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I have website , e.g http://site.com

I would like fetch main page and extract only links that match the regular expression, e.g .*somepage.*

The format of links in html code can be:

<a href="http://site.com/my-somepage">url</a> 
<a href="/my-somepage.html">url</a> 
<a href="my-somepage.htm">url</a>

I need the output format:

http://site.com/my-somepage
http://site.com/my-somepage.html
http://site.com/my-somepage.htm

Output url must contain domain name always.

What is the fast python solution for this?

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1  
What did you try that didn't work? StackOverflow is not a code writing service, but we will help you if you show some effort in solving the problem first. –  Burhan Khalid Mar 19 '13 at 4:15
    
Take a look at an HTML parsing module, such as BeautifulSoup. (Would post a link but I'm on my phone, sorry) –  TerryA Mar 19 '13 at 4:24

3 Answers 3

up vote 2 down vote accepted

You could use lxml.html:

from lxml import html

url = "http://site.com"
doc = html.parse(url).getroot() # download & parse webpage
doc.make_links_absolute(url)
for element, attribute, link, _ in doc.iterlinks():
    if (attribute == 'href' and element.tag == 'a' and
        'somepage' in link): # or e.g., re.search('somepage', link)
        print(link)

Or the same using beautifulsoup4:

import re
try:
    from urllib2 import urlopen
    from urlparse import urljoin
except ImportError: # Python 3
    from urllib.parse import urljoin
    from urllib.request import urlopen

from bs4 import BeautifulSoup, SoupStrainer # pip install beautifulsoup4

url = "http://site.com"
only_links = SoupStrainer('a', href=re.compile('somepage'))
soup = BeautifulSoup(urlopen(url), parse_only=only_links)
urls = [urljoin(url, a['href']) for a in soup(only_links)]
print("\n".join(urls))
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Use an HTML Parsing module, like BeautifulSoup.
Some code(only some):

from bs4 import BeautifulSoup
import re

html = '''<a href="http://site.com/my-somepage">url</a> 
<a href="/my-somepage.html">url</a> 
<a href="my-somepage.htm">url</a>'''
soup = BeautifulSoup(html)
links = soup.find_all('a',{'href':re.compile('.*somepage.*')})
for link in links:
    print link['href']

Output:

http://site.com/my-somepage
/my-somepage.html
my-somepage.htm

You should be able to get the format you want from this much data...

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Scrapy is the simplest way to do what you want. There is actually link extracting mechanism built-in.

Let me know if you need help with writing the spider to crawl links.

Please, also see:

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