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I'm trying to repeat an IO action forever, but feeding the result of one execution into the next. Something like this:

-- poorly named
iterateM :: Monad m => (a -> m a) -> a -> m b
iterateM f a = f a >>= iterateM f

Hoogle didn't seem to help me, but I see plenty of functions which look enticingly close to what I want, but none seem to come together to be exactly it.

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I created an iterateM_ function as an answer to this question. –  pat May 29 '12 at 20:53
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@pat: glad to see I wasn't the only one! –  Yuki Izumi May 29 '12 at 22:42

4 Answers 4

up vote 4 down vote accepted

You're right, I don't know of a place this particular kind of loop is implemented. Your implementation looks fine; why not submit it as a patch to the monad-loops package?

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Thanks for the idea! Have done so. –  Yuki Izumi May 29 '12 at 22:43

I believe the reason you don't see this in the standard libraries is because it will never terminate. The iterate function can leverage lazy lists to allow you to specify termination using the take function on the result list. Here, your result is monadic, so this isn't possible.

Obviously the spirit of your idea can be done. It just has to look a little different:

iterateM :: Monad m => Int -> (a -> m a) -> a -> m a
iterateM 0 _ a = return a
iterateM n f a = f a >>= iterateM (n-1) f
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Indeed, this is true, but the use case is different too! (i.e. I'm not expecting it to terminate, much as the user of forever isn't.) –  Yuki Izumi May 29 '12 at 14:35
    
There are of course exceptions and System.Exit, but those shouldn't normally be (ab)used for breaking a loop on purpose. –  dflemstr May 29 '12 at 14:36
    
Len: Ahhh, I see. I guess just use your definition. I don't know of anything in standard libraries doing that. –  mightybyte May 29 '12 at 14:40
    
Couldn't something like (a -> MaybeT m a) -> a -> m a work? –  leftaroundabout May 29 '12 at 14:59
    
@leftaroundabout hey, I wrote almost that exact thing recently! See loopM in github.com/DanBurton/bf-interp/blob/master/Program.hs -- instead of return () you could return a and get the precise signature you were looking for. –  Dan Burton May 29 '12 at 18:35

Well, I would expect an iterateM combinator to have this type signature:

iterateM :: (Monad m) => (a -> m a) -> a -> m [a]

Of course this is not a very useful combinator, because you couldn't extract the result in most monads. A more sensible name to go with the base naming standard for your combinator would be iterateM_:

iterateM_ :: (Monad m) => (a -> m a) -> a -> m b
iterateM_ f = fix $ \again x -> f x >>= again

This combinator can be useful:

countFrom :: (Enum a) => a -> IO b
countFrom = iterateM_ (\x -> succ x <$ print x)

However, for the sake of simplicity I would just go with fix or explicit recursion. The explicitly recursive code isn't much longer or much less readable:

countFrom :: (Enum a) => a -> IO b
countFrom = fix (\again x -> print x >> again (succ x))
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Thanks for the heads up re: the name—you're right. Thanks also for the examples! –  Yuki Izumi May 29 '12 at 22:39

This can actually be written in terms of forever using StateT.

import Control.Monad.Trans.State
import Control.Monad.Trans.Class (lift)
import Control.Monad (forever)

iterateM :: Monad m => (a -> m a) -> a -> m b
iterateM f = evalStateT $ forever $ get >>= lift . f >>= put
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Thanks! This clarifies some things in my mind about lift, too. –  Yuki Izumi May 29 '12 at 22:40

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