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I need to try a string against multiple (exclusive - meaning a string that matches one of them can't match any of the other) regexes, and execute a different piece of code depending on which one it matches. What I have currently is:

m = firstre.match(str)
if m:
    # Do something

m = secondre.match(str)
if m:
    # Do something else

m = thirdre.match(str)
if m:
    # Do something different from both

Apart from the ugliness, this code matches against all regexes even after it has matched one of them (say firstre), which is inefficient. I tried to use:

elif m = secondre.match(str)

but learnt that assignment is not allowed in if statements.

Is there an elegant way to achieve what I want?

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7 Answers

up vote 4 down vote accepted
def doit( s ):

    # with some side-effect on a
    a = [] 

    def f1( s, m ):
        a.append( 1 )
        print 'f1', a, s, m

    def f2( s, m ):
        a.append( 2 )
        print 'f2', a, s, m

    def f3( s, m ):
        a.append( 3 )
        print 'f3', a, s, m

    re1 = re.compile( 'one' )
    re2 = re.compile( 'two' )
    re3 = re.compile( 'three' )


    func_re_list = (
        ( f1, re1 ), 
        ( f2, re2 ), 
        ( f3, re3 ),
    )
    for myfunc, myre in func_re_list:
        m = myre.match( s )
        if m:
            myfunc( s, m )
            break


doit( 'one' ) 
doit( 'two' ) 
doit( 'three' ) 
share|improve this answer
    
+1 for pure pythonic awesomeness. Personally, I would put the list of tuples outside the for statement e.g. match_functions = ((f1,re1),(f2,re2),..) and do for myfunc,myre in match_functions: –  Kimvais Jan 8 '10 at 14:45
1  
Don't forget to add "break" to save trying to match against the rest of the list. –  Ofri Raviv Jan 8 '10 at 14:46
    
Edited with the suggestions of the comments plus real example. –  Bluebird75 Jan 8 '10 at 14:55
    
I finally implemented a solution similar to this. In my case, I was able to refactor 3 of the 4 cases into a function. So I matched the first regex alone directly, and if it didn't match, went through the other 3 regexes, and called the function with the appropriate arguments. For calling the function with different arguments depending on the regex, I made a dict of (regex: (arg1, arg2)). The code is (IMHO atleast) more elegant than before now. Thanks a lot. –  sundar Feb 1 '10 at 10:44
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This might be a bit over engineering the solution, but you could combine them as a single regexp with named groups and see which group matched. This could be encapsulated as a helper class:

import re
class MultiRe(object):
    def __init__(self, **regexps):
        self.keys = regexps.keys()
        self.union_re = re.compile("|".join("(?P<%s>%s)" % kv for kv in regexps.items()))

    def match(self, string, *args):
        result = self.union_re.match(string, *args)
        if result:
            for key in self.keys:
                if result.group(key) is not None:
                    return key

Lookup would be like this:

multi_re = MultiRe(foo='fo+', bar='ba+r', baz='ba+z')
match = multi_re.match('baaz')
if match == 'foo':
     # one thing
elif match == 'bar':
     # some other thing
elif match == 'baz':
     # or this
else:
     # no match
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Nice! (min 15 char) –  Bart Kiers Jan 8 '10 at 18:20
    
This looks over engineering from my point of view. I don't find the code really easy to understand. –  Bluebird75 Jan 8 '10 at 18:31
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This is a good application for the undocumented but quite useful re.Scanner class.

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Nice! Thanks for the link. –  Brandon Jan 8 '10 at 18:18
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A few ideas, none of them good necessarily, but it might fit your code well:

How about putting the code in a separate function, i.e. MatchRegex(), which returns which regex it matched. That way, inside the function, you can use a return after you matched the first (or second) regex, meaning you lose the inefficiency.

Of course, you could always go with just nested if statements:

m = firstre.match(str)
if m:
   # Do something
else:
    m = secondre.match(str)
    ...

I really don't see any reason not to go with nested ifs. They're very easy to understand and as efficient as you want. I'd go for them just for their simplicity.

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+1 for suggesting the simple solution for the problem –  João Portela Jan 8 '10 at 16:46
    
what if there are few hundred regexes? code would be hardly readable for anything over 10-something. –  kibitzer Jan 10 '10 at 2:13
    
@kibitzer: In that case, it makes sense to engineer a general solution. Or in the case where it is expected to grow to that. Not every time you have to write 3 nested if's. –  Edan Maor Jan 10 '10 at 8:32
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You could use

def do_first(str, res, actions):
  for re,action in zip(res, actions):
    m = re.match(str)
    if m:
      action(str)
      return

So, for example, say you've defined

def do_something_1(str):
  print "#1: %s" % str

def do_something_2(str):
  print "#2: %s" % str

def do_something_3(str):
  print "#3: %s" % str

firstre  = re.compile("foo")
secondre = re.compile("bar")
thirdre  = re.compile("baz")

Then call it with

do_first("baz",
         [firstre,        secondre,       thirdre],
         [do_something_1, do_something_2, do_something_3])
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Early returns, perhaps?

def doit(s):
    m = re1.match(s)
    if m:
        # Do something
        return

    m = re2.match(s)
    if m:
        # Do something else
        return

    ...

Ants Aasma's answer is good too. If you prefer less scaffolding you can write that out yourself using the verbose regex syntax.

re = re.compile(r'''(?x)    # set the verbose flag
    (?P<foo> fo+ )
  | (?P<bar> ba+r )
  | #...other alternatives...
''')

def doit(s):
    m = re.match(s)
    if m.group('foo'):
        # Do something
    elif m.group('bar'):
        # Do something else
    ...

I've done this a lot. It's fast and it works with re.finditer.

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Do it with an elif in case you just need a True/False out of regex matching:

if regex1.match(str):
    # do stuff
elif regex2.match(str):
    # and so on
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1  
I think he needs the return value from regex.match(str) –  João Portela Jan 8 '10 at 16:47
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