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Based on the answer for the second problem I face at:

Haskell - Pattern Synonyms, View Patterns, GADTs

{-# LANGUAGE PatternSynonyms #-}
{-# LANGUAGE GADTs #-}
data T where
  MkT :: (Show b) => b -> T
pattern ExNumPat :: () => Show b => b -> T
pattern ExNumPat x = MkT x
test11 = ExNumPat "True"

The answerer says "pattern-match the b back out of it and just show that" as one of the ways to resolve my error. Could it be further explained? How do I do that? I've tried adding the following, besides other variations:

{-# LANGUAGE ScopedTypeVariables #-}
testExNumPat :: (forall b. Show b => (b -> T) -> T)
testExNumPat (ExNumPat (1::Int)) = MkT 1
test12 = testExNumPat (ExNumPat 1)

But I always ended up with many more errors. For this particular case, the errors are:

• Couldn't match expected type ‘b -> T’ with actual type ‘T’
• In the pattern: ExNumPat (1 :: Int)

• Couldn't match expected type ‘b3’ with actual type ‘Int’
  ‘b3’ is a rigid type variable bound by
    a pattern with pattern synonym:
      ExNumPat :: () => forall b. Show b => b -> T

• Couldn't match expected type ‘b1 -> T’ with actual type ‘T’
• Possible cause: ‘ExNumPat’ is applied to too many arguments
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  • 1
    I think it is better to ask for clarification of that answer instead of asking a second question like this. Or alternatively make this a self-contained question by adding more of the context from your other question to this question.
    – Noughtmare
    Jul 7, 2021 at 12:27
  • @Noughtmare, thanks, I've added to my question.
    – maxloo
    Jul 7, 2021 at 12:33

1 Answer 1

1

There are two main issues here: as the error message says, your type for testExNumPat is wrong, I think it should be testExNumPat :: T -> T; and secondly you match on an Int in the ExNumPat, but the contained value is existentially quantified, so you can't know that this value will always be an Int. To show the contained value you can simply call show on it:

testExNumPat :: T -> String
testExNumPat (ExNumPat x) = show x

test12 = testExNumPat (ExNumPat 1)

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