src/Tools/isac/BaseDefinitions/KEStore.thy
author Walther Neuper <walther.neuper@jku.at>
Wed, 15 Apr 2020 11:37:43 +0200
changeset 59878 3163e63a5111
parent 59875 995177b6d786
child 59879 33449c96d99f
permissions -rw-r--r--
cleanup
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(*  Title:      src/Tools/isac/KEStore.thy
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    Author:     Mathias Lehnfeld
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The files (in "xxxxx-def.sml") contain definitions required for KEStore;
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they also include minimal code required for other "xxxxx-def.sml" files.
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These files have companion files "xxxxx.sml" with all further code,
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located at appropriate positions in the file structure.
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The separation of "xxxxx-def.sml" from "xxxxx.sml" should be overcome by
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appropriate use of polymorphic high order functions.
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*)
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theory KEStore imports Complex_Main
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begin
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ML_file libraryC.sml
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ML_file theoryC.sml          (*rename identifiers by use of struct.id*)
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ML_file unparseC.sml
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ML_file "rule-def.sml"
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ML_file "thmC-def.sml"
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ML_file "exec-def.sml"       (*rename identifiers by use of struct.id*)
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ML_file "rewrite-order.sml"  (*rename identifiers by use of struct.id*)
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ML_file rule.sml
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ML_file "error-fill-def.sml" (*rename identifiers by use of struct.id*)
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ML_file "rule-set.sml"
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ML_file calcelems.sml
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ML \<open>
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\<close> ML \<open>
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\<close> ML \<open>
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\<close>
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section \<open>Knowledge elements for problems and methods\<close>
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ML \<open>
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(* Knowledge (and Exercises) are held by "KEStore" in Isac's Java front-end.
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  In the front-end Knowledge comprises theories, problems and methods.
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  Elements of problems and methods are defined in theories alongside
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  the development of respective language elements. 
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  However, the structure of methods and problems is independent from theories' 
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  deductive structure. Thus respective structures are built in Build_Thydata.thy.
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  Most elements of problems and methods are implemented in "Knowledge/", but some
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  of them are implemented in "ProgLang/" already; thus "KEStore.thy" got this
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  location in the directory structure.
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  get_* retrieves all * of the respective theory PLUS of all ancestor theories.
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*)
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signature KESTORE_ELEMS =
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sig
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  val get_rlss: theory -> (Rule_Set.id * (ThyC.theory' * Rule_Set.T)) list
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  val add_rlss: (Rule_Set.id * (ThyC.theory' * Rule_Set.T)) list -> theory -> theory
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  val get_calcs: theory -> (Exec_Def.prog_calcID * (Exec_Def.calID * Exec_Def.eval_fn)) list
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  val add_calcs: (Exec_Def.prog_calcID * (Exec_Def.calID * Exec_Def.eval_fn)) list -> theory -> theory
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  val get_cas: theory -> Celem.cas_elem list
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  val add_cas: Celem.cas_elem list -> theory -> theory
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  val get_ptyps: theory -> Celem.ptyps
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  val add_pbts: (Celem.pbt * Celem.pblID) list -> theory -> theory
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  val get_mets: theory -> Celem.mets
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  val add_mets: (Celem.met * Celem.metID) list -> theory -> theory
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  val get_thes: theory -> (Celem.thydata Celem.ptyp) list
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  val add_thes: (Celem.thydata * Celem.theID) list -> theory -> theory (* thydata dropped at existing elems *)
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  val insert_fillpats: (Celem.theID * Error_Fill_Def.fillpat list) list -> theory -> theory 
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  val get_ref_thy: unit -> theory
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  val set_ref_thy: theory -> unit
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end;                               
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structure KEStore_Elems: KESTORE_ELEMS =
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struct
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  fun union_overwrite eq l1 l2 = fold (insert eq) l2 (*..swapped..*) l1;
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  structure Data = Theory_Data (
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    type T = (Rule_Set.id * (ThyC.theory' * Rule_Set.T)) list;
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    val empty = [];
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    val extend = I;
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    val merge = Rule_Set.to_kestore;
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    );  
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  fun get_rlss thy = Data.get thy
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  fun add_rlss rlss = Data.map (union_overwrite Rule_Set.equal rlss)
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  structure Data = Theory_Data (
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    type T = (Exec_Def.prog_calcID * (Exec_Def.calID * Exec_Def.eval_fn)) list;
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    val empty = [];
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    val extend = I;
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    val merge = merge Exec_Def.calc_eq;
