Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I'm trying to write a program that will (among other things) get text or source code from a predetermined website. I'm learning Python to do this, and most sources have told me to use urllib2. Just as a test, I tried this code:

import urllib2
response = urllib2.urlopen('http://www.python.org')
html = response.read()

Instead of acting in any expected way, the shell just sits there, like it's waiting for some input. There aren't even an ">>>" or "...". The only way to exit this state is with [ctrl]+c. When I do this, I get a whole bunch of error messages, like

Traceback (most recent call last):
  File "<stdin>", line 1, in <module>
  File "/m/mls/pkg/ix86-Linux-RHEL5/lib/python2.5/urllib2.py", line 124, in urlopen
    return _opener.open(url, data)
  File "/m/mls/pkg/ix86-Linux-RHEL5/lib/python2.5/urllib2.py", line 381, in open
    response = self._open(req, data)

I'd appreciate any feedback. Is there a different tool than urllib2 to use, or can you give advice on how to fix this. I'm using a network computer at my work, and I'm not entirely sure how the shell is configured or how that might affect anything.

share|improve this question
    
You're getting a stack trace, meaning an exception was thrown. Posting the entire stack trace will make the diagnosis easier. –  mipadi Jan 6 '12 at 17:09

5 Answers 5

up vote 1 down vote accepted

With 99.999% probability, it's a proxy issue. Python is incredibly bad at detecting the right http proxy to use, and when it cannot find the right one, it just hangs and eventually times out.

So first you have to find out which proxy should be used, check the options of your browser (Tools -> Internet Options -> Connections -> LAN Setup... in IE, etc). If it's using a script to autoconfigure, you'll have to fetch the script (which should be some sort of javascript) and find out where your request is supposed to go. If there is no script specified and the "automatically determine" option is ticked, you might as well just ask some IT guy at your company.

I assume you're using Python 2.x. From the Python docs on urllib :

# Use http://www.someproxy.com:3128 for http proxying
proxies = {'http': 'http://www.someproxy.com:3128'}
filehandle = urllib.urlopen(some_url, proxies=proxies)

Note that the point on ProxyHandler figuring out default values is what happens already when you use urlopen, so it's probably not going to work.

If you really want urllib2, you'll have to specify a ProxyHandler, like the example in this page. Authentication might or might not be required (usually it's not).

share|improve this answer
    
Thank you. It turns out that this was indeed a proxy issue. I resolved it using proxypassmgr = urllib2.HTTPPasswordMgrWithDefaultRealm() proxypassmgr.add_password(None, 'http://proxyaddress:portnumber', username, password) authinfo = urllib2.ProxyBasicAuthHandler(proxypassmgr) proxy_support = urllib2.ProxyHandler({"http" : "http://cache1.lexmark.com:80"}) opener = urllib2.build_opener(proxy_support, authinfo) urllib2.install_opener(opener) req = urllib2.Request(theurl) –  Brad Elliott Feb 27 '12 at 20:59

This isn't a good answer to "How to do this with urllib2", but let me suggest python-requests. The whole reason it exists is because the author found urllib2 to be an unwieldy mess. And he's probably right.

share|improve this answer

I prefer pycurl, but it is not part of "pure" python but an extension. But the API is much harder to use, only use it when you need to do file upload, set referrers, handle redirects and so on.

import urllib2
print urllib2.urlopen("http://www.google.com/").read()

Does for me exactly what I'd expect. Maybe the URL you are trying has a timeout?

For comparison, here is a pyCurl example:

import pycurl
import cStringIO as StringIO
c = pycurl.Curl()
buf = StringIO.StringIO()
c.setopt(pycurl.URL, "http://www.google.com/")
c.setopt(pycurl.FOLLOWLOCATION, True)
c.setopt(pycurl.WRITEFUNCTION, buf.write)
c.perform()
print buf.getvalue()

As I said, pycurl is much more complicated. It also is much more powerful, very fast and gives you a lot of control e.g. over following or not following redirects, seeing the effective URL, uploading files via post, managing cookies, using multiple proxies etc. - but you can tell it actually is a C library.

share|improve this answer
    
This is doing the same thing. Could it be my internet connection? I'm using Firefox on the same machine right now, and it works fine, but I'm new to Linux, so could there be something wrong with the terminal's internet connection? –  Brad Elliott Jan 6 '12 at 18:35
    
Do you need to use a proxy? Is the proxy environment variable set? –  Anony-Mousse Jan 6 '12 at 22:33
    
For the proxy, please post the output of import os; print os.getenv("HTTP_PROXY"), os.getenv("http_proxy") - this should be None None or a valid proxy. I've seen it set to http:// or something invalid like this, which may confuse python. –  Anony-Mousse Jan 7 '12 at 9:19
    
When I execute code import os; code, the same thing happens as when I try to access the Internet in the Python shell: the console just waits (with no prompt) and responds to nothing except ctrl-c. But I agree that it's some kind of proxy problem. –  Brad Elliott Jan 11 '12 at 18:18
    
Oh nvm, it's working now, and it says none none. So what now? –  Brad Elliott Jan 11 '12 at 18:29

That is very weird, have you tried a different URL?
Otherwise there is HTTPLib, however it is more complicated. Here's your example using HTTPLib

import httplib as h
domain = h.HTTPConnection('www.python.org')
domain.connect()
domain.request('GET', '/fish.html')
response = domain.getresponse()
if response.status == h.OK:
    html = response.read()
share|improve this answer
    
This is doing the same no-response thing about the third line. Here are the errors it gives: Traceback (most recent call last): File "<stdin>", line 1, in ? File "/usr/lib/python2.4/httplib.py", line 626, in connect self.sock.connect(sa) File "<string>", line 1, in connect –  Brad Elliott Jan 6 '12 at 18:39
    
Python 2.4? How old is your setup? –  Anony-Mousse Jan 6 '12 at 22:45
    
like I said, have you tried with another site? Because just going to http://python.org/fish.html in Chrome results in a 404, which would be the cause of the error –  ProfSmiles Jan 7 '12 at 9:27

I get a 404 error almost immediately (no hanging):

>>> import urllib2
>>> response = urllib2.urlopen('http://www.python.org/fish.html')
Traceback (most recent call last):
  ...
urllib2.HTTPError: HTTP Error 404: Not Found

If I try and contact an address that doesn't have an HTTP server running, it hangs for quite a while until the timeout happens. You can shorten it by passing the timeout parameter to urlopen:

>>> response = urllib2.urlopen('http://cs.princeton.edu/fish.html', timeout=5)
Traceback (most recent call last):
  ...
urllib2.URLError: <urlopen error timed out>
share|improve this answer
    
Yeah, delete the "fish" part. That page doesn't exist, and I don't know where I got that. I'm trying it with just www.python.org now, but it's still not working. –  Brad Elliott Jan 6 '12 at 18:40

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

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