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int val =233;
byte b = (byte)val;
System.out.println(b);

I have a simple case, like one integer with some value & i want to convert that value & place in the byte type for output. But in this case negative value is coming?

How to successfully place the int value to byte type.

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1  
Unfortunately bytes in Java are signed. All you can do is try a larger data type or a custom class. –  missingfaktor Mar 27 '10 at 15:32
    
@user303218: what's the range of val values? 0-255? –  Roman Mar 27 '10 at 15:39
    
@Rahul, why are signed bytes "unfortunate"? –  Steve Kuo Mar 27 '10 at 18:05
1  
@Steve it is customary to refer to bytes in packed structures (eg, network packet headers) as unsigned, and most other languages have unsigned bytes. In Java, you constantly have to remember yourself that there may or may not be a sign to each byte. –  tucuxi Mar 27 '10 at 19:10

4 Answers 4

up vote 10 down vote accepted

In Java byte range is -128 to 127. You cannot possibly store the integer 233 in a byte without overflowing.

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Or rather - you can, but you are overflowing the byte. –  Yuval Adam Mar 27 '10 at 15:13

Java's byte is a signed 8-bit numeric type whose range is -128 to 127 (JLS 4.2.1). 233 is outside of this range; the same bit pattern represents -23 instead.

11101001 = 1 + 8 + 32 + 64 + 128 = 233 (int)
           1 + 8 + 32 + 64 - 128 = -23 (byte)

That said, if you insist on storing the first 8 bits of an int in a byte, then byteVariable = (byte) intVariable does it. If you need to cast this back to int, you have to mask any possible sign extension (that is, intVariable = byteVariable & 0xFF;).

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If you need unsigned value of byte use b&0xFF.

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You can use 256 values in a byte, the default range is -128 to 127, but it can represent any 256 values with some translation. In your case all you need do is follow the suggestion of masking the bits.

int val =233; 
byte b = (byte)val; 
System.out.println(b & 0xFF); // prints 233.
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