author | Christian Urban <urbanc@in.tum.de> |
Mon, 16 Mar 2009 00:12:32 +0100 | |
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theory Tactical |
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imports Base FirstSteps |
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begin |
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chapter {* Tactical Reasoning\label{chp:tactical} *} |
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text {* |
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The main reason for descending to the ML-level of Isabelle is to be able to |
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implement automatic proof procedures. Such proof procedures usually lessen |
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considerably the burden of manual reasoning, for example, when introducing |
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new definitions. These proof procedures are centred around refining a goal |
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state using tactics. This is similar to the \isacommand{apply}-style |
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reasoning at the user-level, where goals are modified in a sequence of proof |
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steps until all of them are solved. However, there are also more structured |
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operations available on the ML-level that help with the handling of |
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variables and assumptions. |
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*} |
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section {* Basics of Reasoning with Tactics*} |
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text {* |
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To see how tactics work, let us first transcribe a simple \isacommand{apply}-style proof |
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into ML. Suppose the following proof. |
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*} |
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lemma disj_swap: "P \<or> Q \<Longrightarrow> Q \<or> P" |
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apply(erule disjE) |
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apply(rule disjI2) |
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apply(assumption) |
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apply(rule disjI1) |
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apply(assumption) |
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done |
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text {* |
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This proof translates to the following ML-code. |
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@{ML_response_fake [display,gray] |
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"let |
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val ctxt = @{context} |
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val goal = @{prop \"P \<or> Q \<Longrightarrow> Q \<or> P\"} |
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in |
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Goal.prove ctxt [\"P\", \"Q\"] [] goal |
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(fn _ => |
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etac @{thm disjE} 1 |
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THEN rtac @{thm disjI2} 1 |
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THEN atac 1 |
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THEN rtac @{thm disjI1} 1 |
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THEN atac 1) |
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end" "?P \<or> ?Q \<Longrightarrow> ?Q \<or> ?P"} |
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To start the proof, the function @{ML "Goal.prove"}~@{text "ctxt xs As C |
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tac"} sets up a goal state for proving the goal @{text C} |
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(that is @{prop "P \<or> Q \<Longrightarrow> Q \<or> P"} in the proof at hand) under the |
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assumptions @{text As} (happens to be empty) with the variables |
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@{text xs} that will be generalised once the goal is proved (in our case |
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@{text P} and @{text Q}). The @{text "tac"} is the tactic that proves the goal; |
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it can make use of the local assumptions (there are none in this example). |
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The functions @{ML etac}, @{ML rtac} and @{ML atac} in the code above correspond to |
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@{text erule}, @{text rule} and @{text assumption}, respectively. |
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The operator @{ML THEN} strings the tactics together. |
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\begin{readmore} |
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To learn more about the function @{ML Goal.prove} see \isccite{sec:results} |
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and the file @{ML_file "Pure/goal.ML"}. See @{ML_file |
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"Pure/tactic.ML"} and @{ML_file "Pure/tctical.ML"} for the code of basic |
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tactics and tactic combinators; see also Chapters 3 and 4 in the old |
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Isabelle Reference Manual, and Chapter 3 in the Isabelle/Isar Implementation Manual. |
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\end{readmore} |
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Note that in the code above we use antiquotations for referencing the theorems. Many theorems |
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also have ML-bindings with the same name. Therefore, we could also just have |
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written @{ML "etac disjE 1"}, or in case where there are no ML-binding obtain |
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the theorem dynamically using the function @{ML thm}; for example |
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\mbox{@{ML "etac (thm \"disjE\") 1"}}. Both ways however are considered bad style! |
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The reason |
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is that the binding for @{ML disjE} can be re-assigned by the user and thus |
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one does not have complete control over which theorem is actually |
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applied. This problem is nicely prevented by using antiquotations, because |
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then the theorems are fixed statically at compile-time. |
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During the development of automatic proof procedures, you will often find it |
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necessary to test a tactic on examples. This can be conveniently |
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done with the command \isacommand{apply}@{text "(tactic \<verbopen> \<dots> \<verbclose>)"}. |
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Consider the following sequence of tactics |
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*} |
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ML{*val foo_tac = |
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(etac @{thm disjE} 1 |
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THEN rtac @{thm disjI2} 1 |
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THEN atac 1 |
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THEN rtac @{thm disjI1} 1 |
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THEN atac 1)*} |
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text {* and the Isabelle proof: *} |
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lemma "P \<or> Q \<Longrightarrow> Q \<or> P" |
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apply(tactic {* foo_tac *}) |
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done |
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text {* |
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By using @{text "tactic \<verbopen> \<dots> \<verbclose>"} you can call from the |
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user-level of Isabelle the tactic @{ML foo_tac} or |
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any other function that returns a tactic. |
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The tactic @{ML foo_tac} is just a sequence of simple tactics stringed |
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together by @{ML THEN}. As can be seen, each simple tactic in @{ML foo_tac} |
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has a hard-coded number that stands for the subgoal analysed by the |
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tactic (@{text "1"} stands for the first, or top-most, subgoal). This hard-coding |
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of goals is sometimes wanted, but usually it is not. To avoid the explicit numbering, |
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you can write\label{tac:footacprime} |
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*} |
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ML{*val foo_tac' = |
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(etac @{thm disjE} |
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THEN' rtac @{thm disjI2} |
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THEN' atac |
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THEN' rtac @{thm disjI1} |
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THEN' atac)*} |
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text {* |
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and then give the number for the subgoal explicitly when the tactic is |
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called. So in the next proof you can first discharge the second subgoal, and |
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subsequently the first. |
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*} |
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lemma "P1 \<or> Q1 \<Longrightarrow> Q1 \<or> P1" |
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and "P2 \<or> Q2 \<Longrightarrow> Q2 \<or> P2" |
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apply(tactic {* foo_tac' 2 *}) |
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apply(tactic {* foo_tac' 1 *}) |
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done |
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text {* |
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This kind of addressing is more difficult to achieve when the goal is |
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hard-coded inside the tactic. For most operators that combine tactics |
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(@{ML THEN} is only one such operator) a ``primed'' version exists. |
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The tactics @{ML foo_tac} and @{ML foo_tac'} are very specific for |
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analysing goals being only of the form @{prop "P \<or> Q \<Longrightarrow> Q \<or> P"}. If the goal is not |
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of this form, then they return the error message: |
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\begin{isabelle} |
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@{text "*** empty result sequence -- proof command failed"}\\ |
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@{text "*** At command \"apply\"."} |
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\end{isabelle} |
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This means the tactics failed. The reason for this error message is that tactics |
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are functions mapping a goal state to a (lazy) sequence of successor states. |
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Hence the type of a tactic is: |
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*} |
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ML{*type tactic = thm -> thm Seq.seq*} |
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text {* |
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By convention, if a tactic fails, then it should return the empty sequence. |
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Therefore, if you write your own tactics, they should not raise exceptions |
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willy-nilly; only in very grave failure situations should a tactic raise the |
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exception @{text THM}. |
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The simplest tactics are @{ML no_tac} and @{ML all_tac}. The first returns |
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the empty sequence and is defined as |
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*} |
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ML{*fun no_tac thm = Seq.empty*} |
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text {* |
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which means @{ML no_tac} always fails. The second returns the given theorem wrapped |
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in a single member sequence; it is defined as |
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*} |
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ML{*fun all_tac thm = Seq.single thm*} |
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text {* |
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which means @{ML all_tac} always succeeds, but also does not make any progress |
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with the proof. |
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The lazy list of possible successor goal states shows through at the user-level |
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of Isabelle when using the command \isacommand{back}. For instance in the |
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following proof there are two possibilities for how to apply |
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@{ML foo_tac'}: either using the first assumption or the second. |
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*} |
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lemma "\<lbrakk>P \<or> Q; P \<or> Q\<rbrakk> \<Longrightarrow> Q \<or> P" |
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apply(tactic {* foo_tac' 1 *}) |
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back |
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done |
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text {* |
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By using \isacommand{back}, we construct the proof that uses the |
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second assumption. While in the proof above, it does not really matter which |
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assumption is used, in more interesting cases provability might depend |
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on exploring different possibilities. |
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\begin{readmore} |
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See @{ML_file "Pure/General/seq.ML"} for the implementation of lazy |
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sequences. In day-to-day Isabelle programming, however, one rarely |
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constructs sequences explicitly, but uses the predefined tactics and |
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tactic combinators instead. |
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\end{readmore} |
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It might be surprising that tactics, which transform |
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one goal state to the next, are functions from theorems to theorem |
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(sequences). The surprise resolves by knowing that every |
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goal state is indeed a theorem. To shed more light on this, |
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let us modify the code of @{ML all_tac} to obtain the following |
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tactic |
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*} |
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ML{*fun my_print_tac ctxt thm = |
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let |
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val _ = warning (str_of_thm ctxt thm) |
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in |
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Seq.single thm |
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end*} |
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text_raw {* |
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\begin{figure}[p] |
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\begin{boxedminipage}{\textwidth} |
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\begin{isabelle} |
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*} |
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lemma shows "\<lbrakk>A; B\<rbrakk> \<Longrightarrow> A \<and> B" |
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apply(tactic {* my_print_tac @{context} *}) |
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|
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txt{* \begin{minipage}{\textwidth} |
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@{subgoals [display]} |
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\end{minipage}\medskip |
228 |
||
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\begin{minipage}{\textwidth} |
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\small\colorbox{gray!20}{ |
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\begin{tabular}{@ {}l@ {}} |
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internal goal state:\\ |
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@{text "(\<lbrakk>A; B\<rbrakk> \<Longrightarrow> A \<and> B) \<Longrightarrow> (\<lbrakk>A; B\<rbrakk> \<Longrightarrow> A \<and> B)"} |
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\end{tabular}} |
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\end{minipage}\medskip |
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*} |
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||
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apply(rule conjI) |
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apply(tactic {* my_print_tac @{context} *}) |
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txt{* \begin{minipage}{\textwidth} |
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@{subgoals [display]} |
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\end{minipage}\medskip |
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||
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\begin{minipage}{\textwidth} |
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\small\colorbox{gray!20}{ |
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\begin{tabular}{@ {}l@ {}} |
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internal goal state:\\ |
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@{text "(\<lbrakk>A; B\<rbrakk> \<Longrightarrow> A) \<Longrightarrow> (\<lbrakk>A; B\<rbrakk> \<Longrightarrow> B) \<Longrightarrow> (\<lbrakk>A; B\<rbrakk> \<Longrightarrow> A \<and> B)"} |
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\end{tabular}} |
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\end{minipage}\medskip |
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*} |
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apply(assumption) |
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apply(tactic {* my_print_tac @{context} *}) |
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|
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txt{* \begin{minipage}{\textwidth} |
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@{subgoals [display]} |
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\end{minipage}\medskip |
260 |
||
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\begin{minipage}{\textwidth} |
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\small\colorbox{gray!20}{ |
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\begin{tabular}{@ {}l@ {}} |
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internal goal state:\\ |
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@{text "(\<lbrakk>A; B\<rbrakk> \<Longrightarrow> B) \<Longrightarrow> (\<lbrakk>A; B\<rbrakk> \<Longrightarrow> A \<and> B)"} |
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\end{tabular}} |
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\end{minipage}\medskip |
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*} |
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apply(assumption) |
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apply(tactic {* my_print_tac @{context} *}) |
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txt{* \begin{minipage}{\textwidth} |
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@{subgoals [display]} |
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\end{minipage}\medskip |
276 |
||
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\begin{minipage}{\textwidth} |
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\small\colorbox{gray!20}{ |
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\begin{tabular}{@ {}l@ {}} |
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internal goal state:\\ |
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@{text "\<lbrakk>A; B\<rbrakk> \<Longrightarrow> A \<and> B"} |
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\end{tabular}} |
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\end{minipage}\medskip |
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*} |
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done |
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text_raw {* |
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\end{isabelle} |
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\end{boxedminipage} |
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\caption{The figure shows a proof where each intermediate goal state is |
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printed by the Isabelle system and by @{ML my_print_tac}. The latter shows |
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the goal state as represented internally (highlighted boxes). This |
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tactic shows that every goal state in Isabelle is represented by a theorem: |
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when you start the proof of \mbox{@{text "\<lbrakk>A; B\<rbrakk> \<Longrightarrow> A \<and> B"}} the theorem is |
294 |
@{text "(\<lbrakk>A; B\<rbrakk> \<Longrightarrow> A \<and> B) \<Longrightarrow> (\<lbrakk>A; B\<rbrakk> \<Longrightarrow> A \<and> B)"}; when you finish the proof the |
|
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theorem is @{text "\<lbrakk>A; B\<rbrakk> \<Longrightarrow> A \<and> B"}.\label{fig:goalstates}} |
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\end{figure} |
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*} |
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text {* |
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which prints out the given theorem (using the string-function defined in |
302 |
Section~\ref{sec:printing}) and then behaves like @{ML all_tac}. With this |
|
303 |
tactic we are in the position to inspect every goal state in a |
|
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proof. Consider now the proof in Figure~\ref{fig:goalstates}: as can be seen, |
|
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internally every goal state is an implication of the form |
