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I'd like to write a Django view which serves out variant content based on what's requested. For example, for "text/xml", serve XML, for "text/json", serve JSON, etc. Is there a way to determine this from a request object? Something like this would be awesome:

def process(request):
    if request.type == "text/xml":
        pass
    elif request.type == "text/json":
        pass
    else:
        pass

Is there a property on HttpRequest for this?

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2 Answers 2

up vote 3 down vote accepted

HttpRequest.META, more specifically HttpRequest.META.get('HTTP_ACCEPT') — and not HttpRequest.META.get('CONTENT_TYPE') as mentioned earlier

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4  
I know this is old, but although this is the accepted answer, it is not correct. As is mentioned in Jan's comment below, the correct method is the 'Accept' header, accessible via HttpRequest.META.get('HTTP_ACCEPT'). –  Brian Visel Sep 27 '13 at 18:20
2  
You could do a fallback, to handle both cases (plus a default): request.META.get('HTTP_ACCEPT', request.META.get('CONTENT_TYPE', 'application/your_default')) –  Brian Visel Sep 27 '13 at 18:27

'Content-Type' header indicates media type send in the HTTP request. This is used for requests that have a content (POST, PUT).

'Content-Type' should not be used to indicate preferred response format, 'Accept' header serves this purpose. To access it in Django use: HttpRequest.META.get('HTTP_ACCEPT')

See more detailed description of these headers

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