Nominal/NewFv.thy
author Christian Urban <urbanc@in.tum.de>
Thu, 24 Jun 2010 00:41:41 +0100
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added comment about partial equivalence relations
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theory NewFv
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imports "../Nominal-General/Nominal2_Atoms"
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        "Abs" "Perm" "Nominal2_FSet"
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begin
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ML {*
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(* binding modes  and binding clauses *)
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datatype bmode = Lst | Res | Set
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datatype bclause =
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  BC of bmode * (term option * int) list * int list
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*}
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ML {*
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fun mk_diff (@{term "{}::atom set"}, _) = @{term "{}::atom set"}
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  | mk_diff (t1, @{term "{}::atom set"}) = t1
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  | mk_diff (t1, t2) = HOLogic.mk_binop @{const_name minus} (t1, t2)
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fun mk_union (@{term "{}::atom set"}, @{term "{}::atom set"}) = @{term "{}::atom set"}
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  | mk_union (t1 , @{term "{}::atom set"}) = t1
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  | mk_union (@{term "{}::atom set"}, t2) = t2
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  | mk_union (t1, t2) = HOLogic.mk_binop @{const_name sup} (t1, t2)  
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fun fold_union trms = fold (curry mk_union) trms @{term "{}::atom set"}
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*}
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ML {*
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fun is_atom ctxt ty =
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  Sign.of_sort (ProofContext.theory_of ctxt) (ty, @{sort at_base})
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fun is_atom_set ctxt (Type ("fun", [t, @{typ bool}])) = is_atom ctxt t
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  | is_atom_set _ _ = false;
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fun is_atom_fset ctxt (Type (@{type_name "fset"}, [t])) = is_atom ctxt t
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  | is_atom_fset _ _ = false;
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fun is_atom_list ctxt (Type (@{type_name "list"}, [t])) = is_atom ctxt t
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  | is_atom_list _ _ = false
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*}
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ML {*
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fun mk_atom_set t =
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let
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  val ty = fastype_of t;
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  val atom_ty = HOLogic.dest_setT ty --> @{typ atom};
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  val img_ty = atom_ty --> ty --> @{typ "atom set"};
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in
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  (Const (@{const_name image}, img_ty) $ mk_atom_ty atom_ty t)
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end;
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fun mk_atom_fset t =
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let
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  val ty = fastype_of t;
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  val atom_ty = dest_fsetT ty --> @{typ atom};
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  val fmap_ty = atom_ty --> ty --> @{typ "atom fset"};
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  val fset_to_set = @{term "fset_to_set :: atom fset \<Rightarrow> atom set"}
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in
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  fset_to_set $ (Const (@{const_name fmap}, fmap_ty) $ Const (@{const_name atom}, atom_ty) $ t)
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end;
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fun mk_atom_list t =
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let
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  val ty = fastype_of t;
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  val atom_ty = dest_listT ty --> @{typ atom};
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  val map_ty = atom_ty --> ty --> @{typ "atom list"};
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in
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  (Const (@{const_name map}, map_ty) $ mk_atom_ty atom_ty t)
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end;
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*}
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ML {*
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fun setify ctxt t =
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let
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  val ty = fastype_of t;
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in
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  if is_atom ctxt ty
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    then  HOLogic.mk_set @{typ atom} [mk_atom t]
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  else if is_atom_set ctxt ty
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    then mk_atom_set t
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  else if is_atom_fset ctxt ty
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    then mk_atom_fset t
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  else error ("setify" ^ (PolyML.makestring (t, ty)))
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end
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*}
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ML {*
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fun listify ctxt t =
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let
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  val ty = fastype_of t;
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in
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  if is_atom ctxt ty
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    then HOLogic.mk_list @{typ atom} [mk_atom t]
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  else if is_atom_list ctxt ty
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    then mk_atom_set t
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  else error "listify"
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end
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*}
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ML {*
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fun to_set x =
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  if fastype_of x = @{typ "atom list"}
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  then @{term "set::atom list \<Rightarrow> atom set"} $ x
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  else x
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*}
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ML {*
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fun make_body fv_map args i = 
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let
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  val arg = nth args i
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  val ty = fastype_of arg
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in
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  case (AList.lookup (op=) fv_map ty) of
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    NONE => mk_supp arg
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  | SOME fv => fv $ arg
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end  
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*}
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ML {*
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fun make_binder lthy fv_bn_map args (bn_option, i) = 
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let
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  val arg = nth args i
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in
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  case bn_option of
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    NONE => (setify lthy arg, @{term "{}::atom set"})
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  | SOME bn => (to_set (bn $ arg), the (AList.lookup (op=) fv_bn_map bn) $ arg)
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end  
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*}
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ML {*
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fun make_fv_rhs lthy fv_map fv_bn_map args (BC (_, binders, bodies)) =
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let
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  val t1 = map (make_body fv_map args) bodies
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  val (t2, t3) = split_list (map (make_binder lthy fv_bn_map args) binders)
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in 
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  fold_union (mk_diff (fold_union t1, fold_union t2)::t3)
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end
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*}
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ML {*
