| author | wenzelm | 
| Thu, 01 Sep 2016 20:34:43 +0200 | |
| changeset 63761 | 2ca536d0163e | 
| parent 63648 | f9f3006a5579 | 
| child 63915 | bab633745c7f | 
| permissions | -rw-r--r-- | 
| 12396 | 1 | (* Title: HOL/Finite_Set.thy | 
| 63612 | 2 | Author: Tobias Nipkow | 
| 3 | Author: Lawrence C Paulson | |
| 4 | Author: Markus Wenzel | |
| 5 | Author: Jeremy Avigad | |
| 6 | Author: Andrei Popescu | |
| 12396 | 7 | *) | 
| 8 | ||
| 60758 | 9 | section \<open>Finite sets\<close> | 
| 12396 | 10 | |
| 15131 | 11 | theory Finite_Set | 
| 63612 | 12 | imports Product_Type Sum_Type Fields | 
| 15131 | 13 | begin | 
| 12396 | 14 | |
| 60758 | 15 | subsection \<open>Predicate for finite sets\<close> | 
| 12396 | 16 | |
| 63612 | 17 | context notes [[inductive_internals]] | 
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changeset | 18 | begin | 
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changeset | 19 | |
| 41656 | 20 | inductive finite :: "'a set \<Rightarrow> bool" | 
| 63612 | 21 | where | 
| 22 |     emptyI [simp, intro!]: "finite {}"
 | |
| 23 | | insertI [simp, intro!]: "finite A \<Longrightarrow> finite (insert a A)" | |
| 41656 | 24 | |
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changeset | 25 | end | 
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changeset | 26 | |
| 60758 | 27 | simproc_setup finite_Collect ("finite (Collect P)") = \<open>K Set_Comprehension_Pointfree.simproc\<close>
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changeset | 28 | |
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changeset | 29 | declare [[simproc del: finite_Collect]] | 
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changeset | 30 | |
| 41656 | 31 | lemma finite_induct [case_names empty insert, induct set: finite]: | 
| 61799 | 32 | \<comment> \<open>Discharging \<open>x \<notin> F\<close> entails extra work.\<close> | 
| 41656 | 33 | assumes "finite F" | 
| 34 |   assumes "P {}"
 | |
| 35 | and insert: "\<And>x F. finite F \<Longrightarrow> x \<notin> F \<Longrightarrow> P F \<Longrightarrow> P (insert x F)" | |
| 36 | shows "P F" | |
| 63404 | 37 | using \<open>finite F\<close> | 
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changeset | 38 | proof induct | 
| 41656 | 39 |   show "P {}" by fact
 | 
| 63404 | 40 | next | 
| 41 | fix x F | |
| 42 | assume F: "finite F" and P: "P F" | |
| 41656 | 43 | show "P (insert x F)" | 
| 44 | proof cases | |
| 45 | assume "x \<in> F" | |
| 63404 | 46 | then have "insert x F = F" by (rule insert_absorb) | 
| 41656 | 47 | with P show ?thesis by (simp only:) | 
| 48 | next | |
| 49 | assume "x \<notin> F" | |
| 50 | from F this P show ?thesis by (rule insert) | |
| 51 | qed | |
| 52 | qed | |
| 53 | ||
| 51622 | 54 | lemma infinite_finite_induct [case_names infinite empty insert]: | 
| 55 | assumes infinite: "\<And>A. \<not> finite A \<Longrightarrow> P A" | |
| 63404 | 56 |     and empty: "P {}"
 | 
| 57 | and insert: "\<And>x F. finite F \<Longrightarrow> x \<notin> F \<Longrightarrow> P F \<Longrightarrow> P (insert x F)" | |
| 51622 | 58 | shows "P A" | 
| 59 | proof (cases "finite A") | |
| 63404 | 60 | case False | 
| 61 | with infinite show ?thesis . | |
| 51622 | 62 | next | 
| 63404 | 63 | case True | 
| 64 | then show ?thesis by (induct A) (fact empty insert)+ | |
| 51622 | 65 | qed | 
| 66 | ||
| 41656 | 67 | |
| 60758 | 68 | subsubsection \<open>Choice principles\<close> | 
| 12396 | 69 | |
| 61799 | 70 | lemma ex_new_if_finite: \<comment> "does not depend on def of finite at all" | 
| 14661 | 71 | assumes "\<not> finite (UNIV :: 'a set)" and "finite A" | 
| 72 | shows "\<exists>a::'a. a \<notin> A" | |
| 73 | proof - | |
| 28823 | 74 | from assms have "A \<noteq> UNIV" by blast | 
| 41656 | 75 | then show ?thesis by blast | 
| 12396 | 76 | qed | 
| 77 | ||
| 60758 | 78 | text \<open>A finite choice principle. Does not need the SOME choice operator.\<close> | 
| 15484 | 79 | |
| 63404 | 80 | lemma finite_set_choice: "finite A \<Longrightarrow> \<forall>x\<in>A. \<exists>y. P x y \<Longrightarrow> \<exists>f. \<forall>x\<in>A. P x (f x)" | 
| 41656 | 81 | proof (induct rule: finite_induct) | 
| 63404 | 82 | case empty | 
| 83 | then show ?case by simp | |
| 29923 | 84 | next | 
| 85 | case (insert a A) | |
| 63404 | 86 | then obtain f b where f: "\<forall>x\<in>A. P x (f x)" and ab: "P a b" | 
| 87 | by auto | |
| 88 | show ?case (is "\<exists>f. ?P f") | |
| 29923 | 89 | proof | 
| 63404 | 90 | show "?P (\<lambda>x. if x = a then b else f x)" | 
| 91 | using f ab by auto | |
| 29923 | 92 | qed | 
| 93 | qed | |
| 94 | ||
| 23878 | 95 | |
| 60758 | 96 | subsubsection \<open>Finite sets are the images of initial segments of natural numbers\<close> | 
| 15392 | 97 | |
| 15510 | 98 | lemma finite_imp_nat_seg_image_inj_on: | 
| 63404 | 99 | assumes "finite A" | 
| 41656 | 100 |   shows "\<exists>(n::nat) f. A = f ` {i. i < n} \<and> inj_on f {i. i < n}"
 | 
| 63404 | 101 | using assms | 
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changeset | 102 | proof induct | 
| 15392 | 103 | case empty | 
| 41656 | 104 | show ?case | 
| 105 | proof | |
| 63404 | 106 |     show "\<exists>f. {} = f ` {i::nat. i < 0} \<and> inj_on f {i. i < 0}"
 | 
| 107 | by simp | |
| 15510 | 108 | qed | 
| 15392 | 109 | next | 
| 110 | case (insert a A) | |
| 23389 | 111 | have notinA: "a \<notin> A" by fact | 
| 63404 | 112 |   from insert.hyps obtain n f where "A = f ` {i::nat. i < n}" "inj_on f {i. i < n}"
 | 
| 113 | by blast | |
| 114 |   then have "insert a A = f(n:=a) ` {i. i < Suc n}" and "inj_on (f(n:=a)) {i. i < Suc n}"
 | |
| 115 | using notinA by (auto simp add: image_def Ball_def inj_on_def less_Suc_eq) | |
| 116 | then show ?case by blast | |
| 15392 | 117 | qed | 
| 118 | ||
| 63404 | 119 | lemma nat_seg_image_imp_finite: "A = f ` {i::nat. i < n} \<Longrightarrow> finite A"
 | 
| 41656 | 120 | proof (induct n arbitrary: A) | 
| 63404 | 121 | case 0 | 
| 122 | then show ?case by simp | |
| 15392 | 123 | next | 
| 124 | case (Suc n) | |
| 125 |   let ?B = "f ` {i. i < n}"
 | |
| 63404 | 126 | have finB: "finite ?B" by (rule Suc.hyps[OF refl]) | 
| 15392 | 127 | show ?case | 
| 63404 | 128 | proof (cases "\<exists>k<n. f n = f k") | 
| 129 | case True | |
| 130 | then have "A = ?B" | |
| 131 | using Suc.prems by (auto simp:less_Suc_eq) | |
| 132 | then show ?thesis | |
| 133 | using finB by simp | |
| 15392 | 134 | next | 
| 63404 | 135 | case False | 
| 136 | then have "A = insert (f n) ?B" | |
| 137 | using Suc.prems by (auto simp:less_Suc_eq) | |
| 138 | then show ?thesis using finB by simp | |
| 15392 | 139 | qed | 
| 140 | qed | |
| 141 | ||
| 63404 | 142 | lemma finite_conv_nat_seg_image: "finite A \<longleftrightarrow> (\<exists>(n::nat) f. A = f ` {i::nat. i < n})"
 | 
| 41656 | 143 | by (blast intro: nat_seg_image_imp_finite dest: finite_imp_nat_seg_image_inj_on) | 
| 15392 | 144 | |
| 32988 | 145 | lemma finite_imp_inj_to_nat_seg: | 
| 41656 | 146 | assumes "finite A" | 
| 147 |   shows "\<exists>f n::nat. f ` A = {i. i < n} \<and> inj_on f A"
 | |
| 32988 | 148 | proof - | 
| 63404 | 149 | from finite_imp_nat_seg_image_inj_on [OF \<open>finite A\<close>] | 
| 63612 | 150 |   obtain f and n :: nat where bij: "bij_betw f {i. i<n} A"
 | 
| 63404 | 151 | by (auto simp: bij_betw_def) | 
| 33057 | 152 |   let ?f = "the_inv_into {i. i<n} f"
 | 
| 63404 | 153 |   have "inj_on ?f A \<and> ?f ` A = {i. i<n}"
 | 
| 33057 | 154 | by (fold bij_betw_def) (rule bij_betw_the_inv_into[OF bij]) | 
| 63404 | 155 | then show ?thesis by blast | 
| 32988 | 156 | qed | 
| 157 | ||
| 63404 | 158 | lemma finite_Collect_less_nat [iff]: "finite {n::nat. n < k}"
 | 
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changeset | 159 | by (fastforce simp: finite_conv_nat_seg_image) | 
| 29920 | 160 | |
| 63404 | 161 | lemma finite_Collect_le_nat [iff]: "finite {n::nat. n \<le> k}"
 | 
| 41656 | 162 | by (simp add: le_eq_less_or_eq Collect_disj_eq) | 
| 15392 | 163 | |
| 41656 | 164 | |
| 60758 | 165 | subsubsection \<open>Finiteness and common set operations\<close> | 
| 12396 | 166 | |
| 63404 | 167 | lemma rev_finite_subset: "finite B \<Longrightarrow> A \<subseteq> B \<Longrightarrow> finite A" | 
| 41656 | 168 | proof (induct arbitrary: A rule: finite_induct) | 
| 169 | case empty | |
| 170 | then show ?case by simp | |
| 171 | next | |
| 172 | case (insert x F A) | |
| 63404 | 173 |   have A: "A \<subseteq> insert x F" and r: "A - {x} \<subseteq> F \<Longrightarrow> finite (A - {x})"
 | 
| 174 | by fact+ | |
| 41656 | 175 | show "finite A" | 
| 176 | proof cases | |
| 177 | assume x: "x \<in> A" | |
| 178 |     with A have "A - {x} \<subseteq> F" by (simp add: subset_insert_iff)
 | |
| 179 |     with r have "finite (A - {x})" .
 | |
| 63404 | 180 |     then have "finite (insert x (A - {x}))" ..
 | 
| 181 |     also have "insert x (A - {x}) = A"
 | |
| 182 | using x by (rule insert_Diff) | |
| 41656 | 183 | finally show ?thesis . | 
| 12396 | 184 | next | 
| 60595 | 185 | show ?thesis when "A \<subseteq> F" | 
| 186 | using that by fact | |
| 41656 | 187 | assume "x \<notin> A" | 
| 63404 | 188 | with A show "A \<subseteq> F" | 
| 189 | by (simp add: subset_insert_iff) | |
| 12396 | 190 | qed | 
| 191 | qed | |
| 192 | ||
| 63404 | 193 | lemma finite_subset: "A \<subseteq> B \<Longrightarrow> finite B \<Longrightarrow> finite A" | 
| 41656 | 194 | by (rule rev_finite_subset) | 
| 29901 | 195 | |
| 41656 | 196 | lemma finite_UnI: | 
| 197 | assumes "finite F" and "finite G" | |
| 198 | shows "finite (F \<union> G)" | |
| 199 | using assms by induct simp_all | |
| 31992 | 200 | |
| 63404 | 201 | lemma finite_Un [iff]: "finite (F \<union> G) \<longleftrightarrow> finite F \<and> finite G" | 
| 41656 | 202 | by (blast intro: finite_UnI finite_subset [of _ "F \<union> G"]) | 
| 31992 | 203 | |
| 41656 | 204 | lemma finite_insert [simp]: "finite (insert a A) \<longleftrightarrow> finite A" | 
| 12396 | 205 | proof - | 
| 41656 | 206 |   have "finite {a} \<and> finite A \<longleftrightarrow> finite A" by simp
 | 
| 207 |   then have "finite ({a} \<union> A) \<longleftrightarrow> finite A" by (simp only: finite_Un)
 | |
| 23389 | 208 | then show ?thesis by simp | 
| 12396 | 209 | qed | 
| 210 | ||
| 63404 | 211 | lemma finite_Int [simp, intro]: "finite F \<or> finite G \<Longrightarrow> finite (F \<inter> G)" | 
| 41656 | 212 | by (blast intro: finite_subset) | 
| 213 | ||
| 214 | lemma finite_Collect_conjI [simp, intro]: | |
| 215 |   "finite {x. P x} \<or> finite {x. Q x} \<Longrightarrow> finite {x. P x \<and> Q x}"
 | |
| 216 | by (simp add: Collect_conj_eq) | |
| 217 | ||
| 218 | lemma finite_Collect_disjI [simp]: | |
| 219 |   "finite {x. P x \<or> Q x} \<longleftrightarrow> finite {x. P x} \<and> finite {x. Q x}"
 | |
| 220 | by (simp add: Collect_disj_eq) | |
| 221 | ||
| 63404 | 222 | lemma finite_Diff [simp, intro]: "finite A \<Longrightarrow> finite (A - B)" | 
| 41656 | 223 | by (rule finite_subset, rule Diff_subset) | 
| 29901 | 224 | |
| 225 | lemma finite_Diff2 [simp]: | |
| 41656 | 226 | assumes "finite B" | 
| 227 | shows "finite (A - B) \<longleftrightarrow> finite A" | |
| 29901 | 228 | proof - | 
| 63404 | 229 | have "finite A \<longleftrightarrow> finite ((A - B) \<union> (A \<inter> B))" | 
| 230 | by (simp add: Un_Diff_Int) | |
| 231 | also have "\<dots> \<longleftrightarrow> finite (A - B)" | |
| 232 | using \<open>finite B\<close> by simp | |
| 29901 | 233 | finally show ?thesis .. | 
| 234 | qed | |
| 235 | ||
| 63404 | 236 | lemma finite_Diff_insert [iff]: "finite (A - insert a B) \<longleftrightarrow> finite (A - B)" | 
| 41656 | 237 | proof - | 
| 238 |   have "finite (A - B) \<longleftrightarrow> finite (A - B - {a})" by simp
 | |
| 239 |   moreover have "A - insert a B = A - B - {a}" by auto
 | |
| 240 | ultimately show ?thesis by simp | |
| 241 | qed | |
| 242 | ||
| 63404 | 243 | lemma finite_compl [simp]: | 
| 41656 | 244 | "finite (A :: 'a set) \<Longrightarrow> finite (- A) \<longleftrightarrow> finite (UNIV :: 'a set)" | 
| 245 | by (simp add: Compl_eq_Diff_UNIV) | |
| 12396 | 246 | |
| 63404 | 247 | lemma finite_Collect_not [simp]: | 
| 41656 | 248 |   "finite {x :: 'a. P x} \<Longrightarrow> finite {x. \<not> P x} \<longleftrightarrow> finite (UNIV :: 'a set)"
 | 
| 249 | by (simp add: Collect_neg_eq) | |
| 250 | ||
| 251 | lemma finite_Union [simp, intro]: | |
| 63404 | 252 | "finite A \<Longrightarrow> (\<And>M. M \<in> A \<Longrightarrow> finite M) \<Longrightarrow> finite (\<Union>A)" | 
| 41656 | 253 | by (induct rule: finite_induct) simp_all | 
| 254 | ||
| 255 | lemma finite_UN_I [intro]: | |
| 256 | "finite A \<Longrightarrow> (\<And>a. a \<in> A \<Longrightarrow> finite (B a)) \<Longrightarrow> finite (\<Union>a\<in>A. B a)" | |
| 257 | by (induct rule: finite_induct) simp_all | |
| 29903 | 258 | |
| 63404 | 259 | lemma finite_UN [simp]: "finite A \<Longrightarrow> finite (UNION A B) \<longleftrightarrow> (\<forall>x\<in>A. finite (B x))" | 
| 41656 | 260 | by (blast intro: finite_subset) | 
| 261 | ||
| 63404 | 262 | lemma finite_Inter [intro]: "\<exists>A\<in>M. finite A \<Longrightarrow> finite (\<Inter>M)" | 
| 41656 | 263 | by (blast intro: Inter_lower finite_subset) | 
| 12396 | 264 | |
| 63404 | 265 | lemma finite_INT [intro]: "\<exists>x\<in>I. finite (A x) \<Longrightarrow> finite (\<Inter>x\<in>I. A x)" | 
| 41656 | 266 | by (blast intro: INT_lower finite_subset) | 
| 13825 | 267 | |
| 63404 | 268 | lemma finite_imageI [simp, intro]: "finite F \<Longrightarrow> finite (h ` F)" | 
