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If I have a function f :: State Int (), is it possible to use it within another function g :: StateT Int IO ()? Nesting it with f = do { something; g } fails to typecheck with Couldn't match type 'Data.Functor.Identity.Identity' with 'IO'.

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  • Shouldn't there be g = do { something; f }? You want to use f within g, right?
    – gumik
    May 12, 2015 at 6:28

1 Answer 1

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Yes, this operation is usually called "hoisting". For the State monad, it could be defined as

hoistState :: Monad m => State s a -> StateT s m a
hoistState = state . runState

Unfortunately, it is not defined in the Control.Monad.State module.

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    See also the tutorial for the mmorph package Jun 26, 2013 at 16:57
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    @GabrielGonzalez Seems like having a type-class for monad transformers with hoistId :: (Monad m) => t Identity a -> t m a would be an useful (Haskell98) addition to the base libraries. It'd be just a specialized version of MFunctor for the functor return . runIdentity.
    – Petr
    Jun 26, 2013 at 17:25
  • @Roman Cheplyaka - this is also called "local effect" in Ralf Laemmel and Joost Visser's "Design Patterns for Functional Strategic Programming" arxiv.org/abs/cs/0204015 Jun 26, 2013 at 19:47
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    You can also write this as hoistState = state . runState, which is a little less mind-bending to reason about (in fact StateT . (return .) is the definition of state.)
    – lynn
    Oct 22, 2018 at 13:22

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