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//Ok makes sense

Byte b = (byte)207;
System.out.println(b); //value = 207

//ok doesn't make sense

Integer x = Integer.parseInt("11001111", 2); //207
Byte sens = (byte)x.intValue(); //207
System.out.println(sens); //Value = -49
System.out.println(sens.intValue()); //Value = -49

Whats going on here?

How do I declare/represent an 8 bit byte with a value higher than 127 then

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2 Answers 2

up vote 4 down vote accepted

bytes in Java are signed, so they go from -128 to 127. Casting an int like that will pick up the high bit at 1 (indicating a negative number in two's complement signed numbers) and convert it to the negative number -49.

From there, when you convert it back to an integer with sens.intValue(), it picks up the new negative value and returns it, so you still get -49.

You will need to store bytes larger than 128 in an int datatype, unfortunately.

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This does not explain why the first case prints 207 –  Henry Jan 7 '13 at 22:11
    
they first case doesn't print 207, he just has a comment of 207 next to it. the value of x.intValue() is 207, but the cast to byte will turn it into -49 –  Peter Elliott Jan 7 '13 at 22:14
1  
I just tried it, it prints -49 –  Henry Jan 7 '13 at 22:18
    
System.out.println((byte)x.intValue()); will print -49. System.out.println(x.intValue()); will print 207 –  Peter Elliott Jan 7 '13 at 22:22

Since Java's Byte is signed you can't represent value larger than 127 in byte.

In Your example:

Byte b = (byte)207;
System.out.println(b); //value = 207

There is an error. Output of println is -49.

Byte b = (byte)207;
System.out.println(b); //value = -49

Which means that both cases are identical.

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