7

I have an entity, for which I have a Class<MyEntity> reference:

@Entity
class MyEntity {
    @Id int id;
    @Column String col1;
    @Column(name = "abc") String col2;
}

I'm currently using Hibernate to export my entities into an in-memory database as such:

MetadataSources metadata = new MetadataSources(...);
metadata.addAnnotatedClass(MyEntity.class);
SchemaExport export = new SchemaExport();
export.create(EnumSet.of(TargetType.DATABASE), metadata.buildMetadata());

Details about the Hibernate-specific API here.

Is there any reliable way to get a mapping from MyEntity.col2 (the annotated Java field reference) to the fully qualified column name in the database (and vice versa) through Hibernate API? I'd like to avoid re-implementing all the delicate details of how Java identifiers (including getters and setters) are mapped to SQL identifiers in the absence of explicit qualification.

9

This is a very good question, so I decided to dedicate an article to answer it in more detail.

The org.hibernate.boot.Metadata is what we are interested in since it contains the PersistentClass entity bindings.

First, you need to create an Integrator which will give you access to Metadata:

public class MetadataExtractorIntegrator 
    implements org.hibernate.integrator.spi.Integrator {

    public static final MetadataExtractorIntegrator INSTANCE = 
        new MetadataExtractorIntegrator();

    private Database database;

    private Metadata metadata;

    public Database getDatabase() {
        return database;
    }

    public Metadata getMetadata() {
        return metadata;
    }

    @Override
    public void integrate(
            Metadata metadata,
            SessionFactoryImplementor sessionFactory,
            SessionFactoryServiceRegistry serviceRegistry) {

        this.database = metadata.getDatabase();
        this.metadata = metadata;

    }

    @Override
    public void disintegrate(
        SessionFactoryImplementor sessionFactory,
        SessionFactoryServiceRegistry serviceRegistry) {

    }
}

If you use JPA, you can register it as follows:

Map<String, Object> configuration = new HashMap<>();

Integrator integrator = integrator();
if (integrator != null) {
    configuration.put("hibernate.integrator_provider", 
        (IntegratorProvider) () -> Collections.singletonList(
            MetadataExtractorIntegrator.INSTANCE
        )
    );
}

EntityManagerFactory entityManagerFactory = new EntityManagerFactoryBuilderImpl(
    new PersistenceUnitInfoDescriptor(persistenceUnitInfo), 
    configuration
)
.build();

Now, when running the following test case:

Metadata metadata = MetadataExtractorIntegrator.INSTANCE.getMetadata();

for ( PersistentClass persistentClass : metadata.getEntityBindings()) {

    Table table = persistentClass.getTable();

    LOGGER.info( "Entity: {} is mapped to table: {}",
                 persistentClass.getClassName(),
                 table.getName()
    );

    for(Iterator propertyIterator = persistentClass.getPropertyIterator(); 
            propertyIterator.hasNext(); ) {
        Property property = (Property) propertyIterator.next();

        for(Iterator columnIterator = property.getColumnIterator(); 
                columnIterator.hasNext(); ) {
            Column column = (Column) columnIterator.next();

            LOGGER.info( "Property: {} is mapped on table column: {} of type: {}",
                         property.getName(),
                         column.getName(),
                         column.getSqlType()
            );
        }
    }
}

Against on the following entities:

enter image description here

We get the following output:

Entity: com.vladmihalcea.book.hpjp.util.providers.entity.BlogEntityProvider$Tag is mapped to table: tag
Property: name is mapped on table column: name of type: varchar(255)
Property: version is mapped on table column: version of type: integer

Entity: com.vladmihalcea.book.hpjp.util.providers.entity.BlogEntityProvider$PostComment is mapped to table: post_comment
Property: post is mapped on table column: post_id of type: bigint
Property: review is mapped on table column: review of type: varchar(255)
Property: version is mapped on table column: version of type: integer

Entity: com.vladmihalcea.book.hpjp.util.providers.entity.BlogEntityProvider$Post is mapped to table: post
Property: title is mapped on table column: title of type: varchar(255)
Property: version is mapped on table column: version of type: integer

Entity: com.vladmihalcea.book.hpjp.util.providers.entity.BlogEntityProvider$PostDetails is mapped to table: post_details
Property: createdBy is mapped on table column: created_by of type: varchar(255)
Property: createdOn is mapped on table column: created_on of type: datetime(6)
Property: version is mapped on table column: version of type: integer

Cool, right?

You can check out this example on GitHub as well.

  • Hey, this it not working properly in Hibernate 5.4 with postgresql. The types are returned as null unless you have hibernate.hbm2ddl.auto=create set in the properties. We're looking to use validate, however with this we cannot access the property types. Do you know if this is intended behavior, and if there is a workaround? – d_scalzi Jun 12 at 15:43
  • 1
    The hbm2ddl setting should not influence the Metadata binding. Sounds like a bug to me. You need to replicate it and open a Hibernate Jira issue if that's the case. – Vlad Mihalcea Jun 12 at 15:49

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