Nominal/nominal_dt_rawfuns.ML
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proved that bn functions return a finite set
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(*  Title:      nominal_dt_rawfuns.ML
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    Author:     Cezary Kaliszyk
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    Author:     Christian Urban
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  Definitions of the raw fv and fv_bn functions
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*)
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signature NOMINAL_DT_RAWFUNS =
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sig
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  (* info of raw datatypes *)
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  type dt_info = string list * binding * mixfix * ((binding * typ list * mixfix) list) list
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  (* info of raw binding functions *)
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  type bn_info = term * int * (int * term option) list list
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  (* binding modes and binding clauses *)
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  datatype bmode = Lst | Res | Set
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  datatype bclause = BC of bmode * (term option * int) list * int list
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  val is_atom: Proof.context -> typ -> bool
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  val is_atom_set: Proof.context -> typ -> bool
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  val is_atom_fset: Proof.context -> typ -> bool
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  val is_atom_list: Proof.context -> typ -> bool
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  val mk_atom_set: term -> term
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  val mk_atom_fset: term -> term
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  val setify: Proof.context -> term -> term
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  val listify: Proof.context -> term -> term
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  (* FIXME: should be here - currently in Nominal2.thy
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  val define_raw_bns: string list -> dt_info -> (binding * typ option * mixfix) list ->
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    (Attrib.binding * term) list -> thm list -> thm list -> local_theory ->
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    (term list * thm list * bn_info list * thm list * local_theory) 
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  *)
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  val define_raw_fvs: string list -> typ list -> cns_info list -> bn_info list -> bclause list list list -> 
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    thm list -> thm list -> Proof.context -> term list * term list * thm list * thm list * local_theory
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  val define_raw_bn_perms: typ list -> bn_info list -> cns_info list -> thm list -> thm list -> 
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    local_theory -> (term list * thm list * local_theory)
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  val raw_prove_eqvt: term list -> thm list -> thm list -> Proof.context -> thm list
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end
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structure Nominal_Dt_RawFuns: NOMINAL_DT_RAWFUNS =
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struct
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(* string list      - type variables of a datatype
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   binding          - name of the datatype
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   mixfix           - its mixfix
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   (binding * typ list * mixfix) list  - datatype constructors of the type
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*)  
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type dt_info = string list * binding * mixfix * ((binding * typ list * mixfix) list) list
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(* term              - is constant of the bn-function 
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   int               - is datatype number over which the bn-function is defined
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   int * term option - is number of the corresponding argument with possibly
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                       recursive call with bn-function term 
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*)  
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type bn_info = term * int * (int * term option) list list
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datatype bmode = Lst | Res | Set
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datatype bclause = BC of bmode * (term option * int) list * int list
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fun lookup xs x = the (AList.lookup (op=) xs x)
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(* testing for concrete atom types *)
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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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(* functions for producing sets, fsets and lists of general atom type
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   out from concrete atom types *)
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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 dest_fsetT (Type (@{type_name fset}, [T])) = T
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  | dest_fsetT T = raise TYPE ("dest_fsetT: fset type expected", [T], []);
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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
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    val fmap_ty = (atom_ty --> @{typ atom}) --> ty --> @{typ "atom fset"};
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    val fset = @{term "fset :: atom fset => atom set"}
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  in
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    fset $ (Const (@{const_name map_fset}, fmap_ty) $ (atom_const 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
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    val map_ty = (atom_ty --> @{typ atom}) --> ty --> @{typ "atom list"}
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  in
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    Const (@{const_name map}, map_ty) $ (atom_const atom_ty) $ t
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  end
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(* functions that coerces singletons, sets and fsets of concrete atoms
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   into sets of general atoms *)
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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 raise TERM ("setify", [t])
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  end
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(* functions that coerces singletons and lists of concrete atoms
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   into lists of general atoms  *)
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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_list t
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    else raise TERM ("listify", [t])
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  end
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(** functions that construct the equations for fv and fv_bn **)
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fun mk_fv_rhs lthy fv_map fv_bn_map args (BC (bmode, binders, bodies)) =
