| author | haftmann | 
| Sun, 31 Jan 2010 14:51:32 +0100 | |
| changeset 34977 | 27ceb64d41ea | 
| parent 33503 | 3496616b2171 | 
| child 35168 | 07b3112e464b | 
| permissions | -rw-r--r-- | 
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changeset | 1 | (* Title: HOLCF/Deflation.thy | 
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changeset | 2 | Author: Brian Huffman | 
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changeset | 3 | *) | 
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changeset | 4 | |
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changeset | 5 | header {* Continuous Deflations and Embedding-Projection Pairs *}
 | 
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changeset | 6 | |
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changeset | 7 | theory Deflation | 
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changeset | 8 | imports Cfun | 
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changeset | 9 | begin | 
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changeset | 10 | |
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changeset | 11 | defaultsort cpo | 
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changeset | 12 | |
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changeset | 13 | subsection {* Continuous deflations *}
 | 
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changeset | 14 | |
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changeset | 15 | locale deflation = | 
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changeset | 16 | fixes d :: "'a \<rightarrow> 'a" | 
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changeset | 17 | assumes idem: "\<And>x. d\<cdot>(d\<cdot>x) = d\<cdot>x" | 
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changeset | 18 | assumes below: "\<And>x. d\<cdot>x \<sqsubseteq> x" | 
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changeset | 19 | begin | 
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changeset | 20 | |
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changeset | 21 | lemma below_ID: "d \<sqsubseteq> ID" | 
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changeset | 22 | by (rule below_cfun_ext, simp add: below) | 
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changeset | 23 | |
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changeset | 24 | text {* The set of fixed points is the same as the range. *}
 | 
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changeset | 25 | |
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changeset | 26 | lemma fixes_eq_range: "{x. d\<cdot>x = x} = range (\<lambda>x. d\<cdot>x)"
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changeset | 27 | by (auto simp add: eq_sym_conv idem) | 
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changeset | 28 | |
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changeset | 29 | lemma range_eq_fixes: "range (\<lambda>x. d\<cdot>x) = {x. d\<cdot>x = x}"
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changeset | 30 | by (auto simp add: eq_sym_conv idem) | 
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changeset | 31 | |
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changeset | 32 | text {*
 | 
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changeset | 33 | The pointwise ordering on deflation functions coincides with | 
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changeset | 34 | the subset ordering of their sets of fixed-points. | 
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changeset | 35 | *} | 
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changeset | 36 | |
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changeset | 37 | lemma belowI: | 
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changeset | 38 | assumes f: "\<And>x. d\<cdot>x = x \<Longrightarrow> f\<cdot>x = x" shows "d \<sqsubseteq> f" | 
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changeset | 39 | proof (rule below_cfun_ext) | 
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changeset | 40 | fix x | 
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changeset | 41 | from below have "f\<cdot>(d\<cdot>x) \<sqsubseteq> f\<cdot>x" by (rule monofun_cfun_arg) | 
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changeset | 42 | also from idem have "f\<cdot>(d\<cdot>x) = d\<cdot>x" by (rule f) | 
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changeset | 43 | finally show "d\<cdot>x \<sqsubseteq> f\<cdot>x" . | 
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changeset | 44 | qed | 
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changeset | 45 | |
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changeset | 46 | lemma belowD: "\<lbrakk>f \<sqsubseteq> d; f\<cdot>x = x\<rbrakk> \<Longrightarrow> d\<cdot>x = x" | 
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changeset | 47 | proof (rule below_antisym) | 
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changeset | 48 | from below show "d\<cdot>x \<sqsubseteq> x" . | 
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changeset | 49 | next | 
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changeset | 50 | assume "f \<sqsubseteq> d" | 
