LamEx.thy
author Cezary Kaliszyk <kaliszyk@in.tum.de>
Fri, 04 Dec 2009 15:50:57 +0100
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theory LamEx
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imports Nominal QuotMain
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begin
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atom_decl name
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thm abs_fresh(1)
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nominal_datatype rlam =
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  rVar "name"
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| rApp "rlam" "rlam"
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| rLam "name" "rlam"
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print_theorems
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function
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  rfv :: "rlam \<Rightarrow> name set"
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where
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  rfv_var: "rfv (rVar a) = {a}"
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| rfv_app: "rfv (rApp t1 t2) = (rfv t1) \<union> (rfv t2)"
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| rfv_lam: "rfv (rLam a t) = (rfv t) - {a}"
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sorry
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termination rfv sorry
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inductive
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  alpha :: "rlam \<Rightarrow> rlam \<Rightarrow> bool" ("_ \<approx> _" [100, 100] 100)
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where
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  a1: "a = b \<Longrightarrow> (rVar a) \<approx> (rVar b)"
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| a2: "\<lbrakk>t1 \<approx> t2; s1 \<approx> s2\<rbrakk> \<Longrightarrow> rApp t1 s1 \<approx> rApp t2 s2"
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| a3: "\<lbrakk>t \<approx> ([(a,b)]\<bullet>s); a \<notin> rfv (rLam b t)\<rbrakk> \<Longrightarrow> rLam a t \<approx> rLam b s"
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print_theorems
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lemma alpha_refl:
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  fixes t::"rlam"
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  shows "t \<approx> t"
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  apply(induct t rule: rlam.induct)
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  apply(simp add: a1)
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  apply(simp add: a2)
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  apply(rule a3)
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  apply(subst pt_swap_bij'')
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  apply(rule pt_name_inst)
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  apply(rule at_name_inst)
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  apply(simp)
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  apply(simp)
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  done
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lemma alpha_equivp:
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  shows "equivp alpha"
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sorry
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quotient lam = rlam / alpha
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  apply(rule alpha_equivp)
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  done
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print_quotients
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quotient_def 
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  Var :: "name \<Rightarrow> lam"
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where
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  "Var \<equiv> rVar"
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quotient_def 
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  App :: "lam \<Rightarrow> lam \<Rightarrow> lam"
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where
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  "App \<equiv> rApp"
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quotient_def 
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  Lam :: "name \<Rightarrow> lam \<Rightarrow> lam"
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where
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  "Lam \<equiv> rLam"
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thm Var_def
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thm App_def
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thm Lam_def
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quotient_def 
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  fv :: "lam \<Rightarrow> name set"
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where
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  "fv \<equiv> rfv"
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thm fv_def
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(* definition of overloaded permutation function *)
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(* for the lifted type lam                       *)
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overloading
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  perm_lam \<equiv> "perm :: 'x prm \<Rightarrow> lam \<Rightarrow> lam"   (unchecked)
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begin
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quotient_def 
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  perm_lam :: "'x prm \<Rightarrow> lam \<Rightarrow> lam"
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where
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  "perm_lam \<equiv> (perm::'x prm \<Rightarrow> rlam \<Rightarrow> rlam)"
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end
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(*quotient_def (for lam)
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  abs_fun_lam :: "'x prm \<Rightarrow> lam \<Rightarrow> lam"
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where
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  "perm_lam \<equiv> (perm::'x prm \<Rightarrow> rlam \<Rightarrow> rlam)"*)
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thm perm_lam_def
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(* lemmas that need to lift *)
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lemma pi_var_com:
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  fixes pi::"'x prm"
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  shows "(pi\<bullet>rVar a) \<approx> rVar (pi\<bullet>a)"
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  sorry
