exception CicEnvironmentError;;
-let rec type_of_constant uri =
+let rec type_of_constant ~logger uri ugraph =
let module C = Cic in
let module R = CicReduction in
let module U = UriManager in
- let cobj =
- match CicEnvironment.is_type_checked ~trust:true uri with
- CicEnvironment.CheckedObj cobj -> cobj
+ let cobj,ugraph =
+ match CicEnvironment.is_type_checked ~trust:true uri ugraph with
+ CicEnvironment.CheckedObj (cobj,ugraph') -> cobj,ugraph'
| CicEnvironment.UncheckedObj uobj ->
- CicLogger.log (`Start_type_checking uri) ;
+ logger#log (`Start_type_checking uri) ;
(* let's typecheck the uncooked obj *)
- (match uobj with
+
+(****************************************************************
+ TASSI: FIXME qui e' inutile ricordarselo,
+ tanto poi lo richiediamo alla cache che da quello su disco
+*****************************************************************)
+
+ let ugraph_dust =
+ (match uobj with
C.Constant (_,Some te,ty,_) ->
- let _ = type_of ty in
- let type_of_te = type_of te in
- if not (R.are_convertible [] type_of_te ty) then
+ 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
raise (TypeCheckerFailure (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'
| C.Constant (_,None,ty,_) ->
(* only to check that ty is well-typed *)
- let _ = type_of ty in ()
+ let _,ugraph' = type_of ~logger ty ugraph in
+ ugraph'
| C.CurrentProof (_,conjs,te,ty,_) ->
- let _ =
+ let _,ugraph1 =
List.fold_left
- (fun metasenv ((_,context,ty) as conj) ->
- ignore (type_of_aux' metasenv context ty) ;
- metasenv @ [conj]
- ) [] conjs
+ (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 _ = type_of_aux' conjs [] ty in
- let type_of_te = type_of_aux' conjs [] te in
- if not (R.are_convertible [] type_of_te ty) then
+ 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
+ if not b then
raise (TypeCheckerFailure (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
| _ ->
- raise (TypeCheckerFailure
- ("Unknown constant:" ^ U.string_of_uri uri))
- );
- CicEnvironment.set_type_checking_info uri ;
- CicLogger.log (`Type_checking_completed uri) ;
- match CicEnvironment.is_type_checked ~trust:false uri with
- CicEnvironment.CheckedObj cobj -> cobj
- | CicEnvironment.UncheckedObj _ -> raise CicEnvironmentError
+ raise (TypeCheckerFailure
+ ("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 uri ugraph with
+ CicEnvironment.CheckedObj (cobj,ugraph') -> cobj,ugraph'
+ | CicEnvironment.UncheckedObj _ -> raise CicEnvironmentError
+ with Invalid_argument s ->
+ (*prerr_endline s;*)
+ uobj,ugraph_dust
in
- match cobj with
- C.Constant (_,_,ty,_) -> ty
- | C.CurrentProof (_,_,_,ty,_) -> ty
+ match cobj,ugraph with
+ (C.Constant (_,_,ty,_)),g -> ty,g
+ | (C.CurrentProof (_,_,_,ty,_)),g -> ty,g
| _ ->
raise (TypeCheckerFailure ("Unknown constant:" ^ U.string_of_uri uri))
-and type_of_variable uri =
+and type_of_variable ~logger uri ugraph =
let module C = Cic in
let module R = CicReduction in
let module U = UriManager in
(* 0 because a variable is never cooked => no partial cooking at one level *)
- match CicEnvironment.is_type_checked ~trust:true uri with
- CicEnvironment.CheckedObj (C.Variable (_,_,ty,_)) -> ty
+ match CicEnvironment.is_type_checked ~trust:true uri ugraph with
+ CicEnvironment.CheckedObj ((C.Variable (_,_,ty,_)),ugraph') -> ty,ugraph'
| CicEnvironment.UncheckedObj (C.Variable (_,bo,ty,_)) ->
- CicLogger.log (`Start_type_checking uri) ;
+ logger#log (`Start_type_checking uri) ;
(* only to check that ty is well-typed *)
- let _ = type_of ty in
+ let _,ugraph1 = type_of ~logger ty ugraph in
+ let ugraph2 =
(match bo with
- None -> ()
+ None -> ugraph
| Some bo ->
- if not (R.are_convertible [] (type_of bo) ty) then
+ let ty_bo,ugraph' = type_of ~logger bo ugraph1 in
+ let b,ugraph'' = (R.are_convertible [] ty_bo ty ugraph') in
+ if not b then
raise (TypeCheckerFailure
("Unknown variable:" ^ U.string_of_uri uri))
- ) ;
- CicEnvironment.set_type_checking_info uri ;
- CicLogger.log (`Type_checking_completed uri) ;
- ty
+ else
+ ugraph'')
+ in
+ (try
+ CicEnvironment.set_type_checking_info uri ;
+ logger#log (`Type_checking_completed uri) ;
+ match CicEnvironment.is_type_checked ~trust:false uri ugraph with
+ CicEnvironment.CheckedObj ((C.Variable (_,_,ty,_)),ugraph') ->
+ ty,ugraph'
+ | CicEnvironment.CheckedObj _
+ | CicEnvironment.UncheckedObj _ -> raise CicEnvironmentError
+ with Invalid_argument s ->
+ (*prerr_endline s;*)
+ ty,ugraph2)
| _ ->
- raise (TypeCheckerFailure ("Unknown variable:" ^ U.string_of_uri uri))
+ raise (TypeCheckerFailure ("Unknown variable:" ^ U.string_of_uri uri))
and does_not_occur context n nn te =
let module C = Cic in
List.fold_right (fun x i -> i && does_not_occur context n nn x) tl true
| C.Appl ((C.MutInd (uri,i,exp_named_subst))::tl) ->
let (ok,paramsno,ity,cl,name) =
- match CicEnvironment.get_obj uri with
+ let o,_ = CicEnvironment.get_obj uri CicUniv.empty_ugraph in
+ match o with
C.InductiveDefinition (tl,_,paramsno) ->
let (name,_,ity,cl) = List.nth tl i in
(List.length tl = 1, paramsno, ity, cl, name)
(* Main function to checks the correctness of a mutual *)
(* inductive block definition. This is the function *)
(* exported to the proof-engine. *)
-and typecheck_mutual_inductive_defs uri (itl,_,indparamsno) =
+and typecheck_mutual_inductive_defs ~logger uri (itl,_,indparamsno) ugraph =
let module U = UriManager in
(* let's check if the arity of the inductive types are well *)
(* formed *)
- List.iter (fun (_,_,x,_) -> let _ = type_of x in ()) itl ;
+ let ugrap1 = List.fold_left
+ (fun ugraph (_,_,x,_) -> let _,ugraph' =
+ type_of ~logger x ugraph in ugraph')
+ ugraph itl in
(* let's check if the types of the inductive constructors *)
(* are well formed. *)
(* mutual inductive types at the head of the types of the *)
(* constructors using Prods *)
let len = List.length itl in
- let tys =
+ let tys =
List.map (fun (n,_,ty,_) -> Some (Cic.Name n,(Cic.Decl ty))) itl in
- let _ =
+ let _,ugraph2 =
List.fold_right
- (fun (_,_,_,cl) i ->
- List.iter
- (fun (name,te) ->
- 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))
- itl debrujinedte
- in
- let _ = type_of augmented_term in
- (* let's check also the positivity conditions *)
- if
- not
- (are_all_occurrences_positive tys uri indparamsno i 0 len
- debrujinedte)
- then
- raise
- (TypeCheckerFailure ("Non positive occurence in " ^
- U.string_of_uri uri))
- ) cl ;
- (i + 1)
- ) itl 1
- in
- ()
+ (fun (_,_,_,cl) (i,ugraph) ->
+ let ugraph'' =
+ List.fold_left
+ (fun ugraph (name,te) ->
+ 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))
+ itl debrujinedte
+ in
+ let _,ugraph' = type_of ~logger augmented_term ugraph in
+ (* let's check also the positivity conditions *)
+ if
+ not
+ (are_all_occurrences_positive tys uri indparamsno i 0 len
+ debrujinedte)
+ then
+ raise
+ (TypeCheckerFailure ("Non positive occurence in " ^
+ U.string_of_uri uri))
+ else
+ ugraph'
+ ) ugraph cl in
+ (i + 1),ugraph''
+ ) itl (1,ugraph)
+ in
+ ugraph2
(* Main function to checks the correctness of a mutual *)
(* inductive block definition. *)
-and check_mutual_inductive_defs uri =
- function
- Cic.InductiveDefinition (itl, params, indparamsno) ->
- typecheck_mutual_inductive_defs uri (itl,params,indparamsno)
- | _ ->
- raise (TypeCheckerFailure ("Unknown mutual inductive definition:" ^
- UriManager.string_of_uri uri))
+and check_mutual_inductive_defs uri obj ugraph =