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changeset | 51 | hence "f\<cdot>x \<sqsubseteq> d\<cdot>x" by (rule monofun_cfun_fun) | 
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changeset | 52 | also assume "f\<cdot>x = x" | 
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changeset | 53 | finally show "x \<sqsubseteq> d\<cdot>x" . | 
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changeset | 54 | qed | 
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changeset | 55 | |
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changeset | 56 | end | 
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changeset | 57 | |
| 33503 | 58 | lemma deflation_strict: "deflation d \<Longrightarrow> d\<cdot>\<bottom> = \<bottom>" | 
| 59 | by (rule deflation.below [THEN UU_I]) | |
| 60 | ||
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changeset | 61 | lemma adm_deflation: "adm (\<lambda>d. deflation d)" | 
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changeset | 62 | by (simp add: deflation_def) | 
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changeset | 63 | |
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changeset | 64 | lemma deflation_ID: "deflation ID" | 
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changeset | 65 | by (simp add: deflation.intro) | 
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changeset | 66 | |
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changeset | 67 | lemma deflation_UU: "deflation \<bottom>" | 
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changeset | 68 | by (simp add: deflation.intro) | 
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changeset | 69 | |
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changeset | 70 | lemma deflation_below_iff: | 
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changeset | 71 | "\<lbrakk>deflation p; deflation q\<rbrakk> \<Longrightarrow> p \<sqsubseteq> q \<longleftrightarrow> (\<forall>x. p\<cdot>x = x \<longrightarrow> q\<cdot>x = x)" | 
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changeset | 72 | apply safe | 
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changeset | 73 | apply (simp add: deflation.belowD) | 
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changeset | 74 | apply (simp add: deflation.belowI) | 
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changeset | 75 | done | 
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changeset | 76 | |
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changeset | 77 | text {*
 | 
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changeset | 78 | The composition of two deflations is equal to | 
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changeset | 79 | the lesser of the two (if they are comparable). | 
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changeset | 80 | *} | 
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changeset | 81 | |
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changeset | 82 | lemma deflation_below_comp1: | 
| 28611 | 83 | assumes "deflation f" | 
| 84 | assumes "deflation g" | |
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changeset | 85 | shows "f \<sqsubseteq> g \<Longrightarrow> f\<cdot>(g\<cdot>x) = f\<cdot>x" | 
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changeset | 86 | proof (rule below_antisym) | 
| 29237 | 87 | interpret g: deflation g by fact | 
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changeset | 88 | from g.below show "f\<cdot>(g\<cdot>x) \<sqsubseteq> f\<cdot>x" by (rule monofun_cfun_arg) | 
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changeset | 89 | next | 
| 29237 | 90 | interpret f: deflation f by fact | 
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changeset | 91 | assume "f \<sqsubseteq> g" hence "f\<cdot>x \<sqsubseteq> g\<cdot>x" by (rule monofun_cfun_fun) | 
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changeset | 92 | hence "f\<cdot>(f\<cdot>x) \<sqsubseteq> f\<cdot>(g\<cdot>x)" by (rule monofun_cfun_arg) | 
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changeset | 93 | also have "f\<cdot>(f\<cdot>x) = f\<cdot>x" by (rule f.idem) | 
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changeset | 94 | finally show "f\<cdot>x \<sqsubseteq> f\<cdot>(g\<cdot>x)" . | 
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changeset | 95 | qed | 
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changeset | 96 | |
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changeset | 97 | lemma deflation_below_comp2: | 
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changeset | 98 | "\<lbrakk>deflation f; deflation g; f \<sqsubseteq> g\<rbrakk> \<Longrightarrow> g\<cdot>(f\<cdot>x) = f\<cdot>x" | 
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changeset | 99 | by (simp only: deflation.belowD deflation.idem) | 
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changeset | 100 | |
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changeset | 101 | |
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changeset | 102 | subsection {* Deflations with finite range *}
 | 
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changeset | 103 | |
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changeset | 104 | lemma finite_range_imp_finite_fixes: | 
