16

At https://github.com/spring-projects/spring-framework/blob/master/spring-context/src/main/kotlin/org/springframework/context/support/BeanDefinitionDsl.kt the comment shows how to define Spring Beans via the new "Functional bean definition Kotlin DSL". I also found https://github.com/sdeleuze/spring-kotlin-functional. However, this example uses just plain Spring and not Spring Boot. Any hint how to use the DSL together with Spring Boot is appreciated.

2
  • Have you just tried it out, e.g. by putting this bean definition into a controller (which is discovered by spring boot)?
    – guenhter
    Aug 30, 2017 at 5:52
  • 1
    Yes, I tried a @Configuration class with an @Bean method returning the result of beans {...}. Then I got the exception "... No qualifying bean of type '...' available ..." when I remove @Service and declare the service class inside the beans {...} lambda above. Aug 30, 2017 at 9:11

3 Answers 3

27

Spring Boot is based on Java Config, but should allow experimental support of user-defined functional bean declaration DSL via ApplicationContextInitializer support as described here.

In practice, you should be able to declare your beans for example in a Beans.kt file containing a beans() function.

fun beans() = beans {
    // Define your bean with Kotlin DSL here
}

Then in order to make it taken in account by Boot when running main() and tests, create an ApplicationContextInitializer class as following:

class BeansInitializer : ApplicationContextInitializer<GenericApplicationContext> {

    override fun initialize(context: GenericApplicationContext) =
        beans().initialize(context)

}

And ultimately, declare this initializer in your application.properties file:

context.initializer.classes=com.example.BeansInitializer  

You will find a full example here and can also follow this issue about dedicated Spring Boot support for functional bean registration.

6
  • Two questions regarding your answer: * This initialisation will be picked up by the test setup with using a SpringRunner with JUnit, right? * Is there any other way of having this behaviour without having to create properties files, including this initialisation being picked up on tests? Thanks! Mar 3, 2018 at 20:22
  • Yes and not yet. Mar 12, 2018 at 8:11
  • 1
    Side note: we are currently exploring full functional bean definition for Boot with Java or Kotlin DSL in github.com/spring-projects/spring-fu incubator project. Feb 7, 2019 at 9:21
  • What if I want to override a bean? I added allow-bean-definition-overriding: true and am trying to declare a test bean via @Bean but it seems to be ignored. I have tried an exact same setup(basically, just copy pasted) on a project withotu bean DSL and it worked.
    – yuranos
    Apr 1, 2019 at 12:58
  • Declaring the initializer like that will disable all other ones provided by spring boot, won't it? Apr 12, 2020 at 18:25
5

Another way to do it in Spring Boot would be :

fun main(args: Array<String>) {
    runApplication<DemoApplication>(*args) {
        addInitializers(
                beans {
                    // Define your bean with Kotlin DSL here
                }
        )
    }
}
1
  • 3
    The drawback of that approach is that the initializer won't be taken in account for tests. May 31, 2019 at 8:22
2

You can define your beans in *Config.kt file and implement initalize method of ApplicationContextInitializer interface.

override fun initialize(applicationContext: GenericApplicationContext) {
    ....
}

Some bean definition here.

bean<XServiceImpl>("xService")

bean("beanName") {
        BeanConstructor(ref("refBeanName"))
}

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