517

Suppose this string:

The   fox jumped   over    the log.

Turning into:

The fox jumped over the log.

What is the simplest (1-2 lines) to achieve this, without splitting and going into lists?

2
  • 27
    What is your aversion to lists? They are an integral part of the language, and " ".join(list_of_words) is one of the core idioms for making a list of strings into a single space-delimited string.
    – PaulMcG
    Oct 9 '09 at 23:32
  • 3
    @Tom/@Paul: For simple strings, (string) join would be simple and sweet. But it gets more complex if there is other whitespace that one does NOT want to disturb... in which case "while" or regex solutions would be best. I've posted below a string-join that would be "correct", with timed test results for three ways of doing this. Apr 9 '13 at 21:49

24 Answers 24

718
>>> import re
>>> re.sub(' +', ' ', 'The     quick brown    fox')
'The quick brown fox'
12
  • 30
    This solution only handles single space characters. It wouldn't replace a tab or other whitespace characters handled by \s like in nsr81's solution. Oct 9 '09 at 22:21
  • 3
    That's true, string.split also handles all kinds of whitespaces.
    – Josh Lee
    Oct 10 '09 at 7:55
  • 8
    I prefer this one because it only focuses on the space character and doesn't affect characters like '\n's.
    – hhsaffar
    Oct 17 '14 at 20:13
  • 2
    Yes right. But before that strip() should be done. It will remove spaces from both end. Dec 29 '16 at 12:46
  • 32
    You can use re.sub(' {2,}', ' ', 'The quick brown fox') to prevent redundant replacements of single-space with single-space. May 16 '18 at 13:51
675

foo is your string:

" ".join(foo.split())

Be warned though this removes "all whitespace characters (space, tab, newline, return, formfeed)" (thanks to hhsaffar, see comments). I.e., "this is \t a test\n" will effectively end up as "this is a test".

9
  • 25
    “Without splitting and going into lists...”
    – Gumbo
    Oct 9 '09 at 21:57
  • 89
    I ignored "Without splitting and going into lists..." because I still think it's the best answer. Oct 10 '09 at 3:44
  • 1
    This removes trailing spaces. If you want to keep them do: text[0:1] + " ".join(text[1:-1].split()) + text[-1]
    – user984003
    Aug 12 '13 at 14:49
  • 1
    6x faster than the re.sub() solution, too. Mar 20 '20 at 0:45
  • 1
    @nerdfever.com how would you verify that it is 6x faster? Apr 21 '20 at 20:49
114
import re
s = "The   fox jumped   over    the log."
re.sub("\s\s+" , " ", s)

or

re.sub("\s\s+", " ", s)

since the space before comma is listed as a pet peeve in PEP 8, as mentioned by user Martin Thoma in the comments.

11
  • 2
    I'd tend to change that regex to r"\s\s+" so that it doesn't try to replace already-single spaces.
    – Ben Blank
    Oct 9 '09 at 21:55
  • 24
    If you wanted that behavior, why not just "\s{2,}" instead of a workaround for not knowing moderately-advanced regex behavior?
    – Chris Lutz
    Oct 9 '09 at 22:06
  • 3
    remember that sub() does not change the input string s, but return the new value.
    – gcb
    Aug 28 '13 at 6:49
  • 10
    I'd advise against \s\s+ because this won't normalize a TAB character back to a normal space. a SPACE + TAB does get replaced this way.
    – vdboor
    Jul 27 '15 at 10:35
  • 2
    I would also strip() (aka trim) the string before doing this as you probably do not want leading and trailing spaces. Nov 10 '16 at 10:55
59

Using regexes with "\s" and doing simple string.split()'s will also remove other whitespace - like newlines, carriage returns, tabs. Unless this is desired, to only do multiple spaces, I present these examples.

I used 11 paragraphs, 1000 words, 6665 bytes of Lorem Ipsum to get realistic time tests and used random-length extra spaces throughout:

original_string = ''.join(word + (' ' * random.randint(1, 10)) for word in lorem_ipsum.split(' '))

The one-liner will essentially do a strip of any leading/trailing spaces, and it preserves a leading/trailing space (but only ONE ;-).

