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I want to be able to take a shortened or non-shortened URL and return its un-shortened form. How can I make a python program to do this?

Additional Clarification:

Case 1: shortened --> unshortened
Case 2: unshortened --> unshortened

e.g. bit.ly/silly in the input array should be google.com in the output array
e.g. google.com in the input array should be google.com in the output array

Thanks for the help!

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2  
Are you talking about a specific URL shortening service, and does this service have an API you can retrieve the info from? – JAL Nov 17 '10 at 2:58
up vote 28 down vote accepted

Send an HTTP HEAD request to the URL and look at the response code. If the code is 30x, look at the Location header to get the unshortened URL. Otherwise, if the code is 20x, then the URL is not redirected; you probably also want to handle error codes (4xx and 5xx) in some fashion. For example:

# This is for Py2k.  For Py3k, use http.client and urllib.parse instead, and
# use // instead of / for the division
import httplib
import urlparse

def unshorten_url(url):
    parsed = urlparse.urlparse(url)
    h = httplib.HTTPConnection(parsed.netloc)
    h.request('HEAD', parsed.path)
    response = h.getresponse()
    if response.status/100 == 3 and response.getheader('Location'):
        return response.getheader('Location')
    else:
        return url
share|improve this answer
    
ignores url query, better version here: stackoverflow.com/a/7153185/818634 – DmitrySandalov Jul 12 '13 at 21:06
1  
do note when using above code does not unshorten recursively in case you want to obtain the actual URL. Try on http://t.co/hAplNMmSTg. You need to do return unshorten_url(response.getheader('Location')) for recursivity. – Andrei Petre Jun 30 '14 at 11:48

Unshorten.me has an api that lets you send a JSON or XML request and get the full URL returned.

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Using requests:

import requests

session = requests.Session()  # so connections are recycled
resp = session.head(url, allow_redirects=True)
print(resp.url)
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Open the url and see what it resolves to:

>>> import urllib2
>>> a = urllib2.urlopen('http://bit.ly/cXEInp')
>>> print a.url
http://www.flickr.com/photos/26432908@N00/346615997/sizes/l/
>>> a = urllib2.urlopen('http://google.com')
>>> print a.url
http://www.google.com/
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3  
This does a GET of the whole page. If the page isn't a redirect and happens to be very large, you're wasting a huge amount of bandwidth just to determine that it's not a redirect. Much better to use a HEAD request instead. – Adam Rosenfield Nov 17 '10 at 3:22
    
@Adam Rosenfeld: It's probably an appropriate answer for a side project for someone beginning python. I don't recommend that Google or Yahoo spider pages like this to find the real URL. – hughdbrown Nov 18 '10 at 15:08
    
It is a NOT GOOD IDEA doing this. You wasting a lot of bandwidth. Just using unshort.me api is better and faster as @user387049 suggested – Cory Mar 26 '11 at 22:57

http://github.com/stef/urlclean

sudo pip install urlclean
urlclean.unshorten(url)
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Here a src code that takes into account almost of the useful corner cases:

  • set a custom Timeout.
  • set a custom User Agent.
  • check whether we have to use an http or https connection.
  • resolve recursively the input url and prevent ending within a loop.

The src code is on github @ https://github.com/amirkrifa/UnShortenUrl

comments are welcome ...

import logging
logging.basicConfig(level=logging.DEBUG)

TIMEOUT = 10
class UnShortenUrl:
    def process(self, url, previous_url=None):
        logging.info('Init url: %s'%url)
        import urlparse
        import httplib
        try:
            parsed = urlparse.urlparse(url)
            if parsed.scheme == 'https':
                h = httplib.HTTPSConnection(parsed.netloc, timeout=TIMEOUT)
            else:
                h = httplib.HTTPConnection(parsed.netloc, timeout=TIMEOUT)
            resource = parsed.path
            if parsed.query != "": 
                resource += "?" + parsed.query
            try:
                h.request('HEAD', 
                          resource, 
                          headers={'User-Agent': 'curl/7.38.0'}
                                   }
                          )
                response = h.getresponse()
            except:
                import traceback
                traceback.print_exec()
                return url

            logging.info('Response status: %d'%response.status)
            if response.status/100 == 3 and response.getheader('Location'):
                red_url = response.getheader('Location')
                logging.info('Red, previous: %s, %s'%(red_url, previous_url))
                if red_url == previous_url:
                    return red_url
                return self.process(red_url, previous_url=url) 
            else:
                return url 
        except:
            import traceback
            traceback.print_exc()
            return None
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2  
While this link may answer the question, it is better to include the essential parts of the answer here and provide the link for reference. Link-only answers can become invalid if the linked page changes. – Joel Jul 16 '15 at 5:42
    
thx, it is done :) – Amir Krifa Jul 16 '15 at 9:38
    
If I understand your flow correctly, you might want to put a cap on how many redirects you'll tolerate – Foon Jul 16 '15 at 14:10
    
@Foon in some cases, the redirect points to the same previous url, so, to prevent the trap of an infinite loop, i propagate the previous url within the recusive call and if i end up with red_url == previous_url, i stop and return that url. Otherwise, in a normal case, at some iteration, the response.status will not be equal anymore to a redirection status, so, we return the retrieved url. – Amir Krifa Jul 16 '15 at 17:19
    
@AmirKrifa does that handle link.foo which points to link.bar which points back to link.foo? (I don't know httplib to know if there's an option to follow redirects, in which case, this sort of link would throw an exception before you called the recursive call) – Foon Jul 16 '15 at 17:26

I have built a service for that: https://urlunshorten.com

The site is based on Django.

The main reusable app that powers this can be found on Github: https://github.com/bitmazk/django-unshorten

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