Nominal/Perm.thy
author Christian Urban <urbanc@in.tum.de>
Tue, 04 May 2010 06:02:45 +0100
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parent 1971 8daf6ff5e11a
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permissions -rw-r--r--
to my best knowledge the number of datatypes is equal to the length of the dt_descr; so we can save one argument in define_raw_perm
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theory Perm
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imports "../Nominal-General/Nominal2_Atoms"
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begin
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1910
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(* definitions of the permute function for raw nominal datatypes *)
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f78c820f67c3 Automatically lift theorems and constants only using the new quotient types. Requires new Isabelle.
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f78c820f67c3 Automatically lift theorems and constants only using the new quotient types. Requires new Isabelle.
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ML {*
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(* returns the type of the nth datatype *)
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fun nth_dtyp dt_descr sorts i = 
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  Datatype_Aux.typ_of_dtyp dt_descr sorts (Datatype_Aux.DtRec i);
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*}
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ML {*
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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 dt_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 dt_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) dt_descr)
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end
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*}
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ML {*
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(* permutation function for one argument 
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    - in case the argument is recursive it returns 
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         permute_fn p arg
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    - in case the argument is non-recursive it will return
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         p o arg
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*)
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fun perm_arg permute_fns p (arg_dty, arg) =
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  if Datatype_Aux.is_rec_type arg_dty 
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  then Free (nth permute_fns (Datatype_Aux.body_index arg_dty)) $ p $ arg
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  else mk_perm p arg
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*}
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ML {*
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(* generates the equation for the permutation function for one constructor;
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   i is the index of the corresponding datatype *)
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fun perm_eq_constr dt_descr sorts permute_fns i (cnstr_name, dts) =
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let
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  val p = Free ("p", @{typ perm})
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  val arg_tys = map (Datatype_Aux.typ_of_dtyp dt_descr sorts) dts
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  val arg_names = Name.variant_list ["p"] (Datatype_Prop.make_tnames arg_tys)
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  val args = map Free (arg_names ~~ arg_tys)
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  val cnstr = Const (cnstr_name, arg_tys ---> (nth_dtyp dt_descr sorts i))
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  val lhs = Free (nth permute_fns i) $ p $ list_comb (cnstr, args)
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  val rhs = list_comb (cnstr, map (perm_arg permute_fns p) (dts ~~ args))
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  val eq = HOLogic.mk_Trueprop (HOLogic.mk_eq (lhs, rhs))
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in
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  (Attrib.empty_binding, eq)
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end
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*}
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ML {*
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fun prove_permute_zero lthy induct perm_defs perm_fns =
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let
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  val perm_types = map (body_type o fastype_of) perm_fns
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  val perm_indnames = Datatype_Prop.make_tnames perm_types
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  fun single_goal ((perm_fn, T), x) =
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    HOLogic.mk_eq (perm_fn $ @{term "0::perm"} $ Free (x, T), Free (x, T))
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  val goals =
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    HOLogic.mk_Trueprop (foldr1 HOLogic.mk_conj
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      (map single_goal (perm_fns ~~ perm_types ~~ perm_indnames)))
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  val simps = HOL_basic_ss addsimps (@{thm permute_zero} :: perm_defs)
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  val tac = (Datatype_Aux.indtac induct perm_indnames 
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             THEN_ALL_NEW asm_simp_tac simps) 1
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in
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  Goal.prove lthy perm_indnames [] goals (K tac)
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  |> Datatype_Aux.split_conj_thm
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end
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*}
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ML {*
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fun prove_permute_plus lthy induct perm_defs perm_fns =
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let
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  val pi1 = Free ("p", @{typ perm})
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  val pi2 = Free ("q", @{typ perm})
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  val perm_types = map (body_type o fastype_of) perm_fns
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  val perm_indnames = Datatype_Prop.make_tnames perm_types
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  fun single_goal ((perm, T), x) = HOLogic.mk_eq 
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      (perm $ (mk_plus pi1 pi2) $ Free (x, T), perm $ pi1 $ (perm $ pi2 $ Free (x, T)))
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  val goals =
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    HOLogic.mk_Trueprop (foldr1 HOLogic.mk_conj
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      (map single_goal (perm_fns ~~ perm_types ~~ perm_indnames)))
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  val simps = HOL_basic_ss addsimps (@{thm permute_plus} :: perm_defs)
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  val tac = (Datatype_Aux.indtac induct perm_indnames
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             THEN_ALL_NEW asm_simp_tac simps) 1
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in
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  Goal.prove lthy ("p" :: "q" :: perm_indnames) [] goals (K tac)
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  |> Datatype_Aux.split_conj_thm 
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end
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*}
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ML {*
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(* defines the permutation functions for raw datatypes and
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   proves that they are instances of pt
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   dt_nos refers to the number of "un-unfolded" datatypes
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   given by the user
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*)
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fun define_raw_perms (dt_info : Datatype_Aux.info) thy =
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let
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  val {descr as dt_descr, induct, sorts, ...} = dt_info;
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  val dt_nos = length descr
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  val all_full_tnames = map (fn (_, (n, _, _)) => n) dt_descr;
