| author | huffman | 
| Wed, 28 Dec 2011 12:52:23 +0100 | |
| changeset 46013 | d2f179d26133 | 
| parent 45777 | c36637603821 | 
| child 46731 | 5302e932d1e5 | 
| permissions | -rw-r--r-- | 
| 42067 | 1  | 
(* Title: HOL/Probability/Information.thy  | 
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Author: Johannes Hölzl, TU München  | 
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Author: Armin Heller, TU München  | 
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*)  | 
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header {*Information theory*}
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theory Information  | 
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imports  | 
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Independent_Family  | 
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Radon_Nikodym  | 
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"~~/src/HOL/Library/Convex"  | 
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begin  | 
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lemma log_le: "1 < a \<Longrightarrow> 0 < x \<Longrightarrow> x \<le> y \<Longrightarrow> log a x \<le> log a y"  | 
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by (subst log_le_cancel_iff) auto  | 
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lemma log_less: "1 < a \<Longrightarrow> 0 < x \<Longrightarrow> x < y \<Longrightarrow> log a x < log a y"  | 
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by (subst log_less_cancel_iff) auto  | 
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lemma setsum_cartesian_product':  | 
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"(\<Sum>x\<in>A \<times> B. f x) = (\<Sum>x\<in>A. setsum (\<lambda>y. f (x, y)) B)"  | 
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unfolding setsum_cartesian_product by simp  | 
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section "Convex theory"  | 
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lemma log_setsum:  | 
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  assumes "finite s" "s \<noteq> {}"
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assumes "b > 1"  | 
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assumes "(\<Sum> i \<in> s. a i) = 1"  | 
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assumes "\<And> i. i \<in> s \<Longrightarrow> a i \<ge> 0"  | 
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  assumes "\<And> i. i \<in> s \<Longrightarrow> y i \<in> {0 <..}"
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shows "log b (\<Sum> i \<in> s. a i * y i) \<ge> (\<Sum> i \<in> s. a i * log b (y i))"  | 
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proof -  | 
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  have "convex_on {0 <..} (\<lambda> x. - log b x)"
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by (rule minus_log_convex[OF `b > 1`])  | 
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hence "- log b (\<Sum> i \<in> s. a i * y i) \<le> (\<Sum> i \<in> s. a i * - log b (y i))"  | 
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using convex_on_setsum[of _ _ "\<lambda> x. - log b x"] assms pos_is_convex by fastforce  | 
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thus ?thesis by (auto simp add:setsum_negf le_imp_neg_le)  | 
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qed  | 
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lemma log_setsum':  | 
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  assumes "finite s" "s \<noteq> {}"
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assumes "b > 1"  | 
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assumes "(\<Sum> i \<in> s. a i) = 1"  | 
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assumes pos: "\<And> i. i \<in> s \<Longrightarrow> 0 \<le> a i"  | 
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"\<And> i. \<lbrakk> i \<in> s ; 0 < a i \<rbrakk> \<Longrightarrow> 0 < y i"  | 
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shows "log b (\<Sum> i \<in> s. a i * y i) \<ge> (\<Sum> i \<in> s. a i * log b (y i))"  | 
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proof -  | 
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  have "\<And>y. (\<Sum> i \<in> s - {i. a i = 0}. a i * y i) = (\<Sum> i \<in> s. a i * y i)"
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using assms by (auto intro!: setsum_mono_zero_cong_left)  | 
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  moreover have "log b (\<Sum> i \<in> s - {i. a i = 0}. a i * y i) \<ge> (\<Sum> i \<in> s - {i. a i = 0}. a i * log b (y i))"
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proof (rule log_setsum)  | 
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    have "setsum a (s - {i. a i = 0}) = setsum a s"
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using assms(1) by (rule setsum_mono_zero_cong_left) auto  | 
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    thus sum_1: "setsum a (s - {i. a i = 0}) = 1"
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      "finite (s - {i. a i = 0})" using assms by simp_all
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    show "s - {i. a i = 0} \<noteq> {}"
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proof  | 
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      assume *: "s - {i. a i = 0} = {}"
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      hence "setsum a (s - {i. a i = 0}) = 0" by (simp add: * setsum_empty)
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with sum_1 show False by simp  | 
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qed  | 
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    fix i assume "i \<in> s - {i. a i = 0}"
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hence "i \<in> s" "a i \<noteq> 0" by simp_all  | 
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    thus "0 \<le> a i" "y i \<in> {0<..}" using pos[of i] by auto
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qed fact+  | 
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ultimately show ?thesis by simp  | 
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qed  | 
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lemma log_setsum_divide:  | 
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  assumes "finite S" and "S \<noteq> {}" and "1 < b"
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assumes "(\<Sum>x\<in>S. g x) = 1"  | 
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assumes pos: "\<And>x. x \<in> S \<Longrightarrow> g x \<ge> 0" "\<And>x. x \<in> S \<Longrightarrow> f x \<ge> 0"  | 
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assumes g_pos: "\<And>x. \<lbrakk> x \<in> S ; 0 < g x \<rbrakk> \<Longrightarrow> 0 < f x"  | 
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shows "- (\<Sum>x\<in>S. g x * log b (g x / f x)) \<le> log b (\<Sum>x\<in>S. f x)"  | 
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proof -  | 
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have log_mono: "\<And>x y. 0 < x \<Longrightarrow> x \<le> y \<Longrightarrow> log b x \<le> log b y"  | 
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using `1 < b` by (subst log_le_cancel_iff) auto  | 
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have "- (\<Sum>x\<in>S. g x * log b (g x / f x)) = (\<Sum>x\<in>S. g x * log b (f x / g x))"  | 
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proof (unfold setsum_negf[symmetric], rule setsum_cong)  | 
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fix x assume x: "x \<in> S"  | 
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show "- (g x * log b (g x / f x)) = g x * log b (f x / g x)"  | 
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proof (cases "g x = 0")  | 
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case False  | 
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with pos[OF x] g_pos[OF x] have "0 < f x" "0 < g x" by simp_all  | 
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thus ?thesis using `1 < b` by (simp add: log_divide field_simps)  | 
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qed simp  | 
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qed rule  | 
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also have "... \<le> log b (\<Sum>x\<in>S. g x * (f x / g x))"  | 
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proof (rule log_setsum')  | 
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fix x assume x: "x \<in> S" "0 < g x"  | 
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with g_pos[OF x] show "0 < f x / g x" by (safe intro!: divide_pos_pos)  | 
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qed fact+  | 
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  also have "... = log b (\<Sum>x\<in>S - {x. g x = 0}. f x)" using `finite S`
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by (auto intro!: setsum_mono_zero_cong_right arg_cong[where f="log b"]  | 
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split: split_if_asm)  | 
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also have "... \<le> log b (\<Sum>x\<in>S. f x)"  | 
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proof (rule log_mono)  | 
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    have "0 = (\<Sum>x\<in>S - {x. g x = 0}. 0)" by simp
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    also have "... < (\<Sum>x\<in>S - {x. g x = 0}. f x)" (is "_ < ?sum")
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proof (rule setsum_strict_mono)  | 
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      show "finite (S - {x. g x = 0})" using `finite S` by simp
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      show "S - {x. g x = 0} \<noteq> {}"
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proof  | 
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        assume "S - {x. g x = 0} = {}"
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hence "(\<Sum>x\<in>S. g x) = 0" by (subst setsum_0') auto  | 
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with `(\<Sum>x\<in>S. g x) = 1` show False by simp  | 
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qed  | 
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      fix x assume "x \<in> S - {x. g x = 0}"
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thus "0 < f x" using g_pos[of x] pos(1)[of x] by auto  | 
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qed  | 
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finally show "0 < ?sum" .  | 
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    show "(\<Sum>x\<in>S - {x. g x = 0}. f x) \<le> (\<Sum>x\<in>S. f x)"
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using `finite S` pos by (auto intro!: setsum_mono2)  | 
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qed  | 
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finally show ?thesis .  | 
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qed  | 
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lemma split_pairs:  | 
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"((A, B) = X) \<longleftrightarrow> (fst X = A \<and> snd X = B)" and  | 
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"(X = (A, B)) \<longleftrightarrow> (fst X = A \<and> snd X = B)" by auto  | 
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section "Information theory"  | 
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locale information_space = prob_space +  | 
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fixes b :: real assumes b_gt_1: "1 < b"  | 
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context information_space  | 
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begin  | 
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text {* Introduce some simplification rules for logarithm of base @{term b}. *}
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lemma log_neg_const:  | 
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assumes "x \<le> 0"  | 
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shows "log b x = log b 0"  | 
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proof -  | 
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  { fix u :: real
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have "x \<le> 0" by fact  | 
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also have "0 < exp u"  | 
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using exp_gt_zero .  | 
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finally have "exp u \<noteq> x"  | 
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by auto }  | 
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then show "log b x = log b 0"  | 
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by (simp add: log_def ln_def)  | 
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qed  | 
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lemma log_mult_eq:  | 
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"log b (A * B) = (if 0 < A * B then log b \<bar>A\<bar> + log b \<bar>B\<bar> else log b 0)"  | 
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using log_mult[of b "\<bar>A\<bar>" "\<bar>B\<bar>"] b_gt_1 log_neg_const[of "A * B"]  | 
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by (auto simp: zero_less_mult_iff mult_le_0_iff)  | 
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lemma log_inverse_eq:  | 
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"log b (inverse B) = (if 0 < B then - log b B else log b 0)"  | 
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using log_inverse[of b B] log_neg_const[of "inverse B"] b_gt_1 by simp  | 
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lemma log_divide_eq:  | 
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"log b (A / B) = (if 0 < A * B then log b \<bar>A\<bar> - log b \<bar>B\<bar> else log b 0)"  | 
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unfolding divide_inverse log_mult_eq log_inverse_eq abs_inverse  | 
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by (auto simp: zero_less_mult_iff mult_le_0_iff)  | 
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lemmas log_simps = log_mult_eq log_inverse_eq log_divide_eq  | 
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end  | 
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subsection "Kullback$-$Leibler divergence"  | 
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text {* The Kullback$-$Leibler divergence is also known as relative entropy or
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Kullback$-$Leibler distance. *}  | 
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definition  | 
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"entropy_density b M \<nu> = log b \<circ> real \<circ> RN_deriv M \<nu>"  | 
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definition  | 
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"KL_divergence b M \<nu> = integral\<^isup>L (M\<lparr>measure := \<nu>\<rparr>) (entropy_density b M \<nu>)"  | 
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lemma (in information_space) measurable_entropy_density:  | 
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assumes ps: "prob_space (M\<lparr>measure := \<nu>\<rparr>)"  | 
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assumes ac: "absolutely_continuous \<nu>"  | 
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shows "entropy_density b M \<nu> \<in> borel_measurable M"  | 
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proof -  | 
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interpret \<nu>: prob_space "M\<lparr>measure := \<nu>\<rparr>" by fact  | 
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have "measure_space (M\<lparr>measure := \<nu>\<rparr>)" by fact  | 
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from RN_deriv[OF this ac] b_gt_1 show ?thesis  | 
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188  | 
unfolding entropy_density_def  | 
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by (intro measurable_comp) auto  | 
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qed  | 
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191  | 
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lemma (in information_space) KL_gt_0:  | 
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193  | 
assumes ps: "prob_space (M\<lparr>measure := \<nu>\<rparr>)"  | 
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assumes ac: "absolutely_continuous \<nu>"  | 
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assumes int: "integrable (M\<lparr> measure := \<nu> \<rparr>) (entropy_density b M \<nu>)"  | 
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assumes A: "A \<in> sets M" "\<nu> A \<noteq> \<mu> A"  | 
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197  | 
shows "0 < KL_divergence b M \<nu>"  | 
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198  | 
proof -  | 
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199  | 
interpret \<nu>: prob_space "M\<lparr>measure := \<nu>\<rparr>" by fact  | 
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200  | 
have ms: "measure_space (M\<lparr>measure := \<nu>\<rparr>)" by default  | 
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201  | 
have fms: "finite_measure (M\<lparr>measure := \<nu>\<rparr>)" by unfold_locales  | 
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202  | 
note RN = RN_deriv[OF ms ac]  | 
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203  | 
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204  | 
from real_RN_deriv[OF fms ac] guess D . note D = this  | 
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205  | 
with absolutely_continuous_AE[OF ms] ac  | 
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have D\<nu>: "AE x in M\<lparr>measure := \<nu>\<rparr>. RN_deriv M \<nu> x = ereal (D x)"  | 
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207  | 
by auto  | 
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208  | 
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209  | 
def f \<equiv> "\<lambda>x. if D x = 0 then 1 else 1 / D x"  | 
| 
 
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210  | 
with D have f_borel: "f \<in> borel_measurable M"  | 
| 
 
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211  | 
by (auto intro!: measurable_If)  | 
| 
 
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212  | 
|
| 
 
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213  | 
have "KL_divergence b M \<nu> = 1 / ln b * (\<integral> x. ln b * entropy_density b M \<nu> x \<partial>M\<lparr>measure := \<nu>\<rparr>)"  | 
| 
 
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214  | 
unfolding KL_divergence_def using int b_gt_1  | 
| 
 
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215  | 
by (simp add: integral_cmult)  | 
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216  | 
|
| 
 
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217  | 
  { fix A assume "A \<in> sets M"
 | 
| 43920 | 218  | 
with RN D have "\<nu>.\<mu> A = (\<integral>\<^isup>+ x. ereal (D x) * indicator A x \<partial>M)"  | 
| 
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219  | 
by (auto intro!: positive_integral_cong_AE) }  | 
| 
 
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220  | 
note D_density = this  | 
| 
 
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221  | 
|
| 
 
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222  | 
have ln_entropy: "(\<lambda>x. ln b * entropy_density b M \<nu> x) \<in> borel_measurable M"  | 
| 
 
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223  | 
using measurable_entropy_density[OF ps ac] by auto  | 
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224  | 
|
| 
 
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225  | 
have "integrable (M\<lparr>measure := \<nu>\<rparr>) (\<lambda>x. ln b * entropy_density b M \<nu> x)"  | 
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226  | 
using int by auto  | 
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227  | 
moreover have "integrable (M\<lparr>measure := \<nu>\<rparr>) (\<lambda>x. ln b * entropy_density b M \<nu> x) \<longleftrightarrow>  | 
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228  | 
integrable M (\<lambda>x. D x * (ln b * entropy_density b M \<nu> x))"  | 
| 
 
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229  | 
using D D_density ln_entropy  | 
| 
 
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230  | 
by (intro integral_translated_density) auto  | 
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231  | 
ultimately have M_int: "integrable M (\<lambda>x. D x * (ln b * entropy_density b M \<nu> x))"  | 
| 
 
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232  | 
by simp  | 
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233  | 
|
| 43920 | 234  | 
have D_neg: "(\<integral>\<^isup>+ x. ereal (- D x) \<partial>M) = 0"  | 
| 
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235  | 
using D by (subst positive_integral_0_iff_AE) auto  | 
| 
 
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236  | 
|
| 43920 | 237  | 
have "(\<integral>\<^isup>+ x. ereal (D x) \<partial>M) = \<nu> (space M)"  | 
| 
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238  | 
using RN D by (auto intro!: positive_integral_cong_AE)  | 
| 43920 | 239  | 
then have D_pos: "(\<integral>\<^isup>+ x. ereal (D x) \<partial>M) = 1"  | 
| 
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240  | 
using \<nu>.measure_space_1 by simp  | 
| 
 
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241  | 
|
| 
 
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242  | 
have "integrable M D"  | 
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243  | 
using D_pos D_neg D by (auto simp: integrable_def)  | 
| 
 
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244  | 
|
| 
 
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245  | 
have "integral\<^isup>L M D = 1"  | 
| 
 
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246  | 
using D_pos D_neg by (auto simp: lebesgue_integral_def)  | 
| 
 
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247  | 
|
| 
 
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248  | 
  let ?D_set = "{x\<in>space M. D x \<noteq> 0}"
 | 
| 
 
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249  | 
have [simp, intro]: "?D_set \<in> sets M"  | 
| 
 
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250  | 
using D by (auto intro: sets_Collect)  | 
| 
 
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251  | 
|
| 
 
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252  | 
have "0 \<le> 1 - \<mu>' ?D_set"  | 
| 
 
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253  | 
using prob_le_1 by (auto simp: field_simps)  | 
| 
 
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254  | 
also have "\<dots> = (\<integral> x. D x - indicator ?D_set x \<partial>M)"  | 
| 
 
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255  | 
using `integrable M D` `integral\<^isup>L M D = 1`  | 
| 
 
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256  | 
by (simp add: \<mu>'_def)  | 
| 
 
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257  | 
also have "\<dots> < (\<integral> x. D x * (ln b * entropy_density b M \<nu> x) \<partial>M)"  | 
| 
 
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258  | 
proof (rule integral_less_AE)  | 
| 
 
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259  | 
show "integrable M (\<lambda>x. D x - indicator ?D_set x)"  | 
| 
 
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260  | 
using `integrable M D`  | 
| 
 
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261  | 
by (intro integral_diff integral_indicator) auto  | 
| 
 
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262  | 
next  | 
| 
 
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263  | 
show "integrable M (\<lambda>x. D x * (ln b * entropy_density b M \<nu> x))"  | 
| 
 
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264  | 
by fact  | 
| 
 
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265  | 
next  | 
| 
 
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266  | 
    show "\<mu> {x\<in>space M. D x \<noteq> 1 \<and> D x \<noteq> 0} \<noteq> 0"
 | 
| 
 
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267  | 
proof  | 
| 
 
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268  | 
      assume eq_0: "\<mu> {x\<in>space M. D x \<noteq> 1 \<and> D x \<noteq> 0} = 0"
 | 
| 
 
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269  | 
then have disj: "AE x. D x = 1 \<or> D x = 0"  | 
| 
 
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270  | 
using D(1) by (auto intro!: AE_I[OF subset_refl] sets_Collect)  | 
| 
 
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271  | 
|
| 
 
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272  | 
      have "\<mu> {x\<in>space M. D x = 1} = (\<integral>\<^isup>+ x. indicator {x\<in>space M. D x = 1} x \<partial>M)"
 | 
| 
 
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273  | 
using D(1) by auto  | 
| 43920 | 274  | 
      also have "\<dots> = (\<integral>\<^isup>+ x. ereal (D x) * indicator {x\<in>space M. D x \<noteq> 0} x \<partial>M)"
 | 
275  | 
using disj by (auto intro!: positive_integral_cong_AE simp: indicator_def one_ereal_def)  | 
|
| 
43340
 
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276  | 
      also have "\<dots> = \<nu> {x\<in>space M. D x \<noteq> 0}"
 | 
| 
 
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277  | 
using D(1) D_density by auto  | 
| 
 
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278  | 
also have "\<dots> = \<nu> (space M)"  | 
| 
 
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279  | 
using D_density D(1) by (auto intro!: positive_integral_cong simp: indicator_def)  | 
| 
 
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280  | 
finally have "AE x. D x = 1"  | 
| 
 
60e181c4eae4
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281  | 
using D(1) \<nu>.measure_space_1 by (intro AE_I_eq_1) auto  | 
| 43920 | 282  | 
then have "(\<integral>\<^isup>+x. indicator A x\<partial>M) = (\<integral>\<^isup>+x. ereal (D x) * indicator A x\<partial>M)"  | 
283  | 
by (intro positive_integral_cong_AE) (auto simp: one_ereal_def[symmetric])  | 
|
| 
43340
 
