ProgTutorial/Package/Ind_Code.thy
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theory Ind_Code
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imports "../Base" "../FirstSteps" Ind_General_Scheme
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begin
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section {* The Gory Details\label{sec:code} *} 
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text {*
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  As mentioned before the code falls roughly into three parts: the code that deals
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  with the definitions, with the induction principles and with the introduction
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  rules. In addition there are some administrative functions that string everything 
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  together.
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*}
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subsection {* Definitions *}
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text {*
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  We first have to produce for each predicate the user specifies an appropriate
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  definition, whose general form is
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  @{text [display] "pred \<equiv> \<lambda>zs. \<forall>preds. orules \<longrightarrow> pred zs"}
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  and then ``register'' the definition inside a local theory. 
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  To do the latter, we use the following wrapper for the function
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  @{ML [index] define in LocalTheory}. The wrapper takes a predicate name, a syntax
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  annotation and a term representing the right-hand side of the definition.
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*}
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ML %linenosgray{*fun make_defn ((predname, mx), trm) lthy =
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let 
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  val arg = ((predname, mx), (Attrib.empty_binding, trm))
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  val ((_, (_ , thm)), lthy') = LocalTheory.define Thm.internalK arg lthy
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in 
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  (thm, lthy') 
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end*}
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text {*
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  It returns the definition (as a theorem) and the local theory in which the
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  definition has been made. In Line 4, @{ML [index] internalK in Thm} is a flag
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  attached to the theorem (others possibile flags are @{ML [index] definitionK in Thm}
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  and @{ML [index] axiomK in Thm}). These flags just classify theorems and have no
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  significant meaning, except for tools that, for example, find theorems in
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  the theorem database.\footnote{FIXME: put in the section about theorems.} We
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  also use @{ML [index] empty_binding in Attrib} in Line 3, since the definitions for
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  our inductive predicates are not meant to be seen by the user and therefore
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  do not need to have any theorem attributes. A testcase for this function is
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*}
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local_setup %gray {* fn lthy =>
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let
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  val arg = ((@{binding "My_True"}, NoSyn), @{term True})
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  val (def, lthy') = make_defn arg lthy 
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in
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  writeln (string_of_thm_no_vars lthy' def); lthy'
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end *}
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text {*
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  which introduces the definition @{thm My_True_def} and then prints it out. 
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  Since we are testing the function inside \isacommand{local\_setup}, i.e., make
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  actual changes to the ambient theory, we can query the definition with the usual
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  command \isacommand{thm}:
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  \begin{isabelle}
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  \isacommand{thm}~@{thm [source] "My_True_def"}\\
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  @{text ">"}~@{thm "My_True_def"}
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  \end{isabelle}
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  The next two functions construct the right-hand sides of the definitions, 
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  which are terms whose general form is:
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  @{text [display] "\<lambda>zs. \<forall>preds. orules \<longrightarrow> pred zs"}
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  When constructing these terms, the variables @{text "zs"} need to be chosen so 
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  that they do not occur in the @{text orules} and also be distinct from the 
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  @{text "preds"}.
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  The first function, named @{text defn_aux}, constructs the term for one
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  particular predicate (the argument @{text "pred"} in the code below). The
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  number of arguments of this predicate is determined by the number of
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  argument types given in @{text "arg_tys"}. The other arguments of the
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  function are the @{text orules} and all the @{text "preds"}.
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*}
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ML %linenosgray{*fun defn_aux lthy orules preds (pred, arg_tys) =
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let 
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  fun mk_all x P = HOLogic.all_const (fastype_of x) $ lambda x P
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  val fresh_args = 
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        arg_tys 
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        |> map (pair "z")
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        |> Variable.variant_frees lthy (preds @ orules) 
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        |> map Free
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in
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  list_comb (pred, fresh_args)
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  |> fold_rev (curry HOLogic.mk_imp) orules
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  |> fold_rev mk_all preds
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  |> fold_rev lambda fresh_args 
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end*}
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text {*
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  The function @{text mk_all} in Line 3 is just a helper function for constructing 
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  universal quantifications. The code in Lines 5 to 9 produces the fresh @{text
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  "zs"}. For this it pairs every argument type with the string
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  @{text [quotes] "z"} (Line 7); then generates variants for all these strings
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  so that they are unique w.r.t.~to the predicates and @{text "orules"} (Line 8);
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  in Line 9 it generates the corresponding variable terms for the unique
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  strings.
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  The unique variables are applied to the predicate in Line 11 using the
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  function @{ML list_comb}; then the @{text orules} are prefixed (Line 12); in
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  Line 13 we quantify over all predicates; and in line 14 we just abstract
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  over all the @{text "zs"}, i.e., the fresh arguments of the
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  predicate. A testcase for this function is
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*}
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local_setup %gray{* fn lthy =>
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let
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  val def = defn_aux lthy eo_orules eo_preds (e_pred, e_arg_tys)
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in
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  writeln (Syntax.string_of_term lthy def); lthy
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end *}
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text {*
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  where we use the shorthands defined in Figure~\ref{fig:shorthands}.
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  The testcase calls @{ML defn_aux} for the predicate @{text "even"} and prints
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  out the generated definition. So we obtain as printout 
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  @{text [display] 
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"\<lambda>z. \<forall>even odd. (even 0) \<longrightarrow> (\<forall>n. odd n \<longrightarrow> even (Suc n)) 
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                         \<longrightarrow> (\<forall>n. even n \<longrightarrow> odd (Suc n)) \<longrightarrow> even z"}
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  If we try out the function with the rules for freshness
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*}
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local_setup %gray{* fn lthy =>
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 (writeln (Syntax.string_of_term lthy
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    (defn_aux lthy fresh_orules [fresh_pred] (fresh_pred, fresh_arg_tys)));
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  lthy) *}
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text {*
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  we obtain
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  @{term [display] 
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"\<lambda>z za. \<forall>fresh. (\<forall>a b. \<not> a = b \<longrightarrow> fresh a (Var b)) \<longrightarrow>
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               (\<forall>a s t. fresh a t \<longrightarrow> fresh a s \<longrightarrow> fresh a (App t s)) \<longrightarrow>
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                (\<forall>a t. fresh a (Lam a t)) \<longrightarrow>
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                (\<forall>a b t. \<not> a = b \<longrightarrow> fresh a t \<longrightarrow> fresh a (Lam b t)) \<longrightarrow> fresh z za"}
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  The second function, named @{text defns}, has to iterate the function
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  @{ML defn_aux} over all predicates. The argument @{text "preds"} is again
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  the list of predicates as @{ML_type term}s; the argument @{text
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  "prednames"} is the list of binding names of the predicates; @{text mxs} 
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  are the list of syntax, or mixfix, annotations for the predicates; 
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  @{text "arg_tyss"} is the list of argument-type-lists.