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    );                                                              
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  fun get_calcs thy = Data.get thy
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  fun add_calcs calcs = Data.map (union_overwrite Exec_Def.calc_eq calcs)
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  structure Data = Theory_Data (
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    type T = (term * (Celem.spec * (term list -> (term * term list) list))) list;
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    val empty = [];
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    val extend = I;
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    val merge = merge Celem.cas_eq;
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    );                                                              
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  fun get_cas thy = Data.get thy
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  fun add_cas cas = Data.map (union_overwrite Celem.cas_eq cas)
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  structure Data = Theory_Data (
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    type T = Celem.ptyps;
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    val empty = [Celem.e_Ptyp];
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    val extend = I;
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    val merge = Celem.merge_ptyps;
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    );
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  fun get_ptyps thy = Data.get thy;
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  fun add_pbts pbts thy = let
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          fun add_pbt (pbt as {guh,...}, pblID) =
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                (* the pblID has the leaf-element as first; better readability achieved *)
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                (if (!Celem.check_guhs_unique) then Celem.check_pblguh_unique guh (Data.get thy) else ();
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                  rev pblID |> Celem.insrt pblID pbt);
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        in Data.map (fold add_pbt pbts) thy end;
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  structure Data = Theory_Data (
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    type T = Celem.mets;
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    val empty = [Celem.e_Mets];
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    val extend = I;
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    val merge = Celem.merge_ptyps;
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    );
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  val get_mets = Data.get;
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  fun add_mets mets thy = let
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          fun add_met (met as {guh,...}, metID) =
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                (if (!Celem.check_guhs_unique) then Celem.check_metguh_unique guh (Data.get thy) else ();
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                  Celem.insrt metID met metID);
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        in Data.map (fold add_met mets) thy end;
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  structure Data = Theory_Data (
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    type T = (Celem.thydata Celem.ptyp) list;
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    val empty = [];
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    val extend = I;
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    val merge = Celem.merge_ptyps; (* relevant for store_thm, store_rls *)
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    );                                                              
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  fun get_thes thy = Data.get thy
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  fun add_thes thes thy = let
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    fun add_the (thydata, theID) = Celem.add_thydata ([], theID) thydata
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  in Data.map (fold add_the thes) thy end;
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  fun insert_fillpats fis thy =
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    let
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      fun update_elem (theID, fillpats) =
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        let
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          val hthm = Celem.get_py (Data.get thy) theID theID
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          val hthm' = Celem.update_hthm hthm fillpats
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            handle ERROR _ =>
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              error ("insert_fillpats: " ^ strs2str theID ^ "must address a theorem")
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        in Celem.update_ptyps theID theID hthm' end
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    in Data.map (fold update_elem fis) thy end
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  val cur_thy = Synchronized.var "finally_knowledge_complete" @{theory};
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  fun set_ref_thy thy = Synchronized.change cur_thy (fn _ => thy); (* never RE-set ! *)
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  fun get_ref_thy () = Synchronized.value cur_thy;
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end;
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\<close>
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section \<open>Re-use existing access functions for knowledge elements\<close>
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text \<open>
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  The independence of problems' and methods' structure enforces the accesse
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  functions to use "Isac_Knowledge", the final theory which comprises all knowledge defined.
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\<close>
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ML \<open>
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val get_ref_thy = KEStore_Elems.get_ref_thy;
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fun assoc_rls (rls' : Rule_Set.id) =
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  case AList.lookup (op =) (KEStore_Elems.get_rlss (ThyC.Thy_Info_get_theory "Isac_Knowledge")) rls' of
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    SOME (_, rls) => rls
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  | NONE => raise ERROR ("rls \""^ rls' ^ "\" missing in KEStore.\n" ^
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    "TODO exception hierarchy needs to be established.")
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fun assoc_rls' thy (rls' : Rule_Set.id) =
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  case AList.lookup (op =) (KEStore_Elems.get_rlss thy) rls' of
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    SOME (_, rls) => rls
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  | NONE => raise ERROR ("rls \""^ rls' ^ "\" missing in KEStore.\n" ^
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    "TODO exception hierarchy needs to be established.")
