0

I'm using spring-data-jpa, and I'm trying to apply spring cache abstraction.
findByEmail() method caches well, however, user variable on retrieve() method at controller which spring-data-jpa provide DomainClassConverter always looks up DB.

In documentation, it calles findOne() to look up the resource, but the @Cacheable trigger won't work.
It seems like implementation class as SimpleJpaRepository just invoke CrudRepository instead of UserRepository which I created and put @Cacheable annotation.

Is there any way to apply @Cacheable to findOne() except for custom DomainClassConverter class ?

UserController.class

@RequestMapping(method = RequestMethod.GET, value = "/users/{user}")
    public ResponseEntity retrieve(@PathVariable User user) {
        logger.info("Retrieve: " + user);

        return new ResponseEntity(user.toUserResponse(), HttpStatus.OK);
    }

UserService.class

public interface UserRepository extends JpaRepository<User, Long>, JpaSpecificationExecutor<User> {
    @Cacheable("Users")
    User findOne(Long id);

    @Cacheable("Users")
    User findByEmail(String email);

    User findByEmailAndPassword(String email, String password);

    Long countByEmail(String email);
}
2

I've filed and fixed DATACMNS-620 for you.

This issue shouldn't actually occur with Spring Data Commons 1.10.0 M1 (Fowler) as we moved to the Spring Data REST RepositoryInvokerAPI which explicitly checked for custom overrides. I created a fix for the 1.9.x bugfix branch so that we fix this for users of the current release train Evans.

If you want to check this upgrade to Spring Data Commons 1.9.0.BUILD-SNAPSHOT or 1.10.0.BUILD-SNAPSHOT. If you're using Boot, you can simply set a property spring-data-releasetrain.version and set it to either Evans-BUILD-SNAPSHOT or Fowler-BUILD-SNAPSHOT.

| improve this answer | |
  • 1
    I really appreciate it @Oliver Gierke, I was gonna disable DomainClassConverter and make a custom annotation that gets object from db using overridden findOne() to make sure using cache. Thanks for your time to create an issue for me and I will look forward the next version. – Jun Dec 19 '14 at 3:55

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.