I want to ignore the certification validation during my request to the server with an internal corporate link.

With python requests library I would do this:

r = requests.get(link, allow_redirects=False,verify=False)

How do I do the same with urllib2 library?

up vote 0 down vote accepted

urllib2 does not verify server certificate by default. Check this documentation.

Edit: As pointed out in below comment, this is not true anymore for newer versions (seems like >= 2.7.9) of Python. Refer the below ANSWER

  • 42
    This doesn't seem to be true anymore. – Enno Gröper Jan 20 '15 at 14:09
  • 1
    Indeed that's not true anymore. – Leonidas Tsampros May 8 '15 at 8:18
  • 8
    so why is he being downvoted if his answre was correct at the time? have some class – codyc4321 Apr 20 '17 at 22:49
  • 5
    "not true anymore" - that's utterly useless. The world didn't all get their Python versions magically upgraded - it is actually still true for anyone still on 2.7.6! – jmc Apr 24 '17 at 18:57

In the meantime urllib2 seems to verify server certificates by default. The warning, that was shown in the past disappeared for 2.7.9 and I currently ran into this problem in a test environment with a self signed certificate (and Python 2.7.9).

My evil workaround (don't do this in production!):

import urllib2
import ssl

ctx = ssl.create_default_context()
ctx.check_hostname = False
ctx.verify_mode = ssl.CERT_NONE

urllib2.urlopen("https://your-test-server.local", context=ctx)

According to docs calling SSLContext constructor directly should work, too. I haven't tried that.

  • 5
    so evil and so working xD thanks for that. I already were fallen into despair. – BluBb_mADe Apr 6 '15 at 16:25
  • 3
    It seems that ssl.create_default_context is only available in Python 3.4+. – eightx2 Apr 14 '15 at 8:04
  • 1
    This works for me using python 2.7.9 (OSX Homebrew installed) Thanks! – checketts Apr 29 '15 at 19:49
  • 5
    This workaround doesn't work with either python 2.6.6 or 2.7.6. – Leonidas Tsampros May 8 '15 at 8:31
  • This work-around is perfect, but just don't call urllib2.urlopen() prior to 2.7.9 with the context parameter, that's all. I'm using this in both 2.7.10 and 2.6.x. Check version using this code: sys.version_info >= ( 2, 7, 9 ). – Russ Bateman Jul 31 '15 at 19:58

For those who uses an opener, you can achieve the same thing based on Enno Gröper's great answer:

import urllib2, ssl

ctx = ssl.create_default_context()
ctx.check_hostname = False
ctx.verify_mode = ssl.CERT_NONE

opener = urllib2.build_opener(urllib2.HTTPSHandler(context=ctx), your_first_handler, your_second_handler[...])
opener.addheaders = [('Referer', 'http://example.org/blah.html')]

content = opener.open("https://localhost/").read()

And then use it as before.

According to build_opener and HTTPSHandler, a HTTPSHandler is added if ssl module exists, here we just specify our own instead of the default one.

  • Good call, this looks similar to the method described at this site. thejosephturner.com/blog/post/… – dragon788 Jul 11 '16 at 18:14
  • I disagree, IMHO, it's not similar. The article you mention uses a class extention while this method uses vanilla implementation and only ssl context. That said, the article you mentioned is a good point for whoever wants to alter and extend default HTTPSHandler behavior. – Damien Jul 11 '16 at 18:49
  • I see what you mean, I hadn't caught that nuance, yours is definitely cleaner without having to extend anything. – dragon788 Jul 14 '16 at 22:30

The easiest way:

python 2

import urllib2, ssl

request = urllib2.Request('https://somedomain.co/')
response = urllib2.urlopen(request, context=ssl._create_unverified_context())

python 3

from urllib.request import urlopen
import ssl

response = urlopen('https://somedomain.co', context=ssl._create_unverified_context())
  • Make sure you have a later python version. The version shipped with ubuntu 14.04 does not support this method. – Martlark Mar 20 '17 at 3:21
  • 2
    This method works but had change import statement to from urllib.request import urlopen instead of import urllib2. See the accepted answer at stackoverflow.com/questions/2792650/… for more info. – aye2m Jul 5 at 8:54

According to @Enno Gröper 's post, I've tried the SSLContext constructor and it works well on my machine. code as below:

import ssl
ctx = ssl.SSLContext(ssl.PROTOCOL_SSLv23)
urllib2.urlopen("https://your-test-server.local", context=ctx)

if you need opener, just added this context like:

opener = urllib2.build_opener(urllib2.HTTPSHandler(context=ctx))

NOTE: all above test environment is python 2.7.12. I use PROTOCOL_SSLv23 here since the doc says so, other protocol might also works but depends on your machine and remote server, please check the doc for detail.

A more explicit example, built on Damien's code (calls a test resource at http://httpbin.org/). For python3. Note that if the server redirects to another URL, uri in add_password has to contain the new root URL (it's possible to pass a list of URLs, also).

import ssl    
import urllib.parse
import urllib.request

def get_resource(uri, user, passwd=False):
    """
    Get the content of the SSL page.
    """
    uri = 'https://httpbin.org/basic-auth/user/passwd'
    user = 'user'
    passwd = 'passwd'

    context = ssl.create_default_context()
    context.check_hostname = False
    context.verify_mode = ssl.CERT_NONE

    password_mgr = urllib.request.HTTPPasswordMgrWithDefaultRealm()
    password_mgr.add_password(None, uri, user, passwd)

    auth_handler = urllib.request.HTTPBasicAuthHandler(password_mgr)

    opener = urllib.request.build_opener(auth_handler, urllib.request.HTTPSHandler(context=context))

    urllib.request.install_opener(opener)

    return urllib.request.urlopen(uri).read()
  • Thanks for answering the python3 way with standard library. Preparing context worked for me very well. – Jaxt0r Jan 30 at 7:31

protected by eyllanesc Jul 7 at 8:58

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