| author | haftmann | 
| Mon, 03 Feb 2014 08:23:21 +0100 | |
| changeset 55293 | 42cf5802d36a | 
| parent 55075 | b3d0a02a756d | 
| child 55943 | 5c2df04e97d1 | 
| permissions | -rw-r--r-- | 
| 55075 | 1 | (* Title: HOL/BNF_Examples/Process.thy | 
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changeset | 2 | Author: Andrei Popescu, TU Muenchen | 
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changeset | 3 | Copyright 2012 | 
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changeset | 4 | |
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changeset | 5 | Processes. | 
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changeset | 6 | *) | 
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changeset | 7 | |
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changeset | 8 | header {* Processes *}
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changeset | 9 | |
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changeset | 10 | theory Process | 
| 53103 | 11 | imports Stream | 
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changeset | 12 | begin | 
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changeset | 13 | |
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changeset | 14 | codatatype 'a process = | 
| 49237 | 15 | isAction: Action (prefOf: 'a) (contOf: "'a process") | | 
| 16 | isChoice: Choice (ch1Of: "'a process") (ch2Of: "'a process") | |
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changeset | 17 | |
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changeset | 18 | (* Read: prefix of, continuation of, choice 1 of, choice 2 of *) | 
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changeset | 19 | |
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changeset | 20 | section {* Customization *}
 | 
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changeset | 21 | |
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changeset | 22 | subsection {* Basic properties *}
 | 
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changeset | 23 | |
| 49463 | 24 | declare | 
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changeset | 25 | rel_pre_process_def[simp] | 
| 49508 | 26 | sum_rel_def[simp] | 
| 27 | prod_rel_def[simp] | |
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changeset | 28 | |
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changeset | 29 | (* Constructors versus discriminators *) | 
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changeset | 30 | theorem isAction_isChoice: | 
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changeset | 31 | "isAction p \<or> isChoice p" | 
| 49237 | 32 | by (rule process.disc_exhaust) auto | 
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changeset | 33 | |
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changeset | 34 | theorem not_isAction_isChoice: "\<not> (isAction p \<and> isChoice p)" | 
| 49301 | 35 | by (cases rule: process.exhaust[of p]) auto | 
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changeset | 36 | |
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changeset | 37 | |
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changeset | 38 | subsection{* Coinduction *}
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changeset | 39 | |
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changeset | 40 | theorem process_coind[elim, consumes 1, case_names iss Action Choice, induct pred: "HOL.eq"]: | 
| 53103 | 41 | assumes phi: "\<phi> p p'" and | 
| 42 | iss: "\<And>p p'. \<phi> p p' \<Longrightarrow> (isAction p \<longleftrightarrow> isAction p') \<and> (isChoice p \<longleftrightarrow> isChoice p')" and | |
| 43 | Act: "\<And> a a' p p'. \<phi> (Action a p) (Action a' p') \<Longrightarrow> a = a' \<and> \<phi> p p'" and | |
| 44 | Ch: "\<And> p q p' q'. \<phi> (Choice p q) (Choice p' q') \<Longrightarrow> \<phi> p p' \<and> \<phi> q q'" | |
| 45 | shows "p = p'" | |
| 46 | using assms | |
| 53694 | 47 | by (coinduct rule: process.coinduct) (metis process.collapse(1,2) process.disc(3)) | 
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changeset | 48 | |
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changeset | 49 | (* Stronger coinduction, up to equality: *) | 
| 49508 | 50 | theorem process_strong_coind[elim, consumes 1, case_names iss Action Choice]: | 
| 53103 | 51 | assumes phi: "\<phi> p p'" and | 
| 52 | iss: "\<And>p p'. \<phi> p p' \<Longrightarrow> (isAction p \<longleftrightarrow> isAction p') \<and> (isChoice p \<longleftrightarrow> isChoice p')" and | |
| 53 | Act: "\<And> a a' p p'. \<phi> (Action a p) (Action a' p') \<Longrightarrow> a = a' \<and> (\<phi> p p' \<or> p = p')" and | |
| 54 | Ch: "\<And> p q p' q'. \<phi> (Choice p q) (Choice p' q') \<Longrightarrow> (\<phi> p p' \<or> p = p') \<and> (\<phi> q q' \<or> q = q')" | |
| 55 | shows "p = p'" | |
| 56 | using assms | |
| 53694 | 57 | by (coinduct rule: process.strong_coinduct) (metis process.collapse(1,2) process.disc(3)) | 
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changeset | 58 | |
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changeset | 59 | |
| 49508 | 60 | subsection {* Coiteration (unfold) *}
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changeset | 61 | |
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changeset | 62 | |
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changeset | 63 | section{* Coinductive definition of the notion of trace *}
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changeset | 64 | coinductive trace where | 
| 53103 | 65 | "trace p as \<Longrightarrow> trace (Action a p) (a ## as)" | 
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changeset | 66 | | | 
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changeset | 67 | "trace p as \<or> trace q as \<Longrightarrow> trace (Choice p q) as" | 
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changeset | 68 | |
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changeset | 69 | |
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changeset | 70 | section{* Examples of corecursive definitions: *}
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changeset | 71 | |
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changeset | 72 | subsection{* Single-guard fixpoint definition *}
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changeset | 73 | |
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changeset | 74 | primcorec BX where | 
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changeset | 75 | "isAction BX" | 
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changeset | 76 | | "prefOf BX = ''a''" | 