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fun assoc_calc thy calID = let
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    fun ass ([], key) =
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          error ("assoc_calc: '" ^ key ^ "' not found in theory " ^ (Context.theory_name thy))
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      | ass ((calc, (keyi, _)) :: pairs, key) =
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          if key = keyi then calc else ass (pairs, key);
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  in ass (thy |> KEStore_Elems.get_calcs, calID) end;
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fun assoc_calc' thy key = let
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    fun ass ([], key') =
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          error ("assoc_calc': '" ^ key' ^ "' not found in theory " ^ (Context.theory_name thy))
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      | ass ((all as (keyi, _)) :: pairs, key') =
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          if key' = keyi then all else ass (pairs, key');
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  in ass (KEStore_Elems.get_calcs thy, key) end;
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fun assoc_cas thy key = assoc (KEStore_Elems.get_cas thy, key);
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fun get_ptyps () = get_ref_thy () |> KEStore_Elems.get_ptyps;
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fun get_mets () = get_ref_thy () |> KEStore_Elems.get_mets;
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fun get_thes () = get_ref_thy () |> KEStore_Elems.get_thes;
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\<close>
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setup \<open>KEStore_Elems.add_rlss 
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  [("empty", (Context.theory_name @{theory}, Rule_Set.empty)), 
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  ("e_rrls", (Context.theory_name @{theory}, Rule_Set.e_rrls))]\<close>
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section \<open>determine sequence of main parts in thehier\<close>
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setup \<open>
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KEStore_Elems.add_thes
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  [(Celem.Html {guh = Celem.part2guh ["IsacKnowledge"], html = "",
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    mathauthors = ["Isac team"], coursedesign = []}, ["IsacKnowledge"]),
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  (Celem.Html {guh = Celem.part2guh ["Isabelle"], html = "",
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    mathauthors = ["Isabelle team, TU Munich"], coursedesign = []}, ["Isabelle"]),
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  (Celem.Html {guh = Celem.part2guh ["IsacScripts"], html = "",
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    mathauthors = ["Isac team"], coursedesign = []}, ["IsacScripts"])]
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\<close>
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section \<open>Functions for checking KEStore_Elems\<close>
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ML \<open>
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fun short_string_of_rls Rule_Set.Empty = "Erls"
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  | short_string_of_rls (Rule_Def.Repeat {calc, rules, ...}) =
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    "Rls {#calc = " ^ string_of_int (length calc) ^
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    ", #rules = " ^ string_of_int (length rules) ^ ", ..."
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  | short_string_of_rls (Rule_Set.Sequence {calc, rules, ...}) =
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    "Seq {#calc = " ^ string_of_int (length calc) ^
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    ", #rules = " ^ string_of_int (length rules) ^ ", ..."
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  | short_string_of_rls (Rule_Set.Rrls _) = "Rrls {...}";
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fun check_kestore_rls (rls', (thyID, rls)) =
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  "(" ^ rls' ^ ", (" ^ thyID ^ ", " ^ short_string_of_rls rls ^ "))";
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fun check_kestore_calc ((id, (c, _)) : Rule_Def.calc)  = "(" ^ id ^ ", (" ^ c ^ ", fn))";
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(* we avoid term_to_string''' defined later *)
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fun check_kestore_cas ((t, (s, _)) : Celem.cas_elem) =
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  "(" ^ (Print_Mode.setmp [] (Syntax.string_of_term (Config.put show_markup false
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  (Proof_Context.init_global @{theory})))) t ^ ", " ^ Celem.spec2str s ^ ")";
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fun count_kestore_ptyps [] = 0
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  | count_kestore_ptyps ((Celem.Ptyp (_, _, ps)) :: ps') =
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      1 + count_kestore_ptyps ps  + count_kestore_ptyps ps';
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fun check_kestore_ptyp' strfun (Celem.Ptyp (key, pbts, pts)) = "Ptyp (" ^ (quote key) ^ ", " ^
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      (strfun pbts) ^ ", " ^ (map (check_kestore_ptyp' strfun) pts |> list2str) ^ ")" |> Celem.linefeed;
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val check_kestore_ptyp = check_kestore_ptyp' Celem.pbts2str;
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fun ptyp_ord ((Celem.Ptyp (s1, _, _)), (Celem.Ptyp (s2, _, _))) = string_ord (s1, s2);
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fun pbt_ord ({guh = guh'1, ...} : Celem.pbt, {guh = guh'2, ...} : Celem.pbt) = string_ord (guh'1, guh'2);
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fun sort_kestore_ptyp' _ [] = []
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  | sort_kestore_ptyp' ordfun ((Celem.Ptyp (key, pbts, ps)) :: ps') =
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     ((Celem.Ptyp (key, sort ordfun pbts, sort_kestore_ptyp' ordfun ps |> sort ptyp_ord))
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       :: sort_kestore_ptyp' ordfun ps');
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val sort_kestore_ptyp = sort_kestore_ptyp' pbt_ord;
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fun metguh2str ({guh,...} : Celem.met) = guh : string;
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fun check_kestore_met (mp: Celem.met Celem.ptyp) =
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      check_kestore_ptyp' (fn xs => map metguh2str xs |> strs2str) mp;
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fun met_ord ({guh = guh'1, ...} : Celem.met, {guh = guh'2, ...} : Celem.met) = string_ord (guh'1, guh'2);
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val sort_kestore_met = sort_kestore_ptyp' met_ord;
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fun check_kestore_thes thes = ((map writeln) o (map (check_kestore_ptyp' Celem.thes2str))) thes
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fun write_thes thydata_list =
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  thydata_list 
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    |> map (fn (id, the) => (Celem.theID2str id, Celem.the2str the))
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    |> map pair2str
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    |> map writeln
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\<close>
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ML \<open>
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\<close> ML \<open>
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\<close> ML \<open>
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\<close>
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end