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Hi all
I am a bit stucked constructing a dynamic query using the CriteriaBuilder of JPA 2.0. My application is Spring 3.0, Hibernate 3.6.0 + jpa 2.0 based. Actually i have two entity one is taUser and another one is Tacontact,in my taUser class has one property ,that has many to one relationship with taContact my pojo classes are (sample example)

public class TaUser implements java.io.Serializable {
    private int userId;
    private TaContact taContact;
    public int getUserId() {
        return this.userId;
    }

    public void setUserId(int userId) {
        this.userId = userId;
    }
    public TaContact getTaContact() {
        return taContact;
    }

    public void setTaContact(TaContact taContact) {
        this.taContact = taContact;
    }

    }


   public class TaContact implements java.io.Serializable {

    private int contactId;

    public int getContactId() {
        return this.contactId;
    }

    public void setContactId(int contactId) {
        this.contactId = contactId;
    }
   private int contactNumber;

    public int getContactNumber() {
        return contactNumber;
    }

    public void setContactNumber(int contactNumber) {
        this.contactNumber = contactNumber;
    }

   }

and my orm .xml

<entity class="com.common.model.TaUser" name="TaUser">
        <table name="ta_user" />
        <attributes>
            <id name="userId">
                <column name="USER_ID" />
                <generated-value strategy="AUTO" />
            </id>
            <many-to-one name="taContact"
                target-entity="TaContact">
                <join-column name="Contact_id" />
            </many-to-one>
</attributes>
</entity>

so how can i create constructing a dynamic query using criteria actually this is my jpql query i want to change it into constructing a dynamic query using criteria S

tring jpql = 
    "select * from Tauser user where user.userId = "1" and user.taContact.contactNumber="8971329902";

plz could you tel how can i check the second where condition (user.taContact.contactNumber="8971329902")

Root<T> rootEntity;
        TypedQuery<T> typedQuery = null;
        EntityManagerFactory entityManagerFactory = this.getJpaTemplate()
                .getEntityManagerFactory();
        CriteriaBuilder criteriaBuilder = entityManagerFactory
                .getCriteriaBuilder();
        CriteriaQuery<T> criteriaQuery = criteriaBuilder.createQuery(TaUser.class);
                rootEntity = criteriaQuery.from(TaUser.class);
                criteriaQuery.where(criteriaBuilder.equal(rootEntity.get("userId"),
                "1"));
        criteriaQuery.where(criteriaBuilder.equal(rootEntity.get("taContact.contactNumber"),
        "8971329902")); --- here  i m getting error 
    at 

org.hibernate.ejb.criteria.path.AbstractPathImpl.unknownAttribute(AbstractPathImpl.java:110)
    at org.hibernate.ejb.criteria.path.AbstractPathImpl.locateAttribute(AbstractPathImpl.java:218)
    at org.hibernate.ejb.criteria.path.AbstractPathImpl.get(AbstractPathImpl.java:189)
    at com.evolvus.core.common.dao.CommonDao.findByCriteria(CommonDao.java:155)

 how can i sole this please give  me any solution
share|improve this question

2 Answers 2

up vote 0 down vote accepted

There are many wey to use that Dynamic query in a JPA EntityManagerFactory.

  1. If you use JPA Entity class and Use Hibernate 3 JPA annotations then you can define the query using the @NamedQuery Annotation.

  2. You can use javax.persistence.Query to create a Dynamic query.

    Query q1=em.createQuery("SELECT TaUser AS tu WHERE tu.userId = :USERID");
    //em is entityManager object
    q1.setInteger("USERID",34);
    //here 34 is the dynamic value or if there is any relationship with
    // another entity then set the object reference of the other entity.
    q1.getResultList(); //return list of data.
    
  3. You can use the Hibernate Criteria API.

But the thing is that if u want to create criteria you need to initialize the session object. So, to get session object use your entity manager object.

share|improve this answer
2  
please: if English is not your native language, that's OK. But try not to make everything worse by writing LOL-speak like 'u' instead of 'you'. Also, try not to misspell classes, packages and technologies you refer to. Your post is difficult enough to read as it is. –  Sean Patrick Floyd Jan 28 '11 at 8:06
    
I tried to fix your post, but even so, your answer is irrelevant, as the question is about the JPA 2 Criteria API, not the Hibernate Criteria API. –  Sean Patrick Floyd Jan 28 '11 at 8:13
    
Hi Sean Patrick Floyd, your second comment is right. Than why cant you give me any suggestion ? –  maya Jan 28 '11 at 8:49
    
@Sean Patrick Floyd :In my answar i used JPA 2 Criteria API thats why am using this javax.persistence.Query not org.hibernate.Criteria,And thanks for you tips..:) –  sourav Mar 21 '11 at 7:30

I guess this is the way to do it:

public TaUser getUserByIdAndContactNumber(
    final long userId,
    final long contactNumber){

    final CriteriaBuilder cb = entityManager.getCriteriaBuilder();
    final CriteriaQuery<TaUser> query = cb.createQuery(TaUser.class);
    final Root<TaUser> root = query.from(TaUser.class);
    query
        .where(cb.and(
            cb.equal(root.get("userId"), userId),
            cb.equal(root.get("taContact").get("contactNumber"), contactNumber)
        ));
    return entityManager.createQuery(query).getSingleResult();
}

BTW, 8971329902 is way to large for an int field. Set the field type to long.

share|improve this answer
    
thanks a lot. saved my day :D –  superbly Mar 5 '12 at 14:30

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