src/HOL/HOLCF/Tools/cpodef.ML
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child 46909 3c73a121a387
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modernized signature of Term.absfree/absdummy; eliminated obsolete Term.list_abs_free;
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(*  Title:      HOL/HOLCF/Tools/cpodef.ML
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    Author:     Brian Huffman
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Primitive domain definitions for HOLCF, similar to Gordon/HOL-style
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typedef (see also ~~/src/HOL/Tools/typedef.ML).
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*)
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signature CPODEF =
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sig
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  type cpo_info =
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    { below_def: thm, adm: thm, cont_Rep: thm, cont_Abs: thm,
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      lub: thm, compact: thm }
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  type pcpo_info =
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    { Rep_strict: thm, Abs_strict: thm,
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      Rep_bottom_iff: thm, Abs_bottom_iff: thm }
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  val add_podef: bool -> binding option -> binding * (string * sort) list * mixfix ->
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    term -> (binding * binding) option -> tactic -> theory ->
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    (Typedef.info * thm) * theory
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  val add_cpodef: bool -> binding option -> binding * (string * sort) list * mixfix ->
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    term -> (binding * binding) option -> tactic * tactic -> theory ->
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    (Typedef.info * cpo_info) * theory
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  val add_pcpodef: bool -> binding option -> binding * (string * sort) list * mixfix ->
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    term -> (binding * binding) option -> tactic * tactic -> theory ->
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    (Typedef.info * cpo_info * pcpo_info) * theory
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  val cpodef_proof: (bool * binding)
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    * (binding * (string * sort) list * mixfix) * term
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    * (binding * binding) option -> theory -> Proof.state
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  val cpodef_proof_cmd: (bool * binding)
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    * (binding * (string * string option) list * mixfix) * string
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    * (binding * binding) option -> theory -> Proof.state
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  val pcpodef_proof: (bool * binding)
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    * (binding * (string * sort) list * mixfix) * term
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    * (binding * binding) option -> theory -> Proof.state
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  val pcpodef_proof_cmd: (bool * binding)
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    * (binding * (string * string option) list * mixfix) * string
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    * (binding * binding) option -> theory -> Proof.state
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end
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structure Cpodef : CPODEF =
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struct
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(** type definitions **)
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type cpo_info =
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  { below_def: thm, adm: thm, cont_Rep: thm, cont_Abs: thm,
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    lub: thm, compact: thm }
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type pcpo_info =
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  { Rep_strict: thm, Abs_strict: thm,
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    Rep_bottom_iff: thm, Abs_bottom_iff: thm }
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(* building terms *)
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fun adm_const T = Const (@{const_name adm}, (T --> HOLogic.boolT) --> HOLogic.boolT)
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fun mk_adm (x, T, P) = adm_const T $ absfree (x, T) P
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fun below_const T = Const (@{const_name below}, T --> T --> HOLogic.boolT)
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(* manipulating theorems *)
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fun fold_adm_mem thm NONE = thm
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  | fold_adm_mem thm (SOME set_def) =
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    let val rule = @{lemma "A == B ==> adm (%x. x : B) ==> adm (%x. x : A)" by simp}
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    in rule OF [set_def, thm] end
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fun fold_bottom_mem thm NONE = thm
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  | fold_bottom_mem thm (SOME set_def) =
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    let val rule = @{lemma "A == B ==> bottom : B ==> bottom : A" by simp}
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    in rule OF [set_def, thm] end
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(* proving class instances *)
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fun prove_cpo
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      (name: binding)
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      (newT: typ)
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      (Rep_name: binding, Abs_name: binding)
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      (type_definition: thm)  (* type_definition Rep Abs A *)
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      (set_def: thm option)   (* A == set *)
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      (below_def: thm)        (* op << == %x y. Rep x << Rep y *)
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      (admissible: thm)       (* adm (%x. x : set) *)
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      (thy: theory)
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    =
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  let
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    val admissible' = fold_adm_mem admissible set_def
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    val cpo_thms = map (Thm.transfer thy) [type_definition, below_def, admissible']
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    val (full_tname, Ts) = dest_Type newT
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    val lhs_sorts = map (snd o dest_TFree) Ts
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    val tac = Tactic.rtac (@{thm typedef_cpo} OF cpo_thms) 1
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    val thy = AxClass.prove_arity (full_tname, lhs_sorts, @{sort cpo}) tac thy
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    (* transfer thms so that they will know about the new cpo instance *)
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    val cpo_thms' = map (Thm.transfer thy) cpo_thms
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    fun make thm = Drule.zero_var_indexes (thm OF cpo_thms')
