Quot/QuotMain.thy
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(*  Title:      ??/QuotMain.thy
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    Author:     Cezary Kaliszyk and Christian Urban
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*)
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theory QuotMain
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imports QuotScript Prove
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uses ("quotient_info.ML")
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     ("quotient_typ.ML")
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     ("quotient_def.ML")
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     ("quotient_term.ML")
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     ("quotient_tacs.ML")
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begin
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locale QUOT_TYPE =
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  fixes R :: "'a \<Rightarrow> 'a \<Rightarrow> bool"
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  and   Abs :: "('a \<Rightarrow> bool) \<Rightarrow> 'b"
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  and   Rep :: "'b \<Rightarrow> ('a \<Rightarrow> bool)"
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  assumes equivp: "equivp R"
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  and     rep_prop: "\<And>y. \<exists>x. Rep y = R x"
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  and     rep_inverse: "\<And>x. Abs (Rep x) = x"
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  and     abs_inverse: "\<And>x. (Rep (Abs (R x))) = (R x)"
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  and     rep_inject: "\<And>x y. (Rep x = Rep y) = (x = y)"
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begin
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definition
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  abs::"'a \<Rightarrow> 'b"
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where
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  "abs x \<equiv> Abs (R x)"
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definition
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  rep::"'b \<Rightarrow> 'a"
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where
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  "rep a = Eps (Rep a)"
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lemma lem9:
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  shows "R (Eps (R x)) = R x"
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proof -
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  have a: "R x x" using equivp by (simp add: equivp_reflp_symp_transp reflp_def)
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  then have "R x (Eps (R x))" by (rule someI)
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  then show "R (Eps (R x)) = R x"
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    using equivp unfolding equivp_def by simp
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qed
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theorem thm10:
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  shows "abs (rep a) \<equiv> a"
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  apply  (rule eq_reflection)
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  unfolding abs_def rep_def
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proof -
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  from rep_prop
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  obtain x where eq: "Rep a = R x" by auto
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  have "Abs (R (Eps (Rep a))) = Abs (R (Eps (R x)))" using eq by simp
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  also have "\<dots> = Abs (R x)" using lem9 by simp
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  also have "\<dots> = Abs (Rep a)" using eq by simp
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  also have "\<dots> = a" using rep_inverse by simp
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  finally
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  show "Abs (R (Eps (Rep a))) = a" by simp
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qed
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lemma rep_refl:
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  shows "R (rep a) (rep a)"
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unfolding rep_def
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by (simp add: equivp[simplified equivp_def])
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lemma lem7:
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  shows "(R x = R y) = (Abs (R x) = Abs (R y))"
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apply(rule iffI)
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apply(simp)
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apply(drule rep_inject[THEN iffD2])
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apply(simp add: abs_inverse)
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done
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theorem thm11:
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  shows "R r r' = (abs r = abs r')"
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unfolding abs_def
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by (simp only: equivp[simplified equivp_def] lem7)
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lemma rep_abs_rsp:
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  shows "R f (rep (abs g)) = R f g"
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  and   "R (rep (abs g)) f = R g f"
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by (simp_all add: thm10 thm11)
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lemma Quotient:
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  "Quotient R abs rep"
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apply(unfold Quotient_def)
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apply(simp add: thm10)
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apply(simp add: rep_refl)
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apply(subst thm11[symmetric])
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apply(simp add: equivp[simplified equivp_def])
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done
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end
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section {* type definition for the quotient type *}
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(* auxiliary data for the quotient package *)
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use "quotient_info.ML"
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declare [[map "fun" = (fun_map, fun_rel)]]
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lemmas [quot_thm] = fun_quotient 
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lemmas [quot_respect] = quot_rel_rsp
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(* fun_map is not here since equivp is not true *)
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lemmas [quot_equiv] = identity_equivp
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(* definition of the quotient types *)
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use "quotient_typ.ML"
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(* lifting of constants *)
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use "quotient_def.ML"
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(* the translation functions for the lifting process *)
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use "quotient_term.ML" 
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(* tactics for proving the theorems *)
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lemma eq_imp_rel:  
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  "equivp R ==> a = b \<longrightarrow> R a b" 
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by (simp add: equivp_reflp)
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(* an auxiliar constant that records some information *) 
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(* about the lifted theorem                           *)
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definition
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  "QUOT_TRUE x \<equiv> True"
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lemma quot_true_dests:
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  shows QT_all: "QUOT_TRUE (All P) \<Longrightarrow> QUOT_TRUE P"
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  and   QT_ex:  "QUOT_TRUE (Ex P) \<Longrightarrow> QUOT_TRUE P"
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  and   QT_lam: "QUOT_TRUE (\<lambda>x. P x) \<Longrightarrow> (\<And>x. QUOT_TRUE  (P x))"
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  and   QT_ext: "(\<And>x. QUOT_TRUE (a x) \<Longrightarrow> f x = g x) \<Longrightarrow> (QUOT_TRUE a \<Longrightarrow> f = g)"
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by (simp_all add: QUOT_TRUE_def ext)
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lemma QUOT_TRUE_imp: "QUOT_TRUE a \<equiv> QUOT_TRUE b"
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by (simp add: QUOT_TRUE_def)
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lemma regularize_to_injection: 
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  shows "(QUOT_TRUE l \<Longrightarrow> y) \<Longrightarrow> (l = r) \<longrightarrow> y"
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by(auto simp add: QUOT_TRUE_def)
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use "quotient_tacs.ML"
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(* atomize infrastructure *)
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lemma atomize_eqv[atomize]:
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  shows "(Trueprop A \<equiv> Trueprop B) \<equiv> (A \<equiv> B)"
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proof
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  assume "A \<equiv> B"
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  then show "Trueprop A \<equiv> Trueprop B" by unfold
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next
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  assume *: "Trueprop A \<equiv> Trueprop B"
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  have "A = B"
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  proof (cases A)
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    case True
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    have "A" by fact
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    then show "A = B" using * by simp
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  next
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    case False
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    have "\<not>A" by fact
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    then show "A = B" using * by auto
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  qed
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  then show "A \<equiv> B" by (rule eq_reflection)
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qed
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(* lemmas about simplifying id *)
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lemmas [id_simps] =
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  fun_map_id[THEN eq_reflection]
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  id_apply[THEN eq_reflection]
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  id_def[THEN eq_reflection, symmetric]
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section {* Methods / Interface *}
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ML {*
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fun mk_method1 tac thm ctxt =
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  SIMPLE_METHOD (HEADGOAL (tac ctxt thm)) 
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fun mk_method2 tac ctxt =
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  SIMPLE_METHOD (HEADGOAL (tac ctxt)) 
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*}
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method_setup lifting =
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  {* Attrib.thm >> (mk_method1 Quotient_Tacs.lift_tac) *}
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  {* Lifting of theorems to quotient types. *}
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method_setup lifting_setup =
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  {* Attrib.thm >> (mk_method1 Quotient_Tacs.procedure_tac) *}
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  {* Sets up the three goals for the lifting procedure. *}
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method_setup regularize =
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  {* Scan.succeed (mk_method2 Quotient_Tacs.regularize_tac)  *}
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  {* Proves automatically the regularization goals from the lifting procedure. *}
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method_setup injection =
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  {* Scan.succeed (mk_method2 Quotient_Tacs.all_inj_repabs_tac) *}
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  {* Proves automatically the rep/abs injection goals from the lifting procedure. *}
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method_setup cleaning =
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  {* Scan.succeed (mk_method2 Quotient_Tacs.clean_tac) *}
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  {* Proves automatically the cleaning goals from the lifting procedure. *}
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end
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