198

I need to replace all non-ASCII (\x00-\x7F) characters with a space. I'm surprised that this is not dead-easy in Python, unless I'm missing something. The following function simply removes all non-ASCII characters:

def remove_non_ascii_1(text):

    return ''.join(i for i in text if ord(i)<128)

And this one replaces non-ASCII characters with the amount of spaces as per the amount of bytes in the character code point (i.e. the character is replaced with 3 spaces):

def remove_non_ascii_2(text):

    return re.sub(r'[^\x00-\x7F]',' ', text)

How can I replace all non-ASCII characters with a single space?

Of the myriad of similar SO questions, none address character replacement as opposed to stripping, and additionally address all non-ascii characters not a specific character.

  • 34
    wow, you really took good efforts to show so many links. +1 as soon as the day renews! – shad0w_wa1k3r Nov 19 '13 at 18:20
  • 3
    You seem to have missed this one stackoverflow.com/questions/1342000/… – Stuart Nov 19 '13 at 18:35
  • I'm interested in seeing an example input that has problems. – dstromberg Nov 19 '13 at 18:42
  • 3
    @Stuart: Thanks, but that is the very first one that I mention. – dotancohen Nov 20 '13 at 9:08
  • 1
    @dstromberg: I mention a problematic example character in the question: . It's this guy. – dotancohen Nov 20 '13 at 11:52
198

Your ''.join() expression is filtering, removing anything non-ASCII; you could use a conditional expression instead:

return ''.join([i if ord(i) < 128 else ' ' for i in text])

This handles characters one by one and would still use one space per character replaced.

Your regular expression should just replace consecutive non-ASCII characters with a space:

re.sub(r'[^\x00-\x7F]+',' ', text)

Note the + there.

  • Why the list? What's wrong with a generator expression? – dstromberg Nov 19 '13 at 18:42
  • 17
    @dstromberg: slower; str.join() needs a list (it'll pass over the values twice), and a generator expression will first be converted to one. Giving it a list comprehension is simply faster. See this post. – Martijn Pieters Nov 19 '13 at 18:42
  • 1
    The first piece of code will insert multiple blanks per character if you feed it a UTF-8 byte string. – Mark Ransom Nov 19 '13 at 19:13
  • @MarkRansom: I was assuming this to be Python 3. – Martijn Pieters Nov 19 '13 at 19:15
  • 2
    " character is replaced with 3 spaces" in the question implies that the input is a bytestring (not Unicode) and therefore Python 2 is used (otherwise ''.join would fail). If OP wants a single space per Unicode codepoint then the input should be decoded into Unicode first. – jfs Feb 19 '16 at 17:01
43

For you the get the most alike representation of your original string I recommend the unidecode module:

from unidecode import unidecode
def remove_non_ascii(text):
    return unidecode(unicode(text, encoding = "utf-8"))

Then you can use it in a string:

remove_non_ascii("Ceñía")
Cenia
  • interesting suggestion, but it assumes the user wishes non ascii to become what the rules for unidecode are. This however poses a follow up question to the asker about why they insist on spaces, to perhaps replace with another character? – jxramos Feb 18 '16 at 21:15
  • Thank you, this is a good answer. It doesn't work for the purpose of this question because most of the data that I'm dealing with does not have an ASCII-like representation. Such as דותן. However, in the general sense this is great, thank you! – dotancohen Feb 20 '16 at 20:16
  • Yes, I know this does not work for this question, but I landed here trying to solve that problem, so I thought I’d just share my solution to my own problem, which I think is very common for people as @dotancohen who deal with non-ascii characters all the time. – Alvaro Fuentes Feb 24 '16 at 19:13
  • There have been some security vulnerabilities with stuff like this in the past. Just be careful how you implement this! – deweydb Nov 7 '16 at 18:44
  • 9
    For Python 3 use: return unidecode(str(text)) – AstraSerg Feb 14 '17 at 4:27
19

