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'm a beginner and the terms I used may not be accurate.

I have

type t = True | False | If of t * t * t | Int of int | Plus of t * t | GT of t * t

let isval t =
  match t with
      True|False -> true
    | Int _ -> true
    | _ -> false

I want to implement a eval function.

let rec step t =
   match isval t with
      true -> raise NormalForm
    | false -> match t with
          If(t1, t2, t3) when t1=True -> t2
        | If(t1, t2, t3) when t1=False -> t3
        | Plus(t1, t2) -> t1+t2
        | GT(t1, t2) ->  t1>t2
        | _ -> raise NormalForm;;

Error occurs at Plus(t1, t2) -> t1+t2, saying "This expression has type t but an expression was expected of type int".

What is the problem? How should I fix it?

share|improve this question

2 Answers 2

The match expression has (unfortunately) no end-markers. For nested match you have to use parenthesis or begin ... end e.g. code

match x with
  SomePattern y -> begin
    match y with
       AnyotherThing -> ....
       YetAnotherPattern z -> ....
  end

and you have a type issue: your step function is giving an int when doing a t1+t2 and is giving a bool when doing t1>t2; this is not possible, a function should return some known (single) type.

You may want to define

  type result_t = NoResult | IntResult of int | BoolResult of bool

and give IntResult (t1+t2) or BoolResult (t1>t2)

or you could simply have step return some t value, i.e. True, False, Int (t1+t2)

I would code instead

let asint = function Int x -> x | _ -> failwith "not an integer"

let rec eval = function
  True -> True
  | False -> False
  | Int x -> Int x
  |  If (cond,thenpart,elsepart) -> begin
       match eval cond with
         True -> eval thenpart
        | False -> eval elsepart
        | _ -> failwith "bad condition"
    end 
  | Plus (l, r) -> 
       Int (asint (eval l) + asint (eval r))
  | GT (l, r) -> begin
       if (asint (eval l)) > (asint (eval r)) then
         True
       else 
         False
    end
share|improve this answer

As the compiler says the + operator works on ints. But you're applying it to subexpressions of type t. Since your type t can represent things like Plus(True, False), you need to decide how you actually want to handle these cases.

You also need to decide on a return type. Some of your cases seem to be returning bool, others return t, and others return int. From the look of things, you might want to return t in all cases. If so, you would return Int n instead of just plain n.

(Basile Starynkevitch has written some code that tackles these problems. Maybe think about them first yourself then look at his code :-)

share|improve this answer

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.