type term_info =
{ sort: (Cic.id, Ast.sort_kind) Hashtbl.t;
- uri: (Cic.id, string) Hashtbl.t;
+ uri: (Cic.id, UriManager.uri) Hashtbl.t;
}
let get_types uri =
| `Exists -> "\\exists"
let add_level_info prec assoc t = Ast.AttributedTerm (`Level (prec, assoc), t)
+let add_pos_info pos t = Ast.AttributedTerm (`ChildPos pos, t)
+let left_pos = add_pos_info `Left
+let right_pos = add_pos_info `Right
+let inner_pos = add_pos_info `Inner
+
+let rec top_pos t = add_level_info ~-1 Gramext.NonA (inner_pos t)
+(* function
+ | Ast.AttributedTerm (`Level _, t) ->
+ add_level_info ~-1 Gramext.NonA (inner_pos t)
+ | Ast.AttributedTerm (attr, t) -> Ast.AttributedTerm (attr, top_pos t)
+ | t -> add_level_info ~-1 Gramext.NonA (inner_pos t) *)
let rec remove_level_info =
function
let rec aux =
function
| Ast.Appl ts ->
+ let rec aux_args pos =
+ function
+ | [] -> []
+ | [ last ] ->
+ let last = k last in
+ if pos = `Left then [ left_pos last ] else [ right_pos last ]
+ | hd :: tl ->
+ (add_pos_info pos (k hd)) :: aux_args `Inner tl
+ in
add_level_info Ast.apply_prec Ast.apply_assoc
- (hovbox true true (CicNotationUtil.dress break (List.map k ts)))
+ (hovbox true true (CicNotationUtil.dress break (aux_args `Left ts)))
| Ast.Binder (binder_kind, (id, ty), body) ->
add_level_info Ast.binder_prec Ast.binder_assoc
(hvbox false true
[ binder_symbol (resolve_binder binder_kind);
k id; builtin_symbol ":"; aux_ty ty; break;
- builtin_symbol "."; k body ])
+ builtin_symbol "."; right_pos (k body) ])
| Ast.Case (what, indty_opt, outty_opt, patterns) ->
let outty_box =
match outty_opt with
let match_box =
hvbox false true [
keyword "match"; break;
- hvbox false false ([ k what ] @ indty_box); break;
+ hvbox false false ([ top_pos (k what) ] @ indty_box); break;
keyword "with" ]
in
let mk_case_pattern (head, href, vars) =
(hvbox false true [
hbox false true [
mk_case_pattern lhs; builtin_symbol "\\Rightarrow" ];
- break; k rhs ]))
+ break; top_pos (k rhs) ]))
patterns
in
let patterns'' =
| Ast.Cast (bo, ty) ->
add_level_info Ast.simple_prec Ast.simple_assoc
(hvbox false true [
- builtin_symbol "("; k bo; break; builtin_symbol ":"; k ty;
- builtin_symbol ")"])
+ builtin_symbol "("; top_pos (k bo); break; builtin_symbol ":";
+ top_pos (k ty); builtin_symbol ")"])
| Ast.LetIn (var, s, t) ->
add_level_info Ast.let_in_prec Ast.let_in_assoc
(hvbox false true [
hvbox false true [
keyword "let";
hvbox false true [
- aux_var var; builtin_symbol "\\def"; break; k s ];
+ aux_var var; builtin_symbol "\\def"; break; top_pos (k s) ];
break; keyword "in" ];
break;
k t ])
let (name, body) = fst_fun in
hvbox false true [
keyword "let"; keyword rec_op; name; builtin_symbol "\\def"; break;
- body ]
+ top_pos body ]
in
let tl_rows =
List.map
let aux = function
| Cic.ARel (id,_,_,b) -> idref id (Ast.Ident (b, None))
| Cic.AVar (id,uri,substs) ->
- register_uri id (UriManager.string_of_uri uri);
+ register_uri id uri;
idref id (Ast.Ident (UriManager.name_of_uri uri, aux_substs substs))
| Cic.AMeta (id,n,l) -> idref id (Ast.Meta (n, aux_context l))
| Cic.ASort (id,Cic.Prop) -> idref id (Ast.Sort `Prop)
k s, k t))
| Cic.AAppl (aid,args) -> idref aid (Ast.Appl (List.map k args))
| Cic.AConst (id,uri,substs) ->
- register_uri id (UriManager.string_of_uri uri);
+ register_uri id uri;
idref id (Ast.Ident (UriManager.name_of_uri uri, aux_substs substs))
| Cic.AMutInd (id,uri,i,substs) as t ->
let name = name_of_inductive_type uri i in
let uri_str = UriManager.string_of_uri uri in
let puri_str = sprintf "%s#xpointer(1/%d)" uri_str (i+1) in
- register_uri id puri_str;
+ register_uri id (UriManager.uri_of_string puri_str);
idref id (Ast.Ident (name, aux_substs substs))
| Cic.AMutConstruct (id,uri,i,j,substs) ->
let name = constructor_of_inductive_type uri i j in
let uri_str = UriManager.string_of_uri uri in
let puri_str = sprintf "%s#xpointer(1/%d/%d)" uri_str (i + 1) j in
- register_uri id puri_str;
+ register_uri id (UriManager.uri_of_string puri_str);
idref id (Ast.Ident (name, aux_substs substs))
| Cic.AMutCase (id,uri,typeno,ty,te,patterns) ->
let name = name_of_inductive_type uri typeno in
List.fold_right (fun idref t -> Ast.AttributedTerm (`IdRef idref, t))
let instantiate21 idrefs env l1 =
- let rec subst_singleton env =
+ let rec subst_singleton pos env =
