| author | wenzelm | 
| Sun, 21 Feb 2010 20:54:07 +0100 | |
| changeset 35251 | e244adbbc28f | 
| parent 35109 | 0015a0a99ae9 | 
| child 35355 | 613e133966ea | 
| child 35416 | d8d7d1b785af | 
| permissions | -rwxr-xr-x | 
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33954
 
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1  | 
(* Title: HOL/MicroJava/BV/Semilat.thy  | 
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2  | 
Author: Tobias Nipkow  | 
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3  | 
Copyright 2000 TUM  | 
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4  | 
*)  | 
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5  | 
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6  | 
header {* 
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7  | 
  \chapter{Bytecode Verifier}\label{cha:bv}
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8  | 
  \isaheader{Semilattices} 
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9  | 
*}  | 
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10  | 
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11  | 
theory Semilat  | 
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12  | 
imports Main While_Combinator  | 
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13  | 
begin  | 
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14  | 
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15  | 
types  | 
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16  | 
'a ord = "'a \<Rightarrow> 'a \<Rightarrow> bool"  | 
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17  | 
'a binop = "'a \<Rightarrow> 'a \<Rightarrow> 'a"  | 
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18  | 
'a sl = "'a set \<times> 'a ord \<times> 'a binop"  | 
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19  | 
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20  | 
consts  | 
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21  | 
"lesub" :: "'a \<Rightarrow> 'a ord \<Rightarrow> 'a \<Rightarrow> bool"  | 
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22  | 
"lesssub" :: "'a \<Rightarrow> 'a ord \<Rightarrow> 'a \<Rightarrow> bool"  | 
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23  | 
  "plussub" :: "'a \<Rightarrow> ('a \<Rightarrow> 'b \<Rightarrow> 'c) \<Rightarrow> 'b \<Rightarrow> 'c" 
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24  | 
(*<*)  | 
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modernized notation -- to make it work for authentic syntax;
 
wenzelm 
parents: 
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25  | 
notation  | 
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26  | 
  "lesub"  ("(_ /<='__ _)" [50, 1000, 51] 50) and
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27  | 
  "lesssub"  ("(_ /<'__ _)" [50, 1000, 51] 50) and
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28  | 
  "plussub"  ("(_ /+'__ _)" [65, 1000, 66] 65)
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29  | 
(*>*)  | 
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parents: 
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30  | 
notation (xsymbols)  | 
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31  | 
  "lesub"  ("(_ /\<sqsubseteq>\<^bsub>_\<^esub> _)" [50, 0, 51] 50) and
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parents: 
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32  | 
  "lesssub"  ("(_ /\<sqsubset>\<^bsub>_\<^esub> _)" [50, 0, 51] 50) and
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e244adbbc28f
modernized notation -- to make it work for authentic syntax;
 
wenzelm 
parents: 
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33  | 
  "plussub"  ("(_ /\<squnion>\<^bsub>_\<^esub> _)" [65, 0, 66] 65)
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34  | 
(*<*)  | 
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modernized notation -- to make it work for authentic syntax;
 
