Haskell: type inference and function composition
https://stackoverflow.com/questions/1344414
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20-09-2019 - |
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This question was inspired by this answer to another question, indicating that you can remove every occurrence of an element from a list using a function defined as:
removeall = filter . (/=)
Working it out with pencil and paper from the types of filter, (/=) and (.), the function has a type of
removeall :: (Eq a) => a -> [a] -> [a]
which is exactly what you'd expect based on its contract. However, with GHCi 6.6, I get
gchi> :t removeall
removeall :: Integer -> [Integer] -> [Integer]
unless I specify the type explicitly (in which case it works fine). Why is Haskell inferring such a specific type for the function?
Solution
Why is Haskell inferring such a specific type for the function?
GHCi is using type defaulting, to infer a more specific type from a set of possibles. You can avoid this easily by disabling the monomorphism restriction,
Prelude> :set -XNoMonomorphismRestriction
Prelude> let removeall = filter . (/=)
Prelude> :t removeall
removeall :: (Eq a) => a -> [a] -> [a]
OTHER TIPS
It is also worth noting that if you don't assign a name to the expression, typechecker seems to avoid type defaulting:
Prelude> :t filter . (/=)
filter . (/=) :: (Eq a) => a -> [a] -> [a]
