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Please forgive the obvious "I should probably already know this" element to the question but I'm not seeing a method that I would run the division side of this evaluation through, to get the result to come back as true.

I'm looking for a function that would return the result as a float of specific precision, so that the following would work...

float a = 0.66;

if( magicPrecisionFunction(2.0f/3.0f , 2) == a){ //the 2 specifies the level of precision

I realize that I can write this myself in 2 minutes, but I was hoping to find a Java native way to do this "properly".

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Using double or float, you will never have a precise value for floating point numbers. If you want to handle these numbers, use BigDecimal instead. Sorry to say but yes, this is a you should probably already know this. – Luiggi Mendoza May 13 '13 at 22:31
I don't think you mean irrational numbers. Every finite number you can represent in a floating type is rational. – Paulpro May 13 '13 at 22:35
AFAIK you can round the result. If you see the java.math.BigDecimal documentation you can achieve this using BigDecimal#setScale – Luiggi Mendoza May 13 '13 at 22:40
AH! so that's the secret to BigDecimal. Good to know! thanks very much. – Genia S. May 13 '13 at 22:41
You're welcome. – Luiggi Mendoza May 13 '13 at 22:41

3 Answers 3

up vote 2 down vote accepted

If you want precision I wouldn't use float as double is simpler to write and gives you half a trillion times the accuracy.

Similar to @rofl's example

int n = 2, d = 3;
if ((long)(100.0 * n / d) == 66) {

Not only is this about 100x faster than using BigDecimal, the code is shorter to write.

BTW The proper way to to convert a double to a BigDecimal is to use valueOf

BigDecimal bd = BigDecimal.valueOf(0.1);
System.out.println(bd); // prints 0.1
share|improve this answer

how abut...

if (Math.round(100.0f * 2.0f/3.0f) == 66) {

EDIT: Ahhh... missed the point... not round, but truncatte. in which case:

if ((int)(100.0f * 2.0f / 3.0f) == 66) {
share|improve this answer
What made you think it couldn't return 67? – Luiggi Mendoza May 13 '13 at 22:42
yeah, I think Math.floor would work, and again, as I said, I can write something like this myself, but I was curious if there was a built in Java mechanism to handle this. – Genia S. May 13 '13 at 22:44
BigDicimald are the sledge-hammer answer, big and slow. Yoy will notice the impact in a tight loop.... – rolfl May 13 '13 at 22:48

you can use BigDecimal, it will do exactly what you need, you can create the number you need and set the precision with MathContext

    BigDecimal b1 = new BigDecimal("2.0");
    BigDecimal b2 = new BigDecimal("3.0");
    BigDecimal ans = b1.divide(b2, new MathContext(2)); // 2 is precision
share|improve this answer
Interesting. You pass in a String to get back your resulting object? – Genia S. May 13 '13 at 22:43
you dont have to pass a string, this constructor can take many classes, take a look at it – Dima May 13 '13 at 22:44
@Dr.Dredel because if you pass a double or a float the BigDecimal instance will work with the wrong number i.e. 0.1 could be 0.9999999... – Luiggi Mendoza May 13 '13 at 22:44
understood... thanks very much – Genia S. May 13 '13 at 22:45
yes doubles are very bad, you should always work with BigDecimal if you need precise calculations – Dima May 13 '13 at 22:45

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