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I often find myself having to work with the last n items in a sequence, where n may be 0. The problem is that trying to slice with [-n:] won't work in the case of n == 0, so awkward special case code is required. For example

if len(b): 
    assert(isAssignableSeq(env, self.stack[-len(b):], b))
    newstack = self.stack[:-len(b)] + a
else: #special code required if len=0 since slice[-0:] doesn't do what we want
    newstack = self.stack + a

My question is - is there any way to get this behavior without requiring the awkward special casing? The code would be much simpler if I didn't have to check for 0 all the time.

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5 Answers 5

up vote 5 down vote accepted

You can switch it from L[-2:] to L[len(L)-2:]

>>> L = [1,2,3,4,5]
>>> L[len(L)-2:]
[4, 5]
>>> L[len(L)-0:]
[]
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None of the answers are particularly appealing, but I think this one makes the most sense. If the expression resulting in L is short, than this is simpler then an explicit check. –  Antimony Jul 5 '12 at 5:12

Just use or's coalescing behavior.

>>> print 4 or None
4
>>> print -3 or None
-3
>>> print -0 or None
None
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I don't see how that relates to the question. –  Antimony Jul 5 '12 at 4:46
    
self.stack[:(-len(b) or None)] reduces to self.stack[:None] if len(b) is 0, which in turn reduces to self.stack[:], which is awful close to (but not exactly like) the expression in the else clause. –  Ignacio Vazquez-Abrams Jul 5 '12 at 4:48
1  
Using None works for the end of the slice, but what about the start? stack[None:] still gives the whole list. –  Antimony Jul 5 '12 at 4:53
2  
So then coalesce with a different value there. Say, len(self.stack). –  Ignacio Vazquez-Abrams Jul 5 '12 at 4:54
2  
At that point you might as well just use len(self.stack)-n (you'd be typing more using or). –  Amber Jul 5 '12 at 4:59

When you find yourself using a construct more than once, turn it into a function.

def last(alist, n):
    if n:
        return alist[:-n]
    return alist

newstack = last(self.stack, len(b)) + a

An even simpler version as suggested by EOL in the comments:

def last(alist, n):
    return alist[:-n] if n else alist[:]
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1  
You may also more simply write return alist[:-n] if n else alist. It may also be a good idea to copy the list every time: … else alist[:]. This actually leads to an even simpler answer, very close to Ignacio's: return alist[:-n or None]. –  EOL Jul 5 '12 at 4:57
1  
I think that if the original version used an else clause it would be clearer, or just as clear as the version suggested by @EOL –  jamylak Jul 5 '12 at 5:09
    
@jamylak, you may be right. I prefer leaving out the else when I can, but I admit it's down to personal preference. –  Mark Ransom Jul 5 '12 at 5:11
1  
@MarkRansom I agree but my preference is to always leave it in :D –  jamylak Jul 5 '12 at 5:12
1  
@MarkRansom, @jamylak: I don't think that using else should stricly be down to personal preference: using an explicit else instead of an implicit one (as in the current version of this answer) is arguably generally better: one does not need to read the full "then" part in order to know that the if… return structure is actually an if then else structure. This makes the code faster to parse, and therefore makes it more legible (in general: there are exceptions, for instance when the else clause would be very long). –  EOL Jul 5 '12 at 7:43

This is likely to be horribly inefficient, thanks to the double-reversing, but hopefully there's something to the idea of reversing the sequence to make the indexing easier:

a = [11, 7, 5, 8, 2, 6]

def get_last_n(seq, n):
    back_seq = seq[::-1]
    select = back_seq[:n]
    return select[::-1]

print(get_last_n(a, 3))
print(get_last_n(a, 0))

Returns:

[8, 2, 6]
[]
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You can slip a conditional in there

L[-i if i else len(L):]

I think this version is less clear. You should use a comment along side it

L[-i or len(L):]
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A simple len(L)-i is shorter and clearer –  Antimony Jul 5 '12 at 12:35
    
@Antimony, shorter yes, clearer maybe, slower yes –  John La Rooy Jul 5 '12 at 12:45

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