author | Christian Urban <urbanc@in.tum.de> |
Tue, 26 Jan 2010 20:07:50 +0100 | |
changeset 947 | fa810f01f7b5 |
child 1037 | 2845e736dc1a |
permissions | -rw-r--r-- |
947
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(* Title: Nominal2_Eqvt |
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Authors: Brian Huffman, Christian Urban |
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Equivariance, Supp and Fresh Lemmas for Operators. |
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*) |
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theory Nominal2_Eqvt |
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imports Nominal2_Base |
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uses ("nominal_thmdecls.ML") |
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begin |
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section {* Logical Operators *} |
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lemma eq_eqvt: |
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shows "p \<bullet> (x = y) \<longleftrightarrow> (p \<bullet> x) = (p \<bullet> y)" |
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unfolding permute_eq_iff permute_bool_def .. |
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lemma if_eqvt: |
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shows "p \<bullet> (if b then x else y) = (if p \<bullet> b then p \<bullet> x else p \<bullet> y)" |
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by (simp add: permute_fun_def permute_bool_def) |
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lemma True_eqvt: |
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shows "p \<bullet> True = True" |
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unfolding permute_bool_def .. |
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lemma False_eqvt: |
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shows "p \<bullet> False = False" |
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unfolding permute_bool_def .. |
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lemma imp_eqvt: |
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shows "p \<bullet> (A \<longrightarrow> B) = ((p \<bullet> A) \<longrightarrow> (p \<bullet> B))" |
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by (simp add: permute_bool_def) |
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lemma conj_eqvt: |
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shows "p \<bullet> (A \<and> B) = ((p \<bullet> A) \<and> (p \<bullet> B))" |
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by (simp add: permute_bool_def) |
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lemma disj_eqvt: |
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shows "p \<bullet> (A \<or> B) = ((p \<bullet> A) \<or> (p \<bullet> B))" |
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by (simp add: permute_bool_def) |
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lemma Not_eqvt: |
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shows "p \<bullet> (\<not> A) = (\<not> (p \<bullet> A))" |
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by (simp add: permute_bool_def) |
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lemma all_eqvt: |
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shows "p \<bullet> (\<forall>x. P x) = (\<forall>x. p \<bullet> P (- p \<bullet> x))" |
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unfolding permute_fun_def permute_bool_def |
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by (auto, drule_tac x="p \<bullet> x" in spec, simp) |
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lemma ex_eqvt: |
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shows "p \<bullet> (\<exists>x. P x) = (\<exists>x. p \<bullet> P (- p \<bullet> x))" |
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unfolding permute_fun_def permute_bool_def |
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by (auto, rule_tac x="p \<bullet> x" in exI, simp) |
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lemma ex1_eqvt: |
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shows "p \<bullet> (\<exists>!x. P x) = (\<exists>!x. p \<bullet> P (- p \<bullet> x))" |
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unfolding Ex1_def ex_eqvt conj_eqvt all_eqvt imp_eqvt eq_eqvt |
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by simp |
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lemma the_eqvt: |
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assumes unique: "\<exists>!x. P x" |
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shows "p \<bullet> (THE x. P x) = (THE x. p \<bullet> P (- p \<bullet> x))" |
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apply(rule the1_equality [symmetric]) |
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apply(simp add: ex1_eqvt[symmetric]) |
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apply(simp add: permute_bool_def unique) |
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apply(simp add: permute_bool_def) |
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apply(rule theI'[OF unique]) |
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done |
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section {* Set Operations *} |
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lemma mem_eqvt: |
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shows "p \<bullet> (x \<in> A) \<longleftrightarrow> (p \<bullet> x) \<in> (p \<bullet> A)" |
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unfolding mem_def permute_fun_def by simp |
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lemma not_mem_eqvt: |
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shows "p \<bullet> (x \<notin> A) \<longleftrightarrow> (p \<bullet> x) \<notin> (p \<bullet> A)" |
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unfolding mem_def permute_fun_def by (simp add: Not_eqvt) |
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lemma Collect_eqvt: |
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shows "p \<bullet> {x. P x} = {x. p \<bullet> (P (-p \<bullet> x))}" |
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unfolding Collect_def permute_fun_def .. |
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lemma empty_eqvt: |
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shows "p \<bullet> {} = {}" |
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unfolding empty_def Collect_eqvt False_eqvt .. |
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lemma supp_set_empty: |
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shows "supp {} = {}" |
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by (simp add: supp_def empty_eqvt) |
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lemma fresh_set_empty: |
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shows "a \<sharp> {}" |