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changeset | 105 |   "finite (range f) \<Longrightarrow> finite {x. f x = x}"
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changeset | 106 | proof - | 
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changeset | 107 |   have "{x. f x = x} \<subseteq> range f"
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changeset | 108 | by (clarify, erule subst, rule rangeI) | 
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changeset | 109 | moreover assume "finite (range f)" | 
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changeset | 110 |   ultimately show "finite {x. f x = x}"
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changeset | 111 | by (rule finite_subset) | 
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changeset | 112 | qed | 
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changeset | 113 | |
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changeset | 114 | locale finite_deflation = deflation + | 
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changeset | 115 |   assumes finite_fixes: "finite {x. d\<cdot>x = x}"
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changeset | 116 | begin | 
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changeset | 117 | |
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changeset | 118 | lemma finite_range: "finite (range (\<lambda>x. d\<cdot>x))" | 
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changeset | 119 | by (simp add: range_eq_fixes finite_fixes) | 
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changeset | 120 | |
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changeset | 121 | lemma finite_image: "finite ((\<lambda>x. d\<cdot>x) ` A)" | 
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changeset | 122 | by (rule finite_subset [OF image_mono [OF subset_UNIV] finite_range]) | 
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changeset | 123 | |
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changeset | 124 | lemma compact: "compact (d\<cdot>x)" | 
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changeset | 125 | proof (rule compactI2) | 
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changeset | 126 | fix Y :: "nat \<Rightarrow> 'a" | 
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changeset | 127 | assume Y: "chain Y" | 
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changeset | 128 | have "finite_chain (\<lambda>i. d\<cdot>(Y i))" | 
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changeset | 129 | proof (rule finite_range_imp_finch) | 
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changeset | 130 | show "chain (\<lambda>i. d\<cdot>(Y i))" | 
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changeset | 131 | using Y by simp | 
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changeset | 132 | have "range (\<lambda>i. d\<cdot>(Y i)) \<subseteq> range (\<lambda>x. d\<cdot>x)" | 
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changeset | 133 | by clarsimp | 
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changeset | 134 | thus "finite (range (\<lambda>i. d\<cdot>(Y i)))" | 
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changeset | 135 | using finite_range by (rule finite_subset) | 
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changeset | 136 | qed | 
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changeset | 137 | hence "\<exists>j. (\<Squnion>i. d\<cdot>(Y i)) = d\<cdot>(Y j)" | 
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changeset | 138 | by (simp add: finite_chain_def maxinch_is_thelub Y) | 
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changeset | 139 | then obtain j where j: "(\<Squnion>i. d\<cdot>(Y i)) = d\<cdot>(Y j)" .. | 
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changeset | 140 | |
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changeset | 141 | assume "d\<cdot>x \<sqsubseteq> (\<Squnion>i. Y i)" | 
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changeset | 142 | hence "d\<cdot>(d\<cdot>x) \<sqsubseteq> d\<cdot>(\<Squnion>i. Y i)" | 
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changeset | 143 | by (rule monofun_cfun_arg) | 
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changeset | 144 | hence "d\<cdot>x \<sqsubseteq> (\<Squnion>i. d\<cdot>(Y i))" | 
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changeset | 145 | by (simp add: contlub_cfun_arg Y idem) | 
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changeset | 146 | hence "d\<cdot>x \<sqsubseteq> d\<cdot>(Y j)" | 
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changeset | 147 | using j by simp | 
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changeset | 148 | hence "d\<cdot>x \<sqsubseteq> Y j" | 
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changeset | 149 | using below by (rule below_trans) | 
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changeset | 150 | thus "\<exists>j. d\<cdot>x \<sqsubseteq> Y j" .. | 
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changeset | 151 | qed | 
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changeset | 152 | |
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changeset | 153 | end | 
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changeset | 154 | |
