27

Even I'm casting Object into int, but this exception occur...

Actually my Hibernate-JPA method was return Object then I'm converting that Object into int...

Here is my Hibernate code:

@Transactional
public Object getAttendanceList(User user){

    Query query = entityManager.createQuery("select Count(ad) from AttendanceDemo ad inner join ad.attendee at  where at.user=:user",
            Long.class);
    query.setParameter("user", user);
    return query.getSingleResult();
}

Now I'm converting this Object as int:

int k = (Integer) userService.getAttendanceList(currentUser);

I'm converting Object to Integer.

  • Looks like getAttendanceList is returning you Long. Can you post the code for the same – zerocool Jun 18 '13 at 8:29
  • Are you sure you're returning an Integer? ClassCastException says that you're not returning an Integer... – Matteo N. Jun 18 '13 at 8:31
  • Yes.. i want to store getAttendanceList() method return value into k. then only ClassCastException coming and now i'm casting to (Integer) but again that exception come.. – SWEE Jun 18 '13 at 8:34
54

Use:

((Long) userService.getAttendanceList(currentUser)).intValue();

instead.

The .intValue() method is defined in class Number, which Long extends.

| improve this answer | |
  • But IDE shows... The method intValue() is undefined for the type Object – SWEE Jun 18 '13 at 8:30
  • 3
    Why not use ((Number) userService.getAttendanceList(currentUser)).intValue(); – johnchen902 Jun 18 '13 at 8:30
  • @johnchen902 yes, that is true... But in this case I am not sure OP really wants that. Or that the db model will change from Long to some other numeric type overnight ;) – fge Jun 18 '13 at 8:33
  • oh... thankyou.. fge.. it's working... but when we write like ((Number) userService.getAttendanceList(currentUser)).intValue(); it is not working why??? – SWEE Jun 18 '13 at 8:40
  • @user2496295 uh! That should work... Or do you have another Number class which is not the JDK's? – fge Jun 18 '13 at 8:45
6

The number of results can (theoretically) be greater than the range of an integer. I would refactor the code and work with the returned long value instead.

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