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?

up vote 20 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'),
    ]
  • 7
    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
  • 2
    urllib is outdated in this day and age and should be using the requests library or something that handles the modern day issues.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

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

  1. Use urllib2 to get the page.

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

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)

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

And respect robots.txt and throttle your requests :)

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

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

Basically, there's a function call:

render_template()

You can easly return single page or list of pages with it and it reads all files automaticaly from a your_workspace\templates .

Example:

/root_dir /templates /index1.html, /index2.html /other_dir /

routes.py

@app.route('/') def root_dir(): return render_template('index1.html')

@app.route(/<username>) def root_dir_with_params(username): retun render_template('index2.html', user=username)

index1.html - without params

<html> <body> <h1>Hello guest!</h1> <button id="getData">Get Data!</button> </body> </html>

index2.html - with params

<html> <body> <!-- Built-it conditional functions in the framework templates in Flask --> {% if name %} <h1 style="color: red;">Hello {{ user }}!</h1> {% else %} <h1>Hello guest.</1> <button id="getData">Get Data!</button> </body> </html>

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