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@{text[display] "A\<^isub>1 \<Longrightarrow> \<dots> \<Longrightarrow> A\<^isub>n \<Longrightarrow> (C)"} |
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where @{term C} is the goal to be proved and the @{term "A\<^isub>i"} are |
310 |
the subgoals. So after setting up the lemma, the goal state is always of the |
|
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form @{text "C \<Longrightarrow> (C)"}; when the proof is finished we are left with @{text |
|
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"(C)"}. Since the goal @{term C} can potentially be an implication, there is |
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a ``protector'' wrapped around it (in from of an outermost constant @{text |
|
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"Const (\"prop\", bool \<Rightarrow> bool)"}; however this constant |
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is invisible in the figure). This wrapper prevents that premises of @{text C} are |
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mis-interpreted as open subgoals. While tactics can operate on the subgoals |
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(the @{text "A\<^isub>i"} above), they are expected to leave the conclusion |
|
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@{term C} intact, with the exception of possibly instantiating schematic |
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variables. If you use the predefined tactics, which we describe in the next |
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section, this will always be the case. |
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\begin{readmore} |
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For more information about the internals of goals see \isccite{sec:tactical-goals}. |
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\end{readmore} |
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*} |
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section {* Simple Tactics *} |
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text {* |
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Let us start with explaining the simple tactic @{ML print_tac}, which is quite useful |
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for low-level debugging of tactics. It just prints out a message and the current |
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goal state. Unlike @{ML my_print_tac} shown earlier, it prints the goal state |
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as the user would see it. For example, processing the proof |
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*} |
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|
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lemma shows "False \<Longrightarrow> True" |
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apply(tactic {* print_tac "foo message" *}) |
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txt{*gives:\medskip |
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||
341 |
\begin{minipage}{\textwidth}\small |
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@{text "foo message"}\\[3mm] |
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@{prop "False \<Longrightarrow> True"}\\ |
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@{text " 1. False \<Longrightarrow> True"}\\ |
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\end{minipage} |
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*} |
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(*<*)oops(*>*) |
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text {* |
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Another simple tactic is the function @{ML atac}, which, as shown in the previous |
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section, corresponds to the assumption command. |
99 | 352 |
*} |
353 |
||
354 |
lemma shows "P \<Longrightarrow> P" |
|
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apply(tactic {* atac 1 *}) |
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txt{*\begin{minipage}{\textwidth} |
357 |
@{subgoals [display]} |
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358 |
\end{minipage}*} |
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(*<*)oops(*>*) |
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text {* |
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Similarly, @{ML rtac}, @{ML dtac}, @{ML etac} and @{ML ftac} correspond |
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to @{text rule}, @{text drule}, @{text erule} and @{text frule}, |
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respectively. Each of them takes a theorem as argument and attempts to |
365 |
apply it to a goal. Below are three self-explanatory examples. |
|
99 | 366 |
*} |
367 |
||
368 |
lemma shows "P \<and> Q" |
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apply(tactic {* rtac @{thm conjI} 1 *}) |
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txt{*\begin{minipage}{\textwidth} |
371 |
@{subgoals [display]} |
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372 |
\end{minipage}*} |
|
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(*<*)oops(*>*) |
374 |
||
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lemma shows "P \<and> Q \<Longrightarrow> False" |
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apply(tactic {* etac @{thm conjE} 1 *}) |
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txt{*\begin{minipage}{\textwidth} |
378 |
@{subgoals [display]} |
|
379 |
\end{minipage}*} |
|
93 | 380 |
(*<*)oops(*>*) |
381 |
||
382 |
lemma shows "False \<and> True \<Longrightarrow> False" |
|
383 |
apply(tactic {* dtac @{thm conjunct2} 1 *}) |
|
104 | 384 |
txt{*\begin{minipage}{\textwidth} |
385 |
@{subgoals [display]} |
|
386 |
\end{minipage}*} |
|
93 | 387 |
(*<*)oops(*>*) |
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||
389 |
text {* |
|
109 | 390 |
Note the number in each tactic call. Also as mentioned in the previous section, most |
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basic tactics take such a number as argument: this argument addresses the subgoal |
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the tacics are analysing. In the proof below, we first split up the conjunction in |
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the second subgoal by focusing on this subgoal first. |
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*} |
395 |
||
396 |
lemma shows "Foo" and "P \<and> Q" |
|
397 |
apply(tactic {* rtac @{thm conjI} 2 *}) |
|
104 | 398 |
txt {*\begin{minipage}{\textwidth} |
399 |
@{subgoals [display]} |
|
400 |
\end{minipage}*} |
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99 | 401 |
(*<*)oops(*>*) |
402 |
||
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text {* |
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The function @{ML resolve_tac} is similar to @{ML rtac}, except that it |
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expects a list of theorems as arguments. From this list it will apply the |
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first applicable theorem (later theorems that are also applicable can be |
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explored via the lazy sequences mechanism). Given the code |
93 | 408 |
*} |
409 |
||
99 | 410 |
ML{*val resolve_tac_xmp = resolve_tac [@{thm impI}, @{thm conjI}]*} |
411 |
||
412 |
text {* |
|
413 |
an example for @{ML resolve_tac} is the following proof where first an outermost |
|
414 |
implication is analysed and then an outermost conjunction. |
|
415 |
*} |
|
416 |
||
417 |
lemma shows "C \<longrightarrow> (A \<and> B)" and "(A \<longrightarrow> B) \<and> C" |
|
418 |
apply(tactic {* resolve_tac_xmp 1 *}) |
|
419 |
apply(tactic {* resolve_tac_xmp 2 *}) |
|
104 | 420 |
txt{*\begin{minipage}{\textwidth} |
421 |
@{subgoals [display]} |
|
422 |
\end{minipage}*} |
|
99 | 423 |
(*<*)oops(*>*) |
424 |
||
425 |
text {* |
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Similarl versions taking a list of theorems exist for the tactics |
109 | 427 |
@{ML dtac} (@{ML dresolve_tac}), @{ML etac} (@{ML eresolve_tac}) and so on. |
428 |
||
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429 |
|
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430 |
Another simple tactic is @{ML cut_facts_tac}. It inserts a list of theorems |
109 | 431 |
into the assumptions of the current goal state. For example |
107
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432 |
*} |
99 | 433 |
|
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434 |
lemma shows "True \<noteq> False" |
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435 |
apply(tactic {* cut_facts_tac [@{thm True_def}, @{thm False_def}] 1 *}) |
109 | 436 |
txt{*produces the goal state\medskip |
437 |
||
438 |
\begin{minipage}{\textwidth} |
|
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439 |
@{subgoals [display]} |
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440 |
\end{minipage}*} |
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441 |
(*<*)oops(*>*) |
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442 |
|
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443 |
text {* |
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444 |
Since rules are applied using higher-order unification, an automatic proof |
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445 |
procedure might become too fragile, if it just applies inference rules as |
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446 |
shown above. The reason is that a number of rules introduce meta-variables |
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447 |
into the goal state. Consider for example the proof |
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448 |
*} |
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449 |
|
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450 |
lemma shows "\<forall>x\<in>A. P x \<Longrightarrow> Q x" |
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apply(tactic {* dtac @{thm bspec} 1 *}) |
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452 |
txt{*\begin{minipage}{\textwidth} |
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453 |
@{subgoals [display]} |
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454 |
\end{minipage}*} |
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455 |
(*<*)oops(*>*) |
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456 |
|
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457 |
text {* |
149 | 458 |
where the application of rule @{text bspec} generates two subgoals involving the |
109 | 459 |
meta-variable @{text "?x"}. Now, if you are not careful, tactics |
108
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460 |
applied to the first subgoal might instantiate this meta-variable in such a |
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461 |
way that the second subgoal becomes unprovable. If it is clear what the @{text "?x"} |
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462 |
should be, then this situation can be avoided by introducing a more |
109 | 463 |
constraint version of the @{text bspec}-rule. Such constraints can be given by |
464 |
pre-instantiating theorems with other theorems. One function to do this is |
|
465 |
@{ML RS} |
|
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466 |
|
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467 |
@{ML_response_fake [display,gray] |
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468 |
"@{thm disjI1} RS @{thm conjI}" "\<lbrakk>?P1; ?Q\<rbrakk> \<Longrightarrow> (?P1 \<or> ?Q1) \<and> ?Q"} |
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469 |
|
109 | 470 |
which in the example instantiates the first premise of the @{text conjI}-rule |
471 |
with the rule @{text disjI1}. If the instantiation is impossible, as in the |
|
472 |
case of |
|
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473 |
|
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474 |
@{ML_response_fake_both [display,gray] |
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475 |
"@{thm conjI} RS @{thm mp}" |
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476 |
"*** Exception- THM (\"RSN: no unifiers\", 1, |
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477 |
[\"\<lbrakk>?P; ?Q\<rbrakk> \<Longrightarrow> ?P \<and> ?Q\", \"\<lbrakk>?P \<longrightarrow> ?Q; ?P\<rbrakk> \<Longrightarrow> ?Q\"]) raised"} |
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478 |
|
109 | 479 |
then the function raises an exception. The function @{ML RSN} is similar to @{ML RS}, but |
480 |
takes an additional number as argument that makes explicit which premise |
|
107
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481 |
should be instantiated. |
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482 |
|
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483 |
To improve readability of the theorems we produce below, we shall use the |
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484 |
function @{ML no_vars} from Section~\ref{sec:printing}, which transforms |
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485 |
schematic variables into free ones. Using this function for the first @{ML |
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486 |
RS}-expression above produces the more readable result: |
105
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487 |
|
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488 |
@{ML_response_fake [display,gray] |
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489 |
"no_vars @{context} (@{thm disjI1} RS @{thm conjI})" "\<lbrakk>P; Q\<rbrakk> \<Longrightarrow> (P \<or> Qa) \<and> Q"} |
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490 |
|
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491 |
If you want to instantiate more than one premise of a theorem, you can use |
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492 |
the function @{ML MRS}: |
105
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|
493 |
|
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|
494 |
@{ML_response_fake [display,gray] |
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495 |
"no_vars @{context} ([@{thm disjI1}, @{thm disjI2}] MRS @{thm conjI})" |
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496 |
"\<lbrakk>P; Q\<rbrakk> \<Longrightarrow> (P \<or> Qa) \<and> (Pa \<or> Q)"} |
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497 |
|
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|
498 |
If you need to instantiate lists of theorems, you can use the |
109 | 499 |
functions @{ML RL} and @{ML MRL}. For example in the code below, |
500 |
every theorem in the second list is instantiated with every |
|
501 |
theorem in the first. |
|
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502 |
|
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503 |
@{ML_response_fake [display,gray] |
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504 |
"[@{thm impI}, @{thm disjI2}] RL [@{thm conjI}, @{thm disjI1}]" |
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505 |
"[\<lbrakk>P \<Longrightarrow> Q; Qa\<rbrakk> \<Longrightarrow> (P \<longrightarrow> Q) \<and> Qa, |
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506 |
\<lbrakk>Q; Qa\<rbrakk> \<Longrightarrow> (P \<or> Q) \<and> Qa, |
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507 |
(P \<Longrightarrow> Q) \<Longrightarrow> (P \<longrightarrow> Q) \<or> Qa, |
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508 |
Q \<Longrightarrow> (P \<or> Q) \<or> Qa]"} |
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509 |
|
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|
510 |
\begin{readmore} |
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511 |
The combinators for instantiating theorems are defined in @{ML_file "Pure/drule.ML"}. |
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512 |
\end{readmore} |
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|
513 |
|
109 | 514 |
Often proofs on the ML-level involve elaborate operations on assumptions and |
515 |
@{text "\<And>"}-quantified variables. To do such operations using the basic tactics |
|
128 | 516 |
shown so far is very unwieldy and brittle. Some convenience and |
99 | 517 |
safety is provided by the tactic @{ML SUBPROOF}. This tactic fixes the parameters |
109 | 518 |
and binds the various components of a goal state to a record. |
105
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519 |
To see what happens, assume the function defined in Figure~\ref{fig:sptac}, which |
109 | 520 |
takes a record and just prints out the content of this record (using the |
521 |
string transformation functions from in Section~\ref{sec:printing}). Consider |
|
522 |
now the proof: |
|
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|
523 |
*} |
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|
524 |
|
99 | 525 |
text_raw{* |
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diff
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|
526 |
\begin{figure}[t] |
177 | 527 |
\begin{minipage}{\textwidth} |
99 | 528 |
\begin{isabelle} |
529 |
*} |
|
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|
530 |
ML{*fun sp_tac {prems, params, asms, concl, context, schematics} = |
132 | 531 |
let |
532 |
val str_of_params = str_of_cterms context params |
|
533 |
val str_of_asms = str_of_cterms context asms |
|
534 |
val str_of_concl = str_of_cterm context concl |
|
535 |
val str_of_prems = str_of_thms context prems |
|
536 |
val str_of_schms = str_of_cterms context (snd schematics) |
|
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537 |
|
132 | 538 |
val _ = (warning ("params: " ^ str_of_params); |
539 |
warning ("schematics: " ^ str_of_schms); |
|
540 |
warning ("assumptions: " ^ str_of_asms); |
|
541 |
warning ("conclusion: " ^ str_of_concl); |
|
542 |
warning ("premises: " ^ str_of_prems)) |
|
543 |
in |
|
544 |
no_tac |
|
545 |
end*} |
|
99 | 546 |
text_raw{* |
547 |
\end{isabelle} |
|
177 | 548 |
\end{minipage} |
99 | 549 |
\caption{A function that prints out the various parameters provided by the tactic |
105
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550 |
@{ML SUBPROOF}. It uses the functions defined in Section~\ref{sec:printing} for |
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551 |
extracting strings from @{ML_type cterm}s and @{ML_type thm}s.\label{fig:sptac}} |
99 | 552 |
\end{figure} |
553 |
*} |
|
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554 |
|
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555 |
|
99 | 556 |
lemma shows "\<And>x y. A x y \<Longrightarrow> B y x \<longrightarrow> C (?z y) x" |
95
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|
557 |
apply(tactic {* SUBPROOF sp_tac @{context} 1 *})? |
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|
558 |
|
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|
559 |
txt {* |
109 | 560 |
The tactic produces the following printout: |
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|
561 |
|
99 | 562 |
\begin{quote}\small |
95
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|
563 |
\begin{tabular}{ll} |
102
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|
564 |
params: & @{term x}, @{term y}\\ |
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|
565 |
schematics: & @{term z}\\ |
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|
566 |
assumptions: & @{term "A x y"}\\ |
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|
567 |
conclusion: & @{term "B y x \<longrightarrow> C (z y) x"}\\ |
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|
568 |
premises: & @{term "A x y"} |
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569 |
\end{tabular} |
99 | 570 |
\end{quote} |
571 |
||
149 | 572 |
Notice in the actual output the brown colour of the variables @{term x} and |
105
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573 |
@{term y}. Although they are parameters in the original goal, they are fixed inside |
109 | 574 |
the subproof. By convention these fixed variables are printed in brown colour. |
575 |
Similarly the schematic variable @{term z}. The assumption, or premise, |
|
105
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576 |
@{prop "A x y"} is bound as @{ML_type cterm} to the record-variable |
109 | 577 |
@{text asms}, but also as @{ML_type thm} to @{text prems}. |
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578 |
|
109 | 579 |
Notice also that we had to append @{text [quotes] "?"} to the |
580 |
\isacommand{apply}-command. The reason is that @{ML SUBPROOF} normally |
|
581 |
expects that the subgoal is solved completely. Since in the function @{ML |
|
582 |
sp_tac} we returned the tactic @{ML no_tac}, the subproof obviously |
|
583 |
fails. The question-mark allows us to recover from this failure in a |
|
584 |
graceful manner so that the warning messages are not overwritten by an |
|
585 |
``empty sequence'' error message. |
|
99 | 586 |
|
587 |
If we continue the proof script by applying the @{text impI}-rule |
|
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*} |
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589 |
|
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590 |
apply(rule impI) |
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591 |
apply(tactic {* SUBPROOF sp_tac @{context} 1 *})? |
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592 |
|
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593 |
txt {* |
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then the tactic prints out: |
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595 |
|
99 | 596 |
\begin{quote}\small |
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597 |
\begin{tabular}{ll} |
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598 |
params: & @{term x}, @{term y}\\ |
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599 |
schematics: & @{term z}\\ |
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600 |
assumptions: & @{term "A x y"}, @{term "B y x"}\\ |
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601 |
conclusion: & @{term "C (z y) x"}\\ |
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premises: & @{term "A x y"}, @{term "B y x"} |
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603 |
\end{tabular} |
99 | 604 |
\end{quote} |
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605 |
*} |
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606 |
(*<*)oops(*>*) |
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607 |
|
99 | 608 |
text {* |
109 | 609 |
Now also @{term "B y x"} is an assumption bound to @{text asms} and @{text prems}. |
99 | 610 |
|
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611 |
One convenience of @{ML SUBPROOF} is that we can apply the assumptions |
99 | 612 |
using the usual tactics, because the parameter @{text prems} |
109 | 613 |
contains them as theorems. With this you can easily |
614 |
implement a tactic that behaves almost like @{ML atac}: |
|
99 | 615 |
*} |
616 |
||
104 | 617 |
ML{*val atac' = SUBPROOF (fn {prems, ...} => resolve_tac prems 1)*} |
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618 |
|
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text {* |
109 | 620 |
If you apply @{ML atac'} to the next lemma |
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621 |
*} |
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622 |
|
109 | 623 |
lemma shows "\<lbrakk>B x y; A x y; C x y\<rbrakk> \<Longrightarrow> A x y" |
104 | 624 |
apply(tactic {* atac' @{context} 1 *}) |
109 | 625 |
txt{* it will produce |
99 | 626 |
@{subgoals [display]} *} |
627 |
(*<*)oops(*>*) |
|
628 |
||
104 | 629 |
text {* |
109 | 630 |
The restriction in this tactic which is not present in @{ML atac} is |
631 |
that it cannot instantiate any |
|
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632 |
schematic variable. This might be seen as a defect, but it is actually |
104 | 633 |
an advantage in the situations for which @{ML SUBPROOF} was designed: |
109 | 634 |
the reason is that, as mentioned before, instantiation of schematic variables can affect |
104 | 635 |
several goals and can render them unprovable. @{ML SUBPROOF} is meant |
636 |
to avoid this. |
|
637 |
||
109 | 638 |
Notice that @{ML atac'} inside @{ML SUBPROOF} calls @{ML resolve_tac} with |
639 |
the subgoal number @{text "1"} and also the outer call to @{ML SUBPROOF} in |
|
640 |
the \isacommand{apply}-step uses @{text "1"}. This is another advantage |
|
641 |
of @{ML SUBPROOF}: the addressing inside it is completely |
|
