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What I would like to obtain is something that can safely return the instance of an input class. In my case is used as a service provider. A code sample:

 public class MyClass {

    private Map<String, Object> mServices;

    public MyClass() {
        mServices = new HashMap<String, Object>();
        mServices.put(XmlService.class.getName(), new XmlService());
    }

    public <E extends Object> E getService(Class<?> service) {
        return (E) mServices.get(service.getName());
    }
}

I admit that I am not that skilled with Parameterized Types and I need some help here. Am I not getting an Object from the Map? Why do I need to cast to E, loosing the type safety? Is there a way to avoid either casting and/or suppress warnings?

share|improve this question
up vote 1 down vote accepted

No, unfortunately the is no way to avoid this extra downcast. Notice that the type of your map is Map<String, Object>. Object - that is all the Java compiler knows about values. You would have to somehow declare the map to have different type of every key. Impossible.

But your code can be simplified a bit:

public <E> E getService(Class<E> service) {
    return (E) mServices.get(service.getName());
}

Another slight improvement involves using Class as key:

private Map<Class<?>, Object> mServices;

public <E> E getService(Class<E> service) {
    return (E) mServices.get(service);
}
share|improve this answer
    
Oh thanks for the improvements! What if I put Map<String, ? extends Object> mServices ? The compiler gives me an error on the put method though. – Andrea Richiardi Feb 9 '13 at 21:43
1  
@Kap: even if it worked, what would you expect? Map.get() would return some class extending Object (according to type declaration). You don't need this extra ? extends to know that. – Tomasz Nurkiewicz Feb 9 '13 at 21:45

This should work without the downcast :

public class ServiceLoader<T extends AbstractService> {

private Map<String, T> services = new HashMap<String, T>();

T getService(Class<T> componentType) {
    return services.get(componentType.getName());
}
share|improve this answer
    
Yes, this will work, but I would need to have one Service class per every type. Right? What I would like to have is a centralized Service getter instead. – Andrea Richiardi Feb 9 '13 at 21:52

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