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Say I have a list,

l = [1, 2, 3, 4, 5, 6, 7, 8]

I want to grab the index of an arbitrary element and the values of its neighbors. For example,

i = l.index(n)
j = l[i-1]
k = l[i+1]

However, for the edge case when i == len(l) - 1 this fails. So I thought I'd just wrap it around,

if i == len(l) - 1:
    k = l[0]
else:
    k = l[i+1]

Is there a pythonic way to do this?

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Do you want a special behavior even if an index smaller than zero or larger than the length of the list is given? –  jimifiki Jan 21 '12 at 6:30
    
Just to wrap around. I always want j and k to point to something. And I want to be able to traverse the entire list via j or k. –  awfullyjohn Jan 21 '12 at 7:29
    
you accepted an answer not taking care of out-of-range indices... –  jimifiki Jan 22 '12 at 7:51
    
I'm confused. If you mod the index by the length of the list... how can it ever be out of range? –  awfullyjohn Jan 22 '12 at 20:16
    
I meant that k[10] has a meaning, I tought you didn't want it to mean k[2] and you wanted an error to be raised. That's all. –  jimifiki Jan 22 '12 at 20:41

4 Answers 4

up vote 15 down vote accepted

You could use the modulo operator!

i = len(l) - 1
jIndex = (i - 1) % len(l)
kIndex = (i + 1) % len(l)

j = l[jIndex]
k = l[kIndex]

Or, to be less verbose:

k = l[(i + 1) % len(l)]
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2  
A random comment: note that if 0 <= i < len(l), then l[(i + 1) % len(l)] can also be written l[i - (len(l)-1)], avoiding the modulo. (It gives an index that is often negative, which means counting from the end, but its value is correct.) –  Armin Rigo Jun 21 '13 at 9:50

The easiest way to wrap around a fixed length list is with the % (modulo) operator

list_element = my_list[idx % len(my_list)]

but anyway look at http://docs.python.org/library/itertools.html

from itertools import cycle

for p in cycle([1,2,3]):
  print "endless cycle:", p
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+1 for the itertools.cycle –  Eugen Jul 1 at 16:06

The typical way to fit values to a certain range is to use the % operator:

k = l[(i + 1) % len(l)]
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In case you do not want to wrap around, the most Pythonic answer would be to use slices. Missing neighbor substituted with None. E.g.:

def nbrs(l, e):
   i = l.index(e)
   return (l[i-1:i] + [None])[0], (l[i+1:i+2] + [None])[0]

This is how the function can work:

>>> nbrs([2,3,4,1], 1)
(4, None)
>>> nbrs([1,2,3], 1)
(None, 2)
>>> nbrs([2,3,4,1,5,6], 1)
(4, 5)
>>> nbrs([], 1)
Traceback (most recent call last):
  File "<stdin>", line 1, in <module>
  File "<stdin>", line 2, in nbrs
ValueError: 1 is not in list
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