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I wrote a function that returns a subset of an array (as a list) that consists of the elements whose indexes are equal to (n + some index of another list).

An array was used instead of a list for efficiency, but a list could have been used with the same effect.

My tests show the function works fine. But I wonder if there is a faster way to do this, as the function looks a bit cumbersome to me.

So here is the function:

let shiftFrom (n: int) (xs: 'T list) (arr: 'T []) : 'T list =
        let len = arr.Length - 1
        let rec loop (acc: 'T list) (zs: list<int>*list<'T>) =
            match zs with
            | [], _ -> acc
            | _, [] -> acc
            | (i::is), (w::ws) ->
                if i + n > len then acc
                elif w = arr.[i] then  loop (arr.[i+n]::acc) (is, ws)
                else loop acc (is, w::ws)  
        loop [] ([0..len], xs)
        |> List.rev

The function passed this test:

let arr = [0..10] |> Array.ofList
let xs = [0; 2; 5; 7; 9]
shiftFrom 2 xs arr
// val it : int list = [2; 4; 7; 9]

Is there a more efficient way of accomplishing this?

(For this specific example there is an obvious one, my question relates to the general case where arr is not so nice).

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    Re: Is there a more efficient way of accomplishing this? Do you have issue with the speed of the execution (in which case some benchmark timings would be helpful) or the complexity of the code? – s952163 Jan 18 '18 at 23:24
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    Can you clarify what the elif w = arr.[i] then ... is supposed to do? It's really unclear what your function is supposed to do. I suggest to provide an example with strings as elements. It's hella confusing that your elements are of the same type as the indeces. – Good Night Nerd Pride Jan 19 '18 at 23:29
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    Is xs guaranteed to be a subset of arr? Are there elements in xs that are not part of arr? – Good Night Nerd Pride Jan 19 '18 at 23:59
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    @s952163 - Both, see my comments on the accepted answer. – Soldalma Jan 20 '18 at 8:12
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Under the assumption that xs is a subset of arr:

xs 
|> List.choose (fun x -> Array.tryFindIndex ((=) x) arr)
|> List.choose (fun x -> Array.tryItem (x+n) arr)
  • Exactly what I wanted! I tested the speed with n = 3, xs = [0.0..3.0..100000.0] and arr = [0.0..100000.0] |> Array.ofList. Your solution was 2500 times faster than my own solution. – Soldalma Jan 20 '18 at 8:10
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How about

let shiftFrom (n: int) (xs: int list) (arr: 'T []) : 'T list =
    xs |> List.choose (fun i -> arr |> Array.tryItem (i + n))
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    Your function does something quite different from mine. Notice for example elif w = arr.[i] in my code and that my xs is not a list of ints, but is a list of 'T like arr is an array of 'T. – Soldalma Jan 18 '18 at 20:20

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