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I want to be able to create a function to see if two types are equal. I have a type class called finite defined as follows,

class (Bounded a, Enum a) => Finite a

and want to be able to write a equality comparison function

equals :: (Finite a, Eq b) => (a -> b) -> (a -> b) -> Bool

for functions who's domain is of type Finite. For example, for a negation function:

neg :: Int8 -> Int8
neg n = -n

the return in the Main would be:

*Main> equals neg (\x -> x)
False
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    You create a list of the "domain", and check if both functions give the same answer for all these items. Oct 13 at 16:11
  • this sounds like a property check/test, no?
    – user1984
    Oct 13 at 16:13
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    What is your question? Oct 14 at 0:05
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    – Dharman
    Oct 14 at 13:10
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    @MichaelLitchard That is not a valid reason to close a question!
    – Dharman
    Oct 14 at 13:11
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Basically what you need is to enumerate over all possible values for a, and check if the two functions produce the same result.

You can generate a list of all the items with [minBound ..], and you can use all :: Foldable f => (a -> Bool) -> f a -> Bool to check if for all items a certain predicate is satisfied.

You thus can implement such function with:

equals :: (Finite a, Eq b) => (a -> b) -> (a -> b) -> Bool
equals = all (…) [minBound ..]

where I leave implementing the part as an exercise. It should call f and g with the element of the list, and return True if and only if the two functions produce the same result.

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  • @GregOSullivanne: it's not [minBound], there are two dots, that is not an exercise, but simply a way to create a range list, so [minBound ..] :: Char will construct a list of all possible Characters. Oct 13 at 19:13
  • @GregOSullivanne: you can use a lambda-expression \x -> ... where x is an item from the list, and you need to map it to a bool that is true if both functions f and g produce the same result Oct 13 at 19:28
  • @GregOSullivanne: no, and map is not a keyword: map is simply a function exported from the Prelude. The all will call the lambda-expression for all elements (or until it finds one item for which the lambda-expression returns False). Oct 13 at 19:37

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