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284  | 
also have "\<dots> = \<nu> A"  | 
| 
 
60e181c4eae4
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285  | 
using `A \<in> sets M` D_density by simp  | 
| 
 
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286  | 
finally show False using `A \<in> sets M` `\<nu> A \<noteq> \<mu> A` by simp  | 
| 
 
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287  | 
qed  | 
| 
 
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288  | 
    show "{x\<in>space M. D x \<noteq> 1 \<and> D x \<noteq> 0} \<in> sets M"
 | 
| 
 
60e181c4eae4
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289  | 
using D(1) by (auto intro: sets_Collect)  | 
| 
 
60e181c4eae4
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290  | 
|
| 
 
60e181c4eae4
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291  | 
    show "AE t. t \<in> {x\<in>space M. D x \<noteq> 1 \<and> D x \<noteq> 0} \<longrightarrow>
 | 
| 
 
60e181c4eae4
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292  | 
D t - indicator ?D_set t \<noteq> D t * (ln b * entropy_density b M \<nu> t)"  | 
| 
 
60e181c4eae4
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293  | 
using D(2)  | 
| 
 
60e181c4eae4
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294  | 
proof (elim AE_mp, safe intro!: AE_I2)  | 
| 
 
60e181c4eae4
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295  | 
fix t assume Dt: "t \<in> space M" "D t \<noteq> 1" "D t \<noteq> 0"  | 
| 43920 | 296  | 
and RN: "RN_deriv M \<nu> t = ereal (D t)"  | 
| 
43340
 
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297  | 
and eq: "D t - indicator ?D_set t = D t * (ln b * entropy_density b M \<nu> t)"  | 
| 
 
60e181c4eae4
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298  | 
|
| 
 
60e181c4eae4
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299  | 
have "D t - 1 = D t - indicator ?D_set t"  | 
| 
 
60e181c4eae4
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300  | 
using Dt by simp  | 
| 
 
60e181c4eae4
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301  | 
also note eq  | 
| 
 
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302  | 
also have "D t * (ln b * entropy_density b M \<nu> t) = - D t * ln (1 / D t)"  | 
| 
 
60e181c4eae4
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303  | 
using RN b_gt_1 `D t \<noteq> 0` `0 \<le> D t`  | 
| 
 
60e181c4eae4
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304  | 
by (simp add: entropy_density_def log_def ln_div less_le)  | 
| 
 
60e181c4eae4
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305  | 
finally have "ln (1 / D t) = 1 / D t - 1"  | 
| 
 
60e181c4eae4
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306  | 
using `D t \<noteq> 0` by (auto simp: field_simps)  | 
| 
 
60e181c4eae4
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307  | 
from ln_eq_minus_one[OF _ this] `D t \<noteq> 0` `0 \<le> D t` `D t \<noteq> 1`  | 
| 
 
60e181c4eae4
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308  | 
show False by auto  | 
| 
 
60e181c4eae4
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309  | 
qed  | 
| 
 
60e181c4eae4
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 | 
310  | 
|
| 
 
60e181c4eae4
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 | 
311  | 
show "AE t. D t - indicator ?D_set t \<le> D t * (ln b * entropy_density b M \<nu> t)"  | 
| 
 
60e181c4eae4
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312  | 
using D(2)  | 
| 
 
60e181c4eae4
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313  | 
proof (elim AE_mp, intro AE_I2 impI)  | 
| 43920 | 314  | 
fix t assume "t \<in> space M" and RN: "RN_deriv M \<nu> t = ereal (D t)"  | 
| 
43340
 
60e181c4eae4
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 | 
315  | 
show "D t - indicator ?D_set t \<le> D t * (ln b * entropy_density b M \<nu> t)"  | 
| 
 
60e181c4eae4
lemma: independence is equal to mutual information = 0
 
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316  | 
proof cases  | 
| 
 
60e181c4eae4
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317  | 
assume asm: "D t \<noteq> 0"  | 
| 
 
60e181c4eae4
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318  | 
then have "0 < D t" using `0 \<le> D t` by auto  | 
| 
 
60e181c4eae4
lemma: independence is equal to mutual information = 0
 
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319  | 
then have "0 < 1 / D t" by auto  | 
| 
 
60e181c4eae4
lemma: independence is equal to mutual information = 0
 
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320  | 
have "D t - indicator ?D_set t \<le> - D t * (1 / D t - 1)"  | 
| 
 
60e181c4eae4
lemma: independence is equal to mutual information = 0
 
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 | 
321  | 
using asm `t \<in> space M` by (simp add: field_simps)  | 
| 
 
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322  | 
also have "- D t * (1 / D t - 1) \<le> - D t * ln (1 / D t)"  | 
| 
 
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323  | 
using ln_le_minus_one `0 < 1 / D t` by (intro mult_left_mono_neg) auto  | 
| 
 
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324  | 
also have "\<dots> = D t * (ln b * entropy_density b M \<nu> t)"  | 
| 
 
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325  | 
using `0 < D t` RN b_gt_1  | 
| 
 
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326  | 
by (simp_all add: log_def ln_div entropy_density_def)  | 
| 
 
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327  | 
finally show ?thesis by simp  | 
| 
 
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328  | 
qed simp  | 
| 
 
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329  | 
qed  | 
| 
 
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330  | 
qed  | 
| 
 
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331  | 
also have "\<dots> = (\<integral> x. ln b * entropy_density b M \<nu> x \<partial>M\<lparr>measure := \<nu>\<rparr>)"  | 
| 
 
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332  | 
using D D_density ln_entropy  | 
| 
 
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333  | 
by (intro integral_translated_density[symmetric]) auto  | 
| 
 
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334  | 
also have "\<dots> = ln b * (\<integral> x. entropy_density b M \<nu> x \<partial>M\<lparr>measure := \<nu>\<rparr>)"  | 
| 
 
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335  | 
using int by (rule \<nu>.integral_cmult)  | 
| 
 
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336  | 
finally show "0 < KL_divergence b M \<nu>"  | 
| 
 
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337  | 
using b_gt_1 by (auto simp: KL_divergence_def zero_less_mult_iff)  | 
| 
 
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338  | 
qed  | 
| 
 
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339  | 
|
| 
 
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340  | 
lemma (in sigma_finite_measure) KL_eq_0:  | 
| 
 
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341  | 
assumes eq: "\<forall>A\<in>sets M. \<nu> A = measure M A"  | 
| 
 
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342  | 
shows "KL_divergence b M \<nu> = 0"  | 
| 
 
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343  | 
proof -  | 
| 
 
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344  | 
have "AE x. 1 = RN_deriv M \<nu> x"  | 
| 
 
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345  | 
proof (rule RN_deriv_unique)  | 
| 
 
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346  | 
show "measure_space (M\<lparr>measure := \<nu>\<rparr>)"  | 
| 
 
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347  | 
using eq by (intro measure_space_cong) auto  | 
| 
 
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348  | 
show "absolutely_continuous \<nu>"  | 
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349  | 
unfolding absolutely_continuous_def using eq by auto  | 
| 43920 | 350  | 
show "(\<lambda>x. 1) \<in> borel_measurable M" "AE x. 0 \<le> (1 :: ereal)" by auto  | 
| 
43340
 
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351  | 
fix A assume "A \<in> sets M"  | 
| 
 
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352  | 
with eq show "\<nu> A = \<integral>\<^isup>+ x. 1 * indicator A x \<partial>M" by simp  | 
| 
 
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353  | 
qed  | 
| 
 
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354  | 
then have "AE x. log b (real (RN_deriv M \<nu> x)) = 0"  | 
| 
 
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355  | 
by (elim AE_mp) simp  | 
| 
 
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356  | 
from integral_cong_AE[OF this]  | 
| 
 
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357  | 
have "integral\<^isup>L M (entropy_density b M \<nu>) = 0"  | 
| 
 
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358  | 
by (simp add: entropy_density_def comp_def)  | 
| 
 
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359  | 
with eq show "KL_divergence b M \<nu> = 0"  | 
| 
 
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360  | 
unfolding KL_divergence_def  | 
| 
 
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361  | 
by (subst integral_cong_measure) auto  | 
| 
 
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362  | 
qed  | 
| 
 
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363  | 
|
| 
 
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364  | 
lemma (in information_space) KL_eq_0_imp:  | 
| 
 
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365  | 
assumes ps: "prob_space (M\<lparr>measure := \<nu>\<rparr>)"  | 
| 
 
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366  | 
assumes ac: "absolutely_continuous \<nu>"  | 
| 
 
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367  | 
assumes int: "integrable (M\<lparr> measure := \<nu> \<rparr>) (entropy_density b M \<nu>)"  | 
| 
 
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368  | 
assumes KL: "KL_divergence b M \<nu> = 0"  | 
| 
 
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369  | 
shows "\<forall>A\<in>sets M. \<nu> A = \<mu> A"  | 
| 
 
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370  | 
by (metis less_imp_neq KL_gt_0 assms)  | 
| 
 
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371  | 
|
| 
 
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372  | 
lemma (in information_space) KL_ge_0:  | 
| 
 
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373  | 
assumes ps: "prob_space (M\<lparr>measure := \<nu>\<rparr>)"  | 
| 
 
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374  | 
assumes ac: "absolutely_continuous \<nu>"  | 
| 
 
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375  | 
assumes int: "integrable (M\<lparr> measure := \<nu> \<rparr>) (entropy_density b M \<nu>)"  | 
| 
 
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376  | 
shows "0 \<le> KL_divergence b M \<nu>"  | 
| 
 
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377  | 
using KL_eq_0 KL_gt_0[OF ps ac int]  | 
| 
 
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378  | 
by (cases "\<forall>A\<in>sets M. \<nu> A = measure M A") (auto simp: le_less)  | 
| 
 
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379  | 
|
| 38656 | 380  | 
|
| 
41833
 
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381  | 
lemma (in sigma_finite_measure) KL_divergence_vimage:  | 
| 
 
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382  | 
assumes T: "T \<in> measure_preserving M M'"  | 
| 
 
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383  | 
and T': "T' \<in> measure_preserving (M'\<lparr> measure := \<nu>' \<rparr>) (M\<lparr> measure := \<nu> \<rparr>)"  | 
| 
 
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384  | 
and inv: "\<And>x. x \<in> space M \<Longrightarrow> T' (T x) = x"  | 
| 
 
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385  | 
and inv': "\<And>x. x \<in> space M' \<Longrightarrow> T (T' x) = x"  | 
| 
 
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386  | 
and \<nu>': "measure_space (M'\<lparr>measure := \<nu>'\<rparr>)" "measure_space.absolutely_continuous M' \<nu>'"  | 
| 
 
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387  | 
and "1 < b"  | 
| 
 
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388  | 
shows "KL_divergence b M' \<nu>' = KL_divergence b M \<nu>"  | 
| 
 
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389  | 
proof -  | 
| 
 
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390  | 
interpret \<nu>': measure_space "M'\<lparr>measure := \<nu>'\<rparr>" by fact  | 
| 
 
563bea92b2c0
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391  | 
have M: "measure_space (M\<lparr> measure := \<nu>\<rparr>)"  | 
| 
 
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392  | 
by (rule \<nu>'.measure_space_vimage[OF _ T'], simp) default  | 
| 
 
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393  | 
have "sigma_algebra (M'\<lparr> measure := \<nu>'\<rparr>)" by default  | 
| 
 
563bea92b2c0
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394  | 
then have saM': "sigma_algebra M'" by simp  | 
| 
 
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395  | 
then interpret M': measure_space M' by (rule measure_space_vimage) fact  | 
| 
 
563bea92b2c0
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396  | 
have ac: "absolutely_continuous \<nu>" unfolding absolutely_continuous_def  | 
| 
 
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397  | 
proof safe  | 
| 
 
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398  | 
fix N assume N: "N \<in> sets M" and N_0: "\<mu> N = 0"  | 
| 
 
563bea92b2c0
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399  | 
then have N': "T' -` N \<inter> space M' \<in> sets M'"  | 
| 
 
563bea92b2c0
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400  | 
using T' by (auto simp: measurable_def measure_preserving_def)  | 
| 
 
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 | 
401  | 
have "T -` (T' -` N \<inter> space M') \<inter> space M = N"  | 
| 
 
563bea92b2c0
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402  | 
using inv T N sets_into_space[OF N] by (auto simp: measurable_def measure_preserving_def)  | 
| 
 
563bea92b2c0
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 | 
403  | 
then have "measure M' (T' -` N \<inter> space M') = 0"  | 
| 
 
563bea92b2c0
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 | 
404  | 
using measure_preservingD[OF T N'] N_0 by auto  | 
| 
 
563bea92b2c0
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 | 
405  | 
with \<nu>'(2) N' show "\<nu> N = 0" using measure_preservingD[OF T', of N] N  | 
| 
 
563bea92b2c0
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 | 
406  | 
unfolding M'.absolutely_continuous_def measurable_def by auto  | 
| 
 
563bea92b2c0
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407  | 
qed  | 
| 
 
563bea92b2c0
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changeset
 | 
408  | 
|
| 
 
563bea92b2c0
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changeset
 | 
409  | 
have sa: "sigma_algebra (M\<lparr>measure := \<nu>\<rparr>)" by simp default  | 
| 
 
563bea92b2c0
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 | 
410  | 
have AE: "AE x. RN_deriv M' \<nu>' (T x) = RN_deriv M \<nu> x"  | 
| 
 
563bea92b2c0
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 | 
411  | 
by (rule RN_deriv_vimage[OF T T' inv \<nu>'])  | 
| 
 
563bea92b2c0
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 | 
412  | 
show ?thesis  | 
| 
43340
 
60e181c4eae4
lemma: independence is equal to mutual information = 0
 
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diff
changeset
 | 
413  | 
unfolding KL_divergence_def entropy_density_def comp_def  | 
| 
41833
 
563bea92b2c0
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414  | 
proof (subst \<nu>'.integral_vimage[OF sa T'])  | 
| 
 
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415  | 
show "(\<lambda>x. log b (real (RN_deriv M \<nu> x))) \<in> borel_measurable (M\<lparr>measure := \<nu>\<rparr>)"  | 
| 
 
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416  | 
by (auto intro!: RN_deriv[OF M ac] borel_measurable_log[OF _ `1 < b`])  | 
| 
 
563bea92b2c0
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 | 
417  | 
have "(\<integral> x. log b (real (RN_deriv M' \<nu>' x)) \<partial>M'\<lparr>measure := \<nu>'\<rparr>) =  | 
| 
 
563bea92b2c0
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418  | 
(\<integral> x. log b (real (RN_deriv M' \<nu>' (T (T' x)))) \<partial>M'\<lparr>measure := \<nu>'\<rparr>)" (is "?l = _")  | 
| 
 
563bea92b2c0
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419  | 
using inv' by (auto intro!: \<nu>'.integral_cong)  | 
| 
 
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420  | 
also have "\<dots> = (\<integral> x. log b (real (RN_deriv M \<nu> (T' x))) \<partial>M'\<lparr>measure := \<nu>'\<rparr>)" (is "_ = ?r")  | 
| 
 
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 | 
421  | 
using M ac AE  | 
| 
 
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 | 
422  | 
by (intro \<nu>'.integral_cong_AE \<nu>'.almost_everywhere_vimage[OF sa T'] absolutely_continuous_AE[OF M])  | 
| 
 
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 | 
423  | 
(auto elim!: AE_mp)  | 
| 
 
563bea92b2c0
add lemma KL_divergence_vimage, mutual_information_generic
 
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 | 
424  | 
finally show "?l = ?r" .  | 
| 
 
563bea92b2c0
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 | 
425  | 
qed  | 
| 
 
563bea92b2c0
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 | 
426  | 
qed  | 
| 
 
563bea92b2c0
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changeset
 | 
427  | 
|
| 40859 | 428  | 
lemma (in sigma_finite_measure) KL_divergence_cong:  | 
| 
41689
 
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 | 
429  | 
assumes "measure_space (M\<lparr>measure := \<nu>\<rparr>)" (is "measure_space ?\<nu>")  | 
| 
 
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430  | 
assumes [simp]: "sets N = sets M" "space N = space M"  | 
| 
 
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 | 
431  | 
"\<And>A. A \<in> sets M \<Longrightarrow> measure N A = \<mu> A"  | 
| 
 
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432  | 
"\<And>A. A \<in> sets M \<Longrightarrow> \<nu> A = \<nu>' A"  | 
| 
 
3e39b0e730d6
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changeset
 | 
433  | 
shows "KL_divergence b M \<nu> = KL_divergence b N \<nu>'"  | 
| 40859 | 434  | 
proof -  | 
| 
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435  | 
interpret \<nu>: measure_space ?\<nu> by fact  | 
| 
 
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 | 
436  | 
have "KL_divergence b M \<nu> = \<integral>x. log b (real (RN_deriv N \<nu>' x)) \<partial>?\<nu>"  | 
| 
43340
 
60e181c4eae4
lemma: independence is equal to mutual information = 0
 
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changeset
 | 
437  | 
by (simp cong: RN_deriv_cong \<nu>.integral_cong add: KL_divergence_def entropy_density_def)  | 
| 
41689
 
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changeset
 | 
438  | 
also have "\<dots> = KL_divergence b N \<nu>'"  | 
| 
43340
 
60e181c4eae4
lemma: independence is equal to mutual information = 0
 
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changeset
 | 
439  | 
by (auto intro!: \<nu>.integral_cong_measure[symmetric] simp: KL_divergence_def entropy_density_def comp_def)  | 
| 
41689
 
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changeset
 | 
440  | 
finally show ?thesis .  | 
| 40859 | 441  | 
qed  | 
442  | 
||
| 38656 | 443  | 
lemma (in finite_measure_space) KL_divergence_eq_finite:  | 
| 
41689
 
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changeset
 | 
444  | 
assumes v: "finite_measure_space (M\<lparr>measure := \<nu>\<rparr>)"  | 
| 40859 | 445  | 
assumes ac: "absolutely_continuous \<nu>"  | 
| 
41689
 
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changeset
 | 
446  | 
  shows "KL_divergence b M \<nu> = (\<Sum>x\<in>space M. real (\<nu> {x}) * log b (real (\<nu> {x}) / real (\<mu> {x})))" (is "_ = ?sum")
 | 
| 
43340
 
60e181c4eae4
lemma: independence is equal to mutual information = 0
 
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 | 
447  | 
proof (simp add: KL_divergence_def finite_measure_space.integral_finite_singleton[OF v] entropy_density_def)  | 
| 
41689
 
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changeset
 | 
448  | 
interpret v: finite_measure_space "M\<lparr>measure := \<nu>\<rparr>" by fact  | 
| 
 
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changeset
 | 
449  | 
have ms: "measure_space (M\<lparr>measure := \<nu>\<rparr>)" by default  | 
| 
 
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changeset
 | 
450  | 
  show "(\<Sum>x \<in> space M. log b (real (RN_deriv M \<nu> x)) * real (\<nu> {x})) = ?sum"
 | 
| 38656 | 451  | 
using RN_deriv_finite_measure[OF ms ac]  | 
| 
41981
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
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452  | 
by (auto intro!: setsum_cong simp: field_simps)  | 
| 38656 | 453  | 
qed  | 
| 
36080
 