wenzelm 
parents: 
35109 
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35  | 
syntax  | 
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36  | 
(* allow \<sub> instead of \<bsub>..\<esub> *)  | 
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  "_lesub" :: "'a \<Rightarrow> 'a ord \<Rightarrow> 'a \<Rightarrow> bool" ("(_ /\<sqsubseteq>\<^sub>_ _)" [50, 1000, 51] 50)
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38  | 
  "_lesssub" :: "'a \<Rightarrow> 'a ord \<Rightarrow> 'a \<Rightarrow> bool" ("(_ /\<sqsubset>\<^sub>_ _)" [50, 1000, 51] 50)
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39  | 
  "_plussub" :: "'a \<Rightarrow> ('a \<Rightarrow> 'b \<Rightarrow> 'c) \<Rightarrow> 'b \<Rightarrow> 'c" ("(_ /\<squnion>\<^sub>_ _)" [65, 1000, 66] 65)
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40  | 
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41  | 
translations  | 
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42  | 
"x \<sqsubseteq>\<^sub>r y" => "x \<sqsubseteq>\<^bsub>r\<^esub> y"  | 
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43  | 
"x \<sqsubset>\<^sub>r y" => "x \<sqsubset>\<^bsub>r\<^esub> y"  | 
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44  | 
"x \<squnion>\<^sub>f y" => "x \<squnion>\<^bsub>f\<^esub> y"  | 
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45  | 
(*>*)  | 
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46  | 
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47  | 
defs  | 
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48  | 
lesub_def: "x \<sqsubseteq>\<^sub>r y \<equiv> r x y"  | 
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49  | 
lesssub_def: "x \<sqsubset>\<^sub>r y \<equiv> x \<sqsubseteq>\<^sub>r y \<and> x \<noteq> y"  | 
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50  | 
plussub_def: "x \<squnion>\<^sub>f y \<equiv> f x y"  | 
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51  | 
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52  | 
constdefs  | 
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53  | 
  ord :: "('a \<times> 'a) set \<Rightarrow> 'a ord"
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"ord r \<equiv> \<lambda>x y. (x,y) \<in> r"  | 
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55  | 
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56  | 
order :: "'a ord \<Rightarrow> bool"  | 
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57  | 
"order r \<equiv> (\<forall>x. x \<sqsubseteq>\<^sub>r x) \<and> (\<forall>x y. x \<sqsubseteq>\<^sub>r y \<and> y \<sqsubseteq>\<^sub>r x \<longrightarrow> x=y) \<and> (\<forall>x y z. x \<sqsubseteq>\<^sub>r y \<and> y \<sqsubseteq>\<^sub>r z \<longrightarrow> x \<sqsubseteq>\<^sub>r z)"  | 
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58  | 
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59  | 
top :: "'a ord \<Rightarrow> 'a \<Rightarrow> bool"  | 
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60  | 
"top r T \<equiv> \<forall>x. x \<sqsubseteq>\<^sub>r T"  | 
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61  | 
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62  | 
acc :: "'a ord \<Rightarrow> bool"  | 
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63  | 
  "acc r \<equiv> wf {(y,x). x \<sqsubset>\<^sub>r y}"
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64  | 
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65  | 
closed :: "'a set \<Rightarrow> 'a binop \<Rightarrow> bool"  | 
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66  | 
"closed A f \<equiv> \<forall>x\<in>A. \<forall>y\<in>A. x \<squnion>\<^sub>f y \<in> A"  | 
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67  | 
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68  | 
semilat :: "'a sl \<Rightarrow> bool"  | 
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69  | 
"semilat \<equiv> \<lambda>(A,r,f). order r \<and> closed A f \<and>  | 
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70  | 
(\<forall>x\<in>A. \<forall>y\<in>A. x \<sqsubseteq>\<^sub>r x \<squnion>\<^sub>f y) \<and>  | 
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71  | 
(\<forall>x\<in>A. \<forall>y\<in>A. y \<sqsubseteq>\<^sub>r x \<squnion>\<^sub>f y) \<and>  | 
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72  | 
(\<forall>x\<in>A. \<forall>y\<in>A. \<forall>z\<in>A. x \<sqsubseteq>\<^sub>r z \<and> y \<sqsubseteq>\<^sub>r z \<longrightarrow> x \<squnion>\<^sub>f y \<sqsubseteq>\<^sub>r z)"  | 
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73  | 
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74  | 
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75  | 
  is_ub :: "('a \<times> 'a) set \<Rightarrow> 'a \<Rightarrow> 'a \<Rightarrow> 'a \<Rightarrow> bool"
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76  | 
"is_ub r x y u \<equiv> (x,u)\<in>r \<and> (y,u)\<in>r"  | 
