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Is there an easy way to convert a case class into a tuple?

I can, of course, easily write boilerplate code to do this, but I mean without the boilerplate.

What I'm really after is a way to easily make a case class lexicographically Ordered. I can achieve the goal for tuples by importing scala.math.Ordering.Implicits._, and voila, my tuples have an Ordering defined for them. But the implicits in scala.math.Ordering don't work for case classes in general.

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up vote 49 down vote accepted

How about calling unapply().get() in the companion object?

case class Foo(foo:String, bar:Int)

val (str, in) =  Foo.unapply(Foo("test", 123)).get()
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2  
thanks for the tips, in the REPL 2.9.0-1 I had to remove the () to "get" – Tanjona Nov 11 '11 at 0:32
    
very cool! I had no idea about unapply – Sean Nilan Nov 11 '11 at 1:01
    
Cool, that worked! With your suggestion I was able to get my case class Ordered like so: val thisTuple: Ordered[(String, Int)] = Foo.unapply(this).get; val thatTuple = Foo.unapply(that).get; thisTuple compare thatTuple. That's not the prettiest thing in the world, so I'm still open to suggestions, but your answer surely gets the job done. Thanks! – Douglas Nov 11 '11 at 1:17
    
This is quite cumbersome, not really an improvement over just boilerplating it. – matanster Mar 9 '15 at 11:46

You might try extending the ProductN trait, for N=1-22, which TupleN extends. It will give you a lot of Tuple semantics, like the _1, _2, etc. methods. Depending on you how you use your types, this might be sufficient without creating an actual Tuple.

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I'm not sure how to get this approach to work for me. I want my case class either to be lexicographically Ordered or to have a lexicographical Ordering, without having to write lots of boilerplate. Extending ProductN doesn't seem to work with the implicits in scala.math.Ordering that allow one to easily give tuples a lexicographic ordering. – Douglas Nov 15 '11 at 17:07

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