Quot/Nominal/LFex.thy
author Cezary Kaliszyk <kaliszyk@in.tum.de>
Wed, 24 Feb 2010 11:03:30 +0100
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permissions -rw-r--r--
Generate fv_rsp automatically.
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theory LFex
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imports "Nominal2_Atoms" "Nominal2_Eqvt" "Nominal2_Supp" "Abs" "Perm" "Fv" "Rsp"
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begin
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atom_decl name
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atom_decl ident
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datatype rkind =
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    Type
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  | KPi "rty" "name" "rkind"
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and rty =
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    TConst "ident"
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  | TApp "rty" "rtrm"
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  | TPi "rty" "name" "rty"
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and rtrm =
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    Const "ident"
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  | Var "name"
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  | App "rtrm" "rtrm"
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  | Lam "rty" "name" "rtrm"
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setup {* snd o define_raw_perms ["rkind", "rty", "rtrm"] ["LFex.rkind", "LFex.rty", "LFex.rtrm"] *}
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local_setup {*
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  snd o define_fv_alpha "LFex.rkind"
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  [[ [], [[], [(NONE, 1)], [(NONE, 1)]] ],
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   [ [[]], [[], []], [[], [(NONE, 1)], [(NONE, 1)]] ],
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   [ [[]], [[]], [[], []], [[], [(NONE, 1)], [(NONE, 1)]]]] *}
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notation
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    alpha_rkind  ("_ \<approx>ki _" [100, 100] 100)
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and alpha_rty    ("_ \<approx>ty _" [100, 100] 100)
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and alpha_rtrm   ("_ \<approx>tr _" [100, 100] 100)
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thm fv_rkind_fv_rty_fv_rtrm.simps alpha_rkind_alpha_rty_alpha_rtrm.intros
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local_setup {* (fn ctxt => snd (Local_Theory.note ((@{binding alpha_rkind_alpha_rty_alpha_rtrm_inj}, []), (build_alpha_inj @{thms alpha_rkind_alpha_rty_alpha_rtrm.intros} @{thms rkind.distinct rty.distinct rtrm.distinct rkind.inject rty.inject rtrm.inject} @{thms alpha_rkind.cases alpha_rty.cases alpha_rtrm.cases} ctxt)) ctxt)) *}
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thm alpha_rkind_alpha_rty_alpha_rtrm_inj
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lemma rfv_eqvt[eqvt]:
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  "((pi\<bullet>fv_rkind t1) = fv_rkind (pi\<bullet>t1))"
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  "((pi\<bullet>fv_rty t2) = fv_rty (pi\<bullet>t2))"
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  "((pi\<bullet>fv_rtrm t3) = fv_rtrm (pi\<bullet>t3))"
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apply(induct t1 and t2 and t3 rule: rkind_rty_rtrm.inducts)
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apply(simp_all add: union_eqvt Diff_eqvt)
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apply(simp_all add: permute_set_eq atom_eqvt)
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done
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lemma alpha_eqvt:
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  "t1 \<approx>ki s1 \<Longrightarrow> (pi \<bullet> t1) \<approx>ki (pi \<bullet> s1)"
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  "t2 \<approx>ty s2 \<Longrightarrow> (pi \<bullet> t2) \<approx>ty (pi \<bullet> s2)"
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  "t3 \<approx>tr s3 \<Longrightarrow> (pi \<bullet> t3) \<approx>tr (pi \<bullet> s3)"
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apply(induct rule: alpha_rkind_alpha_rty_alpha_rtrm.inducts)
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apply (simp_all add: alpha_rkind_alpha_rty_alpha_rtrm.intros)
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apply (simp_all add: alpha_rkind_alpha_rty_alpha_rtrm_inj)
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apply (rule alpha_gen_atom_eqvt)
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apply (simp add: rfv_eqvt)
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apply assumption
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apply (rule alpha_gen_atom_eqvt)
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apply (simp add: rfv_eqvt)
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apply assumption
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apply (rule alpha_gen_atom_eqvt)
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apply (simp add: rfv_eqvt)
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apply assumption
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done
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local_setup {* (fn ctxt => snd (Local_Theory.note ((@{binding alpha_equivps}, []),
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  (build_equivps [@{term alpha_rkind}, @{term alpha_rty}, @{term alpha_rtrm}]
