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Scala code:

object Path {
  def unapply(s:String):Some[String] = Some(s)
}

val s = "hello world"

val h = "hello"
s match {
  case Path(s"$h world") => println("Get hello")
  case _ => println("???")
}

I tried to use s"$var" in pattern matching, but it can't compiled:

 <console> error: method s is not a case class, nor does it have 
 an unapply/unapplySeq member
            case Path(s"$h world") => println("Get hello")

Why scala can't compile it?

If I put it in if clause:

s match {
  case Path(p) if p == s"$h world" => println("Get hello")
  case _ => println("???")
}

It's working well.

Why scala can't compile it?

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You might be interested in this video; that's different but does the job. –  eruve Jul 7 at 11:17

1 Answer 1

up vote 3 down vote accepted

Why scala can't compile it?

It's basically a method call (see http://www.scala-lang.org/files/archive/nightly/docs/library/index.html#scala.StringContext), and method calls aren't allowed in patterns (and don't generally make sense there).

If I put it in if clause:

It's working well.

Because if takes an expression, not a pattern.

Another thing you could do:

val A = s"$h world" // note upper-case

s match {
  case Path(A) => ...
}
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