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returning a lazy val in Scala

开发者 https://www.devze.com 2023-03-02 12:51 出处:网络
I have a function that looks like this: package org.thimblr.io import java.i开发者_如何学JAVAo._ object Local {

I have a function that looks like this:

package org.thimblr.io
import java.i开发者_如何学JAVAo._
object Local {
  def streamer(path: String) = () => new FileReader(path)
}

This manages basically what I want to do, which is to return a function that opens a stream from a file when it's called. So client code can do this:

val planStreamSource = Local.streamer("/home/someuser/.plan")
//...passes the function on to somewhere else
val planStream = planStreamSource()
val firstByte = planStream.read
//can now read from planStream

But what I'd really like is to return a lazy val that streams from a file once it's referenced, like this:

val planStream = Local.streamer("/home/someuser/.plan")
//...passes the val on to somewhere else, without opening the file for reading yet
val firstByte=planStream.read
//...such that planStream was only just opened to allow the read

Is it possible to do something like this, return a lazy val, so that client code can treat it as a value rather than a function?


You can't “return a lazy val” — client code must declare it as lazy. If you don't want to force the client to declare a lazy val, you could return a wrapper instead:

class LazyWrapper[T](wrp: => T) {
  lazy val wrapped: T = wrp
}

object LazyWrapper {
  implicit def unboxLazy[T](wrapper: LazyWrapper[T]): T = wrapper.wrapped
}

And then:

def streamer(path: String) = new LazyWrapper(new FileReader(path))

You could further forward equals, hashCode, etc. to the wrapped object in LazyWrapper if you need those.

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