src/HOL/UNITY/Union.ML
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(*  Title:      HOL/UNITY/Union.ML
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    ID:         $Id$
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    Author:     Lawrence C Paulson, Cambridge University Computer Laboratory
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    Copyright   1998  University of Cambridge
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Unions of programs
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From Misra's Chapter 5: Asynchronous Compositions of Programs
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*)
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Addcongs [UN_cong, INT_cong];
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(** SKIP **)
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Goal "Init SKIP = UNIV";
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by (simp_tac (simpset() addsimps [SKIP_def]) 1);
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qed "Init_SKIP";
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Goal "Acts SKIP = {Id}";
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by (simp_tac (simpset() addsimps [SKIP_def]) 1);
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qed "Acts_SKIP";
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Addsimps [Init_SKIP, Acts_SKIP];
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Goal "reachable SKIP = UNIV";
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by (force_tac (claset() addEs [reachable.induct]
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			addIs reachable.intrs, simpset()) 1);
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qed "reachable_SKIP";
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Addsimps [reachable_SKIP];
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(** SKIP and safety properties **)
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Goalw [constrains_def] "(SKIP : A co B) = (A<=B)";
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by Auto_tac;
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qed "SKIP_in_constrains_iff";
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AddIffs [SKIP_in_constrains_iff];
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Goalw [Constrains_def] "(SKIP : A Co B) = (A<=B)";
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by Auto_tac;
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qed "SKIP_in_Constrains_iff";
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AddIffs [SKIP_in_Constrains_iff];
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Goalw [stable_def] "SKIP : stable A";
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by Auto_tac;
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qed "SKIP_in_stable";
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AddIffs [SKIP_in_stable, SKIP_in_stable RS stable_imp_Stable];
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(** Join **)
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Goal "Init (F Join G) = Init F Int Init G";
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by (simp_tac (simpset() addsimps [Join_def]) 1);
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qed "Init_Join";
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Goal "Acts (F Join G) = Acts F Un Acts G";
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by (auto_tac (claset(), simpset() addsimps [Join_def]));
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qed "Acts_Join";
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Addsimps [Init_Join, Acts_Join];
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(** JN **)
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Goalw [JOIN_def, SKIP_def] "(JN i:{}. F i) = SKIP";
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by Auto_tac;
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qed "JN_empty";
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Addsimps [JN_empty];
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Goal "(JN i:insert a I. F i) = (F a) Join (JN i:I. F i)";
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by (rtac program_equalityI 1);
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by (ALLGOALS (simp_tac (simpset() addsimps [JOIN_def, Join_def])));
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qed "JN_insert";
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Addsimps[JN_empty, JN_insert];
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Goal "Init (JN i:I. F i) = (INT i:I. Init (F i))";
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by (simp_tac (simpset() addsimps [JOIN_def]) 1);
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qed "Init_JN";
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Goal "Acts (JN i:I. F i) = insert Id (UN i:I. Acts (F i))";
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by (auto_tac (claset(), simpset() addsimps [JOIN_def]));
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qed "Acts_JN";
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Addsimps [Init_JN, Acts_JN];
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val prems = Goalw [JOIN_def]
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    "[| I=J;  !!i. i:J ==> F i = G i |] ==> \
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\    (JN i:I. F i) = (JN i:J. G i)";
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by (asm_simp_tac (simpset() addsimps prems) 1);
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qed "JN_cong";
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Addcongs [JN_cong];
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(** Algebraic laws **)
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Goal "F Join G = G Join F";
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by (simp_tac (simpset() addsimps [Join_def, Un_commute, Int_commute]) 1);
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qed "Join_commute";
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Goal "A Join (B Join C) = B Join (A Join C)";
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by (simp_tac (simpset() addsimps Un_ac@Int_ac@[Join_def]) 1);
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qed "Join_left_commute";
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Goal "(F Join G) Join H = F Join (G Join H)";
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by (simp_tac (simpset() addsimps Un_ac@[Join_def, Int_assoc]) 1);
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qed "Join_assoc";
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Goalw [Join_def, SKIP_def] "SKIP Join F = F";
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by (rtac program_equalityI 1);
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by (ALLGOALS (simp_tac (simpset() addsimps [insert_absorb])));
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qed "Join_SKIP_left";
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Goalw [Join_def, SKIP_def] "F Join SKIP = F";
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by (rtac program_equalityI 1);
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by (ALLGOALS (simp_tac (simpset() addsimps [insert_absorb])));
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qed "Join_SKIP_right";
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Addsimps [Join_SKIP_left, Join_SKIP_right];
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Goalw [Join_def] "F Join F = F";
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by (rtac program_equalityI 1);
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by Auto_tac;
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qed "Join_absorb";
