raise (TypeCheckerFailure (lazy "Parameters number < left parameters number"))
;;
-let debrujin_constructor ?(cb=fun _ _ -> ()) uri number_of_types =
+(* XXX: bug *)
+let ugraph_convertibility ug1 ug2 ul2 = true;;
+
+let check_and_clean_ugraph inferred_ugraph unchecked_ugraph uri obj =
+ match unchecked_ugraph with
+ | Some (ug,ul) ->
+ if not (ugraph_convertibility inferred_ugraph ug ul) then
+ raise (TypeCheckerFailure (lazy
+ ("inferred univ graph not equal with declared ugraph")))
+ else
+ ug,ul,obj
+ | None ->
+ CicUnivUtils.clean_and_fill uri obj inferred_ugraph
+;;
+
+let debrujin_constructor ?(cb=fun _ _ -> ()) ?(check_exp_named_subst=true) uri number_of_types context =
let rec aux k t =
let module C = Cic in
let res =
in
C.Const (uri,exp_named_subst')
| C.MutInd (uri',tyno,exp_named_subst) when UriManager.eq uri uri' ->
- if exp_named_subst != [] then
+ if check_exp_named_subst && exp_named_subst != [] then
raise (TypeCheckerFailure
(lazy ("non-empty explicit named substitution is applied to "^
"a mutual inductive type which is being defined"))) ;
cb t res;
res
in
- aux 0
+ aux (List.length context)
;;
exception CicEnvironmentError;;
let cobj,ugraph =
match CicEnvironment.is_type_checked ~trust:true ugraph uri with
CicEnvironment.CheckedObj (cobj,ugraph') -> cobj,ugraph'
- | CicEnvironment.UncheckedObj uobj ->
+ | CicEnvironment.UncheckedObj (uobj,unchecked_ugraph) ->
logger#log (`Start_type_checking uri) ;
(* let's typecheck the uncooked obj *)
-
-(****************************************************************
- TASSI: FIXME qui e' inutile ricordarselo,
- tanto poi lo richiediamo alla cache che da quello su disco
-*****************************************************************)
-
- let ugraph_dust =
- (match uobj with
+ let inferred_ugraph =
+ match uobj with
C.Constant (_,Some te,ty,_,_) ->
let _,ugraph = type_of ~logger ty ugraph in
- let type_of_te,ugraph' = type_of ~logger te ugraph in
- let b',ugraph'' = (R.are_convertible [] type_of_te ty ugraph') in
- if not b' then
+ let type_of_te,ugraph = type_of ~logger te ugraph in
+ let b,ugraph = R.are_convertible [] type_of_te ty ugraph in
+ if not b then
raise (TypeCheckerFailure (lazy (sprintf
"the constant %s is not well typed because the type %s of the body is not convertible to the declared type %s"
(U.string_of_uri uri) (CicPp.ppterm type_of_te)
(CicPp.ppterm ty))))
else
- ugraph'
+ ugraph
| C.Constant (_,None,ty,_,_) ->
(* only to check that ty is well-typed *)
- let _,ugraph' = type_of ~logger ty ugraph in
- ugraph'
+ let _,ugraph = type_of ~logger ty ugraph in
+ ugraph
| C.CurrentProof (_,conjs,te,ty,_,_) ->
- let _,ugraph1 =
+ let _,ugraph =
List.fold_left
(fun (metasenv,ugraph) ((_,context,ty) as conj) ->
- let _,ugraph' =
+ let _,ugraph =
type_of_aux' ~logger metasenv context ty ugraph
in
- (metasenv @ [conj],ugraph')
+ (metasenv @ [conj],ugraph)
) ([],ugraph) conjs
in
- let _,ugraph2 = type_of_aux' ~logger conjs [] ty ugraph1 in
- let type_of_te,ugraph3 =
- type_of_aux' ~logger conjs [] te ugraph2
- in
- let b,ugraph4 = (R.are_convertible [] type_of_te ty ugraph3) in
+ let _,ugraph = type_of_aux' ~logger conjs [] ty ugraph in
+ let type_of_te,ugraph = type_of_aux' ~logger conjs [] te ugraph in
+ let b,ugraph = R.are_convertible [] type_of_te ty ugraph in
if not b then
raise (TypeCheckerFailure (lazy (sprintf
"the current proof %s is not well typed because the type %s of the body is not convertible to the declared type %s"
(U.string_of_uri uri) (CicPp.ppterm type_of_te)
(CicPp.ppterm ty))))
else
- ugraph4
+ ugraph
| _ ->
raise
- (TypeCheckerFailure (lazy ("Unknown constant:" ^ U.string_of_uri uri))))
+ (TypeCheckerFailure (lazy ("Unknown constant:" ^ U.string_of_uri uri)))
in
- try
- CicEnvironment.set_type_checking_info uri;
- logger#log (`Type_checking_completed uri) ;
- match CicEnvironment.is_type_checked ~trust:false ugraph uri with
- CicEnvironment.CheckedObj (cobj,ugraph') -> cobj,ugraph'
- | CicEnvironment.UncheckedObj _ -> raise CicEnvironmentError
- with Invalid_argument s ->
- (*debug_print (lazy s);*)
- uobj,ugraph_dust
+ let ugraph, ul, obj = check_and_clean_ugraph inferred_ugraph unchecked_ugraph uri uobj in
+ CicEnvironment.set_type_checking_info uri (obj, ugraph, ul);
+ logger#log (`Type_checking_completed uri) ;
+ match CicEnvironment.is_type_checked ~trust:false ugraph uri with
+ CicEnvironment.CheckedObj (cobj,ugraph') -> cobj,ugraph'
+ | CicEnvironment.UncheckedObj _ -> raise CicEnvironmentError
in
match cobj,ugraph with
(C.Constant (_,_,ty,_,_)),g -> ty,g
(* 0 because a variable is never cooked => no partial cooking at one level *)
match CicEnvironment.is_type_checked ~trust:true ugraph uri with
CicEnvironment.CheckedObj ((C.Variable (_,_,ty,_,_)),ugraph') -> ty,ugraph'
- | CicEnvironment.UncheckedObj (C.Variable (_,bo,ty,_,_)) ->
+ | CicEnvironment.UncheckedObj (C.Variable (_,bo,ty,_,_) as uobj, unchecked_ugraph) ->
logger#log (`Start_type_checking uri) ;
(* only to check that ty is well-typed *)
