src/HOL/MicroJava/J/Example.thy
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(*  Title:      HOL/MicroJava/J/Example.thy
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    ID:         $Id$
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    Author:     David von Oheimb
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    Copyright   1999 Technische Universitaet Muenchen
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*)
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header "Example MicroJava Program"
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theory Example = Eval:
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text {* 
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The following example MicroJava program includes:
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 class declarations with inheritance, hiding of fields, and overriding of
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  methods (with refined result type), 
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 instance creation, local assignment, sequential composition,
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 method call with dynamic binding, literal values,
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 expression statement, local access, type cast, field assignment (in part), 
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 skip.
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\begin{verbatim}
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class Base {
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  boolean vee;
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  Base foo(Base x) {return x;}
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}
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class Ext extends Base {
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  int vee;
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  Ext foo(Base x) {((Ext)x).vee=1; return null;}
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}
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class Example {
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  public static void main (String args[]) {
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    Base e=new Ext();
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    e.foo(null);
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  }
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}
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\end{verbatim}
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*}
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datatype cnam_ = Base_ | Ext_
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datatype vnam_ = vee_ | x_ | e_
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consts
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  cnam_ :: "cnam_ => cname"
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  vnam_ :: "vnam_ => vnam"
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-- "@{text cnam_} and @{text vnam_} are intended to be isomorphic 
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    to @{text cnam} and @{text vnam}"
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axioms 
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  inj_cnam_:  "(cnam_ x = cnam_ y) = (x = y)"
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  inj_vnam_:  "(vnam_ x = vnam_ y) = (x = y)"
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  surj_cnam_: "\<exists>m. n = cnam_ m"
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  surj_vnam_: "\<exists>m. n = vnam_ m"
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declare inj_cnam_ [simp] inj_vnam_ [simp]
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syntax
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  Base :: cname
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  Ext  :: cname
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  vee  :: vname
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  x    :: vname
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  e    :: vname
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translations
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  "Base" == "cnam_ Base_"
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  "Ext"  == "cnam_ Ext_"
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  "vee"  == "VName (vnam_ vee_)"
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  "x"  == "VName (vnam_ x_)"
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  "e"  == "VName (vnam_ e_)"
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axioms
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  Base_not_Object: "Base \<noteq> Object"
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  Ext_not_Object:  "Ext  \<noteq> Object"
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  e_not_This:      "e \<noteq> This"
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declare Base_not_Object [simp] Ext_not_Object [simp]
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declare e_not_This [simp]
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declare Base_not_Object [THEN not_sym, simp]
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declare Ext_not_Object  [THEN not_sym, simp]
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consts
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  foo_Base::  java_mb
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  foo_Ext ::  java_mb
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  BaseC   :: "java_mb cdecl"
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  ExtC    :: "java_mb cdecl"
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  test    ::  stmt
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  foo   ::  mname
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  a   ::  loc
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  b       ::  loc
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defs
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  foo_Base_def:"foo_Base == ([x],[],Skip,LAcc x)"
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  BaseC_def:"BaseC == (Base, (Object, 
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           [(vee, PrimT Boolean)], 
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           [((foo,[Class Base]),Class Base,foo_Base)]))"
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  foo_Ext_def:"foo_Ext == ([x],[],Expr( {Ext}Cast Ext
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               (LAcc x)..vee:=Lit (Intg Numeral1)),
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           Lit Null)"
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  ExtC_def: "ExtC  == (Ext,  (Base  , 
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           [(vee, PrimT Integer)], 
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           [((foo,[Class Base]),Class Ext,foo_Ext)]))"
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  test_def:"test == Expr(e::=NewC Ext);; 
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                    Expr({Base}LAcc e..foo({[Class Base]}[Lit Null]))"
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syntax
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  NP  :: xcpt
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  tprg  ::"java_mb prog"
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  obj1  :: obj
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  obj2  :: obj
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  s0  :: state
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  s1  :: state
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  s2  :: state
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  s3  :: state
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  s4  :: state
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translations
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  "NP"   == "NullPointer"
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  "tprg" == "[ObjectC, BaseC, ExtC]"
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  "obj1"    <= "(Ext, empty((vee, Base)\<mapsto>Bool False)
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         ((vee, Ext )\<mapsto>Intg 0))"
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  "s0" == " Norm    (empty, empty)"
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  "s1" == " Norm    (empty(a\<mapsto>obj1),empty(e\<mapsto>Addr a))"
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  "s2" == " Norm    (empty(a\<mapsto>obj1),empty(x\<mapsto>Null)(This\<mapsto>Addr a))"
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  "s3" == "(Some NP, empty(a\<mapsto>obj1),empty(e\<mapsto>Addr a))"
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ML {* bind_thm ("map_of_Cons", hd (tl (thms "map_of.simps"))) *}
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lemma map_of_Cons1 [simp]: "map_of ((aa,bb)#ps) aa = Some bb"
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apply (simp (no_asm))
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done
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lemma map_of_Cons2 [simp]: "aa\<noteq>k ==> map_of ((k,bb)#ps) aa = map_of ps aa"
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apply (simp (no_asm_simp))
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done
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declare map_of_Cons [simp del] -- "sic!"