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Addsimps [Join_absorb];
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Goalw [Join_def] "F Join (F Join G) = F Join G";
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by (rtac program_equalityI 1);
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by Auto_tac;
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qed "Join_left_absorb";
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(*Join is an AC-operator*)
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val Join_ac = [Join_assoc, Join_left_absorb, Join_commute, Join_left_commute];
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(*** JN laws ***)
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(*Also follows by JN_insert and insert_absorb, but the proof is longer*)
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Goal "k:I ==> F k Join (JN i:I. F i) = (JN i:I. F i)";
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by (auto_tac (claset() addSIs [program_equalityI], simpset()));
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qed "JN_absorb";
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Goal "(JN i: I Un J. F i) = ((JN i: I. F i) Join (JN i:J. F i))";
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by (auto_tac (claset() addSIs [program_equalityI], simpset()));
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qed "JN_Un";
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Goal "(JN i:I. c) = (if I={} then SKIP else c)";
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by (rtac program_equalityI 1);
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by Auto_tac;
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qed "JN_constant";
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Goal "(JN i:I. F i Join G i) = (JN i:I. F i)  Join  (JN i:I. G i)";
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by (auto_tac (claset() addSIs [program_equalityI], simpset()));
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qed "JN_Join_distrib";
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Goal "i : I ==> (JN i:I. F i Join G) = ((JN i:I. F i) Join G)";
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   159
by (asm_simp_tac (simpset() addsimps [JN_Join_distrib, JN_constant]) 1);
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by Auto_tac;
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qed "JN_Join_miniscope";
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   162
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   163
(*Used to prove guarantees_JN_I*)
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   164
Goalw  [JOIN_def, Join_def] "i: I ==> F i Join JOIN (I - {i}) F = JOIN I F";
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   165
by (rtac program_equalityI 1);
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   166
by Auto_tac;
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qed "JN_Join_diff";
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   169
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(*** Safety: co, stable, FP ***)
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(*Fails if I={} because it collapses to SKIP : A co B, i.e. to A<=B.  So an
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  alternative precondition is A<=B, but most proofs using this rule require
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  I to be nonempty for other reasons anyway.*)
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Goalw [constrains_def, JOIN_def]
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    "i : I ==> (JN i:I. F i) : A co B = (ALL i:I. F i : A co B)";
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by (Simp_tac 1);
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by (Blast_tac 1);
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qed "JN_constrains";
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Goal "(F Join G : A co B) = (F : A co B & G : A co B)";
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by (auto_tac
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    (claset(),
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     simpset() addsimps [constrains_def, Join_def]));
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qed "Join_constrains";
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   186
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Goal "(F Join G : A unless B) = (F : A unless B & G : A unless B)";
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by (simp_tac (simpset() addsimps [Join_constrains, unless_def]) 1);
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qed "Join_unless";
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Addsimps [Join_constrains, Join_unless];
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   192
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(*Analogous weak versions FAIL; see Misra [1994] 5.4.1, Substitution Axiom.
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  reachable (F Join G) could be much bigger than reachable F, reachable G
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*)
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Goal "[| F : A co A';  G : B co B' |] \
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\     ==> F Join G : (A Int B) co (A' Un B')";
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by (Simp_tac 1);
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   201
by (blast_tac (claset() addIs [constrains_weaken]) 1);
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qed "Join_constrains_weaken";
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   203
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(*If I={}, it degenerates to SKIP : UNIV co {}, which is false.*)
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Goal "[| ALL i:I. F i : A i co A' i;  i: I |] \
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\     ==> (JN i:I. F i) : (INT i:I. A i) co (UN i:I. A' i)";
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   207
by (asm_simp_tac (simpset() addsimps [JN_constrains]) 1);
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   208
by (blast_tac (claset() addIs [constrains_weaken]) 1);
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qed "JN_constrains_weaken";
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Goal "(JN i:I. F i) : stable A = (ALL i:I. F i : stable A)";
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   212
by (asm_simp_tac 
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    (simpset() addsimps [stable_def, constrains_def, JOIN_def]) 1);
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qed "JN_stable";
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Goal "[| ALL i:I. F i : invariant A;  i : I |]  \
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\      ==> (JN i:I. F i) : invariant A";
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by (asm_full_simp_tac (simpset() addsimps [invariant_def, JN_stable]) 1);
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by (Blast_tac 1);
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bind_thm ("invariant_JN_I", ballI RS result());
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   221
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   222
Goal "(F Join G : stable A) = \
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\     (F : stable A & G : stable A)";
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by (simp_tac (simpset() addsimps [stable_def]) 1);
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qed "Join_stable";
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Goal "(F Join G : increasing f) = \