- let _,ugraph1 = type_of ~logger ty ugraph in
- let ugraph2 =
- (match bo with
+ let _,ugraph = type_of ~logger ty ugraph in
+ let inferred_ugraph =
+ match bo with
None -> ugraph
| Some bo ->
- let ty_bo,ugraph' = type_of ~logger bo ugraph1 in
- let b,ugraph'' = (R.are_convertible [] ty_bo ty ugraph') in
+ let ty_bo,ugraph = type_of ~logger bo ugraph in
+ let b,ugraph = R.are_convertible [] ty_bo ty ugraph in
if not b then
raise (TypeCheckerFailure
(lazy ("Unknown variable:" ^ U.string_of_uri uri)))
else
- ugraph'')
+ ugraph
in
- (try
- CicEnvironment.set_type_checking_info uri ;
- logger#log (`Type_checking_completed uri) ;
- match CicEnvironment.is_type_checked ~trust:false ugraph uri with
- CicEnvironment.CheckedObj ((C.Variable (_,_,ty,_,_)),ugraph') ->
- ty,ugraph'
- | CicEnvironment.CheckedObj _
- | CicEnvironment.UncheckedObj _ -> raise CicEnvironmentError
- with Invalid_argument s ->
- (*debug_print (lazy s);*)
- ty,ugraph2)
+ let ugraph, ul, obj = check_and_clean_ugraph inferred_ugraph unchecked_ugraph uri uobj in
+ CicEnvironment.set_type_checking_info uri (obj, ugraph, ul);
+ logger#log (`Type_checking_completed uri) ;
+ (match CicEnvironment.is_type_checked ~trust:false ugraph uri with
+ CicEnvironment.CheckedObj((C.Variable(_,_,ty,_,_)),ugraph)->ty,ugraph
+ | CicEnvironment.CheckedObj _
+ | CicEnvironment.UncheckedObj _ -> raise CicEnvironmentError)
| _ ->
raise (TypeCheckerFailure (lazy ("Unknown variable:" ^ U.string_of_uri uri)))
let ugraph'' =
List.fold_left
(fun ugraph (name,te) ->
- let debrujinedte = debrujin_constructor uri len te in
+ let debrujinedte = debrujin_constructor uri len [] te in
let augmented_term =
List.fold_right
(fun (name,_,ty,_) i -> Cic.Prod (Cic.Name name, ty, i))
let cobj,ugraph1 =
match CicEnvironment.is_type_checked ~trust:true ugraph uri with
CicEnvironment.CheckedObj (cobj,ugraph') -> cobj,ugraph'
- | CicEnvironment.UncheckedObj uobj ->
+ | CicEnvironment.UncheckedObj (uobj,unchecked_ugraph) ->
logger#log (`Start_type_checking uri) ;
- let ugraph1_dust =
- check_mutual_inductive_defs ~logger uri uobj ugraph
- in
- (* TASSI: FIXME: check ugraph1 == ugraph ritornato da env *)
- try
- CicEnvironment.set_type_checking_info uri ;
- logger#log (`Type_checking_completed uri) ;
- (match CicEnvironment.is_type_checked ~trust:false ugraph uri with
- CicEnvironment.CheckedObj (cobj,ugraph') -> (cobj,ugraph')
- | CicEnvironment.UncheckedObj _ -> raise CicEnvironmentError
- )
- with
- Invalid_argument s ->
- (*debug_print (lazy s);*)
- uobj,ugraph1_dust
+ let inferred_ugraph = check_mutual_inductive_defs ~logger uri uobj ugraph in
+ let ugraph, ul, obj = check_and_clean_ugraph inferred_ugraph unchecked_ugraph uri uobj in
+ CicEnvironment.set_type_checking_info uri (obj,ugraph,ul);
+ logger#log (`Type_checking_completed uri) ;
+ (match CicEnvironment.is_type_checked ~trust:false ugraph uri with
+ CicEnvironment.CheckedObj (cobj,ugraph') -> (cobj,ugraph')
+ | CicEnvironment.UncheckedObj _ -> raise CicEnvironmentError
+ )
in
match cobj with
C.InductiveDefinition (dl,_,_,_) ->
let cobj,ugraph1 =
match CicEnvironment.is_type_checked ~trust:true ugraph uri with
CicEnvironment.CheckedObj (cobj,ugraph') -> cobj,ugraph'
- | CicEnvironment.UncheckedObj uobj ->
+ | CicEnvironment.UncheckedObj (uobj,unchecked_ugraph) ->
logger#log (`Start_type_checking uri) ;
- let ugraph1_dust =
+ let inferred_ugraph =
check_mutual_inductive_defs ~logger uri uobj ugraph
in
- (* check ugraph1 validity ??? == ugraph' *)
- try
- CicEnvironment.set_type_checking_info uri ;
- logger#log (`Type_checking_completed uri) ;
- (match
- CicEnvironment.is_type_checked ~trust:false ugraph uri
- with
+ let ugraph, ul, obj = check_and_clean_ugraph inferred_ugraph unchecked_ugraph uri uobj in
+ CicEnvironment.set_type_checking_info uri (obj, ugraph, ul);
+ logger#log (`Type_checking_completed uri) ;
+ (match
+ CicEnvironment.is_type_checked ~trust:false ugraph uri
+ with
CicEnvironment.CheckedObj (cobj,ugraph') -> cobj,ugraph'
| CicEnvironment.UncheckedObj _ ->
raise CicEnvironmentError)
- with
- Invalid_argument s ->
- (*debug_print (lazy s);*)
- uobj,ugraph1_dust
in
match cobj with
C.InductiveDefinition (dl,_,_,_) ->
and recursive_args context n nn te =
let module C = Cic in
- match CicReduction.whd context te with
- C.Rel _ -> []
- | C.Var _
- | C.Meta _
- | C.Sort _
- | C.Implicit _
- | C.Cast _ (*CSC ??? *) ->
- raise (AssertFailure (lazy "3")) (* due to type-checking *)
- | C.Prod (name,so,de) ->
- (not (does_not_occur context n nn so)) ::
- (recursive_args ((Some (name,(C.Decl so)))::context) (n+1) (nn + 1) de)
- | C.Lambda _
- | C.LetIn _ ->
- raise (AssertFailure (lazy "4")) (* due to type-checking *)
- | C.Appl _ -> []
- | C.Const _ -> raise (AssertFailure (lazy "5"))
- | C.MutInd _
- | C.MutConstruct _
- | C.MutCase _
- | C.Fix _
- | C.CoFix _ -> raise (AssertFailure (lazy "6")) (* due to type-checking *)
+ match CicReduction.whd context te with
+ C.Rel _
+ | C.MutInd _ -> []
+ | C.Var _
+ | C.Meta _
+ | C.Sort _
