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.

How is it possible to create Enumerator for BufferedReader?

I found rather old article: http://apocalisp.wordpress.com/2010/10/17/scalaz-tutorial-enumeration-based-io-with-iteratees/ and it looks like it doesn't work with Scalaz 6.0.4

I try to create Enumerator based on example from here: Idiomatic construction to check whether a collection is ordered

 implicit val ListEnumerator = new Enumerator[List] {
   def apply[E, A](e: List[E], i: IterV[E, A]): IterV[E, A] = e match {
      case List() => i
      case x :: xs => i.fold(done = (_, _) => i,
                       cont = k => apply(xs, k(El(x))))
   }
 }

But I can't understand how to combine IO monad with Enumerator

share|improve this question

1 Answer 1

What's wrong with Rúnar's article? The following version is working for me (Scalaz 6.0.4):

object FileIteratee {
  def enumReader[A](r: BufferedReader, it: IterV[String,  A]) : IO[IterV[String,  A]] = {
    def loop: IterV[String,  A] => IO[IterV[String,  A]] = {
      case i@Done(_, _) => i.pure[IO]
      case i@Cont(k) => for {
        s <- r.readLine.pure[IO]
        a <- if (s == null) i.pure[IO] else loop(k(El(s)))
      } yield a
    }
    loop(it)
  }

  def bufferFile(f: File) = new BufferedReader(new FileReader(f)).pure[IO]

  def closeReader(r: Reader) = r.close().pure[IO]

  def bracket[A,B,C](init: IO[A], fin: A => IO[B], body: A => IO[C]): IO[C] =
    for {
      a <- init
      c <- body(a)
      _ <- fin(a)
    } yield c

  def enumFile[A](f: File,  i: IterV[String,  A]) : IO[IterV[String, A]] =
    bracket(bufferFile(f),
            closeReader(_: BufferedReader),
            enumReader(_: BufferedReader,  i))
}
share|improve this answer
    
Thanks, it works! But as I understand scalaz evolution, from 6 version more convenient way is to provide Enumerator –  Eugene Zhulenev Feb 22 '12 at 15:31

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.