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Is it possible to add some magic construct around a Scala expression so that it prints the type during compilation? E.g. have some class, magic function, meta programming type, which does:

val i = 1
Some(11).map(Trace(_ + 1))

// compile
// prints: Int
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Are you sure you want it to print Int and not Option[Int]? –  Andrzej Doyle Feb 14 '11 at 13:14
Yes, the type of _ + 1 should be Int. –  Debilski Feb 14 '11 at 13:16
Looks to me like a candidate for an annotation plus compiler plugin. –  Rex Kerr Feb 14 '11 at 13:20

4 Answers 4

up vote 9 down vote accepted

Not exactly, but how 'bout this

$ cat Test.scala
def Trace[T] = identity[T] _

val i = 1
Some(11) map {x => Trace(x + 1)}

$ scala -Xprint:typer Test.scala 2>&1 | egrep --o 'Trace\[.*\]'
Trace[T >: Nothing <: Any]

The first Trace comes from the definition of Trace and can be ignored. The same parameter (-Xprint:typer) works with scalac, too.

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Too bad it doesn’t work in a case like Some("11").map {x => Trace(x) / 1} (though it works for some other erroneous code); but it seems to be the best we can get. –  Debilski Feb 21 '11 at 17:50

If things get really nasty, you can use this:

scala -Xprint:typer -Xprint-types

Gets difficult to read, but tells you exactly what the compiler is thinking.

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Something like this will work at runtime

def Type[T](x:T):T = {println(x.asInstanceOf[AnyRef].getClass()); x }
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No, there's no such thing. A compiler plugin might be able to do it.

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