0

I'm new to scala I'm trying to understand for/yield and don't understand why the following code returns an option not a String

val opString: Option[String] = Option("test")
val optionStr : Option[String] = for {
  op <- opString
} yield {
  opString match {
    case Some(s) => s
    case _ => "error"
  }
}
2

A for-expression is syntactic sugar for a series of map, flatMap and withFilter calls. Your specific for-expression is translated to something like this:

opString.map(op => opString match {
    case Some(s) => s
    case _ => "error"
})

As you can see, your expression will just map over opString and not unwrap it in any way.

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  • In fact, your expression is equivalent to opString itself ;) If the Option is empty, then the function passed to the map function will not be called. – marstran Aug 9 '16 at 17:28
1

Desugared expression for your for ... yield expression is:

val optionStr = opString.map {
  op => 
     opString match { 
       case Some(s) => s
       case _ => "error"
     }
}

The type of opString match {...} is String, so the result type of applying map (String => String) to Option[String] is Option[String]

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0

What you're looking for is getOrElse:

opString.getOrElse("error")

This is equivalent to:

opString match {
  case Some(s) => s
  case _ => "error"
}
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