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I have a list of a function like this:

[(+1), (+2), (*4), (^2)]

And i want to apply each function to each element of an another list. For example i have a list like this [1..5], i want to get this as result: [2,4,12,16]

This is what i tryed already.

applyEach :: [(a -> b)] -> [a] -> [b]
applyEach _ [] = []
applyEach (x:xs) (y:ys) = x y : applyEach xs ys

I don't know what is the problem, we have a online surface where we have to place the code and it test our submision, and only said that my code isn't pass.

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1  
homework? in this order, do: 1. look for answers or hints in the course materials that were certainly provided, 2. discuss with your fellow students, 3. ask your instructor. –  d8d0d65b3f7cf42 Apr 24 at 19:44
2  
There's already a function that does exactly that in the standard libraries. Though I suppose it's at a higher level of abstraction than you're currently used to. –  Carl Apr 24 at 19:59

2 Answers 2

up vote 6 down vote accepted

Your function works fine when the lists are the same length, or when the second list is shorter than the first:

> applyEach [(+1), (+2), (*4), (^2)] [1..4]
[2,4,12,16]
> applyEach [(+1), (+2), (*4), (^2)] [1..3]
[2,4,12]

But you're not dealing with the case where the second list is longer, as it is in your example:

> applyEach [(+1), (+2), (*4), (^2)] [1..5]
[2,4,12,16*** Exception: H.hs:(2,1)-(3,47): Non-exhaustive patterns in function applyEach

You need to add one more equation to your function to handle this case.

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Ohhh well, really i forgot to add this case applyEach [] _ = [], thank you, you saved my life =) –  Syngularity Apr 24 at 20:05

You can also do this with the built-in zipWith function and the $ operator:

applyEach fs xs = zipWith ($) fs xs
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