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  val full_tnames = List.take (all_full_tnames, dt_nos);
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  val perm_fn_names = prefix_dt_names dt_descr sorts "permute_"
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  val perm_types = map (fn (i, _) => perm_ty (nth_dtyp dt_descr sorts i)) dt_descr
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  val permute_fns = perm_fn_names ~~ perm_types
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  fun perm_eq (i, (_, _, constrs)) = 
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    map (perm_eq_constr dt_descr sorts permute_fns i) constrs;
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  val perm_eqs = maps perm_eq dt_descr;
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  val lthy =
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    Theory_Target.instantiation (full_tnames, [], @{sort pt}) thy;
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  val ((perm_fns, perm_ldef), lthy') =
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    Primrec.add_primrec
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      (map (fn s => (Binding.name s, NONE, NoSyn)) perm_fn_names) perm_eqs lthy;
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  val perm_zero_thms = prove_permute_zero lthy' induct perm_ldef perm_fns
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  val perm_plus_thms = prove_permute_plus lthy' induct perm_ldef perm_fns
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  val perm_zero_thms' = List.take (perm_zero_thms, dt_nos);
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  val perm_plus_thms' = List.take (perm_plus_thms, dt_nos)
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  val perms_name = space_implode "_" perm_fn_names
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  val perms_zero_bind = Binding.name (perms_name ^ "_zero")
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  val perms_plus_bind = Binding.name (perms_name ^ "_plus")
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  fun tac _ (_, simps, _) =
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    Class.intro_classes_tac [] THEN ALLGOALS (resolve_tac simps)
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  fun morphism phi (dfs, simps, fvs) =
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    (map (Morphism.thm phi) dfs, map (Morphism.thm phi) simps, map (Morphism.term phi) fvs);
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in
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  lthy'
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  |> snd o (Local_Theory.note ((perms_zero_bind, []), perm_zero_thms'))
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  |> snd o (Local_Theory.note ((perms_plus_bind, []), perm_plus_thms'))
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  |> Class_Target.prove_instantiation_exit_result morphism tac 
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       (perm_ldef, perm_zero_thms' @ perm_plus_thms', perm_fns)
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end
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*}
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(* permutations for quotient types *)
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ML {*
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fun quotient_lift_consts_export qtys spec ctxt =
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let
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  val (result, ctxt') = fold_map (Quotient_Def.quotient_lift_const qtys) spec ctxt;
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  val (ts_loc, defs_loc) = split_list result;
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  val morphism = ProofContext.export_morphism ctxt' ctxt;
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  val ts = map (Morphism.term morphism) ts_loc
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  val defs = Morphism.fact morphism defs_loc
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in
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  (ts, defs, ctxt')
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end
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*}
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ML {*
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fun define_lifted_perms qtys full_tnames name_term_pairs thms thy =
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let
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  val lthy =
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    Theory_Target.instantiation (full_tnames, [], @{sort pt}) thy;
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  val (_, _, lthy') = quotient_lift_consts_export qtys name_term_pairs lthy;
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  val lifted_thms = map (Quotient_Tacs.lifted qtys lthy') thms;
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  fun tac _ =
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    Class.intro_classes_tac [] THEN
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    (ALLGOALS (resolve_tac lifted_thms))
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  val lthy'' = Class.prove_instantiation_instance tac lthy'
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in
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  Local_Theory.exit_global lthy''
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end
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*}
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ML {*
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fun neq_to_rel r neq =
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let
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  val neq = HOLogic.dest_Trueprop (prop_of neq)
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  val eq = HOLogic.dest_not neq
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  val (lhs, rhs) = HOLogic.dest_eq eq
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  val rel = r $ lhs $ rhs
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  val nrel = HOLogic.mk_not rel
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in
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  HOLogic.mk_Trueprop nrel
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end
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*}
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ML {*
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fun neq_to_rel_tac cases distinct =
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  rtac notI THEN' eresolve_tac cases THEN_ALL_NEW asm_full_simp_tac (HOL_ss addsimps distinct)
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*}
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ML {*
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fun distinct_rel ctxt cases (dists, rel) =
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let
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  val ((_, thms), ctxt') = Variable.import false dists ctxt
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  val terms = map (neq_to_rel rel) thms
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  val nrels = map (fn t => Goal.prove ctxt' [] [] t (fn _ => neq_to_rel_tac cases dists 1)) terms
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in
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  Variable.export ctxt' ctxt nrels
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end
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*}
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(* Test *)
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(*
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atom_decl name
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datatype trm =
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  Var "name"
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| App "trm" "(trm list) list"
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| Lam "name" "trm"
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| Let "bp" "trm" "trm"
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and bp =
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  BUnit
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| BVar "name"
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| BPair "bp" "bp"
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setup {* fn thy =>
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let 
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  val info = Datatype.the_info thy "Perm.trm"
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in
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  define_raw_perms info 2 thy |> snd
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end
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*}
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print_theorems
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*)
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end