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I'm trying to find escaped commands in a regex pattern.

The problem I'm meeting is that I can't take care of escaped backslashes before one escaping backslash. The following code, which looks for regex groups \g<...> in a pattern to be compiled, doesn't find the group named not_escaped : the raw string \\\\\g is the seen as a sequence of escaped backslashes followed by an unescaped group \g from the regex point of view.

import re

p = re.compile(r"(?<!\\)\\g<([a-zA-Z_][a-zA-Z\d_]*)>")

for m in p.finditer(
    r"</\g<name_1>\g<name_2>\\\\\g<not_escaped>\\g<escaped>>>"
):
    print(m.group(1))

This code gives the names name_1 and name_2, but if the text is compiled by re, the groups normally used, if I'm not wrong, will be the groups name_1, name_2 and not_escaped.

share|improve this question
    
What's a command, and what's an escaped command? – user2357112 Jan 8 '14 at 9:02
    
"the raw string \\\\\g is the litteral string \\\g which is a escaped backslash followed by a unescaped \g" - no it's not. It's 5 literal backslashes and a g. – user2357112 Jan 8 '14 at 9:04
    
Even in a string that is one regex to be compiled ? – user1054158 Jan 8 '14 at 9:08
    
Yes. It doesn't match 5 literal backslashes and a g if you try to use it as a regex, but that's what it is. – user2357112 Jan 8 '14 at 9:09
    
@user2357112 Thanks but the problem stays... I've updated my question. – user1054158 Jan 8 '14 at 9:17
up vote 1 down vote accepted

To match odd numbers of backslashes just use this pattern:

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

But I think in your case you will have to search for backslash counts dividable by four (and then one additional backslash), so you should use this:

p = re.compile(r"(?<!\\)(\\\\\\\\)*\\g<([a-zA-Z_][a-zA-Z\d_]*)>")
for m in p.finditer(
    r"</\g<name_1>\g<name_2>\\\\\g<not_escaped>\\\g<escaped>>>"):
  print(m.group(2))

It finds the three you wanted and not the fourth you didn't want.

share|improve this answer
    
Yes, I want to escape an odd number of backslashes. I've tried your first pattern which does the job. Thanks ! I was not looking in the good direction. – user1054158 Jan 8 '14 at 21:16

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