40

The following

def mMatch(s: String) = {
    var target: String = "a"
    s match {
        case `target` => println("It was " + target)
        case _ => println("It was something else")
    }
}

does not compile:

error: stable identifier required, but target found. case target => println("It was " + target)

Why does Scala require a val not a var. I guess "Because" would be an acceptable answer but I have the feeling there is a deeper reason I am missing.

3 Answers 3

43

I suspect that it's to enable table-switching optimizations for those cases where it is possible (without piles of checking to see whether it's valid). For example, with the code

class Sw {
  def m(i: Int) = {
    val a = 3
    val b = 2
    val c = 1
    i match {
      case `a` => 0
      case `b` => -1
      case `c` => 4
      case _ => 2
    }
  }
}

you get the bytecode

public int m(int);
  Code:
   0:   iconst_3
   1:   istore_2
   2:   iconst_2
   3:   istore_3
   4:   iconst_1
   5:   istore  4
   7:   iload_1
   8:   istore  5
   10:  iload   5
   12:  tableswitch{ //1 to 3
        1: 48;
        2: 44;
        3: 52;
        default: 40 }
   40:  iconst_2
   41:  goto    53
   44:  iconst_m1
   45:  goto    53
   48:  iconst_4
   49:  goto    53
   52:  iconst_0
   53:  ireturn

which would be much more complicated to do if you used vars (you'd have to detect whether they had changed to know whether that table expression was still valid).

4
  • This is incorrect. Pattern matching does not necessarily use switches. In fact, there is the @switch annotation if you want to ensure that a tableswitch or lookupswitch is used. Jan 10, 2016 at 21:29
  • @PaulDraper - I think you're reading something in there that I didn't say. If you want to always have the option of using Feature X, you need to always have the prerequisites met. I never said that switches were always used!
    – Rex Kerr
    Jan 11, 2016 at 4:59
  • @RexKerr, I may have misread. But in any case, with or without stable identifiers, switches are sometimes used and sometimes not. (Specifically, without stable identifiers, they would not be used.) I can see why unstable identifiers can't easily work with switches, not why unstable identifiers can't easily work with pattern matching. Jan 11, 2016 at 6:45
  • @PaulDraper - My point was that I suspected that it's easier that way: code analysis is simpler if identifiers are stable, and you need code analysis to tell that the tableswitch is possible. It's enabling, not essential.
    – Rex Kerr
    Jan 11, 2016 at 19:07
16

There's nothing to stop you just turning your var into a val before using it in the match:

def mMatch(s: String) = {
    var target: String = "a"
    val x = target
    s match {
        case `x` => println("It was " + target)
        case _ => println("It was something else")
    }
}

works perfectly fine.

2
  • 23
    Exactly. If I can do it, why can't the compiler do it? Aug 17, 2011 at 8:09
  • To make you aware of what you're doing.
    – xmar
    Jul 18, 2018 at 8:26
10

My guess is stable identifiers are required as a simplification to avoid situations where the variable changes inside the pattern matching itself. This would require clarification in the spec, and disrupt optimizations as Rex Kerr mentions.

var x: String = "a"
"b" match {
  case `x` if { x = "b"; true } => println("success")
}

Edit. But this explanation is not completely satisfactory, because the stable identifier could refer to a mutable object,

val x = collection.mutable.Seq(2)
def f(y: Seq[Int]) {
    y match {
      case `x` if { x(0) = 3; true } => println("success")
    }
}
f(Seq(2)) // success
f(Seq(2)) // failure

Note that a stable identifier is not necessarily known statically. For example, the following is fine,

def f(x: Int) {
  1 match { case `x` => println("hi") }
}
0

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