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In the following code, the type of x is I (although x also implements J but thats not known at compile time) so why is it that the code at (1) doesn't result in a compile time error. Because at compile time only the type of the reference is considered.

public class MyClass {
    public static void main(String[] args) {
        I x = new D();
        if (x instanceof J) //(1)
            System.out.println("J");
    }
}

interface I {}

interface J {}

class C implements I {}

class D extends C implements J {}
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1  
Side note - please don't forget to add a tag for the language. I added "java" for you. –  EboMike Oct 9 '10 at 19:11
    
sorry I should have –  user439526 Oct 9 '10 at 19:21

2 Answers 2

up vote 13 down vote accepted

instanceof is used used for runtime determination of an object's type. You are trying to determine if x is really an object of type J when the program is running, so it compiles.

Were you thinking it should result in a compile-time error because you think the compiler does not know x's type?

Edit

As Kirk Woll has commented (thanks Kirk Woll!), if you were checking if x is an instanceof a concrete class, and the compiler can determine x's type, then you will get an error at compile time.

From the Java Language Specification:

If a cast of the RelationalExpression to the ReferenceType would be rejected as a compile-time error, then the instanceof relational expression likewise produces a compile-time error. In such a situation, the result of the instanceof expression could never be true.

As an example of this:

import java.io.Serializable;
import java.io.IOException;
import java.io.ObjectOutputStream;
import java.io.ObjectInputStream;

class SerializableClass implements Serializable
{
   private writeObject(ObjectOutputStream out) {}
   private readObject(ObjectInputStream in) {}
}

public class DerivedSerializableClass extends SerializableClass
{
   public static void main(String[] args)
   {
      DerivedSerializableClass dsc = new DerivedSerializableClass();

      if (dsc instanceof DerivedSerializableClass) {} // fine
      if (dsc instanceof Serializable) {} // fine because check is done at runtime
      if (dsc instanceof String) {} // error because compiler knows dsc has no derivation from String in the hierarchy

      Object o = (Object)dsc;
      if (o instanceof DerivedSerializableClass) {} // fine because you made it Object, so runtime determination is necessary
   }
}
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1  
+1, and if it weren't a runtime operator, what on earth would be the point of it? The if statements using it would make no sense. –  Kirk Woll Oct 9 '10 at 19:12
    
Well from what I read there is an initial compile time check when using the instanceof operator which determines if the source and destination have a subtype-supertype relationship. Then the actual object of the source is used to determine if the source is a subtype of Destination type. –  user439526 Oct 9 '10 at 19:15
1  
Please correct my understanding on how this should work. So in this code although the object refered to by x is a subtype of J but there is no relation between I and J. So since x is of type I in the code above i.e I x = new D();, should this play a role at compile time? –  user439526 Oct 9 '10 at 19:20
8  
@user439526, ah, that's what you mean. Good point. The reason you are not seeing a problem with your example is because you are using instanceof on interfaces and not on classes. The compiler can never know whether a given type doesn't implement an interface because a potential subclass could implement it. This is different with classes, as you point out, and if your example had used two incompatible classes rather than interfaces, you would indeed have gotten a compiler error. –  Kirk Woll Oct 9 '10 at 19:20
    
could you illustrate this with an example –  user439526 Oct 9 '10 at 19:32

instanceof is a run-time operator, not compile-time, so it's being evaluated using the actual type of the object being referenced.

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But it can produce compile errors ... –  EJP Oct 10 '10 at 0:13
    
Yeah, if it gets static input (i.e. classes rather than references). I should edit my answer, although kuropenguin already gave a very exhaustive answer, so that's moot. –  EboMike Oct 10 '10 at 0:36

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