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by (simp add: fresh_def supp_set_empty) |
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lemma UNIV_eqvt: |
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shows "p \<bullet> UNIV = UNIV" |
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unfolding UNIV_def Collect_eqvt True_eqvt .. |
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lemma union_eqvt: |
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shows "p \<bullet> (A \<union> B) = (p \<bullet> A) \<union> (p \<bullet> B)" |
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unfolding Un_def Collect_eqvt disj_eqvt mem_eqvt by simp |
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lemma inter_eqvt: |
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shows "p \<bullet> (A \<inter> B) = (p \<bullet> A) \<inter> (p \<bullet> B)" |
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unfolding Int_def Collect_eqvt conj_eqvt mem_eqvt by simp |
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lemma Diff_eqvt: |
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fixes A B :: "'a::pt set" |
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shows "p \<bullet> (A - B) = p \<bullet> A - p \<bullet> B" |
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unfolding set_diff_eq Collect_eqvt conj_eqvt Not_eqvt mem_eqvt by simp |
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lemma Compl_eqvt: |
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fixes A :: "'a::pt set" |
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shows "p \<bullet> (- A) = - (p \<bullet> A)" |
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unfolding Compl_eq_Diff_UNIV Diff_eqvt UNIV_eqvt .. |
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lemma insert_eqvt: |
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shows "p \<bullet> (insert x A) = insert (p \<bullet> x) (p \<bullet> A)" |
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unfolding permute_set_eq_image image_insert .. |
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lemma vimage_eqvt: |
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shows "p \<bullet> (f -` A) = (p \<bullet> f) -` (p \<bullet> A)" |
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unfolding vimage_def permute_fun_def [where f=f] |
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unfolding Collect_eqvt mem_eqvt .. |
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lemma image_eqvt: |
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shows "p \<bullet> (f ` A) = (p \<bullet> f) ` (p \<bullet> A)" |
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unfolding permute_set_eq_image |
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unfolding permute_fun_def [where f=f] |
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by (simp add: image_image) |
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lemma finite_permute_iff: |
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shows "finite (p \<bullet> A) \<longleftrightarrow> finite A" |
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unfolding permute_set_eq_vimage |
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using bij_permute by (rule finite_vimage_iff) |
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lemma finite_eqvt: |
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shows "p \<bullet> finite A = finite (p \<bullet> A)" |
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unfolding finite_permute_iff permute_bool_def .. |
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lemma supp_eqvt: "p \<bullet> supp S = supp (p \<bullet> S)" |
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unfolding supp_def |
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by (simp only: Collect_eqvt Not_eqvt finite_eqvt eq_eqvt |
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permute_eqvt [of p] swap_eqvt permute_minus_cancel) |
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section {* List Operations *} |
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lemma append_eqvt: |
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shows "p \<bullet> (xs @ ys) = (p \<bullet> xs) @ (p \<bullet> ys)" |
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by (induct xs) auto |
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lemma supp_append: |
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shows "supp (xs @ ys) = supp xs \<union> supp ys" |
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by (induct xs) (auto simp add: supp_Nil supp_Cons) |
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lemma fresh_append: |
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shows "a \<sharp> (xs @ ys) \<longleftrightarrow> a \<sharp> xs \<and> a \<sharp> ys" |
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by (induct xs) (simp_all add: fresh_Nil fresh_Cons) |
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lemma rev_eqvt: |
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shows "p \<bullet> (rev xs) = rev (p \<bullet> xs)" |
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by (induct xs) (simp_all add: append_eqvt) |
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lemma supp_rev: |
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shows "supp (rev xs) = supp xs" |
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by (induct xs) (auto simp add: supp_append supp_Cons supp_Nil) |
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lemma fresh_rev: |
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shows "a \<sharp> rev xs \<longleftrightarrow> a \<sharp> xs" |
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by (induct xs) (auto simp add: fresh_append fresh_Cons fresh_Nil) |
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lemma set_eqvt: |
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shows "p \<bullet> (set xs) = set (p \<bullet> xs)" |
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by (induct xs) (simp_all add: empty_eqvt insert_eqvt) |
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(* needs finite support premise |
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lemma supp_set: |
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fixes x :: "'a::pt" |
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shows "supp (set xs) = supp xs" |
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*) |
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section {* Product Operations *} |
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lemma fst_eqvt: |
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"p \<bullet> (fst x) = fst (p \<bullet> x)" |
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by (cases x) simp |
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lemma snd_eqvt: |
