src/HOL/TPTP/atp_theory_export.ML
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(*  Title:      HOL/TPTP/atp_theory_export.ML
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    Author:     Jasmin Blanchette, TU Muenchen
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    Copyright   2011
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Export Isabelle theories as first-order TPTP inferences, exploiting
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Sledgehammer's translation.
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*)
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signature ATP_THEORY_EXPORT =
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sig
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  type atp_format = ATP_Problem.atp_format
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  val theorems_mentioned_in_proof_term :
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    string list option -> thm -> string list
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  val generate_tptp_graph_file_for_theory :
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    Proof.context -> theory -> string -> unit
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  val generate_tptp_inference_file_for_theory :
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    Proof.context -> theory -> atp_format -> string -> string -> unit
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end;
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structure ATP_Theory_Export : ATP_THEORY_EXPORT =
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struct
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open ATP_Problem
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open ATP_Proof
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open ATP_Problem_Generate
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open ATP_Systems
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val fact_name_of = prefix fact_prefix o ascii_of
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fun facts_of thy =
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  let val ctxt = Proof_Context.init_global thy in
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    Sledgehammer_Filter.all_facts ctxt false
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        Symtab.empty true [] []
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        (Sledgehammer_Filter.clasimpset_rule_table_of ctxt)
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    |> filter (curry (op =) @{typ bool} o fastype_of
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               o Object_Logic.atomize_term thy o prop_of o snd)
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  end
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(* FIXME: Similar yet different code in "mirabelle.ML". The code here has a few
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   fixes that seem to be missing over there; or maybe the two code portions are
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   not doing the same? *)
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fun fold_body_thms thm_name all_names f =
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  let
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    fun app n (PBody {thms, ...}) =
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      thms |> fold (fn (_, (name, prop, body)) => fn x =>
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        let
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          val body' = Future.join body
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          val n' =
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            n + (if name = "" orelse
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                    (is_some all_names andalso
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                     not (member (op =) (the all_names) name)) orelse
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                    (* uncommon case where the proved theorem occurs twice
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                       (e.g., "Transitive_Closure.trancl_into_trancl") *)
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                    n = 1 andalso name = thm_name then
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                   0
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                 else
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                   1)
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          val x' = x |> n' <= 1 ? app n' body'
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        in (x' |> n = 1 ? f (name, prop, body')) end)
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  in fold (app 0) end
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fun theorems_mentioned_in_proof_term all_names thm =
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  let
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    fun collect (s, _, _) = if s <> "" then insert (op =) s else I
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    val names =
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      [] |> fold_body_thms (Thm.get_name_hint thm) all_names collect
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                           [Thm.proof_body_of thm]
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         |> map fact_name_of
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  in names end
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fun interesting_const_names ctxt =
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  let val thy = Proof_Context.theory_of ctxt in
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    Sledgehammer_Filter.const_names_in_fact thy
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        (Sledgehammer_Provers.is_built_in_const_for_prover ctxt eN)
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  end
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fun generate_tptp_graph_file_for_theory ctxt thy file_name =
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  let
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    val path = file_name |> Path.explode
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    val _ = File.write path ""
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    val axioms = Theory.all_axioms_of thy |> map fst
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    fun do_thm thm =
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      let
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        val name = Thm.get_name_hint thm
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        val s =
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          "[" ^ Thm.legacy_get_kind thm ^ "] " ^
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          (if member (op =) axioms name then "A" else "T") ^ " " ^
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          prefix fact_prefix (ascii_of name) ^ ": " ^
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          commas (theorems_mentioned_in_proof_term NONE thm) ^ "; " ^
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          commas (map (prefix const_prefix o ascii_of)
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                      (interesting_const_names ctxt (Thm.prop_of thm))) ^ " \n"
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      in File.append path s end
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    val thms = facts_of thy |> map snd
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    val _ = map do_thm thms
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  in () end
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fun inference_term [] = NONE
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  | inference_term ss =
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    ATerm ("inference",
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           [ATerm ("isabelle", []),
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            ATerm (tptp_empty_list, []),
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            ATerm (tptp_empty_list, map (fn s => ATerm (s, [])) ss)])
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    |> SOME
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fun inference infers ident =
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  these (AList.lookup (op =) infers ident) |> inference_term
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fun add_inferences_to_problem_line infers
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                                   (Formula (ident, Axiom, phi, NONE, tms)) =
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    Formula (ident, Lemma, phi, inference infers ident, tms)
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  | add_inferences_to_problem_line _ line = line
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fun add_inferences_to_problem infers =
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  map (apsnd (map (add_inferences_to_problem_line infers)))
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fun ident_of_problem_line (Decl (ident, _, _)) = ident
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  | ident_of_problem_line (Formula (ident, _, _, _, _)) = ident