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fun make_fv_eq lthy fv_map fv_bn_map (constr, ty, arg_tys) bclauses = 
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let
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  val arg_names = Datatype_Prop.make_tnames arg_tys
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  val args = map Free (arg_names ~~ arg_tys)
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  val fv = the (AList.lookup (op=) fv_map ty)
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  val lhs = fv $ list_comb (constr, args)
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  val rhs_trms = map (make_fv_rhs lthy fv_map fv_bn_map args) bclauses
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  val rhs = fold_union rhs_trms
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in
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  HOLogic.mk_Trueprop (HOLogic.mk_eq (lhs, rhs))
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end
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*}
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ML {*
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fun make_bn_body fv_map fv_bn_map bn_args args i = 
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let
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  val arg = nth args i
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  val ty = fastype_of arg
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in
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  case AList.lookup (op=) bn_args i of
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    NONE => (case (AList.lookup (op=) fv_map ty) of
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              NONE => mk_supp arg
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            | SOME fv => fv $ arg)
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  | SOME (NONE) => @{term "{}::atom set"}
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  | SOME (SOME bn) => the (AList.lookup (op=) fv_bn_map bn) $ arg
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end  
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*}
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ML {*
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fun make_fv_bn_rhs lthy fv_map fv_bn_map bn_args args bclause =
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  case bclause of
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    BC (_, [], bodies) => fold_union (map (make_bn_body fv_map fv_bn_map bn_args args) bodies)
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  | BC (_, binders, bodies) => 
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      let
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        val t1 = map (make_body fv_map args) bodies
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        val (t2, t3) = split_list (map (make_binder lthy fv_bn_map args) binders)
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      in 
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        fold_union (mk_diff (fold_union t1, fold_union t2)::t3)
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      end
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*}
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ML {*
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fun make_fv_bn_eq lthy bn_trm fv_map fv_bn_map (bn_args, (constr, ty, arg_tys)) bclauses =
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let
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  val arg_names = Datatype_Prop.make_tnames arg_tys
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  val args = map Free (arg_names ~~ arg_tys)
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  val fv_bn = the (AList.lookup (op=) fv_bn_map bn_trm)
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  val lhs = fv_bn $ list_comb (constr, args)
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  val rhs_trms = map (make_fv_bn_rhs lthy fv_map fv_bn_map bn_args args) bclauses
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  val rhs = fold_union rhs_trms
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in
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  HOLogic.mk_Trueprop (HOLogic.mk_eq (lhs, rhs))
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end
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*}
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ML {*
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fun make_fv_bn_eqs lthy fv_map fv_bn_map constrs_info bclausesss (bn_trm, bn_n, bn_argss) = 
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let
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  val nth_constrs_info = nth constrs_info bn_n
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  val nth_bclausess = nth bclausesss bn_n
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in
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  map2 (make_fv_bn_eq lthy bn_trm fv_map fv_bn_map) (bn_argss ~~ nth_constrs_info) nth_bclausess
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end
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*}
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1960
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ML {*
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fun define_raw_fvs dt_descr sorts bn_funs bn_funs2 bclausesss lthy =
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let
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1967
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  val fv_names = prefix_dt_names dt_descr sorts "fv_"
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  val fv_arg_tys = map (fn (i, _) => nth_dtyp dt_descr sorts i) dt_descr;
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  val fv_tys = map (fn ty => ty --> @{typ "atom set"}) fv_arg_tys;
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  val fv_frees = map Free (fv_names ~~ fv_tys);
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  val fv_map = fv_arg_tys ~~ fv_frees
1967
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  val (bns, bn_tys) = split_list (map (fn (bn, i, _) => (bn, i)) bn_funs)
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  val (bns2, bn_tys2) = split_list (map (fn (bn, i, _) => (bn, i)) bn_funs2)
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  val bn_args2 = map (fn (_, _, arg) => arg) bn_funs2
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  val fv_bn_names2 = map (fn bn => "fv_" ^ (fst (dest_Free bn))) bns2
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  val fv_bn_arg_tys2 = map (fn i => nth_dtyp dt_descr sorts i) bn_tys2
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  val fv_bn_tys2 = map (fn ty => ty --> @{typ "atom set"}) fv_bn_arg_tys2
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  val fv_bn_frees2 = map Free (fv_bn_names2 ~~ fv_bn_tys2)
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  val fv_bn_map2 = bns ~~ fv_bn_frees2
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  val fv_bn_map3 = bns2 ~~ fv_bn_frees2
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  val constrs_info = all_dtyp_constrs_types dt_descr sorts
1965
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  val fv_eqs2 = map2 (map2 (make_fv_eq lthy fv_map fv_bn_map2)) constrs_info bclausesss 
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  val fv_bn_eqs2 = map (make_fv_bn_eqs lthy fv_map fv_bn_map3 constrs_info bclausesss) bn_funs2
2046
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  val all_fv_names = map (fn s => (Binding.name s, NONE, NoSyn)) (fv_names @ fv_bn_names2)
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  val all_fv_eqs = map (pair Attrib.empty_binding) (flat fv_eqs2 @ flat fv_bn_eqs2)
1981
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  fun pat_completeness_auto lthy =
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    Pat_Completeness.pat_completeness_tac lthy 1
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      THEN auto_tac (clasimpset_of lthy)
1981
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  fun prove_termination lthy =
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    Function.prove_termination NONE
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      (Lexicographic_Order.lexicographic_order_tac true lthy) lthy
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2000
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  val (_, lthy') = Function.add_function all_fv_names all_fv_eqs
1981
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    Function_Common.default_config pat_completeness_auto lthy
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2000
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  val (info, lthy'') = prove_termination (Local_Theory.restore lthy')
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  val {fs, simps, ...} = info;
1986
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  val morphism = ProofContext.export_morphism lthy'' lthy
2000
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  val fs_exp = map (Morphism.term morphism) fs
1986
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2000
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  val (fv_frees_exp, fv_bns_exp) = chop (length fv_frees) fs_exp
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  val simps_exp = Morphism.fact morphism (the simps)
1960
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in
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  (fv_frees_exp, fv_bns_exp, simps_exp, lthy'')
1960
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end
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*}
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end