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I'm creating a generic class and in one of the methods I need to know the Class of the generic type currently in use. The reason is that one of the method's I call expects this as an argument.

Example:

public class MyGenericClass<T> {
  public void doSomething() {
    // Snip...
    // Call to a 3rd party lib
    T bean = (T)someObject.create(T.class);
    // Snip...
  }
}

Clearly the example above doesn't work and results in the following error: Illegal class literal for the type parameter T.

My question is: does someone know a good alternative or workaround for this?

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6 Answers 6

up vote 34 down vote accepted

Still the same problems : Generic informations are erased at runtime, it cannot be recovered. A workaround is to pass the class T in parameter of a static method :

public class MyGenericClass<T> {

    private final Class<T> clazz;

    public static <U> MyGenericClass<U> createMyGeneric(Class<U> clazz) {
        return new MyGenericClass<U>(clazz);
    }

    protected MyGenericClass(Class<T> clazz) {
        this.clazz = clazz;
    }

    public void doSomething() {
        T instance = clazz.newInstance();
    }
}

It's ugly, but it works.

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It sure is ugly, but the trick with protected constructor is good enough for me. I'm using the generic class as an abstract class that serves as the base 5 to 10 concrete classes. Thanks! –  Jaap Coomans Oct 8 '08 at 13:36
    
Is it possible to use this to determine what generic type an object is? eg if (obj.getClazz() is a String) doThis(); if (obj.getClazz() is a Integer) doThat(); –  dwjohnston Nov 9 '12 at 0:09
1  
^Solution: if(obj.getClazz().equals(String.class))... –  dwjohnston Nov 9 '12 at 1:14
    
@dwjohnston That assumes you have an instance of the class already. –  Basic Dec 8 at 12:34

I was just pointed to this solution:

import java.lang.reflect.ParameterizedType;

public abstract class A<B> {

        public Class<B> g() throws Exception {
                ParameterizedType superclass = (ParameterizedType)
        getClass().getGenericSuperclass();

                return (Class<B>) superclass.getActualTypeArguments()[0];
        }
}
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Nice solution. Didn't confirm that it works yet, but it results in cleaner inheritance. –  Jaap Coomans Jan 17 '11 at 9:53
    
I just tried it and it works.... Kudos to you @Chrisoph ! This is especially good because it works without changes for derived classes too! –  Brad Parks Apr 12 '12 at 14:56
2  
This solution works quite well. Thanks. –  Evi Song Jun 13 '12 at 2:34
    
Worked like a charm for me, and i didnt have to mess with the inherited classes. +1! –  Gustavo Maciel Jan 31 '13 at 23:40
1  
It work well, but I am getting a "Type safety: Unchecked cast from Type to Class<T>" warning near "(Class<T>) superclass.getActualTypeArguments()[0];". How to delete it ? –  Moebius Jul 15 at 11:35

Unfortunately Christoph's solution as written only works in very limited circumstances. Note that this will only work in abstract classes, first of all. The next difficulty is that g() only works from DIRECT subclasses of A. We can fix that, though:

private Class<?> extractClassFromType(Type t) throws ClassCastException {
    if (t instanceof Class<?>) {
        return (Class<?>)t;
    }
    return (Class<?>)((ParameterizedType)t).getRawType();
}

public Class<B> g() throws ClassCastException {
    Class<?> superClass = getClass(); // initial value
    Type superType;
    do {
        superType = superClass.getGenericSuperclass();
        superClass = extractClassFromType(superType);
    } while (! (superClass.equals(A.class)));

    Type actualArg = ((ParameterizedType)superType).getActualTypeArguments()[0];
    return (Class<B>)extractClassFromType(actualArg);
}

This will work in many situations in practice, but not ALL the time. Consider:

public class Foo<U,T extends Collection<?>> extends A<T> {}

(new Foo<String,List<Object>>() {}).g();

This will throw a ClassCastException, because the type argument here isn't a Class or a ParameterizedType at all; it's the TypeVariable T. So now you would be stuck trying to figure out what type T was supposed to stand for, and so on down the rabbit hole.

I think the only reasonable, general answer is something akin to Nicolas's initial answer -- in general, if your class needs to instantiate objects of some other class that is unknown at compile-time, users of your class need to pass that class literal (or, perhaps, a Factory) to your class explicitly and not rely solely on generics.

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Christoph's solution does work with non-abstract classes, I've tested it and included my work in an answer here. –  Chris Nash Aug 11 at 21:33
    
@ChrisNash You are probably right about that -- it's been close to 4 years since I wrote this, I don't write much Java anymore, and it's not immediately clear to me what I meant by the "abstract classes" comment either. I still stand by the general correctness of Nicolas's and my answers. I suppose it might be possible to write a method that went all the way "down the rabbit hole", as I said, but I'm not sure I'd want to.... –  Steven Collins Dec 14 at 21:32

i find another way to obtain the Class of the generic object

public Class<?> getGenericClass(){
         Class<?> result =null;
         Type type =this.getClass().getGenericSuperclass();

         if(type instanceofParameterizedType){
              ParameterizedType pt =(ParameterizedType) type;
              Type[] fieldArgTypes = pt.getActualTypeArguments();
              result =(Class<?>) fieldArgTypes[0];
        }
        return result;
  }
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This doesn't seem to work. it returns null everytime –  Nuno Furtado Nov 9 '11 at 9:26
1  
Well now i know why this happens, this only works for abstract classes that require the definition of implementation, and even than you are required to define the T type in the implementation and cannot allow the setting of this value during the use of the new class. it wont work in certain cases –  Nuno Furtado Nov 9 '11 at 10:54

T can be resolved pretty easily using TypeTools:

Class<T> t = (Class<T>) TypeResolver.resolveRawArguments(MyGenericClass.class, getClass());

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This doesn't compile, due to "Error with MyGenericClass.class... cannot take class literal from a type variable." –  Chris Nash Aug 11 at 21:30

I will elaborate on Christoph's solution.

Here is the ClassGetter abstract class:

private abstract class ClassGetter<T> {
    public final Class<T> get() {
        final ParameterizedType superclass = (ParameterizedType)
            getClass().getGenericSuperclass();
        return (Class<T>)superclass.getActualTypeArguments()[0];
    }
}

Here is a static method which uses the above class to find a generic class' type:

public static <T> Class<T> getGenericClass() {
    return new ClassGetter<T>() {}.get();
}

As an example of it's usage, you could make this method:

public static final <T> T instantiate() {
    final Class<T> clazz = getGenericClass();
    try {
        return clazz.getConstructor((Class[])null).newInstance(null);
    } catch (Exception e) {
        return null;
    }
}

And then use it like this:

T var = instantiate();
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