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*}
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ML %linenosgray{*fun defns rules preds prednames mxs arg_typss lthy =
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let
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  val thy = ProofContext.theory_of lthy
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  val orules = map (ObjectLogic.atomize_term thy) rules
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  val defs = map (defn_aux lthy orules preds) (preds ~~ arg_typss) 
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in
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  fold_map make_defn (prednames ~~ mxs ~~ defs) lthy
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end*}
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text {*
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  The user will state the introduction rules using meta-implications and
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  meta-quanti\-fications. In Line 4, we transform these introduction rules
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  into the object logic (since definitions cannot be stated with
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  meta-connectives). To do this transformation we have to obtain the theory
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  behind the local theory (Line 3); with this theory we can use the function
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  @{ML [index] atomize_term in ObjectLogic} to make the transformation (Line 4). The call
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  to @{ML defn_aux} in Line 5 produces all right-hand sides of the
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  definitions. The actual definitions are then made in Line 7.  The result of
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  the function is a list of theorems and a local theory (the theorems are
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  registered with the local theory). A testcase for this function is
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*}
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local_setup %gray {* fn lthy =>
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let
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  val (defs, lthy') = 
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    defns eo_rules eo_preds eo_prednames eo_mxs eo_arg_tyss lthy
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in
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  writeln (string_of_thms_no_vars lthy' defs); lthy
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end *}
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text {*
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  where we feed into the function all parameters corresponding to
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  the @{text even}-@{text odd} example. The definitions we obtain
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  are:
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  @{text [display, break]
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"even \<equiv> \<lambda>z. \<forall>even odd. (even 0) \<longrightarrow> (\<forall>n. odd n \<longrightarrow> even (Suc n))  
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                                \<longrightarrow> (\<forall>n. even n \<longrightarrow> odd (Suc n)) \<longrightarrow> even z,
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odd \<equiv> \<lambda>z. \<forall>even odd. (even 0) \<longrightarrow> (\<forall>n. odd n \<longrightarrow> even (Suc n)) 
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                               \<longrightarrow> (\<forall>n. even n \<longrightarrow> odd (Suc n)) \<longrightarrow> odd z"}
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  Note that in the testcase we return the local theory @{text lthy} 
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  (not the modified @{text lthy'}). As a result the test case has no effect
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  on the ambient theory. The reason is that if we introduce the
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  definition again, we pollute the name space with two versions of @{text "even"} 
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  and @{text "odd"}.
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  This completes the code for introducing the definitions. Next we deal with
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  the induction principles. 
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*}
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subsection {* Induction Principles *}
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text {*
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  Recall that the manual proof for the induction principle 
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  of @{text "even"} was:
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*}
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lemma manual_ind_prin_even: 
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assumes prem: "even z"
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shows "P 0 \<Longrightarrow> (\<And>m. Q m \<Longrightarrow> P (Suc m)) \<Longrightarrow> (\<And>m. P m \<Longrightarrow> Q (Suc m)) \<Longrightarrow> P z"
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apply(atomize (full))
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apply(cut_tac prem)
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apply(unfold even_def)
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apply(drule spec[where x=P])
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apply(drule spec[where x=Q])
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apply(assumption)
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done
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text {* 
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  The code for automating such induction principles has to accomplish two tasks: 
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  constructing the induction principles from the given introduction
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  rules and then automatically generating proofs for them using a tactic. 
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  The tactic will use the following helper function for instantiating universal 
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  quantifiers. 
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*}
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ML{*fun inst_spec ctrm = 
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 Drule.instantiate' [SOME (ctyp_of_term ctrm)] [NONE, SOME ctrm] @{thm spec}*}
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text {*
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  This helper function instantiates the @{text "?x"} in the theorem 
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  @{thm spec} with a given @{ML_type cterm}. We call this helper function
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  in the following tactic, called @{text inst_spec_tac}\label{fun:instspectac}.
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*}
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ML{*fun inst_spec_tac ctrms = 
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  EVERY' (map (dtac o inst_spec) ctrms)*}
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text {*
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  This tactic expects a list of @{ML_type cterm}s. It allows us in the 
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  proof below to instantiate the three quantifiers in the assumption. 
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*}
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lemma 
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fixes P::"nat \<Rightarrow> nat \<Rightarrow> nat \<Rightarrow> bool"
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shows "\<forall>x y z. P x y z \<Longrightarrow> True"
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apply (tactic {* 
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  inst_spec_tac [@{cterm "a::nat"},@{cterm "b::nat"},@{cterm "c::nat"}] 1 *})
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txt {* 
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  We obtain the goal state
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  \begin{minipage}{\textwidth}
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  @{subgoals} 
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  \end{minipage}*}
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(*<*)oops(*>*)
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text {*
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  The complete tactic for proving the induction principles can now
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  be implemented as follows:
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*}
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ML %linenosgray{*fun ind_tac defs prem insts =
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  EVERY1 [ObjectLogic.full_atomize_tac,
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          cut_facts_tac prem,
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          K (rewrite_goals_tac defs),
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          inst_spec_tac insts,
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          assume_tac]*}
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text {*
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  We have to give it as arguments the definitions, the premise (a list of
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  formulae) and the instantiations. The premise is @{text "even n"} in lemma
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  @{thm [source] manual_ind_prin_even}; in our code it will always be a list
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  consisting of a single formula. Compare this tactic with the manual proof
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  for the lemma @{thm [source] manual_ind_prin_even}: as you can see there is
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  almost a one-to-one correspondence between the \isacommand{apply}-script and
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  the @{ML ind_tac}. Two testcases for this tactic are:
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*}
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lemma automatic_ind_prin_even:
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assumes prem: "even z"
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shows "P 0 \<Longrightarrow> (\<And>m. Q m \<Longrightarrow> P (Suc m)) \<Longrightarrow> (\<And>m. P m \<Longrightarrow> Q (Suc m)) \<Longrightarrow> P z"
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by (tactic {* ind_tac eo_defs @{thms prem} 
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                    [@{cterm "P::nat\<Rightarrow>bool"}, @{cterm "Q::nat\<Rightarrow>bool"}] *})
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lemma automatic_ind_prin_fresh:
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assumes prem: "fresh z za" 
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shows "(\<And>a b. a \<noteq> b \<Longrightarrow> P a (Var b)) \<Longrightarrow> 
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        (\<And>a t s. \<lbrakk>P a t; P a s\<rbrakk> \<Longrightarrow> P a (App t s)) \<Longrightarrow>
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        (\<And>a t. P a (Lam a t)) \<Longrightarrow> 
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        (\<And>a b t. \<lbrakk>a \<noteq> b; P a t\<rbrakk> \<Longrightarrow> P a (Lam b t)) \<Longrightarrow> P z za"
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by (tactic {* ind_tac @{thms fresh_def} @{thms prem} 
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                          [@{cterm "P::string\<Rightarrow>trm\<Rightarrow>bool"}] *})
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text {*
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  While the tactic for proving the induction principles is relatively simple,
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  it will be a bit more work to construct the goals from the introduction rules
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  the user provides.  Therefore let us have a closer look at the first 
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  proved theorem:
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  \begin{isabelle}
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  \isacommand{thm}~@{thm [source] automatic_ind_prin_even}\\
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  @{text "> "}~@{thm automatic_ind_prin_even}
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  \end{isabelle}
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  The variables @{text "z"}, @{text "P"} and @{text "Q"} are schematic
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  variables (since they are not quantified in the lemma). These 
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  variables must be schematic, otherwise they cannot be instantiated 
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  by the user. To generate these schematic variables we use a common trick
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  in Isabelle programming: we first declare them as \emph{free}, 
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  \emph{but fixed}, and then use the infrastructure to turn them into 
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  schematic variables.
