586

I want to remove all empty strings from a list of strings in python.

My idea looks like this:

while '' in str_list:
    str_list.remove('')

Is there any more pythonic way to do this?

  • 5
    You should never modify the list you're iterating over. Further more, your loop will only remove from the start of your list an stop as soon as a non-empty string is fiund. – Ivo van der Wijk Oct 2 '10 at 12:04
  • 36
    @Ivo, neither of those statements are true. You should never modify a list that your iterating over using for x in list If you are using a while loop then it's fine. the loop demonstrated will remove empty strings until there are no more empty strings and then stop. I actually hadn't even looked at the question (just the title) but I answered with the exact same loop as a possibility! If you don't want to use comprehensions or filters for sake of memory, it's a very pythonic solution. – aaronasterling Oct 2 '10 at 12:55
  • 7
    @AaronMcSmooth You are correct, I made wrong assumptions about the loop because I didn't look good enough. My bad – Ivo van der Wijk Oct 2 '10 at 12:57
  • 4
    Still a very valid point to never change the list you're iterating over :) – Eduard Luca Feb 12 '16 at 21:09
  • 1
    @EduardLuca if the point of iterating over a list is to change it, then that's the opposite of what you should do. You just have to be careful that you know that you do not cause an unexpected behavior by doing so. – JFA Apr 1 '16 at 16:16

14 Answers 14

988

I would use filter:

str_list = filter(None, str_list) # fastest
str_list = filter(bool, str_list) # fastest
str_list = filter(len, str_list)  # a bit slower
str_list = filter(lambda item: item, str_list) # slower than list comprehension

Python 3 returns an iterator from filter, so should be wrapped in a call to list()

str_list = list(filter(None, str_list)) # fastest

(etc.)

Tests:

>>> timeit('filter(None, str_list)', 'str_list=["a"]*1000', number=100000)
2.4797441959381104
>>> timeit('filter(bool, str_list)', 'str_list=["a"]*1000', number=100000)
2.4788150787353516
>>> timeit('filter(len, str_list)', 'str_list=["a"]*1000', number=100000)
5.2126238346099854
>>> timeit('[x for x in str_list if x]', 'str_list=["a"]*1000', number=100000)
13.354584932327271
>>> timeit('filter(lambda item: item, str_list)', 'str_list=["a"]*1000', number=100000)
17.427681922912598
  • 7
    If you're that pressed for performance, itertool's ifilter is even faster—>>> timeit('filter(None, str_list)', 'str_list=["a"]*1000', number=100000) 2.3468542098999023; >>> timeit('itertools.ifilter(None, str_list)', 'str_list=["a"]*1000', number=100000) 0.04442191123962402. – Humphrey Bogart Jul 21 '11 at 11:02
  • 1
    @BeauMartínez the timeit for itertools.ifilter is not completely accurate because the generator has not been evaluated. It should be wrapped with list(). filter(bool) -> 1.367577075958252, ifilter(bool) -> 0.032318115234375, list(ifilter(bool)) -> 1.8174781799316406 – cpburnz Aug 23 '12 at 22:06
  • 4
    @cpburnz Very true. However, with ifilter results are evaluated lazily, not in one go—I'd argue that for most cases ifilter is better. Interesting that using filter is still faster than wrapping an ifilter in a list though. – Humphrey Bogart Sep 14 '12 at 11:03
  • 2
    If you do this to a list of numbers, note that zeroes will also be removed (note: I only used the first 3 methods), so you'll need an alternate method. – SnoringFrog Apr 22 '14 at 6:29
  • 3
    @whoever-mentions-about-or-imply-Python-3, please just edit and update the answer. We were only discussing for the Python 2 when this question was asked, even Python 3 was released almost 2 years. But do update both Python 2 and 3 results. – livibetter Mar 29 '16 at 22:22
199

List comprehensions

strings = ["first", "", "second"]
[x for x in strings if x]

Output: ['first', 'second']

Edit: Shortened as suggested

  • 46
    This solution is x9 times slower than filter(None, my_list). – Kee Mar 6 '12 at 9:20
  • 24
    @kee It does not matter if it is slower than filter(). list comprehensions are the pythonic solution. – Tritium21 Feb 21 '15 at 18:17
  • 20
    Readable code is very very important. Pre-optimization is very very dangerous. – jskulski Aug 13 '15 at 19:49
  • 9
    I like this solution because it's easily adaptable. If I needed to remove not only empty strings but strings that are just whitespace, for example: [x for x in strings if x.strip()]. – Bond Dec 29 '15 at 16:28
  • 10
    For all those upvoters for the comment about this solution being much slower than filter(None, my_list) : docs.python.org/2/library/functions.html#filter This page says, when first parameter of filter() is None it is equivalent to [item for item in my_list if item] – smRaj Jan 29 '16 at 17:14
61

filter actually has a special option for this:

filter(None, sequence)

It will filter out all elements that evaluate to False. No need to use an actual callable here such as bool, len and so on.

