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This code

byte b = Byte.parseByte("10000000", 2);

throws an exception in Java. This should be -128 or 255.

Byte has 8 bit. Why can't I parse a 8 bit string?

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For Java the maximum value is (2^(8-1)) - 1 = 127 because it uses two's complement. –  Mister Smith Feb 9 '12 at 8:46

5 Answers 5

up vote 5 down vote accepted

The reason is down to the range of a byte in Java. Bytes are signed, so you can have anything from -128 ("-10000000") through to 127 ("1111111"), but no values outside that range.

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The MAX_VALUE of a byte in java (or in C#) is 127 where as 10000000 return 128 which cannot be stored in a byte variable

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Actually in C# it's 255; C# bytes are unsigned. –  Dan Puzey Feb 9 '12 at 8:58

Strictly, you passed not eight bits to parse method, but string representation of usual number with radix 2. And it may contain a sign character. Particularly, byte b = Byte.parseByte("-10000000", 2) works nice and gives -128.

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What you can do treat the value as signed this way.

byte b = (byte) Integer.parseInt("10000000", 2);
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That's not an 8-bit string, it's an 8-character string, and it's not being read the way you think it is...

From the MSDN documentation (here), you'll see that byte.Parse accepts strings in the integer format. So, you're trying to parse 10 million, not -1. The exception you're getting gives this away: you should see an OverflowException.

byte.parse("255") gives the effect you expect (byte is unsigned; using -128 also gives an overflow).

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1  
This is Java :) –  David Grant Feb 9 '12 at 8:50
    
sigh... Original question was posted in Java and C#. –  Dan Puzey Feb 9 '12 at 8:58
1  
Well that sucks... –  David Grant Feb 9 '12 at 9:24

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