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Given a sequence of eithers Seq[Either[String,A]] with Left being an error message. I want to obtain an Either[String,Seq[A]] where I get a Right (which will be a Seq[A]), if all elements of the sequence are Right. If there is at least one Left (an error message), I'd like to obtain the first error message or a concatenation of all error messages.

Of course you can post scalaz code but I'm also interested in code not using it.

Edit

I've changed the title, which originally asked for an Either[Seq[A],Seq[B]] to reflect the body of the message.

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7 Answers 7

up vote 8 down vote accepted

Edit: I missed that the title of your question asked for Either[Seq[A],Seq[B]], but I did read "I'd like to obtain the first error message or a concatenation of all error messages", and this would give you the former:

def sequence[A, B](s: Seq[Either[A, B]]): Either[A, Seq[B]] =
  s.foldRight(Right(Nil): Either[A, List[B]]) {
    (e, acc) => for (xs <- acc.right; x <- e.right) yield x :: xs
  }

scala> sequence(List(Right(1), Right(2), Right(3)))
res2: Either[Nothing,Seq[Int]] = Right(List(1, 2, 3))

scala> sequence(List(Right(1), Left("error"), Right(3)))
res3: Either[java.lang.String,Seq[Int]] = Left(error)

Using Scalaz:

val xs: List[Either[String, Int]] = List(Right(1), Right(2), Right(3))

scala> xs.sequenceU
res0:  scala.util.Either[String,List[Int]] = Right(List(1, 2, 3))
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That's shorter than my solution, which uses matching. I think you could use a for-comprehension to make the fold funciton more readable. –  ziggystar Aug 29 '11 at 14:32
    
Yes, you could replace the body of the function in the foldLeft with: for (xs <- acc.right; x <- e.right) yield x :: xs –  Ben James Aug 29 '11 at 14:35
    
If order is important, may be it would be easier to directly build a Seq (and use :+) –  Nicolas Aug 30 '11 at 9:09

It should work:

def unfoldRes[A](x: Seq[Either[String, A]]) = x partition {_.isLeft} match {
  case (Seq(), r) => Right(r map {_.right.get})
  case (l, _) => Left(l map {_.left.get} mkString "\n")
}

You split your result in left and right, if left is empty, build a Right, otherwise, build a left.

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Given a starting sequence xs, here's my take:

xs collectFirst { case x@Left(_) => x } getOrElse
  Right(xs collect {case Right(x) => x})

This being in answer to the body of the question, obtaining only the first error as an Either[String,Seq[A]]. It's obviously not a valid answer to the question in the title


To return all errors:

val lefts = xs collect {case Left(x) => x }
def rights = xs collect {case Right(x) => x}
if(lefts.isEmpty) Right(rights) else Left(lefts)

Note that rights is defined as a method, so it'll only be evaluated on demand, if necessary

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2  
I can only assume that the downvote, without explanation, is by someone who's tactically voting and trying to make their own answer appear preferable... –  Kevin Wright Aug 29 '11 at 20:20
1  
+1 Nice solutions. IMHO downvoters should be required to state a reason. –  Landei Aug 30 '11 at 8:28
1  
Does not require a downvote but second solution may leads to 2 traversal of the list, while you canseparate left from right in a single traversal –  Nicolas Aug 30 '11 at 9:06
3  
@Nicolas: True, but it's a fair trade, clarity vs premature optimisation. It's rare to see problems of this nature reach a large enough size that the performance hit would be noticable. –  Kevin Wright Aug 30 '11 at 12:44

Here is the scalaz code:

_.sequence

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This is an asymetric function as described in the OP (treating lefts differently from rights)!? Because there's no canonical treatment of a mixed sequence. If so, is the choice of implementation defined by the fact that the lefts are usually error messages? –  ziggystar Sep 15 '11 at 10:07
    
Yes, that is the canonical example and is also the one described by the OP. An alternative implementation joins errors values with a semigroup. –  Tony Morris Sep 16 '11 at 5:03
    
I couldn't get this to work (using 6.0.4-SNAPSHOT) without explicitly supplying the type parameters to sequence. Otherwise, I get: Cannot prove that Either[String,Int] <:< N[B]. –  Ben James Oct 16 '11 at 15:31
    