0d9affa4e73c
Added Information theory and Example: dining cryptographers
 
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diff
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 | 
454  | 
|
| 38656 | 455  | 
lemma (in finite_prob_space) KL_divergence_positive_finite:  | 
| 
41689
 
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changeset
 | 
456  | 
assumes v: "finite_prob_space (M\<lparr>measure := \<nu>\<rparr>)"  | 
| 40859 | 457  | 
assumes ac: "absolutely_continuous \<nu>"  | 
| 38656 | 458  | 
and "1 < b"  | 
| 
41689
 
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changeset
 | 
459  | 
shows "0 \<le> KL_divergence b M \<nu>"  | 
| 38656 | 460  | 
proof -  | 
| 
43340
 
60e181c4eae4
lemma: independence is equal to mutual information = 0
 
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changeset
 | 
461  | 
interpret information_space M by default fact  | 
| 
41689
 
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the measure valuation is again part of the measure_space type, instead of an explicit parameter to the locale;
 
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parents: 
41661 
diff
changeset
 | 
462  | 
interpret v: finite_prob_space "M\<lparr>measure := \<nu>\<rparr>" by fact  | 
| 
45777
 
c36637603821
remove unnecessary sublocale instantiations in HOL-Probability (for clarity and speedup); remove Infinite_Product_Measure.product_prob_space which was a duplicate of Probability_Measure.product_prob_space
 
hoelzl 
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45712 
diff
changeset
 | 
463  | 
have ps: "prob_space (M\<lparr>measure := \<nu>\<rparr>)" by unfold_locales  | 
| 
43340
 
60e181c4eae4
lemma: independence is equal to mutual information = 0
 
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changeset
 | 
464  | 
from KL_ge_0[OF this ac v.integral_finite_singleton(1)] show ?thesis .  | 
| 
36080
 
0d9affa4e73c
Added Information theory and Example: dining cryptographers
 
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diff
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 | 
465  | 
qed  | 
| 
 
0d9affa4e73c
Added Information theory and Example: dining cryptographers
 
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diff
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 | 
466  | 
|
| 39097 | 467  | 
subsection {* Mutual Information *}
 | 
468  | 
||
| 
36080
 
0d9affa4e73c
Added Information theory and Example: dining cryptographers
 
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 | 
469  | 
definition (in prob_space)  | 
| 38656 | 470  | 
"mutual_information b S T X Y =  | 
| 43920 | 471  | 
KL_divergence b (S\<lparr>measure := ereal\<circ>distribution X\<rparr> \<Otimes>\<^isub>M T\<lparr>measure := ereal\<circ>distribution Y\<rparr>)  | 
472  | 
(ereal\<circ>joint_distribution X Y)"  | 
|
| 
36080
 
0d9affa4e73c
Added Information theory and Example: dining cryptographers
 
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diff
changeset
 | 
473  | 
|
| 
43340
 
60e181c4eae4
lemma: independence is equal to mutual information = 0
 
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changeset
 | 
474  | 
lemma (in information_space)  | 
| 
 
60e181c4eae4
lemma: independence is equal to mutual information = 0
 
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 | 
475  | 
fixes S T X Y  | 
| 43920 | 476  | 
defines "P \<equiv> S\<lparr>measure := ereal\<circ>distribution X\<rparr> \<Otimes>\<^isub>M T\<lparr>measure := ereal\<circ>distribution Y\<rparr>"  | 
| 
43340
 
60e181c4eae4
lemma: independence is equal to mutual information = 0
 
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changeset
 | 
477  | 
shows "indep_var S X T Y \<longleftrightarrow>  | 
| 
 
60e181c4eae4
lemma: independence is equal to mutual information = 0
 
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 | 
478  | 
(random_variable S X \<and> random_variable T Y \<and>  | 
| 43920 | 479  | 
measure_space.absolutely_continuous P (ereal\<circ>joint_distribution X Y) \<and>  | 
480  | 
integrable (P\<lparr>measure := (ereal\<circ>joint_distribution X Y)\<rparr>)  | 
|
481  | 
(entropy_density b P (ereal\<circ>joint_distribution X Y)) \<and>  | 
|
| 
43340
 
60e181c4eae4
lemma: independence is equal to mutual information = 0
 
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changeset
 | 
482  | 
mutual_information b S T X Y = 0)"  | 
| 
 
60e181c4eae4
lemma: independence is equal to mutual information = 0
 
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changeset
 | 
483  | 
proof safe  | 
| 
 
60e181c4eae4
lemma: independence is equal to mutual information = 0
 
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parents: 
42148 
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changeset
 | 
484  | 
assume indep: "indep_var S X T Y"  | 
| 
 
60e181c4eae4
lemma: independence is equal to mutual information = 0
 
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changeset
 | 
485  | 
then have "random_variable S X" "random_variable T Y"  | 
| 
 
60e181c4eae4
lemma: independence is equal to mutual information = 0
 
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changeset
 | 
486  | 
by (blast dest: indep_var_rv1 indep_var_rv2)+  | 
| 
 
60e181c4eae4
lemma: independence is equal to mutual information = 0
 
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changeset
 | 
487  | 
then show "sigma_algebra S" "X \<in> measurable M S" "sigma_algebra T" "Y \<in> measurable M T"  | 
| 
 
60e181c4eae4
lemma: independence is equal to mutual information = 0
 
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changeset
 | 
488  | 
by blast+  | 
| 
 
60e181c4eae4
lemma: independence is equal to mutual information = 0
 
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parents: 
42148 
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changeset
 | 
489  | 
|
| 43920 | 490  | 
interpret X: prob_space "S\<lparr>measure := ereal\<circ>distribution X\<rparr>"  | 
| 
43340
 
60e181c4eae4
lemma: independence is equal to mutual information = 0
 
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parents: 
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changeset
 | 
491  | 
by (rule distribution_prob_space) fact  | 
| 43920 | 492  | 
interpret Y: prob_space "T\<lparr>measure := ereal\<circ>distribution Y\<rparr>"  | 
| 
43340
 
60e181c4eae4
lemma: independence is equal to mutual information = 0
 
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parents: 
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changeset
 | 
493  | 
by (rule distribution_prob_space) fact  | 
| 43920 | 494  | 
interpret XY: pair_prob_space "S\<lparr>measure := ereal\<circ>distribution X\<rparr>" "T\<lparr>measure := ereal\<circ>distribution Y\<rparr>" by default  | 
| 
43340
 
60e181c4eae4
lemma: independence is equal to mutual information = 0
 
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parents: 
42148 
diff
changeset
 | 
495  | 
interpret XY: information_space XY.P b by default (rule b_gt_1)  | 
| 
 
60e181c4eae4
lemma: independence is equal to mutual information = 0
 
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changeset
 | 
496  | 
|
| 43920 | 497  | 
let ?J = "XY.P\<lparr> measure := (ereal\<circ>joint_distribution X Y) \<rparr>"  | 
| 
43340
 
60e181c4eae4
lemma: independence is equal to mutual information = 0
 
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changeset
 | 
498  | 
  { fix A assume "A \<in> sets XY.P"
 | 
| 43920 | 499  | 
then have "ereal (joint_distribution X Y A) = XY.\<mu> A"  | 
| 
43340
 
60e181c4eae4
lemma: independence is equal to mutual information = 0
 
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changeset
 | 
500  | 
using indep_var_distributionD[OF indep]  | 
| 
 
60e181c4eae4
lemma: independence is equal to mutual information = 0
 
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changeset
 | 
501  | 
by (simp add: XY.P.finite_measure_eq) }  | 
| 
 
60e181c4eae4
lemma: independence is equal to mutual information = 0
 
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parents: 
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changeset
 | 
502  | 
note j_eq = this  | 
| 
 
60e181c4eae4
lemma: independence is equal to mutual information = 0
 
hoelzl 
parents: 
42148 
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changeset
 | 
503  | 
|
| 
 
60e181c4eae4
lemma: independence is equal to mutual information = 0
 
hoelzl 
parents: 
42148 
diff
changeset
 | 
504  | 
interpret J: prob_space ?J  | 
| 
 
60e181c4eae4
lemma: independence is equal to mutual information = 0
 
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parents: 
42148 
diff
changeset
 | 
505  | 
using j_eq by (intro XY.prob_space_cong) auto  | 
| 
 
60e181c4eae4
lemma: independence is equal to mutual information = 0
 
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parents: 
42148 
diff
changeset
 | 
506  | 
|
| 43920 | 507  | 
have ac: "XY.absolutely_continuous (ereal\<circ>joint_distribution X Y)"  | 
| 
43340
 
60e181c4eae4
lemma: independence is equal to mutual information = 0
 
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parents: 
42148 
diff
changeset
 | 
508  | 
by (simp add: XY.absolutely_continuous_def j_eq)  | 
| 43920 | 509  | 
then show "measure_space.absolutely_continuous P (ereal\<circ>joint_distribution X Y)"  | 
| 
43340
 
60e181c4eae4
lemma: independence is equal to mutual information = 0
 
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parents: 
42148 
diff
changeset
 | 
510  | 
unfolding P_def .  | 
| 
 
60e181c4eae4
lemma: independence is equal to mutual information = 0
 
hoelzl 
parents: 
42148 
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changeset
 | 
511  | 
|
| 43920 | 512  | 
have ed: "entropy_density b XY.P (ereal\<circ>joint_distribution X Y) \<in> borel_measurable XY.P"  | 
| 
43340
 
60e181c4eae4
lemma: independence is equal to mutual information = 0
 
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parents: 
42148 
diff
changeset
 | 
513  | 
by (rule XY.measurable_entropy_density) (default | fact)+  | 
| 
 
60e181c4eae4
lemma: independence is equal to mutual information = 0
 
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parents: 
42148 
diff
changeset
 | 
514  | 
|
| 43920 | 515  | 
have "AE x in XY.P. 1 = RN_deriv XY.P (ereal\<circ>joint_distribution X Y) x"  | 
| 
43340
 
60e181c4eae4
lemma: independence is equal to mutual information = 0
 
hoelzl 
parents: 
42148 
diff
changeset
 | 
516  | 
proof (rule XY.RN_deriv_unique[OF _ ac])  | 
| 
 
60e181c4eae4
lemma: independence is equal to mutual information = 0
 
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parents: 
42148 
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changeset
 | 
517  | 
show "measure_space ?J" by default  | 
| 
 
60e181c4eae4
lemma: independence is equal to mutual information = 0
 
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parents: 
42148 
diff
changeset
 | 
518  | 
fix A assume "A \<in> sets XY.P"  | 
| 43920 | 519  | 
then show "(ereal\<circ>joint_distribution X Y) A = (\<integral>\<^isup>+ x. 1 * indicator A x \<partial>XY.P)"  | 
| 
43340
 
60e181c4eae4
lemma: independence is equal to mutual information = 0
 
hoelzl 
parents: 
42148 
diff
changeset
 | 
520  | 
by (simp add: j_eq)  | 
| 
 
60e181c4eae4
lemma: independence is equal to mutual information = 0
 
hoelzl 
parents: 
42148 
diff
changeset
 | 
521  | 
qed (insert XY.measurable_const[of 1 borel], auto)  | 
| 43920 | 522  | 
then have ae_XY: "AE x in XY.P. entropy_density b XY.P (ereal\<circ>joint_distribution X Y) x = 0"  | 
| 
43340
 
60e181c4eae4
lemma: independence is equal to mutual information = 0
 
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parents: 
42148 
diff
changeset
 | 
523  | 
by (elim XY.AE_mp) (simp add: entropy_density_def)  | 
| 43920 | 524  | 
have ae_J: "AE x in ?J. entropy_density b XY.P (ereal\<circ>joint_distribution X Y) x = 0"  | 
| 
43340
 
60e181c4eae4
lemma: independence is equal to mutual information = 0
 
hoelzl 
parents: 
42148 
diff
changeset
 | 
525  | 
proof (rule XY.absolutely_continuous_AE)  | 
| 
 
60e181c4eae4
lemma: independence is equal to mutual information = 0
 
hoelzl 
parents: 
42148 
diff
changeset
 | 
526  | 
show "measure_space ?J" by default  | 
| 
 
60e181c4eae4
lemma: independence is equal to mutual information = 0
 
hoelzl 
parents: 
42148 
diff
changeset
 | 
527  | 
show "XY.absolutely_continuous (measure ?J)"  | 
| 
 
60e181c4eae4
lemma: independence is equal to mutual information = 0
 
hoelzl 
parents: 
42148 
diff
changeset
 | 
528  | 
using ac by simp  | 
| 
 
60e181c4eae4
lemma: independence is equal to mutual information = 0
 
hoelzl 
parents: 
42148 
diff
changeset
 | 
529  | 
qed (insert ae_XY, simp_all)  | 
| 43920 | 530  | 
then show "integrable (P\<lparr>measure := (ereal\<circ>joint_distribution X Y)\<rparr>)  | 
531  | 
(entropy_density b P (ereal\<circ>joint_distribution X Y))"  | 
|
| 
43340
 
60e181c4eae4
lemma: independence is equal to mutual information = 0
 
hoelzl 
parents: 
42148 
diff
changeset
 | 
532  | 
unfolding P_def  | 
| 
 
60e181c4eae4
lemma: independence is equal to mutual information = 0
 
hoelzl 
parents: 
42148 
diff
changeset
 | 
533  | 
using ed XY.measurable_const[of 0 borel]  | 
| 
 
60e181c4eae4
lemma: independence is equal to mutual information = 0
 
hoelzl 
parents: 
42148 
diff
changeset
 | 
534  | 
by (subst J.integrable_cong_AE) auto  | 
| 
 
60e181c4eae4
lemma: independence is equal to mutual information = 0
 
hoelzl 
parents: 
42148 
diff
changeset
 | 
535  | 
|
| 
 
60e181c4eae4
lemma: independence is equal to mutual information = 0
 
hoelzl 
parents: 
42148 
diff
changeset
 | 
536  | 
show "mutual_information b S T X Y = 0"  | 
| 
 
60e181c4eae4
lemma: independence is equal to mutual information = 0
 
hoelzl 
parents: 
42148 
diff
changeset
 | 
537  | 
unfolding mutual_information_def KL_divergence_def P_def  | 
| 
 
60e181c4eae4
lemma: independence is equal to mutual information = 0
 
hoelzl 
parents: 
42148 
diff
changeset
 | 
538  | 
by (subst J.integral_cong_AE[OF ae_J]) simp  | 
| 
 
60e181c4eae4
lemma: independence is equal to mutual information = 0
 
hoelzl 
parents: 
42148 
diff
changeset
 | 
539  | 
next  | 
| 
 
60e181c4eae4
lemma: independence is equal to mutual information = 0
 
hoelzl 
parents: 
42148 
diff
changeset
 | 
540  | 
assume "sigma_algebra S" "X \<in> measurable M S" "sigma_algebra T" "Y \<in> measurable M T"  | 
| 
 
60e181c4eae4
lemma: independence is equal to mutual information = 0
 
hoelzl 
parents: 
42148 
diff
changeset
 | 
541  | 
then have rvs: "random_variable S X" "random_variable T Y" by blast+  | 
| 
 
60e181c4eae4
lemma: independence is equal to mutual information = 0
 
hoelzl 
parents: 
42148 
diff
changeset
 | 
542  | 
|
| 43920 | 543  | 
interpret X: prob_space "S\<lparr>measure := ereal\<circ>distribution X\<rparr>"  | 
| 
43340
 
60e181c4eae4
lemma: independence is equal to mutual information = 0
 
hoelzl 
parents: 
42148 
diff
changeset
 | 
544  | 
by (rule distribution_prob_space) fact  | 
| 43920 | 545  | 
interpret Y: prob_space "T\<lparr>measure := ereal\<circ>distribution Y\<rparr>"  | 
| 
43340
 
60e181c4eae4
lemma: independence is equal to mutual information = 0
 
hoelzl 
parents: 
42148 
diff
changeset
 | 
546  | 
by (rule distribution_prob_space) fact  | 
| 43920 | 547  | 
interpret XY: pair_prob_space "S\<lparr>measure := ereal\<circ>distribution X\<rparr>" "T\<lparr>measure := ereal\<circ>distribution Y\<rparr>" by default  | 
| 
43340
 
60e181c4eae4
lemma: independence is equal to mutual information = 0
 
hoelzl 
parents: 
42148 
diff
changeset
 | 
548  | 
interpret XY: information_space XY.P b by default (rule b_gt_1)  | 
| 
 
60e181c4eae4
lemma: independence is equal to mutual information = 0
 
hoelzl 
parents: 
42148 
diff
changeset
 | 
549  | 
|
| 43920 | 550  | 
let ?J = "XY.P\<lparr> measure := (ereal\<circ>joint_distribution X Y) \<rparr>"  | 
| 
43340
 
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551  | 
interpret J: prob_space ?J  | 
| 
 
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lemma: independence is equal to mutual information = 0
 
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552  | 
using rvs by (intro joint_distribution_prob_space) auto  | 
| 
 
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lemma: independence is equal to mutual information = 0
 
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553  | 
|
| 43920 | 554  | 
assume ac: "measure_space.absolutely_continuous P (ereal\<circ>joint_distribution X Y)"  | 
555  | 
assume int: "integrable (P\<lparr>measure := (ereal\<circ>joint_distribution X Y)\<rparr>)  | 
|
556  | 
(entropy_density b P (ereal\<circ>joint_distribution X Y))"  | 
|
| 
43340
 
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557  | 
assume I_eq_0: "mutual_information b S T X Y = 0"  | 
| 
 
60e181c4eae4
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 | 
558  | 
|
| 43920 | 559  | 
have eq: "\<forall>A\<in>sets XY.P. (ereal \<circ> joint_distribution X Y) A = XY.\<mu> A"  | 
| 
43340
 
60e181c4eae4
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 | 
560  | 
proof (rule XY.KL_eq_0_imp)  | 
| 
45777
 
c36637603821
remove unnecessary sublocale instantiations in HOL-Probability (for clarity and speedup); remove Infinite_Product_Measure.product_prob_space which was a duplicate of Probability_Measure.product_prob_space
 
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 | 
561  | 
show "prob_space ?J" by unfold_locales  | 
| 43920 | 562  | 
show "XY.absolutely_continuous (ereal\<circ>joint_distribution X Y)"  | 
| 
43340
 
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563  | 
using ac by (simp add: P_def)  | 
| 43920 | 564  | 
show "integrable ?J (entropy_density b XY.P (ereal\<circ>joint_distribution X Y))"  | 
| 
43340
 
60e181c4eae4
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565  | 
using int by (simp add: P_def)  | 
| 43920 | 566  | 
show "KL_divergence b XY.P (ereal\<circ>joint_distribution X Y) = 0"  | 
| 
43340
 
60e181c4eae4
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 | 
567  | 
using I_eq_0 unfolding mutual_information_def by (simp add: P_def)  | 
| 
 
60e181c4eae4
lemma: independence is equal to mutual information = 0
 
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 | 
568  | 
qed  | 
| 
 
60e181c4eae4
lemma: independence is equal to mutual information = 0
 
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changeset
 | 
569  | 
|
| 
 
60e181c4eae4
lemma: independence is equal to mutual information = 0
 
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changeset
 | 
570  | 
  { fix S X assume "sigma_algebra S"
 | 
| 
 
60e181c4eae4
lemma: independence is equal to mutual information = 0
 
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 | 
571  | 
interpret S: sigma_algebra S by fact  | 
| 
 
