| author | haftmann | 
| Mon, 12 Jul 2021 11:41:02 +0000 | |
| changeset 73969 | ca2a35c0fe6e | 
| parent 73411 | 1f1366966296 | 
| child 74007 | df976eefcba0 | 
| permissions | -rw-r--r-- | 
| 52265 | 1 | (* Title: HOL/Conditionally_Complete_Lattices.thy | 
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changeset | 2 | Author: Amine Chaieb and L C Paulson, University of Cambridge | 
| 51643 | 3 | Author: Johannes Hölzl, TU München | 
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changeset | 4 | Author: Luke S. Serafin, Carnegie Mellon University | 
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changeset | 5 | *) | 
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changeset | 6 | |
| 60758 | 7 | section \<open>Conditionally-complete Lattices\<close> | 
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changeset | 8 | |
| 51773 | 9 | theory Conditionally_Complete_Lattices | 
| 63331 | 10 | imports Finite_Set Lattices_Big Set_Interval | 
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changeset | 11 | begin | 
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changeset | 12 | |
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changeset | 13 | locale preordering_bdd = preordering | 
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changeset | 14 | begin | 
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changeset | 15 | |
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changeset | 16 | definition bdd :: \<open>'a set \<Rightarrow> bool\<close> | 
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changeset | 17 | where unfold: \<open>bdd A \<longleftrightarrow> (\<exists>M. \<forall>x \<in> A. x \<^bold>\<le> M)\<close> | 
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changeset | 18 | |
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changeset | 19 | lemma empty [simp, intro]: | 
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changeset | 20 |   \<open>bdd {}\<close>
 | 
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changeset | 21 | by (simp add: unfold) | 
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changeset | 22 | |
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changeset | 23 | lemma I [intro]: | 
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changeset | 24 | \<open>bdd A\<close> if \<open>\<And>x. x \<in> A \<Longrightarrow> x \<^bold>\<le> M\<close> | 
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changeset | 25 | using that by (auto simp add: unfold) | 
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changeset | 26 | |
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changeset | 27 | lemma E: | 
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changeset | 28 | assumes \<open>bdd A\<close> | 
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changeset | 29 | obtains M where \<open>\<And>x. x \<in> A \<Longrightarrow> x \<^bold>\<le> M\<close> | 
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changeset | 30 | using assms that by (auto simp add: unfold) | 
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changeset | 31 | |
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changeset | 32 | lemma I2: | 
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changeset | 33 | \<open>bdd (f ` A)\<close> if \<open>\<And>x. x \<in> A \<Longrightarrow> f x \<^bold>\<le> M\<close> | 
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changeset | 34 | using that by (auto simp add: unfold) | 
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changeset | 35 | |
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changeset | 36 | lemma mono: | 
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changeset | 37 | \<open>bdd A\<close> if \<open>bdd B\<close> \<open>A \<subseteq> B\<close> | 
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changeset | 38 | using that by (auto simp add: unfold) | 
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changeset | 39 | |
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changeset | 40 | lemma Int1 [simp]: | 
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changeset | 41 | \<open>bdd (A \<inter> B)\<close> if \<open>bdd A\<close> | 
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changeset | 42 | using mono that by auto | 
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changeset | 43 | |
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changeset | 44 | lemma Int2 [simp]: | 
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changeset | 45 | \<open>bdd (A \<inter> B)\<close> if \<open>bdd B\<close> | 
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changeset | 46 | using mono that by auto | 
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changeset | 47 | |
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changeset | 48 | end | 
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changeset | 49 | |
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changeset | 50 | context preorder | 
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changeset | 51 | begin | 
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changeset | 52 | |
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changeset | 53 | sublocale bdd_above: preordering_bdd \<open>(\<le>)\<close> \<open>(<)\<close> | 
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changeset | 54 | defines bdd_above_primitive_def: bdd_above = bdd_above.bdd .. | 
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changeset | 55 | |
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changeset | 56 | sublocale bdd_below: preordering_bdd \<open>(\<ge>)\<close> \<open>(>)\<close> | 
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changeset | 57 | defines bdd_below_primitive_def: bdd_below = bdd_below.bdd .. | 
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changeset | 58 | |
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changeset | 59 | lemma bdd_above_def: \<open>bdd_above A \<longleftrightarrow> (\<exists>M. \<forall>x \<in> A. x \<le> M)\<close> | 
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changeset | 60 | by (fact bdd_above.unfold) | 
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changeset | 61 | |
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changeset | 62 | lemma bdd_below_def: \<open>bdd_below A \<longleftrightarrow> (\<exists>M. \<forall>x \<in> A. M \<le> x)\<close> | 
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changeset | 63 | by (fact bdd_below.unfold) | 
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changeset | 64 | |
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changeset | 65 | lemma bdd_aboveI: "(\<And>x. x \<in> A \<Longrightarrow> x \<le> M) \<Longrightarrow> bdd_above A" | 
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changeset | 66 | by (fact bdd_above.I) | 
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changeset | 67 | |
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changeset | 68 | lemma bdd_belowI: "(\<And>x. x \<in> A \<Longrightarrow> m \<le> x) \<Longrightarrow> bdd_below A" | 
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changeset | 69 | by (fact bdd_below.I) | 
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changeset | 70 | |
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changeset | 71 | lemma bdd_aboveI2: "(\<And>x. x \<in> A \<Longrightarrow> f x \<le> M) \<Longrightarrow> bdd_above (f`A)" | 
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changeset | 72 | by (fact bdd_above.I2) | 
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changeset | 73 | |
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changeset | 74 | lemma bdd_belowI2: "(\<And>x. x \<in> A \<Longrightarrow> m \<le> f x) \<Longrightarrow> bdd_below (f`A)" | 
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changeset | 75 | by (fact bdd_below.I2) | 
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changeset | 76 | |
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changeset | 77 | lemma bdd_above_empty: "bdd_above {}"
 | 
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changeset | 78 | by (fact bdd_above.empty) | 
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changeset | 79 | |
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changeset | 80 | lemma bdd_below_empty: "bdd_below {}"
 | 
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changeset | 81 | by (fact bdd_below.empty) | 
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changeset | 82 | |
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changeset | 83 | lemma bdd_above_mono: "bdd_above B \<Longrightarrow> A \<subseteq> B \<Longrightarrow> bdd_above A" | 
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changeset | 84 | by (fact bdd_above.mono) | 
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changeset | 85 | |
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changeset | 86 | lemma bdd_below_mono: "bdd_below B \<Longrightarrow> A \<subseteq> B \<Longrightarrow> bdd_below A" | 
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changeset | 87 | by (fact bdd_below.mono) | 
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changeset | 88 | |
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changeset | 89 | lemma bdd_above_Int1: "bdd_above A \<Longrightarrow> bdd_above (A \<inter> B)" | 
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changeset | 90 | by (fact bdd_above.Int1) | 
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changeset | 91 | |
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changeset | 92 | lemma bdd_above_Int2: "bdd_above B \<Longrightarrow> bdd_above (A \<inter> B)" | 
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changeset | 93 | by (fact bdd_above.Int2) | 
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changeset | 94 | |
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changeset | 95 | lemma bdd_below_Int1: "bdd_below A \<Longrightarrow> bdd_below (A \<inter> B)" | 
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changeset | 96 | by (fact bdd_below.Int1) | 
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changeset | 97 | |
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changeset | 98 | lemma bdd_below_Int2: "bdd_below B \<Longrightarrow> bdd_below (A \<inter> B)" | 
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changeset | 99 | by (fact bdd_below.Int2) | 
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changeset | 100 | |
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changeset | 101 | lemma bdd_above_Ioo [simp, intro]: "bdd_above {a <..< b}"
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changeset | 102 | by (auto simp add: bdd_above_def intro!: exI[of _ b] less_imp_le) | 
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changeset | 103 | |
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changeset | 104 | lemma bdd_above_Ico [simp, intro]: "bdd_above {a ..< b}"
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changeset | 105 | by (auto simp add: bdd_above_def intro!: exI[of _ b] less_imp_le) | 
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changeset | 106 | |
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changeset | 107 | lemma bdd_above_Iio [simp, intro]: "bdd_above {..< b}"
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changeset | 108 | by (auto simp add: bdd_above_def intro: exI[of _ b] less_imp_le) | 
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changeset | 109 | |
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changeset | 110 | lemma bdd_above_Ioc [simp, intro]: "bdd_above {a <.. b}"
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changeset | 111 | by (auto simp add: bdd_above_def intro: exI[of _ b] less_imp_le) | 