Hi Ben, you'll probably need some type annotations. Sorry I left that off. I'll give you a more concrete example at the REPL if you can't get going. –  Tony Morris Oct 16 '11 at 23:01
    
By the way, I have given a 1 hour talk on this very function. I have slides but no video. I'm not sure how helpful slides will be, but here they are dl.dropbox.com/u/7810909/docs/applicative-errors-scala/… –  Tony Morris Oct 16 '11 at 23:02

Building on Kevin's solution, and stealing a bit from Haskell's Either type, you can create a method partitionEithers like so:

def partitionEithers[A, B](es: Seq[Either[A, B]]): (Seq[A], Seq[B]) =
  es.foldRight (Seq.empty[A], Seq.empty[B]) { case (e, (as, bs)) =>
    e.fold (a => (a +: as, bs), b => (as, b +: bs))
  }

And use that to build your solution

def unroll[A, B](es: Seq[Either[A, B]]): Either[Seq[A], Seq[B]] = {
  val (as, bs) = partitionEithers(es)
  if (!as.isEmpty) Left(as) else Right(bs)
}
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I'm not used to use Either - here is my approach; maybe there are more elegant solutions:

def condense [A] (sesa: Seq [Either [String, A]]): Either [String, Seq [A]] = {
  val l = sesa.find (e => e.isLeft)
  if (l == None) Right (sesa.map (e => e.right.get)) 
  else Left (l.get.left.get)
}

condense (List (Right (3), Right (4), Left ("missing"), Right (2)))
// Either[String,Seq[Int]] = Left(missing)
condense (List (Right (3), Right (4), Right (1), Right (2)))
// Either[String,Seq[Int]] = Right(List(3, 4, 1, 2))

Left (l.get.left.get) looks a bit funny, but l itself is a Either [A, B], not an Either [A, Seq[B]], and needs rewrapping.

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1  
You're not relying on the typing - beware the typists! –  ziggystar Aug 29 '11 at 15:59
1  
What I meant was that you're asserting a condition in line 2 which you implicitly use in line three, where you write 'e.right.get'. E.g. the accepted answer doesn't leave the "safety of the typing". –  ziggystar Aug 29 '11 at 19:41
1  
I'm not really sure if what I'm telling makes sense at all: In the second line you assert that there is no error if l is None. Then you use this knowledge (which is in your head) to write the .get of which you know it will never fail, although .get can throw. If you look at Ben James' answer, he never calls a method that might possibly fail. –  ziggystar Aug 30 '11 at 7:25
1  
The point is that e.g. Ben achieves the same result and he only calls methods that can never fail. Yes, your call to get will never fail because you have constructed the algorithm in a way that it works. But Ben's method can never fail because he never calls a method that could fail (throw). His code is correct (in some way) and this is asserted by the compiler. Your code is correct and this is asserted by the way you constructed your algorithm. You could negate the condition of the 'if' (by mistake) and it would still compile but not work. –  ziggystar Aug 30 '11 at 8:58
1  
So the problem of my code is, that if I would have written different code, it could have failed, while if Ben would have written different code, it wouldn't have compiled? If you feel comfortable with that argument from what would and could have happened ... If I would have returned an elephant, I would have returned an elephant. I don't argure against Bens solution. –  user unknown Aug 30 '11 at 9:12

My answer is similar to @Garrett Rowe's: But it uses foldLeft (Also see: Why foldRight and reduceRight are NOT tail recursive?) and prepends to Seq rather than appending to Seq (See: Why is appending to a list bad?).

scala> :paste
// Entering paste mode (ctrl-D to finish)

def partitionEitherSeq[A,B](eitherSeq: Seq[Either[A,B]]): (Seq[A], Seq[B]) =
  eitherSeq.foldLeft(Seq.empty[A], Seq.empty[B]) { (acc, next) =>
  val (lefts, rights) = acc
  next.fold(error => (lefts :+ error, rights), result => (lefts, rights :+ result))
}

// Exiting paste mode, now interpreting.

partitionEitherSeq: [A, B](eitherSeq: Seq[Either[A,B]])(Seq[A], Seq[B])

scala> partitionEitherSeq(Seq(Right("Result1"), Left("Error1"), Right("Result2"), Right("Result3"), Left("Error2")))
res0: (Seq[java.lang.String], Seq[java.lang.String]) = (List(Error1, Error2),List(Result1, Result2, Result3))
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