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Suppose, I have an alphabet of N symbols and want to enumerate all different strings of length M over this alphabet. Does Scala provide any standard library function for that?

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2 Answers 2

up vote 3 down vote accepted

Taking inspiration from another answer:

val letters = Seq("a", "b", "c")
val n = 3

Iterable.fill(n)(letters) reduceLeft { (a, b) =>
    for(a<-a;b<-b) yield a+b
}

Seq[java.lang.String] = List(aaa, aab, aac, aba, abb, abc, aca, acb, acc, baa, bab, bac, bba, bbb, bbc, bca, bcb, bcc, caa, cab, cac, cba, cbb, cbc, cca, ccb, ccc)

To work with something other than strings:

val letters = Seq(1, 2, 3)

Iterable.fill(n)(letters).foldLeft(List(List[Int]())) { (a, b) =>
    for (a<-a;b<-b) yield(b::a)
}

The need for the extra type annotation is a little annoying but it will not work without it (unless someone knows another way).

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1  
Can we get rid of the auxiliary list of size n? –  Michael Nov 20 '11 at 14:21
    
@Michael yes using fill as 4e6 suggests. I'll edit my answer to reflect this. –  Owen Nov 20 '11 at 21:43
    
Great! Thanks for the new version. –  Michael Nov 21 '11 at 6:41
    
@Owen -- Is there a way to make this work for general sequences (not just strings)? –  dsg Dec 2 '11 at 4:17
    
@dsg Yes though it is slightly more awkward –  Owen Dec 2 '11 at 6:48

Another solution:

val alph = List("a", "b", "c")
val n = 3

alph.flatMap(List.fill(alph.size)(_))
    .combinations(n)
    .flatMap(_.permutations).toList

Update: If you want to get a list of strings in the output, then alph should be a string.

val alph = "abcd"
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This doesn't seem to work when n is bigger than the size of alph. For example: alph = List(0, 1), n = 3 yields only 6 sequences, as opposed to the expected 8. –  dsg Dec 2 '11 at 4:16

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