Nominal-General/nominal_library.ML
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(*  Title:      nominal_library.ML
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    Author:     Christian Urban
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  Basic functions for nominal.
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*)
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signature NOMINAL_LIBRARY =
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sig
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  val last2: 'a list -> 'a * 'a
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  val dest_listT: typ -> typ
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  val size_const: typ -> term 
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  val mk_minus: term -> term
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  val mk_plus: term -> term -> term
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  val perm_ty: typ -> typ 
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  val mk_perm_ty: typ -> term -> term -> term
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  val mk_perm: term -> term -> term
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  val dest_perm: term -> term * term
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  val mk_sort_of: term -> term
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  val atom_ty: typ -> typ
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  val mk_atom_ty: typ -> term -> term
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  val mk_atom: term -> term
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  val supp_ty: typ -> typ
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  val supp_const: typ -> term
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  val mk_supp_ty: typ -> term -> term
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  val mk_supp: term -> term
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  val mk_equiv: thm -> thm
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  val safe_mk_equiv: thm -> thm
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  val mk_diff: term * term -> term
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  val mk_append: term * term -> term
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  val mk_union: term * term -> term
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  val fold_union: term list -> term
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  val mk_conj: term * term -> term
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  val fold_conj: term list -> term
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  (* datatype operations *)
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  val all_dtyps: Datatype_Aux.descr -> (string * sort) list -> typ list
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  val nth_dtyp: Datatype_Aux.descr -> (string * sort) list -> int -> typ
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  val all_dtyp_constrs_types: Datatype_Aux.descr -> (string * sort) list -> 
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    (term * typ * typ list * bool list) list list
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  val nth_dtyp_constrs_types: Datatype_Aux.descr -> (string * sort) list -> int -> 
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    (term * typ * typ list * bool list) list
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  val prefix_dt_names: Datatype_Aux.descr -> (string * sort) list -> string -> string list
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  (* tactics for function package *)
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  val pat_completeness_auto: Proof.context -> tactic
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  val pat_completeness_simp: thm list -> Proof.context -> tactic
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  val prove_termination: Proof.context -> Function.info * local_theory
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  (* transformations of premises in inductions *)
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  val transform_prem1: Proof.context -> string list -> thm -> thm
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  val transform_prem2: Proof.context -> string list -> thm -> thm
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  (* transformation into the object logic *)
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  val atomize: thm -> thm
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end
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structure Nominal_Library: NOMINAL_LIBRARY =
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struct
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fun last2 [] = raise Empty
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  | last2 [_] = raise Empty
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  | last2 [x, y] = (x, y)
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  | last2 (_ :: xs) = last2 xs
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fun dest_listT (Type (@{type_name list}, [T])) = T
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  | dest_listT T = raise TYPE ("dest_listT: list type expected", [T], [])
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fun size_const ty = Const (@{const_name size}, ty --> @{typ nat})
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fun mk_minus p = @{term "uminus::perm => perm"} $ p
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fun mk_plus p q = @{term "plus::perm => perm => perm"} $ p $ q
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fun perm_ty ty = @{typ "perm"} --> ty --> ty
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fun mk_perm_ty ty p trm = Const (@{const_name "permute"}, perm_ty ty) $ p $ trm
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fun mk_perm p trm = mk_perm_ty (fastype_of trm) p trm
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fun dest_perm (Const (@{const_name "permute"}, _) $ p $ t) = (p, t)
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  | dest_perm t = raise TERM ("dest_perm", [t]);
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fun mk_sort_of t = @{term "sort_of"} $ t;
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fun atom_ty ty = ty --> @{typ "atom"};
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fun mk_atom_ty ty t = Const (@{const_name "atom"}, atom_ty ty) $ t;
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fun mk_atom t = mk_atom_ty (fastype_of t) t;
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fun supp_ty ty = ty --> @{typ "atom set"};
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fun supp_const ty = Const (@{const_name "supp"}, supp_ty ty)
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fun mk_supp_ty ty t = supp_const ty $ t;
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fun mk_supp t = mk_supp_ty (fastype_of t) t;
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fun mk_equiv r = r RS @{thm eq_reflection};
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fun safe_mk_equiv r = mk_equiv r handle Thm.THM _ => r;
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(* functions that construct differences, appends and unions
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   but avoid producing empty atom sets or empty atom lists *)
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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_append (t1, @{term "[]::atom list"}) = t1
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  | mk_append (@{term "[]::atom list"}, t2) = t2
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  | mk_append (t1, t2) = HOLogic.mk_binop @{const_name "append"} (t1, t2) 
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fun 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_rev (curry mk_union) trms @{term "{}::atom set"}
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fun mk_conj (t1, @{term "True"}) = t1
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  | mk_conj (@{term "True"}, t2) = t2
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  | mk_conj (t1, t2) = HOLogic.mk_conj (t1, t2)
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fun fold_conj trms = fold_rev (curry mk_conj) trms @{term "True"}
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(** datatypes **)
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(* returns the type of the nth datatype *)
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fun all_dtyps descr sorts = 
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  map (fn n => Datatype_Aux.typ_of_dtyp descr sorts (Datatype_Aux.DtRec n)) (0 upto (length descr - 1))
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fun nth_dtyp descr sorts n = 
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  Datatype_Aux.typ_of_dtyp descr sorts (Datatype_Aux.DtRec n);
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(* returns info about constructors in a datatype *)
