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I am using the following code to scrape the website. The following which I tried works fine for a page in the website. Now I want to scrape several such pages for which I am looping the URL as shown below.

from bs4 import BeautifulSoup
import urllib2
import csv
import re
number = 2500
for i in xrange(2500,7000):
    page = urllib2.urlopen("http://bvet.bytix.com/plus/trainer/default.aspx?id={}".format(i))
    soup = BeautifulSoup(page.read())
    for eachuniversity in soup.findAll('fieldset',{'id':'ctl00_step2'}):
        print re.sub(r'\s+',' ',','.join(eachuniversity.findAll(text=True)).encode('utf-8'))
        print '\n'
        number = number + 1

The following is the normal code without loop

from bs4 import BeautifulSoup
import urllib2
import csv
import re
page = urllib2.urlopen("http://bvet.bytix.com/plus/trainer/default.aspx?id=4591")
soup = BeautifulSoup(page.read())
for eachuniversity in soup.findAll('fieldset',{'id':'ctl00_step2'}):
    print re.sub(r'\s+',' ',''.join(eachuniversity.findAll(text=True)).encode('utf-8'))

I am looping the id value in the URL from 2500 to 7000. But there are many id's for which there is no value. So there are no such pages. How do I skip those pages and scrape data only when there exists data for given id.

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2 Answers 2

up vote 2 down vote accepted

you can either try catch the result (Why is it "Easier to ask forgiveness than permission" in python, but not in Java?):

for i in xrange(2500,7000):
    try:
        page = urllib2.urlopen("http://bvet.bytix.com/plus/trainer/default.aspx?id={}".format(i))
    except:
        continue
    else:
        soup = BeautifulSoup(page.read())
        for eachuniversity in soup.findAll('fieldset',{'id':'ctl00_step2'}):
            print re.sub(r'\s+',' ',','.join(eachuniversity.findAll(text=True)).encode('utf-8'))
            print '\n'
            number = number + 1

or use a (great) lib such as requests and check before scrapping

import requests
for i in xrange(2500,7000):
    page = requests.get("http://bvet.bytix.com/plus/trainer/default.aspx?id={}".format(i))
    if not page.ok:
        continue
    soup = BeautifulSoup(requests.text)
    for eachuniversity in soup.findAll('fieldset',{'id':'ctl00_step2'}):
        print re.sub(r'\s+',' ',','.join(eachuniversity.findAll(text=True)).encode('utf-8'))
        print '\n'
        number = number + 1

basically there's no way for you to know if the page with that id exists before calling the url.

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try to find an index page on that site, otherwise, you simply can't tell before trying to reach the URL

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what does that have to do with this? I have list of URLs, I wanna skip the URL if it does not exits. But sorry. I dont get you what exactly you mean. –  Venky Nov 12 '13 at 18:24
    
most websites has some way of looping (paging) over existing records (ids in your case) or other way of reaching / searching, otherwise, this pages will not be accessible to their users... most spiders / fetchers will use those "meta" pages to cover the entire set, first step would run over the index page and next step would scrape the pages it points to, check out projects like scrapy.org maybe even use it :) sorry if Im not following your intention... –  Guy Gavriely Nov 12 '13 at 18:32
    
Yes. I understand. But I dont think it is the same situation here. Because I am able to access any particular URL for that id, I guess. –  Venky Nov 12 '13 at 18:36
    
I know you do :) Im just saying you should not run in a blind loop over all ids, just as users of that site would not run like this, let your spider use the site as users would, have it browse those pages like a potential user is expected to, investigate the site structure, look for pagination / browse page –  Guy Gavriely Nov 12 '13 at 18:41
    
SO is funny sometimes, the above answer suggest hitting a few thousands 404 on the site, IMO this is bad from at least 10 different reasons –  Guy Gavriely Nov 13 '13 at 16:04

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