| 41656 | 269 | by (induct rule: finite_induct) simp_all | 
| 13825 | 270 | |
| 63404 | 271 | lemma finite_image_set [simp]: "finite {x. P x} \<Longrightarrow> finite {f x |x. P x}"
 | 
| 31768 | 272 | by (simp add: image_Collect [symmetric]) | 
| 273 | ||
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changeset | 274 | lemma finite_image_set2: | 
| 63404 | 275 |   "finite {x. P x} \<Longrightarrow> finite {y. Q y} \<Longrightarrow> finite {f x y |x y. P x \<and> Q y}"
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changeset | 276 |   by (rule finite_subset [where B = "\<Union>x \<in> {x. P x}. \<Union>y \<in> {y. Q y}. {f x y}"]) auto
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changeset | 277 | |
| 41656 | 278 | lemma finite_imageD: | 
| 42206 | 279 | assumes "finite (f ` A)" and "inj_on f A" | 
| 280 | shows "finite A" | |
| 63404 | 281 | using assms | 
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changeset | 282 | proof (induct "f ` A" arbitrary: A) | 
| 63404 | 283 | case empty | 
| 284 | then show ?case by simp | |
| 42206 | 285 | next | 
| 286 | case (insert x B) | |
| 63404 | 287 | then have B_A: "insert x B = f ` A" | 
| 288 | by simp | |
| 289 | then obtain y where "x = f y" and "y \<in> A" | |
| 290 | by blast | |
| 291 |   from B_A \<open>x \<notin> B\<close> have "B = f ` A - {x}"
 | |
| 292 | by blast | |
| 293 |   with B_A \<open>x \<notin> B\<close> \<open>x = f y\<close> \<open>inj_on f A\<close> \<open>y \<in> A\<close> have "B = f ` (A - {y})"
 | |
| 60303 | 294 | by (simp add: inj_on_image_set_diff Set.Diff_subset) | 
| 63404 | 295 |   moreover from \<open>inj_on f A\<close> have "inj_on f (A - {y})"
 | 
| 296 | by (rule inj_on_diff) | |
| 297 |   ultimately have "finite (A - {y})"
 | |
| 298 | by (rule insert.hyps) | |
| 299 | then show "finite A" | |
| 300 | by simp | |
| 42206 | 301 | qed | 
| 12396 | 302 | |
| 63404 | 303 | lemma finite_image_iff: "inj_on f A \<Longrightarrow> finite (f ` A) \<longleftrightarrow> finite A" | 
| 304 | using finite_imageD by blast | |
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| 63404 | 306 | lemma finite_surj: "finite A \<Longrightarrow> B \<subseteq> f ` A \<Longrightarrow> finite B" | 
| 41656 | 307 | by (erule finite_subset) (rule finite_imageI) | 
| 12396 | 308 | |
| 63404 | 309 | lemma finite_range_imageI: "finite (range g) \<Longrightarrow> finite (range (\<lambda>x. f (g x)))" | 
| 41656 | 310 | by (drule finite_imageI) (simp add: range_composition) | 
| 13825 | 311 | |
| 41656 | 312 | lemma finite_subset_image: | 
| 313 | assumes "finite B" | |
| 314 | shows "B \<subseteq> f ` A \<Longrightarrow> \<exists>C\<subseteq>A. finite C \<and> B = f ` C" | |
| 63404 | 315 | using assms | 
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changeset | 316 | proof induct | 
| 63404 | 317 | case empty | 
| 318 | then show ?case by simp | |
| 41656 | 319 | next | 
| 63404 | 320 | case insert | 
| 321 | then show ?case | |
| 63612 | 322 | by (clarsimp simp del: image_insert simp add: image_insert [symmetric]) blast (* slow *) | 
| 41656 | 323 | qed | 
| 324 | ||
| 63404 | 325 | lemma finite_vimage_IntI: "finite F \<Longrightarrow> inj_on h A \<Longrightarrow> finite (h -` F \<inter> A)" | 
| 41656 | 326 | apply (induct rule: finite_induct) | 
| 21575 | 327 | apply simp_all | 
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changeset | 328 | apply (subst vimage_insert) | 
| 43991 | 329 | apply (simp add: finite_subset [OF inj_on_vimage_singleton] Int_Un_distrib2) | 
| 13825 | 330 | done | 
| 331 | ||
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changeset | 332 | lemma finite_finite_vimage_IntI: | 
| 63612 | 333 | assumes "finite F" | 
| 334 |     and "\<And>y. y \<in> F \<Longrightarrow> finite ((h -` {y}) \<inter> A)"
 | |
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changeset | 335 | shows "finite (h -` F \<inter> A)" | 
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changeset | 336 | proof - | 
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changeset | 337 |   have *: "h -` F \<inter> A = (\<Union> y\<in>F. (h -` {y}) \<inter> A)"
 | 
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changeset | 338 | by blast | 
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changeset | 339 | show ?thesis | 
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changeset | 340 | by (simp only: * assms finite_UN_I) | 
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changeset | 341 | qed | 
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changeset | 342 | |
| 63404 | 343 | lemma finite_vimageI: "finite F \<Longrightarrow> inj h \<Longrightarrow> finite (h -` F)" | 
| 43991 | 344 | using finite_vimage_IntI[of F h UNIV] by auto | 
| 345 | ||
| 63404 | 346 | lemma finite_vimageD': "finite (f -` A) \<Longrightarrow> A \<subseteq> range f \<Longrightarrow> finite A" | 
| 347 | by (auto simp add: subset_image_iff intro: finite_subset[rotated]) | |
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changeset | 348 | |
| 63404 | 349 | lemma finite_vimageD: "finite (h -` F) \<Longrightarrow> surj h \<Longrightarrow> finite F" | 
| 350 | by (auto dest: finite_vimageD') | |
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changeset | 351 | |
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changeset | 352 | lemma finite_vimage_iff: "bij h \<Longrightarrow> finite (h -` F) \<longleftrightarrow> finite F" | 
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changeset | 353 | unfolding bij_def by (auto elim: finite_vimageD finite_vimageI) | 
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changeset | 354 | |
| 41656 | 355 | lemma finite_Collect_bex [simp]: | 
| 356 | assumes "finite A" | |
| 357 |   shows "finite {x. \<exists>y\<in>A. Q x y} \<longleftrightarrow> (\<forall>y\<in>A. finite {x. Q x y})"
 | |
| 358 | proof - | |
| 359 |   have "{x. \<exists>y\<in>A. Q x y} = (\<Union>y\<in>A. {x. Q x y})" by auto
 | |
| 360 | with assms show ?thesis by simp | |
| 361 | qed | |
| 12396 | 362 | |
| 41656 | 363 | lemma finite_Collect_bounded_ex [simp]: | 
| 364 |   assumes "finite {y. P y}"
 | |
| 365 |   shows "finite {x. \<exists>y. P y \<and> Q x y} \<longleftrightarrow> (\<forall>y. P y \<longrightarrow> finite {x. Q x y})"
 | |
| 366 | proof - | |
| 63404 | 367 |   have "{x. \<exists>y. P y \<and> Q x y} = (\<Union>y\<in>{y. P y}. {x. Q x y})"
 | 
| 368 | by auto | |
| 369 | with assms show ?thesis | |
| 370 | by simp | |
| 41656 | 371 | qed | 
| 29920 | 372 | |
| 63404 | 373 | lemma finite_Plus: "finite A \<Longrightarrow> finite B \<Longrightarrow> finite (A <+> B)" | 
| 41656 | 374 | by (simp add: Plus_def) | 
| 17022 | 375 | |
| 63404 | 376 | lemma finite_PlusD: | 
| 31080 | 377 | fixes A :: "'a set" and B :: "'b set" | 
| 378 | assumes fin: "finite (A <+> B)" | |
| 379 | shows "finite A" "finite B" | |
| 380 | proof - | |
| 63404 | 381 | have "Inl ` A \<subseteq> A <+> B" | 
| 382 | by auto | |
| 383 |   then have "finite (Inl ` A :: ('a + 'b) set)"
 | |
| 384 | using fin by (rule finite_subset) | |
| 385 | then show "finite A" | |
| 386 | by (rule finite_imageD) (auto intro: inj_onI) | |
| 31080 | 387 | next | 
| 63404 | 388 | have "Inr ` B \<subseteq> A <+> B" | 
| 389 | by auto | |
| 390 |   then have "finite (Inr ` B :: ('a + 'b) set)"
 | |
| 391 | using fin by (rule finite_subset) | |
| 392 | then show "finite B" | |
| 393 | by (rule finite_imageD) (auto intro: inj_onI) | |
| 31080 | 394 | qed | 
| 395 | ||
| 63404 | 396 | lemma finite_Plus_iff [simp]: "finite (A <+> B) \<longleftrightarrow> finite A \<and> finite B" | 
| 41656 | 397 | by (auto intro: finite_PlusD finite_Plus) | 
| 31080 | 398 | |
| 41656 | 399 | lemma finite_Plus_UNIV_iff [simp]: | 
| 400 |   "finite (UNIV :: ('a + 'b) set) \<longleftrightarrow> finite (UNIV :: 'a set) \<and> finite (UNIV :: 'b set)"
 | |
| 401 | by (subst UNIV_Plus_UNIV [symmetric]) (rule finite_Plus_iff) | |
| 12396 | 402 | |
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changeset | 403 | lemma finite_SigmaI [simp, intro]: | 
| 63404 | 404 | "finite A \<Longrightarrow> (\<And>a. a\<in>A \<Longrightarrow> finite (B a)) \<Longrightarrow> finite (SIGMA a:A. B a)" | 
| 405 | unfolding Sigma_def by blast | |
| 12396 | 406 | |
| 51290 | 407 | lemma finite_SigmaI2: | 
| 408 |   assumes "finite {x\<in>A. B x \<noteq> {}}"
 | |
| 409 | and "\<And>a. a \<in> A \<Longrightarrow> finite (B a)" | |
| 410 | shows "finite (Sigma A B)" | |
| 411 | proof - | |
| 63404 | 412 |   from assms have "finite (Sigma {x\<in>A. B x \<noteq> {}} B)"
 | 
| 413 | by auto | |
| 414 |   also have "Sigma {x:A. B x \<noteq> {}} B = Sigma A B"
 | |
| 415 | by auto | |
| 51290 | 416 | finally show ?thesis . | 
| 417 | qed | |
| 418 | ||
| 63404 | 419 | lemma finite_cartesian_product: "finite A \<Longrightarrow> finite B \<Longrightarrow> finite (A \<times> B)" | 
| 15402 | 420 | by (rule finite_SigmaI) | 
| 421 | ||
| 12396 | 422 | lemma finite_Prod_UNIV: | 
| 41656 | 423 |   "finite (UNIV :: 'a set) \<Longrightarrow> finite (UNIV :: 'b set) \<Longrightarrow> finite (UNIV :: ('a \<times> 'b) set)"
 | 
| 424 | by (simp only: UNIV_Times_UNIV [symmetric] finite_cartesian_product) | |
| 12396 | 425 | |
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changeset | 426 | lemma finite_cartesian_productD1: | 
| 42207 | 427 |   assumes "finite (A \<times> B)" and "B \<noteq> {}"
 | 
| 428 | shows "finite A" | |
| 429 | proof - | |
| 430 |   from assms obtain n f where "A \<times> B = f ` {i::nat. i < n}"
 | |
| 431 | by (auto simp add: finite_conv_nat_seg_image) | |
| 63404 | 432 |   then have "fst ` (A \<times> B) = fst ` f ` {i::nat. i < n}"
 | 
| 433 | by simp | |
| 60758 | 434 |   with \<open>B \<noteq> {}\<close> have "A = (fst \<circ> f) ` {i::nat. i < n}"
 | 
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changeset | 435 | by (simp add: image_comp) | 
| 63404 | 436 |   then have "\<exists>n f. A = f ` {i::nat. i < n}"
 | 
| 437 | by blast | |
| 42207 | 438 | then show ?thesis | 
| 439 | by (auto simp add: finite_conv_nat_seg_image) | |
| 440 | qed | |
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changeset | 441 | |
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changeset | 442 | lemma finite_cartesian_productD2: | 
| 42207 | 443 |   assumes "finite (A \<times> B)" and "A \<noteq> {}"
 | 
| 444 | shows "finite B" | |
| 445 | proof - | |
| 446 |   from assms obtain n f where "A \<times> B = f ` {i::nat. i < n}"
 | |
| 447 | by (auto simp add: finite_conv_nat_seg_image) | |
| 63404 | 448 |   then have "snd ` (A \<times> B) = snd ` f ` {i::nat. i < n}"
 | 
| 449 | by simp | |
| 60758 | 450 |   with \<open>A \<noteq> {}\<close> have "B = (snd \<circ> f) ` {i::nat. i < n}"
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changeset | 451 | by (simp add: image_comp) | 
| 63404 | 452 |   then have "\<exists>n f. B = f ` {i::nat. i < n}"
 | 
| 453 | by blast | |
| 42207 | 454 | then show ?thesis | 
| 455 | by (auto simp add: finite_conv_nat_seg_image) | |
| 456 | qed | |
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changeset | 457 | |
| 57025 | 458 | lemma finite_cartesian_product_iff: | 
| 459 |   "finite (A \<times> B) \<longleftrightarrow> (A = {} \<or> B = {} \<or> (finite A \<and> finite B))"
 | |
| 460 | by (auto dest: finite_cartesian_productD1 finite_cartesian_productD2 finite_cartesian_product) | |
| 461 | ||
| 63404 | 462 | lemma finite_prod: | 
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changeset | 463 |   "finite (UNIV :: ('a \<times> 'b) set) \<longleftrightarrow> finite (UNIV :: 'a set) \<and> finite (UNIV :: 'b set)"
 | 
| 57025 | 464 | using finite_cartesian_product_iff[of UNIV UNIV] by simp | 
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changeset | 465 | |
| 63404 | 466 | lemma finite_Pow_iff [iff]: "finite (Pow A) \<longleftrightarrow> finite A" | 
| 12396 | 467 | proof | 
| 468 | assume "finite (Pow A)" | |
| 63404 | 469 |   then have "finite ((\<lambda>x. {x}) ` A)"
 | 
| 63612 | 470 | by (blast intro: finite_subset) (* somewhat slow *) | 
| 63404 | 471 | then show "finite A" | 
| 472 | by (rule finite_imageD [unfolded inj_on_def]) simp | |
| 12396 | 473 | next | 
| 474 | assume "finite A" | |
| 41656 | 475 | then show "finite (Pow A)" | 
| 35216 | 476 | by induct (simp_all add: Pow_insert) | 
| 12396 | 477 | qed | 
| 478 | ||
| 63404 | 479 | corollary finite_Collect_subsets [simp, intro]: "finite A \<Longrightarrow> finite {B. B \<subseteq> A}"
 | 
| 41656 | 480 | by (simp add: Pow_def [symmetric]) | 
| 29918 | 481 | |
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changeset | 482 | lemma finite_set: "finite (UNIV :: 'a set set) \<longleftrightarrow> finite (UNIV :: 'a set)" | 
| 63404 | 483 | by (simp only: finite_Pow_iff Pow_UNIV[symmetric]) | 
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changeset | 484 | |
| 63404 | 485 | lemma finite_UnionD: "finite (\<Union>A) \<Longrightarrow> finite A" | 
| 41656 | 486 | by (blast intro: finite_subset [OF subset_Pow_Union]) | 
| 15392 | 487 | |
| 63404 | 488 | lemma finite_set_of_finite_funs: | 
| 489 | assumes "finite A" "finite B" | |
| 490 |   shows "finite {f. \<forall>x. (x \<in> A \<longrightarrow> f x \<in> B) \<and> (x \<notin> A \<longrightarrow> f x = d)}" (is "finite ?S")
 | |
| 491 | proof - | |
| 53820 | 492 |   let ?F = "\<lambda>f. {(a,b). a \<in> A \<and> b = f a}"
 | 
| 63404 | 493 | have "?F ` ?S \<subseteq> Pow(A \<times> B)" | 
| 494 | by auto | |
