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This is what I want.

  1. Submit a POST request to a external site(i.e login information).
  2. Receive the response
  3. Return the raw response to my client's browser(containing the cookies for login
    validation).
  4. If the client tries to access the site in new tab he finds that he is already signed in.

I successfully completed steps 1 & 2 (submitted POST & received the response from the site).

request = urllib2.Request(url, formData, headers)
response = urllib2.urlopen(request)

But when I try to return it in the view

return response

I get the folllowing error

Django Version:     1.3.1
Exception Type:     AttributeError
Exception Value:    addinfourl instance has no attribute 'has_header'
Exception Location:D:\Python27\lib\site-packages\django\utils\cache.py in patch_vary_headers

note: I had a csrf error previosly,but i disabled csrf using decorator @csrf_exempt & the error was gone

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So in other words you want to perform a man in the middle attack. –  Chris Pratt Oct 31 '11 at 16:33
    
I am an authorized user of the above mentioned external site.I just do not access to their code. –  Jibin Nov 9 '11 at 14:18
    
Understandable. But the principle is the same. If your "solution" involves the same idea as a security exploit, it's probably not a good idea. –  Chris Pratt Nov 9 '11 at 15:00

2 Answers 2

up vote 4 down vote accepted

You shouldn't return the response from urlopen method directly. Instead your view should return an instance of django's HttpResponse, where body and the headers should be set to those from the original response:

from django.http import HttpResponse
import urllib2

def my_view(request):
    request = urllib2.Request(url, formData, headers)
    response = urllib2.urlopen(request)

    # set the body
    r = HttpResponse(response.read())

    # set the headers
    for header in response.info().keys():
        r[header] = response.info()[header]

    return r
share|improve this answer

Firstly, it doesn't make sense to submit a URL request as the response in a view. But, even if you could, that wouldn't do what you want. There's no way to log a user in to a different site, for what should be obvious reasons: that would be a massive security hole.

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