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I need to send some bytes over UDP Protocol the start squence is 0xFF,0xFF,0xFF,0xFF,0xFF,0xFF

When I define like this:

byte [] begin = {0xFF,0xFF,0xFF,0xFF,0xFF,0xFF}; 

I get an error saying I need to cast those to byte type. Far as I know 0xFF doesn't exced the byte type so what is the problem ?

If i write this it works :

byte [] begin = {(byte) 0xFF,(byte) 0xFF,(byte) 0xFF,(byte) 0xFF,(byte) 0xFF,(byte) 0xFF};
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stackoverflow.com/questions/1677957/… take a look –  Ghokun Jun 28 '12 at 6:39

2 Answers 2

up vote 10 down vote accepted

Far as I know 0xFF doesn't exced the byte type so what is the problem ?

Actually it does. Bytes are signed in Java, so the range is -0x80 to 0x7f (inclusive).

(The fact that the byte type is signed is a pain in the neck, but there we go...)

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If i cast it works ? Or do I need to define to another data type –  opc0de Jun 28 '12 at 6:40
    
@opc0de: Yes, casting is absolutely fine. –  Jon Skeet Jun 28 '12 at 8:23

Any literal number in java is compiled as an int. Even if it's declared in a situation like here, where a byte is the expected value. The cast is the thing which actually transforms that literal int into a byte.

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Except that there's an implicit conversion from a constant int expression within the range of byte to byte itself. The problem is that 0xff isn't within the range of byte. Try it with (say) 0x7f and you don't need the cast. –  Jon Skeet Jun 28 '12 at 8:24

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