642 |
local to the tactic inside the subproof. It is therefore possible to also apply |
|
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643 |
@{ML atac'} to the second goal by just writing: |
104 | 644 |
*} |
645 |
||
109 | 646 |
lemma shows "True" and "\<lbrakk>B x y; A x y; C x y\<rbrakk> \<Longrightarrow> A x y" |
104 | 647 |
apply(tactic {* atac' @{context} 2 *}) |
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648 |
apply(rule TrueI) |
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649 |
done |
104 | 650 |
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651 |
|
93 | 652 |
text {* |
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653 |
\begin{readmore} |
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654 |
The function @{ML SUBPROOF} is defined in @{ML_file "Pure/subgoal.ML"} and |
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655 |
also described in \isccite{sec:results}. |
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656 |
\end{readmore} |
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657 |
|
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658 |
Similar but less powerful functions than @{ML SUBPROOF} are @{ML SUBGOAL} |
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659 |
and @{ML CSUBGOAL}. They allow you to inspect a given subgoal (the former |
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660 |
presents the subgoal as a @{ML_type term}, while the latter as a @{ML_type |
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661 |
cterm}). With this you can implement a tactic that applies a rule according |
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662 |
to the topmost logic connective in the subgoal (to illustrate this we only |
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663 |
analyse a few connectives). The code of the tactic is as |
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664 |
follows.\label{tac:selecttac} |
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665 |
|
93 | 666 |
*} |
667 |
||
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668 |
ML %linenosgray{*fun select_tac (t, i) = |
99 | 669 |
case t of |
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670 |
@{term "Trueprop"} $ t' => select_tac (t', i) |
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671 |
| @{term "op \<Longrightarrow>"} $ _ $ t' => select_tac (t', i) |
99 | 672 |
| @{term "op \<and>"} $ _ $ _ => rtac @{thm conjI} i |
673 |
| @{term "op \<longrightarrow>"} $ _ $ _ => rtac @{thm impI} i |
|
674 |
| @{term "Not"} $ _ => rtac @{thm notI} i |
|
675 |
| Const (@{const_name "All"}, _) $ _ => rtac @{thm allI} i |
|
104 | 676 |
| _ => all_tac*} |
99 | 677 |
|
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678 |
text {* |
109 | 679 |
The input of the function is a term representing the subgoal and a number |
680 |
specifying the subgoal of interest. In line 3 you need to descend under the |
|
681 |
outermost @{term "Trueprop"} in order to get to the connective you like to |
|
682 |
analyse. Otherwise goals like @{prop "A \<and> B"} are not properly |
|
683 |
analysed. Similarly with meta-implications in the next line. While for the |
|
684 |
first five patterns we can use the @{text "@term"}-antiquotation to |
|
685 |
construct the patterns, the pattern in Line 8 cannot be constructed in this |
|
686 |
way. The reason is that an antiquotation would fix the type of the |
|
687 |
quantified variable. So you really have to construct the pattern using the |
|
156 | 688 |
basic term-constructors. This is not necessary in other cases, because their |
689 |
type is always fixed to function types involving only the type @{typ |
|
690 |
bool}. (See Section \ref{sec:terms_types_manually} about constructing terms |
|
691 |
manually.) For the catch-all pattern, we chose to just return @{ML all_tac}. |
|
692 |
Consequently, @{ML select_tac} never fails. |
|
693 |
||
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694 |
|
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695 |
Let us now see how to apply this tactic. Consider the four goals: |
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696 |
*} |
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697 |
|
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698 |
|
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699 |
lemma shows "A \<and> B" and "A \<longrightarrow> B \<longrightarrow>C" and "\<forall>x. D x" and "E \<Longrightarrow> F" |
104 | 700 |
apply(tactic {* SUBGOAL select_tac 4 *}) |
701 |
apply(tactic {* SUBGOAL select_tac 3 *}) |
|
702 |
apply(tactic {* SUBGOAL select_tac 2 *}) |
|
99 | 703 |
apply(tactic {* SUBGOAL select_tac 1 *}) |
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704 |
txt{* \begin{minipage}{\textwidth} |
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705 |
@{subgoals [display]} |
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706 |
\end{minipage} *} |
99 | 707 |
(*<*)oops(*>*) |
708 |
||
709 |
text {* |
|
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710 |
where in all but the last the tactic applied an introduction rule. |
109 | 711 |
Note that we applied the tactic to the goals in ``reverse'' order. |
712 |
This is a trick in order to be independent from the subgoals that are |
|
713 |
produced by the rule. If we had applied it in the other order |
|
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714 |
*} |
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715 |
|
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716 |
lemma shows "A \<and> B" and "A \<longrightarrow> B \<longrightarrow>C" and "\<forall>x. D x" and "E \<Longrightarrow> F" |
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717 |
apply(tactic {* SUBGOAL select_tac 1 *}) |
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718 |
apply(tactic {* SUBGOAL select_tac 3 *}) |
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719 |
apply(tactic {* SUBGOAL select_tac 4 *}) |
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720 |
apply(tactic {* SUBGOAL select_tac 5 *}) |
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721 |
(*<*)oops(*>*) |
99 | 722 |
|
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723 |
text {* |
109 | 724 |
then we have to be careful to not apply the tactic to the two subgoals produced by |
725 |
the first goal. To do this can result in quite messy code. In contrast, |
|
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726 |
the ``reverse application'' is easy to implement. |
104 | 727 |
|
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728 |
Of course, this example is |
149 | 729 |
contrived: there are much simpler methods available in Isabelle for |
730 |
implementing a proof procedure analysing a goal according to its topmost |
|
731 |
connective. These simpler methods use tactic combinators, which we will |
|
732 |
explain in the next section. |
|
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733 |
|
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734 |
*} |
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735 |
|
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736 |
section {* Tactic Combinators *} |
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737 |
|
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738 |
text {* |
109 | 739 |
The purpose of tactic combinators is to build compound tactics out of |
740 |
smaller tactics. In the previous section we already used @{ML THEN}, which |
|
741 |
just strings together two tactics in a sequence. For example: |
|
93 | 742 |
*} |
743 |
||
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lemma shows "(Foo \<and> Bar) \<and> False" |
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745 |
apply(tactic {* rtac @{thm conjI} 1 THEN rtac @{thm conjI} 1 *}) |
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746 |
txt {* \begin{minipage}{\textwidth} |
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747 |
@{subgoals [display]} |
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748 |
\end{minipage} *} |
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749 |
(*<*)oops(*>*) |
99 | 750 |
|
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751 |
text {* |
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752 |
If you want to avoid the hard-coded subgoal addressing, then you can use |
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753 |
the ``primed'' version of @{ML THEN}. For example: |
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754 |
*} |
93 | 755 |
|
99 | 756 |
lemma shows "(Foo \<and> Bar) \<and> False" |
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apply(tactic {* (rtac @{thm conjI} THEN' rtac @{thm conjI}) 1 *}) |
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758 |
txt {* \begin{minipage}{\textwidth} |
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759 |
@{subgoals [display]} |
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|
760 |
\end{minipage} *} |
93 | 761 |
(*<*)oops(*>*) |
762 |
||
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763 |
text {* |
109 | 764 |
Here you only have to specify the subgoal of interest only once and |
765 |
it is consistently applied to the component tactics. |
|
107
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766 |
For most tactic combinators such a ``primed'' version exists and |
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767 |
in what follows we will usually prefer it over the ``unprimed'' one. |
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768 |
|
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769 |
If there is a list of tactics that should all be tried out in |
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770 |
sequence, you can use the combinator @{ML EVERY'}. For example |
109 | 771 |
the function @{ML foo_tac'} from page~\pageref{tac:footacprime} can also |
108
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772 |
be written as: |
107
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773 |
*} |
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774 |
|
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775 |
ML{*val foo_tac'' = EVERY' [etac @{thm disjE}, rtac @{thm disjI2}, |
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776 |
atac, rtac @{thm disjI1}, atac]*} |
105
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777 |
|
107
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778 |
text {* |
109 | 779 |
There is even another way of implementing this tactic: in automatic proof |
780 |
procedures (in contrast to tactics that might be called by the user) there |
|
781 |
are often long lists of tactics that are applied to the first |
|
782 |
subgoal. Instead of writing the code above and then calling @{ML "foo_tac'' 1"}, |
|
783 |
you can also just write |
|
107
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784 |
*} |
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785 |
|
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786 |
ML{*val foo_tac1 = EVERY1 [etac @{thm disjE}, rtac @{thm disjI2}, |
108
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787 |
atac, rtac @{thm disjI1}, atac]*} |
107
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|
788 |
|
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789 |
text {* |
118
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790 |
and call @{ML foo_tac1}. |
109 | 791 |
|
792 |
With the combinators @{ML THEN'}, @{ML EVERY'} and @{ML EVERY1} it must be |
|
793 |
guaranteed that all component tactics successfully apply; otherwise the |
|
794 |
whole tactic will fail. If you rather want to try out a number of tactics, |
|
795 |
then you can use the combinator @{ML ORELSE'} for two tactics, and @{ML |
|
796 |
FIRST'} (or @{ML FIRST1}) for a list of tactics. For example, the tactic |
|
797 |
||
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798 |
*} |
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|
799 |
|
131 | 800 |
ML{*val orelse_xmp = rtac @{thm disjI1} ORELSE' rtac @{thm conjI}*} |
99 | 801 |
|
105
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|
802 |
text {* |
107
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803 |
will first try out whether rule @{text disjI} applies and after that |
109 | 804 |
@{text conjI}. To see this consider the proof |
105
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805 |
*} |
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806 |
|
99 | 807 |
lemma shows "True \<and> False" and "Foo \<or> Bar" |
108
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|
808 |
apply(tactic {* orelse_xmp 2 *}) |
99 | 809 |
apply(tactic {* orelse_xmp 1 *}) |
107
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|
810 |
txt {* which results in the goal state |
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|
811 |
|
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|
812 |
\begin{minipage}{\textwidth} |
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|
813 |
@{subgoals [display]} |
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814 |
\end{minipage} |
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815 |
*} |
93 | 816 |
(*<*)oops(*>*) |
817 |
||
818 |
||
819 |
text {* |
|
109 | 820 |
Using @{ML FIRST'} we can simplify our @{ML select_tac} from Page~\pageref{tac:selecttac} |
821 |
as follows: |
|
107
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|
822 |
*} |
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|
823 |
|
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|
824 |
ML{*val select_tac' = FIRST' [rtac @{thm conjI}, rtac @{thm impI}, |
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825 |
rtac @{thm notI}, rtac @{thm allI}, K all_tac]*} |
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|
826 |
|
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|
827 |
text {* |
108
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|
828 |
Since we like to mimic the behaviour of @{ML select_tac} as closely as possible, |
109 | 829 |
we must include @{ML all_tac} at the end of the list, otherwise the tactic will |
118
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830 |
fail if no rule applies (we also have to wrap @{ML all_tac} using the |
109 | 831 |
@{ML K}-combinator, because it does not take a subgoal number as argument). You can |
832 |
test the tactic on the same goals: |
|
107
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833 |
*} |
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|
834 |
|
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|
835 |
lemma shows "A \<and> B" and "A \<longrightarrow> B \<longrightarrow>C" and "\<forall>x. D x" and "E \<Longrightarrow> F" |
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836 |
apply(tactic {* select_tac' 4 *}) |
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|
837 |
apply(tactic {* select_tac' 3 *}) |
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838 |
apply(tactic {* select_tac' 2 *}) |
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839 |
apply(tactic {* select_tac' 1 *}) |
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840 |
txt{* \begin{minipage}{\textwidth} |
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841 |
@{subgoals [display]} |
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842 |
\end{minipage} *} |
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843 |
(*<*)oops(*>*) |
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|
844 |
|
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845 |
text {* |
109 | 846 |
Since such repeated applications of a tactic to the reverse order of |
847 |
\emph{all} subgoals is quite common, there is the tactic combinator |
|
848 |
@{ML ALLGOALS} that simplifies this. Using this combinator you can simply |
|
108
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|
849 |
write: *} |
107
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|
850 |
|
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|
851 |
lemma shows "A \<and> B" and "A \<longrightarrow> B \<longrightarrow>C" and "\<forall>x. D x" and "E \<Longrightarrow> F" |
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|
852 |
apply(tactic {* ALLGOALS select_tac' *}) |
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853 |
txt{* \begin{minipage}{\textwidth} |
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|
854 |
@{subgoals [display]} |
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855 |
\end{minipage} *} |
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856 |
(*<*)oops(*>*) |
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|
857 |
|
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858 |
text {* |
109 | 859 |
Remember that we chose to implement @{ML select_tac'} so that it |
860 |
always succeeds. This can be potentially very confusing for the user, |
|
861 |
for example, in cases where the goal is the form |
|
107
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|
862 |
*} |
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|
863 |
|
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|
864 |
lemma shows "E \<Longrightarrow> F" |
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|
865 |
apply(tactic {* select_tac' 1 *}) |
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|
866 |
txt{* \begin{minipage}{\textwidth} |
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|
867 |
@{subgoals [display]} |
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|
868 |
\end{minipage} *} |
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|
869 |
(*<*)oops(*>*) |
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|
870 |
|
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|
871 |
text {* |
109 | 872 |
In this case no rule applies. The problem for the user is that there is little |
873 |
chance to see whether or not progress in the proof has been made. By convention |
|
874 |
therefore, tactics visible to the user should either change something or fail. |
|
875 |
||
876 |
To comply with this convention, we could simply delete the @{ML "K all_tac"} |
|
877 |
from the end of the theorem list. As a result @{ML select_tac'} would only |
|
878 |
succeed on goals where it can make progress. But for the sake of argument, |
|
879 |
let us suppose that this deletion is \emph{not} an option. In such cases, you can |
|
880 |
use the combinator @{ML CHANGED} to make sure the subgoal has been changed |
|
881 |
by the tactic. Because now |
|
882 |
||
107
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|
883 |
*} |
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|
884 |
|
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|
885 |
lemma shows "E \<Longrightarrow> F" |
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|
886 |
apply(tactic {* CHANGED (select_tac' 1) *})(*<*)?(*>*) |
109 | 887 |
txt{* gives the error message: |
108
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|
888 |
\begin{isabelle} |
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|
889 |
@{text "*** empty result sequence -- proof command failed"}\\ |
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|
890 |
@{text "*** At command \"apply\"."} |
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|
891 |
\end{isabelle} |
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|
892 |
*}(*<*)oops(*>*) |
105
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|
893 |
|
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|
894 |
|
107
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|
895 |
text {* |
109 | 896 |
We can further extend @{ML select_tac'} so that it not just applies to the topmost |
897 |
connective, but also to the ones immediately ``underneath'', i.e.~analyse the goal |
|
898 |
completely. For this you can use the tactic combinator @{ML REPEAT}. As an example |
|
899 |
suppose the following tactic |
|
108
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|
900 |
*} |
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|
901 |
|
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|
902 |
ML{*val repeat_xmp = REPEAT (CHANGED (select_tac' 1)) *} |
8bea3f74889d
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903 |
|
109 | 904 |
text {* which applied to the proof *} |
108
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|
905 |
|
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|
906 |
lemma shows "((\<not>A) \<and> (\<forall>x. B x)) \<and> (C \<longrightarrow> D)" |
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|
907 |
apply(tactic {* repeat_xmp *}) |
109 | 908 |
txt{* produces |
909 |
||
910 |
\begin{minipage}{\textwidth} |
|
108
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|
911 |
@{subgoals [display]} |
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|
912 |
\end{minipage} *} |
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|
913 |
(*<*)oops(*>*) |
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|
914 |
|
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|
915 |
text {* |
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|
916 |
Here it is crucial that @{ML select_tac'} is prefixed with @{ML CHANGED}, |
109 | 917 |
because otherwise @{ML REPEAT} runs into an infinite loop (it applies the |
918 |
tactic as long as it succeeds). The function |
|
108
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919 |
@{ML REPEAT1} is similar, but runs the tactic at least once (failing if |
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920 |
this is not possible). |
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|
921 |
|
156 | 922 |
If you are after the ``primed'' version of @{ML repeat_xmp}, then you |
109 | 923 |
need to implement it as |
108
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924 |
*} |
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|
925 |
|
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926 |
ML{*val repeat_xmp' = REPEAT o CHANGED o select_tac'*} |
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|
927 |
|
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|
928 |
text {* |
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|
929 |
since there are no ``primed'' versions of @{ML REPEAT} and @{ML CHANGED}. |
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|
930 |
|
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|
931 |
If you look closely at the goal state above, the tactics @{ML repeat_xmp} |
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|
932 |
and @{ML repeat_xmp'} are not yet quite what we are after: the problem is |
109 | 933 |
that goals 2 and 3 are not analysed. This is because the tactic |
934 |
is applied repeatedly only to the first subgoal. To analyse also all |
|
935 |
resulting subgoals, you can use the tactic combinator @{ML REPEAT_ALL_NEW}. |
|
108
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|
936 |
Suppose the tactic |
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937 |
*} |
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|
938 |
|
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|
939 |
ML{*val repeat_all_new_xmp = REPEAT_ALL_NEW (CHANGED o select_tac')*} |
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|
940 |
|
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|
941 |
text {* |
109 | 942 |
you see that the following goal |
108
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|
943 |
*} |
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|
944 |
|
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|
945 |
lemma shows "((\<not>A) \<and> (\<forall>x. B x)) \<and> (C \<longrightarrow> D)" |
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946 |
apply(tactic {* repeat_all_new_xmp 1 *}) |
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|
947 |
txt{* \begin{minipage}{\textwidth} |
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|
948 |
@{subgoals [display]} |
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|
949 |
\end{minipage} *} |
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|
950 |
(*<*)oops(*>*) |
93 | 951 |
|
108
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952 |
text {* |
109 | 953 |
is completely analysed according to the theorems we chose to |
120
c39f83d8daeb
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|
954 |
include in @{ML select_tac'}. |
109 | 955 |
|
956 |
Recall that tactics produce a lazy sequence of successor goal states. These |
|
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957 |
states can be explored using the command \isacommand{back}. For example |
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958 |
|
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959 |
*} |
