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I need some help with my program. It's supposed to sqrt all element of a Integer list and give back a list of Float, in 3 variants: 1) recursive, 2) list comprehensions, 3) higher-order functions. I've wrote first one, which works fine:

-- recursive:

sqrtL1 :: [Integer] -> [Float]
sqrtL1 [] = []
sqrtL1 (n:ns)  = (sqrt x) : sqrtL1(ns)
    where x = fromIntegral n :: Float

-- Listenkomprehension:

sqrtL2 :: [Integer] -> [Float]
sqrtL2 (n:ns) = [sqrt x | x <- ns]
    where x = fromIntegral n :: Float  --(it doesn't work tho)

-- Higher-order:

sqrtL3 :: [Integer] -> [Float]
sqrtL3 ns = map sqrt ns

but I'm getting troubles with converting in the next two cases. Could someone help me?

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Note that you don't need (and shouldn't use!) parentheses in sqrt x : sqrtL1 ns. It's still correct of course in principle, but just not nice standard Haskell style. –  leftaroundabout Dec 18 '13 at 20:27

1 Answer 1

up vote 2 down vote accepted

The problem with sqrtL2 is x is not in scope outside the list comprehension. You need to do the fromIntegral inside the list comprehension like this:

sqrtL2 ns = [sqrt (fromIntegral x) | x <- ns]

sqrtL3 is fine except you don't have a fromIntegral anywhere and sqrt is Floating a => a -> a so it doesn't work with Integer. So you need this instead:

map (sqrt . fromIntegral) ns
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2  
To clarify, it should be just sqrtL2 ns = [sqrt (fromIntegral x) | x <- ns]. In other words, change (n:ns) to ns and drop the where clause. –  mhwombat Dec 18 '13 at 16:59
    
Good point, updated my answer. –  Andrew Myers Dec 18 '13 at 17:05

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