| 495 | from finite_subset[OF this] assms have 1: "finite (?F ` ?S)" | |
| 496 | by simp | |
| 53820 | 497 | have 2: "inj_on ?F ?S" | 
| 63612 | 498 | by (fastforce simp add: inj_on_def set_eq_iff fun_eq_iff) (* somewhat slow *) | 
| 63404 | 499 | show ?thesis | 
| 500 | by (rule finite_imageD [OF 1 2]) | |
| 53820 | 501 | qed | 
| 15392 | 502 | |
| 58195 | 503 | lemma not_finite_existsD: | 
| 504 |   assumes "\<not> finite {a. P a}"
 | |
| 505 | shows "\<exists>a. P a" | |
| 506 | proof (rule classical) | |
| 63404 | 507 | assume "\<not> ?thesis" | 
| 58195 | 508 | with assms show ?thesis by auto | 
| 509 | qed | |
| 510 | ||
| 511 | ||
| 60758 | 512 | subsubsection \<open>Further induction rules on finite sets\<close> | 
| 41656 | 513 | |
| 514 | lemma finite_ne_induct [case_names singleton insert, consumes 2]: | |
| 515 |   assumes "finite F" and "F \<noteq> {}"
 | |
| 516 |   assumes "\<And>x. P {x}"
 | |
| 517 |     and "\<And>x F. finite F \<Longrightarrow> F \<noteq> {} \<Longrightarrow> x \<notin> F \<Longrightarrow> P F  \<Longrightarrow> P (insert x F)"
 | |
| 518 | shows "P F" | |
| 63404 | 519 | using assms | 
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changeset | 520 | proof induct | 
| 63404 | 521 | case empty | 
| 522 | then show ?case by simp | |
| 41656 | 523 | next | 
| 63404 | 524 | case (insert x F) | 
| 525 | then show ?case by cases auto | |
| 41656 | 526 | qed | 
| 527 | ||
| 528 | lemma finite_subset_induct [consumes 2, case_names empty insert]: | |
| 529 | assumes "finite F" and "F \<subseteq> A" | |
| 63612 | 530 |     and empty: "P {}"
 | 
| 41656 | 531 | and insert: "\<And>a F. finite F \<Longrightarrow> a \<in> A \<Longrightarrow> a \<notin> F \<Longrightarrow> P F \<Longrightarrow> P (insert a F)" | 
| 532 | shows "P F" | |
| 63404 | 533 | using \<open>finite F\<close> \<open>F \<subseteq> A\<close> | 
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changeset | 534 | proof induct | 
| 41656 | 535 |   show "P {}" by fact
 | 
| 31441 | 536 | next | 
| 41656 | 537 | fix x F | 
| 63404 | 538 | assume "finite F" and "x \<notin> F" and P: "F \<subseteq> A \<Longrightarrow> P F" and i: "insert x F \<subseteq> A" | 
| 41656 | 539 | show "P (insert x F)" | 
| 540 | proof (rule insert) | |
| 541 | from i show "x \<in> A" by blast | |
| 542 | from i have "F \<subseteq> A" by blast | |
| 543 | with P show "P F" . | |
| 544 | show "finite F" by fact | |
| 545 | show "x \<notin> F" by fact | |
| 546 | qed | |
| 547 | qed | |
| 548 | ||
| 549 | lemma finite_empty_induct: | |
| 550 | assumes "finite A" | |
| 63612 | 551 | and "P A" | 
| 41656 | 552 |     and remove: "\<And>a A. finite A \<Longrightarrow> a \<in> A \<Longrightarrow> P A \<Longrightarrow> P (A - {a})"
 | 
| 553 |   shows "P {}"
 | |
| 554 | proof - | |
| 63404 | 555 | have "P (A - B)" if "B \<subseteq> A" for B :: "'a set" | 
| 41656 | 556 | proof - | 
| 63404 | 557 | from \<open>finite A\<close> that have "finite B" | 
| 558 | by (rule rev_finite_subset) | |
| 60758 | 559 | from this \<open>B \<subseteq> A\<close> show "P (A - B)" | 
| 41656 | 560 | proof induct | 
| 561 | case empty | |
| 60758 | 562 | from \<open>P A\<close> show ?case by simp | 
| 41656 | 563 | next | 
| 564 | case (insert b B) | |
| 565 |       have "P (A - B - {b})"
 | |
| 566 | proof (rule remove) | |
| 63404 | 567 | from \<open>finite A\<close> show "finite (A - B)" | 
| 568 | by induct auto | |
| 569 | from insert show "b \<in> A - B" | |
| 570 | by simp | |
| 571 | from insert show "P (A - B)" | |
| 572 | by simp | |
| 41656 | 573 | qed | 
| 63404 | 574 |       also have "A - B - {b} = A - insert b B"
 | 
| 575 | by (rule Diff_insert [symmetric]) | |
| 41656 | 576 | finally show ?case . | 
| 577 | qed | |
| 578 | qed | |
| 579 | then have "P (A - A)" by blast | |
| 580 | then show ?thesis by simp | |
| 31441 | 581 | qed | 
| 582 | ||
| 58195 | 583 | lemma finite_update_induct [consumes 1, case_names const update]: | 
| 584 |   assumes finite: "finite {a. f a \<noteq> c}"
 | |
| 63404 | 585 | and const: "P (\<lambda>a. c)" | 
| 586 |     and update: "\<And>a b f. finite {a. f a \<noteq> c} \<Longrightarrow> f a = c \<Longrightarrow> b \<noteq> c \<Longrightarrow> P f \<Longrightarrow> P (f(a := b))"
 | |
| 58195 | 587 | shows "P f" | 
| 63404 | 588 | using finite | 
| 589 | proof (induct "{a. f a \<noteq> c}" arbitrary: f)
 | |
| 590 | case empty | |
| 591 | with const show ?case by simp | |
| 58195 | 592 | next | 
| 593 | case (insert a A) | |
| 594 |   then have "A = {a'. (f(a := c)) a' \<noteq> c}" and "f a \<noteq> c"
 | |
| 595 | by auto | |
| 60758 | 596 |   with \<open>finite A\<close> have "finite {a'. (f(a := c)) a' \<noteq> c}"
 | 
| 58195 | 597 | by simp | 
| 598 | have "(f(a := c)) a = c" | |
| 599 | by simp | |
| 60758 | 600 |   from insert \<open>A = {a'. (f(a := c)) a' \<noteq> c}\<close> have "P (f(a := c))"
 | 
| 58195 | 601 | by simp | 
| 63404 | 602 |   with \<open>finite {a'. (f(a := c)) a' \<noteq> c}\<close> \<open>(f(a := c)) a = c\<close> \<open>f a \<noteq> c\<close>
 | 
| 603 | have "P ((f(a := c))(a := f a))" | |
| 58195 | 604 | by (rule update) | 
| 605 | then show ?case by simp | |
| 606 | qed | |
| 607 | ||
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changeset | 608 | lemma finite_subset_induct' [consumes 2, case_names empty insert]: | 
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changeset | 609 | assumes "finite F" and "F \<subseteq> A" | 
| 63612 | 610 |     and empty: "P {}"
 | 
| 611 | and insert: "\<And>a F. \<lbrakk>finite F; a \<in> A; F \<subseteq> A; a \<notin> F; P F \<rbrakk> \<Longrightarrow> P (insert a F)" | |
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changeset | 612 | shows "P F" | 
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changeset | 613 | proof - | 
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changeset | 614 | from \<open>finite F\<close> | 
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changeset | 615 | have "F \<subseteq> A \<Longrightarrow> ?thesis" | 
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changeset | 616 | proof induct | 
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changeset | 617 |     show "P {}" by fact
 | 
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changeset | 618 | next | 
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changeset | 619 | fix x F | 
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changeset | 620 | assume "finite F" and "x \<notin> F" and | 
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changeset | 621 | P: "F \<subseteq> A \<Longrightarrow> P F" and i: "insert x F \<subseteq> A" | 
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changeset | 622 | show "P (insert x F)" | 
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changeset | 623 | proof (rule insert) | 
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changeset | 624 | from i show "x \<in> A" by blast | 
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changeset | 625 | from i have "F \<subseteq> A" by blast | 
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changeset | 626 | with P show "P F" . | 
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changeset | 627 | show "finite F" by fact | 
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changeset | 628 | show "x \<notin> F" by fact | 
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changeset | 629 | show "F \<subseteq> A" by fact | 
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changeset | 630 | qed | 
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changeset | 631 | qed | 
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changeset | 632 | with \<open>F \<subseteq> A\<close> show ?thesis by blast | 
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changeset | 633 | qed | 
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changeset | 634 | |
| 58195 | 635 | |
| 61799 | 636 | subsection \<open>Class \<open>finite\<close>\<close> | 
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changeset | 637 | |
| 63612 | 638 | class finite = | 
| 639 | assumes finite_UNIV: "finite (UNIV :: 'a set)" | |
| 27430 | 640 | begin | 
| 641 | ||
| 61076 | 642 | lemma finite [simp]: "finite (A :: 'a set)" | 
| 26441 | 643 | by (rule subset_UNIV finite_UNIV finite_subset)+ | 
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changeset | 644 | |
| 61076 | 645 | lemma finite_code [code]: "finite (A :: 'a set) \<longleftrightarrow> True" | 
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changeset | 646 | by simp | 
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changeset | 647 | |
| 27430 | 648 | end | 
| 649 | ||
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changeset | 650 | instance prod :: (finite, finite) finite | 
| 61169 | 651 | by standard (simp only: UNIV_Times_UNIV [symmetric] finite_cartesian_product finite) | 
| 26146 | 652 | |
| 63404 | 653 | lemma inj_graph: "inj (\<lambda>f. {(x, y). y = f x})"
 | 
| 654 | by (rule inj_onI) (auto simp add: set_eq_iff fun_eq_iff) | |
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changeset | 655 | |
| 26146 | 656 | instance "fun" :: (finite, finite) finite | 
| 657 | proof | |
| 63404 | 658 |   show "finite (UNIV :: ('a \<Rightarrow> 'b) set)"
 | 
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changeset | 659 | proof (rule finite_imageD) | 
| 63404 | 660 |     let ?graph = "\<lambda>f::'a \<Rightarrow> 'b. {(x, y). y = f x}"
 | 
| 661 | have "range ?graph \<subseteq> Pow UNIV" | |
| 662 | by simp | |
| 26792 | 663 |     moreover have "finite (Pow (UNIV :: ('a * 'b) set))"
 | 
| 664 | by (simp only: finite_Pow_iff finite) | |
| 665 | ultimately show "finite (range ?graph)" | |
| 666 | by (rule finite_subset) | |
| 63404 | 667 | show "inj ?graph" | 
| 668 | by (rule inj_graph) | |
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changeset | 669 | qed | 
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changeset | 670 | qed | 
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changeset | 671 | |
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changeset | 672 | instance bool :: finite | 
| 61169 | 673 | by standard (simp add: UNIV_bool) | 
| 44831 | 674 | |
| 45962 | 675 | instance set :: (finite) finite | 
| 61169 | 676 | by standard (simp only: Pow_UNIV [symmetric] finite_Pow_iff finite) | 
| 45962 | 677 | |
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changeset | 678 | instance unit :: finite | 
| 61169 | 679 | by standard (simp add: UNIV_unit) | 
| 44831 | 680 | |
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changeset | 681 | instance sum :: (finite, finite) finite | 
| 61169 | 682 | by standard (simp only: UNIV_Plus_UNIV [symmetric] finite_Plus finite) | 
| 27981 | 683 | |
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changeset | 684 | |
| 60758 | 685 | subsection \<open>A basic fold functional for finite sets\<close> | 
| 15392 | 686 | |
| 60758 | 687 | text \<open>The intended behaviour is | 
| 63404 | 688 |   \<open>fold f z {x\<^sub>1, \<dots>, x\<^sub>n} = f x\<^sub>1 (\<dots> (f x\<^sub>n z)\<dots>)\<close>
 | 
| 689 | if \<open>f\<close> is ``left-commutative'': | |
| 60758 | 690 | \<close> | 
| 15392 | 691 | |
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changeset | 692 | locale comp_fun_commute = | 
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changeset | 693 | fixes f :: "'a \<Rightarrow> 'b \<Rightarrow> 'b" | 
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changeset | 694 | assumes comp_fun_commute: "f y \<circ> f x = f x \<circ> f y" | 
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changeset | 695 | begin | 
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changeset | 696 | |
| 51489 | 697 | lemma fun_left_comm: "f y (f x z) = f x (f y z)" | 
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changeset | 698 | using comp_fun_commute by (simp add: fun_eq_iff) | 
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changeset | 699 | |
| 63404 | 700 | lemma commute_left_comp: "f y \<circ> (f x \<circ> g) = f x \<circ> (f y \<circ> g)" | 
| 51489 | 701 | by (simp add: o_assoc comp_fun_commute) | 
| 702 | ||
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changeset | 703 | end | 
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changeset | 704 | |
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changeset | 705 | inductive fold_graph :: "('a \<Rightarrow> 'b \<Rightarrow> 'b) \<Rightarrow> 'b \<Rightarrow> 'a set \<Rightarrow> 'b \<Rightarrow> bool"
 | 
| 63404 | 706 | for f :: "'a \<Rightarrow> 'b \<Rightarrow> 'b" and z :: 'b | 
| 63612 | 707 | where | 
| 708 |     emptyI [intro]: "fold_graph f z {} z"
 | |
| 709 | | insertI [intro]: "x \<notin> A \<Longrightarrow> fold_graph f z A y \<Longrightarrow> fold_graph f z (insert x A) (f x y)" | |
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changeset | 710 | |
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changeset | 711 | inductive_cases empty_fold_graphE [elim!]: "fold_graph f z {} x"
 | 
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changeset | 712 | |
| 63404 | 713 | definition fold :: "('a \<Rightarrow> 'b \<Rightarrow> 'b) \<Rightarrow> 'b \<Rightarrow> 'a set \<Rightarrow> 'b"
 | 
| 714 | where "fold f z A = (if finite A then (THE y. fold_graph f z A y) else z)" | |
| 15392 | 715 | |
| 63404 | 716 | text \<open> | 
| 717 | A tempting alternative for the definiens is | |
| 718 |   @{term "if finite A then THE y. fold_graph f z A y else e"}.
