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So this question is about Monads more generally (in particuar for Fay), but my example uses the IO monad.

I have a function where the input is a list of strings and I would like to print each string one by one. So here was my idea:

funct :: [String] -> ?
funct strs = do
    map putStrLn strs

But doesn't work because it returns a type [IO ()]. So my question is, how would I map over a list, and treat it as if I'm performing the function line by line, in typical do-notation, iterative style (like below)?

funct :: [String] -> IO ()
funct strs = do
    putStrLn (strs !! 0)
    putStrLn (strs !! 1)
    ...
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Use standard functions from Control.Monad already suggested. Also, could use funct (h:t) = do { putStrLn h; funct t; }; funct _ = return () –  Sassa NF May 21 '14 at 9:37

2 Answers 2

up vote 11 down vote accepted

Most of the standard library list functions have monadic versions that end with M:

map :: (a -> b) -> [a] -> [b]
mapM :: (Monad m) => (a -> m b) -> [a] -> m [b]

replicate :: Int -> a -> [a]
replicateM :: (Monad m) => Int -> m a -> m [a]

etc. Sometimes they are in Prelude, sometimes they are in the Control.Monad. I recommend using hoogle to find them.

Specifically for your case, i use mapM_ putStrLn quite often.

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For bonus points, a good exercise is to read the documentation for Control.Monad and figure out on one's own how to write each of these functions. –  Luis Casillas May 22 '14 at 18:33

Use sequence

sequence $ map putStrLn strings

sequence pulls the monad out of a list of monads

sequence :: Monad m => [m a] -> m [a]

thus converting (map putStrLn strings)::[IO a] to IO [a]. You might want to use the related sequence_ to drop the return value also.

You can also use forM_:: Monad m => [a] -> (a -> m b) -> m () (which often looks nicer, but has a bit of an imperative feel to me).

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sequence . map f is contained in the library as mapM f. –  kqr May 21 '14 at 4:48

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