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Editorial Team
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Asked: 2026-06-03T08:29:58+00:00

Given that byte,short and int are signed, why do byte and short in Java

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Given that byte,short and int are signed, why do byte and short in Java not get the usual signed two’s complement treatment ? For instance 0xff is illegal for byte.

This has been discussed before here but I couldn’t find a reason for why this is the case.

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1 Answer

  1. Editorial Team

    If you look at the actual memory used to store -1 in signed byte, then you will see that it is 0xff. However, in the language itself, rather than the binary representation, 0xff is simply out of range for a byte. The binary representation of -1 will indeed use two’s complement but you are shielded from that implementation detail.

    The language designers simply took the stance that trying to store 255 in a data type that can only hold -128 to 127 should be considered an error.

    You ask in comments why Java allows:

    int i = 0xffffffff;

    The literal 0xffffffff is an int literal and is interpreted using two’s complement. The reason that you cannot do anything similar for a byte is that the language does not provide syntax for specifying that a literal is of type byte, or indeed short.

    I don’t know why the decision not to offer more literal types was made. I expect it was made for reasons of simplicity. One of the goals of the language was to avoid unnecessary complexity.

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