd']]]. Now it will check if 'b' is a list -> it is not, so now it checks if it is 'b' or 'd'- which it is, and so the root is returned. It never gets on to checking for remaining lists- including, in this case, one which contains 'd' not in a zero position. Hopefully that makes sense.

| improve this answer | |

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