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I'm writing a plugin for xbmc in python. I have got a list of strings in the format:
<a href="/www.link.to/something">name of link</a>

By using beautiful stone soup (the relevant part of the code):

 soup = BeautifulStoneSoup(link, convertEntities=BeautifulStoneSoup.XML_ENTITIES)
    programs = soup('ul')
    i = 0
    for prog in programs:
        i = i+1
        if i==(5+getLetterValue(name)):
            j = 0
            while j < len(prog('li')):
                li = prog('li')[j]
                link = li('a')[0]

getLeterValue is a function that returns an index which indidcates where this specific 'ul' tag is placed (according to the desired letter).

Now I want to split link in the link and text. I tried using re.compile:
match=re.compile('<a href="(.+?)">(.+?)</a>').findall(link.string)
but all I get is match=[]

What have I done wrong?

Note: I know I should regexp html code but I'm not sure this ``rule'' is valid for small string. Also, for some reason this is almost a standard in xbmc plugin writing and I assume there is some reason for that.

share|improve this question
    
If link.string is like <a href="/www.link.to/something">name of link</a> , the regex's pattern is correct to match them. But don't call an object with the identifier 'match', I don't think that you override the re's method match, but that's dangerous –  eyquem Aug 28 '11 at 20:06
    
You should use for i,prog in enumerate(programs): –  eyquem Aug 28 '11 at 20:14

2 Answers 2

up vote 2 down vote accepted

Why not let BeautifulSoup give you the href attribute and the element contents?

share|improve this answer
    
Great tool. However, I still need the string, name of link in my question. –  Yotam Aug 29 '11 at 5:51
    
That's also in the same docs. Edited the answer with a paste from the docs. –  Ross Patterson Aug 29 '11 at 7:27
    
I have found about contents about 15 minutes before you answered me, thanks. I still have a problem though. I think it has something to do with the Hebrew with the webpage. The answer I get is in the format of [u'\u50e0...'] and I can't figure how to convert that to a unicode string. –  Yotam Aug 29 '11 at 9:00
    
u'\n'.join([u'\u50e0...']) –  Ross Patterson Aug 29 '11 at 16:23
    
Nope, it didn't work. I toyed around with it and I couldn't have convert this into Hebrew. I'll ask a new question –  Yotam Aug 29 '11 at 19:33

The easiest way is to use lxml:

from lxml.html import fromstring

elem = fromstring(link.string)
print elem.attrib["href"]
print elem.text
share|improve this answer
    
lxml is slower than BeautifulSoup , which is itself slower than pure regex. One time I measured lxml being 100 times slower than a code using uniquely regexes. –  eyquem Aug 28 '11 at 20:45
    
@eyquem hmm, didn't know that –  Gabi Purcaru Aug 28 '11 at 20:50

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