LFex.thy
author Cezary Kaliszyk <kaliszyk@in.tum.de>
Thu, 26 Nov 2009 10:52:24 +0100
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permissions -rw-r--r--
Playing with Monos in LFex.
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theory LFex
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imports Nominal QuotMain
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begin
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atom_decl name id
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nominal_datatype kind = 
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    Type
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  | KPi "ty" "name" "kind"
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and ty =  
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    TConst "id"
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  | TApp "ty" "trm"
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  | TPi "ty" "name" "ty"
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and trm = 
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    Const "id"
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  | Var "name"
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  | App "trm" "trm"
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  | Lam "ty" "name" "trm" 
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function
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    fv_kind :: "kind \<Rightarrow> name set"
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and fv_ty   :: "ty \<Rightarrow> name set"
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and fv_trm  :: "trm \<Rightarrow> name set"
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where
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  "fv_kind (Type) = {}"
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| "fv_kind (KPi A x K) = (fv_ty A) \<union> ((fv_kind K) - {x})"
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| "fv_ty (TConst i) = {}"
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| "fv_ty (TApp A M) = (fv_ty A) \<union> (fv_trm M)"
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| "fv_ty (TPi A x B) = (fv_ty A) \<union> ((fv_ty B) - {x})"
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| "fv_trm (Const i) = {}"
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| "fv_trm (Var x) = {x}"
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| "fv_trm (App M N) = (fv_trm M) \<union> (fv_trm N)"
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| "fv_trm (Lam A x M) = (fv_ty A) \<union> ((fv_trm M) - {x})"
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sorry
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termination fv_kind sorry
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inductive
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    akind :: "kind \<Rightarrow> kind \<Rightarrow> bool" ("_ \<approx>ki _" [100, 100] 100)
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and aty   :: "ty \<Rightarrow> ty \<Rightarrow> bool"     ("_ \<approx>ty _" [100, 100] 100)
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and atrm  :: "trm \<Rightarrow> trm \<Rightarrow> bool"   ("_ \<approx>tr _" [100, 100] 100)
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where
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  a1:  "(Type) \<approx>ki (Type)"
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| a21: "\<lbrakk>A \<approx>ty A'; K \<approx>ki K'\<rbrakk> \<Longrightarrow> (KPi A x K) \<approx>ki (KPi A' x K')"
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| a22: "\<lbrakk>A \<approx>ty A'; K \<approx>ki ([(x,x')]\<bullet>K'); x \<notin> (fv_ty A'); x \<notin> ((fv_kind K') - {x'})\<rbrakk> 
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        \<Longrightarrow> (KPi A x K) \<approx>ki (KPi A' x' K')"
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| a3:  "i = j \<Longrightarrow> (TConst i) \<approx>ty (TConst j)"
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| a4:  "\<lbrakk>A \<approx>ty A'; M \<approx>tr M'\<rbrakk> \<Longrightarrow> (TApp A M) \<approx>ty (TApp A' M')"
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| a51: "\<lbrakk>A \<approx>ty A'; B \<approx>ty B'\<rbrakk> \<Longrightarrow> (TPi A x B) \<approx>ty (TPi A' x B')"
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| a52: "\<lbrakk>A \<approx>ty A'; B \<approx>ty ([(x,x')]\<bullet>B'); x \<notin> (fv_ty B'); x \<notin> ((fv_ty B') - {x'})\<rbrakk> 
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        \<Longrightarrow> (TPi A x B) \<approx>ty (TPi A' x' B')"
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| a6:  "i = j \<Longrightarrow> (Const i) \<approx>trm (Const j)"
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| a7:  "x = y \<Longrightarrow> (Var x) \<approx>trm (Var y)"
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| a8:  "\<lbrakk>M \<approx>trm M'; N \<approx>tr N'\<rbrakk> \<Longrightarrow> (App M N) \<approx>tr (App M' N')"
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| a91: "\<lbrakk>A \<approx>ty A'; M \<approx>tr M'\<rbrakk> \<Longrightarrow> (Lam A x M) \<approx>tr (Lam A' x M')"
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| a92: "\<lbrakk>A \<approx>ty A'; M \<approx>tr ([(x,x')]\<bullet>M'); x \<notin> (fv_ty B'); x \<notin> ((fv_trm M') - {x'})\<rbrakk> 
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        \<Longrightarrow> (Lam A x M) \<approx>tr (Lam A' x' M')"
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lemma al_refl:
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  fixes K::"kind" 
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  and   A::"ty"
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  and   M::"trm"
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  shows "K \<approx>ki K"
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  and   "A \<approx>ty A"
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  and   "M \<approx>tr M"
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  apply(induct K and A and M rule: kind_ty_trm.inducts)
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  apply(auto intro: akind_aty_atrm.intros)
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  done
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lemma alpha_EQUIVs:
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  shows "EQUIV akind"
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  and   "EQUIV aty"
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  and   "EQUIV atrm"
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quotient KIND = kind / akind
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  by (rule alpha_EQUIVs)
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quotient TY = ty / aty
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   and   TRM = trm / atrm
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  by (auto intro: alpha_EQUIVs)
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print_quotients
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quotient_def 
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  TYP :: "KIND"
