src/HOL/Tools/Ctr_Sugar/ctr_sugar_util.ML
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use the noted theorem whenever possible, also in 'BNF_Def'
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(*  Title:      HOL/Tools/Ctr_Sugar/ctr_sugar_util.ML
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    Author:     Dmitriy Traytel, TU Muenchen
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    Author:     Jasmin Blanchette, TU Muenchen
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    Copyright   2012, 2013
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Library for wrapping existing freely generated type's constructors.
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*)
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signature CTR_SUGAR_UTIL =
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sig
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  val map_prod: ('a -> 'b) -> ('c -> 'd) -> 'a * 'c -> 'b * 'd
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  val map3: ('a -> 'b -> 'c -> 'd) -> 'a list -> 'b list -> 'c list -> 'd list
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  val map4: ('a -> 'b -> 'c -> 'd -> 'e) -> 'a list -> 'b list -> 'c list -> 'd list -> 'e list
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  val map5: ('a -> 'b -> 'c -> 'd -> 'e -> 'f) ->
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    'a list -> 'b list -> 'c list -> 'd list -> 'e list -> 'f list
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  val fold_map2: ('a -> 'b -> 'c -> 'd * 'c) -> 'a list -> 'b list -> 'c -> 'd list * 'c
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  val fold_map3: ('a -> 'b -> 'c -> 'd -> 'e * 'd) ->
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    'a list -> 'b list -> 'c list -> 'd -> 'e list * 'd
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  val seq_conds: (bool -> 'a -> 'b) -> int -> int -> 'a list -> 'b list
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  val transpose: 'a list list -> 'a list list
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  val pad_list: 'a -> int -> 'a list -> 'a list
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  val splice: 'a list -> 'a list -> 'a list
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  val permute_like_unique: ('a * 'b -> bool) -> 'a list -> 'b list -> 'c list -> 'c list
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  val permute_like: ('a * 'a -> bool) -> 'a list -> 'a list -> 'b list -> 'b list
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  val mk_names: int -> string -> string list
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  val mk_fresh_names: Proof.context -> int -> string -> string list * Proof.context
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  val mk_TFrees': sort list -> Proof.context -> typ list * Proof.context
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  val mk_TFrees: int -> Proof.context -> typ list * Proof.context
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  val mk_Frees': string -> typ list -> Proof.context ->
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    (term list * (string * typ) list) * Proof.context
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  val mk_Freess': string -> typ list list -> Proof.context ->
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    (term list list * (string * typ) list list) * Proof.context
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  val mk_Frees: string -> typ list -> Proof.context -> term list * Proof.context
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  val mk_Freess: string -> typ list list -> Proof.context -> term list list * Proof.context
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  val resort_tfree: sort -> typ -> typ
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  val variant_types: string list -> sort list -> Proof.context ->
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    (string * sort) list * Proof.context
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  val variant_tfrees: string list -> Proof.context -> typ list * Proof.context
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  val typ_subst_nonatomic: (typ * typ) list -> typ -> typ
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  val subst_nonatomic_types: (typ * typ) list -> term -> term
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  val lhs_head_of : thm -> term
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  val mk_predT: typ list -> typ
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  val mk_pred1T: typ -> typ
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  val mk_disjIN: int -> int -> thm
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  val mk_unabs_def: int -> thm -> thm
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  val mk_IfN: typ -> term list -> term list -> term
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  val mk_Trueprop_eq: term * term -> term
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  val mk_Trueprop_mem: term * term -> term
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  val rapp: term -> term -> term
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  val list_all_free: term list -> term -> term
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  val list_exists_free: term list -> term -> term
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  val fo_match: Proof.context -> term -> term -> Type.tyenv * Envir.tenv
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  val cterm_instantiate_pos: cterm option list -> thm -> thm
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  val unfold_thms: Proof.context -> thm list -> thm -> thm
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  val certifyT: Proof.context -> typ -> ctyp
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  val certify: Proof.context -> term -> cterm
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  val substitute_noted_thm: (string * thm list) list -> morphism
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  val standard_binding: binding
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  val parse_binding_colon: binding parser
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  val parse_opt_binding_colon: binding parser
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  val ss_only: thm list -> Proof.context -> Proof.context
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  val WRAP: ('a -> tactic) -> ('a -> tactic) -> 'a list -> tactic -> tactic
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  val WRAP': ('a -> int -> tactic) -> ('a -> int -> tactic) -> 'a list -> (int -> tactic) -> int ->
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    tactic
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  val CONJ_WRAP_GEN: tactic -> ('a -> tactic) -> 'a list -> tactic
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  val CONJ_WRAP_GEN': (int -> tactic) -> ('a -> int -> tactic) -> 'a list -> int -> tactic
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  val CONJ_WRAP: ('a -> tactic) -> 'a list -> tactic
