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I need to represent some numbers in Java with perfect precision and fixed number of decimal points after decimal point; after that decimal point, I don't care. (More concretely - money and percentages.)

I used Java's own BigDecimal now, but I found out, that it's really slow and it starts to show in my application.

So I want to solve it with a "regular" integers and a fixed-point arithmetics (long integers have big enough precision for my purposes).

Now, I would think that I am not the first one who has this kind of problem and there would be already a library for that, that already has multiplication/division implemented - but it seems that it isn't.

Now, I very probably can write it myself (and I probably will), but really, am I really the first person that needs this? Isn't there already some library for that?

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%100 precision? This is infinitive digit number –  huseyin tugrul buyukisik Aug 11 '12 at 18:03
    
whats your needed digit number after the point? –  huseyin tugrul buyukisik Aug 11 '12 at 18:04
    
Sorry, 100% was needed figuratively. I will add more info. –  Karel Bílek Aug 11 '12 at 18:05

2 Answers 2

Are you completely sure BigDecimal is the performance problem? Did you use a profiler to find out? If yes, two options that could help are:

1) Use long and multiply all values by a factor (for example 100 if you are interested in cents).

2) Use a specially designed class that implements something similar to BigDecimal, but using long internally. I don't know if a good open source library exists (maybe the Java Math Fixed Point Library?). I wrote one such class myself quite a long time ago (2001 I believe) for J2ME. It's a bit tricky to get right. Please note BigDecimal uses a long internally as well except if high precision is needed, so this solution will only help a tiny bit in most cases.

Using double isn't a good option in many cases, because of rounding and precision problems.

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+1 All problems can be solved and rounding errors are not random errors and easily solved. IHMO I would use long if that is simpler, otherwise double and BigDecimal if you have really large numbers. –  Peter Lawrey Aug 11 '12 at 19:04
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Use a specially designed class that implements something similar to BigDecimal, but using long internally. BigDecimal does exactly that, unless inflated (i.e. long ain't enough). –  bestsss Aug 11 '12 at 19:22
    
BigDecimal doesn't use long internally. It uses BigInteger, which in turn uses an int[] internally. That's why BigDecimal is a bit slower than using a long. However, in many (most) cases the performance difference is too small to to be important. –  Thomas Mueller Aug 11 '12 at 19:46
    
It uses BigInteger, which in turn uses an int[] internally untrue for values that fit long. Read the code again, I claim I know how it works. –  bestsss Aug 11 '12 at 20:31
    
/** * If the absolute value of the significand of this BigDecimal is * less than or equal to {@code Long.MAX_VALUE}, the value can be * compactly stored in this field and used in computations. */ private transient long intCompact; –  bestsss Aug 11 '12 at 20:32

Not sure why you need a library for it.

For example, say you want to add two longs with the same fixed precision

long c = a + b;

Say you have a fixed precision number you want to multiple by an integer

long c = a * i;

Say you want to divide a number by a integer rounding to zero

long c = a / i;

Say you want to print a fixed precision number with 3 decimal places.

System.out.println(c / 1e3);

Perhaps you are over thinking the problem and assuming you need a library for everything.

If you are using long or double you might want a small number helper methods for rounding, but you don't need a library as such.

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-1 library would be useful, 3 fraction digits example: 1.234 * 1.234 is 1234 * 1234 = 1522756, you have to divide by 1000, otherwise you get 1522.756 instead of correct 1.522 –  peenut Mar 22 '13 at 8:20
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@Peenut It's so trivial to write a helper class for your applications needs, but I have never bothered, nor have I ever seen it done. Not sure why -1. –  Peter Lawrey Mar 22 '13 at 14:23
    
let me quote better answer: "It's a bit tricky to get right." –  peenut May 1 '13 at 11:34

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