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     @{thm rkind_rty_rtrm.induct} @{thm alpha_rkind_alpha_rty_alpha_rtrm.induct} 
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     @{thms rkind.inject rty.inject rtrm.inject} @{thms alpha_rkind_alpha_rty_alpha_rtrm_inj}
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     @{thms rkind.distinct rty.distinct rtrm.distinct}
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     @{thms alpha_rkind.cases alpha_rty.cases alpha_rtrm.cases}
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     @{thms alpha_eqvt} ctxt)) ctxt)) *}
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thm alpha_equivps
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local_setup  {* define_quotient_type
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  [(([], @{binding kind}, NoSyn), (@{typ rkind}, @{term alpha_rkind})),
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   (([], @{binding ty},   NoSyn), (@{typ rty},   @{term alpha_rty}  )),
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   (([], @{binding trm},  NoSyn), (@{typ rtrm},  @{term alpha_rtrm} ))]
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  (ALLGOALS (resolve_tac @{thms alpha_equivps}))
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*}
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local_setup {*
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(fn ctxt => ctxt
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 |> snd o (Quotient_Def.quotient_lift_const ("TYP", @{term Type}))
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 |> snd o (Quotient_Def.quotient_lift_const ("KPI", @{term KPi}))
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 |> snd o (Quotient_Def.quotient_lift_const ("TCONST", @{term TConst}))
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 |> snd o (Quotient_Def.quotient_lift_const ("TAPP", @{term TApp}))
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 |> snd o (Quotient_Def.quotient_lift_const ("TPI", @{term TPi}))
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 |> snd o (Quotient_Def.quotient_lift_const ("CONS", @{term Const}))
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 |> snd o (Quotient_Def.quotient_lift_const ("VAR", @{term Var}))
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 |> snd o (Quotient_Def.quotient_lift_const ("APP", @{term App}))
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 |> snd o (Quotient_Def.quotient_lift_const ("LAM", @{term Lam}))
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 |> snd o (Quotient_Def.quotient_lift_const ("fv_kind", @{term fv_rkind}))
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 |> snd o (Quotient_Def.quotient_lift_const ("fv_ty", @{term fv_rty}))
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 |> snd o (Quotient_Def.quotient_lift_const ("fv_trm", @{term fv_rtrm}))) *}
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print_theorems
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local_setup {* prove_const_rsp @{binding rfv_rsp} [@{term fv_rkind}, @{term fv_rty}, @{term fv_rtrm}]
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  (fn _ => fvbv_rsp_tac @{thm alpha_rkind_alpha_rty_alpha_rtrm.induct} @{thms fv_rkind_fv_rty_fv_rtrm.simps} 1) *}
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lemma perm_rsp[quot_respect]:
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  "(op = ===> alpha_rkind ===> alpha_rkind) permute permute"
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  "(op = ===> alpha_rty ===> alpha_rty) permute permute"
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  "(op = ===> alpha_rtrm ===> alpha_rtrm) permute permute"
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  by (simp_all add:alpha_eqvt)
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lemma tconst_rsp[quot_respect]: 
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  "(op = ===> alpha_rty) TConst TConst"
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  apply (auto intro: alpha_rkind_alpha_rty_alpha_rtrm.intros) done
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lemma tapp_rsp[quot_respect]: 
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  "(alpha_rty ===> alpha_rtrm ===> alpha_rty) TApp TApp" 
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   110
  apply (auto intro: alpha_rkind_alpha_rty_alpha_rtrm.intros) done
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lemma var_rsp[quot_respect]: 
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  "(op = ===> alpha_rtrm) Var Var"
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  apply (auto intro: alpha_rkind_alpha_rty_alpha_rtrm.intros) done
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lemma app_rsp[quot_respect]: 
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   115
  "(alpha_rtrm ===> alpha_rtrm ===> alpha_rtrm) App App"
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  apply (auto intro: alpha_rkind_alpha_rty_alpha_rtrm.intros) done
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lemma const_rsp[quot_respect]: 
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  "(op = ===> alpha_rtrm) Const Const"
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  apply (auto intro: alpha_rkind_alpha_rty_alpha_rtrm.intros) done
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lemma kpi_rsp[quot_respect]: 
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  "(alpha_rty ===> op = ===> alpha_rkind ===> alpha_rkind) KPi KPi"
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  apply (auto intro: alpha_rkind_alpha_rty_alpha_rtrm.intros)
