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In Haskell we are given the ability to combine constraints on types with a logical and.

Consider the following

type And (a :: Constraint) b = (a, b)

or more complicatedly

class (a, b) => And a b
instance (a, b) => And a b

I want to know how to logically or two constraints together in Haskell.

My closest attempt is this, but it doesn't quite work. In this attempt I reify type constraints with tags and than dereify them with implicit parameters.

data ROr a b where
 L :: a => ROr a b
 R :: b => ROr a b

type Or a b = (?choose :: ROr a b)

y :: Or (a ~ Integer) (Bool ~ Integer) => a
y = case ?choose of
 L -> 4

x :: Integer
x = let ?choose = L in y

It almost works, but the user has to apply the final part, and the compiler should do that for me. As well, this case does not let one choose a third choice when both constraints are satisfied.

How can I logically or two constraints together?

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What about Either? It would let you disambiguate when both are satisfied. –  Theo Belaire Apr 21 '12 at 5:47

1 Answer 1

up vote 12 down vote accepted

I believe that there is no way to automatically pick an ROr a b; it would violate the open world assumption if, e.g. b was satisfied, but later a was satisfied as well; any conflict resolution rule would necessarily cause the addition of an instance to change the behaviour of existing code.

That is, picking R when b is satisfied but a is not breaks the open world assumption, because it involves deciding that an instance is not satisfied;1 even if you added a "both satisfied" constructor, you would be able to use it to decide whether an instance is not present (by seeing if you get an L or an R).

Therefore, I do not believe that such an or constraint is possible; if you can observe which instance you get, then you can create a program whose behaviour changes by adding an instance, and if you can't observe which instance you get, then it's pretty useless.

1 The difference between this and normal instance resolution, which can also fail, is that normally, the compiler cannot decide that a constraint is satisfied; here, you're asking the compiler to decide that the constraint cannot be satisfied. A subtle but important difference.

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Would it be possible to have a logical or which works with possible satisfiable constraints instead of simple satisfiable constraints? –  Steven Stewart-Gallus Apr 21 '12 at 23:22

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