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  In general we have to construct for each predicate @{text "pred"} a goal 
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  of the form
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  @{text [display] 
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  "pred ?zs \<Longrightarrow> rules[preds := ?Ps] \<Longrightarrow> ?P ?zs"}
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  where the predicates @{text preds} are replaced in @{text rules} by new 
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  distinct variables @{text "?Ps"}. We also need to generate fresh arguments 
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  @{text "?zs"} for the predicate  @{text "pred"} and the @{text "?P"} in 
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  the conclusion. 
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  We generate these goals in two steps. The first function, named @{text prove_ind}, 
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  expects that the introduction rules are already appropriately substituted. The argument
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  @{text "srules"} stands for these substituted rules; @{text cnewpreds} are
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  the certified terms coresponding to the variables @{text "?Ps"}; @{text
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  "pred"} is the predicate for which we prove the induction principle;
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  @{text "newpred"} is its replacement and @{text "arg_tys"} are the argument
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  types of this predicate.
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*}
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ML %linenosgray{*fun prove_ind lthy defs srules cnewpreds ((pred, newpred), arg_tys) =
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let
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  val zs = replicate (length arg_tys) "z"
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  val (newargnames, lthy') = Variable.variant_fixes zs lthy;
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  val newargs = map Free (newargnames ~~ arg_tys)
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  val prem = HOLogic.mk_Trueprop (list_comb (pred, newargs))
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  val goal = Logic.list_implies 
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         (srules, HOLogic.mk_Trueprop (list_comb (newpred, newargs)))
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in
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  Goal.prove lthy' [] [prem] goal
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      (fn {prems, ...} => ind_tac defs prems cnewpreds)
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  |> singleton (ProofContext.export lthy' lthy)
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end *}
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text {* 
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  In Line 3 we produce names @{text "zs"} for each type in the 
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  argument type list. Line 4 makes these names unique and declares them as 
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  free, but fixed, variables in the local theory @{text "lthy'"}. 
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  That means they are not schematic variables (yet).
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  In Line 5 we construct the terms corresponding to these variables. 
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  The variables are applied to the predicate in Line 7 (this corresponds
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  to the first premise @{text "pred zs"} of the induction principle). 
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  In Line 8 and 9, we first construct the term  @{text "P zs"} 
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  and then add the (substituted) introduction rules as preconditions. In 
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  case that no introduction rules are given, the conclusion of this 
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  implication needs to be wrapped inside a @{term Trueprop}, otherwise 
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  the Isabelle's goal mechanism will fail.\footnote{FIXME: check with 
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  Stefan...is this so?} 
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  In Line 11 we set up the goal to be proved; in the next line we call the
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  tactic for proving the induction principle. As mentioned before, this tactic
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  expects the definitions, the premise and the (certified) predicates with
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  which the introduction rules have been substituted. The code in these two
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  lines will return a theorem. However, it is a theorem
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  proved inside the local theory @{text "lthy'"}, where the variables @{text
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  "zs"} are free, but fixed (see Line 4). By exporting this theorem from @{text
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  "lthy'"} (which contains the @{text "zs"} as free variables) to @{text
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  "lthy"} (which does not), we obtain the desired schematic variables @{text "?zs"}.
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  A testcase for this function is
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*}
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local_setup %gray{* fn lthy =>
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let
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  val newpreds = [@{term "P::nat\<Rightarrow>bool"}, @{term "Q::nat\<Rightarrow>bool"}]
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  val cnewpreds = [@{cterm "P::nat\<Rightarrow>bool"}, @{cterm "Q::nat\<Rightarrow>bool"}]
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  val newpred = @{term "P::nat\<Rightarrow>bool"}
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  val srules =  map (subst_free (eo_preds ~~ newpreds)) eo_rules
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  val intro = 
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      prove_ind lthy eo_defs srules cnewpreds ((e_pred, newpred), e_arg_tys)
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in
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  writeln (string_of_thm lthy intro); lthy
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end *}
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text {*
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  This prints out the theorem:
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  @{text [display]
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  " \<lbrakk>even ?z; P 0; \<And>n. Q n \<Longrightarrow> P (Suc n); \<And>n. P n \<Longrightarrow> Q (Suc n)\<rbrakk> \<Longrightarrow> P ?z"}
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  The export from @{text lthy'} to @{text lthy} in Line 13 above 
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  has correctly turned the free, but fixed, @{text "z"} into a schematic 
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  variable @{text "?z"}; the variables @{text "P"} and @{text "Q"} are not yet
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  schematic. 
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   407
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  We still have to produce the new predicates with which the introduction
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  rules are substituted and iterate @{ML prove_ind} over all
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  predicates. This is what the second function, named @{text inds} does. 
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*}
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ML %linenosgray{*fun inds rules defs preds arg_tyss lthy  =
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let
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  val Ps = replicate (length preds) "P"
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  val (newprednames, lthy') = Variable.variant_fixes Ps lthy
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  val thy = ProofContext.theory_of lthy'
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  val tyss' = map (fn tys => tys ---> HOLogic.boolT) arg_tyss
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  val newpreds = map Free (newprednames ~~ tyss')
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  val cnewpreds = map (cterm_of thy) newpreds
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  val srules = map (subst_free (preds ~~ newpreds)) rules
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in
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  map (prove_ind lthy' defs srules cnewpreds) 
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        (preds ~~ newpreds ~~ arg_tyss)
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          |> ProofContext.export lthy' lthy
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end*}
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text {*
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  In Line 3, we generate a string @{text [quotes] "P"} for each predicate. 
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  In Line 4, we use the same trick as in the previous function, that is making the 
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  @{text "Ps"} fresh and declaring them as free, but fixed, in
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   435
  the new local theory @{text "lthy'"}. From the local theory we extract
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  the ambient theory in Line 6. We need this theory in order to certify 
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  the new predicates. In Line 8, we construct the types of these new predicates
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  using the given argument types. Next we turn them into terms and subsequently
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  certify them (Line 9 and 10). We can now produce the substituted introduction rules 
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  (Line 11) using the function @{ML [index] subst_free}. Line 14 and 15 just iterate 
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  the proofs for all predicates.
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  From this we obtain a list of theorems. Finally we need to export the 
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  fixed variables @{text "Ps"} to obtain the schematic variables @{text "?Ps"} 
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  (Line 16).