+ | C.Implicit _
+ | C.Cast _ (*CSC ??? *) ->
+ raise (AssertFailure (lazy "3")) (* due to type-checking *)
+ | C.Prod (name,so,de) ->
+ (not (does_not_occur context n nn so)) ::
+ (recursive_args ((Some (name,(C.Decl so)))::context) (n+1) (nn + 1) de)
+ | C.Lambda _
+ | C.LetIn _ ->
+ raise (AssertFailure (lazy "4")) (* due to type-checking *)
+ | C.Appl _ -> []
+ | C.Const _ -> raise (AssertFailure (lazy "5"))
+ | C.MutConstruct _
+ | C.MutCase _
+ | C.Fix _
+ | C.CoFix _ -> raise (AssertFailure (lazy "6")) (* due to type-checking *)
-and get_new_safes ~subst context p c rl safes n nn x =
+and get_new_safes ~subst context p rl safes n nn x =
let module C = Cic in
let module U = UriManager in
let module R = CicReduction in
- match (R.whd ~subst context c, R.whd ~subst context p, rl) with
- (C.Prod (_,so,ta1), C.Lambda (name,_,ta2), b::tl) ->
- (* we are sure that the two sources are convertible because we *)
- (* have just checked this. So let's go along ... *)
- let safes' =
- List.map (fun x -> x + 1) safes
- in
- let safes'' =
- if b then 1::safes' else safes'
- in
- get_new_safes ~subst ((Some (name,(C.Decl so)))::context)
- ta2 ta1 tl safes'' (n+1) (nn+1) (x+1)
- | (C.Prod _, (C.MutConstruct _ as e), _)
- | (C.Prod _, (C.Rel _ as e), _)
- | (C.MutInd _, e, [])
- | (C.Appl _, e, []) -> (e,safes,n,nn,x,context)
- | (c,p,l) ->
- (* CSC: If the next exception is raised, it just means that *)
- (* CSC: the proof-assistant allows to use very strange things *)
- (* CSC: as a branch of a case whose type is a Prod. In *)
- (* CSC: particular, this means that a new (C.Prod, x,_) case *)
- (* CSC: must be considered in this match. (e.g. x = MutCase) *)
+ match R.whd ~subst context p, rl with
+ | C.Lambda (name,so,ta), b::tl ->
+ let safes = List.map (fun x -> x + 1) safes in
+ let safes = if b then 1::safes else safes in
+ get_new_safes ~subst ((Some (name,(C.Decl so)))::context)
+ ta tl safes (n+1) (nn+1) (x+1)
+ | C.MutConstruct _ as e, _
+ | (C.Rel _ as e), _
+ | e, [] -> (e,safes,n,nn,x,context)
+ | p,_::_ ->
raise
(AssertFailure (lazy
- (Printf.sprintf "Get New Safes: c=%s ; p=%s"
- (CicPp.ppterm c) (CicPp.ppterm p))))
+ (Printf.sprintf "Get New Safes: p=%s" (CicPp.ppterm p))))
and split_prods ~subst context n te =
let module C = Cic in
| (n, te) ->
raise (AssertFailure (lazy (sprintf "9 (%d, %s)" n (CicPp.ppterm te))))
-(*CSC: Tutto quello che segue e' l'intuzione di luca ;-) *)
-and check_is_really_smaller_arg ~subst context n nn kl x safes te =
- (*CSC: forse la whd si puo' fare solo quando serve veramente. *)
- (*CSC: cfr guarded_by_destructors *)
+and specialize_inductive_type ~logger ~subst ~metasenv context t =
+ let ty,_= type_of_aux' ~logger ~subst metasenv context t CicUniv.oblivion_ugraph in
+ match CicReduction.whd ~subst context ty with
+ | Cic.MutInd (uri,_,exp)
+ | Cic.Appl (Cic.MutInd (uri,_,exp) :: _) as ty ->
+ let args = match ty with Cic.Appl (_::tl) -> tl | _ -> [] in
+ let o,_ = CicEnvironment.get_obj CicUniv.oblivion_ugraph uri in
+ (match o with
+ | Cic.InductiveDefinition (tl,_,paramsno,_) ->
+ let left_args,_ = HExtlib.split_nth paramsno args in
+ List.map (fun (name, isind, arity, cl) ->
+ let arity = CicSubstitution.subst_vars exp arity in
+ let arity = instantiate_parameters left_args arity in
+ let cl =
+ List.map
+ (fun (id,ty) ->
+ let ty = CicSubstitution.subst_vars exp ty in
+ id, instantiate_parameters left_args ty)
+ cl
+ in
+ name, isind, arity, cl)
+ tl
+ | _ -> assert false)
+ | _ -> assert false
+
+and check_is_really_smaller_arg
+ ~logger ~metasenv ~subst rec_uri rec_uri_len context n nn kl x safes te
+=
let module C = Cic in
let module U = UriManager in
(*CSC: we could perform beta-iota(-zeta?) immediately, and
delta only on-demand when it fails without *)
match CicReduction.whd ~subst context te with
C.Rel m when List.mem m safes -> true
- | C.Rel _ -> false
- | C.Var _
- | C.Meta _
- | C.Sort _
- | C.Implicit _
- | C.Cast _
-(* | C.Cast (te,ty) ->
- check_is_really_smaller_arg ~subst n nn kl x safes te &&
- check_is_really_smaller_arg ~subst n nn kl x safes ty*)
-(* | C.Prod (_,so,ta) ->
- check_is_really_smaller_arg ~subst n nn kl x safes so &&
- check_is_really_smaller_arg ~subst (n+1) (nn+1) kl (x+1)
- (List.map (fun x -> x + 1) safes) ta*)
- | C.Prod _ -> raise (AssertFailure (lazy "10"))
- | C.Lambda (name,so,ta) ->
- check_is_really_smaller_arg ~subst context n nn kl x safes so &&
- check_is_really_smaller_arg ~subst ((Some (name,(C.Decl so)))::context)
- (n+1) (nn+1) kl (x+1) (List.map (fun x -> x + 1) safes) ta
- | C.LetIn (name,so,ty,ta) ->
- check_is_really_smaller_arg ~subst context n nn kl x safes so &&
- check_is_really_smaller_arg ~subst context n nn kl x safes ty &&
- check_is_really_smaller_arg ~subst ((Some (name,(C.Def (so,ty))))::context)
- (n+1) (nn+1) kl (x+1) (List.map (fun x -> x + 1) safes) ta
- | C.Appl (he::_) ->
- (*CSC: sulla coda ci vogliono dei controlli? secondo noi no, ma *)
- (*CSC: solo perche' non abbiamo trovato controesempi *)
