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I've currently written a nooby regex pattern which involves excessive use of the "(" and ")" characters, but I'm using them for 'or' operators, such as (A|B|C) meaning A or B or C.

I need to find every match of the pattern in a string.
Trying to use the re.findall(pattern, text) method is no good, since it interprets the parenthesis characters as indexing signifiers (or whatever the correct jargon be), and so each element of the produced List is not a string showing the matched text sections, but instead is a tuple (which contain very ugly snippets of pattern match).

Is there an argument I can pass to findall to ignore paranthesis as indexing?
Or will I have to use a very ugly combination of re.search, and re.sub

(This is the only solution I can think of; Find the index of the re.search, add the matched section of text to the List then remove it from the original string {by using ugly index tricks}, continuing this until there's no more matches. Obviously, this is horrible and undesirable).

Thanks!

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Can you just show us samples what you try to match/catch and what not? – Ωmega Aug 16 '12 at 10:59
    
Probably your regexp can be improved =) – Jonathan Prates Aug 16 '12 at 11:05
1  
For example, re.findall(r"(A|B|C)D", "BDE") returns ['B'] instead of ['AD'] – Anti Earth Aug 16 '12 at 11:05
up vote 7 down vote accepted

Yes, add ?: to a group to make it non-capturing.

import re
print re.findall('(.(foo))', "Xfoo")   # [('Xfoo', 'foo')]
print re.findall('(.(?:foo))', "Xfoo") # ['Xfoo']

See re syntax for more information.

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Just inside the parenthesis? For example, "(?:A|B|C)"? – Anti Earth Aug 16 '12 at 11:04
    
@AntiEarth: yes, see examples – georg Aug 16 '12 at 11:05
    
Will escaped parenthesis cause indexing? Eg: r"\(this is in brackets\)" – Anti Earth Aug 16 '12 at 11:07
    
An unescaped parenthesis has a special meaning (except within a character class). Escaping the parenthesis is a way to say that you want the actual parenthesis character. – MRAB Aug 16 '12 at 16:11
re.findall(r"(?:A|B|C)D", "BDE")

or

re.findall(r"((?:A|B|C)D)", "BDE")
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