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In case I have to disassemble a data type as its variable size, can I still use the "match and with, and if the answer is yes you could help me figure out how (I'm a beginner with this language), or do I or use other methods.

the type defined is this :

type 'state formula = 
  | And      of 'state formula list
  | Or       of 'state formula list
  | Literal  of bool
  | Variable of 'state  

from the examples I've seen the "match and with" is used when the structure of the static type was, in my case as I do?

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I have trouble understanding the question and am completely unable to parse the last sentence. Could you please rephrase? Also could you clarify what you mean by "disassemble"? –  sepp2k Nov 27 '10 at 16:23
    
an example i have : let formula = And [ Variable "q0"; Or[ Variable "q1";Variable "q2"]; Variable "q3"] , I need to parse element by element –  Tanuzzo88 Nov 27 '10 at 16:29
    
Pattern matching if indeed the right solution, but since the data type is recursive, the function processing it needs to be recursive as well. –  delnan Nov 27 '10 at 16:33
    
diassemble mean to break apart data structures –  Tanuzzo88 Nov 27 '10 at 16:35
    
how can I do, unfortunately I am now beginning to use ocaml is so I have a bit of difficulty, I tried the "match and with" a simpler structure, and I did, but since I need this kind of structure do not know how do you help me? –  Tanuzzo88 Nov 27 '10 at 16:41
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3 Answers

up vote 5 down vote accepted

So here's an example which uses match to work with your formula type:

type 'state formula = | And of 'state formula list | Or of 'state formula list | Literal of bool | Variable of 'state

let rec count_vars form = match form with
| And forms 
| Or forms -> List.fold_left (+) 0 (List.map count_vars forms)
| Literal _ -> 0
| Variable _ -> 1

let formula = And [ Variable "q0"; Or[ Variable "q1";Variable "q2"]; Variable "q3"]

let vars_in_formula = count_vars formula (* 4 *)
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for the case "And" there are not action –  Tanuzzo88 Nov 27 '10 at 16:51
1  
@Antonio: If you have a pattern, which is not followed by ->, it "falls through" to the next case (assuming both patterns bind the same variables). In other words, the same expression is called for the And and the Or pattern. –  sepp2k Nov 27 '10 at 16:52
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If you want to manipulate the type, you can use patter matching(among other things, but I find this the most elegant). It's essentially syntactical sugar for Match with.

For example:

let identify_formula=function
And(l) -> 0
|Or(l) -> 1
|Literal(b) -> 2
| Variable(v) -> 3;;

For a less trivial example of how to manipulate types:

type  l=Cons of int*l
    | Nil;;

let rec sum_l=function
Cons(hd,tl)->hd+ sum_l(tl)
| Nil-> 0;;

sum_l(Cons(1,Cons(2,Cons(3,Nil))));; (*r6*)
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Maybe you would like a code example to adapt to your needs.

type 'state formula =
  | Literal of bool
  | And of 'state formula list
  | Or of 'state formula list
  | Variable of 'state

let rec eval variable_env formula =
  match formula with
    | Literal b -> b
    | Variable v -> variable_env v
    | And formulas -> List.for_all (eval variable_env) formulas
    | Or formulas -> List.exists (eval variable_env) formulas

(* same as eval, different code *)
let rec eval2 env = function
  | Literal b -> b
  | Variable v -> env v
  | And [] -> true
  | And (hd::tl) -> eval env hd && eval2 env (And tl)
  | Or [] -> false
  | Or (hd::tl) -> eval env hd || eval2 env (Or tl)
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