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I've recently been recommended Beautiful Soup for a project in python. I've been reading the docs on the beautiful soup page but I can't make sense of it for what I want to do. I have a page that has a whole bunch of links. It's a directory with links, the file size etc. Lets say it looks like this:


Parent Directory/       -   Directory
game1.tar.gz    2010-May-24 06:51:39    8.2K    application/octet-stream
game2.tar.gz    2010-Jun-19 09:09:34    542.4K  application/octet-stream
game3.tar.gz    2011-Nov-13 11:53:01    5.5M    application/octet-stream
So what I want to do is supply a search string, lets say game2 and I want it to download game2.tar.gz. I've had the idea to use RE's but I've heard Beautiful Soup is much better. Can anybody show and explain how I would do this?

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What this question to do with BeautifulSoup. It's a HTML parser...what is the HTML part of your question!? What are you actually asking about??? –  Andreas Jung Apr 16 '11 at 19:07
    
....The question says it all. I want to parse the HTML to get all the links, search for game2 and download game2.tar.gz from that directory. –  Jmariz Apr 16 '11 at 19:10
    
Use lxml instead of Beautiful Soup. It's more Beautiful. –  Taha Jahangir Apr 16 '11 at 19:21
1  
BeautifulSoup is more beautiful –  Andreas Jung Apr 16 '11 at 19:25
1  
@Taha Jahangir Isn't there something still more powerful and more complicated than lxml ? That would be magnificent to use ! –  eyquem Apr 16 '11 at 19:25

2 Answers 2

up vote 0 down vote accepted
from BeautifulSoup import BeautifulSoup  
import urllib2

def searchLinks(url, query_string):
    f = urllib2.urlopen(url)
    soup = BeautifulSoup(f, convertEntities='html')
    for a in soup.findAll('a'):
        if a.has_key('href'):
            idx = a.contents[0].find(query_string)
            if idx is not None and idx > -1:
                yield a['href'] 

res = list(searchLinks('http://example.com', 'game2'))
print res
share|improve this answer
    
Hm, gives me an attribute error about 'list' has no attribute 'find' –  Jmariz Apr 16 '11 at 19:43
    
i updated answer. contetns is a list. you may use a.contetns[0] or a.string instead. Anyway it's just a sketch –  Andrey Apr 16 '11 at 19:47
    
Ah I see. Is there any documentation for this type of thing? Could you also explain this a bit if you don't mind? –  Jmariz Apr 16 '11 at 19:55
    
Official documentation: crummy.com/software/BeautifulSoup/documentation.html –  Andrey Apr 16 '11 at 20:07
    
@Andrey What is the value of url to try your code, please ? With url = 'http://pastie.org/1801547/' and query_string equal to 'game2' , the result is [u'http://pastie.org/pastes/1801547/text', u'http://www.railsmachine.com'] . There is nothing specific to game2 in this result . By the way , I still haven't understood what the OP wants as a result. –  eyquem Apr 16 '11 at 21:29

Your question isn't very clear.

On the basis of the data you presented, I would think that you only need to do :

content = '''Parent Directory/       -   Directory
game1.tar.gz    2010-May-24 06:51:39    8.2K    application/octet-stream
game2.tar.gz    2010-Jun-19 09:09:34    542.4K  application/octet-stream
game3.tar.gz    2011-Nov-13 11:53:01    5.5M    application/octet-stream'''


def what_dir(x, content):
    for line in content.splitlines():
        if x in line.split(None,1)[0]:
            return line.split(None,1)[0]

.

EDIT

Does this help you ? :

import urllib
import re

sock = urllib.urlopen('http://pastie.org/pastes/1801547/reply')
content = sock.read()
sock.close()

spa = re.search('<textarea class="pastebox".+?</textarea>',content,re.DOTALL).span()

regx = re.compile('href=&quot;(.+?)&quot;&gt;\\1&lt;')

print regx.findall(content,*spa)

EDIT 2

Or is it what you want ? :

import urllib
import re

sock = urllib.urlopen('http://pastie.org/pastes/1801547/reply')
content = sock.read()
sock.close()

spa = re.search('<textarea class="pastebox".+?</textarea>',content,re.DOTALL).span()
regx = re.compile('href=&quot;(.+?)&quot;&gt;\\1&lt;')
dic = dict((name.split('.')[0],'http://pastie.org/pastes/1801547/'+name)
           for name in regx.findall(content,*spa))
print dic

result

{'game3': 'http://pastie.org/pastes/1801547/game3.tar.gz',
 'game2': 'http://pastie.org/pastes/1801547/game2.tar.gz',
 'game1': 'http://pastie.org/pastes/1801547/game1.tar.gz'}
share|improve this answer
    
No no no no, that is what the directory looks like on a web page. The actual html source looks like pastie.org/1801547 –  Jmariz Apr 16 '11 at 19:46
1  
@Jmariz As soon as you give the real information, we can begin to help you..... –  eyquem Apr 16 '11 at 20:01

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