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  val CONJ_WRAP': ('a -> int -> tactic) -> 'a list -> int -> tactic
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end;
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structure Ctr_Sugar_Util : CTR_SUGAR_UTIL =
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struct
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fun map_prod f g (x, y) = (f x, g y)
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fun map3 _ [] [] [] = []
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  | map3 f (x1::x1s) (x2::x2s) (x3::x3s) = f x1 x2 x3 :: map3 f x1s x2s x3s
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  | map3 _ _ _ _ = raise ListPair.UnequalLengths;
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fun map4 _ [] [] [] [] = []
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  | map4 f (x1::x1s) (x2::x2s) (x3::x3s) (x4::x4s) = f x1 x2 x3 x4 :: map4 f x1s x2s x3s x4s
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  | map4 _ _ _ _ _ = raise ListPair.UnequalLengths;
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fun map5 _ [] [] [] [] [] = []
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  | map5 f (x1::x1s) (x2::x2s) (x3::x3s) (x4::x4s) (x5::x5s) =
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    f x1 x2 x3 x4 x5 :: map5 f x1s x2s x3s x4s x5s
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  | map5 _ _ _ _ _ _ = raise ListPair.UnequalLengths;
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fun fold_map2 _ [] [] acc = ([], acc)
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  | fold_map2 f (x1::x1s) (x2::x2s) acc =
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    let
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      val (x, acc') = f x1 x2 acc;
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      val (xs, acc'') = fold_map2 f x1s x2s acc';
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    in (x :: xs, acc'') end
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  | fold_map2 _ _ _ _ = raise ListPair.UnequalLengths;
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fun fold_map3 _ [] [] [] acc = ([], acc)
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  | fold_map3 f (x1::x1s) (x2::x2s) (x3::x3s) acc =
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    let
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      val (x, acc') = f x1 x2 x3 acc;
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      val (xs, acc'') = fold_map3 f x1s x2s x3s acc';
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    in (x :: xs, acc'') end
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  | fold_map3 _ _ _ _ _ = raise ListPair.UnequalLengths;
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fun seq_conds f n k xs =
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  if k = n then
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    map (f false) (take (k - 1) xs)
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  else
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    let val (negs, pos) = split_last (take k xs) in
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      map (f false) negs @ [f true pos]
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    end;
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fun transpose [] = []
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  | transpose ([] :: xss) = transpose xss
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  | transpose xss = map hd xss :: transpose (map tl xss);
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fun pad_list x n xs = xs @ replicate (n - length xs) x;
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fun splice xs ys = flat (map2 (fn x => fn y => [x, y]) xs ys);
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fun permute_like_unique eq xs xs' ys =
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  map (nth ys o (fn y => find_index (fn x => eq (x, y)) xs)) xs';
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fun fresh eq x names =
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  (case AList.lookup eq names x of
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    NONE => ((x, 0), (x, 0) :: names)
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  | SOME n => ((x, n + 1), AList.update eq (x, n + 1) names));
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fun deambiguate eq xs = fst (fold_map (fresh eq) xs []);
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fun permute_like eq xs xs' =
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  permute_like_unique (eq_pair eq (op =)) (deambiguate eq xs) (deambiguate eq xs');
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fun mk_names n x = if n = 1 then [x] else map (fn i => x ^ string_of_int i) (1 upto n);
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fun mk_fresh_names ctxt = (fn xs => Variable.variant_fixes xs ctxt) oo mk_names;
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val mk_TFrees' = apfst (map TFree) oo Variable.invent_types;
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fun mk_TFrees n = mk_TFrees' (replicate n @{sort type});
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fun mk_Frees' x Ts ctxt = mk_fresh_names ctxt (length Ts) x |>> (fn xs => `(map Free) (xs ~~ Ts));
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fun mk_Freess' x Tss = fold_map2 mk_Frees' (mk_names (length Tss) x) Tss #>> split_list;
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fun mk_Frees x Ts ctxt = mk_fresh_names ctxt (length Ts) x |>> (fn xs => map2 (curry Free) xs Ts);
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fun mk_Freess x Tss = fold_map2 mk_Frees (mk_names (length Tss) x) Tss;
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fun resort_tfree S (TFree (s, _)) = TFree (s, S);
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fun ensure_prefix pre s = s |> not (String.isPrefix pre s) ? prefix pre;
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fun variant_types ss Ss ctxt =
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  let
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    val (tfrees, _) =
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      fold_map2 (fn s => fn S => Name.variant s #> apfst (rpair S)) ss Ss (Variable.names_of ctxt);
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    val ctxt' = fold (Variable.declare_constraints o Logic.mk_type o TFree) tfrees ctxt;
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  in (tfrees, ctxt') end;
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fun variant_tfrees ss =
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  apfst (map TFree) o
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    variant_types (map (ensure_prefix "'") ss) (replicate (length ss) @{sort type});
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(*Replace each Ti by Ui (starting from the leaves); inst = [(T1, U1), ..., (Tn, Un)].*)
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fun typ_subst_nonatomic [] = I
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  | typ_subst_nonatomic inst =
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    let