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changeset | 112 | |
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changeset | 113 | lemma bdd_above_Icc [simp, intro]: "bdd_above {a .. b}"
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changeset | 114 | by (auto simp add: bdd_above_def intro: exI[of _ b] less_imp_le) | 
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changeset | 115 | |
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changeset | 116 | lemma bdd_above_Iic [simp, intro]: "bdd_above {.. b}"
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changeset | 117 | by (auto simp add: bdd_above_def intro: exI[of _ b] less_imp_le) | 
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changeset | 118 | |
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changeset | 119 | lemma bdd_below_Ioo [simp, intro]: "bdd_below {a <..< b}"
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changeset | 120 | by (auto simp add: bdd_below_def intro!: exI[of _ a] less_imp_le) | 
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changeset | 121 | |
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changeset | 122 | lemma bdd_below_Ioc [simp, intro]: "bdd_below {a <.. b}"
 | 
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changeset | 123 | by (auto simp add: bdd_below_def intro!: exI[of _ a] less_imp_le) | 
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changeset | 124 | |
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changeset | 125 | lemma bdd_below_Ioi [simp, intro]: "bdd_below {a <..}"
 | 
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changeset | 126 | by (auto simp add: bdd_below_def intro: exI[of _ a] less_imp_le) | 
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changeset | 127 | |
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changeset | 128 | lemma bdd_below_Ico [simp, intro]: "bdd_below {a ..< b}"
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changeset | 129 | by (auto simp add: bdd_below_def intro: exI[of _ a] less_imp_le) | 
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changeset | 130 | |
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changeset | 131 | lemma bdd_below_Icc [simp, intro]: "bdd_below {a .. b}"
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changeset | 132 | by (auto simp add: bdd_below_def intro: exI[of _ a] less_imp_le) | 
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changeset | 133 | |
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changeset | 134 | lemma bdd_below_Ici [simp, intro]: "bdd_below {a ..}"
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changeset | 135 | by (auto simp add: bdd_below_def intro: exI[of _ a] less_imp_le) | 
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changeset | 136 | |
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changeset | 137 | end | 
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changeset | 138 | |
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changeset | 139 | context order_top | 
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changeset | 140 | begin | 
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changeset | 141 | |
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changeset | 142 | lemma bdd_above_top [simp, intro!]: "bdd_above A" | 
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changeset | 143 | by (rule bdd_aboveI [of _ top]) simp | 
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changeset | 144 | |
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changeset | 145 | end | 
| 54261 | 146 | |
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changeset | 147 | context order_bot | 
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changeset | 148 | begin | 
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changeset | 149 | |
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changeset | 150 | lemma bdd_below_bot [simp, intro!]: "bdd_below A" | 
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changeset | 151 | by (rule bdd_belowI [of _ bot]) simp | 
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changeset | 152 | |
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changeset | 153 | end | 
| 54261 | 154 | |
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changeset | 155 | lemma bdd_above_image_mono: "mono f \<Longrightarrow> bdd_above A \<Longrightarrow> bdd_above (f`A)" | 
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changeset | 156 | by (auto simp: bdd_above_def mono_def) | 
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changeset | 157 | |
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changeset | 158 | lemma bdd_below_image_mono: "mono f \<Longrightarrow> bdd_below A \<Longrightarrow> bdd_below (f`A)" | 
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changeset | 159 | by (auto simp: bdd_below_def mono_def) | 
| 63331 | 160 | |
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changeset | 161 | lemma bdd_above_image_antimono: "antimono f \<Longrightarrow> bdd_below A \<Longrightarrow> bdd_above (f`A)" | 
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changeset | 162 | by (auto simp: bdd_above_def bdd_below_def antimono_def) | 
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changeset | 163 | |
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changeset | 164 | lemma bdd_below_image_antimono: "antimono f \<Longrightarrow> bdd_above A \<Longrightarrow> bdd_below (f`A)" | 
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changeset | 165 | by (auto simp: bdd_above_def bdd_below_def antimono_def) | 
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changeset | 166 | |
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changeset | 167 | lemma | 
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changeset | 168 | fixes X :: "'a::ordered_ab_group_add set" | 
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changeset | 169 | shows bdd_above_uminus[simp]: "bdd_above (uminus ` X) \<longleftrightarrow> bdd_below X" | 
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changeset | 170 | and bdd_below_uminus[simp]: "bdd_below (uminus ` X) \<longleftrightarrow> bdd_above X" | 
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changeset | 171 | using bdd_above_image_antimono[of uminus X] bdd_below_image_antimono[of uminus "uminus`X"] | 
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changeset | 172 | using bdd_below_image_antimono[of uminus X] bdd_above_image_antimono[of uminus "uminus`X"] | 
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changeset | 173 | by (auto simp: antimono_def image_image) | 
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changeset | 174 | |
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changeset | 175 | context lattice | 
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changeset | 176 | begin | 
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changeset | 177 | |
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changeset | 178 | lemma bdd_above_insert [simp]: "bdd_above (insert a A) = bdd_above A" | 
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changeset | 179 | by (auto simp: bdd_above_def intro: le_supI2 sup_ge1) | 
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changeset | 180 | |
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changeset | 181 | lemma bdd_below_insert [simp]: "bdd_below (insert a A) = bdd_below A" | 
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changeset | 182 | by (auto simp: bdd_below_def intro: le_infI2 inf_le1) | 
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changeset | 183 | |
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changeset | 184 | lemma bdd_finite [simp]: | 
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changeset | 185 | assumes "finite A" shows bdd_above_finite: "bdd_above A" and bdd_below_finite: "bdd_below A" | 
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changeset | 186 | using assms by (induct rule: finite_induct, auto) | 
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changeset | 187 | |
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changeset | 188 | lemma bdd_above_Un [simp]: "bdd_above (A \<union> B) = (bdd_above A \<and> bdd_above B)" | 
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changeset | 189 | proof | 
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changeset | 190 | assume "bdd_above (A \<union> B)" | 
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changeset | 191 | thus "bdd_above A \<and> bdd_above B" unfolding bdd_above_def by auto | 
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changeset | 192 | next | 
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changeset | 193 | assume "bdd_above A \<and> bdd_above B" | 
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changeset | 194 | then obtain a b where "\<forall>x\<in>A. x \<le> a" "\<forall>x\<in>B. x \<le> b" unfolding bdd_above_def by auto | 
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changeset | 195 | hence "\<forall>x \<in> A \<union> B. x \<le> sup a b" by (auto intro: Un_iff le_supI1 le_supI2) | 
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changeset | 196 | thus "bdd_above (A \<union> B)" unfolding bdd_above_def .. | 
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changeset | 197 | qed | 
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changeset | 198 | |
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changeset | 199 | lemma bdd_below_Un [simp]: "bdd_below (A \<union> B) = (bdd_below A \<and> bdd_below B)" | 
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changeset | 200 | proof | 
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changeset | 201 | assume "bdd_below (A \<union> B)" | 
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changeset | 202 | thus "bdd_below A \<and> bdd_below B" unfolding bdd_below_def by auto | 
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changeset | 203 | next | 
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changeset | 204 | assume "bdd_below A \<and> bdd_below B" | 
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changeset | 205 | then obtain a b where "\<forall>x\<in>A. a \<le> x" "\<forall>x\<in>B. b \<le> x" unfolding bdd_below_def by auto | 
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changeset | 206 | hence "\<forall>x \<in> A \<union> B. inf a b \<le> x" by (auto intro: Un_iff le_infI1 le_infI2) | 
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changeset | 207 | thus "bdd_below (A \<union> B)" unfolding bdd_below_def .. | 
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changeset | 208 | qed | 
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changeset | 209 | |
| 67458 | 210 | lemma bdd_above_image_sup[simp]: | 
| 211 | "bdd_above ((\<lambda>x. sup (f x) (g x)) ` A) \<longleftrightarrow> bdd_above (f`A) \<and> bdd_above (g`A)" | |
| 212 | by (auto simp: bdd_above_def intro: le_supI1 le_supI2) | |
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changeset | 213 | |
| 67458 | 214 | lemma bdd_below_image_inf[simp]: | 
| 215 | "bdd_below ((\<lambda>x. inf (f x) (g x)) ` A) \<longleftrightarrow> bdd_below (f`A) \<and> bdd_below (g`A)" | |
| 216 | by (auto simp: bdd_below_def intro: le_infI1 le_infI2) | |
| 217 | ||
| 218 | lemma bdd_below_UN[simp]: "finite I \<Longrightarrow> bdd_below (\<Union>i\<in>I. A i) = (\<forall>i \<in> I. bdd_below (A i))" | |
| 219 | by (induction I rule: finite.induct) auto | |
| 220 | ||
| 221 | lemma bdd_above_UN[simp]: "finite I \<Longrightarrow> bdd_above (\<Union>i\<in>I. A i) = (\<forall>i \<in> I. bdd_above (A i))" | |
