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This related to this question: Django return json and html depending on client python

I have a command line python api for a django app. When I access the app through the api it should return json and with a browser it should return html. I can use different urls to access the different versions but how do I render the html template and json in the views.py with just one template?

To render the html I would use:

 return render_to_response('sample/sample.html....)

But how would I do the same for json without putting a json template? (the content-type should be application/json instead of text/html)

Edit 1:

What would determine the json and html outputs?

So in my views:

 if something:
      return render_to_response('html_template',.....)
 else:
      return HttpReponse(jsondata,mimetype='application/json')

Thank you

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Did you not read my answer? –  Marcin Feb 13 '12 at 14:49
    
@Marcin You basically told him "No, don't do it this way" without showing him an example of the right way. That's what this one seems to be for... –  Izkata Feb 13 '12 at 14:54
    
@Jimmy, if that's what happened, you shouldn't have accepted Marcin's answer on the other question so quickly. Wait at least a day, someone likely would have answered with something like Uku Loskit's answer –  Izkata Feb 13 '12 at 14:55
    
@Izkata: I did actually tell him which library to use. This question appears to be for the purpose of getting someone else to write his code for him. –  Marcin Feb 13 '12 at 14:59
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6 Answers

up vote 58 down vote accepted

I think the issue has gotten confused regarding what you want. I imagine you're not actually trying to put the HTML in the JSON response, but rather want to alternatively return either HTML or JSON.

First, you need to understand the core difference between the two. HTML is a presentational format. It deals more with how to display data than the data itself. JSON is the opposite. It's pure data -- basically a JavaScript representation of some Python (in this case) dataset you have. It serves as merely an interchange layer, allowing you to move data from one area of your app (the view) to another area of your app (your JavaScript) which normally don't have access to each other.

With that in mind, you don't "render" JSON, and there's no templates involved. You merely convert whatever data is in play (most likely pretty much what you're passing as the context to your template) to JSON. Which can be done via either Django's JSON library (simplejson), if it's freeform data, or its serialization framework, if it's a queryset.

simplejson

from django.utils import simplejson

some_data_to_dump = {
   'some_var_1': 'foo',
   'some_var_2': 'bar',
}

data = simplejson.dumps(some_data_to_dump)

Serialization

from django.core import serializers

foos = Foo.objects.all()

data = serializers.serialize('json', foos)

Either way, you then pass that data into the response:

return HttpResponse(data, mimetype='application/json')
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Thank you for clarification. How do I determine in my views that the response request is by the api for the json? See edit on question. –  Jimmy Feb 13 '12 at 16:39
    
You can use request.is_ajax(). But that requires that the HTTP_X_REQUESTED_WITH header is set. Most JavaScript libraries do this automatically, but if you're using some other type of client, you'll need to make sure it sets it as well. Alternatively, you can pass a querystring such as ?json with the URL and then check request.GET.has_key('json'), which is probably a little more foolproof. –  Chris Pratt Feb 13 '12 at 16:41
5  
Note that simplejson is now considered deprecated by Django 1.5. Use import json ; json.dumps(data) instead. –  Yonatan Apr 29 '13 at 23:59
    
The OP should check the "Accept" content type negotiation header in the request object. See: w3.org/Protocols/rfc2616/rfc2616-sec14.html (big mamoth of a read, but a simplified code sample could be used to demonstrate, and it wouldn't be very hard to write an inflexible system that would at least handle the two cases they're asking) –  Merlyn Morgan-Graham Aug 20 '13 at 6:41
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In the case of the JSON response there is no template to be rendered. Templates are for generating HTML responses. The JSON is the HTTP response.

However, you can have HTML that is rendered from a template withing your JSON response.

html = render_to_string("some.html", some_dictionary)
serialized_data = simplejson.dumps({"html": html})
return HttpResponse(serialized_data, mimetype="application/json")
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Do I have to serialize the objects first? –  Jimmy Feb 13 '12 at 14:44
    
simplejson.dumps() is what does the serialization. –  Uku Loskit Feb 13 '12 at 14:45
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It looks like the Django REST framework uses the HTTP accept header in a Request in order to automatically determine which renderer to use: https://django-rest-framework.readthedocs.org/en/latest/library/renderers.html

Using the HTTP accept header may provide an alternative source for your "if something".

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You could also check the request accept content type as specified in the rfc. That way you can render by default HTML and where your client accept application/jason you can return json in your response without a template being required

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If you want to pass the result as a rendered template you have to load and render a template, pass the result of rendering it to the json.This could look like that:

from django.template import loader, RequestContext

#render the template
t=loader.get_template('sample/sample.html')
context=RequestContext()
html=t.render(context)

#create the json
result={'html_result':html)
json = simplejson.dumps(result)

return HttpResponse(json)

That way you can pass a rendered template as json to your client. This can be useful if you want to completely replace ie. a containing lots of different elements.

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1  
As a side note, render_to_string is a shortcut for the 3 "render the template" lines, and has existed since Django 1.0 –  Izkata Feb 13 '12 at 14:59
    
An that point, you may as well use XML instead of JSON for the interchange... –  jpaugh Feb 15 '12 at 2:27
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from django.utils import simplejson 
from django.core import serializers 

def pagina_json(request): 
   misdatos = misdatos.objects.all()
   data = serializers.serialize('json', misdatos) 
   return HttpResponse(data, mimetype='application/json')
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