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lemma class_tprg_Object [simp]: "class tprg Object = Some (arbitrary, [], [])"
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apply (unfold ObjectC_def class_def)
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apply (simp (no_asm))
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done
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lemma class_tprg_Base [simp]: 
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"class tprg Base = Some (Object,  
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    [(vee, PrimT Boolean)],  
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          [((foo, [Class Base]), Class Base, foo_Base)])"
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apply (unfold ObjectC_def BaseC_def ExtC_def class_def)
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apply (simp (no_asm))
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done
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lemma class_tprg_Ext [simp]: 
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"class tprg Ext = Some (Base,  
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    [(vee, PrimT Integer)],  
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          [((foo, [Class Base]), Class Ext, foo_Ext)])"
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apply (unfold ObjectC_def BaseC_def ExtC_def class_def)
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apply (simp (no_asm))
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done
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   160
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lemma not_Object_subcls [elim!]: "(Object,C) \<in> (subcls1 tprg)^+ ==> R"
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apply (auto dest!: tranclD subcls1D)
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done
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lemma subcls_ObjectD [dest!]: "tprg\<turnstile>Object\<preceq>C C ==> C = Object"
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apply (erule rtrancl_induct)
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apply  auto
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apply (drule subcls1D)
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apply auto
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done
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lemma not_Base_subcls_Ext [elim!]: "(Base, Ext) \<in> (subcls1 tprg)^+ ==> R"
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apply (auto dest!: tranclD subcls1D)
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done
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lemma class_tprgD: 
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"class tprg C = Some z ==> C=Object \<or> C=Base \<or> C=Ext"
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apply (unfold ObjectC_def BaseC_def ExtC_def class_def)
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apply (auto split add: split_if_asm simp add: map_of_Cons)
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done
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lemma not_class_subcls_class [elim!]: "(C,C) \<in> (subcls1 tprg)^+ ==> R"
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apply (auto dest!: tranclD subcls1D)
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apply (frule class_tprgD)
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apply (auto dest!:)
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apply (drule rtranclD)
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apply auto
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done
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lemma unique_classes: "unique tprg"
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apply (simp (no_asm) add: ObjectC_def BaseC_def ExtC_def)
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done
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lemmas subcls_direct = subcls1I [THEN r_into_rtrancl]
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lemma Ext_subcls_Base [simp]: "tprg\<turnstile>Ext\<preceq>C Base"
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apply (rule subcls_direct)
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apply auto
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done
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lemma Ext_widen_Base [simp]: "tprg\<turnstile>Class Ext\<preceq> Class Base"
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apply (rule widen.subcls)
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apply (simp (no_asm))
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done
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declare ty_expr_ty_exprs_wt_stmt.intros [intro!]
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lemma acyclic_subcls1_: "acyclic (subcls1 tprg)"
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apply (rule acyclicI)
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apply safe
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done
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lemmas wf_subcls1_ = acyclic_subcls1_ [THEN finite_subcls1 [THEN finite_acyclic_wf_converse]]
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lemmas fields_rec_ = wf_subcls1_ [THEN [2] fields_rec_lemma]
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lemma fields_Object [simp]: "fields (tprg, Object) = []"
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apply (subst fields_rec_)
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apply   auto
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done
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declare is_class_def [simp]
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lemma fields_Base [simp]: "fields (tprg,Base) = [((vee, Base), PrimT Boolean)]"
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apply (subst fields_rec_)
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apply   auto
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done
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lemma fields_Ext [simp]: 
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  "fields (tprg, Ext)  = [((vee, Ext ), PrimT Integer)] @ fields (tprg, Base)"
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apply (rule trans)
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apply  (rule fields_rec_)
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apply   auto
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done
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lemmas method_rec_ = wf_subcls1_ [THEN [2] method_rec_lemma]
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lemma method_Object [simp]: "method (tprg,Object) = map_of []"
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apply (subst method_rec_)
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apply  auto
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done
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lemma method_Base [simp]: "method (tprg, Base) = map_of  
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  [((foo, [Class Base]), Base, (Class Base, foo_Base))]"
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apply (rule trans)
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apply  (rule method_rec_)
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apply  auto
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done
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lemma method_Ext [simp]: "method (tprg, Ext) = (method (tprg, Base) ++ map_of  
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  [((foo, [Class Base]), Ext , (Class Ext, foo_Ext))])"
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apply (rule trans)
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apply  (rule method_rec_)
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apply  auto
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done
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lemma wf_foo_Base: 
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"wf_mdecl wf_java_mdecl tprg Base ((foo, [Class Base]), (Class Base, foo_Base))"
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apply (unfold wf_mdecl_def wf_mhead_def wf_java_mdecl_def foo_Base_def)
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apply auto
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done
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lemma wf_foo_Ext: 
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"wf_mdecl wf_java_mdecl tprg Ext ((foo, [Class Base]), (Class Ext, foo_Ext))"
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apply (unfold wf_mdecl_def wf_mhead_def wf_java_mdecl_def foo_Ext_def)
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apply auto
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apply  (rule ty_expr_ty_exprs_wt_stmt.Cast)
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prefer 2
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apply   (simp)
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apply   (rule_tac [2] cast.subcls)