| 222 | by (induction I rule: finite.induct) auto | |
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changeset | 223 | |
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changeset | 224 | end | 
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changeset | 225 | |
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changeset | 226 | |
| 60758 | 227 | text \<open> | 
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changeset | 228 | |
| 69593 | 229 | To avoid name classes with the \<^class>\<open>complete_lattice\<close>-class we prefix \<^const>\<open>Sup\<close> and | 
| 230 | \<^const>\<open>Inf\<close> in theorem names with c. | |
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changeset | 231 | |
| 60758 | 232 | \<close> | 
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changeset | 233 | |
| 51773 | 234 | class conditionally_complete_lattice = lattice + Sup + Inf + | 
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changeset | 235 | assumes cInf_lower: "x \<in> X \<Longrightarrow> bdd_below X \<Longrightarrow> Inf X \<le> x" | 
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changeset | 236 |     and cInf_greatest: "X \<noteq> {} \<Longrightarrow> (\<And>x. x \<in> X \<Longrightarrow> z \<le> x) \<Longrightarrow> z \<le> Inf X"
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changeset | 237 | assumes cSup_upper: "x \<in> X \<Longrightarrow> bdd_above X \<Longrightarrow> x \<le> Sup X" | 
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changeset | 238 |     and cSup_least: "X \<noteq> {} \<Longrightarrow> (\<And>x. x \<in> X \<Longrightarrow> x \<le> z) \<Longrightarrow> Sup X \<le> z"
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changeset | 239 | begin | 
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changeset | 240 | |
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changeset | 241 | lemma cSup_upper2: "x \<in> X \<Longrightarrow> y \<le> x \<Longrightarrow> bdd_above X \<Longrightarrow> y \<le> Sup X" | 
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changeset | 242 | by (metis cSup_upper order_trans) | 
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changeset | 243 | |
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changeset | 244 | lemma cInf_lower2: "x \<in> X \<Longrightarrow> x \<le> y \<Longrightarrow> bdd_below X \<Longrightarrow> Inf X \<le> y" | 
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changeset | 245 | by (metis cInf_lower order_trans) | 
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changeset | 246 | |
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changeset | 247 | lemma cSup_mono: "B \<noteq> {} \<Longrightarrow> bdd_above A \<Longrightarrow> (\<And>b. b \<in> B \<Longrightarrow> \<exists>a\<in>A. b \<le> a) \<Longrightarrow> Sup B \<le> Sup A"
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changeset | 248 | by (metis cSup_least cSup_upper2) | 
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changeset | 249 | |
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changeset | 250 | lemma cInf_mono: "B \<noteq> {} \<Longrightarrow> bdd_below A \<Longrightarrow> (\<And>b. b \<in> B \<Longrightarrow> \<exists>a\<in>A. a \<le> b) \<Longrightarrow> Inf A \<le> Inf B"
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changeset | 251 | by (metis cInf_greatest cInf_lower2) | 
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changeset | 252 | |
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changeset | 253 | lemma cSup_subset_mono: "A \<noteq> {} \<Longrightarrow> bdd_above B \<Longrightarrow> A \<subseteq> B \<Longrightarrow> Sup A \<le> Sup B"
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changeset | 254 | by (metis cSup_least cSup_upper subsetD) | 
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changeset | 255 | |
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changeset | 256 | lemma cInf_superset_mono: "A \<noteq> {} \<Longrightarrow> bdd_below B \<Longrightarrow> A \<subseteq> B \<Longrightarrow> Inf B \<le> Inf A"
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changeset | 257 | by (metis cInf_greatest cInf_lower subsetD) | 
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changeset | 258 | |
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changeset | 259 | lemma cSup_eq_maximum: "z \<in> X \<Longrightarrow> (\<And>x. x \<in> X \<Longrightarrow> x \<le> z) \<Longrightarrow> Sup X = z" | 
| 73411 | 260 | by (intro order.antisym cSup_upper[of z X] cSup_least[of X z]) auto | 
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changeset | 261 | |
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changeset | 262 | lemma cInf_eq_minimum: "z \<in> X \<Longrightarrow> (\<And>x. x \<in> X \<Longrightarrow> z \<le> x) \<Longrightarrow> Inf X = z" | 
| 73411 | 263 | by (intro order.antisym cInf_lower[of z X] cInf_greatest[of X z]) auto | 
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changeset | 264 | |
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changeset | 265 | lemma cSup_le_iff: "S \<noteq> {} \<Longrightarrow> bdd_above S \<Longrightarrow> Sup S \<le> a \<longleftrightarrow> (\<forall>x\<in>S. x \<le> a)"
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changeset | 266 | by (metis order_trans cSup_upper cSup_least) | 
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changeset | 267 | |
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changeset | 268 | lemma le_cInf_iff: "S \<noteq> {} \<Longrightarrow> bdd_below S \<Longrightarrow> a \<le> Inf S \<longleftrightarrow> (\<forall>x\<in>S. a \<le> x)"
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changeset | 269 | by (metis order_trans cInf_lower cInf_greatest) | 
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changeset | 270 | |
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changeset | 271 | lemma cSup_eq_non_empty: | 
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changeset | 272 |   assumes 1: "X \<noteq> {}"
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changeset | 273 | assumes 2: "\<And>x. x \<in> X \<Longrightarrow> x \<le> a" | 
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changeset | 274 | assumes 3: "\<And>y. (\<And>x. x \<in> X \<Longrightarrow> x \<le> y) \<Longrightarrow> a \<le> y" | 
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changeset | 275 | shows "Sup X = a" | 
| 73411 | 276 | by (intro 3 1 order.antisym cSup_least) (auto intro: 2 1 cSup_upper) | 
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changeset | 277 | |
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changeset | 278 | lemma cInf_eq_non_empty: | 
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changeset | 279 |   assumes 1: "X \<noteq> {}"
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changeset | 280 | assumes 2: "\<And>x. x \<in> X \<Longrightarrow> a \<le> x" | 
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changeset | 281 | assumes 3: "\<And>y. (\<And>x. x \<in> X \<Longrightarrow> y \<le> x) \<Longrightarrow> y \<le> a" | 
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changeset | 282 | shows "Inf X = a" | 
| 73411 | 283 | by (intro 3 1 order.antisym cInf_greatest) (auto intro: 2 1 cInf_lower) | 
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changeset | 284 | |
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changeset | 285 | lemma cInf_cSup: "S \<noteq> {} \<Longrightarrow> bdd_below S \<Longrightarrow> Inf S = Sup {x. \<forall>s\<in>S. x \<le> s}"
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changeset | 286 | by (rule cInf_eq_non_empty) (auto intro!: cSup_upper cSup_least simp: bdd_below_def) | 
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changeset | 287 | |
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changeset | 288 | lemma cSup_cInf: "S \<noteq> {} \<Longrightarrow> bdd_above S \<Longrightarrow> Sup S = Inf {x. \<forall>s\<in>S. s \<le> x}"
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changeset | 289 | by (rule cSup_eq_non_empty) (auto intro!: cInf_lower cInf_greatest simp: bdd_above_def) | 
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changeset | 290 | |
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changeset | 291 | lemma cSup_insert: "X \<noteq> {} \<Longrightarrow> bdd_above X \<Longrightarrow> Sup (insert a X) = sup a (Sup X)"
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changeset | 292 | by (intro cSup_eq_non_empty) (auto intro: le_supI2 cSup_upper cSup_least) | 
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changeset | 293 | |
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changeset | 294 | lemma cInf_insert: "X \<noteq> {} \<Longrightarrow> bdd_below X \<Longrightarrow> Inf (insert a X) = inf a (Inf X)"
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changeset | 295 | by (intro cInf_eq_non_empty) (auto intro: le_infI2 cInf_lower cInf_greatest) | 
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changeset | 296 | |
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changeset | 297 | lemma cSup_singleton [simp]: "Sup {x} = x"
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changeset | 298 | by (intro cSup_eq_maximum) auto | 
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changeset | 299 | |
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changeset | 300 | lemma cInf_singleton [simp]: "Inf {x} = x"
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changeset | 301 | by (intro cInf_eq_minimum) auto | 
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changeset | 302 | |
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changeset | 303 | lemma cSup_insert_If:  "bdd_above X \<Longrightarrow> Sup (insert a X) = (if X = {} then a else sup a (Sup X))"
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changeset | 304 | using cSup_insert[of X] by simp | 
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changeset | 305 | |
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changeset | 306 | lemma cInf_insert_If: "bdd_below X \<Longrightarrow> Inf (insert a X) = (if X = {} then a else inf a (Inf X))"
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changeset | 307 | using cInf_insert[of X] by simp | 
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changeset | 308 | |
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changeset | 309 | lemma le_cSup_finite: "finite X \<Longrightarrow> x \<in> X \<Longrightarrow> x \<le> Sup X" | 
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changeset | 310 | proof (induct X arbitrary: x rule: finite_induct) | 
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changeset | 311 | case (insert x X y) then show ?case | 
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changeset | 312 |     by (cases "X = {}") (auto simp: cSup_insert intro: le_supI2)
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changeset | 313 | qed simp | 
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changeset | 314 | |
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changeset | 315 | lemma cInf_le_finite: "finite X \<Longrightarrow> x \<in> X \<Longrightarrow> Inf X \<le> x" | 
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changeset | 316 | proof (induct X arbitrary: x rule: finite_induct) | 
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changeset | 317 | case (insert x X y) then show ?case | 
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changeset | 318 |     by (cases "X = {}") (auto simp: cInf_insert intro: le_infI2)
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changeset | 319 | qed simp | 
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changeset | 320 | |
