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I'm new to Haskell and struggling with some subtleties of syntax. Why is this fine:

reduceBy a f n
    | n < 2 = (a,f)
    | (a `mod` n) == 0 = 
        reduceBy( floor $ fromIntegral a / fromIntegral n) (f++[n]) n
    | otherwise = (a, f)

While this has errors: (Couldn't match expected type `(a, [a])' against inferred type `[a] -> a -> (a, [a])' )

reduceBy a f n
    | n < 2 = (a,f)    
    | (a `mod` n) == 0 = 
        reduceBy( floor(fromIntegral a / fromIntegral n) (f++[n]) n )    
    | otherwise = (a, f)

?

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1  
reduceBy (floor $ fromIntegral a / fromIntegral n) (f++[n]) n is equivalent to reduceBy (floor (fromIntegral a / fromIntegral n)) (f++[n]) n. –  Tsuyoshi Ito Aug 29 '11 at 22:07
2  
As the first comment also shows, as a matter of style, whenever you need to parenthesize your arguments open parentheses are normally not placed right after the function, but at the start of the argument, e.g. reduceBy (floor (... instead of reduceBy( floor( .... –  Boris Aug 30 '11 at 8:21
    
p.s. ( floor $ fromIntegral a / fromIntegral n) can be written as (a `div` n) –  user102008 Nov 26 '11 at 11:17

1 Answer 1

up vote 8 down vote accepted

Your new closing parenthesis comes too late. It should be

... reduceBy (floor(fromIntegral a / fromIntegral n)) ...

The $ binds fairly weakly, but parentheses trump everything.

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