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  A testcase for this function is
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*}
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   448
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local_setup %gray {* fn lthy =>
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let 
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  val ind_thms = inds eo_rules eo_defs eo_preds eo_arg_tyss lthy
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in
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  writeln (string_of_thms lthy ind_thms); lthy
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end *}
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text {*
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   458
  which prints out
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   459
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@{text [display]
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"even ?z \<Longrightarrow> ?P1 0 \<Longrightarrow> 
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   462
 (\<And>m. ?Pa1 m \<Longrightarrow> ?P1 (Suc m)) \<Longrightarrow> (\<And>m. ?P1 m \<Longrightarrow> ?Pa1 (Suc m)) \<Longrightarrow> ?P1 ?z,
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odd ?z \<Longrightarrow> ?P1 0 \<Longrightarrow>
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   464
 (\<And>m. ?Pa1 m \<Longrightarrow> ?P1 (Suc m)) \<Longrightarrow> (\<And>m. ?P1 m \<Longrightarrow> ?Pa1 (Suc m)) \<Longrightarrow> ?Pa1 ?z"}
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   465
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   466
  Note that now both, the @{text "?Ps"} and the @{text "?zs"}, are schematic
210
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   467
  variables. The numbers attached to these variables have been introduced by 
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   468
  the pretty-printer and are \emph{not} important for the user. 
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diff changeset
   469
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   470
  This completes the code for the induction principles. The final peice
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   471
  of reasoning infrastructure we need are the introduction rules. 
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   472
*}
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   473
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   474
subsection {* Introduction Rules *}
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   475
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   476
text {*
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   477
  Constructing the goals for the introduction rules is easy: they
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   478
  are just the rules given by the user. However, their proofs are 
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  quite a bit more involved than the ones for the induction principles. 
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   480
  To explain the general method, our running example will be
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   481
  the introduction rule
208
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diff changeset
   482
212
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diff changeset
   483
  \begin{isabelle}
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   484
  @{prop "\<And>a b t. \<lbrakk>a \<noteq> b; fresh a t\<rbrakk> \<Longrightarrow> fresh a (Lam b t)"}
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diff changeset
   485
  \end{isabelle}
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diff changeset
   486
  
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diff changeset
   487
  about freshness for lambdas. In order to ease somewhat 
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   488
  our work here, we use the following two helper functions.
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   489
*}
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diff changeset
   490
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diff changeset
   491
ML{*val all_elims = fold (fn ct => fn th => th RS inst_spec ct)
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   492
val imp_elims = fold (fn th => fn th' => [th', th] MRS @{thm mp})*}
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diff changeset
   493
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   494
text {* 
212
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diff changeset
   495
  To see what these functions do, let us suppose we have the following three
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diff changeset
   496
  theorems. 
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   497
*}
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diff changeset
   498
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   499
lemma all_elims_test:
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diff changeset
   500
fixes P::"nat \<Rightarrow> nat \<Rightarrow> nat \<Rightarrow> bool"
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diff changeset
   501
shows "\<forall>x y z. P x y z" sorry
190
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diff changeset
   502
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diff changeset
   503
lemma imp_elims_test:
224
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diff changeset
   504
shows "A \<longrightarrow> B \<longrightarrow> C" sorry
190
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diff changeset
   505
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diff changeset
   506
lemma imp_elims_test':
224
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diff changeset
   507
shows "A" "B" sorry
190
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diff changeset
   508
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diff changeset
   509
text {*
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diff changeset
   510
  The function @{ML all_elims} takes a list of (certified) terms and instantiates
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diff changeset
   511
  theorems of the form @{thm [source] all_elims_test}. For example we can instantiate
210
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diff changeset
   512
  the quantifiers in this theorem with @{term a}, @{term b} and @{term c} as follows:
190
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diff changeset
   513
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diff changeset
   514
  @{ML_response_fake [display, gray]
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diff changeset
   515
"let
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diff changeset
   516
  val ctrms = [@{cterm \"a::nat\"}, @{cterm \"b::nat\"}, @{cterm \"c::nat\"}]
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diff changeset
   517
  val new_thm = all_elims ctrms @{thm all_elims_test}
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diff changeset
   518
in
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diff changeset
   519
  writeln (string_of_thm_no_vars @{context} new_thm)
190
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   520
end"
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diff changeset
   521
  "P a b c"}
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diff changeset
   522
215
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diff changeset
   523
  Note the difference with @{ML inst_spec_tac} from Page~\pageref{fun:instspectac}:
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diff changeset
   524
  @{ML inst_spec_tac} is a tactic which operates on a goal state; in contrast
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diff changeset
   525
  @{ML all_elims} operates on theorems. 
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diff changeset
   526
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diff changeset
   527
  Similarly, the function @{ML imp_elims} eliminates preconditions from implications. 
210
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diff changeset
   528
  For example we can eliminate the preconditions @{text "A"} and @{text "B"} from
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  @{thm [source] imp_elims_test}:
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  @{ML_response_fake [display, gray]
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"writeln (string_of_thm_no_vars @{context} 
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            (imp_elims @{thms imp_elims_test'} @{thm imp_elims_test}))"
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  "C"}
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  Now we set up the proof for the introduction rule as follows:
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*}
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lemma fresh_Lam:
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   540
shows "\<And>a b t. \<lbrakk>a \<noteq> b; fresh a t\<rbrakk> \<Longrightarrow> fresh a (Lam b t)"
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   541
(*<*)oops(*>*)
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   542
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text {*
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  The first step in the proof will be to expand the definitions of freshness
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  and then introduce quantifiers and implications. For this we
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  will use the tactic
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*}
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ML %linenosgray{*fun expand_tac defs =
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  ObjectLogic.rulify_tac 1
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  THEN rewrite_goals_tac defs
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  THEN (REPEAT (resolve_tac [@{thm allI}, @{thm impI}] 1)) *}
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   554
text {*
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  The function in Line 2 ``rulifies'' the lemma. This will turn out to 
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  be important later on. Applying this tactic in our proof of @{text "fresh_Lem"}
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*}
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   558
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   559
(*<*)
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lemma fresh_Lam:
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   561
shows "\<And>a b t. \<lbrakk>a \<noteq> b; fresh a t\<rbrakk> \<Longrightarrow> fresh a (Lam b t)"
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(*>*)
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apply(tactic {* expand_tac @{thms fresh_def} *})
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txt {*
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  gives us the goal state
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   567
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  \begin{isabelle}
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  @{subgoals [display]}
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  \end{isabelle}
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   571
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  As you can see, there are parameters (namely @{text "a"}, @{text "b"} and
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  @{text "t"}) which come from the introduction rule and parameters (in the
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  case above only @{text "fresh"}) which come from the universal
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  quantification in the definition @{term "fresh a (App t s)"}.  Similarly,
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  there are assumptions that come from the premises of the rule (namely the
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  first two) and assumptions from the definition of the predicate (assumption
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  three to six). We need to treat these parameters and assumptions
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  differently. In the code below we will therefore separate them into @{text
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  "params1"} and @{text params2}, respectively @{text "prems1"} and @{text
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  "prems2"}. To do this separation, it is best to open a subproof with the
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  tactic @{ML [index] SUBPROOF}, since this tactic provides us with the parameters (as
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  list of @{ML_type cterm}s) and the assumptions (as list of @{ML_type thm}s). 
