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Is there clean way to get the value at a list index of None if the index is out or range in Python?

The obvious way to do it would be this:

if len(the_list) > i:
    return the_list[i]
else:
    return None

However, the "verboseness" reduces code readability. Is there a clean, simple, one-liner that can be used instead?

Thanks!

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1  
I don't think this is a good idea. What about slices? Negative indexes? The ambiguity of a list with a None in it? –  Pyson Aug 29 '12 at 22:41

3 Answers 3

up vote 6 down vote accepted

Try:

try:
    return the_list[i]
except IndexError:
    return None

Or, one liner:

l[i] if i < len(l) else None

Example:

>>> l=range(5)
>>> i=6
>>> print(l[i] if i < len(l) else None)
None
>>> i=2
>>> print(l[i] if i < len(l) else None)
2
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1  
This has the unfortunate side-effect of using exceptions as control flow, which his original already doesn't and this isn't much less verbose. –  Daniel DiPaolo Aug 29 '12 at 21:00
    
This is indeed much better to do, but it isn't exactly less verbose, is it? –  BrtH Aug 29 '12 at 21:00
3  
@DanielDiPaolo: In python, using exceptions this way is encouraged and not frowned upon. –  BrtH Aug 29 '12 at 21:02
2  
@BrtH: well theres two schools of thought on that the LBYL (Look before you leap (if statements)) crowd and the EAFP (easier to ask forgiveness then permission (try/excepts)) crowd... but yeah in general using exceptions this way is definitely not frowned upon ... but i think it largely comes down to personal preference –  Joran Beasley Aug 29 '12 at 21:09
    
I doubt exception flow will be as performant as a simple if-else. –  julkiewicz Mar 20 '14 at 10:32
return the_list[i] if len(the_list) > i else None
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most verbose way imho... –  Joran Beasley Aug 29 '12 at 21:11
    
@JoranBeasley How in the world is a one liner more verbose than various multi-line statements? –  semicolon Feb 7 at 21:24

For your purposes you can exclude the else part as None is return by default if a given condition is not met.

def return_ele(x, i):
    if len(x) > i: return x[i]

Result

>>> x = [2,3,4]
>>> b = return_ele(x, 2)
>>> b
4
>>> b = return_ele(x, 5)
>>> b
>>> type(b)
<type 'NoneType'>
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