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77  | 
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78  | 
  is_lub :: "('a \<times> 'a) set \<Rightarrow> 'a \<Rightarrow> 'a \<Rightarrow> 'a \<Rightarrow> bool"
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79  | 
"is_lub r x y u \<equiv> is_ub r x y u \<and> (\<forall>z. is_ub r x y z \<longrightarrow> (u,z)\<in>r)"  | 
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80  | 
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81  | 
  some_lub :: "('a \<times> 'a) set \<Rightarrow> 'a \<Rightarrow> 'a \<Rightarrow> 'a"
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82  | 
"some_lub r x y \<equiv> SOME z. is_lub r x y z"  | 
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83  | 
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84  | 
locale Semilat =  | 
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85  | 
fixes A :: "'a set"  | 
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86  | 
fixes r :: "'a ord"  | 
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87  | 
fixes f :: "'a binop"  | 
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88  | 
assumes semilat: "semilat (A, r, f)"  | 
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89  | 
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90  | 
lemma order_refl [simp, intro]: "order r \<Longrightarrow> x \<sqsubseteq>\<^sub>r x"  | 
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91  | 
(*<*) by (unfold order_def) (simp (no_asm_simp)) (*>*)  | 
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92  | 
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93  | 
lemma order_antisym: "\<lbrakk> order r; x \<sqsubseteq>\<^sub>r y; y \<sqsubseteq>\<^sub>r x \<rbrakk> \<Longrightarrow> x = y"  | 
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94  | 
(*<*) by (unfold order_def) (simp (no_asm_simp)) (*>*)  | 
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95  | 
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96  | 
lemma order_trans: "\<lbrakk> order r; x \<sqsubseteq>\<^sub>r y; y \<sqsubseteq>\<^sub>r z \<rbrakk> \<Longrightarrow> x \<sqsubseteq>\<^sub>r z"  | 
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97  | 
(*<*) by (unfold order_def) blast (*>*)  | 
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98  | 
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99  | 
lemma order_less_irrefl [intro, simp]: "order r \<Longrightarrow> \<not> x \<sqsubset>\<^sub>r x"  | 
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100  | 
(*<*) by (unfold order_def lesssub_def) blast (*>*)  | 
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101  | 
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102  | 
lemma order_less_trans: "\<lbrakk> order r; x \<sqsubset>\<^sub>r y; y \<sqsubset>\<^sub>r z \<rbrakk> \<Longrightarrow> x \<sqsubset>\<^sub>r z"  | 
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103  | 
(*<*) by (unfold order_def lesssub_def) blast (*>*)  | 
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104  | 
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105  | 
lemma topD [simp, intro]: "top r T \<Longrightarrow> x \<sqsubseteq>\<^sub>r T"  | 
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106  | 
(*<*) by (simp add: top_def) (*>*)  | 
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107  | 
|
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108  | 
lemma top_le_conv [simp]: "\<lbrakk> order r; top r T \<rbrakk> \<Longrightarrow> (T \<sqsubseteq>\<^sub>r x) = (x = T)"  | 
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109  | 
(*<*) by (blast intro: order_antisym) (*>*)  | 
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110  | 
|
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111  | 
lemma semilat_Def:  | 
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112  | 
"semilat(A,r,f) \<equiv> order r \<and> closed A f \<and>  | 
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113  | 
(\<forall>x\<in>A. \<forall>y\<in>A. x \<sqsubseteq>\<^sub>r x \<squnion>\<^sub>f y) \<and>  | 
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114  | 
(\<forall>x\<in>A. \<forall>y\<in>A. y \<sqsubseteq>\<^sub>r x \<squnion>\<^sub>f y) \<and>  | 
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115  | 
(\<forall>x\<in>A. \<forall>y\<in>A. \<forall>z\<in>A. x \<sqsubseteq>\<^sub>r z \<and> y \<sqsubseteq>\<^sub>r z \<longrightarrow> x \<squnion>\<^sub>f y \<sqsubseteq>\<^sub>r z)"  | 
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116  | 
(*<*) by (unfold semilat_def) clarsimp (*>*)  | 
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117  | 
|
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118  | 
lemma (in Semilat) orderI [simp, intro]: "order r"  | 
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119  | 
(*<*) using semilat by (simp add: semilat_Def) (*>*)  | 