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changeset | 321 | lemma cSup_eq_Sup_fin: "finite X \<Longrightarrow> X \<noteq> {} \<Longrightarrow> Sup X = Sup_fin X"
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changeset | 322 | by (induct X rule: finite_ne_induct) (simp_all add: cSup_insert) | 
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changeset | 323 | |
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changeset | 324 | lemma cInf_eq_Inf_fin: "finite X \<Longrightarrow> X \<noteq> {} \<Longrightarrow> Inf X = Inf_fin X"
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changeset | 325 | by (induct X rule: finite_ne_induct) (simp_all add: cInf_insert) | 
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changeset | 326 | |
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changeset | 327 | lemma cSup_atMost[simp]: "Sup {..x} = x"
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changeset | 328 | by (auto intro!: cSup_eq_maximum) | 
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changeset | 329 | |
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changeset | 330 | lemma cSup_greaterThanAtMost[simp]: "y < x \<Longrightarrow> Sup {y<..x} = x"
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changeset | 331 | by (auto intro!: cSup_eq_maximum) | 
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changeset | 332 | |
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changeset | 333 | lemma cSup_atLeastAtMost[simp]: "y \<le> x \<Longrightarrow> Sup {y..x} = x"
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changeset | 334 | by (auto intro!: cSup_eq_maximum) | 
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changeset | 335 | |
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changeset | 336 | lemma cInf_atLeast[simp]: "Inf {x..} = x"
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changeset | 337 | by (auto intro!: cInf_eq_minimum) | 
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changeset | 338 | |
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changeset | 339 | lemma cInf_atLeastLessThan[simp]: "y < x \<Longrightarrow> Inf {y..<x} = y"
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changeset | 340 | by (auto intro!: cInf_eq_minimum) | 
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changeset | 341 | |
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changeset | 342 | lemma cInf_atLeastAtMost[simp]: "y \<le> x \<Longrightarrow> Inf {y..x} = y"
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changeset | 343 | by (auto intro!: cInf_eq_minimum) | 
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changeset | 344 | |
| 69275 | 345 | lemma cINF_lower: "bdd_below (f ` A) \<Longrightarrow> x \<in> A \<Longrightarrow> \<Sqinter>(f ` A) \<le> f x" | 
| 56166 | 346 | using cInf_lower [of _ "f ` A"] by simp | 
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changeset | 347 | |
| 69275 | 348 | lemma cINF_greatest: "A \<noteq> {} \<Longrightarrow> (\<And>x. x \<in> A \<Longrightarrow> m \<le> f x) \<Longrightarrow> m \<le> \<Sqinter>(f ` A)"
 | 
| 56166 | 349 | using cInf_greatest [of "f ` A"] by auto | 
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changeset | 350 | |
| 69275 | 351 | lemma cSUP_upper: "x \<in> A \<Longrightarrow> bdd_above (f ` A) \<Longrightarrow> f x \<le> \<Squnion>(f ` A)" | 
| 56166 | 352 | using cSup_upper [of _ "f ` A"] by simp | 
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changeset | 353 | |
| 69275 | 354 | lemma cSUP_least: "A \<noteq> {} \<Longrightarrow> (\<And>x. x \<in> A \<Longrightarrow> f x \<le> M) \<Longrightarrow> \<Squnion>(f ` A) \<le> M"
 | 
| 56166 | 355 | using cSup_least [of "f ` A"] by auto | 
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changeset | 356 | |
| 69275 | 357 | lemma cINF_lower2: "bdd_below (f ` A) \<Longrightarrow> x \<in> A \<Longrightarrow> f x \<le> u \<Longrightarrow> \<Sqinter>(f ` A) \<le> u" | 
| 63092 | 358 | by (auto intro: cINF_lower order_trans) | 
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changeset | 359 | |
| 69275 | 360 | lemma cSUP_upper2: "bdd_above (f ` A) \<Longrightarrow> x \<in> A \<Longrightarrow> u \<le> f x \<Longrightarrow> u \<le> \<Squnion>(f ` A)" | 
| 63092 | 361 | by (auto intro: cSUP_upper order_trans) | 
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changeset | 362 | |
| 67613 | 363 | lemma cSUP_const [simp]: "A \<noteq> {} \<Longrightarrow> (\<Squnion>x\<in>A. c) = c"
 | 
| 73411 | 364 | by (intro order.antisym cSUP_least) (auto intro: cSUP_upper) | 
| 54261 | 365 | |
| 67613 | 366 | lemma cINF_const [simp]: "A \<noteq> {} \<Longrightarrow> (\<Sqinter>x\<in>A. c) = c"
 | 
| 73411 | 367 | by (intro order.antisym cINF_greatest) (auto intro: cINF_lower) | 
| 54261 | 368 | |
| 69275 | 369 | lemma le_cINF_iff: "A \<noteq> {} \<Longrightarrow> bdd_below (f ` A) \<Longrightarrow> u \<le> \<Sqinter>(f ` A) \<longleftrightarrow> (\<forall>x\<in>A. u \<le> f x)"
 | 
| 63092 | 370 | by (metis cINF_greatest cINF_lower order_trans) | 
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changeset | 371 | |
| 69275 | 372 | lemma cSUP_le_iff: "A \<noteq> {} \<Longrightarrow> bdd_above (f ` A) \<Longrightarrow> \<Squnion>(f ` A) \<le> u \<longleftrightarrow> (\<forall>x\<in>A. f x \<le> u)"
 | 
| 63092 | 373 | by (metis cSUP_least cSUP_upper order_trans) | 
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changeset | 374 | |
| 67613 | 375 | lemma less_cINF_D: "bdd_below (f`A) \<Longrightarrow> y < (\<Sqinter>i\<in>A. f i) \<Longrightarrow> i \<in> A \<Longrightarrow> y < f i" | 
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changeset | 376 | by (metis cINF_lower less_le_trans) | 
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changeset | 377 | |
| 67613 | 378 | lemma cSUP_lessD: "bdd_above (f`A) \<Longrightarrow> (\<Squnion>i\<in>A. f i) < y \<Longrightarrow> i \<in> A \<Longrightarrow> f i < y" | 
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changeset | 379 | by (metis cSUP_upper le_less_trans) | 
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changeset | 380 | |
| 69275 | 381 | lemma cINF_insert: "A \<noteq> {} \<Longrightarrow> bdd_below (f ` A) \<Longrightarrow> \<Sqinter>(f ` insert a A) = inf (f a) (\<Sqinter>(f ` A))"
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| 71238 | 382 | by (simp add: cInf_insert) | 
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changeset | 383 | |
| 69275 | 384 | lemma cSUP_insert: "A \<noteq> {} \<Longrightarrow> bdd_above (f ` A) \<Longrightarrow> \<Squnion>(f ` insert a A) = sup (f a) (\<Squnion>(f ` A))"
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| 71238 | 385 | by (simp add: cSup_insert) | 
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changeset | 386 | |
| 69275 | 387 | lemma cINF_mono: "B \<noteq> {} \<Longrightarrow> bdd_below (f ` A) \<Longrightarrow> (\<And>m. m \<in> B \<Longrightarrow> \<exists>n\<in>A. f n \<le> g m) \<Longrightarrow> \<Sqinter>(f ` A) \<le> \<Sqinter>(g ` B)"
 | 
| 56166 | 388 | using cInf_mono [of "g ` B" "f ` A"] by auto | 
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changeset | 389 | |
| 69275 | 390 | lemma cSUP_mono: "A \<noteq> {} \<Longrightarrow> bdd_above (g ` B) \<Longrightarrow> (\<And>n. n \<in> A \<Longrightarrow> \<exists>m\<in>B. f n \<le> g m) \<Longrightarrow> \<Squnion>(f ` A) \<le> \<Squnion>(g ` B)"
 | 
| 56166 | 391 | using cSup_mono [of "f ` A" "g ` B"] by auto | 
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changeset | 392 | |
| 69275 | 393 | lemma cINF_superset_mono: "A \<noteq> {} \<Longrightarrow> bdd_below (g ` B) \<Longrightarrow> A \<subseteq> B \<Longrightarrow> (\<And>x. x \<in> B \<Longrightarrow> g x \<le> f x) \<Longrightarrow> \<Sqinter>(g ` B) \<le> \<Sqinter>(f ` A)"
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changeset | 394 | by (rule cINF_mono) auto | 
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changeset | 395 | |
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changeset | 396 | lemma cSUP_subset_mono: | 
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changeset | 397 |   "\<lbrakk>A \<noteq> {}; bdd_above (g ` B); A \<subseteq> B; \<And>x. x \<in> A \<Longrightarrow> f x \<le> g x\<rbrakk> \<Longrightarrow> \<Squnion> (f ` A) \<le> \<Squnion> (g ` B)"
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changeset | 398 | by (rule cSUP_mono) auto | 
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changeset | 399 | |
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changeset | 400 | lemma less_eq_cInf_inter: "bdd_below A \<Longrightarrow> bdd_below B \<Longrightarrow> A \<inter> B \<noteq> {} \<Longrightarrow> inf (Inf A) (Inf B) \<le> Inf (A \<inter> B)"
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changeset | 401 | by (metis cInf_superset_mono lattice_class.inf_sup_ord(1) le_infI1) | 
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changeset | 403 | lemma cSup_inter_less_eq: "bdd_above A \<Longrightarrow> bdd_above B \<Longrightarrow> A \<inter> B \<noteq> {} \<Longrightarrow> Sup (A \<inter> B) \<le> sup (Sup A) (Sup B) "
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changeset | 404 | by (metis cSup_subset_mono lattice_class.inf_sup_ord(1) le_supI1) | 
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changeset | 405 | |
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changeset | 406 | lemma cInf_union_distrib: "A \<noteq> {} \<Longrightarrow> bdd_below A \<Longrightarrow> B \<noteq> {} \<Longrightarrow> bdd_below B \<Longrightarrow> Inf (A \<union> B) = inf (Inf A) (Inf B)"
 | 
| 73411 | 407 | by (intro order.antisym le_infI cInf_greatest cInf_lower) (auto intro: le_infI1 le_infI2 cInf_lower) | 
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changeset | 408 | |
| 69275 | 409 | lemma cINF_union: "A \<noteq> {} \<Longrightarrow> bdd_below (f ` A) \<Longrightarrow> B \<noteq> {} \<Longrightarrow> bdd_below (f ` B) \<Longrightarrow> \<Sqinter> (f ` (A \<union> B)) = \<Sqinter> (f ` A) \<sqinter> \<Sqinter> (f ` B)"
 | 
| 71238 | 410 | using cInf_union_distrib [of "f ` A" "f ` B"] by (simp add: image_Un) | 
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changeset | 411 | |
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changeset | 412 | lemma cSup_union_distrib: "A \<noteq> {} \<Longrightarrow> bdd_above A \<Longrightarrow> B \<noteq> {} \<Longrightarrow> bdd_above B \<Longrightarrow> Sup (A \<union> B) = sup (Sup A) (Sup B)"
 | 
| 73411 | 413 | by (intro order.antisym le_supI cSup_least cSup_upper) (auto intro: le_supI1 le_supI2 cSup_upper) | 
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changeset | 414 | |
| 69275 | 415 | lemma cSUP_union: "A \<noteq> {} \<Longrightarrow> bdd_above (f ` A) \<Longrightarrow> B \<noteq> {} \<Longrightarrow> bdd_above (f ` B) \<Longrightarrow> \<Squnion> (f ` (A \<union> B)) = \<Squnion> (f ` A) \<squnion> \<Squnion> (f ` B)"
 | 
| 71238 | 416 | using cSup_union_distrib [of "f ` A" "f ` B"] by (simp add: image_Un) | 
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changeset | 417 | |
| 69275 | 418 | lemma cINF_inf_distrib: "A \<noteq> {} \<Longrightarrow> bdd_below (f`A) \<Longrightarrow> bdd_below (g`A) \<Longrightarrow> \<Sqinter> (f ` A) \<sqinter> \<Sqinter> (g ` A) = (\<Sqinter>a\<in>A. inf (f a) (g a))"
 | 
| 73411 | 419 | by (intro order.antisym le_infI cINF_greatest cINF_lower2) | 
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changeset | 420 | (auto intro: le_infI1 le_infI2 cINF_greatest cINF_lower le_infI) | 
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changeset | 421 | |