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    val cont_Rep = make @{thm typedef_cont_Rep}
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    val cont_Abs = make @{thm typedef_cont_Abs}
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    val lub = make @{thm typedef_lub}
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    val compact = make @{thm typedef_compact}
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    val (_, thy) =
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      thy
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      |> Sign.add_path (Binding.name_of name)
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      |> Global_Theory.add_thms
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        ([((Binding.prefix_name "adm_"      name, admissible'), []),
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          ((Binding.prefix_name "cont_" Rep_name, cont_Rep   ), []),
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          ((Binding.prefix_name "cont_" Abs_name, cont_Abs   ), []),
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          ((Binding.prefix_name "lub_"      name, lub        ), []),
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          ((Binding.prefix_name "compact_"  name, compact    ), [])])
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      ||> Sign.parent_path
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    val cpo_info : cpo_info =
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      { below_def = below_def, adm = admissible', cont_Rep = cont_Rep,
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        cont_Abs = cont_Abs, lub = lub, compact = compact }
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  in
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    (cpo_info, thy)
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  end
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fun prove_pcpo
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      (name: binding)
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      (newT: typ)
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      (Rep_name: binding, Abs_name: binding)
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      (type_definition: thm)  (* type_definition Rep Abs A *)
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      (set_def: thm option)   (* A == set *)
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      (below_def: thm)        (* op << == %x y. Rep x << Rep y *)
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      (bottom_mem: thm)       (* bottom : set *)
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      (thy: theory)
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    =
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  let
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    val bottom_mem' = fold_bottom_mem bottom_mem set_def
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    val pcpo_thms = map (Thm.transfer thy) [type_definition, below_def, bottom_mem']
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    val (full_tname, Ts) = dest_Type newT
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    val lhs_sorts = map (snd o dest_TFree) Ts
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    val tac = Tactic.rtac (@{thm typedef_pcpo} OF pcpo_thms) 1
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    val thy = AxClass.prove_arity (full_tname, lhs_sorts, @{sort pcpo}) tac thy
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    val pcpo_thms' = map (Thm.transfer thy) pcpo_thms
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    fun make thm = Drule.zero_var_indexes (thm OF pcpo_thms')
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    val Rep_strict = make @{thm typedef_Rep_strict}
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    val Abs_strict = make @{thm typedef_Abs_strict}
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    val Rep_bottom_iff = make @{thm typedef_Rep_bottom_iff}
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    val Abs_bottom_iff = make @{thm typedef_Abs_bottom_iff}
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    val (_, thy) =
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      thy
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      |> Sign.add_path (Binding.name_of name)
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      |> Global_Theory.add_thms
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        ([((Binding.suffix_name "_strict"     Rep_name, Rep_strict), []),
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          ((Binding.suffix_name "_strict"     Abs_name, Abs_strict), []),
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          ((Binding.suffix_name "_bottom_iff" Rep_name, Rep_bottom_iff), []),
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          ((Binding.suffix_name "_bottom_iff" Abs_name, Abs_bottom_iff), [])])
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      ||> Sign.parent_path
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    val pcpo_info =
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      { Rep_strict = Rep_strict, Abs_strict = Abs_strict,
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        Rep_bottom_iff = Rep_bottom_iff, Abs_bottom_iff = Abs_bottom_iff }
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  in
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    (pcpo_info, thy)
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  end
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(* prepare_cpodef *)
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fun prepare prep_term name (tname, raw_args, _) raw_set opt_morphs thy =
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  let
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    val _ = Theory.requires thy "Cpodef" "cpodefs"
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    (*rhs*)
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    val tmp_ctxt =
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      Proof_Context.init_global thy
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      |> fold (Variable.declare_typ o TFree) raw_args
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    val set = prep_term tmp_ctxt raw_set
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    val tmp_ctxt' = tmp_ctxt |> Variable.declare_term set
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    val setT = Term.fastype_of set
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    val oldT = HOLogic.dest_setT setT handle TYPE _ =>
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      error ("Not a set type: " ^ quote (Syntax.string_of_typ tmp_ctxt setT))
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    (*lhs*)
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    val lhs_tfrees = map (Proof_Context.check_tfree tmp_ctxt') raw_args
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    val full_tname = Sign.full_name thy tname
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    val newT = Type (full_tname, map TFree lhs_tfrees)
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    val morphs = opt_morphs
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      |> the_default (Binding.prefix_name "Rep_" name, Binding.prefix_name "Abs_" name)
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  in
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    (newT, oldT, set, morphs)
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  end
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fun add_podef def opt_name typ set opt_morphs tac thy =
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  let
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    val name = the_default (#1 typ) opt_name