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|
960 |
|
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|
961 |
lemma "\<lbrakk>P1 \<or> Q1; P2 \<or> Q2\<rbrakk> \<Longrightarrow> R" |
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|
962 |
apply(tactic {* etac @{thm disjE} 1 *}) |
109 | 963 |
txt{* applies the rule to the first assumption yielding the goal state:\smallskip |
108
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|
964 |
|
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|
965 |
\begin{minipage}{\textwidth} |
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|
966 |
@{subgoals [display]} |
109 | 967 |
\end{minipage}\smallskip |
968 |
||
969 |
After typing |
|
970 |
*} |
|
108
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|
971 |
(*<*) |
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|
972 |
oops |
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|
973 |
lemma "\<lbrakk>P1 \<or> Q1; P2 \<or> Q2\<rbrakk> \<Longrightarrow> R" |
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|
974 |
apply(tactic {* etac @{thm disjE} 1 *}) |
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|
975 |
(*>*) |
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|
976 |
back |
109 | 977 |
txt{* the rule now applies to the second assumption.\smallskip |
108
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|
978 |
|
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|
979 |
\begin{minipage}{\textwidth} |
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|
980 |
@{subgoals [display]} |
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|
981 |
\end{minipage} *} |
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|
982 |
(*<*)oops(*>*) |
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|
983 |
|
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|
984 |
text {* |
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|
985 |
Sometimes this leads to confusing behaviour of tactics and also has |
109 | 986 |
the potential to explode the search space for tactics. |
987 |
These problems can be avoided by prefixing the tactic with the tactic |
|
988 |
combinator @{ML DETERM}. |
|
108
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|
989 |
*} |
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|
990 |
|
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|
991 |
lemma "\<lbrakk>P1 \<or> Q1; P2 \<or> Q2\<rbrakk> \<Longrightarrow> R" |
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|
992 |
apply(tactic {* DETERM (etac @{thm disjE} 1) *}) |
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|
993 |
txt {*\begin{minipage}{\textwidth} |
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|
994 |
@{subgoals [display]} |
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995 |
\end{minipage} *} |
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996 |
(*<*)oops(*>*) |
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|
997 |
text {* |
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|
998 |
This combinator will prune the search space to just the first successful application. |
108
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|
999 |
Attempting to apply \isacommand{back} in this goal states gives the |
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|
1000 |
error message: |
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|
1001 |
|
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|
1002 |
\begin{isabelle} |
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|
1003 |
@{text "*** back: no alternatives"}\\ |
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|
1004 |
@{text "*** At command \"back\"."} |
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1005 |
\end{isabelle} |
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1006 |
|
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|
1007 |
\begin{readmore} |
109 | 1008 |
Most tactic combinators described in this section are defined in @{ML_file "Pure/tctical.ML"}. |
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1009 |
\end{readmore} |
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|
1010 |
|
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|
1011 |
*} |
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|
1012 |
|
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|
1013 |
section {* Simplifier Tactics *} |
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1014 |
|
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|
1015 |
text {* |
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|
1016 |
A lot of convenience in the reasoning with Isabelle derives from its |
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1017 |
powerful simplifier. The power of simplifier is a strength and a weakness at |
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1018 |
the same time, because you can easily make the simplifier to run into a loop and its |
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1019 |
behaviour can be difficult to predict. There is also a multitude |
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|
1020 |
of options that you can configurate to control the behaviour of the simplifier. |
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1021 |
We describe some of them in this and the next section. |
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|
1022 |
|
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|
1023 |
There are the following five main tactics behind |
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1024 |
the simplifier (in parentheses is their user-level counterpart): |
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1025 |
|
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1026 |
\begin{isabelle} |
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|
1027 |
\begin{center} |
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1028 |
\begin{tabular}{l@ {\hspace{2cm}}l} |
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1029 |
@{ML simp_tac} & @{text "(simp (no_asm))"} \\ |
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1030 |
@{ML asm_simp_tac} & @{text "(simp (no_asm_simp))"} \\ |
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1031 |
@{ML full_simp_tac} & @{text "(simp (no_asm_use))"} \\ |
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1032 |
@{ML asm_lr_simp_tac} & @{text "(simp (asm_lr))"} \\ |
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1033 |
@{ML asm_full_simp_tac} & @{text "(simp)"} |
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1034 |
\end{tabular} |
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1035 |
\end{center} |
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\end{isabelle} |
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1037 |
|
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1038 |
All of the tactics take a simpset and an interger as argument (the latter as usual |
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1039 |
to specify the goal to be analysed). So the proof |
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1040 |
*} |
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1041 |
|
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1042 |
lemma "Suc (1 + 2) < 3 + 2" |
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1043 |
apply(simp) |
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1044 |
done |
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1045 |
|
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1046 |
text {* |
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1047 |
corresponds on the ML-level to the tactic |
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1048 |
*} |
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1049 |
|
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1050 |
lemma "Suc (1 + 2) < 3 + 2" |
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1051 |
apply(tactic {* asm_full_simp_tac @{simpset} 1 *}) |
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1052 |
done |
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1053 |
|
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1054 |
text {* |
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1055 |
If the simplifier cannot make any progress, then it leaves the goal unchanged, |
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1056 |
i.e.~does not raise any error message. That means if you use it to unfold a |
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1057 |
definition for a constant and this constant is not present in the goal state, |
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1058 |
you can still safely apply the simplifier. |
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1059 |
|
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1060 |
When using the simplifier, the crucial information you have to provide is |
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1061 |
the simpset. If this information is not handled with care, then the |
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1062 |
simplifier can easily run into a loop. Therefore a good rule of thumb is to |
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1063 |
use simpsets that are as minimal as possible. It might be surprising that a |
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1064 |
simpset is more complex than just a simple collection of theorems used as |
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1065 |
simplification rules. One reason for the complexity is that the simplifier |
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1066 |
must be able to rewrite inside terms and should also be able to rewrite |
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1067 |
according to rules that have precoditions. |
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1068 |
|
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1069 |
|
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1070 |
The rewriting inside terms requires congruence rules, which |
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1071 |
are meta-equalities typical of the form |
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1072 |
|
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1073 |
\begin{isabelle} |
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1074 |
\begin{center} |
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1075 |
\mbox{\inferrule{@{text "t\<^isub>1 \<equiv> s\<^isub>1 \<dots> t\<^isub>n \<equiv> s\<^isub>n"}} |
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1076 |
{@{text "constr t\<^isub>1\<dots>t\<^isub>n \<equiv> constr s\<^isub>1\<dots>s\<^isub>n"}}} |
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1077 |
\end{center} |
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1078 |
\end{isabelle} |
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1079 |
|
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1080 |
with @{text "constr"} being a term-constructor, like @{const "If"} or @{const "Let"}. |
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1081 |
Every simpset contains only |
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1082 |
one concruence rule for each term-constructor, which however can be |
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1083 |
overwritten. The user can declare lemmas to be congruence rules using the |
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1084 |
attribute @{text "[cong]"}. In HOL, the user usually states these lemmas as |
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1085 |
equations, which are then internally transformed into meta-equations. |
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1086 |
|
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1087 |
|
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1088 |
The rewriting with rules involving preconditions requires what is in |
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1089 |
Isabelle called a subgoaler, a solver and a looper. These can be arbitrary |
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1090 |
tactics that can be installed in a simpset and which are called during |
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1091 |
various stages during simplification. However, simpsets also include |
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1092 |
simprocs, which can produce rewrite rules on demand (see next |
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1093 |
section). Another component are split-rules, which can simplify for example |
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1094 |
the ``then'' and ``else'' branches of if-statements under the corresponding |
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1095 |
precoditions. |
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1096 |
|
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1097 |
|
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1098 |
\begin{readmore} |
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1099 |
For more information about the simplifier see @{ML_file "Pure/meta_simplifier.ML"} |
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1100 |
and @{ML_file "Pure/simplifier.ML"}. The simplifier for HOL is set up in |
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1101 |
@{ML_file "HOL/Tools/simpdata.ML"}. Generic splitters are implemented in |
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1102 |
@{ML_file "Provers/splitter.ML"}. |
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1103 |
\end{readmore} |
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1104 |
|
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1105 |
\begin{readmore} |
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1106 |
FIXME: Find the right place Discrimination nets are implemented |
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1107 |
in @{ML_file "Pure/net.ML"}. |
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1108 |
\end{readmore} |
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1109 |
|
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1110 |
The most common combinators to modify simpsets are |
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|
1111 |
|
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1112 |
\begin{isabelle} |
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1113 |
\begin{tabular}{ll} |
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1114 |
@{ML addsimps} & @{ML delsimps}\\ |
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1115 |
@{ML addcongs} & @{ML delcongs}\\ |
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1116 |
@{ML addsimprocs} & @{ML delsimprocs}\\ |
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1117 |
\end{tabular} |
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1118 |
\end{isabelle} |
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1119 |
|
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1120 |
(FIXME: What about splitters? @{ML addsplits}, @{ML delsplits}) |
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1121 |
*} |
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1122 |
|
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1123 |
text_raw {* |
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1124 |
\begin{figure}[t] |
177 | 1125 |
\begin{minipage}{\textwidth} |
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1126 |
\begin{isabelle}*} |
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1127 |
ML{*fun print_ss ctxt ss = |
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1128 |
let |
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1129 |
val {simps, congs, procs, ...} = MetaSimplifier.dest_ss ss |
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1130 |
|
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1131 |
fun name_thm (nm, thm) = |
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1132 |
" " ^ nm ^ ": " ^ (str_of_thm ctxt thm) |
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1133 |
fun name_ctrm (nm, ctrm) = |
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1134 |
" " ^ nm ^ ": " ^ (str_of_cterms ctxt ctrm) |
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1135 |
|
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1136 |
val s1 = ["Simplification rules:"] |
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1137 |
val s2 = map name_thm simps |
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1138 |
val s3 = ["Congruences rules:"] |
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1139 |
val s4 = map name_thm congs |
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1140 |
val s5 = ["Simproc patterns:"] |
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1141 |
val s6 = map name_ctrm procs |
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1142 |
in |
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1143 |
(s1 @ s2 @ s3 @ s4 @ s5 @ s6) |
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1144 |
|> separate "\n" |
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1145 |
|> implode |
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1146 |
|> warning |
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1147 |
end*} |
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1148 |
text_raw {* |
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1149 |
\end{isabelle} |
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\end{minipage} |
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1151 |
\caption{The function @{ML MetaSimplifier.dest_ss} returns a record containing |
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1152 |
all printable information stored in a simpset. We are here only interested in the |
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1153 |
simplifcation rules, congruence rules and simprocs.\label{fig:printss}} |
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1154 |
\end{figure} *} |
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1155 |
|
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1156 |
text {* |
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1157 |
To see how they work, consider the two functions in Figure~\ref{fig:printss}, which |
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1158 |
print out some parts of a simpset. If you use them to print out the components of the |
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1159 |
empty simpset, in ML @{ML empty_ss} and the most primitive simpset |
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1160 |
|
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1161 |
@{ML_response_fake [display,gray] |
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1162 |
"print_ss @{context} empty_ss" |
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1163 |
"Simplification rules: |
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1164 |
Congruences rules: |
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1165 |
Simproc patterns:"} |
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|
1166 |
|
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1167 |
you can see it contains nothing. This simpset is usually not useful, except as a |
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1168 |
building block to build bigger simpsets. For example you can add to @{ML empty_ss} |
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1169 |
the simplification rule @{thm [source] Diff_Int} as follows: |
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1170 |
*} |
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1171 |
|
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1172 |
ML{*val ss1 = empty_ss addsimps [@{thm Diff_Int} RS @{thm eq_reflection}] *} |
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1173 |
|
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1174 |
text {* |
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1175 |
Printing then out the components of the simpset gives: |
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1176 |
|
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1177 |
@{ML_response_fake [display,gray] |
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1178 |
"print_ss @{context} ss1" |
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1179 |
"Simplification rules: |
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1180 |
??.unknown: A - B \<inter> C \<equiv> A - B \<union> (A - C) |
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1181 |
Congruences rules: |
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1182 |
Simproc patterns:"} |
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1183 |
|
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1184 |
(FIXME: Why does it print out ??.unknown) |
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1185 |
|
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1186 |
Adding also the congruence rule @{thm [source] UN_cong} |
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1187 |
*} |
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1188 |
|
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1189 |
ML{*val ss2 = ss1 addcongs [@{thm UN_cong} RS @{thm eq_reflection}] *} |
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1190 |
|
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1191 |
text {* |
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1192 |
gives |
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1193 |
|
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1194 |
@{ML_response_fake [display,gray] |
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1195 |
"print_ss @{context} ss2" |
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1196 |
"Simplification rules: |
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1197 |
??.unknown: A - B \<inter> C \<equiv> A - B \<union> (A - C) |
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1198 |
Congruences rules: |
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1199 |
UNION: \<lbrakk>A = B; \<And>x. x \<in> B \<Longrightarrow> C x = D x\<rbrakk> \<Longrightarrow> \<Union>x\<in>A. C x \<equiv> \<Union>x\<in>B. D x |
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1200 |
Simproc patterns:"} |
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|
1201 |
|
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1202 |
Notice that we had to add these lemmas as meta-equations. The @{ML empty_ss} |
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1203 |
expects this form of the simplification and congruence rules. However, even |
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1204 |
when adding these lemmas to @{ML empty_ss} we do not end up with anything useful yet. |
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1205 |
|
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1206 |
In the context of HOL, the first really useful simpset is @{ML HOL_basic_ss}. While |
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1207 |
printing out the components of this simpset |
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|
1208 |
|
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1209 |
@{ML_response_fake [display,gray] |
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1210 |
"print_ss @{context} HOL_basic_ss" |
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1211 |
"Simplification rules: |
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1212 |
Congruences rules: |
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1213 |
Simproc patterns:"} |
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|
1214 |
|
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1215 |
also produces ``nothing'', the printout is misleading. In fact |
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1216 |
the @{ML HOL_basic_ss} is setup so that it can solve goals of the |
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1217 |
form @{thm TrueI}, @{thm refl[no_vars]}, @{term "t \<equiv> t"} and @{thm FalseE[no_vars]}; |
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|
1218 |
and also resolve with assumptions. For example: |
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|
1219 |
*} |
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|
1220 |
|
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|
1221 |
lemma |
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|
1222 |
"True" and "t = t" and "t \<equiv> t" and "False \<Longrightarrow> Foo" and "\<lbrakk>A; B; C\<rbrakk> \<Longrightarrow> A" |
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|
1223 |
apply(tactic {* ALLGOALS (simp_tac HOL_basic_ss) *}) |
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|
1224 |
done |