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  The problem we have to overcome with @{ML SUBPROOF}
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  is, however, that this tactic always expects us to completely discharge the
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   586
  goal (see Section~\ref{sec:simpletacs}). This is inconvenient for our
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  gradual explanation of the proof here. To circumvent this inconvenience we
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  use the following modified tactic:
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*}
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(*<*)oops(*>*)
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ML{*fun SUBPROOF_test tac ctxt = (SUBPROOF tac ctxt 1) ORELSE all_tac*}
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   592
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text {*
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  If the tactic inside @{ML SUBPROOF} fails, then the overall tactic will
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   595
  still succeed. With this testing tactic, we can gradually implement
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  all necessary proof steps inside a subproof. Once we are finished, we
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  just have to replace it with @{ML SUBPROOF}.
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*}
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   599
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text_raw {*
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\begin{figure}[t]
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\begin{minipage}{\textwidth}
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\begin{isabelle}
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*}
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ML{*fun chop_print params1 params2 prems1 prems2 ctxt =
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let 
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  val s = ["Params1 from the rule:", string_of_cterms ctxt params1] 
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        @ ["Params2 from the predicate:", string_of_cterms ctxt params2] 
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        @ ["Prems1 from the rule:"] @ (map (string_of_thm ctxt) prems1) 
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   610
        @ ["Prems2 from the predicate:"] @ (map (string_of_thm ctxt) prems2) 
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in 
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  s |> separate "\n"
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    |> implode
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    |> writeln
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end*}
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text_raw{*
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\end{isabelle}
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\end{minipage}
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\caption{A helper function that prints out the parameters and premises that
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  need to be treated differently.\label{fig:chopprint}}
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\end{figure}
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*}
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text {*
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  First we calculate the values for @{text "params1/2"} and @{text "prems1/2"}
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  from @{text "params"} and @{text "prems"}, respectively. To better see what is
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  going in our example, we will print out these values using the printing
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  function in Figure~\ref{fig:chopprint}. Since the tactic @{ML SUBPROOF} will
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  supply us the @{text "params"} and @{text "prems"} as lists, we can 
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  separate them using the function @{ML [index] chop}. 
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*}
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ML{*fun chop_test_tac preds rules =
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  SUBPROOF_test (fn {params, prems, context, ...} =>
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  let
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    val (params1, params2) = chop (length params - length preds) (map snd params)
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    val (prems1, prems2) = chop (length prems - length rules) prems
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  in
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    chop_print params1 params2 prems1 prems2 context; no_tac
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  end) *}
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text {* 
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  For the separation we can rely on the fact that Isabelle deterministically 
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  produces parameters and premises in a goal state. The last parameters
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  that were introduced come from the quantifications in the definitions
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  (see the tactic @{ML expand_tac}).
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  Therefore we only have to subtract the number of predicates (in this
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  case only @{text "1"}) from the lenghts of all parameters. Similarly
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  with the @{text "prems"}: the last premises in the goal state come from 
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  unfolding the definition of the predicate in the conclusion. So we can 
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  just subtract the number of rules from the number of all premises. 
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  Applying this tactic in our example 
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*}
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(*<*)
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lemma fresh_Lam:
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   657
shows "\<And>a b t. \<lbrakk>a \<noteq> b; fresh a t\<rbrakk> \<Longrightarrow> fresh a (Lam b t)"
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apply(tactic {* expand_tac @{thms fresh_def} *})
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(*>*)
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apply(tactic {* chop_test_tac [fresh_pred] fresh_rules @{context} *})
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(*<*)oops(*>*)
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text {*
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  gives
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   665
210
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   666
  \begin{isabelle}
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   667
  @{text "Params1 from the rule:"}\\
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   668
  @{text "a, b, t"}\\
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   669
  @{text "Params2 from the predicate:"}\\
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   670
  @{text "fresh"}\\
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   671
  @{text "Prems1 from the rule:"}\\
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   672
  @{term "a \<noteq> b"}\\
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   673
  @{text [break]
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   674
"\<forall>fresh.
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   675
      (\<forall>a b. a \<noteq> b \<longrightarrow> fresh a (Var b)) \<longrightarrow>
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   676
      (\<forall>a t s. fresh a t \<longrightarrow> fresh a s \<longrightarrow> fresh a (App t s)) \<longrightarrow>
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   677
      (\<forall>a t. fresh a (Lam a t)) \<longrightarrow> 
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   678
      (\<forall>a b t. a \<noteq> b \<longrightarrow> fresh a t \<longrightarrow> fresh a (Lam b t)) \<longrightarrow> fresh a t"}\\
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   679
   @{text "Prems2 from the predicate:"}\\
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   680
   @{term "\<forall>a b. a \<noteq> b \<longrightarrow> fresh a (Var b)"}\\
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   681
   @{term "\<forall>a t s. fresh a t \<longrightarrow> fresh a s \<longrightarrow> fresh a (App t s)"}\\
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   682
   @{term "\<forall>a t. fresh a (Lam a t)"}\\
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   683
   @{term "\<forall>a b t. a \<noteq> b \<longrightarrow> fresh a t \<longrightarrow> fresh a (Lam b t)"}
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   684
  \end{isabelle}
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   685
192
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   686
210
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   687
  We now have to select from @{text prems2} the premise 
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  that corresponds to the introduction rule we prove, namely:
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   689
212
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   690
  @{term [display] "\<forall>a b t. a \<noteq> b \<longrightarrow> fresh a t \<longrightarrow> fresh a (Lam a t)"}
210
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   691
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   692
  To use this premise with @{ML rtac}, we need to instantiate its 
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   693
  quantifiers (with @{text params1}) and transform it into rule 
256
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   694
  format (using @{ML [index] rulify in ObjectLogic}. So we can modify the 
211
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  subproof as follows:
210
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   696
*}
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   697
212
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   698
ML %linenosgray{*fun apply_prem_tac i preds rules =
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   699
  SUBPROOF_test (fn {params, prems, context, ...} =>
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   700
  let
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   701
    val (params1, params2) = chop (length params - length preds) (map snd params)
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   702
    val (prems1, prems2) = chop (length prems - length rules) prems
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   703
  in
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   704
    rtac (ObjectLogic.rulify (all_elims params1 (nth prems2 i))) 1
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   705
    THEN print_tac ""
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   706
    THEN no_tac
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   707
  end) *}
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   708
211
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   709
text {* 
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   710
  The argument @{text i} corresponds to the number of the 
215
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   711
  introduction we want to prove. We will later on let it range
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   712
  from @{text 0} to the number of @{text "rules - 1"}.
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   713
  Below we apply this function with @{text 3}, since 
211
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   714
  we are proving the fourth introduction rule. 