# setup = '''

import re

def while_replace(string):
    while '  ' in string:
        string = string.replace('  ', ' ')

    return string

def re_replace(string):
    return re.sub(r' {2,}' , ' ', string)

def proper_join(string):
    split_string = string.split(' ')

    # To account for leading/trailing spaces that would simply be removed
    beg = ' ' if not split_string[ 0] else ''
    end = ' ' if not split_string[-1] else ''

    # versus simply ' '.join(item for item in string.split(' ') if item)
    return beg + ' '.join(item for item in split_string if item) + end

original_string = """Lorem    ipsum        ... no, really, it kept going...          malesuada enim feugiat.         Integer imperdiet    erat."""

assert while_replace(original_string) == re_replace(original_string) == proper_join(original_string)

#'''

# while_replace_test
new_string = original_string[:]

new_string = while_replace(new_string)

assert new_string != original_string

# re_replace_test
new_string = original_string[:]

new_string = re_replace(new_string)

assert new_string != original_string

# proper_join_test
new_string = original_string[:]

new_string = proper_join(new_string)

assert new_string != original_string

NOTE: The "while version" made a copy of the original_string, as I believe once modified on the first run, successive runs would be faster (if only by a bit). As this adds time, I added this string copy to the other two so that the times showed the difference only in the logic. Keep in mind that the main stmt on timeit instances will only be executed once; the original way I did this, the while loop worked on the same label, original_string, thus the second run, there would be nothing to do. The way it's set up now, calling a function, using two different labels, that isn't a problem. I've added assert statements to all the workers to verify we change something every iteration (for those who may be dubious). E.g., change to this and it breaks:

# while_replace_test
new_string = original_string[:]

new_string = while_replace(new_string)

assert new_string != original_string # will break the 2nd iteration

while '  ' in original_string:
    original_string = original_string.replace('  ', ' ')

Tests run on a laptop with an i5 processor running Windows 7 (64-bit).

timeit.Timer(stmt = test, setup = setup).repeat(7, 1000)

test_string = 'The   fox jumped   over\n\t    the log.' # trivial

Python 2.7.3, 32-bit, Windows
                test |      minum |    maximum |    average |     median
---------------------+------------+------------+------------+-----------
  while_replace_test |   0.001066 |   0.001260 |   0.001128 |   0.001092
     re_replace_test |   0.003074 |   0.003941 |   0.003357 |   0.003349
    proper_join_test |   0.002783 |   0.004829 |   0.003554 |   0.003035

Python 2.7.3, 64-bit, Windows
                test |      minum |    maximum |    average |     median
---------------------+------------+------------+------------+-----------
  while_replace_test |   0.001025 |   0.001079 |   0.001052 |   0.001051
     re_replace_test |   0.003213 |   0.004512 |   0.003656 |   0.003504
    proper_join_test |   0.002760 |   0.006361 |   0.004626 |   0.004600

Python 3.2.3, 32-bit, Windows
                test |      minum |    maximum |    average |     median
---------------------+------------+------------+------------+-----------
  while_replace_test |   0.001350 |   0.002302 |   0.001639 |   0.001357
     re_replace_test |   0.006797 |   0.008107 |   0.007319 |   0.007440
    proper_join_test |   0.002863 |   0.003356 |   0.003026 |   0.002975

Python 3.3.3, 64-bit, Windows
                test |      minum |    maximum |    average |     median
---------------------+------------+------------+------------+-----------
  while_replace_test |   0.001444 |   0.001490 |   0.001460 |   0.001459
     re_replace_test |   0.011771 |   0.012598 |   0.012082 |   0.011910
    proper_join_test |   0.003741 |   0.005933 |   0.004341 |   0.004009

test_string = lorem_ipsum
# Thanks to http://www.lipsum.com/
# "Generated 11 paragraphs, 1000 words, 6665 bytes of Lorem Ipsum"

Python 2.7.3, 32-bit
                test |      minum |    maximum |    average |     median
---------------------+------------+------------+------------+-----------
  while_replace_test |   0.342602 |   0.387803 |   0.359319 |   0.356284
     re_replace_test |   0.337571 |   0.359821 |   0.348876 |   0.348006
    proper_join_test |   0.381654 |   0.395349 |   0.388304 |   0.388193    

