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I would like to determine whether a string S has a substring MYSUBSTRING preceded by two consecutive digits I need to determine.

For example:

'aaa79bbbMYSUBSTRINGccc' ==> I want 7, 9 and True (or 7, 9 and MYSUBSTRING)

'aaa79bbbccc' ==> I want 7, 9 and False (or 7, 9 and None)

Can I do that with a SINGLE regex? If so, which one?

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3 Answers 3

up vote 4 down vote accepted

The following regex should do it:

(\d)(\d)(?:.*?(MYSUBSTRING))?

>>> re.search(r'(\d)(\d)(?:.*?(MYSUBSTRING))?', 'aaa79bbbMYSUBSTRINGccc').groups()
('7', '9', 'MYSUBSTRING')
>>> re.search(r'(\d)(\d)(?:.*?(MYSUBSTRING))?', 'aaa79bbbccc').groups()
('7', '9', None)
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Why do I need the ? in .*?? Isn't '(\d)(\d)(?:.*(MYSUBSTRING))?' enough? –  Sylvain Mar 19 '11 at 8:57
    
More specifically, r'^aaa(\d)(\d)bbb(?:(MYSUBSTRING))?ccc$ match the lines above and will fail if the line doesn't match that pattern. –  Johnsyweb Mar 19 '11 at 11:53

Sure, you can use (\d)(\d).*?(MYSUBSTRING)?. In Python, you would use this in the re.search function like so:

s = ... # your string
m = re.search(r'(\d)(\d).*?(MYSUBSTRING)?', s)
m.group(1) # first digit
m.group(2) # second digit
m.group(3) # the substring, or None if it didn't match
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Surely m = re.search(r'(\d)(\d)bbb(MYSUBSTRING)?', s), given the examples above? –  Johnsyweb Mar 18 '11 at 23:24
1  
I don't speak python, but in perl it'd be: ^.*(\d)(\d).*((?:MYSUBSTRING)) –  Brian Roach Mar 18 '11 at 23:28
2  
Original solution fails to capture if there's intervening text. @Johnsyweb doesn't generalize (unless the solution isn't supposed to, in which case it's absolutely correct). @Brian Roach won't match anything if MYSUBSTRING doesn't appear, no? Of course, all of our solutions are so ugly it's probably best to do this in two regexes. –  Jacob Mar 18 '11 at 23:34
    
@Jacob: I deliberately didn't generalise. The regex I provided matches both of the examples above. I don't think these are real examples, so explicitly adding bbb should make it easier for @Sylvain to tailor. –  Johnsyweb Mar 19 '11 at 0:01
1  
Sure, that'd work. But that version (without the extra ?) will try to match the longest possible section of the string, which means that it will find the last instance of MYSUBSTRING. Unless that substring usually occurs toward the end of the entire string, it'll be marginally more efficient to use a reluctant quantifier (*?) to try to capture the shortest possible match, i.e. to make the regex find the first instance of MYSUBSTRING following the digits. –  David Z Mar 19 '11 at 9:22

A fun problem. This monstrosity:

(\d)(\d)(.(?!(MYSUBSTRING)))*.?(MYSUBSTRING)?

Seems to work for me.

Broken down:

(\d)(\d)              # capture 2 digits
(.(?!(MYSUBSTRING)))* # any characters not preceded by MYSUBSTRING
.?                    # the character immediately before MYSUBSTRINg
(MYSUBSTRING)?        # MYSUBSTRING, if it exists
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