author | Christian Urban <urbanc@in.tum.de> |
Thu, 10 Nov 2011 15:54:13 +0000 | |
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parent 491 | 94216a7fc1fc |
child 493 | e3656cc81d27 |
permissions | -rw-r--r-- |
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theory Advanced |
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imports Base First_Steps |
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begin |
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(*<*) |
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setup{* |
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open_file_with_prelude |
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"Advanced_Code.thy" |
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["theory Advanced", "imports Base First_Steps", "begin"] |
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*} |
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(*>*) |
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chapter {* Advanced Isabelle\label{chp:advanced} *} |
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text {* |
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\begin{flushright} |
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{\em All things are difficult before they are easy.} \\[1ex] |
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proverb |
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\end{flushright} |
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\medskip |
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While terms, types and theorems are the most basic data structures in |
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Isabelle, there are a number of layers built on top of them. Most of these |
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layers are concerned with storing and manipulating data. Handling them |
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properly is an essential skill for programming on the ML-level of Isabelle. |
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The most basic layer are theories. They contain global data and |
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can be seen as the ``long-term memory'' of Isabelle. There is usually only |
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one theory active at each moment. Proof contexts and local theories, on the |
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other hand, store local data for a task at hand. They act like the |
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``short-term memory'' and there can be many of them that are active in |
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parallel. |
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*} |
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section {* Theories and Setups\label{sec:theories} *} |
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text {* |
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Theories, as said above, are the most basic layer of abstraction in |
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Isabelle. They record information about definitions, syntax declarations, axioms, |
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theorems and much more. For example, if a definition is made, it |
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must be stored in a theory in order to be usable later on. Similar |
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with proofs: once a proof is finished, the proved theorem needs to |
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be stored in the theorem database of the theory in order to be |
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usable. All relevant data of a theory can be queried with the |
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Isabelle command \isacommand{print\_theory}. |
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\begin{isabelle} |
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\isacommand{print\_theory}\\ |
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@{text "> names: Pure Code_Generator HOL \<dots>"}\\ |
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@{text "> classes: Inf < type \<dots>"}\\ |
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@{text "> default sort: type"}\\ |
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@{text "> syntactic types: #prop \<dots>"}\\ |
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@{text "> logical types: 'a \<times> 'b \<dots>"}\\ |
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@{text "> type arities: * :: (random, random) random \<dots>"}\\ |
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@{text "> logical constants: == :: 'a \<Rightarrow> 'a \<Rightarrow> prop \<dots>"}\\ |
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@{text "> abbreviations: \<dots>"}\\ |
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@{text "> axioms: \<dots>"}\\ |
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@{text "> oracles: \<dots>"}\\ |
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@{text "> definitions: \<dots>"}\\ |
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@{text "> theorems: \<dots>"} |
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\end{isabelle} |
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Functions acting on theories often end with the suffix @{text "_global"}, |
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for example the function @{ML read_term_global in Syntax} in the structure |
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@{ML_struct Syntax}. The reason is to set them syntactically apart from |
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functions acting on contexts or local theories, which will be discussed in |
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the next sections. There is a tendency amongst Isabelle developers to prefer |
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``non-global'' operations, because they have some advantages, as we will also |
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discuss later. However, some basic understanding of theories is still necessary |
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for effective Isabelle programming. |
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An important Isabelle command with theories is \isacommand{setup}. In the |
