4

I`m learning Java with the Herbert Schildt book's: Java a Beginner's Guide. In that book appears this code:

// A promotion surprise!
class PromDemo{
    public static void main(String args[]){
        byte b;
        int i;
        b = 10;
        i = b * b;      // OK, no cast needed

        b = 10;
        b = (byte) (b * b);     // cast needed!!

        System.out.println("i and b: " + i + " " + b);
    }
}

I don't understand why I must use (byte) in the line:

b = (byte) (b * b);     // cast needed!!

b was defined as a byte and the result of b * b is 100 which is right value for a byte (-128...127).

Thank you.

5
  • 2
    In your case it is OK, but what if result would be out of byte range? Remember that compiler can't assume values of non-final variables.
    – Pshemo
    Jun 26, 2015 at 15:06
  • @Pshemo why then does multiplying two ints not require a cast?
    – xrisk
    Jun 26, 2015 at 15:10
  • @RishavKundu I can't find any resource now but I am guessing that since most of the time programmers are dealing with small ints compiler assumes that risk of overflow is minimal, but even if it occurs programmers are aware of it so there is no point in reminding them about it. Anyway compiler needs to stop informing programmer about possibility of overflow somewhere. Lets say that int*int generates long. Compiler will need to inform us about possible lost of precision. But what should it do in case of long*long? (there needs to be some place where it assumes that we know).
    – Pshemo
    Jun 26, 2015 at 15:18
  • You'll be more surprised by b=b+1; :)
    – ZhongYu
    Jun 26, 2015 at 15:35
  • avoid byte if you can. see stackoverflow.com/questions/6892444/…
    – ZhongYu
    Jun 26, 2015 at 15:36

2 Answers 2

7

The JLS (5.6.2. Binary Numeric Promotion) gives rules about combining numeric types with a binary operator, such as the multiplication operator (*):

  • If either of the operands is of type double, the other one will be converted to a double.
  • Otherwise, if either of the operands is of type float, the other one will be converted to a float.
  • Otherwise, if either of the operands is of type long, the other one will be converted to a long.
  • Otherwise, both operands will be converted to an int.

The last point applies to your situation, the bytes are converted to ints and then multiplied.

2
  • it doesn't matter that i declared b as a byte. It will be converted to int due to *. is it correct? Thank you.
    – Euriloco
    Jun 26, 2015 at 15:30
  • 1
    Yes, that is correct - since the first 3 conditions listed above have not been met, the last case applies of converting the byte operands to integers.
    – yas
    Jun 26, 2015 at 15:37
3

In Java, byte and short will always be promoted to int, when you have a calculation like this:

byte b = 10;
b = (byte) (b * b);

So you actually multiply an integer with an integer, which will return an integer. Since you cannot assign an integer to a byte, you need the cast.

This is called "automatic type promotion" if you would like to Google it (to find e.g. https://docs.oracle.com/javase/specs/jls/se7/html/jls-5.html#jls-5.6.2)

5
  • This would be a better reference.
    – Makoto
    Jun 26, 2015 at 15:15
  • Thank you, it is of course! Quote from 5.6.2 point 2: "Otherwise, both operands are converted to type int." - which applies to byte and char. Thanks for your hint :) Jun 26, 2015 at 15:17
  • Sure. I encourage you to add it to your answer as opposed to whatever other reference you've Googled. JLS references are always more concrete.
    – Makoto
    Jun 26, 2015 at 15:21
  • I don' t understand why I am multiplying an integer with an integer.
    – Euriloco
    Jun 26, 2015 at 15:28
  • @Euriloco: Follow the link to the language specification. It's a fall-back case.
    – Makoto
    Jun 26, 2015 at 15:28

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