60e181c4eae4
lemma: independence is equal to mutual information = 0
 
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 | 
572  | 
    have "Int_stable \<lparr>space = space M, sets = {X -` A \<inter> space M |A. A \<in> sets S}\<rparr>"
 | 
| 
 
60e181c4eae4
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 | 
573  | 
proof (safe intro!: Int_stableI)  | 
| 
 
60e181c4eae4
lemma: independence is equal to mutual information = 0
 
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 | 
574  | 
fix A B assume "A \<in> sets S" "B \<in> sets S"  | 
| 
 
60e181c4eae4
lemma: independence is equal to mutual information = 0
 
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 | 
575  | 
then show "\<exists>C. (X -` A \<inter> space M) \<inter> (X -` B \<inter> space M) = (X -` C \<inter> space M) \<and> C \<in> sets S"  | 
| 
 
60e181c4eae4
lemma: independence is equal to mutual information = 0
 
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 | 
576  | 
by (intro exI[of _ "A \<inter> B"]) auto  | 
| 
 
60e181c4eae4
lemma: independence is equal to mutual information = 0
 
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 | 
577  | 
qed }  | 
| 
 
60e181c4eae4
lemma: independence is equal to mutual information = 0
 
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 | 
578  | 
note Int_stable = this  | 
| 
 
60e181c4eae4
lemma: independence is equal to mutual information = 0
 
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changeset
 | 
579  | 
|
| 
 
60e181c4eae4
lemma: independence is equal to mutual information = 0
 
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 | 
580  | 
show "indep_var S X T Y" unfolding indep_var_eq  | 
| 
 
60e181c4eae4
lemma: independence is equal to mutual information = 0
 
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 | 
581  | 
proof (intro conjI indep_set_sigma_sets Int_stable)  | 
| 
 
60e181c4eae4
lemma: independence is equal to mutual information = 0
 
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 | 
582  | 
    show "indep_set {X -` A \<inter> space M |A. A \<in> sets S} {Y -` A \<inter> space M |A. A \<in> sets T}"
 | 
| 
 
60e181c4eae4
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changeset
 | 
583  | 
proof (safe intro!: indep_setI)  | 
| 
 
60e181c4eae4
lemma: independence is equal to mutual information = 0
 
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 | 
584  | 
      { fix A assume "A \<in> sets S" then show "X -` A \<inter> space M \<in> sets M"
 | 
| 
 
60e181c4eae4
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 | 
585  | 
using `X \<in> measurable M S` by (auto intro: measurable_sets) }  | 
| 
 
60e181c4eae4
lemma: independence is equal to mutual information = 0
 
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changeset
 | 
586  | 
      { fix A assume "A \<in> sets T" then show "Y -` A \<inter> space M \<in> sets M"
 | 
| 
 
60e181c4eae4
lemma: independence is equal to mutual information = 0
 
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 | 
587  | 
using `Y \<in> measurable M T` by (auto intro: measurable_sets) }  | 
| 
 
60e181c4eae4
lemma: independence is equal to mutual information = 0
 
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 | 
588  | 
next  | 
| 
 
60e181c4eae4
lemma: independence is equal to mutual information = 0
 
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 | 
589  | 
fix A B assume ab: "A \<in> sets S" "B \<in> sets T"  | 
| 43920 | 590  | 
have "ereal (prob ((X -` A \<inter> space M) \<inter> (Y -` B \<inter> space M))) =  | 
591  | 
ereal (joint_distribution X Y (A \<times> B))"  | 
|
| 
43340
 
60e181c4eae4
lemma: independence is equal to mutual information = 0
 
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changeset
 | 
592  | 
unfolding distribution_def  | 
| 43920 | 593  | 
by (intro arg_cong[where f="\<lambda>C. ereal (prob C)"]) auto  | 
| 
43340
 
60e181c4eae4
lemma: independence is equal to mutual information = 0
 
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 | 
594  | 
also have "\<dots> = XY.\<mu> (A \<times> B)"  | 
| 
 
60e181c4eae4
lemma: independence is equal to mutual information = 0
 
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changeset
 | 
595  | 
using ab eq by (auto simp: XY.finite_measure_eq)  | 
| 43920 | 596  | 
also have "\<dots> = ereal (distribution X A) * ereal (distribution Y B)"  | 
| 
43340
 
60e181c4eae4
lemma: independence is equal to mutual information = 0
 
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changeset
 | 
597  | 
using ab by (simp add: XY.pair_measure_times)  | 
| 
 
60e181c4eae4
lemma: independence is equal to mutual information = 0
 
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changeset
 | 
598  | 
finally show "prob ((X -` A \<inter> space M) \<inter> (Y -` B \<inter> space M)) =  | 
| 
 
60e181c4eae4
lemma: independence is equal to mutual information = 0
 
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changeset
 | 
599  | 
prob (X -` A \<inter> space M) * prob (Y -` B \<inter> space M)"  | 
| 
 
60e181c4eae4
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changeset
 | 
600  | 
unfolding distribution_def by simp  | 
| 
 
60e181c4eae4
lemma: independence is equal to mutual information = 0
 
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changeset
 | 
601  | 
qed  | 
| 
 
60e181c4eae4
lemma: independence is equal to mutual information = 0
 
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parents: 
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diff
changeset
 | 
602  | 
qed fact+  | 
| 
 
60e181c4eae4
lemma: independence is equal to mutual information = 0
 
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parents: 
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diff
changeset
 | 
603  | 
qed  | 
| 
 
60e181c4eae4
lemma: independence is equal to mutual information = 0
 
hoelzl 
parents: 
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diff
changeset
 | 
604  | 
|
| 
 
60e181c4eae4
lemma: independence is equal to mutual information = 0
 
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parents: 
42148 
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changeset
 | 
605  | 
lemma (in information_space) mutual_information_commute_generic:  | 
| 
 
60e181c4eae4
lemma: independence is equal to mutual information = 0
 
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parents: 
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changeset
 | 
606  | 
assumes X: "random_variable S X" and Y: "random_variable T Y"  | 
| 
 
60e181c4eae4
lemma: independence is equal to mutual information = 0
 
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changeset
 | 
607  | 
assumes ac: "measure_space.absolutely_continuous  | 
| 43920 | 608  | 
(S\<lparr>measure := ereal\<circ>distribution X\<rparr> \<Otimes>\<^isub>M T\<lparr>measure := ereal\<circ>distribution Y\<rparr>) (ereal\<circ>joint_distribution X Y)"  | 
| 
43340
 
60e181c4eae4
lemma: independence is equal to mutual information = 0
 
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changeset
 | 
609  | 
shows "mutual_information b S T X Y = mutual_information b T S Y X"  | 
| 
 
60e181c4eae4
lemma: independence is equal to mutual information = 0
 
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 | 
610  | 
proof -  | 
| 43920 | 611  | 
let ?S = "S\<lparr>measure := ereal\<circ>distribution X\<rparr>" and ?T = "T\<lparr>measure := ereal\<circ>distribution Y\<rparr>"  | 
| 
43340
 
60e181c4eae4
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parents: 
42148 
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changeset
 | 
612  | 
interpret S: prob_space ?S using X by (rule distribution_prob_space)  | 
| 
 
60e181c4eae4
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42148 
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changeset
 | 
613  | 
interpret T: prob_space ?T using Y by (rule distribution_prob_space)  | 
| 
 
60e181c4eae4
lemma: independence is equal to mutual information = 0
 
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changeset
 | 
614  | 
interpret P: pair_prob_space ?S ?T ..  | 
| 
 
60e181c4eae4
lemma: independence is equal to mutual information = 0
 
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changeset
 | 
615  | 
interpret Q: pair_prob_space ?T ?S ..  | 
| 
 
60e181c4eae4
lemma: independence is equal to mutual information = 0
 
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changeset
 | 
616  | 
show ?thesis  | 
| 
 
60e181c4eae4
lemma: independence is equal to mutual information = 0
 
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changeset
 | 
617  | 
unfolding mutual_information_def  | 
| 
 
60e181c4eae4
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changeset
 | 
618  | 
proof (intro Q.KL_divergence_vimage[OF Q.measure_preserving_swap _ _ _ _ ac b_gt_1])  | 
| 
 
60e181c4eae4
lemma: independence is equal to mutual information = 0
 
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changeset
 | 
619  | 
show "(\<lambda>(x,y). (y,x)) \<in> measure_preserving  | 
| 43920 | 620  | 
(P.P \<lparr> measure := ereal\<circ>joint_distribution X Y\<rparr>) (Q.P \<lparr> measure := ereal\<circ>joint_distribution Y X\<rparr>)"  | 
| 
43340
 
60e181c4eae4
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changeset
 | 
621  | 
using X Y unfolding measurable_def  | 
| 
 
60e181c4eae4
lemma: independence is equal to mutual information = 0
 
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 | 
622  | 
unfolding measure_preserving_def using P.pair_sigma_algebra_swap_measurable  | 
| 
 
60e181c4eae4
lemma: independence is equal to mutual information = 0
 
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 | 
623  | 
by (auto simp add: space_pair_measure distribution_def intro!: arg_cong[where f=\<mu>'])  | 
| 43920 | 624  | 
have "prob_space (P.P\<lparr> measure := ereal\<circ>joint_distribution X Y\<rparr>)"  | 
| 
43340
 
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42148 
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changeset
 | 
625  | 
using X Y by (auto intro!: distribution_prob_space random_variable_pairI)  | 
| 43920 | 626  | 
then show "measure_space (P.P\<lparr> measure := ereal\<circ>joint_distribution X Y\<rparr>)"  | 
| 
45777
 
c36637603821
remove unnecessary sublocale instantiations in HOL-Probability (for clarity and speedup); remove Infinite_Product_Measure.product_prob_space which was a duplicate of Probability_Measure.product_prob_space
 
hoelzl 
parents: 
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diff
changeset
 | 
627  | 
unfolding prob_space_def finite_measure_def sigma_finite_measure_def by simp  | 
| 
43340
 
60e181c4eae4
lemma: independence is equal to mutual information = 0
 
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parents: 
42148 
diff
changeset
 | 
628  | 
qed auto  | 
| 
 
60e181c4eae4
lemma: independence is equal to mutual information = 0
 
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changeset
 | 
629  | 
qed  | 
| 
 
60e181c4eae4
lemma: independence is equal to mutual information = 0
 
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parents: 
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changeset
 | 
630  | 
|
| 40859 | 631  | 
definition (in prob_space)  | 
632  | 
"entropy b s X = mutual_information b s s X X"  | 
|
633  | 
||
634  | 
abbreviation (in information_space)  | 
|
635  | 
  mutual_information_Pow ("\<I>'(_ ; _')") where
 | 
|
| 36624 | 636  | 
"\<I>(X ; Y) \<equiv> mutual_information b  | 
| 43920 | 637  | 
\<lparr> space = X`space M, sets = Pow (X`space M), measure = ereal\<circ>distribution X \<rparr>  | 
638  | 
\<lparr> space = Y`space M, sets = Pow (Y`space M), measure = ereal\<circ>distribution Y \<rparr> X Y"  | 
|
| 
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3e39b0e730d6
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changeset
 | 
639  | 
|
| 40859 | 640  | 
lemma (in prob_space) finite_variables_absolutely_continuous:  | 
641  | 
assumes X: "finite_random_variable S X" and Y: "finite_random_variable T Y"  | 
|
| 
41689
 
3e39b0e730d6
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changeset
 | 
642  | 
shows "measure_space.absolutely_continuous  | 
| 43920 | 643  | 
(S\<lparr>measure := ereal\<circ>distribution X\<rparr> \<Otimes>\<^isub>M T\<lparr>measure := ereal\<circ>distribution Y\<rparr>)  | 
644  | 
(ereal\<circ>joint_distribution X Y)"  | 
|
| 40859 | 645  | 
proof -  | 
| 43920 | 646  | 
interpret X: finite_prob_space "S\<lparr>measure := ereal\<circ>distribution X\<rparr>"  | 
| 
41689
 
3e39b0e730d6
the measure valuation is again part of the measure_space type, instead of an explicit parameter to the locale;
 
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41661 
diff
changeset
 | 
647  | 
using X by (rule distribution_finite_prob_space)  | 
| 43920 | 648  | 
interpret Y: finite_prob_space "T\<lparr>measure := ereal\<circ>distribution Y\<rparr>"  | 
| 
41689
 
3e39b0e730d6
the measure valuation is again part of the measure_space type, instead of an explicit parameter to the locale;
 
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parents: 
41661 
diff
changeset
 | 
649  | 
using Y by (rule distribution_finite_prob_space)  | 
| 
 
3e39b0e730d6
the measure valuation is again part of the measure_space type, instead of an explicit parameter to the locale;
 
hoelzl 
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41661 
diff
changeset
 | 
650  | 
interpret XY: pair_finite_prob_space  | 
| 43920 | 651  | 
"S\<lparr>measure := ereal\<circ>distribution X\<rparr>" "T\<lparr> measure := ereal\<circ>distribution Y\<rparr>" by default  | 
652  | 
interpret P: finite_prob_space "XY.P\<lparr> measure := ereal\<circ>joint_distribution X Y\<rparr>"  | 
|
| 
41689
 
3e39b0e730d6
the measure valuation is again part of the measure_space type, instead of an explicit parameter to the locale;
 
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changeset
 | 
653  | 
using assms by (auto intro!: joint_distribution_finite_prob_space)  | 
| 
 
3e39b0e730d6
the measure valuation is again part of the measure_space type, instead of an explicit parameter to the locale;
 
hoelzl 
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41661 
diff
changeset
 | 
654  | 
note rv = assms[THEN finite_random_variableD]  | 
| 43920 | 655  | 
show "XY.absolutely_continuous (ereal\<circ>joint_distribution X Y)"  | 
| 40859 | 656  | 
proof (rule XY.absolutely_continuousI)  | 
| 
45777
 
c36637603821
remove unnecessary sublocale instantiations in HOL-Probability (for clarity and speedup); remove Infinite_Product_Measure.product_prob_space which was a duplicate of Probability_Measure.product_prob_space
 
hoelzl 
parents: 
45712 
diff
changeset
 | 
657  | 
show "finite_measure_space (XY.P\<lparr> measure := ereal\<circ>joint_distribution X Y\<rparr>)" by unfold_locales  | 
| 
41689
 
3e39b0e730d6
the measure valuation is again part of the measure_space type, instead of an explicit parameter to the locale;
 
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41661 
diff
changeset
 | 
658  | 
    fix x assume "x \<in> space XY.P" and "XY.\<mu> {x} = 0"
 | 
| 
41981
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
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41833 
diff
changeset
 | 
659  | 
then obtain a b where "x = (a, b)"  | 
| 
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
660  | 
      and "distribution X {a} = 0 \<or> distribution Y {b} = 0"
 | 
| 
41689
 
3e39b0e730d6
the measure valuation is again part of the measure_space type, instead of an explicit parameter to the locale;
 
hoelzl 
parents: 
41661 
diff
changeset
 | 
661  | 
by (cases x) (auto simp: space_pair_measure)  | 
| 
41981
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
662  | 
with finite_distribution_order(5,6)[OF X Y]  | 
| 43920 | 663  | 
    show "(ereal \<circ> joint_distribution X Y) {x} = 0" by auto
 | 
| 40859 | 664  | 
qed  | 
665  | 
qed  | 
|
666  | 
||
667  | 
lemma (in information_space)  | 
|
668  | 
assumes MX: "finite_random_variable MX X"  | 
|
669  | 
assumes MY: "finite_random_variable MY Y"  | 
|
670  | 
shows mutual_information_generic_eq:  | 
|
| 36624 | 671  | 
"mutual_information b MX MY X Y = (\<Sum> (x,y) \<in> space MX \<times> space MY.  | 
| 
41981
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
672  | 
      joint_distribution X Y {(x,y)} *
 | 
| 
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
673  | 
      log b (joint_distribution X Y {(x,y)} /
 | 
| 
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
674  | 
      (distribution X {x} * distribution Y {y})))"
 | 
| 40859 | 675  | 
(is ?sum)  | 
| 36624 | 676  | 
and mutual_information_positive_generic:  | 
| 40859 | 677  | 
"0 \<le> mutual_information b MX MY X Y" (is ?positive)  | 
| 36624 | 678  | 
proof -  | 
| 43920 | 679  | 
interpret X: finite_prob_space "MX\<lparr>measure := ereal\<circ>distribution X\<rparr>"  | 
| 
41689
 
3e39b0e730d6
the measure valuation is again part of the measure_space type, instead of an explicit parameter to the locale;
 
hoelzl 
parents: 
41661 
diff
changeset
 | 
680  | 
using MX by (rule distribution_finite_prob_space)  | 
| 43920 | 681  | 
interpret Y: finite_prob_space "MY\<lparr>measure := ereal\<circ>distribution Y\<rparr>"  | 
| 
41689
 
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the measure valuation is again part of the measure_space type, instead of an explicit parameter to the locale;
 
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changeset
 | 
682  | 
using MY by (rule distribution_finite_prob_space)  | 
| 43920 | 683  | 
interpret XY: pair_finite_prob_space "MX\<lparr>measure := ereal\<circ>distribution X\<rparr>" "MY\<lparr>measure := ereal\<circ>distribution Y\<rparr>" by default  | 
684  | 
interpret P: finite_prob_space "XY.P\<lparr>measure := ereal\<circ>joint_distribution X Y\<rparr>"  | 
|
| 
41689
 
3e39b0e730d6
the measure valuation is again part of the measure_space type, instead of an explicit parameter to the locale;
 
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parents: 
41661 
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 | 
685  | 
using assms by (auto intro!: joint_distribution_finite_prob_space)  | 
| 
36080
 
0d9affa4e73c
Added Information theory and Example: dining cryptographers
 
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parents:  
diff
changeset
 | 
686  | 
|
| 
45777
 
c36637603821
remove unnecessary sublocale instantiations in HOL-Probability (for clarity and speedup); remove Infinite_Product_Measure.product_prob_space which was a duplicate of Probability_Measure.product_prob_space
 
hoelzl 
parents: 
45712 
diff
changeset
 | 
687  | 
have P_ms: "finite_measure_space (XY.P\<lparr>measure := ereal\<circ>joint_distribution X Y\<rparr>)" by unfold_locales  | 
| 
 
c36637603821
remove unnecessary sublocale instantiations in HOL-Probability (for clarity and speedup); remove Infinite_Product_Measure.product_prob_space which was a duplicate of Probability_Measure.product_prob_space
 
hoelzl 
parents: 
45712 
diff
changeset
 | 
688  | 
have P_ps: "finite_prob_space (XY.P\<lparr>measure := ereal\<circ>joint_distribution X Y\<rparr>)" by unfold_locales  | 
| 36624 | 689  | 
|
| 40859 | 690  | 
show ?sum  | 
| 38656 | 691  | 
unfolding Let_def mutual_information_def  | 
| 40859 | 692  | 
by (subst XY.KL_divergence_eq_finite[OF P_ms finite_variables_absolutely_continuous[OF MX MY]])  | 
| 
41981
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
693  | 
(auto simp add: space_pair_measure setsum_cartesian_product')  | 
| 
36080
 