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|
1225 |
|
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1226 |
text {* |
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1227 |
This behaviour is not because of simplification rules, but how the subgoaler, solver |
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1228 |
and looper are set up. @{ML HOL_basic_ss} is usually a good start to build your |
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1229 |
own simpsets, because of the low danger of causing loops via interacting simplifiction |
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1230 |
rules. |
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1231 |
|
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1232 |
The simpset @{ML HOL_ss} is an extention of @{ML HOL_basic_ss} containing |
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1233 |
already many useful simplification and congruence rules for the logical |
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1234 |
connectives in HOL. |
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1235 |
|
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1236 |
@{ML_response_fake [display,gray] |
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1237 |
"print_ss @{context} HOL_ss" |
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1238 |
"Simplification rules: |
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1239 |
Pure.triv_forall_equality: (\<And>x. PROP V) \<equiv> PROP V |
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1240 |
HOL.the_eq_trivial: THE x. x = y \<equiv> y |
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1241 |
HOL.the_sym_eq_trivial: THE ya. y = ya \<equiv> y |
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1242 |
\<dots> |
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1243 |
Congruences rules: |
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1244 |
HOL.simp_implies: \<dots> |
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1245 |
\<Longrightarrow> (PROP P =simp=> PROP Q) \<equiv> (PROP P' =simp=> PROP Q') |
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1246 |
op -->: \<lbrakk>P \<equiv> P'; P' \<Longrightarrow> Q \<equiv> Q'\<rbrakk> \<Longrightarrow> P \<longrightarrow> Q \<equiv> P' \<longrightarrow> Q' |
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1247 |
Simproc patterns: |
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1248 |
\<dots>"} |
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|
1249 |
|
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1250 |
|
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1251 |
The simplifier is often used to unfold definitions in a proof. For this the |
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1252 |
simplifier contains the @{ML rewrite_goals_tac}. Suppose for example the |
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1253 |
definition |
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1254 |
*} |
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1255 |
|
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1256 |
definition "MyTrue \<equiv> True" |
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1257 |
|
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1258 |
lemma shows "MyTrue \<Longrightarrow> True \<and> True" |
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1259 |
apply(rule conjI) |
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1260 |
apply(tactic {* rewrite_goals_tac [@{thm MyTrue_def}] *}) |
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1261 |
txt{* then the tactic produces the goal state |
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1262 |
|
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1263 |
\begin{minipage}{\textwidth} |
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1264 |
@{subgoals [display]} |
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\end{minipage} *} |
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(*<*)oops(*>*) |
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|
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text {* |
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As you can see, the tactic unfolds the definitions in all subgoals. |
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1270 |
*} |
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text_raw {* |
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\begin{figure}[p] |
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\begin{boxedminipage}{\textwidth} |
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\begin{isabelle} *} |
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types prm = "(nat \<times> nat) list" |
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1278 |
consts perm :: "prm \<Rightarrow> 'a \<Rightarrow> 'a" ("_ \<bullet> _" [80,80] 80) |
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1279 |
|
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1280 |
primrec (perm_nat) |
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1281 |
"[]\<bullet>c = c" |
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"(ab#pi)\<bullet>c = (if (pi\<bullet>c)=fst ab then snd ab |
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else (if (pi\<bullet>c)=snd ab then fst ab else (pi\<bullet>c)))" |
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|
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1285 |
primrec (perm_prod) |
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"pi\<bullet>(x, y) = (pi\<bullet>x, pi\<bullet>y)" |
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|
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1288 |
primrec (perm_list) |
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"pi\<bullet>[] = []" |
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"pi\<bullet>(x#xs) = (pi\<bullet>x)#(pi\<bullet>xs)" |
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1291 |
|
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1292 |
lemma perm_append[simp]: |
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1293 |
fixes c::"nat" and pi\<^isub>1 pi\<^isub>2::"prm" |
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1294 |
shows "((pi\<^isub>1@pi\<^isub>2)\<bullet>c) = (pi\<^isub>1\<bullet>(pi\<^isub>2\<bullet>c))" |
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1295 |
by (induct pi\<^isub>1) (auto) |
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1296 |
|
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1297 |
lemma perm_eq[simp]: |
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1298 |
fixes c::"nat" and pi::"prm" |
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1299 |
shows "(pi\<bullet>c = pi\<bullet>d) = (c = d)" |
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1300 |
by (induct pi) (auto) |
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1301 |
|
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1302 |
lemma perm_rev[simp]: |
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1303 |
fixes c::"nat" and pi::"prm" |
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1304 |
shows "pi\<bullet>((rev pi)\<bullet>c) = c" |
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1305 |
by (induct pi arbitrary: c) (auto) |
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1306 |
|
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1307 |
lemma perm_compose: |
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1308 |
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1309 |
shows "pi\<^isub>1\<bullet>(pi\<^isub>2\<bullet>c) = (pi\<^isub>1\<bullet>pi\<^isub>2)\<bullet>(pi\<^isub>1\<bullet>c)" |
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1310 |
by (induct pi\<^isub>2) (auto) |
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1311 |
text_raw {* |
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1312 |
\end{isabelle} |
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1313 |
\end{boxedminipage} |
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1314 |
\caption{A simple theory about permutations over @{typ nat}. The point is that the |
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1315 |
lemma @{thm [source] perm_compose} cannot be directly added to the simplifier, as |
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1316 |
it would cause the simplifier to loop. It can still be used as a simplification |
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1317 |
rule if the permutation is sufficiently protected.\label{fig:perms} |
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1318 |
(FIXME: Uses old primrec.)} |
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1319 |
\end{figure} *} |
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1320 |
|
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1321 |
|
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1322 |
text {* |
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1323 |
The simplifier is often used in order to bring terms into a normal form. |
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1324 |
Unfortunately, often the situation arises that the corresponding |
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1325 |
simplification rules will cause the simplifier to run into an infinite |
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1326 |
loop. Consider for example the simple theory about permutations over natural |
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1327 |
numbers shown in Figure~\ref{fig:perms}. The purpose of the lemmas is to |
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1328 |
push permutations as far inside as possible, where they might disappear by |
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1329 |
Lemma @{thm [source] perm_rev}. However, to fully normalise all instances, |
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1330 |
it would be desirable to add also the lemma @{thm [source] perm_compose} to |
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1331 |
the simplifier for pushing permutations over other permutations. Unfortunately, |
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1332 |
the right-hand side of this lemma is again an instance of the left-hand side |
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1333 |
and so causes an infinite loop. The seems to be no easy way to reformulate |
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1334 |
this rule and so one ends up with clunky proofs like: |
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1335 |
*} |
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1336 |
|
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1337 |
lemma |
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1338 |
fixes c d::"nat" and pi\<^isub>1 pi\<^isub>2::"prm" |
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1339 |
shows "pi\<^isub>1\<bullet>(c, pi\<^isub>2\<bullet>((rev pi\<^isub>1)\<bullet>d)) = (pi\<^isub>1\<bullet>c, (pi\<^isub>1\<bullet>pi\<^isub>2)\<bullet>d)" |
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1340 |
apply(simp) |
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1341 |
apply(rule trans) |
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1342 |
apply(rule perm_compose) |
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1343 |
apply(simp) |
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1344 |
done |
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1345 |
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1346 |
text {* |
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1347 |
It is however possible to create a single simplifier tactic that solves |
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1348 |
such proofs. The trick is to introduce an auxiliary constant for permutations |
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1349 |
and split the simplification into two phases (below actually three). Let |
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1350 |
assume the auxiliary constant is |
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1351 |
*} |
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1352 |
|
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1353 |
definition |
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1354 |
perm_aux :: "prm \<Rightarrow> 'a \<Rightarrow> 'a" ("_ \<bullet>aux _" [80,80] 80) |
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1355 |
where |
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1356 |
"pi \<bullet>aux c \<equiv> pi \<bullet> c" |
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1357 |
|
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1358 |
text {* Now the two lemmas *} |
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1359 |
|
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1360 |
lemma perm_aux_expand: |
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1361 |
fixes c::"nat" and pi\<^isub>1 pi\<^isub>2::"prm" |
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1362 |
shows "pi\<^isub>1\<bullet>(pi\<^isub>2\<bullet>c) = pi\<^isub>1 \<bullet>aux (pi\<^isub>2\<bullet>c)" |
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1363 |
unfolding perm_aux_def by (rule refl) |
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1364 |
|
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1365 |
lemma perm_compose_aux: |
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1366 |
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1367 |
shows "pi\<^isub>1\<bullet>(pi\<^isub>2\<bullet>aux c) = (pi\<^isub>1\<bullet>pi\<^isub>2) \<bullet>aux (pi\<^isub>1\<bullet>c)" |
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1368 |
unfolding perm_aux_def by (rule perm_compose) |
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1369 |
|
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1370 |
text {* |
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1371 |
are simple consequence of the definition and @{thm [source] perm_compose}. |
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1372 |
More importantly, the lemma @{thm [source] perm_compose_aux} can be safely |
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1373 |
added to the simplifier, because now the right-hand side is not anymore an instance |
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1374 |
of the left-hand side. In a sense it freezes all redexes of permutation compositions |
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1375 |
after one step. In this way, we can split simplification of permutations |
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1376 |
into three phases without the user not noticing anything about the auxiliary |
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1377 |
contant. We first freeze any instance of permutation compositions in the term using |
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1378 |
lemma @{thm [source] "perm_aux_expand"} (Line 9); |
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|
1379 |
then simplifiy all other permutations including pusing permutations over |
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diff
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|
1380 |
other permutations by rule @{thm [source] perm_compose_aux} (Line 10); and |
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diff
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|
1381 |
finally ``unfreeze'' all instances of permutation compositions by unfolding |
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diff
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|
1382 |
the definition of the auxiliary constant. |
153
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|
1383 |
*} |
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diff
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|
1384 |
|
157
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|
1385 |
ML %linenosgray{*val perm_simp_tac = |
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diff
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|
1386 |
let |
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diff
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|
1387 |
val thms1 = [@{thm perm_aux_expand}] |
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diff
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|
1388 |
val thms2 = [@{thm perm_append}, @{thm perm_eq}, @{thm perm_rev}, |
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|
1389 |
@{thm perm_compose_aux}] @ @{thms perm_prod.simps} @ |
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|
1390 |
@{thms perm_list.simps} @ @{thms perm_nat.simps} |
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|
1391 |
val thms3 = [@{thm perm_aux_def}] |
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diff
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|
1392 |
in |
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diff
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|
1393 |
simp_tac (HOL_basic_ss addsimps thms1) |
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diff
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|
1394 |
THEN' simp_tac (HOL_basic_ss addsimps thms2) |
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diff
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|
1395 |
THEN' simp_tac (HOL_basic_ss addsimps thms3) |
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|
1396 |
end*} |
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diff
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|
1397 |
|
152
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diff
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|
1398 |
text {* |
162
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diff
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|
1399 |
For all three phases we have to build simpsets addig specific lemmas. As is sufficient |
3fb9f820a294
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diff
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|
1400 |
for our purposes here, we can add these lemma to @{ML HOL_basic_ss} in order to obtain |
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diff
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|
1401 |
the desired results. Now we can solve the following lemma |
157
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diff
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|
1402 |
*} |
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diff
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|
1403 |
|
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diff
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|
1404 |
lemma |
76cdc8f562fc
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156
diff
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|
1405 |
fixes c d::"nat" and pi\<^isub>1 pi\<^isub>2::"prm" |
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diff
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|
1406 |
shows "pi\<^isub>1\<bullet>(c, pi\<^isub>2\<bullet>((rev pi\<^isub>1)\<bullet>d)) = (pi\<^isub>1\<bullet>c, (pi\<^isub>1\<bullet>pi\<^isub>2)\<bullet>d)" |
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diff
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|
1407 |
apply(tactic {* perm_simp_tac 1 *}) |
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diff
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|
1408 |
done |
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diff
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|
1409 |
|
152
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diff
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|
1410 |
|
157
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diff
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|
1411 |
text {* |
162
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diff
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|
1412 |
in one step. This tactic can deal with most instances of normalising permutations; |
3fb9f820a294
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diff
changeset
|
1413 |
in order to solve all cases we have to deal with corner-cases such as the |
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161
diff
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|
1414 |
lemma being an exact instance of the permutation composition lemma. This can |
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161
diff
changeset
|
1415 |
often be done easier by implementing a simproc or a conversion. Both will be |
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diff
changeset
|
1416 |
explained in the next two chapters. |
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diff
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|
1417 |
|
157
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diff
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|
1418 |
(FIXME: Is it interesting to say something about @{term "op =simp=>"}?) |
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diff
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|
1419 |
|
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156
diff
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|
1420 |
(FIXME: What are the second components of the congruence rules---something to |
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156
diff
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|
1421 |
do with weak congruence constants?) |
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156
diff
changeset
|
1422 |
|
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diff
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|
1423 |
(FIXME: Anything interesting to say about @{ML Simplifier.clear_ss}?) |
152
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diff
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|
1424 |
|
162
3fb9f820a294
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161
diff
changeset
|
1425 |
(FIXME: @{ML ObjectLogic.full_atomize_tac}, |
152
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151
diff
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|
1426 |
@{ML ObjectLogic.rulify_tac}) |
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diff
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|
1427 |
|
129
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128
diff
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|
1428 |
*} |
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128
diff
changeset
|
1429 |
|
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diff
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|
1430 |
section {* Simprocs *} |
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diff
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|
1431 |
|
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diff
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|
1432 |
text {* |
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diff
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|
1433 |
In Isabelle you can also implement custom simplification procedures, called |
149 | 1434 |
\emph{simprocs}. Simprocs can be triggered by the simplifier on a specified |
1435 |
term-pattern and rewrite a term according to a theorem. They are useful in |
|
1436 |
cases where a rewriting rule must be produced on ``demand'' or when |
|
1437 |
rewriting by simplification is too unpredictable and potentially loops. |
|
129
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128
diff
changeset
|
1438 |
|
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128
diff
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|
1439 |
To see how simprocs work, let us first write a simproc that just prints out |
132 | 1440 |
the pattern which triggers it and otherwise does nothing. For this |
129
e0d368a45537
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128
diff
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|
1441 |
you can use the function: |
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128
diff
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|
1442 |
*} |
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128
diff
changeset
|
1443 |
|
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128
diff
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|
1444 |
ML %linenosgray{*fun fail_sp_aux simpset redex = |
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128
diff
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|
1445 |
let |
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128
diff
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|
1446 |