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  apply (rule alpha_rkind_alpha_rty_alpha_rtrm.intros(2)) apply simp_all
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  apply (rule_tac x="0" in exI)
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  apply (simp add: fresh_star_def fresh_zero_perm rfv_rsp alpha_gen)
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  done
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992
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lemma tpi_rsp[quot_respect]: 
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  "(alpha_rty ===> op = ===> alpha_rty ===> alpha_rty) TPi TPi"
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  apply (auto intro: alpha_rkind_alpha_rty_alpha_rtrm.intros)
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  apply (rule alpha_rkind_alpha_rty_alpha_rtrm.intros(5)) apply simp_all
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  apply (rule_tac x="0" in exI)
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  apply (simp add: fresh_star_def fresh_zero_perm rfv_rsp alpha_gen)
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   135
  done
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lemma lam_rsp[quot_respect]: 
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  "(alpha_rty ===> op = ===> alpha_rtrm ===> alpha_rtrm) Lam Lam"
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  apply (auto intro: alpha_rkind_alpha_rty_alpha_rtrm.intros)
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  apply (rule alpha_rkind_alpha_rty_alpha_rtrm.intros(9)) apply simp_all
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  apply (rule_tac x="0" in exI)
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  apply (simp add: fresh_star_def fresh_zero_perm rfv_rsp alpha_gen)
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   142
  done
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   143
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thm rkind_rty_rtrm.induct
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lemmas kind_ty_trm_induct = rkind_rty_rtrm.induct[quot_lifted]
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thm rkind_rty_rtrm.inducts
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lemmas kind_ty_trm_inducts = rkind_rty_rtrm.inducts[quot_lifted]
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instantiation kind and ty and trm :: pt
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begin
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quotient_definition
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  "permute_kind :: perm \<Rightarrow> kind \<Rightarrow> kind"
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is
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  "permute :: perm \<Rightarrow> rkind \<Rightarrow> rkind"
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quotient_definition
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  "permute_ty :: perm \<Rightarrow> ty \<Rightarrow> ty"
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is
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  "permute :: perm \<Rightarrow> rty \<Rightarrow> rty"
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quotient_definition
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  "permute_trm :: perm \<Rightarrow> trm \<Rightarrow> trm"
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is
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  "permute :: perm \<Rightarrow> rtrm \<Rightarrow> rtrm"
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lemmas permute_ktt[simp] = permute_rkind_permute_rty_permute_rtrm.simps[quot_lifted]
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lemma perm_zero_ok: "0 \<bullet> (x :: kind) = x \<and> 0 \<bullet> (y :: ty) = y \<and> 0 \<bullet> (z :: trm) = z"
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apply (induct rule: kind_ty_trm_induct)
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apply (simp_all)
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done
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   174
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lemma perm_add_ok:
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   176
  "((p + q) \<bullet> (x1 :: kind) = (p \<bullet> q \<bullet> x1))"
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   177
  "((p + q) \<bullet> (x2 :: ty) = p \<bullet> q \<bullet> x2)"
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   178
  "((p + q) \<bullet> (x3 :: trm) = p \<bullet> q \<bullet> x3)"
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   179
apply (induct x1 and x2 and x3 rule: kind_ty_trm_inducts)
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   180
apply (simp_all)
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   181
done
985
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   183
instance
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apply default
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apply (simp_all add: perm_zero_ok perm_add_ok)
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done
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end
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   189
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lemmas ALPHA_kind_ALPHA_ty_ALPHA_trm_inducts = alpha_rkind_alpha_rty_alpha_rtrm.inducts[unfolded alpha_gen, quot_lifted, folded alpha_gen]
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   191
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   192
lemmas kind_ty_trm_INJECT = alpha_rkind_alpha_rty_alpha_rtrm_inj[unfolded alpha_gen, quot_lifted, folded alpha_gen]