+ match obj with
+ Cic.InductiveDefinition (itl, params, indparamsno) ->
+ typecheck_mutual_inductive_defs uri (itl,params,indparamsno) ugraph
+ | _ ->
+ raise (TypeCheckerFailure (
+ "Unknown mutual inductive definition:" ^
+ UriManager.string_of_uri uri))
-and type_of_mutual_inductive_defs uri i =
+and type_of_mutual_inductive_defs ~logger uri i ugraph =
let module C = Cic in
let module R = CicReduction in
let module U = UriManager in
- let cobj =
- match CicEnvironment.is_type_checked ~trust:true uri with
- CicEnvironment.CheckedObj cobj -> cobj
- | CicEnvironment.UncheckedObj uobj ->
- CicLogger.log (`Start_type_checking uri) ;
- check_mutual_inductive_defs uri uobj ;
- CicEnvironment.set_type_checking_info uri ;
- CicLogger.log (`Type_checking_completed uri) ;
- (match CicEnvironment.is_type_checked ~trust:false uri with
- CicEnvironment.CheckedObj cobj -> cobj
- | CicEnvironment.UncheckedObj _ -> raise CicEnvironmentError
- )
+ let cobj,ugraph1 =
+ match CicEnvironment.is_type_checked ~trust:true uri ugraph with
+ CicEnvironment.CheckedObj (cobj,ugraph') -> cobj,ugraph'
+ | CicEnvironment.UncheckedObj uobj ->
+ 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 uri ugraph with
+ CicEnvironment.CheckedObj (cobj,ugraph') -> (cobj,ugraph')
+ | CicEnvironment.UncheckedObj _ -> raise CicEnvironmentError
+ )
+ with
+ Invalid_argument s ->
+ (*prerr_endline s;*)
+ uobj,ugraph1_dust
in
- match cobj with
- C.InductiveDefinition (dl,_,_) ->
- let (_,_,arity,_) = List.nth dl i in
- arity
- | _ ->
- raise (TypeCheckerFailure ("Unknown mutual inductive definition:" ^
- U.string_of_uri uri))
-
-and type_of_mutual_inductive_constr uri i j =
+ match cobj with
+ C.InductiveDefinition (dl,_,_) ->
+ let (_,_,arity,_) = List.nth dl i in
+ arity,ugraph1
+ | _ ->
+ raise (TypeCheckerFailure ("Unknown mutual inductive definition:" ^
+ U.string_of_uri uri))
+
+and type_of_mutual_inductive_constr ~logger uri i j ugraph =
let module C = Cic in
let module R = CicReduction in
let module U = UriManager in
- let cobj =
- match CicEnvironment.is_type_checked ~trust:true uri with
- CicEnvironment.CheckedObj cobj -> cobj
- | CicEnvironment.UncheckedObj uobj ->
- CicLogger.log (`Start_type_checking uri) ;
- check_mutual_inductive_defs uri uobj ;
- CicEnvironment.set_type_checking_info uri ;
- CicLogger.log (`Type_checking_completed uri) ;
- (match CicEnvironment.is_type_checked ~trust:false uri with
- CicEnvironment.CheckedObj cobj -> cobj
- | CicEnvironment.UncheckedObj _ -> raise CicEnvironmentError
- )
+ let cobj,ugraph1 =
+ match CicEnvironment.is_type_checked ~trust:true uri ugraph with
+ CicEnvironment.CheckedObj (cobj,ugraph') -> cobj,ugraph'
+ | CicEnvironment.UncheckedObj uobj ->
+ logger#log (`Start_type_checking uri) ;
+ let ugraph1_dust =
+ 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 uri ugraph with
+ CicEnvironment.CheckedObj (cobj,ugraph') -> cobj,ugraph'
+ | CicEnvironment.UncheckedObj _ ->
+ raise CicEnvironmentError)
+ with
+ Invalid_argument s ->
+ (*prerr_endline s;*)
+ uobj,ugraph1_dust
in
- match cobj with
- C.InductiveDefinition (dl,_,_) ->
- let (_,_,_,cl) = List.nth dl i in
- let (_,ty) = List.nth cl (j-1) in
- ty
- | _ ->
- raise (TypeCheckerFailure ("Unknown mutual inductive definition:" ^
- UriManager.string_of_uri uri))
+ match cobj with
+ C.InductiveDefinition (dl,_,_) ->
+ let (_,_,_,cl) = List.nth dl i in
+ let (_,ty) = List.nth cl (j-1) in
+ ty,ugraph1
+ | _ ->
+ raise (TypeCheckerFailure ("Unknown mutual inductive definition:" ^
+ UriManager.string_of_uri uri))
and recursive_args context n nn te =
let module C = Cic in
| C.Fix _
| C.CoFix _ -> raise (AssertFailure "6") (* due to type-checking *)
-and get_new_safes context p c rl safes n nn x =
+and get_new_safes ?(subst = []) context p c rl safes n nn x =
let module C = Cic in
let module U = UriManager in
let module R = CicReduction in
- match (R.whd context c, R.whd context p, rl) with
+ 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'' =
if b then 1::safes' else safes'
in
- get_new_safes ((Some (name,(C.Decl so)))::context)
+ 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), _)
(Printf.sprintf "Get New Safes: c=%s ; p=%s"
(CicPp.ppterm c) (CicPp.ppterm p)))
-and split_prods context n te =
+and split_prods ?(subst = []) context n te =
let module C = Cic in
let module R = CicReduction in
match (n, R.whd context te) with
(0, _) -> context,te
| (n, C.Prod (name,so,ta)) when n > 0 ->
- split_prods ((Some (name,(C.Decl so)))::context) (n - 1) ta
+ split_prods ~subst ((Some (name,(C.Decl so)))::context) (n - 1) ta
| (_, _) -> raise (AssertFailure "8")
-and eat_lambdas context n te =
+and eat_lambdas ?(subst = []) context n te =
let module C = Cic in
let module R = CicReduction in
- match (n, R.whd context te) with
+ match (n, R.whd ~subst context te) with
(0, _) -> (te, 0, context)
| (n, C.Lambda (name,so,ta)) when n > 0 ->
let (te, k, context') =
- eat_lambdas ((Some (name,(C.Decl so)))::context) (n - 1) ta
+ eat_lambdas ~subst ((Some (name,(C.Decl so)))::context) (n - 1) ta
in
(te, k + 1, context')
| (n, te) ->
raise (AssertFailure (sprintf "9 (%d, %s)" n (CicPp.ppterm te)))
-(*CSC: Tutto quello che segue e' l'intuzione di luca ;-) *)
-and check_is_really_smaller_arg context n nn kl x safes 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 *)
let module C = Cic in
| C.Implicit _
| C.Cast _
(* | C.Cast (te,ty) ->
- check_is_really_smaller_arg n nn kl x safes te &&
- check_is_really_smaller_arg n nn kl x safes 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 n nn kl x safes so &&
- check_is_really_smaller_arg (n+1) (nn+1) kl (x+1)
+ 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 "10")
| C.Lambda (name,so,ta) ->
- check_is_really_smaller_arg context n nn kl x safes so &&
- check_is_really_smaller_arg ((Some (name,(C.Decl so)))::context)
+ 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,ta) ->
- check_is_really_smaller_arg context n nn kl x safes so &&
- check_is_really_smaller_arg ((Some (name,(C.Def (so,None))))::context)
+ check_is_really_smaller_arg ~subst context n nn kl x safes so &&
+ check_is_really_smaller_arg ~subst ((Some (name,(C.Def (so,None))))::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 context n nn kl x safes he
+ check_is_really_smaller_arg ~subst context n nn kl x safes he
| C.Appl [] -> raise (AssertFailure "11")
| C.Const _
| C.MutInd _ -> raise (AssertFailure "12")
(match term with
C.Rel m when List.mem m safes || m = x ->
let (tys,len,isinductive,paramsno,cl) =
- match CicEnvironment.get_obj uri with
+ let o,_ = CicEnvironment.get_obj uri CicUniv.empty_ugraph in
+ match o with
C.InductiveDefinition (tl,_,paramsno) ->
let tys =
List.map
let cl' =
List.map
(fun (id,ty) ->
- (id, snd (split_prods tys paramsno ty))) cl
+ (id, snd (split_prods ~subst tys paramsno ty))) cl
in
(tys,List.length tl,isinductive,paramsno,cl')
| _ ->
if not isinductive then
List.fold_right
(fun p i ->
- i && check_is_really_smaller_arg context n nn kl x safes p)
+ i && check_is_really_smaller_arg ~subst context n nn kl x safes p)
pl true
else
List.fold_right
recursive_args tys 0 len debrujinedte
in
let (e,safes',n',nn',x',context') =
- get_new_safes context p c rl' safes n nn x
+ get_new_safes ~subst context p c rl' safes n nn x
in
i &&
- check_is_really_smaller_arg context' n' nn' kl x' safes' e
