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I am trying to avoid constructs like this:

val result = this.getClass.getSimpleName
if (result.endsWith("$")) result.init else result

Ok, in this example the then and else branch are simple, but you can image complex ones. I built the following:

object TernaryOp {
  class Ternary[T](t: T) {
    def is[R](bte: BranchThenElse[T,R]) = if (bte.branch(t)) bte.then(t) else bte.elze(t)
  }
  class Branch[T](branch: T => Boolean) {
    def ?[R] (then: T => R) = new BranchThen(branch,then)
  }
  class BranchThen[T,R](val branch: T => Boolean, val then: T => R)
  class Elze[T,R](elze: T => R) {
    def :: (bt: BranchThen[T,R]) = new BranchThenElse(bt.branch,bt.then,elze)
  }
  class BranchThenElse[T,R](val branch: T => Boolean, val then: T => R, val elze: T => R)
  implicit def any2Ternary[T](t: T) = new Ternary(t)
  implicit def fct2Branch[T](branch: T => Boolean) = new Branch(branch)
  implicit def fct2Elze[T,R](elze: T => R) = new Elze(elze)
}

Defined that, I can replace the above simple example with:

this.getClass.getSimpleName is {s: String => s.endsWith("$")} ? {s: String => s.init} :: {s: String => s}

But how can I get rid of the s: String =>? I want something like that:

this.getClass.getSimpleName is {_.endsWith("$")} ? {_.init} :: {identity}

I guess the compiler needs the extra stuff to infer types.

share|improve this question
    
Since I didn't actually have this in my answer--the reason you're having trouble is that type inference works best from left to right, but you're binding your tokens together from right to left because of operator precedence. If you make all of your statements words (with the same precedence) and change the way things group together, you'll get the inference that you want. (I.e. you would have HasIs, IsWithCondition, ConditionAndTrueCase classes that would build up parts of the expression from left to right.) –  Rex Kerr Feb 9 '11 at 19:05
    
I unconsciously presumed the way of type inference from left to right, but stucked with operator precedence and associativity of method names, especially starting with ? before any other alphanum char as a method name first char and a : for left associativity. So I have to rethink of new method names to get type inference working from left to right. thanks! –  Peter Schmitz Feb 9 '11 at 22:39

3 Answers 3

up vote 13 down vote accepted

We can combine How to define a ternary operator in Scala which preserves leading tokens? with the answer to Is Option wrapping a value a good pattern? to get

scala>   "Hi".getClass.getSimpleName |> {x => x.endsWith("$") ? x.init | x}
res0: String = String

scala> List.getClass.getSimpleName |> {x => x.endsWith("$") ? x.init | x}
res1: String = List

Is this adequate for your needs?

share|improve this answer
    
Thats very close to what I have in mind. nice approach. I´ll think about that. My reason to avoid the very first code was to be more concise in not having a temporary val for a following if-statement: Do it intelligible in one line, just like one have it in mind. –  Peter Schmitz Feb 9 '11 at 22:48

From Tony Morris' Lambda Blog:

I hear this question a lot. Yes it does. Instead of c ? p : q, it is written if(c) p else q.

This may not be preferable. Perhaps you’d like to write it using the same syntax as Java. Sadly, you can’t. This is because : is not a valid identifier. Fear not, | is! Would you settle for this?

c ? p | q

Then you’ll need the following code. Notice the call-by-name (=>) annotations on the arguments. This evaluation strategy is required to correctly rewrite Java’s ternary operator. This cannot be done in Java itself.

case class Bool(b: Boolean) {   
  def ?[X](t: => X) = new {
    def |(f: => X) = if(b) t else f   
  } 
}

object Bool {   
  implicit def BooleanBool(b: Boolean) = Bool(b) 
}

Here is an example using the new operator that we just defined:

object T {   val condition = true

  import Bool._

  // yay!   
  val x = condition ? "yes" | "no"
}

Have fun ;)

http://blog.tmorris.net/posts/does-scala-have-javas-ternary-operator/

share|improve this answer
    
yes, I have seen this before, but the difference is, that a I have the (evaluated) value of my first expression as an argument in the then and else clause. –  Peter Schmitz Feb 9 '11 at 22:32
    
@Imre: I corrected the link and copied the content. –  Landei Apr 10 '13 at 8:27
1  
I took the if(c) p else q approach... the lack of braces makes me a touch uncomfortable but that's just a style thing –  rjohnston Jul 11 '13 at 14:27

Rex Kerr’s answer expressed in basic Scala:

"Hi".getClass.getSimpleName match {
  case x if x.endsWith("$") => x.init
  case x => x
}

although I’m not sure what part of the if–else construct you want to optimise.

share|improve this answer
    
very straight way. sometimes one forgets about the daily-use match/case statements. I just sticked to the one line ternary if then else idiom, but it´s indeed a intelligible way to solve. –  Peter Schmitz Feb 9 '11 at 22:44
    
Pattern Matching scales easily to more than two branches. –  Raphael Feb 10 '11 at 13:13

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