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  let
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    fun mk_fv_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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  fun mk_fv_binder lthy fv_bn_map args binders = 
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    let
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      fun bind_set lthy args (NONE, i) = (setify lthy (nth args i), @{term "{}::atom set"})
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        | bind_set _ args (SOME bn, i) = (bn $ (nth args i), 
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            if  member (op=) bodies i then @{term "{}::atom set"}  
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            else lookup fv_bn_map bn $ (nth args i))
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      fun bind_lst lthy args (NONE, i) = (listify lthy (nth args i), @{term "[]::atom list"})
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        | bind_lst _ args (SOME bn, i) = (bn $ (nth args i),
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            if  member (op=) bodies i then @{term "[]::atom list"}  
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            else lookup fv_bn_map bn $ (nth args i)) 
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      val (combine_fn, bind_fn) =
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        case bmode of
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          Lst => (fold_append, bind_lst) 
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        | Set => (fold_union, bind_set)
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        | Res => (fold_union, bind_set)
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    in
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      binders
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      |> map (bind_fn lthy args)
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      |> split_list
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      |> pairself combine_fn
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    end  
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    val t1 = map (mk_fv_body fv_map args) bodies
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    val (t2, t3) = mk_fv_binder lthy fv_bn_map args binders
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  in 
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    mk_union (mk_diff (fold_union t1, to_set t2), to_set t3)
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  end
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(* in case of fv_bn we have to treat the case special, where an
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   "empty" binding clause is given *)
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fun mk_fv_bn_rhs lthy fv_map fv_bn_map bn_args args bclause =
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  let
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    fun mk_fv_bn_body 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) => lookup fv_bn_map bn $ arg
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    end  
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  in
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    case bclause of
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      BC (_, [], bodies) => fold_union (map mk_fv_bn_body bodies)
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    | _ => mk_fv_rhs lthy fv_map fv_bn_map args bclause
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  end
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fun mk_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 = lookup fv_map ty
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    val lhs = fv $ list_comb (constr, args)
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    val rhs_trms = map (mk_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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fun mk_fv_bn_eq lthy bn_trm fv_map fv_bn_map (bn_args, (constr, _, 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 = lookup 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 (mk_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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fun mk_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 (mk_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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fun define_raw_fvs raw_full_ty_names raw_tys cns_info bn_info bclausesss constr_thms size_simps lthy =
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  let
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    val fv_names = map (prefix "fv_" o Long_Name.base_name) raw_full_ty_names
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    val fv_tys = map (fn ty => ty --> @{typ "atom set"}) raw_tys
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    val fv_frees = map Free (fv_names ~~ fv_tys);
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    val fv_map = raw_tys ~~ fv_frees
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    val (bns, bn_tys) = split_list (map (fn (bn, i, _) => (bn, i)) bn_info)
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    val bn_names = map (fn bn => Long_Name.base_name (fst (dest_Const bn))) bns
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    val fv_bn_names = map (prefix "fv_") bn_names
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    val fv_bn_arg_tys = map (nth raw_tys) bn_tys
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    val fv_bn_tys = map (fn ty => ty --> @{typ "atom set"}) fv_bn_arg_tys
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    val fv_bn_frees = map Free (fv_bn_names ~~ fv_bn_tys)
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    val fv_bn_map = bns ~~ fv_bn_frees
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    val fv_eqs = map2 (map2 (mk_fv_eq lthy fv_map fv_bn_map)) cns_info bclausesss 
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    val fv_bn_eqs = map (mk_fv_bn_eqs lthy fv_map fv_bn_map cns_info bclausesss) bn_info
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    val all_fun_names = map (fn s => (Binding.name s, NONE, NoSyn)) (fv_names @ fv_bn_names)
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    val all_fun_eqs = map (pair Attrib.empty_binding) (flat fv_eqs @ flat fv_bn_eqs)
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    val (_, lthy') = Function.add_function all_fun_names all_fun_eqs
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      Function_Common.default_config (pat_completeness_simp constr_thms) lthy
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    val (info, lthy'') = prove_termination size_simps (Local_Theory.restore lthy')
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    val {fs, simps, inducts, ...} = info;
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    val morphism = ProofContext.export_morphism lthy'' lthy
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    val simps_exp = map (Morphism.thm morphism) (the simps)
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    val inducts_exp = map (Morphism.thm morphism) (the inducts)
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    val (fvs', fv_bns') = chop (length fv_frees) fs
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  in
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    (fvs', fv_bns', simps_exp, inducts_exp, lthy'')
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  end
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(** definition of raw permute_bn functions **)
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fun mk_perm_bn_eq_rhs p perm_bn_map bn_args (i, arg) = 
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  case AList.lookup (op=) bn_args i of
