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I have the following intricated HTML structure from which I have to parse through nested tables and scrape from my desired table. There are many tables in the page. I am quiet cannot figure out how to reach that table which has the data to be scraped. Here is the URL of the page.

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Is this a general question - like you have many pages and want a solution that will work across them? Or are you looking for a solution for this particular page? It seems like you are in-between asking an HTML parsing question, and a DOM traversal question, or not sure which one to ask? –  selllikesybok Nov 20 '13 at 13:39
Right now it is not a general question as I find only this website having such difficulty. –  Venky Nov 20 '13 at 13:46
It would be helpful if you included the code you are using, that normally works but does not work here. That would give a better context for providing an answer. However, for a case specific work-around, see my answer below. –  selllikesybok Nov 20 '13 at 13:57

3 Answers 3

up vote 2 down vote accepted

Using BeautifulSoup, we could do something like:

import urllib2
from bs4 import BeautifulSoup

def filter_function(tag):
    return (('h3' and'td' and '2' in
             [tag.parent[attrib] for attrib in tag.parent.attrs.keys()]) or
            ( == 'p' and'td' and '2' in
             [tag.parent[attrib] for attrib in tag.parent.attrs.keys()]))

our_url = ''

our_page = urllib2.urlopen(our_url).read()

our_soup = BeautifulSoup(our_page)

nodes_we_want = our_soup.find_all(filter_function)

text_we_want = [node.text for node in nodes_we_want]

You could actually combine the whole thing into a really ugly one liner with a lambda for the helper function, but this is a bit easier to follow.

The real trick here is in defining the parameters for our_soup.find_all. This required analyzing the page and realizing what our target nodes have in common - they are all children of a td node that has a colspan attribute of value 2. This set of shared properties is not true of any other elements of in the page, so they are good filter criteria.

There are other ways to accomplish the same goal, probably some that are better, but I like this one because our output will retain the same order as it appears on the page. I would be careful, however, since the text contains non ASCII characters, to be sure to handle the text properly once extracted.


Based on an updated description of desire output, these would do the trick:

text_we_want as a list of tuples containing name, details pairs --

text_we_want = [(nodes_we_want[h].text.strip('\r\n'),
                 nodes_we_want[h+1].text.replace('\r\n              ',''))
                 for h in range(0,len(nodes_we_want)-1,2)]

text_we_want as a list of strings, each of which contains the name and details for one company (I've inserted a tab between name and details, but this is easily removed) --

text_we_want = ['\t'.join((nodes_we_want[h].text.strip('\r\n'),
                 nodes_we_want[h+1].text.replace('\r\n              ','')))
                 for h in range(0,len(nodes_we_want)-1,2)]
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Of course, it would be helpful if we passed the page into the soup. :) Updated to correct this oversight. –  selllikesybok Nov 20 '13 at 14:01
I started off by traversing through sibling method in BS4. But that dint work. BTW I am using your answer and it quiet seems to work. –  Venky Nov 20 '13 at 14:04
The structure of the page you are working on is pretty terrible. I would never have reached a purely programmatic solution for this case - though there may be one. My solution is hacked together by directly viewing the page source for your target page, and finding the simplest pattern that correctly describes only the desired output - passing filter functions (which can also be regex functions) to find_all is a nice option in bs4. –  selllikesybok Nov 20 '13 at 14:12
I have modified the last two lines of your code for nodes_we_want in our_soup.find_all(filter_function): text_we_want = [re.sub('\s+', ' ', node).strip().encode('utf8') for node in nodes_we_want.find_all(text=True) if node.strip()] print text_we_want –  Venky Nov 20 '13 at 14:32
I have updated your answer –  Venky Nov 20 '13 at 14:40

I did something similar before and found the re library really useful. You could write something like:

def getThis(theThingYouWantToSearch, yourHTMLstring):
    searchResults = re.findall('<table.*?</table>(?ims)',yourHTMLstring)

This will basically search everything that has this structure:

"<table (whatever) </table>".

Then you can just loop through it and find the table that you want.


Actually solving your problem, I came up with this:

import re
import urllib

def getThis(theThingYouWantToSearch, yourHTMLstring):

    searchResults = re.findall('<h3.*?/p>(?ims)',yourHTMLstring)

    for match in searchResults:
        if theThingYouWantToSearch in match:
            return match

URL = ''
htmlstring = urllib.urlopen(URL).read()

print getThis('A.M.S', htmlstring)

The first re.findall() finds all the strings that have this shape:

<h3 (something) /p>

And then I loop through the matches to get the one with 'A.M.S.'

To get everything:

def getAll(yourHTMLstring):

    searchResults = re.findall('<h3.*?/p>(?ims)',yourHTMLstring)
    return searchResults
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This gives the table on the left side. I was trying to get the personal details which is on the right td –  Venky Nov 20 '13 at 13:50
@Venky well then replace all the 'table' in the code with 'td' and see how it works (and say how it goes) –  JGallo Nov 20 '13 at 13:56
@Venky This is confusing, while looking at your HTML I saw that the personal details of the right are not written as a table but as individual paragraphs. So your question is quite misleading... –  JGallo Nov 20 '13 at 14:02
@Venky I know you are not going to use this, but you just needed to change <table with <h3 and /table> with /p>. Then it works as you want. But please make it clearer next time –  JGallo Nov 20 '13 at 14:07
I am sorry if I was wrong. but I hope it is not. every detail comes under one table which I could reach. –  Venky Nov 20 '13 at 14:09

You may use htql from to parse out the content. Here is the sample code:

import urllib
URL = ''
htmlstring = urllib.urlopen(URL).read()

import htql
d=htql.query(htmlstring, """
   <table>3.<Table>3.<tr>1.<td>1.<hr sep> {
      title=<h3>.<b> &tx; 
      address=<p>0 :tx; 
      category=<big> &tx; 
      |title is not null 

# [('A.M.S. TEA TRADERS', '<font face="Arial" size="2">38, Ramachandra Road <br>\r\n              R.S.Puram <br>\r\n              Coimbatore - 641002<br>\r\n              Phone -(+91 422) 470441</font>', 'Coimbatore \r\n            Buyers A ')]
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Thanks. Looks very useful. –  Venky Nov 20 '13 at 18:48

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