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I've made a Stream for Gray Codes using recursion as follows:

val gray: Stream[List[String]] = {
 List("") #:: List("0", "1") #:: gray.tail.map {gnext} 
}

where

val gnext = (i:List[String]) => i.map {"0" + _} ::: i.reverse.map {"1" + _}

so that, for example

scala> gray(2)
res17: List[String] = List(00, 01, 11, 10)

I don't really need the List("0", "1") in the definition, because it can be produced from element 0:

scala> gnext(List(""))
res18: List[java.lang.String] = List(0, 1)

So is there a way / pattern that can be used to produce a Stream from just the first element?

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1 Answer

up vote 3 down vote accepted
val gray: Stream[List[String]] = List("") #:: gray.map {gnext}

Or, alternatively,

val gray = Stream.iterate(List(""))(gnext)
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Cool, just use the whole list instead of the tail. Would I be right in saying that the first version would be memoized, but the version with iterate would not? –  Luigi Plinge Jul 3 '11 at 0:19
    
@Luigi neither gray is a function, so I don't think memoization applies. –  Daniel C. Sobral Jul 3 '11 at 3:52
    
Good point - they're both Stream objects. As I understand it, Streams are lazy Lists, so if I reference gray(10) on a new gray object it will take a long time, but if I then reference gray(8) it will be instant, because that value was already computed. So it is like automatic memoization. –  Luigi Plinge Jul 3 '11 at 11:56
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