 | |
| 719 | It allows the removal of finiteness assumptions from the theorems | |
| 720 | \<open>fold_comm\<close>, \<open>fold_reindex\<close> and \<open>fold_distrib\<close>. | |
| 721 | The proofs become ugly. It is not worth the effort. (???) | |
| 722 | \<close> | |
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changeset | 723 | |
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changeset | 724 | lemma finite_imp_fold_graph: "finite A \<Longrightarrow> \<exists>x. fold_graph f z A x" | 
| 63404 | 725 | by (induct rule: finite_induct) auto | 
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changeset | 726 | |
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changeset | 727 | |
| 63404 | 728 | subsubsection \<open>From @{const fold_graph} to @{term fold}\<close>
 | 
| 15392 | 729 | |
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changeset | 730 | context comp_fun_commute | 
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changeset | 731 | begin | 
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changeset | 732 | |
| 51489 | 733 | lemma fold_graph_finite: | 
| 734 | assumes "fold_graph f z A y" | |
| 735 | shows "finite A" | |
| 736 | using assms by induct simp_all | |
| 737 | ||
| 36045 | 738 | lemma fold_graph_insertE_aux: | 
| 739 |   "fold_graph f z A y \<Longrightarrow> a \<in> A \<Longrightarrow> \<exists>y'. y = f a y' \<and> fold_graph f z (A - {a}) y'"
 | |
| 740 | proof (induct set: fold_graph) | |
| 63404 | 741 | case emptyI | 
| 742 | then show ?case by simp | |
| 743 | next | |
| 744 | case (insertI x A y) | |
| 745 | show ?case | |
| 36045 | 746 | proof (cases "x = a") | 
| 63404 | 747 | case True | 
| 748 | with insertI show ?thesis by auto | |
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changeset | 749 | next | 
| 63404 | 750 | case False | 
| 36045 | 751 |     then obtain y' where y: "y = f a y'" and y': "fold_graph f z (A - {a}) y'"
 | 
| 752 | using insertI by auto | |
| 42875 | 753 | have "f x y = f a (f x y')" | 
| 36045 | 754 | unfolding y by (rule fun_left_comm) | 
| 42875 | 755 |     moreover have "fold_graph f z (insert x A - {a}) (f x y')"
 | 
| 60758 | 756 | using y' and \<open>x \<noteq> a\<close> and \<open>x \<notin> A\<close> | 
| 36045 | 757 | by (simp add: insert_Diff_if fold_graph.insertI) | 
| 63404 | 758 | ultimately show ?thesis | 
| 759 | by fast | |
| 15392 | 760 | qed | 
| 63404 | 761 | qed | 
| 36045 | 762 | |
| 763 | lemma fold_graph_insertE: | |
| 764 | assumes "fold_graph f z (insert x A) v" and "x \<notin> A" | |
| 765 | obtains y where "v = f x y" and "fold_graph f z A y" | |
| 63404 | 766 | using assms by (auto dest: fold_graph_insertE_aux [OF _ insertI1]) | 
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changeset | 767 | |
| 63404 | 768 | lemma fold_graph_determ: "fold_graph f z A x \<Longrightarrow> fold_graph f z A y \<Longrightarrow> y = x" | 
| 36045 | 769 | proof (induct arbitrary: y set: fold_graph) | 
| 63404 | 770 | case emptyI | 
| 771 | then show ?case by fast | |
| 772 | next | |
| 36045 | 773 | case (insertI x A y v) | 
| 60758 | 774 | from \<open>fold_graph f z (insert x A) v\<close> and \<open>x \<notin> A\<close> | 
| 36045 | 775 | obtain y' where "v = f x y'" and "fold_graph f z A y'" | 
| 776 | by (rule fold_graph_insertE) | |
| 63404 | 777 | from \<open>fold_graph f z A y'\<close> have "y' = y" | 
| 778 | by (rule insertI) | |
| 779 | with \<open>v = f x y'\<close> show "v = f x y" | |
| 780 | by simp | |
| 781 | qed | |
| 15392 | 782 | |
| 63404 | 783 | lemma fold_equality: "fold_graph f z A y \<Longrightarrow> fold f z A = y" | 
| 51489 | 784 | by (cases "finite A") (auto simp add: fold_def intro: fold_graph_determ dest: fold_graph_finite) | 
| 15392 | 785 | |
| 42272 | 786 | lemma fold_graph_fold: | 
| 787 | assumes "finite A" | |
| 788 | shows "fold_graph f z A (fold f z A)" | |
| 789 | proof - | |
| 63404 | 790 | from assms have "\<exists>x. fold_graph f z A x" | 
| 791 | by (rule finite_imp_fold_graph) | |
| 42272 | 792 | moreover note fold_graph_determ | 
| 63404 | 793 | ultimately have "\<exists>!x. fold_graph f z A x" | 
| 794 | by (rule ex_ex1I) | |
| 795 | then have "fold_graph f z A (The (fold_graph f z A))" | |
| 796 | by (rule theI') | |
| 797 | with assms show ?thesis | |
| 798 | by (simp add: fold_def) | |
| 42272 | 799 | qed | 
| 36045 | 800 | |
| 61799 | 801 | text \<open>The base case for \<open>fold\<close>:\<close> | 
| 15392 | 802 | |
| 63404 | 803 | lemma (in -) fold_infinite [simp]: "\<not> finite A \<Longrightarrow> fold f z A = z" | 
| 804 | by (auto simp: fold_def) | |
| 51489 | 805 | |
| 63404 | 806 | lemma (in -) fold_empty [simp]: "fold f z {} = z"
 | 
| 807 | by (auto simp: fold_def) | |
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changeset | 808 | |
| 63404 | 809 | text \<open>The various recursion equations for @{const fold}:\<close>
 | 
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changeset | 810 | |
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changeset | 811 | lemma fold_insert [simp]: | 
| 42875 | 812 | assumes "finite A" and "x \<notin> A" | 
| 813 | shows "fold f z (insert x A) = f x (fold f z A)" | |
| 814 | proof (rule fold_equality) | |
| 51489 | 815 | fix z | 
| 63404 | 816 | from \<open>finite A\<close> have "fold_graph f z A (fold f z A)" | 
| 817 | by (rule fold_graph_fold) | |
| 818 | with \<open>x \<notin> A\<close> have "fold_graph f z (insert x A) (f x (fold f z A))" | |
| 819 | by (rule fold_graph.insertI) | |
| 820 | then show "fold_graph f z (insert x A) (f x (fold f z A))" | |
| 821 | by simp | |
| 42875 | 822 | qed | 
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changeset | 823 | |
| 51489 | 824 | declare (in -) empty_fold_graphE [rule del] fold_graph.intros [rule del] | 
| 61799 | 825 | \<comment> \<open>No more proofs involve these.\<close> | 
| 51489 | 826 | |
| 63404 | 827 | lemma fold_fun_left_comm: "finite A \<Longrightarrow> f x (fold f z A) = fold f (f x z) A" | 
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changeset | 828 | proof (induct rule: finite_induct) | 
| 63404 | 829 | case empty | 
| 830 | then show ?case by simp | |
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changeset | 831 | next | 
| 63404 | 832 | case insert | 
| 833 | then show ?case | |
| 51489 | 834 | by (simp add: fun_left_comm [of x]) | 
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changeset | 835 | qed | 
| 
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changeset | 836 | |
| 63404 | 837 | lemma fold_insert2: "finite A \<Longrightarrow> x \<notin> A \<Longrightarrow> fold f z (insert x A) = fold f (f x z) A" | 
| 51489 | 838 | by (simp add: fold_fun_left_comm) | 
| 15392 | 839 | |
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changeset | 840 | lemma fold_rec: | 
| 42875 | 841 | assumes "finite A" and "x \<in> A" | 
| 842 |   shows "fold f z A = f x (fold f z (A - {x}))"
 | |
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changeset | 843 | proof - | 
| 63404 | 844 |   have A: "A = insert x (A - {x})"
 | 
| 845 | using \<open>x \<in> A\<close> by blast | |
| 846 |   then have "fold f z A = fold f z (insert x (A - {x}))"
 | |
| 847 | by simp | |
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changeset | 848 |   also have "\<dots> = f x (fold f z (A - {x}))"
 | 
| 60758 | 849 | by (rule fold_insert) (simp add: \<open>finite A\<close>)+ | 
| 15535 | 850 | finally show ?thesis . | 
| 851 | qed | |
| 852 | ||
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changeset | 853 | lemma fold_insert_remove: | 
| 
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changeset | 854 | assumes "finite A" | 
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changeset | 855 |   shows "fold f z (insert x A) = f x (fold f z (A - {x}))"
 | 
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changeset | 856 | proof - | 
| 63404 | 857 | from \<open>finite A\<close> have "finite (insert x A)" | 
| 858 | by auto | |
| 859 | moreover have "x \<in> insert x A" | |
| 860 | by auto | |
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changeset | 861 |   ultimately have "fold f z (insert x A) = f x (fold f z (insert x A - {x}))"
 | 
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changeset | 862 | by (rule fold_rec) | 
| 63404 | 863 | then show ?thesis | 
| 864 | by simp | |
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changeset | 865 | qed | 
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changeset | 866 | |
| 57598 | 867 | lemma fold_set_union_disj: | 
| 868 |   assumes "finite A" "finite B" "A \<inter> B = {}"
 | |
| 869 | shows "Finite_Set.fold f z (A \<union> B) = Finite_Set.fold f (Finite_Set.fold f z A) B" | |
| 63404 | 870 | using assms(2,1,3) by induct simp_all | 
| 57598 | 871 | |
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changeset | 872 | end | 
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changeset | 873 | |
| 63404 | 874 | text \<open>Other properties of @{const fold}:\<close>
 | 
| 48619 | 875 | |
| 876 | lemma fold_image: | |
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changeset | 877 | assumes "inj_on g A" | 
| 51489 | 878 | shows "fold f z (g ` A) = fold (f \<circ> g) z A" | 
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changeset | 879 | proof (cases "finite A") | 
| 63404 | 880 | case False | 
| 881 | with assms show ?thesis | |
| 882 | by (auto dest: finite_imageD simp add: fold_def) | |
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changeset | 883 | next | 
| 
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changeset | 884 | case True | 
| 
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changeset | 885 | have "fold_graph f z (g ` A) = fold_graph (f \<circ> g) z A" | 
| 
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changeset | 886 | proof | 
| 
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changeset | 887 | fix w | 
| 
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changeset | 888 | show "fold_graph f z (g ` A) w \<longleftrightarrow> fold_graph (f \<circ> g) z A w" (is "?P \<longleftrightarrow> ?Q") | 
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changeset | 889 | proof | 
| 63404 | 890 | assume ?P | 
| 891 | then show ?Q | |
| 892 | using assms | |
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changeset | 893 | proof (induct "g ` A" w arbitrary: A) | 
| 63404 | 894 | case emptyI | 
| 895 | then show ?case by (auto intro: fold_graph.emptyI) | |
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changeset | 896 | next | 
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changeset | 897 | case (insertI x A r B) | 
| 63404 | 898 | from \<open>inj_on g B\<close> \<open>x \<notin> A\<close> \<open>insert x A = image g B\<close> obtain x' A' | 
| 899 | where "x' \<notin> A'" and [simp]: "B = insert x' A'" "x = g x'" "A = g ` A'" | |
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changeset | 900 | by (rule inj_img_insertE) | 
| 63404 | 901 | from insertI.prems have "fold_graph (f \<circ> g) z A' r" | 
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changeset | 902 | by (auto intro: insertI.hyps) | 
| 60758 | 903 | with \<open>x' \<notin> A'\<close> have "fold_graph (f \<circ> g) z (insert x' A') ((f \<circ> g) x' r)" | 
| 51598 
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changeset | 904 | by (rule fold_graph.insertI) | 
| 63404 | 905 | then show ?case | 
| 906 | by simp | |
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changeset | 907 | qed | 
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changeset | 908 | next | 
| 63404 | 909 | assume ?Q | 
| 910 | then show ?P | |
| 911 | using assms | |
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changeset | 912 | proof induct | 
| 63404 | 913 | case emptyI | 
| 914 | then show ?case | |
| 915 | by (auto intro: fold_graph.emptyI) | |
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changeset | 916 | next | 
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changeset | 917 | case (insertI x A r) | 
| 63404 | 918 | from \<open>x \<notin> A\<close> insertI.prems have "g x \<notin> g ` A" | 
| 919 | by auto | |
| 920 | moreover from insertI have "fold_graph f z (g ` A) r" | |
| 921 | by simp | |
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changeset | 922 | ultimately have "fold_graph f z (insert (g x) (g ` A)) (f (g x) r)" | 
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changeset | 923 | by (rule fold_graph.insertI) | 
| 63404 | 924 | then show ?case | 
| 925 | by simp | |
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changeset | 926 | qed | 
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changeset | 927 | qed | 
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changeset | 928 | qed | 
| 63404 | 929 | with True assms show ?thesis | 
| 930 | by (auto simp add: fold_def) | |
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changeset | 931 | qed | 
| 15392 | 932 | |
| 49724 | 933 | lemma fold_cong: | 
| 934 | assumes "comp_fun_commute f" "comp_fun_commute g" | |
| 63404 | 935 | and "finite A" | 
| 936 | and cong: "\<And>x. x \<in> A \<Longrightarrow> f x = g x" | |
| 51489 | 937 | and "s = t" and "A = B" | 
| 938 | shows "fold f s A = fold g t B" | |
| 49724 | 939 | proof - | 
| 63404 | 940 | have "fold f s A = fold g s A" | 
| 941 | using \<open>finite A\<close> cong | |
| 942 | proof (induct A) | |
| 943 | case empty | |
| 944 | then show ?case by simp | |
| 49724 | 945 | next | 
| 63404 | 946 | case insert | 
| 60758 | 947 | interpret f: comp_fun_commute f by (fact \<open>comp_fun_commute f\<close>) | 
| 948 | interpret g: comp_fun_commute g by (fact \<open>comp_fun_commute g\<close>) | |
| 49724 | 949 | from insert show ?case by simp | 
| 950 | qed | |
| 951 | with assms show ?thesis by simp | |
| 952 | qed | |
| 953 | ||
| 954 | ||
| 60758 | 955 | text \<open>A simplified version for idempotent functions:\<close> | 
| 15480 | 956 | |
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| 51489 | 958 | assumes comp_fun_idem: "f x \<circ> f x = f x" | 
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changeset | 959 | begin | 
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changeset | 960 | |
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changeset | 961 | lemma fun_left_idem: "f x (f x z) = f x z" | 
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changeset | 962 | using comp_fun_idem by (simp add: fun_eq_iff) | 
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changeset | 963 | |
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changeset | 964 | lemma fold_insert_idem: | 
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changeset | 965 | assumes fin: "finite A" | 
| 51489 | 966 | shows "fold f z (insert x A) = f x (fold f z A)" | 
| 15480 | 967 | proof cases | 
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changeset | 968 | assume "x \<in> A" | 
| 63404 | 969 | then obtain B where "A = insert x B" and "x \<notin> B" | 
| 970 | by (rule set_insert) | |
| 971 | then show ?thesis | |
| 972 | using assms by (simp add: comp_fun_idem fun_left_idem) | |
| 15480 | 973 | next | 
| 63404 | 974 | assume "x \<notin> A" | 
| 975 | then show ?thesis | |
| 976 | using assms by simp | |
| 15480 | 977 | qed | 
| 978 | ||
| 51489 | 979 | declare fold_insert [simp del] fold_insert_idem [simp] | 
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changeset | 980 | |
| 63404 | 981 | lemma fold_insert_idem2: "finite A \<Longrightarrow> fold f z (insert x A) = fold f (f x z) A" | 
| 51489 | 982 | by (simp add: fold_fun_left_comm) | 
| 15484 | 983 | |
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changeset | 984 | end | 
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changeset | 985 | |
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changeset | 986 | |
| 61799 | 987 | subsubsection \<open>Liftings to \<open>comp_fun_commute\<close> etc.\<close> | 
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changeset | 988 | |
| 63404 | 989 | lemma (in comp_fun_commute) comp_comp_fun_commute: "comp_fun_commute (f \<circ> g)" | 
| 990 | by standard (simp_all add: comp_fun_commute) | |
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changeset | 991 | |
| 63404 | 992 | lemma (in comp_fun_idem) comp_comp_fun_idem: "comp_fun_idem (f \<circ> g)" | 
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changeset | 993 | by (rule comp_fun_idem.intro, rule comp_comp_fun_commute, unfold_locales) | 
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changeset | 994 | (simp_all add: comp_fun_idem) | 
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changeset | 995 | |
| 63404 | 996 | lemma (in comp_fun_commute) comp_fun_commute_funpow: "comp_fun_commute (\<lambda>x. f x ^^ g x)" | 
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changeset | 997 | proof | 
| 63404 | 998 | show "f y ^^ g y \<circ> f x ^^ g x = f x ^^ g x \<circ> f y ^^ g y" for x y | 
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changeset | 999 | proof (cases "x = y") | 
| 63404 | 1000 | case True | 
| 1001 | then show ?thesis by simp | |
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changeset | 1002 | next | 
| 63404 | 1003 | case False | 
| 1004 | show ?thesis | |
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changeset | 1005 | proof (induct "g x" arbitrary: g) | 
| 63404 | 1006 | case 0 | 
| 1007 | then show ?case by simp | |
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changeset | 1008 | next | 
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changeset | 1009 | case (Suc n g) | 
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changeset | 1010 | have hyp1: "f y ^^ g y \<circ> f x = f x \<circ> f y ^^ g y" | 
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changeset | 1011 | proof (induct "g y" arbitrary: g) | 
| 63404 | 1012 | case 0 | 
| 1013 | then show ?case by simp | |
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changeset | 1014 | next | 
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changeset | 1015 | case (Suc n g) | 
| 63040 | 1016 | define h where "h z = g z - 1" for z | 
| 63404 | 1017 | with Suc have "n = h y" | 
| 1018 | by simp | |
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changeset | 1019 | with Suc have hyp: "f y ^^ h y \<circ> f x = f x \<circ> f y ^^ h y" | 
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changeset | 1020 | by auto | 
| 63404 | 1021 | from Suc h_def have "g y = Suc (h y)" | 
| 1022 | by simp | |
| 1023 | then show ?case | |
| 1024 | by (simp add: comp_assoc hyp) (simp add: o_assoc comp_fun_commute) | |
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changeset | 1025 | qed | 
| 63040 | 1026 | define h where "h z = (if z = x then g x - 1 else g z)" for z | 
| 63404 | 1027 | with Suc have "n = h x" | 
| 1028 | by simp | |
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changeset | 1029 | with Suc have "f y ^^ h y \<circ> f x ^^ h x = f x ^^ h x \<circ> f y ^^ h y" | 
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changeset | 1030 | by auto | 
