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I want mapM over something that is traversable while passing an accumulator. I came up with:

import Control.Applicative
import Data.Traversable
import Control.Monad.State

mapAccumM :: (Applicative m, Traversable t, MonadState s m)
             => (s -> a -> m (s, b)) -> s -> t a -> m (t b)
mapAccumM f acc0 xs = put acc0 >> traverse g xs
  where
    g x = do
      oldAcc <- get
      (newAcc, y) <- f oldAcc x
      put newAcc
      return y

How can this be done without State monad?

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You could use StateT and runStateT within your function, without requiring the outer monad to be a state monad... –  dflemstr Jul 25 '12 at 15:10
    
to be clear, do you want the same type with with a Monad m restriction instead of MonadState s m? –  Chris Taylor Jul 25 '12 at 15:17
    
ChrisTaylor: yes I want Monad m –  ghorn Jul 25 '12 at 15:21

1 Answer 1

roconner answered this for me on #haskell

this solves my problem but notice that accumulator is returned in the second element of the tuple instead of the first

mapAccumM :: (Monad m, Functor m, Traversable t) => (a -> b -> m (c, a)) -> a -> t b -> m (t c)
mapAccumM f = flip (evalStateT . (Data.Traversable.traverse (StateT . (flip f))))

or to also return the accumulator:

mapAccumM' :: (Monad m, Functor m, Traversable t) => (a -> b -> m (c, a)) -> a -> t b -> m (t c, a)
mapAccumM' f = flip (runStateT . (Data.Traversable.traverse (StateT . (flip f))))
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2  
Not sure if a state monad transformer count as "without State monad" ;D –  KennyTM Jul 25 '12 at 15:24
    
Russell O'Connor's nickname on #haskell is roconnor, not rconner. –  Matvey Aksenov Jul 26 '12 at 12:21
    
thank you, fixed –  ghorn Jul 26 '12 at 20:18

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