Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Do you know if it is possible to setup mongodb instance in spring like any other db via datasource from jndi?

Thx

share|improve this question

5 Answers 5

up vote 0 down vote accepted

If you mean like regular RDBMS with JDBC access, then the answer is no.

share|improve this answer

Yes it is possible, why relying in someone elses code when you can create your own JNDI factory? just create a class that implements javax.naming.spi.ObjectFactory and a bean that pulls mongo from the JNDI context, I configured this for spring data-mongo MongoTemplate object.

public class CustomMongoJNDIFactory implements ObjectFactory {

public Object getObjectInstance(Object obj, Name name, Context nameCtx,
        Hashtable<?, ?> environment) throws Exception {

    validateProperty(obj, "Invalid JNDI object reference");

    MongoTemplate mongoTemplate = null;
    String db = null;
    String host = null;
    String username = null;
    String password = null;
    int port = 27017;

    Reference ref = (Reference) obj;
    Enumeration<RefAddr> props = ref.getAll();
    while (props.hasMoreElements()) {
        RefAddr addr = (RefAddr) props.nextElement();
        String propName = addr.getType();
        String propValue = (String) addr.getContent();
        if (propName.equals("db")) {
            db = propValue;
        } else if (propName.equals("host")) {
            host = propValue;
        } else if (propName.equals("username")) {
            username = propValue;
        } else if (propName.equals("password")) {
            password = propValue;
        } else if (name.equals("port")) {
            try {
                port = Integer.parseInt(propValue);
            } catch (NumberFormatException e) {
                throw new NamingException("Invalid port value " + propValue);
            }
        }

    }

    // validate properties
    validateProperty(db, "Invalid or empty mongo database name");
    validateProperty(host, "Invalid or empty mongo host");
    validateProperty(username, "Invalid or empty mongo username");
    validateProperty(password, "Invalid or empty mongo password");

    //create mongo template
    mongoTemplate = new MongoTemplate(new Mongo(host, port), db,
            new UserCredentials(username, password));

    return mongoTemplate;
}


/**
 * Validate internal String properties
 * 
 * @param property
 * @param errorMessage
 * @throws NamingException
 */
private void validateProperty(String property, String errorMessage)
        throws NamingException {
    if (property == null || property.trim().equals("")) {
        throw new NamingException(errorMessage);
    }
}

/**
 * Validate internal Object properties
 * 
 * @param property
 * @param errorMessage
 * @throws NamingException
 */
private void validateProperty(Object property, String errorMessage)
        throws NamingException {
    if (property == null) {
        throw new NamingException(errorMessage);
    }
}

}

Spring bean:

@Configuration
@Qualifier("mongoTemplate")
public class CustomMongoTemplate  {


 public @Bean MongoTemplate mongoTemplate() throws Exception {
     Context initCtx = new InitialContext();
     Context envCtx = (Context) initCtx.lookup("java:comp/env");
     return (MongoTemplate) envCtx.lookup("bean/MyMongoBean");
    }
}

Context.xml:

<Resource name="bean/MyMongoBean" auth="Container"
        type="org.springframework.data.mongodb.core.MongoTemplate"
        factory="com.package.CustomMongoJNDIFactory"
        host="" db="" username="" password=""/>

Web.xml

    <resource-env-ref>
    <description>Mongo JNDI configuration</description>
    <resource-env-ref-name>comp/env/bean/MyMongoBean</resource-env-ref-name>
    <resource-env-ref-type>org.springframework.data.mongodb.core.MongoTemplate</resource-env-ref-type>
</resource-env-ref>
share|improve this answer

To do this, you'll need a JDBC driver impl for MongoDB. I have only found one, and it's referred as "experimental" from the MongoDB page: GitHub JDBC Driver for MongoDB .

to workaroud this limitation, you could setup some Spring beans and create a MongoDB implementation for your application DAO (this way, you won't need to change the DAO interface and it's client components).

This articles may help:

share|improve this answer

Reusing Juan Melo's custom implementation of ObjectFactory interface (CustomMongoJNDIFactory), it can be also configured using jndi-lookup tag of Spring's jee namespace and corresponding Tomcat config in context.xml file, like this:

spring-mongodb-persistence-context.xml:

<beans xmlns="http://www.springframework.org/schema/beans"
       xmlns:xsi="http://www.w3.org/2001/XMLSchema-instance"
       xmlns:mongo="http://www.springframework.org/schema/data/mongo"
       xmlns:jee="http://www.springframework.org/schema/jee"
        xsi:schemaLocation="http://www.springframework.org/schema/beans http://www.springframework.org/schema/beans/spring-beans-3.2.xsd
        http://www.springframework.org/schema/data/mongo http://www.springframework.org/schema/data/mongo/spring-mongo-1.2.xsd
        http://www.springframework.org/schema/jee http://www.springframework.org/schema/jee/spring-jee-3.1.xsd">

    <jee:jndi-lookup id="mongoTemplate" jndi-name="java:/comp/env/jndi/MongoDB" expected-type="org.springframework.data.mongodb.core.MongoTemplate" />

    <mongo:repositories base-package="com.package.repository.mongodb" />

</beans>

context.xml:

<Resource name="jndi/MongoDB"
    auth="Container"
    type="org.springframework.data.mongodb.core.MongoTemplate"
    factory="com.package.mongo.CustomMongoJNDIFactory"
    username="test"
    password="test"
    host="localhost"
    port="27017"
    db="test" />
share|improve this answer

There is another effort to provide a JDBC driver impl for MongoDB. Here:

https://sourceforge.net/projects/mongojdbcdriver

Not complete by any measure, but will hopefully provide a JDBC implementation that is familiar to Java developers soon.

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.