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I need to count words with non-English characters, special characters such as punctuation, or digits at beginning or middle of word. I trying to do it with re, and now it seems like

begin_searcher = re.compile(r'[0-9]+[\w\-]')
middle_searcher = re.compile(r'[\w\-]+[0-9]+[\w\-]')
both_searcher = re.compile(r'[0-9]+[\w\-]+[0-9]+[\w\-]')

But it works completely wrong. Anyone, who knows re better me, please help.

I need to count this:

'asfas1254asffas'
'125safasffa'
'asd!asfg'
'asff#dasf'
'sex!!!!'
'safщовфау'

etc

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1  
What output are you expecting from this input? –  georg Nov 10 '12 at 14:08
    
sorry, I forget about it. I think True-False enough, or word if True, None if False. Anyway I'll change code after-all –  JohnDow Nov 10 '12 at 14:12
    
Any another ideas? –  JohnDow Nov 10 '12 at 17:14

2 Answers 2

Since you mentioned "non-english" characters, I recommend using regex instead of stock re, because of the weak unicode support in the latter. Unless I misunderstood the question, you're looking for something like:

regex.match(ur'^\p{L}*[\p{P}\p{Nd}]*\p{L}+$', s) #

where s is expected to be a unicode object. This matches u"123щовßß" and u"щов456ßß" and rejects u"щовßß!!!".

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I cant use non-standart libs :( Thank you anyway. –  JohnDow Nov 10 '12 at 14:37
up vote 0 down vote accepted

If it could help:

def find_alphabetic_words(self, text):
                    letters = ascii_letters
                    letters_nd_term = letters + "?!,."
                    return not any([set(text[:-1]).difference(letters),text[-1] not in letters_nd_term])
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