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changeset | 155 | |
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changeset | 156 | subsection {* Continuous embedding-projection pairs *}
 | 
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changeset | 157 | |
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changeset | 158 | locale ep_pair = | 
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changeset | 159 | fixes e :: "'a \<rightarrow> 'b" and p :: "'b \<rightarrow> 'a" | 
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changeset | 160 | assumes e_inverse [simp]: "\<And>x. p\<cdot>(e\<cdot>x) = x" | 
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changeset | 161 | and e_p_below: "\<And>y. e\<cdot>(p\<cdot>y) \<sqsubseteq> y" | 
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changeset | 162 | begin | 
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changeset | 163 | |
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changeset | 164 | lemma e_below_iff [simp]: "e\<cdot>x \<sqsubseteq> e\<cdot>y \<longleftrightarrow> x \<sqsubseteq> y" | 
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changeset | 165 | proof | 
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changeset | 166 | assume "e\<cdot>x \<sqsubseteq> e\<cdot>y" | 
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changeset | 167 | hence "p\<cdot>(e\<cdot>x) \<sqsubseteq> p\<cdot>(e\<cdot>y)" by (rule monofun_cfun_arg) | 
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changeset | 168 | thus "x \<sqsubseteq> y" by simp | 
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changeset | 169 | next | 
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changeset | 170 | assume "x \<sqsubseteq> y" | 
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changeset | 171 | thus "e\<cdot>x \<sqsubseteq> e\<cdot>y" by (rule monofun_cfun_arg) | 
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changeset | 172 | qed | 
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changeset | 173 | |
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changeset | 174 | lemma e_eq_iff [simp]: "e\<cdot>x = e\<cdot>y \<longleftrightarrow> x = y" | 
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changeset | 175 | unfolding po_eq_conv e_below_iff .. | 
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changeset | 176 | |
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changeset | 177 | lemma p_eq_iff: | 
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changeset | 178 | "\<lbrakk>e\<cdot>(p\<cdot>x) = x; e\<cdot>(p\<cdot>y) = y\<rbrakk> \<Longrightarrow> p\<cdot>x = p\<cdot>y \<longleftrightarrow> x = y" | 
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changeset | 179 | by (safe, erule subst, erule subst, simp) | 
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changeset | 180 | |
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changeset | 181 | lemma p_inverse: "(\<exists>x. y = e\<cdot>x) = (e\<cdot>(p\<cdot>y) = y)" | 
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changeset | 182 | by (auto, rule exI, erule sym) | 
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changeset | 183 | |
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changeset | 184 | lemma e_below_iff_below_p: "e\<cdot>x \<sqsubseteq> y \<longleftrightarrow> x \<sqsubseteq> p\<cdot>y" | 
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changeset | 185 | proof | 
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changeset | 186 | assume "e\<cdot>x \<sqsubseteq> y" | 
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changeset | 187 | then have "p\<cdot>(e\<cdot>x) \<sqsubseteq> p\<cdot>y" by (rule monofun_cfun_arg) | 
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changeset | 188 | then show "x \<sqsubseteq> p\<cdot>y" by simp | 
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changeset | 189 | next | 
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changeset | 190 | assume "x \<sqsubseteq> p\<cdot>y" | 
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changeset | 191 | then have "e\<cdot>x \<sqsubseteq> e\<cdot>(p\<cdot>y)" by (rule monofun_cfun_arg) | 
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changeset | 192 | then show "e\<cdot>x \<sqsubseteq> y" using e_p_below by (rule below_trans) | 
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changeset | 193 | qed | 
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changeset | 194 | |
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changeset | 195 | lemma compact_e_rev: "compact (e\<cdot>x) \<Longrightarrow> compact x" | 
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changeset | 196 | proof - | 
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changeset | 197 | assume "compact (e\<cdot>x)" | 
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changeset | 198 | hence "adm (\<lambda>y. \<not> e\<cdot>x \<sqsubseteq> y)" by (rule compactD) | 
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changeset | 199 | hence "adm (\<lambda>y. \<not> e\<cdot>x \<sqsubseteq> e\<cdot>y)" by (rule adm_subst [OF cont_Rep_CFun2]) | 
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changeset | 200 | hence "adm (\<lambda>y. \<not> x \<sqsubseteq> y)" by simp | 