| 63404 | 1031 | with False h_def have hyp2: "f y ^^ g y \<circ> f x ^^ h x = f x ^^ h x \<circ> f y ^^ g y" | 
| 1032 | by simp | |
| 1033 | from Suc h_def have "g x = Suc (h x)" | |
| 1034 | by simp | |
| 1035 | then show ?case | |
| 1036 | by (simp del: funpow.simps add: funpow_Suc_right o_assoc hyp2) (simp add: comp_assoc hyp1) | |
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changeset | 1037 | qed | 
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changeset | 1038 | qed | 
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changeset | 1039 | qed | 
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changeset | 1040 | |
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changeset | 1041 | |
| 60758 | 1042 | subsubsection \<open>Expressing set operations via @{const fold}\<close>
 | 
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changeset | 1043 | |
| 63404 | 1044 | lemma comp_fun_commute_const: "comp_fun_commute (\<lambda>_. f)" | 
| 1045 | by standard rule | |
| 51489 | 1046 | |
| 63404 | 1047 | lemma comp_fun_idem_insert: "comp_fun_idem insert" | 
| 1048 | by standard auto | |
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changeset | 1049 | |
| 63404 | 1050 | lemma comp_fun_idem_remove: "comp_fun_idem Set.remove" | 
| 1051 | by standard auto | |
| 31992 | 1052 | |
| 63404 | 1053 | lemma (in semilattice_inf) comp_fun_idem_inf: "comp_fun_idem inf" | 
| 1054 | by standard (auto simp add: inf_left_commute) | |
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changeset | 1055 | |
| 63404 | 1056 | lemma (in semilattice_sup) comp_fun_idem_sup: "comp_fun_idem sup" | 
| 1057 | by standard (auto simp add: sup_left_commute) | |
| 31992 | 1058 | |
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changeset | 1059 | lemma union_fold_insert: | 
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changeset | 1060 | assumes "finite A" | 
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changeset | 1061 | shows "A \<union> B = fold insert B A" | 
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changeset | 1062 | proof - | 
| 63404 | 1063 | interpret comp_fun_idem insert | 
| 1064 | by (fact comp_fun_idem_insert) | |
| 1065 | from \<open>finite A\<close> show ?thesis | |
| 1066 | by (induct A arbitrary: B) simp_all | |
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changeset | 1067 | qed | 
| 31992 | 1068 | |
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changeset | 1069 | lemma minus_fold_remove: | 
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changeset | 1070 | assumes "finite A" | 
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changeset | 1071 | shows "B - A = fold Set.remove B A" | 
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changeset | 1072 | proof - | 
| 63404 | 1073 | interpret comp_fun_idem Set.remove | 
| 1074 | by (fact comp_fun_idem_remove) | |
| 1075 | from \<open>finite A\<close> have "fold Set.remove B A = B - A" | |
| 63612 | 1076 | by (induct A arbitrary: B) auto (* slow *) | 
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changeset | 1077 | then show ?thesis .. | 
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changeset | 1078 | qed | 
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changeset | 1079 | |
| 51489 | 1080 | lemma comp_fun_commute_filter_fold: | 
| 1081 | "comp_fun_commute (\<lambda>x A'. if P x then Set.insert x A' else A')" | |
| 63404 | 1082 | proof - | 
| 48619 | 1083 | interpret comp_fun_idem Set.insert by (fact comp_fun_idem_insert) | 
| 61169 | 1084 | show ?thesis by standard (auto simp: fun_eq_iff) | 
| 48619 | 1085 | qed | 
| 1086 | ||
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changeset | 1087 | lemma Set_filter_fold: | 
| 48619 | 1088 | assumes "finite A" | 
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changeset | 1089 |   shows "Set.filter P A = fold (\<lambda>x A'. if P x then Set.insert x A' else A') {} A"
 | 
| 63404 | 1090 | using assms | 
| 1091 | by induct | |
| 1092 | (auto simp add: Set.filter_def comp_fun_commute.fold_insert[OF comp_fun_commute_filter_fold]) | |
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changeset | 1093 | |
| 63404 | 1094 | lemma inter_Set_filter: | 
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changeset | 1095 | assumes "finite B" | 
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changeset | 1096 | shows "A \<inter> B = Set.filter (\<lambda>x. x \<in> A) B" | 
| 63404 | 1097 | using assms | 
| 1098 | by induct (auto simp: Set.filter_def) | |
| 48619 | 1099 | |
| 1100 | lemma image_fold_insert: | |
| 1101 | assumes "finite A" | |
| 1102 |   shows "image f A = fold (\<lambda>k A. Set.insert (f k) A) {} A"
 | |
| 1103 | proof - | |
| 63404 | 1104 | interpret comp_fun_commute "\<lambda>k A. Set.insert (f k) A" | 
| 1105 | by standard auto | |
| 1106 | show ?thesis | |
| 1107 | using assms by (induct A) auto | |
| 48619 | 1108 | qed | 
| 1109 | ||
| 1110 | lemma Ball_fold: | |
| 1111 | assumes "finite A" | |
| 1112 | shows "Ball A P = fold (\<lambda>k s. s \<and> P k) True A" | |
| 1113 | proof - | |
| 63404 | 1114 | interpret comp_fun_commute "\<lambda>k s. s \<and> P k" | 
| 1115 | by standard auto | |
| 1116 | show ?thesis | |
| 1117 | using assms by (induct A) auto | |
| 48619 | 1118 | qed | 
| 1119 | ||
| 1120 | lemma Bex_fold: | |
| 1121 | assumes "finite A" | |
| 1122 | shows "Bex A P = fold (\<lambda>k s. s \<or> P k) False A" | |
| 1123 | proof - | |
| 63404 | 1124 | interpret comp_fun_commute "\<lambda>k s. s \<or> P k" | 
| 1125 | by standard auto | |
| 1126 | show ?thesis | |
| 1127 | using assms by (induct A) auto | |
| 48619 | 1128 | qed | 
| 1129 | ||
| 63404 | 1130 | lemma comp_fun_commute_Pow_fold: "comp_fun_commute (\<lambda>x A. A \<union> Set.insert x ` A)" | 
| 63612 | 1131 | by (clarsimp simp: fun_eq_iff comp_fun_commute_def) blast (* somewhat slow *) | 
| 48619 | 1132 | |
| 1133 | lemma Pow_fold: | |
| 1134 | assumes "finite A" | |
| 1135 |   shows "Pow A = fold (\<lambda>x A. A \<union> Set.insert x ` A) {{}} A"
 | |
| 1136 | proof - | |
| 63404 | 1137 | interpret comp_fun_commute "\<lambda>x A. A \<union> Set.insert x ` A" | 
| 1138 | by (rule comp_fun_commute_Pow_fold) | |
| 1139 | show ?thesis | |
| 1140 | using assms by (induct A) (auto simp: Pow_insert) | |
| 48619 | 1141 | qed | 
| 1142 | ||
| 1143 | lemma fold_union_pair: | |
| 1144 | assumes "finite B" | |
| 1145 |   shows "(\<Union>y\<in>B. {(x, y)}) \<union> A = fold (\<lambda>y. Set.insert (x, y)) A B"
 | |
| 1146 | proof - | |
| 63404 | 1147 | interpret comp_fun_commute "\<lambda>y. Set.insert (x, y)" | 
| 1148 | by standard auto | |
| 1149 | show ?thesis | |
| 1150 | using assms by (induct arbitrary: A) simp_all | |
| 48619 | 1151 | qed | 
| 1152 | ||
| 63404 | 1153 | lemma comp_fun_commute_product_fold: | 
| 1154 | "finite B \<Longrightarrow> comp_fun_commute (\<lambda>x z. fold (\<lambda>y. Set.insert (x, y)) z B)" | |
| 1155 | by standard (auto simp: fold_union_pair [symmetric]) | |
| 48619 | 1156 | |
| 1157 | lemma product_fold: | |
| 63404 | 1158 | assumes "finite A" "finite B" | 
| 51489 | 1159 |   shows "A \<times> B = fold (\<lambda>x z. fold (\<lambda>y. Set.insert (x, y)) z B) {} A"
 | 
| 63404 | 1160 | using assms unfolding Sigma_def | 
| 1161 | by (induct A) | |
| 1162 | (simp_all add: comp_fun_commute.fold_insert[OF comp_fun_commute_product_fold] fold_union_pair) | |
| 48619 | 1163 | |
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changeset | 1164 | context complete_lattice | 
| 31992 | 1165 | begin | 
| 1166 | ||
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changeset | 1167 | lemma inf_Inf_fold_inf: | 
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changeset | 1168 | assumes "finite A" | 
| 51489 | 1169 | shows "inf (Inf A) B = fold inf B A" | 
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changeset | 1170 | proof - | 
| 63404 | 1171 | interpret comp_fun_idem inf | 
| 1172 | by (fact comp_fun_idem_inf) | |
| 1173 | from \<open>finite A\<close> fold_fun_left_comm show ?thesis | |
| 1174 | by (induct A arbitrary: B) (simp_all add: inf_commute fun_eq_iff) | |
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changeset | 1175 | qed | 
| 31992 | 1176 | |
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changeset | 1177 | lemma sup_Sup_fold_sup: | 
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changeset | 1178 | assumes "finite A" | 
| 51489 | 1179 | shows "sup (Sup A) B = fold sup B A" | 
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changeset | 1180 | proof - | 
| 63404 | 1181 | interpret comp_fun_idem sup | 
| 1182 | by (fact comp_fun_idem_sup) | |
| 1183 | from \<open>finite A\<close> fold_fun_left_comm show ?thesis | |
| 1184 | by (induct A arbitrary: B) (simp_all add: sup_commute fun_eq_iff) | |
| 31992 | 1185 | qed | 
| 1186 | ||
| 63404 | 1187 | lemma Inf_fold_inf: "finite A \<Longrightarrow> Inf A = fold inf top A" | 
| 1188 | using inf_Inf_fold_inf [of A top] by (simp add: inf_absorb2) | |
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changeset | 1189 | |
| 63404 | 1190 | lemma Sup_fold_sup: "finite A \<Longrightarrow> Sup A = fold sup bot A" | 
| 1191 | using sup_Sup_fold_sup [of A bot] by (simp add: sup_absorb2) | |
| 31992 | 1192 | |
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changeset | 1193 | lemma inf_INF_fold_inf: | 
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changeset | 1194 | assumes "finite A" | 
| 63404 | 1195 | shows "inf B (INFIMUM A f) = fold (inf \<circ> f) B A" (is "?inf = ?fold") | 
| 1196 | proof - | |
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changeset | 1197 | interpret comp_fun_idem inf by (fact comp_fun_idem_inf) | 
| 
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changeset | 1198 | interpret comp_fun_idem "inf \<circ> f" by (fact comp_comp_fun_idem) | 
| 63404 | 1199 | from \<open>finite A\<close> have "?fold = ?inf" | 
| 1200 | by (induct A arbitrary: B) (simp_all add: inf_left_commute) | |
| 1201 | then show ?thesis .. | |
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changeset | 1202 | qed | 
| 31992 | 1203 | |
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changeset | 1204 | lemma sup_SUP_fold_sup: | 
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changeset | 1205 | assumes "finite A" | 
| 63404 | 1206 | shows "sup B (SUPREMUM A f) = fold (sup \<circ> f) B A" (is "?sup = ?fold") | 
| 1207 | proof - | |
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changeset | 1208 | interpret comp_fun_idem sup by (fact comp_fun_idem_sup) | 
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changeset | 1209 | interpret comp_fun_idem "sup \<circ> f" by (fact comp_comp_fun_idem) | 
| 63404 | 1210 | from \<open>finite A\<close> have "?fold = ?sup" | 
| 1211 | by (induct A arbitrary: B) (simp_all add: sup_left_commute) | |
| 1212 | then show ?thesis .. | |
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changeset | 1213 | qed | 
| 31992 | 1214 | |
| 63404 | 1215 | lemma INF_fold_inf: "finite A \<Longrightarrow> INFIMUM A f = fold (inf \<circ> f) top A" | 
| 1216 | using inf_INF_fold_inf [of A top] by simp | |
| 31992 | 1217 | |
| 63404 | 1218 | lemma SUP_fold_sup: "finite A \<Longrightarrow> SUPREMUM A f = fold (sup \<circ> f) bot A" | 
| 1219 | using sup_SUP_fold_sup [of A bot] by simp | |
| 31992 | 1220 | |
| 1221 | end | |
| 1222 | ||
| 1223 | ||
| 60758 | 1224 | subsection \<open>Locales as mini-packages for fold operations\<close> | 
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changeset | 1225 | |
| 60758 | 1226 | subsubsection \<open>The natural case\<close> | 
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changeset | 1227 | |
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changeset | 1228 | locale folding = | 
| 63612 | 1229 | fixes f :: "'a \<Rightarrow> 'b \<Rightarrow> 'b" and z :: "'b" | 
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changeset | 1230 | assumes comp_fun_commute: "f y \<circ> f x = f x \<circ> f y" | 
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changeset | 1231 | begin | 
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changeset | 1232 | |
| 54870 | 1233 | interpretation fold?: comp_fun_commute f | 
| 63612 | 1234 | by standard (use comp_fun_commute in \<open>simp add: fun_eq_iff\<close>) | 
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changeset | 1235 | |
| 51489 | 1236 | definition F :: "'a set \<Rightarrow> 'b" | 
| 63404 | 1237 | where eq_fold: "F A = fold f z A" | 
| 51489 | 1238 | |
| 61169 | 1239 | lemma empty [simp]:"F {} = z"
 | 
| 51489 | 1240 | by (simp add: eq_fold) | 
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changeset | 1241 | |
| 61169 | 1242 | lemma infinite [simp]: "\<not> finite A \<Longrightarrow> F A = z" | 
| 51489 | 1243 | by (simp add: eq_fold) | 
| 63404 | 1244 | |
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changeset | 1245 | lemma insert [simp]: | 
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changeset | 1246 | assumes "finite A" and "x \<notin> A" | 
| 51489 | 1247 | shows "F (insert x A) = f x (F A)" | 
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changeset | 1248 | proof - | 
| 51489 | 1249 | from fold_insert assms | 
| 1250 | have "fold f z (insert x A) = f x (fold f z A)" by simp | |
| 60758 | 1251 | with \<open>finite A\<close> show ?thesis by (simp add: eq_fold fun_eq_iff) | 
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changeset | 1252 | qed | 
| 63404 | 1253 | |
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changeset | 1254 | lemma remove: | 
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changeset | 1255 | assumes "finite A" and "x \<in> A" | 
| 51489 | 1256 |   shows "F A = f x (F (A - {x}))"
 | 
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changeset | 1257 | proof - | 
| 60758 | 1258 | from \<open>x \<in> A\<close> obtain B where A: "A = insert x B" and "x \<notin> B" | 
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changeset | 1259 | by (auto dest: mk_disjoint_insert) | 
| 60758 | 1260 | moreover from \<open>finite A\<close> A have "finite B" by simp | 
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changeset | 1261 | ultimately show ?thesis by simp | 
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changeset | 1262 | qed | 
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changeset | 1263 | |
| 63404 | 1264 | lemma insert_remove: "finite A \<Longrightarrow> F (insert x A) = f x (F (A - {x}))"
 | 
| 1265 | by (cases "x \<in> A") (simp_all add: remove insert_absorb) | |
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changeset | 1266 | |
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changeset | 1267 | end | 
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changeset | 1268 | |
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changeset | 1269 | |
| 60758 | 1270 | subsubsection \<open>With idempotency\<close> | 
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changeset | 1271 | |
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changeset | 1272 | locale folding_idem = folding + | 
| 51489 | 1273 | assumes comp_fun_idem: "f x \<circ> f x = f x" | 
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changeset | 1274 | begin | 
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changeset | 1275 | |
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changeset | 1276 | declare insert [simp del] | 
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changeset | 1277 | |
| 54870 | 1278 | interpretation fold?: comp_fun_idem f | 
| 61169 | 1279 | by standard (insert comp_fun_commute comp_fun_idem, simp add: fun_eq_iff) | 
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changeset | 1280 | |
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changeset | 1281 | lemma insert_idem [simp]: | 
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changeset | 1282 | assumes "finite A" | 
| 51489 | 1283 | shows "F (insert x A) = f x (F A)" | 
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changeset | 1284 | proof - | 
| 51489 | 1285 | from fold_insert_idem assms | 
| 1286 | have "fold f z (insert x A) = f x (fold f z A)" by simp | |
| 60758 | 1287 | with \<open>finite A\<close> show ?thesis by (simp add: eq_fold fun_eq_iff) | 
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changeset | 1288 | qed | 
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changeset | 1289 | |
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changeset | 1290 | end | 
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changeset | 1291 | |
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changeset | 1292 | |
| 60758 | 1293 | subsection \<open>Finite cardinality\<close> | 
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changeset | 1294 | |
| 60758 | 1295 | text \<open> | 
| 51489 | 1296 | The traditional definition | 
| 63404 | 1297 |   @{prop "card A \<equiv> LEAST n. \<exists>f. A = {f i |i. i < n}"}
 | 
| 51489 | 1298 | is ugly to work with. | 
| 1299 |   But now that we have @{const fold} things are easy:
 | |
| 60758 | 1300 | \<close> | 
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changeset | 1301 | |
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changeset | 1302 | global_interpretation card: folding "\<lambda>_. Suc" 0 | 
| 61778 | 1303 | defines card = "folding.F (\<lambda>_. Suc) 0" | 
| 1304 | by standard rule | |
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changeset | 1305 | |
| 63404 | 1306 | lemma card_infinite: "\<not> finite A \<Longrightarrow> card A = 0" | 
| 51489 | 1307 | by (fact card.infinite) | 
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changeset | 1308 | |
| 63404 | 1309 | lemma card_empty: "card {} = 0"
 | 
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changeset | 1310 | by (fact card.empty) | 
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changeset | 1311 | |
| 63404 | 1312 | lemma card_insert_disjoint: "finite A \<Longrightarrow> x \<notin> A \<Longrightarrow> card (insert x A) = Suc (card A)" | 
| 51489 | 1313 | by (fact card.insert) | 
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changeset | 1314 | |
| 63404 | 1315 | lemma card_insert_if: "finite A \<Longrightarrow> card (insert x A) = (if x \<in> A then card A else Suc (card A))" | 
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changeset | 1316 | by auto (simp add: card.insert_remove card.remove) | 
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changeset | 1317 | |
| 63404 | 1318 | lemma card_ge_0_finite: "card A > 0 \<Longrightarrow> finite A" | 
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changeset | 1319 | by (rule ccontr) simp | 
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changeset | 1320 | |
| 63404 | 1321 | lemma card_0_eq [simp]: "finite A \<Longrightarrow> card A = 0 \<longleftrightarrow> A = {}"
 | 
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changeset | 1322 | by (auto dest: mk_disjoint_insert) | 
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changeset | 1323 | |
| 63404 | 1324 | lemma finite_UNIV_card_ge_0: "finite (UNIV :: 'a set) \<Longrightarrow> card (UNIV :: 'a set) > 0" | 
