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.

I'm trying to create a DSL and running into a problem. I have these definitions:

case class Var(name: String)
case class Lam(v: Var, t: Var)
val (a, b) = (Var("a"), Var("b"))

I want to be able to do this:

scala> \ a b
Lam(Var(a),Var(b))

Reading up on the rules of parenthesis dropping, I see that I need to chain functions that take one parameter each, so I've created a series of "builder" classes that perform the construction:

class LamBuilderB(v: Var) {
    def apply(t: Var) = Lam(v, t)
}

class LamBuilderA {
    def apply(v: Var) = new LamBuilderB(v)
}

val \ = new LamBuilderA

I had hoped this would work since each apply takes only one argument. But, it doesn't seem like dropping the parentheses is legal for apply since it wants to treat the argument as a method name:

scala> \(a)(b)
res95: Lam = Lam(Var(a),Var(b))

scala> \ a b
error: value a is not a member of LamBuilderA
    \ a b
      ^

Any ideas how how I can get the DSL syntax without parentheses?

Bonus Question: Can I get this?:

scala> \a.b
Lam(Var(a),Var(b))
share|improve this question
1  
I certainly hope you can't get \a.b! Overloading . is not what I would call a good idea for an embedded DSL. –  Rex Kerr Jul 21 '11 at 19:42
add comment

2 Answers

up vote 5 down vote accepted

You can get pretty close using one of 4 unary prefix operators (~, !, +, -):

trait Expr {
    def &(other: Expr) = Lam(this, other)
    def unary_~ = this
}

case class Var(name: String) extends Expr
case class Lam(a: Expr, b: Expr) extends Expr

scala> ~ Var("a") & Var("b")
res0: Lam = Lam(Var(a),Var(b))

scala> ~ Var("a") & Var("b") & Var("c")
res1: Lam = Lam(Lam(Var(a),Var(b)),Var(c))
share|improve this answer
    
Thanks for this interesting answer. I think I'm going to have to stick with \(a,b) as my syntax, but taking advantage of a unary operator is a good idea. –  dhg Jul 23 '11 at 3:58
add comment

I'm afraid I don't have an answer and would be quite interested to see what other people post. However, you could avoid LamBuilderA:

object \ {
  def apply(a: Var) = new LamBuilderB(a)
}
share|improve this answer
    
Thanks. I actually do have that in my real code, but I was trying to spell things out fully for the sake of demonstration. –  dhg Jul 21 '11 at 18:00
add comment

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.