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I am trying to port this haskell function to F#

subs        ::  [a] -> [[a]]
subs []     =   [[]]
subs (x:xs) =   ys ++ map (x:) ys
                where 
                   ys = subs xs

example

subs [1,2,3]

returns:

[[],[3],[2],[2,3],[1],[1,3],[1,2],[1,2,3]]

returns all sub sequences of a list, which are given by all possible combination of excluding or including each element

....

I am having issues with the 'where' statement, which recursively generates the other list 'ys'.

I am also not sure I port the predicate '(x:)' correctly to '(fun i -> i)'.

This is as much of the F# statement I can figure out.

let rec subs list =
    match list with
        | [] -> [[]]
        | x::xs -> List.map (fun i -> i) xs

Any help or direction would be greatly appreciated.

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just a side note, this is the powerset of a set. –  nlucaroni Dec 18 '09 at 18:09
    
Also, note that in Haskell, this can be written simply as import Control.Monad; subs = filterM $ const [False, True] –  ephemient Dec 18 '09 at 22:48
    
(x:) is not a predicate, it is a "section" expression (basically a partial application of the : operator), which is equivalent to (\ys -> x:ys) or, in F#, (fun ys -> x :: ys). –  Chris Conway Dec 19 '09 at 15:12
    
Chris, thanks for the clarification. –  TonyAbell Dec 19 '09 at 18:25

2 Answers 2

up vote 7 down vote accepted

Here's the F#:

let rec subs list =    
    match list with        
    | [] -> [[]]        
    | x::xs -> 
        let ys = subs xs
        ys @ List.map (fun t -> x::t) ys

printfn "%A" (subs [1;2;3])

A Haskell where is pretty much just like a let moved to the bottom.

In F#, @ is the list concatenation operator, and :: is cons.

There are no operator sections in F#, so I use a lambda (fun).

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I knew you'd get in before me...one of these days you'll be in a meeting or something and I'll beat you to the punch! =) Great answer as always. –  Ray Vernagus Dec 18 '09 at 18:21
    
I got lucky; some intranet IT update is about to force me to reboot right now :) –  Brian Dec 18 '09 at 18:22

Let's get it to look more like F#. :)

let rec subs = function
| [] -> [[]]
| x::xs -> [ for ys in subs xs do
                yield! [ys;x::ys] ]
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