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I probably miss some fundamental understanding of byte in Java. The following is a simplified excerpt from an app to illustrate the problem:

public class Foo
{
 byte b1;
 byte b2;
 byte bProblem;
}

foo is an instance of Foo. The following has puzzled me for hours:

Log.d("Debug", "Before: " + String.valueOf(foo.bProblem));
if (foo.bProblem != (byte) 0x80) {
    foo.bProblem = (byte) 0x80;
    Log.d("Debug", "After: " + String.valueOf(foo.bProblem));
}

LogCat shows the following:

03-17 21:58:46.590: D/Debug(2130): Before: 128    
03-17 21:58:46.590: D/Debug(2130): After: -128

Eclipse's debugger always shows -128 (0x80) for foo.bProblem. This means the debugger cannot see what String.valueOf() reveals. How can a Java byte be 128?

I noticed this when adding foo.bProblem to a List caused: Java.lang.ArrayIndexOutOfBoundsException: length=256; index=256

Could anyone offer some hint for me to understand this?

Edited:

I found later this happens only on an Intel Android emulator as I wrote in my comment following Joop's answer.

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byte cannot hold 128! The value of a byte should be in between -128 and 127. –  Eng.Fouad Mar 17 '13 at 22:27
    
That is my understanding. How can String.valueOf(foo.bProblem) produce 128? –  Hong Mar 17 '13 at 22:30
    
The only way I can think of to produce 128 is to add a minus sign in front of foo.bProblem as String.value(- foo.bProblem), where foo.bProblem == (byte) 0x80. –  Eng.Fouad Mar 17 '13 at 22:37
    
What is the Java version you are using? –  Eng.Fouad Mar 17 '13 at 22:42
    
The compiler compliance level is 1.6. –  Hong Mar 17 '13 at 22:46

3 Answers 3

String.valueOf does not take a byte, it takes one of the following:

boolean char char[] double float int long Object

In your implementation you are actually calling String.valueOf(int value) It does not actually contain the value of 128. Try printing

Log.d("Debug", "" + bProblem)

That should work.

EDIT--

What I'm trying to say is that String.valueOf is not actually looking at the value of the byte. It's looking at the same bits that make up the byte as an int and printing that.

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I changed the code to Log.d("Debug", "Before: " + foo.bProblem), and got the same outcome. –  Hong Mar 17 '13 at 22:38

A Java "byte data type is an 8-bit signed two's complement integer. It has a minimum value of -128 and a maximum value of 127 (inclusive)." So when you assign a byte to +128 it essentially wraps back around to the lowest value of -128

See http://docs.oracle.com/javase/tutorial/java/nutsandbolts/datatypes.html for details.

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In the java virtual machine, the byte field bProblem will use an int. Now, String.valueOf(int) is used, as there is no byte variant. So (erroneously?) the field is taken as int, so unsigned, 128.


Sorry, I tried to achieve a 128 but did not succeed (Java 7, Linux)

I already became paranoid, you using a child class with an int field bProblem. Or more likely a compiled class being used with a java source not up-to-date compiled. Maybe you could try another compiler than that of eclipse.

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But byte b = (byte) 0x80; System.out.println(String.valueOf(b)); prints -128? –  Eng.Fouad Mar 17 '13 at 22:40
    
What value of a byte variable would result in String.valueOf(foo.bProblem) = "128"? String.valueOf() is used just to show the problem. My real issue is that foo.bProblem cannot be added to a List<Byte>. –  Hong Mar 17 '13 at 22:42
    
Exactly. When assigning anything like 128 to a byte, the conversion to -128 is implict. It would otherwise make the whole language inconsistent. And to be honest, I cannot reproduce that. –  user1050755 Mar 17 '13 at 22:45
    
foo.bProblem is assigned somewhere else, and I examined the assignment the same way showing it is assigned -128 (0x80). Suppose this variable is messed up somewhere that I do not know. The question is: how can a byte variable by assigned a value beyond its scope? Again, Eclipse shows it is always -128 (0x80). –  Hong Mar 17 '13 at 22:51
    
Recompile everything? Now you have got me worried too. –  Joop Eggen Mar 17 '13 at 23:25

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