+ check_is_really_smaller_arg ~subst context' n' nn' kl x' safes' e
) (List.combine pl cl) true
| C.Appl ((C.Rel m)::tl) when List.mem m safes || m = x ->
let (tys,len,isinductive,paramsno,cl) =
- match CicEnvironment.get_obj uri with
+ let o,_ = CicEnvironment.get_obj uri CicUniv.empty_ugraph in
+ match o with
C.InductiveDefinition (tl,_,paramsno) ->
let (_,isinductive,_,cl) = List.nth tl i in
let tys =
let cl' =
List.map
(fun (id,ty) ->
- (id, snd (split_prods tys paramsno ty))) cl
+ (id, snd (split_prods ~subst tys paramsno ty))) cl
in
(tys,List.length tl,isinductive,paramsno,cl')
| _ ->
if not isinductive then
List.fold_right
(fun p i ->
- i && check_is_really_smaller_arg context n nn kl x safes p)
+ i && check_is_really_smaller_arg ~subst context n nn kl x safes p)
pl true
else
(*CSC: supponiamo come prima che nessun controllo sia necessario*)
get_new_safes context p c rl' safes n nn x
in
i &&
- check_is_really_smaller_arg context' n' nn' kl x' safes' e
+ check_is_really_smaller_arg ~subst context' n' nn' kl x' safes' e
) (List.combine pl cl) true
| _ ->
List.fold_right
(fun p i ->
- i && check_is_really_smaller_arg context n nn kl x safes p
+ i && check_is_really_smaller_arg ~subst context n nn kl x safes p
) pl true
)
| C.Fix (_, fl) ->
List.fold_right
(fun (_,_,ty,bo) i ->
i &&
- check_is_really_smaller_arg (tys@context) n_plus_len nn_plus_len kl
+ 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) ->
List.fold_right
(fun (_,ty,bo) i ->
i &&
- check_is_really_smaller_arg (tys@context) n_plus_len nn_plus_len kl
+ check_is_really_smaller_arg ~subst (tys@context) n_plus_len nn_plus_len kl
x_plus_len safes' bo
) fl true
-and guarded_by_destructors context n nn kl x safes =
+and guarded_by_destructors ?(subst = []) context n nn kl x safes =
let module C = Cic in
let module U = UriManager in
function
| Some (_,C.Def (bo,_)) ->
guarded_by_destructors context m nn kl x safes
(CicSubstitution.lift m bo)
- | None -> raise (TypeCheckerFailure "Reference to deleted hypothesis")
+ | None -> raise (TypeCheckerFailure "Reference to deleted hypothesis")
)
| C.Meta _
| C.Sort _
(fun param i ->
i && guarded_by_destructors context n nn kl x safes param
) tl true &&
- check_is_really_smaller_arg context n nn kl x safes (List.nth tl k)
+ check_is_really_smaller_arg ~subst context n nn kl x safes (List.nth tl k)
| C.Appl tl ->
List.fold_right
(fun t i -> i && guarded_by_destructors context n nn kl x safes t)
(match term with
C.Rel m when List.mem m safes || m = x ->
let (tys,len,isinductive,paramsno,cl) =
- match CicEnvironment.get_obj uri with
+ let o,_ = CicEnvironment.get_obj uri CicUniv.empty_ugraph in
+ match o with
C.InductiveDefinition (tl,_,paramsno) ->
let len = List.length tl in
let (_,isinductive,_,cl) = List.nth tl i in
List.map
(fun (id,ty) ->
let debrujinedty = debrujin_constructor uri len ty in
- (id, snd (split_prods tys paramsno ty),
- snd (split_prods tys paramsno debrujinedty)
+ (id, snd (split_prods ~subst tys paramsno ty),
+ snd (split_prods ~subst tys paramsno debrujinedty)
)) cl
in
(tys,len,isinductive,paramsno,cl')
) (List.combine pl cl) true
| C.Appl ((C.Rel m)::tl) when List.mem m safes || m = x ->
let (tys,len,isinductive,paramsno,cl) =
- match CicEnvironment.get_obj uri with
+ let o,_ = CicEnvironment.get_obj uri CicUniv.empty_ugraph in
+ match o with
C.InductiveDefinition (tl,_,paramsno) ->
let (_,isinductive,_,cl) = List.nth tl i in
let tys =
let cl' =
List.map
(fun (id,ty) ->
- (id, snd (split_prods tys paramsno ty))) cl
+ (id, snd (split_prods ~subst tys paramsno ty))) cl
in
(tys,List.length tl,isinductive,paramsno,cl')
| _ ->
List.fold_right (fun x i -> i && does_not_occur context n nn x) tl true
| C.Appl ((C.MutConstruct (uri,i,j,exp_named_subst))::tl) ->
let consty =
- match CicEnvironment.get_cooked_obj ~trust:false uri with
+ let obj,_ =
+ try
+ CicEnvironment.get_cooked_obj ~trust:false uri CicUniv.empty_ugraph
+ with Not_found -> assert false
+ in
+ match obj with
C.InductiveDefinition (itl,_,_) ->
let (_,_,_,cl) = List.nth itl i in
let (_,cons) = List.nth cl (j - 1) in
args coInductiveTypeURI
) fl true
-and check_allowed_sort_elimination context uri i need_dummy ind arity1 arity2 =
+and check_allowed_sort_elimination ~logger context uri i need_dummy ind
+ arity1 arity2 ugraph =
let module C = Cic in
let module U = UriManager in
match (CicReduction.whd context arity1, CicReduction.whd context arity2) with
- (C.Prod (_,so1,de1), C.Prod (_,so2,de2))
- when CicReduction.are_convertible context so1 so2 ->
- check_allowed_sort_elimination context uri i need_dummy
- (C.Appl [CicSubstitution.lift 1 ind ; C.Rel 1]) de1 de2
- | (C.Sort C.Prop, C.Sort C.Prop) when need_dummy -> true
+ (C.Prod (_,so1,de1), C.Prod (_,so2,de2)) ->
+ let b,ugraph1 = CicReduction.are_convertible context so1 so2 ugraph in
+ if b then
+ check_allowed_sort_elimination ~logger context uri i need_dummy
+ (C.Appl [CicSubstitution.lift 1 ind ; C.Rel 1]) de1 de2 ugraph1
+ else
+ false,ugraph1
+ | (C.Sort C.Prop, C.Sort C.Prop) when need_dummy -> true,ugraph
| (C.Sort C.Prop, C.Sort C.Set)
| (C.Sort C.Prop, C.Sort C.CProp)
- | (C.Sort C.Prop, C.Sort C.Type) when need_dummy ->
+ | (C.Sort C.Prop, C.Sort (C.Type _) ) when need_dummy ->
+ (* TASSI: da verificare *)
(*CSC: WRONG. MISSING CONDITIONS ON THE ARGUMENTS OF THE CONSTRUTOR *)
- (match CicEnvironment.get_obj uri with
- C.InductiveDefinition (itl,_,_) ->
- let (_,_,_,cl) = List.nth itl i in
- (* is a singleton definition or the empty proposition? *)
- List.length cl = 1 || List.length cl = 0
+ (let o,_ = CicEnvironment.get_obj uri CicUniv.empty_ugraph in
+ match o with
+ C.InductiveDefinition (itl,_,_) ->
+ let (_,_,_,cl) = List.nth itl i in
+ (* is a singleton definition or the empty proposition? *)
+ (List.length cl = 1 || List.length cl = 0) , ugraph
| _ ->
- raise (TypeCheckerFailure ("Unknown mutual inductive definition:" ^
- UriManager.string_of_uri uri))
+ raise (TypeCheckerFailure
+ ("Unknown mutual inductive definition:" ^
+ UriManager.string_of_uri uri))
)
- | (C.Sort C.Set, C.Sort C.Prop) when need_dummy -> true
- | (C.Sort C.CProp, C.Sort C.Prop) when need_dummy -> true
- | (C.Sort C.Set, C.Sort C.Set) when need_dummy -> true
- | (C.Sort C.Set, C.Sort C.CProp) when need_dummy -> true
- | (C.Sort C.CProp, C.Sort C.Set) when need_dummy -> true
- | (C.Sort C.CProp, C.Sort C.CProp) when need_dummy -> true
- | ((C.Sort C.Set, C.Sort C.Type) | (C.Sort C.CProp, C.Sort C.Type))
+ | (C.Sort C.Set, C.Sort C.Prop) when need_dummy -> true , ugraph
+ | (C.Sort C.CProp, C.Sort C.Prop) when need_dummy -> true , ugraph
+ | (C.Sort C.Set, C.Sort C.Set) when need_dummy -> true , ugraph
+ | (C.Sort C.Set, C.Sort C.CProp) when need_dummy -> true , ugraph
+ | (C.Sort C.CProp, C.Sort C.Set) when need_dummy -> true , ugraph
+ | (C.Sort C.CProp, C.Sort C.CProp) when need_dummy -> true , ugraph
+ | ((C.Sort C.Set, C.Sort (C.Type _)) | (C.Sort C.CProp, C.Sort (C.Type _)))
+ (* TASSI: da verificare *)
when need_dummy ->
- (match CicEnvironment.get_obj uri with
+ (let o,_ = CicEnvironment.get_obj uri CicUniv.empty_ugraph in
+ match o with
C.InductiveDefinition (itl,_,paramsno) ->
let tys =
List.map (fun (n,_,ty,_) -> Some (Cic.Name n,(Cic.Decl ty))) itl
in
let (_,_,_,cl) = List.nth itl i in
- List.fold_right
- (fun (_,x) i -> i && is_small tys paramsno x) cl true
- | _ ->
+ (List.fold_right
+ (fun (_,x) (i,ugraph) ->
+ if i then
