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I'm sure there's a simpler way of doing this that's just not occurring to me.

I'm calling a bunch of methods that return a list. The list may be empty. If the list is non-empty, I want to return the first item; otherwise, I want to return None. This code works:

list = get_list()
if len(list) > 0: return list[0]
return None

It seems to me that there should be a simple one-line idiom for doing this, but for the life of me I can't think of it. Is there?

Edit:

The reason that I'm looking for a one-line expression here is not that I like incredibly terse code, but because I'm having to write a lot of code like this:

x = get_first_list()
if x:
    # do something with x[0]
    # inevitably forget the [0] part, and have a bug to fix
y = get_second_list()
if y:
    # do something with y[0]
    # inevitably forget the [0] part AGAIN, and have another bug to fix

What I'd like to be doing can certainly be accomplished with a function (and probably will be):

def first_item(list_or_none):
    if list_or_none: return list_or_none[0]

x = first_item(get_first_list())
if x:
    # do something with x
y = first_item(get_second_list())
if y:
    # do something with y

I posted the question because I'm frequently surprised by what simple expressions in Python can do, and I thought that writing a function was a silly thing to do if there was a simple expression could do the trick. But seeing these answers, it seems like a function is the simple solution.

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8  
btw, on Python 2.6+ you could use next(iter(your_list), None) instead of first_item(your_list) assuming your_list is not None (get_first_list() and get_second_list() must always return an iterable). –  J.F. Sebastian Dec 13 '11 at 15:57
1  
I think you mean next(iter(your_list)), since if you supply a second argument to iter, you're telling it that the first argument is callable. –  Robert Rossney Dec 17 '11 at 20:53
2  
No, None here is the second parameter for next(), not iter(). next() returns its second parameter if given instead of raising StopIteration if your_list is empty. –  J.F. Sebastian Dec 17 '11 at 22:59
    
Oh, sweet. Thanks. –  Robert Rossney Dec 18 '11 at 1:53
    
This is the case when you should learn programming deeper to be able to choose another language. –  Nakilon Jan 29 at 14:05
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16 Answers

up vote 19 down vote accepted
def get_first(iterable, default=None):
    if iterable:
        for item in iterable:
            return item
    return default

Example:

x = get_first(get_first_list())
if x:
    ...
y = get_first(get_second_list())
if y:
    ...

Another option is to inline the above function:

for x in get_first_list() or []:
    # process x
    break # process at most one item
for y in get_second_list() or []:
    # process y
    break

To avoid break you could write:

for x in yield_first(get_first_list()):
    x # process x
for y in yield_first(get_second_list()):
    y # process y

Where:

def yield_first(iterable):
    for item in iterable or []:
        yield item
        return
share|improve this answer
    
That last option is almost exactly what I'm looking for: it's clear, it works, and it doesn't require me to define a new function. I'd say "exactly" if the break were somehow not needed, because the risk of omitting it is not insignificant. But this approach has the ring of truth. –  Robert Rossney Dec 16 '08 at 0:56
    
Upvoted for the for loop suggestion. You should really split the answer. –  itsadok Jun 1 '09 at 7:19
    
Oh, I don't like this at all. If any item in the list evaluates False, that value is discarded and replaced. If you have an empty string "" in the list, that is discarded and replaced by an empty list []. If you have a 0, also replaced by []. If you have False in there, also replaced. Etc. You might get away with this in a specific case, but this is a bad habit to develop. –  steveha Nov 22 '09 at 4:10
3  
@steveha: bool(lst) tells us whether len(lst) > 0 it doesn't tell us anything about what items lst contains e.g., bool([False]) == True; therefore the expression [False] or [] returns [False], the same is for [0] or [] it returns [0]. –  J.F. Sebastian Nov 27 '09 at 23:43
    
@RobertRossney: I've added yield_first() to avoid break statement. –  J.F. Sebastian May 26 '12 at 19:47
show 2 more comments

The best way is this:

a = get_list()
return a[0] if a else None

You could also do it in one line, but it's much harder for the programmer to read:

return (get_list()[:1] or [None])[0]
share|improve this answer
    
Oops. Should have mentioned this is a Python 2.4 app. –  Robert Rossney Dec 12 '08 at 21:47
4  
That's ok, the people of the future thank you. :) –  Adam Jul 17 '13 at 21:28
    
@Adam: the future may use next(iter(your_list), None) –  J.F. Sebastian Apr 6 at 11:02
add comment
(get_list() or [None])[0]

That should work.

BTW I didn't use the variable list, because that overwrites the builtin list() function.

Edit: I had a slightly simpler, but wrong version here earlier.

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2  
This is clever and works, but I think "return foo[0] if foo else None" as suggested by efotinis is a little easier to follow for maintenance. –  Jay Dec 12 '08 at 20:21
1  
The question was asking for a one line solution, so I ruled that out. –  recursive Dec 12 '08 at 20:25
    
Neither of those expressions work if get_list() returns None; you get "TypeError: 'NoneType' object is unsubscriptable." or "TypeError: unsupported operand type(s) for +: 'NoneType' and 'list'." –  Robert Rossney Dec 13 '08 at 19:46
1  
In the question, it says that the methods return lists, of which None is not one. So given the requirements, I still believe they both work. –  recursive Dec 13 '08 at 20:30
    
My mistake: you're quite right. –  Robert Rossney Dec 16 '08 at 4:17
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The OP's solution is nearly there, there are just a few things to make it more Pythonic.