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    val ((full_tname, info as ({Rep_name, ...}, {type_definition, ...})), thy) = thy
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      |> Typedef.add_typedef_global def opt_name typ set opt_morphs tac
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    val oldT = #rep_type (#1 info)
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    val newT = #abs_type (#1 info)
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    val lhs_tfrees = map dest_TFree (snd (dest_Type newT))
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    val RepC = Const (Rep_name, newT --> oldT)
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    val below_eqn = Logic.mk_equals (below_const newT,
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      Abs ("x", newT, Abs ("y", newT, below_const oldT $ (RepC $ Bound 1) $ (RepC $ Bound 0))))
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    val ((_, (_, below_ldef)), lthy) = thy
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      |> Class.instantiation ([full_tname], lhs_tfrees, @{sort po})
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      |> Specification.definition (NONE,
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          ((Binding.prefix_name "below_" (Binding.suffix_name "_def" name), []), below_eqn))
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    val ctxt_thy = Proof_Context.init_global (Proof_Context.theory_of lthy)
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    val below_def = singleton (Proof_Context.export lthy ctxt_thy) below_ldef
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    val thy = lthy
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      |> Class.prove_instantiation_exit
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          (K (Tactic.rtac (@{thm typedef_po} OF [type_definition, below_def]) 1))
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  in ((info, below_def), thy) end
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fun prepare_cpodef
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      (prep_term: Proof.context -> 'a -> term)
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      (def: bool)
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      (name: binding)
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      (typ: binding * (string * sort) list * mixfix)
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      (raw_set: 'a)
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      (opt_morphs: (binding * binding) option)
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      (thy: theory)
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    : term * term * (thm -> thm -> theory -> (Typedef.info * cpo_info) * theory) =
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  let
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    val (newT, oldT, set, morphs) =
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      prepare prep_term name typ raw_set opt_morphs thy
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    val goal_nonempty =
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      HOLogic.mk_Trueprop (HOLogic.mk_exists ("x", oldT, HOLogic.mk_mem (Free ("x", oldT), set)))
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    val goal_admissible =
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      HOLogic.mk_Trueprop (mk_adm ("x", oldT, HOLogic.mk_mem (Free ("x", oldT), set)))
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    fun cpodef_result nonempty admissible thy =
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      let
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        val ((info as (_, {type_definition, set_def, ...}), below_def), thy) = thy
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          |> add_podef def (SOME name) typ set opt_morphs (Tactic.rtac nonempty 1)
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        val (cpo_info, thy) = thy
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          |> prove_cpo name newT morphs type_definition set_def below_def admissible
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      in
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        ((info, cpo_info), thy)
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      end
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  in
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    (goal_nonempty, goal_admissible, cpodef_result)
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  end
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  handle ERROR msg =>
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    cat_error msg ("The error(s) above occurred in cpodef " ^ Binding.print name)
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fun prepare_pcpodef
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      (prep_term: Proof.context -> 'a -> term)
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      (def: bool)
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      (name: binding)
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      (typ: binding * (string * sort) list * mixfix)
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      (raw_set: 'a)
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      (opt_morphs: (binding * binding) option)
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      (thy: theory)
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    : term * term * (thm -> thm -> theory -> (Typedef.info * cpo_info * pcpo_info) * theory) =
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  let
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    val (newT, oldT, set, morphs) =
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      prepare prep_term name typ raw_set opt_morphs thy
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    val goal_bottom_mem =
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      HOLogic.mk_Trueprop (HOLogic.mk_mem (Const (@{const_name bottom}, oldT), set))
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    val goal_admissible =
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      HOLogic.mk_Trueprop (mk_adm ("x", oldT, HOLogic.mk_mem (Free ("x", oldT), set)))
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    fun pcpodef_result bottom_mem admissible thy =
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      let
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        val tac = Tactic.rtac exI 1 THEN Tactic.rtac bottom_mem 1
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        val ((info as (_, {type_definition, set_def, ...}), below_def), thy) = thy
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          |> add_podef def (SOME name) typ set opt_morphs tac
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        val (cpo_info, thy) = thy
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          |> prove_cpo name newT morphs type_definition set_def below_def admissible
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        val (pcpo_info, thy) = thy
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          |> prove_pcpo name newT morphs type_definition set_def below_def bottom_mem
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      in
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        ((info, cpo_info, pcpo_info), thy)
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      end
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  in
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    (goal_bottom_mem, goal_admissible, pcpodef_result)
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  end
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  handle ERROR msg =>
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    cat_error msg ("The error(s) above occurred in pcpodef " ^ Binding.print name)
