Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

the program gives me loss of precision error but i cant think of any precision loss since numbers are small

This is the code ##

 class Demo  
 {  
   public static void main(String args[])  
   {  
      byte b1=3;  
      byte b2=2;  
      byte b3=b1+b2;  
      System.out.println(b3);  
   }  
 }
share|improve this question
    
Does this compile? Why don't you just use int? –  user714965 Jul 29 '13 at 6:58
    
First rules of SO: If you have error messages or stack traces, include them in your post (use code formatting). If you have output, include it in your post, along with the input and expected output. Also read the FAQ and How to Ask –  Jim Garrison Jul 29 '13 at 6:58
1  
This example comes straight from the OCJP java book..The solution is even included.. –  steelshark Jul 29 '13 at 7:21

4 Answers 4

up vote 8 down vote accepted

The addition expression b1 + b2 is of type int - there aren't any addition operators defined on smaller types than int. So in order to convert that back to a byte, you have to cast:

byte b3 = (byte) (b1 + b2);

Note that although you happen to know that the values are small, the compiler doesn't care about the values you've set in the previous two lines - they could both be 100 for all it knows. Likewise although you know that the int you're trying to assign to a byte variable is only the result of adding two byte values together (or rather, two values promoted from byte to int), the expression as a whole is just int and could have come from anywhere as far as the language is concerned.

(The fact that the addition can overflow is a separate matter, but that would be an inconsistent argument - after all, you can add two int values together and store the result in an int variable, even though the addition could have overflowed easily.)

share|improve this answer

Because 127 is the last value of byte. Assume b1 = 127 and b2 = 2

now what happends b = b1+b2 = 129 [which is out of byte range, i.e. it's in int range]

now if you cast it b = (byte)(b1+b2), you will get -127 this is due to rounding of the value to byte.

share|improve this answer
    byte b1=3;
    byte b2=2;
    byte b3=b1+b2;  // you can't use byte here, Every time addition will result 
                     int value

Because, If you trying to cast an int which is larger than byte range, there is a loss part of that value. So addition will not allow to use byte here.

share|improve this answer

when ever you do +,-,*,/,% java internally uses a function

ex: max(int,dataType of operand 1,dataType of operand 2);

here in your code
max(int, byte,byte) ==> which one is bigger ? ==> int is bigger

so you may get POSSIBLE LOSS OF PRESSION
found :int

required : byte

Another Example

 short a =10;
 byte b=20;
 short c = a+b;

now:

internally: max(int,OP1,OP2);

ie max(int,short,byte) ==> which is bigger Data Type? int

so java excepts int

 int c = a+b;  (works fine)  

Another Example :

 long a =10;
 byte b=20;
 short c = a+b;

now:

internally: max(int,OP1,OP2);

ie max(int,long,byte) ==> which is bigger Data Type? long

so java excepts long

 long c = a+b;(works fine)  

Another Example:

byte b = 10;
b = b+1;  

now,
max(int,byte)==> which is bigger Data Type ? int
so,

int c = b+1;(works fine) or b = (byte) b+1;

hope you understand

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.