Python 2.7.3, 64-bit
                test |      minum |    maximum |    average |     median
---------------------+------------+------------+------------+-----------
  while_replace_test |   0.227471 |   0.268340 |   0.240884 |   0.236776
     re_replace_test |   0.301516 |   0.325730 |   0.308626 |   0.307852
    proper_join_test |   0.358766 |   0.383736 |   0.370958 |   0.371866    

Python 3.2.3, 32-bit
                test |      minum |    maximum |    average |     median
---------------------+------------+------------+------------+-----------
  while_replace_test |   0.438480 |   0.463380 |   0.447953 |   0.446646
     re_replace_test |   0.463729 |   0.490947 |   0.472496 |   0.468778
    proper_join_test |   0.397022 |   0.427817 |   0.406612 |   0.402053    

Python 3.3.3, 64-bit
                test |      minum |    maximum |    average |     median
---------------------+------------+------------+------------+-----------
  while_replace_test |   0.284495 |   0.294025 |   0.288735 |   0.289153
     re_replace_test |   0.501351 |   0.525673 |   0.511347 |   0.508467
    proper_join_test |   0.422011 |   0.448736 |   0.436196 |   0.440318

For the trivial string, it would seem that a while-loop is the fastest, followed by the Pythonic string-split/join, and regex pulling up the rear.

For non-trivial strings, seems there's a bit more to consider. 32-bit 2.7? It's regex to the rescue! 2.7 64-bit? A while loop is best, by a decent margin. 32-bit 3.2, go with the "proper" join. 64-bit 3.3, go for a while loop. Again.

In the end, one can improve performance if/where/when needed, but it's always best to remember the mantra:

  1. Make It Work
  2. Make It Right
  3. Make It Fast

IANAL, YMMV, Caveat Emptor!

7
  • 1
    I would have prefered if you had tested the simple ' '.join(the_string.split()) as this is the usual use case but I'd like to say thank you for your work!
    – wedi
    Sep 29 '14 at 0:43
  • @wedi: Per other comments (like from Gumbo; user984003, though her/his solution is presumptive and won't work "in all cases"), this sort of solution doesn't adhere to the questioner's request. One may use .split(' '), and a comp/gen, but gets hairier to deal with lead/trailing spaces. Oct 26 '14 at 16:09
  • @wedi: E.g.: ' '.join(p for p in s.split(' ') if p) <-- still lost lead/trailing spaces, but accounted for multiple spaces. To keep them, must do like parts = s.split(' '); (' ' if not parts[0] else '') + ' '.join(p for p in s.split(' ') if p) + (' ' if not parts[-1] else '')! Oct 26 '14 at 16:12
  • Thanks @pythonlarry for the mantra! and love the detailed test! I'm curious to know if your thoughts or views have changed on this since its been 6 years?
    – JayRizzo
    May 15 '19 at 7:02
  • Missing version that use generators
    – Lee
    Nov 20 '19 at 11:27
51

I have to agree with Paul McGuire's comment. To me,

' '.join(the_string.split())

is vastly preferable to whipping out a regex.

My measurements (Linux and Python 2.5) show the split-then-join to be almost five times faster than doing the "re.sub(...)", and still three times faster if you precompile the regex once and do the operation multiple times. And it is by any measure easier to understand -- much more Pythonic.

4
  • This removes trailing spaces. If you want to keep them do: text[0:1] + " ".join(text[1:-1].split()) + text[-1]
    – user984003
    Aug 12 '13 at 14:51
  • 4
    a simple regexp is much better to read. never optimize for performance before you need to.
    – gcb
    Aug 28 '13 at 6:46
  • @gcb: Why not? What if you're expecting a high throughput scenario (e.g. because of high demand)? Why not deploy something you expect to be less resource intensive from the get go in that scenario? Mar 3 '18 at 11:43
  • 1
    @HassanBaig if you already have the performance requirement, then it isn't really premature optimization, right? My point is for when you don't need to obsess about performance yet, it is always better to aim for readability.
    – gcb
    Mar 11 '18 at 19:47
16

Similar to the previous solutions, but more specific: replace two or more spaces with one:

>>> import re
>>> s = "The   fox jumped   over    the log."
>>> re.sub('\s{2,}', ' ', s)
'The fox jumped over the log.'
14

A simple soultion

>>> import re
>>> s="The   fox jumped   over    the log."
>>> print re.sub('\s+',' ', s)
The fox jumped over the log.
0
12

I have tried the following method and it even works with the extreme case like:

str1='          I   live    on    earth           '

' '.join(str1.split())

But if you prefer a regular expression it can be done as:

re.sub('\s+', ' ', str1)

Although some preprocessing has to be done in order to remove the trailing and ending space.