val ctxt = Simplifier.the_context simpset |
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diff
changeset
|
1447 |
val _ = warning ("The redex: " ^ (str_of_cterm ctxt redex)) |
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128
diff
changeset
|
1448 |
in |
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128
diff
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|
1449 |
NONE |
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diff
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|
1450 |
end*} |
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diff
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|
1451 |
|
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128
diff
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|
1452 |
text {* |
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128
diff
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|
1453 |
This function takes a simpset and a redex (a @{ML_type cterm}) as |
132 | 1454 |
arguments. In Lines 3 and~4, we first extract the context from the given |
129
e0d368a45537
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128
diff
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|
1455 |
simpset and then print out a message containing the redex. The function |
e0d368a45537
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parents:
128
diff
changeset
|
1456 |
returns @{ML NONE} (standing for an optional @{ML_type thm}) since at the |
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128
diff
changeset
|
1457 |
moment we are \emph{not} interested in actually rewriting anything. We want |
130
a21d7b300616
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parents:
129
diff
changeset
|
1458 |
that the simproc is triggered by the pattern @{term "Suc n"}. This can be |
149 | 1459 |
done by adding the simproc to the current simpset as follows |
129
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128
diff
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|
1460 |
*} |
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128
diff
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|
1461 |
|
177 | 1462 |
simproc_setup %gray fail_sp ("Suc n") = {* K fail_sp_aux *} |
129
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128
diff
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|
1463 |
|
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diff
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|
1464 |
text {* |
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128
diff
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|
1465 |
where the second argument specifies the pattern and the right-hand side |
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128
diff
changeset
|
1466 |
contains the code of the simproc (we have to use @{ML K} since we ignoring |
131 | 1467 |
an argument about morphisms\footnote{FIXME: what does the morphism do?}). |
130
a21d7b300616
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129
diff
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|
1468 |
After this, the simplifier is aware of the simproc and you can test whether |
131 | 1469 |
it fires on the lemma: |
129
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diff
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|
1470 |
*} |
120
c39f83d8daeb
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diff
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|
1471 |
|
129
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128
diff
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|
1472 |
lemma shows "Suc 0 = 1" |
178
fb8f22dd8ad0
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177
diff
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|
1473 |
apply(simp) |
129
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diff
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|
1474 |
(*<*)oops(*>*) |
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128
diff
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|
1475 |
|
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diff
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|
1476 |
text {* |
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128
diff
changeset
|
1477 |
This will print out the message twice: once for the left-hand side and |
130
a21d7b300616
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129
diff
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|
1478 |
once for the right-hand side. The reason is that during simplification the |
a21d7b300616
polished the section about simprocs and added an exercise
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parents:
129
diff
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|
1479 |
simplifier will at some point reduce the term @{term "1::nat"} to @{term "Suc |
129
e0d368a45537
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128
diff
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|
1480 |
0"}, and then the simproc ``fires'' also on that term. |
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diff
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|
1481 |
|
131 | 1482 |
We can add or delete the simproc from the current simpset by the usual |
132 | 1483 |
\isacommand{declare}-statement. For example the simproc will be deleted |
1484 |
with the declaration |
|
129
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diff
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|
1485 |
*} |
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diff
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|
1486 |
|
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128
diff
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|
1487 |
declare [[simproc del: fail_sp]] |
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128
diff
changeset
|
1488 |
|
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diff
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|
1489 |
text {* |
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128
diff
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|
1490 |
If you want to see what happens with just \emph{this} simproc, without any |
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128
diff
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|
1491 |
interference from other rewrite rules, you can call @{text fail_sp} |
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128
diff
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|
1492 |
as follows: |
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128
diff
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|
1493 |
*} |
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diff
changeset
|
1494 |
|
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128
diff
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|
1495 |
lemma shows "Suc 0 = 1" |
178
fb8f22dd8ad0
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177
diff
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|
1496 |
apply(tactic {* simp_tac (HOL_basic_ss addsimprocs [@{simproc fail_sp}]) 1*}) |
129
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diff
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|
1497 |
(*<*)oops(*>*) |
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diff
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|
1498 |
|
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diff
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|
1499 |
text {* |
131 | 1500 |
Now the message shows up only once since the term @{term "1::nat"} is |
1501 |
left unchanged. |
|
129
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diff
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|
1502 |
|
178
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diff
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|
1503 |
Setting up a simproc using the command \isacommand{simproc\_setup} will |
129
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128
diff
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|
1504 |
always add automatically the simproc to the current simpset. If you do not |
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128
diff
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|
1505 |
want this, then you have to use a slightly different method for setting |
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128
diff
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|
1506 |
up the simproc. First the function @{ML fail_sp_aux} needs to be modified |
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diff
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|
1507 |
to |
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parents:
128
diff
changeset
|
1508 |
*} |
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parents:
128
diff
changeset
|
1509 |
|
e0d368a45537
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parents:
128
diff
changeset
|
1510 |
ML{*fun fail_sp_aux' simpset redex = |
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parents:
128
diff
changeset
|
1511 |
let |
e0d368a45537
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parents:
128
diff
changeset
|
1512 |
val ctxt = Simplifier.the_context simpset |
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parents:
128
diff
changeset
|
1513 |
val _ = warning ("The redex: " ^ (Syntax.string_of_term ctxt redex)) |
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started a section about simprocs
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parents:
128
diff
changeset
|
1514 |
in |
e0d368a45537
started a section about simprocs
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parents:
128
diff
changeset
|
1515 |
NONE |
e0d368a45537
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parents:
128
diff
changeset
|
1516 |
end*} |
e0d368a45537
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parents:
128
diff
changeset
|
1517 |
|
e0d368a45537
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parents:
128
diff
changeset
|
1518 |
text {* |
130
a21d7b300616
polished the section about simprocs and added an exercise
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parents:
129
diff
changeset
|
1519 |
Here the redex is given as a @{ML_type term}, instead of a @{ML_type cterm} |
a21d7b300616
polished the section about simprocs and added an exercise
Christian Urban <urbanc@in.tum.de>
parents:
129
diff
changeset
|
1520 |
(therefore we printing it out using the function @{ML string_of_term in Syntax}). |
149 | 1521 |
We can turn this function into a proper simproc using the function |
1522 |
@{ML Simplifier.simproc_i}: |
|
93 | 1523 |
*} |
1524 |
||
105
f49dc7e96235
added more to the Tactical section
Christian Urban <urbanc@in.tum.de>
parents:
104
diff
changeset
|
1525 |
|
129
e0d368a45537
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128
diff
changeset
|
1526 |
ML{*val fail_sp' = |
146
4aa8a80e37ff
some polishing about conversions
Christian Urban <urbanc@in.tum.de>
parents:
145
diff
changeset
|
1527 |
let |
4aa8a80e37ff
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Christian Urban <urbanc@in.tum.de>
parents:
145
diff
changeset
|
1528 |
val thy = @{theory} |
4aa8a80e37ff
some polishing about conversions
Christian Urban <urbanc@in.tum.de>
parents:
145
diff
changeset
|
1529 |
val pat = [@{term "Suc n"}] |
4aa8a80e37ff
some polishing about conversions
Christian Urban <urbanc@in.tum.de>
parents:
145
diff
changeset
|
1530 |
in |
4aa8a80e37ff
some polishing about conversions
Christian Urban <urbanc@in.tum.de>
parents:
145
diff
changeset
|
1531 |
Simplifier.simproc_i thy "fail_sp'" pat (K fail_sp_aux') |
4aa8a80e37ff
some polishing about conversions
Christian Urban <urbanc@in.tum.de>
parents:
145
diff
changeset
|
1532 |
end*} |
129
e0d368a45537
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parents:
128
diff
changeset
|
1533 |
|
e0d368a45537
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parents:
128
diff
changeset
|
1534 |
text {* |
e0d368a45537
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Christian Urban <urbanc@in.tum.de>
parents:
128
diff
changeset
|
1535 |
Here the pattern is given as @{ML_type term} (instead of @{ML_type cterm}). |
130
a21d7b300616
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parents:
129
diff
changeset
|
1536 |
The function also takes a list of patterns that can trigger the simproc. |
132 | 1537 |
Now the simproc is set up and can be explicitly added using |
149 | 1538 |
@{ML addsimprocs} to a simpset whenerver |
132 | 1539 |
needed. |
1540 |
||
1541 |
Simprocs are applied from inside to outside and from left to right. You can |
|
1542 |
see this in the proof |
|
129
e0d368a45537
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parents:
128
diff
changeset
|
1543 |
*} |
e0d368a45537
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Christian Urban <urbanc@in.tum.de>
parents:
128
diff
changeset
|
1544 |
|
e0d368a45537
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Christian Urban <urbanc@in.tum.de>
parents:
128
diff
changeset
|
1545 |
lemma shows "Suc (Suc 0) = (Suc 1)" |
177 | 1546 |
apply(tactic {* simp_tac (HOL_basic_ss addsimprocs [fail_sp']) 1*}) |
129
e0d368a45537
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parents:
128
diff
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|
1547 |
(*<*)oops(*>*) |
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parents:
128
diff
changeset
|
1548 |
|
e0d368a45537
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Christian Urban <urbanc@in.tum.de>
parents:
128
diff
changeset
|
1549 |
text {* |
132 | 1550 |
The simproc @{ML fail_sp'} prints out the sequence |
129
e0d368a45537
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Christian Urban <urbanc@in.tum.de>
parents:
128
diff
changeset
|
1551 |
|
130
a21d7b300616
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Christian Urban <urbanc@in.tum.de>
parents:
129
diff
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|
1552 |
@{text [display] |
a21d7b300616
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parents:
129
diff
changeset
|
1553 |
"> Suc 0 |
a21d7b300616
polished the section about simprocs and added an exercise
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parents:
129
diff
changeset
|
1554 |
> Suc (Suc 0) |
a21d7b300616
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parents:
129
diff
changeset
|
1555 |
> Suc 1"} |
a21d7b300616
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parents:
129
diff
changeset
|
1556 |
|
131 | 1557 |
To see how a simproc applies a theorem, let us implement a simproc that |
130
a21d7b300616
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Christian Urban <urbanc@in.tum.de>
parents:
129
diff
changeset
|
1558 |
rewrites terms according to the equation: |
129
e0d368a45537
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parents:
128
diff
changeset
|
1559 |
*} |
e0d368a45537
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parents:
128
diff
changeset
|
1560 |
|
e0d368a45537
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parents:
128
diff
changeset
|
1561 |
lemma plus_one: |
e0d368a45537
started a section about simprocs
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parents:
128
diff
changeset
|
1562 |
shows "Suc n \<equiv> n + 1" by simp |
e0d368a45537
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Christian Urban <urbanc@in.tum.de>
parents:
128
diff
changeset
|
1563 |
|
e0d368a45537
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Christian Urban <urbanc@in.tum.de>
parents:
128
diff
changeset
|
1564 |
text {* |
130
a21d7b300616
polished the section about simprocs and added an exercise
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parents:
129
diff
changeset
|
1565 |
Simprocs expect that the given equation is a meta-equation, however the |
131 | 1566 |
equation can contain preconditions (the simproc then will only fire if the |
132 | 1567 |
preconditions can be solved). To see that one has relatively precise control over |
131 | 1568 |
the rewriting with simprocs, let us further assume we want that the simproc |
1569 |
only rewrites terms ``greater'' than @{term "Suc 0"}. For this we can write |
|
129
e0d368a45537
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parents:
128
diff
changeset
|
1570 |
*} |
e0d368a45537
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parents:
128
diff
changeset
|
1571 |
|
131 | 1572 |
|
130
a21d7b300616
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parents:
129
diff
changeset
|
1573 |
ML{*fun plus_one_sp_aux ss redex = |
129
e0d368a45537
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parents:
128
diff
changeset
|
1574 |
case redex of |
e0d368a45537
started a section about simprocs
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parents:
128
diff
changeset
|
1575 |
@{term "Suc 0"} => NONE |
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parents:
128
diff
changeset
|
1576 |
| _ => SOME @{thm plus_one}*} |
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parents:
128
diff
changeset
|
1577 |
|
e0d368a45537
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parents:
128
diff
changeset
|
1578 |
text {* |
e0d368a45537
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128
diff
changeset
|
1579 |
and set up the simproc as follows. |
e0d368a45537
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parents:
128
diff
changeset
|
1580 |
*} |
e0d368a45537
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parents:
128
diff
changeset
|
1581 |
|
130
a21d7b300616
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parents:
129
diff
changeset
|
1582 |
ML{*val plus_one_sp = |
146
4aa8a80e37ff
some polishing about conversions
Christian Urban <urbanc@in.tum.de>
parents:
145
diff
changeset
|
1583 |
let |
4aa8a80e37ff
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Christian Urban <urbanc@in.tum.de>
parents:
145
diff
changeset
|
1584 |
val thy = @{theory} |
4aa8a80e37ff
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Christian Urban <urbanc@in.tum.de>
parents:
145
diff
changeset
|
1585 |
val pat = [@{term "Suc n"}] |
4aa8a80e37ff
some polishing about conversions
Christian Urban <urbanc@in.tum.de>
parents:
145
diff
changeset
|
1586 |
in |
4aa8a80e37ff
some polishing about conversions
Christian Urban <urbanc@in.tum.de>
parents:
145
diff
changeset
|
1587 |
Simplifier.simproc_i thy "sproc +1" pat (K plus_one_sp_aux) |
4aa8a80e37ff
some polishing about conversions
Christian Urban <urbanc@in.tum.de>
parents:
145
diff
changeset
|
1588 |
end*} |
129
e0d368a45537
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128
diff
changeset
|
1589 |
|
e0d368a45537
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128
diff
changeset
|
1590 |
text {* |
132 | 1591 |
Now the simproc is set up so that it is triggered by terms |
130
a21d7b300616
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Christian Urban <urbanc@in.tum.de>
parents:
129
diff
changeset
|
1592 |
of the form @{term "Suc n"}, but inside the simproc we only produce |
a21d7b300616
polished the section about simprocs and added an exercise
Christian Urban <urbanc@in.tum.de>
parents:
129
diff
changeset
|
1593 |
a theorem if the term is not @{term "Suc 0"}. The result you can see |
131 | 1594 |
in the following proof |
129
e0d368a45537
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parents:
128
diff
changeset
|
1595 |
*} |
e0d368a45537
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parents:
128
diff
changeset
|
1596 |
|
e0d368a45537
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Christian Urban <urbanc@in.tum.de>
parents:
128
diff
changeset
|
1597 |
lemma shows "P (Suc (Suc (Suc 0))) (Suc 0)" |
177 | 1598 |
apply(tactic {* simp_tac (HOL_basic_ss addsimprocs [plus_one_sp]) 1*}) |
129
e0d368a45537
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parents:
128
diff
changeset
|
1599 |
txt{* |
131 | 1600 |
where the simproc produces the goal state |
177 | 1601 |
|
1602 |
\begin{minipage}{\textwidth} |
|
129
e0d368a45537
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parents:
128
diff
changeset
|
1603 |
@{subgoals[display]} |
177 | 1604 |
\end{minipage} |
129
e0d368a45537
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128
diff
changeset
|
1605 |
*} |
e0d368a45537
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parents:
128
diff
changeset
|
1606 |
(*<*)oops(*>*) |
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parents:
128
diff
changeset
|
1607 |
|
e0d368a45537
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Christian Urban <urbanc@in.tum.de>
parents:
128
diff
changeset
|
1608 |
text {* |
133
3e94ccc0f31e
polishing and start of the section about attributes
Christian Urban <urbanc@in.tum.de>
parents:
132
diff
changeset
|
1609 |
As usual with rewriting you have to worry about looping: you already have |
132 | 1610 |
a loop with @{ML plus_one_sp}, if you apply it with the default simpset (because |
1611 |
the default simpset contains a rule which just does the opposite of @{ML plus_one_sp}, |
|
1612 |
namely rewriting @{text [quotes] "+ 1"} to a successor). So you have to be careful |
|
1613 |
in choosing the right simpset to which you add a simproc. |
|
130
a21d7b300616
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Christian Urban <urbanc@in.tum.de>
parents:
129
diff
changeset
|
1614 |
|
132 | 1615 |
Next let us implement a simproc that replaces terms of the form @{term "Suc n"} |
130
a21d7b300616
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Christian Urban <urbanc@in.tum.de>
parents:
129
diff
changeset
|
1616 |
with the number @{text n} increase by one. First we implement a function that |
132 | 1617 |
takes a term and produces the corresponding integer value. |
129
e0d368a45537
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parents:
128
diff
changeset
|
1618 |
*} |
e0d368a45537
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parents:
128
diff
changeset
|
1619 |
|
e0d368a45537
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parents:
128
diff
changeset
|
1620 |
ML{*fun dest_suc_trm ((Const (@{const_name "Suc"}, _)) $ t) = 1 + dest_suc_trm t |
e0d368a45537
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128
diff
changeset
|
1621 |
| dest_suc_trm t = snd (HOLogic.dest_number t)*} |
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parents:
128
diff
changeset
|
1622 |
|
130
a21d7b300616
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Christian Urban <urbanc@in.tum.de>
parents:
129
diff
changeset
|
1623 |
text {* |
a21d7b300616
polished the section about simprocs and added an exercise
Christian Urban <urbanc@in.tum.de>
parents:
129
diff
changeset
|
1624 |
It uses the library function @{ML dest_number in HOLogic} that transforms |
a21d7b300616
polished the section about simprocs and added an exercise
Christian Urban <urbanc@in.tum.de>
parents:
129
diff
changeset
|
1625 |
(Isabelle) terms, like @{term "0::nat"}, @{term "1::nat"}, @{term "2::nat"} and so |
131 | 1626 |
on, into integer values. This function raises the exception @{ML TERM}, if |
130
a21d7b300616
polished the section about simprocs and added an exercise
Christian Urban <urbanc@in.tum.de>
parents:
129
diff
changeset
|
1627 |
the term is not a number. The next function expects a pair consisting of a term |
131 | 1628 |
@{text t} (containing @{term Suc}s) and the corresponding integer value @{text n}. |
130
a21d7b300616
polished the section about simprocs and added an exercise
Christian Urban <urbanc@in.tum.de>
parents:
129
diff
changeset
|
1629 |
*} |
a21d7b300616
polished the section about simprocs and added an exercise
Christian Urban <urbanc@in.tum.de>
parents:
129
diff
changeset
|
1630 |
|
a21d7b300616
polished the section about simprocs and added an exercise
Christian Urban <urbanc@in.tum.de>
parents:
129
diff
changeset
|
1631 |
ML %linenosgray{*fun get_thm ctxt (t, n) = |
a21d7b300616
polished the section about simprocs and added an exercise
Christian Urban <urbanc@in.tum.de>
parents:
129
diff
changeset
|
1632 |
let |
a21d7b300616
polished the section about simprocs and added an exercise
Christian Urban <urbanc@in.tum.de>
parents:
129
diff
changeset
|
1633 |
val num = HOLogic.mk_number @{typ "nat"} n |
132 | 1634 |
val goal = Logic.mk_equals (t, num) |
130
a21d7b300616
polished the section about simprocs and added an exercise
Christian Urban <urbanc@in.tum.de>
parents:
129
diff
changeset
|
1635 |
in |
132 | 1636 |
Goal.prove ctxt [] [] goal (K (arith_tac ctxt 1)) |
130
a21d7b300616
polished the section about simprocs and added an exercise
Christian Urban <urbanc@in.tum.de>
parents:
129
diff
changeset
|
1637 |
end*} |
a21d7b300616
polished the section about simprocs and added an exercise
Christian Urban <urbanc@in.tum.de>
parents:
129
diff
