10

I was wondering if there is a way to secure an image or a file to be hidden when it is not authenticated.

Suppose there is an image in my website which can only be seen if that user is authenticated. But the thing is I can copy the url or open the image in the new tab.

http://siteis.com/media/uploaded_files/1421499811_82_Chrysanthemum.jpg

And again, even if I am not authenticated, I can view that particular image by going to that url. So, my my problem is, how do I secure the files, so that only authenticated users will see?

Update:

view:

def pictures(request, user_id):
    user = User.objects.get(id=user_id)
    all = user.photo_set.all()
    return render(request, 'pictures.html',{
        'pictures': all
    })

models:

def get_upload_file_name(instance, filename):
    return "uploaded_files/%s_%s" %(str(time()).replace('.','_'), filename)

class Photo(models.Model):
    photo_privacy = models.CharField(max_length=1,choices=PRIVACY, default='F')
    user = models.ForeignKey(User)
    image = models.ImageField(upload_to=get_upload_file_name)

settings:

if DEBUG:
    MEDIA_URL = '/media/'
    STATIC_ROOT = os.path.join(os.path.dirname(BASE_DIR), "myproject", "static", "static-only")
    MEDIA_ROOT = os.path.join(os.path.dirname(BASE_DIR), "myproject", "static", "media")
    STATICFILES_DIRS = (
    os.path.join(os.path.dirname(BASE_DIR), "myproject", "static", "static"),
    )

Update:

template:

{% if pictures %}
    {% for photo in pictures %}
        <img src="/media/{{ photo.image }}" width="300" alt="{{ photo.caption }}"/>
    {% endfor %}
{% else %}
    <p>You have no picture</p>
{% endif %}

url:

url(r'^(?P<user_name>[\w@%.]+)/photos/$', 'pictures.views.photos', name='photos'),

if settings.DEBUG:
    urlpatterns += static(settings.STATIC_URL, document_root=settings.STATIC_ROOT)
    urlpatterns += static(settings.MEDIA_URL, document_root=settings.MEDIA_ROOT)
  • 1
    A way would be to have a controller handle the URL /media/uploaded_files/* and check for credentials. If not authorized, then return a 404 status. – Javier Jan 18 '15 at 6:42
  • @Javier Could you please have a look at the update, and advice me how to do it. Thank you. – Robin Jan 18 '15 at 7:21
  • The URL for the files should now be a logical URL, not part of static. And then I'd do something similar to what @Burhan Khalid posted. – Javier Jan 18 '15 at 7:25
  • @Javier How will I make it logical? In the settings.py? Can you please answer it and not comment. I am quite new to django. I will really appreciate if you could. – Robin Jan 18 '15 at 7:41
9

By securing any media file not to serve by anonymous user, better way url protection.

Code ( Updated ):

from django.conf.urls import patterns, include, url
from django.contrib.auth.decorators import login_required
from django.views.static import serve
from django.conf import settings

from django.core.exceptions import ObjectDoesNotExist
from django.shortcuts import HttpResponse

@login_required
def protected_serve(request, path, document_root=None):
    try:
        obj = Photobox.objects.get(user=request.user.id)
        obj_image_url = obj.image.url
        correct_image_url = obj_image_url.replace("/media/", "")
        if correct_image_url == path:
            return serve(request, path, document_root)
    except ObjectDoesNotExist:
        return HttpResponse("Sorry you don't have permission to access this file")


url(r'^{}(?P<path>.*)$'.format(settings.MEDIA_URL[1:]), protected_serve, {'file_root': settings.MEDIA_ROOT}),

Note: previously any logged in user can access any page, now this update restrict non user to view other files...

  • Could you please also show me how do I show the photos in the template? I will really appreciate it. Thank you. – Robin Jan 18 '15 at 7:45
  • 1
    Yes, I have working code. And it does displays me the photo in the template. The thing is I can copy the url of the image and open it as anonymous user. I tried your code, copied your views and url. But nothing has changed. Will appreciate if you could elaborate more. – Robin Jan 18 '15 at 8:05
  • This works on my machine. But not when I'm using amazon s3. Could you please update the answer for that? – Robin Feb 1 '15 at 19:42
  • @Robin Actually there is a security bug in above method. Any logged in user can access that file. So i will look that first. – Raja Simon Feb 2 '15 at 5:51
  • Thank you! That's very kind of you. – Robin Feb 2 '15 at 7:46
1

The easiest option is to serve the file from django, and then add the @login_required decorator to the view, like this:

import os
import mimetypes
from django.core.servers.basehttp import FileWrapper
from django.contrib.auth.decorators import login_required

@login_required
def sekret_view(request, path=None):
   filename = os.path.basename(path)
   response = HttpResponse(FileWrapper(open(path)),
                           content_type=mimetypes.guess_type(path)[0])
   response['Content-Length'] = os.path.getsize(path)
   return response
  • Thank you for the answer. But I am quite new to django didn't get that much as to how to show it in the template. Maybe if you could you please have a look at the update and tell me how, I will be very much grateful. – Robin Jan 18 '15 at 7:23
1

It would be better to handle just the authentication, and let your webserver handle the serving of files. It's probably good to put them in a different directory than your settings.MEDIA_ROOT, to prevent your webserver from serving the files before you handle the request, e.g. project_root/web-private/media/.

import os

@login_required
def protected_file(request, path):
    # set PRIVATE_MEDIA_ROOT to the root folder of your private media files
    name = os.path.join(settings.PRIVATE_MEDIA_ROOT, path)
    if not os.path.isfile(name):
        raise Http404("File not found.")

    # set PRIVATE_MEDIA_USE_XSENDFILE in your deployment-specific settings file
    # should be false for development, true when your webserver supports xsendfile
    if settings.PRIVATE_MEDIA_USE_XSENDFILE:
        response = HttpResponse()
        response['X-Accel-Redirect'] = filename # Nginx
        response['X-Sendfile'] = filename # Apache 2 with mod-xsendfile
        del response['Content-Type'] # let webserver regenerate this
        return response
    else:
        # fallback method
        from django.views.static import serve
        return serve(request, path, settings.PRIVATE_MEDIA_ROOT)

As your webserver is way better at serving static files than Django, this will speed up your website. Check django.views.static.serve for an idea how to sanitize file names etc.

  • To use this method, do I need to modify anything on Apache 2 configuration? – Renel Chesak Aug 30 '17 at 15:42
  • 1
    @RenelChesak I mostly use this with Ngnix. You may have to install and enable mod_xsendfile on Apache, but I'm not sure on the details. – knbk Aug 30 '17 at 15:55
  • This is a very helpful tutorial on setting it up for Apache: h3xed.com/web-development/…. @knbk as for your code above, does this need to be in the main project's urls.py, or does it need to be a Function-Based View in the app's views.py? – Renel Chesak Sep 1 '17 at 13:02
  • Can your code above be used to control access to a file that is designated in another Function-Based View? Also, what do you recommend to put in the urls.py? – Renel Chesak Sep 1 '17 at 13:11

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