42

Suppose I've the following list:

list1 = [1, 2, 33, 51]
                    ^
                    |
indices  0  1   2   3

How do I obtain the last index, which in this case would be 3, of that list?

1

8 Answers 8

42

len(list1)-1 is definitely the way to go, but if you absolutely need a list that has a function that returns the last index, you could create a class that inherits from list.

class MyList(list):
    def last_index(self):
        return len(self)-1


>>> l=MyList([1, 2, 33, 51])
>>> l.last_index()
3
0
31

The best and fast way to obtain the content of the last index of a list is using -1 for number of index , for example:

my_list = [0, 1, 'test', 2, 'hi']
print(my_list[-1])

Output is: 'hi'.

Index -1 shows you the last index or first index of the end.

But if you want to get only the last index, you can obtain it with this function:

def last_index(input_list:list) -> int:
    return len(input_list) - 1

In this case, the input is the list, and the output will be an integer which is the last index number.

1
  • 1
    It helped me anyways! Turned out I was looking for this xD May 4, 2021 at 0:04
15

Did you mean len(list1)-1?

If you're searching for other method, you can try list1.index(list1[-1]), but I don't recommend this one. You will have to be sure, that the list contains NO duplicates.

1
  • Ohhh man so wise, I was going with len(list1)-1 at first, then thought about a more Pythonic way, imagined that one, but then came here and thanks to your answer you've just saved me of a serious headache
    – user4396006
    Aug 23, 2018 at 17:30
13

I guess you want

last_index = len(list1) - 1 

which would store 3 in last_index.

1

You can use the list length. The last index will be the length of the list minus one.

len(list1)-1 == 3
2
  • 1
    this returns a boolean
    – DevLounge
    Jan 10, 2018 at 10:40
  • @AnthonyPerot You're right, this is a bit confusing. I think that isn't meant to be code so much as his way of saying that they are equal.
    – Neal Gokli
    Sep 13, 2018 at 19:45
1

all above answers is correct but however

a = [];
len(list1) - 1 # where 0 - 1 = -1

to be more precisely

a = [];
index = len(a) - 1 if a else None;

if index == None : raise Exception("Empty Array")

since arrays is starting with 0

2
  • This is super answer. This is the way to write high quality codes. Sep 18, 2020 at 4:45
  • @Willysatrionugroho It could also be useless overhead. Depends on what you expect and the conditions under which the code is run.
    – Bachsau
    Apr 24, 2021 at 13:08
0
a = ['1', '2', '3', '4']
print len(a) - 1
3
2
  • 6
    You should always add an explanation of code you are providing in an answer. Feb 12, 2015 at 7:23
  • @SaschaWolf Especially when the code includes more than just the answer!
    – Neal Gokli
    Sep 13, 2018 at 19:46
-3
list1[-1]

will return the last index of your list.

If you use minus before the array index it will start counting downwards from the end. list1[-2] would return the second to last index etc.

Important to mention that -0 just returns the "first" (0th) index of the list because -0 and 0 are the same number,

1
  • This will return the last element, not the last index, so it does not answer the question.
    – Bachsau
    Apr 24, 2021 at 13:03

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