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public class Java{
    public static void main(String[] args){
        final byte x = 1;
        final byte y = 2;
        byte z = x + y;//ok
        System.out.println(z);

        byte a = 1;
        byte b = 2;
        byte c = a + b; //Compiler error
        System.out.println(c);
    }
}

If the result of an expression involving anything int-sized or smaller is always an int even if the sum of two bytes fit in a byte.

Why does it happen when we add two final bytes that fit in a byte? There is no compiler error.

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2 Answers 2

up vote 7 down vote accepted

From the JLS 5.2 Assignment Conversion

In addition, if the expression is a constant expression (§15.28) of type byte, short, char, or int: - A narrowing primitive conversion may be used if the type of the variable is byte, short, or char, and the value of the constant expression is representable in the type of the variable.

In short the value of the expression (which is known at compile time, because it is a constant expression) is representable in the type of the variable that is byte.

Consider your expression

 final byte x = 1;
 final byte y = 2;
 byte z = x + y;//This is constant expression and value is known at compile time

So as summation fits into byte it does not raise an compilation error.

Now if you do

final byte x = 100;
final byte y = 100;
byte z = x + y;// Compilation error it no longer fits in byte
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Please add an explanation to vulgarize to all people. –  Aubin Oct 27 '12 at 12:09
    
So, in summary, the OP is not seeing an error because he fortunately chose values which would sum to fit within a byte. –  Duncan Oct 27 '12 at 12:09
    
@DuncanJones Thanks. Added the summary. –  Amit Deshpande Oct 27 '12 at 12:12
    
@Aubin Thanks Added the summary and detail description –  Amit Deshpande Oct 27 '12 at 12:18
byte z = x + y;  // x and y are declared final

Here, since x and y are declared final so the value of expression on the RHS is known at compile time, which is fixed at (1 + 2 = 3) and cannot vary. So, you don't need to typecast it explicitly

byte c = a + b;   // a and b are not declared final

Whereas, in this case, value of a and b are not declared final. So, the value of expression is not known at compile time, rather is evaluated at runtime. So, you need to do an explicit cast.


However, even in the 1st code, if the value of a + b comes out to be outside the range -128 to 127, it will fail to compile.

final byte b = 121;
final byte a = 120;
byte x = a + b;  // This won't compile, as `241` is outside the range of `byte`

final byte b1 = 12;
final byte a1 = 12;
byte x1 = a1 + b1;  // Will Compile. byte can accommodate `24`
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What appends if x = 120 and y = 120? –  Aubin Oct 27 '12 at 12:07
1  
@Aubin.In that case, it would fail. Because 240 cannot be accommodated in byte. –  Rohit Jain Oct 27 '12 at 12:07

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