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I'm positive that there is a better way to swap two items in a list ( [1;2;3;4] -> [2;1;4;3] ) as i'm doing too many appends for my liking but I'm not sure how best to do it.

let swapItems lst =
    let f acc item =
        match acc with
        | [] -> [item]
        | hd :: next :: tl when tl <> [] -> [next] @ tl @ [item;hd]
        | _ -> item :: acc
    List.fold f [] lst

Any help or suggestions much appreciated. (also this only works with even numbered lists :( )

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3 Answers 3

up vote 3 down vote accepted

What about this:

let rec swapItems = function
    | []
    | _::[] as l -> l
    | a::b::t ->
        b::a::(swapItems t)


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I think doing it this way is slightly more elegant function |a::b::t -> b::a::t |a -> failwith "not enough elements" – John Palmer Sep 18 '11 at 22:51
brillant thanks, and curses to F# for always making things so simple ;) – Dylan Sep 18 '11 at 23:10
@jpalmer, I don't know why he is doing this, but I presumed he also wanted this solution to work for lists of odd number of elements. – Ramon Snir Sep 19 '11 at 6:40
@Ramon - I didn't realise that he also reorderd 4,3 as well - my solution doesn't work, although you can still combine the first two cases in your function if you move them to the end – John Palmer Sep 19 '11 at 6:59
@jpalmer, yes, it is a matter of style. I try to refrain from using a final-clause match cases. – Ramon Snir Sep 19 '11 at 7:04

Simplest possible solution:

let rec swapItems = function
  | a::b::xs -> b::a::swapItems xs
  | xs -> xs

I like to make the names of variables that are sequences like lists "plural", e.g. xs instead of x.

Note that this is not tail recursive so it will stack overflow if you give it a very long list.

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Thanks Jon, that's a nice solution and a bit easier to read – Dylan Sep 20 '11 at 1:59

Using higher order functions this can be done as:

let swapItems l =
    l |> List.toSeq |> Seq.pairwise
    |> Seq.mapi (fun i (a,b) -> if i % 2 = 0 then seq [b;a] else Seq.empty)
    |> Seq.concat |> Seq.toList
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A list is a seq, you don't have to call List.toSeq. I'm not sure it even does something (more than forcing the type-checker). – Ramon Snir Sep 20 '11 at 8:47

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