0d9affa4e73c
Added Information theory and Example: dining cryptographers
 
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parents:  
diff
changeset
 | 
694  | 
|
| 36624 | 695  | 
show ?positive  | 
| 40859 | 696  | 
using XY.KL_divergence_positive_finite[OF P_ps finite_variables_absolutely_continuous[OF MX MY] b_gt_1]  | 
697  | 
unfolding mutual_information_def .  | 
|
| 
36080
 
0d9affa4e73c
Added Information theory and Example: dining cryptographers
 
hoelzl 
parents:  
diff
changeset
 | 
698  | 
qed  | 
| 
 
0d9affa4e73c
Added Information theory and Example: dining cryptographers
 
hoelzl 
parents:  
diff
changeset
 | 
699  | 
|
| 41661 | 700  | 
lemma (in information_space) mutual_information_commute:  | 
701  | 
assumes X: "finite_random_variable S X" and Y: "finite_random_variable T Y"  | 
|
702  | 
shows "mutual_information b S T X Y = mutual_information b T S Y X"  | 
|
703  | 
unfolding mutual_information_generic_eq[OF X Y] mutual_information_generic_eq[OF Y X]  | 
|
704  | 
unfolding joint_distribution_commute_singleton[of X Y]  | 
|
705  | 
by (auto simp add: ac_simps intro!: setsum_reindex_cong[OF swap_inj_on])  | 
|
706  | 
||
707  | 
lemma (in information_space) mutual_information_commute_simple:  | 
|
| 
41689
 
3e39b0e730d6
the measure valuation is again part of the measure_space type, instead of an explicit parameter to the locale;
 
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parents: 
41661 
diff
changeset
 | 
708  | 
assumes X: "simple_function M X" and Y: "simple_function M Y"  | 
| 41661 | 709  | 
shows "\<I>(X;Y) = \<I>(Y;X)"  | 
| 
41833
 
563bea92b2c0
add lemma KL_divergence_vimage, mutual_information_generic
 
hoelzl 
parents: 
41689 
diff
changeset
 | 
710  | 
by (intro mutual_information_commute X Y simple_function_imp_finite_random_variable)  | 
| 41661 | 711  | 
|
| 40859 | 712  | 
lemma (in information_space) mutual_information_eq:  | 
| 
41689
 
3e39b0e730d6
the measure valuation is again part of the measure_space type, instead of an explicit parameter to the locale;
 
hoelzl 
parents: 
41661 
diff
changeset
 | 
713  | 
assumes "simple_function M X" "simple_function M Y"  | 
| 40859 | 714  | 
shows "\<I>(X;Y) = (\<Sum> (x,y) \<in> X ` space M \<times> Y ` space M.  | 
| 
41981
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
715  | 
    distribution (\<lambda>x. (X x, Y x)) {(x,y)} * log b (distribution (\<lambda>x. (X x, Y x)) {(x,y)} /
 | 
| 
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
716  | 
                                                   (distribution X {x} * distribution Y {y})))"
 | 
| 40859 | 717  | 
using assms by (simp add: mutual_information_generic_eq)  | 
| 
36080
 
0d9affa4e73c
Added Information theory and Example: dining cryptographers
 
hoelzl 
parents:  
diff
changeset
 | 
718  | 
|
| 40859 | 719  | 
lemma (in information_space) mutual_information_generic_cong:  | 
| 39097 | 720  | 
assumes X: "\<And>x. x \<in> space M \<Longrightarrow> X x = X' x"  | 
721  | 
assumes Y: "\<And>x. x \<in> space M \<Longrightarrow> Y x = Y' x"  | 
|
| 40859 | 722  | 
shows "mutual_information b MX MY X Y = mutual_information b MX MY X' Y'"  | 
723  | 
unfolding mutual_information_def using X Y  | 
|
724  | 
by (simp cong: distribution_cong)  | 
|
| 39097 | 725  | 
|
| 40859 | 726  | 
lemma (in information_space) mutual_information_cong:  | 
727  | 
assumes X: "\<And>x. x \<in> space M \<Longrightarrow> X x = X' x"  | 
|
728  | 
assumes Y: "\<And>x. x \<in> space M \<Longrightarrow> Y x = Y' x"  | 
|
729  | 
shows "\<I>(X; Y) = \<I>(X'; Y')"  | 
|
730  | 
unfolding mutual_information_def using X Y  | 
|
731  | 
by (simp cong: distribution_cong image_cong)  | 
|
732  | 
||
733  | 
lemma (in information_space) mutual_information_positive:  | 
|
| 
41689
 
3e39b0e730d6
the measure valuation is again part of the measure_space type, instead of an explicit parameter to the locale;
 
hoelzl 
parents: 
41661 
diff
changeset
 | 
734  | 
assumes "simple_function M X" "simple_function M Y"  | 
| 40859 | 735  | 
shows "0 \<le> \<I>(X;Y)"  | 
736  | 
using assms by (simp add: mutual_information_positive_generic)  | 
|
| 
36080
 
0d9affa4e73c
Added Information theory and Example: dining cryptographers
 
hoelzl 
parents:  
diff
changeset
 | 
737  | 
|
| 39097 | 738  | 
subsection {* Entropy *}
 | 
739  | 
||
| 40859 | 740  | 
abbreviation (in information_space)  | 
741  | 
  entropy_Pow ("\<H>'(_')") where
 | 
|
| 43920 | 742  | 
"\<H>(X) \<equiv> entropy b \<lparr> space = X`space M, sets = Pow (X`space M), measure = ereal\<circ>distribution X \<rparr> X"  | 
| 
36080
 
0d9affa4e73c
Added Information theory and Example: dining cryptographers
 
hoelzl 
parents:  
diff
changeset
 | 
743  | 
|
| 40859 | 744  | 
lemma (in information_space) entropy_generic_eq:  | 
| 
41981
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
745  | 
fixes X :: "'a \<Rightarrow> 'c"  | 
| 40859 | 746  | 
assumes MX: "finite_random_variable MX X"  | 
| 
41981
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
747  | 
  shows "entropy b MX X = -(\<Sum> x \<in> space MX. distribution X {x} * log b (distribution X {x}))"
 | 
| 39097 | 748  | 
proof -  | 
| 43920 | 749  | 
interpret MX: finite_prob_space "MX\<lparr>measure := ereal\<circ>distribution X\<rparr>"  | 
| 
41689
 
3e39b0e730d6
the measure valuation is again part of the measure_space type, instead of an explicit parameter to the locale;
 
hoelzl 
parents: 
41661 
diff
changeset
 | 
750  | 
using MX by (rule distribution_finite_prob_space)  | 
| 
41981
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
751  | 
  let "?X x" = "distribution X {x}"
 | 
| 
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
752  | 
  let "?XX x y" = "joint_distribution X X {(x, y)}"
 | 
| 
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
753  | 
|
| 
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
754  | 
  { fix x y :: 'c
 | 
| 
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
755  | 
    { assume "x \<noteq> y"
 | 
| 
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
756  | 
      then have "(\<lambda>x. (X x, X x)) -` {(x,y)} \<inter> space M = {}" by auto
 | 
| 
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
757  | 
      then have "joint_distribution X X {(x, y)} = 0" by (simp add: distribution_def) }
 | 
| 39097 | 758  | 
then have "?XX x y * log b (?XX x y / (?X x * ?X y)) =  | 
759  | 
(if x = y then - ?X y * log b (?X y) else 0)"  | 
|
| 
41981
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
760  | 
by (auto simp: log_simps zero_less_mult_iff) }  | 
| 39097 | 761  | 
note remove_XX = this  | 
| 
41981
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
762  | 
|
| 39097 | 763  | 
show ?thesis  | 
764  | 
unfolding entropy_def mutual_information_generic_eq[OF MX MX]  | 
|
765  | 
unfolding setsum_cartesian_product[symmetric] setsum_negf[symmetric] remove_XX  | 
|
| 
41689
 
3e39b0e730d6
the measure valuation is again part of the measure_space type, instead of an explicit parameter to the locale;
 
hoelzl 
parents: 
41661 
diff
changeset
 | 
766  | 
using MX.finite_space by (auto simp: setsum_cases)  | 
| 39097 | 767  | 
qed  | 
| 36624 | 768  | 
|
| 40859 | 769  | 
lemma (in information_space) entropy_eq:  | 
| 
41689
 
3e39b0e730d6
the measure valuation is again part of the measure_space type, instead of an explicit parameter to the locale;
 
hoelzl 
parents: 
41661 
diff
changeset
 | 
770  | 
assumes "simple_function M X"  | 
| 
41981
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
771  | 
  shows "\<H>(X) = -(\<Sum> x \<in> X ` space M. distribution X {x} * log b (distribution X {x}))"
 | 
| 40859 | 772  | 
using assms by (simp add: entropy_generic_eq)  | 
| 
36080
 
0d9affa4e73c
Added Information theory and Example: dining cryptographers
 
hoelzl 
parents:  
diff
changeset
 | 
773  | 
|
| 40859 | 774  | 
lemma (in information_space) entropy_positive:  | 
| 
41689
 
3e39b0e730d6
the measure valuation is again part of the measure_space type, instead of an explicit parameter to the locale;
 
hoelzl 
parents: 
41661 
diff
changeset
 | 
775  | 
"simple_function M X \<Longrightarrow> 0 \<le> \<H>(X)"  | 
| 40859 | 776  | 
unfolding entropy_def by (simp add: mutual_information_positive)  | 
| 
36080
 
0d9affa4e73c
Added Information theory and Example: dining cryptographers
 
hoelzl 
parents:  
diff
changeset
 | 
777  | 
|
| 40859 | 778  | 
lemma (in information_space) entropy_certainty_eq_0:  | 
| 
41981
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
779  | 
  assumes X: "simple_function M X" and "x \<in> X ` space M" and "distribution X {x} = 1"
 | 
| 39097 | 780  | 
shows "\<H>(X) = 0"  | 
781  | 
proof -  | 
|
| 43920 | 782  | 
let ?X = "\<lparr> space = X ` space M, sets = Pow (X ` space M), measure = ereal\<circ>distribution X\<rparr>"  | 
| 
41689
 
3e39b0e730d6
the measure valuation is again part of the measure_space type, instead of an explicit parameter to the locale;
 
hoelzl 
parents: 
41661 
diff
changeset
 | 
783  | 
note simple_function_imp_finite_random_variable[OF `simple_function M X`]  | 
| 43920 | 784  | 
from distribution_finite_prob_space[OF this, of "\<lparr> measure = ereal\<circ>distribution X \<rparr>"]  | 
| 
41689
 
3e39b0e730d6
the measure valuation is again part of the measure_space type, instead of an explicit parameter to the locale;
 
hoelzl 
parents: 
41661 
diff
changeset
 | 
785  | 
interpret X: finite_prob_space ?X by simp  | 
| 39097 | 786  | 
  have "distribution X (X ` space M - {x}) = distribution X (X ` space M) - distribution X {x}"
 | 
787  | 
    using X.measure_compl[of "{x}"] assms by auto
 | 
|
788  | 
also have "\<dots> = 0" using X.prob_space assms by auto  | 
|
789  | 
  finally have X0: "distribution X (X ` space M - {x}) = 0" by auto
 | 
|
| 
41981
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
790  | 
  { fix y assume *: "y \<in> X ` space M"
 | 
| 
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
791  | 
    { assume asm: "y \<noteq> x"
 | 
| 
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
792  | 
      with * have "{y} \<subseteq> X ` space M - {x}" by auto
 | 
| 
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
793  | 
from X.measure_mono[OF this] X0 asm *  | 
| 
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
794  | 
      have "distribution X {y} = 0"  by (auto intro: antisym) }
 | 
| 
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
795  | 
    then have "distribution X {y} = (if x = y then 1 else 0)"
 | 
| 
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
796  | 
using assms by auto }  | 
| 
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
797  | 
note fi = this  | 
| 39097 | 798  | 
have y: "\<And>y. (if x = y then 1 else 0) * log b (if x = y then 1 else 0) = 0" by simp  | 
| 
41689
 
3e39b0e730d6
the measure valuation is again part of the measure_space type, instead of an explicit parameter to the locale;
 
hoelzl 
parents: 
41661 
diff
changeset
 | 
799  | 
show ?thesis unfolding entropy_eq[OF `simple_function M X`] by (auto simp: y fi)  | 
| 39097 | 800  | 
qed  | 
801  | 
||
| 40859 | 802  | 
lemma (in information_space) entropy_le_card_not_0:  | 
| 
41981
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
803  | 
assumes X: "simple_function M X"  | 
| 
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
804  | 
  shows "\<H>(X) \<le> log b (card (X ` space M \<inter> {x. distribution X {x} \<noteq> 0}))"
 | 
| 39097 | 805  | 
proof -  | 
| 
41981
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
806  | 
  let "?p x" = "distribution X {x}"
 | 
| 39097 | 807  | 
have "\<H>(X) = (\<Sum>x\<in>X`space M. ?p x * log b (1 / ?p x))"  | 
| 
41981
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
808  | 
unfolding entropy_eq[OF X] setsum_negf[symmetric]  | 
| 
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
809  | 
by (auto intro!: setsum_cong simp: log_simps)  | 
| 39097 | 810  | 
also have "\<dots> \<le> log b (\<Sum>x\<in>X`space M. ?p x * (1 / ?p x))"  | 
| 
41981
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
811  | 
using not_empty b_gt_1 `simple_function M X` sum_over_space_real_distribution[OF X]  | 
| 
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
812  | 
by (intro log_setsum') (auto simp: simple_function_def)  | 
| 
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
813  | 
also have "\<dots> = log b (\<Sum>x\<in>X`space M. if ?p x \<noteq> 0 then 1 else 0)"  | 
| 
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
814  | 
by (intro arg_cong[where f="\<lambda>X. log b X"] setsum_cong) auto  | 
| 39097 | 815  | 
finally show ?thesis  | 
| 
41689
 
3e39b0e730d6
the measure valuation is again part of the measure_space type, instead of an explicit parameter to the locale;
 
hoelzl 
parents: 
41661 
diff
changeset
 | 
816  | 
using `simple_function M X` by (auto simp: setsum_cases real_eq_of_nat simple_function_def)  | 
| 39097 | 817  | 
qed  | 
818  | 
||
| 
41981
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
819  | 
lemma (in prob_space) measure'_translate:  | 
| 
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
820  | 
assumes X: "random_variable S X" and A: "A \<in> sets S"  | 
| 43920 | 821  | 
shows "finite_measure.\<mu>' (S\<lparr> measure := ereal\<circ>distribution X \<rparr>) A = distribution X A"  | 
| 
41981
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
822  | 
proof -  | 
| 43920 | 823  | 
interpret S: prob_space "S\<lparr> measure := ereal\<circ>distribution X \<rparr>"  | 
| 
41981
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
824  | 
using distribution_prob_space[OF X] .  | 
| 
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
825  | 
from A show "S.\<mu>' A = distribution X A"  | 
| 
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
826  | 
unfolding S.\<mu>'_def by (simp add: distribution_def_raw \<mu>'_def)  | 
| 
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
827  | 
qed  | 
| 
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
828  | 
|
| 40859 | 829  | 
lemma (in information_space) entropy_uniform_max:  | 
| 
41981
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
830  | 
assumes X: "simple_function M X"  | 
| 39097 | 831  | 
  assumes "\<And>x y. \<lbrakk> x \<in> X ` space M ; y \<in> X ` space M \<rbrakk> \<Longrightarrow> distribution X {x} = distribution X {y}"
 | 
832  | 
shows "\<H>(X) = log b (real (card (X ` space M)))"  | 
|
833  | 
proof -  | 
|
| 43920 | 834  | 
let ?X = "\<lparr> space = X ` space M, sets = Pow (X ` space M), measure = undefined\<rparr>\<lparr> measure := ereal\<circ>distribution X\<rparr>"  | 
| 
41981
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
835  | 
note frv = simple_function_imp_finite_random_variable[OF X]  | 
| 43920 | 836  | 
from distribution_finite_prob_space[OF this, of "\<lparr> measure = ereal\<circ>distribution X \<rparr>"]  | 
| 
41689
 
3e39b0e730d6
the measure valuation is again part of the measure_space type, instead of an explicit parameter to the locale;
 
hoelzl 
parents: 
41661 
diff
changeset
 | 
837  | 
interpret X: finite_prob_space ?X by simp  | 
| 
41981
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
838  | 
note rv = finite_random_variableD[OF frv]  | 
| 39097 | 839  | 
have card_gt0: "0 < card (X ` space M)" unfolding card_gt_0_iff  | 
| 
41689
 
3e39b0e730d6
the measure valuation is again part of the measure_space type, instead of an explicit parameter to the locale;
 
hoelzl 
parents: 
41661 
diff
changeset
 | 
840  | 
using `simple_function M X` not_empty by (auto simp: simple_function_def)  | 
| 
41981
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
841  | 
  { fix x assume "x \<in> space ?X"
 | 
| 
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
842  | 
    moreover then have "X.\<mu>' {x} = 1 / card (space ?X)"
 | 
| 
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
843  | 
proof (rule X.uniform_prob)  | 
| 
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
844  | 
fix x y assume "x \<in> space ?X" "y \<in> space ?X"  | 
| 
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
845  | 
      with assms(2)[of x y] show "X.\<mu>' {x} = X.\<mu>' {y}"
 | 
| 
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
846  | 
by (subst (1 2) measure'_translate[OF rv]) auto  | 
| 
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
847  | 
qed  | 
| 
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
848  | 
    ultimately have "distribution X {x} = 1 / card (space ?X)"
 | 
| 
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
849  | 
by (subst (asm) measure'_translate[OF rv]) auto }  | 
| 39097 | 850  | 
thus ?thesis  | 
| 40859 | 851  | 
using not_empty X.finite_space b_gt_1 card_gt0  | 
| 
41689
 
3e39b0e730d6
the measure valuation is again part of the measure_space type, instead of an explicit parameter to the locale;
 
hoelzl 
parents: 
41661 
diff
changeset
 | 
852  | 
by (simp add: entropy_eq[OF `simple_function M X`] real_eq_of_nat[symmetric] log_simps)  | 
| 39097 | 853  | 
qed  | 
854  | 
||
| 40859 | 855  | 
lemma (in information_space) entropy_le_card:  | 
| 
41689
 
3e39b0e730d6
the measure valuation is again part of the measure_space type, instead of an explicit parameter to the locale;
 
hoelzl 
parents: 
41661 
diff
changeset
 | 
856  | 
assumes "simple_function M X"  | 
| 40859 | 857  | 
shows "\<H>(X) \<le> log b (real (card (X ` space M)))"  | 
| 39097 | 858  | 
proof cases  | 
859  | 
  assume "X ` space M \<inter> {x. distribution X {x} \<noteq> 0} = {}"
 | 
|
860  | 
  then have "\<And>x. x\<in>X`space M \<Longrightarrow> distribution X {x} = 0" by auto
 | 
|
861  | 
moreover  | 
|
862  | 
have "0 < card (X`space M)"  | 
|
| 
41689
 