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fun run_some_atp ctxt format problem =
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  let
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    val thy = Proof_Context.theory_of ctxt
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    val prob_file = File.tmp_path (Path.explode "prob.tptp")
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    val {exec, arguments, proof_delims, known_failures, ...} =
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      get_atp thy (case format of DFG _ => spassN | _ => eN)
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    val _ = problem |> lines_for_atp_problem format (K [])
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                    |> File.write_list prob_file
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    val command =
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      File.shell_path (Path.explode (getenv (fst exec) ^ "/" ^ snd exec)) ^
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      " " ^ arguments ctxt false "" (seconds 1.0) (K []) ^ " " ^
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      File.shell_path prob_file
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  in
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    TimeLimit.timeLimit (seconds 0.3) Isabelle_System.bash_output command
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    |> fst
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    |> extract_tstplike_proof_and_outcome false true proof_delims
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                                          known_failures
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    |> snd
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  end
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  handle TimeLimit.TimeOut => SOME TimedOut
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val likely_tautology_prefixes =
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  [@{theory HOL}, @{theory Meson}, @{theory ATP}, @{theory Metis}]
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  |> map (fact_name_of o Context.theory_name)
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fun is_problem_line_tautology ctxt format (Formula (ident, _, phi, _, _)) =
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    exists (fn prefix => String.isPrefix prefix ident)
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           likely_tautology_prefixes andalso
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    is_none (run_some_atp ctxt format
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                 [(factsN, [Formula (ident, Conjecture, phi, NONE, [])])])
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  | is_problem_line_tautology _ _ _ = false
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fun order_facts ord = sort (ord o pairself ident_of_problem_line)
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fun order_problem_facts _ [] = []
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  | order_problem_facts ord ((heading, lines) :: problem) =
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    if heading = factsN then (heading, order_facts ord lines) :: problem
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    else (heading, lines) :: order_problem_facts ord problem
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(* A fairly random selection of types used for monomorphizing. *)
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val ground_types =
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  [@{typ nat}, HOLogic.intT, HOLogic.realT, @{typ "nat => bool"}, @{typ bool},
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   @{typ unit}]
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fun ground_type_for_tvar _ [] tvar =
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    raise TYPE ("ground_type_for_sorts", [TVar tvar], [])
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  | ground_type_for_tvar thy (T :: Ts) tvar =
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    if can (Sign.typ_match thy (TVar tvar, T)) Vartab.empty then T
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    else ground_type_for_tvar thy Ts tvar
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fun monomorphize_term ctxt t =
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  let val thy = Proof_Context.theory_of ctxt in
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    t |> map_types (map_type_tvar (ground_type_for_tvar thy ground_types))
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    handle TYPE _ => @{prop True}
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  end
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fun generate_tptp_inference_file_for_theory ctxt thy format type_enc file_name =
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  let
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    val type_enc = type_enc |> type_enc_from_string Strict
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                            |> adjust_type_enc format
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    val mono = polymorphism_of_type_enc type_enc <> Polymorphic
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    val path = file_name |> Path.explode
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    val _ = File.write path ""
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    val facts = facts_of thy
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    val atp_problem =
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      facts
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      |> map (fn ((_, loc), th) =>
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                 ((Thm.get_name_hint th, loc),
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                   th |> prop_of |> mono ? monomorphize_term ctxt))
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      |> prepare_atp_problem ctxt format Axiom Axiom type_enc true combsN false
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                             false true [] @{prop False}
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      |> #1
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    val atp_problem =
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      atp_problem
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      |> map (apsnd (filter_out (is_problem_line_tautology ctxt format)))
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    val all_names = facts |> map (Thm.get_name_hint o snd)
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    val infers =
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      facts |> map (fn (_, th) =>
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                       (fact_name_of (Thm.get_name_hint th),
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                        theorems_mentioned_in_proof_term (SOME all_names) th))
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    val all_atp_problem_names =
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      atp_problem |> maps (map ident_of_problem_line o snd)
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    val infers =
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      infers |> filter (member (op =) all_atp_problem_names o fst)
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             |> map (apsnd (filter (member (op =) all_atp_problem_names)))
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    val ordered_names =
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      String_Graph.empty
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      |> fold (String_Graph.new_node o rpair ()) all_atp_problem_names
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      |> fold (fn (to, froms) =>
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                  fold (fn from => String_Graph.add_edge (from, to)) froms)
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              infers
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      |> String_Graph.topological_order
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    val order_tab =
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      Symtab.empty
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      |> fold (Symtab.insert (op =))
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              (ordered_names ~~ (1 upto length ordered_names))
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    val name_ord = int_ord o pairself (the o Symtab.lookup order_tab)
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    val atp_problem =
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      atp_problem
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      |> (case format of DFG _ => I | _ => add_inferences_to_problem infers)
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      |> order_problem_facts name_ord
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    val ss = lines_for_atp_problem format (K []) atp_problem
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    val _ = app (File.append path) ss
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  in () end
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end;