- check_is_really_smaller_arg ~subst context n nn kl x safes he
- | C.Appl [] -> raise (AssertFailure (lazy "11"))
+ | C.Rel _
+ | C.MutConstruct _
| C.Const _
- | C.MutInd _ -> raise (AssertFailure (lazy "12"))
- | C.MutConstruct _ -> false
+ | C.Var _ -> false
+ | C.Appl (he::_) ->
+ check_is_really_smaller_arg rec_uri rec_uri_len
+ ~logger ~metasenv ~subst context n nn kl x safes he
+ | C.Lambda (name,ty,ta) ->
+ check_is_really_smaller_arg rec_uri rec_uri_len
+ ~logger ~metasenv ~subst (Some (name,Cic.Decl ty)::context)
+ (n+1) (nn+1) kl (x+1) (List.map (fun n -> n+1) safes) ta
| C.MutCase (uri,i,outtype,term,pl) ->
(match term with
- C.Rel m when List.mem m safes || m = x ->
- let (lefts_and_tys,len,isinductive,paramsno,cl) =
- let o,_ = CicEnvironment.get_obj CicUniv.empty_ugraph uri in
- match o with
- C.InductiveDefinition (tl,_,paramsno,_) ->
- let tys =
- List.map
- (fun (n,_,ty,_) -> Some (Cic.Name n,(Cic.Decl ty))) tl
- in
- let (_,isinductive,_,cl) = List.nth tl i in
- let cl' =
- List.map
- (fun (id,ty) ->
- (id, snd (split_prods ~subst tys paramsno ty))) cl in
- let lefts =
- match tl with
- [] -> assert false
- | (_,_,ty,_)::_ ->
- fst (split_prods ~subst [] paramsno ty)
- in
- (lefts@tys,List.length tl,isinductive,paramsno,cl')
- | _ ->
- raise (TypeCheckerFailure
- (lazy ("Unknown mutual inductive definition:" ^
- UriManager.string_of_uri uri)))
- in
- if not isinductive then
- List.fold_right
- (fun p i ->
- i && check_is_really_smaller_arg ~subst context n nn kl x safes p)
- pl true
- else
- let pl_and_cl =
- try
- List.combine pl cl
- with
- Invalid_argument _ ->
- raise (TypeCheckerFailure (lazy "not enough patterns"))
- in
- List.fold_right
- (fun (p,(_,c)) i ->
- let rl' =
- let debrujinedte = debrujin_constructor uri len c in
- recursive_args lefts_and_tys 0 len debrujinedte
- in
- let (e,safes',n',nn',x',context') =
- get_new_safes ~subst context p c rl' safes n nn x
- in
- i &&
- check_is_really_smaller_arg ~subst context' n' nn' kl x' safes' e
- ) pl_and_cl true
- | C.Appl ((C.Rel m)::tl) when List.mem m safes || m = x ->
- let (lefts_and_tys,len,isinductive,paramsno,cl) =
- let o,_ = CicEnvironment.get_obj CicUniv.empty_ugraph uri in
- match o with
- C.InductiveDefinition (tl,_,paramsno,_) ->
- let (_,isinductive,_,cl) = List.nth tl i in
- let tys =
- List.map (fun (n,_,ty,_) ->
- Some(Cic.Name n,(Cic.Decl ty))) tl
- in
- let cl' =
- List.map
- (fun (id,ty) ->
- (id, snd (split_prods ~subst tys paramsno ty))) cl in
- let lefts =
- match tl with
- [] -> assert false
- | (_,_,ty,_)::_ ->
- fst (split_prods ~subst [] paramsno ty)
- in
- (lefts@tys,List.length tl,isinductive,paramsno,cl')
- | _ ->
- raise (TypeCheckerFailure
- (lazy ("Unknown mutual inductive definition:" ^
- UriManager.string_of_uri uri)))
- in
- if not isinductive then
- List.fold_right
- (fun p i ->
- i && check_is_really_smaller_arg ~subst context n nn kl x safes p)
- pl true
- else
- let pl_and_cl =
- try
- List.combine pl cl
- with
- Invalid_argument _ ->
- raise (TypeCheckerFailure (lazy "not enough patterns"))
- in
- (*CSC: supponiamo come prima che nessun controllo sia necessario*)
- (*CSC: sugli argomenti di una applicazione *)
- List.fold_right
- (fun (p,(_,c)) i ->
- let rl' =
- let debrujinedte = debrujin_constructor uri len c in
- recursive_args lefts_and_tys 0 len debrujinedte
- in
- let (e, safes',n',nn',x',context') =
- get_new_safes ~subst context p c rl' safes n nn x
- in
- i &&
- check_is_really_smaller_arg ~subst context' n' nn' kl x' safes' e
- ) pl_and_cl true
+ | C.Rel m | C.Appl ((C.Rel m)::_) when List.mem m safes || m = x ->
+ let tys =
+ specialize_inductive_type ~logger ~subst ~metasenv context term
+ in
+ let tys_ctx =
+ List.map (fun (name,_,ty,_) -> Some (Cic.Name name, Cic.Decl ty)) tys
+ in
+ let _,isinductive,_,cl = List.nth tys i in
+ if not isinductive then
+ List.for_all
+ (check_is_really_smaller_arg rec_uri rec_uri_len
+ ~logger ~metasenv ~subst context n nn kl x safes)
+ pl
+ else
+ List.for_all2
+ (fun p (_,c) ->
+ let rec_params =
+ let c =
+ debrujin_constructor ~check_exp_named_subst:false
+ rec_uri rec_uri_len context c in
+ let len_ctx = List.length context in
+ recursive_args (context@tys_ctx) len_ctx (len_ctx+rec_uri_len) c
+ in
+ let (e, safes',n',nn',x',context') =
+ get_new_safes ~subst context p rec_params safes n nn x
+ in
+ check_is_really_smaller_arg rec_uri rec_uri_len
+ ~logger ~metasenv ~subst context' n' nn' kl x' safes' e
+ ) pl cl
| _ ->
- List.fold_right
- (fun p i ->
- i && check_is_really_smaller_arg ~subst context n nn kl x safes p
- ) pl true
+ List.for_all
+ (check_is_really_smaller_arg
+ rec_uri rec_uri_len ~logger ~metasenv ~subst
+ context n nn kl x safes) pl
)
| C.Fix (_, fl) ->
let len = List.length fl in
len+1)
) ([],0) fl
and safes' = List.map (fun x -> x + len) safes in
- List.fold_right
- (fun (_,_,ty,bo) i ->
- i &&
- check_is_really_smaller_arg ~subst (tys@context) n_plus_len nn_plus_len kl
- x_plus_len safes' bo
- ) fl true
