Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

How do I round a number in Groovy? I would like to keep 2 decimal places.

For example (pseudo-code):

round(1.2334695) = 1.23
round(1.2686589) = 1.27
share|improve this question

5 Answers 5

up vote 16 down vote accepted

You can use:

Math.round(x * 100) / 100

If x is a BigDecimal (the default in Groovy), this will be exact.

share|improve this answer
    
Make sure to assign your variable to the result of this expression - example: x = Math.round(x * 100) / 100 –  Joel Miller Mar 7 '13 at 20:27

Use mixin.

class Rounding {
    public BigDecimal round(int n) {
        return setScale(n, BigDecimal.ROUND_HALF_UP);
    }
}

Add this to your startup class and round() is a first-class method of BigDecimal:

BigDecimal.mixin Rounding

Test cases:

assert (new BigDecimal("1.27")) == (new BigDecimal("1.2686589").round(2))
assert (1.2686589).round(2) == 1.27
assert (1.2334695).round(2) == 1.23
share|improve this answer

if your dealing with Double´s or float´s

you can simply use

assert xyz == 1.789
xyz.round(1) == 1.8
xyz.round(2) == 1.79
share|improve this answer

Like this:

def f = 1.2334695;
println new DecimalFormat("#.##").format(f);

Or like this:

println f.round (new MathContext(3));

Output:

1.23

Reference: Formatting a Decimal Number

share|improve this answer
1  
MathContext(3) specifies total precision of 3 numerals so e.g. 12.34 would become 12.3 or 123.45 would become 123 –  jako512 Feb 5 '13 at 13:37
    
you could just pass a number istead of MathContext .. –  john Smith Jan 29 '14 at 17:10

Working from @sjtai's great answer, this is the Mixin I use for just about all my decimal rounding needs:

class Rounding {
    public BigDecimal round(int decimalPlaces = 0, RoundingMode roundingMode = RoundingMode.HALF_EVEN) {
        return setScale(decimalPlaces, roundingMode);
    }
}

If rounds to an int by default, and uses an "even" rounding method (reducing statistical error by default is always a good thing), but it still allows the caller to easily override these.

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.