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changeset | 1325 | by (rule ccontr) simp | 
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changeset | 1326 | |
| 63404 | 1327 | lemma card_eq_0_iff: "card A = 0 \<longleftrightarrow> A = {} \<or> \<not> finite A"
 | 
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changeset | 1328 | by auto | 
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changeset | 1329 | |
| 63404 | 1330 | lemma card_range_greater_zero: "finite (range f) \<Longrightarrow> card (range f) > 0" | 
| 63365 | 1331 | by (rule ccontr) (simp add: card_eq_0_iff) | 
| 1332 | ||
| 63404 | 1333 | lemma card_gt_0_iff: "0 < card A \<longleftrightarrow> A \<noteq> {} \<and> finite A"
 | 
| 1334 | by (simp add: neq0_conv [symmetric] card_eq_0_iff) | |
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changeset | 1335 | |
| 63404 | 1336 | lemma card_Suc_Diff1: "finite A \<Longrightarrow> x \<in> A \<Longrightarrow> Suc (card (A - {x})) = card A"
 | 
| 1337 | apply (rule insert_Diff [THEN subst, where t = A]) | |
| 63612 | 1338 | apply assumption | 
| 63404 | 1339 | apply (simp del: insert_Diff_single) | 
| 1340 | done | |
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changeset | 1341 | |
| 63404 | 1342 | lemma card_insert_le_m1: "n > 0 \<Longrightarrow> card y \<le> n - 1 \<Longrightarrow> card (insert x y) \<le> n" | 
| 60762 | 1343 | apply (cases "finite y") | 
| 63612 | 1344 | apply (cases "x \<in> y") | 
| 1345 | apply (auto simp: insert_absorb) | |
| 60762 | 1346 | done | 
| 1347 | ||
| 63404 | 1348 | lemma card_Diff_singleton: "finite A \<Longrightarrow> x \<in> A \<Longrightarrow> card (A - {x}) = card A - 1"
 | 
| 51489 | 1349 | by (simp add: card_Suc_Diff1 [symmetric]) | 
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changeset | 1350 | |
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changeset | 1351 | lemma card_Diff_singleton_if: | 
| 51489 | 1352 |   "finite A \<Longrightarrow> card (A - {x}) = (if x \<in> A then card A - 1 else card A)"
 | 
| 1353 | by (simp add: card_Diff_singleton) | |
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changeset | 1354 | |
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changeset | 1355 | lemma card_Diff_insert[simp]: | 
| 51489 | 1356 | assumes "finite A" and "a \<in> A" and "a \<notin> B" | 
| 1357 | shows "card (A - insert a B) = card (A - B) - 1" | |
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changeset | 1358 | proof - | 
| 63404 | 1359 |   have "A - insert a B = (A - B) - {a}"
 | 
| 1360 | using assms by blast | |
| 1361 | then show ?thesis | |
| 1362 | using assms by (simp add: card_Diff_singleton) | |
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changeset | 1363 | qed | 
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changeset | 1364 | |
| 63404 | 1365 | lemma card_insert: "finite A \<Longrightarrow> card (insert x A) = Suc (card (A - {x}))"
 | 
| 51489 | 1366 | by (fact card.insert_remove) | 
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changeset | 1367 | |
| 63404 | 1368 | lemma card_insert_le: "finite A \<Longrightarrow> card A \<le> card (insert x A)" | 
| 1369 | by (simp add: card_insert_if) | |
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changeset | 1370 | |
| 63404 | 1371 | lemma card_Collect_less_nat[simp]: "card {i::nat. i < n} = n"
 | 
| 1372 | by (induct n) (simp_all add:less_Suc_eq Collect_disj_eq) | |
| 41987 | 1373 | |
| 63404 | 1374 | lemma card_Collect_le_nat[simp]: "card {i::nat. i \<le> n} = Suc n"
 | 
| 1375 | using card_Collect_less_nat[of "Suc n"] by (simp add: less_Suc_eq_le) | |
| 41987 | 1376 | |
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changeset | 1377 | lemma card_mono: | 
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changeset | 1378 | assumes "finite B" and "A \<subseteq> B" | 
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changeset | 1379 | shows "card A \<le> card B" | 
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changeset | 1380 | proof - | 
| 63404 | 1381 | from assms have "finite A" | 
| 1382 | by (auto intro: finite_subset) | |
| 1383 | then show ?thesis | |
| 1384 | using assms | |
| 1385 | proof (induct A arbitrary: B) | |
| 1386 | case empty | |
| 1387 | then show ?case by simp | |
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changeset | 1388 | next | 
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changeset | 1389 | case (insert x A) | 
| 63404 | 1390 | then have "x \<in> B" | 
| 1391 | by simp | |
| 1392 |     from insert have "A \<subseteq> B - {x}" and "finite (B - {x})"
 | |
| 1393 | by auto | |
| 1394 |     with insert.hyps have "card A \<le> card (B - {x})"
 | |
| 1395 | by auto | |
| 1396 | with \<open>finite A\<close> \<open>x \<notin> A\<close> \<open>finite B\<close> \<open>x \<in> B\<close> show ?case | |
| 1397 | by simp (simp only: card.remove) | |
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changeset | 1398 | qed | 
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changeset | 1399 | qed | 
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changeset | 1400 | |
| 63404 | 1401 | lemma card_seteq: "finite B \<Longrightarrow> (\<And>A. A \<subseteq> B \<Longrightarrow> card B \<le> card A \<Longrightarrow> A = B)" | 
| 1402 | apply (induct rule: finite_induct) | |
| 63612 | 1403 | apply simp | 
| 63404 | 1404 | apply clarify | 
| 1405 |   apply (subgoal_tac "finite A \<and> A - {x} \<subseteq> F")
 | |
| 1406 | prefer 2 apply (blast intro: finite_subset, atomize) | |
| 1407 |   apply (drule_tac x = "A - {x}" in spec)
 | |
| 63648 | 1408 | apply (simp add: card_Diff_singleton_if split: if_split_asm) | 
| 63404 | 1409 | apply (case_tac "card A", auto) | 
| 1410 | done | |
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changeset | 1411 | |
| 63404 | 1412 | lemma psubset_card_mono: "finite B \<Longrightarrow> A < B \<Longrightarrow> card A < card B" | 
| 1413 | apply (simp add: psubset_eq linorder_not_le [symmetric]) | |
| 1414 | apply (blast dest: card_seteq) | |
| 1415 | done | |
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changeset | 1416 | |
| 51489 | 1417 | lemma card_Un_Int: | 
| 63404 | 1418 | assumes "finite A" "finite B" | 
| 51489 | 1419 | shows "card A + card B = card (A \<union> B) + card (A \<inter> B)" | 
| 63404 | 1420 | using assms | 
| 1421 | proof (induct A) | |
| 1422 | case empty | |
| 1423 | then show ?case by simp | |
| 51489 | 1424 | next | 
| 63404 | 1425 | case insert | 
| 1426 | then show ?case | |
| 51489 | 1427 | by (auto simp add: insert_absorb Int_insert_left) | 
| 1428 | qed | |
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changeset | 1429 | |
| 63404 | 1430 | lemma card_Un_disjoint: "finite A \<Longrightarrow> finite B \<Longrightarrow> A \<inter> B = {} \<Longrightarrow> card (A \<union> B) = card A + card B"
 | 
| 1431 | using card_Un_Int [of A B] by simp | |
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changeset | 1432 | |
| 59336 | 1433 | lemma card_Un_le: "card (A \<union> B) \<le> card A + card B" | 
| 63404 | 1434 | apply (cases "finite A") | 
| 1435 | apply (cases "finite B") | |
| 63612 | 1436 | apply (use le_iff_add card_Un_Int in blast) | 
| 63404 | 1437 | apply simp | 
| 1438 | apply simp | |
| 1439 | done | |
| 59336 | 1440 | |
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changeset | 1441 | lemma card_Diff_subset: | 
| 63404 | 1442 | assumes "finite B" | 
| 1443 | and "B \<subseteq> A" | |
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changeset | 1444 | shows "card (A - B) = card A - card B" | 
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changeset | 1445 | proof (cases "finite A") | 
| 63404 | 1446 | case False | 
| 1447 | with assms show ?thesis | |
| 1448 | by simp | |
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changeset | 1449 | next | 
| 63404 | 1450 | case True | 
| 1451 | with assms show ?thesis | |
| 1452 | by (induct B arbitrary: A) simp_all | |
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changeset | 1453 | qed | 
| 
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changeset | 1454 | |
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changeset | 1455 | lemma card_Diff_subset_Int: | 
| 63404 | 1456 | assumes "finite (A \<inter> B)" | 
| 1457 | shows "card (A - B) = card A - card (A \<inter> B)" | |
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changeset | 1458 | proof - | 
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changeset | 1459 | have "A - B = A - A \<inter> B" by auto | 
| 63404 | 1460 | with assms show ?thesis | 
| 1461 | by (simp add: card_Diff_subset) | |
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changeset | 1462 | qed | 
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changeset | 1463 | |
| 40716 | 1464 | lemma diff_card_le_card_Diff: | 
| 63404 | 1465 | assumes "finite B" | 
| 1466 | shows "card A - card B \<le> card (A - B)" | |
| 1467 | proof - | |
| 40716 | 1468 | have "card A - card B \<le> card A - card (A \<inter> B)" | 
| 1469 | using card_mono[OF assms Int_lower2, of A] by arith | |
| 63404 | 1470 | also have "\<dots> = card (A - B)" | 
| 1471 | using assms by (simp add: card_Diff_subset_Int) | |
| 40716 | 1472 | finally show ?thesis . | 
| 1473 | qed | |
| 1474 | ||
| 63404 | 1475 | lemma card_Diff1_less: "finite A \<Longrightarrow> x \<in> A \<Longrightarrow> card (A - {x}) < card A"
 | 
| 1476 | by (rule Suc_less_SucD) (simp add: card_Suc_Diff1 del: card_Diff_insert) | |
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changeset | 1477 | |
| 63404 | 1478 | lemma card_Diff2_less: "finite A \<Longrightarrow> x \<in> A \<Longrightarrow> y \<in> A \<Longrightarrow> card (A - {x} - {y}) < card A"
 | 
| 1479 | apply (cases "x = y") | |
| 1480 | apply (simp add: card_Diff1_less del:card_Diff_insert) | |
| 1481 | apply (rule less_trans) | |
| 1482 | prefer 2 apply (auto intro!: card_Diff1_less simp del: card_Diff_insert) | |
| 1483 | done | |
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changeset | 1484 | |
| 63404 | 1485 | lemma card_Diff1_le: "finite A \<Longrightarrow> card (A - {x}) \<le> card A"
 | 
| 1486 | by (cases "x \<in> A") (simp_all add: card_Diff1_less less_imp_le) | |
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changeset | 1487 | |
| 63404 | 1488 | lemma card_psubset: "finite B \<Longrightarrow> A \<subseteq> B \<Longrightarrow> card A < card B \<Longrightarrow> A < B" | 
| 1489 | by (erule psubsetI) blast | |
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changeset | 1490 | |
| 54413 
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changeset | 1491 | lemma card_le_inj: | 
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changeset | 1492 | assumes fA: "finite A" | 
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changeset | 1493 | and fB: "finite B" | 
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changeset | 1494 | and c: "card A \<le> card B" | 
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changeset | 1495 | shows "\<exists>f. f ` A \<subseteq> B \<and> inj_on f A" | 
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changeset | 1496 | using fA fB c | 
| 
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changeset | 1497 | proof (induct arbitrary: B rule: finite_induct) | 
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changeset | 1498 | case empty | 
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changeset | 1499 | then show ?case by simp | 
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changeset | 1500 | next | 
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changeset | 1501 | case (insert x s t) | 
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changeset | 1502 | then show ?case | 
| 63404 | 1503 | proof (induct rule: finite_induct [OF insert.prems(1)]) | 
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changeset | 1504 | case 1 | 
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changeset | 1505 | then show ?case by simp | 
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changeset | 1506 | next | 
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changeset | 1507 | case (2 y t) | 
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changeset | 1508 | from "2.prems"(1,2,5) "2.hyps"(1,2) have cst: "card s \<le> card t" | 
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changeset | 1509 | by simp | 
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changeset | 1510 | from "2.prems"(3) [OF "2.hyps"(1) cst] | 
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changeset | 1511 | obtain f where "f ` s \<subseteq> t" "inj_on f s" | 
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changeset | 1512 | by blast | 
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changeset | 1513 | with "2.prems"(2) "2.hyps"(2) show ?case | 
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changeset | 1514 | apply - | 
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changeset | 1515 | apply (rule exI[where x = "\<lambda>z. if z = x then y else f z"]) | 
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changeset | 1516 | apply (auto simp add: inj_on_def) | 
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changeset | 1517 | done | 
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changeset | 1518 | qed | 
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changeset | 1519 | qed | 
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changeset | 1520 | |
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changeset | 1521 | lemma card_subset_eq: | 
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changeset | 1522 | assumes fB: "finite B" | 
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changeset | 1523 | and AB: "A \<subseteq> B" | 
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changeset | 1524 | and c: "card A = card B" | 
| 
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changeset | 1525 | shows "A = B" | 
| 
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changeset | 1526 | proof - | 
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changeset | 1527 | from fB AB have fA: "finite A" | 
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changeset | 1528 | by (auto intro: finite_subset) | 
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changeset | 1529 | from fA fB have fBA: "finite (B - A)" | 
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changeset | 1530 | by auto | 
| 
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changeset | 1531 |   have e: "A \<inter> (B - A) = {}"
 | 
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changeset | 1532 | by blast | 
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changeset | 1533 | have eq: "A \<union> (B - A) = B" | 
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changeset | 1534 | using AB by blast | 
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changeset | 1535 | from card_Un_disjoint[OF fA fBA e, unfolded eq c] have "card (B - A) = 0" | 
| 
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changeset | 1536 | by arith | 
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changeset | 1537 |   then have "B - A = {}"
 | 
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changeset | 1538 | unfolding card_eq_0_iff using fA fB by simp | 
| 
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changeset | 1539 | with AB show "A = B" | 
| 
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changeset | 1540 | by blast | 
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changeset | 1541 | qed | 
| 
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changeset | 1542 | |
| 35722 
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changeset | 1543 | lemma insert_partition: | 
| 63404 | 1544 |   "x \<notin> F \<Longrightarrow> \<forall>c1 \<in> insert x F. \<forall>c2 \<in> insert x F. c1 \<noteq> c2 \<longrightarrow> c1 \<inter> c2 = {} \<Longrightarrow> x \<inter> \<Union>F = {}"
 | 
| 63612 | 1545 | by auto (* somewhat slow *) | 
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changeset | 1546 | |
| 63404 | 1547 | lemma finite_psubset_induct [consumes 1, case_names psubset]: | 
| 1548 | assumes finite: "finite A" | |
| 1549 | and major: "\<And>A. finite A \<Longrightarrow> (\<And>B. B \<subset> A \<Longrightarrow> P B) \<Longrightarrow> P A" | |
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changeset | 1550 | shows "P A" | 
| 63404 | 1551 | using finite | 
| 36079 
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changeset | 1552 | proof (induct A taking: card rule: measure_induct_rule) | 
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changeset | 1553 | case (less A) | 
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changeset | 1554 | have fin: "finite A" by fact | 
| 63404 | 1555 | have ih: "card B < card A \<Longrightarrow> finite B \<Longrightarrow> P B" for B by fact | 
| 1556 | have "P B" if "B \<subset> A" for B | |
| 1557 | proof - | |
| 1558 | from that have "card B < card A" | |
| 1559 | using psubset_card_mono fin by blast | |
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changeset | 1560 | moreover | 
| 63404 | 1561 | from that have "B \<subseteq> A" | 
| 1562 | by auto | |
| 1563 | then have "finite B" | |
| 1564 | using fin finite_subset by blast | |
| 1565 | ultimately show ?thesis using ih by simp | |
| 1566 | qed | |
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changeset | 1567 | with fin show "P A" using major by blast | 
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changeset | 1568 | qed | 
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changeset | 1569 | |
| 63404 | 1570 | lemma finite_induct_select [consumes 1, case_names empty select]: | 
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changeset | 1571 | assumes "finite S" | 
| 63404 | 1572 |     and "P {}"
 | 
| 1573 | and select: "\<And>T. T \<subset> S \<Longrightarrow> P T \<Longrightarrow> \<exists>s\<in>S - T. P (insert s T)" | |
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changeset | 1574 | shows "P S" | 
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changeset | 1575 | proof - | 
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changeset | 1576 | have "0 \<le> card S" by simp | 
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changeset | 1577 | then have "\<exists>T \<subseteq> S. card T = card S \<and> P T" | 
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changeset | 1578 | proof (induct rule: dec_induct) | 
| 63404 | 1579 |     case base with \<open>P {}\<close>
 | 
| 1580 | show ?case | |
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changeset | 1581 |       by (intro exI[of _ "{}"]) auto
 | 
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changeset | 1582 | next | 
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changeset | 1583 | case (step n) | 
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changeset | 1584 | then obtain T where T: "T \<subseteq> S" "card T = n" "P T" | 
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changeset | 1585 | by auto | 
