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So I have a web crawler which prints out all the links from given sites without repeating of same links. my code (with imported but not yet used libraries) looks like this:

import urllib
import re
import mechanize
from bs4 import BeautifulSoup
import urlparse
import cookielib
from urlparse import urlsplit
from publicsuffix import PublicSuffixList

url = "http://www.zahnarztpraxis-uwe-krause.de"

br = mechanize.Browser()
cj = cookielib.LWPCookieJar()
br.set_cookiejar(cj)
br.set_handle_robots(False)
br.set_handle_equiv(False)
br.set_handle_redirect(True)
br.set_handle_refresh(mechanize._http.HTTPRefreshProcessor(), max_time=1)
br.addheaders = [('User-agent', 'Mozilla/5.0 (X11; U; Linux i686; en-US; rv:1.9.0.1) Gecko/2008071615 Fedora/3.0.1-1.fc9 Firefox/3.0.1')]
page = br.open(url, timeout=5)

htmlcontent = page.read()
soup = BeautifulSoup(htmlcontent)

newurlArray = []

for link in br.links(text_regex=re.compile('^((?!IMG).)*$')):
    newurl = urlparse.urljoin(link.base_url, link.url)
    if newurl not in newurlArray:
        newurlArray.append(newurl)
        print newurl

and it gaves me results like this:

.....

http://www.zahnarztpraxis-uwe-krause.de/pages/amalgamentfernung.html
http://www.zahnarztpraxis-uwe-krause.de/pages/homoeopathie.html
http://www.zahnarztpraxis-uwe-krause.de/pages/veneers.html
http://www.zahnarztpraxis-uwe-krause.de/pages/prophylaxe.html
http://www.zahnarztpraxis-uwe-krause.de/pages/bleaching/bleaching-zahnschmuck.html
http://www.zahnarztpraxis-uwe-krause.de/pages/dental_wellness_care.html
http://www.zahnarztpraxis-uwe-krause.de/pages/digitales-roentgen.html
http://www.zahnarztpraxis-uwe-krause.de/pages/anfahrt.html
http://www.zahnarztpraxis-uwe-krause.de/pages/kontakt.html
http://www.zahnarztpraxis-uwe-krause.de/pages/impressum.html

etc....

Now my question is how can I tell to my program that it prints out only that link which contains word kontakt for example.

Should I use a regular expression for that or something else?

I've never done that so I don't know what to use to get only result:

http://www.zahnarztpraxis-uwe-krause.de/pages/kontakt.html

Any suggestions?

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2 Answers 2

up vote 1 down vote accepted

Yes, it's as easy as using a regex or plain old Python string find() on link.url. (EDIT: you can also use 'kontakt' in link.url as shshank does)

for link in br.links(text_regex=re.compile('^((?!IMG).)*$')):

    if link.url.find('kontakt')>=0: ...do stuff on urls containing contact
    # or:
    if link.url.find('kontakt')<0: continue # skip urls without

Obviously both of these (string find() method or in operator) can match anywhere in the string, which is a little sloppy. What you want to do here is only match inside the url tail. You can check just the tail using find() on link.url.split('/')[-1]

or else link.url.rsplit('/',2)[1]

share|improve this answer
    
that will work for me, thank you :) –  dzordz Aug 13 '13 at 7:44

why not simply do

if 'kontakt' in url:
    print url
else:
    continue
share|improve this answer
    
sorry, I'm python nooby so I don't know that it could be solved that easy :D –  dzordz Aug 13 '13 at 7:51

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