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changeset | 201 | thus "compact x" by (rule compactI) | 
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changeset | 202 | qed | 
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changeset | 203 | |
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changeset | 204 | lemma compact_e: "compact x \<Longrightarrow> compact (e\<cdot>x)" | 
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changeset | 205 | proof - | 
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changeset | 206 | assume "compact x" | 
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changeset | 207 | hence "adm (\<lambda>y. \<not> x \<sqsubseteq> y)" by (rule compactD) | 
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changeset | 208 | hence "adm (\<lambda>y. \<not> x \<sqsubseteq> p\<cdot>y)" by (rule adm_subst [OF cont_Rep_CFun2]) | 
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changeset | 209 | hence "adm (\<lambda>y. \<not> e\<cdot>x \<sqsubseteq> y)" by (simp add: e_below_iff_below_p) | 
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changeset | 210 | thus "compact (e\<cdot>x)" by (rule compactI) | 
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changeset | 211 | qed | 
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changeset | 212 | |
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changeset | 213 | lemma compact_e_iff: "compact (e\<cdot>x) \<longleftrightarrow> compact x" | 
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changeset | 214 | by (rule iffI [OF compact_e_rev compact_e]) | 
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changeset | 215 | |
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changeset | 216 | text {* Deflations from ep-pairs *}
 | 
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changeset | 217 | |
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changeset | 218 | lemma deflation_e_p: "deflation (e oo p)" | 
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changeset | 219 | by (simp add: deflation.intro e_p_below) | 
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changeset | 220 | |
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changeset | 221 | lemma deflation_e_d_p: | 
| 28611 | 222 | assumes "deflation d" | 
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changeset | 223 | shows "deflation (e oo d oo p)" | 
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changeset | 224 | proof | 
| 29237 | 225 | interpret deflation d by fact | 
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changeset | 226 | fix x :: 'b | 
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changeset | 227 | show "(e oo d oo p)\<cdot>((e oo d oo p)\<cdot>x) = (e oo d oo p)\<cdot>x" | 
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changeset | 228 | by (simp add: idem) | 
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changeset | 229 | show "(e oo d oo p)\<cdot>x \<sqsubseteq> x" | 
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changeset | 230 | by (simp add: e_below_iff_below_p below) | 
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changeset | 231 | qed | 
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changeset | 232 | |
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changeset | 233 | lemma finite_deflation_e_d_p: | 
| 28611 | 234 | assumes "finite_deflation d" | 
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changeset | 235 | shows "finite_deflation (e oo d oo p)" | 
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changeset | 236 | proof | 
| 29237 | 237 | interpret finite_deflation d by fact | 
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changeset | 238 | fix x :: 'b | 
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changeset | 239 | show "(e oo d oo p)\<cdot>((e oo d oo p)\<cdot>x) = (e oo d oo p)\<cdot>x" | 
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changeset | 240 | by (simp add: idem) | 
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changeset | 241 | show "(e oo d oo p)\<cdot>x \<sqsubseteq> x" | 
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changeset | 242 | by (simp add: e_below_iff_below_p below) | 
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changeset | 243 | have "finite ((\<lambda>x. e\<cdot>x) ` (\<lambda>x. d\<cdot>x) ` range (\<lambda>x. p\<cdot>x))" | 
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changeset | 244 | by (simp add: finite_image) | 
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changeset | 245 | hence "finite (range (\<lambda>x. (e oo d oo p)\<cdot>x))" | 
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changeset | 246 | by (simp add: image_image) | 
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changeset | 247 |   thus "finite {x. (e oo d oo p)\<cdot>x = x}"
 | 
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changeset | 248 | by (rule finite_range_imp_finite_fixes) | 
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changeset | 249 | qed | 
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changeset | 250 | |
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changeset | 251 | lemma deflation_p_d_e: | 
| 28611 | 252 | assumes "deflation d" | 
