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Consider the following:

scala> import scala.reflect.runtime.universe._
import scala.reflect.runtime.universe._

scala> typeOf[Boolean]
res23: reflect.runtime.universe.Type = Boolean

scala> typeOf[scala.Boolean]
res24: reflect.runtime.universe.Type = Boolean

scala> res23 == res24
res25: Boolean = true

scala> typeOf[java.lang.Boolean]
res26: reflect.runtime.universe.Type = Boolean

scala> res23 == res26
res27: Boolean = false

scala> class Foo { def bf(arg: Boolean) = ??? }
defined class Foo

scala> typeOf[Foo]
res28: reflect.runtime.universe.Type = Foo

scala> res28.member(newTermName("bf")).asMethod
res30: reflect.runtime.universe.MethodSymbol = method bf

scala> res30.paramss.head.head
res31: reflect.runtime.universe.Symbol = value arg

scala> res31.typeSignature
res32: reflect.runtime.universe.Type = scala.Boolean

scala> res32 == res23
res33: Boolean = false

scala> res32 =:= res23
res37: Boolean = true

So the type obtained via the typeOf[Boolean] function is equivalent to the type obtained via inspecting a method, but it is not equal.

Is there a way to transform two equivalent types into some canonical representation where the results will be equal? I'd like to be able to use them for things like keys in maps.

Edit:

To be more clear, what I'm looking for is something along the lines of (not a real repl session):

scala>val tp1 = // some type
scala>val tp2 = // equivalent type obtained another way
scala>tp1 == tp2
res1: Boolean = false
scala>tp1 =:= tp2
res2: Boolean = true
scala>val ctp1 = tp1.canonical
scala>val ctp2 = tp2.canonical
scala>ctp1 == ctp2
res3: Boolean = true
scala>ctp1 =:= tp1
res4: Boolean = true
scala>ctp2 =:= tp2
res5: Boolean = true

So equivalence is preserved by the transformation. I also need it to work on parameterized types.

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1  
I do not fancy trying to turn the elaborate hierarchy of isSameType machinations into a hashCode. So I would say in general probably not. –  Rex Kerr Dec 27 '12 at 21:12
    
I don't see an easy way here either. –  Eugene Burmako Dec 28 '12 at 8:55
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2 Answers 2

up vote 4 down vote accepted

From the documentation:

It's important to note that == should not be used to compare types for equality—== can't check for type equality in the presence of type aliases, while =:= can.

You can of course store the types in a list and use (for example) the following to check for inclusion:

myTypes.exists(_ =:= someType)

You'll see this approach in the 2.10 compiler source, for example. It's not as efficient as a map or set, of course, but you generally don't have many of these things in a collection.

If you absolutely have to have the performance of a map or set, you may be able to use erasure (as another answer suggests) or typeSymbol, depending on your requirements.

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Yes, I'm aware. Please see the edits I just made to my question for more clarity. Should I interpret your answer as what I'm looking for does not exist? –  Erik Engbrecht Dec 27 '12 at 21:30
    
Well, there's definitely nothing exactly like what you want, and given what I know, I'd guess that writing e.g. a wrapper implementing a hashCode that would be consistent with =:= would be a huge headache. But I'm still learning new things about 2.10 every day, so you may not want to take that as 100% authoritative. –  Travis Brown Dec 27 '12 at 21:55
    
I think it doesn't exist. If someone comes along with a "but here it is!" I'll select their answer. –  Erik Engbrecht Dec 27 '12 at 22:02
1  
Sounds fair to me. You may want to send up a flare for Eugene Burmako—he often weighs in on questions like this (see for example his answer to a similar question I had a few months ago). –  Travis Brown Dec 27 '12 at 22:12
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erasure method of scala.reflect.api.Types.TypeApi:

typeOf[Foo].member(newTermName("bf")).asMethod.paramss.head.head
  .typeSignature.erasure == typeOf[Boolean]
// res21: Boolean = true
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Clever, but it won't work for parameterized type because it erases the type parameters. The result is that the results of tpe.erasure is not equivalent to tpe if tpe had non-Any type parameters. Furthermore, if you have, say, Option[Int] and Option[String] after erasure they will be equivalent. So this doesn't work in the general case. –  Erik Engbrecht Dec 27 '12 at 21:12
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