Stack Overflow is a community of 4.7 million programmers, just like you, helping each other.

Join them; it only takes a minute:

Sign up
Join the Stack Overflow community to:
  1. Ask programming questions
  2. Answer and help your peers
  3. Get recognized for your expertise

hope everybody is cool.I've been trying to do something with spring-hibernate but it's still a failure.i'm very new to it.i need a little help.supposing a POJO class Users.i want to return an Users object by username.While i had no problem to return Users object by id by doing this

   return (Users) getHibernateTemplate().get(Users.class, id);

it seems to be a challenge for me getting the Users object by username. I've tried this

List<Users> users = getHibernateTemplate().find("from Users u where u.username=?",username);
return  users.get(0);

and even this

return (Users)getHibernateTemplate().find("from Users u where u.username=?",username).get(0);

how should i do it.And what is the proper way to return an array of Users objects and/or List.Thanks for reading this.

share|improve this question
up vote 1 down vote accepted

maybe you can try this?

List l =getHibernateTemplate().find("from Users u where u.username=?",new Object[]{username});
if (l.size() > 0)
 return (User)l.get(0);
else
return null;
share|improve this answer
2  
Please not the dreaded 'return null' - that's asking for a NullPointerException somewhere shortly after the method containing the above code is called. My prefered way to deal with this situation would be to throw a UserNotFoundException. – Nick Holt Jul 13 '09 at 9:32
2  
I don't think you can generalise like that without knowing the context of the operation. Returning a null may be defined by interface contract for all we know. – skaffman Jul 13 '09 at 9:48
    
i returned a new users object.thanks dudes.What about arrays of Users? supposing i want to return all the users of the name francis? – black sensei Jul 13 '09 at 9:56
1  
And how about all the users name 'james' :). Of course return the list, instead of the first item. Where is the problem? By the way, I am not in the favor of writing SQL for trivial cases while using Hibernate kind of powerful API. – Adeel Ansari Jul 13 '09 at 10:01
1  
Ah and in case no user found return an empty list :), instead of throwing exception or returning null. A nice idea indeed, depends on the interface contract though. Cheers. – Adeel Ansari Jul 13 '09 at 10:03

Try this

Query q = session.createQuery("select * from Users u where u.username=:username");
q.setString("username", username);
share|improve this answer
    
This is also my preferred way of handling this. I've found that naming my parameters makes it easier to understand what the code is doing. – Brandon Yarbrough Jul 13 '09 at 19:21

Another better way is to use Criteria. See the example below.

    DetachedCriteria deCriteria = DetachedCriteria.forClass(User.class, "u");
    Criteria criteria = deCriteria.getExecutableCriteria(session);

    criteria.add(Restrictions.eq("u.username", username));
    List<User> userList = criteria.list();
share|improve this answer
    
i'll try this but i think i'll try it with the spring function findbycriteria and see how it will go along.thanks – black sensei Jul 13 '09 at 9:58
    
You must, its not encouraged to write SQL for trivial cases while using Hibernate/Spring kind of powerful APIs. – Adeel Ansari Jul 13 '09 at 10:05

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.