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changeset | 253 | assumes d: "\<And>x. d\<cdot>x \<sqsubseteq> e\<cdot>(p\<cdot>x)" | 
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changeset | 254 | shows "deflation (p oo d oo e)" | 
| 28611 | 255 | proof - | 
| 29237 | 256 | interpret d: deflation d by fact | 
| 28613 | 257 |   {
 | 
| 258 | fix x | |
| 259 | have "d\<cdot>(e\<cdot>x) \<sqsubseteq> e\<cdot>x" | |
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changeset | 260 | by (rule d.below) | 
| 28613 | 261 | hence "p\<cdot>(d\<cdot>(e\<cdot>x)) \<sqsubseteq> p\<cdot>(e\<cdot>x)" | 
| 262 | by (rule monofun_cfun_arg) | |
| 263 | hence "(p oo d oo e)\<cdot>x \<sqsubseteq> x" | |
| 264 | by simp | |
| 265 | } | |
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changeset | 266 | note p_d_e_below = this | 
| 28611 | 267 | show ?thesis | 
| 28613 | 268 | proof | 
| 269 | fix x | |
| 270 | show "(p oo d oo e)\<cdot>x \<sqsubseteq> x" | |
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changeset | 271 | by (rule p_d_e_below) | 
| 28613 | 272 | next | 
| 273 | fix x | |
| 274 | show "(p oo d oo e)\<cdot>((p oo d oo e)\<cdot>x) = (p oo d oo e)\<cdot>x" | |
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changeset | 275 | proof (rule below_antisym) | 
| 28613 | 276 | show "(p oo d oo e)\<cdot>((p oo d oo e)\<cdot>x) \<sqsubseteq> (p oo d oo e)\<cdot>x" | 
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changeset | 277 | by (rule p_d_e_below) | 
| 28613 | 278 | have "p\<cdot>(d\<cdot>(d\<cdot>(d\<cdot>(e\<cdot>x)))) \<sqsubseteq> p\<cdot>(d\<cdot>(e\<cdot>(p\<cdot>(d\<cdot>(e\<cdot>x)))))" | 
| 279 | by (intro monofun_cfun_arg d) | |
| 280 | hence "p\<cdot>(d\<cdot>(e\<cdot>x)) \<sqsubseteq> p\<cdot>(d\<cdot>(e\<cdot>(p\<cdot>(d\<cdot>(e\<cdot>x)))))" | |
| 281 | by (simp only: d.idem) | |
| 282 | thus "(p oo d oo e)\<cdot>x \<sqsubseteq> (p oo d oo e)\<cdot>((p oo d oo e)\<cdot>x)" | |
| 283 | by simp | |
| 284 | qed | |
| 285 | qed | |
| 28611 | 286 | qed | 
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changeset | 287 | |
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changeset | 288 | lemma finite_deflation_p_d_e: | 
| 28611 | 289 | assumes "finite_deflation d" | 
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changeset | 290 | assumes d: "\<And>x. d\<cdot>x \<sqsubseteq> e\<cdot>(p\<cdot>x)" | 
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changeset | 291 | shows "finite_deflation (p oo d oo e)" | 
| 28611 | 292 | proof - | 
| 29237 | 293 | interpret d: finite_deflation d by fact | 
| 28611 | 294 | show ?thesis | 
| 28613 | 295 | proof (intro_locales) | 
| 296 | have "deflation d" .. | |
| 297 | thus "deflation (p oo d oo e)" | |
| 298 | using d by (rule deflation_p_d_e) | |
| 299 | next | |
| 300 | show "finite_deflation_axioms (p oo d oo e)" | |
| 301 | proof | |
| 302 | have "finite ((\<lambda>x. d\<cdot>x) ` range (\<lambda>x. e\<cdot>x))" | |
| 303 | by (rule d.finite_image) | |
| 304 | hence "finite ((\<lambda>x. p\<cdot>x) ` (\<lambda>x. d\<cdot>x) ` range (\<lambda>x. e\<cdot>x))" | |
| 305 | by (rule finite_imageI) | |
| 306 | hence "finite (range (\<lambda>x. (p oo d oo e)\<cdot>x))" | |
| 307 | by (simp add: image_image) | |
| 308 |       thus "finite {x. (p oo d oo e)\<cdot>x = x}"
 | |
| 309 | by (rule finite_range_imp_finite_fixes) | |
| 310 | qed | |
| 311 | qed | |
| 28611 | 312 | qed | 
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changeset | 313 | |
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changeset | 314 | end | 
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changeset | 315 | |
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changeset | 316 | subsection {* Uniqueness of ep-pairs *}
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changeset | 317 | |
| 28613 | 318 | lemma ep_pair_unique_e_lemma: | 
| 319 | assumes "ep_pair e1 p" and "ep_pair e2 p" | |
| 320 | shows "e1 \<sqsubseteq> e2" | |
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changeset | 321 | proof (rule below_cfun_ext) | 
| 29237 | 322 | interpret e1: ep_pair e1 p by fact | 
| 323 | interpret e2: ep_pair e2 p by fact | |
| 28613 | 324 | fix x | 
| 325 | have "e1\<cdot>(p\<cdot>(e2\<cdot>x)) \<sqsubseteq> e2\<cdot>x" | |
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changeset | 326 | by (rule e1.e_p_below) | 
| 28613 | 327 | thus "e1\<cdot>x \<sqsubseteq> e2\<cdot>x" | 
| 328 | by (simp only: e2.e_inverse) | |
| 329 | qed | |
| 330 | ||
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changeset | 331 | lemma ep_pair_unique_e: | 
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changeset | 332 | "\<lbrakk>ep_pair e1 p; ep_pair e2 p\<rbrakk> \<Longrightarrow> e1 = e2" | 
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changeset | 333 | by (fast intro: below_antisym elim: ep_pair_unique_e_lemma) | 
| 28613 | 334 | |
| 335 | lemma ep_pair_unique_p_lemma: | |
| 336 | assumes "ep_pair e p1" and "ep_pair e p2" | |
| 337 | shows "p1 \<sqsubseteq> p2" | |
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changeset | 338 | proof (rule below_cfun_ext) | 
| 29237 | 339 | interpret p1: ep_pair e p1 by fact | 
| 340 | interpret p2: ep_pair e p2 by fact | |
| 28613 | 341 | fix x | 
| 342 | have "e\<cdot>(p1\<cdot>x) \<sqsubseteq> x" | |
