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So, I've got a fairly straightforward method

byte[] mem;
int pc;

private int d16() {
    return (((int) this.mem[pc++]) | ((int) this.mem[pc++] << 8) & 0x00FFFF);

If I print the value before returning and the LSB (Little endian form) is 0xFF, then I get 0xffcd for example. However, if I print the return value AFTER the return (where I call the method) I get 0xffffffcd .. Which is a very different value.

My soft solution is

int a = d16() & 0xFFFF;

But I shouldn't have to do that, I don't think.


Why does my bitmask not follow the return value through the return?

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What's the type of mem array? And what values are in it? – Eran Aug 14 '14 at 19:26
@Eran that is a fantastic question and I have updated my question with this information. I'm storing opcodes (and other raw bytes) for an emulator – Christopher Wirt Aug 14 '14 at 19:29

1 Answer 1

up vote 2 down vote accepted

It's because of operator precedence: & is of higher precedence than | according to this precedence table for Java. Despite all the parentheses, there are no parentheses around the two OR (|) operands. This means that this occurs first:

((int) this.mem[pc++] << 8) & 0x00FFFF

Then that value is OR'ed with the first value, ((int) this.mem[pc++]). When these values are cast to int, it is likely that sign extension is occurring here, after the bitmask is applied. This can explain the 0xffffffcd return value.

You will need to place parentheses around the | operands to ensure the OR happens first, then the AND with the bitmask will occur afterwards.

//       v                                                      v
return ( ( ((int) this.mem[pc++]) | ((int) this.mem[pc++] << 8) ) & 0x00FFFF);
share|improve this answer
I am so stupid... I thought I broke Java. – Christopher Wirt Aug 14 '14 at 19:35
Just to make myself feel better, I feel I must tell you I've been doing Java for about 7 years and have been doing bit-manipulation for 3... I guess this is just a brain fart syntax error. – Christopher Wirt Aug 14 '14 at 19:37

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