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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]: []
...
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3  
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
2  
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
1  
@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

7 Answers 7

up vote 23 down vote accepted

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]]
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8  
The second form is much more readable. Explicit is better than implicit again. –  Martijn Pieters Aug 31 '12 at 15:59
2  
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
2  
It's never too late to educate the OP about the folly of his ways. :-P –  Martijn Pieters Aug 31 '12 at 16:02
    
@Martijn I did end up using [0] & [-1] since I was splitting a string into the list and I would have had to split it again to get the length. The Zen of Python wins again (Simple is better than complex.) ;). –  chown Aug 31 '12 at 18:22

You can do it like this:

some_list[0::len(some_list)-1]
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What about this?

>>> first_element, last_element = some_list[0], some_list[-1]
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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')
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1  
Numpy is just way too awesome ... –  mgilson Aug 31 '12 at 16:01
    
numpy usually makes me smile! –  jterrace Aug 31 '12 at 16:02
3  
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
    
@DSM Make an answer –  Oleh Prypin Aug 31 '12 at 16:10
    
@DSM did not know that, that's cool. updated answer –  jterrace Aug 31 '12 at 16:10
first, last = some_list[0], some_list[-1]
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Actually, I just figured it out:

In [20]: some_list[::len(some_list) - 1]
Out[20]: ['1', 'F']
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This worked for me:

some_list[0::-1]
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