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let's say I have

type t = A of int | B of int

let xx = A(2);;
let yy = A(3);;

and I want to test if the constructors of xx and yy are equal, is there an easy way to do this ? Instead of having to

match xx with
  A _ ->
  (match yy with A _ -> true | B _ -> false)
| B _ -> 
  (match yy with A _ -> false | B _ -> true);;

which gets quite messy when there many constructors on a type

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3 Answers 3

up vote 6 down vote accepted

You can rewrite the above to, somewhat simpler:

match xx, yy with
| A _, A _
| B _, B _ -> true
| (A _ | B _), _ -> false

but I'm not aware of a solution without enumerating all the constructors.

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3  
This is correct, although, it is often wise to avoid _,_ and better to use, (A _ | B _ ), _. In this way, if the constructor changes the compiler can help you in finding errors. There is a discussion on this, stackoverflow.com/questions/4346901/… –  nlucaroni Jun 29 '11 at 15:40
1  
it can be done by comparing values' tags (rather safe with proper type annotations) :) –  ygrek Jun 29 '11 at 15:50
    
@niucaroni: indeed, very good point. I took the liberty to incorporate it into the answer. –  akoprowski Jun 29 '11 at 17:11

This is possible, sort of, through the Obj module. Analyzing objects through the Obj functions, if done properly, won't crash your program; but you need to be careful if you want to get meaningful results.

let equal_constructors (x : 'a) (y : 'a) =
  let r = Obj.repr x and s = Obj.repr y in
  if Obj.is_int r && Obj.is_int s then (Obj.obj r : int) = (Obj.obj s : int) else
  if Obj.is_block r && Obj.is_block s then Obj.tag r = Obj.tag s else
  false

When called on values of a variant type (not a polymorphic variant type), this function returns true if the two values both have the same zero-argument constructor or both have the same 1-or-more-argument constructor, and false otherwise. The type system won't prevent you from instanciating equal_constructors at other types; you'll get a true or false return value but not necessarily a meaningful one.

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this is a somewhat ugly low-level hack, and very dependent on details of the implementation of the compiler. The solution below is preferable. –  yzzlr Jul 1 '11 at 2:23
1  
@yzzlr The specification of the C interface guarantees the representation properties that my code relies on. So yes, it's an ugly low-level hack, but what it depends on is part of the documented behavior of the (only) implementation. –  Gilles Jul 1 '11 at 6:49

Another way of doing this that can work well is to create another type that corresponds to the tags, and use that type.

type t = A of int | B of int
module Tag = struct type t = A | B end

let to_tag = function A _ -> Tag.A | B _ -> Tag.B
let tags_are_equal x y =
    to_tag x = to_tag y
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