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I have a verbose python regex string (with lots of whitespace and comments) that I'd like to convert to "normal" style (for export to javascript). In particular, I need this to be quite reliable. If there's any demonstrably correct way to do this, it's what I want. For example, a naive implementation would destroy a regex like r' \# # A literal hash character', which is not OK.

The best way to do this would be to coerce the python re module to give me back a non-verbose representation of my regex, but I don't see a way to do that.

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Apparently someone did this, but it's in JavaScript blog.mackerron.com/2010/08/08/extended-multi-line-js-regexps –  Explosion Pills Feb 14 '13 at 22:57
    
This shouldn't be too hard. Just remove before a \n but before a #, and remove anything that matches \w but not \\\w. –  Linuxios Feb 14 '13 at 23:04
    
Unfortunately, it converts a custom verbose regex syntax to JS regex syntax, which isn't quite the same as converting Python verbose regex syntax to Python non-verbose regex syntax… but you could definitely use that code as a model for writing your own Python equivalent, if you can't find one –  abarnert Feb 14 '13 at 23:04
1  
Or you could use XRegExp. Performance is the same as native JS regex. –  Qtax Feb 14 '13 at 23:46
1  
IIRC, the regex module (available on PyPI, and being gradually groomed to replace re as the standard in Python 3.something) is 99%+ compatible with re, was written from scratch to be cleaner and easier to work with, and has a pure-Python implementation. So, it might be a lot easier to start there, than to either with re or from ground up. –  abarnert Feb 15 '13 at 0:10

1 Answer 1

I believe you only need to address these two issues to strip a verbose regex:

  1. delete comments to the end of line
  2. delete unescaped whitespace

try this, which chains the 2 with separate regex substitutions:

import re

def unverbosify_regex_simple(verbose):
   WS_RX = r'(?<!\\)((\\{2})*)\s+'
   CM_RX = r'(?<!\\)((\\{2})*)#.*$(?m)'

   return re.sub(WS_RX, "\\1", re.sub(CM_RX, "\\1", verbose))

The above is a simplified version that leaves escaped spaces as-is. The resulting output will be a little harder to read but should work for regex platforms.

Alternatively, for a slightly more complex answer that "unescapes" spaces (i.e., '\ ' => ' ') and returns what I think most people would expect:

import re

def unverbosify_regex(verbose):
   CM1_RX = r'(?<!\\)((\\{2})*)#.*$(?m)'
   CM2_RX = r'(\\)?((\\{2})*)(#)'
   WS_RX  = r'(\\)?((\\{2})*)(\s)\s*'

   def strip_escapes(match):
      ## if even slashes: delete space and retain slashes
      if (match.group(1) is None):
         return match.group(2)

      ## if number of slashes is odd: delete slash and keep space (or 'comment')
      elif (match.group(1) == '\\'):
         return match.group(2) + match.group(4)

      ## error
      else:
         raise Exception

   not_verbose_regex = re.sub(WS_RX, strip_escapes,
                        re.sub(CM2_RX, strip_escapes,
                         re.sub(CM1_RX, "\\1",
                          verbose)))

   return not_verbose_regex

UPDATE: added comments to explain even v. odd slash counting. Fixed first group in CM_RX to retain full 'comment' if slash count is odd.

UPDATE 2: Fixed comments regex, which was not dealing with escaped hashes properly. Should handle both "\# #escaped hash" as well as "# comment with \# escaped hash" and "\\# comment"

UPDATE 3: Added a simplified version that doesn't clean up escaped spaces.

UPDATE 4: Further simplification to eliminate variable-length negative lookbehind (and reverse/reverse trick)

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To improve your answer, you can also convert '\ ' to ' ', '\# ' to '#'. –  Ray Feb 17 '13 at 8:40
    
Point 2 should be amended to state, "except when occurring in sets" — which makes the implementation much more complex. –  user4815162342 Feb 17 '13 at 10:35
    
Thanks -- answer updated to unescape the spaces and hashes. –  dpkp Feb 18 '13 at 3:36
    
How come all of these are optional? (\\{2})*(\\)? This seems to express "the number of slashes is either even or odd"... The double-reverse is a funny workaround for the lack of variable-length look behind. Any way around that? It makes your regexen twice as hard to evaluate. –  bukzor Feb 18 '13 at 22:18
    
The (?m) is the multiline flag. These are commonly put at the beginning of the regex, or even more commonly as the flags argument to re.compile. I note that re.sub also takes a flags argument. –  bukzor Feb 18 '13 at 22:19

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