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How can I transform a Seq[A] to a Map[Int, Seq[A]] in Scala where the value of Int is a param of A (in a functional way) ?

Example:

val futures: Seq[Future[Seq[A]]] = ???
val gathered = Future.collect(futures)
gathered.map {
    res => {
       val myseq:Seq[A] = res.flatten
       myseq.map(a => (a.param, a)).toMap
    }
}

the resulting value would be Map[Int, A]. Instead I'd like to have a sequence of all A having the same Int param (Map[Int, Seq[A])

share|improve this question
    
The question is very much unclear. You wish to convert Seq(1,2,3) to Map of (1-> ??).. ? – Jatin Jul 4 '14 at 11:57
    
val myseq = Seq((1, 2), (1, 3), (3,4)) expected: Map(1-> Seq(2, 3), 3 -> Seq(4)) – sonix Jul 4 '14 at 11:59
1  
@sonix please update your question because it sounded like you wanted to take some type A and use a member function/value of it to group your sequence into a map. – wheaties Jul 4 '14 at 12:00
up vote 0 down vote accepted

You'll need to prove to the compiler that there is a parameter of type A that can be had which satisfies your condition:

trait Param[A]{
  def extract(that: A): Int
}

def seqToMap[A](seq: Seq[A])(implicit proof: Param[A]) = 
  seq groupBy (proof.extract)

Other than that, you could use structural types (which involve reflection and thus are really inadvisable for performance reasons.)

share|improve this answer
    
Can you tell more on the last line? Using structural types here. Quick example would help :) – Jatin Jul 4 '14 at 12:02
    
groupBy helped! thx – sonix Jul 4 '14 at 12:12
    
why are the trait and implicit even required? are you assuming A is a type parameter? – Erik Allik Jul 4 '14 at 13:21
    
@erikallik because without a real type, A is ambiguous. You can not prove A has a method .param without something. – wheaties Jul 4 '14 at 14:07

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