70

Is there a way to slice only the first and last item in a list?

For example; If this is my list:

>>> some_list
['1', 'B', '3', 'D', '5', 'F']

I want to do this (obviously [0,-1] is not valid syntax):

>>> first_item, last_item = some_list[0,-1]
>>> print first_item
'1'
>>> print last_item
'F'

Some things I have tried:

In [3]: some_list[::-1]
Out[3]: ['F', '5', 'D', '3', 'B', '1']

In [4]: some_list[-1:1:-1]
Out[4]: ['F', '5', 'D', '3']

In [5]: some_list[0:-1:-1]
Out[5]: []
...
  • 6
    Haha 3 answers, identical, in the space of 2 seconds, and one was yours. Classic. – Aesthete Aug 31 '12 at 15:57
  • 3
    What's bad about first, last = some_list[0], some_list[-1]? – Matthew Adams Aug 31 '12 at 15:58
  • @MatthewAdams Because I am splitting it in the same line, and that would have to spend time splitting it twice: x, y = a.split("-")[0], a.split("-")[-1]. – chown Aug 31 '12 at 15:59
  • 3
    FWIW, I would reject some_list[0::len(some_list)-1] in a code review. Too clever by half. – DSM Aug 31 '12 at 16:01
  • 2
    @chown: but then, with your solution of the step set to len-1 you'd have to split twice again for getting the length anyway! – Martijn Pieters Aug 31 '12 at 16:01

17 Answers 17

96

One way:

some_list[::len(some_list)-1]

A better way (Doesn't use slicing, but is easier to read):

[some_list[0], some_list[-1]]
  • 20
    The second form is much more readable. Explicit is better than implicit again. – Martijn Pieters Aug 31 '12 at 15:59
  • 4
    Hence the "possibly a better way". the only reason I didn't put it first is because the question explicitly asks for a "slice" and the second form isn't technically a slice ... – mgilson Aug 31 '12 at 16:00
  • 3
    It's never too late to educate the OP about the folly of his ways. :-P – Martijn Pieters Aug 31 '12 at 16:02
  • 1
    if there is only one item in some_list, the slice form fails with "ValueError: slice step cannot be zero" – rickfoosusa Apr 13 '15 at 20:56
  • 1
    @rickfoosusa -- well ... I guess that depends on the expected output. You're right that it doesn't give you 2 items as a result which (for a lot of applications) might be considered an error... The "better" way gives you the same item twice which might be equally as bad depending on the application I suppose... – mgilson Apr 13 '15 at 20:58
19

Just thought I'd show how to do this with numpy's fancy indexing:

>>> import numpy
>>> some_list = ['1', 'B', '3', 'D', '5', 'F']
>>> numpy.array(some_list)[[0,-1]]
array(['1', 'F'], 
      dtype='|S1')

Note that it also supports arbitrary index locations, which the [::len(some_list)-1] method would not work for:

>>> numpy.array(some_list)[[0,2,-1]]
array(['1', '3', 'F'], 
      dtype='|S1')

As DSM points out, you can do something similar with itemgetter:

>>> import operator
>>> operator.itemgetter(0, 2, -1)(some_list)
('1', '3', 'F')
  • numpy usually makes me smile! – jterrace Aug 31 '12 at 16:02
  • 4
    You can get a variant of this to work using itemgetter without numpy: itemgetter(0, -1)(some_list). – DSM Aug 31 '12 at 16:04
17

Python 3 only answer (that doesn't use slicing or throw away the rest of the list, but might be good enough anyway) is use unpacking generalizations to get first and last separate from the middle:

first, *_, last = some_list

The choice of _ as the catchall for the "rest" of the arguments is arbitrary; they'll be stored in the name _ which is often used as a stand-in for "stuff I don't care about".

Unlike many other solutions, this one will ensure there are at least two elements in the sequence; if there is only one (so first and last would be identical), it will raise an exception (ValueError).

