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How can I access captured groups if I do findall(r'regex(with)') ? I know I can do it through finditer, but I don't want to iterate.

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3 Answers 3

up vote 15 down vote accepted

findall just returns the captured groups:

>>> re.findall('abc(de)fg(123)', 'abcdefg123 and again abcdefg123')
[('de', '123'), ('de', '123')]

Relevant doc excerpt:

Return all non-overlapping matches of pattern in string, as a list of strings. The string is scanned left-to-right, and matches are returned in the order found. If one or more groups are present in the pattern, return a list of groups; this will be a list of tuples if the pattern has more than one group. Empty matches are included in the result unless they touch the beginning of another match.

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Use groups freely. The matches will be returned as a list of group-tuples:

>>> re.findall('(1(23))45', '12345')
[('123', '23')]

If you want the full match to be included, just enclose the entire regex in a group:

>>> re.findall('(1(23)45)', '12345')
[('12345', '23')]
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Several ways are possible:

>>> import re
>>> r = re.compile(r"'(\d+)'")
>>> result = r.findall("'1', '2', '345'")
>>> result
['1', '2', '345']
>>> result[0]
>>> for item in result:
...     print(item)
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I think he's asking about inner-regex groups as in '(group1)..(group2)' – bluepnume May 16 '11 at 13:55
@bluepnume: Maybe, but his question isn't all that clear. His example only has one capturing group. – Tim Pietzcker May 16 '11 at 13:57

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