10

You can also use the string splitting technique in a Pandas DataFrame without needing to use .apply(..), which is useful if you need to perform the operation quickly on a large number of strings. Here it is on one line:

df['message'] = (df['message'].str.split()).str.join(' ')
7
import re
string = re.sub('[ \t\n]+', ' ', 'The     quick brown                \n\n             \t        fox')

This will remove all the tabs, new lines and multiple white spaces with single white space.

1
  • But if you have whitespace (non-printable) characters not in your range like '\x00' to '\x0020' the code will not strip them.
    – Muskovets
    Jan 18 '19 at 10:02
4

One line of code to remove all extra spaces before, after, and within a sentence:

sentence = "  The   fox jumped   over    the log.  "
sentence = ' '.join(filter(None,sentence.split(' ')))

Explanation:

  1. Split the entire string into a list.
  2. Filter empty elements from the list.
  3. Rejoin the remaining elements* with a single space

*The remaining elements should be words or words with punctuations, etc. I did not test this extensively, but this should be a good starting point. All the best!

3

In some cases it's desirable to replace consecutive occurrences of every whitespace character with a single instance of that character. You'd use a regular expression with backreferences to do that.

(\s)\1{1,} matches any whitespace character, followed by one or more occurrences of that character. Now, all you need to do is specify the first group (\1) as the replacement for the match.

Wrapping this in a function:

import re

def normalize_whitespace(string):
    return re.sub(r'(\s)\1{1,}', r'\1', string)
>>> normalize_whitespace('The   fox jumped   over    the log.')
'The fox jumped over the log.'
>>> normalize_whitespace('First    line\t\t\t \n\n\nSecond    line')
'First line\t \nSecond line'
3

Another alternative:

>>> import re
>>> str = 'this is a            string with    multiple spaces and    tabs'
>>> str = re.sub('[ \t]+' , ' ', str)
>>> print str
this is a string with multiple spaces and tabs
3

The fastest you can get for user-generated strings is:

if '  ' in text:
    while '  ' in text:
        text = text.replace('  ', ' ')

The short circuiting makes it slightly faster than pythonlarry's comprehensive answer. Go for this if you're after efficiency and are strictly looking to weed out extra whitespaces of the single space variety.

3

Solution for Python developers:

import re

text1 = 'Python      Exercises    Are   Challenging Exercises'
print("Original string: ", text1)
print("Without extra spaces: ", re.sub(' +', ' ', text1))

Output:
Original string: Python Exercises Are Challenging Exercises Without extra spaces: Python Exercises Are Challenging Exercises

2
  • Why does this work?
    – Korzak
    Mar 19 at 13:50
  • 1
    this is using regex (google it) but basically ' +' means one or more spaces...so basically I'm replacing one or more spaces with a single space. Mar 20 at 2:51
3

Quite surprising - no one posted simple function which will be much faster than ALL other posted solutions. Here it goes:

def compactSpaces(s):
    os = ""
    for c in s:
        if c != " " or (os and os[-1] != " "):
            os += c 
    return os
2
import re

Text = " You can select below trims for removing white space!!   BR Aliakbar     "
  # trims all white spaces
print('Remove all space:',re.sub(r"\s+", "", Text), sep='') 
# trims left space
print('Remove leading space:', re.sub(r"^\s+", "", Text), sep='') 
# trims right space
print('Remove trailing spaces:', re.sub(r"\s+$", "", Text), sep='')  
# trims both
print('Remove leading and trailing spaces:', re.sub(r"^\s+|\s+$", "", Text), sep='')
# replace more than one white space in the string with one white space
print('Remove more than one space:',re.sub(' +', ' ',Text), sep='') 