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      fun subst (Type (s, Ts)) = perhaps (AList.lookup (op =) inst) (Type (s, map subst Ts))
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        | subst T = perhaps (AList.lookup (op =) inst) T;
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    in subst end;
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fun subst_nonatomic_types [] = I
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  | subst_nonatomic_types inst = map_types (typ_subst_nonatomic inst);
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fun lhs_head_of thm = Term.head_of (fst (HOLogic.dest_eq (HOLogic.dest_Trueprop (prop_of thm))));
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fun mk_predT Ts = Ts ---> HOLogic.boolT;
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fun mk_pred1T T = mk_predT [T];
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fun mk_disjIN 1 1 = @{thm TrueE[OF TrueI]}
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  | mk_disjIN _ 1 = disjI1
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  | mk_disjIN 2 2 = disjI2
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  | mk_disjIN n m = (mk_disjIN (n - 1) (m - 1)) RS disjI2;
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fun mk_unabs_def n = funpow n (fn thm => thm RS fun_cong);
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fun mk_IfN _ _ [t] = t
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  | mk_IfN T (c :: cs) (t :: ts) =
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    Const (@{const_name If}, HOLogic.boolT --> T --> T --> T) $ c $ t $ mk_IfN T cs ts;
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val mk_Trueprop_eq = HOLogic.mk_Trueprop o HOLogic.mk_eq;
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val mk_Trueprop_mem = HOLogic.mk_Trueprop o HOLogic.mk_mem;
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fun rapp u t = betapply (t, u);
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fun list_quant_free quant_const =
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  fold_rev (fn Free (xT as (_, T)) => fn P => quant_const T $ Term.absfree xT P);
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val list_all_free = list_quant_free HOLogic.all_const;
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val list_exists_free = list_quant_free HOLogic.exists_const;
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fun fo_match ctxt t pat =
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  let val thy = Proof_Context.theory_of ctxt in
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    Pattern.first_order_match thy (pat, t) (Vartab.empty, Vartab.empty)
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  end;
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fun cterm_instantiate_pos cts thm =
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  let
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    val cert = Thm.cterm_of (Thm.theory_of_thm thm);
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    val vars = Term.add_vars (prop_of thm) [];
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    val vars' = rev (drop (length vars - length cts) vars);
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    val ps = map_filter (fn (_, NONE) => NONE
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      | (var, SOME ct) => SOME (cert (Var var), ct)) (vars' ~~ cts);
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  in
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    Drule.cterm_instantiate ps thm
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  end;
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fun unfold_thms ctxt thms = Local_Defs.unfold ctxt (distinct Thm.eq_thm_prop thms);
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(*stolen from ~~/src/HOL/Tools/SMT/smt_utils.ML*)
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fun certifyT ctxt = Thm.ctyp_of (Proof_Context.theory_of ctxt);
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fun certify ctxt = Thm.cterm_of (Proof_Context.theory_of ctxt);
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fun substitute_noted_thm noted =
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  let val tab = fold (fold (Termtab.default o `Thm.full_prop_of) o snd) noted Termtab.empty in
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    Morphism.thm_morphism "Ctr_Sugar_Util.substitute_noted_thm"
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      (perhaps (Termtab.lookup tab o Thm.full_prop_of) o Drule.zero_var_indexes)
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  end
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(* The standard binding stands for a name generated following the canonical convention (e.g.,
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   "is_Nil" from "Nil"). In contrast, the empty binding is either the standard binding or no
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   binding at all, depending on the context. *)
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val standard_binding = @{binding _};
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val parse_binding_colon = Parse.binding --| @{keyword ":"};
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val parse_opt_binding_colon = Scan.optional parse_binding_colon Binding.empty;
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fun ss_only thms ctxt = clear_simpset (put_simpset HOL_basic_ss ctxt) addsimps thms;
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(*Tactical WRAP surrounds a static given tactic (core) with two deterministic chains of tactics*)
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fun WRAP gen_before gen_after xs core_tac =
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  fold_rev (fn x => fn tac => gen_before x THEN tac THEN gen_after x) xs core_tac;
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fun WRAP' gen_before gen_after xs core_tac =
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  fold_rev (fn x => fn tac => gen_before x THEN' tac THEN' gen_after x) xs core_tac;
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fun CONJ_WRAP_GEN conj_tac gen_tac xs =
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  let val (butlast, last) = split_last xs;
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  in WRAP (fn thm => conj_tac THEN gen_tac thm) (K all_tac) butlast (gen_tac last) end;
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fun CONJ_WRAP_GEN' conj_tac gen_tac xs =
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  let val (butlast, last) = split_last xs;
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  in WRAP' (fn thm => conj_tac THEN' gen_tac thm) (K (K all_tac)) butlast (gen_tac last) end;
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(*not eta-converted because of monotype restriction*)
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fun CONJ_WRAP gen_tac = CONJ_WRAP_GEN (rtac conjI 1) gen_tac;
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fun CONJ_WRAP' gen_tac = CONJ_WRAP_GEN' (rtac conjI) gen_tac;
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end;