15

I am trying to translate some of my Haskell code into Scala and I am having difficulty with creating infix operators.

In Haskell say I have this infix operator defined as:

infix 1 <=>                          // this specifies the operator precedence
(<=>) :: Bool -> Bool -> Bool        // this is the type signature of this operator (it says, it takes two Boolean values and returns a Boolean value)
x <=> y = x == y                     // this is the definition of the operator, it is mimicking the behaviour of the logical implication 'if-and-only-if'

So now if I have two booleans, p and q where p == True and q == False, p <=> q will return False.

My question is how do I go about translating this into Scala. I had a look at the Rational class defined in Odersky's Programming in Scala book and tried to follow the example. This is as far as I got:

class Iff (b : Boolean){
  def <=> (that : Boolean) : Boolean = {
    this.b == that
  }
}

val a = new Iff(true)
println(a.<=>(false))  // returns false as expected

I've probably not done this in idiomatic Scala so I am looking for help in that department.

My questions are:

  1. Have I implemented this idiomatically in Scala? If not, what is that best way to this in Scala?
  2. Did I have to create that class in order to define this operator? Meaning, can I define a standalone method in Scala like I have in the Haskell code above?
  3. How to specify the fixity level of the operator in Scala? That is, it's precedence level.
17

You can define implicit class

implicit class Iff(val b: Boolean) extends AnyVal {
  def <=>(that: Boolean) = this.b == that
}

and now you can call it without using new :

true <=> false // false
false <=> true // false
true <=> true  // true
  • 1
    Any reason to create a Value class (extends AnyVal) ? It also works without. – ccheneson May 27 '14 at 14:52
  • 5
    Yes it works without it but according to docs by extending class with AnyVal you are avoiding allocating the object at runtime, instead it is represented as its underlying value - the one that is specified in the constructor. So in this case, at runtime, your class Iff will be represented as Boolean. – goral May 27 '14 at 15:06
  • 5
    @ccheneson Since you've tagged the question as Haskell, this might help your understanding: Extending AnyVal in Scala is basically the same as using newtype instead of data in Haskell. It creates a wrapper at compile time that doesn't exist at runtime. – Tobias Brandt May 27 '14 at 20:44

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

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