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Upcasting is allowed in Java, however downcasting gives a compile error.

The compile error can be removed by adding a cast but would anyway break at the runtime.

In this case why Java allows downcasting if it cannot be executed at the runtime?
Is there any practical use for this concept?

public class demo {
  public static void main(String a[]) {
      B b = (B) new A(); // compiles with the cast, 
                         // but runtime exception - java.lang.ClassCastException
  }
}

class A {
  public void draw() {
    System.out.println("1");
  }

  public void draw1() {
    System.out.println("2");
  }
}

class B extends A {
  public void draw() {
    System.out.println("3");
  }
  public void draw2() {
    System.out.println("4");
  }
}
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5  
An example snippet of code plus the error would make this a better question for people who are trying to learn the concepts. –  Bob Cross Dec 19 '08 at 12:14
    
+1 for Bob's comment. The question isn't clear at all. –  Jon Skeet Dec 19 '08 at 12:24
    
I see example above is taken from velocityreviews.com/forums/t151266-downcasting-problem.html which has some good answers already. –  PhiLho Dec 19 '08 at 12:33
2  
@PhiLho - Joel's main intention was to get all the great question and answers under one common umbrella. It doesn't matter if the question/code/answers are already posted in some other sites. I hope you get the point, else listen to Joel's podcasts. –  Omnipotent Dec 19 '08 at 12:43
    
Please edit this so that the code snippets are all indented by four spaces. That will fix the formatting. –  slim Dec 19 '08 at 12:48

10 Answers 10

up vote 113 down vote accepted

Downcasting is allowed when there is a possibility that it suceeds at run time:

Object o = getSomeObject(),
String s = (String) o; // this is allowed because o could reference a String

In some cases this will not succeed:

Object o = new Object();
String s = (String) o; // this will fail at runtime, because o doesn't reference a String

In others it will work:

Object o = "a String";
String s = (String) o; // this will work, since o references a String

Note that some casts will be disallowed at compile time, because they will never succeed at all:

Integer i = getSomeInteger();
String s = (String) i; // the compiler will not allow this, since i can never reference a String.
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7  
simple and clear answer also covers all aspects, wow no wonder 55.9k :) God bless you man –  Ismail Marmoush Aug 11 '11 at 14:56

Using your example, you could do:

public void doit(A a) {
    if(a instanceof B) {
        // needs to cast to B to access draw2 which isn't present in A
        // note that this is probably not a good OO-design, but that would
        // be out-of-scope for this discussion :)
        ((B)a).draw2();
    }
    a.draw();
}
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I just learned importance of instanceof when my abstract class was being extended by multiple classes and I wanted to use exclusive methods of those classes, while referring to abstract class type. Not using instanceof I had class cast exception –  Tarun Dec 23 '11 at 10:43

I believe this applies to all statically typed languages:

String s = "some string";
Object o = s; // ok
String x = o; // gives compile-time error, o is not neccessarily a string
String x = (String)o; // ok compile-time, but might give a runtime exception if o is not infact a String

The typecast effectively says: assume this is a reference to the cast class and use it as such. Now, lets say o is really an Integer, assuming this is a String makes no sense and will give unexpected results, thus there needs to be a runtime check and an exception to notify the runtime environment that something is wrong.

In practical use, you can write code working on a more general class, but cast it to a subclass if you know what subclass it is and need to treat it as such. A typical example is overriding Object.equals(). Assume we have a class for Car:

@Override
boolean equals(Object o) {
    if(!(o instanceof Car)) return false;
    Car other = (Car)o;
    // compare this to other and return
}
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I like the word Really and i will edit your post to make it more apparente –  Charaf jra Jan 21 at 23:19

We can all see that the code you provided won't work at run time. That's because we know that the expression new A() can never be an object of type B.

But that's not how the compiler sees it. By the time the compiler is checking whether the cast is allowed, it just sees this:

variable_of_type_B = (B)expression_of_type_A;

And as others have demonstrated, that sort of cast is perfectly legal. The expression on the right could very well evaluate to an object of type B. The compiler sees that A and B have a subtype relation, so with the "expression" view of the code, the cast might work.

The compiler does not consider the special case when it knows exactly what object type expression_of_type_A will really have. It just sees the static type as A and considers the dynamic type could be A or any descendant of A, including B.

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+1 An exact answer for question in contrast to other answers. –  andreyne Aug 15 '12 at 15:48

In this case why Java allows downcasting if it cannot be executed at the runtime?

I believe this is because there is no way for the compiler to know at compile-time if the cast will succeed or not. For your example, it's simple to see that the cast will fail, but there are other times where it is not so clear.

For instance, imagine that types B, C, and D all extend type A, and then a method public A getSomeA() returns an instance of either B, C or D depending on a randomly generated number. The compiler cannot know which exact run-time type will be returned by this method, so if you later cast the results to B, there is no way to know if the cast will succeed (or fail). Therefore the compiler has to assume casts will succeed.

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@ Original Poster - see inline comments.

public class demo 
{
    public static void main(String a[]) 
    {
        B b = (B) new A(); // compiles with the cast, but runtime exception - java.lang.ClassCastException 
        //- A subclass variable cannot hold a reference to a superclass  variable. so, the above statement will not work.

        //For downcast, what you need is a superclass ref containing a subclass object.
        A superClassRef = new B();//just for the sake of illustration
        B subClassRef = (B)superClassRef; // Valid downcast. 
    }
}

class A 
{
    public void draw() 
    {
        System.out.println("1");
    }

    public void draw1() 
    {
        System.out.println("2");
    }
}

class B extends A 
{
    public void draw() 
    {
        System.out.println("3");
    }

    public void draw2() 
    {
        System.out.println("4");
    }
}
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Downcast works in the case when we are dealing with an upcasted object. Upcasting:

int intValue = 10;
Object objValue = (Object) intvalue;

So now this objValue variable can always be downcasted to int because the the object which was cast is an Integer,

int oldIntValue = (Integer) objValue;
// can be done 

but because objValue is an Object it cannot be cast to String because int cannot be cast to String.

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Downcasting is very useful in the following code snippet I use this all the time. Thus proving that downcasting is useful.

private static String printAll(LinkedList c)
{
    Object arr[]=c.toArray();
    String list_string="";
    for(int i=0;i<c.size();i++)
    {
        String mn=(String)arr[i];
        list_string+=(mn);
    }
    return list_string;
}

I store String in the Linked List. When I retrieve the elements of Linked List, Objects are returned. To access the elements as Strings(or any other Class Objects), downcasting helps me.

Java allows us to compile downcast code trusting us that we are doing the wrong thing. Still if humans make a mistake, it is caught at runtime.

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Great explanation on Upcasting and Downcasting : http://forum.codecall.net/topic/50451-upcasting-downcasting/

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Consider the below example

public class ClastingDemo {

/**
 * @param args
 */
public static void main(String[] args) {
    AOne obj = new Bone();
    ((Bone) obj).method2();
}
}

class AOne {
public void method1() {
    System.out.println("this is superclass");
}
}


 class Bone extends AOne {

public void method2() {
    System.out.println("this is subclass");
}
}

here we create the object of subclass Bone and assigned it to super class AOne reference and now superclass reference does not know about the method method2 in the subclass i.e Bone during compile time.therefore we need to downcast this reference of superclass to subclass reference so as the resultant reference can know about the presence of methods in the subclass i.e Bone

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