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changeset | 343 | by (rule p1.e_p_below) | 
| 28613 | 344 | hence "p2\<cdot>(e\<cdot>(p1\<cdot>x)) \<sqsubseteq> p2\<cdot>x" | 
| 345 | by (rule monofun_cfun_arg) | |
| 346 | thus "p1\<cdot>x \<sqsubseteq> p2\<cdot>x" | |
| 347 | by (simp only: p2.e_inverse) | |
| 348 | qed | |
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changeset | 349 | |
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changeset | 350 | lemma ep_pair_unique_p: | 
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changeset | 351 | "\<lbrakk>ep_pair e p1; ep_pair e p2\<rbrakk> \<Longrightarrow> p1 = p2" | 
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changeset | 352 | by (fast intro: below_antisym elim: ep_pair_unique_p_lemma) | 
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changeset | 353 | |
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changeset | 354 | subsection {* Composing ep-pairs *}
 | 
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changeset | 355 | |
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changeset | 356 | lemma ep_pair_ID_ID: "ep_pair ID ID" | 
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changeset | 357 | by default simp_all | 
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changeset | 358 | |
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changeset | 359 | lemma ep_pair_comp: | 
| 28613 | 360 | assumes "ep_pair e1 p1" and "ep_pair e2 p2" | 
| 361 | shows "ep_pair (e2 oo e1) (p1 oo p2)" | |
| 362 | proof | |
| 29237 | 363 | interpret ep1: ep_pair e1 p1 by fact | 
| 364 | interpret ep2: ep_pair e2 p2 by fact | |
| 28613 | 365 | fix x y | 
| 366 | show "(p1 oo p2)\<cdot>((e2 oo e1)\<cdot>x) = x" | |
| 367 | by simp | |
| 368 | have "e1\<cdot>(p1\<cdot>(p2\<cdot>y)) \<sqsubseteq> p2\<cdot>y" | |
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changeset | 369 | by (rule ep1.e_p_below) | 
| 28613 | 370 | hence "e2\<cdot>(e1\<cdot>(p1\<cdot>(p2\<cdot>y))) \<sqsubseteq> e2\<cdot>(p2\<cdot>y)" | 
| 371 | by (rule monofun_cfun_arg) | |
| 372 | also have "e2\<cdot>(p2\<cdot>y) \<sqsubseteq> y" | |
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changeset | 373 | by (rule ep2.e_p_below) | 
| 28613 | 374 | finally show "(e2 oo e1)\<cdot>((p1 oo p2)\<cdot>y) \<sqsubseteq> y" | 
| 375 | by simp | |
| 376 | qed | |
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changeset | 377 | |
| 27681 | 378 | locale pcpo_ep_pair = ep_pair + | 
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changeset | 379 | constrains e :: "'a::pcpo \<rightarrow> 'b::pcpo" | 
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changeset | 380 | constrains p :: "'b::pcpo \<rightarrow> 'a::pcpo" | 
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changeset | 381 | begin | 
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changeset | 382 | |
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changeset | 383 | lemma e_strict [simp]: "e\<cdot>\<bottom> = \<bottom>" | 
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changeset | 384 | proof - | 
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changeset | 385 | have "\<bottom> \<sqsubseteq> p\<cdot>\<bottom>" by (rule minimal) | 
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changeset | 386 | hence "e\<cdot>\<bottom> \<sqsubseteq> e\<cdot>(p\<cdot>\<bottom>)" by (rule monofun_cfun_arg) | 
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changeset | 387 | also have "e\<cdot>(p\<cdot>\<bottom>) \<sqsubseteq> \<bottom>" by (rule e_p_below) | 
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changeset | 388 | finally show "e\<cdot>\<bottom> = \<bottom>" by simp | 
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changeset | 389 | qed | 
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changeset | 390 | |
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changeset | 391 | lemma e_defined_iff [simp]: "e\<cdot>x = \<bottom> \<longleftrightarrow> x = \<bottom>" | 
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changeset | 392 | by (rule e_eq_iff [where y="\<bottom>", unfolded e_strict]) | 
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changeset | 393 | |
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changeset | 394 | lemma e_defined: "x \<noteq> \<bottom> \<Longrightarrow> e\<cdot>x \<noteq> \<bottom>" | 
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changeset | 395 | by simp | 
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changeset | 396 | |
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changeset | 397 | lemma p_strict [simp]: "p\<cdot>\<bottom> = \<bottom>" | 
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changeset | 398 | by (rule e_inverse [where x="\<bottom>", unfolded e_strict]) | 
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changeset | 399 | |
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changeset | 400 | lemmas stricts = e_strict p_strict | 
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changeset | 401 | |
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changeset | 402 | end | 
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changeset | 403 | |
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changeset | 404 | end |