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Sorry for the general title. I am looking for a python re expression to match following regular expression:

stringOfAlphaNumeric1 ( stringOfAnyCharacter1 , stringOfAnyCharacter2 , stringOfAnyCharacter3 )

This expression can be repeated many times separating by white space. For example:

stringOfAlphaNumeric1 ( stringOfAnyCharacter1 , stringOfAnyCharacter2 , stringOfAnyCharacter3 ) stringOfAlphaNumeric2 ( stringOfAnyCharacter4 , stringOfAnyCharacter5 , stringOfAnyCharacter6 )

How can I get the following pairs:

stringOfAlphaNumeric1 -> stringOfAnyCharacter1
stringOfAlphaNumeric1 -> stringOfAnyCharacter2
stringOfAlphaNumeric1 -> stringOfAnyCharacter3
stringOfAlphaNumeric2 -> stringOfAnyCharacter4
stringOfAlphaNumeric2 -> stringOfAnyCharacter5
stringOfAlphaNumeric2 -> stringOfAnyCharacter6
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closed as too localized by melpomene, Scott Hunter, Jakob Bowyer, Andy Hayden, Graviton Jan 27 '13 at 8:29

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3  
That is pretty basic regular expression, what did you do that didn't work ? –  mmgp Dec 30 '12 at 15:26
    
What do you mean by the state transitions (e.g. stringOfAlphaNumeric1 -> stringOfAnyCharacter1)? You're not implementing a DFA... –  dan3 Dec 30 '12 at 15:28
    
@mmgp it's not that trivial (in a single expression), since matches can generally not overlap and lookbehinds in Python can not be of variable length –  Martin Büttner Dec 30 '12 at 15:32

1 Answer 1

up vote 3 down vote accepted
import re

#if its fixed:  [  Key ( Value1 , Value2 , Value3 )  ]
regex = re.compile(r'([A-Za-z0-9]+) \( (.+?) , (.+?) , (.+?) \)')
s = "stringOfAlphaNumeric1 ( stringOfAnyCharacter1 , stringOfAnyCharacter2 , stringOfAnyCharacter3 ) stringOfAlphaNumeric2 ( stringOfAnyCharacter4 , stringOfAnyCharacter5 , stringOfAnyCharacter6 )"

d = dict((i[0], i[1:]) for i in regex.findall(s))

d is:

{'stringOfAlphaNumeric2': ('stringOfAnyCharacter4', 'stringOfAnyCharacter5', 'stringOfAnyCharacter6'), 
'stringOfAlphaNumeric1': ('stringOfAnyCharacter1', 'stringOfAnyCharacter2', 'stringOfAnyCharacter3')}

to get pairs:

[(k, i) for k, v in d.items() for i in v]

yields:

[('stringOfAlphaNumeric2', 'stringOfAnyCharacter4'), 
('stringOfAlphaNumeric2', 'stringOfAnyCharacter5'), 
('stringOfAlphaNumeric2', 'stringOfAnyCharacter6'), 
('stringOfAlphaNumeric1', 'stringOfAnyCharacter1'), 
('stringOfAlphaNumeric1', 'stringOfAnyCharacter2'), 
('stringOfAlphaNumeric1', 'stringOfAnyCharacter3')]
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Thank you so much! –  ahmad Dec 30 '12 at 16:26

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