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    NONE => arg
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  | SOME (NONE) => mk_perm p arg
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  | SOME (SOME bn) => (lookup perm_bn_map bn) $ p $ arg   
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fun mk_perm_bn_eq lthy bn_trm perm_bn_map bn_args (constr, _, arg_tys, _) =
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  let
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    val p = Free ("p", @{typ perm})
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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 perm_bn = lookup perm_bn_map bn_trm
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    val lhs = perm_bn $ p $ list_comb (constr, args)
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    val rhs = list_comb (constr, map_index (mk_perm_bn_eq_rhs p perm_bn_map bn_args) args)
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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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fun mk_perm_bn_eqs lthy perm_bn_map cns_info (bn_trm, bn_n, bn_argss) = 
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  let
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    val nth_cns_info = nth cns_info bn_n
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  in
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    map2 (mk_perm_bn_eq lthy bn_trm perm_bn_map) bn_argss nth_cns_info
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  end
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fun define_raw_bn_perms raw_tys bn_info cns_info cns_thms size_thms lthy =
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  if null bn_info
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  then ([], [], lthy)
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  else
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    let
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      val (bns, bn_tys) = split_list (map (fn (bn, i, _) => (bn, i)) bn_info)
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      val bn_names = map (fn bn => Long_Name.base_name (fst (dest_Const bn))) bns
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      val perm_bn_names = map (prefix "permute_") bn_names
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      val perm_bn_arg_tys = map (nth raw_tys) bn_tys
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      val perm_bn_tys = map (fn ty => @{typ "perm"} --> ty --> ty) perm_bn_arg_tys
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      val perm_bn_frees = map Free (perm_bn_names ~~ perm_bn_tys)
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      val perm_bn_map = bns ~~ perm_bn_frees
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      val perm_bn_eqs = map (mk_perm_bn_eqs lthy perm_bn_map cns_info) bn_info
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      val all_fun_names = map (fn s => (Binding.name s, NONE, NoSyn)) perm_bn_names
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      val all_fun_eqs = map (pair Attrib.empty_binding) (flat perm_bn_eqs)
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      val prod_simps = @{thms prod.inject HOL.simp_thms}
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      val (_, lthy') = Function.add_function all_fun_names all_fun_eqs
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        Function_Common.default_config (pat_completeness_simp (prod_simps @ cns_thms)) lthy
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      val (info, lthy'') = prove_termination size_thms (Local_Theory.restore lthy')
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      val {fs, simps, ...} = info;
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      val morphism = ProofContext.export_morphism lthy'' lthy
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      val simps_exp = map (Morphism.thm morphism) (the simps)
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    in
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      (fs, simps_exp, lthy'')
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    end
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(** equivarance proofs **)
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val eqvt_apply_sym = @{thm eqvt_apply[symmetric]}
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fun subproof_tac const_names simps = 
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  SUBPROOF (fn {prems, context, ...} => 
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    HEADGOAL 
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      (simp_tac (HOL_basic_ss addsimps simps)
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       THEN' Nominal_Permeq.eqvt_tac context [] const_names
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       THEN' simp_tac (HOL_basic_ss addsimps (prems @ [eqvt_apply_sym]))))
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fun prove_eqvt_tac insts ind_thms const_names simps ctxt = 
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  HEADGOAL
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    (Object_Logic.full_atomize_tac
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     THEN' (DETERM o (InductTacs.induct_rules_tac ctxt insts ind_thms))  
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     THEN_ALL_NEW  subproof_tac const_names simps ctxt)
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fun mk_eqvt_goal pi const arg =
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  let
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    val lhs = mk_perm pi (const $ arg)
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    val rhs = const $ (mk_perm pi arg)  
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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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fun raw_prove_eqvt consts ind_thms simps ctxt =
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  if null consts then []
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  else
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    let 
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      val ([p], ctxt') = Variable.variant_fixes ["p"] ctxt
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      val p = Free (p, @{typ perm})
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      val arg_tys = 
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        consts
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        |> map fastype_of
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        |> map domain_type 
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      val (arg_names, ctxt'') = 
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        Variable.variant_fixes (Datatype_Prop.make_tnames arg_tys) ctxt'
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      val args = map Free (arg_names ~~ arg_tys)
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      val goals = map2 (mk_eqvt_goal p) consts args
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      val insts = map (single o SOME) arg_names
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      val const_names = map (fst o dest_Const) consts      
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    in
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      Goal.prove_multi ctxt'' [] [] goals (fn {context, ...} => 
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        prove_eqvt_tac insts ind_thms const_names simps context)
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      |> ProofContext.export ctxt'' ctxt
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    end
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end (* structure *)
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