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I have got some lists, and I want to filter elements from them. Here's the lists:

list1 = ['Little Mary had a lamb', 'the horse is black', 'Mary had a cat']
list2 = ['The horse is white', 'Mary had a dog', 'The horse is hungry']
listn = ...

Assume that I know a word or an expression which is relevant, Mary or horse in the following example. I would like to get a new list which items would be extracted from the other lists if these items contain the term or the expression searched. E.g. :

listMary = ['Little Mary had a lamb', 'Mary had a cat', 'Mary had a dog'] 
listHorse = ['the horse is black', 'The horse is white', 'The horse is hungry']
listn = ...

Don't worry my data is more complex ;)

I know that i should use the regular expression module, but I am unable to find in which way in this case. I have tried a few searches here on Stack Overflow but I don't know how to formulate the problem clearly enough so I couldn't find anything useful.

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4 Answers 4

up vote 2 down vote accepted

Could it be something like:

>>> a = ['Little Mary had a lamb', 'the horse is black', 'Mary had a cat']
>>> b = ['The horse is white', 'Mary had a dog', 'The horse is hungry']
>>> [sent for sent in a+b if 'Mary' in sent]
['Little Mary had a lamb', 'Mary had a cat', 'Mary had a dog']

Or if you prefer using a regex:

>>> import re
>>> [sent for sent in a+b if re.search("horse", sent)]
['the horse is black', 'The horse is white', 'The horse is hungry']
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Thanks everybody _ For regex i don't know : some people said me that it was a bad idea ut until your answer i did not know how to manage my question without this module. –  user1468223 Jun 20 '12 at 8:18

Use the conditional clause of a list comprehension.

[x for x in L if regex.search(x)]
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Or, to account for multiple lists: sum([[x for x in L if regex.search(x)] for L in (L1,L2,L3)],[]) –  mgilson Jun 20 '12 at 6:49

You don't necessarily need the regex module:

word = 'horse'
result = []
for l in [list1, list2, list3]:
    for sentence in l:
        if word in sentence:
            result.append(sentence)
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1  
chain.from_iterable would be better here docs.python.org/library/… –  John La Rooy Jun 20 '12 at 6:41
    
@gnibbler: Thanks, I didn't know about that function yet. –  Simeon Visser Jun 20 '12 at 6:44
    
Thank you two for the code and the doocs to read. –  user1468223 Jun 20 '12 at 8:32

User inbuilt function filter it will be fast and efficient.

def f(x): 
    return x % 2 != 0 and x % 3 != 0

filter(f, range(2, 25))

so here def f will take one arg and make your match and return true false and you will have your result list.

Thank You

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