changeset
|
1638 |
|
a21d7b300616
polished the section about simprocs and added an exercise
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parents:
129
diff
changeset
|
1639 |
text {* |
132 | 1640 |
From the integer value it generates the corresponding number term, called |
1641 |
@{text num} (Line 3), and then generates the meta-equation @{text "t \<equiv> num"} |
|
1642 |
(Line 4), which it proves by the arithmetic tactic in Line 6. |
|
1643 |
||
134 | 1644 |
For our purpose at the moment, proving the meta-equation using @{ML arith_tac} is |
132 | 1645 |
fine, but there is also an alternative employing the simplifier with a very |
1646 |
restricted simpset. For the kind of lemmas we want to prove, the simpset |
|
1647 |
@{text "num_ss"} in the code will suffice. |
|
1648 |
*} |
|
131 | 1649 |
|
132 | 1650 |
ML{*fun get_thm_alt ctxt (t, n) = |
1651 |
let |
|
1652 |
val num = HOLogic.mk_number @{typ "nat"} n |
|
1653 |
val goal = Logic.mk_equals (t, num) |
|
1654 |
val num_ss = HOL_ss addsimps [@{thm One_nat_def}, @{thm Let_def}] @ |
|
1655 |
@{thms nat_number} @ @{thms neg_simps} @ @{thms plus_nat.simps} |
|
1656 |
in |
|
1657 |
Goal.prove ctxt [] [] goal (K (simp_tac num_ss 1)) |
|
1658 |
end*} |
|
130
a21d7b300616
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129
diff
changeset
|
1659 |
|
132 | 1660 |
text {* |
1661 |
The advantage of @{ML get_thm_alt} is that it leaves very little room for |
|
1662 |
something to go wrong; in contrast it is much more difficult to predict |
|
1663 |
what happens with @{ML arith_tac}, especially in more complicated |
|
1664 |
circumstances. The disatvantage of @{ML get_thm_alt} is to find a simpset |
|
1665 |
that is sufficiently powerful to solve every instance of the lemmas |
|
1666 |
we like to prove. This requires careful tuning, but is often necessary in |
|
1667 |
``production code''.\footnote{It would be of great help if there is another |
|
1668 |
way than tracing the simplifier to obtain the lemmas that are successfully |
|
1669 |
applied during simplification. Alas, there is none.} |
|
1670 |
||
1671 |
Anyway, either version can be used in the function that produces the actual |
|
1672 |
theorem for the simproc. |
|
130
a21d7b300616
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Christian Urban <urbanc@in.tum.de>
parents:
129
diff
changeset
|
1673 |
*} |
129
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Christian Urban <urbanc@in.tum.de>
parents:
128
diff
changeset
|
1674 |
|
e0d368a45537
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Christian Urban <urbanc@in.tum.de>
parents:
128
diff
changeset
|
1675 |
ML{*fun nat_number_sp_aux ss t = |
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parents:
128
diff
changeset
|
1676 |
let |
e0d368a45537
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128
diff
changeset
|
1677 |
val ctxt = Simplifier.the_context ss |
e0d368a45537
started a section about simprocs
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parents:
128
diff
changeset
|
1678 |
in |
130
a21d7b300616
polished the section about simprocs and added an exercise
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parents:
129
diff
changeset
|
1679 |
SOME (get_thm ctxt (t, dest_suc_trm t)) |
129
e0d368a45537
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Christian Urban <urbanc@in.tum.de>
parents:
128
diff
changeset
|
1680 |
handle TERM _ => NONE |
e0d368a45537
started a section about simprocs
Christian Urban <urbanc@in.tum.de>
parents:
128
diff
changeset
|
1681 |
end*} |
e0d368a45537
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Christian Urban <urbanc@in.tum.de>
parents:
128
diff
changeset
|
1682 |
|
e0d368a45537
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Christian Urban <urbanc@in.tum.de>
parents:
128
diff
changeset
|
1683 |
text {* |
130
a21d7b300616
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parents:
129
diff
changeset
|
1684 |
This function uses the fact that @{ML dest_suc_trm} might throw an exception |
a21d7b300616
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Christian Urban <urbanc@in.tum.de>
parents:
129
diff
changeset
|
1685 |
@{ML TERM}. In this case there is nothing that can be rewritten and therefore no |
131 | 1686 |
theorem is produced (i.e.~the function returns @{ML NONE}). To try out the simproc |
1687 |
on an example, you can set it up as follows: |
|
129
e0d368a45537
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Christian Urban <urbanc@in.tum.de>
parents:
128
diff
changeset
|
1688 |
*} |
e0d368a45537
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Christian Urban <urbanc@in.tum.de>
parents:
128
diff
changeset
|
1689 |
|
130
a21d7b300616
polished the section about simprocs and added an exercise
Christian Urban <urbanc@in.tum.de>
parents:
129
diff
changeset
|
1690 |
ML{*val nat_number_sp = |
132 | 1691 |
let |
1692 |
val thy = @{theory} |
|
1693 |
val pat = [@{term "Suc n"}] |
|
1694 |
in |
|
1695 |
Simplifier.simproc_i thy "nat_number" pat (K nat_number_sp_aux) |
|
1696 |
end*} |
|
130
a21d7b300616
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Christian Urban <urbanc@in.tum.de>
parents:
129
diff
changeset
|
1697 |
|
a21d7b300616
polished the section about simprocs and added an exercise
Christian Urban <urbanc@in.tum.de>
parents:
129
diff
changeset
|
1698 |
text {* |
a21d7b300616
polished the section about simprocs and added an exercise
Christian Urban <urbanc@in.tum.de>
parents:
129
diff
changeset
|
1699 |
Now in the lemma |
a21d7b300616
polished the section about simprocs and added an exercise
Christian Urban <urbanc@in.tum.de>
parents:
129
diff
changeset
|
1700 |
*} |
129
e0d368a45537
started a section about simprocs
Christian Urban <urbanc@in.tum.de>
parents:
128
diff
changeset
|
1701 |
|
e0d368a45537
started a section about simprocs
Christian Urban <urbanc@in.tum.de>
parents:
128
diff
changeset
|
1702 |
lemma "P (Suc (Suc 2)) (Suc 99) (0::nat) (Suc 4 + Suc 0) (Suc (0 + 0))" |
177 | 1703 |
apply(tactic {* simp_tac (HOL_ss addsimprocs [nat_number_sp]) 1*}) |
129
e0d368a45537
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Christian Urban <urbanc@in.tum.de>
parents:
128
diff
changeset
|
1704 |
txt {* |
130
a21d7b300616
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Christian Urban <urbanc@in.tum.de>
parents:
129
diff
changeset
|
1705 |
you obtain the more legible goal state |
a21d7b300616
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Christian Urban <urbanc@in.tum.de>
parents:
129
diff
changeset
|
1706 |
|
177 | 1707 |
\begin{minipage}{\textwidth} |
129
e0d368a45537
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parents:
128
diff
changeset
|
1708 |
@{subgoals [display]} |
177 | 1709 |
\end{minipage} |
129
e0d368a45537
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Christian Urban <urbanc@in.tum.de>
parents:
128
diff
changeset
|
1710 |
*} |
e0d368a45537
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Christian Urban <urbanc@in.tum.de>
parents:
128
diff
changeset
|
1711 |
(*<*)oops(*>*) |
e0d368a45537
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parents:
128
diff
changeset
|
1712 |
|
130
a21d7b300616
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Christian Urban <urbanc@in.tum.de>
parents:
129
diff
changeset
|
1713 |
text {* |
132 | 1714 |
where the simproc rewrites all @{term "Suc"}s except in the last argument. There it cannot |
130
a21d7b300616
polished the section about simprocs and added an exercise
Christian Urban <urbanc@in.tum.de>
parents:
129
diff
changeset
|
1715 |
rewrite anything, because it does not know how to transform the term @{term "Suc (0 + 0)"} |
a21d7b300616
polished the section about simprocs and added an exercise
Christian Urban <urbanc@in.tum.de>
parents:
129
diff
changeset
|
1716 |
into a number. To solve this problem have a look at the next exercise. |
a21d7b300616
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Christian Urban <urbanc@in.tum.de>
parents:
129
diff
changeset
|
1717 |
|
a21d7b300616
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Christian Urban <urbanc@in.tum.de>
parents:
129
diff
changeset
|
1718 |
\begin{exercise}\label{ex:addsimproc} |
a21d7b300616
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Christian Urban <urbanc@in.tum.de>
parents:
129
diff
changeset
|
1719 |
Write a simproc that replaces terms of the form @{term "t\<^isub>1 + t\<^isub>2"} by their |
a21d7b300616
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Christian Urban <urbanc@in.tum.de>
parents:
129
diff
changeset
|
1720 |
result. You can assume the terms are ``proper'' numbers, that is of the form |
a21d7b300616
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Christian Urban <urbanc@in.tum.de>
parents:
129
diff
changeset
|
1721 |
@{term "0::nat"}, @{term "1::nat"}, @{term "2::nat"} and so on. |
a21d7b300616
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Christian Urban <urbanc@in.tum.de>
parents:
129
diff
changeset
|
1722 |
\end{exercise} |
a21d7b300616
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Christian Urban <urbanc@in.tum.de>
parents:
129
diff
changeset
|
1723 |
|
a21d7b300616
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Christian Urban <urbanc@in.tum.de>
parents:
129
diff
changeset
|
1724 |
(FIXME: We did not do anything with morphisms. Anything interesting |
a21d7b300616
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Christian Urban <urbanc@in.tum.de>
parents:
129
diff
changeset
|
1725 |
one can say about them?) |
a21d7b300616
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Christian Urban <urbanc@in.tum.de>
parents:
129
diff
changeset
|
1726 |
*} |
129
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Christian Urban <urbanc@in.tum.de>
parents:
128
diff
changeset
|
1727 |
|
137 | 1728 |
section {* Conversions\label{sec:conversion} *} |
132 | 1729 |
|
135 | 1730 |
text {* |
145
f1ba430a5e7d
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Christian Urban <urbanc@in.tum.de>
parents:
142
diff
changeset
|
1731 |
|
147
6dafb0815ae6
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Christian Urban <urbanc@in.tum.de>
parents:
146
diff
changeset
|
1732 |
Conversions are a thin layer on top of Isabelle's inference kernel, and |
169 | 1733 |
can be viewed as a controllable, bare-bone version of Isabelle's simplifier. |
147
6dafb0815ae6
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Christian Urban <urbanc@in.tum.de>
parents:
146
diff
changeset
|
1734 |
One difference between conversions and the simplifier is that the former |
6dafb0815ae6
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Christian Urban <urbanc@in.tum.de>
parents:
146
diff
changeset
|
1735 |
act on @{ML_type cterm}s while the latter acts on @{ML_type thm}s. |
6dafb0815ae6
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Christian Urban <urbanc@in.tum.de>
parents:
146
diff
changeset
|
1736 |
However, we will also show in this section how conversions can be applied |
6dafb0815ae6
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Christian Urban <urbanc@in.tum.de>
parents:
146
diff
changeset
|
1737 |
to theorems via tactics. The type for conversions is |
135 | 1738 |
*} |
1739 |
||
145
f1ba430a5e7d
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Christian Urban <urbanc@in.tum.de>
parents:
142
diff
changeset
|
1740 |
ML{*type conv = Thm.cterm -> Thm.thm*} |
135 | 1741 |
|
1742 |
text {* |
|
147
6dafb0815ae6
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Christian Urban <urbanc@in.tum.de>
parents:
146
diff
changeset
|
1743 |
whereby the produced theorem is always a meta-equality. A simple conversion |
6dafb0815ae6
more polishing of the conversion section
Christian Urban <urbanc@in.tum.de>
parents:
146
diff
changeset
|
1744 |
is the function @{ML "Conv.all_conv"}, which maps a @{ML_type cterm} to an |
6dafb0815ae6
more polishing of the conversion section
Christian Urban <urbanc@in.tum.de>
parents:
146
diff
changeset
|
1745 |
instance of the (meta)reflexivity theorem. For example: |
135 | 1746 |
|
145
f1ba430a5e7d
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Christian Urban <urbanc@in.tum.de>
parents:
142
diff
changeset
|
1747 |
@{ML_response_fake [display,gray] |
146
4aa8a80e37ff
some polishing about conversions
Christian Urban <urbanc@in.tum.de>
parents:
145
diff
changeset
|
1748 |
"Conv.all_conv @{cterm \"Foo \<or> Bar\"}" |
4aa8a80e37ff
some polishing about conversions
Christian Urban <urbanc@in.tum.de>
parents:
145
diff
changeset
|
1749 |
"Foo \<or> Bar \<equiv> Foo \<or> Bar"} |
4aa8a80e37ff
some polishing about conversions
Christian Urban <urbanc@in.tum.de>
parents:
145
diff
changeset
|
1750 |
|
147
6dafb0815ae6
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Christian Urban <urbanc@in.tum.de>
parents:
146
diff
changeset
|
1751 |
Another simple conversion is @{ML Conv.no_conv} which always raises the |
6dafb0815ae6
more polishing of the conversion section
Christian Urban <urbanc@in.tum.de>
parents:
146
diff
changeset
|
1752 |
exception @{ML CTERM}. |
135 | 1753 |
|
145
f1ba430a5e7d
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parents:
142
diff
changeset
|
1754 |
@{ML_response_fake [display,gray] |
f1ba430a5e7d
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Christian Urban <urbanc@in.tum.de>
parents:
142
diff
changeset
|
1755 |
"Conv.no_conv @{cterm True}" |
f1ba430a5e7d
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Christian Urban <urbanc@in.tum.de>
parents:
142
diff
changeset
|
1756 |
"*** Exception- CTERM (\"no conversion\", []) raised"} |
f1ba430a5e7d
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Christian Urban <urbanc@in.tum.de>
parents:
142
diff
changeset
|
1757 |
|
146
4aa8a80e37ff
some polishing about conversions
Christian Urban <urbanc@in.tum.de>
parents:
145
diff
changeset
|
1758 |
A more interesting conversion is the function @{ML "Thm.beta_conversion"}: it |
160
cc9359bfacf4
redefined the functions warning and tracing in order to properly match more antiquotations
Christian Urban <urbanc@in.tum.de>
parents:
158
diff
changeset
|
1759 |
produces a meta-equation between a term and its beta-normal form. For example |
142 | 1760 |
|
145
f1ba430a5e7d
some very slight polishing on the conversion section
Christian Urban <urbanc@in.tum.de>
parents:
142
diff
changeset
|
1761 |
@{ML_response_fake [display,gray] |
146
4aa8a80e37ff
some polishing about conversions
Christian Urban <urbanc@in.tum.de>
parents:
145
diff
changeset
|
1762 |
"let |
4aa8a80e37ff
some polishing about conversions
Christian Urban <urbanc@in.tum.de>
parents:
145
diff
changeset
|
1763 |
val add = @{cterm \"\<lambda>x y. x + (y::nat)\"} |
4aa8a80e37ff
some polishing about conversions
Christian Urban <urbanc@in.tum.de>
parents:
145
diff
changeset
|
1764 |
val two = @{cterm \"2::nat\"} |
4aa8a80e37ff
some polishing about conversions
Christian Urban <urbanc@in.tum.de>
parents:
145
diff
changeset
|
1765 |
val ten = @{cterm \"10::nat\"} |
4aa8a80e37ff
some polishing about conversions
Christian Urban <urbanc@in.tum.de>
parents:
145
diff
changeset
|
1766 |
in |
4aa8a80e37ff
some polishing about conversions
Christian Urban <urbanc@in.tum.de>
parents:
145
diff
changeset
|
1767 |
Thm.beta_conversion true (Thm.capply (Thm.capply add two) ten) |
4aa8a80e37ff
some polishing about conversions
Christian Urban <urbanc@in.tum.de>
parents:
145
diff
changeset
|
1768 |
end" |
4aa8a80e37ff
some polishing about conversions
Christian Urban <urbanc@in.tum.de>
parents:
145
diff
changeset
|
1769 |
"((\<lambda>x y. x + y) 2) 10 \<equiv> 2 + 10"} |
4aa8a80e37ff
some polishing about conversions
Christian Urban <urbanc@in.tum.de>
parents:
145
diff
changeset
|
1770 |
|
147
6dafb0815ae6
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Christian Urban <urbanc@in.tum.de>
parents:
146
diff
changeset
|
1771 |
Note that the actual response in this example is @{term "2 + 10 \<equiv> 2 + (10::nat)"}, |
160
cc9359bfacf4
redefined the functions warning and tracing in order to properly match more antiquotations
Christian Urban <urbanc@in.tum.de>
parents:
158
diff
changeset
|
1772 |
since the pretty-printer for @{ML_type cterm}s already beta-normalises terms. |
174 | 1773 |
But how we constructed the term (using the function |
1774 |
@{ML Thm.capply}, which is the application @{ML $} for @{ML_type cterm}s) |
|
1775 |
ensures that the left-hand side must contain beta-redexes. Indeed |
|
147
6dafb0815ae6
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Christian Urban <urbanc@in.tum.de>
parents:
146
diff
changeset
|
1776 |
if we obtain the ``raw'' representation of the produced theorem, we |
6dafb0815ae6
more polishing of the conversion section
Christian Urban <urbanc@in.tum.de>
parents:
146
diff
changeset
|
1777 |
can see the difference: |
6dafb0815ae6
more polishing of the conversion section
Christian Urban <urbanc@in.tum.de>
parents:
146
diff
changeset
|
1778 |
|
6dafb0815ae6
more polishing of the conversion section
Christian Urban <urbanc@in.tum.de>
parents:
146
diff
changeset
|
1779 |
@{ML_response [display,gray] |
6dafb0815ae6
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Christian Urban <urbanc@in.tum.de>
parents:
146
diff
changeset
|
1780 |
"let |
6dafb0815ae6
more polishing of the conversion section
Christian Urban <urbanc@in.tum.de>
parents:
146
diff
changeset
|
1781 |
val add = @{cterm \"\<lambda>x y. x + (y::nat)\"} |
6dafb0815ae6
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Christian Urban <urbanc@in.tum.de>
parents:
146
diff
changeset
|
1782 |
val two = @{cterm \"2::nat\"} |
6dafb0815ae6
more polishing of the conversion section
Christian Urban <urbanc@in.tum.de>
parents:
146
diff
changeset
|
1783 |
val ten = @{cterm \"10::nat\"} |
160
cc9359bfacf4
redefined the functions warning and tracing in order to properly match more antiquotations
Christian Urban <urbanc@in.tum.de>
parents:
158
diff
changeset
|
1784 |
val thm = Thm.beta_conversion true (Thm.capply (Thm.capply add two) ten) |
147
6dafb0815ae6
more polishing of the conversion section
Christian Urban <urbanc@in.tum.de>
parents:
146
diff
changeset
|
1785 |
in |
160
cc9359bfacf4
redefined the functions warning and tracing in order to properly match more antiquotations
Christian Urban <urbanc@in.tum.de>
parents:
158
diff
changeset
|
1786 |
#prop (rep_thm thm) |
147
6dafb0815ae6
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Christian Urban <urbanc@in.tum.de>
parents:
146
diff
changeset
|
1787 |
end" |
6dafb0815ae6
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Christian Urban <urbanc@in.tum.de>
parents:
146
diff
changeset
|
1788 |
"Const (\"==\",\<dots>) $ |
6dafb0815ae6
more polishing of the conversion section
Christian Urban <urbanc@in.tum.de>
parents:
146
diff
changeset
|
1789 |
(Abs (\"x\",\<dots>,Abs (\"y\",\<dots>,\<dots>)) $\<dots>$\<dots>) $ |
6dafb0815ae6
more polishing of the conversion section
Christian Urban <urbanc@in.tum.de>
parents:
146
diff
changeset
|
1790 |
(Const (\"HOL.plus_class.plus\",\<dots>) $ \<dots> $ \<dots>)"} |
142 | 1791 |
|
146
4aa8a80e37ff
some polishing about conversions
Christian Urban <urbanc@in.tum.de>
parents:
145
diff
changeset
|
1792 |
The argument @{ML true} in @{ML Thm.beta_conversion} indicates that |
147
6dafb0815ae6
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Christian Urban <urbanc@in.tum.de>
parents:
146
diff
changeset
|
1793 |
the right-hand side will be fully beta-normalised. If instead |
6dafb0815ae6
more polishing of the conversion section
Christian Urban <urbanc@in.tum.de>
parents:
146
diff
changeset
|
1794 |
@{ML false} is given, then only a single beta-reduction is performed |
6dafb0815ae6
more polishing of the conversion section
Christian Urban <urbanc@in.tum.de>
parents:
146
diff
changeset
|
1795 |
on the outer-most level. For example |
146
4aa8a80e37ff
some polishing about conversions
Christian Urban <urbanc@in.tum.de>
parents:
145
diff
changeset
|
1796 |
|
4aa8a80e37ff
some polishing about conversions
Christian Urban <urbanc@in.tum.de>
parents:
145
diff
changeset
|
1797 |
@{ML_response_fake [display,gray] |
4aa8a80e37ff
some polishing about conversions
Christian Urban <urbanc@in.tum.de>
parents:
145
diff
changeset
|
1798 |
"let |
4aa8a80e37ff
some polishing about conversions
Christian Urban <urbanc@in.tum.de>
parents:
145
diff
changeset
|
1799 |
val add = @{cterm \"\<lambda>x y. x + (y::nat)\"} |
4aa8a80e37ff
some polishing about conversions
Christian Urban <urbanc@in.tum.de>
parents:
145
diff
changeset
|
1800 |
val two = @{cterm \"2::nat\"} |
4aa8a80e37ff
some polishing about conversions
Christian Urban <urbanc@in.tum.de>
parents:
145
diff
changeset
|
1801 |
in |
4aa8a80e37ff
some polishing about conversions
Christian Urban <urbanc@in.tum.de>
parents:
145
diff
changeset
|
1802 |
Thm.beta_conversion false (Thm.capply add two) |
4aa8a80e37ff
some polishing about conversions
Christian Urban <urbanc@in.tum.de>
parents:
145
diff
changeset
|
1803 |
end" |
4aa8a80e37ff
some polishing about conversions
Christian Urban <urbanc@in.tum.de>
parents:
145
diff
changeset
|
1804 |
"((\<lambda>x y. x + y) 2) \<equiv> \<lambda>y. 2 + y"} |
4aa8a80e37ff
some polishing about conversions
Christian Urban <urbanc@in.tum.de>
parents:
145
diff
changeset
|
1805 |
|
4aa8a80e37ff
some polishing about conversions
Christian Urban <urbanc@in.tum.de>
parents:
145
diff
changeset
|
1806 |
Again, we actually see as output only the fully normalised term |
147
6dafb0815ae6
more polishing of the conversion section
Christian Urban <urbanc@in.tum.de>
parents:
146
diff
changeset
|
1807 |
@{text "\<lambda>y. 2 + y"}. |
146
4aa8a80e37ff
some polishing about conversions
Christian Urban <urbanc@in.tum.de>
parents:
145
diff
changeset
|
1808 |
|
147
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Christian Urban <urbanc@in.tum.de>
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1809 |
The main point of conversions is that they can be used for rewriting |
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1810 |
@{ML_type cterm}s. To do this you can use the function @{ML |
160
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1811 |
"Conv.rewr_conv"}, which expects a meta-equation as an argument. Suppose we |
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1812 |
want to rewrite a @{ML_type cterm} according to the meta-equation: |
135 | 1813 |
*} |
1814 |
||
139 | 1815 |
lemma true_conj1: "True \<and> P \<equiv> P" by simp |
135 | 1816 |
|
146
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1817 |
text {* |
160
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1818 |
You can see how this function works in the example rewriting |
174 | 1819 |
@{term "True \<and> (Foo \<longrightarrow> Bar)"} to @{term "Foo \<longrightarrow> Bar"}. |
139 | 1820 |
|
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1821 |
@{ML_response_fake [display,gray] |
146
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|
1822 |
"let |
149 | 1823 |
val ctrm = @{cterm \"True \<and> (Foo \<longrightarrow> Bar)\"} |
146
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|
1824 |
in |
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|
1825 |
Conv.rewr_conv @{thm true_conj1} ctrm |
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1826 |
end" |
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|
1827 |
"True \<and> (Foo \<longrightarrow> Bar) \<equiv> Foo \<longrightarrow> Bar"} |
139 | 1828 |
|
147
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1829 |
Note, however, that the function @{ML Conv.rewr_conv} only rewrites the |
160
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1830 |
outer-most level of the @{ML_type cterm}. If the given @{ML_type cterm} does not match |
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1831 |
exactly the |
147
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|
1832 |
left-hand side of the theorem, then @{ML Conv.rewr_conv} raises |
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|
1833 |
the exception @{ML CTERM}. |
146
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|
1834 |
|
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|
1835 |
This very primitive way of rewriting can be made more powerful by |
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1836 |
combining several conversions into one. For this you can use conversion |
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1837 |
combinators. The simplest conversion combinator is @{ML then_conv}, |
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|
1838 |
which applies one conversion after another. For example |
139 | 1839 |
|
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|
1840 |
@{ML_response_fake [display,gray] |
146
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|
1841 |
"let |
147
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|
