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'm using Play Framework (2.2.2) in combination with Spring (using this template: https://github.com/jamesward/play-java-spring).

If I annotate the Application Controller with @Transactional it's working fine:

@org.springframework.stereotype.Controller
@Transactional
public class Application {
  // ...
}

However, if I also extend from Play's Base Controller I get the following error:

[NoSuchBeanDefinitionException: No qualifying bean of type [controllers.Application] is defined]

Code:

@org.springframework.stereotype.Controller
@Transactional
public class Application extends play.mvc.Controller{
    // ...
}

So for some reason the @TransactionalAnnotation combined with extends play.mvc.Controller leads to a NoSuchBeanDefinitionException.

Using either @Transactional OR extends play.mvc.Controller (not both combined) and Spring can instantiate the controller bean just fine.

How can I make them both work together?

This is the full stackstrace:

play.api.Application$$anon$1: Execution exception[[NoSuchBeanDefinitionException: No qualifying bean of type [controllers.Application] is defined]]
        at play.api.Application$class.handleError(Application.scala:293) ~[play_2.10.jar:2.2.2]
        at play.api.DefaultApplication.handleError(Application.scala:399) [play_2.10.jar:2.2.2]
        at play.core.server.netty.PlayDefaultUpstreamHandler$$anonfun$2$$anonfun$applyOrElse$3.apply(PlayDefaultUpstreamHandler.scala:261) [play_2.10.jar:2.2.2]
        at play.core.server.netty.PlayDefaultUpstreamHandler$$anonfun$2$$anonfun$applyOrElse$3.apply(PlayDefaultUpstreamHandler.scala:261) [play_2.10.jar:2.2.2]
        at scala.Option.map(Option.scala:145) [scala-library.jar:na]
        at play.core.server.netty.PlayDefaultUpstreamHandler$$anonfun$2.applyOrElse(PlayDefaultUpstreamHandler.scala:261) [play_2.10.jar:2.2.2]
Caused by: org.springframework.beans.factory.NoSuchBeanDefinitionException: No qualifying bean of type [controllers.Application] is defined
        at org.springframework.beans.factory.support.DefaultListableBeanFactory.getBean(DefaultListableBeanFactory.java:296) ~[spring-beans.jar:3.2.3.RELEASE]
        at org.springframework.context.support.AbstractApplicationContext.getBean(AbstractApplicationContext.java:1125) ~[spring-context.jar:3.2.3.RELEASE]
        at Global.getControllerInstance(Global.java:21) ~[na:na]
        at play.core.j.JavaGlobalSettingsAdapter.getControllerInstance(JavaGlobalSettingsAdapter.scala:46) ~[play_2.10.jar:2.2.2]
        at Routes$$anonfun$routes$1$$anonfun$applyOrElse$1$$anonfun$apply$1.apply(routes_routing.scala:57) ~[na:na]
        at Routes$$anonfun$routes$1$$anonfun$applyOrElse$1$$anonfun$apply$1.apply(routes_routing.scala:57) ~[na:na]
share|improve this question
    
I posted a possible direction bellow, if not could you post the full stacktrace with all the caused by clauses? If it's too big can you post a link to pastebin.com. But the recommended best practive is to put @Transactional in the service layer and not the persistence or controller layer –  jhadesdev Apr 5 at 19:04

1 Answer 1

Actually the controller itself should not be transactional, as transactionality is a concern of the service layer and not the presentation/web layer or the repository layer.

There are several reasons for this, for example the controller layer might trigger several business transactions. It's possible to make a controller transactional but it's not recommended practice, if you move the @Transactional annotation from the controller to the @Service layer, it will surely work.

share|improve this answer
    
Yes this would be possible. However, if I for example have an entity with a (lazily loaded) OneToMany relation to another entity and in my controller I want to access this related entity I get an error "No Session" or similar if I do not use Transactional. Therefore I want to use Transactional inside the controller. –  marius2k12 Apr 5 at 19:10

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.