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.

I need to persist just one object in session scope of my JSF application. Where do I define a session variable, and how do I get and set it from either a view file or backing bean?

share|improve this question

2 Answers 2

up vote 11 down vote accepted

Several ways:

  • Use ExternalContext#getSessionMap()

    ExternalContext externalContext = FacesContext.getCurrentInstance().getExternalContext();
    Map<String, Object> sessionMap = externalContext.getSessionMap();
    sessionMap.put("somekey", yourVariable);
    

    And then later:

    SomeObject yourVariable = (SomeObject) sessionMap.get("somekey");
    
  • Or, make it a property of a session scoped bean which you inject in your request scoped bean.

    sessionBean.setSomeVariable(yourVariable);
    

    And then later:

    SomeObject yourVariable = sessionBean.getSomeVariable();
    

    Injection of beans in each other can happen by faces-config.xml as described here or if you're already on JSF 2.0, by @ManagedProperty

    @ManagedBean
    @RequestScoped
    public class RequestBean {
        @ManagedProperty("#{sessionBean}")
        private SessionBean sessionBean;
        // ...
    }
    

    with

    @ManagedBean
    @SessionScoped
    public class SessionBean {
        private SomeObject someVariable;
        // ...
    }
    
share|improve this answer
    
What if externalContext is null? Does something need to be configured so the client is using a session(like telling it to store a cookie)? –  Disgruntled Java Developer Dec 21 '10 at 23:47
1  
It's never null. And no, the session is basically already backed by a cookie. In the very rare case when the client has cookies disabled (which you cannot enable from the server side on), then JSF will automatically take care about URL rewriting with jsessionid (only when you use <h:outputLink>, <h:form> and so on instead of plain HTML <a>, <form>, etc). –  BalusC Dec 21 '10 at 23:48
    
@BalusC: did you mean @ManagedProperty("sessionBean"); without the semicolon? (I am getting a Netbeans error) –  Oerd Feb 12 '13 at 14:06
    
@Oerd: Right, I also fixed the missing EL. Not sure what I smoked that day. –  BalusC Feb 12 '13 at 14:08
    
Only got it because I was lazy enough to copy/paste ;) –  Oerd Feb 12 '13 at 14:18

When you call the method FacesContext.getCurrentInstance() it will return the current thread but in case of P.S.V.M there will be no thread running in application context. So you get a NPE.

Better use something like this:

public String checker() {
    SessionFactory factory = HibernateUtil.getSessionFactory();
    Session session = factory.getCurrentSession();
    session.beginTransaction();
    Query q = session.createQuery("from UserLogin where UserId='"
            + uid.getUserId() + "'and Pswd='" + uid.getPswd()
            + "'and RoleId='" + uid.getRoleId() + "'");
    setUid((UserLogin) q.uniqueResult());

    System.out.println("upto here every thing is workind properly");

    if (uid != null) {
        FacesContext context = FacesContext.getCurrentInstance();

        HttpServletRequestrequest = (HttpServletRequest) context
                .getExternalContext().getRequest();
        HttpSession appsession = request.getSession(true);

        if (appsession.isNew() == false) {
            appsession.invalidate();
            appsession = request.getSession(true);
        }
        context.getExternalContext().getSessionMap().put("userbean", uid);
        session.close();
        return uid.getRoleId();
    } else
        return "invalid";
}

and put it into a session bean. You can use the code to validate users.

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.