288

I have a list of lists. For example,

[
[0,1,'f'],
[4,2,'t'],
[9,4,'afsd']
]

If I wanted to sort the outer list by the string field of the inner lists, how would you do that in python?

2

12 Answers 12

381

This is a job for itemgetter

>>> from operator import itemgetter
>>> L=[[0, 1, 'f'], [4, 2, 't'], [9, 4, 'afsd']]
>>> sorted(L, key=itemgetter(2))
[[9, 4, 'afsd'], [0, 1, 'f'], [4, 2, 't']]

It is also possible to use a lambda function here, however the lambda function is slower in this simple case

7
  • What if I would want to ignore case?
    – bzupnick
    Jul 29, 2013 at 11:31
  • 8
    @bzupnick, use key=lambda x:x[2].casefold(). If your Python isn't new enough, just use .lower() instead of .casefold() Jul 29, 2013 at 11:52
  • x = [[[5,3],1.0345],[[5,6],5.098],[[5,4],4.89],[[5,1],5.97]] With a list like this is can we sort using itemgetter() with respect to elements in x[0][1] ?
    – nidHi
    Dec 2, 2016 at 9:48
  • Can I also get the indices of the sort, so to sort another related list of lists in the same order?
    – quarky
    Aug 22, 2017 at 8:52
  • @quaryk It sounds like an interesting question, but not suitable to answer in the comments. If you can't find a question that covers it, you should create one. Aug 23, 2017 at 0:13
233

in place

>>> l = [[0, 1, 'f'], [4, 2, 't'], [9, 4, 'afsd']]
>>> l.sort(key=lambda x: x[2])

not in place using sorted:

>>> sorted(l, key=lambda x: x[2])
4
  • 6
    Could you give more details about in place and not in place ?
    – qun
    Oct 10, 2015 at 15:42
  • 14
    @qun, "in place" means that the memory of the old list is reused for the sorted one. "not in place" means that the old list remains unchanged and a new list is created. Oct 15, 2015 at 6:15
  • x = [[[5,3],1.0345],[[5,6],5.098],[[5,4],4.89],[[5,1],5.97]] With a list like this is, how can we sort with respect to elements in x[0][1] ?
    – nidHi
    Dec 2, 2016 at 9:48
  • 4
    for descending order: l.sort(key=lambda x: x[2], reverse=True)
    – Reveille
    Dec 3, 2020 at 17:29
94

Itemgetter lets you to sort by multiple criteria / columns:

sorted_list = sorted(list_to_sort, key=itemgetter(2,0,1))
1
  • 5
    I think this answer is very important. I think people trying to sort by inner array indexes will fall here but people looking to sort by MULTIPLE inner array indexes will start here and your answer helped me see that itemgetter will actually do that for you!
    – ZekeDroid
    Oct 9, 2014 at 16:55
21

multiple criteria can also be implemented through lambda function

sorted_list = sorted(list_to_sort, key=lambda x: (x[1], x[0]))
1
  • What is the meaning of this lambda function above. Is it returning a tuple? Mar 7, 2021 at 4:08
15
array.sort(key = lambda x:x[1])

You can easily sort using this snippet, where 1 is the index of the element.

8

Like this:

import operator
l = [...]
sorted_list = sorted(l, key=operator.itemgetter(desired_item_index))
8

I think lambda function can solve your problem.

old_list = [[0,1,'f'], [4,2,'t'],[9,4,'afsd']]

#let's assume we want to sort lists by last value ( old_list[2] )
new_list = sorted(old_list, key=lambda x: x[2])

#Resulst of new_list will be:

[[9, 4, 'afsd'], [0, 1, 'f'], [4, 2, 't']]
2

More easy to understand (What is Lambda actually doing):

ls2=[[0,1,'f'],[4,2,'t'],[9,4,'afsd']]
def thirdItem(ls):
    #return the third item of the list
    return ls[2]
#Sort according to what the thirdItem function return 
ls2.sort(key=thirdItem)
2
**old_list = [[0,1,'f'], [4,2,'t'],[9,4,'afsd']]
    #let's assume we want to sort lists by last value ( old_list[2] )
    new_list = sorted(old_list, key=lambda x: x[2])**

correct me if i'm wrong but isnt the 'x[2]' calling the 3rd item in the list, not the 3rd item in the nested list? should it be x[2][2]?

1
  • No, because key/lambda is already iterating over the items in the first-level list. x is a local variable bound to each item in turn.
    – DragonLord
    Jun 6, 2020 at 16:38
2

Sorting a Multidimensional Array [execute here][1]

points=[[2,1],[1,2],[3,5],[4,5],[3,1],[5,2],[3,8],[1,9],[1,3]]

def getKey(x):
   return [x[0],-x[1]]

points.sort(key=getKey)

print(points)
2
  • if you can explain the function getKey, that'd be great. from my Understanding ig, you're sorting according to the second sublist variable in descending order. correct me if I'm wrong. Apr 15 at 3:26
  • 1
    sort method will sort the array in ascending order so when you pass first key as positive it'll sort in ascending and for second key it's -ve so we're altering sort to be in decreasing order for same elements
    – Nishan
    Apr 21 at 8:58
0

Make sure that you do not have any null or NaN values in the list you want to sort. If there are NaN values, then your sort will be off, impacting the sorting of the non-null values.

Check out Python: sort function breaks in the presence of nan

0

Using a custom key function you can easily sort any list of lists as you want:

L = [[0,1,'f'], [4,2,'t'], [9,4,'afsd']]

def sorter(lst):
    return lst[2].casefold()

L.sort(key=sorter)

# result: [[9, 4, 'afsd'], [0, 1, 'f'], [4, 2, 't']]

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