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   715
*}
210
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   716
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   717
(*<*)
211
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   718
lemma fresh_Lam:
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diff changeset
   719
shows "\<And>a b t. \<lbrakk>a \<noteq> b; fresh a t\<rbrakk> \<Longrightarrow> fresh a (Lam b t)"
210
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   720
apply(tactic {* expand_tac @{thms fresh_def} *})
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   721
(*>*)
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   722
apply(tactic {* apply_prem_tac 3 [fresh_pred] fresh_rules @{context} *})
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   723
(*<*)oops(*>*)
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   724
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   725
text {*
211
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   726
  Since we print out the goal state just after the application of 
212
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   727
  @{ML rtac} (Line 8), we can see the goal state we obtain: 
210
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   728
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   729
  \begin{isabelle}
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  @{text "1."}~@{prop "a \<noteq> b"}\\
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   731
  @{text "2."}~@{prop "fresh a t"}
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   732
  \end{isabelle}
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   733
215
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   734
  As expected there are two subgoals, where the first comes from the
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diff changeset
   735
  non-recursive premise of the introduction rule and the second comes 
215
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   736
  from the recursive one. The first goal can be solved immediately 
212
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   737
  by @{text "prems1"}. The second needs more work. It can be solved 
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diff changeset
   738
  with the other premise in @{text "prems1"}, namely
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   739
210
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   740
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   741
  @{term [break,display]
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   742
  "\<forall>fresh.
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      (\<forall>a b. a \<noteq> b \<longrightarrow> fresh a (Var b)) \<longrightarrow>
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      (\<forall>a t s. fresh a t \<longrightarrow> fresh a s \<longrightarrow> fresh a (App t s)) \<longrightarrow>
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   745
      (\<forall>a t. fresh a (Lam a t)) \<longrightarrow> 
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   746
      (\<forall>a b t. a \<noteq> b \<longrightarrow> fresh a t \<longrightarrow> fresh a (Lam b t)) \<longrightarrow> fresh a t"}
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   747
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   748
  but we have to instantiate it appropriately. These instantiations
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   749
  come from @{text "params1"} and @{text "prems2"}. We can determine
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   750
  whether we are in the simple or complicated case by checking whether
211
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   751
  the topmost connective is an @{text "\<forall>"}. The premises in the simple
212
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diff changeset
   752
  case cannot have such a quantification, since the first step 
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diff changeset
   753
  of @{ML "expand_tac"} was to ``rulify'' the lemma. 
211
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   754
  The premise of the complicated case must have at least one  @{text "\<forall>"}
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   755
  coming from the quantification over the @{text preds}. So 
210
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   756
  we can implement the following function
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   757
*}
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   758
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   759
ML{*fun prepare_prem params2 prems2 prem =  
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   760
  rtac (case prop_of prem of
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   761
           _ $ (Const (@{const_name All}, _) $ _) =>
210
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   762
                 prem |> all_elims params2 
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   763
                      |> imp_elims prems2
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   764
         | _ => prem) *}
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   765
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   766
text {* 
211
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   767
  which either applies the premise outright (the default case) or if 
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   768
  it has an outermost universial quantification, instantiates it first 
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diff changeset
   769
  with  @{text "params1"} and then @{text "prems1"}. The following 
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   770
  tactic will therefore prove the lemma completely.
210
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   771
*}
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   772
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   773
ML{*fun prove_intro_tac i preds rules =
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   774
  SUBPROOF (fn {params, prems, ...} =>
210
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   775
  let
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diff changeset
   776
    val (params1, params2) = chop (length params - length preds) (map snd params)
210
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   777
    val (prems1, prems2) = chop (length prems - length rules) prems
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   778
  in
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   779
    rtac (ObjectLogic.rulify (all_elims params1 (nth prems2 i))) 1
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   780
    THEN EVERY1 (map (prepare_prem params2 prems2) prems1)
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   781
  end) *}
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   782
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   783
text {*
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diff changeset
   784
  Note that the tactic is now @{ML SUBPROOF}, not @{ML SUBPROOF_test}. 
215
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diff changeset
   785
  The full proof of the introduction rule is as follows:
210
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   786
*}
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   787
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diff changeset
   788
lemma fresh_Lam:
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diff changeset
   789
shows "\<And>a b t. \<lbrakk>a \<noteq> b; fresh a t\<rbrakk> \<Longrightarrow> fresh a (Lam b t)"
210
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   790
apply(tactic {* expand_tac @{thms fresh_def} *})
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diff changeset
   791
apply(tactic {* prove_intro_tac 3 [fresh_pred] fresh_rules @{context} 1 *})
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   792
done
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   793
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   794
text {* 
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   795
  Phew!  ...Unfortunately, not everything is done yet. If you look closely
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   796
  at the general principle outlined for the introduction rules in 
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diff changeset
   797
  Section~\ref{sec:nutshell}, we have  not yet dealt with the case where 
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   798
  recursive premises have preconditions. The introduction rule
211
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diff changeset
   799
  of the accessible part is such a rule. 
210
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diff changeset
   800
*}
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diff changeset
   801
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diff changeset
   802
lemma accpartI:
224
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diff changeset
   803
shows "\<And>R x. (\<And>y. R y x \<Longrightarrow> accpart R y) \<Longrightarrow> accpart R x"
210
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diff changeset
   804
apply(tactic {* expand_tac @{thms accpart_def} *})
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diff changeset
   805
apply(tactic {* chop_test_tac [acc_pred] acc_rules @{context} *})
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diff changeset
   806
apply(tactic {* apply_prem_tac 0 [acc_pred] acc_rules @{context} *})
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diff changeset
   807
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diff changeset
   808
txt {*
211
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diff changeset
   809
  Here @{ML chop_test_tac} prints out the following
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diff changeset
   810
  values for @{text "params1/2"} and @{text "prems1/2"}
210
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diff changeset
   811
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diff changeset
   812
  \begin{isabelle}
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   813
  @{text "Params1 from the rule:"}\\
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diff changeset
   814
  @{text "x"}\\
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   815
  @{text "Params2 from the predicate:"}\\
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   816
  @{text "P"}\\
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   817
  @{text "Prems1 from the rule:"}\\
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   818
  @{text "R ?y x \<Longrightarrow> \<forall>P. (\<forall>x. (\<forall>y. R y x \<longrightarrow> P y) \<longrightarrow> P x) \<longrightarrow> P ?y"}\\
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   819
  @{text "Prems2 from the predicate:"}\\
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   820
  @{term "\<forall>x. (\<forall>y. R y x \<longrightarrow> P y) \<longrightarrow> P x"}\\
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diff changeset
   821
  \end{isabelle}
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diff changeset
   822
211
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diff changeset
   823
  and after application of the introduction rule 
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diff changeset
   824
  using @{ML apply_prem_tac}, we are in the goal state
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diff changeset
   825
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diff changeset
   826
  \begin{isabelle}
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diff changeset
   827
  @{text "1."}~@{term "\<And>y. R y x \<Longrightarrow> P y"}
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diff changeset
   828
  \end{isabelle}
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diff changeset
   829
  
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diff changeset
   830
  
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diff changeset
   831
*}(*<*)oops(*>*)
210
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diff changeset
   832
211
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diff changeset
   833
text {*
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diff changeset
   834
  In order to make progress, we have to use the precondition
211
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diff changeset
   835
  @{text "R y x"} (in general there can be many of them). The best way
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diff changeset
   836
  to get a handle on these preconditions is to open up another subproof,
212
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diff changeset
   837
  since the preconditions will then be bound to @{text prems}. Therfore we
211
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diff changeset
   838
  modify the function @{ML prepare_prem} as follows
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diff changeset
   839
*}
210
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diff changeset
   840
211
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   841
ML %linenosgray{*fun prepare_prem params2 prems2 ctxt prem =  
210
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diff changeset
   842
  SUBPROOF (fn {prems, ...} =>
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diff changeset
   843
  let
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diff changeset
   844
    val prem' = prems MRS prem
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diff changeset
   845
  in 
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diff changeset
   846
    rtac (case prop_of prem' of
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diff changeset
   847
           _ $ (Const (@{const_name All}, _) $ _) =>
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diff changeset
   848
                 prem' |> all_elims params2 
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diff changeset
   849
                       |> imp_elims prems2
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   850
         | _ => prem') 1
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   851
  end) ctxt *}
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diff changeset
   852
211
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diff changeset
   853
text {*
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diff changeset
   854
  In Line 4 we use the @{text prems} from the @{ML SUBPROOF} and resolve 
212
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diff changeset
   855
  them with @{text prem}. In the simple cases, that is where the @{text prem} 
211
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diff changeset
   856
  comes from a non-recursive premise of the rule, @{text prems} will be 
256
1fb8d62c88a0 added some first index-information
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diff changeset
   857
  just the empty list and the function @{ML [index] MRS} does nothing. Similarly, in the 
211
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diff changeset
   858
  cases where the recursive premises of the rule do not have preconditions. 
