1

After getting fed up with regexes I have been trying to use scala's parser combinator libraries as a more intuitive replacement for regexes. However, I've run into a problem when I want to search a string for a pattern and ignore things that come before it, for example if I want to check if a string contains the word "octopus" I can do something like

val r = "octopus".r
r.findFirstIn("www.octopus.com")

Which correctly gives Some(octopus).

However, using parser combinators

import scala.util.parsing.combinator._
object OctopusParser extends RegexParsers {

  def any = regex(".".r)*
  def str = any ~> "octopus" <~ any

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

OctopusParser.parse("www.octopus.com")

However I get an error on this

scala> OctopusParser.parse("www.octopus.com")
res0: OctopusParser.ParseResult[String] = 
[1.16] failure: `octopus' expected but end of source found

www.octopus.com

Is there a good way to accomplish this? From playing around, it seems that any is swallowing too much of the input.

3

The problem is that your 'any' parser is greedy, so it is matching the whole line, leaving nothing for 'str' to parse.

You might want to try something like:

object OctopusParser extends RegexParsers {

  def prefix = regex("""[^\.]*\.""".r) // Match on anything other than a dot and then a dot - but only the once
  def postfix = regex("""\..*""".r)* // Grab any number of remaining ".xxx" blocks
  def str = prefix ~> "octopus" <~ postfix

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

which then gives me:

scala> OctopusParser.parse("www.octopus.com")
res0: OctopusParser.ParseResult[String] = [1.13] parsed: octopus

You may need to play around with 'prefix' to match the range of input you are expecting, and might want to use the '?' lazy marker if it is being too greedy.

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