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changeset | 77 | | "contOf BX = BX" | 
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changeset | 78 | |
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changeset | 79 | |
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changeset | 80 | subsection{* Multi-guard fixpoint definitions, simulated with auxiliary arguments *}
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changeset | 81 | |
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changeset | 82 | datatype x_y_ax = x | y | ax | 
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changeset | 83 | |
| 54423 | 84 | primcorec F :: "x_y_ax \<Rightarrow> char list process" where | 
| 85 | "xyax = x \<Longrightarrow> isChoice (F xyax)" | |
| 86 | | "ch1Of (F xyax) = F ax" | |
| 87 | | "ch2Of (F xyax) = F y" | |
| 88 | | "prefOf (F xyax) = (if xyax = y then ''b'' else ''a'')" | |
| 89 | | "contOf (F xyax) = F x" | |
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changeset | 90 | |
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changeset | 91 | definition "X = F x" definition "Y = F y" definition "AX = F ax" | 
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changeset | 92 | |
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changeset | 93 | lemma X_Y_AX: "X = Choice AX Y" "Y = Action ''b'' X" "AX = Action ''a'' X" | 
| 54423 | 94 | unfolding X_def Y_def AX_def by (subst F.code, simp)+ | 
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changeset | 95 | |
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changeset | 96 | (* end product: *) | 
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changeset | 97 | lemma X_AX: | 
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changeset | 98 | "X = Choice AX (Action ''b'' X)" | 
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changeset | 99 | "AX = Action ''a'' X" | 
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changeset | 100 | using X_Y_AX by simp_all | 
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changeset | 101 | |
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changeset | 102 | |
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changeset | 103 | |
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changeset | 104 | section{* Case study: Multi-guard fixpoint definitions, without auxiliary arguments *}
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changeset | 105 | |
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changeset | 106 | hide_const x y ax X Y AX | 
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changeset | 107 | |
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changeset | 108 | (* Process terms *) | 
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changeset | 109 | datatype ('a,'pvar) process_term =
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changeset | 110 | VAR 'pvar | | 
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changeset | 111 | PROC "'a process" | | 
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changeset | 112 |  ACT 'a "('a,'pvar) process_term" | CH "('a,'pvar) process_term" "('a,'pvar) process_term"
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changeset | 113 | |
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changeset | 114 | (* below, sys represents a system of equations *) | 
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changeset | 115 | fun isACT where | 
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changeset | 116 | "isACT sys (VAR X) = | 
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changeset | 117 | (case sys X of ACT a T \<Rightarrow> True |PROC p \<Rightarrow> isAction p |_ \<Rightarrow> False)" | 
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changeset | 118 | | | 
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changeset | 119 | "isACT sys (PROC p) = isAction p" | 
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changeset | 120 | | | 
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changeset | 121 | "isACT sys (ACT a T) = True" | 
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changeset | 122 | | | 
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changeset | 123 | "isACT sys (CH T1 T2) = False" | 
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changeset | 124 | |
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changeset | 125 | fun PREF where | 
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changeset | 126 | "PREF sys (VAR X) = | 
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changeset | 127 | (case sys X of ACT a T \<Rightarrow> a | PROC p \<Rightarrow> prefOf p)" | 
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changeset | 128 | | | 
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changeset | 129 | "PREF sys (PROC p) = prefOf p" | 
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changeset | 130 | | | 
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changeset | 131 | "PREF sys (ACT a T) = a" | 
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changeset | 132 | |
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changeset | 133 | fun CONT where | 
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changeset | 134 | "CONT sys (VAR X) = | 
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changeset | 135 | (case sys X of ACT a T \<Rightarrow> T | PROC p \<Rightarrow> PROC (contOf p))" | 
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changeset | 136 | | | 
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changeset | 137 | "CONT sys (PROC p) = PROC (contOf p)" | 
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changeset | 138 | | | 
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changeset | 139 | "CONT sys (ACT a T) = T" | 
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changeset | 140 | |
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changeset | 141 | fun CH1 where | 
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changeset | 142 | "CH1 sys (VAR X) = | 
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changeset | 143 | (case sys X of CH T1 T2 \<Rightarrow> T1 |PROC p \<Rightarrow> PROC (ch1Of p))" | 
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changeset | 144 | | | 
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changeset | 145 | "CH1 sys (PROC p) = PROC (ch1Of p)" | 
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changeset | 146 | | | 
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changeset | 147 | "CH1 sys (CH T1 T2) = T1" | 
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changeset | 148 | |
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changeset | 149 | fun CH2 where | 
