Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I want to scrape the following information except the last row and "class="Region" row:

...
<td>7</td>
<td bgcolor="" align="left" style=" width:496px"><a class="xnternal" href="http://www.whitecase.com">White and Case</a></td> 
<td bgcolor="" align="left">New York</td> 
<td bgcolor="" align="left" class="Region">N/A</td> 
<td bgcolor="" align="left">1,863</td> 
<td bgcolor="" align="left">565</td> 
<td bgcolor="" align="left">1,133</td> 
<td bgcolor="" align="left">$160,000</td>
<td bgcolor="" align="center"><a class="xnternal" href="/nlj250/firmDetail/7"> View Profile </a></td></tr><tr class="small" bgcolor="#FFFFFF">
...

I tested with this handler:

class TestUrlOpen(webapp.RequestHandler):
    def get(self):
        soup = BeautifulSoup(urllib.urlopen("http://www.ilrg.com/nlj250/"))
        link_list = []
        for a in soup.findAll('a',href=True):
            link_list.append(a["href"])
        self.response.out.write("""<p>link_list: %s</p>""" % link_list)

This works but it also get the "View Profile" link which I don't want:

link_list: [u'http://www.ilrg.com/', u'http://www.ilrg.com/', u'http://www.ilrg.com/nations/', u'http://www.ilrg.com/gov.html', ......]

I can easily remove the "u'http://www.ilrg.com/'" after scraping the site but it would be nice to have a list without it. What is the best way to do this? Thanks.

share|improve this question
add comment

2 Answers

up vote 3 down vote accepted

I think this may be what you are looking for. The attrs argument can be helpful for isolating the sections you want.

from BeautifulSoup import BeautifulSoup
import urllib

soup = BeautifulSoup(urllib.urlopen("http://www.ilrg.com/nlj250/"))

rows = soup.findAll(name='tr',attrs={'class':'small'})
for row in rows:
    number = row.find('td').text
    tds = row.findAll(name='td',attrs={'align':'left'})
    link = tds[0].find('a')['href']
    firm = tds[0].text
    office = tds[1].text
    attorneys = tds[3].text
    partners = tds[4].text
    associates = tds[5].text
    salary = tds[6].text
    print number, firm, office, attorneys, partners, associates, salary
share|improve this answer
    
@ Doran: Perfect! Thanks for your help. –  Zeynel Sep 30 '11 at 0:36
add comment

I would get each tr, in the table with the class=listings. Your search is obviously too broad for the information you want. Because HTML has a structure you can easily get just the table data. This is easier in the long run then getting all hrefs and filtering the ones that you don't want out. BeautifulSoup has plent of documentation on how to do this. http://www.crummy.com/software/BeautifulSoup/documentation.html

not exact code:

for tr in soup.findAll('tr'):
  data_list = tr.children()
  data_list[0].content  # 7
  data_list[1].content  # New York
  data_list[2].content # Region <-- ignore this
  # etc
share|improve this answer
    
@ dm03514: Thanks. But for tr in soup.findAll('tr'): data_list = tr.children() gives a TypeError: 'NoneType' object is not callable error. Is this because there are more than 1 table in the source? –  Zeynel Sep 29 '11 at 23:24
    
@ dm03514: Also link = soup.findAll("tr", { "class" : "listings" }) returns an empty list []. What am I doing wrong? –  Zeynel Sep 29 '11 at 23:27
add comment

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.