994
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   193
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   194
lemmas fv_kind_ty_trm = fv_rkind_fv_rty_fv_rtrm.simps[quot_lifted]
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   195
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   196
lemmas fv_eqvt = rfv_eqvt[quot_lifted]
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   197
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   198
lemma supp_rkind_rty_rtrm_easy:
1002
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 "supp TYP = {}"
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 "supp (TCONST i) = {atom i}"
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 "supp (TAPP A M) = supp A \<union> supp M"
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 "supp (CONS i) = {atom i}"
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 "supp (VAR x) = {atom x}"
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 "supp (APP M N) = supp M \<union> supp N"
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   205
apply (simp_all add: supp_def permute_ktt)
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   206
apply (simp_all only: kind_ty_trm_INJECT)
1002
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   207
apply (simp_all only: supp_at_base[simplified supp_def])
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   208
apply (simp_all add: Collect_imp_eq Collect_neg_eq)
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   209
done
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   210
3f227ed7e3e5 More proofs in the LF example.
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   211
lemma supp_bind:
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   212
  "(supp (atom na, (ty, ki))) supports (KPI ty na ki)"
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  "(supp (atom na, (ty, ty2))) supports (TPI ty na ty2)"
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  "(supp (atom na, (ty, rtrm))) supports (LAM ty na rtrm)"
1002
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   215
apply(simp_all add: supports_def)
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   216
apply(fold fresh_def)
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   217
apply(simp_all add: fresh_Pair swap_fresh_fresh)
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apply(clarify)
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   219
apply(subst swap_at_base_simps(3))
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   220
apply(simp_all add: fresh_atom)
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diff changeset
   221
apply(clarify)
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apply(subst swap_at_base_simps(3))
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apply(simp_all add: fresh_atom)
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apply(clarify)
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apply(subst swap_at_base_simps(3))
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apply(simp_all add: fresh_atom)
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done
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lemma kind_ty_trm_fs:
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  "finite (supp (x\<Colon>kind))"
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  "finite (supp (y\<Colon>ty))"
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  "finite (supp (z\<Colon>trm))"
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apply(induct x and y and z rule: kind_ty_trm_inducts)
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apply(simp_all add: supp_rkind_rty_rtrm_easy)
1002
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apply(rule supports_finite)
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apply(rule supp_bind(1))
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apply(simp add: supp_Pair supp_atom)
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apply(rule supports_finite)
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apply(rule supp_bind(2))
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apply(simp add: supp_Pair supp_atom)
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apply(rule supports_finite)
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apply(rule supp_bind(3))
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apply(simp add: supp_Pair supp_atom)
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done
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instance kind and ty and trm :: fs
1002
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apply(default)
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apply(simp_all only: kind_ty_trm_fs)
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done
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lemma supp_fv:
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 "supp t1 = fv_kind t1"
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 "supp t2 = fv_ty t2"
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 "supp t3 = fv_trm t3"
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apply(induct t1 and t2 and t3 rule: kind_ty_trm_inducts)
1234
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apply (simp_all add: supp_rkind_rty_rtrm_easy)
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apply (simp_all add: fv_kind_ty_trm)
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apply(subgoal_tac "supp (KPI rty name rkind) = supp rty \<union> supp (Abs {atom name} rkind)")
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apply(simp add: supp_Abs Set.Un_commute)
