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I am scraping Google search result pages which are store in my own server. I am using the following code to scrape the page.

from string import punctuation, whitespace
import urllib2
import datetime
import re
from bs4 import BeautifulSoup as Soup
import csv
today = datetime.date.today()
html = urllib2.urlopen("http://192.168.1.200/coimbatore/3BHK_flats_inCoimbatore.html_%94201308110608%94.html").read()

soup = Soup(html)
p = re.compile(r'<.*?>')
aslink = soup.findAll('span',attrs={'class':'ac'})
for li in soup.findAll('li', attrs={'class':'g'}):
    sLink = li.find('a')
    sSpan = li.find('span', attrs={'class':'st'})
    print sLink['href'][7:] , "," + p.sub('', str(sSpan)).replace('.','')
print p.sub('', str(aslink)).replace('.','\n')

The problem here is I am getting this square brackets in my output

[No Pre EMI &amp; Booking Amount Buy Now , Get Best Deals On 1/2/3 BHK Flats! Over 50000+ New Flats for Sale, Starts @ 3000 per Sqft
 Enquire Us
 , Your Dream Villa For SaleIn Coimbatore
 Book a Visit!, Luxurious Properties In CoimbatoreBy Renowned Builder
 Booking Open!, Finest 2BHK Flats at its Best PriceAvailable @ Rs
2500/sqft Visit Now!, Properties for every budgetAnd location
 Explore Now!, Looking a 3BHK Flat In Alagapuram?Best Deal, Area 1598SqFt Book Now, Find 3 BHK Flats/Apts in Chennai
Over 200000 Properties
 Search Now!, Buy Flats With Finest Amenities InCoimbatore
 Elegant Club House
, 100% free classifieds
 Apartmentsfor sale/rent on OLX
 Find it now!]

This output is generated from the line

print p.sub('', str(aslink)).replace('.','\n')

I wanna know why is that bracket coming and I also wanna remove it.

UPDATE

Here is my page http://jigar.zapto.org/coimbatore/3BHK_flats_inCoimbatore.html_%94201308110608%94.html

share|improve this question
    
You need to include the actual HTML that produces the results, noone can access your private server. –  Martijn Pieters Sep 23 '13 at 16:49
    
Updated the question –  Venky Sep 23 '13 at 16:59

1 Answer 1

up vote 1 down vote accepted

findAll() returns a list. If you wanted just one element, use .find() instead, which returns the first result:

aslink = soup.find('span',attrs={'class':'ac'})

The square brackets are the result of you calling str() on the list object. Alternatively, use an index to get one element out:

print p.sub('', aslink[0]).replace('.','\n')

or loop over aslink elements.

However, it looks as if you wanted to extract all text from the span element. Don't use a regular expression, just ask BeautifulSoup for all text content:

for l in aslink:
    print ' '.join(l.stripped_strings)
share|improve this answer
    
I want all the elements which falls in the condition –  Venky Sep 23 '13 at 16:47
    
I am getting the following error AttributeError: 'NavigableString' object has no attribute 'stripped_strings' –  Venky Sep 23 '13 at 17:04
    
My last example assumes aslink is still a list; did you use .find() instead? –  Martijn Pieters Sep 23 '13 at 18:38
    
Yes I did use .find() –  Venky Sep 23 '13 at 18:55
    
basically I am trying to pull out href from <a> and the span text from all ads as well as organic results. I hope my code is not that efficient enough! –  Venky Sep 23 '13 at 18:58

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