| 60758 | 1586 | with \<open>n < card S\<close> have "T \<subset> S" "P T" | 
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changeset | 1587 | by auto | 
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changeset | 1588 | with select[of T] obtain s where "s \<in> S" "s \<notin> T" "P (insert s T)" | 
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changeset | 1589 | by auto | 
| 60758 | 1590 | with step(2) T \<open>finite S\<close> show ?case | 
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changeset | 1591 | by (intro exI[of _ "insert s T"]) (auto dest: finite_subset) | 
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changeset | 1592 | qed | 
| 60758 | 1593 | with \<open>finite S\<close> show "P S" | 
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changeset | 1594 | by (auto dest: card_subset_eq) | 
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changeset | 1595 | qed | 
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changeset | 1596 | |
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changeset | 1597 | lemma remove_induct [case_names empty infinite remove]: | 
| 63404 | 1598 |   assumes empty: "P ({} :: 'a set)"
 | 
| 1599 | and infinite: "\<not> finite B \<Longrightarrow> P B" | |
| 1600 |     and remove: "\<And>A. finite A \<Longrightarrow> A \<noteq> {} \<Longrightarrow> A \<subseteq> B \<Longrightarrow> (\<And>x. x \<in> A \<Longrightarrow> P (A - {x})) \<Longrightarrow> P A"
 | |
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changeset | 1601 | shows "P B" | 
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changeset | 1602 | proof (cases "finite B") | 
| 63612 | 1603 | case False | 
| 63404 | 1604 | then show ?thesis by (rule infinite) | 
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changeset | 1605 | next | 
| 63612 | 1606 | case True | 
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changeset | 1607 | define A where "A = B" | 
| 63612 | 1608 | with True have "finite A" "A \<subseteq> B" | 
| 1609 | by simp_all | |
| 63404 | 1610 | then show "P A" | 
| 1611 | proof (induct "card A" arbitrary: A) | |
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changeset | 1612 | case 0 | 
| 63404 | 1613 |     then have "A = {}" by auto
 | 
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changeset | 1614 | with empty show ?case by simp | 
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changeset | 1615 | next | 
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changeset | 1616 | case (Suc n A) | 
| 63404 | 1617 | from \<open>A \<subseteq> B\<close> and \<open>finite B\<close> have "finite A" | 
| 1618 | by (rule finite_subset) | |
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changeset | 1619 |     moreover from Suc.hyps have "A \<noteq> {}" by auto
 | 
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changeset | 1620 | moreover note \<open>A \<subseteq> B\<close> | 
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changeset | 1621 |     moreover have "P (A - {x})" if x: "x \<in> A" for x
 | 
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changeset | 1622 | using x Suc.prems \<open>Suc n = card A\<close> by (intro Suc) auto | 
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changeset | 1623 | ultimately show ?case by (rule remove) | 
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changeset | 1624 | qed | 
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changeset | 1625 | qed | 
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changeset | 1626 | |
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changeset | 1627 | lemma finite_remove_induct [consumes 1, case_names empty remove]: | 
| 63404 | 1628 | fixes P :: "'a set \<Rightarrow> bool" | 
| 63612 | 1629 | assumes "finite B" | 
| 1630 |     and "P {}"
 | |
| 1631 |     and "\<And>A. finite A \<Longrightarrow> A \<noteq> {} \<Longrightarrow> A \<subseteq> B \<Longrightarrow> (\<And>x. x \<in> A \<Longrightarrow> P (A - {x})) \<Longrightarrow> P A"
 | |
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changeset | 1632 | defines "B' \<equiv> B" | 
| 63404 | 1633 | shows "P B'" | 
| 1634 | by (induct B' rule: remove_induct) (simp_all add: assms) | |
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changeset | 1635 | |
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changeset | 1636 | |
| 63404 | 1637 | text \<open>Main cardinality theorem.\<close> | 
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changeset | 1638 | lemma card_partition [rule_format]: | 
| 63404 | 1639 | "finite C \<Longrightarrow> finite (\<Union>C) \<Longrightarrow> (\<forall>c\<in>C. card c = k) \<Longrightarrow> | 
| 1640 |     (\<forall>c1 \<in> C. \<forall>c2 \<in> C. c1 \<noteq> c2 \<longrightarrow> c1 \<inter> c2 = {}) \<Longrightarrow>
 | |
| 1641 | k * card C = card (\<Union>C)" | |
| 63612 | 1642 | proof (induct rule: finite_induct) | 
| 1643 | case empty | |
| 1644 | then show ?case by simp | |
| 1645 | next | |
| 1646 | case (insert x F) | |
| 1647 | then show ?case | |
| 1648 | by (simp add: card_Un_disjoint insert_partition finite_subset [of _ "\<Union>(insert _ _)"]) | |
| 1649 | qed | |
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changeset | 1650 | |
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changeset | 1651 | lemma card_eq_UNIV_imp_eq_UNIV: | 
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changeset | 1652 | assumes fin: "finite (UNIV :: 'a set)" | 
| 63404 | 1653 | and card: "card A = card (UNIV :: 'a set)" | 
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changeset | 1654 | shows "A = (UNIV :: 'a set)" | 
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changeset | 1655 | proof | 
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changeset | 1656 | show "A \<subseteq> UNIV" by simp | 
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changeset | 1657 | show "UNIV \<subseteq> A" | 
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changeset | 1658 | proof | 
| 63404 | 1659 | show "x \<in> A" for x | 
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changeset | 1660 | proof (rule ccontr) | 
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changeset | 1661 | assume "x \<notin> A" | 
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changeset | 1662 | then have "A \<subset> UNIV" by auto | 
| 63404 | 1663 | with fin have "card A < card (UNIV :: 'a set)" | 
| 1664 | by (fact psubset_card_mono) | |
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changeset | 1665 | with card show False by simp | 
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changeset | 1666 | qed | 
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changeset | 1667 | qed | 
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changeset | 1668 | qed | 
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changeset | 1669 | |
| 63404 | 1670 | text \<open>The form of a finite set of given cardinality\<close> | 
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changeset | 1671 | |
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changeset | 1672 | lemma card_eq_SucD: | 
| 63404 | 1673 | assumes "card A = Suc k" | 
| 1674 |   shows "\<exists>b B. A = insert b B \<and> b \<notin> B \<and> card B = k \<and> (k = 0 \<longrightarrow> B = {})"
 | |
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changeset | 1675 | proof - | 
| 63404 | 1676 | have fin: "finite A" | 
| 1677 | using assms by (auto intro: ccontr) | |
| 1678 | moreover have "card A \<noteq> 0" | |
| 1679 | using assms by auto | |
| 1680 | ultimately obtain b where b: "b \<in> A" | |
| 1681 | by auto | |
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changeset | 1682 | show ?thesis | 
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changeset | 1683 | proof (intro exI conjI) | 
| 63404 | 1684 |     show "A = insert b (A - {b})"
 | 
| 1685 | using b by blast | |
| 1686 |     show "b \<notin> A - {b}"
 | |
| 1687 | by blast | |
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changeset | 1688 |     show "card (A - {b}) = k" and "k = 0 \<longrightarrow> A - {b} = {}"
 | 
| 63612 | 1689 | using assms b fin by (fastforce dest: mk_disjoint_insert)+ | 
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changeset | 1690 | qed | 
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changeset | 1691 | qed | 
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changeset | 1692 | |
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changeset | 1693 | lemma card_Suc_eq: | 
| 63404 | 1694 | "card A = Suc k \<longleftrightarrow> | 
| 1695 |     (\<exists>b B. A = insert b B \<and> b \<notin> B \<and> card B = k \<and> (k = 0 \<longrightarrow> B = {}))"
 | |
| 1696 | apply (auto elim!: card_eq_SucD) | |
| 1697 | apply (subst card.insert) | |
| 63612 | 1698 | apply (auto simp add: intro:ccontr) | 
| 63404 | 1699 | done | 
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changeset | 1700 | |
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changeset | 1701 | lemma card_1_singletonE: | 
| 63404 | 1702 | assumes "card A = 1" | 
| 1703 |   obtains x where "A = {x}"
 | |
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changeset | 1704 | using assms by (auto simp: card_Suc_eq) | 
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changeset | 1705 | |
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changeset | 1706 | lemma is_singleton_altdef: "is_singleton A \<longleftrightarrow> card A = 1" | 
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changeset | 1707 | unfolding is_singleton_def | 
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changeset | 1708 | by (auto elim!: card_1_singletonE is_singletonE simp del: One_nat_def) | 
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changeset | 1709 | |
| 63404 | 1710 | lemma card_le_Suc_iff: | 
| 1711 | "finite A \<Longrightarrow> Suc n \<le> card A = (\<exists>a B. A = insert a B \<and> a \<notin> B \<and> n \<le> card B \<and> finite B)" | |
| 1712 | by (fastforce simp: card_Suc_eq less_eq_nat.simps(2) insert_eq_iff | |
| 1713 | dest: subset_singletonD split: nat.splits if_splits) | |
| 44744 | 1714 | |
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changeset | 1715 | lemma finite_fun_UNIVD2: | 
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changeset | 1716 |   assumes fin: "finite (UNIV :: ('a \<Rightarrow> 'b) set)"
 | 
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changeset | 1717 | shows "finite (UNIV :: 'b set)" | 
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changeset | 1718 | proof - | 
| 63404 | 1719 | from fin have "finite (range (\<lambda>f :: 'a \<Rightarrow> 'b. f arbitrary))" for arbitrary | 
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changeset | 1720 | by (rule finite_imageI) | 
| 63404 | 1721 | moreover have "UNIV = range (\<lambda>f :: 'a \<Rightarrow> 'b. f arbitrary)" for arbitrary | 
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changeset | 1722 | by (rule UNIV_eq_I) auto | 
| 63404 | 1723 | ultimately show "finite (UNIV :: 'b set)" | 
| 1724 | by simp | |
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changeset | 1725 | qed | 
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changeset | 1726 | |
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changeset | 1727 | lemma card_UNIV_unit [simp]: "card (UNIV :: unit set) = 1" | 
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changeset | 1728 | unfolding UNIV_unit by simp | 
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changeset | 1729 | |
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changeset | 1730 | lemma infinite_arbitrarily_large: | 
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changeset | 1731 | assumes "\<not> finite A" | 
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changeset | 1732 | shows "\<exists>B. finite B \<and> card B = n \<and> B \<subseteq> A" | 
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changeset | 1733 | proof (induction n) | 
| 63404 | 1734 | case 0 | 
| 1735 |   show ?case by (intro exI[of _ "{}"]) auto
 | |
| 1736 | next | |
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changeset | 1737 | case (Suc n) | 
| 63404 | 1738 | then obtain B where B: "finite B \<and> card B = n \<and> B \<subseteq> A" .. | 
| 60758 | 1739 | with \<open>\<not> finite A\<close> have "A \<noteq> B" by auto | 
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changeset | 1740 | with B have "B \<subset> A" by auto | 
| 63404 | 1741 | then have "\<exists>x. x \<in> A - B" | 
| 1742 | by (elim psubset_imp_ex_mem) | |
| 1743 | then obtain x where x: "x \<in> A - B" .. | |
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changeset | 1744 | with B have "finite (insert x B) \<and> card (insert x B) = Suc n \<and> insert x B \<subseteq> A" | 
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changeset | 1745 | by auto | 
| 63404 | 1746 | then show "\<exists>B. finite B \<and> card B = Suc n \<and> B \<subseteq> A" .. | 
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changeset | 1747 | qed | 
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changeset | 1748 | |
| 63404 | 1749 | |
| 60758 | 1750 | subsubsection \<open>Cardinality of image\<close> | 
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changeset | 1751 | |
| 63404 | 1752 | lemma card_image_le: "finite A \<Longrightarrow> card (f ` A) \<le> card A" | 
| 54570 | 1753 | by (induct rule: finite_induct) (simp_all add: le_SucI card_insert_if) | 
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changeset | 1754 | |
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changeset | 1755 | lemma card_image: | 
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changeset | 1756 | assumes "inj_on f A" | 
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changeset | 1757 | shows "card (f ` A) = card A" | 
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changeset | 1758 | proof (cases "finite A") | 
| 63404 | 1759 | case True | 
| 1760 | then show ?thesis | |
| 1761 | using assms by (induct A) simp_all | |
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changeset | 1762 | next | 
| 63404 | 1763 | case False | 
| 1764 | then have "\<not> finite (f ` A)" | |
| 1765 | using assms by (auto dest: finite_imageD) | |
| 1766 | with False show ?thesis | |
| 1767 | by simp | |
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changeset | 1768 | qed | 
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changeset | 1769 | |
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changeset | 1770 | lemma bij_betw_same_card: "bij_betw f A B \<Longrightarrow> card A = card B" | 
| 63612 | 1771 | by (auto simp: card_image bij_betw_def) | 
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changeset | 1772 | |
| 63404 | 1773 | lemma endo_inj_surj: "finite A \<Longrightarrow> f ` A \<subseteq> A \<Longrightarrow> inj_on f A \<Longrightarrow> f ` A = A" | 
| 1774 | by (simp add: card_seteq card_image) | |
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changeset | 1775 | |
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changeset | 1776 | lemma eq_card_imp_inj_on: | 
| 63404 | 1777 | assumes "finite A" "card(f ` A) = card A" | 
| 1778 | shows "inj_on f A" | |
| 1779 | using assms | |
| 54570 | 1780 | proof (induct rule:finite_induct) | 
| 63404 | 1781 | case empty | 
| 1782 | show ?case by simp | |
| 54570 | 1783 | next | 
| 1784 | case (insert x A) | |
| 63404 | 1785 | then show ?case | 
| 1786 | using card_image_le [of A f] by (simp add: card_insert_if split: if_splits) | |
| 54570 | 1787 | qed | 
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changeset | 1788 | |
| 63404 | 1789 | lemma inj_on_iff_eq_card: "finite A \<Longrightarrow> inj_on f A \<longleftrightarrow> card (f ` A) = card A" | 
| 54570 | 1790 | by (blast intro: card_image eq_card_imp_inj_on) | 
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changeset | 1791 | |
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changeset | 1792 | lemma card_inj_on_le: | 
| 63404 | 1793 | assumes "inj_on f A" "f ` A \<subseteq> B" "finite B" | 
| 1794 | shows "card A \<le> card B" | |
| 54570 | 1795 | proof - | 
| 63404 | 1796 | have "finite A" | 
| 1797 | using assms by (blast intro: finite_imageD dest: finite_subset) | |
| 1798 | then show ?thesis | |
| 1799 | using assms by (force intro: card_mono simp: card_image [symmetric]) | |
| 54570 | 1800 | qed | 
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changeset | 1801 | |
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changeset | 1802 | lemma surj_card_le: "finite A \<Longrightarrow> B \<subseteq> f ` A \<Longrightarrow> card B \<le> card A" | 
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changeset | 1803 | by (blast intro: card_image_le card_mono le_trans) | 
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changeset | 1804 | |
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changeset | 1805 | lemma card_bij_eq: | 
| 63404 | 1806 | "inj_on f A \<Longrightarrow> f ` A \<subseteq> B \<Longrightarrow> inj_on g B \<Longrightarrow> g ` B \<subseteq> A \<Longrightarrow> finite A \<Longrightarrow> finite B | 
| 1807 | \<Longrightarrow> card A = card B" | |
| 1808 | by (auto intro: le_antisym card_inj_on_le) | |
| 1809 | ||
| 1810 | lemma bij_betw_finite: "bij_betw f A B \<Longrightarrow> finite A \<longleftrightarrow> finite B" | |
| 1811 | unfolding bij_betw_def using finite_imageD [of f A] by auto | |
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changeset | 1812 | |
| 63404 | 1813 | lemma inj_on_finite: "inj_on f A \<Longrightarrow> f ` A \<le> B \<Longrightarrow> finite B \<Longrightarrow> finite A" | 
| 1814 | using finite_imageD finite_subset by blast | |
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changeset | 1815 | |
| 63404 | 1816 | lemma card_vimage_inj: "inj f \<Longrightarrow> A \<subseteq> range f \<Longrightarrow> card (f -` A) = card A" | 
| 1817 | by (auto 4 3 simp: subset_image_iff inj_vimage_image_eq | |
| 1818 | intro: card_image[symmetric, OF subset_inj_on]) | |
| 55020 | 1819 | |
| 41656 | 1820 | |
| 60758 | 1821 | subsubsection \<open>Pigeonhole Principles\<close> | 
| 37466 | 1822 | |
| 63404 | 1823 | lemma pigeonhole: "card A > card (f ` A) \<Longrightarrow> \<not> inj_on f A " | 
| 1824 | by (auto dest: card_image less_irrefl_nat) | |
| 37466 | 1825 | |
| 1826 | lemma pigeonhole_infinite: | |
| 63404 | 1827 | assumes "\<not> finite A" and "finite (f`A)" | 
| 1828 |   shows "\<exists>a0\<in>A. \<not> finite {a\<in>A. f a = f a0}"
 | |
| 1829 | using assms(2,1) | |
| 1830 | proof (induct "f`A" arbitrary: A rule: finite_induct) | |
| 1831 | case empty | |
| 1832 | then show ?case by simp | |
| 1833 | next | |
| 1834 | case (insert b F) | |
| 1835 | show ?case | |
| 1836 |   proof (cases "finite {a\<in>A. f a = b}")
 | |
| 1837 | case True | |
| 1838 |     with \<open>\<not> finite A\<close> have "\<not> finite (A - {a\<in>A. f a = b})"
 | |
| 1839 | by simp | |
| 1840 |     also have "A - {a\<in>A. f a = b} = {a\<in>A. f a \<noteq> b}"
 | |
| 1841 | by blast | |
| 1842 |     finally have "\<not> finite {a\<in>A. f a \<noteq> b}" .