- | C.CoFix (_, fl) ->
- let len = List.length fl in
- let n_plus_len = n + len
- and nn_plus_len = nn + len
- and x_plus_len = x + len
- and tys,_ =
- List.fold_left
- (fun (types,len) (n,ty,_) ->
- (Some (C.Name n,(C.Decl (CicSubstitution.lift len ty)))::types,
- len+1)
- ) ([],0) fl
- and safes' = List.map (fun x -> x + len) safes in
- List.fold_right
- (fun (_,ty,bo) i ->
- i &&
- check_is_really_smaller_arg ~subst (tys@context) n_plus_len nn_plus_len kl
+ List.for_all
+ (fun (_,_,_,bo) ->
+ check_is_really_smaller_arg
+ rec_uri rec_uri_len ~logger ~metasenv ~subst
+ (tys@context) n_plus_len nn_plus_len kl
x_plus_len safes' bo
- ) fl true
+ ) fl
+ | t ->
+ raise (AssertFailure (lazy ("An inhabitant of an inductive type in normal form cannot have this shape: " ^ CicPp.ppterm t)))
-and guarded_by_destructors ~subst context n nn kl x safes t =
+and guarded_by_destructors
+ ~logger ~metasenv ~subst rec_uri rec_uri_len context n nn kl x safes t
+=
let module C = Cic in
let module U = UriManager in
match CicReduction.whd ~subst context t with
(match List.nth context (m-1) with
Some (_,C.Decl _) -> true
| Some (_,C.Def (bo,_)) ->
- guarded_by_destructors ~subst context n nn kl x safes
+ guarded_by_destructors rec_uri rec_uri_len ~logger ~metasenv ~subst context n nn kl x safes
(CicSubstitution.lift m bo)
| None -> raise (TypeCheckerFailure (lazy "Reference to deleted hypothesis"))
)
| C.Sort _
| C.Implicit _ -> true
| C.Cast (te,ty) ->
- guarded_by_destructors ~subst context n nn kl x safes te &&
- guarded_by_destructors ~subst context n nn kl x safes ty
+ guarded_by_destructors rec_uri rec_uri_len ~logger ~metasenv ~subst context n nn kl x safes te &&
+ guarded_by_destructors rec_uri rec_uri_len ~logger ~metasenv ~subst context n nn kl x safes ty
| C.Prod (name,so,ta) ->
- guarded_by_destructors ~subst context n nn kl x safes so &&
- guarded_by_destructors ~subst ((Some (name,(C.Decl so)))::context)
+ guarded_by_destructors rec_uri rec_uri_len ~logger ~metasenv ~subst context n nn kl x safes so &&
+ guarded_by_destructors rec_uri rec_uri_len ~logger ~metasenv ~subst ((Some (name,(C.Decl so)))::context)
(n+1) (nn+1) kl (x+1) (List.map (fun x -> x + 1) safes) ta
| C.Lambda (name,so,ta) ->
- guarded_by_destructors ~subst context n nn kl x safes so &&
- guarded_by_destructors ~subst ((Some (name,(C.Decl so)))::context)
+ guarded_by_destructors rec_uri rec_uri_len ~logger ~metasenv ~subst context n nn kl x safes so &&
+ guarded_by_destructors rec_uri rec_uri_len ~logger ~metasenv ~subst ((Some (name,(C.Decl so)))::context)
(n+1) (nn+1) kl (x+1) (List.map (fun x -> x + 1) safes) ta
| C.LetIn (name,so,ty,ta) ->
- guarded_by_destructors ~subst context n nn kl x safes so &&
- guarded_by_destructors ~subst context n nn kl x safes ty &&
- guarded_by_destructors ~subst ((Some (name,(C.Def (so,ty))))::context)
+ guarded_by_destructors rec_uri rec_uri_len ~logger ~metasenv ~subst context n nn kl x safes so &&
+ guarded_by_destructors rec_uri rec_uri_len ~logger ~metasenv ~subst context n nn kl x safes ty &&
+ guarded_by_destructors rec_uri rec_uri_len ~logger ~metasenv ~subst ((Some (name,(C.Def (so,ty))))::context)
(n+1) (nn+1) kl (x+1) (List.map (fun x -> x + 1) safes) ta
| C.Appl ((C.Rel m)::tl) when m > n && m <= nn ->
let k = List.nth kl (m - n - 1) in
if not (List.length tl > k) then false
else
- List.fold_right
- (fun param i ->
- i && guarded_by_destructors ~subst context n nn kl x safes param
- ) tl true &&
- check_is_really_smaller_arg ~subst context n nn kl x safes (List.nth tl k)
+ List.for_all
+ (guarded_by_destructors rec_uri rec_uri_len ~logger ~metasenv ~subst context n nn kl x safes) tl &&
+ check_is_really_smaller_arg
+ rec_uri rec_uri_len
+ ~logger ~metasenv ~subst context n nn kl x safes (List.nth tl k)
| C.Var (_,exp_named_subst)
| C.Const (_,exp_named_subst)
| C.MutInd (_,_,exp_named_subst)
| C.MutConstruct (_,_,_,exp_named_subst) ->
- List.fold_right
- (fun (_,t) i -> i && guarded_by_destructors ~subst context n nn kl x safes t)
- exp_named_subst true
+ List.for_all
+ (fun (_,t) -> guarded_by_destructors rec_uri rec_uri_len ~logger ~metasenv ~subst context n nn kl x safes t)
+ exp_named_subst
| C.MutCase (uri,i,outtype,term,pl) ->
(match CicReduction.whd ~subst context term with
- C.Rel m when List.mem m safes || m = x ->
- let (lefts_and_tys,len,isinductive,paramsno,cl) =
- let o,_ = CicEnvironment.get_obj CicUniv.empty_ugraph uri in
- match o with
- C.InductiveDefinition (tl,_,paramsno,_) ->
- let len = List.length tl in
- let (_,isinductive,_,cl) = List.nth tl i in
- let tys =
- List.map (fun (n,_,ty,_) ->
- Some(Cic.Name n,(Cic.Decl ty))) tl
- in
- let cl' =
- List.map
- (fun (id,ty) ->
- let debrujinedty = debrujin_constructor uri len ty in
- (id, snd (split_prods ~subst tys paramsno ty),
- snd (split_prods ~subst tys paramsno debrujinedty)
- )) cl in
- let lefts =
- match tl with
- [] -> assert false
- | (_,_,ty,_)::_ ->
- fst (split_prods ~subst [] paramsno ty)
- in
- (lefts@tys,len,isinductive,paramsno,cl')