  • 3
    I'm surprised this didn't get more upvotes. It's by far the most elegant solution, and avoids referring to the list more than once. Perfect for things like "open file - get first line - split it - get first and last elements (which is what brought me here). – nicolaum Apr 12 '20 at 9:49
  • @nicolaum: Given it was posted five years after the other answers, I'm not particularly surprised. If anything, I'm pleasantly surprised it's risen as high as it did, given the only time people see it is when they look for this question and scroll past the accepted answer, it doesn't typically appear in anyone's front page. And it's not a perfect solution, given the fact it doesn't actually throw away the middle elements, being forced to construct a temporary list (which the other answers avoid, at the expense of not guaranteeing at least two elements). – ShadowRanger Jan 4 at 19:17
  • It's also O(N) whereas a lot of the other solutions are O(1). Whether that matters or not depends a lot on the application :). – mgilson Jan 5 at 16:09
  • @mgilson: True, that's a necessary consequence of working with arbitrary iterables, including iterators; you can't get to the end without getting to the end. :-) – ShadowRanger Jan 5 at 21:27
14
first, last = some_list[0], some_list[-1]
  • 1
    The answer to undo all others! – George Udosen May 19 '20 at 11:05
7

Some people are answering the wrong question, it seems. You said you want to do:

>>> first_item, last_item = some_list[0,-1]
>>> print first_item
'1'
>>> print last_item
'F'

Ie., you want to extract the first and last elements each into separate variables.

In this case, the answers by Matthew Adams, pemistahl, and katrielalex are valid. This is just a compound assignment:

first_item, last_item = some_list[0], some_list[-1]

But later you state a complication: "I am splitting it in the same line, and that would have to spend time splitting it twice:"

x, y = a.split("-")[0], a.split("-")[-1]

So in order to avoid two split() calls, you must only operate on the list which results from splitting once.

In this case, attempting to do too much in one line is a detriment to clarity and simplicity. Use a variable to hold the split result:

lst = a.split("-")
first_item, last_item = lst[0], lst[-1]

Other responses answered the question of "how to get a new list, consisting of the first and last elements of a list?" They were probably inspired by your title, which mentions slicing, which you actually don't want, according to a careful reading of your question.

AFAIK are 3 ways to get a new list with the 0th and last elements of a list:

>>> s = 'Python ver. 3.4'
>>> a = s.split()
>>> a
['Python', 'ver.', '3.4']

>>> [ a[0], a[-1] ]        # mentioned above
['Python', '3.4']

>>> a[::len(a)-1]          # also mentioned above
['Python', '3.4']

>>> [ a[e] for e in (0,-1) ] # list comprehension, nobody mentioned?
['Python', '3.4']

# Or, if you insist on doing it in one line:
>>> [ s.split()[e] for e in (0,-1) ]
['Python', '3.4']

The advantage of the list comprehension approach, is that the set of indices in the tuple can be arbitrary and programmatically generated.

  • Just an FYI, the list comprehension approach's advantage of "arbitrary and programmatically generated" indices is shared by a solution using operator.itemgetter; itemgetter takes an arbitrary number of things to look up when you construct it, and retrieves them all as a single tuple when you call the result on a collection. Typically runs faster than a listcomp, especially if the itemgetter is pre-constructed and reused, though it has the weakness of not tupling the result if only one item is requested. – ShadowRanger Feb 24 '20 at 20:51
6

You can do it like this:

some_list[0::len(some_list)-1]
6

What about this?

>>> first_element, last_element = some_list[0], some_list[-1]
4

Actually, I just figured it out:

In [20]: some_list[::len(some_list) - 1]
Out[20]: ['1', 'F']
3

This isn't a "slice", but it is a general solution that doesn't use explicit indexing, and works for the scenario where the sequence in question is anonymous (so you can create and "slice" on the same line, without creating twice and indexing twice): operator.itemgetter

import operator

# Done once and reused
first_and_last = operator.itemgetter(0, -1)

...

first, last = first_and_last(some_list)

You could just inline it as (after from operator import itemgetter for brevity at time of use):

first, last = itemgetter(0, -1)(some_list)

but if you'll be reusing the getter a lot, you can save the work of recreating it (and give it a useful, self-documenting name) by creating it once ahead of time.