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previous chapters we used it already to make a theorem attribute known |
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to Isabelle and to register a theorem under a name. What happens behind the |
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scenes is that \isacommand{setup} expects a function of type @{ML_type |
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"theory -> theory"}: the input theory is the current theory and the output |
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the theory where the attribute has been registered or the theorem has been |
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stored. This is a fundamental principle in Isabelle. A similar situation |
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arises with declaring a constant, which can be done on the ML-level with |
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function @{ML_ind declare_const in Sign} from the structure @{ML_struct |
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Sign}. To see how \isacommand{setup} works, consider the following code: |
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*} |
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ML{*let |
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val thy = @{theory} |
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val bar_const = ((@{binding "BAR"}, @{typ "nat"}), NoSyn) |
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in |
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Sign.declare_const @{context} bar_const thy |
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end*} |
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text {* |
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If you simply run this code\footnote{Recall that ML-code needs to be enclosed in |
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\isacommand{ML}~@{text "\<verbopen> \<dots> \<verbclose>"}.} with the |
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intention of declaring a constant @{text "BAR"} having type @{typ nat}, then |
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indeed you obtain a theory as result. But if you query the |
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constant on the Isabelle level using the command \isacommand{term} |
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\begin{isabelle} |
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\isacommand{term}~@{text BAR}\\ |
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@{text "> \"BAR\" :: \"'a\""} |
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\end{isabelle} |
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you can see that you do \emph{not} obtain a constant of type @{typ nat}, but a free |
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variable (printed in blue) of polymorphic type. The problem is that the |
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ML-expression above did not ``register'' the declaration with the current theory. |
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This is what the command \isacommand{setup} is for. The constant is properly |
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declared with |
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*} |
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setup %gray {* fn thy => |
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let |
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val bar_const = ((@{binding "BAR"}, @{typ "nat"}), NoSyn) |
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val (_, thy') = Sign.declare_const @{context} bar_const thy |
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in |
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thy' |
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end *} |
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text {* |
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where the declaration is actually applied to the current theory and |
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\begin{isabelle} |
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\isacommand{term}~@{text [quotes] "BAR"}\\ |
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@{text "> \"BAR\" :: \"nat\""} |
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\end{isabelle} |
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now returns a (black) constant with the type @{typ nat}, as expected. |
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In a sense, \isacommand{setup} can be seen as a transaction that |
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takes the current theory @{text thy}, applies an operation, and |
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produces a new current theory @{text thy'}. This means that we have |
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to be careful to apply operations always to the most current theory, |
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not to a \emph{stale} one. Consider again the function inside the |
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\isacommand{setup}-command: |
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\begin{isabelle} |
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\begin{graybox} |
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\isacommand{setup}~@{text "\<verbopen>"} @{ML |
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"fn thy => |
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let |
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val bar_const = ((@{binding \"BAR\"}, @{typ \"nat\"}), NoSyn) |
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val (_, thy') = Sign.declare_const @{context} bar_const thy |
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in |
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thy |
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end"}~@{text "\<verbclose>"}\isanewline |
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@{text "> ERROR \"Stale theory encountered\""} |
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\end{graybox} |
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\end{isabelle} |
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This time we erroneously return the original theory @{text thy}, instead of |