For one, there's no need to get the length of the list. Empty lists in Python evaluate to False in an if check. Just simply say

if list:

Additionally, it's a very Bad Idea to assign to variables that overlap with reserved words. "list" is a reserved word in Python.

So let's change that to

some_list = get_list()
if some_list:

A really important point that a lot of solutions here miss is that all Python functions/methods return None by default. Try the following below.

def does_nothing():
    pass

foo = does_nothing()
print foo

Unless you need to return None to terminate a function early, it's unnecessary to explicitly return None. Quite succinctly, just return the first entry, should it exist.

some_list = get_list()
if some_list:
    return list[0]

And finally, perhaps this was implied, but just to be explicit (because explicit is better than implicit), you should not have your function get the list from another function; just pass it in as a parameter. So, the final result would be

def get_first_item(some_list): 
    if some_list:
        return list[0]

my_list = get_list()
first_item = get_first_item(my_list)

As I said, the OP was nearly there, and just a few touches give it the Python flavor you're looking for.

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1  
Why is 'list' a reserved word in python? Or, more to the point, where does it say that 'list' is a reserver word in python? Or, more to the point, how did you verify that 'list' is a reserved word in python? Considering that I can declare a variable named 'list', it is clearly not a reserved word. –  Lasse V. Karlsen Dec 12 '08 at 22:48
    
Point taken. The truly reserved words in Python can be found here tinyurl.com/424663 However, it's a good idea to consider builtin functions and types as reserved. list() actually generates a list. Same goes for dict, range, etc. –  gotgenes Dec 12 '08 at 23:01
    
I would combine the last two lines, eliminating the temporary variable (unless you need my_list further). That improves readability. –  Svante Dec 13 '08 at 19:53
    
This is pretty much the answer I was gravitating towards. –  Robert Rossney Dec 13 '08 at 20:09
1  
get_first_item should accept a default parameter (like dict.get) which defaults itself to None. Thus the function interface communicates explicitly what happens if my_list is empty. –  J.F. Sebastian Dec 13 '08 at 23:21
show 1 more comment
for item in get_list():
    return item
share|improve this answer
    
This is succinct and beautiful. –  gotgenes Dec 12 '08 at 23:17
    
Tragically, it doesn't work; it throws a "TypeError: 'NoneType' object is not iterable" exception if get_list() returns None. –  Robert Rossney Dec 13 '08 at 20:05
    
To fix: "for item in get_list() or []:" –  itsadok Jun 1 '09 at 7:18
4  
The question clearly presumes get_list returns a list. len and getitem are called on its result. –  Coady Jun 11 '09 at 0:52
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Frankly speaking, I do not think there is a better idiom: your is clear and terse - no need for anything "better". Maybe, but this is really a matter of taste, you could change if len(list) > 0: with if list: - an empty list will always evaluate to False.

On a related note, Python is not Perl (no pun intended!), you do not have to get the coolest code possible.
Actually, the worst code I have seen in Python, was also very cool :-) and completely unmaintainable.

By the way, most of the solution I have seen here do not take into consideration when list[0] evaluates to False (e.g. empty string, or zero) - in this case, they all return None and not the correct element.

share|improve this answer
    
In Python, it is considered good style to write if lst: rather than if len(lst) > 0:. Also, don't use Python keywords as variable names; it ends in tears. It's common to use L or lst as the variable name for some list. I'm sure in this case you didn't mean to suggest actually using list as a variable name, you just meant "some list". And, +1 for "when lst[0] evaluates to False". –  steveha Nov 22 '09 at 4:15
    
Yes, I was just maintaining the same kind of name of OP, for better clarity. But you are definitely right: some care should be always be taken not to override Python keywords. –  Roberto Liffredo Nov 22 '09 at 22:33
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For the heck of it, here's yet another possibility.

return None if not get_list() else get_list()[0]

Benefit: This method handles the case where get_list is None, without using try/except or assignment. To my knowledge, none of the implementations above can handle this possibility

Downfalls: get_list() is called twice, quite unnecessarily, especially if the list is long and/or created when the function is called.