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apply(simp (no_asm) add: supp_def)
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apply(simp add: kind_ty_trm_INJECT)
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apply(simp add: Abs_eq_iff)
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apply(simp add: alpha_gen)
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apply(simp add: Collect_imp_eq Collect_neg_eq Set.Un_commute insert_eqvt empty_eqvt atom_eqvt)
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apply(simp add: supp_eqvt[symmetric] fv_eqvt[symmetric])
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apply(subgoal_tac "supp (TPI rty1 name rty2) = supp rty1 \<union> supp (Abs {atom name} rty2)")
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apply(simp add: supp_Abs Set.Un_commute)
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apply(simp (no_asm) add: supp_def)
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apply(simp add: kind_ty_trm_INJECT)
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apply(simp add: Abs_eq_iff)
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apply(simp add: alpha_gen)
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apply(simp add: supp_eqvt[symmetric] fv_eqvt[symmetric] insert_eqvt empty_eqvt atom_eqvt)
1002
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apply(simp add: Collect_imp_eq Collect_neg_eq Set.Un_commute)
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apply(subgoal_tac "supp (LAM rty name rtrm) = supp rty \<union> supp (Abs {atom name} rtrm)")
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apply(simp add: supp_Abs Set.Un_commute)
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apply(simp (no_asm) add: supp_def)
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apply(simp add: kind_ty_trm_INJECT)
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apply(simp add: Abs_eq_iff)
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apply(simp add: alpha_gen)
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apply(simp add: supp_eqvt[symmetric] fv_eqvt[symmetric] insert_eqvt empty_eqvt atom_eqvt)
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apply(simp add: Collect_imp_eq Collect_neg_eq Set.Un_commute)
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done
994
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(* Not needed anymore *)
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163d6917af62 LF ported to alpha_gen, equivp solved and one of the missing proofs in support<-> fv solved. Still some supp properties left.
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lemma supp_kpi_pre: "supp (KPI A x K) = (supp (Abs {atom x} K)) \<union> supp A"
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apply (simp add: permute_set_eq supp_def Abs_eq_iff kind_ty_trm_INJECT)
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apply (simp add: alpha_gen supp_fv)
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apply (simp add: Collect_imp_eq Collect_neg_eq add: atom_eqvt Set.Un_commute)
997
b7d259ded92e Ported LF to the generic lambda and solved the simpler _supp cases.
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   289
done
994
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   290
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lemma supp_rkind_rty_rtrm:
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333c24bd595d More in the LF example in the new nominal way, all is clear until support.
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 "supp TYP = {}"
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 "supp (KPI A x K) = supp A \<union> (supp K - {atom x})"
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 "supp (TCONST i) = {atom i}"
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 "supp (TAPP A M) = supp A \<union> supp M"
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 "supp (TPI A x B) = supp A \<union> (supp B - {atom x})"
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 "supp (CONS i) = {atom i}"
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 "supp (VAR x) = {atom x}"
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 "supp (APP M N) = supp M \<union> supp N"
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 "supp (LAM A x M) = supp A \<union> (supp M - {atom x})"
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   301
apply (simp_all only: supp_rkind_rty_rtrm_easy)
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ca3c69545a78 LF renaming part 2 (proper fv functions)
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apply (simp_all only: supp_fv fv_kind_ty_trm)
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done
994
333c24bd595d More in the LF example in the new nominal way, all is clear until support.
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diff changeset
   304
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ef8a2b0b237a Ported existing part of LF to new permutations and alphas.
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diff changeset
   305
end
ef8a2b0b237a Ported existing part of LF to new permutations and alphas.
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   306
ef8a2b0b237a Ported existing part of LF to new permutations and alphas.
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parents:
diff changeset
   307
ef8a2b0b237a Ported existing part of LF to new permutations and alphas.
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parents:
diff changeset
   308
ef8a2b0b237a Ported existing part of LF to new permutations and alphas.
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parents:
diff changeset
   309