3e39b0e730d6
the measure valuation is again part of the measure_space type, instead of an explicit parameter to the locale;
 
hoelzl 
parents: 
41661 
diff
changeset
 | 
863  | 
using `simple_function M X` not_empty  | 
| 40859 | 864  | 
by (auto simp: card_gt_0_iff simple_function_def)  | 
| 39097 | 865  | 
then have "log b 1 \<le> log b (real (card (X`space M)))"  | 
866  | 
using b_gt_1 by (intro log_le) auto  | 
|
| 40859 | 867  | 
ultimately show ?thesis using assms by (simp add: entropy_eq)  | 
| 39097 | 868  | 
next  | 
869  | 
  assume False: "X ` space M \<inter> {x. distribution X {x} \<noteq> 0} \<noteq> {}"
 | 
|
870  | 
  have "card (X ` space M \<inter> {x. distribution X {x} \<noteq> 0}) \<le> card (X ` space M)"
 | 
|
| 40859 | 871  | 
(is "?A \<le> ?B") using assms not_empty by (auto intro!: card_mono simp: simple_function_def)  | 
872  | 
note entropy_le_card_not_0[OF assms]  | 
|
| 39097 | 873  | 
also have "log b (real ?A) \<le> log b (real ?B)"  | 
| 40859 | 874  | 
using b_gt_1 False not_empty `?A \<le> ?B` assms  | 
875  | 
by (auto intro!: log_le simp: card_gt_0_iff simp: simple_function_def)  | 
|
| 39097 | 876  | 
finally show ?thesis .  | 
877  | 
qed  | 
|
878  | 
||
| 40859 | 879  | 
lemma (in information_space) entropy_commute:  | 
| 
41689
 
3e39b0e730d6
the measure valuation is again part of the measure_space type, instead of an explicit parameter to the locale;
 
hoelzl 
parents: 
41661 
diff
changeset
 | 
880  | 
assumes "simple_function M X" "simple_function M Y"  | 
| 40859 | 881  | 
shows "\<H>(\<lambda>x. (X x, Y x)) = \<H>(\<lambda>x. (Y x, X x))"  | 
| 39097 | 882  | 
proof -  | 
| 
41689
 
3e39b0e730d6
the measure valuation is again part of the measure_space type, instead of an explicit parameter to the locale;
 
hoelzl 
parents: 
41661 
diff
changeset
 | 
883  | 
have sf: "simple_function M (\<lambda>x. (X x, Y x))" "simple_function M (\<lambda>x. (Y x, X x))"  | 
| 40859 | 884  | 
using assms by (auto intro: simple_function_Pair)  | 
| 39097 | 885  | 
have *: "(\<lambda>x. (Y x, X x))`space M = (\<lambda>(a,b). (b,a))`(\<lambda>x. (X x, Y x))`space M"  | 
886  | 
by auto  | 
|
887  | 
have inj: "\<And>X. inj_on (\<lambda>(a,b). (b,a)) X"  | 
|
888  | 
by (auto intro!: inj_onI)  | 
|
889  | 
show ?thesis  | 
|
| 40859 | 890  | 
unfolding sf[THEN entropy_eq] unfolding * setsum_reindex[OF inj]  | 
| 39097 | 891  | 
by (simp add: joint_distribution_commute[of Y X] split_beta)  | 
892  | 
qed  | 
|
893  | 
||
| 40859 | 894  | 
lemma (in information_space) entropy_eq_cartesian_product:  | 
| 
41689
 
3e39b0e730d6
the measure valuation is again part of the measure_space type, instead of an explicit parameter to the locale;
 
hoelzl 
parents: 
41661 
diff
changeset
 | 
895  | 
assumes "simple_function M X" "simple_function M Y"  | 
| 40859 | 896  | 
shows "\<H>(\<lambda>x. (X x, Y x)) = -(\<Sum>x\<in>X`space M. \<Sum>y\<in>Y`space M.  | 
| 
41981
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
897  | 
    joint_distribution X Y {(x,y)} * log b (joint_distribution X Y {(x,y)}))"
 | 
| 39097 | 898  | 
proof -  | 
| 
41689
 
3e39b0e730d6
the measure valuation is again part of the measure_space type, instead of an explicit parameter to the locale;
 
hoelzl 
parents: 
41661 
diff
changeset
 | 
899  | 
have sf: "simple_function M (\<lambda>x. (X x, Y x))"  | 
| 40859 | 900  | 
using assms by (auto intro: simple_function_Pair)  | 
| 39097 | 901  | 
  { fix x assume "x\<notin>(\<lambda>x. (X x, Y x))`space M"
 | 
902  | 
    then have "(\<lambda>x. (X x, Y x)) -` {x} \<inter> space M = {}" by auto
 | 
|
903  | 
    then have "joint_distribution X Y {x} = 0"
 | 
|
904  | 
unfolding distribution_def by auto }  | 
|
| 40859 | 905  | 
then show ?thesis using sf assms  | 
906  | 
unfolding entropy_eq[OF sf] neg_equal_iff_equal setsum_cartesian_product  | 
|
907  | 
by (auto intro!: setsum_mono_zero_cong_left simp: simple_function_def)  | 
|
| 39097 | 908  | 
qed  | 
909  | 
||
910  | 
subsection {* Conditional Mutual Information *}
 | 
|
911  | 
||
| 
36080
 
0d9affa4e73c
Added Information theory and Example: dining cryptographers
 
hoelzl 
parents:  
diff
changeset
 | 
912  | 
definition (in prob_space)  | 
| 
41689
 
3e39b0e730d6
the measure valuation is again part of the measure_space type, instead of an explicit parameter to the locale;
 
hoelzl 
parents: 
41661 
diff
changeset
 | 
913  | 
"conditional_mutual_information b MX MY MZ X Y Z \<equiv>  | 
| 
 
3e39b0e730d6
the measure valuation is again part of the measure_space type, instead of an explicit parameter to the locale;
 
hoelzl 
parents: 
41661 
diff
changeset
 | 
914  | 
mutual_information b MX (MY \<Otimes>\<^isub>M MZ) X (\<lambda>x. (Y x, Z x)) -  | 
| 
 
3e39b0e730d6
the measure valuation is again part of the measure_space type, instead of an explicit parameter to the locale;
 
hoelzl 
parents: 
41661 
diff
changeset
 | 
915  | 
mutual_information b MX MZ X Z"  | 
| 
36080
 
0d9affa4e73c
Added Information theory and Example: dining cryptographers
 
hoelzl 
parents:  
diff
changeset
 | 
916  | 
|
| 40859 | 917  | 
abbreviation (in information_space)  | 
918  | 
  conditional_mutual_information_Pow ("\<I>'( _ ; _ | _ ')") where
 | 
|
| 36624 | 919  | 
"\<I>(X ; Y | Z) \<equiv> conditional_mutual_information b  | 
| 43920 | 920  | 
\<lparr> space = X`space M, sets = Pow (X`space M), measure = ereal\<circ>distribution X \<rparr>  | 
921  | 
\<lparr> space = Y`space M, sets = Pow (Y`space M), measure = ereal\<circ>distribution Y \<rparr>  | 
|
922  | 
\<lparr> space = Z`space M, sets = Pow (Z`space M), measure = ereal\<circ>distribution Z \<rparr>  | 
|
| 
36080
 
0d9affa4e73c
Added Information theory and Example: dining cryptographers
 
hoelzl 
parents:  
diff
changeset
 | 
923  | 
X Y Z"  | 
| 
 
0d9affa4e73c
Added Information theory and Example: dining cryptographers
 
hoelzl 
parents:  
diff
changeset
 | 
924  | 
|
| 40859 | 925  | 
lemma (in information_space) conditional_mutual_information_generic_eq:  | 
926  | 
assumes MX: "finite_random_variable MX X"  | 
|
927  | 
and MY: "finite_random_variable MY Y"  | 
|
928  | 
and MZ: "finite_random_variable MZ Z"  | 
|
929  | 
shows "conditional_mutual_information b MX MY MZ X Y Z = (\<Sum>(x, y, z) \<in> space MX \<times> space MY \<times> space MZ.  | 
|
| 
41981
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
930  | 
             distribution (\<lambda>x. (X x, Y x, Z x)) {(x, y, z)} *
 | 
| 
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
931  | 
             log b (distribution (\<lambda>x. (X x, Y x, Z x)) {(x, y, z)} /
 | 
| 
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
932  | 
    (joint_distribution X Z {(x, z)} * (joint_distribution Y Z {(y,z)} / distribution Z {z}))))"
 | 
| 
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
933  | 
(is "_ = (\<Sum>(x, y, z)\<in>?S. ?XYZ x y z * log b (?XYZ x y z / (?XZ x z * (?YZ y z / ?Z z))))")  | 
| 40859 | 934  | 
proof -  | 
| 
41981
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
935  | 
  let ?X = "\<lambda>x. distribution X {x}"
 | 
| 40859 | 936  | 
note finite_var = MX MY MZ  | 
937  | 
note YZ = finite_random_variable_pairI[OF finite_var(2,3)]  | 
|
| 
41981
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
938  | 
note XYZ = finite_random_variable_pairI[OF MX YZ]  | 
| 40859 | 939  | 
note XZ = finite_random_variable_pairI[OF finite_var(1,3)]  | 
940  | 
note ZX = finite_random_variable_pairI[OF finite_var(3,1)]  | 
|
941  | 
note YZX = finite_random_variable_pairI[OF finite_var(2) ZX]  | 
|
942  | 
note order1 =  | 
|
| 
41981
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
943  | 
finite_distribution_order(5,6)[OF finite_var(1) YZ]  | 
| 
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
944  | 
finite_distribution_order(5,6)[OF finite_var(1,3)]  | 
| 40859 | 945  | 
|
| 
41981
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
946  | 
note random_var = finite_var[THEN finite_random_variableD]  | 
| 40859 | 947  | 
note finite = finite_var(1) YZ finite_var(3) XZ YZX  | 
948  | 
||
949  | 
  have order2: "\<And>x y z. \<lbrakk>x \<in> space MX; y \<in> space MY; z \<in> space MZ; joint_distribution X Z {(x, z)} = 0\<rbrakk>
 | 
|
950  | 
          \<Longrightarrow> joint_distribution X (\<lambda>x. (Y x, Z x)) {(x, y, z)} = 0"
 | 
|
951  | 
unfolding joint_distribution_commute_singleton[of X]  | 
|
952  | 
unfolding joint_distribution_assoc_singleton[symmetric]  | 
|
953  | 
using finite_distribution_order(6)[OF finite_var(2) ZX]  | 
|
| 
41981
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
954  | 
by auto  | 
| 36624 | 955  | 
|
| 
41981
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
956  | 
have "(\<Sum>(x, y, z)\<in>?S. ?XYZ x y z * log b (?XYZ x y z / (?XZ x z * (?YZ y z / ?Z z)))) =  | 
| 40859 | 957  | 
(\<Sum>(x, y, z)\<in>?S. ?XYZ x y z * (log b (?XYZ x y z / (?X x * ?YZ y z)) - log b (?XZ x z / (?X x * ?Z z))))"  | 
958  | 
(is "(\<Sum>(x, y, z)\<in>?S. ?L x y z) = (\<Sum>(x, y, z)\<in>?S. ?R x y z)")  | 
|
959  | 
proof (safe intro!: setsum_cong)  | 
|
960  | 
fix x y z assume space: "x \<in> space MX" "y \<in> space MY" "z \<in> space MZ"  | 
|
961  | 
show "?L x y z = ?R x y z"  | 
|
962  | 
proof cases  | 
|
963  | 
assume "?XYZ x y z \<noteq> 0"  | 
|
| 
41981
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
964  | 
with space have "0 < ?X x" "0 < ?Z z" "0 < ?XZ x z" "0 < ?YZ y z" "0 < ?XYZ x y z"  | 
| 
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
965  | 
using order1 order2 by (auto simp: less_le)  | 
| 
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
966  | 
with b_gt_1 show ?thesis  | 
| 
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
967  | 
by (simp add: log_mult log_divide zero_less_mult_iff zero_less_divide_iff)  | 
| 40859 | 968  | 
qed simp  | 
969  | 
qed  | 
|
970  | 
also have "\<dots> = (\<Sum>(x, y, z)\<in>?S. ?XYZ x y z * log b (?XYZ x y z / (?X x * ?YZ y z))) -  | 
|
971  | 
(\<Sum>(x, y, z)\<in>?S. ?XYZ x y z * log b (?XZ x z / (?X x * ?Z z)))"  | 
|
972  | 
by (auto simp add: setsum_subtractf[symmetric] field_simps intro!: setsum_cong)  | 
|
973  | 
also have "(\<Sum>(x, y, z)\<in>?S. ?XYZ x y z * log b (?XZ x z / (?X x * ?Z z))) =  | 
|
974  | 
(\<Sum>(x, z)\<in>space MX \<times> space MZ. ?XZ x z * log b (?XZ x z / (?X x * ?Z z)))"  | 
|
975  | 
unfolding setsum_cartesian_product[symmetric] setsum_commute[of _ _ "space MY"]  | 
|
976  | 
setsum_left_distrib[symmetric]  | 
|
977  | 
unfolding joint_distribution_commute_singleton[of X]  | 
|
978  | 
unfolding joint_distribution_assoc_singleton[symmetric]  | 
|
| 
41981
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
979  | 
using setsum_joint_distribution_singleton[OF finite_var(2) ZX]  | 
| 
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
980  | 
by (intro setsum_cong refl) (simp add: space_pair_measure)  | 
| 40859 | 981  | 
also have "(\<Sum>(x, y, z)\<in>?S. ?XYZ x y z * log b (?XYZ x y z / (?X x * ?YZ y z))) -  | 
982  | 
(\<Sum>(x, z)\<in>space MX \<times> space MZ. ?XZ x z * log b (?XZ x z / (?X x * ?Z z))) =  | 
|
983  | 
conditional_mutual_information b MX MY MZ X Y Z"  | 
|
984  | 
unfolding conditional_mutual_information_def  | 
|
985  | 
unfolding mutual_information_generic_eq[OF finite_var(1,3)]  | 
|
986  | 
unfolding mutual_information_generic_eq[OF finite_var(1) YZ]  | 
|
| 
41689
 
3e39b0e730d6
the measure valuation is again part of the measure_space type, instead of an explicit parameter to the locale;
 
hoelzl 
parents: 
41661 
diff
changeset
 | 
987  | 
by (simp add: space_sigma space_pair_measure setsum_cartesian_product')  | 
| 40859 | 988  | 
finally show ?thesis by simp  | 
989  | 
qed  | 
|
990  | 
||
991  | 
lemma (in information_space) conditional_mutual_information_eq:  | 
|
| 
41689
 
3e39b0e730d6
the measure valuation is again part of the measure_space type, instead of an explicit parameter to the locale;
 
hoelzl 
parents: 
41661 
diff
changeset
 | 
992  | 
assumes "simple_function M X" "simple_function M Y" "simple_function M Z"  | 
| 40859 | 993  | 
shows "\<I>(X;Y|Z) = (\<Sum>(x, y, z) \<in> X`space M \<times> Y`space M \<times> Z`space M.  | 
| 
41981
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
994  | 
             distribution (\<lambda>x. (X x, Y x, Z x)) {(x, y, z)} *
 | 
| 
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
995  | 
             log b (distribution (\<lambda>x. (X x, Y x, Z x)) {(x, y, z)} /
 | 
| 
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
996  | 
    (joint_distribution X Z {(x, z)} * joint_distribution Y Z {(y,z)} / distribution Z {z})))"
 | 
| 
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
997  | 
by (subst conditional_mutual_information_generic_eq[OF assms[THEN simple_function_imp_finite_random_variable]])  | 
| 
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
998  | 
simp  | 
| 40859 | 999  | 
|
1000  | 
lemma (in information_space) conditional_mutual_information_eq_mutual_information:  | 
|
| 
41689
 
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diff
changeset
 | 
1001  | 
assumes X: "simple_function M X" and Y: "simple_function M Y"  | 
| 40859 | 1002  | 
shows "\<I>(X ; Y) = \<I>(X ; Y | (\<lambda>x. ()))"  | 
| 36624 | 1003  | 
proof -  | 
1004  | 
  have [simp]: "(\<lambda>x. ()) ` space M = {()}" using not_empty by auto
 | 
|
| 
41689
 
3e39b0e730d6
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diff
changeset
 | 
1005  | 
have C: "simple_function M (\<lambda>x. ())" by auto  | 
| 36624 | 1006  | 
show ?thesis  | 
| 40859 | 1007  | 
unfolding conditional_mutual_information_eq[OF X Y C]  | 
1008  | 
unfolding mutual_information_eq[OF X Y]  | 
|
| 36624 | 1009  | 
by (simp add: setsum_cartesian_product' distribution_remove_const)  | 
1010  | 
qed  | 
|
1011  | 
||
| 40859 | 1012  | 
lemma (in information_space) conditional_mutual_information_generic_positive:  | 
| 
41981
 
cdf7693bbe08
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changeset
 | 
1013  | 
assumes X: "finite_random_variable MX X" and Y: "finite_random_variable MY Y" and Z: "finite_random_variable MZ Z"  | 
| 40859 | 1014  | 
shows "0 \<le> conditional_mutual_information b MX MY MZ X Y Z"  | 
1015  | 
proof (cases "space MX \<times> space MY \<times> space MZ = {}")
 | 
|
1016  | 
case True show ?thesis  | 
|
1017  | 
unfolding conditional_mutual_information_generic_eq[OF assms] True  | 
|
1018  | 
by simp  | 
|
1019  | 
next  | 
|
1020  | 
case False  | 
|
| 
41981
 
cdf7693bbe08
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changeset
 | 
1021  | 
let ?dXYZ = "distribution (\<lambda>x. (X x, Y x, Z x))"  | 
| 
 
cdf7693bbe08
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parents: 
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changeset
 | 
1022  | 
let ?dXZ = "joint_distribution X Z"  | 
| 
 
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parents: 
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diff
changeset
 | 
1023  | 
let ?dYZ = "joint_distribution Y Z"  | 
| 
 
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parents: 
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changeset
 | 
1024  | 
let ?dX = "distribution X"  | 
| 
 
cdf7693bbe08
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parents: 
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changeset
 | 
1025  | 
let ?dZ = "distribution Z"  | 
| 40859 | 1026  | 
let ?M = "space MX \<times> space MY \<times> space MZ"  | 
| 36624 | 1027  | 
|
| 
41981
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
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parents: 
41833 
diff
changeset
 | 
1028  | 
note YZ = finite_random_variable_pairI[OF Y Z]  | 
| 
 
cdf7693bbe08
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parents: 
41833 
diff
changeset
 | 
1029  | 
note XZ = finite_random_variable_pairI[OF X Z]  | 
| 
 
cdf7693bbe08
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hoelzl 
parents: 
41833 
diff
changeset
 | 
1030  | 
note ZX = finite_random_variable_pairI[OF Z X]  | 
| 
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
1031  | 
note YZ = finite_random_variable_pairI[OF Y Z]  | 
| 
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
1032  | 
note XYZ = finite_random_variable_pairI[OF X YZ]  | 
| 
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
1033  | 
note finite = Z YZ XZ XYZ  | 
| 40859 | 1034  | 
  have order: "\<And>x y z. \<lbrakk>x \<in> space MX; y \<in> space MY; z \<in> space MZ; joint_distribution X Z {(x, z)} = 0\<rbrakk>
 | 
1035  | 
          \<Longrightarrow> joint_distribution X (\<lambda>x. (Y x, Z x)) {(x, y, z)} = 0"
 | 
|
1036  | 
unfolding joint_distribution_commute_singleton[of X]  | 
|
1037  | 
unfolding joint_distribution_assoc_singleton[symmetric]  | 
|
| 
41981
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
1038  | 
using finite_distribution_order(6)[OF Y ZX]  | 
| 
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
1039  | 
by auto  | 
| 40859 | 1040  | 
|
1041  | 
note order = order  | 
|
| 
41981
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
1042  | 
finite_distribution_order(5,6)[OF X YZ]  | 
| 
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
1043  | 
finite_distribution_order(5,6)[OF Y Z]  | 
| 40859 | 1044  | 
|
1045  | 
  have "- conditional_mutual_information b MX MY MZ X Y Z = - (\<Sum>(x, y, z) \<in> ?M. ?dXYZ {(x, y, z)} *
 | 
|
1046  | 
    log b (?dXYZ {(x, y, z)} / (?dXZ {(x, z)} * ?dYZ {(y,z)} / ?dZ {z})))"
 | 
|
| 
41981
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
1047  | 
unfolding conditional_mutual_information_generic_eq[OF assms] neg_equal_iff_equal by auto  | 
| 40859 | 1048  | 
  also have "\<dots> \<le> log b (\<Sum>(x, y, z) \<in> ?M. ?dXZ {(x, z)} * ?dYZ {(y,z)} / ?dZ {z})"
 | 
| 
41981
 
cdf7693bbe08
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hoelzl 
parents: 
41833 
diff
changeset
 | 
1049  | 
unfolding split_beta'  | 
| 36624 | 1050  | 
proof (rule log_setsum_divide)  | 
| 40859 | 1051  | 
    show "?M \<noteq> {}" using False by simp
 | 
| 36624 | 1052  | 
show "1 < b" using b_gt_1 .  | 
| 
36080
 
