48

I'm using Python 3.1, if that helps.

Anyways, I'm trying to get the contents of this webpage. I Googled for a little bit and tried different things, but they didn't work. I'm guessing that this should be an easy task, but...I can't get it. :/.

Results of urllib, urllib2:

>>> import urllib2
Traceback (most recent call last):
  File "<pyshell#0>", line 1, in <module>
    import urllib2
ImportError: No module named urllib2
>>> import urllib
>>> urllib.urlopen("http://www.python.org")
Traceback (most recent call last):
  File "<pyshell#2>", line 1, in <module>
    urllib.urlopen("http://www.python.org")
AttributeError: 'module' object has no attribute 'urlopen'
>>> 

Python 3 solution

Thank you, Jason. :D.

import urllib.request
page = urllib.request.urlopen('http://services.runescape.com/m=hiscore/ranking?table=0&category_type=0&time_filter=0&date=1519066080774&user=zezima')
print(page.read())
  • 5
    Duplicate: Search for urlib2 or get web page [python] in SO and you'll find 100's of similar questions. – S.Lott Dec 3 '09 at 22:26
  • Tried urllib2 and urllib, but neither worked. (Edited first post) – Andrew Dec 3 '09 at 22:32
  • 2
    He's using Python 3, so the APIs are different. I surely learned something new by researching this answer. – Jason R. Coombs Dec 3 '09 at 22:39
  • @Andrew: It helps to check the questions and answers carefully to see if they say Python 3 or not. If they don't say Python 3, they don't apply to you. – S.Lott Dec 3 '09 at 22:40
  • 1
    For anyone looking for python 2, see stackoverflow.com/q/2289768/79125 (use urllib.urlopen) – idbrii Mar 14 '13 at 22:40
26

Because you're using Python 3.1, you need to use the new Python 3.1 APIs.

Try:

urllib.request.urlopen('http://www.python.org/')

Alternately, it looks like you're working from Python 2 examples. Write it in Python 2, then use the 2to3 tool to convert it. On Windows, 2to3.py is in \python31\tools\scripts. Can someone else point out where to find 2to3.py on other platforms?

Edit

These days, I write Python 2 and 3 compatible code by using six.

from six.moves import urllib
urllib.request.urlopen('http://www.python.org')

Assuming you have six installed, that runs on both Python 2 and Python 3.

  • I'm on Windows. Anyways, thanks, it worked fine. (The page you linked me to looks very helpful, by the way. Thanks for that, especially.) – Andrew Dec 3 '09 at 22:42
  • 1
    On Ubuntu, it was in the path, so I just had to run the 2to3 command. Whereis says it is at /usr/bin/2to3 – Azendale Dec 15 '12 at 18:29
  • 2
    Damn, python 3 is starting to become a problem: one can't just copy-paste the first stack overflow answer and expect it to work anymore ! – xApple Feb 1 '13 at 15:38
  • @xApple: The way I see it, Python 2 is starting to become a problem ;) – Jason R. Coombs Apr 1 '15 at 20:20
39

The best way to do this these day is to use the 'requests' library:

import requests
response = requests.get('http://hiscore.runescape.com/index_lite.ws?player=zezima')
print (response.status_code)
print (response.content)
8

If you ask me. try this one

import urllib2
resp = urllib2.urlopen('http://hiscore.runescape.com/index_lite.ws?player=zezima')

and read the normal way ie

page = resp.read()

Good luck though

4

Mechanize is a great package for "acting like a browser", if you want to handle cookie state, etc.

http://wwwsearch.sourceforge.net/mechanize/

1

You can use urlib2 and parse the HTML yourself.

Or try Beautiful Soup to do some of the parsing for you.

  • Tried urllib2 and urllib, but neither worked. (Edited first post) – Andrew Dec 3 '09 at 22:32
  • Andrew, others can help you better if you describe in detail what you tried and what error message(s) / unexpected behaviour resulted. – micahwittman Dec 3 '09 at 22:35
  • I edited it into my initial post because I didn't want a huge comment. :P. – Andrew Dec 3 '09 at 22:37
0

A solution with works with Python 2.X and Python 3.X:

try:
    # For Python 3.0 and later
    from urllib.request import urlopen
except ImportError:
    # Fall back to Python 2's urllib2
    from urllib2 import urlopen

url = 'http://hiscore.runescape.com/index_lite.ws?player=zezima'
response = urlopen(url)
data = str(response.read())
0

Suppose you want to GET a webpage's content. The following code does it:

# -*- coding: utf-8 -*-
# python

# example of getting a web page

from urllib import urlopen
print urlopen("http://xahlee.info/python/python_index.html").read()
0

Also you can use faster_than_requests package. That's very fast and simple:

import faster_than_requests as r
content = r.get2str("http://test.com/")

Look at this comparison:

enter image description here

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

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