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I'm using Hibernate validator and trying to create a little util class:

public class DataRecordValidator<T> {
    public void validate(Class<T> clazz, T validateMe) {
        ClassValidator<T> validator = new ClassValidator<T>(clazz);
        InvalidValue[] errors = validator.getInvalidValues(validateMe);
        [...]
    }
}

Question is, why do I need to supply the Class<T> clazz parameter when executing new ClassValidator<T>(clazz)? Why can't you specify:

  1. T as in ClassValidator<T>(T)?
  2. validateMe.getClass() as in ClassValidator<T>(validateMe.getClass())

I get errors when I try to do both options.

Edit: I understand why #1 doesn't work. But I don't get why #2 doesn't work. I currently get this error with #2:

cannot find symbol
symbol  : constructor ClassValidator(java.lang.Class<capture#279 of ? extends java.lang.Object>)
location: class org.hibernate.validator.ClassValidator<T>

Note: Hibernate API method is (here)

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3 Answers 3

up vote 1 down vote accepted

If the validate method is yours, then you can safely skip the Class atribute.

public void validate(T validateMe) {
    ClassValidator<T> validator = 
           new ClassValidator<T>((Class<T>) validateMe.getClass());
    ...
}

But the ClassValidator constructor requires a Class argument.

Using an unsafe cast is not preferred, but in this case it is actually safe if you don't have something like this:

class A {..}
class B extends A {..}

new DataRecordValidator<A>.validate(new B());

If you think you will need to do something like that, include the Class argument in the method. Otherwise you may be getting ClassCastException at runtime, but this is easily debuggable, although it's not quite the idea behind generics.

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Sadly doesn't work, see my response to @Jherico's post. –  Marcus Jan 15 '10 at 21:18
    
I made an update, it should be working. –  Bozho Jan 16 '10 at 19:31
    
Thanks, the (Class<T>) was the key! –  Marcus Jan 24 '10 at 15:46

Because T is not a value - it's just a hint for the compiler. The JVM has no clue of the T. You can use generics only as a type for the purposes of type checking at compile time.

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Thanks. Why then can you not use validateMe.getClass()? –  Marcus Jan 16 '10 at 14:15
1  
You can use getClass() on any object reference... Just checked, compiler is OK with that. –  Ondra Žižka Jan 17 '10 at 6:29
2  
You can use validateMe.getClass(), but there are caveats: if validateMe is null you get a NullPointerException, which may or may not be what you want. And using the current code you could pass a base class (for example validate this Employee instance using the rules for its base class Person). If you leave out the Class parameter that is no longer possible. –  Joachim Sauer Jan 18 '10 at 15:18

Because ClassValidator is requiring a Class object as its parameter, NOT an instance of the class in question. Bear in mind you might be able to do what you're trying to do with this code:

ClassValidator<? extends T> validator = new ClassValidator<? extends T>(validateMe.getClass());
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Thanks. Why can't you use validateMe.getClass() or T.class? –  Marcus Jan 15 '10 at 21:13
    
I thought that too... but I get this error: cannot find symbol / symbol : constructor ClassValidator(java.lang.Class<capture#454 of ? extends java.lang.Object>) / location: class org.hibernate.validator.ClassValidator<T> –  Marcus Jan 15 '10 at 21:17
    
Look at my edit about how to declare your ClassValidator –  Jherico Jan 15 '10 at 21:18
    
Nope: found : ? extends T / required: class or interface without bounds , symbol : method getInvalidValues(T) location: class org.hibernate.validator.ClassValidator<capture#536 of ? extends T> –  Marcus Jan 15 '10 at 21:22

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