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How would I start on a single web page, let's say at the root of DMOZ.org and index every single url attached to it. Then store those links inside a text file. I don't want the content, just the links themselves. An example would be awesome.

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3  
Why do you need this in python? wget can do this without reinventing the wheel –  Daenyth Oct 13 '10 at 15:58
    
I program on the best OS, Windows, not Linux :). –  Noah R Oct 13 '10 at 15:59
    
Multiple levels. An undetermined depth. –  Noah R Oct 13 '10 at 16:02
5  
Wget is available for Windows. –  Ben James Oct 13 '10 at 16:03

3 Answers 3

up vote 2 down vote accepted

This, for instance, would print out links on this very related (but poorly named) question:

import urllib2
from BeautifulSoup import BeautifulSoup

q = urllib2.urlopen('http://stackoverflow.com/questions/3884419/')
soup = BeautifulSoup(q.read())

for link in soup.findAll('a'):
    if link.has_key('href'):
        print str(link.string) + " -> " + link['href']
    elif link.has_key('id'):
        print "ID: " + link['id']
    else:
        print "???"

Output:

Stack Exchange -> http://stackexchange.com
log in -> /users/login?returnurl=%2fquestions%2f3884419%2f
careers -> http://careers.stackoverflow.com
meta -> http://meta.stackoverflow.com
...
ID: flag-post-3884419
None -> /posts/3884419/revisions
...
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You should use if 'href' in link: rather than link.has_key. has_key is deprecated and removed from python 3. –  Daenyth Oct 13 '10 at 17:41
    
For me (Py 2.6.5, BS 3.0.8) 'href' in link returns False, even though link['href'] will give me a URL. I don't know that much about the workings of dictionaries though. 'href' in zip(*link.attrs)[0] does seem to work, but is ugly. –  Nick T Oct 13 '10 at 18:38

If you insist on reinventing the wheel, use an html parser like BeautifulSoup to grab all the tags out. This answer to a similar question is relevant.

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Scrapy is a Python framework for web crawling. Plenty of examples here: http://snippets.scrapy.org/popular/bookmarked/

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