 | |
| 1843 | from insert(3)[OF _ this] insert(2,4) show ?thesis | |
| 1844 | by simp (blast intro: rev_finite_subset) | |
| 37466 | 1845 | next | 
| 63404 | 1846 | case False | 
| 1847 |     then have "{a \<in> A. f a = b} \<noteq> {}" by force
 | |
| 1848 | with False show ?thesis by blast | |
| 37466 | 1849 | qed | 
| 1850 | qed | |
| 1851 | ||
| 1852 | lemma pigeonhole_infinite_rel: | |
| 63404 | 1853 | assumes "\<not> finite A" | 
| 1854 | and "finite B" | |
| 1855 | and "\<forall>a\<in>A. \<exists>b\<in>B. R a b" | |
| 1856 |   shows "\<exists>b\<in>B. \<not> finite {a:A. R a b}"
 | |
| 37466 | 1857 | proof - | 
| 63404 | 1858 |   let ?F = "\<lambda>a. {b\<in>B. R a b}"
 | 
| 1859 | from finite_Pow_iff[THEN iffD2, OF \<open>finite B\<close>] have "finite (?F ` A)" | |
| 1860 | by (blast intro: rev_finite_subset) | |
| 1861 | from pigeonhole_infinite [where f = ?F, OF assms(1) this] | |
| 63612 | 1862 |   obtain a0 where "a0 \<in> A" and infinite: "\<not> finite {a\<in>A. ?F a = ?F a0}" ..
 | 
| 63404 | 1863 | obtain b0 where "b0 \<in> B" and "R a0 b0" | 
| 1864 | using \<open>a0 \<in> A\<close> assms(3) by blast | |
| 63612 | 1865 |   have "finite {a\<in>A. ?F a = ?F a0}" if "finite {a\<in>A. R a b0}"
 | 
| 63404 | 1866 | using \<open>b0 \<in> B\<close> \<open>R a0 b0\<close> that by (blast intro: rev_finite_subset) | 
| 63612 | 1867 | with infinite \<open>b0 \<in> B\<close> show ?thesis | 
| 63404 | 1868 | by blast | 
| 37466 | 1869 | qed | 
| 1870 | ||
| 1871 | ||
| 60758 | 1872 | subsubsection \<open>Cardinality of sums\<close> | 
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changeset | 1873 | |
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changeset | 1874 | lemma card_Plus: | 
| 63404 | 1875 | assumes "finite A" "finite B" | 
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changeset | 1876 | shows "card (A <+> B) = card A + card B" | 
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changeset | 1877 | proof - | 
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changeset | 1878 |   have "Inl`A \<inter> Inr`B = {}" by fast
 | 
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changeset | 1879 | with assms show ?thesis | 
| 63404 | 1880 | by (simp add: Plus_def card_Un_disjoint card_image) | 
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changeset | 1881 | qed | 
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changeset | 1882 | |
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changeset | 1883 | lemma card_Plus_conv_if: | 
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changeset | 1884 | "card (A <+> B) = (if finite A \<and> finite B then card A + card B else 0)" | 
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changeset | 1885 | by (auto simp add: card_Plus) | 
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changeset | 1886 | |
| 63404 | 1887 | text \<open>Relates to equivalence classes. Based on a theorem of F. Kammüller.\<close> | 
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changeset | 1888 | |
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changeset | 1889 | lemma dvd_partition: | 
| 63404 | 1890 | assumes f: "finite (\<Union>C)" | 
| 1891 |     and "\<forall>c\<in>C. k dvd card c" "\<forall>c1\<in>C. \<forall>c2\<in>C. c1 \<noteq> c2 \<longrightarrow> c1 \<inter> c2 = {}"
 | |
| 1892 | shows "k dvd card (\<Union>C)" | |
| 54570 | 1893 | proof - | 
| 63404 | 1894 | have "finite C" | 
| 54570 | 1895 | by (rule finite_UnionD [OF f]) | 
| 63404 | 1896 | then show ?thesis | 
| 1897 | using assms | |
| 54570 | 1898 | proof (induct rule: finite_induct) | 
| 63404 | 1899 | case empty | 
| 1900 | show ?case by simp | |
| 54570 | 1901 | next | 
| 63404 | 1902 | case insert | 
| 1903 | then show ?case | |
| 54570 | 1904 | apply simp | 
| 1905 | apply (subst card_Un_disjoint) | |
| 63612 | 1906 | apply (auto simp add: disjoint_eq_subset_Compl) | 
| 54570 | 1907 | done | 
| 1908 | qed | |
| 1909 | qed | |
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changeset | 1910 | |
| 63404 | 1911 | |
| 60758 | 1912 | subsubsection \<open>Relating injectivity and surjectivity\<close> | 
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changeset | 1913 | |
| 63404 | 1914 | lemma finite_surj_inj: | 
| 1915 | assumes "finite A" "A \<subseteq> f ` A" | |
| 1916 | shows "inj_on f A" | |
| 54570 | 1917 | proof - | 
| 63404 | 1918 | have "f ` A = A" | 
| 54570 | 1919 | by (rule card_seteq [THEN sym]) (auto simp add: assms card_image_le) | 
| 1920 | then show ?thesis using assms | |
| 1921 | by (simp add: eq_card_imp_inj_on) | |
| 1922 | qed | |
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changeset | 1923 | |
| 63612 | 1924 | lemma finite_UNIV_surj_inj: "finite(UNIV:: 'a set) \<Longrightarrow> surj f \<Longrightarrow> inj f" | 
| 1925 | for f :: "'a \<Rightarrow> 'a" | |
| 63404 | 1926 | by (blast intro: finite_surj_inj subset_UNIV) | 
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changeset | 1927 | |
| 63612 | 1928 | lemma finite_UNIV_inj_surj: "finite(UNIV:: 'a set) \<Longrightarrow> inj f \<Longrightarrow> surj f" | 
| 1929 | for f :: "'a \<Rightarrow> 'a" | |
| 63404 | 1930 | by (fastforce simp:surj_def dest!: endo_inj_surj) | 
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changeset | 1931 | |
| 63404 | 1932 | corollary infinite_UNIV_nat [iff]: "\<not> finite (UNIV :: nat set)" | 
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changeset | 1933 | proof | 
| 51489 | 1934 | assume "finite (UNIV :: nat set)" | 
| 63404 | 1935 | with finite_UNIV_inj_surj [of Suc] show False | 
| 1936 | by simp (blast dest: Suc_neq_Zero surjD) | |
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changeset | 1937 | qed | 
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changeset | 1938 | |
| 63404 | 1939 | lemma infinite_UNIV_char_0: "\<not> finite (UNIV :: 'a::semiring_char_0 set)" | 
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changeset | 1940 | proof | 
| 51489 | 1941 | assume "finite (UNIV :: 'a set)" | 
| 1942 | with subset_UNIV have "finite (range of_nat :: 'a set)" | |
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changeset | 1943 | by (rule finite_subset) | 
| 51489 | 1944 | moreover have "inj (of_nat :: nat \<Rightarrow> 'a)" | 
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changeset | 1945 | by (simp add: inj_on_def) | 
| 51489 | 1946 | ultimately have "finite (UNIV :: nat set)" | 
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changeset | 1947 | by (rule finite_imageD) | 
| 51489 | 1948 | then show False | 
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changeset | 1949 | by simp | 
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changeset | 1950 | qed | 
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changeset | 1951 | |
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changeset | 1952 | hide_const (open) Finite_Set.fold | 
| 46033 | 1953 | |
| 61810 | 1954 | |
| 63404 | 1955 | subsection \<open>Infinite Sets\<close> | 
| 61810 | 1956 | |
| 1957 | text \<open> | |
| 1958 | Some elementary facts about infinite sets, mostly by Stephan Merz. | |
| 1959 | Beware! Because "infinite" merely abbreviates a negation, these | |
| 1960 | lemmas may not work well with \<open>blast\<close>. | |
| 1961 | \<close> | |
| 1962 | ||
| 1963 | abbreviation infinite :: "'a set \<Rightarrow> bool" | |
| 1964 | where "infinite S \<equiv> \<not> finite S" | |
| 1965 | ||
| 1966 | text \<open> | |
| 1967 | Infinite sets are non-empty, and if we remove some elements from an | |
| 1968 | infinite set, the result is still infinite. | |
| 1969 | \<close> | |
| 1970 | ||
| 1971 | lemma infinite_imp_nonempty: "infinite S \<Longrightarrow> S \<noteq> {}"
 | |
| 1972 | by auto | |
| 1973 | ||
| 1974 | lemma infinite_remove: "infinite S \<Longrightarrow> infinite (S - {a})"
 | |
| 1975 | by simp | |
| 1976 | ||
| 1977 | lemma Diff_infinite_finite: | |
| 63404 | 1978 | assumes "finite T" "infinite S" | 
| 61810 | 1979 | shows "infinite (S - T)" | 
| 63404 | 1980 | using \<open>finite T\<close> | 
| 61810 | 1981 | proof induct | 
| 63404 | 1982 |   from \<open>infinite S\<close> show "infinite (S - {})"
 | 
| 1983 | by auto | |
| 61810 | 1984 | next | 
| 1985 | fix T x | |
| 1986 | assume ih: "infinite (S - T)" | |
| 1987 |   have "S - (insert x T) = (S - T) - {x}"
 | |
| 1988 | by (rule Diff_insert) | |
| 63404 | 1989 | with ih show "infinite (S - (insert x T))" | 
| 61810 | 1990 | by (simp add: infinite_remove) | 
| 1991 | qed | |
| 1992 | ||
| 1993 | lemma Un_infinite: "infinite S \<Longrightarrow> infinite (S \<union> T)" | |
| 1994 | by simp | |
| 1995 | ||
| 1996 | lemma infinite_Un: "infinite (S \<union> T) \<longleftrightarrow> infinite S \<or> infinite T" | |
| 1997 | by simp | |
| 1998 | ||
| 1999 | lemma infinite_super: | |
| 63404 | 2000 | assumes "S \<subseteq> T" | 
| 2001 | and "infinite S" | |
| 61810 | 2002 | shows "infinite T" | 
| 2003 | proof | |
| 2004 | assume "finite T" | |
| 63404 | 2005 | with \<open>S \<subseteq> T\<close> have "finite S" by (simp add: finite_subset) | 
| 2006 | with \<open>infinite S\<close> show False by simp | |
| 61810 | 2007 | qed | 
| 2008 | ||
| 2009 | proposition infinite_coinduct [consumes 1, case_names infinite]: | |
| 2010 | assumes "X A" | |
| 63404 | 2011 |     and step: "\<And>A. X A \<Longrightarrow> \<exists>x\<in>A. X (A - {x}) \<or> infinite (A - {x})"
 | 
| 61810 | 2012 | shows "infinite A" | 
| 2013 | proof | |
| 2014 | assume "finite A" | |
| 63404 | 2015 | then show False | 
| 2016 | using \<open>X A\<close> | |
| 61810 | 2017 | proof (induction rule: finite_psubset_induct) | 
| 2018 | case (psubset A) | |
| 2019 |     then obtain x where "x \<in> A" "X (A - {x}) \<or> infinite (A - {x})"
 | |
| 2020 | using local.step psubset.prems by blast | |
| 2021 |     then have "X (A - {x})"
 | |
| 2022 | using psubset.hyps by blast | |
| 2023 | show False | |
| 2024 |       apply (rule psubset.IH [where B = "A - {x}"])
 | |
| 63612 | 2025 | apply (use \<open>x \<in> A\<close> in blast) | 
| 63404 | 2026 |       apply (simp add: \<open>X (A - {x})\<close>)
 | 
| 2027 | done | |
| 61810 | 2028 | qed | 
| 2029 | qed | |
| 2030 | ||
| 2031 | text \<open> | |
| 2032 | For any function with infinite domain and finite range there is some | |
| 2033 | element that is the image of infinitely many domain elements. In | |
| 2034 | particular, any infinite sequence of elements from a finite set | |
| 2035 | contains some element that occurs infinitely often. | |
| 2036 | \<close> | |
| 2037 | ||
| 2038 | lemma inf_img_fin_dom': | |
| 63404 | 2039 | assumes img: "finite (f ` A)" | 
| 2040 | and dom: "infinite A" | |
| 61810 | 2041 |   shows "\<exists>y \<in> f ` A. infinite (f -` {y} \<inter> A)"
 | 
| 2042 | proof (rule ccontr) | |
| 2043 |   have "A \<subseteq> (\<Union>y\<in>f ` A. f -` {y} \<inter> A)" by auto
 | |
| 63404 | 2044 | moreover assume "\<not> ?thesis" | 
| 61810 | 2045 |   with img have "finite (\<Union>y\<in>f ` A. f -` {y} \<inter> A)" by blast
 | 
| 63404 | 2046 | ultimately have "finite A" by (rule finite_subset) | 
| 61810 | 2047 | with dom show False by contradiction | 
| 2048 | qed | |
| 2049 | ||
| 2050 | lemma inf_img_fin_domE': | |
| 2051 | assumes "finite (f ` A)" and "infinite A" | |
| 2052 |   obtains y where "y \<in> f`A" and "infinite (f -` {y} \<inter> A)"
 | |
| 2053 | using assms by (blast dest: inf_img_fin_dom') | |
| 2054 | ||
| 2055 | lemma inf_img_fin_dom: | |
| 2056 | assumes img: "finite (f`A)" and dom: "infinite A" | |
| 2057 |   shows "\<exists>y \<in> f`A. infinite (f -` {y})"
 | |
| 63404 | 2058 | using inf_img_fin_dom'[OF assms] by auto | 
| 61810 | 2059 | |
| 2060 | lemma inf_img_fin_domE: | |
| 2061 | assumes "finite (f`A)" and "infinite A" | |
| 2062 |   obtains y where "y \<in> f`A" and "infinite (f -` {y})"
 | |
| 2063 | using assms by (blast dest: inf_img_fin_dom) | |
| 2064 | ||
| 63404 | 2065 | proposition finite_image_absD: "finite (abs ` S) \<Longrightarrow> finite S" | 
| 2066 | for S :: "'a::linordered_ring set" | |
| 61810 | 2067 | by (rule ccontr) (auto simp: abs_eq_iff vimage_def dest: inf_img_fin_dom) | 
| 2068 | ||
| 35722 
69419a09a7ff
moved cardinality to Finite_Set as far as appropriate; added locales for fold_image
 haftmann parents: 
35719diff
changeset | 2069 | end |