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I am not good to speak english.

I think. It will be evaluated, and print "abc", "efg".

main =  return (map putStrLn ["abc", "efg"]) >> return ()

but, I tested it, and it does not work.

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Appending spam to the question is not a good response to "your question is too short"! A better way might be adding more useful information ;) For instance, explain why you believe it should print something. – delnan May 7 '12 at 15:25
thank you. delnan. – user1286894 May 7 '12 at 15:27

2 Answers 2

map putStrLn ["abc", "efg"]

returns a list of values of type [IO ()], which you are then not executing; instead, you are calling return on the list to get a value of type IO [IO ()].

You can execute a list of IO a values with the sequence_ function:

main  =  sequence_ (map putStrLn ["abc", "efg"])

Or use the shorthand mapM_:

main  =  mapM_ putStrLn ["abc", "efg"]
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thank you. larsmans. very useful comment. – user1286894 May 7 '12 at 15:33

In any monad, return x >> y is the same as y due to the monad laws.

return x >> y
= return x >>= \_ -> y    -- definition of >>
= (\_ -> y) x             -- left identity monad law
= y                       -- apply the lambda

Thus, return (map putStrLn ["abc", "efg"]) >> return () is the same as return () which is why nothing happens. Lazy evaluation has nothing to do with it.

The easiest fix is to use mapM_, as shown in the other answer.

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thanks for your very useful comment. thanks hammar. very helpful. good luck. – user1286894 May 7 '12 at 16:16

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