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I'm very new to Scala so forgive me if this is a real easy question but I could not find anything to help me or I could not figure out the right search terms. How can I make this work?

scala> trait Foo
defined trait Foo

scala> class FooImpl extends Foo
defined class FooImpl

scala> trait Bar { def someMethod(foo: Foo) }
defined trait Bar

scala> class BarImpl extends Bar { def someMethod(foo: FooImpl) {} }
<console>:10: error: class BarImpl needs to be abstract, since method someMethod in trait Bar of type (foo: Foo)Unit is not defined
(Note that Foo does not match FooImpl)
       class BarImpl extends Bar { def someMethod(foo: FooImpl) {} }

Why doesn't FooImpl match Foo since Foo is a trait? I'm guessing I need to alter the signature of someMethod in Bar to say that I'm expecting something that extends Foo or "with Foo" but I can't seem to find documentation for this.

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3 Answers

up vote 3 down vote accepted

dhg explained why this doesn't work and why you probably don't really want it.

But if you still want it, you can do it like this:

trait Foo

class FooImpl extends Foo

trait Bar[F <: Foo] { def someMethod(foo: F) }

class BarImpl extends Bar[FooImpl] {
    def someMethod(foo: FooImpl) {}
}
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Accepted this because it solved my issue. Is "F <: Foo" basically "something that extends Foo"? –  ShatyUT Aug 26 '12 at 1:08
    
Yes F <: Foo means Foo or something extending Foo. –  Jens Schauder Aug 26 '12 at 6:41
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The problem is that the Bar trait's someMethod declaration specifies that any kind of Foo can be passed as an argument. You can think of this as its "contract". The contract says that any implementation of Bar will have a method someMethod that will accept any kind of Foo.

Your BarImpl class is an implementation of Bar and has a someMethod implementation. Unfortunately, its implementation of someMethod only accepts FooImpl kinds of Foo objects: not any kind of Foo. Since it doesn't allow you to pass in Foo objects that aren't FooImpl objects, it violates the contract specified by the trait definition. Implementations can't be more restrictive than the contract specifies.

As an example:

class FooImplB extends Foo
val bar: Bar = new BarImpl
val foo: Foo = new FooImplB
bar.someMethod(foo)

Here we declare a Bar called bar and a Foo called foo. According to the definition of Foo I should be able to pass foo into bar.someMethod. Except that BarImpl.someMethod only accepts FooImpl kinds of Foos and not FooImplBs! So we have a problem.

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I guess I got so used to doing this in Groovy I forgot you can't do this in Java. –  ShatyUT Aug 25 '12 at 16:59
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Jens Schauder's answer works but forces you to define the type in the trait signature. Instead, you can do the same on the method level:

scala> trait Foo
defined trait Foo

scala> class FooImple extends Foo
defined class FooImple

scala> trait Bar { def methodA[T <: Foo](foo: T) }
defined trait Bar

scala> class BarImpl extends Bar { def methodA[FooImpl](foo: FooImpl){} }
defined class BarImpl
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Yes, this is the better answer IMO. –  ShatyUT Aug 26 '12 at 12:57
    
This answer is wrong. Even after you fix the typo (FooImple / FooImpl), the FooImpl in the last line is a new type parameter that shadows the FooImpl class, so you could call it with a string or integer as an argument, for example, which is very much not what you want. Jens's answer is the correct one. –  Travis Brown Aug 26 '12 at 13:39
    
@TravisBrown you're right. I hadn't noticed the typo which really points out the problem. The compiler isn't complaining even though FooImpl has not been defined. I verified Jens' answer to work in Eclipse for my project. I'll switch answers back. –  ShatyUT Aug 26 '12 at 17:29
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