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120  | 
|
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121  | 
lemma (in Semilat) closedI [simp, intro]: "closed A f"  | 
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122  | 
(*<*) using semilat by (simp add: semilat_Def) (*>*)  | 
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123  | 
|
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124  | 
lemma closedD: "\<lbrakk> closed A f; x\<in>A; y\<in>A \<rbrakk> \<Longrightarrow> x \<squnion>\<^sub>f y \<in> A"  | 
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125  | 
(*<*) by (unfold closed_def) blast (*>*)  | 
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126  | 
|
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127  | 
lemma closed_UNIV [simp]: "closed UNIV f"  | 
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128  | 
(*<*) by (simp add: closed_def) (*>*)  | 
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129  | 
|
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130  | 
lemma (in Semilat) closed_f [simp, intro]: "\<lbrakk>x \<in> A; y \<in> A\<rbrakk> \<Longrightarrow> x \<squnion>\<^sub>f y \<in> A"  | 
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131  | 
(*<*) by (simp add: closedD [OF closedI]) (*>*)  | 
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132  | 
|
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133  | 
lemma (in Semilat) refl_r [intro, simp]: "x \<sqsubseteq>\<^sub>r x" by simp  | 
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134  | 
|
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135  | 
lemma (in Semilat) antisym_r [intro?]: "\<lbrakk> x \<sqsubseteq>\<^sub>r y; y \<sqsubseteq>\<^sub>r x \<rbrakk> \<Longrightarrow> x = y"  | 
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136  | 
(*<*) by (rule order_antisym) auto (*>*)  | 
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137  | 
|
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138  | 
lemma (in Semilat) trans_r [trans, intro?]: "\<lbrakk>x \<sqsubseteq>\<^sub>r y; y \<sqsubseteq>\<^sub>r z\<rbrakk> \<Longrightarrow> x \<sqsubseteq>\<^sub>r z"  | 
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139  | 
(*<*) by (auto intro: order_trans) (*>*)  | 
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140  | 
|
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141  | 
lemma (in Semilat) ub1 [simp, intro?]: "\<lbrakk> x \<in> A; y \<in> A \<rbrakk> \<Longrightarrow> x \<sqsubseteq>\<^sub>r x \<squnion>\<^sub>f y"  | 
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142  | 
(*<*) by (insert semilat) (unfold semilat_Def, simp) (*>*)  | 
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143  | 
|
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144  | 
lemma (in Semilat) ub2 [simp, intro?]: "\<lbrakk> x \<in> A; y \<in> A \<rbrakk> \<Longrightarrow> y \<sqsubseteq>\<^sub>r x \<squnion>\<^sub>f y"  | 
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145  | 
(*<*) by (insert semilat) (unfold semilat_Def, simp) (*>*)  | 
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146  | 
|
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147  | 
lemma (in Semilat) lub [simp, intro?]:  | 
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148  | 
"\<lbrakk> x \<sqsubseteq>\<^sub>r z; y \<sqsubseteq>\<^sub>r z; x \<in> A; y \<in> A; z \<in> A \<rbrakk> \<Longrightarrow> x \<squnion>\<^sub>f y \<sqsubseteq>\<^sub>r z";  | 
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149  | 
(*<*) by (insert semilat) (unfold semilat_Def, simp) (*>*)  | 
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150  | 
|
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151  | 
lemma (in Semilat) plus_le_conv [simp]:  | 
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152  | 
"\<lbrakk> x \<in> A; y \<in> A; z \<in> A \<rbrakk> \<Longrightarrow> (x \<squnion>\<^sub>f y \<sqsubseteq>\<^sub>r z) = (x \<sqsubseteq>\<^sub>r z \<and> y \<sqsubseteq>\<^sub>r z)"  | 
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153  | 
(*<*) by (blast intro: ub1 ub2 lub order_trans) (*>*)  | 
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154  | 
|
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155  | 
lemma (in Semilat) le_iff_plus_unchanged: "\<lbrakk> x \<in> A; y \<in> A \<rbrakk> \<Longrightarrow> (x \<sqsubseteq>\<^sub>r y) = (x \<squnion>\<^sub>f y = y)"  | 
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156  | 
(*<*)  | 
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157  | 
apply (rule iffI)  | 
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158  | 
apply (blast intro: antisym_r refl_r lub ub2)  | 
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159  | 
apply (erule subst)  | 
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160  | 
apply simp  | 
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161  | 
done  | 
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162  | 