+ is_small ~logger tys paramsno x ugraph
+ else
+ false,ugraph
+ ) cl (true,ugraph))
+ | _ ->
raise (TypeCheckerFailure ("Unknown mutual inductive definition:" ^
UriManager.string_of_uri uri))
)
- | (C.Sort C.Type, C.Sort _) when need_dummy -> true
+ | (C.Sort (C.Type _), C.Sort _) when need_dummy -> true , ugraph
+ (* TASSI: da verificare *)
| (C.Sort C.Prop, C.Prod (name,so,ta)) when not need_dummy ->
- let res = CicReduction.are_convertible context so ind
- in
- res &&
- (match CicReduction.whd ((Some (name,(C.Decl so)))::context) ta with
- C.Sort C.Prop -> true
- | (C.Sort C.Set | C.Sort C.CProp) ->
- (match CicEnvironment.get_obj uri with
- C.InductiveDefinition (itl,_,_) ->
- let (_,_,_,cl) = List.nth itl i in
+ let b,ugraph1 = CicReduction.are_convertible context so ind ugraph in
+ if not b then
+ false,ugraph1
+ else
+ (match CicReduction.whd ((Some (name,(C.Decl so)))::context) ta with
+ C.Sort C.Prop -> true,ugraph1
+ | (C.Sort C.Set | C.Sort C.CProp) ->
+ (let o,_ = CicEnvironment.get_obj uri CicUniv.empty_ugraph in
+ match o with
+ C.InductiveDefinition (itl,_,_) ->
+ let (_,_,_,cl) = List.nth itl i in
(* is a singleton definition? *)
- List.length cl = 1
- | _ ->
- raise (TypeCheckerFailure
- ("Unknown mutual inductive definition:" ^
- UriManager.string_of_uri uri))
+ List.length cl = 1,ugraph1
+ | _ ->
+ raise (TypeCheckerFailure
+ ("Unknown mutual inductive definition:" ^
+ UriManager.string_of_uri uri))
)
- | _ -> false
- )
- | ((C.Sort C.Set, C.Prod (name,so,ta)) | (C.Sort C.CProp, C.Prod (name,so,ta)))
- when not need_dummy ->
- let res = CicReduction.are_convertible context so ind
- in
- res &&
- (match CicReduction.whd ((Some (name,(C.Decl so)))::context) ta with
- C.Sort C.Prop
- | C.Sort C.Set -> true
- | C.Sort C.CProp -> true
- | C.Sort C.Type ->
- (match CicEnvironment.get_obj uri with
- C.InductiveDefinition (itl,_,paramsno) ->
- let (_,_,_,cl) = List.nth itl i in
- let tys =
- List.map
+ | _ -> false,ugraph1
+ )
+ | ((C.Sort C.Set, C.Prod (name,so,ta))
+ | (C.Sort C.CProp, C.Prod (name,so,ta)))
+ when not need_dummy ->
+ let b,ugraph1 = CicReduction.are_convertible context so ind ugraph in
+ if not b then
+ false,ugraph1
+ else
+ (match CicReduction.whd ((Some (name,(C.Decl so)))::context) ta with
+ C.Sort C.Prop
+ | C.Sort C.Set -> true,ugraph1
+ | C.Sort C.CProp -> true,ugraph1
+ | C.Sort (C.Type _) ->
+ (* TASSI: da verificare *)
+ (let o,_ = CicEnvironment.get_obj uri CicUniv.empty_ugraph in
+ match o with
+ C.InductiveDefinition (itl,_,paramsno) ->
+ let (_,_,_,cl) = List.nth itl i in
+ let tys =
+ List.map
(fun (n,_,ty,_) -> Some (Cic.Name n,(Cic.Decl ty))) itl
- in
- List.fold_right
- (fun (_,x) i -> i && is_small tys paramsno x) cl true
- | _ ->
- raise (TypeCheckerFailure
- ("Unknown mutual inductive definition:" ^
- UriManager.string_of_uri uri))
+ in
+ (List.fold_right
+ (fun (_,x) (i,ugraph) ->
+ if i then
+ is_small ~logger tys paramsno x ugraph
+ else
+ false,ugraph
+ ) cl (true,ugraph1))
+ | _ ->
+ raise (TypeCheckerFailure
+ ("Unknown mutual inductive definition:" ^
+ UriManager.string_of_uri uri))
)
- | _ -> raise (AssertFailure "19")
- )
- | (C.Sort C.Type, C.Prod (_,so,_)) when not need_dummy ->
- CicReduction.are_convertible context so ind
- | (_,_) -> false
-
+ | _ -> raise (AssertFailure "19")
+ )
+ | (C.Sort (C.Type _), C.Prod (_,so,_)) when not need_dummy ->
+ (* TASSI: da verificare *)
+ CicReduction.are_convertible context so ind ugraph
+ | (_,_) -> false,ugraph
+
and type_of_branch context argsno need_dummy outtype term constype =
let module C = Cic in
let module R = CicReduction in
metavariable is consitent - up to relocation via the relocation list l -
with the actual context *)
-and check_metasenv_consistency metasenv context canonical_context l =
+
+and check_metasenv_consistency ~logger ?(subst=[]) metasenv context
+ canonical_context l ugraph
+=
let module C = Cic in
let module R = CicReduction in
let module S = CicSubstitution in
- let lifted_canonical_context =
+ let lifted_canonical_context =
let rec aux i =
function
- [] -> []
- | (Some (n,C.Decl t))::tl ->
- (Some (n,C.Decl (S.lift_meta l (S.lift i t))))::(aux (i+1) tl)
- | (Some (n,C.Def (t,None)))::tl ->
- (Some (n,C.Def ((S.lift_meta l (S.lift i t)),None)))::(aux (i+1) tl)
- | None::tl -> None::(aux (i+1) tl)
- | (Some (n,C.Def (t,Some ty)))::tl ->
- (Some (n,C.Def ((S.lift_meta l (S.lift i t)),Some (S.lift_meta l (S.lift i ty)))))::(aux (i+1) tl)
+ [] -> []
+ | (Some (n,C.Decl t))::tl ->
+ (Some (n,C.Decl (S.lift_meta l (S.lift i t))))::(aux (i+1) tl)
+ | (Some (n,C.Def (t,None)))::tl ->
+ (Some (n,C.Def ((S.lift_meta l (S.lift i t)),None)))::(aux (i+1) tl)
+ | None::tl -> None::(aux (i+1) tl)
+ | (Some (n,C.Def (t,Some ty)))::tl ->
+ (Some (n,C.Def ((S.lift_meta l (S.lift i t)),Some (S.lift_meta l (S.lift i ty)))))::(aux (i+1) tl)
in
aux 1 canonical_context
in
- List.iter2
- (fun t ct ->
- match (t,ct) with
- | _,None -> ()
- | Some t,Some (_,C.Def (ct,_)) ->
- if not (R.are_convertible context t ct) then
- raise (TypeCheckerFailure (sprintf
- "Not well typed metavariable local context: expected a term convertible with %s, found %s"
- (CicPp.ppterm ct) (CicPp.ppterm t)))
- | Some t,Some (_,C.Decl ct) ->
- let type_t = type_of_aux' metasenv context t in
- if not (R.are_convertible context type_t ct) then
- raise (TypeCheckerFailure (sprintf
- "Not well typed metavariable local context: expected a term of type %s, found %s of type %s"
- (CicPp.ppterm ct) (CicPp.ppterm t) (CicPp.ppterm type_t)))
- | None, _ ->
- raise (TypeCheckerFailure
- "Not well typed metavariable local context: an hypothesis, that is not hidden, is not instantiated")
- ) l lifted_canonical_context
+ List.fold_left2
+ (fun ugraph t ct ->
+ match (t,ct) with
+ | _,None -> ugraph
+ | Some t,Some (_,C.Def (ct,_)) ->
+ let b,ugraph1 =
+ R.are_convertible ~subst ~metasenv context t ct ugraph
+ in
+ if not b then
+ raise
+ (TypeCheckerFailure
+ (sprintf "Not well typed metavariable local context: expected a term convertible with %s, found %s" (CicPp.ppterm ct) (CicPp.ppterm t)))
+ else
+ ugraph1
+ | Some t,Some (_,C.Decl ct) ->
+ let type_t,ugraph1 =
+ type_of_aux' ~logger ~subst metasenv context t ugraph
+ in
+ let b,ugraph2 =
+ R.are_convertible ~subst ~metasenv context type_t ct ugraph1
+ in
+ if not b then
+ raise (TypeCheckerFailure
+ (sprintf "Not well typed metavariable local context: expected a term of type %s, found %s of type %s"
+ (CicPp.ppterm ct) (CicPp.ppterm t)
+ (CicPp.ppterm type_t)))
+ else
+ ugraph2
+ | None, _ ->
+ raise (TypeCheckerFailure
+ ("Not well typed metavariable local context: "^
+ "an hypothesis, that is not hidden, is not instantiated"))
+ ) ugraph l lifted_canonical_context
+
+
+(*
+ type_of_aux' is just another name (with a different scope)
+ for type_of_aux
+*)
-(* type_of_aux' is just another name (with a different scope) for type_of_aux *)
-and type_of_aux' metasenv context t =
- let rec type_of_aux context =
+and type_of_aux' ~logger ?(subst = []) metasenv context t ugraph =
+ let rec type_of_aux ~logger context t ugraph =
let module C = Cic in
let module R = CicReduction in
let module S = CicSubstitution in
let module U = UriManager in
- function
+ match t with
C.Rel n ->
(try
match List.nth context (n - 1) with
- Some (_,C.Decl t) -> S.lift n t
- | Some (_,C.Def (_,Some ty)) -> S.lift n ty