212
ac01ddb285f6 polishing
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diff changeset
   859
  In case there are preconditions, then Line 4 discharges them. After
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diff changeset
   860
  that we can proceed as before, i.e., check whether the outermost
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diff changeset
   861
  connective is @{text "\<forall>"}.
211
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diff changeset
   862
  
212
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diff changeset
   863
  The function @{ML prove_intro_tac} only needs to be changed so that it
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diff changeset
   864
  gives the context to @{ML prepare_prem} (Line 8). The modified version
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diff changeset
   865
  is below.
211
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diff changeset
   866
*}
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diff changeset
   867
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diff changeset
   868
ML %linenosgray{*fun prove_intro_tac i preds rules =
210
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diff changeset
   869
  SUBPROOF (fn {params, prems, context, ...} =>
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diff changeset
   870
  let
294
ee9d53fbb56b made changes for SUBPROOF and sat_tac
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diff changeset
   871
    val (params1, params2) = chop (length params - length preds) (map snd params)
210
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diff changeset
   872
    val (prems1, prems2) = chop (length prems - length rules) prems
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diff changeset
   873
  in
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diff changeset
   874
    rtac (ObjectLogic.rulify (all_elims params1 (nth prems2 i))) 1
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diff changeset
   875
    THEN EVERY1 (map (prepare_prem params2 prems2 context) prems1)
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diff changeset
   876
  end) *}
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diff changeset
   877
211
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diff changeset
   878
text {*
212
ac01ddb285f6 polishing
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diff changeset
   879
  With these two functions we can now also prove the introduction
211
d5accbc67e1b more work on simple inductive and marked all sections that are still seriously incomplete with TBD
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diff changeset
   880
  rule for the accessible part. 
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diff changeset
   881
*}
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diff changeset
   882
210
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diff changeset
   883
lemma accpartI:
224
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diff changeset
   884
shows "\<And>R x. (\<And>y. R y x \<Longrightarrow> accpart R y) \<Longrightarrow> accpart R x"
210
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diff changeset
   885
apply(tactic {* expand_tac @{thms accpart_def} *})
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diff changeset
   886
apply(tactic {* prove_intro_tac 0 [acc_pred] acc_rules @{context} 1 *})
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diff changeset
   887
done
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diff changeset
   888
190
ca0ac2e75f6d more one the simple-inductive chapter
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diff changeset
   889
text {*
211
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diff changeset
   890
  Finally we need two functions that string everything together. The first
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diff changeset
   891
  function is the tactic that performs the proofs.
190
ca0ac2e75f6d more one the simple-inductive chapter
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diff changeset
   892
*}
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diff changeset
   893
211
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diff changeset
   894
ML %linenosgray{*fun intro_tac defs rules preds i ctxt =
165
890fbfef6d6b partially adapted to new antiquotation infrastructure
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diff changeset
   895
  EVERY1 [ObjectLogic.rulify_tac,
890fbfef6d6b partially adapted to new antiquotation infrastructure
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diff changeset
   896
          K (rewrite_goals_tac defs),
184
c7f04a008c9c some polishing
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diff changeset
   897
          REPEAT o (resolve_tac [@{thm allI}, @{thm impI}]),
210
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diff changeset
   898
          prove_intro_tac i preds rules ctxt]*}
165
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diff changeset
   899
190
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diff changeset
   900
text {*
215
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diff changeset
   901
  Lines 2 to 4 in this tactic correspond to the function @{ML expand_tac}. 
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diff changeset
   902
  Some testcases for this tactic are:
190
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diff changeset
   903
*}
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diff changeset
   904
211
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diff changeset
   905
lemma even0_intro:
224
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diff changeset
   906
shows "even 0"
211
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diff changeset
   907
by (tactic {* intro_tac eo_defs eo_rules eo_preds 0 @{context} *})
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diff changeset
   908
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diff changeset
   909
lemma evenS_intro:
224
647cab4a72c2 finished the heavy duty stuff for the inductive package
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diff changeset
   910
shows "\<And>m. odd m \<Longrightarrow> even (Suc m)"
211
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diff changeset
   911
by (tactic {* intro_tac eo_defs eo_rules eo_preds 1 @{context} *})
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diff changeset
   912
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diff changeset
   913
lemma fresh_App:
224
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parents: 219
diff changeset
   914
shows "\<And>a t s. \<lbrakk>fresh a t; fresh a s\<rbrakk> \<Longrightarrow> fresh a (App t s)"
211
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diff changeset
   915
by (tactic {* 
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diff changeset
   916
  intro_tac @{thms fresh_def} fresh_rules [fresh_pred] 1 @{context} *})
190
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diff changeset
   917
211
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diff changeset
   918
text {*
215
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diff changeset
   919
  The second function sets up in Line 4 the goals to be proved (this is easy
212
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diff changeset
   920
  for the introduction rules since they are exactly the rules 
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diff changeset
   921
  given by the user) and iterates @{ML intro_tac} over all 
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diff changeset
   922
  introduction rules.
