Background

  • Spring 3.x, JPA 2.0, Hibernate 4.x, Postgresql 9.x.
  • Working on a Hibernate mapped class with an enum property that I want to map to a Postgresql enum.

Problem

Querying with a where clause on the enum column throws an exception.

org.hibernate.exception.SQLGrammarException: could not extract ResultSet
... 
Caused by: org.postgresql.util.PSQLException: ERROR: operator does not exist: movedirection = bytea
  Hint: No operator matches the given name and argument type(s). You might need to add explicit type casts.

Code (heavily simplified)

SQL:

create type movedirection as enum (
    'FORWARD', 'LEFT'
);

CREATE TABLE move
(
    id serial NOT NULL PRIMARY KEY,
    directiontomove movedirection NOT NULL
);

Hibernate mapped class:

@Entity
@Table(name = "move")
public class Move {

    public enum Direction {
        FORWARD, LEFT;
    }

    @Id
    @Column(name = "id")
    @GeneratedValue(generator = "sequenceGenerator", strategy=GenerationType.SEQUENCE)
    @SequenceGenerator(name = "sequenceGenerator", sequenceName = "move_id_seq")
    private long id;

    @Column(name = "directiontomove", nullable = false)
    @Enumerated(EnumType.STRING)
    private Direction directionToMove;
    ...
    // getters and setters
}

Java that calls the query:

public List<Move> getMoves(Direction directionToMove) {
    return (List<Direction>) sessionFactory.getCurrentSession()
            .getNamedQuery("getAllMoves")
            .setParameter("directionToMove", directionToMove)
            .list();
}

Hibernate xml query:

<query name="getAllMoves">
    <![CDATA[
        select move from Move move
        where directiontomove = :directionToMove
    ]]>
</query>

Troubleshooting

  • Querying by id instead of the enum works as expected.
  • Java without database interaction works fine:

    public List<Move> getMoves(Direction directionToMove) {
        List<Move> moves = new ArrayList<>();
        Move move1 = new Move();
        move1.setDirection(directionToMove);
        moves.add(move1);
        return moves;
    }
    
  • createQuery instead of having the query in XML, similar to the findByRating example in Apache's JPA and Enums via @Enumerated documentation gave the same exception.
  • Querying in psql with select * from move where direction = 'LEFT'; works as expected.
  • Hardcoding where direction = 'FORWARD' in the query in the XML works.
  • .setParameter("direction", direction.name()) does not, same with .setString() and .setText(), exception changes to:

    Caused by: org.postgresql.util.PSQLException: ERROR: operator does not exist: movedirection = character varying
    

Attempts at resolution

  • Custom UserType as suggested by this accepted answer https://stackoverflow.com/a/1594020/1090474 along with:

    @Column(name = "direction", nullable = false)
    @Enumerated(EnumType.STRING) // tried with and without this line
    @Type(type = "full.path.to.HibernateMoveDirectionUserType")
    private Direction directionToMove;
    
  • Mapping with Hibernate's EnumType as suggested by a higher rated but not accepted answer https://stackoverflow.com/a/1604286/1090474 from the same question as above, along with:

    @Type(type = "org.hibernate.type.EnumType",
        parameters = {
                @Parameter(name  = "enumClass", value = "full.path.to.Move$Direction"),
                @Parameter(name = "type", value = "12"),
                @Parameter(name = "useNamed", value = "true")
        })
    

    With and without the two second parameters, after seeing https://stackoverflow.com/a/13241410/1090474

  • Tried annotating the getter and setter like in this answer https://stackoverflow.com/a/20252215/1090474.
  • Haven't tried EnumType.ORDINAL because I want to stick with EnumType.STRING, which is less brittle and more flexible.

Other notes

A JPA 2.1 Type Converter shouldn't be necessary, but isn't an option regardless, since I'm on JPA 2.0 for now.

  • 4
    This is a very well written question. I wish more questions would clearly state the problem, show relevant code, and show attempts at resolution. Well done. – Todd Jan 6 '15 at 17:40
  • As of 14 Feb 2017, @cslotty's link is dead. – bretmattingly Feb 14 '17 at 18:07

You don't have to create all the following Hibernate Types manually. You can simply get them via Maven Central using the following dependency:

<dependency>
    <groupId>com.vladmihalcea</groupId>
    <artifactId>hibernate-types-52</artifactId>
    <version>${hibernate-types.version}</version>
</dependency>

For more info, check out the hibernate-types open-source project.

As I explained in this article, if you easily map Java Enum to a PostgreSQL Enum column type using the following custom Type:

public class PostgreSQLEnumType extends org.hibernate.type.EnumType {

    public void nullSafeSet(
            PreparedStatement st, 
            Object value, 
            int index, 
            SharedSessionContractImplementor session) 
        throws HibernateException, SQLException {
        if(value == null) {
            st.setNull( index, Types.OTHER );
        }
        else {
            st.setObject( 
                index, 
                value.toString(), 
                Types.OTHER 
            );
        }
    }
}

To use it, you need to annotate the field with the Hibernate @Type annotation as illustrated in the following example:

@Entity(name = "Post")
@Table(name = "post")
@TypeDef(
    name = "pgsql_enum",
    typeClass = PostgreSQLEnumType.class
)
public static class Post {

    @Id
    private Long id;

    private String title;

    @Enumerated(EnumType.STRING)
    @Column(columnDefinition = "post_status_info")
    @Type( type = "pgsql_enum" )
    private PostStatus status;

    //Getters and setters omitted for brevity
}

This mapping assumes you have the post_status_info enum type in PostgreSQL:

CREATE TYPE post_status_info AS ENUM (
    'PENDING', 
    'APPROVED', 
    'SPAM'
)

That's it, it works like a charm. Here's a test on GitHub that proves it.