Result:

Remove all space:Youcanselectbelowtrimsforremovingwhitespace!!BRAliakbar Remove leading space:You can select below trims for removing white space!! BR Aliakbar
Remove trailing spaces: You can select below trims for removing white space!! BR Aliakbar Remove leading and trailing spaces:You can select below trims for removing white space!! BR Aliakbar Remove more than one space: You can select below trims for removing white space!! BR Aliakbar

2

" ".join(foo.split()) is not quite correct with respect to the question asked because it also entirely removes single leading and/or trailing white spaces. So, if they shall also be replaced by 1 blank, you should do something like the following:

" ".join(('*' + foo + '*').split()) [1:-1]

Of course, it's less elegant.

2

Because @pythonlarry asked here are the missing generator based versions

The groupby join is easy. Groupby will group elements consecutive with same key. And return pairs of keys and list of elements for each group. So when the key is an space an space is returne else the entire group.

from itertools import groupby
def group_join(string):
  return ''.join(' ' if chr==' ' else ''.join(times) for chr,times in groupby(string))

The group by variant is simple but very slow. So now for the generator variant. Here we consume an iterator, the string, and yield all chars except chars that follow an char.

def generator_join_generator(string):
  last=False
  for c in string:
    if c==' ':
      if not last:
        last=True
        yield ' '
    else:
      last=False
    yield c

def generator_join(string):
  return ''.join(generator_join_generator(string))

So i meassured the timings with some other lorem ipsum.

  • while_replace 0.015868543065153062
  • re_replace 0.22579886706080288
  • proper_join 0.40058281796518713
  • group_join 5.53206754301209
  • generator_join 1.6673167790286243

With Hello and World separated by 64KB of spaces

  • while_replace 2.991308711003512
  • re_replace 0.08232860406860709
  • proper_join 6.294375243945979
  • group_join 2.4320066600339487
  • generator_join 6.329648651066236

Not forget the original sentence

  • while_replace 0.002160938922315836
  • re_replace 0.008620491018518806
  • proper_join 0.005650000995956361
  • group_join 0.028368217987008393
  • generator_join 0.009435956948436797

Interesting here for nearly space only strings group join is not that worse Timing showing always median from seven runs of a thousand times each.

1
def unPretty(S):
   # Given a dictionary, JSON, list, float, int, or even a string...
   # return a string stripped of CR, LF replaced by space, with multiple spaces reduced to one.
   return ' '.join(str(S).replace('\n', ' ').replace('\r', '').split())
0
string = 'This is a             string full of spaces          and taps'
string = string.split(' ')
while '' in string:
    string.remove('')
string = ' '.join(string)
print(string)

Results:

This is a string full of spaces and taps

0

To remove white space, considering leading, trailing and extra white space in between words, use:

(?<=\s) +|^ +(?=\s)| (?= +[\n\0])

The first or deals with leading white space, the second or deals with start of string leading white space, and the last one deals with trailing white space.

For proof of use, this link will provide you with a test.

https://regex101.com/r/meBYli/4

This is to be used with the re.split function.

-1

I haven't read a lot into the other examples, but I have just created this method for consolidating multiple consecutive space characters.

It does not use any libraries, and whilst it is relatively long in terms of script length, it is not a complex implementation:

def spaceMatcher(command):
    """
    Function defined to consolidate multiple whitespace characters in
    strings to a single space
    """
    # Initiate index to flag if more than one consecutive character
    iteration
    space_match = 0
    space_char = ""
    for char in command:
      if char == " ":
          space_match += 1
          space_char += " "
      elif (char != " ") & (space_match > 1):
          new_command = command.replace(space_char, " ")
          space_match = 0
          space_char = ""
      elif char != " ":
          space_match = 0
          space_char = ""
   return new_command

command = None
command = str(input("Please enter a command ->"))
print(spaceMatcher(command))
print(list(spaceMatcher(command)))
0
-1

This does and will do: :)

# python... 3.x
import operator
...
# line: line of text
return " ".join(filter(lambda a: operator.is_not(a, ""), line.strip().split(" ")))

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