12

I have a block of code that gives me a list that has some triple nested lists within it:

my_list = [[['item1','item2']], [['item3', 'item4']]]

And I would like to make it:

my_list = [['item1','item2'], ['item3', 'item4']]

Any suggestions?

4
  • 4
    my_list = list(map(lambda x :x[0], my_list))
    – Vasif
    Dec 13 '17 at 6:08
  • 2
    I sometimes miss Ruby when I write in Python : [[['item1','item2']], [['item3', 'item4']]].flatten(1). To be fair, it happens in both direction. Dec 13 '17 at 12:24
  • What did you research turn up, and why didn't the solutions in it work for your case?
    – jpmc26
    Dec 13 '17 at 22:54
  • What do you expect to a happen in the case where there are multiple items in the outer-most list?
    – Shadow
    Dec 14 '17 at 5:33
25

Use a list comprehension to select the single sub-sublist from each sublist:

>>> my_list = [item[0] for item in my_list]
[['item1', 'item2'], ['item3', 'item4']]

It's also possible to flatten out that level of nesting with sum, but it's a performance disaster waiting to happen, since it has quadratic run-time:

In [5]: my_list = [[[i, i+1]] for i in range(0, 10000, 2)]

In [6]: %timeit sum(my_list, [])
78.6 ms ± 2.15 ms per loop (mean ± std. dev. of 7 runs, 10 loops each)

In [7]: %timeit [x[0] for x in my_list]
187 µs ± 3.05 µs per loop (mean ± std. dev. of 7 runs, 1000 loops each)

In [8]: 78600/187
Out[8]: 420.32085561497325

That's a 420x slowdown for a 5000-length my_list, which isn't a very long list at all. It's even worse for longer lists.

7
  • 8
    I like the look of this too, but you shouldn't for more than very few elements: mathieularose.com/how-not-to-flatten-a-list-of-lists-in-python
    – f5r5e5d
    Dec 13 '17 at 7:40
  • Absolutely, since OP's list have few elements we can use this solution. And also I tried to post alteranative solution Dec 13 '17 at 7:45
  • 1
    No point doing timeits for minuscule input, it is almost never indicative of bigO performance.
    – cs95
    Dec 13 '17 at 10:40
  • The second method removes data if item has more than 1 element and raises an error if item is empty. Dec 13 '17 at 12:28
  • 1
    The sum approach is terrible, as it takes quadratic time for no good reason. Dec 13 '17 at 19:36
14

do the following:

my_list = [j for i in my_list for j in i ]
3
  • 12
    Could do with one for loop: [i[0] for i in my_list] Dec 13 '17 at 7:01
  • 2
    @srig: The double list comprehension is cleaner IMHO. It also doesn't remove data if i has more than 1 element, and doesn't raise an error if i is empty. Dec 13 '17 at 12:26
  • @EricDuminil, I also thought the same, but then I went by the OP's input list :) Dec 13 '17 at 13:28
13

A simple, but efficient way is to flatten your triple nested list with itertools.chain.from_iterable:

>>> import itertools
>>> my_list = [[['item1','item2']],[['item3','item4']]]
>>> my_list = list(itertools.chain.from_iterable(my_list))
>>> my_list
[['item1', 'item2'], ['item3', 'item4']]

Which has O(n)complexity for a list of size n.

6

my_list = list(map(lambda x :x[0], my_list))

6
my_list = [[['item1','item2']],[['item3', 'item4']]]

One-liner with list comprehension

my_list = [sub[0] for sub in my_list]

You could also change my_list in place:

my_list = [[['item1','item2']],[['item3', 'item4']]]

for i, sub in enumerate(my_list):
    my_list[i] = sub[0]

>>> my_list
[['item1', 'item2'], ['item3', 'item4']]
>>> 
1

With map and operator.itemgetter:

map(operator.itemgetter(0), my_list)

In Python 3 that returns a generator. If you need a list wrap the generator inside a list(...) invocation.

0
0

python3

[[x], [y]] = my_list
print([x , y])

[['item1', 'item2'], ['item3', 'item4']]
1
  • 3
    While this code snippet may solve the question, including an explanation really helps to improve the quality of your post. Remember that you are answering the question for readers in the future, and those people might not know the reasons for your code suggestion.
    – Isma
    Dec 13 '17 at 16:00
0

It's as simple as this if you want a quick fix -

for i in range(len(my_list)):
    my_list[i]=my_list[i][0]
1
  • no semicolons sure but why remove the column though?
    – bouletta
    Dec 13 '17 at 14:58
0

A quick fix, provided you have similar structure of the nested lists the recursive function below (or something similar for other cases) can handle any level of nesting. Did not measure performance but it will be less compared to other solutions. Test well before use. In python 2.7

def f(x):
    if hasattr(x[0], '__iter__'):
        return f(x[0])
    else:
        return x

>>> my_list = [[['item1','item2']], [['item3', 'item4']]]
>>> [f(elem) for elem in my_list]
[['item1', 'item2'], ['item3', 'item4']]
>>> my_list = [[[['item1','item2']]], [['item3', 'item4']],[[[['item5', 'item6']]]]]
>>> [f(elem) for elem in my_list]
[['item1', 'item2'], ['item3', 'item4'], ['item5', 'item6']]

The hasattr() check will skip strings in python 2. Other tests like iter() may consider strings as iterable

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