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I want to use a python regexp to remove the comments in a LaTeX file. In LaTeX a comment starts by "%". But if the % character is escaped ("\%") then its not a comment, its the symbol percent.

This task is just one among many regexp that I apply on my LaTeX text. I store all these reg exp in a list of dicts.

The problem I face is that the regexp I use for pruning the comments does not work (because I do not know how to specify the character set 'not backslash'). The backslash in the character set escapes the closing ']' and the regexp is incorrect.

My code:

regexps=[]
regexps.append({r'left':'%.*', 'right':r''}) # this strips all the comments, but messes up with the percent characters (\%)
regexps.append({r'left':'[^\]%.*', 'right':r''}) # this is incorrect (escapes the closing "]" )
return applyRegexps(latexText, regexps)


def applyRegexps(text, listRegExp):
    """ Applies successively many regexps to a text"""
    if testMode:
        print str(listRegExp)
    # apply all the regexps in the list
    for element in listRegExp:
        left = element['left']
        right = element['right']
        r=re.compile(left)
        text=r.sub(right,text)
    return text

Any help will be much appreciated. Thanks!

Gilles

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Did you try to use r'[^\\]'? The `\` should the regex syntax for escaping the backslash –  Bakuriu Nov 13 '12 at 17:03
    
If you want to put a literal backslash into a regex, double it. Your patter should read '[^\]%.*' –  Konstantin Naryshkin Nov 13 '12 at 17:06
    
Thanks guys, Martijn Pieters answers works. I must be tired... –  user1821466 Nov 13 '12 at 17:07

2 Answers 2

up vote 5 down vote accepted

Simply double the backslash, but do use a raw string literal to avoid having to double them again:

regexps.append({'left':r'[^\\]%.*', 'right':r''})
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The raw string for 'left' is unneccessary... –  l4mpi Nov 13 '12 at 17:19
    
@l4mpi: indeed, but the OP had a raw string for the key too.. –  Martijn Pieters Nov 13 '12 at 17:20

Although Martijn Pieters's answer is the one you asked for, I am not sure that this is what you are really looking for. For example this pattern will not match a % as the very first character of the string (because there is no non-backslash character in front of it). What you actually want is probably a negative lookahead (you still need to escape the backslash):

r'(?<!\\)%.*'

The difference is this:

  • [^\\]% matches a % preceded by a non-backslash character (including that character in the match)
  • (?<!\\)% matches a % that is not preceded by a backslash character (without including it in the match)

The latter one is also true for % at the beginning of the string.

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