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I have a function that is supposed to return elements from a list in the inclusive slice [a, b]. If a,b are both known, then this is a no-brainer:

def my_slice(some_list, a, b):
    return some_list[a:b+1]

But, sometimes the user might want the elements in the range [a, final_index] or [0, b] or [0, final_index]. Naively you might just add default values to the parameters

def my_slice(some_list, a=0, b=-1):
    return some_list[a:b+1]

But this will fail

>>> li = range(5)
>>> my_slice(li)
[]

Because this is the same as li[0:0] which is of course an empty list.

I can do

def my_slice(some_list, a=0, b=-1):
    return some_list[a:] if b==-1 else some_list[a:b+1]

but I am curious if there is some other way.

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2 Answers 2

You always have to test for parameter b. I would do:

def my_slice(some_list, a=0, b=None):

  return some_list[a:b+1] if b else some_list[a:]
share|improve this answer

How about

def my_slice(some_list, a=0, b=-1):
    if some_list:
        return some_list[a:b] + [some_list[b]]
    else:
        return some_list

I think that should cover all cases:

>>> my_slice([1,2,3,4])
[1, 2, 3, 4]
>>> my_slice([1,2,3,4], 1,2)
[2, 3]
>>> my_slice([1,2,3,4], 1,3)
[2, 3, 4]
>>> my_slice([1,2,3,4], b=1)
[1, 2]
>>> my_slice([1,2,3,4], a=2)
[3, 4]
>>> my_slice([])
[]

I'm not sure how you would want to handle slices that extend the list boundaries - ignore them or raise an error?

share|improve this answer
    
Didn't really think of that, to be honest. –  Hannes Ovrén Dec 9 '13 at 13:22

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