0d9affa4e73c
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parents:  
diff
changeset
 | 
1053  | 
|
| 40859 | 1054  | 
show "finite ?M" using assms  | 
1055  | 
unfolding finite_sigma_algebra_def finite_sigma_algebra_axioms_def by auto  | 
|
1056  | 
||
1057  | 
    show "(\<Sum>x\<in>?M. ?dXYZ {(fst x, fst (snd x), snd (snd x))}) = 1"
 | 
|
1058  | 
unfolding setsum_cartesian_product'  | 
|
1059  | 
unfolding setsum_commute[of _ "space MY"]  | 
|
1060  | 
unfolding setsum_commute[of _ "space MZ"]  | 
|
| 
41689
 
3e39b0e730d6
the measure valuation is again part of the measure_space type, instead of an explicit parameter to the locale;
 
hoelzl 
parents: 
41661 
diff
changeset
 | 
1061  | 
by (simp_all add: space_pair_measure  | 
| 
41981
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
1062  | 
setsum_joint_distribution_singleton[OF X YZ]  | 
| 
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
1063  | 
setsum_joint_distribution_singleton[OF Y Z]  | 
| 
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
1064  | 
setsum_distribution[OF Z])  | 
| 40859 | 1065  | 
|
| 36624 | 1066  | 
fix x assume "x \<in> ?M"  | 
| 38656 | 1067  | 
let ?x = "(fst x, fst (snd x), snd (snd x))"  | 
1068  | 
||
| 
41981
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
1069  | 
    show "0 \<le> ?dXYZ {?x}"
 | 
| 
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
1070  | 
      "0 \<le> ?dXZ {(fst x, snd (snd x))} * ?dYZ {(fst (snd x), snd (snd x))} / ?dZ {snd (snd x)}"
 | 
| 
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
1071  | 
by (simp_all add: mult_nonneg_nonneg divide_nonneg_nonneg)  | 
| 
36080
 
0d9affa4e73c
Added Information theory and Example: dining cryptographers
 
hoelzl 
parents:  
diff
changeset
 | 
1072  | 
|
| 38656 | 1073  | 
    assume *: "0 < ?dXYZ {?x}"
 | 
| 
41981
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
1074  | 
    with `x \<in> ?M` finite order show "0 < ?dXZ {(fst x, snd (snd x))} * ?dYZ {(fst (snd x), snd (snd x))} / ?dZ {snd (snd x)}"
 | 
| 
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
1075  | 
by (cases x) (auto simp add: zero_le_mult_iff zero_le_divide_iff less_le)  | 
| 40859 | 1076  | 
qed  | 
1077  | 
  also have "(\<Sum>(x, y, z) \<in> ?M. ?dXZ {(x, z)} * ?dYZ {(y,z)} / ?dZ {z}) = (\<Sum>z\<in>space MZ. ?dZ {z})"
 | 
|
| 36624 | 1078  | 
apply (simp add: setsum_cartesian_product')  | 
1079  | 
apply (subst setsum_commute)  | 
|
1080  | 
apply (subst (2) setsum_commute)  | 
|
| 40859 | 1081  | 
by (auto simp: setsum_divide_distrib[symmetric] setsum_product[symmetric]  | 
| 
41981
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
1082  | 
setsum_joint_distribution_singleton[OF X Z]  | 
| 
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
1083  | 
setsum_joint_distribution_singleton[OF Y Z]  | 
| 36624 | 1084  | 
intro!: setsum_cong)  | 
| 40859 | 1085  | 
  also have "log b (\<Sum>z\<in>space MZ. ?dZ {z}) = 0"
 | 
| 45710 | 1086  | 
unfolding setsum_distribution[OF Z] by simp  | 
| 40859 | 1087  | 
finally show ?thesis by simp  | 
| 
36080
 
0d9affa4e73c
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hoelzl 
parents:  
diff
changeset
 | 
1088  | 
qed  | 
| 
 
0d9affa4e73c
Added Information theory and Example: dining cryptographers
 
hoelzl 
parents:  
diff
changeset
 | 
1089  | 
|
| 40859 | 1090  | 
lemma (in information_space) conditional_mutual_information_positive:  | 
| 
41689
 
3e39b0e730d6
the measure valuation is again part of the measure_space type, instead of an explicit parameter to the locale;
 
hoelzl 
parents: 
41661 
diff
changeset
 | 
1091  | 
assumes "simple_function M X" and "simple_function M Y" and "simple_function M Z"  | 
| 40859 | 1092  | 
shows "0 \<le> \<I>(X;Y|Z)"  | 
| 
41689
 
3e39b0e730d6
the measure valuation is again part of the measure_space type, instead of an explicit parameter to the locale;
 
hoelzl 
parents: 
41661 
diff
changeset
 | 
1093  | 
by (rule conditional_mutual_information_generic_positive[OF assms[THEN simple_function_imp_finite_random_variable]])  | 
| 40859 | 1094  | 
|
| 39097 | 1095  | 
subsection {* Conditional Entropy *}
 | 
1096  | 
||
| 
36080
 
0d9affa4e73c
Added Information theory and Example: dining cryptographers
 
hoelzl 
parents:  
diff
changeset
 | 
1097  | 
definition (in prob_space)  | 
| 
 
0d9affa4e73c
Added Information theory and Example: dining cryptographers
 
hoelzl 
parents:  
diff
changeset
 | 
1098  | 
"conditional_entropy b S T X Y = conditional_mutual_information b S S T X X Y"  | 
| 
 
0d9affa4e73c
Added Information theory and Example: dining cryptographers
 
hoelzl 
parents:  
diff
changeset
 | 
1099  | 
|
| 40859 | 1100  | 
abbreviation (in information_space)  | 
1101  | 
  conditional_entropy_Pow ("\<H>'(_ | _')") where
 | 
|
| 36624 | 1102  | 
"\<H>(X | Y) \<equiv> conditional_entropy b  | 
| 43920 | 1103  | 
\<lparr> space = X`space M, sets = Pow (X`space M), measure = ereal\<circ>distribution X \<rparr>  | 
1104  | 
\<lparr> space = Y`space M, sets = Pow (Y`space M), measure = ereal\<circ>distribution Y \<rparr> X Y"  | 
|
| 
36080
 
0d9affa4e73c
Added Information theory and Example: dining cryptographers
 
hoelzl 
parents:  
diff
changeset
 | 
1105  | 
|
| 40859 | 1106  | 
lemma (in information_space) conditional_entropy_positive:  | 
| 
41689
 
3e39b0e730d6
the measure valuation is again part of the measure_space type, instead of an explicit parameter to the locale;
 
hoelzl 
parents: 
41661 
diff
changeset
 | 
1107  | 
"simple_function M X \<Longrightarrow> simple_function M Y \<Longrightarrow> 0 \<le> \<H>(X | Y)"  | 
| 40859 | 1108  | 
unfolding conditional_entropy_def by (auto intro!: conditional_mutual_information_positive)  | 
| 
36080
 
0d9affa4e73c
Added Information theory and Example: dining cryptographers
 
hoelzl 
parents:  
diff
changeset
 | 
1109  | 
|
| 40859 | 1110  | 
lemma (in information_space) conditional_entropy_generic_eq:  | 
| 
41689
 
3e39b0e730d6
the measure valuation is again part of the measure_space type, instead of an explicit parameter to the locale;
 
hoelzl 
parents: 
41661 
diff
changeset
 | 
1111  | 
  fixes MX :: "('c, 'd) measure_space_scheme" and MY :: "('e, 'f) measure_space_scheme"
 | 
| 40859 | 1112  | 
assumes MX: "finite_random_variable MX X"  | 
1113  | 
assumes MZ: "finite_random_variable MZ Z"  | 
|
| 39097 | 1114  | 
shows "conditional_entropy b MX MZ X Z =  | 
1115  | 
- (\<Sum>(x, z)\<in>space MX \<times> space MZ.  | 
|
| 
41981
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
1116  | 
         joint_distribution X Z {(x, z)} * log b (joint_distribution X Z {(x, z)} / distribution Z {z}))"
 | 
| 40859 | 1117  | 
proof -  | 
1118  | 
interpret MX: finite_sigma_algebra MX using MX by simp  | 
|
1119  | 
interpret MZ: finite_sigma_algebra MZ using MZ by simp  | 
|
1120  | 
  let "?XXZ x y z" = "joint_distribution X (\<lambda>x. (X x, Z x)) {(x, y, z)}"
 | 
|
1121  | 
  let "?XZ x z" = "joint_distribution X Z {(x, z)}"
 | 
|
1122  | 
  let "?Z z" = "distribution Z {z}"
 | 
|
| 
41981
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
1123  | 
let "?f x y z" = "log b (?XXZ x y z * ?Z z / (?XZ x z * ?XZ y z))"  | 
| 40859 | 1124  | 
  { fix x z have "?XXZ x x z = ?XZ x z"
 | 
| 
41981
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
1125  | 
unfolding distribution_def by (auto intro!: arg_cong[where f=\<mu>']) }  | 
| 40859 | 1126  | 
note this[simp]  | 
| 
41689
 
3e39b0e730d6
the measure valuation is again part of the measure_space type, instead of an explicit parameter to the locale;
 
hoelzl 
parents: 
41661 
diff
changeset
 | 
1127  | 
  { fix x x' :: 'c and z assume "x' \<noteq> x"
 | 
| 40859 | 1128  | 
then have "?XXZ x x' z = 0"  | 
| 
41981
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
1129  | 
by (auto simp: distribution_def empty_measure'[symmetric]  | 
| 
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
1130  | 
simp del: empty_measure' intro!: arg_cong[where f=\<mu>']) }  | 
| 40859 | 1131  | 
note this[simp]  | 
1132  | 
  { fix x x' z assume *: "x \<in> space MX" "z \<in> space MZ"
 | 
|
| 
41981
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
1133  | 
then have "(\<Sum>x'\<in>space MX. ?XXZ x x' z * ?f x x' z)  | 
| 
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
1134  | 
= (\<Sum>x'\<in>space MX. if x = x' then ?XZ x z * ?f x x z else 0)"  | 
| 40859 | 1135  | 
by (auto intro!: setsum_cong)  | 
| 
41981
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
1136  | 
also have "\<dots> = ?XZ x z * ?f x x z"  | 
| 40859 | 1137  | 
using `x \<in> space MX` by (simp add: setsum_cases[OF MX.finite_space])  | 
| 
41981
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
1138  | 
also have "\<dots> = ?XZ x z * log b (?Z z / ?XZ x z)" by auto  | 
| 
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
1139  | 
also have "\<dots> = - ?XZ x z * log b (?XZ x z / ?Z z)"  | 
| 40859 | 1140  | 
using finite_distribution_order(6)[OF MX MZ]  | 
| 
41981
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
1141  | 
by (auto simp: log_simps field_simps zero_less_mult_iff)  | 
| 
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
1142  | 
finally have "(\<Sum>x'\<in>space MX. ?XXZ x x' z * ?f x x' z) = - ?XZ x z * log b (?XZ x z / ?Z z)" . }  | 
| 40859 | 1143  | 
note * = this  | 
1144  | 
show ?thesis  | 
|
1145  | 
unfolding conditional_entropy_def  | 
|
1146  | 
unfolding conditional_mutual_information_generic_eq[OF MX MX MZ]  | 
|
1147  | 
by (auto simp: setsum_cartesian_product' setsum_negf[symmetric]  | 
|
| 
41981
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
1148  | 
setsum_commute[of _ "space MZ"] *  | 
| 40859 | 1149  | 
intro!: setsum_cong)  | 
| 39097 | 1150  | 
qed  | 
1151  | 
||
| 40859 | 1152  | 
lemma (in information_space) conditional_entropy_eq:  | 
| 
41689
 
3e39b0e730d6
the measure valuation is again part of the measure_space type, instead of an explicit parameter to the locale;
 
hoelzl 
parents: 
41661 
diff
changeset
 | 
1153  | 
assumes "simple_function M X" "simple_function M Z"  | 
| 40859 | 1154  | 
shows "\<H>(X | Z) =  | 
| 
36080
 
0d9affa4e73c
Added Information theory and Example: dining cryptographers
 
hoelzl 
parents:  
diff
changeset
 | 
1155  | 
- (\<Sum>(x, z)\<in>X ` space M \<times> Z ` space M.  | 
| 
41981
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
1156  | 
         joint_distribution X Z {(x, z)} *
 | 
| 
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
1157  | 
         log b (joint_distribution X Z {(x, z)} / distribution Z {z}))"
 | 
| 
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
1158  | 
by (subst conditional_entropy_generic_eq[OF assms[THEN simple_function_imp_finite_random_variable]])  | 
| 
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
1159  | 
simp  | 
| 39097 | 1160  | 
|
| 40859 | 1161  | 
lemma (in information_space) conditional_entropy_eq_ce_with_hypothesis:  | 
| 
41689
 
3e39b0e730d6
the measure valuation is again part of the measure_space type, instead of an explicit parameter to the locale;
 
hoelzl 
parents: 
41661 
diff
changeset
 | 
1162  | 
assumes X: "simple_function M X" and Y: "simple_function M Y"  | 
| 40859 | 1163  | 
shows "\<H>(X | Y) =  | 
| 
41981
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
1164  | 
    -(\<Sum>y\<in>Y`space M. distribution Y {y} *
 | 
| 
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
1165  | 
      (\<Sum>x\<in>X`space M. joint_distribution X Y {(x,y)} / distribution Y {(y)} *
 | 
| 
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
1166  | 
              log b (joint_distribution X Y {(x,y)} / distribution Y {(y)})))"
 | 
| 40859 | 1167  | 
unfolding conditional_entropy_eq[OF assms]  | 
1168  | 
using finite_distribution_order(5,6)[OF assms[THEN simple_function_imp_finite_random_variable]]  | 
|
| 
41981
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
1169  | 
by (auto simp: setsum_cartesian_product' setsum_commute[of _ "Y`space M"] setsum_right_distrib  | 
| 40859 | 1170  | 
intro!: setsum_cong)  | 
| 39097 | 1171  | 
|
| 40859 | 1172  | 
lemma (in information_space) conditional_entropy_eq_cartesian_product:  | 
| 
41689
 
3e39b0e730d6
the measure valuation is again part of the measure_space type, instead of an explicit parameter to the locale;
 
hoelzl 
parents: 
41661 
diff
changeset
 | 
1173  | 
assumes "simple_function M X" "simple_function M Y"  | 
| 40859 | 1174  | 
shows "\<H>(X | Y) = -(\<Sum>x\<in>X`space M. \<Sum>y\<in>Y`space M.  | 
| 
41981
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
1175  | 
    joint_distribution X Y {(x,y)} *
 | 
| 
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
1176  | 
    log b (joint_distribution X Y {(x,y)} / distribution Y {y}))"
 | 
| 40859 | 1177  | 
unfolding conditional_entropy_eq[OF assms]  | 
1178  | 
by (auto intro!: setsum_cong simp: setsum_cartesian_product')  | 
|
| 
36080
 
0d9affa4e73c
Added Information theory and Example: dining cryptographers
 
hoelzl 
parents:  
diff
changeset
 | 
1179  | 
|
| 39097 | 1180  | 
subsection {* Equalities *}
 | 
1181  | 
||
| 40859 | 1182  | 
lemma (in information_space) mutual_information_eq_entropy_conditional_entropy:  | 
| 
41689
 
3e39b0e730d6
the measure valuation is again part of the measure_space type, instead of an explicit parameter to the locale;
 
hoelzl 
parents: 
41661 
diff
changeset
 | 
1183  | 
assumes X: "simple_function M X" and Z: "simple_function M Z"  | 
| 40859 | 1184  | 
shows "\<I>(X ; Z) = \<H>(X) - \<H>(X | Z)"  | 
1185  | 
proof -  | 
|
| 
41981
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
1186  | 
  let "?XZ x z" = "joint_distribution X Z {(x, z)}"
 | 
| 
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
1187  | 
  let "?Z z" = "distribution Z {z}"
 | 
| 
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
1188  | 
  let "?X x" = "distribution X {x}"
 | 
| 40859 | 1189  | 
note fX = X[THEN simple_function_imp_finite_random_variable]  | 
1190  | 
note fZ = Z[THEN simple_function_imp_finite_random_variable]  | 
|
1191  | 
note finite_distribution_order[OF fX fZ, simp]  | 
|
1192  | 
  { fix x z assume "x \<in> X`space M" "z \<in> Z`space M"
 | 
|
1193  | 
have "?XZ x z * log b (?XZ x z / (?X x * ?Z z)) =  | 
|
1194  | 
?XZ x z * log b (?XZ x z / ?Z z) - ?XZ x z * log b (?X x)"  | 
|
| 
41981
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
1195  | 
by (auto simp: log_simps zero_le_mult_iff field_simps less_le) }  | 
| 40859 | 1196  | 
note * = this  | 
1197  | 
show ?thesis  | 
|
1198  | 
unfolding entropy_eq[OF X] conditional_entropy_eq[OF X Z] mutual_information_eq[OF X Z]  | 
|
| 
41981
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
1199  | 
using setsum_joint_distribution_singleton[OF fZ fX, unfolded joint_distribution_commute_singleton[of Z X]]  | 
| 40859 | 1200  | 
by (simp add: * setsum_cartesian_product' setsum_subtractf setsum_left_distrib[symmetric]  | 
| 
41981
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
1201  | 
setsum_distribution)  | 
| 40859 | 1202  | 
qed  | 
| 
36080
 
0d9affa4e73c
Added Information theory and Example: dining cryptographers
 
hoelzl 
parents:  
diff
changeset
 | 
1203  | 
|
| 40859 | 1204  | 
lemma (in information_space) conditional_entropy_less_eq_entropy:  | 
| 
41689
 