The truth is, it's more "Pythonic" in my opinion, to provide code that is readable than it is to make a one-liner just because you can :) I have to admit I am guilty many times of unnecessarily compacting Python code just because I'm so impressed how small I can make a complex function look :)

Edit: As user "hasen j" commented below, the conditional expression above is new in Python 2.5, as described here: http://www.python.org/doc/2.5/whatsnew/pep-308.html. Thanks, hasen!

share|improve this answer
    
you should add a note that this only works in 2.5 + –  hasenj Dec 12 '08 at 23:01
1  
That calls get_list() twice, which is usually a bad idea. –  recursive Dec 25 '08 at 3:36
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try:
    return a[0]
except IndexError:
    return None
share|improve this answer
    
Exceptions generally aren't used for flow control. –  Matt Green Dec 12 '08 at 20:33
    
s/aren't/shouldn't be/ .... unfortunately –  Javier Dec 12 '08 at 20:50
    
I don't think making this code longer and adding exception-handling to it is exactly the idiom I was looking for. –  Robert Rossney Dec 12 '08 at 21:26
    
Agree with Matt and Javier. –  gotgenes Dec 12 '08 at 22:21
    
But this is a common Python idiom! For performance reasons, you might not use it; you will get better performance out of if len(a) > 0: but this is considered good style. Note how well this expresses the problem: "try to extract the head of a list, and if that doesn't work out, return None". Google search for "EAFP" or look here: python.net/~goodger/projects/pycon/2007/idiomatic/… –  steveha Nov 22 '09 at 4:23
show 2 more comments

Out of curiosity, I ran timings on two of the solutions. The solution which uses a return statement to prematurely end a for loop is slightly more costly on my machine with Python 2.5.1, I suspect this has to do with setting up the iterable.

import random
import timeit

def index_first_item(some_list):
    if some_list:
        return some_list[0]


def return_first_item(some_list):
    for item in some_list:
        return item


empty_lists = []
for i in range(10000):
    empty_lists.append([])

assert empty_lists[0] is not empty_lists[1]

full_lists = []
for i in range(10000):
    full_lists.append(list([random.random() for i in range(10)]))

mixed_lists = empty_lists[:50000] + full_lists[:50000]
random.shuffle(mixed_lists)

if __name__ == '__main__':
    ENV = 'import firstitem'
    test_data = ('empty_lists', 'full_lists', 'mixed_lists')
    funcs = ('index_first_item', 'return_first_item')
    for data in test_data:
        print "%s:" % data
        for func in funcs:
            t = timeit.Timer('firstitem.%s(firstitem.%s)' % (
                func, data), ENV)
            times = t.repeat()
            avg_time = sum(times) / len(times)
            print "  %s:" % func
            for time in times:
                print "    %f seconds" % time
            print "    %f seconds avg." % avg_time

These are the timings I got:

empty_lists:
  index_first_item:
    0.748353 seconds
    0.741086 seconds
    0.741191 seconds
    0.743543 seconds avg.
  return_first_item:
    0.785511 seconds
    0.822178 seconds
    0.782846 seconds
    0.796845 seconds avg.
full_lists:
  index_first_item:
    0.762618 seconds
    0.788040 seconds
    0.786849 seconds
    0.779169 seconds avg.
  return_first_item:
    0.802735 seconds
    0.878706 seconds
    0.808781 seconds
    0.830074 seconds avg.
mixed_lists:
  index_first_item:
    0.791129 seconds
    0.743526 seconds
    0.744441 seconds
    0.759699 seconds avg.
  return_first_item:
    0.784801 seconds
    0.785146 seconds
    0.840193 seconds
    0.803380 seconds avg.
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def head(iterable):
    try:
        return iter(iterable).next()
    except StopIteration:
        return None

print head(xrange(42, 1000)  # 42
print head([])               # None

BTW: I'd rework your general program flow into something like this:

lists = [
    ["first", "list"],
    ["second", "list"],
    ["third", "list"]
]

def do_something(element):
    if not element:
        return
    else:
        # do something
        pass

for li in lists:
    do_something(head(li))

(Avoiding repetition whenever possible)

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You could use Extract Method. In other words extract that code into a method which you'd then call.

I wouldn't try to compress it much more, the one liners seem harder to read than the verbose version. And if you use Extract Method, it's a one liner ;)

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Using the and-or trick:

a = get_list()
return a and a[0] or None
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Several people have suggested doing something like this:

list = get_list()
return list and list[0] or None

That works in many cases, but it will only work if list[0] is not equal to 0, False, or an empty string. If list[0] is 0, False, or an empty string, the method will incorrectly return None.

(I've created this bug in my own code one too many times!)

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1  
This should be a comment under the flawed answer(s) rather than a stand-alone answer. –  I. J. Kennedy May 19 '12 at 2:34
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And what about: next(iter(get_list()), None)? Might not be the fastest one here, but is standard (starting from Python 2.6) and succinct.

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This has already been given in the first comment to the question... –  Piotr Dobrogost Mar 29 '13 at 8:39
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Probably not the fastest solution, but nobody mentioned this option:

dict(enumerate(get_list())).get(0)

if get_list() can return None you can use:

dict(enumerate(get_list() or [])).get(0)

Advantages:

-one line

-you just call get_list() once

-easy to understand

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isn't the idiomatic python equivalent to C-style ternary operators

cond and true_expr or false_expr

ie.

list = get_list()
return list and list[0] or None
share|improve this answer
    
If a[0] is the number 0 or the empty string (or anything else that evaluates to false), this will return None instead of what a[0] actually is. –  Adam Rosenfield Dec 12 '08 at 22:00
    
ha, you're right. –  Jimmy Dec 12 '08 at 22:26
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