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s = 'blah blah blah... _ABC_superman_is_cool_CBA_ ...blah blah blah...'

This is just an example, but I want to match everything between _ABC_ and _CBA_. So 'superman_is_cool'. There may be multiple sections of _ABC_..._CBA_.

re.findall('_ABC_(.*)(?=_CBA_)', s)

I tried this first, but obviously doesn't correctly work at all.

marked as duplicate by Wiktor Stribiżew python Apr 19 at 18:05

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up vote 6 down vote accepted

I added an additional _ABC_, _CBA_ pair to make sure it finds all the matches:

>>> s = 'blah blah blah... _ABC_superman_is_cool_CBA_ ...blah blah _ABC_blah_CBA_...'
>>> re.findall('_ABC_(.*?)_CBA_', s)
['superman_is_cool', 'blah']

The ? makes the * operator non-greedy so it finds as short a match as possible. Without it the result would be ['superman_is_cool_CBA_ ...blah blah _ABC_blah'].

  • +1 for not getting bitten by greediness ;) – user395760 Jan 9 '11 at 7:00
  • Perfect! Thanks. – jairajs89 Jan 9 '11 at 7:06

Try this

re.findall('_ABC_.*_CBA_)', s)
  • That's not a valid regular expression.. – jairajs89 Jan 9 '11 at 6:56

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