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I have following Java classes:

class Model { // some model class }

class FooModel extends Model {}

class ModelWorker {
  public static <T extends Model> void do(Class<T> clazz) { /* ... */ }
}

Why is the ModelWorker.do() method capable for FooModel.class but not for
new FooModel().getClass() ?

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4  
do is not a legal identifier. –  oldrinb Aug 17 '12 at 7:11
    
what do you mean by "not capable"? –  Jonas Eicher Aug 17 '12 at 7:17
    
Question needs to be clarified. (Assume that do() is renamed.) As described here do(FooModel.class) and do(new FooModel().getClass()) both work fine. So what's the problem? –  Stuart Marks Aug 18 '12 at 6:39
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1 Answer 1

Your dummy code should work. However, since it's clearly just an example, I suspect your true code is a bit different.

See the specification for Object.getClass.

The actual result type is Class<? extends |X|> where |X| is the erasure of the static type of the expression on which getClass is called.

Notice it returns Class<?>? This means that doing something like

Object o = new FooModel();
ModelWorker._do(o.getClass());

... would correctly fail to compile, since o.getClass() is merely Class<?>. Are you doing something like this?

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Well, for me it works I I remove the type hints outside of the signature of do() ... –  Hannes Aug 17 '12 at 8:02
    
@Hannes does that mean you're using raw types? or are you accepting Class<T> with T unbound? –  oldrinb Aug 17 '12 at 8:08
    
No, more like public static void do(Class<T extends Model> clazz) { /* ... / } instead of public static <T extends Model> void do(Class<T> clazz) { / ... */ } –  Hannes Aug 17 '12 at 11:42
1  
If you just have static void do(Class<T extends Model> clazz) then where does the T come from? –  Stuart Marks Aug 18 '12 at 6:37
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