Question

有没有办法使用宏为包下的每个类返回List TypeSymbol个？

我想要实现的是编写一个宏，它提供与此列表等效的内容：

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

scala> case class MyClass1()
defined class MyClass1

scala> case class MyClass2()
defined class MyClass2

scala> val typeSymbols = List(typeOf[MyClass1].typeSymbol, typeOf[MyClass2].typeSymbol)
typeSymbols: List[reflect.runtime.universe.Symbol] = List(class MyClass1, class MyClass2)

这是我的设置：

我有一个名为foo的包，在其下定义了这些包：

trait FooTrait

case class Bar() extends FooTrait 

case class Bar() extends FooTrait

这是我的宏，它获取foo下扩展FooTrait的类的所有类型符号：

def allTypeSymbols_impl[T: c.WeakTypeTag](c: Context)(packageName: c.Expr[String]) = {
  import c.universe._

  // Get package name from the expression tree
  val Literal(Constant(name: String)) = packageName.tree

  // Get all classes under given package name
  val pkg = c.mirror.staticPackage(name)

  // Obtain type symbols for the classes - implementation omitted
  val types = getTypeSymbols(c.universe)(List(pkg))

  // Apply method for List. For easy readability in later applications
  val listApply = Select(reify(List).tree, newTermName("apply"))

  val result = types.map {
    t =>
      val typeName = c.Expr[TypeSymbol](Ident(t))
      println(s"Typename: $typeName, $t, ${t.toType}")

      reify(typeName.splice).tree
  }

  println(s"RESULT: ${showRaw(result)}")

  c.Expr[List[reflect.runtime.universe.TypeSymbol]](Apply(listApply, result.toList))
}

第一张println张贴：

Typename: Expr[c.universe.TypeSymbol](Bar), class Bar, foo.Bar
Typename: Expr[c.universe.TypeSymbol](Baz), class Baz, foo.Baz

第二个打印：

RESULT: List(Ident(foo.Bar), Ident(foo.Baz))

但我收到此错误消息：

[error] no type parameters for method any2ArrowAssoc: (x: A)ArrowAssoc[A] exist so that it can be applied to arguments (<notype>)
[error]  --- because ---
[error] argument expression's type is not compatible with formal parameter type;
[error]  found   : <notype>
[error]  required: ?A
[error] Note that <none> extends Any, not AnyRef.
[error] Such types can participate in value classes, but instances
[error] cannot appear in singleton types or in reference comparisons.

我该怎么做才能使这项工作成功？我怀疑我必须写别的东西而不是Ident，但我无法弄清楚是什么。

使用Scala 2.10.2。

提前致谢！

Answer 1

您必须使用reifyType在运行时Universe中创建反射工件：

import scala.language.experimental.macros
import scala.reflect.macros.Context

object PackageMacros {
  def allTypeSymbols[T](packageName: String) = macro allTypeSymbols_impl[T]

  def allTypeSymbols_impl[T: c.WeakTypeTag](c: Context)(
    packageName: c.Expr[String]
  ) = {
    import c.universe._

    val pkg = packageName.tree match {
      case Literal(Constant(name: String)) => c.mirror.staticPackage(name)
    }

    val types = pkg.typeSignature.members.collect {
      case sym: ClassSymbol =>
        c.reifyType(treeBuild.mkRuntimeUniverseRef, EmptyTree, sym.toType)
    }.toList

    val listApply = Select(reify(List).tree, newTermName("apply"))

    c.Expr[List[Any]](Apply(listApply, types))
  }
}

这将为您提供类型标签列表，而不是符号，但您可以非常轻松地获取符号，如下所示：

scala> PackageMacros.allTypeSymbols("foo").map(_.tpe.typeSymbol) foreach println
class Baz$
class Bar
class Baz
trait FooTrait
class Bar$

或者在宏本身。

Scala宏：获取要在运行时使用的TypeSymbols列表

1 个答案: