为什么我不能将 Scala 的 Function1 隐式转换为 java.util.function.Function?
Why can't I implicit convert Scala's Function1 to java.util.function.Function?
我正在尝试创建 Scala 的 Function1 到 java.util.function.Function 的隐式转换。
这是我的代码:
object Java8ToScala extends App {
implicit def javaFuncToScalaFunc[T, R](func1: Function[T, R]): function.Function[T,R] = {
new function.Function[T, R] {
override def apply(t: T): R = func1.apply(t)
}
}
val javaFunc:function.Function[String,Int] = (s:String) => s.length
println(javaFunc.apply("foo")) // this works
private val strings = new util.ArrayList[String]()
println(strings.stream().map(javaFunc).collect(Collectors.toList())) // this doesn't work
}
编译器信息难以理解:
[error] /xxx/Java8ToScala.scala:74: no type parameters for method map: (x: java.util.function.Function[_ >: String, _ <: R])java.util.stream.Stream[R] exist so that it can be applied to arguments (java.util.function.Function[String,Int])
[error] --- because ---
[error] argument expression's type is not compatible with formal parameter type;
[error] found : java.util.function.Function[String,Int]
[error] required: java.util.function.Function[_ >: String, _ <: ?R]
[error] Note: String <: Any, but Java-defined trait Function is invariant in type T.
[error] You may wish to investigate a wildcard type such as `_ <: Any`. (SLS 3.2.10)
[error] .map(javaFunc).collect(Collectors.toList()))
[error] ^
[error] /xxx/Java8ToScala.scala:74: type mismatch;
[error] found : java.util.function.Function[String,Int]
[error] required: java.util.function.Function[_ >: String, _ <: R]
[error] .map(javaFunc).collect(Collectors.toList()))
[error] ^
[error] two errors found
[error] (compile:compileIncremental) Compilation failed
[error] Total time: 7 s, completed Dec 18, 2015 10:51:15 AM
使用以下隐式转换:
implicit def javaFuncToScalaFunc[T, R](func1: function.Function[T, R]): Function[T,R] = {
new Function[T, R] {
override def apply(t: T): R = func1.apply(t)
}
}
在你的代码中,你有一个从 Scala 函数到 Java 函数的隐式转换,但是你应该有一个从 Java 函数到 Scala 函数的隐式转换。
这只是 Scala 类型推断失败,尽管我不明白为什么:它似乎在寻找扩展 AnyRef 的 R。它 works 如果你使用这样的类型,例如val javaFunc: function.Function[String,String] = (s:String) => s.
但是,它在任何地方都没有上限:也明确地使用 map[Int] works。
我正在尝试创建 Scala 的 Function1 到 java.util.function.Function 的隐式转换。
这是我的代码:
object Java8ToScala extends App {
implicit def javaFuncToScalaFunc[T, R](func1: Function[T, R]): function.Function[T,R] = {
new function.Function[T, R] {
override def apply(t: T): R = func1.apply(t)
}
}
val javaFunc:function.Function[String,Int] = (s:String) => s.length
println(javaFunc.apply("foo")) // this works
private val strings = new util.ArrayList[String]()
println(strings.stream().map(javaFunc).collect(Collectors.toList())) // this doesn't work
}
编译器信息难以理解:
[error] /xxx/Java8ToScala.scala:74: no type parameters for method map: (x: java.util.function.Function[_ >: String, _ <: R])java.util.stream.Stream[R] exist so that it can be applied to arguments (java.util.function.Function[String,Int])
[error] --- because ---
[error] argument expression's type is not compatible with formal parameter type;
[error] found : java.util.function.Function[String,Int]
[error] required: java.util.function.Function[_ >: String, _ <: ?R]
[error] Note: String <: Any, but Java-defined trait Function is invariant in type T.
[error] You may wish to investigate a wildcard type such as `_ <: Any`. (SLS 3.2.10)
[error] .map(javaFunc).collect(Collectors.toList()))
[error] ^
[error] /xxx/Java8ToScala.scala:74: type mismatch;
[error] found : java.util.function.Function[String,Int]
[error] required: java.util.function.Function[_ >: String, _ <: R]
[error] .map(javaFunc).collect(Collectors.toList()))
[error] ^
[error] two errors found
[error] (compile:compileIncremental) Compilation failed
[error] Total time: 7 s, completed Dec 18, 2015 10:51:15 AM
使用以下隐式转换:
implicit def javaFuncToScalaFunc[T, R](func1: function.Function[T, R]): Function[T,R] = {
new Function[T, R] {
override def apply(t: T): R = func1.apply(t)
}
}
在你的代码中,你有一个从 Scala 函数到 Java 函数的隐式转换,但是你应该有一个从 Java 函数到 Scala 函数的隐式转换。
这只是 Scala 类型推断失败,尽管我不明白为什么:它似乎在寻找扩展 AnyRef 的 R。它 works 如果你使用这样的类型,例如val javaFunc: function.Function[String,String] = (s:String) => s.
但是,它在任何地方都没有上限:也明确地使用 map[Int] works。