- | _ ->
- raise (TypeCheckerFailure
- (lazy ("Unknown mutual inductive definition:" ^
- UriManager.string_of_uri uri)))
+ | C.Rel m
+ | C.Appl ((C.Rel m)::_) as t when List.mem m safes || m = x ->
+ let tl = match t with C.Appl (_::tl) -> tl | _ -> [] in
+ List.for_all
+ (guarded_by_destructors rec_uri rec_uri_len ~logger ~metasenv ~subst context n nn kl x safes)
+ tl &&
+ let tys =
+ specialize_inductive_type ~logger ~subst ~metasenv context t
in
- if not isinductive then
- guarded_by_destructors ~subst context n nn kl x safes outtype &&
- guarded_by_destructors ~subst context n nn kl x safes term &&
- (*CSC: manca ??? il controllo sul tipo di term? *)
- List.fold_right
- (fun p i ->
- i && guarded_by_destructors ~subst context n nn kl x safes p)
- pl true
- else
- let pl_and_cl =
- try
- List.combine pl cl
- with
- Invalid_argument _ ->
- raise (TypeCheckerFailure (lazy "not enough patterns"))
- in
- guarded_by_destructors ~subst context n nn kl x safes outtype &&
- (*CSC: manca ??? il controllo sul tipo di term? *)
- List.fold_right
- (fun (p,(_,c,brujinedc)) i ->
- i &&
- let rl' = recursive_args lefts_and_tys 0 len brujinedc in
- let (e,safes',n',nn',x',context') =
- get_new_safes ~subst context p c rl' safes n nn x
- in
- guarded_by_destructors ~subst context' n' nn' kl x' safes' e
- ) pl_and_cl true
- | C.Appl ((C.Rel m)::tl) when List.mem m safes || m = x ->
- let (lefts_and_tys,len,isinductive,paramsno,cl) =
- let o,_ = CicEnvironment.get_obj CicUniv.empty_ugraph uri in
- match o with
- C.InductiveDefinition (tl,_,paramsno,_) ->
- let (_,isinductive,_,cl) = List.nth tl i in
- let tys =
- List.map
- (fun (n,_,ty,_) -> Some(Cic.Name n,(Cic.Decl ty))) tl
- in
- let cl' =
- List.map
- (fun (id,ty) ->
- (id, snd (split_prods ~subst tys paramsno ty))) cl in
- let lefts =
- match tl with
- [] -> assert false
- | (_,_,ty,_)::_ ->
- fst (split_prods ~subst [] paramsno ty)
- in
- (lefts@tys,List.length tl,isinductive,paramsno,cl')
- | _ ->
- raise (TypeCheckerFailure
- (lazy ("Unknown mutual inductive definition:" ^
- UriManager.string_of_uri uri)))
+ let tys_ctx =
+ List.map
+ (fun (name,_,ty,_) -> Some (Cic.Name name, Cic.Decl ty)) tys
in
+ let _,isinductive,_,cl = List.nth tys i in
if not isinductive then
- guarded_by_destructors ~subst context n nn kl x safes outtype &&
- guarded_by_destructors ~subst context n nn kl x safes term &&
- (*CSC: manca ??? il controllo sul tipo di term? *)
- List.fold_right
- (fun p i ->
- i && guarded_by_destructors ~subst context n nn kl x safes p)
- pl true
+ guarded_by_destructors rec_uri rec_uri_len ~logger ~metasenv ~subst context n nn kl x safes outtype &&
+ guarded_by_destructors rec_uri rec_uri_len ~logger ~metasenv ~subst context n nn kl x safes term &&
+ List.for_all
+ (guarded_by_destructors rec_uri rec_uri_len ~logger ~metasenv ~subst context n nn kl x safes)
+ pl
else
- let pl_and_cl =
- try
- List.combine pl cl
- with
- Invalid_argument _ ->
- raise (TypeCheckerFailure (lazy "not enough patterns"))
- in
- guarded_by_destructors ~subst context n nn kl x safes outtype &&
- (*CSC: manca ??? il controllo sul tipo di term? *)
- List.fold_right
- (fun t i ->
- i && guarded_by_destructors ~subst context n nn kl x safes t)
- tl true &&
- List.fold_right
- (fun (p,(_,c)) i ->
- let rl' =
- let debrujinedte = debrujin_constructor uri len c in
- recursive_args lefts_and_tys 0 len debrujinedte
- in
- let (e, safes',n',nn',x',context') =
- get_new_safes ~subst context p c rl' safes n nn x
- in
- i &&
- guarded_by_destructors ~subst context' n' nn' kl x' safes' e
- ) pl_and_cl true
+ guarded_by_destructors rec_uri rec_uri_len ~logger ~metasenv ~subst context n nn kl x safes outtype &&
+ List.for_all2
+ (fun p (_,c) ->
+ let rec_params =
+ let c =
+ debrujin_constructor ~check_exp_named_subst:false
+ rec_uri rec_uri_len context c in
+ let len_ctx = List.length context in
+ recursive_args (context@tys_ctx) len_ctx (len_ctx+rec_uri_len) c
+ in
+ let (e, safes',n',nn',x',context') =
+ get_new_safes ~subst context p rec_params safes n nn x
+ in
+ guarded_by_destructors rec_uri rec_uri_len ~logger ~metasenv ~subst context' n' nn' kl x' safes' e
+ ) pl cl
| _ ->
- guarded_by_destructors ~subst context n nn kl x safes outtype &&
- guarded_by_destructors ~subst context n nn kl x safes term &&
+ guarded_by_destructors rec_uri rec_uri_len ~logger ~metasenv ~subst context n nn kl x safes outtype &&
+ guarded_by_destructors rec_uri rec_uri_len ~logger ~metasenv ~subst context n nn kl x safes term &&
(*CSC: manca ??? il controllo sul tipo di term? *)
List.fold_right
- (fun p i -> i && guarded_by_destructors ~subst context n nn kl x safes p)
+ (fun p i -> i && guarded_by_destructors rec_uri rec_uri_len ~logger ~metasenv ~subst context n nn kl x safes p)
pl true
)
| C.Appl (C.Fix (fixno, fl)::_) | C.Fix (fixno,fl) as t->
) ([],0) fl in
let safes' = List.map (fun x -> x + len) safes in
List.for_all
- (guarded_by_destructors ~subst context n nn kl x safes) l &&
