88

The following code:

Base = declarative_base()
engine = create_engine(r"sqlite:///" + r"d:\foo.db",
                       listeners=[ForeignKeysListener()])
Session = sessionmaker(bind = engine)
ses = Session()

class Foo(Base):
    __tablename__ = "foo"
    id = Column(Integer, primary_key=True)
    name = Column(String, unique = True)

class Bar(Base):
    __tablename__ = "bar"
    id = Column(Integer, primary_key = True)
    foo_id = Column(Integer, ForeignKey("foo.id"))

    foo = relationship("Foo")


class FooBar(Base):
    __tablename__ = "foobar"
    id = Column(Integer, primary_key = True)
    bar_id = Column(Integer, ForeignKey("bar.id"))

    bar = relationship("Bar")



Base.metadata.create_all(engine)
ses.query(FooBar).filter(FooBar.bar.foo.name == "blah")

is giving me this error:

AttributeError: Neither 'InstrumentedAttribute' object nor 'Comparator' object associated with FooBar.bar has an attribute 'foo'

Any explanations, as to why this is happening, and guidance to how such a thing could be achieved?

6 Answers 6

115

This is because you are trying to access bar from the FooBar class rather than a FooBar instance. The FooBar class does not have any bar objects associated with it--bar is just an sqlalchemy InstrumentedAttribute. This is why you get the error:

AttributeError: Neither 'InstrumentedAttribute' object nor 'Comparator' object associated with FooBar.bar has an attribute 'foo'

You will get the same error by typing FooBar.bar.foo.name outside the sqlalchemy query.

The solution is to call the Foo class directly:

ses.query(FooBar).join(Bar).join(Foo).filter(Foo.name == "blah")
2
  • 31
    What if the table has multiple relations to Foo?
    – rr-
    May 7, 2016 at 6:33
  • That's true, but then we need to run .join() in every query of the app ( i.e: user id allowed/not allowed) - in that case, how can i "save" all these "join"s ?
    – Ricky Levi
    May 29, 2022 at 10:17
40

I cannot explain technically what happens but you can work around this problem by using:

ses.query(FooBar).join(Foobar.bar).join(Bar.foo).filter(Foo.name == "blah")
2
  • 4
    You can understand why it works in the documentation: docs.sqlalchemy.org/en/rel_0_9/orm/… Nov 28, 2014 at 17:19
  • 2
    This is correct, and the accepted answer is wrong because it does not join the tables on their foreign keys. You can actually remove the .bar and the .foo from this answer, and it still works. Nov 6, 2018 at 16:38
8

I was getting the same error Neither 'InstrumentedAttribute' object nor 'Comparator' has an attribute, but in my case, the problem was my model contained a Column named query, which was overwriting the internal property model.query.

I decided to rename that Column to query_text and that removed the error. Alternatively, passing the name= argument to the Column method would have worked: query = db.Column(db.TEXT, name='query_text').

2

A related error that can be caused by configuring your SQLAlchemy relationships incorrectly:

AttributeError: Neither 'Column' object nor 'Comparator' object has an attribute 'corresponding_column'

In my case, I incorrectly defined a relationship like this:

namespace   = relationship(PgNamespace, id_namespace, backref="classes")

The id_namespace argument to relationship() should just not be there at all. SQLAlchemy is trying to interpret it as an argument of a different type, and failing with an inscrutable error.

1
  • Thank you! A column and a relationship having the same name was causing this error and I didn't spot it until reading this answer.
    – gatherer
    Sep 23, 2019 at 10:15
2

This is a simple working example with multiple relations to the same table. This generally avoid having the error AttributeError while querying: Neither 'InstrumentedAttribute' object nor 'Comparator' has an attribute

def get_company(db: Session, company_id: int):
    best_contact = aliased(User, name="best_contact ")
    other_contact = aliased(User, name="other_contact")
        
    row = (
        db.query(Company, best_contact, other_contact)
        .join(best_contact, Company.best_contact_id == best_contact.id)
        .join(other_contact, Company.other_contact_id == other_contact.id)
        .filter(Company.id == company_id)
        .first()
    )
    return row
1
stmt = (
   select(Bar.id).
   where(Bar.foo.has(Foo.name=="test"))
)

Maybe it will be useful... I found it here: https://docs.sqlalchemy.org/en/14/tutorial/orm_related_objects.html#exists-forms-has-any

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service and acknowledge you have read our privacy policy.

Not the answer you're looking for? Browse other questions tagged or ask your own question.