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I want that my function someZip returns the resulting list from applying f to each element.

This is what I got so far:

someZip :: (a -> b -> c -> d) -> [(a,b,c)] -> [d]
someZip f (x:xs) (y:ys) (z:zs)  = f x y z : someZip f xs ys zs

I've tried different approaches, but I can't find a solution to this problem. I am completly lost right now, what am I missing here?

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  • 5
    Three lists is not the same thing as a list of triples. – molbdnilo Jun 9 at 13:18
  • Thanks @SilvioMayolo, i dont know why i have see that my signature and the targeted are incongruous – TheRealVitja Jun 9 at 14:12
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The function you've written and the type signature you've targeted are incongruous. If you like the type signature, you need to alter the definition

someZip :: (a -> b -> c -> d) -> [(a,b,c)] -> [d]
someZip _ [] = []
someZip f ((x,y,z):ts)  = f x y z : someZip f ts

This, incidentally, can be written in terms of fmap.

someZip :: (a -> b -> c -> d) -> [(a,b,c)] -> [d]
someZip f = fmap (\(x, y, z) -> f x y z)

If you prefer to keep the implementation and change the type signature, you'll need to take more arguments

someZip :: (a -> b -> c -> d) -> [a] -> [b] -> [c] -> [d]
someZip f (x:xs) (y:ys) (z:zs)  = f x y z : someZip f xs ys zs
someZip _ _ _ _ = []

Incidentally, this function is actually zipWith3

someZip :: (a -> b -> c -> d) -> [a] -> [b] -> [c] -> [d]
someZip = zipWith3

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