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"p \<bullet> (snd x) = snd (p \<bullet> x)" |
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by (cases x) simp |
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|
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section {* Units *} |
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lemma supp_unit: |
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shows "supp () = {}" |
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by (simp add: supp_def) |
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lemma fresh_unit: |
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shows "a \<sharp> ()" |
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by (simp add: fresh_def supp_unit) |
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section {* Equivariance automation *} |
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text {* |
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below is a construction site for a conversion that |
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pushes permutations into a term as far as possible |
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*} |
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text {* Setup of the theorem attributes @{text eqvt} and @{text eqvt_force} *} |
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use "nominal_thmdecls.ML" |
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setup "NominalThmDecls.setup" |
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lemmas [eqvt] = |
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(* connectives *) |
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eq_eqvt if_eqvt imp_eqvt disj_eqvt conj_eqvt Not_eqvt |
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True_eqvt False_eqvt |
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imp_eqvt [folded induct_implies_def] |
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(* datatypes *) |
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permute_prod.simps |
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fst_eqvt snd_eqvt |
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(* sets *) |
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empty_eqvt UNIV_eqvt union_eqvt inter_eqvt |
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Diff_eqvt Compl_eqvt insert_eqvt |
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(* A simple conversion pushing permutations into a term *) |
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ML {* |
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fun OF1 thm1 thm2 = thm2 RS thm1 |
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fun get_eqvt_thms ctxt = |
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map (OF1 @{thm eq_reflection}) (NominalThmDecls.get_eqvt_thms ctxt) |
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*} |
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|
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ML {* |
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fun eqvt_conv ctxt ctrm = |
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case (term_of ctrm) of |
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(Const (@{const_name "permute"}, _) $ _ $ t) => |
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(if is_Const (head_of t) |
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then (More_Conv.rewrs_conv (get_eqvt_thms ctxt) |
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then_conv eqvt_conv ctxt) ctrm |
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else Conv.comb_conv (eqvt_conv ctxt) ctrm) |
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| _ $ _ => Conv.comb_conv (eqvt_conv ctxt) ctrm |
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| Abs _ => Conv.abs_conv (fn (_, ctxt) => eqvt_conv ctxt) ctxt ctrm |
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| _ => Conv.all_conv ctrm |
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*} |
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ML {* |
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fun eqvt_tac ctxt = |
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CONVERSION (More_Conv.bottom_conv (fn ctxt => eqvt_conv ctxt) ctxt) |
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*} |
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lemma "p \<bullet> (A \<longrightarrow> B = (C::bool))" |
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apply(tactic {* eqvt_tac @{context} 1 *}) |
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oops |
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text {* |
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Another conversion for pushing permutations into a term. |
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It is designed not to apply rules like @{term permute_pure} to |
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applications or abstractions, only to constants or free |
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variables. Thus permutations are not removed too early, and they |
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have a chance to cancel with bound variables. |
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*} |
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definition |
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"unpermute p = permute (- p)" |
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|
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lemma push_apply: |
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fixes f :: "'a::pt \<Rightarrow> 'b::pt" and x :: "'a::pt" |
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shows "p \<bullet> (f x) \<equiv> (p \<bullet> f) (p \<bullet> x)" |
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unfolding permute_fun_def by simp |
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|
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lemma push_lambda: |
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fixes f :: "'a::pt \<Rightarrow> 'b::pt" |
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shows "p \<bullet> (\<lambda>x. f x) \<equiv> (\<lambda>x. p \<bullet> (f (unpermute p x)))" |
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unfolding permute_fun_def unpermute_def by simp |
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|
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lemma push_bound: |
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shows "p \<bullet> unpermute p x \<equiv> x" |
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unfolding unpermute_def by simp |
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|
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ML {* |
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structure PushData = Named_Thms |
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( |
