I have to write a web crawler in Python. I don't know how to parse a page and extract the URLs from HTML. Where should I go and study to write such a program?

In other words, is there a simple python program which can be used as a template for a generic web crawler? Ideally it should use modules which are relatively simple to use and it should include plenty of comments to describe what each line of code is doing.

closed as not a real question by Raptor, alxx, Emil, Shoe, Inbar Rose Mar 20 '13 at 8:52

It's difficult to tell what is being asked here. This question is ambiguous, vague, incomplete, overly broad, or rhetorical and cannot be reasonably answered in its current form. For help clarifying this question so that it can be reopened, visit the help center. If this question can be reworded to fit the rules in the help center, please edit the question.

Look at example code below. The script extracts html code of a web page (here Python home page) and extracts all the links in that page. Hope this helps.

#!/usr/bin/env python

import requests
from BeautifulSoup import BeautifulSoup

url = "http://www.python.org"
response = requests.get(url)
# parse html
page = str(BeautifulSoup(response.content))


def getURL(page):
    """

    :param page: html of web page (here: Python home page) 
    :return: urls in that page 
    """
    start_link = page.find("a href")
    if start_link == -1:
        return None, 0
    start_quote = page.find('"', start_link)
    end_quote = page.find('"', start_quote + 1)
    url = page[start_quote + 1: end_quote]
    return url, end_quote

while True:
    url, n = getURL(page)
    page = page[n:]
    if url:
        print url
    else:
        break

Output:

/
#left-hand-navigation
#content-body
/search
/about/
/news/
/doc/
/download/
/getit/
/community/
/psf/
http://docs.python.org/devguide/
/about/help/
http://pypi.python.org/pypi
/download/releases/2.7.3/
http://docs.python.org/2/
/ftp/python/2.7.3/python-2.7.3.msi
/ftp/python/2.7.3/Python-2.7.3.tar.bz2
/download/releases/3.3.0/
http://docs.python.org/3/
/ftp/python/3.3.0/python-3.3.0.msi
/ftp/python/3.3.0/Python-3.3.0.tar.bz2
/community/jobs/
/community/merchandise/
/psf/donations/
http://wiki.python.org/moin/Languages
http://wiki.python.org/moin/Languages
http://www.google.com/calendar/ical/b6v58qvojllt0i6ql654r1vh00%40group.calendar.google.com/public/basic.ics
http://www.google.com/calendar/ical/j7gov1cmnqr9tvg14k621j7t5c%40group.calendar.google.com/public/basic.ics
http://pycon.org/#calendar
http://www.google.com/calendar/ical/3haig2m9msslkpf2tn1h56nn9g%40group.calendar.google.com/public/basic.ics
http://pycon.org/#calendar
http://www.psfmember.org

...

You can use BeautifulSoup as many have also stated. It can parse HTML,XML etc. To see some of it's features, see here.

Example:

import urllib2
from bs4 import BeautifulSoup
url = 'http://www.google.co.in/'

conn = urllib2.urlopen(url)
html = conn.read()

soup = BeautifulSoup(html)
links = soup.find_all('a')

for tag in links:
    link = tag.get('href',None)
    if link is not None:
        print link
import sys
import re
import urllib2
import urlparse
tocrawl = set(["http://www.facebook.com/"])
crawled = set([])
keywordregex = re.compile('<meta\sname=["\']keywords["\']\scontent=["\'](.*?)["\']\s/>')
linkregex = re.compile('<a\s*href=[\'|"](.*?)[\'"].*?>')

while 1:
    try:
        crawling = tocrawl.pop()
        print crawling
    except KeyError:
        raise StopIteration
    url = urlparse.urlparse(crawling)
    try:
        response = urllib2.urlopen(crawling)
    except:
        continue
    msg = response.read()
    startPos = msg.find('<title>')
    if startPos != -1:
        endPos = msg.find('</title>', startPos+7)
        if endPos != -1:
            title = msg[startPos+7:endPos]
            print title
    keywordlist = keywordregex.findall(msg)
    if len(keywordlist) > 0:
        keywordlist = keywordlist[0]
        keywordlist = keywordlist.split(", ")
        print keywordlist
    links = linkregex.findall(msg)
    crawled.add(crawling)
    for link in (links.pop(0) for _ in xrange(len(links))):
        if link.startswith('/'):
            link = 'http://' + url[1] + link
        elif link.startswith('#'):
            link = 'http://' + url[1] + url[2] + link
        elif not link.startswith('http'):
            link = 'http://' + url[1] + '/' + link
        if link not in crawled:
            tocrawl.add(link)

Referenced to: Python Web Crawler in Less Than 50 Lines (Slow or no longer works, does not load for me)

You can use beautifulsoup. Follow the documentation and see what matches your requirements. The documentation contains code snippets for how to extract URL's as well.

from bs4 import BeautifulSoup
soup = BeautifulSoup(html_doc)

soup.find_all('a') # Finds all hrefs from the html doc.

With parsing pages, check out the BeautifulSoup module. It's simple to use and allows you to parse pages with HTML. You can extract URLs from the HTML simply by doing str.find('a')

Don't use regular expressions for parsing HTML

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