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Monads define Semigroups via

instance Monad m => Semigroup (m a) where
    (<>) = (>>)

using FlexibleInstances.

If I wanted to make Maybe a into a Semigroup in that way I would run into an Intance overlap, because Data.Semigroup defines an

instance Semigroup a => Semigroup (Maybe a)

What is the Haskell-Way to resolve something like that?

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1 Answer 1

up vote 11 down vote accepted

The common way in which these problems are solved is with a newtype wrapper. You wouldn't define an instance Semigroup (m a), but rather

newtype WrappedMonad m a = WrappedMonad { getWrappedMonad :: m a }

instance Monad m => Semigroup (WrappedMonad m a) where
    WrappedMonad a <> WrappedMonad b = WrappedMonad (a >> b)
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Thanks! That works like a charm. I just wish there was a way to hide the instances.. –  mr- Mar 27 '13 at 21:14

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