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I'm trying to write a simple parser in scala but when I add a repeated token Scala seems to get stuck in an infinite loop...

object RewriteRuleParsers extends RegexParsers {
  private def space = regex(new Regex("[ \\n]+"))
  private def number = regex(new Regex("[0-9]+")) 
  private def equals = (space?)~"="~(space?)
  private def word   = regex(new Regex("[a-zA-Z][a-zA-Z0-9-]*")) 
  private def string = regex(new Regex("[0-9]+")) >> { len => ":" ~> regex(new Regex(".{" + len + "}")) }  

  private def matchTokenPartContent: Parser[Any] = (space?)~word~equals~word<~ space?  
  private def matchTokenPart: Parser[Any] = ((space?) ~> "{" ~> matchTokenPartContent <~ "}"<~ space?)  
  private def matchTokenParts = (matchTokenPart *)  
  private def matchToken: Parser[Any] = ("[" ~> matchTokenParts ~ "]")

  def parseMatchToken(str: String): ParseResult[Any] = parse(matchToken, str)
}

and the code to call it

val parseResult = RewriteRuleParsers.parseMatchToken("[{tag=hello}]")

Any advice gratefull received

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1  
Note that e.g. regex(new Regex("[0-9]+")) can be written "[0-9]+".r (or just "\\d+".r"). –  Travis Brown Jul 27 '12 at 13:44

1 Answer 1

up vote 1 down vote accepted

The problem is the precedence of ?. Take the following, for example:

object simpleParser extends RegexParsers {
  val a = literal("a")
  val b = literal("b")
  def apply(s: String) = this.parseAll(a <~ b?, s)
}

The a <~ b? here is interpreted as (a <~ b)?, so it will accept "ab" or "", but not "a". We'd need to write a <~ (b?) if we want it to accept "a".

In your case you can just parenthesize space? at the end of matchTokenPartContent and matchTokenPart and it'll work as expected.

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In fact, post-fixed operators are restricted now in 2.10. This can be more clearly and easily writte as a <~ b.?. –  Daniel C. Sobral Jul 27 '12 at 20:50

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