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I'm trying to remove all punctuation and anything inside brackets or parentheses from a string in python. The idea is to somewhat normalize song names to get better results when I query the MusicBrainz WebService.

Sample input: T.N.T. (live) [nyc]

Expected output: T N T

I can do it in two regexes, but I would like to see if it can be done in just one. I tried the following, which didn't work...

>>> re.sub(r'\[.*?\]|\(.*?\)|\W+', ' ', 'T.N.T. (live) [nyc]')
'T N T live nyc '

If I split the \W+ into it's own regex and run it second, I get the expected result, so it seems that \W+ is eating the braces and parens before the first two options can deal with them.

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Do you worry about unmatched brackets, or multiple brackets of the same type (possible as part of the original title)? E.g., what should be the result for inputs T.N.T. (live (should live stay?) and T.N.T. (live) X (nyc) (should X stay)? –  Christian Semrau May 26 '11 at 20:11
    
At this point I'm not worried about unmatched or nested brackets. I think they probably won't show up often enough to cause a big issue. –  Eric Seidel May 26 '11 at 20:31

4 Answers 4

up vote 2 down vote accepted

You are correct that the \W+ is eating the braces, remove the + and you should be set:

>>> re.sub(r'\[.*?\]|\(.*?\)|\W', ' ', 'T.N.T. (live) [nyc]')
'T N T     '
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Here's a mini-parser that does the same thing I wrote as an exercise. If your effort to normalize gets much more complex, you may start to look at parser-based solutions. This works like a tiny parser.

# Remove all non-word chars and anything between parens or brackets

def consume(I):

   I = iter(I)
   lookbehind = None

   def killuntil(returnchar):
      while True:
         ch = I.next()
         if ch == returnchar:
            return

   for i in I:
      if i in 'abcdefghijklmnopqrstuvwyzABCDEFGHIJKLMNOPQRSTUVWXYZ':
         yield i
         lookbehind = i
      elif not i.strip() and lookbehind != ' ':
         yield ' '
         lookbehind = ' '
      elif i == '(': 
         killuntil(')')
      elif i == '[': 
         killuntil(']')
      elif lookbehind != ' ':
         lookbehind = ' '
         yield ' '

s = "T.N.T. (live) [nyc]"
c = consume(s)
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As a side note, string.letters=='abcdefghijklmnopqrstuvwxyzABCDEFGHIJKLMNOPQRSTUVWXYZ'. So import string and save yourself some typing. –  osa Sep 8 '14 at 2:45

The \W+ eats the brackets, because it "has a run": It starts matching at the dot after the second T, and matches on until and including the first parenthesis: . (. After that, it starts matching again from bracket to bracket: ) [.

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\W

When the LOCALE and UNICODE flags are not specified, matches any non-alphanumeric character; this is equivalent to the set [^a-zA-Z0-9_].

So try r'\[.*?\]|\(.*?\)|{.*?}|[^a-zA-Z0-9_()[\]{}]+'.

Andrew's solution is probably better, though.

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