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How can I get the largest possible value of a BigDecimal variable can hold? (Preferably programmatically, but hardcoding would be ok too)

EDIT
OK, just realized there is no such thing since BigDecimal is arbitrary precision. So I ended up with this, which is sufficiently good for my purpose:
BigDecimal my = BigDecimal.valueOf(Double.MAX_VALUE)

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7  
You need alot of memory to start with. ;) –  Peter Lawrey Jul 22 '11 at 15:06
    
What would you store it in? –  biziclop Jul 22 '11 at 15:09
    
@Peter that means there is no such constant value since BigDecimal is arbitrary precision, right? –  Caner Jul 22 '11 at 15:10
    
@LAS_VEGAS Correct, there's just no such thing. You have to pick a limit and say that's the most you want to support. –  biziclop Jul 22 '11 at 15:13
    
By the way, you probably also want to define the smallest (positive) number that you allow, to limit the number of digits stored per number to a reasonable memory footprint. –  biziclop Jul 22 '11 at 15:17

4 Answers 4

up vote 12 down vote accepted

Its an arbitrary precision class, it will get as large as you'd like until your computer runs out of memory.

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13  
Not true, it is limited to Integer.MAX_VALUE words. –  Andrew Jul 22 '11 at 15:15
    
Andre, can you explain or give link ? What do you mean by "it is limited to Integer.MAX_VALUE words" ? Thanks –  Adio Mar 10 at 22:42
    
@Adio, it stores the number using an array of ints. In Java, arrays are indexed by ints, so can have at most Integer.MAX_VALUE entries. So the largest possible BigInteger consumes roughly 8GB of RAM (4 bytes an int * 2GB entries). In a 64-bit JVM, the heap size could be many times that, so available memory is not always the limiting factor to the largest possible BigInteger or BigDecimal. –  Simon Kissane Nov 22 at 21:17

Looking at the source BigDecimal stores it as a BigInteger with a radix,

private BigInteger intVal;
private int scale;

and from BigInteger

/** All integers are stored in 2's-complement form.
63:    * If words == null, the ival is the value of this BigInteger.
64:    * Otherwise, the first ival elements of words make the value
65:    * of this BigInteger, stored in little-endian order, 2's-complement form. */
66:   private transient int ival;
67:   private transient int[] words;

So the Largest BigDecimal would be,

ival = Integer.MAX_VALUE;
words = new int[Integer.MAX_VALUE]; 
scale = 0;

You can figure out how to set that. :P

[Edit] So just to calculate that, In binary that's,

(2^35)-2 1's (I think?)

in 2's complement

01111111111111111...until your RAM fills up.

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1  
There's an amusing article on the equivalent in Common Lisp: jwz.org/blog/2008/03/most-positive-bignum –  Nathan Hughes Jul 22 '11 at 15:41

Given enough RAM, the value is approximately:

2240*10232

(It's definitely out by a few orders of magnitude but in relative terms it's a very precise estimate.)

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You can represent 2^2147483647-1 however after this value some methods do not work as expected. It has 646456993 digits.

System.out.println(BigInteger.ONE.shiftLeft(Integer.MAX_VALUE)
                                 .subtract(BigInteger.ONE).bitLength());

prints

2147483647

however

System.out.println(BigInteger.ONE.shiftLeft(Integer.MAX_VALUE).bitLength());

prints

-2147483648

as there is an overflow in the number of bits.

BigDecimal.MAX_VALUE is large enough that you shouldn't need to check for it.

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