+ Some (_,C.Decl t) -> S.lift n t,ugraph
+ | Some (_,C.Def (_,Some ty)) -> S.lift n ty,ugraph
| Some (_,C.Def (bo,None)) ->
debug_print "##### CASO DA INVESTIGARE E CAPIRE" ;
- type_of_aux context (S.lift n bo)
- | None -> raise (TypeCheckerFailure "Reference to deleted hypothesis")
+ type_of_aux ~logger context (S.lift n bo) ugraph
+ | None -> raise
+ (TypeCheckerFailure "Reference to deleted hypothesis")
with
_ ->
raise (TypeCheckerFailure "unbound variable")
)
| C.Var (uri,exp_named_subst) ->
incr fdebug ;
- check_exp_named_subst context exp_named_subst ;
- let ty =
- CicSubstitution.subst_vars exp_named_subst (type_of_variable uri)
- in
- decr fdebug ;
- ty
+ let ugraph1 =
+ check_exp_named_subst ~logger ~subst context exp_named_subst ugraph
+ in
+ let ty,ugraph2 = type_of_variable ~logger uri ugraph1 in
+ let ty1 = CicSubstitution.subst_vars exp_named_subst ty in
+ decr fdebug ;
+ ty1,ugraph2
| C.Meta (n,l) ->
- let (_,canonical_context,ty) = CicUtil.lookup_meta n metasenv in
- check_metasenv_consistency metasenv context canonical_context l;
- CicSubstitution.lift_meta l ty
- | C.Sort s -> C.Sort C.Type (*CSC manca la gestione degli universi!!! *)
+ (try
+ let (canonical_context,term,ty) = CicUtil.lookup_subst n subst in
+ let ugraph1 =
+ check_metasenv_consistency ~logger
+ ~subst metasenv context canonical_context l ugraph
+ in
+ (* assuming subst is well typed !!!!! *)
+ ((CicSubstitution.lift_meta l ty), ugraph1)
+ (* type_of_aux context (CicSubstitution.lift_meta l term) *)
+ with CicUtil.Subst_not_found _ ->
+ let (_,canonical_context,ty) = CicUtil.lookup_meta n metasenv in
+ let ugraph1 =
+ check_metasenv_consistency ~logger
+ ~subst metasenv context canonical_context l ugraph
+ in
+ ((CicSubstitution.lift_meta l ty),ugraph1))
+ (* TASSI: CONSTRAINTS *)
+ | C.Sort (C.Type t) ->
+ let t' = CicUniv.fresh() in
+ let ugraph1 = CicUniv.add_gt t' t ugraph in
+ (C.Sort (C.Type t')),ugraph1
+ (* TASSI: CONSTRAINTS *)
+ | C.Sort s -> (C.Sort (C.Type (CicUniv.fresh ()))),ugraph
| C.Implicit _ -> raise (AssertFailure "21")
| C.Cast (te,ty) as t ->
- let _ = type_of_aux context ty in
- if R.are_convertible context (type_of_aux context te) ty then
- ty
- else
- raise (TypeCheckerFailure
- (sprintf "Invalid cast %s" (CicPp.ppterm t)))
+ let _,ugraph1 = type_of_aux ~logger context ty ugraph in
+ let ty_te,ugraph2 = type_of_aux ~logger context te ugraph1 in
+ let b,ugraph3 =
+ R.are_convertible ~subst ~metasenv context ty_te ty ugraph2
+ in
+ if b then
+ ty,ugraph3
+ else
+ raise (TypeCheckerFailure
+ (sprintf "Invalid cast %s" (CicPp.ppterm t)))
| C.Prod (name,s,t) ->
- let sort1 = type_of_aux context s
- and sort2 = type_of_aux ((Some (name,(C.Decl s)))::context) t in
- sort_of_prod context (name,s) (sort1,sort2)
+ let sort1,ugraph1 = type_of_aux ~logger context s ugraph in
+ let sort2,ugraph2 =
+ type_of_aux ~logger ((Some (name,(C.Decl s)))::context) t ugraph1
+ in
+ sort_of_prod ~subst context (name,s) (sort1,sort2) ugraph2
| C.Lambda (n,s,t) ->
- let sort1 = type_of_aux context s in
- (match R.whd context sort1 with
+ let sort1,ugraph1 = type_of_aux ~logger context s ugraph in
+ (match R.whd ~subst context sort1 with
C.Meta _
| C.Sort _ -> ()
| _ ->
raise
(TypeCheckerFailure (sprintf
- "Not well-typed lambda-abstraction: the source %s should be a
- type; instead it is a term of type %s" (CicPp.ppterm s)
+ "Not well-typed lambda-abstraction: the source %s should be a type; instead it is a term of type %s" (CicPp.ppterm s)
(CicPp.ppterm sort1)))
) ;
- let type2 = type_of_aux ((Some (n,(C.Decl s)))::context) t in
- C.Prod (n,s,type2)
+ let type2,ugraph2 =
+ type_of_aux ~logger ((Some (n,(C.Decl s)))::context) t ugraph1
+ in
+ (C.Prod (n,s,type2)),ugraph2
| C.LetIn (n,s,t) ->
(* only to check if s is well-typed *)
- let ty = type_of_aux context s in
+ let ty,ugraph1 = type_of_aux ~logger context s ugraph in
(* The type of a LetIn is a LetIn. Extremely slow since the computed
LetIn is later reduced and maybe also re-checked.
(C.LetIn (n,s, type_of_aux ((Some (n,(C.Def s)))::context) t))
*)
(* One-step LetIn reduction. Even faster than the previous solution.
Moreover the inferred type is closer to the expected one. *)
- (CicSubstitution.subst s
- (type_of_aux ((Some (n,(C.Def (s,Some ty))))::context) t))
+ let ty1,ugraph2 =
+ type_of_aux ~logger
+ ((Some (n,(C.Def (s,Some ty))))::context) t ugraph1
+ in
+ (CicSubstitution.subst s ty1),ugraph2
| C.Appl (he::tl) when List.length tl > 0 ->
- let hetype = type_of_aux context he
- and tlbody_and_type = List.map (fun x -> (x, type_of_aux context x)) tl in
- eat_prods context hetype tlbody_and_type
+ let hetype,ugraph1 = type_of_aux ~logger context he ugraph in
+ let tlbody_and_type,ugraph2 =
+ List.fold_right (
+ fun x (l,ugraph) ->
+ let ty,ugraph1 = type_of_aux ~logger context x ugraph in
+ let _,ugraph1 = type_of_aux ~logger context ty ugraph1 in
+ ((x,ty)::l,ugraph1))
+ tl ([],ugraph1)
+ in
+ (* TASSI: questa c'era nel mio... ma non nel CVS... *)
+ (* let _,ugraph2 = type_of_aux context hetype ugraph2 in *)
+ eat_prods ~subst context hetype tlbody_and_type ugraph2
| C.Appl _ -> raise (AssertFailure "Appl: no arguments")
| C.Const (uri,exp_named_subst) ->
- incr fdebug ;
- check_exp_named_subst context exp_named_subst ;
- let cty =
- CicSubstitution.subst_vars exp_named_subst (type_of_constant uri)
- in
- decr fdebug ;
- cty
+ incr fdebug ;
+ let ugraph1 =
+ check_exp_named_subst ~logger ~subst context exp_named_subst ugraph
+ in
+ let cty,ugraph2 = type_of_constant ~logger uri ugraph1 in
+ let cty1 =
+ CicSubstitution.subst_vars exp_named_subst cty
+ in
+ decr fdebug ;
+ cty1,ugraph2
| C.MutInd (uri,i,exp_named_subst) ->
incr fdebug ;
- check_exp_named_subst context exp_named_subst ;
- let cty =
- CicSubstitution.subst_vars exp_named_subst
- (type_of_mutual_inductive_defs uri i)
- in
- decr fdebug ;
- cty
+ let ugraph1 =
+ check_exp_named_subst ~logger ~subst context exp_named_subst ugraph
+ in
+ (* TASSI: da me c'era anche questa, ma in CVS no *)
+ let mty,ugraph2 = type_of_mutual_inductive_defs ~logger uri i ugraph1 in
+ (* fine parte dubbia *)
+ let cty =
+ CicSubstitution.subst_vars exp_named_subst mty
+ in
+ decr fdebug ;
+ cty,ugraph2
| C.MutConstruct (uri,i,j,exp_named_subst) ->
- check_exp_named_subst context exp_named_subst ;
- let cty =
- CicSubstitution.subst_vars exp_named_subst
- (type_of_mutual_inductive_constr uri i j)
- in
- cty
+ let ugraph1 =
+ check_exp_named_subst ~logger ~subst context exp_named_subst ugraph
+ in
+ (* TASSI: idem come sopra *)
+ let mty,ugraph2 =
+ type_of_mutual_inductive_constr ~logger uri i j ugraph1
+ in
+ let cty =
+ CicSubstitution.subst_vars exp_named_subst mty
+ in
+ cty,ugraph2
| C.MutCase (uri,i,outtype,term,pl) ->
- let outsort = type_of_aux context outtype in
+ let outsort,ugraph1 = type_of_aux ~logger context outtype ugraph in
let (need_dummy, k) =
- let rec guess_args context t =
- let outtype = CicReduction.whd context t in
- match outtype with
- C.Sort _ -> (true, 0)
- | C.Prod (name, s, t) ->
- let (b, n) = guess_args ((Some (name,(C.Decl s)))::context) t in
- if n = 0 then
- (* last prod before sort *)
- match CicReduction.whd context s with
+ let rec guess_args context t =
+ let outtype = CicReduction.whd ~subst context t in
+ match outtype with
+ C.Sort _ -> (true, 0)
+ | C.Prod (name, s, t) ->
+ let (b, n) =
+ guess_args ((Some (name,(C.Decl s)))::context) t in