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val name = "push" |
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val description = "push permutations" |
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) |
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|
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local |
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|
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fun push_apply_conv ctxt ct = |
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case (term_of ct) of |
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(Const (@{const_name "permute"}, _) $ _ $ (_ $ _)) => |
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let |
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val (perm, t) = Thm.dest_comb ct |
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val (_, p) = Thm.dest_comb perm |
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val (f, x) = Thm.dest_comb t |
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val a = ctyp_of_term x; |
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val b = ctyp_of_term t; |
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val ty_insts = map SOME [b, a] |
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val term_insts = map SOME [p, f, x] |
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in |
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Drule.instantiate' ty_insts term_insts @{thm push_apply} |
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end |
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| _ => Conv.no_conv ct |
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|
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fun push_lambda_conv ctxt ct = |
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case (term_of ct) of |
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(Const (@{const_name "permute"}, _) $ _ $ Abs _) => |
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Conv.rewr_conv @{thm push_lambda} ct |
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| _ => Conv.no_conv ct |
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|
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in |
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|
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fun push_conv ctxt ct = |
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Conv.first_conv |
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[ Conv.rewr_conv @{thm push_bound}, |
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push_apply_conv ctxt |
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then_conv Conv.comb_conv (push_conv ctxt), |
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push_lambda_conv ctxt |
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then_conv Conv.abs_conv (fn (v, ctxt) => push_conv ctxt) ctxt, |
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More_Conv.rewrs_conv (PushData.get ctxt), |
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Conv.all_conv |
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] ct |
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|
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fun push_tac ctxt = |
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CONVERSION (More_Conv.bottom_conv (fn ctxt => push_conv ctxt) ctxt) |
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|
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end |
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*} |
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setup PushData.setup |
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declare permute_pure [THEN eq_reflection, push] |
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lemma push_eq [THEN eq_reflection, push]: |
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"p \<bullet> (op =) = (op =)" |
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by (simp add: expand_fun_eq permute_fun_def eq_eqvt) |
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lemma push_All [THEN eq_reflection, push]: |
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"p \<bullet> All = All" |
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by (simp add: expand_fun_eq permute_fun_def all_eqvt) |
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|
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lemma push_Ex [THEN eq_reflection, push]: |
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"p \<bullet> Ex = Ex" |
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by (simp add: expand_fun_eq permute_fun_def ex_eqvt) |
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lemma "p \<bullet> (A \<longrightarrow> B = (C::bool))" |
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apply (tactic {* push_tac @{context} 1 *}) |
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oops |
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lemma "p \<bullet> (\<lambda>x. A \<longrightarrow> B x = (C::bool)) = foo" |
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apply (tactic {* push_tac @{context} 1 *}) |
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oops |
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Christian Urban <urbanc@in.tum.de>
parents:
diff
changeset
|
361 |
|
fa810f01f7b5
added an LamEx example together with the new nominal infrastructure
Christian Urban <urbanc@in.tum.de>
parents:
diff
changeset
|
362 |
lemma "p \<bullet> (\<lambda>x y. \<exists>z. x = z \<and> x = y \<longrightarrow> z \<noteq> x) = foo" |
fa810f01f7b5
added an LamEx example together with the new nominal infrastructure
Christian Urban <urbanc@in.tum.de>
parents:
diff
changeset
|
363 |
apply (tactic {* push_tac @{context} 1 *}) |
fa810f01f7b5
added an LamEx example together with the new nominal infrastructure
Christian Urban <urbanc@in.tum.de>
parents:
diff
changeset
|
364 |
oops |
fa810f01f7b5
added an LamEx example together with the new nominal infrastructure
Christian Urban <urbanc@in.tum.de>
parents:
diff
changeset
|
365 |
|
fa810f01f7b5
added an LamEx example together with the new nominal infrastructure
Christian Urban <urbanc@in.tum.de>
parents:
diff
changeset
|
366 |
lemma "p \<bullet> (\<lambda>f x. f (g (f x))) = foo" |
fa810f01f7b5
added an LamEx example together with the new nominal infrastructure
Christian Urban <urbanc@in.tum.de>
parents:
diff
changeset
|
367 |
apply (tactic {* push_tac @{context} 1 *}) |
fa810f01f7b5
added an LamEx example together with the new nominal infrastructure
Christian Urban <urbanc@in.tum.de>
parents:
diff
changeset
|
368 |
oops |
fa810f01f7b5
added an LamEx example together with the new nominal infrastructure
Christian Urban <urbanc@in.tum.de>
parents:
diff
changeset
|
369 |
|
fa810f01f7b5
added an LamEx example together with the new nominal infrastructure
Christian Urban <urbanc@in.tum.de>
parents:
diff
changeset
|
370 |
end |