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I want to switch the two hexadecimals symbols in a byte, for example if

input  = 0xEA 

then

output = 0xAE

It has to be in java.

I already have this method I made, but it only works in some cases:

public static final byte convert(byte in){

    byte hex1 = (byte) (in <<  4);
    byte hex2 = (byte) (in >>> 4);

    return (byte) (hex1 | hex2);
}

A working example is:

input:  0x3A 
hex1:   0xA0
hex2:   0x03
output: 0xA3

A not working example is:

input:  0xEA
hex1:   0xA0
hex2:   0xFE
output: 0xFE

Anyone can shed some lights on why this is not working?

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1  
I'm not much of a Java programmer but think a byte is signed. Try using an integer for the intermediate steps and see how it goes, although there is probably a better way. –  PeterJ Dec 16 '12 at 2:27
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2 Answers

I suspect the problem is the sign extension. Specifically, you probably need to do

byte hex2 = (byte) ((in >>> 4) & 0xF);
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ok, that works, thank you very much!! but shouldn't '>>>' do that already? –  sazr Dec 16 '12 at 2:33
    
>>> doesn't introduce any new negative sign bits, but you already had a bunch of leading 1 bits that got shifted in. Think of it this way: first your byte got sign-extended to 32 bits -- so if it was initially negative, it got 24 new 1 bits -- and then you shifted those over. –  Louis Wasserman Dec 16 '12 at 2:36
    
yep makes sense, just not used to signed bytes nor with bitwise operations returning integers. I guess Java was not the best choice for this kind of work... But again, THANK YOU very much! –  sazr Dec 16 '12 at 2:39
1  
Click the check by the answer if it was correct! :) –  Almo Dec 16 '12 at 2:55
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try

    byte hex1 = (byte) (in <<  4);
    byte hex2 = (byte) ( in >>> 4);
    return (byte) (hex1 | hex2 & 0x0F);

this is like in a known puzzle

    byte x = (byte)0xFF;
    x = (byte) (x >>> 1);
    System.out.println(x);

prints -1 because before unsigned shift 0xFF is promoted to int -> 0xFFFFFFFF; after shift it is 0x7FFFFFFF; cast to byte -> 0xFF

but

    byte x = (byte)0xFF;
    x = (byte) ((x & 0xFF) >>> 1);
    System.out.println(x);

prints 127 because we truncated 0xFFFFFFFF -> 0x000000FF, now shift produces 0x0000007F, cast to byte -> 0x7F

Actually, this promotion is done at compile time. JVM works only with 4 or 8 bytes operands (local variables on stack). Even boolean in bytecode is 0 or 1 int.

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yep that'll work too –  sazr Dec 16 '12 at 2:34
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