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I am not very familiar with Python. I am trying to extract the artist names (for a start :)) from the following page: http://www.infolanka.com/miyuru_gee/art/art.html.

How do I retrieve the page? My two main concerns are; what functions to use and how to filter out useless links from the page?

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6 Answers 6

up vote 8 down vote accepted

Example using urlib and lxml.html:

import urllib
from lxml import html

url = "http://www.infolanka.com/miyuru_gee/art/art.html"
page = html.fromstring(urllib.urlopen(url).read())

for link in page.xpath("//a"):
    print "Name", link.text, "URL", link.get("href")

output >>
    [('Aathma Liyanage', 'athma.html'),
     ('Abewardhana Balasuriya', 'abewardhana.html'),
     ('Aelian Thilakeratne', 'aelian_thi.html'),
     ('Ahamed Mohideen', 'ahamed.html'),
    ]
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2  
in python 3 you should import urllib.request and use urllib.request.urlopen function. see docs.python.org/3.2/library/… –  sebast26 Feb 7 '13 at 11:11
    
"imoprt" should be "import" –  kren470 Apr 21 '13 at 8:08
1  
urllib is outdated in this day and age and should be using the requests library or something that handles the modern day issues. –  User Mar 29 '14 at 0:53
  1. Use urllib2 to get the page.

  2. Use BeautifulSoup to parse the HTML (the page) and get what you want!

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Or go straight forward:

import urllib

import re
pat = re.compile('<DT><a href="[^"]+">(.+?)</a>')

url = 'http://www.infolanka.com/miyuru_gee/art/art.html'
sock = urllib.urlopen(url)
li = pat.findall(sock.read())
sock.close()

print li
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I think "eyquem" way would be my choice too, but I like to use httplib2 instead of urllib. urllib2 is too low level lib for this work.

import httplib2, re
pat = re.compile('<DT><a href="[^"]+">(.+?)</a>') http = httplib2.Http() headers, body = http.request("http://www.infolanka.com/miyuru_gee/art/art.html")
li = pat.findall(body) print li

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Check this my friend

import urllib.request

import re

pat = re.compile('<DT><a href="[^"]+">(.+?)</a>')

url = 'http://www.infolanka.com/miyuru_gee/art/art.html'

sock = urllib.request.urlopen(url).read().decode("utf-8")

li = pat.findall(sock)

print(li)
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And respect robots.txt and throttle your requests :)

(Apparently urllib2 does already according to this helpful SO post).

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Is it illegal to not do so? ^.^ –  Zippoxer Mar 28 '11 at 18:33
    
No, unless I misinterpret the multiple negatives there. :) –  Tim Barrass Mar 28 '11 at 21:14

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