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 have a scenario for example.

<bean id="xyzService" class="XyzServiceImpl" scope="prototype">
    <property name="aDependency" ref="aDependency" />
    <property name="bDependency" ref="bDependency" />
</bean>

<bean id="useService" class="UseServiceImpl">
    <property name="xyzService" ref="xyzService"/>
</bean>

Java Class :

public class XyzServiceImpl implements XyzService{
     private ADependency aDependency= null;
   private BDependency bDependency= null;
   // getters and setters...
}

 public class UseServiceImpl implements UseService {
     private XyzService xyzService= null;
 // getters and setters...
    xyzService.doSomething();
}

Now every time inside the UseServiceImpl I expect a new Instance of xyzService, but i always return the same singleton instance. Also there is a scenario that the aDependency and bDependency may internally have again some more references to other beans.

Now I have a question like how do I get an new Instance of xyzService. Am I doing something wrong?

share|improve this question

4 Answers 4

By default scope of spring bean is singleton , You need to mark the scope prototype to instruct spring

<bean id="beanId" class="some.class.Name" scope="prototype"/>

Spring will create new instance on each request of Bean


See

share|improve this answer
    
If you see my xyxService it is marked as Prototype. but still I get the same instance –  chaosguru Jun 15 '12 at 5:52
    
How did you check you still get the same instance –  Jigar Joshi Jun 15 '12 at 5:57
    
one way is that I have a set of Values populated in aDependency which should not exist for a new instance. And also I could log the object id of the Class which is always the same. –  chaosguru Jun 15 '12 at 6:02
    
You didn't mark aDependency as prototype bean –  Jigar Joshi Jun 15 '12 at 6:03
    
Yes that was exactly my question , if the references are increasing then should I go and change in all beans as prototype which may incurr data dependency. hence is there any other way than making all reference beans as prototype? –  chaosguru Jun 15 '12 at 7:03
up vote 0 down vote accepted

I could easily find the solution by implementing the ApplicationContextAware Interface which has the getter and setter method for context. From the context I can say getBean and get the new Instance

public class UseServiceImpl implements UseService,ApplicationContextAware {
     private ApplicationContext context;
     XyzService xyzService= context.getBean(XyzServiceImpl.class);
   // getter and setter for applicationContext
     private XyzService xyzService= null;
   // getters and setters...
    xyzService.doSomething();
}
share|improve this answer

If you have the following:

<bean id="xyzService" class="XyzServiceImpl" scope="prototype">
    <property name="aDependency" ref="aDependency" />
    <property name="bDependency" ref="bDependency" />
</bean>

<bean id="useService1" class="UseServiceImpl">
    <property name="xyzService" ref="xyzService"/>
</bean>

<bean id="useService2" class="UseServiceImpl">
    <property name="xyzService" ref="xyzService"/>
</bean>

Then you should be able to verify that the xyzService property for useService1 and useService2 do contain different instances of xyzService. That's the effect of declaring xyzService to be scoped as a prototype. If you really want new instances of the xyzService bean to be available during the lifetime of the useService bean, I think you'll need a different approach - take a look at the documentation for Method injection.

share|improve this answer

In your example, every time you request spring container an instance of userService, it will return the singleton instance and injecting a new instance of xyzService.

However, when spring creates a new instance of xyzService, it will use the singleton instance of aDependency and bDependency unless otherwise they are also defined as prototype.

share|improve this answer

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.