Thus, for your specific use case, you can replace:

x, y = a.split("-")[0], a.split("-")[-1]

with:

x, y = itemgetter(0, -1)(a.split("-"))

and split only once without storing the complete list in a persistent name for len checking or double-indexing or the like.

Note that itemgetter for multiple items returns a tuple, not a list, so if you're not just unpacking it to specific names, and need a true list, you'd have to wrap the call in the list constructor.

  • 1
    that's lovely one and pretty fast! – Daria Jul 11 '19 at 1:35
3

You can use something like

y[::max(1, len(y)-1)]

if you really want to use slicing. The advantage of this is that it cannot give index errors and works with length 1 or 0 lists as well.

3

Another python3 solution uses tuple unpacking with the "*" character:

first, *_, last = range(1, 10)
2

More General Case: Return N points from each end of list

The answers work for the specific first and last, but some, like myself, may be looking for a solution that can be applied to a more general case in which you can return the top N points from either side of the list (say you have a sorted list and only want the 5 highest or lowest), i came up with the following solution:

In [1]
def GetWings(inlist,winglen):
    if len(inlist)<=winglen*2:
        outlist=inlist
    else:
        outlist=list(inlist[:winglen])
        outlist.extend(list(inlist[-winglen:]))
    return outlist

and an example to return bottom and top 3 numbers from list 1-10:

In [2]
GetWings([1,2,3,4,5,6,7,8,9,10],3)

#Out[2]
#[1, 2, 3, 8, 9, 10]
0

Fun new approach to "one-lining" the case of an anonymously split thing such that you don't split it twice, but do all the work in one line is using the walrus operator, :=, to perform assignment as an expression, allowing both:

first, last = (split_str := a.split("-"))[0], split_str[-1]

and:

first, last = (split_str := a.split("-"))[::len(split_str)-1]

Mind you, in both cases it's essentially exactly equivalent to doing on one line:

split_str = a.split("-")

then following up with one of:

first, last = split_str[0], split_str[-1]
first, last = split_str[::len(split_str)-1]

including the fact that split_str persists beyond the line it was used and accessed on. It's just technically meeting the requirements of one-lining, while being fairly ugly. I'd never recommend it over unpacking or itemgetter solutions, even if one-lining was mandatory (ruling out the non-walrus versions that explicitly index or slice a named variable and must refer to said named variable twice).

-1

These are all interesting but what if you have a version number and you don't know the size of any one segment in string from and you want to drop the last segment. Something like 20.0.1.300 and I want to end up with 20.0.1 without the 300 on the end. I have this so far:

str('20.0.1.300'.split('.')[:3])

which returns in list form as:

['20', '0', '1']

How do I get it back to into a single string separated by periods

20.0.1
  • I guess by now you figured it out, but it's a matter of using Python's nice list indexing capabilities: '.'.join('20.0.1.300'.split('.')[:-1]). -x indexes backwards. – kepler Jan 6 '20 at 15:51
-1

Utilize the packing/unpacking operator to pack the middle of the list into a single variable:

>>> l = ['1', 'B', '3', 'D', '5', 'F']
>>> first, *middle, last = l
>>> first
'1'
>>> middle
['B', '3', 'D', '5']
>>> last
'F'
>>> 

Or, if you want to discard the middle:

>>> l = ['1', 'B', '3', 'D', '5', 'F']
>>> first, *_, last = l
>>> first
'1'
>>> last
'F'
>>> 
-3
def recall(x): 
    num1 = x[-4:]
    num2 = x[::-1]
    num3 = num2[-4:]
    num4 = [num3, num1]
    return num4

Now just make an variable outside the function and recall the function : like this:

avg = recall("idreesjaneqand") 
print(avg)
-3

I found this might do this:

list[[0,-1]]

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