Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free.

I found this very confusing.

scala> val a = (x:Boolean)=>!x
<console>:7: error: not found: value x
       val a = (x:Boolean)=>!x
                ^

scala> val a = (x:Boolean)=> !x
a: Boolean => Boolean = <function1>

The only difference between the two is the whitespace. Is it because the lexer considers =>! an operator?

share|improve this question

2 Answers 2

You're right, it's unable to parse the first version correctly. Here are differences in the trees it generates for the first and second options:

scala> import scala.reflect.runtime.{universe => u}
import scala.reflect.runtime.{universe=>u}

scala> import scala.reflect.runtime.{currentMirror => m}
import scala.reflect.runtime.{currentMirror=>m}

scala> import scala.tools.reflect.ToolBox
import scala.tools.reflect.ToolBox

scala> val tb = m.mkToolBox()
tb: scala.tools.reflect.ToolBox[reflect.runtime.universe.type] = scala.tools.reflect.ToolBoxFactory$ToolBoxImpl@4426fc2e

scala> val treeNotWorking = tb.parse("(x:Boolean)=>!x")
treeNotWorking: tb.u.Tree = (x: Boolean).$eq$greater$bang(x)

scala> val treeWorking = tb.parse("(x:Boolean) => !x")
treeWorking: tb.u.Tree = ((x: Boolean) => x.unary_$bang)

As you can see, it tries to call the =>! on a boolean variable x defined elsewhere. For example, if we had x in the scope, we'd get a different error:

scala> val x = true
x: Boolean = true

scala> val a = (x:Boolean)=>!x
<console>:17: error: value =>! is not a member of Boolean
       val a = (x:Boolean)=>!x
share|improve this answer
    
Thanks, Alex! That helps. –  Zhi Han Apr 2 '13 at 18:46

Scala does not reserve the symbol =>!:

scala> val =>! = 42
=>!: Int = 42

Any contiguous string of punctuation characters not reserved by the language is available for definition. If you want to define a symbol containing both punctuation and alphanumeric characters then you must place an underscore at every transition between punctuation and alphanumeric and vice versa. If it did not do this, a string of input characters such as x+y would be a single symbol (as it is, e.g., in Lisp).

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.