(*>*)  | 
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163  | 
|
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164  | 
lemma (in Semilat) le_iff_plus_unchanged2: "\<lbrakk> x \<in> A; y \<in> A \<rbrakk> \<Longrightarrow> (x \<sqsubseteq>\<^sub>r y) = (y \<squnion>\<^sub>f x = y)"  | 
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165  | 
(*<*)  | 
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166  | 
apply (rule iffI)  | 
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167  | 
apply (blast intro: order_antisym lub order_refl ub1)  | 
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168  | 
apply (erule subst)  | 
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169  | 
apply simp  | 
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170  | 
done  | 
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171  | 
(*>*)  | 
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172  | 
|
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173  | 
|
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174  | 
lemma (in Semilat) plus_assoc [simp]:  | 
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175  | 
assumes a: "a \<in> A" and b: "b \<in> A" and c: "c \<in> A"  | 
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176  | 
shows "a \<squnion>\<^sub>f (b \<squnion>\<^sub>f c) = a \<squnion>\<^sub>f b \<squnion>\<^sub>f c"  | 
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177  | 
(*<*)  | 
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178  | 
proof -  | 
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179  | 
from a b have ab: "a \<squnion>\<^sub>f b \<in> A" ..  | 
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180  | 
from this c have abc: "(a \<squnion>\<^sub>f b) \<squnion>\<^sub>f c \<in> A" ..  | 
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181  | 
from b c have bc: "b \<squnion>\<^sub>f c \<in> A" ..  | 
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182  | 
from a this have abc': "a \<squnion>\<^sub>f (b \<squnion>\<^sub>f c) \<in> A" ..  | 
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183  | 
|
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184  | 
show ?thesis  | 
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185  | 
proof  | 
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186  | 
show "a \<squnion>\<^sub>f (b \<squnion>\<^sub>f c) \<sqsubseteq>\<^sub>r (a \<squnion>\<^sub>f b) \<squnion>\<^sub>f c"  | 
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187  | 
proof -  | 
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188  | 
from a b have "a \<sqsubseteq>\<^sub>r a \<squnion>\<^sub>f b" ..  | 
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189  | 
also from ab c have "\<dots> \<sqsubseteq>\<^sub>r \<dots> \<squnion>\<^sub>f c" ..  | 
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190  | 
finally have "a<": "a \<sqsubseteq>\<^sub>r (a \<squnion>\<^sub>f b) \<squnion>\<^sub>f c" .  | 
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191  | 
from a b have "b \<sqsubseteq>\<^sub>r a \<squnion>\<^sub>f b" ..  | 
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192  | 
also from ab c have "\<dots> \<sqsubseteq>\<^sub>r \<dots> \<squnion>\<^sub>f c" ..  | 
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193  | 
finally have "b<": "b \<sqsubseteq>\<^sub>r (a \<squnion>\<^sub>f b) \<squnion>\<^sub>f c" .  | 
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194  | 
from ab c have "c<": "c \<sqsubseteq>\<^sub>r (a \<squnion>\<^sub>f b) \<squnion>\<^sub>f c" ..  | 
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195  | 
from "b<" "c<" b c abc have "b \<squnion>\<^sub>f c \<sqsubseteq>\<^sub>r (a \<squnion>\<^sub>f b) \<squnion>\<^sub>f c" ..  | 
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196  | 
from "a<" this a bc abc show ?thesis ..  | 
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197  | 
qed  | 
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198  | 
show "(a \<squnion>\<^sub>f b) \<squnion>\<^sub>f c \<sqsubseteq>\<^sub>r a \<squnion>\<^sub>f (b \<squnion>\<^sub>f c)"  | 
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199  | 
proof -  | 
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200  | 
from b c have "b \<sqsubseteq>\<^sub>r b \<squnion>\<^sub>f c" ..  | 
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201  | 
also from a bc have "\<dots> \<sqsubseteq>\<^sub>r a \<squnion>\<^sub>f \<dots>" ..  | 
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202  | 
finally have "b<": "b \<sqsubseteq>\<^sub>r a \<squnion>\<^sub>f (b \<squnion>\<^sub>f c)" .  | 
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203  | 
from b c have "c \<sqsubseteq>\<^sub>r b \<squnion>\<^sub>f c" ..  | 
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204  | 
also from a bc have "\<dots> \<sqsubseteq>\<^sub>r a \<squnion>\<^sub>f \<dots>" ..  | 
| 
 