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fun all_dtyp_constrs_info descr = 
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  map (fn (_, (ty, vs, constrs)) => map (pair (ty, vs)) constrs) descr
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(* returns the constants of the constructors plus the 
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   corresponding type and types of arguments *)
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fun all_dtyp_constrs_types descr sorts = 
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let
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  fun aux ((ty_name, vs), (cname, args)) =
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  let
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    val vs_tys = map (Datatype_Aux.typ_of_dtyp descr sorts) vs
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    val ty = Type (ty_name, vs_tys)
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    val arg_tys = map (Datatype_Aux.typ_of_dtyp descr sorts) args
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    val is_rec = map Datatype_Aux.is_rec_type args
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  in
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    (Const (cname, arg_tys ---> ty), ty, arg_tys, is_rec)
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  end
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in
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  map (map aux) (all_dtyp_constrs_info descr)
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end
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fun nth_dtyp_constrs_types descr sorts n =
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  nth (all_dtyp_constrs_types descr sorts) n
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(* generates for every datatype a name str ^ dt_name 
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   plus and index for multiple occurences of a string *)
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fun prefix_dt_names descr sorts str = 
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let
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  fun get_nth_name (i, _) = 
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    Datatype_Aux.name_of_typ (nth_dtyp descr sorts i) 
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in
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  Datatype_Prop.indexify_names 
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    (map (prefix str o get_nth_name) descr)
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end
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(** function package tactics **)
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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)
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fun pat_completeness_simp simps lthy =
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let
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  val simp_set = HOL_basic_ss addsimps (@{thms sum.inject sum.distinct} @ simps)
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in
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  Pat_Completeness.pat_completeness_tac lthy 1
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    THEN ALLGOALS (asm_full_simp_tac simp_set)
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end
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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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(** transformations of premises (in inductive proofs) **)
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(* 
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 given the theorem F[t]; proves the theorem F[f t] 
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  - F needs to be monotone
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  - f returns either SOME for a term it fires on 
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    and NONE elsewhere 
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*)
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fun map_term f t = 
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  (case f t of
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     NONE => map_term' f t 
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   | x => x)
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and map_term' f (t $ u) = 
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    (case (map_term f t, map_term f u) of
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        (NONE, NONE) => NONE
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      | (SOME t'', NONE) => SOME (t'' $ u)
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      | (NONE, SOME u'') => SOME (t $ u'')
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      | (SOME t'', SOME u'') => SOME (t'' $ u''))
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  | map_term' f (Abs (s, T, t)) = 
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      (case map_term f t of
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        NONE => NONE
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      | SOME t'' => SOME (Abs (s, T, t'')))
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  | map_term' _ _  = NONE;
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fun map_thm_tac ctxt tac thm =
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let
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  val monos = Inductive.get_monos ctxt
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  val simps = HOL_basic_ss addsimps @{thms split_def}
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in
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  EVERY [cut_facts_tac [thm] 1, etac rev_mp 1, 
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    REPEAT_DETERM (FIRSTGOAL (simp_tac simps THEN' resolve_tac monos)),
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    REPEAT_DETERM (rtac impI 1 THEN (atac 1 ORELSE tac))]
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end
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fun map_thm ctxt f tac thm =
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let
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  val opt_goal_trm = map_term f (prop_of thm)
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in
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  case opt_goal_trm of
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    NONE => thm
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  | SOME goal =>
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     Goal.prove ctxt [] [] goal (fn _ => map_thm_tac ctxt tac thm) 
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end
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(*
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 inductive premises can be of the form
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 R ... /\ P ...; split_conj_i picks out
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 the part R or P part
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*)
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fun split_conj1 names (Const ("op &", _) $ f1 $ f2) = 
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  (case head_of f1 of
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     Const (name, _) => if member (op =) names name then SOME f1 else NONE
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   | _ => NONE)
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| split_conj1 _ _ = NONE;
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fun split_conj2 names (Const ("op &", _) $ f1 $ f2) = 
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  (case head_of f1 of
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     Const (name, _) => if member (op =) names name then SOME f2 else NONE
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   | _ => NONE)
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| split_conj2 _ _ = NONE;
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fun transform_prem1 ctxt names thm =
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  map_thm ctxt (split_conj1 names) (etac conjunct1 1) thm
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fun transform_prem2 ctxt names thm =
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  map_thm ctxt (split_conj2 names) (etac conjunct2 1) thm
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2397
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(* transformes a theorem into one of the object logic *)
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val atomize = Conv.fconv_rule Object_Logic.atomize o forall_intr_vars
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1833
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end (* structure *)
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open Nominal_Library;