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I have an expression:

short w = (short) ((byte) dana) << x);
...
String.format ("%04X", w);

if they includes:

dana = (byte) 0x88; and int x = 5;

I receive 0xF100

instead of 0x1100

What can I do to make it properly!

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You can perform a bitwise and (&) operation to mask the higher bits. –  CommuSoft Oct 23 '13 at 12:46

3 Answers 3

up vote 1 down vote accepted

The problem is in the first cast:

(byte) dana

dana is converted to byte, so then when it is later used in expression it needs to be widened back to int and this is done with sign-extension. If number is negative all higher bits are set to 1 to keep its value in 2-complement.

Use bitmask instead:

short w = (short) ((dana & 0xff) << x);

Perhaps it would be even better to avoid using short as well, since java does all arithmetics on int anyway.

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Ok, it works! Thank You! But what, if I should make XOR operation on short? ie: short compute; compute ^=w; ???? compute = compute & 0xFFFF? –  blackmoon Oct 24 '13 at 5:51
    
@blackmoon, I don't really understand. Using XOR shouldn't usually mess with higher bits. If you want to widen short to int with no sign extension than & 0xFFFF is a good choice. But when assigning to short it is rather pointless. –  zch Oct 24 '13 at 10:04
    
i should calculate a CRC ... in C++ : short CalcCrc(char *str,int len) { short crc=0; for(int i=0;i<len;i++) crc ^= (short)((unsigned char)str[i]) << (i%9); return crc; } but in Java it is't allways that same (if i use this same string) –  blackmoon Oct 24 '13 at 10:15
    
@blackmoon, I think replacing (unsigned char) with 0xff & should be enough. In this case changing short crc to int and removing (short) shouldn't change much either, as you never set high bits anyway. –  zch Oct 24 '13 at 10:36
    
!@zch, ok, thank You very much! –  blackmoon Oct 24 '13 at 11:10

Check this answer: How to cast from int to byte, then use a bitshift operator

You begin with (extension sign)

  1111 1111 1111 1111 1111 1111 1000 1000

And do the shift

  1111 1111 1111 1111 1111 0001 0000 0000

As you cast to short, you end with

  1111 0001 0000 0000

Which is the result that you get.

The solution is using a wider value (at least short), so it will not be negative. zch's answer is also valid.

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You can perform a bitwise and (&) operation to mask the higher bits. For instance:

w &= 0x1fff;

The issue is that when one converts the data to a byte, the sign bit is activated and arithmetic operations are performed instead of logical ones. By using an nd operation, the higher bits are cut off. Or you can postpone conversions and do it as a postprocessing.

One sometimes can also use the arithmetic shifts

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You are not explaining a solution, but a patch. Doing w = 0x1100 also gives the expected result, but it is not a solution either. –  SJuan76 Oct 23 '13 at 12:54
    
updated. better? –  CommuSoft Oct 23 '13 at 13:01
    
What is "arithmetic shifts"? << and >> are signed shifts and >>> is unsigned shifts (and only works in the opposite direction, there is no <<<) –  SJuan76 Oct 23 '13 at 13:04
    
Some languages provide rotations, which some people classify as arithmetic shifts as well. I know the scope is Java, but if one wants to learn programming, he should see the large picture, not simply an implementation of a programming language... –  CommuSoft Oct 23 '13 at 13:09

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