+ if n = 0 then
+ (* last prod before sort *)
+ match CicReduction.whd ~subst context s with
(*CSC: for _ see comment below about the missing named_exp_subst ?????????? *)
- C.MutInd (uri',i',_) when U.eq uri' uri && i' = i ->
- (false, 1)
+ C.MutInd (uri',i',_) when U.eq uri' uri && i' = i ->
+ (false, 1)
(*CSC: for _ see comment below about the missing named_exp_subst ?????????? *)
- | C.Appl ((C.MutInd (uri',i',_)) :: _)
- when U.eq uri' uri && i' = i -> (false, 1)
- | _ -> (true, 1)
- else
- (b, n + 1)
- | _ ->
- raise (TypeCheckerFailure (sprintf
- "Malformed case analasys' output type %s" (CicPp.ppterm outtype)))
- in
- (*CSC whd non serve dopo type_of_aux ? *)
- let (b, k) = guess_args context outsort in
- if not b then (b, k - 1) else (b, k)
+ | C.Appl ((C.MutInd (uri',i',_)) :: _)
+ when U.eq uri' uri && i' = i -> (false, 1)
+ | _ -> (true, 1)
+ else
+ (b, n + 1)
+ | _ ->
+ raise
+ (TypeCheckerFailure
+ (sprintf
+ "Malformed case analasys' output type %s"
+ (CicPp.ppterm outtype)))
in
- let (parameters, arguments, exp_named_subst) =
- match R.whd context (type_of_aux context term) with
+(*
+ let (parameters, arguments, exp_named_subst),ugraph2 =
+ let ty,ugraph2 = type_of_aux context term ugraph1 in
+ match R.whd context ty with
(*CSC manca il caso dei CAST *)
(*CSC: ma servono i parametri (uri,i)? Se si', perche' non serve anche il *)
(*CSC: parametro exp_named_subst? Se no, perche' non li togliamo? *)
(*CSC: Hint: nella DTD servono per gli stylesheet. *)
- C.MutInd (uri',i',exp_named_subst) as typ ->
- if U.eq uri uri' && i = i' then ([],[],exp_named_subst)
- else raise (TypeCheckerFailure (sprintf
- "Case analysys: analysed term type is %s, but is expected to be (an application of) %s#1/%d{_}"
- (CicPp.ppterm typ) (U.string_of_uri uri) i))
- | C.Appl ((C.MutInd (uri',i',exp_named_subst) as typ):: tl) as typ' ->
- if U.eq uri uri' && i = i' then
- let params,args =
- split tl (List.length tl - k)
- in params,args,exp_named_subst
- else raise (TypeCheckerFailure (sprintf
- "Case analysys: analysed term type is %s, but is expected to be (an application of) %s#1/%d{_}"
- (CicPp.ppterm typ') (U.string_of_uri uri) i))
- | _ ->
- raise (TypeCheckerFailure (sprintf
- "Case analysis: analysed term %s is not an inductive one"
- (CicPp.ppterm term)))
+ C.MutInd (uri',i',exp_named_subst) as typ ->
+ if U.eq uri uri' && i = i' then
+ ([],[],exp_named_subst),ugraph2
+ else
+ raise
+ (TypeCheckerFailure
+ (sprintf
+ ("Case analysys: analysed term type is %s, but is expected to be (an application of) %s#1/%d{_}")
+ (CicPp.ppterm typ) (U.string_of_uri uri) i))
+ | C.Appl
+ ((C.MutInd (uri',i',exp_named_subst) as typ):: tl) as typ' ->
+ if U.eq uri uri' && i = i' then
+ let params,args =
+ split tl (List.length tl - k)
+ in (params,args,exp_named_subst),ugraph2
+ else
+ raise
+ (TypeCheckerFailure
+ (sprintf
+ ("Case analysys: analysed term type is %s, "^
+ "but is expected to be (an application of) "^
+ "%s#1/%d{_}")
+ (CicPp.ppterm typ') (U.string_of_uri uri) i))
+ | _ ->
+ raise
+ (TypeCheckerFailure
+ (sprintf
+ ("Case analysis: "^
+ "analysed term %s is not an inductive one")
+ (CicPp.ppterm term)))
+*)
+ let (b, k) = guess_args context outsort in
+ if not b then (b, k - 1) else (b, k) in
+ let (parameters, arguments, exp_named_subst),ugraph2 =
+ let ty,ugraph2 = type_of_aux ~logger context term ugraph1 in
+ match R.whd ~subst context ty with
+ C.MutInd (uri',i',exp_named_subst) as typ ->
+ if U.eq uri uri' && i = i' then
+ ([],[],exp_named_subst),ugraph2
+ else raise
+ (TypeCheckerFailure
+ (sprintf
+ ("Case analysys: analysed term type is %s, but is expected to be (an application of) %s#1/%d{_}")
+ (CicPp.ppterm typ) (U.string_of_uri uri) i))
+ | C.Appl
+ ((C.MutInd (uri',i',exp_named_subst) as typ):: tl) as typ' ->
+ if U.eq uri uri' && i = i' then
+ let params,args =
+ split tl (List.length tl - k)
+ in (params,args,exp_named_subst),ugraph2
+ else raise
+ (TypeCheckerFailure
+ (sprintf
+ "Case analysys: analysed term type is %s, but is expected to be (an application of) %s#1/%d{_}"
+ (CicPp.ppterm typ') (U.string_of_uri uri) i))
+ | _ ->
+ raise
+ (TypeCheckerFailure
+ (sprintf
+ "Case analysis: analysed term %s is not an inductive one"
+ (CicPp.ppterm term)))
in
- (* let's control if the sort elimination is allowed: [(I q1 ... qr)|B] *)
- let sort_of_ind_type =
+ (*
+ let's control if the sort elimination is allowed:
+ [(I q1 ... qr)|B]
+ *)
+ let sort_of_ind_type =
if parameters = [] then
- C.MutInd (uri,i,exp_named_subst)
+ C.MutInd (uri,i,exp_named_subst)
else
- C.Appl ((C.MutInd (uri,i,exp_named_subst))::parameters)
- in
- if not (check_allowed_sort_elimination context uri i need_dummy
- sort_of_ind_type (type_of_aux context sort_of_ind_type) outsort)
- then
- raise
+ C.Appl ((C.MutInd (uri,i,exp_named_subst))::parameters)
+ in
+ let type_of_sort_of_ind_ty,ugraph3 =
+ type_of_aux ~logger context sort_of_ind_type ugraph2 in
+ let b,ugraph4 =
+ check_allowed_sort_elimination ~logger context uri i need_dummy
+ sort_of_ind_type type_of_sort_of_ind_ty outsort ugraph3
+ in
+ if not b then
+ raise
(TypeCheckerFailure ("Case analasys: sort elimination not allowed"));
(* let's check if the type of branches are right *)
- let parsno =
- match CicEnvironment.get_cooked_obj ~trust:false uri with
+ let parsno =
+ let obj,_ =
+ try
+ CicEnvironment.get_cooked_obj ~trust:false uri CicUniv.empty_ugraph
+ with Not_found -> assert false
+ in
+ match obj with
C.InductiveDefinition (_,_,parsno) -> parsno
| _ ->
raise (TypeCheckerFailure
("Unknown mutual inductive definition:" ^
- UriManager.string_of_uri uri))
- in
- let (_,branches_ok) =
- List.fold_left
- (fun (j,b) p ->
- let cons =
- if parameters = [] then
- (C.MutConstruct (uri,i,j,exp_named_subst))
- else
- (C.Appl (C.MutConstruct (uri,i,j,exp_named_subst)::parameters))
- in
-(*
- (j + 1, b &&
-*)
- (j + 1,
-let res = b &&
- R.are_convertible context (type_of_aux context p)
- (type_of_branch context parsno need_dummy outtype cons
- (type_of_aux context cons))
-in if not res then debug_print ("#### " ^ CicPp.ppterm (type_of_aux context p) ^ " <==> " ^ CicPp.ppterm (type_of_branch context parsno need_dummy outtype cons (type_of_aux context cons))) ; res
- )
- ) (1,true) pl
+ UriManager.string_of_uri uri))
+ in
+ let (_,branches_ok,ugraph5) =
+ List.fold_left
+ (fun (j,b,ugraph) p ->
+ if b then
+ let cons =
+ if parameters = [] then
+ (C.MutConstruct (uri,i,j,exp_named_subst))
+ else
+ (C.Appl
+ (C.MutConstruct (uri,i,j,exp_named_subst)::parameters))
+ in
+ let ty_p,ugraph1 = type_of_aux ~logger context p ugraph in
+ let ty_cons,ugraph3 = type_of_aux ~logger context cons ugraph1 in
+ (* 2 is skipped *)
+ let ty_branch =
+ type_of_branch context parsno need_dummy outtype cons
+ ty_cons in
+ let b1,ugraph4 =
+ R.are_convertible
+ ~subst ~metasenv context ty_p ty_branch ugraph3
+ in
+ if not b1 then
+ debug_print
+ ("#### " ^ CicPp.ppterm ty_p ^
+ " <==> " ^ CicPp.ppterm ty_branch);
+ (j + 1,b1,ugraph4)
+ else
+ (j,false,ugraph)
+ ) (1,true,ugraph4) pl
in
if not branches_ok then
raise
(TypeCheckerFailure "Case analysys: wrong branch type");
if not need_dummy then
- C.Appl ((outtype::arguments)@[term])
+ (C.Appl ((outtype::arguments)@[term])),ugraph5
else if arguments = [] then
- outtype
+ outtype,ugraph5
else
- C.Appl (outtype::arguments)
+ (C.Appl (outtype::arguments)),ugraph5