  • 1
    As you've said, works like a charm! Should have more upvotes. – leventunver Apr 1 at 16:28
  • That's the spirit! – Vlad Mihalcea Apr 1 at 16:30
  • Fantastic, should be accepted as best answer, works great! Upvoted – Kevin Orriss Aug 15 at 22:19
up vote 8 down vote accepted

HQL

Aliasing correctly and using the qualified property name was the first part of the solution.

<query name="getAllMoves">
    <![CDATA[
        from Move as move
        where move.directionToMove = :direction
    ]]>
</query>

Hibernate mapping

@Enumerated(EnumType.STRING) still didn't work, so a custom UserType was necessary. The key was to correctly override nullSafeSet like in this answer https://stackoverflow.com/a/7614642/1090474 and similar implementations from the web.

@Override
public void nullSafeSet(PreparedStatement st, Object value, int index, SessionImplementor session) throws HibernateException, SQLException {
    if (value == null) {
        st.setNull(index, Types.VARCHAR);
    }
    else {
        st.setObject(index, ((Enum) value).name(), Types.OTHER);
    }
}

Detour

implements ParameterizedType wasn't cooperating:

org.hibernate.MappingException: type is not parameterized: full.path.to.PGEnumUserType

so I wasn't able to annotate the enum property like this:

@Type(type = "full.path.to.PGEnumUserType",
        parameters = {
                @Parameter(name = "enumClass", value = "full.path.to.Move$Direction")
        }
)

Instead, I declared the class like so:

public class PGEnumUserType<E extends Enum<E>> implements UserType

with a constructor:

public PGEnumUserType(Class<E> enumClass) {
    this.enumClass = enumClass;
}

which, unfortunately, means any other enum property similarly mapped will need a class like this:

public class HibernateDirectionUserType extends PGEnumUserType<Direction> {
    public HibernateDirectionUserType() {
        super(Direction.class);
    }
}

Annotation

Annotate the property and you're done.

@Column(name = "directiontomove", nullable = false)
@Type(type = "full.path.to.HibernateDirectionUserType")
private Direction directionToMove;

Other notes

  • EnhancedUserType and the three methods it wants implemented

    public String objectToSQLString(Object value)
    public String toXMLString(Object value)
    public String objectToSQLString(Object value)
    

    didn't make any difference I could see, so I stuck with implements UserType.

  • Depending on how you're using the class, it might not be strictly necessary to make it postgres-specific by overriding nullSafeGet in the way the two linked solutions did.
  • If you're willing to give up the postgres enum, you can make the column text and the original code will work without extra work.

As said in 8.7.3. Type Safety of Postgres Docs:

If you really need to do something like that, you can either write a custom operator or add explicit casts to your query:

so if you want a quick and simple workaround, do like this:

<query name="getAllMoves">
<![CDATA[
    select move from Move move
    where cast(directiontomove as text) = cast(:directionToMove as text)
]]>
</query>

Unfortunately, you can't do it simply with two colons:

Let me start off saying I was able to do this using Hibernate 4.3.x and Postgres 9.x.

I based my solution off something similar to what you did. I believe if you combine

@Type(type = "org.hibernate.type.EnumType",
parameters = {
        @Parameter(name  = "enumClass", value = "full.path.to.Move$Direction"),
        @Parameter(name = "type", value = "12"),
        @Parameter(name = "useNamed", value = "true")
})

and this

@Override
public void nullSafeSet(PreparedStatement st, Object value, int index, SessionImplementor session) throws HibernateException, SQLException {
  if (value == null) {
    st.setNull(index, Types.VARCHAR);
  }
  else {
    st.setObject(index, ((Enum) value).name(), Types.OTHER);
  }
}

You should be able to get something along the lines of this, without having to make either above change.

@Type(type = "org.hibernate.type.EnumType",
parameters = {
        @Parameter(name  = "enumClass", value = "full.path.to.Move$Direction"),
        @Parameter(name = "type", value = "1111"),
        @Parameter(name = "useNamed", value = "true")
})

I believe that this works since you're essentially telling Hibernate to map the enum to a type of other (Types.OTHER == 1111). It may be a slightly brittle solution since the value of Types.OTHER could change. However, this would provide significantly less code overall.

I have another approach with a persistence converter:

import javax.persistence.Convert;

@Column(name = "direction", nullable = false)
@Converter(converter = DirectionConverter.class)
private Direction directionToMove;

This is a converter definition:

import javax.persistence.Converter;

@Converter
public class DirectionConverter implements AttributeConverter<Direction, String> {
    @Override
    public String convertToDatabaseColumn(Direction direction) {
        return direction.name();
    }

    @Override
    public Direction convertToEntityAttribute(String string) {
        return Diretion.valueOf(string);
    }
}

It does not resolve mapping to psql enum type, but it can simulate @Enumerated(EnumType.STRING) or @Enumerated(EnumType.ORDINAL) in a good way.

For ordinal use direction.ordinal() and Direction.values()[number].

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