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Let's say that I want to create a simple graph representation where Vertex and Edge and their types depend on each other. A concrete implementation could look something like this:

case class Edge(id: Int, label: String, endpoints: (Vertex, Vertex))
case class Vertex(id: Int, data: Data, edges: Map[Int, Edge])

Edge depends on Vertex and vice versa. What I really want is for id, data etc to have generic types. And I wonder how to design this the best way?

trait Vertex[A, B] {
  def id: A
  def data: B
  // What about types for the edges etc?
}

trait Edge[A, ...] {
  def id: A
  def label: String
  def endpoints: (Vertex[...], Vertex[...])
}

A simple example of this would be much appreciated.

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2 Answers

up vote 0 down vote accepted

Since Vertex and Edge can have different ID types, you may want to have Vertex and Edge be inner traits of a Graph trait, which has all the type parameters. That way, Vertex can know about the Edge trait's ID type, and Edge can know about the Vertex trait's ID and Data types.

trait Graph[VertexID, EdgeID, Data] {

  trait Vertex {
    def id: VertexID
    def data: Data
    def edges: Map[EdgeID, Edge]
  }

  trait Edge {
    def id: EdgeID
    def label: String
    def endpoints: (Vertex, Vertex)
  }

}

Incidentally, due to path-dependent types, Edge would only be able to have endpoints which are in the same Graph, and Vertex would only be able to have edges which are in the same Graph.

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Exactly what I was thinking about. Thanks a lot! –  chrsan Sep 12 '12 at 9:16
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What is wrong with re-using the type parameters?

trait Vertex[A, B] {
  def id: A
  def data: B
  def edges: Map[A, Edge[A, B]]
}

And then in Edge:

trait Edge[A, B] {
  def id: A
  def label: String
  def endpoints: (Vertex[A, B], Vertex[A, B])
}
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The id for Vertex and Edge can be of different type and you missed one of the types for Edge in the map, but no, nothing wrong about that. Was just wondering if this was the best way to solve it. Thanks! –  chrsan Sep 11 '12 at 9:32
    
Map is invariant in K, so you can't make Vertex covariant in A, which means you can't make Edge covariant in A. But you are right about B. –  Jörg W Mittag Sep 11 '12 at 9:38
    
@Jorg - good point, I missed that –  oxbow_lakes Sep 11 '12 at 11:20
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