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My problem is some like this.

I have some calculation in byte in Java. In some calculation I get my desired result "2a" in byte value but in some calculation I get "ffffff9a" in byte value. I just want the "9a" value in from the result "ffffff9a". I tried this but didn't work.

byte a = (byte) b & 0xff;

where b have value "ffffff9a" byte value.

But while displaying the same process works like

System.out.println(Integer.toHexString(b & 0xff));

Where am I going wrong? What can I do to get my desired value?

Thanks


Actually I am trying to convert 8 bit character into gsm 7 bit. Also if someone there can help me through this, it would be helpful too. String is stored as a byte array and I have to convert this string or 8 bit bytes into 7 bit.

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Your code looks fine to me, double check you are testing it correctly? Maybe show the whole routine? Also is 'b' a byte type? –  fileoffset Jul 14 '11 at 3:54
    
Seems fine to me System.out.println(Integer.toHexString(0xffffff9a & 0xff)); prints 9a ideone.com/ikxuO –  Bala R Jul 14 '11 at 3:56
    
yes b is type byte, and printing is fine, I want to store value in variable, where the problem is –  bunkdeath Jul 14 '11 at 13:29
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2 Answers

The byte type in Java is signed. It has a range of [-128, 127].

System.out.println(Integer.toHexString(a & 0xff)); // note a, not b

Would show "the correct value" even though a, which is of type byte, will contain a negative value ((byte)0x92). That is, (int)a == 0x92 will be false because the cast to int keeps the value, negative and all, while (a & 0xff) == 0x92 will be true. This is because the bit-wise & promotes the expression to an int type while "masking away" the "sign bit" (not really sign bit, but artefact of two's complement).

See: Java How To "Covert" Bytes

Happy coding.

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thanks pst, that was helpful. –  Sumit Jul 14 '11 at 5:01
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Your initial code was: byte a = (byte) b & 0xff;

The (byte) typecast only applied to the b, which is already a byte. The & operator then widened that to an int so you got the result "ffffff9a" from the int.

You need to ensure that you typecast applies to the result of the &, not just to its first operand:

byte a = (byte)(b & 0xff);

Note the extra pair of parentheses.

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I have tried that too(the extra parenthesis), but result is the same. –  bunkdeath Jul 14 '11 at 13:33
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