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where
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  "TYP \<equiv> Type"
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quotient_def 
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  KPI :: "TY \<Rightarrow> name \<Rightarrow> KIND \<Rightarrow> KIND"
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where
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  "KPI \<equiv> KPi"
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quotient_def 
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  TCONST :: "id \<Rightarrow> TY"
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where
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  "TCONST \<equiv> TConst"
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quotient_def 
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  TAPP :: "TY \<Rightarrow> TRM \<Rightarrow> TY"
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where
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  "TAPP \<equiv> TApp"
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quotient_def 
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  TPI :: "TY \<Rightarrow> name \<Rightarrow> TY \<Rightarrow> TY"
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where
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  "TPI \<equiv> TPi"
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(* FIXME: does not work with CONST *)
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quotient_def 
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  CONS :: "id \<Rightarrow> TRM"
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where
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  "CONS \<equiv> Const"
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quotient_def 
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  VAR :: "name \<Rightarrow> TRM"
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where
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  "VAR \<equiv> Var"
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quotient_def 
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  APP :: "TRM \<Rightarrow> TRM \<Rightarrow> TRM"
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where
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  "APP \<equiv> App"
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quotient_def 
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  LAM :: "TY \<Rightarrow> name \<Rightarrow> TRM \<Rightarrow> TRM"
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where
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  "LAM \<equiv> Lam"
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thm TYP_def
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thm KPI_def
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thm TCONST_def
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thm TAPP_def
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thm TPI_def
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thm VAR_def
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thm CONS_def
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thm APP_def
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thm LAM_def
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(* FIXME: print out a warning if the type contains a liftet type, like kind \<Rightarrow> name set *)
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quotient_def 
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  FV_kind :: "KIND \<Rightarrow> name set"
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where
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  "FV_kind \<equiv> fv_kind"
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quotient_def 
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  FV_ty :: "TY \<Rightarrow> name set"
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where
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  "FV_ty \<equiv> fv_ty"
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quotient_def 
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  FV_trm :: "TRM \<Rightarrow> name set"
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where
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  "FV_trm \<equiv> fv_trm"
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thm FV_kind_def
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thm FV_ty_def
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thm FV_trm_def
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(* FIXME: does not work yet *)
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overloading
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    perm_kind \<equiv> "perm :: 'x prm \<Rightarrow> KIND \<Rightarrow> KIND"   (unchecked)
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    perm_ty   \<equiv> "perm :: 'x prm \<Rightarrow> TY \<Rightarrow> TY"       (unchecked)
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    perm_trm  \<equiv> "perm :: 'x prm \<Rightarrow> TRM \<Rightarrow> TRM"     (unchecked) 
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begin
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quotient_def 
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  perm_kind :: "'x prm \<Rightarrow> KIND \<Rightarrow> KIND"
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where
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  "perm_kind \<equiv> (perm::'x prm \<Rightarrow> kind \<Rightarrow> kind)"
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quotient_def 
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  perm_ty :: "'x prm \<Rightarrow> TY \<Rightarrow> TY"
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where
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  "perm_ty \<equiv> (perm::'x prm \<Rightarrow> ty \<Rightarrow> ty)"
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quotient_def 
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  perm_trm :: "'x prm \<Rightarrow> TRM \<Rightarrow> TRM"
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where
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  "perm_trm \<equiv> (perm::'x prm \<Rightarrow> trm \<Rightarrow> trm)"
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301
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ML {* val defs =
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  @{thms TYP_def KPI_def TCONST_def TAPP_def TPI_def VAR_def CONS_def APP_def LAM_def
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    FV_kind_def FV_ty_def FV_trm_def perm_kind_def perm_ty_def perm_trm_def}
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*}
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ML {* val consts = lookup_quot_consts defs *}
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thm akind_aty_atrm.induct
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393
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lemma "\<lbrakk>P1 TYP TYP; \<And>A A' K K' x. \<lbrakk>(A::TY) = A'; P2 A A'; (K::KIND) = K'; P1 K K'\<rbrakk> \<Longrightarrow> P1 (KPI A x K) (KPI A' x K');
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 \<And>A A' K x x' K'.
