我想用外键过滤查询,但它似乎并不想识别它。 status可以是 'open' 或 'closed' 。
models.py
class Status(models.Model):
status = models.CharField(primary_key=True, max_length=100)
class Incident(models.Model):
incident_date_reported = models.DateField('Date Reported', default=timezone.now)
status = models.ForeignKey(Status, default="open")
views.py
def index(request):
template = "index.html"
form = IncidentSearchForm(request.GET)
if request.method == 'GET':
form = IncidentSearchForm()
############## MY QUERY THAT DOESN'T LIKE THE FOREIGN KEY #############
incident_list = Incident.objects.filter(status = 'open').order_by('-incident_date_reported')
#######################################################################
context = { "form": form,
"incident_list": incident_list
}
return render(request, template, context)
答案 0 :(得分:4)
您的status本身就是一个模型,所以您应该这样做:
incident_list = Incident.objects.filter(status__status='open').order_by('-incident_date_reported')
另外我认为你的设计没有多大意义。如果您只需要Incident上的字符串作为状态,则不需要模型Status,只需将status字段转到Incident,您的旧查询就可以了
修改
如果您想将选择限制为特定集,则应考虑使用choices:https://docs.djangoproject.com/en/1.8/ref/models/fields/#choices
然后你的模型变成:
class Incident(models.Model):
STATUS_CHOICES = (
('open', 'Open'),
('closed', 'Closed'),
# some other statuses go here
)
incident_date_reported = models.DateField('Date Reported',
default=timezone.now)
status = models.CharField(max_length=20,
choices=STATUS_CHOICES,
default='open')