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Although I upvoted the answer of @Manuel Bitto, I would like to post another answer which contains a complete Cors Filter that works for me with Apache tomcat 5.x: public class CorsFilter implements Filter { public CorsFilter() { } public void init(FilterConfig fConfig) throws ServletException { } public void destroy() { } public void ...


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It looks like that it is TastyPie lacking the support for Django 1.8.2. The commit_on_success has been removed in this version of Django. I wanted to use the latest release so I switched to Django Rest Framework.


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You have too much queries, even if they are relatively fast you spend some time to reach database etc. Also if you have external cache storage (for example, redis) it could take some time to connect there. To investigate slow parts of the code you have two options: Use a profiler - profiling at local PC could make no sense if you have distributed system ...


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You could expose environment name as an endpoint, so that your resource url will become http://localhost:8000/api/v1/report_status/[environment_name] and then use a PUT call, which will either update or create a new resource depending on whether the resource for the given environment name exists or not. Tastypie docs about exposing non PK endpoints ...


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Here's a bunch of suggestions: bring the query per request at least below 5 per request (34 per request is really bad) install django toolbar and have a look where the time is spent use gunicorn or uwsgi behind a reverse proxy (NGINX)


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You have to target the single resource e.g: http://localhost:8000/api/v1/report_status/<IDENTIFIER OF THE RESOURCE YOU WANT TO UPDATE> And I think that you need a "PUT" request instead of "POST" So after you create the environment, you get it's id, you send a "PUT" request to "http://localhost:8000/api/v1/report_status/< ID > and then it should ...


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Okay, so I ended up including a name check followed by bundle.data['id'] = env.id if it was already there: class ReportStatusResource(ModelResource): status = fields.ForeignKey(EnvironmentStateResource, 'status', null=True, full=True) class Meta: queryset = Environment.objects.all() resource_name = ...


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I have not received an answer to my question, and added these lines to the top of the method RecordResource.obj_create(): if not bundle.request.user.laptop.approved: raise Unauthorized(u"Доступ планшета к данным не подтвержден администратором.")


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EDIT #2: Finally figured out how to fix things, but unfortunately it requires a bit of subclassing and overrides. Here's how I got it working: First, create a new field subclass - I called my RelatedToOneField: from tastypie.bundle import Bundle from django.core.exceptions import ObjectDoesNotExist, MultipleObjectsReturned from tastypie.exceptions import ...


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change the resource fields as: categories= fields.ManyToManyField(PostResource, attribute=lambda bundle: bundle.obj.categories.all().order_by('name'), null=True, blank=True, full=True) also you can use : lambda bundle: categories.objects.filter( categories=bundle.obj, user__id=2 )


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Did you included the foreign key in ordering list(in Meta)...! class Meta: ordering = [<your foreign key field>] However worth mentioning that it does not work same as filtering. I mean in filtering you also need to specify the specific field name in Foreign key ModelResource's filtering option. However in case of ordering you do not need to do ...


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I was following the examples, at the register_by_access_token method (I use django as API for an Angular app). In the example, the line: user = request.backend.do_auth(access_token) Was not working with twitter with the oauth_token received by twitter, to get it work I have to create the following access_token: access_token = { ...


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I ended up figuring it out and it was a pretty dumb error. I just needed to add blank = True in addition to null = True: class MissionResource(ModelResource): text_mission = fields.ToOneField('path.to.TextMissionResource', attribute='text_mission', related_name='mission', full = True, blank = True, null = True) That got everything working properly.


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Posting to list endpoint and posting to detail one has a different meaning. As from Tastypie docs: To create new resources/objects, you will POST to the list endpoint of a resource. Trying to POST to a detail endpoint has a different meaning in the REST mindset (meaning to add a resource as a child of a resource of the same type). If you want to allow ...


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It works fine because on commenting out detail_allowed_methods, Tastypie falls back to it's default value, which is: ['get', 'post', 'put', 'delete', 'patch'] So, commenting detail_allowed_methods won't do anything. If you want to disable all methods, set it's value to an empty list: detail_allowed_methods = [] See Tastypie docs.



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