| 69275 | 422 | lemma SUP_sup_distrib: "A \<noteq> {} \<Longrightarrow> bdd_above (f`A) \<Longrightarrow> bdd_above (g`A) \<Longrightarrow> \<Squnion> (f ` A) \<squnion> \<Squnion> (g ` A) = (\<Squnion>a\<in>A. sup (f a) (g a))"
 | 
| 73411 | 423 | by (intro order.antisym le_supI cSUP_least cSUP_upper2) | 
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changeset | 424 | (auto intro: le_supI1 le_supI2 cSUP_least cSUP_upper le_supI) | 
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changeset | 425 | |
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changeset | 426 | lemma cInf_le_cSup: | 
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changeset | 427 |   "A \<noteq> {} \<Longrightarrow> bdd_above A \<Longrightarrow> bdd_below A \<Longrightarrow> Inf A \<le> Sup A"
 | 
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changeset | 428 | by (auto intro!: cSup_upper2[of "SOME a. a \<in> A"] intro: someI cInf_lower) | 
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changeset | 429 | |
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changeset | 430 | end | 
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changeset | 431 | |
| 51773 | 432 | instance complete_lattice \<subseteq> conditionally_complete_lattice | 
| 61169 | 433 | by standard (auto intro: Sup_upper Sup_least Inf_lower Inf_greatest) | 
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changeset | 434 | |
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changeset | 435 | lemma cSup_eq: | 
| 51773 | 436 |   fixes a :: "'a :: {conditionally_complete_lattice, no_bot}"
 | 
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changeset | 437 | assumes upper: "\<And>x. x \<in> X \<Longrightarrow> x \<le> a" | 
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changeset | 438 | assumes least: "\<And>y. (\<And>x. x \<in> X \<Longrightarrow> x \<le> y) \<Longrightarrow> a \<le> y" | 
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changeset | 439 | shows "Sup X = a" | 
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changeset | 440 | proof cases | 
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changeset | 441 |   assume "X = {}" with lt_ex[of a] least show ?thesis by (auto simp: less_le_not_le)
 | 
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changeset | 442 | qed (intro cSup_eq_non_empty assms) | 
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changeset | 443 | |
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changeset | 444 | lemma cInf_eq: | 
| 51773 | 445 |   fixes a :: "'a :: {conditionally_complete_lattice, no_top}"
 | 
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changeset | 446 | assumes upper: "\<And>x. x \<in> X \<Longrightarrow> a \<le> x" | 
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changeset | 447 | assumes least: "\<And>y. (\<And>x. x \<in> X \<Longrightarrow> y \<le> x) \<Longrightarrow> y \<le> a" | 
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changeset | 448 | shows "Inf X = a" | 
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changeset | 449 | proof cases | 
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changeset | 450 |   assume "X = {}" with gt_ex[of a] least show ?thesis by (auto simp: less_le_not_le)
 | 
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changeset | 451 | qed (intro cInf_eq_non_empty assms) | 
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changeset | 452 | |
| 51773 | 453 | class conditionally_complete_linorder = conditionally_complete_lattice + linorder | 
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changeset | 454 | begin | 
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changeset | 455 | |
| 63331 | 456 | lemma less_cSup_iff: | 
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changeset | 457 |   "X \<noteq> {} \<Longrightarrow> bdd_above X \<Longrightarrow> y < Sup X \<longleftrightarrow> (\<exists>x\<in>X. y < x)"
 | 
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changeset | 458 | by (rule iffI) (metis cSup_least not_less, metis cSup_upper less_le_trans) | 
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changeset | 459 | |
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changeset | 460 | lemma cInf_less_iff: "X \<noteq> {} \<Longrightarrow> bdd_below X \<Longrightarrow> Inf X < y \<longleftrightarrow> (\<exists>x\<in>X. x < y)"
 | 
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changeset | 461 | by (rule iffI) (metis cInf_greatest not_less, metis cInf_lower le_less_trans) | 
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changeset | 462 | |
| 67613 | 463 | lemma cINF_less_iff: "A \<noteq> {} \<Longrightarrow> bdd_below (f`A) \<Longrightarrow> (\<Sqinter>i\<in>A. f i) < a \<longleftrightarrow> (\<exists>x\<in>A. f x < a)"
 | 
| 56166 | 464 | using cInf_less_iff[of "f`A"] by auto | 
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changeset | 465 | |
| 67613 | 466 | lemma less_cSUP_iff: "A \<noteq> {} \<Longrightarrow> bdd_above (f`A) \<Longrightarrow> a < (\<Squnion>i\<in>A. f i) \<longleftrightarrow> (\<exists>x\<in>A. a < f x)"
 | 
| 56166 | 467 | using less_cSup_iff[of "f`A"] by auto | 
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changeset | 468 | |
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changeset | 469 | lemma less_cSupE: | 
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changeset | 470 |   assumes "y < Sup X" "X \<noteq> {}" obtains x where "x \<in> X" "y < x"
 | 
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changeset | 471 | by (metis cSup_least assms not_le that) | 
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changeset | 472 | |
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changeset | 473 | lemma less_cSupD: | 
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changeset | 474 |   "X \<noteq> {} \<Longrightarrow> z < Sup X \<Longrightarrow> \<exists>x\<in>X. z < x"
 | 
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changeset | 475 | by (metis less_cSup_iff not_le_imp_less bdd_above_def) | 
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changeset | 476 | |
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changeset | 477 | lemma cInf_lessD: | 
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changeset | 478 |   "X \<noteq> {} \<Longrightarrow> Inf X < z \<Longrightarrow> \<exists>x\<in>X. x < z"
 | 
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changeset | 479 | by (metis cInf_less_iff not_le_imp_less bdd_below_def) | 
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changeset | 480 | |
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changeset | 481 | lemma complete_interval: | 
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changeset | 482 | assumes "a < b" and "P a" and "\<not> P b" | 
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changeset | 483 | shows "\<exists>c. a \<le> c \<and> c \<le> b \<and> (\<forall>x. a \<le> x \<and> x < c \<longrightarrow> P x) \<and> | 
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changeset | 484 | (\<forall>d. (\<forall>x. a \<le> x \<and> x < d \<longrightarrow> P x) \<longrightarrow> d \<le> c)" | 
| 67091 | 485 | proof (rule exI [where x = "Sup {d. \<forall>x. a \<le> x \<and> x < d \<longrightarrow> P x}"], auto)
 | 
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changeset | 486 |   show "a \<le> Sup {d. \<forall>c. a \<le> c \<and> c < d \<longrightarrow> P c}"
 | 
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changeset | 487 | by (rule cSup_upper, auto simp: bdd_above_def) | 
| 60758 | 488 | (metis \<open>a < b\<close> \<open>\<not> P b\<close> linear less_le) | 
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changeset | 489 | next | 
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changeset | 490 |   show "Sup {d. \<forall>c. a \<le> c \<and> c < d \<longrightarrow> P c} \<le> b"
 | 
| 63331 | 491 | apply (rule cSup_least) | 
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changeset | 492 | apply auto | 
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changeset | 493 | apply (metis less_le_not_le) | 
| 67091 | 494 | apply (metis \<open>a<b\<close> \<open>\<not> P b\<close> linear less_le) | 
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changeset | 495 | done | 
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changeset | 496 | next | 
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changeset | 497 | fix x | 
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changeset | 498 |   assume x: "a \<le> x" and lt: "x < Sup {d. \<forall>c. a \<le> c \<and> c < d \<longrightarrow> P c}"
 | 
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changeset | 499 | show "P x" | 
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changeset | 500 | apply (rule less_cSupE [OF lt], auto) | 
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changeset | 501 | apply (metis less_le_not_le) | 
| 63331 | 502 | apply (metis x) | 
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changeset | 503 | done | 
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changeset | 504 | next | 
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changeset | 505 | fix d | 
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changeset | 506 | assume 0: "\<forall>x. a \<le> x \<and> x < d \<longrightarrow> P x" | 
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changeset | 507 |     thus "d \<le> Sup {d. \<forall>c. a \<le> c \<and> c < d \<longrightarrow> P c}"
 | 
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changeset | 508 | by (rule_tac cSup_upper, auto simp: bdd_above_def) | 
| 67091 | 509 | (metis \<open>a<b\<close> \<open>\<not> P b\<close> linear less_le) | 
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changeset | 510 | qed | 
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changeset | 511 | |
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changeset | 512 | end | 
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changeset | 513 | |
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changeset | 514 | instance complete_linorder < conditionally_complete_linorder | 
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changeset | 515 | .. | 
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changeset | 516 | |
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changeset | 517 | lemma cSup_eq_Max: "finite (X::'a::conditionally_complete_linorder set) \<Longrightarrow> X \<noteq> {} \<Longrightarrow> Sup X = Max X"
 | 
| 67484 | 518 | using cSup_eq_Sup_fin[of X] by (simp add: Sup_fin_Max) | 
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changeset | 519 | |
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changeset | 520 | lemma cInf_eq_Min: "finite (X::'a::conditionally_complete_linorder set) \<Longrightarrow> X \<noteq> {} \<Longrightarrow> Inf X = Min X"
 | 
| 67484 | 521 | using cInf_eq_Inf_fin[of X] by (simp add: Inf_fin_Min) | 
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changeset | 522 | |
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changeset | 523 | lemma cSup_lessThan[simp]: "Sup {..<x::'a::{conditionally_complete_linorder, no_bot, dense_linorder}} = x"
 | 
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changeset | 524 | by (auto intro!: cSup_eq_non_empty intro: dense_le) | 
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changeset | 525 | |
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changeset | 526 | lemma cSup_greaterThanLessThan[simp]: "y < x \<Longrightarrow> Sup {y<..<x::'a::{conditionally_complete_linorder, dense_linorder}} = x"
 | 
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changeset | 527 | by (auto intro!: cSup_eq_non_empty intro: dense_le_bounded) | 
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changeset | 528 | |
