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For certain hash functions in Java it would be nice to see the value as an unsigned integer (e.g. for comparison to other implementations) but Java supports only signed types. We can convert a signed int to an "unsigned" long as such:

public static final int BITS_PER_BYTE = 8;
public static long getUnsignedInt(int x) {
  ByteBuffer buf = ByteBuffer.allocate(Long.SIZE / BITS_PER_BYTE);
  buf.putInt(Integer.SIZE / BITS_PER_BYTE, x);
  return buf.getLong(0);
}
getUnsignedInt(-1); // => 4294967295

However, this solution seems like overkill for what we're really doing. Is there a more efficient way to achieve the same thing?

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6 Answers 6

up vote 35 down vote accepted

Something like this?

int x = -1;
long y = x & 0x00000000ffffffffL;

Or am I missing something?

public static long getUnsignedInt(int x) {
    return x & 0x00000000ffffffffL;
}
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+1 right. Nope, it was me that was missing something -- I confused myself with widening conversions and lost sight of the simple approach =) –  maerics Mar 6 '12 at 6:04
    
Meh, it happens. Especially in C++ where there's a bazillion ways to do everything. –  Mysticial Mar 6 '12 at 6:06
    
Would x & 0xFFFFFFFFL work too? –  Paranaix Nov 29 '12 at 16:33
    
@Paranaix I believe that would also work. It's been a while since I wrote this answer, so I think the reason why I padded with zeros was out of habit, since I do mostly C++ and the integer promotion rules there are more complicated with signed/unsigned types. –  Mysticial Nov 29 '12 at 16:38
3  
Thanks, ran into this issue using Murmur Hashes. –  Richard Clayton Dec 24 '12 at 0:16

Guava provides UnsignedInts.toLong(int)...as well as a variety of other utilities on unsigned integers.

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You can use a function like

public static long getUnsignedInt(int x) {
    return x & (-1L >>> 32);
}

however in most cases you don't need to do this. You can use workarounds instead. e.g.

public static boolean unsignedEquals(int a, int b) {
    return a == b;
}

For more examples of workarounds for using unsigned values. Unsigned utility class

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Your getUnsignedInt function doesn't work. I made a serious error in my program as I didn't test it. :(( –  user2707175 Jul 8 '14 at 20:08

other solution.

public static long getUnsignedInt(int x) {
    if(x > 0) return x;
    long res = (long)(Math.pow(2, 32)) + x;
    return res;
}
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2  
Math.pow is very expensive and calculated every time. By comparison 1l << 32 is fast and only calculated by the compiler. (And doesn't need to be cast to a long. –  Peter Lawrey Mar 6 '12 at 8:23
    
Can you please give me some link or description on how these conversion work, m not able to understand it. –  ManMohan Vyas Sep 28 '12 at 9:45
    
Because int is 32 bit and use two's complement to represent. You can check two's complement in wikipedia(en.wikipedia.org/wiki/Two's_complement) to get more details –  lmatt Nov 14 '12 at 9:15

Just my 2 cents here, but I think it's a good practice to use:

public static long getUnsignedInt(int x) { return x & (~0L); // ~ has precedence over & so no real need for brackets }

instead of:

return x & 0xFFFFFFFFL;

In this situation there's not your concern how many 'F's the mask has. It shall always work!

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This is completely wrong. The int is promoted to a long, and then you're masking it with a bit string of 64 ones which does nothing. The following prints -1 instead of 4294967295: int i = -1; long j = i & (~0L); System.out.println(j); –  PBJ Apr 23 at 20:02
long abs(int num){
    return num < 0 ? num * -1 : num;
}
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