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'm trying to create a map from an option of list. So, I have an option of list declared like this:

val authHeaders: Option[Set[String]] = Some(Set("a", "b", "c"))

and I want to get a map like this: (a -> a, b -> b, c -> c).

So I tried this way:

for {
  headers <- authHeaders
  header <- headers
} yield (header -> header)

But I get this error:

<console>:11: error: type mismatch;
found   : scala.collection.immutable.Set[(String, String)]
required: Option[?]
             header <- headers
                    ^

Where did I do wrong?

Additional note: this Option thing has been giving me quite a headache, but I need to understand how to deal with it in any case. Anyway, just for comparison, I tried removing the headache factor, by removing the Option.

scala> val bah = Set("a", "b", "c")
bah: scala.collection.immutable.Set[String] = Set(a, b, c)

scala> (
     | for {
     | x <- bah
     | } yield (x -> x)).toMap
res36: scala.collection.immutable.Map[String,String] = Map(a -> a, b -> b, c -> c)

So, apparently it works. What is the difference here?

Additional note:

Looks like the rule of the game for the "for comprehension" here: if it produces something, that something must be of the same type of the outer collection (in this case that of authHeaders, which is an Option[?]). How to work around it?

Thanks!, Raka

share|improve this question

1 Answer 1

up vote 7 down vote accepted

The Problem

Your for gets desugared into:

authHeaders.flatMap(headers => headers.map(header => header -> header))

The problem in this case is the usage of flatMap, because authHeaders is an Option.
Lets have a look at the signature. (http://www.scala-lang.org/api/2.11.1/index.html#scala.Option)

final def flatMap[B](f: (A) ⇒ Option[B]): Option[B]

So the function f is expected to return an Option. But authHeaders.map(header => header -> header) is not an Option and therefore you get an error.

A solution

Assuming that if authHeaders is None you want an empty Map, we can use fold.

authHeaders.fold(Map.empty[String, String])(_.map(s => s -> s).toMap)

The first parameter is the result if authHeaders is None. The second is expected to be a function Set[String] => Map[String, String] and gets evaluated if there is some Set.

In case you want to keep the result in an Option and just want to have a Map when there actually is some Set, you can simply use map.

authHeaders.map(_.map(s => s -> s).toMap)

Regarding your additional Note

This is the signature of flatMap on TraversableOnce. (http://www.scala-lang.org/api/2.11.1/index.html#scala.collection.TraversableOnce)

def flatMap[B](f: (A) ⇒ GenTraversableOnce[B]): TraversableOnce[B]

Here f can return any collection that is an instance of GenTraversableOnce.

So things like this are possible: Set(1,2,3).flatMap(i => List(i)) (not really a creative example, I know..)

I see Option as a special case.

share|improve this answer
    
Thanks for the solution. It works. Now I'm trying to cram the meaning of folding (and its difference from reduce) :) Thanks! –  user3443096 Jun 27 '14 at 2:17
    
Hi, I'm trying to generalise this. I assume this solution should work for any iterable (not just Option). So I modified the declaration of authHeaders to: scala> val authHeaders: Set[Set[String]] = Set(Set("a", "b", "c"), Set("d", "e")) authHeaders: Set[Set[String]] = Set(Set(a, b, c), Set(d, e)).... and I'm expecting a map like this (a->a, b->b, c->c, d->d, e->e).... But... instead, I'm getting an error that says: error: wrong number of parameters; expected = 2 ... Something is not right in the way I understand the solution you gave me (or my understanding of fold).. –  user3443096 Jun 27 '14 at 2:38
    
I used the fold on authHeaders (as an Option). Your authHeaders is not an Option. You can just work with for-comprehension or map/flatMap here. Either (for(set <- authHeaders; s <- set) yield (s -> s)).toMap or equivalently authHeaders.flatMap(_.map(s => s -> s)).toMap –  Kigyo Jun 27 '14 at 8:01

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.