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I want to switch from Java to a scripting language for the Math based modules in my app. This is due to the readability, and functional limitations of mathy Java.

For e.g, in Java I have this:

BigDecimal x = new BigDecimal("1.1");
BigDecimal y = new BigDecimal("1.1");
BigDecimal z = x.multiply(y.exp(new BigDecimal("2"));

As you can see, without BigDecimal operator overloading, simple formulas get complicated real quick.

With doubles, this looks fine, but I need the precision.

I was hoping in Scala I could do this:

var x = 1.1;
var y = 0.1;
print(x + y);

And by default I would get decimal-like behaviour, alas Scala doesn't use decimal calculation by default.

Then I do this in Scala:

var x = BigDecimal(1.1);
var y = BigDecimal(0.1);
println(x + y);

And I still get an imprecise result.

Is there something I am not doing right in Scala?

Maybe I should use Groovy to maximise readability (it uses decimals by default)?

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Are you really sure that using BigDecimal is the correct thing to do? What kind of calculations are you doing? –  Michael Borgwardt Apr 23 '10 at 10:06
1  
I can't verify the problem with BigDecimal in Scala. It's working as expected at least in 2.8.1 –  gerferra Jan 20 '11 at 11:23

6 Answers 6

up vote 25 down vote accepted

I don't know Scala, but in Java new BigDecimal(1.1) initializes the BigDecimal with a double value and thus it is not exactly equal to 1.1. In Java you have to use new BigDecimal("1.1") instead. Maybe that will help in Scala as well.

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1  
Man, that's ugly. I guess if you care about decimal precision, using Groovy is by far the prettiest option. Its BigDecimal support isn't completely perfect yet, but far better than that of any other language. –  mcv Jan 3 '11 at 14:00

Change your Scala code to this:

var x = BigDecimal("1.1");   // note the double quotes
var y = BigDecimal("0.1");
println(x + y);

and it will work just like it does in Java.

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What's happening here? Why is new neither needed nor accepted? –  ripper234 Mar 1 '13 at 9:14
    
Note that BigDecimal("1.0") without new is shorthand for BigDecimal.apply("1.0") - it calls the apply method of object BigDecimal, the companion object for class BigDecimal. The apply method is a factory method. –  Jesper Mar 1 '13 at 9:46
    
It doesn't work with new (at least not in Scala 2.10.0), because apparently BigDecimal doesn't have a public constructor that takes a String. That's probably a bug in Scala's version of BigDecimal. Note that it works if you do new java.math.BigDecimal("1.0"). –  Jesper Mar 1 '13 at 9:47
    
That's a different class. Where can I read about how the constructorless version works? –  ripper234 Mar 1 '13 at 10:06
1  
See the API docs of object scala.math.BigDecimal. The notation where BigDecimal(...) means the same as BigDecimal.apply(...) is Scala compiler magic. –  Jesper Mar 1 '13 at 10:26

Scala is most definitely the same as Java in this respect.

As per Joachim's answer, writing val x = BigDecimal(1.1)

is equivalent to writing

val d : Double = 1.1
val x = BigDecimal(d)

The problem, of course, is that the Double d ALREADY has the rounding error, so you're initialising x with bad data.

Use the constructor that accepts a string instead, and all will be fine.

Given your example, you'd also be better off using vals instead of vars, and you can safely leave the semicolons off in Scala as well.

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1  
I can't verify the problem with BigDecimal in Scala. It's working as expected in 2.8.1 –  gerferra Jan 20 '11 at 11:21
    
It is not equivalent. In the second case, you polute the namespace with a new variable, d. –  Rok Kralj Jul 13 at 18:46
scala> implicit def str2tbd(str: String) = new {
     |     def toBD = BigDecimal(str)
     | }
str2tbd: (str: String)java.lang.Object{def toBD: scala.math.BigDecimal}

scala> var x = "1.1".toBD
x: scala.math.BigDecimal = 1.1

scala> var y = "0.1".toBD
y: scala.math.BigDecimal = 0.1

scala> x + y
res0: scala.math.BigDecimal = 1.2

scala> implicit def str2bd(str: String) = BigDecimal(str)
str2bd: (str: String)scala.math.BigDecimal

scala> x + y + "1.2345566"
res1: scala.math.BigDecimal = 2.4345566

scala>
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This doesn't actually answer the question, it simply demonstrates a different way to use the string constructor as already covered in different answers! –  Kevin Wright May 2 '10 at 17:19

You can store values as Integer/String (without precision) internally and use scale (this is a transcript from Scala REPL):

scala> val Scale = 2
Scale: Int = 2

scala> val x = BigDecimal(110, Scale)
x: scala.math.BigDecimal = 1.10

scala> val y = BigDecimal(303, Scale)
y: scala.math.BigDecimal = 3.03

scala> (x+y, (x+y).scale)
res0: (scala.math.BigDecimal, Int) = (4.13,2)

scala> (x*2, (x*2).scale)
res1: (scala.math.BigDecimal, Int) = (2.20,2)

Or if you want to parse a string, you can control rounding:

scala> val z = BigDecimal("8.937").setScale(Scale, BigDecimal.RoundingMode.FLOOR)      
z: scala.math.BigDecimal = 8.93

scala> val z = BigDecimal("8.937").setScale(Scale, BigDecimal.RoundingMode.CEILING)
z: scala.math.BigDecimal = 8.94
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1  
Why you use val x = new BigDecimal(new JBigD(JBigI.valueOf(110), Scale)) instead of val x = BigDecimal(110, Scale)? –  Marcello Nuccio Feb 27 '11 at 15:23
    
Thanks for pointing out! I cannot recall if this method was available in Scala 2.7.x, but it is definitely the way to go in Scala 2.8. I'll fix the answer. –  Alexander Azarov Feb 27 '11 at 18:38

I know this question is old and answered, but another option, if you're open to different languages (as the OP seemed to be), would be to use Clojure. Clojure has, IMO, some of the simplest syntax for BigDecimal math (note the trailing Ms -- that indicates BigDecimal):

user=> (def x 1.1M)
#'user/x
user=> (def y 1.1M)
#'user/y
user=> (def z (* x (.pow y 2)))
#'user/z
user=> z
1.331M
user=> (type z)
java.math.BigDecimal

I like Clojure for math since it defaults to precision in many cases, e.g. its use of Ratio:

user=> (/ 60 14)
30/7
user=> (type (/ 60 14))
clojure.lang.Ratio
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1  
Definately better than the presented Scala version - if one likes polish notation. –  ziggystar Jun 6 '11 at 14:11
1  
@ziggystar Yep, you have to be willing to accept prefix/Polish notation, which might be seen as a big hurdle for many :) –  overthink Jun 6 '11 at 16:11
    
Just wanted to point out that because Clojure is so malleable, it is possible for it to use infix notation with macros. This post shows an example in the Incanter library from some years ago. –  ShawnFumo Mar 11 at 1:10

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