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 need to validate a url in Python and ensure that the host/netloc component is a domain name or ip v4/v6 address.

Most StackOverflow Q&As on this general topic say to "just use urlparse". That is not applicable to this situation.

I have already used urlparse to validate that I do indeed have a url.

The problem is that I need to further validate the .netloc from urlparse to ensure that I am getting a Domain Name OR IP Address, and not just a hostname.

Let me illustrate:

>>> from urlparse import urlparse

This works as expected / desired :

>>> ## domain name
>>> print urlparse("http://example.com").netloc
example.com

>>> ## ipv4
>>> print urlparse("http://255.255.255.255").netloc
255.255.255.255

>>> ## acceptable hostname
>>> print urlparse("http://localhost").netloc
localhost

But I often run into typos that will let a malformed URL slip through. Someone might accidentally miss a '.' in a domain name:

>>> ## valid hostname, but unacceptable
>>> print urlparse("http://examplecom").netloc
examplecom

examplecom is indeed a valid hostname, and could exist on a network, but it is not a valid domain name.

There also doesn't seem to be any rules enforced for IP Addresses :

>>> print urlparse("http://266.266.266.266").netloc
266.266.266.266

>>> print urlparse("http://999.999.999.999.999").netloc
999.999.999.999.999
share|improve this question
    
http://999.999.999.999.999 is a valid address. If you want to see if a domain exist, you can do a DNS lookup. stackoverflow.com/questions/2805231/… –  drum Jul 11 at 23:51
    
999.999.999.999.999 is not a valid address according to the ipv4 or ipv6 standards, which I noted as a requirement in the first sentence. –  Jonathan Vanasco Jul 12 at 19:24

1 Answer 1

I think this does what you want:

import socket
def good_netloc(netloc):
    try:
        socket.gethostbyname(netloc)
        return True
    except:
        return False

print good_netloc("google.com")
print good_netloc("googlecom")
print good_netloc("10.1.1.1")
print good_netloc("999.999.999.999")

The output of this snippet is:

lap:~$ python tmp.py
True
False
True
False
share|improve this answer
    
Thanks. This could get the job done in many situations, but not all. socket.gethostbyname depends on a DNS lookup, so the computer would have to be connected to the internet. It also validates that a given domain name has an active DNS record -- so "once active" or "future" domain names all fail ( ie example.com passes but foo.example.com fails ) –  Jonathan Vanasco Jul 12 at 19:32
    
It uses the resolution order, so it shows whether or not the name is currently valid. (If you add a host to the /etc/hosts file, it will use that.) I'm not sure I follow your comment about "once active or future". Are you saying you want it to return True for anything that could be (but is not necessarily currently) a valid DNS name? –  John Hazen Jul 14 at 1:56

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.