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I am using Spring framework and Spring Data JPA to develop an application. Below are one of the repository interface and service class.

public interface UserRepository extends JpaRepository<User, Long>
    User findByName(String name);
    User findByEmail(String email);
}

public class DefaultUserService implements UserService {
    @Inject protected UserRepository userRepo;

    @Override
    public User getUserById(Long id) {
        return userRepo.findOne(id);
    }

    @Override
    public User getUserByName(String name) {
        return userRepo.findByName(name);
    }

    @Override
    public User getUserByEmail(String email) {
        return userRepo.findByEmail(email);
    }
}

As stated by many experts, service layer design should be coarse grained and focused on application operations. Looking at the service class above, I believe that is not a good design as it directly expose all finder methods from the repository. Since all 3 service methods above are returning the same object type (User), I would want to expose only one finder method instead of three that able to encapsulate all finder logic.

public class DefaultUserService implements UserService {
    @Inject protected UserRepository userRepo;

    // what would be the arguments and logic for this method.
    @Override
    public User getUser() {
    }
}

I appreciate if anyone can point me the solution on how to solve this design issue?

share|improve this question
    
you may check out DetachedCriteria in Hibernate, then you can pass it to getUser(). But I think it's not as good as your original design. –  hsluo Apr 20 '14 at 9:23

1 Answer 1

I think the design is not so bad, I mean I was seeing that kind of approach several times, in fact you have several finder methods but each one use different property to obtain the User, if you want to make a service method which encapsulate the logic to retrieve the user I would suggest something like this.

public class DefaultUserService implements UserService {
    @Inject protected UserRepository userRepo;

    enum UserFindEnum{
        ID, EMAIL, NAME;
    }

    public User getUser(UserFindEnum e, Object obj){
        switch(e.ordinal()){
            case 0:
                return userRepo.findOne(obj);
            case 1:
                return userRepo.findByName(obj);
            case 2:
                return userRepo.findByEmail(obj);
            default:
              break;
        }
    }
}

I mean you need to know which property you will use to find the User so at least one parameter need to be sent to the service layer so getUser() it is not enough. Probably using some kind of logic as above you will have only one service method and needed logic within it.

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i think you need to add one more param for id, name, email.. like: public User getUser(UserFindEnum e, Object obj) –  Rembo Apr 20 '14 at 5:56
    
Yes, I forgot that XD. thanks –  Koitoer Apr 20 '14 at 6:00
    
Thanks for the replies. Based on the hints above I prefer to expose two methods which are getUser(Long id) and getUser(UserFinderCriteria finderCriteria). UserFinderCriteria contains the UserFinderEnum (BY_NAME, BY_EMAIL) and builder methods such as buildNameFinder(String name) and buildEmailFinder(String email). –  user664032 Apr 23 '14 at 6:02
    
Sure if you find my answer useful don't forget to upvote the answer =), that will help me a lot. thanks. –  Koitoer Apr 23 '14 at 6:08

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