ProgTutorial/Package/Ind_Prelims.thy
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permutation example uses now recent infrastructure
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theory Ind_Prelims
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imports Main LaTeXsugar "../Base" 
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begin
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section{* Preliminaries *}
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text {*
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  The user will just give a specification of inductive predicate(s) and
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  expects from the package to produce a convenient reasoning
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  infrastructure. This infrastructure needs to be derived from the definition
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  that correspond to the specified predicate(s). Before we start with
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  explaining all parts of the package, let us first give some examples 
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  showing how to define inductive predicates and then also how
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  to generate a reasoning infrastructure for them. From the examples 
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  we will figure out a general method for
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  defining inductive predicates.  The aim in this section is \emph{not} to
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  write proofs that are as beautiful as possible, but as close as possible to
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  the ML-code we will develop in later sections.
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  We first consider the transitive closure of a relation @{text R}. The 
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  ``pencil-and-paper'' specification for the transitive closure is:
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  \begin{center}\small
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  @{prop[mode=Axiom] "trcl R x x"} \hspace{5mm}
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  @{prop[mode=Rule] "R x y \<Longrightarrow> trcl R y z \<Longrightarrow> trcl R x z"}
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  \end{center}
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  The package has to make an appropriate definition for @{term "trcl"}. 
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  Since an inductively
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  defined predicate is the least predicate closed under a collection of
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  introduction rules, the predicate @{text "trcl R x y"} can be defined so
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  that it holds if and only if @{text "P x y"} holds for every predicate
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  @{text P} closed under the rules above. This gives rise to the definition
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*}
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definition "trcl \<equiv> 
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     \<lambda>R x y. \<forall>P. (\<forall>x. P x x) 
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                  \<longrightarrow> (\<forall>x y z. R x y \<longrightarrow> P y z \<longrightarrow> P x z) \<longrightarrow> P x y"
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text {*
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  We have to use the object implication @{text "\<longrightarrow>"} and object quantification
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  @{text "\<forall>"} for stating this definition (there is no other way for
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  definitions in HOL). However, the introduction rules and induction
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  principles associated with the transitive closure should use the meta-connectives, 
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  since they simplify the reasoning for the user.
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  With this definition, the proof of the induction principle for @{term trcl}
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  is almost immediate. It suffices to convert all the meta-level
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  connectives in the lemma to object-level connectives using the
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  proof method @{text atomize} (Line 4 below), expand the definition of @{term trcl}
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  (Line 5 and 6), eliminate the universal quantifier contained in it (Line~7),
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  and then solve the goal by @{text assumption} (Line 8).
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*}
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lemma %linenos trcl_induct:
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assumes "trcl R x y"
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shows "(\<And>x. P x x) \<Longrightarrow> (\<And>x y z. R x y \<Longrightarrow> P y z \<Longrightarrow> P x z) \<Longrightarrow> P x y"
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apply(atomize (full))
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apply(cut_tac prems)
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apply(unfold trcl_def)
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apply(drule spec[where x=P])
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apply(assumption)
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done
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text {*
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  The proofs for the introduction rules are slightly more complicated. 
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  For the first one, we need to prove the following lemma:
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*}
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lemma %linenos trcl_base: 
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shows "trcl R x x"
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apply(unfold trcl_def)
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apply(rule allI impI)+
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apply(drule spec)
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apply(assumption)
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done
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text {*
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  We again unfold first the definition and apply introduction rules 
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  for @{text "\<forall>"} and @{text "\<longrightarrow>"} as often as possible (Lines 3 and 4).
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  We then end up in the goal state:
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*}
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(*<*)lemma "trcl R x x"
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apply (unfold trcl_def)
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apply (rule allI impI)+(*>*)
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txt {* @{subgoals [display]} *}
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(*<*)oops(*>*)
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text {*
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  The two assumptions come from the definition of @{term trcl} and correspond
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  to the introduction rules. Thus, all we have to do is to eliminate the
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  universal quantifier in front of the first assumption (Line 5), and then
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  solve the goal by @{text assumption} (Line 6).
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*}
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text {*
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  Next we have to show that the second introduction rule also follows from the
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  definition.  Since this rule has premises, the proof is a bit more
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  involved. After unfolding the definitions and applying the introduction
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  rules for @{text "\<forall>"} and @{text "\<longrightarrow>"}
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*}
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lemma trcl_step: 
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shows "R x y \<Longrightarrow> trcl R y z \<Longrightarrow> trcl R x z"
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apply (unfold trcl_def)
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apply (rule allI impI)+
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txt {* 
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  we obtain the goal state
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  @{subgoals [display]} 
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  To see better where we are, let us explicitly name the assumptions 
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  by starting a subproof.
