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what is the efficient way to clean sublist in list . cause I only want to got the biggest set in list. just like.

b = [[1,2,3], [1,2], [3,5], [2,3,4], [2,3,4], [3,4,5], [1,2,4,6,7]]  

and I want the output as follow.

result = [[1,2,3], [2,3,4], [3,4,5], [1,2,4,6,7]]

Cause [1,2] is subset of [1,2,3] and [1,2,4,6,7], [3,5] is subset of [3,4,5], and also [2,3,4] appear 2 times, only want calculate 1 time in final result. I want to based on the subset logical to filter data.

I only think out 2 loops solution to solve this problem, but if there is other efficient way to solve this problem.

what I tried like that: (after I optimising this one more effect, add break and add 1 part not calculate 2 times)

b = [[1,2,3], [1,2], [3,5], [2,3,4], [2,3,4], [3,4,5], [1,2,4,6,7]]
i = 0
record = []
subset_status = False
for index, re in enumerate(b):
    while i <= (len(b)-1):
        if i != index:
            if i not in record:
                if set(re).issubset(b[i]):
                    subset_status = True
                    break
        i += 1
    i = 0
    if subset_status:
        record.append(index)
        subset_status = False
print(record)
>>[1, 2, 3]

So I got the index in [1,2,3] is the dirty data. Thanks.

22
  • 4
    What are the conditions for a "clean" list? Has to have 3 elements?
    – Loocid
    Oct 2 '18 at 6:52
  • Why not just initialize b to be what you want? b = [[1,2,3], [2,3,4], [3,4,5]] Oct 2 '18 at 6:52
  • @RedCricket this is the other way, but I want to from other angle to solve my problem, so I meet this problem.
    – Starry
    Oct 2 '18 at 6:55
  • 2
    uh … how is [1,2,4,6,7], [3,5] a subset of` [3,4,5]. Oct 2 '18 at 7:07
  • 1
    @RedCricket how about now, I revised my question based on what 'Sayse' remind me.
    – Starry
    Oct 2 '18 at 7:30
1

filter your list on condition:

b = [[1,2,3], [1,2], [3,5], [2,3,4],[3,4,5]]

print(list(filter(lambda x: len(x) == 3, b)))
# [[1, 2, 3], [2, 3, 4], [3, 4, 5]]
1
  • Thank you. But I dont by the right way to represent my question, I dont want to based on the length of sublist.
    – Starry
    Oct 2 '18 at 7:06
1

A conditional list comprehension is a pythonic, flexible and performant approach. It is usually faster and less error prone to assemble the clean list from scratch than to repeatedly remove elements:

b = [[1, 2, 3], [1, 2], [3, 5], [2, 3, 4],[3, 4, 5]]

cleaned = [x for x in b if clean(x)]  # where clean is your condition
# e.g.
cleaned = [x for x in b if len(x) == 3] 
# [[1, 2, 3], [2, 3, 4], [3, 4, 5]]

If you need to mutate the original list object, use slice assignment:

b[:] = [x for x in b if clean(x)]
1
  • Thanks, but I do not want to based on length of sublist. The logic I revised in my question. thanks again.
    – Starry
    Oct 2 '18 at 7:08
1

One way to do this is to process the lists in b in order of length, from longest to shortest.

b = [[1,2,3], [1,2], [3,5], [2,3,4], [2,3,4], [3,4,5], [1,2,4,6,7]]
result = []
for u in sorted(map(set, b), key=len, reverse=True):
    if not any(u <= v for v in result):
        result.append(u)
print(result)

output

[{1, 2, 4, 6, 7}, {1, 2, 3}, {2, 3, 4}, {3, 4, 5}]

If you need to keep the inner lists as actual lists, and you also need to preserve the order, then we can do that with an additional pass over the data. But instead of using a list for result I'll use a set to make the tests more efficient. And that means turning the sublists into frozensets: plain sets won't work because only hashable objects can be put into a set.

b = [[1,2,3], [1,2], [3,5], [2,3,4], [2,3,4], [3,4,5], [1,2,4,6,7]]
temp = set()
for u in sorted(map(frozenset, b), key=len, reverse=True):
    if not any(u <= v for v in temp): 
        temp.add(u)
newb = []
for u in b: 
    if set(u) in temp and u not in newb:
        newb.append(u)
print(newb)

output

[[1, 2, 3], [2, 3, 4], [3, 4, 5], [1, 2, 4, 6, 7]]
0

This is not very good, but it works:

result = []
for i in b:
    for j in result:
        if all(c in j for c in i):
            break
    else:
        new_list.append(i)

for i in result:
    for j in result:
        if all(c in j for c in i) and result.index(i) != result.index(j):
            del(result[result.index(i)])
            break
0

You can use tuples and product to detect if item is a sublist, then construct a new list excluding those sublist

list comprehension

from itertools import product

b = [[1,2,3], [1,2], [3,5], [2,3,4], [3,4,5], [1,2,4,6,7]]

dirty = [i for i in b for j in b if i != j if tuple(i) in product(j, repeat = len(i))]
clean = [i for i in b if i not in dirty]

Expanded explanation:

dirty = []
for i in b:
    for j in b:
        if i != j:
            if tuple(i) in product(j, repeat = len(i)):
                dirty.append(i)

clean = [i for i in b if i not in dirty]
[[1, 2, 3], [2, 3, 4], [3, 4, 5], [1, 2, 4, 6, 7]]
1
  • thanks, but your way can not work for complex situation. if [2,3,4] appear 2 times in b, you can not filter out one of them. and also this one solution till need go through b 2 times. Not more effect as what i use now. thanks, again
    – Starry
    Oct 3 '18 at 3:38

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