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205  | 
finally have "c<": "c \<sqsubseteq>\<^sub>r a \<squnion>\<^sub>f (b \<squnion>\<^sub>f c)" .  | 
| 
 
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206  | 
from a bc have "a<": "a \<sqsubseteq>\<^sub>r a \<squnion>\<^sub>f (b \<squnion>\<^sub>f c)" ..  | 
| 
 
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207  | 
from "a<" "b<" a b abc' have "a \<squnion>\<^sub>f b \<sqsubseteq>\<^sub>r a \<squnion>\<^sub>f (b \<squnion>\<^sub>f c)" ..  | 
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208  | 
from this "c<" ab c abc' show ?thesis ..  | 
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209  | 
qed  | 
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210  | 
qed  | 
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211  | 
qed  | 
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212  | 
(*>*)  | 
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213  | 
|
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214  | 
lemma (in Semilat) plus_com_lemma:  | 
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215  | 
"\<lbrakk>a \<in> A; b \<in> A\<rbrakk> \<Longrightarrow> a \<squnion>\<^sub>f b \<sqsubseteq>\<^sub>r b \<squnion>\<^sub>f a"  | 
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216  | 
(*<*)  | 
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217  | 
proof -  | 
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218  | 
assume a: "a \<in> A" and b: "b \<in> A"  | 
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219  | 
from b a have "a \<sqsubseteq>\<^sub>r b \<squnion>\<^sub>f a" ..  | 
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220  | 
moreover from b a have "b \<sqsubseteq>\<^sub>r b \<squnion>\<^sub>f a" ..  | 
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221  | 
moreover note a b  | 
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222  | 
moreover from b a have "b \<squnion>\<^sub>f a \<in> A" ..  | 
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223  | 
ultimately show ?thesis ..  | 
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224  | 
qed  | 
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225  | 
(*>*)  | 
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226  | 
|
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227  | 
lemma (in Semilat) plus_commutative:  | 
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228  | 
"\<lbrakk>a \<in> A; b \<in> A\<rbrakk> \<Longrightarrow> a \<squnion>\<^sub>f b = b \<squnion>\<^sub>f a"  | 
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229  | 
(*<*) by(blast intro: order_antisym plus_com_lemma) (*>*)  | 
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230  | 
|
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231  | 
lemma is_lubD:  | 
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232  | 
"is_lub r x y u \<Longrightarrow> is_ub r x y u \<and> (\<forall>z. is_ub r x y z \<longrightarrow> (u,z) \<in> r)"  | 
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233  | 
(*<*) by (simp add: is_lub_def) (*>*)  | 
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234  | 
|
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235  | 
lemma is_ubI:  | 
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236  | 
"\<lbrakk> (x,u) \<in> r; (y,u) \<in> r \<rbrakk> \<Longrightarrow> is_ub r x y u"  | 
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237  | 
(*<*) by (simp add: is_ub_def) (*>*)  | 
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238  | 
|
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239  | 
lemma is_ubD:  | 
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240  | 
"is_ub r x y u \<Longrightarrow> (x,u) \<in> r \<and> (y,u) \<in> r"  | 
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241  | 
(*<*) by (simp add: is_ub_def) (*>*)  | 
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242  | 
|
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243  | 
|
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244  | 
lemma is_lub_bigger1 [iff]:  | 
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245  | 
"is_lub (r^* ) x y y = ((x,y)\<in>r^* )"  | 
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246  | 
(*<*)  | 
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247  | 
apply (unfold is_lub_def is_ub_def)  | 
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248  | 
apply blast  | 
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249  | 
done  | 
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250  | 
(*>*)  | 
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251  | 
|
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252  | 
lemma is_lub_bigger2 [iff]:  | 
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253  | 
"is_lub (r^* ) x y x = ((y,x)\<in>r^* )"  | 
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254  | 
(*<*)  | 
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255  | 
apply (unfold is_lub_def is_ub_def)  | 
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256  | 
apply blast  | 
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257  | 
done  | 
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258  | 
(*>*)  | 
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259  | 
|
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260  | 
lemma extend_lub:  | 
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261  | 
"\<lbrakk> single_valued r; is_lub (r^* ) x y u; (x',x) \<in> r \<rbrakk>  | 
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262  | 
\<Longrightarrow> EX v. is_lub (r^* ) x' y v"  | 
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263  | 
(*<*)  | 
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264  | 
apply (unfold is_lub_def is_ub_def)  | 
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265  | 
apply (case_tac "(y,x) \<in> r^*")  | 
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266  | 
apply (case_tac "(y,x') \<in> r^*")  | 
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267  | 
apply blast  | 
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268  | 
apply (blast elim: converse_rtranclE dest: single_valuedD)  | 
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269  | 
apply (rule exI)  | 
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270  | 
apply (rule conjI)  | 
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271  | 
apply (blast intro: converse_rtrancl_into_rtrancl dest: single_valuedD)  | 
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272  | 
apply (blast intro: rtrancl_into_rtrancl converse_rtrancl_into_rtrancl  | 
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273  | 
elim: converse_rtranclE dest: single_valuedD)  | 
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274  | 
done  | 
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275  | 
(*>*)  | 
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276  | 
|
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277  | 
lemma single_valued_has_lubs [rule_format]:  | 
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278  | 
"\<lbrakk> single_valued r; (x,u) \<in> r^* \<rbrakk> \<Longrightarrow> (\<forall>y. (y,u) \<in> r^* \<longrightarrow>  | 
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279  | 
(EX z. is_lub (r^* ) x y z))"  | 
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280  | 
(*<*)  | 
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281  | 
apply (erule converse_rtrancl_induct)  | 
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282  | 
apply clarify  | 
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283  | 
apply (erule converse_rtrancl_induct)  | 
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284  | 
apply blast  | 
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285  | 
apply (blast intro: converse_rtrancl_into_rtrancl)  | 
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286  | 
apply (blast intro: extend_lub)  | 
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287  | 
done  | 
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288  | 
(*>*)  | 
| 
 
