Source file ast.ml
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(** Abstract syntax tree of the desugared representation *)
open Catala_utils
open Shared_ast
(** {1 Names, Maps and Keys} *)
(** Inside a scope, a definition can refer either to a scope def, or a subscope
def *)
module ScopeDef = struct
type t =
| Var of ScopeVar.t * StateName.t option
| SubScopeVar of SubScopeName.t * ScopeVar.t * Pos.t
(** In this case, the [ScopeVar.t] lives inside the context of the
subscope's original declaration *)
let compare x y =
match x, y with
| Var (x, stx), Var (y, sty) -> (
match ScopeVar.compare x y with
| 0 -> Option.compare StateName.compare stx sty
| n -> n)
| SubScopeVar (x', x, _), SubScopeVar (y', y, _) -> (
match SubScopeName.compare x' y' with 0 -> ScopeVar.compare x y | n -> n)
| Var _, _ -> -1
| _, Var _ -> 1
let get_position x =
match x with
| Var (x, None) -> Marked.get_mark (ScopeVar.get_info x)
| Var (_, Some sx) -> Marked.get_mark (StateName.get_info sx)
| SubScopeVar (_, _, pos) -> pos
let format_t fmt x =
match x with
| Var (v, None) -> ScopeVar.format_t fmt v
| Var (v, Some sv) ->
Format.fprintf fmt "%a.%a" ScopeVar.format_t v StateName.format_t sv
| SubScopeVar (s, v, _) ->
Format.fprintf fmt "%a.%a" SubScopeName.format_t s ScopeVar.format_t v
let hash x =
match x with
| Var (v, None) -> ScopeVar.hash v
| Var (v, Some sv) -> Int.logxor (ScopeVar.hash v) (StateName.hash sv)
| SubScopeVar (w, v, _) ->
Int.logxor (SubScopeName.hash w) (ScopeVar.hash v)
end
module ScopeDefMap : Map.S with type key = ScopeDef.t = Map.Make (ScopeDef)
module ScopeDefSet : Set.S with type elt = ScopeDef.t = Set.Make (ScopeDef)
(** {1 AST} *)
type location = desugared glocation
module LocationSet : Set.S with type elt = location Marked.pos =
Set.Make (struct
type t = location Marked.pos
let compare = Expr.compare_location
end)
type expr = (desugared, untyped mark) gexpr
module ExprMap = Map.Make (struct
type t = expr
let compare = Expr.compare
end)
type io_input = NoInput | OnlyInput | Reentrant
type io = { io_output : bool Marked.pos; io_input : io_input Marked.pos }
type exception_situation =
| BaseCase
| ExceptionToLabel of LabelName.t Marked.pos
| ExceptionToRule of RuleName.t Marked.pos
type label_situation = ExplicitlyLabeled of LabelName.t Marked.pos | Unlabeled
type rule = {
rule_id : RuleName.t;
rule_just : expr boxed;
rule_cons : expr boxed;
rule_parameter : (expr Var.t Marked.pos * typ) list Marked.pos option;
rule_exception : exception_situation;
rule_label : label_situation;
}
module Rule = struct
type t = rule
(** Structural equality (otherwise, you should just compare the [rule_id]
fields) *)
let compare r1 r2 =
match r1.rule_parameter, r2.rule_parameter with
| None, None -> (
let j1 = Expr.unbox r1.rule_just in
let j2 = Expr.unbox r2.rule_just in
match Expr.compare j1 j2 with
| 0 ->
let c1 = Expr.unbox r1.rule_cons in
let c2 = Expr.unbox r2.rule_cons in
Expr.compare c1 c2
| n -> n)
| Some (l1, _), Some (l2, _) ->
ListLabels.compare l1 l2 ~cmp:(fun ((v1, _), t1) ((v2, _), t2) ->
match Type.compare t1 t2 with
| 0 -> (
let open Bindlib in
let b1 = unbox (bind_var v1 (Expr.Box.lift r1.rule_just)) in
let b2 = unbox (bind_var v2 (Expr.Box.lift r2.rule_just)) in