| C.Fix (i,fl) ->
- let types_times_kl =
- List.rev
- (List.map
- (fun (n,k,ty,_) ->
- let _ = type_of_aux context ty in
- (Some (C.Name n,(C.Decl ty)),k)) fl)
+ let types_times_kl,ugraph1 =
+ (* WAS: list rev list map *)
+ List.fold_left
+ (fun (l,ugraph) (n,k,ty,_) ->
+ let _,ugraph1 = type_of_aux ~logger context ty ugraph in
+ ((Some (C.Name n,(C.Decl ty)),k)::l,ugraph1)
+ ) ([],ugraph) fl
in
let (types,kl) = List.split types_times_kl in
- let len = List.length types in
- List.iter
- (fun (name,x,ty,bo) ->
- if
- (R.are_convertible (types@context) (type_of_aux (types@context) bo)
- (CicSubstitution.lift len ty))
- then
- begin
- let (m, eaten, context') =
- eat_lambdas (types @ context) (x + 1) bo
- in
- (*let's control the guarded by destructors conditions D{f,k,x,M}*)
- if
- not
- (guarded_by_destructors context' eaten (len + eaten) kl 1 [] m)
- then
- raise
- (TypeCheckerFailure ("Fix: not guarded by destructors"))
- end
- else
- raise (TypeCheckerFailure ("Fix: ill-typed bodies"))
- ) fl ;
-
- (*CSC: controlli mancanti solo su D{f,k,x,M} *)
- let (_,_,ty,_) = List.nth fl i in
- ty
+ let len = List.length types in
+ let ugraph2 =
+ List.fold_left
+ (fun ugraph (name,x,ty,bo) ->
+ let ty_bo,ugraph1 =
+ type_of_aux ~logger (types@context) bo ugraph
+ in
+ let b,ugraph2 =
+ R.are_convertible ~subst ~metasenv (types@context)
+ ty_bo (CicSubstitution.lift len ty) ugraph1 in
+ if b then
+ begin
+ let (m, eaten, context') =
+ eat_lambdas ~subst (types @ context) (x + 1) bo
+ in
+ (*
+ let's control the guarded by
+ destructors conditions D{f,k,x,M}
+ *)
+ if not (guarded_by_destructors context' eaten
+ (len + eaten) kl 1 [] m) then
+ raise
+ (TypeCheckerFailure
+ ("Fix: not guarded by destructors"))
+ else
+ ugraph2
+ end
+ else
+ raise (TypeCheckerFailure ("Fix: ill-typed bodies"))
+ ) ugraph1 fl in
+ (*CSC: controlli mancanti solo su D{f,k,x,M} *)
+ let (_,_,ty,_) = List.nth fl i in
+ ty,ugraph2
| C.CoFix (i,fl) ->
- let types =
- List.rev
- (List.map
- (fun (n,ty,_) ->
- let _ = type_of_aux context ty in Some (C.Name n,(C.Decl ty))) fl)
- in
+ let types,ugraph1 =
+ List.fold_left
+ (fun (l,ugraph) (n,ty,_) ->
+ let _,ugraph1 =
+ type_of_aux ~logger context ty ugraph in
+ (Some (C.Name n,(C.Decl ty))::l,ugraph1)
+ ) ([],ugraph) fl
+ in
let len = List.length types in
- List.iter
- (fun (_,ty,bo) ->
- if
- (R.are_convertible (types @ context)
- (type_of_aux (types @ context) bo) (CicSubstitution.lift len ty))
- then
- begin
- (* let's control that the returned type is coinductive *)
- match returns_a_coinductive context ty with
- None ->
- raise
- (TypeCheckerFailure
- ("CoFix: does not return a coinductive type"))
- | Some uri ->
- (*let's control the guarded by constructors conditions C{f,M}*)
- if
- not
- (guarded_by_constructors (types @ context) 0 len false bo
- [] uri)
- then
- raise
- (TypeCheckerFailure ("CoFix: not guarded by constructors"))
- end
- else
- raise
- (TypeCheckerFailure ("CoFix: ill-typed bodies"))
- ) fl ;
-
- let (_,ty,_) = List.nth fl i in
- ty
-
- and check_exp_named_subst context =
- let rec check_exp_named_subst_aux substs =
- function
- [] -> ()
- | ((uri,t) as subst)::tl ->
- let typeofvar =
- CicSubstitution.subst_vars substs (type_of_variable uri) in
- (match CicEnvironment.get_cooked_obj ~trust:false uri with
- Cic.Variable (_,Some bo,_,_) ->
- raise
- (TypeCheckerFailure
- ("A variable with a body can not be explicit substituted"))
- | Cic.Variable (_,None,_,_) -> ()
- | _ ->
- raise (TypeCheckerFailure
- ("Unknown variable definition:" ^
- UriManager.string_of_uri uri))
- ) ;
- let typeoft = type_of_aux context t in
- if CicReduction.are_convertible context typeoft typeofvar then
- check_exp_named_subst_aux (substs@[subst]) tl
- else
- begin
- CicReduction.fdebug := 0 ;
- ignore (CicReduction.are_convertible context typeoft typeofvar) ;
- fdebug := 0 ;
- debug typeoft [typeofvar] ;
- raise (TypeCheckerFailure "Wrong Explicit Named Substitution")
- end
- in
- check_exp_named_subst_aux []
+ let ugraph2 =
+ List.fold_left
+ (fun ugraph (_,ty,bo) ->
+ let ty_bo,ugraph1 =
+ type_of_aux ~logger (types @ context) bo ugraph
+ in
+ let b,ugraph2 =
+ R.are_convertible ~subst ~metasenv (types @ context) ty_bo
+ (CicSubstitution.lift len ty) ugraph1
+ in
+ if b then
+ begin
+ (* let's control that the returned type is coinductive *)
+ match returns_a_coinductive context ty with
+ None ->
+ raise
+ (TypeCheckerFailure
+ ("CoFix: does not return a coinductive type"))
+ | Some uri ->
+ (*
+ let's control the guarded by constructors
+ conditions C{f,M}
+ *)
+ if not (guarded_by_constructors (types @ context)
+ 0 len false bo [] uri) then
+ raise
+ (TypeCheckerFailure
+ ("CoFix: not guarded by constructors"))
+ else
+ ugraph2
+ end
+ else
+ raise
+ (TypeCheckerFailure ("CoFix: ill-typed bodies"))
+ ) ugraph1 fl
+ in
+ let (_,ty,_) = List.nth fl i in
+ ty,ugraph2
- and sort_of_prod context (name,s) (t1, t2) =
+ and check_exp_named_subst ~logger ?(subst = []) context ugraph =
+ let rec check_exp_named_subst_aux ~logger esubsts l ugraph =
+ match l with
+ [] -> ugraph
+ | ((uri,t) as item)::tl ->
+ let ty_uri,ugraph1 = type_of_variable ~logger uri ugraph in
+ let typeofvar =
+ CicSubstitution.subst_vars esubsts ty_uri in
+ let typeoft,ugraph2 = type_of_aux ~logger context t ugraph1 in
+ let b,ugraph3 =
+ CicReduction.are_convertible ~subst ~metasenv
+ context typeoft typeofvar ugraph2
+ in
+ if b then
+ check_exp_named_subst_aux ~logger (esubsts@[item]) tl ugraph3
+ else
+ begin
+ CicReduction.fdebug := 0 ;
+ ignore
+ (CicReduction.are_convertible
+ ~subst ~metasenv context typeoft typeofvar ugraph2) ;
+ fdebug := 0 ;
+ debug typeoft [typeofvar] ;
+ raise (TypeCheckerFailure "Wrong Explicit Named Substitution")
+ end
+ in
+ check_exp_named_subst_aux ~logger [] ugraph
+
+ and sort_of_prod ?(subst = []) context (name,s) (t1, t2) ugraph =
let module C = Cic in
- let t1' = CicReduction.whd context t1 in
- let t2' = CicReduction.whd ((Some (name,C.Decl s))::context) t2 in
+ let t1' = CicReduction.whd ~subst context t1 in
+ let t2' = CicReduction.whd ~subst ((Some (name,C.Decl s))::context) t2 in
match (t1', t2') with
(C.Sort s1, C.Sort s2)
- when (s2 = C.Prop or s2 = C.Set or s2 = C.CProp) -> (* different from Coq manual!!! *)
- C.Sort s2
- | (C.Sort s1, C.Sort s2) -> C.Sort C.Type (*CSC manca la gestione degli universi!!! *)
- | (C.Meta _, C.Sort _) -> t2'
+ when (s2 = C.Prop or s2 = C.Set or s2 = C.CProp) ->
+ (* different from Coq manual!!! *)
+ C.Sort s2,ugraph
+ | (C.Sort (C.Type t1), C.Sort (C.Type t2)) ->
+ (* TASSI: CONSRTAINTS: the same in doubletypeinference, cicrefine *)
+ let t' = CicUniv.fresh() in
+ let ugraph1 = CicUniv.add_ge t' t1 ugraph in
+ let ugraph2 = CicUniv.add_ge t' t2 ugraph1 in
+ C.Sort (C.Type t'),ugraph2
+ | (C.Sort _,C.Sort (C.Type t1)) ->
+ (* TASSI: CONSRTAINTS: the same in doubletypeinference, cicrefine *)
+ C.Sort (C.Type t1),ugraph (* c'e' bisogno di un fresh? *)
+ | (C.Meta _, C.Sort _) -> t2',ugraph
| (C.Meta _, (C.Meta (_,_) as t))
| (C.Sort _, (C.Meta (_,_) as t)) when CicUtil.is_closed t ->
- t2'
+ t2',ugraph
| (_,_) -> raise (TypeCheckerFailure (sprintf
"Prod: expected two sorts, found = %s, %s" (CicPp.ppterm t1')
(CicPp.ppterm t2')))
- and eat_prods context hetype =
- (*CSC: siamo sicuri che le are_convertible non lavorino con termini non *)
- (*CSC: cucinati *)
- function
