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Assume, we have the following definitions:

scala> trait T
defined trait T

scala> object A extends T
defined module A

Then we can create an object with type T with:

scala> val t: T = A
t: T = A$@98b13b

No new keyword is used here, so therefore an apply method is used here. But we did not define an apply method so far, so I guess a default apply method is used here ? But what does it look like ?

UPDATE 1:

When assigning an variable of type A with the same, an error will be thrown:

scala> val a: A = A
<console>:9: error: not found: type A
       val a: A = A
              ^

Why is the same 'trick' not working here ? What is the difference ?

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2 Answers 2

up vote 8 down vote accepted

A is an object, not a class, thus you don't need to create an instance of it - it is basically a singleton. Therefore no new is required. apply is not involed here.

It's a bit different with case classes:

case class C(x: Int)
val c = C(10)

This time new operator wasn't used as well but new object was created - and this time apply() is involved. Basically when you create a case class, companion object is created as well with apply method implemented for your convinience (see: Using constructor where function expected):

val c = C.apply(10)
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Thank you. When I understand you right, the (singleton) object of A is already a full object. But in another example (see Update 1) there will be an error thrown when using the object A as a normal object. What is the reason behind this? –  John Threepwood Jul 9 '12 at 8:16
    
@JohnThreepwood: this is technically a separate question, but whatever. Since A is an object (think: singleton) there is no point in creating variables of it or passing it as parameter (see: def foo(a: A)). You can always access it by simply using A. –  Tomasz Nurkiewicz Jul 9 '12 at 8:30
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Your object A is not a type, therefore you cannot use it in a type ascription.

val a: T = A

and

val a: A.type = A

work.

T is the widened type of the trait you know that A inherited, A.type is the narrow type of the singleton object.

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Thank you, now I undertand. Do you know where I can find more information about A.type ? This is new to me. –  John Threepwood Jul 9 '12 at 8:41
    
@JohnThreepwood There's nothing much to it. A.type is a singleton type. If I do val a = "abc"; val b: a.type = a, I'm saying b is not simply a String, but it's actually the exact same thing as a. It's useful sometimes. If you want more information, ask another question. It's free! :-) –  Daniel C. Sobral Jul 9 '12 at 21:12
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