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when I try to compile this piece of code

prod [] = 1
prod (x:xs) = x * prod xs

ff :: (Num a) => a -> a -> a
ff x n = prod [(x - n + 1) .. x]

I get following error:

a.hs:5:15:
    Could not deduce (Enum a)
     arising from the arithmetic sequence `(x - n + 1) .. x'
    from the context (Num a)
      bound by the type signature for ff :: Num a => a -> a -> a
      at a.hs:5:1-32
    Possible fix:
      add (Enum a) to the context of
        the type signature for ff :: Num a => a -> a -> a
    In the first argument of `prod', namely `[(x - n + 1) .. x]'
    In the expression: prod [(x - n + 1) .. x]
    In an equation for `ff': ff x n = prod [(x - n + 1) .. x]

what is wrong with this code? When I substitute Double for a everything is all right.

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Num is not an Enum, as you can have Num types that would be hard to enumerate, like Complex. –  Landei Jul 31 '12 at 9:58
    
Remove the type signature for ff and see what type the compiler deduces. –  augustss Jul 31 '12 at 16:31

3 Answers 3

up vote 7 down vote accepted

[i .. j] is shorthand for enumFromTo i j. enumFromTo is part of the Enum typeclass, and not part of Num (you still need Num to use + and - though).

So you need to say that a implements Enum as well as implementing Num:

ff :: (Num a, Enum a) => a -> a -> a
ff x n = prod [(x - n + 1) .. x]

It works with Double because Double implements both these typeclasses.

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Straight to the point! –  Trismegistos Jul 31 '12 at 10:02

In order for [x .. y] to work, the result type doesn't need to be a Num instance at all (e.g., ['A'..'Z'] works just fine). It needs to be an Enum instance. Just add Enum to the type signature.

It works with Double since Double has both instances.

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ff :: (Enum a, Num a) => a -> a -> a
ff x n = prod [(x - n + 1) .. x]

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