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\     (F : increasing f & G : increasing f)";
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by (simp_tac (simpset() addsimps [increasing_def, Join_stable]) 1);
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by (Blast_tac 1);
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qed "Join_increasing";
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   232
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Addsimps [Join_stable, Join_increasing];
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   234
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Goal "[| F : invariant A; G : invariant A |]  \
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\     ==> F Join G : invariant A";
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by (full_simp_tac (simpset() addsimps [invariant_def]) 1);
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   238
by (Blast_tac 1);
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qed "invariant_JoinI";
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   240
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   241
Goal "FP (JN i:I. F i) = (INT i:I. FP (F i))";
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by (asm_simp_tac (simpset() addsimps [FP_def, JN_stable, INTER_def]) 1);
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qed "FP_JN";
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   246
(*** Progress: transient, ensures ***)
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   247
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Goal "i : I ==> \
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\   (JN i:I. F i) : transient A = (EX i:I. F i : transient A)";
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   250
by (auto_tac (claset(),
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	      simpset() addsimps [transient_def, JOIN_def]));
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qed "JN_transient";
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Goal "F Join G : transient A = \
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\     (F : transient A | G : transient A)";
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   256
by (auto_tac (claset(),
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	      simpset() addsimps [bex_Un, transient_def,
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   258
				  Join_def]));
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qed "Join_transient";
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Addsimps [Join_transient];
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   262
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   263
Goal "F : transient A ==> F Join G : transient A";
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   264
by (asm_simp_tac (simpset() addsimps [Join_transient]) 1);
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qed "Join_transient_I1";
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   266
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   267
Goal "G : transient A ==> F Join G : transient A";
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   268
by (asm_simp_tac (simpset() addsimps [Join_transient]) 1);
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qed "Join_transient_I2";
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   270
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(*If I={} it degenerates to (SKIP : A ensures B) = False, i.e. to ~(A<=B) *)
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Goal "i : I ==> \
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\     (JN i:I. F i) : A ensures B = \
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\     ((ALL i:I. F i : (A-B) co (A Un B)) & (EX i:I. F i : A ensures B))";
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by (auto_tac (claset(),
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	      simpset() addsimps [ensures_def, JN_constrains, JN_transient]));
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qed "JN_ensures";
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   278
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Goalw [ensures_def]
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     "F Join G : A ensures B =     \
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\     (F : (A-B) co (A Un B) & G : (A-B) co (A Un B) & \
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\      (F : transient (A-B) | G : transient (A-B)))";
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   283
by (auto_tac (claset(), simpset() addsimps [Join_transient]));
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qed "Join_ensures";
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   285
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Goalw [stable_def, constrains_def, Join_def]
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    "[| F : stable A;  G : A co A' |] \
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\    ==> F Join G : A co A'";
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   289
by (asm_full_simp_tac (simpset() addsimps [ball_Un]) 1);
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   290
by (Blast_tac 1);
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   291
qed "stable_Join_constrains";
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   292
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   293
(*Premise for G cannot use Always because  F: Stable A  is weaker than
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  G : stable A *)
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Goal "[| F : stable A;  G : invariant A |] ==> F Join G : Always A";
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by (full_simp_tac (simpset() addsimps [Always_def, invariant_def, 
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				       Stable_eq_stable]) 1);
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by (force_tac(claset() addIs [stable_Int], simpset()) 1);
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qed "stable_Join_Always1";
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(*As above, but exchanging the roles of F and G*)
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Goal "[| F : invariant A;  G : stable A |] ==> F Join G : Always A";
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by (stac Join_commute 1);
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by (blast_tac (claset() addIs [stable_Join_Always1]) 1);
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qed "stable_Join_Always2";
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Goal "[| F : stable A;  G : A ensures B |] ==> F Join G : A ensures B";
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by (asm_simp_tac (simpset() addsimps [Join_ensures]) 1);
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by (asm_full_simp_tac (simpset() addsimps [stable_def, ensures_def]) 1);
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by (etac constrains_weaken 1);
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by Auto_tac;
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qed "stable_Join_ensures1";
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(*As above, but exchanging the roles of F and G*)
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Goal "[| F : A ensures B;  G : stable A |] ==> F Join G : A ensures B";
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by (stac Join_commute 1);
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by (blast_tac (claset() addIs [stable_Join_ensures1]) 1);
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qed "stable_Join_ensures2";
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