-1

Say you want to sort a list of lists by multiple attributes:

arr = [['a', 10, 72], ['s', 12, 31], ['g', 5, 1], ['a', 10, 1]]

Normally I would sort the list by:

sorted(arr, key = lambda x: (x[0], int(x[1]), int(x[2]))

However, how would I sort this list is the elements within the list were different lengths and some of them were shorter than 3 elements:

arr = [['a', 10, 72], ['s', 12, 31], ['g', 5, 1], ['a', 10, 1], ['s', 10], ['s', 12, 31, 44]]

Is there a way to check within a lambda function if an element exists? So:

  1. sort by x[1]
  2. sort by x[2] if len(x) > 1
  3. sort by x[3] if len(x) > 2
3
  • are there only 3 elements in the sublist? – Vishal Singh Jul 12 '20 at 0:51
  • Why do you not just write a normal function and pass it as key instead of cramming everything in a lambda? – mkrieger1 Jul 12 '20 at 1:02
  • Yeah that’s what I was confused about, I wasn’t sure how to do that, the element to element comparison – katrinss Jul 12 '20 at 2:38
1

IIUC:

arr = [['a', 10, 72], ['s', 12, 31], ['g', 5, 1], ['a', 10, 1], ['s', 10], ['s', 12, 31, 44]]
arrrsorted= sorted(arr,key=lambda x: x[2] if len(x)>2 else(x[1] if len(x)>1 else x[0]) )
arrrsorted

Output:

[['g', 5, 1], ['a', 10, 1], ['s', 10], ['s', 12, 31], ['s', 12, 31, 44], ['a', 10, 72]]
0

Provide a complete function instead of a lambda.

def my_key(input):
    # ...
    return ...

sorted(arr, key=my_key)

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