问题
I have a model, which looks like:
class StaffMember(models.Model):
id = models.OneToOneField(to=User, unique=True, primary_key=True, related_name='staff_member')
supervisor = models.ForeignKey(to='self', null=True, blank=True, related_name='team_members')
My current hierarchy of team is designed in such a way that there is let's say an Admin (who is at the top most point of hierarchy). Now, let's say 3 people (A, B, C) report to Admin and each one of A, B and C have their own team reporting to them and so on.
I want to find all the team members (boiling down to the bottom most level of hierarchy), for any employee. My current method to get all the team members of a person is like:
def get_team(self):
team = [self]
for c in self.team_members.all():
team += list(c.get_team())
if len(team) > 2000:
break
return team
I get the team members of a member by:
member = StaffMember.objects.get(pk=72)
team = member.get_team()
But obviously, this leads to a lot of db calls and my API eventually times out. What could be more efficient way to fetch all the members of a team?
回答1:
If you're using a database that supports recursive common table expressions (e.g. PostgreSQL), this is precisely the use-case.
team = StaffMember.objects.raw('''
WITH RECURSIVE team(id, supervisor) AS (
SELECT id, supervisor
FROM staff_member
WHERE id = 42
UNION ALL
SELECT sm.id, sm.supervisor
FROM staff_member AS sm, team AS t
WHERE sm.id = t.supervisor
)
SELECT * FROM team
''')
References:
Raw SQL queries in Django
Recursive Common Table Expressions in PostgreSQL
回答2:
I found a solution to the problem. The recursive solution takes the node, goes to it's first child and goes deep down till bottom of the hierarchy. Then comes back up again to the second child (if exists), and then again goes down till the bottom. In short, it explores all the nodes one by one and appends all the members in an array. The solution I came up with, fetches the members layer-wise.
member = StaffMember.objects.get(id__id=user_id)
new_list = [member]
new_list = get_final_team(new_list)
def get_final_team(qs):
team = []
staffmembers = StaffMember.objects.filter(supervisor__in=qs)
team += staffmembers
if staffmembers:
interim_team_qs = get_final_team(staffmembers)
for qs in interim_team_qs:
team.append(qs)
else:
team = [qs]
return team
The number of db calls this method entails is the number of layers (of hierarchy) that are present beneath the member whose team we want to find out.
来源:https://stackoverflow.com/questions/39511993/how-to-recursively-query-in-django-efficiently