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(* tactic interface *)
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fun add_cpodef def opt_name typ set opt_morphs (tac1, tac2) thy =
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  let
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    val name = the_default (#1 typ) opt_name
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    val (goal1, goal2, cpodef_result) =
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      prepare_cpodef Syntax.check_term def name typ set opt_morphs thy
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    val thm1 = Goal.prove_global thy [] [] goal1 (K tac1)
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      handle ERROR msg => cat_error msg
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        ("Failed to prove non-emptiness of " ^ quote (Syntax.string_of_term_global thy set))
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    val thm2 = Goal.prove_global thy [] [] goal2 (K tac2)
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      handle ERROR msg => cat_error msg
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        ("Failed to prove admissibility of " ^ quote (Syntax.string_of_term_global thy set))
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  in cpodef_result thm1 thm2 thy end
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fun add_pcpodef def opt_name typ set opt_morphs (tac1, tac2) thy =
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  let
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    val name = the_default (#1 typ) opt_name
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    val (goal1, goal2, pcpodef_result) =
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      prepare_pcpodef Syntax.check_term def name typ set opt_morphs thy
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    val thm1 = Goal.prove_global thy [] [] goal1 (K tac1)
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      handle ERROR msg => cat_error msg
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        ("Failed to prove non-emptiness of " ^ quote (Syntax.string_of_term_global thy set))
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    val thm2 = Goal.prove_global thy [] [] goal2 (K tac2)
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      handle ERROR msg => cat_error msg
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        ("Failed to prove admissibility of " ^ quote (Syntax.string_of_term_global thy set))
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  in pcpodef_result thm1 thm2 thy end
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(* proof interface *)
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local
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fun gen_cpodef_proof prep_term prep_constraint
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    ((def, name), (b, raw_args, mx), set, opt_morphs) thy =
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  let
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    val ctxt = Proof_Context.init_global thy
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    val args = map (apsnd (prep_constraint ctxt)) raw_args
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    val (goal1, goal2, make_result) =
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      prepare_cpodef prep_term def name (b, args, mx) set opt_morphs thy
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    fun after_qed [[th1, th2]] = Proof_Context.background_theory (snd o make_result th1 th2)
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      | after_qed _ = raise Fail "cpodef_proof"
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  in Proof.theorem NONE after_qed [[(goal1, []), (goal2, [])]] ctxt end
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fun gen_pcpodef_proof prep_term prep_constraint
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    ((def, name), (b, raw_args, mx), set, opt_morphs) thy =
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  let
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    val ctxt = Proof_Context.init_global thy
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    val args = map (apsnd (prep_constraint ctxt)) raw_args
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    val (goal1, goal2, make_result) =
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      prepare_pcpodef prep_term def name (b, args, mx) set opt_morphs thy
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    fun after_qed [[th1, th2]] = Proof_Context.background_theory (snd o make_result th1 th2)
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      | after_qed _ = raise Fail "pcpodef_proof"
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  in Proof.theorem NONE after_qed [[(goal1, []), (goal2, [])]] ctxt end
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in
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fun cpodef_proof x = gen_cpodef_proof Syntax.check_term (K I) x
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fun cpodef_proof_cmd x = gen_cpodef_proof Syntax.read_term Typedecl.read_constraint x
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fun pcpodef_proof x = gen_pcpodef_proof Syntax.check_term (K I) x
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fun pcpodef_proof_cmd x = gen_pcpodef_proof Syntax.read_term Typedecl.read_constraint x
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end
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(** outer syntax **)
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val typedef_proof_decl =
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  Scan.optional (Parse.$$$ "(" |--
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      ((Parse.$$$ "open" >> K false) -- Scan.option Parse.binding ||
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        Parse.binding >> (fn s => (true, SOME s)))
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        --| Parse.$$$ ")") (true, NONE) --
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    (Parse.type_args_constrained -- Parse.binding) -- Parse.opt_mixfix --
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    (Parse.$$$ "=" |-- Parse.term) --
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    Scan.option (Parse.$$$ "morphisms" |-- Parse.!!! (Parse.binding -- Parse.binding))
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fun mk_pcpodef_proof pcpo ((((((def, opt_name), (args, t)), mx), A), morphs)) =
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  (if pcpo then pcpodef_proof_cmd else cpodef_proof_cmd)
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    ((def, the_default t opt_name), (t, args, mx), A, morphs)
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val _ =
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  Outer_Syntax.command "pcpodef" "HOLCF type definition (requires admissibility proof)"
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  Keyword.thy_goal
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    (typedef_proof_decl >>
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      (Toplevel.print oo (Toplevel.theory_to_proof o mk_pcpodef_proof true)))
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val _ =
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  Outer_Syntax.command "cpodef" "HOLCF type definition (requires admissibility proof)"
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  Keyword.thy_goal
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    (typedef_proof_decl >>
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      (Toplevel.print oo (Toplevel.theory_to_proof o mk_pcpodef_proof false)))
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end