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I'm trying to learn scala, and picked the following as a task. Given one or more groups of letters where each group represents the possible letters for that position in a word, generate all possible word combinations. For example, given:

ab  cd  ef

produce:

ace
acf
ade
adf
bce
bcf
bde
bdf

I managed to get the job done and start to wrap my head around scala at the same time, but I'm almost certain that it could have been done in a more scala-ly way. Any suggestions or improvements would be gratefully accepted.

object Permute {

  def pickChar(answerPosition: Int, currentAnswer: Int, totalAnswers: Int, args: Array[String], mods: Array[Int]) : Char = {
    return args(answerPosition).charAt( currentAnswer / mods(answerPosition) % args(answerPosition).length )
  }

  def main(args: Array[String]) = {
    var answerLength = args.length
    var ansBuckets = new Array[Int](answerLength)
    var countAnswers = 1
    var divAnswers = 1
    var idx = 0
    args.foreach { arg =>
      countAnswers *= arg.length
    }

    args.foreach { arg =>
      divAnswers *= arg.length
      ansBuckets(idx) = countAnswers / divAnswers
      idx += 1
    }

    var answers = Array.ofDim[Char](countAnswers,answerLength)

    idx=0
    answers.foreach { ans =>
      for ( i <- 0 to answerLength - 1) ans(i) = pickChar(i,idx,countAnswers,args,ansBuckets)
      idx += 1
    }

    answers.foreach { ans =>
      ans.foreach { str =>
        printf("%c",str)
      }
    printf("\n")
    }
  }
}
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closed as off topic by bmargulies, Jörg W Mittag, David Titarenco, Rex Kerr, Graviton May 31 '11 at 3:42

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2  
codereview.stackexchange.com would be the right place for this. –  David Titarenco May 31 '11 at 1:35
    
This is a great idea, and a great way to learn a language, but code reviews belong on the Code Review SE, not StackOverflow. –  Jörg W Mittag May 31 '11 at 1:36
    
@David-Titarenco @jorg-w-mittag : Thanks for the pointers to CRSE. Didn't know that there was more to the 'stack' universe. I did review the FAQs, but didn't see the existence of CRSE in there (might have missed it). –  Rob Fagen May 31 '11 at 14:34
    
Here are some solutions –  user unknown Aug 13 '11 at 6:24

1 Answer 1

up vote 1 down vote accepted

What you are searching for is a cartesian product or the product set or outer product; it should take no more than 1-2 lines of code in any high-level or functional language, and there is often a high-level function which does it for you. Google for scala cartesian product to find code examples and pick the one that is the most elegant.

e.g. In python, this is itertools.product(*listOfIterables) (optionally map ''.join over result). In Mathematica this is Outer[...]. In Haskell this is just the List monad, i.e. list comprehensions.

You will want to look at:

Unfortunately the answers are lacking any reference to a built-in library function. The standard function-programming way to do this is with reduce (just like you can in any language which support reduce) by starting with a seed of an empty list, and each time you consume a new list, take the pairwise-cartesian-product and flatten the intermediate result list.

share|improve this answer
    
No thank you. If by "errors and inaccuracies" you mean 1 mistake, I agree, the scala.Product has been removed. However I completely and vehemently disagree with every other thing you said, and otherwise completely stand by my answer. I tend not to use the word 'obviously' a lot, but obviously I am not talking about low-level non-functional languages. And obviously I was using the word 'shortest' as a synonym for 'most elegant and versatile'. And the fact that fold-right and fold-left are the same thing as reduce (which I am well aware of) is completely inconsequential. –  ninjagecko May 31 '11 at 4:54
    
Thanks for fixing the identified problems; I've deleted my now-irrelevant comments pointing them out. For other readers: Scala has both a fold and a reduce with different type signatures (they're often considered synonyms); in this case, fold is what you want: def cart[A](xss: Iterable[Iterable[A]]) = xss.foldRight(List(List[A]()))((xs,lla) => xs.toList.flatMap(x => lla.map(x :: _))) –  Rex Kerr May 31 '11 at 5:48

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