I have a list of lists where it looks like

[[1,'a',2],[1,'b',2],[1,'a',3]]

I want to remove the item from the list if the second element in the list of lists are the same (e.g. they are both a)

I want to create output that looks like:

[[1,'a',2],[1,'b',2]]

where it grabs the first one in the list of the duplicates.

that's a variant of How do you remove duplicates from a list whilst preserving order?.

You can use a marker set to track the already appended sublists since strings are immutable so hashable & storable in a set:

lst = [[1,'a',2],[1,'b',2],[1,'a',3]]

marker_set = set()

result = []

for sublist in lst:
    second_elt = sublist[1]
    if second_elt not in marker_set:
        result.append(sublist)
        marker_set.add(second_elt)

print(result)

prints:

[[1, 'a', 2], [1, 'b', 2]]

(using a marker set and not a list allows an average O(1) lookup instead of O(N))

  • what are the benefits of using set here over a plain list – vash_the_stampede Oct 11 at 19:46
  • fast lookup, of course! – Jean-François Fabre Oct 11 at 19:46
  • Of course, I figured that, I should have known it was speed related didn't know if there were any other reasons, great work! – vash_the_stampede Oct 11 at 19:47
  • thanks. Actually this question is borderline duplicate, but I figured that closing it as a duplicate wouldn't be enough for OP & others to solve that particular one. – Jean-François Fabre Oct 11 at 19:47
  • 1
    actually this is a slight off variant of results I found, if I come across one , will link – vash_the_stampede Oct 11 at 19:56

You can use a dictionary where the second element is the key, on the reverse of the list, to drop duplicates:

dct = {j: (i, k) for i, j, k in reversed(L)}

{'a': (1, 2), 'b': (1, 2)}

Getting the result back as a list:

[[i, j, k] for j, (i, k) in dct.items()]

[[1, 'a', 2], [1, 'b', 2]]

While this solution will always keep the first occurence of a duplicate, the relative order of elements is not guaranteed in the final result.

  • 1
    Not really, but it means my one liners can be shorter :P – user3483203 Oct 11 at 19:34
  • 2
    you can use reversed in your one-liner. It's better because it doesn't create a new list. – Jean-François Fabre Oct 11 at 19:34
  • 1
    @Jean-FrançoisFabre but that's 4 more characters, so clearly much more inefficient ;) – user3483203 Oct 11 at 19:35
  • 2
    Worth noting that this approach will work as expected only in Python 3.7 and above. Otherwise, dct may be in any arbitrary order. – DeepSpace Oct 11 at 19:37
  • 1
    Referring to tuples, not strings right? – user3483203 Oct 11 at 19:43
lst = [[1,'a',2],[1,'b',2],[1,'a',3]]
res = []
for i in lst:
    if not any(i[1] in j for j in res):
        res.append(i)

print(res)
# [[1, 'a', 2], [1, 'b', 2]]
  • don't sort just to use groupby, that's inefficient – Jean-François Fabre Oct 11 at 19:38
  • 1
    @Jean-FrançoisFabre should look for alternatives that dont involve rearranging original list then? – vash_the_stampede Oct 11 at 19:38
  • yes; groupby is really neat when the items to group are contiguous. Else sort kills the fun, introducting useless O(N*log(N)) complexity when O(N) does it – Jean-François Fabre Oct 11 at 19:40
  • 1
    @Jean-FrançoisFabre thank you , so reserve groupby for when we don't have to rearrange the list, got it – vash_the_stampede Oct 11 at 19:41
  • 1
    this solution will be slower but would work on non-mutable items so yes – Jean-François Fabre Oct 11 at 20:32

Your Answer

 

By clicking "Post Your Answer", you acknowledge that you have read our updated terms of service, privacy policy and cookie policy, and that your continued use of the website is subject to these policies.

Not the answer you're looking for? Browse other questions tagged or ask your own question.