11

How do I remove all whitespace from a string and make all characters lowercase in python?

Also, can I add this operation to the string prototype like I could in javascript?

5 Answers 5

33

How about an uncomplicated fast answer? No map, no for loops, ...

>>> s = "Foo Bar " * 5
>>> s
'Foo Bar Foo Bar Foo Bar Foo Bar Foo Bar '
>>> ''.join(s.split()).lower()
'foobarfoobarfoobarfoobarfoobar'
>>>

[Python 2.7.1]

>python -mtimeit -s"s='The quick brown Fox jumped over the lazy dogs'" "''.join(c.lower() for c in s if not c.isspace())"
100000 loops, best of 3: 11.7 usec per loop

>python27\python -mtimeit -s"s='The quick brown Fox jumped over the lazy dogs'" "''.join(  i.lower() for i  in s.split()  )"
100000 loops, best of 3: 3.11 usec per loop

>python27\python -mtimeit -s"s='The quick brown Fox jumped over the lazy dogs'" "''.join( map(str.lower, s.split() )  )"
100000 loops, best of 3: 2.43 usec per loop

>\python27\python -mtimeit -s"s='The quick brown Fox jumped over the lazy dogs'" "''.join(s.split()).lower()"
1000000 loops, best of 3: 1 usec per loop
1
  • +1, indeed fastest I seen so far. confirmed with timeit module using 250k iterations 0.403948068619s using split, 0.585318088531s using map. Thank you!
    – radtek
    Commented Aug 5, 2017 at 3:43
9
''.join(c.lower() for c in s if not c.isspace())

No. Python is not Ruby.

5
  • Is regex something that is used less in python? Commented Apr 27, 2011 at 4:04
  • 2
    Regular expressions are... usually not required. Commented Apr 27, 2011 at 4:05
  • 3
    @DutrowLLC, they are usually not required BUT there are times when they are indispensable.
    – ghostdog74
    Commented Apr 27, 2011 at 4:07
  • If you need speed, this is not the way to go, use John Machin's solution below. On 250k iterations using timeit, clocked this function at 2.14721894264, vs 0.402789115906 using the join split solution.
    – radtek
    Commented Aug 5, 2017 at 3:50
  • var = ''.join(c.lower() for c in var if not c.isspace())
    – Cat
    Commented May 28, 2020 at 7:26
2
>>> string=""" a b      c
... D E         F
...                     g
... """
>>> ''.join(  i.lower() for i  in string.split()  )
'abcdefg'
>>>

OR

>>> ''.join( map(str.lower, string.split() )  )
'abcdefg'
1
  • Your join split solution is still a lot slower than John Machin's answer, clocked it at 0.733391046524s for 250k reps using timeit, vs 0.413959026337s for his solution. Going with fastest!
    – radtek
    Commented Aug 5, 2017 at 3:53
2

Here is a solution using regular expression:

>>> import re
>>> test = """AB    cd KLM
    RST l
    K"""
 >>> re.sub('\s+','',test).lower()
  'abcdklmrstlk'

2
  • This seems tobe the slowest of the bunch, 0.809034109116s on 250k iterations vs John Machin's solution at 0.411396980286s. Map was also faster than this at 0.582627058029s.
    – radtek
    Commented Aug 5, 2017 at 3:47
  • +1. Finally, someone answered the OPs question (partially)! Yes, regex is not the correct approach for this problem, however it is still worth knowing. A good response should be, it is not necessary, but here is how you would do it...
    – demongolem
    Commented Mar 30, 2018 at 13:13
2

Here it is:

your_string.replace(" ","").lower()

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service and acknowledge you have read our privacy policy.

Not the answer you're looking for? Browse other questions tagged or ask your own question.