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I have a scala code like this

val tokens = List("the", "program", "halted")
val test = for (c <- tokens) yield Seq(c) 

Here test is returning List(Seq(String)) but I'm expecting Seq(String) only. Maybe it's very simple for an experienced person but I tried all the way which I know in the basic level but no look. Please help me if anyone feels its very easy.

  • 1
    You are traversing a list of strings, transforming each into a singleton sequence containing just that string, thereby producing a list of singleton sequences of strings – Aluan Haddad Jul 12 '18 at 10:02
3

tokens.toSeq will do, but if you type this into the command line you will see that Seq will just create a List under the hood anyway:

scala> val tokens = List("the", "program", "halted")
tokens: List[String] = List(the, program, halted)

scala> tokens.toSeq
res0: scala.collection.immutable.Seq[String] = List(the, program, halted)

Seq is interesting. If your data will be better suited to being stored in a List it will turn it into a list; otherwise, it will turn it into a Vector (and Vectors are interesting in their own right...) - as Seq is a supertype of both List and Vector. If anything, you should really default to using Vector over other collection types unless you have a specific use case, but that's an answer to another question.

Other alternatives are of course:

scala> val test: Seq[String] = tokens
test: Seq[String] = List(the, program, halted)

scala> val test2: Seq[String] = for (token <- tokens) yield token
test2: Seq[String] = List(the, program, halted)

scala> val test3 = (tokens: Seq[String])
test3: Seq[String] = List(the, program, halted)

scala> val test4: Seq[String] = tokens.mkString(" ").split(" ").toSeq
test4: Seq[String] = WrappedArray(the, program, halted)

(Just joking about that last one)

The takeaway though is that you can just specify the variable type as Seq[String] and Scala will treat it as such due to how it handles Seq, List, Vector etc under the hood.

  • ...and you are also joking about the second one, because it's just a very inefficient way to apply identity function to a list ;) Which kind-of leaves you with test and test3. I also have the vague suspicion that I've already seen a solution with first and third variant somewhere^^ – Andrey Tyukin Jul 12 '18 at 17:57
  • Second one was just fixing OP’s original attempt at a solution, but I admit it is a daft way to do it. Honestly test3 came from me googling as many silly ways to do this and pasting them into my Terminal. I had no idea it was from this question! Imma take credit for test though; thought of that one all by myself. Aren’t I a smarty-pants? ;) – James Whiteley Jul 12 '18 at 22:16
  • The problem with googling for similar questions is that the new questions are indexed almost immediately, so that when you are searching for duplicates for a question Q0, the first google hit leads back to the same question Q0 ;) – Andrey Tyukin Jul 12 '18 at 22:37
1

List is a subtype of Seq. You don't need any for-comprehensions at all, you only have to ascribe the type:

val test: Seq[String] = tokens

or:

val test = (tokens: Seq[String])
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First of all List extends Seq behind the scenes, so you do actually have a Seq. You can downcast at definition level.

val tokens: Seq[String] = List("the", "program", "halted")

Now to answer your question, in Scala collection conversions are often facilitated by toXXX methods.

val tokens: Seq[String] = List("the", "program", "halted").toSeq

In more advanced reading, look at CanBuildFrom, which is the magic behind the scenes.

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