+ (guarded_by_destructors rec_uri rec_uri_len ~logger ~metasenv ~subst context n nn kl x safes) l &&
snd (List.fold_left
(fun (fixno',i) (_,recno,ty,bo) ->
fixno'+1,
i &&
- guarded_by_destructors ~subst context n nn kl x_plus_len safes' ty &&
+ guarded_by_destructors rec_uri rec_uri_len ~logger ~metasenv ~subst context n nn kl x_plus_len safes' ty &&
if
fixno' = fixno &&
List.length l > recno &&
(*case where the recursive argument is already really_smaller *)
- check_is_really_smaller_arg ~subst context n nn kl x safes
- (List.nth l recno)
+ check_is_really_smaller_arg
+ rec_uri rec_uri_len ~logger ~metasenv ~subst context n nn kl x safes
+ (List.nth l recno)
then
let bo_without_lambdas,_,context =
eat_lambdas ~subst (tys@context) (recno+1) bo
in
(* we assume the formal argument to be safe *)
- guarded_by_destructors ~subst context (n_plus_len+recno+1)
+ guarded_by_destructors rec_uri rec_uri_len ~logger ~metasenv ~subst context (n_plus_len+recno+1)
(nn_plus_len+recno+1) kl (x_plus_len+recno+1)
(1::List.map (fun x -> x+recno+1) safes')
bo_without_lambdas
else
- guarded_by_destructors ~subst (tys@context) n_plus_len nn_plus_len
+ guarded_by_destructors rec_uri rec_uri_len ~logger ~metasenv ~subst (tys@context) n_plus_len nn_plus_len
kl x_plus_len safes' bo
) (0,true) fl)
| C.CoFix (_, fl) ->
List.fold_right
(fun (_,ty,bo) i ->
i &&
- guarded_by_destructors ~subst context n nn kl x_plus_len safes' ty &&
- guarded_by_destructors ~subst (tys@context) n_plus_len nn_plus_len kl
+ guarded_by_destructors rec_uri rec_uri_len ~logger ~metasenv ~subst context n nn kl x_plus_len safes' ty &&
+ guarded_by_destructors rec_uri rec_uri_len ~logger ~metasenv ~subst (tys@context) n_plus_len nn_plus_len kl
x_plus_len safes' bo
) fl true
| C.Appl tl ->
List.fold_right
- (fun t i -> i && guarded_by_destructors ~subst context n nn kl x safes t)
+ (fun t i -> i && guarded_by_destructors rec_uri rec_uri_len ~logger ~metasenv ~subst context n nn kl x safes t)
tl true
(* the boolean h means already protected *)
let (m, eaten, context') =
eat_lambdas ~subst (types @ context) (x + 1) bo
in
+ let rec_uri, rec_uri_len =
+ let he =
+ match List.hd context' with
+ Some (_,Cic.Decl he) -> he
+ | _ -> assert false
+ in
+ match CicReduction.whd ~subst (List.tl context') he with
+ | Cic.MutInd (uri,_,_)
+ | Cic.Appl (Cic.MutInd (uri,_,_)::_) ->
+ uri,
+ (match
+ CicEnvironment.get_obj
+ CicUniv.oblivion_ugraph uri
+ with
+ | Cic.InductiveDefinition (tl,_,_,_), _ ->
+ List.length tl
+ | _ -> assert false)
+ | _ -> assert false
+ in
(*
let's control the guarded by
destructors conditions D{f,k,x,M}
*)
- if not (guarded_by_destructors ~subst context' eaten
- (len + eaten) kl 1 [] m) then
+ if not (guarded_by_destructors ~logger ~metasenv ~subst
+ rec_uri rec_uri_len context' eaten (len + eaten) kl
+ 1 [] m)
+ then
raise
(TypeCheckerFailure
(lazy ("Fix: not guarded by destructors:"^CicPp.ppterm t)))
*)
;;
-let typecheck_obj0 ~logger uri ugraph =
+let typecheck_obj0 ~logger uri (obj,unchecked_ugraph) =
let module C = Cic in
- function
- C.Constant (_,Some te,ty,_,_) ->
- let _,ugraph = type_of ~logger ty ugraph in
- let ty_te,ugraph = type_of ~logger te ugraph in
- let b,ugraph = (CicReduction.are_convertible [] ty_te ty ugraph) in
- if not b then
- raise (TypeCheckerFailure
- (lazy
- ("the type of the body is not the one expected:\n" ^
- CicPp.ppterm ty_te ^ "\nvs\n" ^
- CicPp.ppterm ty)))
- else
- ugraph
- | C.Constant (_,None,ty,_,_) ->
- (* only to check that ty is well-typed *)
- let _,ugraph = type_of ~logger ty ugraph in
- ugraph
- | C.CurrentProof (_,conjs,te,ty,_,_) ->
- (* this block is broken since the metasenv should
- * be topologically sorted before typing metas *)
- ignore(assert false);
- let _,ugraph =
- List.fold_left
- (fun (metasenv,ugraph) ((_,context,ty) as conj) ->
- let _,ugraph =
- type_of_aux' ~logger metasenv context ty ugraph
- in
- metasenv @ [conj],ugraph
- ) ([],ugraph) conjs
- in
- let _,ugraph = type_of_aux' ~logger conjs [] ty ugraph in
- let type_of_te,ugraph =
- type_of_aux' ~logger conjs [] te ugraph
- in
- let b,ugraph = CicReduction.are_convertible [] type_of_te ty ugraph in
- if not b then
- raise (TypeCheckerFailure (lazy (sprintf
- "the current proof is not well typed because the type %s of the body is not convertible to the declared type %s"
- (CicPp.ppterm type_of_te) (CicPp.ppterm ty))))
- else
+ let ugraph = CicUniv.empty_ugraph in
+ let inferred_ugraph =
+ match obj with
+ | C.Constant (_,Some te,ty,_,_) ->
+ let _,ugraph = type_of ~logger ty ugraph in
+ let ty_te,ugraph = type_of ~logger te ugraph in
+ let b,ugraph = (CicReduction.are_convertible [] ty_te ty ugraph) in
+ if not b then
+ raise (TypeCheckerFailure
+ (lazy
+ ("the type of the body is not the one expected:\n" ^
+ CicPp.ppterm ty_te ^ "\nvs\n" ^
+ CicPp.ppterm ty)))
+ else
+ ugraph
+ | C.Constant (_,None,ty,_,_) ->
+ (* only to check that ty is well-typed *)
+ let _,ugraph = type_of ~logger ty ugraph in
ugraph
- | C.Variable (_,bo,ty,_,_) ->
