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In C++, I enjoyed having access to a 64 bit unsigned integer, via unsigned long long int, or via uint64_t. Now, in Java longs are 64 bits, I know. However, they are signed.

Is there an unsigned long (long) available as a Java primitive? How do I use it?

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8 Answers 8

up vote 33 down vote accepted

I don't believe so. Once you want to go bigger than a signed long, I think BigInteger is the only (out of the box) way to go.

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Nope, there is not. You'll have to use the primitive long data type and deal with signedness issues, or use a class such as BigInteger.

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No, there isn't. The designers of Java are on record as saying they didn't like unsigned ints. Use a BigInteger instead. See this question for details.

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16  
I respect Gosling for what he's done, but I think his defense of no unsigned ints is one of the dumbest excuses I've ever heard. :-) We've got waaaay more wonky things in Java than unsigned ints... :-) –  Brian Knoblauch Feb 3 '09 at 20:16
    
Gosling at JavaPolis 2007 gave an example that confusingly doesn't work for unsigned ints. Josh Bloch pointed out it doesn't work for signed ints either. Arbitrary sized integers ftw! –  Tom Hawtin - tackline Feb 3 '09 at 21:20
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I don't respect Gosling for what he has done. To say that people don't understand unsigned math? It's signed math that is complex, especially at the bit level. I don't understand why people love Java when it was clearly written for stupid people (maybe it's computer science's most subtle joke?). –  PP. Dec 4 '09 at 10:18
    
Brian Knoblauch - yep, its created vulnerabile code practice. See Second "Master Key" Style APK Exploit Is Revealed Just Two Days After Original Goes Public, Already Patched By Google. –  jww Jul 14 '13 at 5:06
1  
@PP.: I wish language designers would recognize the importance of distinguishing numbers from algebraic rings (what "wrapping integer" types are). Any size number should implicitly convert to any size ring, but rings should only convert to numbers via function or via explicit typecast to the same size number. The behavior of C, where unsigned types generally behave as algebraic rings but sometimes behave as numbers is probably the worst of all possible worlds; I can't fault Gosling for wanting to avoid that, though he took totally the wrong approach for doing so. –  supercat Feb 25 at 23:58

Java does not have unsigned types. As already mentioned, incure the overhead of BigInteger or use JNI to access native code.

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13  
char is an unsigned 16-bit value ;) –  Peter Lawrey Feb 3 '09 at 21:28
6  
ARGH! You got me there. Well done my friend –  basszero Feb 4 '09 at 14:06

Depending on the operations you intend to perform, the outcome is much the same, signed or unsigned. However, unless you are using trivial operations you will end up using BigInteger.

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For unsigned long you can use UnsignedLong class from Guava library:

It supports various operations:

  • plus
  • minus
  • times
  • mod
  • dividedBy

The thing that seems missing at the moment are byte shift operators. If you need those you can use BigInteger from Java.

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Starting Java 8, there is support for unsigned long (unsigned 64 bits). The way you can use it is:

Long l1 = Long.parseUnsignedLong("17916881237904312345");

To print it, you can not simply print l1, but you have to first:

String l1Str = Long.toUnsignedString(l1)

Then

System.out.println(l1Str);
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Seems like in Java 8 some methods are added to Long to treat old good [signed] long as unsigned. Seems like a workaround, but may help sometimes.

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