It's equally fast as map(bool, ...)

  • 4
    This is a python idiom, in fact. It is also the only time I still use filter(), list comprehensions have taken over everywhere else. – kaleissin Feb 18 '14 at 8:24
  • This is the same answer as stackoverflow.com/a/3845453/1224827 – Blairg23 Sep 13 '16 at 8:09
  • Neigher of the methods can remove empty strings with one or more spaces? like thisstrings = ["first", " ", "second"] – Deepa MG Jun 29 '18 at 9:33
21
>>> lstr = ['hello', '', ' ', 'world', ' ']
>>> lstr
['hello', '', ' ', 'world', ' ']

>>> ' '.join(lstr).split()
['hello', 'world']

>>> filter(None, lstr)
['hello', ' ', 'world', ' ']

Compare time

>>> from timeit import timeit
>>> timeit('" ".join(lstr).split()', "lstr=['hello', '', ' ', 'world', ' ']", number=10000000)
4.226747989654541
>>> timeit('filter(None, lstr)', "lstr=['hello', '', ' ', 'world', ' ']", number=10000000)
3.0278358459472656

Notice that filter(None, lstr) does not remove empty strings with a space ' ', it only prunes away '' while ' '.join(lstr).split() removes both.

To use filter() with white space strings removed, it takes a lot more time:

>>> timeit('filter(None, [l.replace(" ", "") for l in lstr])', "lstr=['hello', '', ' ', 'world', ' ']", number=10000000)
18.101892948150635
  • it won't work if you have space among the string of a word. for example: ['hello world', ' ', 'hello', ' '] . >> ['helloworld', ' ', 'hello', ' '] do you have any other solution to keep spaces within an item in the list but removing others? – Reihan_amn Feb 6 '18 at 19:06
  • which one won't work? – Aziz Alto Feb 6 '18 at 19:22
  • ' '.join(lstr).split() I tried! – Reihan_amn Feb 6 '18 at 21:41
12

Reply from @Ib33X is awesome. If you want to remove every empty string, after stripped. you need to use the strip method too. Otherwise, it will return the empty string too if it has white spaces. Like, " " will be valid too for that answer. So, can be achieved by.

strings = ["first", "", "second ", " "]
[x.strip() for x in strings if x.strip()]

The answer for this will be ["first", "second"].
If you want to use filter method instead, you can do like
list(filter(lambda item: item.strip(), strings)). This is give the same result.

  • 1
    The best way in my opinion. Especially if there are strings in array instead of integers. – Евгений Антипов Aug 8 '16 at 19:46
11

Instead of if x, I would use if X != '' in order to just eliminate empty strings. Like this:

str_list = [x for x in str_list if x != '']

This will preserve None data type within your list. Also, in case your list has integers and 0 is one among them, it will also be preserved.

For example,

str_list = [None, '', 0, "Hi", '', "Hello"]
[x for x in str_list if x != '']
[None, 0, "Hi", "Hello"]
  • 1
    If your lists have disparate types (except None), you may have a bigger problem. – Tritium21 Feb 21 '15 at 18:14
  • What types? I tried with int and other numeric types, strings, lists, tupes, sets and None and no problems there. I could see that if there are any user defined types that do not support str method might give a problem. Should I be worried about any other? – thiruvenkadam Feb 23 '15 at 6:53
  • 1
    If you have a str_list = [None, '', 0, "Hi", '', "Hello"], it is a sign of a poorly designed application. You shouldn't have more than one interface (type) and None in the same list. – Tritium21 Feb 23 '15 at 16:21
  • 1
    Retrieving data from db? list of arguments for a function while doing automated testing? – thiruvenkadam Feb 24 '15 at 5:22
  • 2
    Those are usually tuples. – Tritium21 Feb 24 '15 at 10:47
8

Depending on the size of your list, it may be most efficient if you use list.remove() rather than create a new list:

l = ["1", "", "3", ""]

while True:
  try:
    l.remove("")
  except ValueError:
    break

This has the advantage of not creating a new list, but the disadvantage of having to search from the beginning each time, although unlike using while '' in l as proposed above, it only requires searching once per occurrence of '' (there is certainly a way to keep the best of both methods, but it is more complicated).

  • 1
    You can edit the list in place by doing ary[:] = [e for e in ary if e]. Much cleaner and doesn't use exceptions for control flow. – Krzysztof Karski Jun 28 '17 at 12:01
  • 1
    Well, that's not really "in place" -- I'm pretty sure this creates a new list and just assigns it to the old one's name. – Andrew Jaffe Aug 13 '18 at 9:22
7

Use filter:

newlist=filter(lambda x: len(x)>0, oldlist) 

The drawbacks of using filter as pointed out is that it is slower than alternatives; also, lambda is usually costly.

