9

The scenario goes like this.

I get an atom file from a website (say A). A third party will be request this atom file through my website (say B).

I am writing a Django app which will frequently poll website A and store it as a file. Now, when a third party requests for the file through website B, I will have to display the file as xml in the browser.

My question is how do I render an entire xml file to a view in Django?

 render_to_response

expects a template. I can't use a template as such. I just need to display the file in the view. How do I do this?

4

If you don't want to render a template, don't do so. render is just a shortcut to render a template. If you just want to display text, just pass it into the HttpResponse.

Since your data is in a file, this will work:

return HttpResponse(open('myxmlfile.xml').read())

although you should beware of concurrency issues, if more than one person is accessing your site at a time.

  • Thanks for the clarification. So what is the best way to deal with this kind of situation? – vkris May 18 '11 at 15:06
  • Didnt work for me. Showed a 'module' object not callable error. silent1mezzo's answer seems to work fine. – Indradhanush Gupta Jun 23 '13 at 0:51
  • This shouldn't be marked as the correct answer! – juan Isaza Jul 5 at 9:41
14

Do something like this.

return render(request, 'myapp/index.html', {"foo": "bar"} content_type="application/xhtml+xml")
  • myapp/index.html is a template right? I don't have variable like foo->bar. I just have an xml file. I need to be using something like say return render(request,"myxmlfile.xml"). This xml file is not a template but a valid xml file. – vkris May 18 '11 at 14:48
  • worked like a charm! – dataviews Jul 17 '18 at 2:11
8

You just need to define the MIME type to 'text/xml' using the content_type argument:

return HttpResponse(open('myxmlfile.xml').read(), content_type='text/xml')

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