For character processing, use Unicode strings:

PythonWin 3.3.0 (v3.3.0:bd8afb90ebf2, Sep 29 2012, 10:57:17) [MSC v.1600 64 bit (AMD64)] on win32.
>>> s='ABC马克def'
>>> import re
>>> re.sub(r'[^\x00-\x7f]',r' ',s)   # Each char is a Unicode codepoint.
'ABC  def'
>>> b = s.encode('utf8')
>>> re.sub(rb'[^\x00-\x7f]',rb' ',b) # Each char is a 3-byte UTF-8 sequence.
b'ABC      def'

But note you will still have a problem if your string contains decomposed Unicode characters (separate character and combining accent marks, for example):

>>> s = 'mañana'
>>> len(s)
6
>>> import unicodedata as ud
>>> n=ud.normalize('NFD',s)
>>> n
'mañana'
>>> len(n)
7
>>> re.sub(r'[^\x00-\x7f]',r' ',s) # single codepoint
'ma ana'
>>> re.sub(r'[^\x00-\x7f]',r' ',n) # only combining mark replaced
'man ana'
  • Thank you, this is an important observation. If you do find a logical way to handle the case of combining-marks, I would happily add a bounty to the question. I suppose that simply removing the combining mark yet leaving the uncombined character alone would be best. – dotancohen Nov 20 '13 at 10:50
  • 1
    A partial solution is to use ud.normalize('NFC',s) to combine marks, but not all combining combinations are represented by single codepoints. You'd need a smarter solution looking at the ud.category() of the character. – Mark Tolonen Nov 20 '13 at 10:55
  • 1
    @dotancohen: there is a notion of "user-perceived character" in Unicode that may span several Unicode codepoints. \X (eXtended grapheme cluster) regex (supported by regex module) allows to iterate over such characters (note: "graphemes are not necessarily combining character sequences, and combining character sequences are not necessarily graphemes"). – jfs Feb 19 '16 at 17:08
6

What about this one?

def replace_trash(unicode_string):
     for i in range(0, len(unicode_string)):
         try:
             unicode_string[i].encode("ascii")
         except:
              #means it's non-ASCII
              unicode_string=unicode_string[i].replace(" ") #replacing it with a single space
     return unicode_string
  • Though this is rather inelegant, it is very readable. Thank you. – dotancohen Aug 21 '16 at 6:28
  • 1
    +1 for unicode handling... @dotancohen IMNSHO "readable" implies "practical" which adds to "elegant", so i'd say "a bit inelegant" – qneill Oct 1 '16 at 0:00
6

If the replacement character can be '?' instead of a space, then I'd suggest result = text.encode('ascii', 'replace').decode():

"""Test the performance of different non-ASCII replacement methods."""


import re
from timeit import timeit


# 10_000 is typical in the project that I'm working on and most of the text
# is going to be non-ASCII.
text = 'Æ' * 10_000


print(timeit(
    """
result = ''.join([c if ord(c) < 128 else '?' for c in text])
    """,
    number=1000,
    globals=globals(),
))

print(timeit(
    """
result = text.encode('ascii', 'replace').decode()
    """,
    number=1000,
    globals=globals(),
))

Results:

0.7208260721400134
0.009975979187503592
  • Replace the ? with a another character or space afterwards if needed, and you'd still be faster. – Moritz Jan 18 '18 at 11:23
2

As a native and efficient approach, you don't need to use ord or any loop over the characters. Just encode with ascii and ignore the errors.

The following will just remove the non-ascii characters:

new_string = old_string.encode('ascii',errors='ignore')

Now if you want to replace the deleted characters just do the following:

final_string = new_string + b' ' * (len(old_string) - len(new_string))
  • In python3, this encode will return a bytestring, so keep that in mind. Also, this method won't strip out characters such as newline. – Kyle Gibson Jan 25 at 16:25

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