use*_*953 25 python join sqlalchemy flask
我试图找出SQLAlchemy中正确的连接查询设置,但我似乎无法理解它.
我有下表设置(简化,我遗漏了非必要字段):
class Group(db.Model):
id = db.Column(db.Integer, primary_key = True)
number = db.Column(db.SmallInteger, index = True, unique = True)
member = db.relationship('Member', backref = 'groups', lazy = 'dynamic')
class Member(db.Model):
id = db.Column(db.Integer, primary_key = True)
number = db.Column(db.SmallInteger, index = True)
groupid = db.Column(db.Integer, db.ForeignKey('group.id'))
item = db.relationship('Item', backref = 'members', lazy = 'dynamic')
class Version(db.Model):
id = db.Column(db.Integer, primary_key = True)
name = db.Column(db.String(80), index = True)
items = db.relationship('Item', backref='versions', lazy='dynamic')
class Item(db.Model):
id = db.Column(db.Integer, primary_key = True)
member = db.Column(db.Integer, db.ForeignKey('member.id'))
version = db.Column(db.Integer, db.ForeignKey('version.id'))
所以关系如下:
我想通过从数据库中选择具有特定版本的所有项目行来构造查询.然后我想按集团订购,然后由会员订购.使用Flask/WTForm的输出应如下所示:
* GroupA
* MemberA
* ItemA (version = selected by user)
* ItemB ( dito )
* Member B
* ItemC ( dito )
....
我提出了类似下面的查询,但我很确定它不正确(并且效率低下)
session.query(Item,Member,Group,Version)
.join(Member).filter(version.id==1)
.order_by(Group).order_by(Member).all()
我的第一个直观方法是创造类似的东西
Item.query.join(Member, Item.member==Member.id)
.filter(Member.versions.name=='MySelection')
.order_by(Member.number).order_by(Group.number)
但显然,这根本不起作用.Version表上的join操作似乎不会产生我期望的两个表之间的连接类型.也许我完全误解了这个概念,但在阅读完这些教程后,这对我来说是有道理的.
van*_*van 39
以下将在一个查询中为您提供所需的对象:
q = (session.query(Group, Member, Item, Version)
.join(Member)
.join(Item)
.join(Version)
.filter(Version.name == my_version)
.order_by(Group.number)
.order_by(Member.number)
).all()
print_tree(q)
但是,您获得的结果将是元组列表(Group, Member, Item, Version).现在,您可以以树形式显示它.以下代码可能有用:
def print_tree(rows):
def get_level_diff(row1, row2):
""" Returns tuple: (from, to) of different item positions. """
if row1 is None: # first row handling
return (0, len(row2))
assert len(row1) == len(row2)
for col in range(len(row1)):
if row1[col] != row2[col]:
return (col, len(row2))
assert False, "should not have duplicates"
prev_row = None
for row in rows:
level = get_level_diff(prev_row, row)
for l in range(*level):
print 2 * l * " ", row[l]
prev_row = row
Update-1:如果您愿意放弃lazy = 'dynamic'前两个关系,您可以object network使用以下代码加载整个(与上面的元组相对)的查询:
q = (session.query(Group)
.join(Member)
.join(Item)
.join(Version)
# @note: here we are tricking sqlalchemy to think that we loaded all these relationships,
# even though we filter them out by version. Please use this only to get data and display,
# but not to continue working with it as if it were a regular UnitOfWork
.options(
contains_eager(Group.member).
contains_eager(Member.items).
contains_eager(Item.version)
)
.filter(Version.name == my_version)
.order_by(Group.number)
.order_by(Member.number)
).all()
# print tree: easy navigation of relationships
for g in q:
print "", g
for m in g.member:
print 2 * " ", m
for i in m.items:
print 4 * " ", i
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