2

我现在正在将所有基于 Django 函数的视图转换为基于类的视图...

所以这是我的原始代码:

视图.py

def search(request):        
    if 'q' in request.GET:
        q = request.GET['q']

        if q:
            result = Post.objects.filter(title__icontains=q)

    variables = RequestContext(request, {
        'result': result
    })

    return render_to_response('search.html', variables)

我只是为了练习CBV而尝试将其切换为CBV ...

这是我到目前为止所拥有的:

视图.py

class PostSearch(TemplateView):
    template_name = 'search.html'

    def get(self, request, *args, **kwargs):
        q = self.request.GET.get('q')
        if q:
            data = {
                'result': Post.objects.filter(title__icontains=q)
            }

            return self.render_to_response(data)

我认为这会很好,因为它是一个非常简单的代码。但是,我收到此错误:

ValueError: The view app_blog.views.PostSearch didn't return an HttpResponse object.

所以我猜“render_to_response”在 CBV 中的工作方式完全不同......

将我的原始代码转换为 CBV 的正确方法是什么?

谢谢 :(((

4

2 回答 2

8 
class PostSearch(TemplateView):
    template_name = 'search.html'

    def get_context_data(self, **kwargs):
        context = super(PostSearch, self).get_context_data(**kwargs)
        q = self.request.GET.get('q')
        if q:
            context['result'] = Post.objects.filter(title__icontains=q)
        return context
于 2013-08-12T11:42:42.560 回答
2 
from django.shortcuts import render
from django.http import HttpResponse
class PostSearch(TemplateView):
    template_name = 'search.html'
    def get(self, request, *args, **kwargs):
        q = request.GET.get('q')
        if q:
            data = {
                'result': Post.objects.filter(title__icontains=q)
            }

            return render(request,self.template_name,data)
        return HttpResponse('Please type a search query')
于 2013-08-12T11:29:58.707 回答