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I have a result of type List[List[Map[String,String]]]and I would like to transform it into List[Map[String,String]]. How would I do this in Scala?

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If you get this result from "map" method, just use "flatMap" – viktortnk Jul 27 '12 at 16:52

2 Answers 2

up vote 1 down vote accepted

This is helped me understand how flatten work.

val a = List( List( Map( 11 -> 11 ), Map( 12 -> 12 ) ), List( Map( 21 -> 21 ), Map( 21 -> 21 ) ) )

def flatten(ls: List[Any]): List[Any] = ls flatMap {
    case ms: List[_] => flatten(ms)
    case e => List(e)

flatten( a )

/** Converts this $coll of traversable collections into
   *  a $coll in which all element collections are concatenated.
   *  @tparam B the type of the elements of each traversable collection. 
   *  @param asTraversable an implicit conversion which asserts that the element
   *          type of this $coll is a `Traversable`.
   *  @return a new $coll resulting from concatenating all element ${coll}s.
   *  @usecase def flatten[B]: $Coll[B]
def flatten[B](implicit asTraversable: A => /*<:<!!!*/ TraversableOnce[B]): CC[B] = {
    val b = genericBuilder[B] // incrementally build
    for (xs <- sequential)    // iterator for your collection
      b ++= asTraversable(xs) // am i traversable ?
    b.result                  // done ... build me
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This is not how the ‘real’ .flatten works, however: a) This will eliminate all nested Lists and not only one layer. b) You should do better than returning Any. c) Proper .flatten: ls flatMap { case x => x } – Debilski Jul 30 '12 at 7:21
I never claimed that this is how flatten work. – Guillaume Massé Aug 1 '12 at 6:02

No constraint given:

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