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I'm currently learning Scala by working through the "Programming in Scala" book. So far, there have been nice explanations for everything that looks weird (from a Java programmer's perspective), but this one example using a Stream to generate the Fibonacci sequence leaves me kind of puzzled:

def fibFrom(a: Int, b: Int): Stream[Int] =
  a #:: fibFrom(b, a + b)

How is the construction of the Stream done? Of course the #:: operator is somehow responsible for that. I understand that since it ends in :, it is right-associative, but that does not explain the creation of the Stream. I guess it is implicitly translated to a constructor somehow but I don't see why and how exactly.

I've already looked for answers in Predef.scala and LowPriorityImplicits.scala but no luck so far.

Can anyone enlighten me?

Thanks

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2 Answers

up vote 6 down vote accepted

It is right associative so it works as a method on the right argument:

fibFrom(b, a + b).#::(a)

At least that is what it tries to do syntactically. Stream[Int] does not have such a method. Luckily though, object Stream has an implicit to some class ConsWrapper which has this method (code).

So, what you get after implicit resolution is this:

immutable.this.Stream.consWrapper(fibFrom(b, a + b)).#::(a)
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Thanks, that's it. I forgot that implicit conversions can also be defined in the companion object of the class that should be converted. –  rolve May 4 '12 at 11:08
5  
Scaladoc should probably automatically include those hard-coded companion implicits. –  Debilski May 4 '12 at 11:25
1  
Maybe point out to others new to Scala that it isn't just that it's right-associative. It's also that the ConsWrapper implements #:: as call-by-name. i.e. the in ConsWrapper(tl: ⇒ Stream[A]) so that the translation into immutable.this.Stream.consWrapper(fibFrom(b, a + b)).#::(a) means fibFrom(b, a + b) will only ever be called when accessed. –  nicerobot Jan 2 at 1:54
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A Stream is similar to a List. It knows only its head and the rest of the stream: Stream(head: T, tail: Stream[T]). The difference is, that a Stream is evaluated lazily. The ':' at the end of the name of the method says that the method is right associative. So the expression a #:: fibFrom(b, a + b) is translated (by the compiler) to fibFrom(b, a + b).#::(a).

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Thanks, that's what I figured, but it does not explain how the Stream object is created. If Stream had a method #::, this would cause an infinite recursion I guess. –  rolve May 4 '12 at 11:05
    
The #:: is the same as :: in List. And yes it is an infinite recursion. You just take the number of elements you want. That was what I wanted to express by telling it is lazily evaluated. This means it will be just computed when there is need for computing. –  T.Grottker May 4 '12 at 11:13
    
It is not exactly the same, no. If it were the same, the you would have an infinite recursion there. Instead, #:: (defined in Class ConsWrapper, not Stream!) has a by-name parameter which is evaluated lazily. –  rolve May 4 '12 at 11:23
1  
You are right it was not adequate to say it is the same similar would be better. –  T.Grottker May 4 '12 at 11:25
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