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I am trying to measure the accuracy of a computed result (as a double), compared to a BigDecimal with the known correct result to arbitrary precision. I want to make sure it is correct up to x decimal places. I figure this can be done like so:

(order of magnitude of correct result) - (order of magnitude of difference) > x

I am having trouble finding a simple way to compute the order of magnitude of a BigDecimal though. Any ideas?

If this is a bad way to measure accuracy, I would be open to other techniques.

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2 Answers 2

up vote 2 down vote accepted

To check the number of correct decimal places you just want the order of magnitude of the difference, not the order of magnitude of the correct result. So I suppose you need to convert your double computed result to a BigDecimal, subtract the precise result, then convert back to a double and take the logarithm in base 10.

Or if you just need to check whether the result is accurate to x decimal places then just check if the difference is greater than 0.5 * 10^(-x), or equivalently:

int x = 3; // number of decimal places required
BigDecimal difference = accurateResult.subtract(new BigDecimal(approxResult));
BigDecimal testStat = difference.movePointRight(x).abs();
boolean ok = testStat.compareTo(new BigDecimal(0.5)) <= 0;

Actually that probably isn't quit right depending on exactly what you mean by "correct to x decimal places" and how rigorous you need to be. You could say that 0.15001 and 0.24999 are equal to 1 decimal place (both round to 0.2) but that 0.19999 and 0.25001 are not even though the difference is smaller. If you go that way I think you just have to explicitly round both numbers to x decimal places and then compare.

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Since you seem to be interested only in a rough estimate: you should compare the log_10 of both values, which tells you the order of magnitude of you error... You can get a good approximation of log_10 of a BigInteger by looking at the length of its decimal representation toString(10).length()

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