Turning a list/sequence of combinator parsers into a single one

久未见 提交于 2019-12-05 04:23:07
Travis Brown

What you're describing (and what you've more or less reinvented in your implementation with foldLeft and ~) is essentially Haskell's sequence for monads (really you only need an applicative functor, but that's irrelevant here). sequence takes a list of monadic values and returns a monadic list of values. Parser is a monad, so sequence for Parser would change a List[Parser[A]] into a Parser[List[A]].

Scalaz gives you sequence, but off the top of my head I don't know if there's a nice way to get the necessary Applicative instance for Parser. Fortunately you can roll your own pretty easily (I'm directly translating the Haskell definition):

import scala.util.parsing.combinator._

object parser extends RegexParsers {
  val integer = """\d+""".r

  val counts = List(1, 2, 3)
  val parsers = counts.map(repN(_, integer))

  val line = parsers.foldRight(success(Nil: List[List[String]])) {
    (m, n) => for { x <- m ; xs <- n } yield (x :: xs)
  }

  def apply(s: String) = parseAll(line, s)
}

This gives us List(List(1), List(2, 3), List(4, 5, 6)) for parser("1 2 3 4 5 6"), as desired.

(Note that I'm using RegexParsers here as a convenient complete example, but the approach works more generally.)

What's going on might be a little clearer if we desugar the for comprehension:

val line = parsers.foldRight(success(Nil: List[List[String]])) {
  (current, acc) => current.flatMap(x => acc.map(x :: _))
}

We can write flatMap as into and map as ^^:

val line = parsers.foldRight(success(Nil: List[List[String]])) {
  (current, acc) => current into (x => acc ^^ (x :: _))
}

This isn't too far from your formulation, except that we're using a right fold instead of reversing and aren't building up and breaking down the ~s.


About efficiency: Both of our implementations are going to result in unpleasant call stacks. In my experience this is just a fact of life with Scala's parser combinators. To quote another Stack Overflow answer, for example:

Scala's parser combinators aren't very efficient. They weren't designed to be. They're good for doing small tasks with relatively small inputs.

My sequence-y approach addresses the "more readable" part of your question, and is almost certainly the cleanest way to solve the problem with Scala's parser combinators. It's marginally more efficient than your implementation, and should be fine for a few thousand groups or so. If you need to handle more than that, you'll have to look outside of scala.util.parsing.combinator. I'd recommend something like the following:

def parse(counts: Seq[Int], input: String): Option[Seq[Seq[Int]]] = {
  val parsed = try {
    Some(input.split(" ").map(_.toInt))
  } catch {
    case _ : java.lang.NumberFormatException => None
  }

  parsed.flatMap { ints =>
    if (ints.length != counts.sum) None
    else Some(counts.foldLeft((Seq.empty[Seq[Int]], ints)) {
      case ((collected, remaining), count) => {
        val (m, n) = remaining.splitAt(count)
        (m.toSeq +: collected, n)
      }
    }._1.reverse)
  }
}

No guarantees, but on my system it doesn't overflow on a line with 100k integer groups.


Have you considered using a RegexParsers (in scala.util.parsing.combinator)? Then you can use regular expressions as parsers, which will compute very fast and be easy to write.

For example, if you are using parser combinators to parse an AST for simple arithmatic, you might use regular expressions to interpret tokens that refer to objects so you can parse expressions like appleList.size + 4.

Here is a rather trivial example, but it shows how regular expressions can be combined by parser combinators.

object MyParser extends RegexParsers {
  val regex1 = """[abc]*""".r
  val regex2 = """[def]*""".r
  val parse = regex1 ~ regex2

  def apply(s: String) = parseAll(parse, s)
}
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