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I would like that the following pattern gives the same result for all the finditer uses. I need to find unescaped \g, this is why I use (?:[^\\]).

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<escaped>>"):
    print(m.group(1))

print('---')

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

print('---')

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

Here is the corresponding output where name_2 is missing in the first output, and name_1 is missing in the last one.

name_1
---
name_1
name_2
---
name_2

Why the use of a space makes the two groups always findable ? How to do a starting alternative with the interdiction group or the starting of the text ^ ? How to change my pattern to avoid this failures ?

share|improve this question
    
I'm more concerned what this does [a-z|A-Z|_][a-z|A-Z|_|\d]* ? It's a character class, so you shouldn't add | for an alternation. You do that in groups (). Anyways, it would become [a-zA-Z_][a-zA-Z\d_]* or more simplified [a-zA-Z_]\w*. And if you want it shorter [^\W\d]\w* :) –  HamZa Jan 3 '14 at 23:43
    
Thanks for pointing this. Indeed, I'm french and I do not want to catch decorated letters, so this is the reason of the use of a-zA-Z. –  user1054158 Jan 3 '14 at 23:50
1  
I've updated the code. –  user1054158 Jan 3 '14 at 23:51

1 Answer 1

up vote 0 down vote accepted

Your pattern is pretty close, but it requires that the sequence start with some non-backslash character:

[^\\]

This string:

</\g<name_1>\g<name_2>>

has one sequence starting with a non-backslash (/) that continues on to read \g< as required, but following that is a sequence that does not start with a non-backslash followed by \g< (it immediately dives into having a \g). Adding a space makes it work as the space provides the necessary non-backslash character.

You could augment your pattern to make the initial non-backslash character optional:

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

but since the parentheses here are the non-grouping (?:...) variety, it's simpler to just remove the entire parenthesized expression:

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

The resulting regular expression works with your sample inputs.


Edit: to address the requirement that \g< not be preceded by a backslash, use "negative look-behind":

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

The string being "checked to make sure it's not there" must be fixed length, and the single character \ is. If the search is running at the beginning of a string, negative look-behind permits the match; if it's in the middle, it "looks behind" to make sure the parenthesized fixed-length sub-expression is not present.

share|improve this answer
    
I've updated my question because I nedd the use of (?:[^\\]) so as to only find unescaped \g. Sorry for not having pointed this before. –  user1054158 Jan 4 '14 at 0:10
1  
Ah, in that case you want "negative lookbehind" (see docs.python.org/2/library/re.html). Will update. –  torek Jan 4 '14 at 0:16
    
Will choose your update. Thanks a lot for this ! –  user1054158 Jan 4 '14 at 0:20

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