Thank you in advance for reading.

I have a string:

A = "a levels"

I want to match all of the following possible variations of A level:

Pattern = r"a level|a levels"

(The form of this pattern is set, I cannot change it.) Following the search, I desire to get:

["a level","a levels"]

I use findall as follows:

B = re.findall(Pattern,A)

and get:

B = "a level"

re.findall only matches the first term and ignores the second overlapping term.

Per: Python regex find all overlapping matches? I tried using:

B = re.findall(Pattern,A,overlapped = True)

and get the following error:

TypeError: findall() got an unexpected keyword argument 'overlapped'

Obviously overlapped doesn't exist as a keyword argument any more...

I then looked at this question: Python regex find all overlapping matches? and tried:

C = re.finditer(Pattern,A)
results = match.group()

results = "a level"

So no better.

How can I get the output I desire?

Relevant qu: How to find overlapping matches with a regexp?

  • You may only match overlapping strings at different indices. – Wiktor Stribiżew Dec 8 '16 at 17:19
  • I am not sure if its possible to achieve what you want but the overlapped error can be resolved via pip install regex and then import regex as re regex is newer version of regex module for python. – saurabh baid Dec 8 '16 at 17:30
  • @saurabhbaid. Unfortunately, the overlapped option in regex will not resolve the problem here, as it does not work with alternation. – ekhumoro Dec 8 '16 at 17:57
  • I did not know there was a separate re and regex module. Thank you for the information. @ekhumoro Thanks for telling me the word for what I was trying to convey (seriously - I was a bit wordy without it). – Chuck Dec 8 '16 at 17:59
up vote 1 down vote accepted

If all every possible Pattern is similar to what you've shown, this might work for you:

B=[b for pat in Pattern.split('|') for b in re.findall(pat, A)]

Of course, this doesn't generalize beyond Pattern being a set of simple alternatives.

  • Thank you Rob. So it looks like you split the string by | and then carry out .findall on each of the split elements if I understand correctly? The funny thing is, I started with a version of Pattern that looked like Pattern = ["a level", "a levels"...] and converted it to Pattern = "a level | a levels..." Maybe I can get rid of that, and then implement only the findall part of your answer... When all is together, I will see which way is faster and pick that. Thanks for the help :) – Chuck Dec 8 '16 at 17:52

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