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I am building a lightweight high-precision arithmetic library for one of my Java applications and have been doing quite a bit of bit-twiddling (pun intended). Occasionally I get an int that has to be be converted into a long via simple word extension i.e. the 32 least significant bits of the long should become equal to the bits of the int.

Unfortunately, casting only works correctly for positive numbers. In addition, using an int in the same arithmetic expression with a long will implicitly cast to long beforehand, which means that e.g. this will not work if i is negative:

long l = (i & 0xffffffffL);

Currently I am using something along the lines of:

long l = (((long)(i >>> 8)) << 8) | (i & 0xff);

Is there a more elegant way to do this?

EDIT:

I may be missing something:

int i = -1;

long l = (i | 0xffffffffL);

System.out.println(l);

This prints out -1 rather than 4294967295. What am I missing?

EDIT 2:

Ooops... | instead of &. How the **** did the little ****** get there?

EDIT 3:

I have no idea how exactly I missed it, but this works perfectly:

long l = (i & 0xffffffffL);

...which makes this question completely irrelevant, I guess.

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Your first code should work fine - I've just tried it, and for example if i is -1, l becomes 4294967295. Isn't that what you want? –  Jon Skeet Jan 25 '12 at 11:15
    
@JonSkeet: You tried it and it works? It does not seem to work for me - see my edit... –  thkala Jan 25 '12 at 11:22
    
Your edit uses | instead of &... –  Jon Skeet Jan 25 '12 at 11:23
    
@JonSkeet: I think I urgently need a few hours of uninterrupted sleep. Or maybe I need to stop doing bitwise stuff for a few days and do some light coding to clear my head... –  thkala Jan 25 '12 at 11:28

2 Answers 2

up vote 2 down vote accepted

Did you actually test the long l = (i & 0xffffffffL); code? Yes, the value of i will be converted to long first, which means either 0-extension if i is positive or 1-extension if i is negative. In either case the lower 32 bits are not affected, so unless I misunderstand the problem, the & operation should leave you with the result you want.

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1  
I did test twice. The first attempt was part of a larger codebase where another bug messed things up. The second self-contained test had a typo. Sigh... I need a vacation... somewhere warm... with lots of scantily-clad ladies... –  thkala Jan 25 '12 at 11:33

You wrote long l = (i | 0xffffffffL); in your second example.

It should be:

long l = (i & 0xffffffffL);

and then you will get the result you are expecting.

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Yeah, I caught that too, albeit a bit (!) late. It's a wonder how sometimes you find the answer just after posting to SO, even if there is no actual answer... –  thkala Jan 25 '12 at 11:35

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