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changeset | 529 | lemma cSup_atLeastLessThan[simp]: "y < x \<Longrightarrow> Sup {y..<x::'a::{conditionally_complete_linorder, dense_linorder}} = x"
 | 
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changeset | 530 | by (auto intro!: cSup_eq_non_empty intro: dense_le_bounded) | 
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changeset | 531 | |
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changeset | 532 | lemma cInf_greaterThan[simp]: "Inf {x::'a::{conditionally_complete_linorder, no_top, dense_linorder} <..} = x"
 | 
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changeset | 533 | by (auto intro!: cInf_eq_non_empty intro: dense_ge) | 
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changeset | 534 | |
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changeset | 535 | lemma cInf_greaterThanAtMost[simp]: "y < x \<Longrightarrow> Inf {y<..x::'a::{conditionally_complete_linorder, dense_linorder}} = y"
 | 
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changeset | 536 | by (auto intro!: cInf_eq_non_empty intro: dense_ge_bounded) | 
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changeset | 537 | |
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changeset | 538 | lemma cInf_greaterThanLessThan[simp]: "y < x \<Longrightarrow> Inf {y<..<x::'a::{conditionally_complete_linorder, dense_linorder}} = y"
 | 
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changeset | 539 | by (auto intro!: cInf_eq_non_empty intro: dense_ge_bounded) | 
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changeset | 540 | |
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changeset | 541 | lemma Inf_insert_finite: | 
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changeset | 542 | fixes S :: "'a::conditionally_complete_linorder set" | 
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changeset | 543 |   shows "finite S \<Longrightarrow> Inf (insert x S) = (if S = {} then x else min x (Inf S))"
 | 
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changeset | 544 | by (simp add: cInf_eq_Min) | 
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changeset | 545 | |
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changeset | 546 | lemma Sup_insert_finite: | 
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changeset | 547 | fixes S :: "'a::conditionally_complete_linorder set" | 
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changeset | 548 |   shows "finite S \<Longrightarrow> Sup (insert x S) = (if S = {} then x else max x (Sup S))"
 | 
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changeset | 549 | by (simp add: cSup_insert sup_max) | 
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changeset | 550 | |
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changeset | 551 | lemma finite_imp_less_Inf: | 
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changeset | 552 | fixes a :: "'a::conditionally_complete_linorder" | 
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changeset | 553 | shows "\<lbrakk>finite X; x \<in> X; \<And>x. x\<in>X \<Longrightarrow> a < x\<rbrakk> \<Longrightarrow> a < Inf X" | 
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changeset | 554 | by (induction X rule: finite_induct) (simp_all add: cInf_eq_Min Inf_insert_finite) | 
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changeset | 555 | |
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changeset | 556 | lemma finite_less_Inf_iff: | 
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changeset | 557 | fixes a :: "'a :: conditionally_complete_linorder" | 
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changeset | 558 |   shows "\<lbrakk>finite X; X \<noteq> {}\<rbrakk> \<Longrightarrow> a < Inf X \<longleftrightarrow> (\<forall>x \<in> X. a < x)"
 | 
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changeset | 559 | by (auto simp: cInf_eq_Min) | 
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changeset | 560 | |
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changeset | 561 | lemma finite_imp_Sup_less: | 
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changeset | 562 | fixes a :: "'a::conditionally_complete_linorder" | 
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changeset | 563 | shows "\<lbrakk>finite X; x \<in> X; \<And>x. x\<in>X \<Longrightarrow> a > x\<rbrakk> \<Longrightarrow> a > Sup X" | 
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changeset | 564 | by (induction X rule: finite_induct) (simp_all add: cSup_eq_Max Sup_insert_finite) | 
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changeset | 565 | |
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changeset | 566 | lemma finite_Sup_less_iff: | 
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changeset | 567 | fixes a :: "'a :: conditionally_complete_linorder" | 
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changeset | 568 |   shows "\<lbrakk>finite X; X \<noteq> {}\<rbrakk> \<Longrightarrow> a > Sup X \<longleftrightarrow> (\<forall>x \<in> X. a > x)"
 | 
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changeset | 569 | by (auto simp: cSup_eq_Max) | 
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changeset | 570 | |
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changeset | 571 | class linear_continuum = conditionally_complete_linorder + dense_linorder + | 
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changeset | 572 | assumes UNIV_not_singleton: "\<exists>a b::'a. a \<noteq> b" | 
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changeset | 573 | begin | 
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changeset | 574 | |
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changeset | 575 | lemma ex_gt_or_lt: "\<exists>b. a < b \<or> b < a" | 
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changeset | 576 | by (metis UNIV_not_singleton neq_iff) | 
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changeset | 577 | |
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changeset | 578 | end | 
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changeset | 579 | |
| 54281 | 580 | instantiation nat :: conditionally_complete_linorder | 
| 581 | begin | |
| 582 | ||
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changeset | 583 | definition "Sup (X::nat set) = (if X={} then 0 else Max X)"
 | 
| 54281 | 584 | definition "Inf (X::nat set) = (LEAST n. n \<in> X)" | 
| 585 | ||
| 586 | lemma bdd_above_nat: "bdd_above X \<longleftrightarrow> finite (X::nat set)" | |
| 587 | proof | |
| 588 | assume "bdd_above X" | |
| 589 |   then obtain z where "X \<subseteq> {.. z}"
 | |
| 590 | by (auto simp: bdd_above_def) | |
| 591 | then show "finite X" | |
| 592 | by (rule finite_subset) simp | |
| 593 | qed simp | |
| 594 | ||
| 595 | instance | |
| 596 | proof | |
| 63540 | 597 | fix x :: nat | 
| 598 | fix X :: "nat set" | |
| 599 | show "Inf X \<le> x" if "x \<in> X" "bdd_below X" | |
| 600 | using that by (simp add: Inf_nat_def Least_le) | |
| 601 |   show "x \<le> Inf X" if "X \<noteq> {}" "\<And>y. y \<in> X \<Longrightarrow> x \<le> y"
 | |
| 602 | using that unfolding Inf_nat_def ex_in_conv[symmetric] by (rule LeastI2_ex) | |
| 603 | show "x \<le> Sup X" if "x \<in> X" "bdd_above X" | |
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changeset | 604 | using that by (auto simp add: Sup_nat_def bdd_above_nat) | 
| 63540 | 605 |   show "Sup X \<le> x" if "X \<noteq> {}" "\<And>y. y \<in> X \<Longrightarrow> y \<le> x"
 | 
| 606 | proof - | |
| 607 | from that have "bdd_above X" | |
| 54281 | 608 | by (auto simp: bdd_above_def) | 
| 63540 | 609 | with that show ?thesis | 
| 610 | by (simp add: Sup_nat_def bdd_above_nat) | |
| 611 | qed | |
| 54281 | 612 | qed | 
| 63540 | 613 | |
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changeset | 614 | end | 
| 54281 | 615 | |
| 68610 | 616 | lemma Inf_nat_def1: | 
| 617 | fixes K::"nat set" | |
| 618 |   assumes "K \<noteq> {}"
 | |
| 619 | shows "Inf K \<in> K" | |
| 620 | by (auto simp add: Min_def Inf_nat_def) (meson LeastI assms bot.extremum_unique subsetI) | |
| 621 | ||
| 71834 | 622 | lemma Sup_nat_empty [simp]: "Sup {} = (0::nat)"
 | 
| 623 | by (auto simp add: Sup_nat_def) | |
| 624 | ||
| 625 | ||
| 68610 | 626 | |
| 54281 | 627 | instantiation int :: conditionally_complete_linorder | 
| 628 | begin | |
| 629 | ||
| 630 | definition "Sup (X::int set) = (THE x. x \<in> X \<and> (\<forall>y\<in>X. y \<le> x))" | |
| 631 | definition "Inf (X::int set) = - (Sup (uminus ` X))" | |
| 632 | ||
| 633 | instance | |
| 634 | proof | |
| 635 |   { fix x :: int and X :: "int set" assume "X \<noteq> {}" "bdd_above X"
 | |
| 636 |     then obtain x y where "X \<subseteq> {..y}" "x \<in> X"
 | |
| 637 | by (auto simp: bdd_above_def) | |
| 638 |     then have *: "finite (X \<inter> {x..y})" "X \<inter> {x..y} \<noteq> {}" and "x \<le> y"
 | |
| 639 | by (auto simp: subset_eq) | |
| 640 | have "\<exists>!x\<in>X. (\<forall>y\<in>X. y \<le> x)" | |
| 641 | proof | |
| 642 |       { fix z assume "z \<in> X"
 | |
| 643 |         have "z \<le> Max (X \<inter> {x..y})"
 | |
| 644 | proof cases | |
| 60758 | 645 |           assume "x \<le> z" with \<open>z \<in> X\<close> \<open>X \<subseteq> {..y}\<close> *(1) show ?thesis
 | 
| 54281 | 646 | by (auto intro!: Max_ge) | 
| 647 | next | |
| 648 | assume "\<not> x \<le> z" | |
| 649 | then have "z < x" by simp | |
| 650 |           also have "x \<le> Max (X \<inter> {x..y})"
 | |
| 60758 | 651 | using \<open>x \<in> X\<close> *(1) \<open>x \<le> y\<close> by (intro Max_ge) auto | 
| 54281 | 652 | finally show ?thesis by simp | 
| 653 | qed } | |
| 654 | note le = this | |
| 655 |       with Max_in[OF *] show ex: "Max (X \<inter> {x..y}) \<in> X \<and> (\<forall>z\<in>X. z \<le> Max (X \<inter> {x..y}))" by auto
 | |
| 656 | ||
| 657 | fix z assume *: "z \<in> X \<and> (\<forall>y\<in>X. y \<le> z)" | |
| 658 |       with le have "z \<le> Max (X \<inter> {x..y})"
 | |
| 659 | by auto | |
| 660 |       moreover have "Max (X \<inter> {x..y}) \<le> z"
 | |
| 661 | using * ex by auto | |
| 662 |       ultimately show "z = Max (X \<inter> {x..y})"
 | |
| 663 | by auto | |
| 664 | qed | |
| 665 | then have "Sup X \<in> X \<and> (\<forall>y\<in>X. y \<le> Sup X)" | |
| 666 | unfolding Sup_int_def by (rule theI') } | |
| 667 | note Sup_int = this | |
| 668 | ||
| 669 |   { fix x :: int and X :: "int set" assume "x \<in> X" "bdd_above X" then show "x \<le> Sup X"
 | |
| 670 | using Sup_int[of X] by auto } | |
| 671 | note le_Sup = this | |
| 672 |   { fix x :: int and X :: "int set" assume "X \<noteq> {}" "\<And>y. y \<in> X \<Longrightarrow> y \<le> x" then show "Sup X \<le> x"
 | |
| 673 | using Sup_int[of X] by (auto simp: bdd_above_def) } | |
| 674 | note Sup_le = this | |
| 675 | ||
| 676 |   { fix x :: int and X :: "int set" assume "x \<in> X" "bdd_below X" then show "Inf X \<le> x"
 | |
| 677 | using le_Sup[of "-x" "uminus ` X"] by (auto simp: Inf_int_def) } | |
| 678 |   { fix x :: int and X :: "int set" assume "X \<noteq> {}" "\<And>y. y \<in> X \<Longrightarrow> x \<le> y" then show "x \<le> Inf X"
 | |
| 679 | using Sup_le[of "uminus ` X" "-x"] by (force simp: Inf_int_def) } | |
| 680 | qed | |
| 681 | end | |
| 682 | ||
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changeset | 683 | lemma interval_cases: | 
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changeset | 684 | fixes S :: "'a :: conditionally_complete_linorder set" | 
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changeset | 685 | assumes ivl: "\<And>a b x. a \<in> S \<Longrightarrow> b \<in> S \<Longrightarrow> a \<le> x \<Longrightarrow> x \<le> b \<Longrightarrow> x \<in> S" | 
