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I'm running into trouble with hibernate. I recently set my hbm2ddl to validate, and it has been complaining a lot about wrong datatypes. I have fixed every problem except for booleans.

I have a field opener in my class, which is mapped as:

<property column="opener" name="opener" type="boolean"/>

The column opener is a tinyint (4) and has a value of 1 or 0. So far I've tried changing the types, but to no avail. I have also tried using the following setting in my hibernate.cfg:

<property name="hibernate.query.substitutions">true 1, false 0</property>

But I am still getting the same error. What am I doing wrong?

org.hibernate.HibernateException: Wrong column type: opener, expected: bit
    at org.hibernate.mapping.Table.validateColumns(Table.java:261)
    at org.hibernate.cfg.Configuration.validateSchema(Configuration.java:1083)
    at org.hibernate.tool.hbm2ddl.SchemaValidator.validate(SchemaValidator.java:116)
    at org.hibernate.impl.SessionFactoryImpl.<init>(SessionFactoryImpl.java:317)
    at org.hibernate.cfg.Configuration.buildSessionFactory(Configuration.java:1294)
    at org.hibernate.cfg.AnnotationConfiguration.buildSessionFactory(AnnotationConfiguration.java:859)

note: I have no access to the database.

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6 Answers 6

up vote 4 down vote accepted

If you can't change your SQL type in your table, i recommend you to do this :

<property name="opener" column="opener" type="path.to.your.package.YourClassUserType"/>

and create your class :

import org.hibernate.usertype.UserType;

public class YourClassUserType implements UserType{
 ...
}

you have to implement methods from the interface UserType. The implementation will transform byte to boolean (because a TINYINT is mapped in byte in Java)

see examples here

good luck :)

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For anyone who ran into the same trouble as me, I used a combination of two answers posted here.

I implemented a custom usertype to handle my tinyint field:

public class TinyIntegerToBoolean implements UserType {

    public int[] sqlTypes() {
        return new int[]{Types.TINYINT};
    }

    public Class returnedClass() {
        return Boolean.class;
    }

    public Object nullSafeGet(ResultSet rs, String[] names, SessionImplementor si, Object owner) throws HibernateException, SQLException {
        return (rs.getByte(names[0]) != 0);
    }

    public void nullSafeSet(PreparedStatement st, Object value, int index, SessionImplementor si) throws HibernateException, SQLException {
        st.setByte(index, Boolean.TRUE.equals(value) ? (byte) 1 : (byte) 0);
    }

    /* boilerplate... */
    public boolean isMutable() {
        return false;
    }

    public boolean equals(Object x, Object y) throws HibernateException {
        if (x == null || y == null) {
            return false;
        } else {
            return x.equals(y);
        }
    }

    public int hashCode(Object x) throws HibernateException {
        assert (x != null);
        return x.hashCode();
    }

    public Object deepCopy(Object value) throws HibernateException {
        return value;
    }

    public Object replace(Object original, Object target, Object owner)
            throws HibernateException {
        return original;
    }

    public Serializable disassemble(Object value) throws HibernateException {
        return (Serializable) value;
    }

    public Object assemble(Serializable cached, Object owner)
            throws HibernateException {
        return cached;
    }
}

Then I added the following to my mappings:

<?xml version="1.0" encoding="UTF-8"?>
<!DOCTYPE hibernate-mapping PUBLIC "-//Hibernate/Hibernate Mapping DTD 3.0//EN" "http://www.hibernate.org/dtd/hibernate-mapping-3.0.dtd">
<hibernate-mapping>
    <typedef class="com.test.model.TinyIntegerToBoolean" name="tinyint_boolean"/>
</hibernate-mapping>

Then in my opener field I use type=tinyint_boolean and it works like a charm :)

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2  
If this is the default way you want to map booleans in your app and if you happen to be running Hibernate 4 a nicer alternative IMHO is to implement org.hibernate.type.BasicType instead of UserType and regsiter this implementation with the org.hibernate.type.BasicTypeRegistry. Specifically note the BasicType#getRegistrationKeys. Your type would become the default type mapping for Whatever keys you register your type under. Here you would register it under ["boolean", "java.lang.Boolean"]. See docs.jboss.org/hibernate/orm/4.1/manual/en-US/html_single/… –  Steve Ebersole May 31 '12 at 4:34
    
I am running hibernate 4.1, it's not the default way to map a boolean, but its used quite a lot. The solution above is really ugly imho, so il look into this as soon as i can, thanks! –  Terraego May 31 '12 at 8:47
    
So using BasicType with getRegistrationKeys == ["tinyint_boolean"] would be equivalent to the typedef mapping. –  Steve Ebersole May 31 '12 at 11:25
    
so that would save me some boilerplate code and an xml file :)! thanks for mentioning this! –  Terraego May 31 '12 at 13:11
    
We've been using Jadira Usertype to map Jodatime DateTime fields to hibernate. That Jadira Usertype framework also has an AbstractUserType which takes care of all your boilerplate code. –  drvdijk May 13 '14 at 19:45

You can define your DB column as a char(1) and in your Hibernate mapping file define the property as type="yes_no", which is a Java Boolean type. These will appear as Y and N values in the DB.

If you want to use tiny_int then the size will have to be 1, but I'm not 100% sure how this is mapped in the HBM file.

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sorry, i must have staten this a bit more clear, but i have no controll over the database, its in the OP. –  Terraego May 31 '11 at 18:06

try this :

<property column="opener" name="opener" access="field" />

assuming that you got a getter

 boolean isOpener() ;

and a setter

void setOpener(boolean b);
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I get the same error, thanks for helping though –  Terraego Jun 1 '11 at 7:50
    
if it doesn't work, you have to change your TINYINT(4) for TINYINT(1). –  EricParis16 Jun 1 '11 at 15:41

You can try to use numeric_boolean as a type:

<property column="opener" name="opener" type="numeric_boolean"/>
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1  
i think i've seen a jpa annonation somewhere that did something like this. This does not help me thoug, when i map opener type as a numeric_boolean i get: org.hibernate.MappingException: Could not determine type for: numeric_boolean, for columns: [org.hibernate.mapping.Column(opener)] –  Terraego Jun 1 '11 at 7:48

This is a tricky one because you have no access to the database. But it can be done with a bit of work

What you will need to do is create a custom type class. This class will basically retrieve the value from the database (1 or 0) and it will contain logic that returns either a true or false Boolean object.

Here is an example:

http://alenovarini.wikidot.com/mapping-a-custom-type-in-hibernate

your mapping for your new type will look like:

    <typedef class="com.path.to.my.package.CustomBooleanType" name="myBoolType" />

That classes nullSafeGet method will return your Boolean object that will contain true or false.

so your new mapping will contain:

<property column="opener" name="opener" type="myBoolType"/>
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