60

I looked into this stackoverflow question relating to Big Integer and specifically I do not understand this line (the words in italics):

In the BigInteger class, I have no limits and there are some helpful functions there but it is pretty depressing to convert your beautiful code to work with the BigInteger class, specially when primitive operators don't work there and you must use functions from this class.

I don't know what I am missing but to represent something that has no limit you would require infinite memory ? Whats is the trick here ?

Improve this question
1

4 Answers 4

Reset to default
94

There is no theoretical limit. The BigInteger class allocates as much memory as it needs for all the bits of data it is asked to hold.

There are, however, some practical limits, dictated by the memory available. And there are further technical limits, although you're very unlikely to be affected: some methods assume that the bits are addressable by int indexes, so things will start to break when you go above Integer.MAX_VALUE bits.

Improve this answer
12
  • 2
    It is very much like a String or a byte[] that way (although I think those are technically limited to integer-addressable elements).
    – Thilo
    Aug 23, 2012 at 9:20
  • 2
    @Thilo: so is BigInteger: the data is held in an int[] which puts a theoretical limit on the size of numbers it can represent.
    – Michael Borgwardt
    Aug 23, 2012 at 9:20
  • 2
    @MichaelBorgwardt The backing int[] array is surely an implementation detail, rather than being specified behaviour, no?
    – Graham Borland
    Aug 23, 2012 at 9:24
  • 6
    An array in Java can only have 2^32 elements currently. Some people want 2^64. A BigInteger stores its bits in an int[], so it can store at most 2^32 ints, i.e. 2^37 bits right now. Pretty large.
    – Thilo
    Aug 23, 2012 at 9:27
  • 8
    @Graham Borland: The backing int[] is an implementation detail, but the BigInteger API has several methods using int parameters to access the nth bit and the toString() methods indirectly limits the theoretical magnitude of the BigInteger implementation, since the number must be representable as a String. Because of that, a BigInteger can't be larger than 2^(2^31-1)-1, which is much less than the limit imposed by the backing int array.
    – jarnbjo
    Aug 23, 2012 at 9:36
18

Graham gave great answer to this question. I would like only to add that you have to be carefull with valueOf method because it is created using long parameter so the maximum value is Long.MAX_VALUE.

Improve this answer
3
  • 3
    The one that takes a long parameter obviously cannot go beyond, but there are constructors that take Strings or byte arrays.
    – Thilo
    Aug 23, 2012 at 9:32
  • 1
    There's no public constructor that takes long as argument. There's only a getter (with warnings about losing information in the documentation).
    – martijno
    Aug 23, 2012 at 9:38
  • 4
    No real need not be careful, as the BigInteger.valueOf(long) method will give you a compilation error if you try to write a literal that exceeds Long.MAX_VALUE. Furthermore, it's easy to construct a BigInteger much greater, say BigInteger.valueOf(10).pow(10000)
    – leonbloy
    Jan 10, 2014 at 2:03
6

Yes its used when we need very big numbers with arbitrary precision. It's important to note that "arbitrary" precision or number of digits does not mean "unlimited": it means that the number of digits in a number or number of digits of precision in a calculation is limited by memory and/or defined limits to precision that we specify.

Improve this answer
3

Look at the BigInteger class source code, you will see (it can be done with NetBean). A number will be represented as an int arrays. Example, 10113 will be [1, 0, 1, 1, 3] (this is not exactly what the BigInteger class does, just an example how big number module work). So, technically, its only limit will be your memory.

Improve this answer

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service and acknowledge you have read our privacy policy.

Not the answer you're looking for? Browse other questions tagged or ask your own question.