24

I'm quite new to using Django and I am trying to develop a website where the user is able to upload a number of excel files, these files are then stored in a media folder Webproject/project/media.

def upload(request):
    if request.POST:
        form = FileForm(request.POST, request.FILES)
        if form.is_valid():
            form.save()
            return render_to_response('project/upload_successful.html')
    else:
        form = FileForm()
    args = {}
    args.update(csrf(request))
    args['form'] = form

    return render_to_response('project/create.html', args)

The document is then displayed in a list along with any other document they have uploaded, which you can click into and it will displays basic info about them and the name of the excelfile they have uploaded. From here I want to be able to download the same excel file again using the link:

 <a  href="/project/download"> Download Document </a>

My urls are

 urlpatterns = [

              url(r'^$', ListView.as_view(queryset=Post.objects.all().order_by("-date")[:25],
                                          template_name="project/project.html")),
              url(r'^(?P<pk>\d+)$', DetailView.as_view(model=Post, template_name="project/post.html")),
              url(r'^upload/$', upload),
              url(r'^download/(?P<path>.*)$', serve, {'document root': settings.MEDIA_ROOT}),

          ] + static(settings.MEDIA_URL, document_root=settings.MEDIA_ROOT)

but I get the error, serve() got an unexpected keyword argument 'document root'. can anyone explain how to fix this?

OR

Explain how I can get the uploaded files to to be selected and served using

def download(request):
    file_name = #get the filename of desired excel file
    path_to_file = #get the path of desired excel file
    response = HttpResponse(mimetype='application/force-download')
    response['Content-Disposition'] = 'attachment; filename=%s' % smart_str(file_name)
    response['X-Sendfile'] = smart_str(path_to_file)
    return response
  • 1
    can you include the code from the serve view? – xthestreams Apr 4 '16 at 1:16
52

You missed underscore in argument document_root. But it's bad idea to use serve in production. Use something like this instead:

import os
from django.conf import settings
from django.http import HttpResponse, Http404

def download(request, path):
    file_path = os.path.join(settings.MEDIA_ROOT, path)
    if os.path.exists(file_path):
        with open(file_path, 'rb') as fh:
            response = HttpResponse(fh.read(), content_type="application/vnd.ms-excel")
            response['Content-Disposition'] = 'inline; filename=' + os.path.basename(file_path)
            return response
    raise Http404
  • Worked great. Thank you – jsm1th Jan 21 '17 at 23:37
  • It work's smooth for me. thx @Sergey Gornostaev – gustav Oct 6 '17 at 3:40
  • Doesn't this let users download any file on the server by using a path like ../../some/other/path/secrets.txt? – Don Kirkby Aug 1 '18 at 22:08
  • @DonKirkby likely, I never used this code. It would be reasonable to limit allowed symbols in URL or add something like if ROOT_DIR not in os.path.abspath(os.path.join(ROOT_DIR, path)): raise PermissionDenied to view. – Sergey Gornostaev Aug 2 '18 at 4:21
  • Is it possible to adjust this method so that the user will download .exe files for example? – Keselme Oct 2 '18 at 20:49
3

I've found Django's FileField to be really helpful for letting users upload and download files. The Django documentation has a section on managing files. You can store some information about the file in a table, along with a FileField that points to the file itself. Then you can list the available files by searching the table.

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