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I am quite new to SQLAlchemy, or even database programming, maybe my question is too simple. Now I have two class/table:

class User(Base):
    __tablename__ = 'users'
    id = Column(Integer, primary_key=True)
    name = Column(String(40))

class Computer(Base):
    __tablename__ = 'comps'
    id = Column(Integer, primary_key=True)
    buyer_id = Column(None, ForeignKey(''))
    user_id = Column(None, ForeignKey(''))
    buyer = relation(User, backref=backref('buys', order_by=id))
    user = relation(User, backref=backref('usings', order_by=id))

Of course, it cannot run. This is the backtrace:

  File "/Library/Python/2.6/site-packages/SQLAlchemy-0.5.8-py2.6.egg/sqlalchemy/orm/", line 71, in initialize_instance
    fn(self, instance, args, kwargs)
  File "/Library/Python/2.6/site-packages/SQLAlchemy-0.5.8-py2.6.egg/sqlalchemy/orm/", line 1829, in _event_on_init
  File "/Library/Python/2.6/site-packages/SQLAlchemy-0.5.8-py2.6.egg/sqlalchemy/orm/", line 687, in compile
  File "/Library/Python/2.6/site-packages/SQLAlchemy-0.5.8-py2.6.egg/sqlalchemy/orm/", line 716, in _post_configure_properties
  File "/Library/Python/2.6/site-packages/SQLAlchemy-0.5.8-py2.6.egg/sqlalchemy/orm/", line 408, in init
  File "/Library/Python/2.6/site-packages/SQLAlchemy-0.5.8-py2.6.egg/sqlalchemy/orm/", line 716, in do_init
  File "/Library/Python/2.6/site-packages/SQLAlchemy-0.5.8-py2.6.egg/sqlalchemy/orm/", line 806, in _determine_joins
    "many-to-many relation, 'secondaryjoin' is needed as well." % (self))
sqlalchemy.exc.ArgumentError: Could not determine join condition between parent/child tables on relation Package.maintainer.  Specify a 'primaryjoin' expression.  If this is a many-to-many relation, 'secondaryjoin' is needed as well.

There's two foreign keys in class Computer, so the relation() callings cannot determine which one should be used. I think I must use extra arguments to specify it, right? And howto? Thanks

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1 Answer 1

up vote 10 down vote accepted

The correct syntax should be:

buyer = relation(User, backref=backref('buys', order_by=id))
user = relation(User, backref=backref('usings', order_by=id))

P.S. Next time please specify what do you mean by "cannot run" by posting a traceback.

Update: the traceback in updated question says exactly what you need: specify primaryjoin condition:

buyer = relation(User, primaryjoin=(,
                 backref=backref('buys', order_by=id))
user = relation(User, primaryjoin=(,
                backref=backref('usings', order_by=id))
share|improve this answer
thanks for your advice. The typo has been fixed, and backtrace has been appended. – jfding Apr 13 '10 at 10:56
thanks, problem resolved. – jfding Apr 15 '10 at 14:52

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