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the modified one @{text thy'}. Such buggy code will always result into |
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a runtime error message about stale theories. |
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However, sometimes it does make sense to work with two theories at the same |
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time, especially in the context of parsing and typing. In the code below we |
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use in Line 3 the function @{ML_ind copy in Theory} from the structure |
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@{ML_struct Theory} for obtaining a new theory that contains the same |
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data, but is unrelated to the existing theory. |
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*} |
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setup %graylinenos {* fn thy => |
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let |
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val tmp_thy = Theory.copy thy |
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val foo_const = ((@{binding "FOO"}, @{typ "nat => nat"}), NoSyn) |
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val (_, tmp_thy') = Sign.declare_const @{context} foo_const tmp_thy |
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val trm1 = Syntax.read_term_global tmp_thy' "FOO baz" |
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val trm2 = Syntax.read_term_global thy "FOO baz" |
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val _ = writeln (@{make_string} trm1 ^ "\n" ^ @{make_string} trm2) |
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in |
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thy |
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end *} |
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text {* |
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That means we can make changes to the theory @{text tmp_thy} without |
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affecting the current theory @{text thy}. In this case we declare in @{text |
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"tmp_thy"} the constant @{text FOO} (Lines 4 and 5). The point of this code |
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is that we next, in Lines 6 and 7, parse a string to become a term (both |
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times the string is @{text [quotes] "FOO baz"}). But since we parse the string |
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once in the context of the theory @{text tmp_thy'} in which @{text FOO} is |
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declared to be a constant of type @{typ "nat \<Rightarrow>nat"} and once in the context |
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of @{text thy} where it is not, we obtain two different terms, namely |
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\begin{isabelle} |
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\begin{graybox} |
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@{text "> Const (\"Advanced.FOO\", \"nat \<Rightarrow> nat\") $ Free (\"baz\", \"nat\")"}\isanewline |
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@{text "> Free (\"FOO\", \"'a \<Rightarrow> 'b\") $ Free (\"baz\", \"'a\")"} |
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\end{graybox} |
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\end{isabelle} |
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There are two reasons for parsing a term in a temporary theory. One is to |
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obtain fully qualified names for constants and the other is appropriate type |
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inference. This is relevant in situations where definitions are made later, |
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but parsing and type inference has to take already proceed as if the definitions |
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were already made. |
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*} |
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section {* Contexts (TBD) *} |
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text {* |
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Contexts are arguably more important than theories, even though they only |
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contain ``short-term memory data''. The reason is that a vast number of |
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functions in Isabelle depend in one way or another on contexts. Even such |
203 |
mundane operations like printing out a term make essential use of contexts. |
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For this consider the following contrived proof-snippet whose only purpose is to |
490 | 205 |
fix two variables: |
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*} |
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lemma "True" |
209 |
proof - |
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txt_raw {*\mbox{}\\[-7mm]*} |
492 | 211 |
ML_prf {* Variable.dest_fixes @{context} *} |
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txt_raw {*\mbox{}\\[-7mm]\mbox{}*} |
492 | 213 |
fix x y |
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txt_raw {*\mbox{}\\[-7mm]*} |
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ML_prf {* Variable.dest_fixes @{context} *} |
491 | 216 |
txt_raw {*\mbox{}\\[-7mm] \ldots*}(*<*)oops(*>*) |
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490 | 218 |
text {* |
219 |
The interesting point in this proof is that we injected ML-code before and after |
|
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the variables are fixed. For this remember that ML-code inside a proof |
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needs to be enclosed in \isacommand{ML\_prf}~@{text "\<verbopen> \<dots> \<verbclose>"}, |
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not \isacommand{ML}~@{text "\<verbopen> \<dots> \<verbclose>"}. The function |
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@{ML_ind dest_fixes in Variable} from the structure @{ML_struct Variable} takes |
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a context and returns all its currently fixed variable (names). That |
