我有多对多的关系,我尝试在我的 subs 表中找到具有最低请求的用户,但我不明白我该怎么做。
你能澄清一下我该怎么做吗
我的模型是:
subs = db.Table('subs',
db.Column('user_id', db.Integer, db.ForeignKey('user.id')),
db.Column('request_id', db.Integer, db.ForeignKey('request.id'))
)
class User(UserMixin, db.Model):
id = db.Column(db.Integer, primary_key=True)
name = db.Column(db.String(120))
role = db.Column(db.String(120))
password_hash = db.Column(db.String(120))
requests = db.relationship('Request', secondary=subs,
backref=db.backref('users', lazy='dynamic'))
post = db.relationship('Posts', backref = 'user', lazy = 'dynamic')
request = db.relationship('Request', backref='user', lazy = 'dynamic')
is_active = db.Column(db.String(120))
class Request(db.Model):
__tablename__ = 'request'
id = db.Column(db.Integer, primary_key=True)
org = db.Column(db.String(120))
user_id = db.Column(db.Integer, db.ForeignKey('user.id'))
cost = db.Column(db.Integer)
created = db.Column(db.DateTime, default= datetime.utcnow)
cost_time = db.Column(db.Integer)
update_time = db.Column(db.DateTime, default = datetime.utcnow())
diff_time = db.Column(db.DateTime)
feedback = db.Column(db.Text, default=update_time)
comment = db.relationship('Posts', backref = 'request', lazy='dynamic')
rate_idea = db.Column(db.Integer)
new = db.Column(db.Text)
cost_buyer = db.relationship('Costs', backref = 'request', lazy='dynamic')
status = db.Column(db.String(120), db.ForeignKey('status.id'))
例如:
User1.requests = [Request_1, 'Request_2, Request_3]
User2.requests = [Request_2, Request_3]
当有人提出新请求时,我需要首先澄清哪个用户对所有用户的请求最少,然后将此请求发送给他。
New_request = Request(org = 'TEST')
在这种情况下,User2 必须将此 New_request 添加到他自己的 User.requests 中,因此最终结果必须是
User1.requests = [Request_1, 'Request_2, Request_3]
User2.requests = [Request_2, Request_3, New_request]
我想做这样的查询,但是对此我不知道并且我想知道的正确和简单的解决方案是什么:
db.query.filter(min(len(User.requests))