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apply   (unfold field_def)
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apply   auto
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done
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lemma wf_ObjectC: 
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"wf_cdecl wf_java_mdecl tprg ObjectC"
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apply (unfold wf_cdecl_def wf_fdecl_def ObjectC_def)
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apply (simp (no_asm))
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done
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lemma wf_BaseC: 
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"wf_cdecl wf_java_mdecl tprg BaseC"
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apply (unfold wf_cdecl_def wf_fdecl_def BaseC_def)
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apply (simp (no_asm))
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apply (fold BaseC_def)
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apply (rule wf_foo_Base [THEN conjI])
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apply auto
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done
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lemma wf_ExtC: 
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"wf_cdecl wf_java_mdecl tprg ExtC"
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apply (unfold wf_cdecl_def wf_fdecl_def ExtC_def)
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apply (simp (no_asm))
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apply (fold ExtC_def)
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apply (rule wf_foo_Ext [THEN conjI])
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apply auto
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apply (drule rtranclD)
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apply auto
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done
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   300
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lemma wf_tprg: 
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"wf_prog wf_java_mdecl tprg"
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apply (unfold wf_prog_def Let_def)
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apply(simp add: wf_ObjectC wf_BaseC wf_ExtC unique_classes)
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done
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   306
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lemma appl_methds_foo_Base: 
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"appl_methds tprg Base (foo, [NT]) =  
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  {((Class Base, Class Base), [Class Base])}"
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apply (unfold appl_methds_def)
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apply (simp (no_asm))
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apply (subgoal_tac "tprg\<turnstile>NT\<preceq> Class Base")
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apply  (auto simp add: map_of_Cons foo_Base_def)
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done
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   315
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lemma max_spec_foo_Base: "max_spec tprg Base (foo, [NT]) =  
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  {((Class Base, Class Base), [Class Base])}"
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apply (unfold max_spec_def)
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apply (auto simp add: appl_methds_foo_Base)
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done
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ML {* fun t thm = resolve_tac (thms "ty_expr_ty_exprs_wt_stmt.intros") 1 thm *}
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lemma wt_test: "(tprg, empty(e\<mapsto>Class Base))\<turnstile>  
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  Expr(e::=NewC Ext);; Expr({Base}LAcc e..foo({?pTs'}[Lit Null]))\<surd>"
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apply (tactic t) -- ";;"
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apply  (tactic t) -- "Expr"
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apply  (tactic t) -- "LAss"
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apply    simp -- {* @{text "e \<noteq> This"} *}
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apply    (tactic t) -- "LAcc"
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apply     (simp (no_asm))
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apply    (simp (no_asm))
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apply   (tactic t) -- "NewC"
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apply   (simp (no_asm))
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apply  (simp (no_asm))
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apply (tactic t) -- "Expr"
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apply (tactic t) -- "Call"
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apply   (tactic t) -- "LAcc"
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apply    (simp (no_asm))
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apply   (simp (no_asm))
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apply  (tactic t) -- "Cons"
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apply   (tactic t) -- "Lit"
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apply   (simp (no_asm))
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apply  (tactic t) -- "Nil"
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apply (simp (no_asm))
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apply (rule max_spec_foo_Base)
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done
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ML {* fun e t = resolve_tac (thm "NewCI"::thms "eval_evals_exec.intros") 1 t *}
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declare split_if [split del]
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declare init_vars_def [simp] c_hupd_def [simp] cast_ok_def [simp]
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lemma exec_test: 
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" [|new_Addr (heap (snd s0)) = (a, None)|] ==>  
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  tprg\<turnstile>s0 -test-> ?s"
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apply (unfold test_def)
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-- "?s = s3 "
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apply (tactic e) -- ";;"
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apply  (tactic e) -- "Expr"
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apply  (tactic e) -- "LAss"
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apply   (tactic e) -- "NewC"
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apply    force
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apply   force
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apply  (simp (no_asm))
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apply (erule thin_rl)
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apply (tactic e) -- "Expr"
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apply (tactic e) -- "Call"
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apply       (tactic e) -- "LAcc"
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apply      force
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apply     (tactic e) -- "Cons"
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apply      (tactic e) -- "Lit"
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apply     (tactic e) -- "Nil"
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apply    (simp (no_asm))
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apply   (force simp add: foo_Ext_def)
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apply  (simp (no_asm))
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apply  (tactic e) -- "Expr"
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apply  (tactic e) -- "FAss"
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apply       (tactic e) -- "Cast"
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apply        (tactic e) -- "LAcc"
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apply       (simp (no_asm))
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apply      (simp (no_asm))
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apply     (simp (no_asm))
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apply     (tactic e) -- "XcptE"
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apply    (simp (no_asm))
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apply   (rule surjective_pairing [THEN sym, THEN[2]trans], subst Pair_eq, force)
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apply  (simp (no_asm))
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apply (simp (no_asm))
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apply (tactic e) -- "XcptE"
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done
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end