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Any idea why I need to cast an integer literal to (int) here?

package typecastingpkg;

public class Main
{        
    public static void main(String[] args)
    {
       byte a=10;
       Integer b=(int)-a;
       System.out.println(b);

       int x=25;
       Integer c=(Integer)(-x); // If the pair of brackets around -x are dropped, a compile-time error is issued - illegal start of type.
       System.out.println(c);

       Integer d=(int)-a;     //Compiles fine. Why does this not require a pair of braces around -a?
       System.out.println(d);
    }
}

In this code, while casting of -x of primitive type int to a wrapper type Integer, a compile-time error is produced: illegal start of type.

Integer c=(Integer)-x;

It requires a pair of braces around -x like Integer c=(Integer)(-x);

The following expression however compiles fine.

Integer d=(int)-a;

Why does this one not require a pair of braces around -a as in the preceding expression?

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marked as duplicate by Vivin Paliath, Raedwald, t0mm13b, Peter O., Fraser Oct 10 '12 at 1:49

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

3 Answers 3

up vote 11 down vote accepted

The compiler thinks that, in the expression (Integer)-x, you are trying to subtract x from a variable called Integer, hence the error since no such variable is defined. (int)-x works because int is a reserved keyword for a primitive type and cannot be used as a variable name, so the compiler can deduce that you are trying to cast, not subtract.

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1  
+1 because addition of "int Integer=25; " gave me 0 without compiler warning :D –  Jimmy Oct 9 '12 at 21:44
    
The error doesn't have to do with no such variable being defined. It has to do with the grammar not accepting unary operators when reference types are used in the cast expression. –  Vivin Paliath Oct 9 '12 at 21:46
    
@VivinPaliath If you define a variable called Integer the program will compile: e.g. int Integer = 2; int x = 1; Integer n = (Integer)-x;. Print n to see that (Integer)-x subtracts and does not cast. –  arshajii Oct 9 '12 at 21:49
    
@A.R.S. That's not the same thing. The reason that the second example works is not the reason that the first example breaks. You're comparing apples to oranges because those two examples do two different things (casting vs. subtraction). The actual reason is that you cannot cast a unary expression if you are using a reference type. It only works for primitive types. –  Vivin Paliath Oct 9 '12 at 21:54
1  
@A.R.S. No worries. I think your answer is essentially right. :) I was only arguing about the error that shows up. If the compiler thought that it was an identifier, it would complain with an "unknown identifier" error. –  Vivin Paliath Oct 9 '12 at 22:10

The answer can be found by examining Java's grammar:

CastExpression:
    ( PrimitiveType ) UnaryExpression
    ( ReferenceType ) UnaryExpressionNotPlusMinus

Which tells you that you can use a cast expression like (int) -x; because int is a primitive type and so you can have a unary expression that follows it. However, if you use an object then that's a ReferenceType and the only thing that follows a ReferenceType is UnaryExpressionNotPlusMinus, which doesn't include things like -x or +x:

UnaryExpressionNotPlusMinus:
    PostfixExpression
    ~ UnaryExpression
    ! UnaryExpression
    CastExpression

The reason for this prohibition is that Integer by itself could be interpreted as an identifier, which leads to ambiguity. int cannot be interpreted as an identified because it is a reserved word. To resolve this ambiguity, you would have to wrap the unary expression in parenthesis.

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nice. but why did they allow (Integer)~a but not (Integer)-a –  irreputable Oct 9 '12 at 21:49
    
probably because ~ cannot be used as binary op, like +/- –  irreputable Oct 9 '12 at 21:51

You cannot cast primitive to class and vice versa.

You can cast primitives to other primitives. In this case value precision can be lost. For example if you are casting long to int.

You can also cast object to other type.

Actually assignment of primitive wrapper types to primitives is allowed since java 1.5 by autoboxing and can confuse. This is just a compiler sugar. When you say

Integer a = 5; compiler translates it to Integer a = new Integer(5);

If you say then

int b = a; you really say int b = a.intValue();

Unfortunately operators like +, - etc are not working with primitive wrappers. Only primitives support them. So, you cannot say -a. You must say (-1)*a.intValue(). Now this value can be assigned to either int or Integer variable: autoboxing will do the job.

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Sure you can -- int a = 1; Integer b = (Integer)a; compiles fine. –  arshajii Oct 9 '12 at 21:43
    
Integer c=(Integer)(-x); Is that a cast or an autoboxing? –  Bhesh Gurung Oct 9 '12 at 21:46
    
@A.R.S.: That compiles but don't you think it's a case of autoboxing. Because it doesn't make sense being a able to cast a primitive value to reference type. What if it was some other class instead of Integer. –  Bhesh Gurung Oct 9 '12 at 21:55

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