Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I am looking for the scala way to give all combinations without repetitions. I know there are some postings on this site already but they seem to have a slightly different problem.

I am searching for all combinations without repetitions. For example:

combine(List('A','C','G'))

Should yield:

List(List('A'.'A','A'),List('A'.'A','C'),List('A'.'A','G'),List('A'.'C','A'),
List('A'.'C',''C), ... List('G'.'G','G')

I am sorry if my problem is already solved but I was not able to find it.

Thanks in advance.

EDIT:

My own approach (doesn't compile):

def combine(size: Int = sym.length) : List[List[T]] = {
  size match {
    case 0 => List()
    case 1 => sym.toList.map(List(_))
    case _ => for (el <- sym) yield el :: combine(size-1)
  }
}

sym is an array member of a class which contains all the symbols to be combined.

share|improve this question
    
This describes the list of all permutations of all combinations of the input list –  Eric Sep 4 '13 at 18:30
    
Nope, it describes all permutations with repetitions. –  Rok Kralj Jun 14 '14 at 14:06

5 Answers 5

up vote 8 down vote accepted
def combinations(size: Int = sym.length) : List[List[T]] = {
    if (size == 0)
        List(List())
    else {
        for {
            x  <- sym.toList
            xs <- combinations(size-1)
        } yield x :: xs
    }
}
share|improve this answer
1  
slight edit: x <- sym.toList –  peri4n Sep 19 '11 at 17:57
scala> def comb(s:String)=(s * s.length).combinations(s.length)
comb: (s: String)Iterator[String]

scala> comb("ACG").toList
res16: List[String] = List(AAA, AAC, AAG, ACC, ACG, AGG, CCC, CCG, CGG, GGG)
share|improve this answer

In ScalaZ 7

import scalaz._
import Scalaz._
def combinine[T](l: List[T]) = l.replicateM(l.size)
share|improve this answer

This should work:

val input = List('A','C','G')

(input ++ input ++ input) combinations(3) toList
share|improve this answer
1  
+1 Or when you don't know the size of the original list: (input.map(_ => input)).flatten.combinations(3).toList –  opyate Sep 23 '12 at 20:08
    
@opyate Nice :). It could be even shortened to input.flatMap(_ => input).combinations(3).toList. My closest different not-so-nice approach is Seq.fill(input.size)(input).flatten.combinations(3).toList. –  monnef Feb 2 at 10:58

With Scalaz:

scala> import scalaz._
import scalaz._

scala> import Scalaz._
import Scalaz._

scala> def combine[A](xs: List[A]): List[List[A]] = {
     |   xs.replicate[List](xs.size).sequence
     | }
combine: [A](xs: List[A])List[List[A]]

scala> combine(List('A', 'C', 'G'))
res47: List[List[Char]] = List(List(A, A, A), List(A, A, C), List(A, A, G), List
(A, C, A), List(A, C, C), List(A, C, G), List(A, G, A), List(A, G, C), List(A, G
, G), List(C, A, A), List(C, A, C), List(C, A, G), List(C, C, A), List(C, C, C),
 List(C, C, G), List(C, G, A), List(C, G, C), List(C, G, G), List(G, A, A), List
(G, A, C), List(G, A, G), List(G, C, A), List(G, C, C), List(G, C, G), List(G, G
, A), List(G, G, C), List(G, G, G))
share|improve this answer
    
This is much cuter in Haskell: combine = sequence . (replicate =<< length). –  missingfaktor Sep 23 '11 at 15:35

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.