211
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diff changeset
   923
*}
173
d820cb5873ea used latex package boxedminipage
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diff changeset
   924
211
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diff changeset
   925
ML %linenosgray{*fun intros rules preds defs lthy = 
165
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diff changeset
   926
let
211
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diff changeset
   927
  fun intros_aux (i, goal) =
165
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diff changeset
   928
    Goal.prove lthy [] [] goal
211
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   929
      (fn {context, ...} => intro_tac defs rules preds i context)
165
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diff changeset
   930
in
211
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   931
  map_index intros_aux rules
164
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   932
end*}
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   933
212
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   934
text {*
256
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   935
  The iteration is done with the function @{ML [index] map_index} since we
212
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   936
  need the introduction rule together with its number (counted from
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   937
  @{text 0}). This completes the code for the functions deriving the
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   938
  reasoning infrastructure. It remains to implement some administrative
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   939
  code that strings everything together.
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   940
*}
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   941
215
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   942
subsection {* Administrative Functions *}
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   943
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   944
text {* 
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   945
  We have produced various theorems (definitions, induction principles and
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   946
  introduction rules), but apart from the definitions, we have not yet 
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   947
  registered them with the theorem database. This is what the functions 
256
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   948
  @{ML [index] note in LocalTheory} does. 
215
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diff changeset
   949
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   950
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   951
  For convenience, we use the following 
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   952
  three wrappers this function:
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   953
*}
211
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   954
215
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   955
ML{*fun reg_many qname ((name, attrs), thms) = 
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   956
  LocalTheory.note Thm.theoremK 
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   957
    ((Binding.qualify false qname name, attrs), thms) 
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   958
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   959
fun reg_single1 qname ((name, attrs), thm) = 
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   960
  reg_many qname ((name, attrs), [thm]) 
176
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   961
215
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   962
fun reg_single2 name attrs (qname, thm) = 
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   963
  reg_many (Binding.name_of qname) ((name, attrs), [thm]) *}
211
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   964
215
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   965
text {*
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   966
  The function that ``holds everything together'' is @{text "add_inductive"}. 
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   967
  Its arguments are the specification of the predicates @{text "pred_specs"} 
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diff changeset
   968
  and the introduction rules @{text "rule_spec"}.   
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   969
*}
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   970
186
371e4375c994 made the Ackermann function example safer and included suggestions from MW
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   971
ML %linenosgray{*fun add_inductive pred_specs rule_specs lthy =
165
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   972
let
237
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   973
  val mxs = map snd pred_specs
165
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   974
  val pred_specs' = map fst pred_specs
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   975
  val prednames = map fst pred_specs'
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   976
  val preds = map (fn (p, ty) => Free (Binding.name_of p, ty)) pred_specs'
215
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   977
  val tyss = map (binder_types o fastype_of) preds   
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diff changeset
   978
215
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diff changeset
   979
  val (namesattrs, rules) = split_list rule_specs    
165
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diff changeset
   980
237
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diff changeset
   981
  val (defs, lthy') = defns rules preds prednames mxs tyss lthy      
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diff changeset
   982
  val ind_prins = inds rules defs preds tyss lthy' 	
210
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diff changeset
   983
  val intro_rules = intros rules preds defs lthy'
91
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diff changeset
   984
165
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diff changeset
   985
  val mut_name = space_implode "_" (map Binding.name_of prednames)
215
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   986
  val case_names = map (Binding.name_of o fst) namesattrs
165
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diff changeset
   987
in
215
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diff changeset
   988
  lthy' |> reg_many mut_name ((@{binding "intros"}, []), intro_rules) 
237
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diff changeset
   989
        ||>> reg_many mut_name ((@{binding "inducts"}, []), ind_prins)
215
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diff changeset
   990
        ||>> fold_map (reg_single1 mut_name) (namesattrs ~~ intro_rules)  
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diff changeset
   991
        ||>> fold_map (reg_single2 @{binding "induct"} 
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diff changeset
   992
              [Attrib.internal (K (RuleCases.case_names case_names)),
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   993
               Attrib.internal (K (RuleCases.consumes 1)),
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diff changeset
   994
               Attrib.internal (K (Induct.induct_pred ""))]) 
237
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diff changeset
   995
             (prednames ~~ ind_prins) 
215
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diff changeset
   996
        |> snd
165
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diff changeset
   997
end*}
91
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diff changeset
   998
215
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diff changeset
   999
text {*
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  1000
  In Line 3 the function extracts the syntax annotations from the predicates. 
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  1001
  Lines 4 to 6 extract the names of the predicates and generate
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diff changeset
  1002
  the variables terms (with types) corresponding to the predicates. 
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  1003
  Line 7 produces the argument types for each predicate. 
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diff changeset
  1004
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  1005
  Line 9 extracts the introduction rules from the specifications
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diff changeset
  1006
  and stores also in @{text namesattrs} the names and attributes the
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diff changeset
  1007
  user may have attached to these rules.
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diff changeset
  1008
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diff changeset
  1009
  Line 11 produces the definitions and also registers the definitions
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diff changeset
  1010
  in the local theory @{text "lthy'"}. The next two lines produce
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diff changeset
  1011
  the induction principles and the introduction rules (all of them
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diff changeset
  1012
  as theorems). Both need the local theory @{text lthy'} in which
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diff changeset
  1013
  the definitions have been registered.
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diff changeset
  1014
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diff changeset
  1015
  Lines 15 produces the name that is used to register the introduction
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diff changeset
  1016
  rules. It is costum to collect all introduction rules under 
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diff changeset
  1017
  @{text "string.intros"}, whereby @{text "string"} stands for the 
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diff changeset
  1018
  @{text [quotes] "_"}-separated list of predicate names (for example
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diff changeset
  1019
  @{text "even_odd"}. Also by custom, the case names in intuction 
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diff changeset
  1020
  proofs correspond to the names of the introduction rules. These
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diff changeset
  1021
  are generated in Line 16.
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  1022
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diff changeset
  1023
  Lines 18 and 19 now add to @{text "lthy'"} all the introduction rules 
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diff changeset
  1024
  und induction principles under the name @{text "mut_name.intros"} and
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diff changeset
  1025
  @{text "mut_name.inducts"}, respectively (see previous paragraph).
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diff changeset
  1026
  
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diff changeset
  1027
  Line 20 add further every introduction rule under its own name
215
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diff changeset
  1028
  (given by the user).\footnote{FIXME: what happens if the user did not give
237
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diff changeset
  1029
  any name.} Line 21 registers the induction principles. For this we have
256
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diff changeset
  1030
  to use some specific attributes. The first @{ML [index] case_names in RuleCases} 
215
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diff changeset
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  corresponds to the case names that are used by Isar to reference the proof
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diff changeset
  1032
  obligations in the induction. The second @{ML "consumes 1" in RuleCases}
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diff changeset
  1033
  indicates that the first premise of the induction principle (namely
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diff changeset
  1034
  the predicate over which the induction proceeds) is eliminated. 
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diff changeset
  1035
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diff changeset
  1036
  This completes all the code and fits in with the ``front end'' described
237
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diff changeset
  1037
  in Section~\ref{sec:interface}.\footnote{FIXME: Describe @{ML Induct.induct_pred}. 
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diff changeset
  1038
  Why the mut-name? 
224
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diff changeset
  1039
  What does @{ML Binding.qualify} do?}
124
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diff changeset
  1040
*}
219
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diff changeset
  1041
(*<*)end(*>*)