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    \<lbrakk>(A ::TY) = A'; P2 A A'; (K :: KIND) = ([(x, x')] \<bullet> K'); P1 K ([(x, x')] \<bullet> K'); x \<notin> FV_ty A'; x \<notin> FV_kind K' - {x'}\<rbrakk>
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    \<Longrightarrow> P1 (KPI A x K) (KPI A' x' K');
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 \<And>i j. i = j \<Longrightarrow> P2 (TCONST i) (TCONST j);
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 \<And>A A' M M'. \<lbrakk>(A ::TY) = A'; P2 A A'; (M :: TRM) = M'; P3 M M'\<rbrakk> \<Longrightarrow> P2 (TAPP A M) (TAPP A' M');
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 \<And>A A' B B' x. \<lbrakk>(A ::TY) = A'; P2 A A'; (B ::TY) = B'; P2 B B'\<rbrakk> \<Longrightarrow> P2 (TPI A x B) (TPI A' x B');
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 \<And>A A' B x x' B'.
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    \<lbrakk>(A ::TY) = A'; P2 A A'; (B ::TY) = ([(x, x')] \<bullet> B'); P2 B ([(x, x')] \<bullet> B'); x \<notin> FV_ty B'; x \<notin> FV_ty B' - {x'}\<rbrakk>
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    \<Longrightarrow> P2 (TPI A x B) (TPI A' x' B');
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 \<And>i j m. i = j \<Longrightarrow> P3 (CONS i) (m (CONS j)); \<And>x y m. x = y \<Longrightarrow> P3 (VAR x) (m (VAR y));
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 \<And>M m M' N N'. \<lbrakk>(M :: TRM) = m M'; P3 M (m M'); (N :: TRM) = N'; P3 N N'\<rbrakk> \<Longrightarrow> P3 (APP M N) (APP M' N');
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 \<And>A A' M M' x. \<lbrakk>(A ::TY) = A'; P2 A A'; (M :: TRM) = M'; P3 M M'\<rbrakk> \<Longrightarrow> P3 (LAM A x M) (LAM A' x M');
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 \<And>A A' M x x' M' B'.
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    \<lbrakk>(A ::TY) = A'; P2 A A'; (M :: TRM) = ([(x, x')] \<bullet> M'); P3 M ([(x, x')] \<bullet> M'); x \<notin> FV_ty B'; x \<notin> FV_trm M' - {x'}\<rbrakk>
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    \<Longrightarrow> P3 (LAM A x M) (LAM A' x' M')\<rbrakk>
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\<Longrightarrow> ((x1 :: KIND) = x2 \<longrightarrow> P1 x1 x2) \<and>
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   ((x3 ::TY) = x4 \<longrightarrow> P2 x3 x4) \<and> ((x5 :: TRM) = x6 \<longrightarrow> P3 x5 x6)"
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apply(tactic {* procedure_tac @{context} @{thm akind_aty_atrm.induct} 1 *})
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apply(atomize (full))
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apply(rule my_equiv_res_forallR)
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apply(tactic {* resolve_tac (Inductive.get_monos @{context}) 1 *})
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apply(rule my_equiv_res_forallR)
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apply(tactic {* REPEAT_ALL_NEW (resolve_tac (Inductive.get_monos @{context})) 1 *})
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apply(rule my_equiv_res_forallR)
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apply(tactic {* REPEAT_ALL_NEW (resolve_tac (Inductive.get_monos @{context})) 1 *})
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apply(rule my_equiv_res_forallR)
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apply(tactic {* REPEAT_ALL_NEW (resolve_tac (Inductive.get_monos @{context})) 1 *})
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apply(rule my_equiv_res_forallR)
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apply(tactic {* REPEAT_ALL_NEW (resolve_tac (Inductive.get_monos @{context})) 1 *})
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apply(rule my_equiv_res_forallR)
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apply(tactic {* REPEAT_ALL_NEW (resolve_tac (Inductive.get_monos @{context})) 1 *})
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apply(rule my_equiv_res_forallR)
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apply(tactic {* REPEAT_ALL_NEW (resolve_tac (Inductive.get_monos @{context})) 1 *})
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apply(rule my_equiv_res_forallR)
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apply(tactic {* REPEAT_ALL_NEW (resolve_tac (Inductive.get_monos @{context})) 1 *})
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apply(rule my_equiv_res_forallR)
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apply(tactic {*  (resolve_tac (Inductive.get_monos @{context})) 1 *})
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apply(rule Set.imp_mono)
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apply(rule impI)
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apply(assumption)
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apply(rule Set.imp_mono)
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301
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ML {*
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val rty_qty_rel =
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  [(@{typ kind}, (@{typ KIND}, @{term akind})),
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   (@{typ ty}, (@{typ TY}, @{term aty})),
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   (@{typ trm}, (@{typ TRM}, @{term atrm}))]
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*}
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print_quotients
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ML {* val rty = [@{typ }]
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ML {* val defs_sym = flat (map (add_lower_defs @{context}) defs) *}
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ML {* val t_a = atomize_thm @{thm akind_aty_atrm.induct} *}
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prove {* build_regularize_goal t_a rty rel @{context}
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end
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Christian Urban <urbanc@in.tum.de>
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