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This is part of my html code:

<link rel ="stylesheet" type="text/css" href="catalog/view/theme/default/stylesheet/stylesheet.css" />
<link id='all-css-0' href='http://1' type='text/css' media='all' rel='stylesheet'  />
<link rel='stylesheet'  id='all-css-1' href =   'http://2' type='text/css' media='all' />

I have to find all hrefs of stylesheets.

I tried to use regular expression like

 <link\s+rel\s*=\s*["']stylesheet["']\s*href\s*=\s*["'](.*?)["'][^>]*?>

The full code is

body = '''<link rel ="stylesheet" type="text/css" href="catalog/view/theme/default/stylesheet/stylesheet.css" />
<link id='all-css-0' href='http://1' type='text/css' media='all' rel='stylesheet'  />
<link rel='stylesheet'  id='all-css-1' href =   'http://2' type='text/css' media='all' />''''

real_viraz = '''<link\s+rel\s*=\s*["']stylesheet["']\s*href\s*=\s*["'](.*?)["'][^>]*?>'''
r = re.findall(real_viraz, body, re.I|re.DOTALL)
print r

But the problem is that rel='stylesheet' and href='' can be in any order in <link ...>, and it can be almost everything between them.

Please help me to find the right regular expression. Thanks.

share|improve this question
    
I guess someone is going to paste here a very famous link... –  Birei Oct 27 '13 at 16:00
    
I am waiting :) –  SKulibin Oct 27 '13 at 16:04

2 Answers 2

up vote 1 down vote accepted

Short answer: Don't use regular expressions to parse (X)HTML, use a (X)HTML parser.

In Python, this would be lxml. You could parse the HTML using lxml's HTML Parser, and use an XPath query to get all the link elements, and collect their href attributes:

from lxml import etree

parser = etree.HTMLParser()

doc = etree.parse(open('sample.html'), parser)
links = doc.xpath("//head/link[@rel='stylesheet']")
hrefs = [l.attrib['href'] for l in links]

print hrefs

Output:

['catalog/view/theme/default/stylesheet/stylesheet.css', 'http://1', 'http://2']
share|improve this answer
    
Thanks, this was what I need :) –  SKulibin Oct 28 '13 at 18:19

Somehow, your name looks like a power automation tool Sikuli :)

If you are trying to parse HTML/XML based text in Python. BeautifulSoup (DOCUMENT)is an extremely powerful library to help you with that. Otherwise, you are indeed reinventing the wheel(an interesting story from Randy Sargent).

from bs4 import BeautifulSoup4
# in case you need to get the page first. 
#import urllib2
#url = "http://selenium-python.readthedocs.org/en/latest/"
#text = urllib2.urlopen("url").read()
text = """<link rel ="stylesheet" type="text/css" href="catalog/view/theme/default/stylesheet/stylesheet.css" /><link id='all-css-0' href='http://1' type='text/css' media='all' rel='stylesheet'  /><link rel='stylesheet'  id='all-css-1' href =   'http://2' type='text/css' media='all' />"""
soup = BeautifulSoup(text)
links = soup.find_all("link", {"rel":"stylesheet"})
for link in links:
    try:
        print link['href']
    except:
        pass

the output is:

catalog/view/theme/default/stylesheet/stylesheet.css
http://1
http://2

Learn beautifulsoup well and you are 100% ready for parsing anything in HTML or XML. (You might also want to put Selenium, Scrapy into your toolbox in the future.)

share|improve this answer
    
The BeautifulSoup parser has been integrated in lxml, and is much slower than lxml's HTML parser. So unless you know for sure you have to deal with broken HTML, you should try more strict and faster parsers first. –  Lukas Graf Oct 27 '13 at 16:17
    
@LukasGraf You can do BeautifulSoup(text, 'lxml') to use the whatever parser you want and lxml is one of the options. –  B.Mr.W. Oct 27 '13 at 16:19

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