Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I am looking to merge 2 lists in F# in a purely functional way. I am having a hard time understanding the syntax.

Let say I have a tuple ([5;3;8],[2;9;4])

When I call the function, it should return [5;2;3;9;8;4]

Here is why I have so far, which is wrong I am sure. If someone could explain it in a simple way I would be grateful.

let rec interleave (xs,ys) = function
|([], ys) -> ys
|(x::xs, y::ys) -> x :: y::  interleave (xs,ys) 
share|improve this question

3 Answers 3

up vote 9 down vote accepted

Your function is almost right. let f = function is shorthand for let f x = match x with so you don't need explicit args. Also, your algorithm needs some tweaking.

let rec interleave = function //same as: let rec interleave (xs, ys) = match xs, ys with
  |([], ys) -> ys
  |(xs, []) -> xs
  |(x::xs, y::ys) -> x :: y :: interleave (xs,ys)

interleave ([5;3;8],[2;9;4]) //output: [5; 2; 3; 9; 8; 4]
share|improve this answer
1  
Thanks for the speedy response but I don't quite understand why there is no argument . > ] How would I call the function? [ < –  user1072706 Feb 1 '12 at 4:40
1  
You call the function as you normally would. The last line of code demonstrates usage. See this MSDN article (top of page). It shows two forms of (equivalent) function declaration. –  Daniel Feb 1 '12 at 4:43

One important point is that the function is not correct. It fails with the input ([1;2;3], []) since you missed the case of (xs, []) in pattern matching. Moreover, arguments are better in the curried form in order that it's easier to use with partial application. Here is the corrected version:

let rec interleave xs ys =
    match xs, ys with
    | [], ys -> ys
    | xs, [] -> xs
    | x::xs', y::ys' -> x::y::interleave xs' ys'

You can see that the function is not tail-recursive since it applies cons (::) constructor twice after the recursive call returned. One interesting way to make it tail-recursive is using sequence expression:

let interleave xs ys =
    let rec loop xs ys = 
       seq {
             match xs, ys with
             | [], ys -> yield! ys
             | xs, [] -> yield! xs
             | x::xs', y::ys' -> 
                   yield x
                   yield y
                   yield! loop xs' ys'
            }
    loop xs ys |> List.ofSeq
share|improve this answer
2  
+1 for giving a tail-recursive solution, though personally I would have used continuations or an accumulator + List.reverse rather than a sequence expression. –  ildjarn Feb 1 '12 at 19:23
1  
@ildjarn: You might be interested in the findings in this answer (they tend to be consistent regardless of algo). In short, using an accumulator + List.rev generally performs much better than continuations. –  Daniel Feb 1 '12 at 19:44
    
Cool, thanks for the link @Daniel. Continuations and accumulator + List.rev are interesting possibilities, but I wrote this version using Seq to keep it close to the non tail-recursive one. –  pad Feb 1 '12 at 22:27

You can use this opportunity to define a more general higher order function - zipWith, and then implement interleave using it.

let rec zipWith f xlist ylist = 
  match f, xlist, ylist with
  | f, (x :: xs), (y :: ys) -> f x y :: zipWith f xs ys
  | _, _, _ -> []

let interleave xs ys = zipWith (fun a b -> [a; b]) xs ys |> List.concat

Edit:

As @pad said below, F# already has zipWith under the nameList.map2. So you can rewrite interleave as follows:

let interleave xs ys = List.map2 (fun a b -> [a; b]) xs ys |> List.concat
share|improve this answer
    
List.map2 does the same thing as zipWith in Haskell. And F# list is not lazy, so using zipWith as in your solution will create a temporary list. –  pad Feb 4 '12 at 23:47
    
@pad, ah, thanks. I had seen List.map2 before, but somehow forgot about it. Regarding creation of intermediate collection, yes I am aware of that, but this is something that's true of almost every higher order function on List. :-) –  missingfaktor Feb 5 '12 at 5:40

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.