Or you can go for the simplest and the most iterative of all:

# I am assuming listtext is the original list containing (possibly) empty items
for item in listtext:
    if item:
        newlist.append(str(item))
# You can remove str() based on the content of your original list

this is the most intuitive of the methods and does it in decent time.

  • 7
    Welcome to SO. You have not been ignored. You have not been attacked by an anynonmous downvoter. You have been given feedback. Amplifying: Your proposed first arg for filter is worse than lambda x: len(x) which is worse than lambda x : x which is the worst of the 4 solutions in the selected answer. Correct functioning is preferred, but not sufficient. Hover your cursor over the downvote button: it says "This answer is not useful". – John Machin Jan 11 '12 at 11:23
  • 7
    ... and you shouldn't use the name of a builtin like list as a variable. – John Machin Jan 11 '12 at 11:25
6

Keep in mind that if you want to keep the white spaces within a string, you may remove them unintentionally using some approaches. If you have this list

['hello world', ' ', '', 'hello'] what you may want ['hello world','hello']

first trim the list to convert any type of white space to empty string:

space_to_empty = [x.strip() for x in _text_list]

then remove empty string from them list

space_clean_list = [x for x in space_to_empty if x]
5

As reported by Aziz Alto filter(None, lstr) does not remove empty strings with a space ' ' but if you are sure lstr contains only string you can use filter(str.strip, lstr)

>>> lstr = ['hello', '', ' ', 'world', ' ']
>>> lstr
['hello', '', ' ', 'world', ' ']
>>> ' '.join(lstr).split()
['hello', 'world']
>>> filter(str.strip, lstr)
['hello', 'world']

Compare time on my pc

>>> from timeit import timeit
>>> timeit('" ".join(lstr).split()', "lstr=['hello', '', ' ', 'world', ' ']", number=10000000)
3.356455087661743
>>> timeit('filter(str.strip, lstr)', "lstr=['hello', '', ' ', 'world', ' ']", number=10000000)
5.276503801345825

The fastest solution to remove '' and empty strings with a space ' ' remains ' '.join(lstr).split().

As reported in a comment the situation is different if your strings contain spaces.

>>> lstr = ['hello', '', ' ', 'world', '    ', 'see you']
>>> lstr
['hello', '', ' ', 'world', '    ', 'see you']
>>> ' '.join(lstr).split()
['hello', 'world', 'see', 'you']
>>> filter(str.strip, lstr)
['hello', 'world', 'see you']

You can see that filter(str.strip, lstr) preserve strings with spaces on it but ' '.join(lstr).split() will split this strings.

  • 1
    This only works if your strings do not contain spaces. Otherwise, you're splitting those strings as well. – phillyslick Jul 25 '17 at 13:32
  • 1
    @BenPolinsky as you reported join solution will split strings with space but filter will not. Thank you for you comment I improved my answer. – Paolo Melchiorre Aug 31 '17 at 8:07
0

To eliminate empties after stripping:

slist = map(lambda s: s and s.strip(), slist)
slist = filter(None, slist)

Some PROs:

  • lazy, based on generators, to save memory;
  • decent understandability of the code;
  • fast, selectively using builtins and comprehensions.

    def f1(slist):
        slist = [s and s.strip() for s in slist]
        return list(filter(None, slist))
    
    def f2(slist):
        slist = [s and s.strip() for s in slist]
        return [s for s in slist if s]
    
    
    def f3(slist):
        slist = map(lambda s: s and s.strip(), slist)
        return list(filter(None, slist))
    
    def f4(slist):
        slist = map(lambda s: s and s.strip(), slist)
        return [s for s in slist if s]
    
    %timeit f1(words)
    10000 loops, best of 3: 106 µs per loop
    
    %timeit f2(words)
    10000 loops, best of 3: 126 µs per loop
    
    %timeit f3(words)
    10000 loops, best of 3: 165 µs per loop
    
    %timeit f4(words)
    10000 loops, best of 3: 169 µs per loop
    
-2
str_list = ['2', '', '2', '', '2', '', '2', '', '2', '']

for item in str_list:
    if len(item) < 1:  
        str_list.remove(item)

Short and sweet.

-3

Loop through the existing string list and then check for a empty string, if it's not empty populate a new string list with the non-empty values and then replace the old string list with the new string list

-3

filter(None, str) does not remove empty strings with a space ' ', it only prunes away '' and ' '.

join(str).split() removes both. but if your element of list having space then it will change your list elements also because it's joining first your all elements of list then spiting them by space so You should use : -

str = ['hello', '', ' ', 'world', ' ']
print filter(lambda x:x != '', filter(lambda x:x != ' ', str))

It will remove both and won't effect your elements also Like :-

str = ['hello', '', ' ', 'world ram', ' ']
print  ' '.join(lstr).split()
print filter(lambda x:x != '', filter(lambda x:x != ' ', lstr))

output:-

['hello', 'world', 'ram'] <-------------- output of ' '.join(lstr).split()
['hello', 'world ram']

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