let _, j1, j2 = unbind2 b1 b2 in
match Expr.compare j1 j2 with
| 0 ->
let b1 = unbox (bind_var v1 (Expr.Box.lift r1.rule_cons)) in
let b2 = unbox (bind_var v2 (Expr.Box.lift r2.rule_cons)) in
let _, c1, c2 = unbind2 b1 b2 in
Expr.compare c1 c2
| n -> n)
| n -> n)
| None, Some _ -> -1
| Some _, None -> 1
end
let empty_rule
(pos : Pos.t)
(parameters : (Uid.MarkedString.info * typ) list Marked.pos option) : rule =
{
rule_just = Expr.box (ELit (LBool false), Untyped { pos });
rule_cons = Expr.box (ELit LEmptyError, Untyped { pos });
rule_parameter =
Option.map
(Marked.map_under_mark
(List.map (fun (lbl, typ) -> Marked.map_under_mark Var.make lbl, typ)))
parameters;
rule_exception = BaseCase;
rule_id = RuleName.fresh ("empty", pos);
rule_label = Unlabeled;
}
let always_false_rule
(pos : Pos.t)
(parameters : (Uid.MarkedString.info * typ) list Marked.pos option) : rule =
{
rule_just = Expr.box (ELit (LBool true), Untyped { pos });
rule_cons = Expr.box (ELit (LBool false), Untyped { pos });
rule_parameter =
Option.map
(Marked.map_under_mark
(List.map (fun (lbl, typ) -> Marked.map_under_mark Var.make lbl, typ)))
parameters;
rule_exception = BaseCase;
rule_id = RuleName.fresh ("always_false", pos);
rule_label = Unlabeled;
}
type assertion = expr boxed
type variation_typ = Increasing | Decreasing
type reference_typ = Decree | Law
type meta_assertion =
| FixedBy of reference_typ Marked.pos
| VariesWith of unit * variation_typ Marked.pos option
type scope_def = {
scope_def_rules : rule RuleName.Map.t;
scope_def_typ : typ;
scope_def_parameters : (Uid.MarkedString.info * typ) list Marked.pos option;
scope_def_is_condition : bool;
scope_def_io : io;
}
type var_or_states = WholeVar | States of StateName.t list
type scope = {
scope_vars : var_or_states ScopeVar.Map.t;
scope_sub_scopes : ScopeName.t SubScopeName.Map.t;
scope_uid : ScopeName.t;
scope_defs : scope_def ScopeDefMap.t;
scope_assertions : assertion list;
scope_meta_assertions : meta_assertion list;
}
type program = {
program_scopes : scope ScopeName.Map.t;
program_topdefs : (expr * typ) TopdefName.Map.t;
program_ctx : decl_ctx;
}
let rec locations_used e : LocationSet.t =
match e with
| ELocation l, m -> LocationSet.singleton (l, Expr.mark_pos m)
| EAbs { binder; _ }, _ ->
let _, body = Bindlib.unmbind binder in
locations_used body
| e ->
Expr.shallow_fold
(fun e -> LocationSet.union (locations_used e))
e LocationSet.empty
let free_variables (def : rule RuleName.Map.t) : Pos.t ScopeDefMap.t =
let add_locs (acc : Pos.t ScopeDefMap.t) (locs : LocationSet.t) :
Pos.t ScopeDefMap.t =
LocationSet.fold
(fun (loc, loc_pos) acc ->
let usage =
match loc with
| DesugaredScopeVar (v, st) ->
Some (ScopeDef.Var (Marked.unmark v, st))
| SubScopeVar (_, sub_index, sub_var) ->
Some
(ScopeDef.SubScopeVar
( Marked.unmark sub_index,
Marked.unmark sub_var,
Marked.get_mark sub_index ))
| ToplevelVar _ -> None
in
match usage with Some u -> ScopeDefMap.add u loc_pos acc | None -> acc)
locs acc
in
RuleName.Map.fold
(fun _ rule acc ->
let locs =
LocationSet.union
(locations_used (Expr.unbox rule.rule_just))
(locations_used (Expr.unbox rule.rule_cons))
in
add_locs acc locs)
def ScopeDefMap.empty