Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I'm wondering if something like this is possible in python (3.2, if that's relevant).

with assign_match('(abc)(def)', 'abcdef') as (a, b):
    print(a, b)

Where the behavior is:

  • if the regex matches, the regex groups get assigned to a and b
    • if there's a mismatch there, it'd throw an exception
  • if the match is None, it would just bypass the context entirely

My goal here is basically an extremely concise way of doing the contextual behavior.

I tried making the following context manager:

import re

class assign_match(object):
    def __init__(self, regex, string):
        self.regex = regex
        self.string = string
    def __enter__(self):
        result = re.match(self.regex, self.string)
        if result is None:
            raise ValueError
        else:
            return result.groups()
    def __exit__(self, type, value, traceback):
        print(self, type, value, traceback) #testing purposes. not doing anything here.

with assign_match('(abc)(def)', 'abcdef') as (a, b):
    print(a, b) #prints abc def
with assign_match('(abc)g', 'abcdef') as (a, b): #raises ValueError
    print(a, b)

It actually works exactly as desired for the case when the regexes match, but, as you can see, it throws the ValueError if there's no match. Is there any way I can get it to "jump" to the exit sequence?

Thanks!!

share|improve this question

1 Answer 1

up vote 4 down vote accepted

Ah! Perhaps explaining it on SO clarified the problem for me. I just use an if statement instead of a with statement.

def assign_match(regex, string):
    match = re.match(regex, string)
    if match is None:
        raise StopIteration
    else:
        yield match.groups()

for a in assign_match('(abc)(def)', 'abcdef'):
    print(a)

Gives exactly the behavior I'd like. Leaving this here in case other people want to benefit from it. (Mods, if it's not relevant, feel free to delete, etc.)

EDIT: Actually, this solution comes with one fairly large flaw. I'm doing this behavior within a for-loop. So this prevents me from doing:

for string in lots_of_strings:
    for a in assign_match('(abc)(def)', string):
        do_my_work()
        continue # breaks out of this for loop instead of the parent
    other_work() # behavior i want to skip if the match is successful

Because the continue now breaks out of this loop instead of the parent for loop. If anyone has suggestions, I'd love to hear!

EDIT2: Alright, figured it out for real this time.

from contextlib import contextmanager
import re

@contextmanager
def assign_match(regex, string):
    match = re.match(regex, string)
    if match:
        yield match.groups()

for i in range(3):
    with assign_match('(abc)(def)', 'abcdef') as a:
#    for a in assign_match('(abc)(def)', 'abcdef'):
        print(a)
        continue
    print(i)

Sorry for the post - I swear I was feeling really stuck before I posted. :-) Hopefully someone else will find this interesting!

share|improve this answer
    
you could write for a, b in ... –  J.F. Sebastian May 26 '12 at 19:10
1  
Explicit raise StopIteration is unnecessary. if match: yield match.groups() is sufficient. –  J.F. Sebastian May 26 '12 at 19:14
1  
Thanks for the tip, J.F.! Final code reflects your point. –  Kurt Spindler May 26 '12 at 19:35
1  
just change the indentation level of continue to work on the correct loop. Your edit2 won't work –  J.F. Sebastian May 26 '12 at 19:52

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.