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lemma pi_app_com:
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  fixes pi::"'x prm"
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  shows "(pi\<bullet>rApp t1 t2) \<approx> rApp (pi\<bullet>t1) (pi\<bullet>t2)"
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  sorry
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lemma pi_lam_com:
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  fixes pi::"'x prm"
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  shows "(pi\<bullet>rLam a t) \<approx> rLam (pi\<bullet>a) (pi\<bullet>t)"
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  sorry
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lemma real_alpha:
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  assumes a: "t = [(a,b)]\<bullet>s" "a\<sharp>[b].s"
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  shows "Lam a t = Lam b s"
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using a
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unfolding fresh_def supp_def
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sorry
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lemma perm_rsp[quotient_rsp]:
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  "(op = ===> alpha ===> alpha) op \<bullet> op \<bullet>"
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  apply(auto)
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  (* this is propably true if some type conditions are imposed ;o) *)
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  sorry
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lemma fresh_rsp:
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  "(op = ===> alpha ===> op =) fresh fresh"
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  apply(auto)
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  (* this is probably only true if some type conditions are imposed *)
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  sorry
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lemma rVar_rsp[quotient_rsp]:
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  "(op = ===> alpha) rVar rVar"
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by (auto intro:a1)
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lemma rApp_rsp[quotient_rsp]: "(alpha ===> alpha ===> alpha) rApp rApp"
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by (auto intro:a2)
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lemma rLam_rsp[quotient_rsp]: "(op = ===> alpha ===> alpha) rLam rLam"
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  apply(auto)
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  apply(rule a3)
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  apply(rule_tac t="[(x,x)]\<bullet>y" and s="y" in subst)
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  apply(rule sym)
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  apply(rule trans)
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  apply(rule pt_name3)
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  apply(rule at_ds1[OF at_name_inst])
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  apply(simp add: pt_name1)
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  apply(assumption)
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  apply(simp add: abs_fresh)
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  done
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lemma rfv_rsp[quotient_rsp]: "(alpha ===> op =) rfv rfv"
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  sorry
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lemma rvar_inject: "rVar a \<approx> rVar b = (a = b)"
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apply (auto)
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apply (erule alpha.cases)
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apply (simp_all add: rlam.inject alpha_refl)
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done
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ML {* val qty = @{typ "lam"} *}
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ML {* val rsp_thms = @{thms perm_rsp fresh_rsp rVar_rsp rApp_rsp rLam_rsp rfv_rsp} *}
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ML {* val (rty, rel, rel_refl, rel_eqv) = lookup_quot_data @{context} qty *}
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ML {* val (trans2, reps_same, absrep, quot) = lookup_quot_thms @{context} "lam" *}
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ML {* fun lift_tac_lam lthy t = lift_tac lthy t [rel_eqv] *}
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lemma pi_var: "(pi\<Colon>('x \<times> 'x) list) \<bullet> Var a = Var (pi \<bullet> a)"
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apply (tactic {* lift_tac_lam @{context} @{thm pi_var_com} 1 *})
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done
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lemma pi_app: "(pi\<Colon>('x \<times> 'x) list) \<bullet> App (x\<Colon>lam) (xa\<Colon>lam) = App (pi \<bullet> x) (pi \<bullet> xa)"
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apply (tactic {* lift_tac_lam @{context} @{thm pi_app_com} 1 *})
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done
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lemma pi_lam: "(pi\<Colon>('x \<times> 'x) list) \<bullet> Lam (a\<Colon>name) (x\<Colon>lam) = Lam (pi \<bullet> a) (pi \<bullet> x)"
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apply (tactic {* lift_tac_lam @{context} @{thm pi_lam_com} 1 *})
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done
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lemma fv_var: "fv (Var (a\<Colon>name)) = {a}"
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apply (tactic {* lift_tac_lam @{context} @{thm rfv_var} 1 *})
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done
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lemma fv_app: "fv (App (x\<Colon>lam) (xa\<Colon>lam)) = fv x \<union> fv xa"
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apply (tactic {* lift_tac_lam @{context} @{thm rfv_app} 1 *})
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done
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lemma fv_lam: "fv (Lam (a\<Colon>name) (x\<Colon>lam)) = fv x - {a}"
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apply (tactic {* lift_tac_lam @{context} @{thm rfv_lam} 1 *})
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done
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lemma a1: "(a\<Colon>name) = (b\<Colon>name) \<Longrightarrow> Var a = Var b"
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apply (tactic {* lift_tac_lam @{context} @{thm a1} 1 *})
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done
