125

I'm looking for an equivalent in python of dictionary.get(key, default) for lists. Is there any one liner idiom to get the nth element of a list or a default value if not available?

For example, given a list myList I would like to get myList[0], or 5 ifmyList is an empty list.

Thanks.

106
l[index] if index < len(l) else default

To support negative indices we can use:

l[index] if -len(l) <= index < len(l) else default
  • 4
    standard caveat: 2.5+ only – Gregg Lind Mar 22 '10 at 13:44
  • 9
    You seem to forgot the case of negative index. Eg. index == -1000000 should return default. – nodakai Oct 4 '12 at 3:50
  • 3
    @nodakai, good point. I've sometimes been bitten by this. x[index] if 0 <= index < len(x) else default would be better if index can ever be negative. – Ben Hoyt Jul 28 '13 at 21:51
  • 3
    @nodakai wow - that is a great example of why it may be better to use try/except, than to try to correctly code the test so it never fails. I still don't like to rely on try/except, for a case that I know will happen, but this increases my willingness to consider it. – ToolmakerSteve Dec 15 '13 at 3:27
  • 5
    @ToolmakerSteve: Your formula for valid_index() is incorrect. Negative indices are legal in Python - it should be -len(l) <= index < len(l). – Tim Pietzcker Jan 11 '14 at 6:54
48
try:
   a = b[n]
except IndexError:
   a = default

Edit: I removed the check for TypeError - probably better to let the caller handle this.

  • 2
    I like this. Just wrap it around a function so that you can call it with an iterable as an argument. Easier to read. – Noufal Ibrahim Mar 22 '10 at 12:27
26
(a[n:]+[default])[0]

This is probably better as a gets larger

(a[n:n+1]+[default])[0]

This works because if a[n:] is an empty list if n => len(a)

Here is an example of how this works with range(5)

>>> range(5)[3:4]
[3]
>>> range(5)[4:5]
[4]
>>> range(5)[5:6]
[]
>>> range(5)[6:7]
[]

And the full expression

>>> (range(5)[3:4]+[999])[0]
3
>>> (range(5)[4:5]+[999])[0]
4
>>> (range(5)[5:6]+[999])[0]
999
>>> (range(5)[6:7]+[999])[0]
999
  • 4
    Would you write this in actual code without a comment to explain it? – Peter Hansen Mar 22 '10 at 13:41
  • 1
    @Peter Hansen, only if I was golfing ;) However it does work on all versions of Python. The Accepted answer only works on 2.5+ – John La Rooy Mar 22 '10 at 20:45
  • 2
    It invloves creating 3 temporary lists and accessing 2 indices in order to select an item, though. – Joachim Jablon Apr 3 '14 at 9:48
  • While I'd never do this in "real" code, it's a nice concise one-liner that I can easily use in a python REPL, so you get my upvote. – Cookyt Feb 21 '17 at 5:42
  • next(iter(lst[i:i+1]), default) -- just another entry in the cryptic ugly one-liners competition. – jfs Mar 4 '18 at 10:55
23

Just discovered that :

next(iter(myList), 5)

iter(l) returns an iterator on myList, next() consumes the first element of the iterator, and raises a StopIteration error except if called with a default value, which is the case here, the second argument, 5

This only works when you want the 1st element, which is the case in your example, but not in the text of you question, so...

Additionally, it does not need to create temporary lists in memory and it works for any kind of iterable, even if it does not have a name (see Xiong Chiamiov's comment on gruszczy's answer)

  • 2
    Combined with the other answers: next(iter(myList[n:n+1]), 5) Now it works for the nth element. – Alfe Oct 29 '18 at 13:31
  • That would not work with non lists. At this point, try:except-ing an IndexError reads like a better idea IMHO. Also, it creates a list in memory. – Joachim Jablon Nov 6 '18 at 20:30
  • The try variant isn't a one-liner (ask asked for by OP). It only works for lists because myList is a list as specified by OP (to be precise, it is something indexable). Creating a copy in memory isn't costly here because I'm creating a list of one single (or none) element here. Sure, a little overhead, but not worth mentioning unless you do that millions of times in a loop. Btw, I guess creating and catching an IndexError exception is probably more costly. – Alfe Nov 7 '18 at 10:32
  • readability counts :) If you're at the point where raising an IndexError has a significant cost, maybe you should be doing the whole thing in Python. – Joachim Jablon Jan 12 at 14:19
16
(L[n:n+1] or [somedefault])[0]
  • 1
    +1 because this made me go learn what [] or ... did. However, I would personally just use the accepted solution, as it reads easily (for novices). Granted, wrapping it in a 'def' with comment would make that largely a non-issue. – ToolmakerSteve Dec 15 '13 at 3:20
  • What if L[n] == False or L[n] == None or L[n] == [] or more globally anything that evaluates to False ? – Joachim Jablon Apr 3 '14 at 9:44
  • @JoachimJablon: Still works. The slice returns a list, and [False] is true. – Ignacio Vazquez-Abrams Apr 3 '14 at 14:36
  • Oh, didn't realised the list was checked and not the value, indeed. – Joachim Jablon Apr 4 '14 at 14:15
  • Why do you wrap this in a tuple? I think myval = l[n:n+1] or [somedefault] would work just fine? – Rotareti Mar 1 '18 at 18:03
4

... looking for an equivalent in python of dict.get(key, default) for lists

There is an itertools recipes that does this for general iterables. For convenience, you can > pip install more_itertools and import this third-party library that implements such recipes for you:

Code

import more_itertools as mit


mit.nth([1, 2, 3], 0)
# 1    

mit.nth([], 0, 5)
# 5    

Detail

Here is the implementation of the nth recipe:

def nth(iterable, n, default=None):
    "Returns the nth item or a default value"
    return next(itertools.islice(iterable, n, None), default)

Like dict.get(), this tool returns a default for missing indices. It applies to general iterables:

mit.nth((0, 1, 2), 1)                                      # tuple
# 1

mit.nth(range(3), 1)                                       # range generator (py3)
# 1

mit.nth(iter([0, 1, 2]), 1)                                # list iterator 
# 1  
1

Combining @Joachim's with the above, you could use

next(iter(my_list[index:]), default)

Examples:

next(iter(range(10)[8:]), 11)
8
>>> next(iter(range(10)[12:]), 11)
11

Or, maybe more clear, but without the len

my_list[index] if my_list[index:] else default
1

Using Python 3.4's contextlib.suppress(exceptions) to build a getitem() method similar to getattr().

import contextlib

def getitem(iterable, index, default=None):
    """Return iterable[index] or default if IndexError is raised."""
    with contextlib.suppress(IndexError):
        return iterable[index]
    return default

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