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I have a class

public abstract class FakeClass<T extends MyClass> {
    protected HashMap<Character, T> myMap;

    private void myMethod(){
        myMap.put('c', /*???? I need to instatiate something of type T here.*/)
    }
}

As you can see, I can't figure out how to instantiate something of type T. Is this possible? If so can someone point me in the right direction to do it?

Thanks!

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Please paste the code for "MyClass" so we can help you. –  MacGyver Jul 25 '11 at 0:22
    
@Mr. MacGyver That probably isn't going to help because MyClass isn't always going to match T extends MyClass. What would be helpful is some context as to what that map is going to be used for. –  trutheality Jul 25 '11 at 0:26
1  
@djs22 see my answer –  Eng.Fouad Jul 25 '11 at 0:41
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2 Answers 2

up vote 6 down vote accepted

This can only be done by passing some information about T to myMethod(). One approach, described in this thread, is to pass a factory object for T. Another, described in this thread, is to pass a Class<T> clazz argument to myMethod(), which can then use clazz.newInstance() to create a new T object using the default constructor. (This will fail if T does not have a default constructor.)

The reason we need all this is due to type erasure in Java.

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It is so unfortunate that Java generics were designed/implemented like this. –  luiscubal Jul 25 '11 at 0:30
    
How does type erasure play into this? I'd say the reason we need all this is that constructors don't get inherited in the same way that other methods are. –  trutheality Jul 25 '11 at 0:32
    
@trutheality If there was no type erasure, the JVM(rather than just the Java compiler) would know what T really is, so "new T()" would be meaningful. –  luiscubal Jul 25 '11 at 0:34
    
@luiscubal: Generics have very little to do with this. You'd have the same problem without generics (and the same solution) if you wanted to create an "instance" of an interface. –  trutheality Jul 25 '11 at 0:34
1  
@trutheality - I agree that no type erasure is a necessary but not sufficient condition for "new T()" to be valid, if that's what you meant. It is "necessary" because even if T had a default constructor, it's meaningless if the JVM doesn't know what T is to begin with. –  luiscubal Jul 25 '11 at 0:44
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Usually, the point of generics is to be able to accept an unknown-at-compile-time type as input.

You can't instantiate an unknown class (because it might not have a visible constructor). If you just need a placeholder to put into the map, you can put a null value.

Without knowing more context, there isn't much more that anyone can do.

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