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I'm trying to use re.compile to match a value on a web page

My web page contains the following HTML:

<div id="paginate">
&nbsp;<strong>1</strong>
&nbsp;<a href="http://www.link2.com/">2</a>
&nbsp;<a href="http://www.link3.com/">3</a>
&nbsp;<a href="http://www.link2.com">&gt;</a>
&nbsp;&nbsp;<a href="http://www.link20.com/">Last &rsaquo;</a>
</div>

My regex is as follows:

re.compile('<a href="(.+?)">&gt;</a>').findall()

This returns

['http://www.link2.com/">2</a>
&nbsp;<a href="http://www.link3.com">3</a>
&nbsp;<a href="http://www.link2.com/']

I only want to get the href of the link which contains the greater than symbol as it's label?

Any ideas?

Thanks in advance

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Regular expressions should not be used here. –  Games Brainiac Oct 15 '13 at 9:39
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1 Answer

Just use re.findall():

>>> re.findall('<a href="(.+?)">&gt;</a>', html)
['http://www.link4.com']

Note that you really should be parsing HTML with an HTML parser and not regex. I suggest BeautifulSoup:

>>> from bs4 import BeautifulSoup as BS
>>> soup = BS(html)
>>> print soup.find('a', text='>')
<a href="http://www.link4.com">&gt;</a>
>>> print soup.find('a', text='>')['href']
http://www.link4.com
share|improve this answer
    
+1 for saying that parsing HTML with regex is bad –  Pol0nium Oct 15 '13 at 9:43
    
Thanks for the reply. I'm pretty new to Python and will look into BS. In this case, it's a small XBMC plugin that I am writing and unfortunately using re.findall still returns the same as before. If I change the &gt; to a 2 it finds the href for link2.com successfully –  Richard Lindsay Oct 15 '13 at 9:47
    
@RichardLindsay Are you using the code I'm using? in my case html is just what you posted in your question –  Haidro Oct 15 '13 at 9:51
    
Instead of the html, i'm passing a variable named link which contains the html. Is that wrong? –  Richard Lindsay Oct 15 '13 at 9:55
    
@RichardLindsay Nah that should be right. Tbh, this is really why you should be using a parser and not regex :p –  Haidro Oct 15 '13 at 9:59
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