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changeset | 150 | "CH2 sys (VAR X) = | 
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changeset | 151 | (case sys X of CH T1 T2 \<Rightarrow> T2 |PROC p \<Rightarrow> PROC (ch2Of p))" | 
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changeset | 152 | | | 
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changeset | 153 | "CH2 sys (PROC p) = PROC (ch2Of p)" | 
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changeset | 154 | | | 
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changeset | 155 | "CH2 sys (CH T1 T2) = T2" | 
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changeset | 156 | |
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changeset | 157 | definition "guarded sys \<equiv> \<forall> X Y. sys X \<noteq> VAR Y" | 
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changeset | 158 | |
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changeset | 159 | primcorec solution where | 
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changeset | 160 | "isACT sys T \<Longrightarrow> solution sys T = Action (PREF sys T) (solution sys (CONT sys T))" | 
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changeset | 161 | | "_ \<Longrightarrow> solution sys T = Choice (solution sys (CH1 sys T)) (solution sys (CH2 sys T))" | 
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changeset | 162 | |
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changeset | 163 | lemma isACT_VAR: | 
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changeset | 164 | assumes g: "guarded sys" | 
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changeset | 165 | shows "isACT sys (VAR X) \<longleftrightarrow> isACT sys (sys X)" | 
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changeset | 166 | using g unfolding guarded_def by (cases "sys X") auto | 
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changeset | 167 | |
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changeset | 168 | lemma solution_VAR: | 
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changeset | 169 | assumes g: "guarded sys" | 
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changeset | 170 | shows "solution sys (VAR X) = solution sys (sys X)" | 
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changeset | 171 | proof(cases "isACT sys (VAR X)") | 
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changeset | 172 | case True | 
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changeset | 173 | hence T: "isACT sys (sys X)" unfolding isACT_VAR[OF g] . | 
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changeset | 174 | show ?thesis | 
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changeset | 175 | unfolding solution.ctr(1)[OF T] using solution.ctr(1)[of sys "VAR X"] True g | 
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changeset | 176 | unfolding guarded_def by (cases "sys X", auto) | 
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changeset | 177 | next | 
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changeset | 178 | case False note FFalse = False | 
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changeset | 179 | hence TT: "\<not> isACT sys (sys X)" unfolding isACT_VAR[OF g] . | 
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changeset | 180 | show ?thesis | 
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changeset | 181 | unfolding solution.ctr(2)[OF TT] using solution.ctr(2)[of sys "VAR X"] FFalse g | 
| 49238 | 182 | unfolding guarded_def by (cases "sys X", auto) | 
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changeset | 183 | qed | 
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changeset | 184 | |
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changeset | 185 | lemma solution_PROC[simp]: | 
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changeset | 186 | "solution sys (PROC p) = p" | 
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changeset | 187 | proof- | 
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changeset | 188 |   {fix q assume "q = solution sys (PROC p)"
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changeset | 189 | hence "p = q" | 
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changeset | 190 | proof (coinduct rule: process_coind) | 
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changeset | 191 | case (iss p p') | 
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changeset | 192 | from isAction_isChoice[of p] show ?case | 
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changeset | 193 | proof | 
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changeset | 194 | assume p: "isAction p" | 
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changeset | 195 | hence 0: "isACT sys (PROC p)" by simp | 
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changeset | 196 | thus ?thesis using iss not_isAction_isChoice by auto | 
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changeset | 197 | next | 
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changeset | 198 | assume "isChoice p" | 
| 49238 | 199 | hence 0: "\<not> isACT sys (PROC p)" | 
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changeset | 200 | using not_isAction_isChoice by auto | 
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changeset | 201 | thus ?thesis using iss isAction_isChoice by auto | 
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changeset | 202 | qed | 
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changeset | 203 | next | 
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changeset | 204 | case (Action a a' p p') | 
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changeset | 205 | hence 0: "isACT sys (PROC (Action a p))" by simp | 
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changeset | 206 | show ?case using Action unfolding solution.ctr(1)[OF 0] by simp | 
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changeset | 207 | next | 
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changeset | 208 | case (Choice p q p' q') | 
| 49238 | 209 | hence 0: "\<not> isACT sys (PROC (Choice p q))" using not_isAction_isChoice by auto | 
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changeset | 210 | show ?case using Choice unfolding solution.ctr(2)[OF 0] by simp | 
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changeset | 211 | qed | 
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changeset | 212 | } | 
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changeset | 213 | thus ?thesis by metis | 
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changeset | 214 | qed | 
