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Hello there here is my issue. This is my running code, which is fine:

showBalls = do
      howMany <- getInt
      return . take HowMany $ repeat 9

where my getInt does several checks in order to retrieve user input Int. However, my question is, is there a way to rewrite this part of code with the use of monads?

My aim is to use >>= and have a final one-line functions such as:

showBalls = fmap (take <$> (repeat 9)) getLine

however it doesnt work (as expected). Any suggestion?

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1  
One line doesn't mean better. Also, that part of the code already uses monads. –  Cat Plus Plus Jan 9 '13 at 18:03
    
Yep yep, I perfectly understand. It is not about what's better, it is about understanding the language I think :) –  haskellguy Jan 9 '13 at 18:05

3 Answers 3

up vote 2 down vote accepted

You can use flip to reverse the arguments of take, which makes it possible to apply repeat 9 to it and get function:

> :t flip take (repeat 9)
flip take (repeat 9) :: Num a => Int -> [a]

To use >>= with getInt we need Int -> IO a function:

> :t (getInt >>=)
(getInt >>=) :: (Int -> IO b) -> IO b

To get that, compose with return (it's m [a] because it will work for every monad, but is also restricted to lists; from the above type, m becomes IO and b becomes [a]):

> :t return . flip take (repeat 9)
return . flip take (repeat 9) :: (Monad m, Num a) => Int -> m [a]

The final expression is:

> :t getInt >>= return . flip take (repeat 9)
getInt >>= return . flip take (repeat 9) :: Num a => IO [a]

But, as I mentioned, I'm not really convinced it's strictly better than the original. As a more useful bit of knowledge, playing around with expressions and their types in GHCi is a good way of inventing transformations like that.

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3  
Or, since x >>= return . f is fmap f x or f <$> x, this can be further simplified to flip take (repeat 9) <$> getInt –  hammar Jan 9 '13 at 18:25
    
you meant fmap take (repeat 9) <$> getInt? –  haskellguy Jan 9 '13 at 18:26
1  
@haskellguy: no, flip is correct. The <$> is already doing the fmap. –  Ben Millwood Jan 10 '13 at 0:02

I got it my self too but using lambda notation :)

showBalls = getInt >>= (\a -> return . take a $ repeat 9 )
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3  
This version with the lambda is actually exactly what do notation dessugars into. haskell.org/haskellwiki/Monad#Special_notation –  hugomg Jan 9 '13 at 18:21
    
Got it! I am learning! :) thanks –  haskellguy Jan 9 '13 at 18:47

I believe this should work:

showBalls = (liftM . flip take $ repeat 9) getInt

There is probably point free way to do it as well, but I couldn't figure it out.

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It doesn't type-check, it should be $ instead of . –  Cat Plus Plus Jan 9 '13 at 18:23
    
That is weird, as it works in my GHCI. –  Adam Jan 9 '13 at 18:27
    
There's no way this composition makes sense: liftM's first argument is a function, not a list. –  Cat Plus Plus Jan 9 '13 at 18:31
    
Maybe I wrote it in a confusing way. liftM does get a function : liftM . flip take –  Adam Jan 9 '13 at 18:35
1  
Welp, nevermind, I tested something else. Damn you, operator precedence. –  Cat Plus Plus Jan 9 '13 at 18:52

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