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changeset | 686 |   shows "\<exists>a b. S = {} \<or>
 | 
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changeset | 687 | S = UNIV \<or> | 
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changeset | 688 |     S = {..<b} \<or>
 | 
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changeset | 689 |     S = {..b} \<or>
 | 
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changeset | 690 |     S = {a<..} \<or>
 | 
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changeset | 691 |     S = {a..} \<or>
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changeset | 692 |     S = {a<..<b} \<or>
 | 
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changeset | 693 |     S = {a<..b} \<or>
 | 
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changeset | 694 |     S = {a..<b} \<or>
 | 
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changeset | 695 |     S = {a..b}"
 | 
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changeset | 696 | proof - | 
| 63040 | 697 |   define lower upper where "lower = {x. \<exists>s\<in>S. s \<le> x}" and "upper = {x. \<exists>s\<in>S. x \<le> s}"
 | 
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changeset | 698 | with ivl have "S = lower \<inter> upper" | 
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changeset | 699 | by auto | 
| 63331 | 700 | moreover | 
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changeset | 701 |   have "\<exists>a. upper = UNIV \<or> upper = {} \<or> upper = {.. a} \<or> upper = {..< a}"
 | 
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changeset | 702 | proof cases | 
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changeset | 703 |     assume *: "bdd_above S \<and> S \<noteq> {}"
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changeset | 704 |     from * have "upper \<subseteq> {.. Sup S}"
 | 
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changeset | 705 | by (auto simp: upper_def intro: cSup_upper2) | 
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changeset | 706 |     moreover from * have "{..< Sup S} \<subseteq> upper"
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changeset | 707 | by (force simp add: less_cSup_iff upper_def subset_eq Ball_def) | 
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changeset | 708 |     ultimately have "upper = {.. Sup S} \<or> upper = {..< Sup S}"
 | 
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changeset | 709 | unfolding ivl_disj_un(2)[symmetric] by auto | 
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changeset | 710 | then show ?thesis by auto | 
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changeset | 711 | next | 
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changeset | 712 |     assume "\<not> (bdd_above S \<and> S \<noteq> {})"
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changeset | 713 |     then have "upper = UNIV \<or> upper = {}"
 | 
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moved lemmas from the proof of the Central Limit Theorem by Jeremy Avigad and Luke Serafin
 hoelzl parents: 
56218diff
changeset | 714 | by (auto simp: upper_def bdd_above_def not_le dest: less_imp_le) | 
| 
0ddb5b755cdc
moved lemmas from the proof of the Central Limit Theorem by Jeremy Avigad and Luke Serafin
 hoelzl parents: 
56218diff
changeset | 715 | then show ?thesis | 
| 
0ddb5b755cdc
moved lemmas from the proof of the Central Limit Theorem by Jeremy Avigad and Luke Serafin
 hoelzl parents: 
56218diff
changeset | 716 | by auto | 
| 
0ddb5b755cdc
moved lemmas from the proof of the Central Limit Theorem by Jeremy Avigad and Luke Serafin
 hoelzl parents: 
56218diff
changeset | 717 | qed | 
| 
0ddb5b755cdc
moved lemmas from the proof of the Central Limit Theorem by Jeremy Avigad and Luke Serafin
 hoelzl parents: 
56218diff
changeset | 718 | moreover | 
| 
0ddb5b755cdc
moved lemmas from the proof of the Central Limit Theorem by Jeremy Avigad and Luke Serafin
 hoelzl parents: 
56218diff
changeset | 719 |   have "\<exists>b. lower = UNIV \<or> lower = {} \<or> lower = {b ..} \<or> lower = {b <..}"
 | 
| 
0ddb5b755cdc
moved lemmas from the proof of the Central Limit Theorem by Jeremy Avigad and Luke Serafin
 hoelzl parents: 
56218diff
changeset | 720 | proof cases | 
| 
0ddb5b755cdc
moved lemmas from the proof of the Central Limit Theorem by Jeremy Avigad and Luke Serafin
 hoelzl parents: 
56218diff
changeset | 721 |     assume *: "bdd_below S \<and> S \<noteq> {}"
 | 
| 
0ddb5b755cdc
moved lemmas from the proof of the Central Limit Theorem by Jeremy Avigad and Luke Serafin
 hoelzl parents: 
56218diff
changeset | 722 |     from * have "lower \<subseteq> {Inf S ..}"
 | 
| 
0ddb5b755cdc
moved lemmas from the proof of the Central Limit Theorem by Jeremy Avigad and Luke Serafin
 hoelzl parents: 
56218diff
changeset | 723 | by (auto simp: lower_def intro: cInf_lower2) | 
| 
0ddb5b755cdc
moved lemmas from the proof of the Central Limit Theorem by Jeremy Avigad and Luke Serafin
 hoelzl parents: 
56218diff
changeset | 724 |     moreover from * have "{Inf S <..} \<subseteq> lower"
 | 
| 
0ddb5b755cdc
moved lemmas from the proof of the Central Limit Theorem by Jeremy Avigad and Luke Serafin
 hoelzl parents: 
56218diff
changeset | 725 | by (force simp add: cInf_less_iff lower_def subset_eq Ball_def) | 
| 
0ddb5b755cdc
moved lemmas from the proof of the Central Limit Theorem by Jeremy Avigad and Luke Serafin
 hoelzl parents: 
56218diff
changeset | 726 |     ultimately have "lower = {Inf S ..} \<or> lower = {Inf S <..}"
 | 
| 
0ddb5b755cdc
moved lemmas from the proof of the Central Limit Theorem by Jeremy Avigad and Luke Serafin
 hoelzl parents: 
56218diff
changeset | 727 | unfolding ivl_disj_un(1)[symmetric] by auto | 
| 
0ddb5b755cdc
moved lemmas from the proof of the Central Limit Theorem by Jeremy Avigad and Luke Serafin
 hoelzl parents: 
56218diff
changeset | 728 | then show ?thesis by auto | 
| 
0ddb5b755cdc
moved lemmas from the proof of the Central Limit Theorem by Jeremy Avigad and Luke Serafin
 hoelzl parents: 
56218diff
changeset | 729 | next | 
| 
0ddb5b755cdc
moved lemmas from the proof of the Central Limit Theorem by Jeremy Avigad and Luke Serafin
 hoelzl parents: 
56218diff
changeset | 730 |     assume "\<not> (bdd_below S \<and> S \<noteq> {})"
 | 
| 
0ddb5b755cdc
moved lemmas from the proof of the Central Limit Theorem by Jeremy Avigad and Luke Serafin
 hoelzl parents: 
56218diff
changeset | 731 |     then have "lower = UNIV \<or> lower = {}"
 | 
| 
0ddb5b755cdc
moved lemmas from the proof of the Central Limit Theorem by Jeremy Avigad and Luke Serafin
 hoelzl parents: 
56218diff
changeset | 732 | by (auto simp: lower_def bdd_below_def not_le dest: less_imp_le) | 
| 
0ddb5b755cdc
moved lemmas from the proof of the Central Limit Theorem by Jeremy Avigad and Luke Serafin
 hoelzl parents: 
56218diff
changeset | 733 | then show ?thesis | 
| 
0ddb5b755cdc
moved lemmas from the proof of the Central Limit Theorem by Jeremy Avigad and Luke Serafin
 hoelzl parents: 
56218diff
changeset | 734 | by auto | 
| 
0ddb5b755cdc
moved lemmas from the proof of the Central Limit Theorem by Jeremy Avigad and Luke Serafin
 hoelzl parents: 
56218diff
changeset | 735 | qed | 
| 
0ddb5b755cdc
moved lemmas from the proof of the Central Limit Theorem by Jeremy Avigad and Luke Serafin
 hoelzl parents: 
56218diff
changeset | 736 | ultimately show ?thesis | 
| 
0ddb5b755cdc
moved lemmas from the proof of the Central Limit Theorem by Jeremy Avigad and Luke Serafin
 hoelzl parents: 
56218diff
changeset | 737 | unfolding greaterThanAtMost_def greaterThanLessThan_def atLeastAtMost_def atLeastLessThan_def | 
| 63171 | 738 | by (metis inf_bot_left inf_bot_right inf_top.left_neutral inf_top.right_neutral) | 
| 57275 
0ddb5b755cdc
moved lemmas from the proof of the Central Limit Theorem by Jeremy Avigad and Luke Serafin
 hoelzl parents: 
56218diff
changeset | 739 | qed | 
| 
0ddb5b755cdc
moved lemmas from the proof of the Central Limit Theorem by Jeremy Avigad and Luke Serafin
 hoelzl parents: 
56218diff
changeset | 740 | |
| 60615 
e5fa1d5d3952
Useful lemmas. The theorem concerning swapping the variables in a double integral.
 paulson <lp15@cam.ac.uk> parents: 
60172diff
changeset | 741 | lemma cSUP_eq_cINF_D: | 
| 
e5fa1d5d3952
Useful lemmas. The theorem concerning swapping the variables in a double integral.
 paulson <lp15@cam.ac.uk> parents: 
60172diff
changeset | 742 | fixes f :: "_ \<Rightarrow> 'b::conditionally_complete_lattice" | 
| 67613 | 743 | assumes eq: "(\<Squnion>x\<in>A. f x) = (\<Sqinter>x\<in>A. f x)" | 
| 60615 
e5fa1d5d3952
Useful lemmas. The theorem concerning swapping the variables in a double integral.
 paulson <lp15@cam.ac.uk> parents: 
60172diff
changeset | 744 | and bdd: "bdd_above (f ` A)" "bdd_below (f ` A)" | 
| 
e5fa1d5d3952
Useful lemmas. The theorem concerning swapping the variables in a double integral.
 paulson <lp15@cam.ac.uk> parents: 
60172diff
changeset | 745 | and a: "a \<in> A" | 
| 67613 | 746 | shows "f a = (\<Sqinter>x\<in>A. f x)" | 
| 60615 
e5fa1d5d3952
Useful lemmas. The theorem concerning swapping the variables in a double integral.
 paulson <lp15@cam.ac.uk> parents: 
60172diff
changeset | 747 | apply (rule antisym) | 
| 
e5fa1d5d3952
Useful lemmas. The theorem concerning swapping the variables in a double integral.
 paulson <lp15@cam.ac.uk> parents: 
60172diff
changeset | 748 | using a bdd | 
| 
e5fa1d5d3952
Useful lemmas. The theorem concerning swapping the variables in a double integral.
 paulson <lp15@cam.ac.uk> parents: 
60172diff
changeset | 749 | apply (auto simp: cINF_lower) | 
| 
e5fa1d5d3952
Useful lemmas. The theorem concerning swapping the variables in a double integral.
 paulson <lp15@cam.ac.uk> parents: 
60172diff
changeset | 750 | apply (metis eq cSUP_upper) | 
| 63331 | 751 | done | 
| 60615 
e5fa1d5d3952
Useful lemmas. The theorem concerning swapping the variables in a double integral.
 paulson <lp15@cam.ac.uk> parents: 
60172diff
changeset | 752 | |
| 62379 
340738057c8c
An assortment of useful lemmas about sums, norm, etc. Also: norm_conv_dist [symmetric] is now a simprule!
 paulson <lp15@cam.ac.uk> parents: 
62343diff
changeset | 753 | lemma cSUP_UNION: | 
| 
340738057c8c
An assortment of useful lemmas about sums, norm, etc. Also: norm_conv_dist [symmetric] is now a simprule!
 paulson <lp15@cam.ac.uk> parents: 
62343diff
changeset | 754 | fixes f :: "_ \<Rightarrow> 'b::conditionally_complete_lattice" | 
| 
340738057c8c
An assortment of useful lemmas about sums, norm, etc. Also: norm_conv_dist [symmetric] is now a simprule!
 paulson <lp15@cam.ac.uk> parents: 
62343diff
changeset | 755 |   assumes ne: "A \<noteq> {}" "\<And>x. x \<in> A \<Longrightarrow> B(x) \<noteq> {}"
 | 
| 
340738057c8c
An assortment of useful lemmas about sums, norm, etc. Also: norm_conv_dist [symmetric] is now a simprule!
 paulson <lp15@cam.ac.uk> parents: 
62343diff
changeset | 756 | and bdd_UN: "bdd_above (\<Union>x\<in>A. f ` B x)" | 
| 67613 | 757 | shows "(\<Squnion>z \<in> \<Union>x\<in>A. B x. f z) = (\<Squnion>x\<in>A. \<Squnion>z\<in>B x. f z)" | 
| 62379 
340738057c8c
An assortment of useful lemmas about sums, norm, etc. Also: norm_conv_dist [symmetric] is now a simprule!
 paulson <lp15@cam.ac.uk> parents: 
62343diff
changeset | 758 | proof - | 
| 
340738057c8c
An assortment of useful lemmas about sums, norm, etc. Also: norm_conv_dist [symmetric] is now a simprule!
 paulson <lp15@cam.ac.uk> parents: 
62343diff
changeset | 759 | have bdd: "\<And>x. x \<in> A \<Longrightarrow> bdd_above (f ` B x)" | 
| 
340738057c8c
An assortment of useful lemmas about sums, norm, etc. Also: norm_conv_dist [symmetric] is now a simprule!