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means a context has a dataslot containing information about fixed variables. |
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The ML-antiquotation @{text "@{context}"} points to the context that is |
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active at that point of the theory. Consequently, in the first call to |
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@{ML dest_fixes in Variable} this dataslot is empty; in the second it is |
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filled with @{text x} and @{text y}. What is interesting is that contexts |
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can be stacked. For this consider the following proof fragment |
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*} |
232 |
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233 |
lemma "True" |
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proof - |
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fix x y |
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{ fix z w |
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txt_raw {*\mbox{}\\[-7mm]*} |
238 |
ML_prf {* Variable.dest_fixes @{context} *} |
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txt_raw {*\mbox{}\\[-7mm]\mbox{}*} |
240 |
} |
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txt_raw {*\mbox{}\\[-7mm]*} |
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ML_prf {* Variable.dest_fixes @{context} *} |
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txt_raw {*\mbox{}\\[-7mm] \ldots*}(*<*)oops(*>*) |
244 |
||
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text {* |
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The first time we call @{ML dest_fixes in Variable} we have four fixes variables; |
247 |
the second time we get only the fixes variables @{text x} and @{text y} as answer. |
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This means the curly-braces act as opening and closing statements for a context. |
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491 | 249 |
The above proof corresoponds roughly to the following ML-code. |
250 |
*} |
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492 | 252 |
ML{*val ctxt0 = @{context}; |
253 |
val ([x, y], ctxt1) = Variable.add_fixes ["x", "y"] ctxt0; |
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val ([z, w], ctxt2) = Variable.add_fixes ["z", "w"] ctxt1*} |
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255 |
||
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text {* |
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Now let us come back to the point about printing terms. |
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*} |
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(* |
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ML{*Proof_Context.debug := true*} |
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ML{*Proof_Context.verbose := true*} |
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*) |
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487 | 266 |
(* |
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lemma "True" |
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proof - |
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{ -- "\<And>x. _" |
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fix x |
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have "B x" sorry |
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thm this |
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} |
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|
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thm this |
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|
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{ -- "A \<Longrightarrow> _" |
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assume A |
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have B sorry |
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thm this |
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} |
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|
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thm this |
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|
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{ -- "\<And>x. x = _ \<Longrightarrow> _" |
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def x \<equiv> a |
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have "B x" sorry |
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} |
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|
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thm this |
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|
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oops |
487 | 293 |
*) |
413 | 294 |
|
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section {* Local Theories (TBD) *} |
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|
394 | 297 |
text {* |
400 | 298 |
In contrast to an ordinary theory, which simply consists of a type |
299 |
signature, as well as tables for constants, axioms and theorems, a local |
|
300 |
theory contains additional context information, such as locally fixed |
|
301 |
variables and local assumptions that may be used by the package. The type |
|
302 |
@{ML_type local_theory} is identical to the type of \emph{proof contexts} |
|
303 |
@{ML_type "Proof.context"}, although not every proof context constitutes a |
|
304 |
valid local theory. |
|
305 |
||
306 |
@{ML "Context.>> o Context.map_theory"} |
|
394 | 307 |
@{ML_ind "Local_Theory.declaration"} |
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|
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A similar command is \isacommand{local\_setup}, which expects a function |
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of type @{ML_type "local_theory -> local_theory"}. Later on we will also |
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use the commands \isacommand{method\_setup} for installing methods in the |
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current theory and \isacommand{simproc\_setup} for adding new simprocs to |
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the current simpset. |
394 | 314 |
*} |
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|
394 | 317 |
section {* Morphisms (TBD) *} |
318 |
||
319 |
text {* |
|
320 |