function
Ast.AttributedTerm (attr, t) ->
- Ast.AttributedTerm (attr, subst_singleton env t)
- | t -> CicNotationUtil.group (subst env t)
- and subst env = function
+ Ast.AttributedTerm (attr, subst_singleton pos env t)
+ | t -> CicNotationUtil.group (subst pos env t)
+ and subst pos env = function
| Ast.AttributedTerm (attr, t) as term ->
- subst env t
+(* prerr_endline ("loosing attribute " ^ CicNotationPp.pp_attribute attr); *)
+ subst pos env t
| Ast.Variable var ->
let name, expected_ty = CicNotationEnv.declaration_of_var var in
let ty, value =
(* following assertion should be a conditional that makes this
* instantiation fail *)
assert (CicNotationEnv.well_typed expected_ty value);
- [ CicNotationEnv.term_of_value value ]
- | Ast.Magic m -> subst_magic env m
+ [ add_pos_info pos (CicNotationEnv.term_of_value value) ]
+ | Ast.Magic m -> subst_magic pos env m
| Ast.Literal l as t ->
let t = add_idrefs idrefs t in
(match l with
| `Keyword k -> [ add_keyword_attrs t ]
| _ -> [ t ])
- | Ast.Layout l -> [ Ast.Layout (subst_layout env l) ]
- | t -> [ CicNotationUtil.visit_ast (subst_singleton env) t ]
- and subst_magic env = function
+ | Ast.Layout l -> [ Ast.Layout (subst_layout pos env l) ]
+ | t -> [ CicNotationUtil.visit_ast (subst_singleton pos env) t ]
+ and subst_magic pos env = function
| Ast.List0 (p, sep_opt)
| Ast.List1 (p, sep_opt) ->
let rec_decls = CicNotationEnv.declarations_of_term p in
| [] -> List.rev acc
| value_set :: [] ->
let env = CicNotationEnv.combine rec_decls value_set in
- instantiate_list (CicNotationUtil.group (subst env p) :: acc) []
+ instantiate_list (CicNotationUtil.group (subst pos env p) :: acc)
+ []
| value_set :: tl ->
let env = CicNotationEnv.combine rec_decls value_set in
- let terms = subst env p in
+ let terms = subst pos env p in
instantiate_list (CicNotationUtil.group (terms @ sep) :: acc) tl
in
instantiate_list [] values
begin
match env with
| [] -> []
- | _ -> subst env p
+ | _ -> subst pos env p
end
| _ -> assert false (* impossible *)
- and subst_layout env = function
+ and subst_layout pos env = function
| Ast.Box (kind, tl) ->
- Ast.Box (kind, List.concat (List.map (subst env) tl))
- | l -> CicNotationUtil.visit_layout (subst_singleton env) l
+ let tl' = subst_children pos env tl in
+ Ast.Box (kind, List.concat tl')
+ | l -> CicNotationUtil.visit_layout (subst_singleton pos env) l
+ and subst_children pos env =
+ function
+ | [] -> []
+ | [ child ] ->
+ let pos' =
+ match pos with
+ | `Inner -> `Right
+ | `Left -> `Left
+(* | `None -> assert false *)
+ | `Right -> `Right
+ in
+ [ subst pos' env child ]
+ | hd :: tl ->
+ let pos' =
+ match pos with
+ | `Inner -> `Inner
+ | `Left -> `Inner
+(* | `None -> assert false *)
+ | `Right -> `Right
+ in
+ (subst pos env hd) :: subst_children pos' env tl
in
- subst_singleton env l1
+ subst_singleton `Left env l1
let rec pp_ast1 term =
let rec pp_value = function
let idrefs =
List.flatten (List.map CicNotationUtil.get_idrefs ctors)
in
- let prec, assoc, l1 =
+ let l1 =
try
Hashtbl.find level1_patterns21 pid
with Not_found -> assert false
in
- add_level_info prec assoc
- (instantiate21 idrefs (ast_env_of_env env) l1))
+ instantiate21 idrefs (ast_env_of_env env) l1)
let instantiate32 term_info idrefs env symbol args =
let rec instantiate_arg = function
let idref = CicUtil.id_of_annterm annterm in
(try
register_uri idref
- (UriManager.string_of_uri
- (CicUtil.uri_of_term (Deannotate.deannotate_term annterm)))
+ (CicUtil.uri_of_term (Deannotate.deannotate_term annterm))
with Invalid_argument _ -> ());
idref)
ctors
!(Hashtbl.find interpretations symbol)))
with Not_found -> raise Interpretation_not_found
+let fill_pos_info l1_pattern = l1_pattern
+(* let rec aux toplevel pos =
+ function
+ | Ast.Layout l ->
+ (match l
+
+ | Ast.Magic m ->
+ Ast.Box (
+ | Ast.Variable _ as t -> add_pos_info pos t
+ | t -> t
+ in
+ aux true l1_pattern *)
+
let add_pretty_printer ~precedence ~associativity l2 l1 =
let id = fresh_id () in
+ let l1' = add_level_info precedence associativity (fill_pos_info l1) in
let l2' = CicNotationUtil.strip_attributes l2 in
- Hashtbl.add level1_patterns21 id (precedence, associativity, l1);
+ Hashtbl.add level1_patterns21 id l1';
pattern21_matrix := (l2', id) :: !pattern21_matrix;
load_patterns21 !pattern21_matrix;
id