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i have a list of words
i am creating a list of regex objects based on this list of words

import re
word = 'This is word of spy++'
wl = ['spy++','cry','fpp']
regobjs = [re.compile(r"\b%s\b" % word.lower() ) for word in wl]

for reobj in regobjs:
    print re.search(regobj, word).group()

but i am getting error(error: multiple repeat) while creating regex objs because of the signs ++ how do i make the regex to handle all the cases of words in the word list ?

    requirements:

       regex should detect the exact word from the given text
 even if the word having non alpha numeric chars like (++) above code detect the exact words except those having ++ char.
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3  
You need re.escape(). –  Sven Marnach Nov 28 '11 at 12:26
1  
@SvenMarnach: He needs more than that... –  Tim Pietzcker Nov 28 '11 at 12:29
    
@Sashi Nobody wants to obtain errors. Wanting "not to obtain" doesn't bring information on what one wants "to obtain". Writing "handle all the cases" is super vague –  eyquem Nov 29 '11 at 12:32

3 Answers 3

up vote 6 down vote accepted

Besides re.escape() you also need to remove the \b word boundaries before/after a non-alphanumeric character, or the match will fail.

Something like this (not very elegant, but I hope it gets the point across):

import re
words = 'This is word of spy++'
wl = ['spy++','cry','fpp']
regobjs = []

for word in wl:
    eword = re.escape(word.lower())
    if eword[0].isalnum() or eword[0]=="_":
        eword = r"\b" + eword
    if eword[-1].isalnum() or eword[-1]=="_":
        eword = eword + r"\b"
    regobjs.append(re.compile(eword))

for regobj in regobjs:
    print re.search(regobj, words).group()
share|improve this answer
    
Yes its working after the removing the \b .Thanks. –  Shashi Nov 28 '11 at 12:41
    
But does it works if i want to match exact word in the given string thats why i have added \b. –  Shashi Nov 28 '11 at 12:43
    
it is not doing exact match which is doing in presence of \b need both option \b as well as re.escape() or is their any alternate solution? –  Shashi Nov 28 '11 at 12:47
    
Sorry, removed my last comment, it not working for Python. Python does not even accept alternations in its lookbehinds. –  stema Nov 28 '11 at 13:06
    
@Tim Didn't you test this code ? One must add an s to the names word in word = 'This is word of spy++' and print re.search(regobj, word).group() in order that this code work coreectly , otherwise it collides with word of the loop. - And by the way, regobj instead of reobj ... –  eyquem Nov 29 '11 at 10:39

You want to use \b when your word begins or ends with a letter, digit or underscore, and \B when it doesn't. That will mean you don't pick up spy++x for example but would pick up spy++. or even spy+++. If you want to avoid the last of those then things are going to get much more complicated.

>>> def match_word(word):
    return re.compile("%s%s%s" % (
        "\\b" if word[0].isalnum() or word[0]=='_' else "\\B",
        re.escape(word.lower()),
        "\\b" if word[-1].isalnum() or word[-1]=='_' else "\\B"))

>>> text = 'This is word of spy++'
>>> wl = ['spy++','cry','fpp', 'word']
>>> for word in wl:
    match = re.search(match_word(word), text)
    if match:
        print(repr(match.group()))
    else:
        print("{} did not match".format(word))


'spy++'
cry did not match
fpp did not match
'word'
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Your code detects spy++ in 'word of !spy++' , in 'word of spy++!' , and in 'word of spy+++++' . I'm not sure it is what Sashi wants. In fact , his requirement is confused. –  eyquem Nov 29 '11 at 11:54
    
@eyquem yes the requirement is confusing. If he specified the exact rules for boundaries between words and non-words then it might be possible to match those rules. –  Duncan Nov 29 '11 at 12:35
    
i have corrected the requirements sorry for confusion. –  Shashi Nov 29 '11 at 13:37

Sashi,

Your question is poor, it doesn't express what you exactly want. Then people are tempted to deduct what you want from the content of your code, and that leads to confusion.

I suppose that you want to find occurences of words in the list wl when they are purely isolated in a string, that is to say without any non-whitespace around each occurence.

If so , I propose the regex's pattern in the following code:

import re

ss = 'spy++ This !spy++ is spy++! word of spy++'
print ss
print [mat.start() for mat in re.finditer('spy',ss)]
print


base = ('(?:(?<=[ \f\n\r\t\v])|(?<=\A))'
        '%s'
        '(?=[ \f\n\r\t\v]|\Z)')

for x in ['spy++','cry','fpp']:
    print x,[mat.start() for mat in re.finditer(base % re.escape(x),ss)]

result

spy++ This !spy++ is spy++! word of spy++
[0, 12, 21, 36]

spy++ [0, 36]
cry []
fpp []
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