Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I know that when you type:

val list = List(2,3)

you are accessing the apply method of the List object which returns a List. What I can't understand is why is this possible when the List class is abstract and therefore cannot be directly instanciated(new List() won't compile)? I'd also like to ask what is the difference between:

val arr = Array(4,5,6)

and

val arr = new Array(4, 5, 6)
share

2 Answers 2

up vote 5 down vote accepted

I started writing that the easy way to determine this is to look at the sources for the methods you're calling, which are available from the ScalaDoc. However, the various levels of indirection that are gone through to actually build a list give lie to the term 'easy'! It's worth having a look through if you want, starting from the apply method in the List object which is defined as follows:

override def apply[A](xs: A*): List[A] = xs.toList

You may or may not know that a parameter of the form xs : A* is treated internally as a Seq, which means that we're calling the toList method on a Seq, which is defined in TraversableOnce. This then delegates to a generic to method, which looks for an implicit CanBuildFrom which actually constructs the list. So what you're getting back is some implementation of List which is chosen by the CanBuildFrom. What you actually get is a scala.collection.immutable.$colon$colon, which implements a singly-linked list.

Luckily, the behaviour of Array.apply is a little easier to look up:

  def apply[T: ClassTag](xs: T*): Array[T] = {
    val array = new Array[T](xs.length)
    var i = 0
    for (x <- xs.iterator) { array(i) = x; i += 1 }
    array
  }

So, Array.apply just delegates to new Array and then sets elements appropriately.

share

The List class is sealed and abstract. It has two concreate implementations

  1. Nil which represents an empty list
  2. ::[B] which represents a non empty list with head and tail. ::[B] in the documentation

When you call List.apply it will jump through some hoops and supply you with an instance of the ::[B] case class.

About array: new Array(4, 5, 6) will throw a compile error as the constructor of array is defined like this: new Array(_length: Int). The apply method of the Array companion object uses the arguments to create a new instance of an Array (with the help of ArrayBuilder).

share
2  
Worth noting that Array.apply only falls back to using an ArrayBuilder if you're trying to build an array if there's no ClassTag available for the contained type, and it's not something with a primitive JVM representation. –  Impredicative Feb 25 '13 at 11:41

This site is currently not accepting new answers.

Not the answer you're looking for? Browse other questions tagged .