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I use Tastypie for Django's API. but it returns error. my code is bellow.

$.ajax({
      type : "POST", 
      url : "http://192.168.1.130:8000/api/user/author/", 
      data : '{"first_name": "111","second_name": "222"}', 
      success: function(){
        alert('Submit Success')
      },
      dataType : 'json', 
      contentType : 'application/json',
      processData: false
    });

my api.py like this:

class AuthorResource(ModelResource):
    class Meta:
        queryset = Author.objects.all()
        resource_name ='author'
        fields = ['first_name','last_name']
        filtering = {
            'first_name': ALL,
        }
        authentication = Authentication()
        authorization = Authorization()

it returns 200 and post nothing.How can I reslove it?

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why do you have processData set to false? 200 is a successfull http response –  Hedde van der Heide May 25 '12 at 8:56
    
You should indent your code four spaces so that it is shown in a nice way. 200 is successful status code, an author object should be created, check if it is. –  tayfun May 25 '12 at 9:48

2 Answers 2

This is a dupe of Returning data on POST in django-tastypie.

Add always_return_data = True to your Resource meta

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If object created successfully, the object uri will be shown in Location field in response headers.

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