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289  | 
|
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290  | 
lemma some_lub_conv:  | 
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291  | 
"\<lbrakk> acyclic r; is_lub (r^* ) x y u \<rbrakk> \<Longrightarrow> some_lub (r^* ) x y = u"  | 
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292  | 
(*<*)  | 
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293  | 
apply (unfold some_lub_def is_lub_def)  | 
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294  | 
apply (rule someI2)  | 
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295  | 
apply assumption  | 
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296  | 
apply (blast intro: antisymD dest!: acyclic_impl_antisym_rtrancl)  | 
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297  | 
done  | 
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298  | 
(*>*)  | 
| 
 
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299  | 
|
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300  | 
lemma is_lub_some_lub:  | 
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301  | 
"\<lbrakk> single_valued r; acyclic r; (x,u)\<in>r^*; (y,u)\<in>r^* \<rbrakk>  | 
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302  | 
\<Longrightarrow> is_lub (r^* ) x y (some_lub (r^* ) x y)";  | 
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303  | 
(*<*) by (fastsimp dest: single_valued_has_lubs simp add: some_lub_conv) (*>*)  | 
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304  | 
|
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305  | 
subsection{*An executable lub-finder*}
 | 
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306  | 
|
| 
 
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307  | 
constdefs  | 
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308  | 
 exec_lub :: "('a * 'a) set \<Rightarrow> ('a \<Rightarrow> 'a) \<Rightarrow> 'a binop"
 | 
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309  | 
"exec_lub r f x y \<equiv> while (\<lambda>z. (x,z) \<notin> r\<^sup>*) f y"  | 
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310  | 
|
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311  | 
lemma exec_lub_refl: "exec_lub r f T T = T"  | 
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312  | 
by (simp add: exec_lub_def while_unfold)  | 
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313  | 
|
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314  | 
lemma acyclic_single_valued_finite:  | 
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315  | 
"\<lbrakk>acyclic r; single_valued r; (x,y) \<in> r\<^sup>*\<rbrakk>  | 
| 
 
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316  | 
  \<Longrightarrow> finite (r \<inter> {a. (x, a) \<in> r\<^sup>*} \<times> {b. (b, y) \<in> r\<^sup>*})"
 | 
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317  | 
(*<*)  | 
| 
 
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318  | 
apply(erule converse_rtrancl_induct)  | 
| 
 
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319  | 
 apply(rule_tac B = "{}" in finite_subset)
 | 
| 
 