- (* only to check that ty is well-typed *)
- let _,ugraph = type_of ~logger ty ugraph in
- (match bo with
- None -> ugraph
- | Some bo ->
- let ty_bo,ugraph = type_of ~logger bo ugraph in
- let b,ugraph = CicReduction.are_convertible [] ty_bo ty ugraph in
- if not b then
- raise (TypeCheckerFailure
- (lazy "the body is not the one expected"))
- else
- ugraph
- )
- | (C.InductiveDefinition _ as obj) ->
- check_mutual_inductive_defs ~logger uri obj ugraph
+ | C.CurrentProof (_,conjs,te,ty,_,_) ->
+ (* this block is broken since the metasenv should
+ * be topologically sorted before typing metas *)
+ ignore(assert false);
+ let _,ugraph =
+ List.fold_left
+ (fun (metasenv,ugraph) ((_,context,ty) as conj) ->
+ let _,ugraph =
+ type_of_aux' ~logger metasenv context ty ugraph
+ in
+ metasenv @ [conj],ugraph
+ ) ([],ugraph) conjs
+ in
+ let _,ugraph = type_of_aux' ~logger conjs [] ty ugraph in
+ let type_of_te,ugraph =
+ type_of_aux' ~logger conjs [] te ugraph
+ in
+ let b,ugraph = CicReduction.are_convertible [] type_of_te ty ugraph in
+ if not b then
+ raise (TypeCheckerFailure (lazy (sprintf
+ "the current proof is not well typed because the type %s of the body is not convertible to the declared type %s"
+ (CicPp.ppterm type_of_te) (CicPp.ppterm ty))))
+ else
+ ugraph
+ | C.Variable (_,bo,ty,_,_) ->
+ (* only to check that ty is well-typed *)
+ let _,ugraph = type_of ~logger ty ugraph in
+ (match bo with
+ None -> ugraph
+ | Some bo ->
+ let ty_bo,ugraph = type_of ~logger bo ugraph in
+ let b,ugraph = CicReduction.are_convertible [] ty_bo ty ugraph in
+ if not b then
+ raise (TypeCheckerFailure
+ (lazy "the body is not the one expected"))
+ else
+ ugraph
+ )
+ | (C.InductiveDefinition _ as obj) ->
+ check_mutual_inductive_defs ~logger uri obj ugraph
+ in
+ check_and_clean_ugraph inferred_ugraph unchecked_ugraph uri obj
+;;
let typecheck uri =
let module C = Cic in
let module R = CicReduction in
let module U = UriManager in
let logger = new CicLogger.logger in
- (* ??? match CicEnvironment.is_type_checked ~trust:true uri with ???? *)
match CicEnvironment.is_type_checked ~trust:false CicUniv.empty_ugraph uri with
- CicEnvironment.CheckedObj (cobj,ugraph') ->
- (* debug_print (lazy ("NON-INIZIO A TYPECHECKARE " ^ U.string_of_uri uri));*)
- cobj,ugraph'
- | CicEnvironment.UncheckedObj uobj ->
+ | CicEnvironment.CheckedObj (cobj,ugraph') -> cobj,ugraph'
+ | CicEnvironment.UncheckedObj (uobj,unchecked_ugraph) ->
(* let's typecheck the uncooked object *)
logger#log (`Start_type_checking uri) ;
- (* debug_print (lazy ("INIZIO A TYPECHECKARE " ^ U.string_of_uri uri)); *)
- let ugraph = typecheck_obj0 ~logger uri CicUniv.empty_ugraph uobj in
- try
- CicEnvironment.set_type_checking_info uri;
- logger#log (`Type_checking_completed uri);
- match CicEnvironment.is_type_checked ~trust:false ugraph uri with
- CicEnvironment.CheckedObj (cobj,ugraph') -> cobj,ugraph'
- | _ -> raise CicEnvironmentError
- with
- (*
- this is raised if set_type_checking_info is called on an object
- that has no associated universe file. If we are in univ_maker
- phase this is OK since univ_maker will properly commit the
- object.
- *)
- Invalid_argument s ->
- (*debug_print (lazy s);*)
- uobj,ugraph
+ let ugraph, ul, obj = typecheck_obj0 ~logger uri (uobj,unchecked_ugraph) in
+ CicEnvironment.set_type_checking_info uri (obj,ugraph,ul);
+ logger#log (`Type_checking_completed uri);
+ match CicEnvironment.is_type_checked ~trust:false ugraph uri with
+ | CicEnvironment.CheckedObj (cobj,ugraph') -> cobj,ugraph'
+ | _ -> raise CicEnvironmentError
;;
let typecheck_obj ~logger uri obj =
- let ugraph = typecheck_obj0 ~logger uri CicUniv.empty_ugraph obj in
- let ugraph, univlist, obj = CicUnivUtils.clean_and_fill uri obj ugraph in
- CicEnvironment.add_type_checked_obj uri (obj,ugraph,univlist)
+ let ugraph,univlist,obj = typecheck_obj0 ~logger uri (obj,None) in
+ CicEnvironment.add_type_checked_obj uri (obj,ugraph,univlist)
(** wrappers which instantiate fresh loggers *)
Deannotate.type_of_aux' :=
fun context t ->
- (*CSC: we need to type-check the context to avoid Not_found in
- get_cooked_obj in CicReduction. However, this implementation may
- be very inefficient, since we may type-check the same context
- O(n^2) times. On the other hand, type-checking the context in Deannotate
- would be a cost to pay not only for Coq objects. *)
ignore (
List.fold_right
(fun el context ->
(match el with
None -> ()
| Some (_,Cic.Decl ty) ->
- ignore (type_of_aux' [] context ty CicUniv.oblivion_ugraph)
+ ignore (type_of_aux' [] context ty CicUniv.empty_ugraph)
| Some (_,Cic.Def (bo,ty)) ->
- ignore (type_of_aux' [] context ty CicUniv.oblivion_ugraph);
- ignore (type_of_aux' [] context bo CicUniv.oblivion_ugraph));
+ ignore (type_of_aux' [] context ty CicUniv.empty_ugraph);
+ ignore (type_of_aux' [] context bo CicUniv.empty_ugraph));
el::context
) context []);
- fst (type_of_aux' [] context t CicUniv.oblivion_ugraph);;
+ fst (type_of_aux' [] context t CicUniv.empty_ugraph);;