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*}
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proof -
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  case (goal1 P)
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  have p1: "R x y" by fact
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  have p2: "\<forall>P. (\<forall>x. P x x) 
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                  \<longrightarrow> (\<forall>x y z. R x y \<longrightarrow> P y z \<longrightarrow> P x z) \<longrightarrow> P y z" by fact
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  have r1: "\<forall>x. P x x" by fact
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  have r2: "\<forall>x y z. R x y \<longrightarrow> P y z \<longrightarrow> P x z" by fact
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  show "P x z"
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txt {*
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  The assumptions @{text "p1"} and @{text "p2"} correspond to the premises of
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  the second introduction rule (unfolded); the assumptions @{text "r1"} and @{text "r2"}
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  come from the definition of @{term trcl}. We apply @{text "r2"} to the goal
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  @{term "P x z"}. In order for this assumption to be applicable as a rule, we
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  have to eliminate the universal quantifier and turn the object-level
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  implications into meta-level ones. This can be accomplished using the @{text
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  rule_format} attribute. So we continue the proof with:
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*}
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127
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    apply (rule r2[rule_format])
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   143
127
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txt {*
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  This gives us two new subgoals
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   146
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  @{subgoals [display]} 
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   148
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  which can be solved using assumptions @{text p1} and @{text p2}. The latter
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  involves a quantifier and implications that have to be eliminated before it
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  can be applied. To avoid potential problems with higher-order unification,
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  we explicitly instantiate the quantifier to @{text "P"} and also match
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  explicitly the implications with @{text "r1"} and @{text "r2"}. This gives
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  the proof:
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*}
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    apply(rule p1)
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    apply(rule p2[THEN spec[where x=P], THEN mp, THEN mp, OF r1, OF r2])
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    done
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qed
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text {*
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  Now we are done. It might be surprising that we are not using the automatic
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  tactics available in Isabelle for proving this lemmas. After all @{text
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  "blast"} would easily dispense of it.
115
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*}
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127
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lemma trcl_step_blast: 
218
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shows "R x y \<Longrightarrow> trcl R y z \<Longrightarrow> trcl R x z"
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apply(unfold trcl_def)
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apply(blast)
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done
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text {*
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  Experience has shown that it is generally a bad idea to rely heavily on
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  @{text blast}, @{text auto} and the like in automated proofs. The reason is
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  that you do not have precise control over them (the user can, for example,
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  declare new intro- or simplification rules that can throw automatic tactics
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  off course) and also it is very hard to debug proofs involving automatic
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  tactics whenever something goes wrong. Therefore if possible, automatic 
218
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  tactics should be avoided or be constrained sufficiently.
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116
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  The method of defining inductive predicates by impredicative quantification
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  also generalises to mutually inductive predicates. The next example defines
219
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  the predicates @{text even} and @{text odd} given by
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219
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  \begin{center}\small
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  @{prop[mode=Axiom] "even (0::nat)"} \hspace{5mm}
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  @{prop[mode=Rule] "odd n \<Longrightarrow> even (Suc n)"} \hspace{5mm}
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  @{prop[mode=Rule] "even n \<Longrightarrow> odd (Suc n)"}
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   191
  \end{center}
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127
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   193
  Since the predicates @{term even} and @{term odd} are mutually inductive, each 
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   194
  corresponding definition must quantify over both predicates (we name them 
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  below @{text "P"} and @{text "Q"}).
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*}
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219
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   198
definition "even \<equiv> 
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  \<lambda>n. \<forall>P Q. P 0 \<longrightarrow> (\<forall>m. Q m \<longrightarrow> P (Suc m)) 
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                 \<longrightarrow> (\<forall>m. P m \<longrightarrow> Q (Suc m)) \<longrightarrow> P n"
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   201
219
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   202
definition "odd \<equiv>
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  \<lambda>n. \<forall>P Q. P 0 \<longrightarrow> (\<forall>m. Q m \<longrightarrow> P (Suc m)) 
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                 \<longrightarrow> (\<forall>m. P m \<longrightarrow> Q (Suc m)) \<longrightarrow> Q n"
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text {*
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  For proving the induction principles, we use exactly the same technique 
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  as in the transitive closure example, namely:
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*}
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lemma even_induct:
218
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assumes "even n"
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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 n"
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apply(atomize (full))
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   215
apply(cut_tac prems)
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apply(unfold even_def)
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apply(drule spec[where x=P])
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   218
apply(drule spec[where x=Q])
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apply(assumption)
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   220
done
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text {*
127
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   223
  The only difference with the proof @{text "trcl_induct"} is that we have to
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   224
  instantiate here two universal quantifiers.  We omit the other induction
218
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   225
  principle that has @{prop "even n"} as premise and @{term "Q n"} as conclusion.  
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  The proofs of the introduction rules are also very similar to the ones in 
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  the @{text "trcl"}-example. We only show the proof of the second introduction 
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   228
  rule.
