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this is just a question regarding notation in OCaml.

I am trying to test the function

let rec add (x : 'a) (l : 'a set) : bool =
begin match l with
| [] -> []
| hd :: rest -> if x = hd then rest else (hd :: (add x rest))
end

my test case is

let test () : bool =
add (3 [1; 2; 4]) = [1; 2; 3; 4]
;; run_test "add 3 [1; 2; 4]" test

I am getting an "this expression is not a function, cannot be applied" error

Is something wrong with my notation?

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2  
The error comes from (3 [1; 2; 4]), where you are applying 3 to [1; 2; 4]. In context, you probably meant to apply function add to arguments 3 and [1; 2; 4]. You can do this with the notation add 3 [1; 2; 4] –  Pascal Cuoq Feb 4 '13 at 7:05

2 Answers 2

up vote 3 down vote accepted

OCaml doesn't have a built-in set type (instead there is a Set module, or library). So, there's also no built-in notation for set constants.

For smallish sets, one often uses lists. And, in fact, List.mem is a function that operates on lists (not sets). The notation for a list is like this: [1; 2; 3; 4].

(As a side comment, your function named add doesn't add anything. But maybe you're just getting started.)

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Thanks! I actually edited my post, I have made a mistake in my function. Now I am getting another error, even though I changed it. What is it referring to? –  user1993381 Feb 4 '13 at 3:43
    
Function arguments in OCaml aren't parenthesized. To call add you want: add 3 [1; 2; 4]. I see some other problems, but one thing at a time! –  Jeffrey Scofield Feb 4 '13 at 3:49
    
I changed my add function. I think there may be something wrong with the recursive part, but I'm not quite sure what it is. –  user1993381 Feb 4 '13 at 4:31
1  
Actually the recursion looks OK to me. But other stuff is wrong. Think about (a) when element is already in the set (b) return type of function (c) how to tell if two sets are equal. –  Jeffrey Scofield Feb 4 '13 at 4:35
1  
If you choose to keep your set as a sorted list, no difference. If you just need to test membership and insert values, you don't need to keep sorted. If you have strong requirements and lots of elements, use a real set (as gasche suggests). –  Jeffrey Scofield Feb 4 '13 at 5:24

There is no set notation in OCaml. I don't know what your 'a set type is, I don't understand why membership would be tested with List.mem, but it should have no specific notation.

There is a Set.Make functor in the standard library, to be instantiated by a module having at least a type and a comparison function on keys (see here):

module StringSet = Set.Make(String)
let set = StringSet.(add 0 (add 1 (add 2 empty)))
let test = StringSet.mem 3 set

If you want a convenient notation, your best bet is to use a conversion function from lists to sets, and use the list notation:

let set_of_list li = List.fold_left (fun s v -> StringSet.add v s) StringSet.empty li
let set = set_of_list [0; 1; 2]
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