Morphisms are arbitrary transformations over terms, types, theorems and bindings. |
|
321 |
They can be constructed using the function @{ML_ind morphism in Morphism}, |
|
322 |
which expects a record with functions of type |
|
323 |
||
324 |
\begin{isabelle} |
|
325 |
\begin{tabular}{rl} |
|
326 |
@{text "binding:"} & @{text "binding -> binding"}\\ |
|
327 |
@{text "typ:"} & @{text "typ -> typ"}\\ |
|
328 |
@{text "term:"} & @{text "term -> term"}\\ |
|
329 |
@{text "fact:"} & @{text "thm list -> thm list"} |
|
330 |
\end{tabular} |
|
331 |
\end{isabelle} |
|
332 |
||
333 |
The simplest morphism is the @{ML_ind identity in Morphism}-morphism defined as |
|
334 |
*} |
|
335 |
||
481 | 336 |
ML{*val identity = Morphism.morphism {binding = [], typ = [], term = [], fact = []}*} |
394 | 337 |
|
338 |
text {* |
|
339 |
Morphisms can be composed with the function @{ML_ind "$>" in Morphism} |
|
340 |
*} |
|
341 |
||
342 |
ML{*fun trm_phi (Free (x, T)) = Var ((x, 0), T) |
|
343 |
| trm_phi (Abs (x, T, t)) = Abs (x, T, trm_phi t) |
|
344 |
| trm_phi (t $ s) = (trm_phi t) $ (trm_phi s) |
|
345 |
| trm_phi t = t*} |
|
346 |
||
347 |
ML{*val phi = Morphism.term_morphism trm_phi*} |
|
348 |
||
349 |
ML{*Morphism.term phi @{term "P x y"}*} |
|
350 |
||
351 |
text {* |
|
352 |
@{ML_ind term_morphism in Morphism} |
|
353 |
||
354 |
@{ML_ind term in Morphism}, |
|
355 |
@{ML_ind thm in Morphism} |
|
356 |
||
357 |
\begin{readmore} |
|
358 |
Morphisms are implemented in the file @{ML_file "Pure/morphism.ML"}. |
|
359 |
\end{readmore} |
|
360 |
*} |
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section {* Misc (TBD) *} |
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ML {*Datatype.get_info @{theory} "List.list"*} |
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365 |
|
319
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text {* |
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367 |
FIXME: association lists: |
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368 |
@{ML_file "Pure/General/alist.ML"} |
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369 |
|
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FIXME: calling the ML-compiler |
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|
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*} |
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414 | 374 |
section {* What Is In an Isabelle Name? (TBD) *} |
375 |
||
376 |
text {* |
|
377 |
On the ML-level of Isabelle, you often have to work with qualified names. |
|
378 |
These are strings with some additional information, such as positional |
|
379 |
information and qualifiers. Such qualified names can be generated with the |
|
380 |
antiquotation @{text "@{binding \<dots>}"}. For example |
|
381 |
||
382 |
@{ML_response [display,gray] |
|
383 |
"@{binding \"name\"}" |
|
384 |
"name"} |
|
385 |
||
386 |
An example where a qualified name is needed is the function |
|
387 |
@{ML_ind define in Local_Theory}. This function is used below to define |
|
388 |
the constant @{term "TrueConj"} as the conjunction @{term "True \<and> True"}. |
|
389 |
*} |
|
390 |
||
391 |
local_setup %gray {* |
|
392 |
Local_Theory.define ((@{binding "TrueConj"}, NoSyn), |
|
393 |
(Attrib.empty_binding, @{term "True \<and> True"})) #> snd *} |
|
394 |
||
395 |
text {* |
|
396 |
Now querying the definition you obtain: |
|
397 |
||
398 |
\begin{isabelle} |
|
399 |
\isacommand{thm}~@{text "TrueConj_def"}\\ |
|
400 |
@{text "> "}~@{thm TrueConj_def} |
|
401 |
\end{isabelle} |
|
402 |
||
403 |
\begin{readmore} |
|
404 |
The basic operations on bindings are implemented in |
|
405 |
@{ML_file "Pure/General/binding.ML"}. |
|
406 |
\end{readmore} |
|
407 |
||
408 |
\footnote{\bf FIXME give a better example why bindings are important} |
|
409 |
\footnote{\bf FIXME give a pointer to \isacommand{local\_setup}; if not, then explain |
|
410 |
why @{ML snd} is needed.} |
|
411 |
\footnote{\bf FIXME: There should probably a separate section on binding, long-names |
|
412 |
and sign.} |
|
413 |
||
414 |
*} |
|
415 |
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|
360 | 417 |
ML {* Sign.intern_type @{theory} "list" *} |
418 |
ML {* Sign.intern_const @{theory} "prod_fun" *} |
|
419 |
||
414 | 420 |
text {* |
421 |
\footnote{\bf FIXME: Explain the following better; maybe put in a separate |
|
422 |
section and link with the comment in the antiquotation section.} |
|
423 |
||
424 |
Occasionally you have to calculate what the ``base'' name of a given |
|
462 | 425 |
constant is. For this you can use the function @{ML_ind Long_Name.base_name}. For example: |
414 | 426 |
|
462 | 427 |
@{ML_response [display,gray] "Long_Name.base_name \"List.list.Nil\"" "\"Nil\""} |
414 | 428 |
|
429 |
\begin{readmore} |
|
430 |
Functions about naming are implemented in @{ML_file "Pure/General/name_space.ML"}; |
|
431 |
functions about signatures in @{ML_file "Pure/sign.ML"}. |
|
432 |
\end{readmore} |
|
433 |
*} |
|
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434 |
|
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435 |
text {* |
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436 |
@{ML_ind "Binding.name_of"} returns the string without markup |
394 | 437 |
|
438 |
@{ML_ind "Binding.conceal"} |
|
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439 |
*} |
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440 |
|
388
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441 |
section {* Concurrency (TBD) *} |
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442 |
|
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443 |
text {* |
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444 |
@{ML_ind prove_future in Goal} |
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445 |
@{ML_ind future_result in Goal} |
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446 |
@{ML_ind fork_pri in Future} |
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447 |
*} |
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448 |
|
396 | 449 |
section {* Parse and Print Translations (TBD) *} |
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||
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section {* Summary *} |
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text {* |
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TBD |
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*} |
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end |