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Just call that view function and pass the request object as parameter to it. @login_required def show_info(request): r = my_api_view(request) return HttpResponse(r.json()) Or a better option would be to simply separate the logic into a separate function, as mentioned by @koniiiik in the comments. EDIT: Or if you really want to hit the URL ...


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You could do that by writing your own middleware that will: Create a language cookie if it does not exist already. Set the language according to the cookie. So you could write something like that: from django.utils import translation class LanguageCookieMiddleware(): def process_request(self, request): """ Sets language from ...


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As an improvement to shacker's1 in Python 2.x dict.keys() returns a list copy of the keys of a dictionary, in Python 3.x it instead returns an iterator. changing the size of an iterator is unwise. For an version safe implementation casting to list will prevent any size issues for key in list(request.session.keys()): del request.session[key] My ...


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I can think of only one scenario - that your form is never valid. So the condition where you check form.is_valid() is always failing. Try setting the test key before that: form = single_input(request.POST) request.session['test'] = 'test' if form.is_valid(): ...



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