src/Sequents/T.thy
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(*  Title:      Sequents/T.thy
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    Author:     Martin Coen
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    Copyright   1991  University of Cambridge
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*)
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theory T
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imports Modal0
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begin
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axiomatization where
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(* Definition of the star operation using a set of Horn clauses *)
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(* For system T:  gamma * == {P | []P : gamma}                  *)
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(*                delta * == {P | <>P : delta}                  *)
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  lstar0:         "|L>" and
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  lstar1:         "$G |L> $H \<Longrightarrow> []P, $G |L> P, $H" and
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  lstar2:         "$G |L> $H \<Longrightarrow>   P, $G |L>    $H" and
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  rstar0:         "|R>" and
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  rstar1:         "$G |R> $H \<Longrightarrow> <>P, $G |R> P, $H" and
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  rstar2:         "$G |R> $H \<Longrightarrow>   P, $G |R>    $H" and
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(* Rules for [] and <> *)
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  boxR:
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   "\<lbrakk>$E |L> $E';  $F |R> $F';  $G |R> $G';
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               $E'        |- $F', P, $G'\<rbrakk> \<Longrightarrow> $E          |- $F, []P, $G" and
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  boxL:     "$E, P, $F  |-         $G    \<Longrightarrow> $E, []P, $F |-          $G" and
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  diaR:     "$E         |- $F, P,  $G    \<Longrightarrow> $E          |- $F, <>P, $G" and
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  diaL:
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   "\<lbrakk>$E |L> $E';  $F |L> $F';  $G |R> $G';
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               $E', P, $F'|-         $G'\<rbrakk> \<Longrightarrow> $E, <>P, $F |-          $G"
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ML \<open>
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structure T_Prover = Modal_ProverFun
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(
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  val rewrite_rls = @{thms rewrite_rls}
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  val safe_rls = @{thms safe_rls}
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  val unsafe_rls = @{thms unsafe_rls} @ [@{thm boxR}, @{thm diaL}]
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  val bound_rls = @{thms bound_rls} @ [@{thm boxL}, @{thm diaR}]
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  val aside_rls = [@{thm lstar0}, @{thm lstar1}, @{thm lstar2}, @{thm rstar0},
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    @{thm rstar1}, @{thm rstar2}]
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)
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\<close>
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method_setup T_solve = \<open>Scan.succeed (fn ctxt => SIMPLE_METHOD (T_Prover.solve_tac ctxt 2))\<close>
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(* Theorems of system T from Hughes and Cresswell and Hailpern, LNCS 129 *)
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lemma "|- []P \<longrightarrow> P" by T_solve
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lemma "|- [](P \<longrightarrow> Q) \<longrightarrow> ([]P \<longrightarrow> []Q)" by T_solve   (* normality*)
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lemma "|- (P --< Q) \<longrightarrow> []P \<longrightarrow> []Q" by T_solve
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lemma "|- P \<longrightarrow> <>P" by T_solve
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lemma "|-  [](P \<and> Q) \<longleftrightarrow> []P \<and> []Q" by T_solve
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lemma "|-  <>(P \<or> Q) \<longleftrightarrow> <>P \<or> <>Q" by T_solve
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lemma "|-  [](P \<longleftrightarrow> Q) \<longleftrightarrow> (P >-< Q)" by T_solve
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lemma "|-  <>(P \<longrightarrow> Q) \<longleftrightarrow> ([]P \<longrightarrow> <>Q)" by T_solve
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lemma "|-        []P \<longleftrightarrow> \<not> <>(\<not> P)" by T_solve
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lemma "|-     [](\<not> P) \<longleftrightarrow> \<not> <>P" by T_solve
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lemma "|-       \<not> []P \<longleftrightarrow> <>(\<not> P)" by T_solve
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lemma "|-      [][]P \<longleftrightarrow> \<not> <><>(\<not> P)" by T_solve
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lemma "|- \<not> <>(P \<or> Q) \<longleftrightarrow> \<not> <>P \<and> \<not> <>Q" by T_solve
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lemma "|- []P \<or> []Q \<longrightarrow> [](P \<or> Q)" by T_solve
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lemma "|- <>(P \<and> Q) \<longrightarrow> <>P \<and> <>Q" by T_solve
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lemma "|- [](P \<or> Q) \<longrightarrow> []P \<or> <>Q" by T_solve
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lemma "|- <>P \<and> []Q \<longrightarrow> <>(P \<and> Q)" by T_solve
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lemma "|- [](P \<or> Q) \<longrightarrow> <>P \<or> []Q" by T_solve
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lemma "|- <>(P \<longrightarrow> (Q \<and> R)) \<longrightarrow> ([]P \<longrightarrow> <>Q) \<and> ([]P \<longrightarrow> <>R)" by T_solve
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lemma "|- (P --< Q) \<and> (Q --< R ) \<longrightarrow> (P --< R)" by T_solve
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lemma "|- []P \<longrightarrow> <>Q \<longrightarrow> <>(P \<and> Q)" by T_solve
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end