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Say I have a monadic function in called processOne defined like this:

def processOne(input: Input): Either[ErrorType, Output] = ...

Given a list of "Inputs", I would like to return a corresponding list of "Outputs" wrapped in an Either:

def processMany(inputs: Seq[Input]): Either[ErrorType, Seq[Output]] = ...

processMany will call processOne for each input it has, however, I would like it to terminate the first time (if any) that processOne returns a Left, and return that Left, otherwise return a Right with a list of the outputs.

My question: what is the best way to implement processMany? Is it possible to accomplish this behavior using a for expression, or is it going to be necessary for me to iterate the list myself recursively?

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3 Answers

up vote 2 down vote accepted

The easiest with standard Scala, which doesn't evaluate more than is necessary, would probably be

def processMany(inputs: Seq[Input]): Either[ErrorType, Seq[Output]] = {
  Right(inputs.map{ x =>
    processOne(x) match {
      case Right(r) => r
      case Left(l) => return Left(l)
    }
  })
}

A fold would be more compact, but wouldn't short-circuit when it hit a left (it'd just keep carrying it along while you iterated through the entire input).

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With Scalaz 7:

def processMany(inputs: Seq[Input]): Either[ErrorType, Seq[Output]] =
  inputs.toStream traverseU processOne

Converting inputs to a Stream[Input] takes advantage of the non-strict traverse implementation for Stream, i.e. gives you the short-circuiting behaviour you want.

By the way, you tagged this "monads", but traversal requires only an applicative functor (which, as it happens, is probably defined in terms of the monad for Either). For further reference, see the paper The Essence of the Iterator Pattern, or, for a Scala-based interpretation, Eric Torreborre's blog post on the subject.

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Views would work just as well as a stream, right? Using .view instead of .toSteram. –  Petr Pudlák Feb 27 '13 at 18:32
    
That would require a Traverse[SeqView] instance, which I don't think is available out of the box in scalaz. –  Ben James Feb 27 '13 at 19:31
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For now, I've decided to just solve this using recursion, as I am reluctant to add a dependency to a library (Scalaz).

(Types and names in my application have been changed here in order to appear more generic)

def processMany(inputs: Seq[Input]): Either[ErrorType, Seq[Output]] = {
  import scala.annotation.tailrec

  @tailrec
  def traverse(acc: Vector[Output], inputs: List[Input]): Either[ErrorType, Seq[Output]]  = {
    inputs match {
      case Nil =>   Right(acc)
      case input :: more =>
          processOne(input) match {
            case Right(output) =>  traverse(acc :+ output, more)
            case Left(e) => Left(e)
          }
    }
  }

  traverse(Vector[Output](), inputs.toList)
}
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While this will work, I don't quite understand why you prefer this over e.g. the solution I posted. Yours is both substantially longer and substantially slower unless you are working with small lists which usually have errors. –  Rex Kerr Feb 27 '13 at 20:02
    
I couldn't get your solution to pass the typechecker. How does the Left propagate up? –  scrapdog Feb 27 '13 at 20:04
    
My mistake; sorry about that. I overlooked the "return" the first time. Your answer works. –  scrapdog Feb 27 '13 at 20:18
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