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I have a very large number (number1) stored as a BigInteger, and a double (number2). I plan to multiply number1 and number2, and store the result as a double.

Using the multiply() method has not helped me achieve this. What is the way forward?

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3  
Your question lacks some vital information. First being, what does "has not helped me" mean? –  Brian Roach Oct 28 '12 at 2:36
2  
"I plan to multiply number1 and number2, and store the result as a double." Why? Trying to crack some unproven mathematical principle? –  Andrew Thompson Oct 28 '12 at 3:04

4 Answers 4

up vote 4 down vote accepted

The simplest solution is probably big.doubleValue() * myDouble.

This won't be particularly fast, unfortunately, since BigInteger.doubleValue() has a notably slow implementation. (It might be faster in the future...perhaps if Oracle applies my patch.)

Alternately, you can round a double directly to a BigInteger using Guava's DoubleMath.roundToBigInteger(double, RoundingMode).

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Using the doubleValue() worked. Javadoc says that this method returns the BigInteger as a double. But how is this the case? The value of the BigInteger is so large, how can it fit within the scope of a double? –  jesterII Oct 28 '12 at 2:49
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Doubles can hold values up to 2^1024, or about 2 * 10^308, if I remember correctly. It only has limited precision in storing those values, though. –  Louis Wasserman Oct 28 '12 at 3:03
    
dasblinkenlight's BigDecimal answer is far better than this answer as there no loss is precision –  Steve Kuo Oct 29 '12 at 18:42
    
I frankly agree. I'm not sure why that answer wasn't accepted instead of mine. –  Louis Wasserman Oct 29 '12 at 18:44

In order to preserve the arbitrary precision as long as possible, do the multiplication in BigDecimal, and then convert the result to double, like this:

BigDecimal tmp = new BigDecimal(myBigInteger);
tmp = tmp.multiply(new BigDecimal(myDouble));
double res = tmp.doubleValue();
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Call .doubleValue() on the BigInteger, and multiply them as doubles.

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Why is BigInteger#multiply() not helpful? There are really only two reasonable answers:

BigInteger a = /* whatever */;
double b = /* whatever */

// either
double result = a.multiply(new BigInteger(b)).doubleValue();
// or
double result = a.doubleValue() * b;
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"There are really only two reasonable answers" - apart from the other reasonable answers :-) –  Stephen C Oct 28 '12 at 3:26

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