鉴于懒惰的val:
scala> lazy val y = {println("Y!"); 200}
y: Int = <lazy>
我试图将y放入流中 – 以确定它是否会被急切或懒惰地评估.
scala> Stream(100,y) Y! res4: scala.collection.immutable.Stream[Int] = Stream(100,?)
显然,它受到了热切的评价.
除了以下内容,我如何创建一个懒惰评估其成员的Stream?
scala> Stream[() => Int](() => 100,() => 200) res18: scala.collection.immutable.Stream[() => Int] = Stream(<function0>,?) scala> res18.map(_()) res19: scala.collection.immutable.Stream[Int] = Stream(100,?) scala> res19.last res20: Int = 200 scala> res19 res21: scala.collection.immutable.Stream[Int] = Stream(100,200)
解决方法
Stream.apply接受一个varargs参数,并且在Scala中不可能有名字的varargs参数.但是,您可以对流使用#::语法:
scala> lazy val y = {println("Y!"); 200}
y: Int = <lazy>
scala> val s = 100 #:: y #:: Stream.empty
s: scala.collection.immutable.Stream[Int] = Stream(100,?)
scala> s.last
Y!
res0: Int = 200
这是有效的,因为用于向流添加#::的ConsWrapper类和隐式转换都采用了by-name参数.