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*}
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127
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   231
lemma %linenos evenS: 
218
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   232
shows "odd m \<Longrightarrow> even (Suc m)"
115
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   233
apply (unfold odd_def even_def)
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   234
apply (rule allI impI)+
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   235
proof -
165
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   236
  case (goal1 P Q)
127
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   237
  have p1: "\<forall>P Q. P 0 \<longrightarrow> (\<forall>m. Q m \<longrightarrow> P (Suc m)) 
115
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   238
                             \<longrightarrow> (\<forall>m. P m \<longrightarrow> Q (Suc m)) \<longrightarrow> Q m" by fact
127
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   239
  have r1: "P 0" by fact
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diff changeset
   240
  have r2: "\<forall>m. Q m \<longrightarrow> P (Suc m)" by fact
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diff changeset
   241
  have r3: "\<forall>m. P m \<longrightarrow> Q (Suc m)" by fact
115
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diff changeset
   242
  show "P (Suc m)"
127
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   243
    apply(rule r2[rule_format])
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diff changeset
   244
    apply(rule p1[THEN spec[where x=P], THEN spec[where x=Q],
74846cb0fff9 updated and added two tentative recipes
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   245
	           THEN mp, THEN mp, THEN mp, OF r1, OF r2, OF r3])
115
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   246
    done
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   247
qed
88
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   248
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text {*
219
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   250
  The interesting lines are 7 to 15. The assumptions fall into two categories:
218
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   251
  @{text p1} corresponds to the premise of the introduction rule; @{text "r1"}
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   252
  to @{text "r3"} come from the definition of @{text "even"}.
127
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   253
  In Line 13, we apply the assumption @{text "r2"} (since we prove the second
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diff changeset
   254
  introduction rule). In Lines 14 and 15 we apply assumption @{text "p1"} (if
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   255
  the second introduction rule had more premises we have to do that for all
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diff changeset
   256
  of them). In order for this assumption to be applicable, the quantifiers
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   257
  need to be instantiated and then also the implications need to be resolved
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diff changeset
   258
  with the other rules.
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diff changeset
   259
219
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diff changeset
   260
  Next we define the accessible part of a relation @{text R} given by
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diff changeset
   261
  the single rule:
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   262
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   263
  \begin{center}\small
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diff changeset
   264
  \mbox{\inferrule{@{term "\<And>y. R y x \<Longrightarrow> accpart R y"}}{@{term "accpart R x"}}}
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   265
  \end{center}
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   266
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   267
  The definition of @{text "accpart"} is:
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   268
*}
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   269
127
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   270
definition "accpart \<equiv> \<lambda>R x. \<forall>P. (\<forall>x. (\<forall>y. R y x \<longrightarrow> P y) \<longrightarrow> P x) \<longrightarrow> P x"
32
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text {*
218
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   273
  The proof of the induction principle is again straightforward and omitted.
7ff7325e3b4e started to adapt the rest of chapter 5 to the simplified version without parameters (they will be described in the extension section)
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   274
  Proving the introduction rule is a little more complicated, because the 
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   275
  quantifier and the implication in the premise. The proof is as follows.
115
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   276
*}
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diff changeset
   277
127
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   278
lemma %linenos accpartI: 
218
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diff changeset
   279
shows "(\<And>y. R y x \<Longrightarrow> accpart R y) \<Longrightarrow> accpart R x"
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apply (unfold accpart_def)
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apply (rule allI impI)+
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proof -
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  case (goal1 P)
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  have p1: "\<And>y. R y x \<Longrightarrow> 
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                   (\<forall>P. (\<forall>x. (\<forall>y. R y x \<longrightarrow> P y) \<longrightarrow> P x) \<longrightarrow> P y)" by fact
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  have r1: "\<forall>x. (\<forall>y. R y x \<longrightarrow> P y) \<longrightarrow> P x" by fact
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  show "P x"
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    apply(rule r1[rule_format])
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    proof -
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      case (goal1 y)
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      have r1_prem: "R y x" by fact
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      show "P y"
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	apply(rule p1[OF r1_prem, THEN spec[where x=P], THEN mp, OF r1])
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      done
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  qed
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qed
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text {*
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  As you can see, there are now two subproofs. The assumptions fall again into
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  two categories (Lines 7 to 9). In Line 11, applying the assumption @{text
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  "r1"} generates a goal state with the new local assumption @{term "R y x"},
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  named @{text "r1_prem"} in the second subproof (Line 14). This local assumption is
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  used to solve the goal @{term "P y"} with the help of assumption @{text
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  "p1"}.
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  \begin{exercise}
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  Give the definition for the freshness predicate for lambda-terms. The rules
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  for this predicate are:
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  \begin{center}\small
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  @{prop[mode=Rule] "a\<noteq>b \<Longrightarrow> fresh a (Var b)"}\hspace{5mm}
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  @{prop[mode=Rule] "\<lbrakk>fresh a t; fresh a s\<rbrakk> \<Longrightarrow> fresh a (App t s)"}\\[2mm]
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  @{prop[mode=Axiom] "fresh a (Lam a t)"}\hspace{5mm}
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  @{prop[mode=Rule] "\<lbrakk>a\<noteq>b; fresh a t\<rbrakk> \<Longrightarrow> fresh a (Lam b t)"}
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  \end{center}
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  From the definition derive the induction principle and the introduction 
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  rules. 
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  \end{exercise}
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  The point of all these examples is to get a feeling what the automatic
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  proofs should do in order to solve all inductive definitions we throw at
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  them.  This is usually the first step in writing a package. We next explain
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  the parsing and typing part of the package.
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*}
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(*<*)end(*>*)