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I feel there must be a simpler/cleaner/faster (choose one or more) way to write this expression...

take a BigString = "This is a long sentence about a red cat named dude."

and LittleStringList = [ "red dog", "red cat", "red mouse" ]

I effectively want a function/expression that returns true when one of LittleStringList is in BigString. I wrote it like this:

def listcontains(list, big):
    contains = False
    for string in list:
        if string in big:
            contains = True
        else:
            pass
    return contains

Any help is appreciated! Thanks.

edit: Fixed a small error!

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Just a sidenote, but it makes the code a lot more readable if you use proper variable names... call the string something like s, and if possible don't use list (even python allows this) since that is the name of the built-in type (eg: try list([1,2,3]).. ) –  Karoly Horvath Jun 20 '11 at 19:45
    
of course, sorry. Just wrote up that little example real quick to showcase the concept! Will avoid that more diligently in the future. –  DKGasser Jun 20 '11 at 19:48
    
Just a sidenote, but it makes the code a lot more readable if you indent the code samples correctly. It helps of the BigString and LittleStringList examples are shown as either code blocks or in a proper code font (using `) –  S.Lott Jun 20 '11 at 20:52
    
else: pass is silly –  JBernardo Jun 20 '11 at 22:02

6 Answers 6

up vote 11 down vote accepted

any([s in BigString for s in LittleStringList])

or even better using a generator expression - as pointed out by @GWW:

any(s in BigString for s in LittleStringList)

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5  
You can use a generator expression instead of a list comprehension –  GWW Jun 20 '11 at 19:39
    
Good point! I'll add this - thanks for pointing it out. –  mhyfritz Jun 20 '11 at 19:42
1  
@mhyfritz: Don't need the additional parentheses if the generator expression is the only parameter. –  JAB Jun 20 '11 at 19:43
1  
no need for double braces then ;) –  unbeli Jun 20 '11 at 19:43
3  
Note the possibly big difference in the performance of the first and the second way of doing it, particularly as LittleStringList grows large. When any is invoked with a generator it will only iterate until the expression returns True, and then return at once. –  Lauritz V. Thaulow Jun 20 '11 at 20:09
  1. You don't need to go thru whole list, return on first match
  2. Do not use string as variable name, it is a module, str is a type, better word would be word.
  3. Do not use list as variable name
  4. You are looping on list and checking again in list, instead of big

so

def listcontains(words, big):
    for word in words:
        if word in big:
            return True
    return False
share|improve this answer

any(filter(lambda x: x in BigString, LittleStringList))

filter will return a list with LittleStringList words inside BigString and any will return true if filter returns a list with some occurence

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I assume you mean if string in big? Maybe then try:

def listcontains(list, big):
    return any([string in big for string in list])

Or a version with a generator:

def listcontains(list, big):
    def gen():
        for s in list:
            yield s in big
    return any(gen())
share|improve this answer
    
I did mean in big, thank you. –  DKGasser Jun 20 '11 at 19:44

To shorten it a little you could instead write:

def listcontains(list, big):
    for s in list:
        if s in big:
            return True
    return False
share|improve this answer

use any():

>>> BigString = "This is a long sentence about a red cat named dude."
>>> LittleStringList = [ "red dog", "red cat", "red mouse" ]
>>> any([str in BigString for str in LittleStringList])
True

>>> BigString = "This is a long sentence about a red bear named dude."
>>> any([str in BigString for str in LittleStringList])
False
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