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changeset | 215 | |
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changeset | 216 | lemma solution_ACT[simp]: | 
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changeset | 217 | "solution sys (ACT a T) = Action a (solution sys T)" | 
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changeset | 218 | by (metis CONT.simps(3) PREF.simps(3) isACT.simps(3) solution.ctr(1)) | 
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changeset | 219 | |
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changeset | 220 | lemma solution_CH[simp]: | 
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changeset | 221 | "solution sys (CH T1 T2) = Choice (solution sys T1) (solution sys T2)" | 
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changeset | 222 | by (metis CH1.simps(3) CH2.simps(3) isACT.simps(4) solution.ctr(2)) | 
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changeset | 223 | |
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changeset | 224 | |
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changeset | 225 | (* Example: *) | 
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changeset | 226 | |
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changeset | 227 | fun sys where | 
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changeset | 228 | "sys 0 = CH (VAR (Suc 0)) (ACT ''b'' (VAR 0))" | 
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changeset | 229 | | | 
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changeset | 230 | "sys (Suc 0) = ACT ''a'' (VAR 0)" | 
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changeset | 231 | | (* dummy guarded term for variables outside the system: *) | 
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changeset | 232 | "sys X = ACT ''a'' (VAR 0)" | 
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changeset | 233 | |
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changeset | 234 | lemma guarded_sys: | 
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changeset | 235 | "guarded sys" | 
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changeset | 236 | unfolding guarded_def proof (intro allI) | 
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changeset | 237 | fix X Y show "sys X \<noteq> VAR Y" by (cases X, simp, case_tac nat, auto) | 
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changeset | 238 | qed | 
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changeset | 239 | |
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changeset | 240 | (* the actual processes: *) | 
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changeset | 241 | definition "x \<equiv> solution sys (VAR 0)" | 
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changeset | 242 | definition "ax \<equiv> solution sys (VAR (Suc 0))" | 
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changeset | 243 | |
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changeset | 244 | (* end product: *) | 
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changeset | 245 | lemma x_ax: | 
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changeset | 246 | "x = Choice ax (Action ''b'' x)" | 
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changeset | 247 | "ax = Action ''a'' x" | 
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changeset | 248 | unfolding x_def ax_def by (subst solution_VAR[OF guarded_sys], simp)+ | 
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changeset | 249 | |
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changeset | 250 | |
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changeset | 251 | (* Thanks to the inclusion of processes as process terms, one can | 
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changeset | 252 | also consider parametrized systems of equations---here, x is a (semantic) | 
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changeset | 253 | process parameter: *) | 
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changeset | 254 | |
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changeset | 255 | fun sys' where | 
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changeset | 256 | "sys' 0 = CH (PROC x) (ACT ''b'' (VAR 0))" | 
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changeset | 257 | | | 
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changeset | 258 | "sys' (Suc 0) = CH (ACT ''a'' (VAR 0)) (PROC x)" | 
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changeset | 259 | | (* dummy guarded term : *) | 
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changeset | 260 | "sys' X = ACT ''a'' (VAR 0)" | 
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changeset | 261 | |
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changeset | 262 | lemma guarded_sys': | 
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changeset | 263 | "guarded sys'" | 
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changeset | 264 | unfolding guarded_def proof (intro allI) | 
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changeset | 265 | fix X Y show "sys' X \<noteq> VAR Y" by (cases X, simp, case_tac nat, auto) | 
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changeset | 266 | qed | 
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changeset | 267 | |
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changeset | 268 | (* the actual processes: *) | 
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changeset | 269 | definition "y \<equiv> solution sys' (VAR 0)" | 
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changeset | 270 | definition "ay \<equiv> solution sys' (VAR (Suc 0))" | 
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changeset | 271 | |
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changeset | 272 | (* end product: *) | 
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changeset | 273 | lemma y_ay: | 
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changeset | 274 | "y = Choice x (Action ''b'' y)" | 
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changeset | 275 | "ay = Choice (Action ''a'' y) x" | 
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changeset | 276 | unfolding y_def ay_def by (subst solution_VAR[OF guarded_sys'], simp)+ | 
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7f79f94a432c
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changeset | 277 | |
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added new (co)datatype package + theories of ordinals and cardinals (with Dmitriy and Andrei)
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changeset | 278 | end |