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Since every Monad is a Monoid on the sequencing operation. Why doesn't Monad inherit Monoid in haskell?

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What exactly do you mean by 'sequencing operation' here? –  Rhymoid May 14 '13 at 17:27
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@Rhymoid: I'm pretty sure it's >>. –  Tikhon Jelvis May 14 '13 at 17:31
    
@TikhonJelvis: A limited form of >>, right? –  Rhymoid May 14 '13 at 17:39
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@Rhymoid: The type would have to be specialized to Monad m => m () -> m (), yes. –  Tikhon Jelvis May 14 '13 at 17:44
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up vote 12 down vote accepted

It doesn't have to be a Monad even, this works for every Applicative. So yes, you could define:

class (Functor f, Monoid (f ())) => Applicative f where

But this means that you would have to provide the Monoid instance every time you write an Applicative instance. That can be quite annoying, certainly since this Monoid instance would not be used very often.

A better solution is to create a newtype wrapper around f (), and then you can provide a Monoid instance for all applicative functors once and for all. There's one readily available in the reducers package.

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