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I need help, I am getting the aforementioned exception. Where am I going wrong? In the mapping from class to table, I have used the following:

private String userId;
private String password;

Below is the class where I write my query.

public class LoginManager extends HibernateUtil {
    private String loginId;

    public String checkCredentials(String userId, String password) {

        Session session = HibernateUtil.getSessionFactory().getCurrentSession();
        session.beginTransaction();

        try {
          loginId = (String) session.createQuery("select user_id from com.project.model.Login where user_id=:userId and password=:password") 
                                   .setParameter("userId",userId)
                                   .setParameter("password", password)
                                   .list().toString();
        } catch (HibernateException e) {
            e.printStackTrace();
            session.getTransaction().rollback();
        }
        session.getTransaction().commit();
        return loginId;
    }
}
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2 Answers 2

Namita

The problem is that Hibernate cannot find your setter for the field userId. You have defined it like this:

public void setUser_id(String userId) { 
    this.userId = userId;
} 

It should be:

public void setUserId(String userId) { 
    this.userId = userId;
} 
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I fixed that earlier. Thanks a lot anyway! –  namita Jul 21 at 9:35
    
@namita It may be worth posting the fix which solved your problem so others can find it. –  JamesB Jul 21 at 9:44

Check if it is typo error

loginId = (String) session.createQuery("select user_id from com.project.model.Login where user_id=:userId and password=:password") .setParameter("userId",userId).setParameter("password", password).list().toString();

loginId = (String) session.createQuery("select user_id from com.project.model.Login where user_id=:userId and password=:password") .setParameter("user_id",userId).setParameter("password", password).list().toString();

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Nope, that's not it. I tried it, gives a similar excpetion. "org.hibernate.QueryParameterException: could not locate named parameter [user_id]" –  namita Sep 8 '13 at 8:19
    
can you send me the com.project.model.Login file with mappings. –  Ankit Sep 8 '13 at 9:39
    
This is it.@Entity @Table(name = "Login") public class Login implements Serializable { private static final long serialVersionUID = 2L; private String userId; private String password; @Id @Column(name="user_id") public String getUserId() { return userId; } public void setUser_id(String userId) { this.userId = userId; } @Column(name="password") public String getPassword() { return password; } public void setPassword(String password) { this.password = password; }} –  namita Sep 8 '13 at 15:33

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