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I have url from the user and I have to reply with the fetched HTML.

How can I check for the URL to be malformed or not ?

For Example :

url='google'  // Malformed
url='google.com'  // Malformed
url='http://google.com'  // Valid
url='http://google'   // Malformed

How can we achieve this ?

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1  
possible duplicate of How do you validate a URL with a regular expression in Python? –  Tadeck Aug 23 '11 at 12:05
1  
Just try to read it, if for instance httplib throws an exception, then you'll know it was invalid. Not all well formed urls are valid! –  carlpett Aug 23 '11 at 12:07
1  
this will help you : stackoverflow.com/questions/827557/… –  DhruvPathak Aug 23 '11 at 12:07
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4 Answers 4

up vote 14 down vote accepted

django url validation regex:

regex = re.compile(
        r'^(?:http|ftp)s?://' # http:// or https://
        r'(?:(?:[A-Z0-9](?:[A-Z0-9-]{0,61}[A-Z0-9])?\.)+(?:[A-Z]{2,6}\.?|[A-Z0-9-]{2,}\.?)|' #domain...
        r'localhost|' #localhost...
        r'\d{1,3}\.\d{1,3}\.\d{1,3}\.\d{1,3})' # ...or ip
        r'(?::\d+)?' # optional port
        r'(?:/?|[/?]\S+)$', re.IGNORECASE)
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a curiosity... did you add the ftp? Or have I an old django version? –  Ruggero Turra Aug 23 '11 at 12:23
    
url='www.google' is malformed but matches with this regex. –  Yugal Jindle Aug 23 '11 at 12:32
    
>>wiso: django version 1.3 ( make sure yourself: /django/core/validators.py, line:47 ) someftp.com - invalid url ? Even stackoferlow parser someftp.com makes as link ) –  cetver Aug 23 '11 at 13:04
    
>>Yugal Jindle: django developers thinks protocol is required, but you can modify this regexp if you do not think so –  cetver Aug 23 '11 at 13:06
1  
@yugal-jindle sitedomain is not a valid url. museum is because .museum is a top-level-domain (ICANN [1] defines them), and not a sitedomain. [1] icann.org –  glarrain Oct 10 '12 at 16:50
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Actually, I think this is the best way.

from django.core.validators import URLValidator
from django.core.exceptions import ValidationError

val = URLValidator(verify_exists=False)
try:
    val('http://www.google.com')
except ValidationError, e:
    print e

If you set verify_exists to True, it will actually verify that the URL exists, otherwise it will just check if it's formed correctly.

edit: ah yeah, this question is a duplicate of this: DJANGO URL Validation, I just want to see if the URL exists

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2  
But this will only work in the django environment not otherwise. –  Yugal Jindle Aug 23 '11 at 12:22
1  
Delete this answer else someone will downvote. –  Yugal Jindle Aug 24 '11 at 4:51
4  
I found it useful, thanks. –  mVChr Feb 11 '12 at 0:13
1  
verify_exists is deprecated. -1 –  g33kz0r Jul 2 '13 at 16:17
1  
Add: from django.conf import settings settings.configure(DEBUG=False) and remove the verify_exists to keep it working with django 1.5 –  Dukeatcoding Aug 5 '13 at 13:22
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note - lepl is no longer supported, sorry (you're welcome to use it, and i think the code below works, but it's not going to get updates).

rfc 3696 http://www.faqs.org/rfcs/rfc3696.html defines how to do this (for http urls and email). i implemented its recommendations in python using lepl (a parser library). see http://acooke.org/lepl/rfc3696.html

to use:

> easy_install lepl
...
> python
...
>>> from lepl.apps.rfc3696 import HttpUrl
>>> validator = HttpUrl()
>>> validator('google')
False
>>> validator('http://google')
False
>>> validator('http://google.com')
True
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1  
Neat, but what about FTP, or HTTPS? –  Adam Parkin Dec 2 '11 at 0:25
3  
you haven't forked the code and implemented them? it's open source. –  andrew cooke Dec 2 '11 at 22:27
    
I love me some lepl. –  kkurian Jun 17 '12 at 19:42
    
lepl is now discontinued by the author acooke.org/lepl/discontinued.html EDIT: heh, just realized that you are the author –  Emmett J. Butler Aug 30 '12 at 16:00
    
oh, but you're right i should update this. thanks. –  andrew cooke Aug 30 '12 at 17:28
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import httplib

def exists(site, path):
    conn = httplib.HTTPConnection(site)
    conn.request('HEAD', path)
    response = conn.getresponse()
    conn.close()
    return response.status == 200

exists('http://www.fakedomain.com', '/fakepath')
>>> False

If the status is anything other than a 200, the resource doesn't exist at the URL. This doesn't mean that it's gone altogether. If the server returns a 301 or 302, this means that the resource still exists, but at a different URL. To alter the function to handle this case, the status check line just needs to be changed to return response.status in (200, 301, 302).

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3  
This does not validate the URL but rather tests if it exists, which is not the same at all –  glarrain Oct 10 '12 at 16:46
    
this also doesn't handle other valid response codes properly, e.g. 204 no content or 300 multiple choice –  Dolph Feb 18 '13 at 18:00
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