99

I am writing a python MapReduce word count program. Problem is that there are many non-alphabet chars strewn about in the data, I have found this post Stripping everything but alphanumeric chars from a string in Python which shows a nice solution using regex, but I am not sure how to implement it

def mapfn(k, v):
    print v
    import re, string 
    pattern = re.compile('[\W_]+')
    v = pattern.match(v)
    print v
    for w in v.split():
        yield w, 1

I'm afraid I am not sure how to use the library re or even regex for that matter. I am not sure how to apply the regex pattern to the incoming string (line of a book) v properly to retrieve the new line without any non-alphanumeric chars.

Suggestions?

4
  • v is an entire line of a book (specifically moby dick), I am going word by word not char by char. So some words might have a "," at the end so "indignity," does not map with "indignity". – KDecker Mar 20 '14 at 0:34
  • 1
    Possible duplicate of Stripping everything but alphanumeric chars from a string in Python – sds Nov 3 '16 at 20:23
  • Lolx - did you get the same pre-interview home exercise as me? Find the 50 most used words in Moby Dick and report their frequency. I did it in C++, IIRC – Mawg says reinstate Monica Feb 13 '17 at 15:48
  • 1
    @Mawg It was an exercise in my undergrad "Cloud Computing" class. – KDecker Feb 13 '17 at 17:46
138

Use re.sub

import re

regex = re.compile('[^a-zA-Z]')
#First parameter is the replacement, second parameter is your input string
regex.sub('', 'ab3d*E')
#Out: 'abdE'

Alternatively, if you only want to remove a certain set of characters (as an apostrophe might be okay in your input...)

regex = re.compile('[,\.!?]') #etc.
4
  • Hmm, I can quite track it down, but what about the pattern to remove all non-alphanumerics excluding spaces? – KDecker Mar 20 '14 at 0:45
  • 1
    Just add a space into your collection class. i.e. ^a-zA-Z instead of just ^a-zA-Z – limasxgoesto0 Mar 20 '14 at 0:46
  • Unless you're also worried about newlines, in which case a-zA-Z \n. I'm trying to find a regex that would lump both into one but using \w or \W isn't giving me the desired behavior. You might just need to add \n if that's the case. – limasxgoesto0 Mar 20 '14 at 0:51
  • Ahh, the newline char. Thats where my issues lies, I was comparing my results to given results and I was still off. I think that's my issue! Thanks // Hmm, I tried it with the newline char same results, I think there is another I am missing.. // Duhhh... Upper and lower case... // Thanks for all the help, works perfectly now! – KDecker Mar 20 '14 at 0:54
53

If you prefer not to use regex, you might try

''.join([i for i in s if i.isalpha()])
2
  • how do I join this? with ''.join ? printing s gets only a filter object – PirateApp Apr 22 '18 at 11:41
  • 1
    Wow, this is what i was looking. This takes into account kanji, hiragana, katakana,etc. kudos – root163 Apr 15 '20 at 8:04
37

You can use the re.sub() function to remove these characters:

>>> import re
>>> re.sub("[^a-zA-Z]+", "", "ABC12abc345def")
'ABCabcdef'

re.sub(MATCH PATTERN, REPLACE STRING, STRING TO SEARCH)

  • "[^a-zA-Z]+" - look for any group of characters that are NOT a-zA-z.
  • "" - Replace the matched characters with ""
1
  • Note that this will also remove accented letters: ãâàáéèçõ, etc. – Brad Ahrens Jun 15 '20 at 9:20
22

Try:

s = ''.join(filter(str.isalnum, s))

This will take every char from the string, keep only alphanumeric ones and build a string back from them.

1
  • 2
    This answer could use lots more explanation and links to relevant documentation. – pdoherty926 Feb 27 '20 at 19:37
4

The fastest method is regex

#Try with regex first
t0 = timeit.timeit("""
s = r2.sub('', st)

""", setup = """
import re
r2 = re.compile(r'[^a-zA-Z0-9]', re.MULTILINE)
st = 'abcdefghijklmnopqrstuvwxyz123456789!@#$%^&*()-=_+'
""", number = 1000000)
print(t0)

#Try with join method on filter
t0 = timeit.timeit("""
s = ''.join(filter(str.isalnum, st))

""", setup = """
st = 'abcdefghijklmnopqrstuvwxyz123456789!@#$%^&*()-=_+'
""",
number = 1000000)
print(t0)

#Try with only join
t0 = timeit.timeit("""
s = ''.join(c for c in st if c.isalnum())

""", setup = """
st = 'abcdefghijklmnopqrstuvwxyz123456789!@#$%^&*()-=_+'
""", number = 1000000)
print(t0)


2.6002226710006653 Method 1 Regex
5.739747313000407 Method 2 Filter + Join
6.540099570000166 Method 3 Join
0

It is advisable to use PyPi regex module if you plan to match specific Unicode property classes. This library has also proven to be more stable, especially handling large texts, and yields consistent results across various Python versions. All you need to do is to keep it up-to-date.

If you install it (using pip intall regex or pip3 install regex), you may use

import regex
print ( regex.sub(r'\P{L}+', '', 'ABCŁąć1-2!Абв3§4“5def”') )
// => ABCŁąćАбвdef

to remove all chunks of 1 or more characters other than Unicode letters from text. See an online Python demo. You may also use "".join(regex.findall(r'\p{L}+', 'ABCŁąć1-2!Абв3§4“5def”')) to get the same result.

In Python re, in order to match any Unicode letter, one may use the [^\W\d_] construct (Match any unicode letter?).

So, to remove all non-letter characters, you may either match all letters and join the results:

result = "".join(re.findall(r'[^\W\d_]', text))

Or, remove all chars other than those matched with [^\W\d_]:

result = re.sub(r'([^\W\d_])|.', r'\1', text, re.DOTALL)

See the regex demo online. However, you may get inconsistent results across various Python versions because the Unicode standard is evolving, and the set of chars matched with \w will depend on the Python version. Using PyPi regex library is highly recommended to get consistent results.

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