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val deck = 1 to 52 toList

// shuffles the deck, and prints it out nicely
deck sortWith ((_, _) => Random.nextBoolean) foreach (x => print(x + " "))

Since I will be shuffling and printing the deck over and over, I am trying to do the following


val deck = 1 to 52 toList
def shuffle : (List[Int] => List[Int]) = {_ sortWith ((_, _) => Random.nextBoolean)}
def printDeck : (List[Int] => Unit) = {_ foreach(x => print(x + " "))}

deck shuffle printDeck // this doesnt work

// I can only do 
printDeck(shuffle(deck)) // this works

Calling the function on left side of parameter is a lot more elegant when you don't have to use parenthesis.

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3  
Just for fun, you can also (shuffle andThen printDeck)(deck) –  Dan Burton Apr 15 '12 at 18:11

2 Answers 2

up vote 5 down vote accepted

In order to get object function syntax, you would have to have the function as a method on the class.

You could accomplish this with an implicit definition:

implicit def enhanceDeck(deck: List[Int]) = new {
  def shuffle = 
    deck sortWith ((_, _) => Random.nextBoolean)

  def printDeck = 
    deck.foreach(x => print(x + " "))
}

Now you can do:

val deck = 1 to 52 toList
deck shuffle 
deck printDeck

But you can't do deck shuffle printDeck because Scala thinks that you are doing deck.shuffle(printDeck). Instead, use one of:

deck.shuffle.printDeck
deck.shuffle printDeck

EDIT: Your first snippet is actually object function arg function arg. Both sortWith and foreach take one argument.

Defining a type for Deck would probably be a good approach for cleanliness, but would still not allow you to use the syntax you want because you would just have something like Deck(deck) shuffle printDeck which Scala would assume to be Deck(deck).shuffle(printDeck).

It would look like this:

case class Deck(deck: List[Int]) {
  def shuffle = 
    deck sortWith ((_, _) => Random.nextBoolean)

  def printDeck = 
    deck.foreach(x => print(x + " "))
}

Deck(deck).shuffle printDeck
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My first code snippet is object function function form, if I define an OO type for deck, like Vlad suggested, would object function function form be possible? –  qin Apr 15 '12 at 17:21
    
@qin, Edited for your comment. –  dhg Apr 15 '12 at 17:27

If you really want to have

deck <?> shuffle <?> printDeck

instead of

printDeck(shuffle(deck))

you should consider using the |> operator (defined in scalaz, or just create your own) because that is what it is good for

deck |> shuffle |> printDeck

While there may be valid points against using the forward pipe in Scala in general, if you really just want to reverse the order, things will be a lot clearer with this generic operator than creating specific pimps to List[Int].

Definition (only for reference; please do not use this as an implementation):

implicit def toForwardPipe[T](x : T) = new {
  def |> [U](f : T => U) = f(x)
}
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2  
Just don't do it this way. There are serious performance issues with enriching like that. –  Daniel C. Sobral Apr 15 '12 at 17:34
    
@DanielC.Sobral [citation needed]. Shouldn't the compiler be smart enough to optimize it away? –  Dan Burton Apr 15 '12 at 18:10
    
@DanBurton Could the compiler be smart enough to optimize it away? Yes. Is it? No. The general case of existential types cannot be optimized while preserving identity -- it needs to go through reflection. No effort is spent by the compiler to optimize existential types (well, I lie -- it actually has a caching scheme that helps some). With Scala 2.10, I think this can be completely optimized away, but it does require you to use the proper incantations. –  Daniel C. Sobral Apr 16 '12 at 15:02

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