 paulson <lp15@cam.ac.uk> parents: 
62343diff
changeset | 760 | using bdd_UN by (meson UN_upper bdd_above_mono) | 
| 
340738057c8c
An assortment of useful lemmas about sums, norm, etc. Also: norm_conv_dist [symmetric] is now a simprule!
 paulson <lp15@cam.ac.uk> parents: 
62343diff
changeset | 761 | obtain M where "\<And>x y. x \<in> A \<Longrightarrow> y \<in> B(x) \<Longrightarrow> f y \<le> M" | 
| 
340738057c8c
An assortment of useful lemmas about sums, norm, etc. Also: norm_conv_dist [symmetric] is now a simprule!
 paulson <lp15@cam.ac.uk> parents: 
62343diff
changeset | 762 | using bdd_UN by (auto simp: bdd_above_def) | 
| 67613 | 763 | then have bdd2: "bdd_above ((\<lambda>x. \<Squnion>z\<in>B x. f z) ` A)" | 
| 62379 
340738057c8c
An assortment of useful lemmas about sums, norm, etc. Also: norm_conv_dist [symmetric] is now a simprule!
 paulson <lp15@cam.ac.uk> parents: 
62343diff
changeset | 764 | unfolding bdd_above_def by (force simp: bdd cSUP_le_iff ne(2)) | 
| 67613 | 765 | have "(\<Squnion>z \<in> \<Union>x\<in>A. B x. f z) \<le> (\<Squnion>x\<in>A. \<Squnion>z\<in>B x. f z)" | 
| 62379 
340738057c8c
An assortment of useful lemmas about sums, norm, etc. Also: norm_conv_dist [symmetric] is now a simprule!
 paulson <lp15@cam.ac.uk> parents: 
62343diff
changeset | 766 | using assms by (fastforce simp add: intro!: cSUP_least intro: cSUP_upper2 simp: bdd2 bdd) | 
| 67613 | 767 | moreover have "(\<Squnion>x\<in>A. \<Squnion>z\<in>B x. f z) \<le> (\<Squnion> z \<in> \<Union>x\<in>A. B x. f z)" | 
| 62379 
340738057c8c
An assortment of useful lemmas about sums, norm, etc. Also: norm_conv_dist [symmetric] is now a simprule!
 paulson <lp15@cam.ac.uk> parents: 
62343diff
changeset | 768 | using assms by (fastforce simp add: intro!: cSUP_least intro: cSUP_upper simp: image_UN bdd_UN) | 
| 
340738057c8c
An assortment of useful lemmas about sums, norm, etc. Also: norm_conv_dist [symmetric] is now a simprule!
 paulson <lp15@cam.ac.uk> parents: 
62343diff
changeset | 769 | ultimately show ?thesis | 
| 
340738057c8c
An assortment of useful lemmas about sums, norm, etc. Also: norm_conv_dist [symmetric] is now a simprule!
 paulson <lp15@cam.ac.uk> parents: 
62343diff
changeset | 770 | by (rule order_antisym) | 
| 
340738057c8c
An assortment of useful lemmas about sums, norm, etc. Also: norm_conv_dist [symmetric] is now a simprule!
 paulson <lp15@cam.ac.uk> parents: 
62343diff
changeset | 771 | qed | 
| 
340738057c8c
An assortment of useful lemmas about sums, norm, etc. Also: norm_conv_dist [symmetric] is now a simprule!
 paulson <lp15@cam.ac.uk> parents: 
62343diff
changeset | 772 | |
| 
340738057c8c
An assortment of useful lemmas about sums, norm, etc. Also: norm_conv_dist [symmetric] is now a simprule!
 paulson <lp15@cam.ac.uk> parents: 
62343diff
changeset | 773 | lemma cINF_UNION: | 
| 
340738057c8c
An assortment of useful lemmas about sums, norm, etc. Also: norm_conv_dist [symmetric] is now a simprule!
 paulson <lp15@cam.ac.uk> parents: 
62343diff
changeset | 774 | fixes f :: "_ \<Rightarrow> 'b::conditionally_complete_lattice" | 
| 
340738057c8c
An assortment of useful lemmas about sums, norm, etc. Also: norm_conv_dist [symmetric] is now a simprule!
 paulson <lp15@cam.ac.uk> parents: 
62343diff
changeset | 775 |   assumes ne: "A \<noteq> {}" "\<And>x. x \<in> A \<Longrightarrow> B(x) \<noteq> {}"
 | 
| 
340738057c8c
An assortment of useful lemmas about sums, norm, etc. Also: norm_conv_dist [symmetric] is now a simprule!
 paulson <lp15@cam.ac.uk> parents: 
62343diff
changeset | 776 | and bdd_UN: "bdd_below (\<Union>x\<in>A. f ` B x)" | 
| 67613 | 777 | shows "(\<Sqinter>z \<in> \<Union>x\<in>A. B x. f z) = (\<Sqinter>x\<in>A. \<Sqinter>z\<in>B x. f z)" | 
| 62379 
340738057c8c
An assortment of useful lemmas about sums, norm, etc. Also: norm_conv_dist [symmetric] is now a simprule!
 paulson <lp15@cam.ac.uk> parents: 
62343diff
changeset | 778 | proof - | 
| 
340738057c8c
An assortment of useful lemmas about sums, norm, etc. Also: norm_conv_dist [symmetric] is now a simprule!
 paulson <lp15@cam.ac.uk> parents: 
62343diff
changeset | 779 | have bdd: "\<And>x. x \<in> A \<Longrightarrow> bdd_below (f ` B x)" | 
| 
340738057c8c
An assortment of useful lemmas about sums, norm, etc. Also: norm_conv_dist [symmetric] is now a simprule!
 paulson <lp15@cam.ac.uk> parents: 
62343diff
changeset | 780 | using bdd_UN by (meson UN_upper bdd_below_mono) | 
| 
340738057c8c
An assortment of useful lemmas about sums, norm, etc. Also: norm_conv_dist [symmetric] is now a simprule!
 paulson <lp15@cam.ac.uk> parents: 
62343diff
changeset | 781 | obtain M where "\<And>x y. x \<in> A \<Longrightarrow> y \<in> B(x) \<Longrightarrow> f y \<ge> M" | 
| 
340738057c8c
An assortment of useful lemmas about sums, norm, etc. Also: norm_conv_dist [symmetric] is now a simprule!
 paulson <lp15@cam.ac.uk> parents: 
62343diff
changeset | 782 | using bdd_UN by (auto simp: bdd_below_def) | 
| 67613 | 783 | then have bdd2: "bdd_below ((\<lambda>x. \<Sqinter>z\<in>B x. f z) ` A)" | 
| 62379 
340738057c8c
An assortment of useful lemmas about sums, norm, etc. Also: norm_conv_dist [symmetric] is now a simprule!
 paulson <lp15@cam.ac.uk> parents: 
62343diff
changeset | 784 | unfolding bdd_below_def by (force simp: bdd le_cINF_iff ne(2)) | 
| 67613 | 785 | have "(\<Sqinter>z \<in> \<Union>x\<in>A. B x. f z) \<le> (\<Sqinter>x\<in>A. \<Sqinter>z\<in>B x. f z)" | 
| 62379 
340738057c8c
An assortment of useful lemmas about sums, norm, etc. Also: norm_conv_dist [symmetric] is now a simprule!
 paulson <lp15@cam.ac.uk> parents: 
62343diff
changeset | 786 | using assms by (fastforce simp add: intro!: cINF_greatest intro: cINF_lower simp: bdd2 bdd) | 
| 67613 | 787 | moreover have "(\<Sqinter>x\<in>A. \<Sqinter>z\<in>B x. f z) \<le> (\<Sqinter>z \<in> \<Union>x\<in>A. B x. f z)" | 
| 62379 
340738057c8c
An assortment of useful lemmas about sums, norm, etc. Also: norm_conv_dist [symmetric] is now a simprule!
 paulson <lp15@cam.ac.uk> parents: 
62343diff
changeset | 788 | using assms by (fastforce simp add: intro!: cINF_greatest intro: cINF_lower2 simp: bdd bdd_UN bdd2) | 
| 
340738057c8c
An assortment of useful lemmas about sums, norm, etc. Also: norm_conv_dist [symmetric] is now a simprule!
 paulson <lp15@cam.ac.uk> parents: 
62343diff
changeset | 789 | ultimately show ?thesis | 
| 
340738057c8c
An assortment of useful lemmas about sums, norm, etc. Also: norm_conv_dist [symmetric] is now a simprule!
 paulson <lp15@cam.ac.uk> parents: 
62343diff
changeset | 790 | by (rule order_antisym) | 
| 
340738057c8c
An assortment of useful lemmas about sums, norm, etc. Also: norm_conv_dist [symmetric] is now a simprule!
 paulson <lp15@cam.ac.uk> parents: 
62343diff
changeset | 791 | qed | 
| 
340738057c8c
An assortment of useful lemmas about sums, norm, etc. Also: norm_conv_dist [symmetric] is now a simprule!
 paulson <lp15@cam.ac.uk> parents: 
62343diff
changeset | 792 | |
| 63331 | 793 | lemma cSup_abs_le: | 
| 62626 
de25474ce728
Contractible sets. Also removal of obsolete theorems and refactoring
 paulson <lp15@cam.ac.uk> parents: 
62379diff
changeset | 794 |   fixes S :: "('a::{linordered_idom,conditionally_complete_linorder}) set"
 | 
| 
de25474ce728
Contractible sets. Also removal of obsolete theorems and refactoring
 paulson <lp15@cam.ac.uk> parents: 
62379diff
changeset | 795 |   shows "S \<noteq> {} \<Longrightarrow> (\<And>x. x\<in>S \<Longrightarrow> \<bar>x\<bar> \<le> a) \<Longrightarrow> \<bar>Sup S\<bar> \<le> a"
 | 
| 
de25474ce728
Contractible sets. Also removal of obsolete theorems and refactoring
 paulson <lp15@cam.ac.uk> parents: 
62379diff
changeset | 796 | apply (auto simp add: abs_le_iff intro: cSup_least) | 
| 
de25474ce728
Contractible sets. Also removal of obsolete theorems and refactoring
 paulson <lp15@cam.ac.uk> parents: 
62379diff
changeset | 797 | by (metis bdd_aboveI cSup_upper neg_le_iff_le order_trans) | 
| 
de25474ce728
Contractible sets. Also removal of obsolete theorems and refactoring
 paulson <lp15@cam.ac.uk> parents: 
62379diff
changeset | 798 | |
| 54281 | 799 | end |