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lemma a2: "\<lbrakk>(x\<Colon>lam) = (xa\<Colon>lam); (xb\<Colon>lam) = (xc\<Colon>lam)\<rbrakk> \<Longrightarrow> App x xb = App xa xc"
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apply (tactic {* lift_tac_lam @{context} @{thm a2} 1 *})
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done
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lemma a3: "\<lbrakk>(x\<Colon>lam) = [(a\<Colon>name, b\<Colon>name)] \<bullet> (xa\<Colon>lam); a \<notin> fv (Lam b x)\<rbrakk> \<Longrightarrow> Lam a x = Lam b xa"
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apply (tactic {* lift_tac_lam @{context} @{thm a3} 1 *})
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done
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lemma alpha_cases: "\<lbrakk>a1 = a2; \<And>a b. \<lbrakk>a1 = Var a; a2 = Var b; a = b\<rbrakk> \<Longrightarrow> P;
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     \<And>x xa xb xc. \<lbrakk>a1 = App x xb; a2 = App xa xc; x = xa; xb = xc\<rbrakk> \<Longrightarrow> P;
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     \<And>x a b xa. \<lbrakk>a1 = Lam a x; a2 = Lam b xa; x = [(a, b)] \<bullet> xa; a \<notin> fv (Lam b x)\<rbrakk> \<Longrightarrow> P\<rbrakk>
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    \<Longrightarrow> P"
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apply (tactic {* lift_tac_lam @{context} @{thm alpha.cases} 1 *})
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done
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lemma alpha_induct: "\<lbrakk>(qx\<Colon>lam) = (qxa\<Colon>lam); \<And>(a\<Colon>name) b\<Colon>name. a = b \<Longrightarrow> (qxb\<Colon>lam \<Rightarrow> lam \<Rightarrow> bool) (Var a) (Var b);
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     \<And>(x\<Colon>lam) (xa\<Colon>lam) (xb\<Colon>lam) xc\<Colon>lam. \<lbrakk>x = xa; qxb x xa; xb = xc; qxb xb xc\<rbrakk> \<Longrightarrow> qxb (App x xb) (App xa xc);
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     \<And>(x\<Colon>lam) (a\<Colon>name) (b\<Colon>name) xa\<Colon>lam.
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        \<lbrakk>x = [(a, b)] \<bullet> xa; qxb x ([(a, b)] \<bullet> xa); a \<notin> fv (Lam b x)\<rbrakk> \<Longrightarrow> qxb (Lam a x) (Lam b xa)\<rbrakk>
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    \<Longrightarrow> qxb qx qxa"
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apply (tactic {* lift_tac_lam @{context} @{thm alpha.induct} 1 *})
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done
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lemma var_inject: "(Var a = Var b) = (a = b)"
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apply (tactic {* lift_tac_lam @{context} @{thm rvar_inject} 1 *})
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done
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lemma lam_induct:" \<lbrakk>\<And>name. P (Var name); \<And>lam1 lam2. \<lbrakk>P lam1; P lam2\<rbrakk> \<Longrightarrow> P (App lam1 lam2);
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              \<And>name lam. P lam \<Longrightarrow> P (Lam name lam)\<rbrakk> \<Longrightarrow> P lam"
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apply (tactic {* lift_tac_lam @{context} @{thm rlam.induct} 1 *})
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done
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lemma var_supp:
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  shows "supp (Var a) = ((supp a)::name set)"
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  apply(simp add: supp_def)
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  apply(simp add: pi_var)
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  apply(simp add: var_inject)
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  done
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lemma var_fresh:
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  fixes a::"name"
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  shows "(a\<sharp>(Var b)) = (a\<sharp>b)"
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  apply(simp add: fresh_def)
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  apply(simp add: var_supp)
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  done
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271
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(* Construction Site code *)
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fun
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  option_map::"('a \<Rightarrow> 'b) \<Rightarrow> ('a noption) \<Rightarrow> ('b noption)"
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where
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  "option_map f (nSome x) = nSome (f x)"
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| "option_map f nNone = nNone"
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fun
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  option_rel
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where
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  "option_rel r (nSome x) (nSome y) = r x y"
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| "option_rel r _ _ = False"
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declare [[map noption = (option_map, option_rel)]]
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lemma "option_map id = id"
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sorry
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534
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lemma option_Quotient:
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  assumes q: "Quotient R Abs Rep"
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  shows "Quotient (option_rel R) (option_map Abs) (option_map Rep)"
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  apply (unfold Quotient_def)
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  apply (auto)
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  using q
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  apply (unfold Quotient_def)
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  apply (case_tac "a :: 'b noption")
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  apply (simp)
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  apply (simp)
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  apply (case_tac "a :: 'b noption")
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  apply (simp only: option_map.simps)
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  apply (subst option_rel.simps)
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  (* Simp starts hanging so don't know how to continue *)
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  sorry
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