3e39b0e730d6
the measure valuation is again part of the measure_space type, instead of an explicit parameter to the locale;
 
hoelzl 
parents: 
41661 
diff
changeset
 | 
1205  | 
assumes X: "simple_function M X" and Z: "simple_function M Z"  | 
| 40859 | 1206  | 
shows "\<H>(X | Z) \<le> \<H>(X)"  | 
| 36624 | 1207  | 
proof -  | 
| 40859 | 1208  | 
have "\<I>(X ; Z) = \<H>(X) - \<H>(X | Z)" using mutual_information_eq_entropy_conditional_entropy[OF assms] .  | 
1209  | 
with mutual_information_positive[OF X Z] entropy_positive[OF X]  | 
|
| 36624 | 1210  | 
show ?thesis by auto  | 
| 
36080
 
0d9affa4e73c
Added Information theory and Example: dining cryptographers
 
hoelzl 
parents:  
diff
changeset
 | 
1211  | 
qed  | 
| 
 
0d9affa4e73c
Added Information theory and Example: dining cryptographers
 
hoelzl 
parents:  
diff
changeset
 | 
1212  | 
|
| 40859 | 1213  | 
lemma (in information_space) entropy_chain_rule:  | 
| 
41689
 
3e39b0e730d6
the measure valuation is again part of the measure_space type, instead of an explicit parameter to the locale;
 
hoelzl 
parents: 
41661 
diff
changeset
 | 
1214  | 
assumes X: "simple_function M X" and Y: "simple_function M Y"  | 
| 40859 | 1215  | 
shows "\<H>(\<lambda>x. (X x, Y x)) = \<H>(X) + \<H>(Y|X)"  | 
1216  | 
proof -  | 
|
| 
41981
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
1217  | 
  let "?XY x y" = "joint_distribution X Y {(x, y)}"
 | 
| 
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
1218  | 
  let "?Y y" = "distribution Y {y}"
 | 
| 
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
1219  | 
  let "?X x" = "distribution X {x}"
 | 
| 40859 | 1220  | 
note fX = X[THEN simple_function_imp_finite_random_variable]  | 
1221  | 
note fY = Y[THEN simple_function_imp_finite_random_variable]  | 
|
1222  | 
note finite_distribution_order[OF fX fY, simp]  | 
|
1223  | 
  { fix x y assume "x \<in> X`space M" "y \<in> Y`space M"
 | 
|
1224  | 
have "?XY x y * log b (?XY x y / ?X x) =  | 
|
1225  | 
?XY x y * log b (?XY x y) - ?XY x y * log b (?X x)"  | 
|
| 
41981
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
1226  | 
by (auto simp: log_simps zero_le_mult_iff field_simps less_le) }  | 
| 40859 | 1227  | 
note * = this  | 
1228  | 
show ?thesis  | 
|
| 
41981
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
1229  | 
using setsum_joint_distribution_singleton[OF fY fX]  | 
| 40859 | 1230  | 
unfolding entropy_eq[OF X] conditional_entropy_eq_cartesian_product[OF Y X] entropy_eq_cartesian_product[OF X Y]  | 
1231  | 
unfolding joint_distribution_commute_singleton[of Y X] setsum_commute[of _ "X`space M"]  | 
|
1232  | 
by (simp add: * setsum_subtractf setsum_left_distrib[symmetric])  | 
|
1233  | 
qed  | 
|
| 38656 | 1234  | 
|
| 39097 | 1235  | 
section {* Partitioning *}
 | 
| 
36080
 
0d9affa4e73c
Added Information theory and Example: dining cryptographers
 
hoelzl 
parents:  
diff
changeset
 | 
1236  | 
|
| 36624 | 1237  | 
definition "subvimage A f g \<longleftrightarrow> (\<forall>x \<in> A. f -` {f x} \<inter> A \<subseteq> g -` {g x} \<inter> A)"
 | 
1238  | 
||
1239  | 
lemma subvimageI:  | 
|
1240  | 
assumes "\<And>x y. \<lbrakk> x \<in> A ; y \<in> A ; f x = f y \<rbrakk> \<Longrightarrow> g x = g y"  | 
|
1241  | 
shows "subvimage A f g"  | 
|
1242  | 
using assms unfolding subvimage_def by blast  | 
|
1243  | 
||
1244  | 
lemma subvimageE[consumes 1]:  | 
|
1245  | 
assumes "subvimage A f g"  | 
|
1246  | 
obtains "\<And>x y. \<lbrakk> x \<in> A ; y \<in> A ; f x = f y \<rbrakk> \<Longrightarrow> g x = g y"  | 
|
1247  | 
using assms unfolding subvimage_def by blast  | 
|
1248  | 
||
1249  | 
lemma subvimageD:  | 
|
1250  | 
"\<lbrakk> subvimage A f g ; x \<in> A ; y \<in> A ; f x = f y \<rbrakk> \<Longrightarrow> g x = g y"  | 
|
1251  | 
using assms unfolding subvimage_def by blast  | 
|
1252  | 
||
1253  | 
lemma subvimage_subset:  | 
|
1254  | 
"\<lbrakk> subvimage B f g ; A \<subseteq> B \<rbrakk> \<Longrightarrow> subvimage A f g"  | 
|
1255  | 
unfolding subvimage_def by auto  | 
|
1256  | 
||
1257  | 
lemma subvimage_idem[intro]: "subvimage A g g"  | 
|
1258  | 
by (safe intro!: subvimageI)  | 
|
1259  | 
||
1260  | 
lemma subvimage_comp_finer[intro]:  | 
|
1261  | 
assumes svi: "subvimage A g h"  | 
|
1262  | 
shows "subvimage A g (f \<circ> h)"  | 
|
1263  | 
proof (rule subvimageI, simp)  | 
|
1264  | 
fix x y assume "x \<in> A" "y \<in> A" "g x = g y"  | 
|
1265  | 
from svi[THEN subvimageD, OF this]  | 
|
1266  | 
show "f (h x) = f (h y)" by simp  | 
|
1267  | 
qed  | 
|
1268  | 
||
1269  | 
lemma subvimage_comp_gran:  | 
|
1270  | 
assumes svi: "subvimage A g h"  | 
|
1271  | 
assumes inj: "inj_on f (g ` A)"  | 
|
1272  | 
shows "subvimage A (f \<circ> g) h"  | 
|
1273  | 
by (rule subvimageI) (auto intro!: subvimageD[OF svi] simp: inj_on_iff[OF inj])  | 
|
1274  | 
||
1275  | 
lemma subvimage_comp:  | 
|
1276  | 
assumes svi: "subvimage (f ` A) g h"  | 
|
1277  | 
shows "subvimage A (g \<circ> f) (h \<circ> f)"  | 
|
1278  | 
by (rule subvimageI) (auto intro!: svi[THEN subvimageD])  | 
|
1279  | 
||
1280  | 
lemma subvimage_trans:  | 
|
1281  | 
assumes fg: "subvimage A f g"  | 
|
1282  | 
assumes gh: "subvimage A g h"  | 
|
1283  | 
shows "subvimage A f h"  | 
|
1284  | 
by (rule subvimageI) (auto intro!: fg[THEN subvimageD] gh[THEN subvimageD])  | 
|
1285  | 
||
1286  | 
lemma subvimage_translator:  | 
|
1287  | 
assumes svi: "subvimage A f g"  | 
|
1288  | 
shows "\<exists>h. \<forall>x \<in> A. h (f x) = g x"  | 
|
1289  | 
proof (safe intro!: exI[of _ "\<lambda>x. (THE z. z \<in> (g ` (f -` {x} \<inter> A)))"])
 | 
|
1290  | 
fix x assume "x \<in> A"  | 
|
1291  | 
  show "(THE x'. x' \<in> (g ` (f -` {f x} \<inter> A))) = g x"
 | 
|
1292  | 
by (rule theI2[of _ "g x"])  | 
|
1293  | 
(insert `x \<in> A`, auto intro!: svi[THEN subvimageD])  | 
|
1294  | 
qed  | 
|
1295  | 
||
1296  | 
lemma subvimage_translator_image:  | 
|
1297  | 
assumes svi: "subvimage A f g"  | 
|
1298  | 
shows "\<exists>h. h ` f ` A = g ` A"  | 
|
1299  | 
proof -  | 
|
1300  | 
from subvimage_translator[OF svi]  | 
|
1301  | 
obtain h where "\<And>x. x \<in> A \<Longrightarrow> h (f x) = g x" by auto  | 
|
1302  | 
thus ?thesis  | 
|
1303  | 
by (auto intro!: exI[of _ h]  | 
|
1304  | 
simp: image_compose[symmetric] comp_def cong: image_cong)  | 
|
1305  | 
qed  | 
|
1306  | 
||
1307  | 
lemma subvimage_finite:  | 
|
1308  | 
assumes svi: "subvimage A f g" and fin: "finite (f`A)"  | 
|
1309  | 
shows "finite (g`A)"  | 
|
1310  | 
proof -  | 
|
1311  | 
from subvimage_translator_image[OF svi]  | 
|
| 
44890
 
22f665a2e91c
new fastforce replacing fastsimp - less confusing name
 
nipkow 
parents: 
43920 
diff
changeset
 | 
1312  | 
obtain h where "g`A = h`f`A" by fastforce  | 
| 36624 | 1313  | 
with fin show "finite (g`A)" by simp  | 
1314  | 
qed  | 
|
1315  | 
||
1316  | 
lemma subvimage_disj:  | 
|
1317  | 
assumes svi: "subvimage A f g"  | 
|
1318  | 
  shows "f -` {x} \<inter> A \<subseteq> g -` {y} \<inter> A \<or>
 | 
|
1319  | 
      f -` {x} \<inter> g -` {y} \<inter> A = {}" (is "?sub \<or> ?dist")
 | 
|
1320  | 
proof (rule disjCI)  | 
|
1321  | 
assume "\<not> ?dist"  | 
|
1322  | 
then obtain z where "z \<in> A" and "x = f z" and "y = g z" by auto  | 
|
1323  | 
thus "?sub" using svi unfolding subvimage_def by auto  | 
|
1324  | 
qed  | 
|
1325  | 
||
1326  | 
lemma setsum_image_split:  | 
|
1327  | 
assumes svi: "subvimage A f g" and fin: "finite (f ` A)"  | 
|
1328  | 
  shows "(\<Sum>x\<in>f`A. h x) = (\<Sum>y\<in>g`A. \<Sum>x\<in>f`(g -` {y} \<inter> A). h x)"
 | 
|
1329  | 
(is "?lhs = ?rhs")  | 
|
1330  | 
proof -  | 
|
1331  | 
have "f ` A =  | 
|
1332  | 
      snd ` (SIGMA x : g ` A. f ` (g -` {x} \<inter> A))"
 | 
|
1333  | 
(is "_ = snd ` ?SIGMA")  | 
|
1334  | 
unfolding image_split_eq_Sigma[symmetric]  | 
|
1335  | 
by (simp add: image_compose[symmetric] comp_def)  | 
|
1336  | 
moreover  | 
|
1337  | 
have snd_inj: "inj_on snd ?SIGMA"  | 
|
1338  | 
unfolding image_split_eq_Sigma[symmetric]  | 
|
1339  | 
by (auto intro!: inj_onI subvimageD[OF svi])  | 
|
1340  | 
ultimately  | 
|
1341  | 
have "(\<Sum>x\<in>f`A. h x) = (\<Sum>(x,y)\<in>?SIGMA. h y)"  | 
|
1342  | 
by (auto simp: setsum_reindex intro: setsum_cong)  | 
|
1343  | 
also have "... = ?rhs"  | 
|
1344  | 
using subvimage_finite[OF svi fin] fin  | 
|
1345  | 
apply (subst setsum_Sigma[symmetric])  | 
|
1346  | 
by (auto intro!: finite_subset[of _ "f`A"])  | 
|
1347  | 
finally show ?thesis .  | 
|
1348  | 
qed  | 
|
1349  | 
||
| 40859 | 1350  | 
lemma (in information_space) entropy_partition:  | 
| 
41689
 
3e39b0e730d6
the measure valuation is again part of the measure_space type, instead of an explicit parameter to the locale;
 
hoelzl 
parents: 
41661 
diff
changeset
 | 
1351  | 
assumes sf: "simple_function M X" "simple_function M P"  | 
| 36624 | 1352  | 
assumes svi: "subvimage (space M) X P"  | 
1353  | 
shows "\<H>(X) = \<H>(P) + \<H>(X|P)"  | 
|
1354  | 
proof -  | 
|
| 
41981
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
1355  | 
  let "?XP x p" = "joint_distribution X P {(x, p)}"
 | 
| 
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
1356  | 
  let "?X x" = "distribution X {x}"
 | 
| 
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
1357  | 
  let "?P p" = "distribution P {p}"
 | 
| 40859 | 1358  | 
note fX = sf(1)[THEN simple_function_imp_finite_random_variable]  | 
1359  | 
note fP = sf(2)[THEN simple_function_imp_finite_random_variable]  | 
|
1360  | 
note finite_distribution_order[OF fX fP, simp]  | 
|
| 
41981
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
1361  | 
have "(\<Sum>x\<in>X ` space M. ?X x * log b (?X x)) =  | 
| 
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
1362  | 
(\<Sum>y\<in>P `space M. \<Sum>x\<in>X ` space M. ?XP x y * log b (?XP x y))"  | 
| 36624 | 1363  | 
proof (subst setsum_image_split[OF svi],  | 
| 40859 | 1364  | 
safe intro!: setsum_mono_zero_cong_left imageI)  | 
1365  | 
show "finite (X ` space M)" "finite (X ` space M)" "finite (P ` space M)"  | 
|
1366  | 
using sf unfolding simple_function_def by auto  | 
|
1367  | 
next  | 
|
| 36624 | 1368  | 
fix p x assume in_space: "p \<in> space M" "x \<in> space M"  | 
| 
41981
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
1369  | 
assume "?XP (X x) (P p) * log b (?XP (X x) (P p)) \<noteq> 0"  | 
| 36624 | 1370  | 
    hence "(\<lambda>x. (X x, P x)) -` {(X x, P p)} \<inter> space M \<noteq> {}" by (auto simp: distribution_def)
 | 
1371  | 
with svi[unfolded subvimage_def, rule_format, OF `x \<in> space M`]  | 
|
1372  | 
    show "x \<in> P -` {P p}" by auto
 | 
|
1373  | 
next  | 
|
1374  | 
fix p x assume in_space: "p \<in> space M" "x \<in> space M"  | 
|
1375  | 
assume "P x = P p"  | 
|
1376  | 
from this[symmetric] svi[unfolded subvimage_def, rule_format, OF `x \<in> space M`]  | 
|
1377  | 
    have "X -` {X x} \<inter> space M \<subseteq> P -` {P p} \<inter> space M"
 | 
|
1378  | 
by auto  | 
|
1379  | 
    hence "(\<lambda>x. (X x, P x)) -` {(X x, P p)} \<inter> space M = X -` {X x} \<inter> space M"
 | 
|
1380  | 
by auto  | 
|
| 
41981
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
1381  | 
thus "?X (X x) * log b (?X (X x)) = ?XP (X x) (P p) * log b (?XP (X x) (P p))"  | 
| 36624 | 1382  | 
by (auto simp: distribution_def)  | 
1383  | 
qed  | 
|
| 
41981
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
1384  | 
moreover have "\<And>x y. ?XP x y * log b (?XP x y / ?P y) =  | 
| 
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
1385  | 
?XP x y * log b (?XP x y) - ?XP x y * log b (?P y)"  | 
| 40859 | 1386  | 
by (auto simp add: log_simps zero_less_mult_iff field_simps)  | 
1387  | 
ultimately show ?thesis  | 
|
1388  | 
unfolding sf[THEN entropy_eq] conditional_entropy_eq[OF sf]  | 
|
| 
41981
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
1389  | 
using setsum_joint_distribution_singleton[OF fX fP]  | 
| 
 
cdf7693bbe08
reworked Probability theory: measures are not type restricted to positive extended reals
 
hoelzl 
parents: 
41833 
diff
changeset
 | 
1390  | 
by (simp add: setsum_cartesian_product' setsum_subtractf setsum_distribution  | 
| 36624 | 1391  | 
setsum_left_distrib[symmetric] setsum_commute[where B="P`space M"])  | 
1392  | 
qed  | 
|
1393  | 
||
| 40859 | 1394  | 
corollary (in information_space) entropy_data_processing:  | 
| 
41689
 
3e39b0e730d6
the measure valuation is again part of the measure_space type, instead of an explicit parameter to the locale;
 
hoelzl 
parents: 
41661 
diff
changeset
 | 
1395  | 
assumes X: "simple_function M X" shows "\<H>(f \<circ> X) \<le> \<H>(X)"  | 
| 40859 | 1396  | 
proof -  | 
1397  | 
note X  | 
|
| 
41689
 
3e39b0e730d6
the measure valuation is again part of the measure_space type, instead of an explicit parameter to the locale;
 
hoelzl 
parents: 
41661 
diff
changeset
 | 
1398  | 
moreover have fX: "simple_function M (f \<circ> X)" using X by auto  | 
| 40859 | 1399  | 
moreover have "subvimage (space M) X (f \<circ> X)" by auto  | 
1400  | 
ultimately have "\<H>(X) = \<H>(f\<circ>X) + \<H>(X|f\<circ>X)" by (rule entropy_partition)  | 
|
1401  | 
then show "\<H>(f \<circ> X) \<le> \<H>(X)"  | 
|
1402  | 
by (auto intro: conditional_entropy_positive[OF X fX])  | 
|
1403  | 
qed  | 
|
| 36624 | 1404  | 
|
| 40859 | 1405  | 
corollary (in information_space) entropy_of_inj:  | 
| 
41689
 
3e39b0e730d6
the measure valuation is again part of the measure_space type, instead of an explicit parameter to the locale;
 
hoelzl 
parents: 
41661 
diff
changeset
 | 
1406  | 
assumes X: "simple_function M X" and inj: "inj_on f (X`space M)"  | 
| 36624 | 1407  | 
shows "\<H>(f \<circ> X) = \<H>(X)"  | 
1408  | 
proof (rule antisym)  | 
|
| 40859 | 1409  | 
show "\<H>(f \<circ> X) \<le> \<H>(X)" using entropy_data_processing[OF X] .  | 
| 36624 | 1410  | 
next  | 
| 
41689
 
3e39b0e730d6
the measure valuation is again part of the measure_space type, instead of an explicit parameter to the locale;
 
hoelzl 
parents: 
41661 
diff
changeset
 | 
1411  | 
have sf: "simple_function M (f \<circ> X)"  | 
| 40859 | 1412  | 
using X by auto  | 
| 36624 | 1413  | 
have "\<H>(X) = \<H>(the_inv_into (X`space M) f \<circ> (f \<circ> X))"  | 
| 40859 | 1414  | 
by (auto intro!: mutual_information_cong simp: entropy_def the_inv_into_f_f[OF inj])  | 
| 36624 | 1415  | 
also have "... \<le> \<H>(f \<circ> X)"  | 
| 40859 | 1416  | 
using entropy_data_processing[OF sf] .  | 
| 36624 | 1417  | 
finally show "\<H>(X) \<le> \<H>(f \<circ> X)" .  | 
1418  | 
qed  | 
|
1419  | 
||
| 
36080
 
0d9affa4e73c
Added Information theory and Example: dining cryptographers
 
hoelzl 
parents:  
diff
changeset
 | 
1420  | 
end  |