- [] -> hetype
- | (hete, hety)::tl ->
- (match (CicReduction.whd context hetype) with
- Cic.Prod (n,s,t) ->
- if CicReduction.are_convertible context hety s then
- (CicReduction.fdebug := -1 ;
- eat_prods context (CicSubstitution.subst hete t) tl
- )
- else
- begin
- CicReduction.fdebug := 0 ;
- ignore (CicReduction.are_convertible context s hety) ;
- fdebug := 0 ;
- debug s [hety] ;
- raise (TypeCheckerFailure (sprintf
- "Appl: wrong parameter-type, expected %s, found %s"
- (CicPp.ppterm hetype) (CicPp.ppterm s)))
- end
- | _ ->
- raise (TypeCheckerFailure
- "Appl: this is not a function, it cannot be applied")
- )
+ and eat_prods ?(subst = []) context hetype l ugraph =
+ (*CSC: siamo sicuri che le are_convertible non lavorino con termini non *)
+ (*CSC: cucinati *)
+ match l with
+ [] -> hetype,ugraph
+ | (hete, hety)::tl ->
+ (match (CicReduction.whd ~subst context hetype) with
+ Cic.Prod (n,s,t) ->
+ let b,ugraph1 =
+ CicReduction.are_convertible
+ ~subst ~metasenv context hety s ugraph
+ in
+ if b then
+ begin
+ CicReduction.fdebug := -1 ;
+ eat_prods ~subst context
+ (CicSubstitution.subst hete t) tl ugraph1
+ (*TASSI: not sure *)
+ end
+ else
+ begin
+ CicReduction.fdebug := 0 ;
+ ignore (CicReduction.are_convertible
+ ~subst ~metasenv context s hety ugraph) ;
+ fdebug := 0 ;
+ debug s [hety] ;
+ raise
+ (TypeCheckerFailure
+ (sprintf
+ ("Appl: wrong parameter-type, expected %s, found %s")
+ (CicPp.ppterm hetype) (CicPp.ppterm s)))
+ end
+ | _ ->
+ raise (TypeCheckerFailure
+ "Appl: this is not a function, it cannot be applied")
+ )
and returns_a_coinductive context ty =
let module C = Cic in
match CicReduction.whd context ty with
C.MutInd (uri,i,_) ->
(*CSC: definire una funzioncina per questo codice sempre replicato *)
- (match CicEnvironment.get_cooked_obj ~trust:false uri with
+ let obj,_ =
+ try
+ CicEnvironment.get_cooked_obj ~trust:false uri CicUniv.empty_ugraph
+ with Not_found -> assert false
+ in
+ (match obj with
C.InductiveDefinition (itl,_,_) ->
let (_,is_inductive,_,_) = List.nth itl i in
if is_inductive then None else (Some uri)
UriManager.string_of_uri uri))
)
| C.Appl ((C.MutInd (uri,i,_))::_) ->
- (match CicEnvironment.get_obj uri with
+ (let o,_ = CicEnvironment.get_obj uri CicUniv.empty_ugraph in
+ match o with
C.InductiveDefinition (itl,_,_) ->
let (_,is_inductive,_,_) = List.nth itl i in
if is_inductive then None else (Some uri)
debug_print ("INIZIO TYPE_OF_AUX " ^ CicPp.ppterm t) ; flush stderr ;
let res =
*)
- type_of_aux context t
+ type_of_aux ~logger context t ugraph
(*
in debug_print "FINE TYPE_OF_AUX" ; flush stderr ; res
*)
(* is a small constructor? *)
(*CSC: ottimizzare calcolando staticamente *)
-and is_small context paramsno c =
- let rec is_small_aux context c =
+and is_small ~logger context paramsno c ugraph =
+ let rec is_small_aux ~logger context c ugraph =
let module C = Cic in
match CicReduction.whd context c with
C.Prod (n,so,de) ->
(*CSC: [] is an empty metasenv. Is it correct? *)
- let s = type_of_aux' [] context so in
- (s = C.Sort C.Prop || s = C.Sort C.Set || s = C.Sort C.CProp) &&
- is_small_aux ((Some (n,(C.Decl so)))::context) de
- | _ -> true (*CSC: we trust the type-checker *)
+ let s,ugraph1 = type_of_aux' ~logger [] context so ugraph in
+ let b = (s = C.Sort C.Prop || s = C.Sort C.Set || s = C.Sort C.CProp) in
+ if b then
+ is_small_aux ~logger ((Some (n,(C.Decl so)))::context) de ugraph1
+ else
+ false,ugraph1
+ | _ -> true,ugraph (*CSC: we trust the type-checker *)
in
let (context',dx) = split_prods context paramsno c in
- is_small_aux context' dx
+ is_small_aux ~logger context' dx ugraph
-and type_of t =
+and type_of ~logger t ugraph =
(*CSC
debug_print ("INIZIO TYPE_OF_AUX' " ^ CicPp.ppterm t) ; flush stderr ;
let res =
*)
- type_of_aux' [] [] t
+ type_of_aux' ~logger [] [] t ugraph
(*CSC
in debug_print "FINE TYPE_OF_AUX'" ; flush stderr ; res
*)
;;
-let typecheck uri =
+let typecheck uri ugraph =
let module C = Cic in
let module R = CicReduction in
let module U = UriManager in
- match CicEnvironment.is_type_checked ~trust:false uri with
- CicEnvironment.CheckedObj _ -> ()
+ let logger = new CicLogger.logger in
+ (* ??? match CicEnvironment.is_type_checked ~trust:true uri with ???? *)
+ match CicEnvironment.is_type_checked ~trust:false uri ugraph with
+ CicEnvironment.CheckedObj (cobj,ugraph') ->
+ (* prerr_endline ("NON-INIZIO A TYPECHECKARE " ^ U.string_of_uri uri);*)
+ cobj,ugraph'
| CicEnvironment.UncheckedObj uobj ->
(* let's typecheck the uncooked object *)
- CicLogger.log (`Start_type_checking uri) ;
- (match uobj with
- C.Constant (_,Some te,ty,_) ->
- let _ = type_of ty in
- if not (R.are_convertible [] (type_of te ) ty) then
+ logger#log (`Start_type_checking uri) ;
+ (* prerr_endline ("INIZIO A TYPECHECKARE " ^ U.string_of_uri uri); *)
+ let ugraph1 =
+ (match uobj with
+ C.Constant (_,Some te,ty,_) ->
+ let _,ugraph1 = type_of ~logger ty ugraph in
+ let ty_te,ugraph2 = type_of ~logger te ugraph1 in
+ let b,ugraph3 = (R.are_convertible [] ty_te ty ugraph2) in
+ if not b then
raise (TypeCheckerFailure
("Unknown constant:" ^ U.string_of_uri uri))
+ else
+ ugraph3
| C.Constant (_,None,ty,_) ->
(* only to check that ty is well-typed *)
- let _ = type_of ty in ()
+ let _,ugraph1 = type_of ~logger ty ugraph in
+ ugraph1
| C.CurrentProof (_,conjs,te,ty,_) ->
- let _ =
+ let _,ugraph1 =
List.fold_left
- (fun metasenv ((_,context,ty) as conj) ->
- ignore (type_of_aux' metasenv context ty) ;
- metasenv @ [conj]
- ) [] conjs
+ (fun (metasenv,ugraph) ((_,context,ty) as conj) ->
+ let _,ugraph1 =
+ type_of_aux' ~logger metasenv context ty ugraph
+ in
+ metasenv @ [conj],ugraph1
+ ) ([],ugraph) conjs
in
- let _ = type_of_aux' conjs [] ty in
- let type_of_te = type_of_aux' conjs [] te in
- if not (R.are_convertible [] type_of_te ty)
- then
+ 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
+ if not b then
raise (TypeCheckerFailure (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
| C.Variable (_,bo,ty,_) ->
(* only to check that ty is well-typed *)
- let _ = type_of ty in
+ let _,ugraph1 = type_of ~logger ty ugraph in
(match bo with
- None -> ()
+ None -> ugraph1
| Some bo ->
- if not (R.are_convertible [] (type_of bo) ty) then
- raise (TypeCheckerFailure
- ("Unknown variable:" ^ U.string_of_uri uri))
+ let ty_bo,ugraph2 = type_of ~logger bo ugraph1 in
+ let b,ugraph3 = R.are_convertible [] ty_bo ty ugraph2 in
+ if not b then
+ raise (TypeCheckerFailure
+ ("Unknown variable:" ^ U.string_of_uri uri))
+ else
+ ugraph3
)
| C.InductiveDefinition _ ->
- check_mutual_inductive_defs uri uobj
- ) ;
- CicEnvironment.set_type_checking_info uri ;
- CicLogger.log (`Type_checking_completed uri)
+ check_mutual_inductive_defs ~logger uri uobj ugraph
+ ) in
+ try
+ CicEnvironment.set_type_checking_info uri;
+ logger#log (`Type_checking_completed uri);
+ match CicEnvironment.is_type_checked ~trust:false uri ugraph 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 ->
+ (*prerr_endline s;*)
+ uobj,ugraph1
;;
+
+(** wrappers which instantiate fresh loggers *)
+
+let type_of_aux' ?(subst = []) metasenv context t =
+ let logger = new CicLogger.logger in
+ type_of_aux' ~logger ~subst metasenv context t
+
+let typecheck_mutual_inductive_defs uri (itl, uris, indparamsno) =
+ let logger = new CicLogger.logger in
+ typecheck_mutual_inductive_defs ~logger uri (itl, uris, indparamsno)
+