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I want to store two ints in a long (instead of having to create a new Point object every time).

Currently, I tried this. It's not working, but I don't know what is wrong with it:

// x and y are ints
long l = x;
l = (l << 32) | y;

And I'm getting the int values like so:

x = (int) l >> 32;
y = (int) l & 0xffffffff;
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3 Answers 3

up vote 22 down vote accepted

y is getting sign-extended in the first snippet, which would overwrite x with -1 whenever y < 0.

In the second snippet, the cast to int is done before the shift, so x actually gets the value of y.

long l = (((long)x) << 32) | (y & 0xffffffffL);
int x = (int)(l >> 32);
int y = (int)l;
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Ah, that makes sense. One question I have is whether it matters if you bitmask using the long 0xffffffffL or the int 0xffffffff. – LanguagesNamedAfterCofee Oct 7 '12 at 21:26
@LanguagesNamedAfterCofee yes it matters, if you mask with 0xffffffff (without the L) then it's just an int, so the & is a no-op and y still gets sign extended. – harold Oct 7 '12 at 21:28
Okay, thanks for the explanation! – LanguagesNamedAfterCofee Oct 7 '12 at 21:29

Here is another option which uses a bytebuffer instead of bitwise operators. Speed-wise, it is slower, about 1/5 the speed, but it is much easier to see what is happening:

long l = ByteBuffer.allocate(8).putInt(x).putInt(y).getLong(0);
ByteBuffer buffer = ByteBuffer.allocate(8).putLong(l);
x = buffer.getInt(0);
y = buffer.getInt(1);
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Just a guess... but a long is signed, this is giving the unexpected behaviour...

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It's worth noting that the bitwise operators do not take sign into account, so as long as you never try to use the long as an actual decimal value the fact that it is signed is not particularly relevant. – krispy Mar 28 '14 at 16:01

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