我有两个型号,蛞蝓领域:映射同一级的URL路径不同车型
class Book(models.Model):
name = models.CharField(max_length=200)
slug = models.SlugField()
class Author(models.Model):
name = models.CharField(max_length=200)
slug = models.SlugField()
我想将它们映射到第一级路径:
(r'^(?P<slug>[a-zA-Z0-9_-]+)/$', 'book_detail'),
(r'^(?P<slug>[a-zA-Z0-9_-]+)/$', 'author_detail'),
什么在不使用相同函数的情况下完成此操作并返回基于slug的书籍或作者的最佳方法。
,最好的办法是将其在视图中拆分:
r'^(?P<model>[a-zA-Z0-9_-]+)/(?P<slug>[a-zA-Z0-9_-]+)/$', 'some_detail')
和看法:
def some_detail(request, model, slug):
try:
model = {'book':Book, 'author':Author}[model]
except KeyError:
raise Http404
item = get_object_or_404(model, slug=slug)
do_something_with(item)
...
编辑:哦,平这样的...这将是:
(r'^(?P<slug>[a-zA-Z0-9_-]+)/$', 'universal_detail'),
def universal_detail(request, slug):
try:
book = Book.objects.get(slug=slug)
return book_detail(request, book)
except Book.DoesNotExist:
pass
try:
author = Author.objects.get(slug=slug)
return author_details(request, author)
except Author.DoesNotExist:
raise Http404
def book_detail(request, book):
# note that book is a book instance here
pass
谢谢。我想只有一个级别的网址。 mysite.com/mark-twain应该返回作者,mysite.com/a-dogs-tale应该返回该书。 – Boolean 2010-07-19 22:22:20
很好,谢谢! – Boolean 2010-07-19 22:50:21