So here's the scenario:

I have a Spring XML configuration with some lazy-beans, some not lazy-beans and some beans that depend on other beans. Eventually Spring will resolve all this so that only the beans that are meant to be created are created.

The question: how can I programmatically tell what this set is?

When I use context.getBean(name) that initializes the bean. BeanDefinition.isLazyInit() will only tell me how I defined the bean.

Any other ideas?

ETA:

In DefaultListableBeanFactory:

public void preInstantiateSingletons() throws BeansException {
    if (this.logger.isInfoEnabled()) {
        this.logger.info("Pre-instantiating singletons in " + this);
    }

    synchronized (this.beanDefinitionMap) {
        for (Iterator it = this.beanDefinitionNames.iterator(); it.hasNext();) {
            String beanName = (String) it.next();
            RootBeanDefinition bd = getMergedLocalBeanDefinition(beanName);
            if (!bd.isAbstract() && bd.isSingleton() && !bd.isLazyInit()) {
                if (isFactoryBean(beanName)) {
                    FactoryBean factory = (FactoryBean) getBean(FACTORY_BEAN_PREFIX + beanName);
                    if (factory instanceof SmartFactoryBean && ((SmartFactoryBean) factory).isEagerInit()) {
                        getBean(beanName);
                    }
                }
                else {
                    getBean(beanName);
                }
            }
        }
    }
}

The set of instantiable beans is initialized. When initializing this set any beans not in this set referenced by this set will also be created. From looking through the source it does not look like there's going to be any easy way to answer my question.

  • They're the beans you planted in late fall. – hobbs Jun 2 '10 at 14:27

Perhaps

ApplicationContext.getBeanDefinitionNames()

Note that there is no (decent) way to determine which beans will be instantiated and which won't. If you are using ApplicationContextAware, you get access to all the beans at runtime, which makes this unpredictable.

  • Unfortunately that still gives the entire set of definied beans. – cyborg Jun 2 '10 at 8:10
  • I don't understand what "beans that are meant to be created" means. All beans are meant to be created. – Bozho Jun 2 '10 at 8:19
  • lazy-init beans are not created unless required. – cyborg Jun 2 '10 at 8:35
  • 1
    and isLazyInit() doesn't return whether the bean is lazy? – Bozho Jun 2 '10 at 12:38
  • Yes, but it doesn't say whether or not the bean was created - some of the lazy beans will have been created, some will not. – cyborg Jun 2 '10 at 12:53

So far my solution is:

  1. Create ExtendedApplicationContext implementing ApplicationContextAware
  2. Have the beans call initialized(this) on a static instance of ExtendedApplicationContext
  3. Use this set plus the set of all bean definitions that are not singletons, abstract or lazy-initialized to create the set of intialized beans in ExtendedApplicationContext

Any better suggestions are welcome.

up vote 0 down vote accepted

This is probably the best way, using a BeanPostProcessor:

public class IsIntializedBeanPostProcessor implements BeanPostProcessor {

    private Set<String> initializedBeanNames = new HashSet<String>();

    @Override
    public Object postProcessAfterInitialization(Object bean, String beanName) throws BeansException {
        return bean;
    }

    @Override
    public Object postProcessBeforeInitialization(Object bean, String beanName) throws BeansException {
        initializedBeanNames.add(beanName);
        return bean;
    }

    public Set<String> getInitializedBeanNames() {
        return initializedBeanNames;
    }

}

Then all you have to do is include this as a bean somewhere in the Spring config in order for it to work.

Your Answer

By clicking "Post Your Answer", you acknowledge that you have read our updated terms of service, privacy policy and cookie policy, and that your continued use of the website is subject to these policies.

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