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Is it possible to get an ORM-mapped model class from name?

Definitely SQLAlchemy has this functionality built-in somewhere. For instance in declarative style you can write things like blahs = relationship('Blah') (notice: no module prefix required). I tried looking inside sqlalchemy.orm.properties.RelationshipProperty but can't figure out when argument string is replaced by the actual thing.

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Take a look at sqlalchemy.ext.declarative._deferred_relationship if you're curious about how those string relationships are resolved. It's simpler than you might think. –  BenTrofatter Dec 16 '12 at 16:46

1 Answer 1

The resolver is not publicly accessible; the sqlalchemy.ext.declarative._deferred_relationship function is used, and it has a nested (hidden) resolve_arg function.

The function uses the following logic to resolve names:

def access_cls(key):
    if key in cls._decl_class_registry:
        return _GetColumns(cls._decl_class_registry[key])
    elif key in cls.metadata.tables:
        return cls.metadata.tables[key]
    elif key in cls.metadata._schemas:
        return _GetTable(key, cls.metadata)
    else:
        return sqlalchemy.__dict__[key]

where cls is a declarative class (derived from Base). As you can see from the code, one way to resolve a name is to use the cls._decl_class_registry structure, given a class Foo, you can resolve the string 'Blah' to a class using Foo._decl_class_registry['Blah'].

The ._decl_class_registry structure is just a python dict; you can also specify your own mapper when creating the Base class:

class_registry = {}
Base = declarative_base(class_registry=class_registry)

and then you can look up classes directly in the class_registry mapping.

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