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320  | 
apply(simp only:acyclic_def)  | 
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321  | 
apply(blast intro:rtrancl_into_trancl2 rtrancl_trancl_trancl)  | 
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322  | 
apply simp  | 
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323  | 
apply(rename_tac x x')  | 
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324  | 
apply(subgoal_tac "r \<inter> {a. (x,a) \<in> r\<^sup>*} \<times> {b. (b,y) \<in> r\<^sup>*} =
 | 
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325  | 
                   insert (x,x') (r \<inter> {a. (x', a) \<in> r\<^sup>*} \<times> {b. (b, y) \<in> r\<^sup>*})")
 | 
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326  | 
apply simp  | 
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327  | 
apply(blast intro:converse_rtrancl_into_rtrancl  | 
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328  | 
elim:converse_rtranclE dest:single_valuedD)  | 
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329  | 
done  | 
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330  | 
(*>*)  | 
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331  | 
|
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332  | 
|
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333  | 
lemma exec_lub_conv:  | 
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334  | 
"\<lbrakk> acyclic r; \<forall>x y. (x,y) \<in> r \<longrightarrow> f x = y; is_lub (r\<^sup>*) x y u \<rbrakk> \<Longrightarrow>  | 
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335  | 
exec_lub r f x y = u";  | 
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336  | 
(*<*)  | 
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337  | 
apply(unfold exec_lub_def)  | 
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338  | 
apply(rule_tac P = "\<lambda>z. (y,z) \<in> r\<^sup>* \<and> (z,u) \<in> r\<^sup>*" and  | 
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339  | 
               r = "(r \<inter> {(a,b). (y,a) \<in> r\<^sup>* \<and> (b,u) \<in> r\<^sup>*})^-1" in while_rule)
 | 
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340  | 
apply(blast dest: is_lubD is_ubD)  | 
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341  | 
apply(erule conjE)  | 
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342  | 
apply(erule_tac z = u in converse_rtranclE)  | 
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343  | 
apply(blast dest: is_lubD is_ubD)  | 
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344  | 
apply(blast dest:rtrancl_into_rtrancl)  | 
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345  | 
apply(rename_tac s)  | 
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346  | 
apply(subgoal_tac "is_ub (r\<^sup>*) x y s")  | 
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347  | 
prefer 2; apply(simp add:is_ub_def)  | 
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348  | 
apply(subgoal_tac "(u, s) \<in> r\<^sup>*")  | 
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349  | 
prefer 2; apply(blast dest:is_lubD)  | 
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350  | 
apply(erule converse_rtranclE)  | 
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351  | 
apply blast  | 
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352  | 
apply(simp only:acyclic_def)  | 
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353  | 
apply(blast intro:rtrancl_into_trancl2 rtrancl_trancl_trancl)  | 
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354  | 
apply(rule finite_acyclic_wf)  | 
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355  | 
apply simp  | 
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356  | 
apply(erule acyclic_single_valued_finite)  | 
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357  | 
apply(blast intro:single_valuedI)  | 
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358  | 
apply(simp add:is_lub_def is_ub_def)  | 
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359  | 
apply simp  | 
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360  | 
apply(erule acyclic_subset)  | 
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361  | 
apply blast  | 
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362  | 
apply simp  | 
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363  | 
apply(erule conjE)  | 
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364  | 
apply(erule_tac z = u in converse_rtranclE)  | 
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365  | 
apply(blast dest: is_lubD is_ubD)  | 
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366  | 
apply(blast dest:rtrancl_into_rtrancl)  | 
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367  | 
done  | 
| 
 
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368  | 
(*>*)  | 
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369  | 
|
| 
 
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370  | 
lemma is_lub_exec_lub:  | 
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371  | 
"\<lbrakk> single_valued r; acyclic r; (x,u):r^*; (y,u):r^*; \<forall>x y. (x,y) \<in> r \<longrightarrow> f x = y \<rbrakk>  | 
| 
 
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372  | 
\<Longrightarrow> is_lub (r^* ) x y (exec_lub r f x y)"  | 
| 
 
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373  | 
(*<*) by (fastsimp dest: single_valued_has_lubs simp add: exec_lub_conv) (*>*)  | 
| 
 
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374  | 
|
| 
 
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375  | 
end  |