1842 |
val conv1 = Thm.beta_conversion false |
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|
1843 |
val conv2 = Conv.rewr_conv @{thm true_conj1} |
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|
1844 |
val ctrm = Thm.capply @{cterm \"\<lambda>x. x \<and> False\"} @{cterm \"True\"} |
146
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|
1845 |
in |
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|
1846 |
(conv1 then_conv conv2) ctrm |
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|
1847 |
end" |
145
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|
1848 |
"(\<lambda>x. x \<and> False) True \<equiv> False"} |
139 | 1849 |
|
147
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|
1850 |
where we first beta-reduce the term and then rewrite according to |
149 | 1851 |
@{thm [source] true_conj1}. (Recall the problem with the pretty-printer |
1852 |
normalising all terms.) |
|
147
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|
1853 |
|
146
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|
1854 |
The conversion combinator @{ML else_conv} tries out the |
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|
1855 |
first one, and if it does not apply, tries the second. For example |
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|
1856 |
|
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|
1857 |
@{ML_response_fake [display,gray] |
146
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|
1858 |
"let |
147
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|
1859 |
val conv = Conv.rewr_conv @{thm true_conj1} else_conv Conv.all_conv |
146
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|
1860 |
val ctrm1 = @{cterm \"True \<and> Q\"} |
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|
1861 |
val ctrm2 = @{cterm \"P \<or> (True \<and> Q)\"} |
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|
1862 |
in |
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|
1863 |
(conv ctrm1, conv ctrm2) |
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|
1864 |
end" |
147
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|
1865 |
"(True \<and> Q \<equiv> Q, P \<or> True \<and> Q \<equiv> P \<or> True \<and> Q)"} |
146
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|
1866 |
|
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|
1867 |
Here the conversion of @{thm [source] true_conj1} only applies |
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|
1868 |
in the first case, but fails in the second. The whole conversion |
151
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|
1869 |
does not fail, however, because the combinator @{ML Conv.else_conv} will then |
147
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|
1870 |
try out @{ML Conv.all_conv}, which always succeeds. |
146
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|
1871 |
|
174 | 1872 |
The conversion combinator @{ML Conv.try_conv} constructs a conversion |
1873 |
which is tried out on a term, but in case of failure just does nothing. |
|
1874 |
For example |
|
1875 |
||
1876 |
@{ML_response_fake [display,gray] |
|
1877 |
"Conv.try_conv (Conv.rewr_conv @{thm true_conj1}) @{cterm \"True \<or> P\"}" |
|
1878 |
"True \<or> P \<equiv> True \<or> P"} |
|
1879 |
||
149 | 1880 |
Apart from the function @{ML beta_conversion in Thm}, which is able to fully |
1881 |
beta-normalise a term, the conversions so far are restricted in that they |
|
147
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|
1882 |
only apply to the outer-most level of a @{ML_type cterm}. In what follows we |
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|
1883 |
will lift this restriction. The combinator @{ML Conv.arg_conv} will apply |
149 | 1884 |
the conversion to the first argument of an application, that is the term |
147
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|
1885 |
must be of the form @{ML "t1 $ t2" for t1 t2} and the conversion is applied |
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|
1886 |
to @{text t2}. For example |
139 | 1887 |
|
145
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|
1888 |
@{ML_response_fake [display,gray] |
146
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|
1889 |
"let |
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|
1890 |
val conv = Conv.rewr_conv @{thm true_conj1} |
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|
1891 |
val ctrm = @{cterm \"P \<or> (True \<and> Q)\"} |
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|
1892 |
in |
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|
1893 |
Conv.arg_conv conv ctrm |
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|
1894 |
end" |
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|
1895 |
"P \<or> (True \<and> Q) \<equiv> P \<or> Q"} |
139 | 1896 |
|
147
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|
1897 |
The reason for this behaviour is that @{text "(op \<or>)"} expects two |
160
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|
1898 |
arguments. Therefore the term must be of the form @{text "(Const \<dots> $ t1) $ t2"}. The |
147
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|
1899 |
conversion is then applied to @{text "t2"} which in the example above |
150
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|
1900 |
stands for @{term "True \<and> Q"}. The function @{ML Conv.fun_conv} applies |
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|
1901 |
the conversion to the first argument of an application. |
147
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|
1902 |
|
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|
1903 |
The function @{ML Conv.abs_conv} applies a conversion under an abstractions. |
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|
1904 |
For example: |
139 | 1905 |
|
147
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|
1906 |
@{ML_response_fake [display,gray] |
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|
1907 |
"let |
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|
1908 |
val conv = K (Conv.rewr_conv @{thm true_conj1}) |
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|
1909 |
val ctrm = @{cterm \"\<lambda>P. True \<and> P \<and> Foo\"} |
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|
1910 |
in |
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|
1911 |
Conv.abs_conv conv @{context} ctrm |
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|
1912 |
end" |
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|
1913 |
"\<lambda>P. True \<and> P \<and> Foo \<equiv> \<lambda>P. P \<and> Foo"} |
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|
1914 |
|
160
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|
1915 |
Note that this conversion needs a context as an argument. The conversion that |
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|
1916 |
goes under an application is @{ML Conv.combination_conv}. It expects two conversions |
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|
1917 |
as arguments, each of which is applied to the corresponding ``branch'' of the |
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|
1918 |
application. |
147
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|
1919 |
|
160
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|
1920 |
We can now apply all these functions in a conversion that recursively |
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|
1921 |
descends a term and applies a ``@{thm [source] true_conj1}''-conversion |
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|
1922 |
in all possible positions. |
146
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|
1923 |
*} |
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|
1924 |
|
147
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|
1925 |
ML %linenosgray{*fun all_true1_conv ctxt ctrm = |
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|
1926 |
case (Thm.term_of ctrm) of |
142 | 1927 |
@{term "op \<and>"} $ @{term True} $ _ => |
1928 |
(Conv.arg_conv (all_true1_conv ctxt) then_conv |
|
147
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|
1929 |
Conv.rewr_conv @{thm true_conj1}) ctrm |
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|
1930 |
| _ $ _ => Conv.combination_conv |
160
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|
1931 |
(all_true1_conv ctxt) (all_true1_conv ctxt) ctrm |
147
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|
1932 |
| Abs _ => Conv.abs_conv (fn (_, ctxt) => all_true1_conv ctxt) ctxt ctrm |
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|
1933 |
| _ => Conv.all_conv ctrm*} |
139 | 1934 |
|
1935 |
text {* |
|
160
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|
1936 |
This function ``fires'' if the terms is of the form @{text "True \<and> \<dots>"}; |
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|
1937 |
it descends under applications (Line 6 and 7) and abstractions |
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|
1938 |
(Line 8); otherwise it leaves the term unchanged (Line 9). In Line 2 |
149 | 1939 |
we need to transform the @{ML_type cterm} into a @{ML_type term} in order |
1940 |
to be able to pattern-match the term. To see this |
|
160
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|
1941 |
conversion in action, consider the following example: |
139 | 1942 |
|
147
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|
1943 |
@{ML_response_fake [display,gray] |
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diff
changeset
|
1944 |
"let |
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|
1945 |
val ctxt = @{context} |
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|
1946 |
val ctrm = @{cterm \"distinct [1, x] \<longrightarrow> True \<and> 1 \<noteq> x\"} |
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|
1947 |
in |
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1948 |
all_true1_conv ctxt ctrm |
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1949 |
end" |
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1950 |
"distinct [1, x] \<longrightarrow> True \<and> 1 \<noteq> x \<equiv> distinct [1, x] \<longrightarrow> 1 \<noteq> x"} |
139 | 1951 |
|
149 | 1952 |
To see how much control you have about rewriting by using conversions, let us |
147
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1953 |
make the task a bit more complicated by rewriting according to the rule |
149 | 1954 |
@{text true_conj1}, but only in the first arguments of @{term If}s. Then |
147
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1955 |
the conversion should be as follows. |
135 | 1956 |
*} |
1957 |
||
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1958 |
ML{*fun if_true1_conv ctxt ctrm = |
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1959 |
case Thm.term_of ctrm of |
142 | 1960 |
Const (@{const_name If}, _) $ _ => |
147
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1961 |
Conv.arg_conv (all_true1_conv ctxt) ctrm |
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1962 |
| _ $ _ => Conv.combination_conv |
160
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|
1963 |
(if_true1_conv ctxt) (if_true1_conv ctxt) ctrm |
147
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|
1964 |
| Abs _ => Conv.abs_conv (fn (_, ctxt) => if_true1_conv ctxt) ctxt ctrm |
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1965 |
| _ => Conv.all_conv ctrm *} |
135 | 1966 |
|
139 | 1967 |
text {* |
149 | 1968 |
Here is an example for this conversion: |
139 | 1969 |
|
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1970 |
@{ML_response_fake [display,gray] |
147
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1971 |
"let |
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1972 |
val ctxt = @{context} |
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1973 |
val ctrm = |
160
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1974 |
@{cterm \"if P (True \<and> 1 \<noteq> 2) then True \<and> True else True \<and> False\"} |
147
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1975 |
in |
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1976 |
if_true1_conv ctxt ctrm |
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1977 |
end" |
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1978 |
"if P (True \<and> 1 \<noteq> 2) then True \<and> True else True \<and> False |
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1979 |
\<equiv> if P (1 \<noteq> 2) then True \<and> True else True \<and> False"} |
135 | 1980 |
*} |
1981 |
||
1982 |
text {* |
|
147
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1983 |
So far we only applied conversions to @{ML_type cterm}s. Conversions can, however, |
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1984 |
also work on theorems using the function @{ML "Conv.fconv_rule"}. As an example, |
149 | 1985 |
consider the conversion @{ML all_true1_conv} and the lemma: |
147
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1986 |
*} |
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1987 |
|
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1988 |
lemma foo_test: "P \<or> (True \<and> \<not>P)" by simp |
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1989 |
|
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|
1990 |
text {* |
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|
1991 |
Using the conversion you can transform this theorem into a new theorem |
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1992 |
as follows |
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|
1993 |
|
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1994 |
@{ML_response_fake [display,gray] |
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|
1995 |
"Conv.fconv_rule (all_true1_conv @{context}) @{thm foo_test}" |
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|
1996 |
"?P \<or> \<not> ?P"} |
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|
1997 |
|
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|
1998 |
Finally, conversions can also be turned into tactics and then applied to |
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1999 |
goal states. This can be done with the help of the function @{ML CONVERSION}, |
160
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|
2000 |
and also some predefined conversion combinators that traverse a goal |
147
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|
2001 |
state. The combinators for the goal state are: @{ML Conv.params_conv} for |
160
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|
2002 |
converting under parameters (i.e.~where goals are of the form @{text "\<And>x. P \<Longrightarrow> |
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|
2003 |
Q"}); the function @{ML Conv.prems_conv} for applying a conversion to all |
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|
2004 |
premises of a goal, and @{ML Conv.concl_conv} for applying a conversion to |
147
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|
2005 |
the conclusion of a goal. |
139 | 2006 |
|
145
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|
2007 |
Assume we want to apply @{ML all_true1_conv} only in the conclusion |
160
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|
2008 |
of the goal, and @{ML if_true1_conv} should only apply to the premises. |
145
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2009 |
Here is a tactic doing exactly that: |
135 | 2010 |
*} |
2011 |
||
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|
2012 |
ML{*val true1_tac = CSUBGOAL (fn (goal, i) => |
147
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|
2013 |
let |
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|
2014 |
val ctxt = ProofContext.init (Thm.theory_of_cterm goal) |
139 | 2015 |
in |
147
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|
2016 |
CONVERSION |
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|
2017 |
(Conv.params_conv ~1 (fn ctxt => |
151
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|
2018 |
(Conv.prems_conv ~1 (if_true1_conv ctxt) then_conv |
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|
2019 |
Conv.concl_conv ~1 (all_true1_conv ctxt))) ctxt) i |
142 | 2020 |
end)*} |
2021 |
||
2022 |
text {* |
|
148 | 2023 |
We call the conversions with the argument @{ML "~1"}. This is to |
2024 |
analyse all parameters, premises and conclusions. If we call them with |
|
147
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|
2025 |
a non-negative number, say @{text n}, then these conversions will |
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|
2026 |
only be called on @{text n} premises (similar for parameters and |
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|
2027 |
conclusions). To test the tactic, consider the proof |
142 | 2028 |
*} |
139 | 2029 |
|
142 | 2030 |
lemma |
2031 |
"if True \<and> P then P else True \<and> False \<Longrightarrow> |
|
148 | 2032 |
(if True \<and> Q then True \<and> Q else P) \<longrightarrow> True \<and> (True \<and> Q)" |
142 | 2033 |
apply(tactic {* true1_tac 1 *}) |
147
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|
2034 |
txt {* where the tactic yields the goal state |
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|
2035 |
|
177 | 2036 |
\begin{minipage}{\textwidth} |
2037 |
@{subgoals [display]} |
|
2038 |
\end{minipage}*} |
|
142 | 2039 |
(*<*)oops(*>*) |
135 | 2040 |
|
2041 |
text {* |
|
148 | 2042 |
As you can see, the premises are rewritten according to @{ML if_true1_conv}, while |
2043 |
the conclusion according to @{ML all_true1_conv}. |
|
2044 |
||
147
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|
2045 |
To sum up this section, conversions are not as powerful as the simplifier |
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|
2046 |
and simprocs; the advantage of conversions, however, is that you never have |
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|
2047 |
to worry about non-termination. |
146
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|
2048 |
|
151
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|
2049 |
\begin{exercise}\label{ex:addconversion} |
152
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diff
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|
2050 |
Write a tactic that does the same as the simproc in exercise |
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2051 |
\ref{ex:addsimproc}, but is based in conversions. That means replace terms |
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|
2052 |
of the form @{term "t\<^isub>1 + t\<^isub>2"} by their result. You can make |
166
00d153e32a53
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|
2053 |
the same assumptions as in \ref{ex:addsimproc}. |
152
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diff
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|
2054 |
\end{exercise} |
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2055 |
|
172
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|
2056 |
\begin{exercise}\label{ex:compare} |
174 | 2057 |
Compare your solutions of Exercises~\ref{ex:addsimproc} and \ref{ex:addconversion}, |
172
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2058 |
and try to determine which way of rewriting such terms is faster. For this you might |
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|
2059 |
have to construct quite large terms. Also see Recipe \ref{rec:timing} for information |
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2060 |
about timing. |
151
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|
2061 |
\end{exercise} |
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2062 |
|
146
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|
2063 |
\begin{readmore} |
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|
2064 |
See @{ML_file "Pure/conv.ML"} for more information about conversion combinators. |
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|
2065 |
Further conversions are defined in @{ML_file "Pure/thm.ML"}, |
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|
2066 |
@{ML_file "Pure/drule.ML"} and @{ML_file "Pure/meta_simplifier.ML"}. |
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|
2067 |
\end{readmore} |
151
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2068 |
|
135 | 2069 |
*} |
2070 |
||
2071 |
||
2072 |
||
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2073 |
|
152
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|
2074 |
section {* Structured Proofs (TBD) *} |
95
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2075 |
|
129
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diff
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|
2076 |
text {* TBD *} |
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|
2077 |
|
95
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|
2078 |
lemma True |
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diff
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|
2079 |
proof |
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|
2080 |
|
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|
2081 |
{ |
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|
2082 |
fix A B C |
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|
2083 |
assume r: "A & B \<Longrightarrow> C" |
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2084 |
assume A B |
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|
2085 |
then have "A & B" .. |
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2086 |
then have C by (rule r) |
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diff
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|
2087 |
} |
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|
2088 |
|
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|
2089 |
{ |
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diff
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|
2090 |
fix A B C |
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diff
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|
2091 |
assume r: "A & B \<Longrightarrow> C" |
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diff
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|
2092 |
assume A B |
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diff
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|
2093 |
note conjI [OF this] |
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|
2094 |
note r [OF this] |
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|
2095 |
} |
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parents:
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|
2096 |
oops |
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parents:
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|
2097 |
|
7235374f34c8
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|
2098 |
ML {* fun prop ctxt s = |
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|
2099 |
Thm.cterm_of (ProofContext.theory_of ctxt) (Syntax.read_prop ctxt s) *} |
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|
2100 |
|
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|
2101 |
ML {* |
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|
2102 |
val ctxt0 = @{context}; |
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parents:
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diff
changeset
|
2103 |
val ctxt = ctxt0; |
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|
2104 |
val (_, ctxt) = Variable.add_fixes ["A", "B", "C"] ctxt; |
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|
2105 |
val ([r], ctxt) = Assumption.add_assumes [prop ctxt "A & B \<Longrightarrow> C"] ctxt; |
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parents:
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|
2106 |
val (this, ctxt) = Assumption.add_assumes [prop ctxt "A", prop ctxt "B"] ctxt; |
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|
2107 |
val this = [@{thm conjI} OF this]; |
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parents:
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|
2108 |
val this = r OF this; |
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parents:
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|
2109 |
val this = Assumption.export false ctxt ctxt0 this |
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|
2110 |
val this = Variable.export ctxt ctxt0 [this] |
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|
2111 |
*} |
93 | 2112 |
|
2113 |
||
102
5e309df58557
general cleaning up; deleted antiquotation ML_text; adjusted pathnames of various files in the distribution
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|
2114 |
|
139 | 2115 |
end |