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I'm trying to compare a string called facility to multiple possible strings to test if it is valid. The valid strings are:

auth, authpriv, daemon, cron, ftp, lpr, kern, mail, news, syslog, user, uucp, local0, ... , local7

Is there an efficient way of doing this other than:

if facility == "auth" or facility == "authpriv" ...
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3 Answers 3

up vote 14 down vote accepted

If, OTOH, your list of strings is indeed hideously long, use a set:

accepted_strings = {'auth', 'authpriv', 'daemon'}

if facility in accepted_strings:
    do_stuff()

Testing for containment in a set is O(1) on average.

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Yes, that would be the way to go. wiki.python.org/moin/PythonSpeed is pretty good reading for anyone interested in a general overview of efficiency in python. Though you wouldn't happen to know the average time for set() would you? –  waffle paradox Jul 27 '11 at 0:59
    
Thanks for this +1, accepted –  maxmackie Jul 27 '11 at 1:52
    
One potential downside with this is that the order of iteration over them becomes unpredictable, but that's only a problem if you're using them for anything else (such as to print the list of accepted strings in a help message). –  Ben Jul 27 '11 at 3:37
2  
In python2.7/3 you can write accepted_strings = {'auth', 'authpriv', 'daemon'} so that no list is created prior to building a set. –  Michał Bentkowski Jul 27 '11 at 8:19

Unless your list of strings gets hideously long, something like this is probably best:

accepted_strings = ['auth', 'authpriv', 'daemon'] # etc etc 

if facility in accepted_strings:
    do_stuff()
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oh awesome thank you. what happens if my list does actually get really long? –  maxmackie Jul 27 '11 at 0:40
    
That was just a small joke, since you wouldn't want to type in a list of 10,000 strings by hand. –  waffle paradox Jul 27 '11 at 0:56
    
This is the option I originally used, but as my application might grow I'm going to accept @pillmucher's answer. Thanks +1 –  maxmackie Jul 27 '11 at 1:51
    
No probs. His is probably the safer one, though as a note you're going to have to have lists orders of magnitude bigger than what you have now before the difference between set and list containment will really start to be noticeable. Just remember premature optimization is the root of all evil. ;) –  waffle paradox Jul 27 '11 at 1:57

To efficiently check if a string matches one of many, use this:

allowed = set(('a', 'b', 'c'))
if foo in allowed:
    bar()

set()s are hashed, unordered collections of items optimized for determining whether a given item is in them.

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If you're worried about speed it's slightly faster to assemble a tuple than a list to iterate over to create the set. –  agf Jul 27 '11 at 0:54
    
Why doesn't set() accept *args (just tried it)? :( –  Karl Knechtel Jul 27 '11 at 4:31
    
I have no idea why. My specialty is CPython byte code manipulation. –  Colin Valliant Jul 27 '11 at 8:49

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