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I am new to OCaml and I am trying to write a function to do this:

(4,a)(1,b)(2,c)(2,a)(1,d)(4,e) --> ((4 a) b (2 c) (2 a) d (4 e))

and this is what I wrote:

let rec transform l =
 match l with
 | (x,y)::t -> if x = 1 then y::transform(t) else [x; y]::transform(t)
 | [] -> []

I put it in the ocaml interpreter but error generated like this:

Error: This expression has type int list
   but an expression was expected of type int

Could anyone give some help?

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2 Answers 2

up vote 2 down vote accepted

Your example transformation doesn't make it clear what the types of the values are supposed to be.

If they're supposed to be lists, the result isn't a possible list in OCaml. OCaml lists are homogeneous, i.e., all the elements of the list have the same type. This is (in essence) what the compiler is complaining about.

Update

Looking at your code, the problem is here:

if x = 1
then y :: transform (t)
else [x; y] :: transform t

Let's say the type of y is 'a. The expression after then seems to have type 'a list, because y is the head of the list. The expression after else seems to have type 'a list list, because a list containing y is the head of the list. These aren't the same type.

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I think (4,a) should be tuple... but the result is a list consists of several sublists... –  computereasy Mar 30 '14 at 0:30
1  
You should write your example in OCaml notation, it would be clearer. –  Jeffrey Scofield Mar 30 '14 at 0:42

The main problem is to decide how to represent something as either (4 a) or b. The usual OCaml way to represent something-or-something-else is variants, so let's define one of those:

type 'a element =
  | Single of 'a
  | Count of int * 'a

let rec transform = function
  | [] -> []
  | (x,y)::t ->
      if x = 1 then Single y::transform t
      else Count (x, y)::transform t

Note that this won't print in quite the way you want, unless you register a printer with the toplevel.

Or better:

let compact (x, y) =
  if x = 1 then Single y else Count (x, y)

let transform list = List.map compact list
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