| author | boehmes |
| Mon, 05 Sep 2011 14:17:44 +0200 | |
| changeset 44719 | 176adba0c35e |
| parent 41621 | 55b16bd82142 |
| permissions | -rw-r--r-- |
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\begin{isabellebody}%
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\def\isabellecontext{Local{\isaliteral{5F}{\isacharunderscore}}Theory}%
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\isadelimtheory |
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\endisadelimtheory |
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\isatagtheory |
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\isacommand{theory}\isamarkupfalse%
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\ Local{\isaliteral{5F}{\isacharunderscore}}Theory\isanewline
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\isakeyword{imports}\ Base\isanewline
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\isakeyword{begin}%
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\endisatagtheory |
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{\isafoldtheory}%
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\isadelimtheory |
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\endisadelimtheory |
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\isamarkupchapter{Local theory specifications \label{ch:local-theory}%
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} |
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\isamarkuptrue% |
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% |
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\begin{isamarkuptext}%
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A \emph{local theory} combines aspects of both theory and proof
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context (cf.\ \secref{sec:context}), such that definitional
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specifications may be given relatively to parameters and |
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assumptions. A local theory is represented as a regular proof |
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context, augmented by administrative data about the \emph{target
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context}. |
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The target is usually derived from the background theory by adding |
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local \isa{{\isaliteral{5C3C4649583E}{\isasymFIX}}} and \isa{{\isaliteral{5C3C415353554D453E}{\isasymASSUME}}} elements, plus
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suitable modifications of non-logical context data (e.g.\ a special |
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type-checking discipline). Once initialized, the target is ready to |
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absorb definitional primitives: \isa{{\isaliteral{5C3C444546494E453E}{\isasymDEFINE}}} for terms and
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\isa{{\isaliteral{5C3C4E4F54453E}{\isasymNOTE}}} for theorems. Such definitions may get
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transformed in a target-specific way, but the programming interface |
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hides such details. |
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Isabelle/Pure provides target mechanisms for locales, type-classes, |
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type-class instantiations, and general overloading. In principle, |
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users can implement new targets as well, but this rather arcane |
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discipline is beyond the scope of this manual. In contrast, |
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implementing derived definitional packages to be used within a local |
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theory context is quite easy: the interfaces are even simpler and |
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more abstract than the underlying primitives for raw theories. |
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Many definitional packages for local theories are available in |
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Isabelle. Although a few old packages only work for global |
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theories, the standard way of implementing definitional packages in |
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Isabelle is via the local theory interface.% |
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\end{isamarkuptext}%
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\isamarkuptrue% |
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% |
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\isamarkupsection{Definitional elements%
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} |
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\isamarkuptrue% |
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% |
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\begin{isamarkuptext}%
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There are separate elements \isa{{\isaliteral{5C3C444546494E453E}{\isasymDEFINE}}\ c\ {\isaliteral{5C3C65717569763E}{\isasymequiv}}\ t} for terms, and
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\isa{{\isaliteral{5C3C4E4F54453E}{\isasymNOTE}}\ b\ {\isaliteral{3D}{\isacharequal}}\ thm} for theorems. Types are treated
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implicitly, according to Hindley-Milner discipline (cf.\ |
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\secref{sec:variables}). These definitional primitives essentially
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act like \isa{let}-bindings within a local context that may
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already contain earlier \isa{let}-bindings and some initial
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\isa{{\isaliteral{5C3C6C616D6264613E}{\isasymlambda}}}-bindings. Thus we gain \emph{dependent definitions}
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that are relative to an initial axiomatic context. The following |
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diagram illustrates this idea of axiomatic elements versus |
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definitional elements: |
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\begin{center}
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\begin{tabular}{|l|l|l|}
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\hline |
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& \isa{{\isaliteral{5C3C6C616D6264613E}{\isasymlambda}}}-binding & \isa{let}-binding \\
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\hline |
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types & fixed \isa{{\isaliteral{5C3C616C7068613E}{\isasymalpha}}} & arbitrary \isa{{\isaliteral{5C3C626574613E}{\isasymbeta}}} \\
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terms & \isa{{\isaliteral{5C3C4649583E}{\isasymFIX}}\ x\ {\isaliteral{3A}{\isacharcolon}}{\isaliteral{3A}{\isacharcolon}}\ {\isaliteral{5C3C7461753E}{\isasymtau}}} & \isa{{\isaliteral{5C3C444546494E453E}{\isasymDEFINE}}\ c\ {\isaliteral{5C3C65717569763E}{\isasymequiv}}\ t} \\
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theorems & \isa{{\isaliteral{5C3C415353554D453E}{\isasymASSUME}}\ a{\isaliteral{3A}{\isacharcolon}}\ A} & \isa{{\isaliteral{5C3C4E4F54453E}{\isasymNOTE}}\ b\ {\isaliteral{3D}{\isacharequal}}\ \isaliteral{5C3C5E42473E}{}\isactrlBG B\isaliteral{5C3C5E454E3E}{}\isactrlEN } \\
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\hline |
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\end{tabular}
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\end{center}
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A user package merely needs to produce suitable \isa{{\isaliteral{5C3C444546494E453E}{\isasymDEFINE}}}
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and \isa{{\isaliteral{5C3C4E4F54453E}{\isasymNOTE}}} elements according to the application. For
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example, a package for inductive definitions might first \isa{{\isaliteral{5C3C444546494E453E}{\isasymDEFINE}}} a certain predicate as some fixed-point construction,
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then \isa{{\isaliteral{5C3C4E4F54453E}{\isasymNOTE}}} a proven result about monotonicity of the
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functor involved here, and then produce further derived concepts via |
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additional \isa{{\isaliteral{5C3C444546494E453E}{\isasymDEFINE}}} and \isa{{\isaliteral{5C3C4E4F54453E}{\isasymNOTE}}} elements.
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The cumulative sequence of \isa{{\isaliteral{5C3C444546494E453E}{\isasymDEFINE}}} and \isa{{\isaliteral{5C3C4E4F54453E}{\isasymNOTE}}}
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produced at package runtime is managed by the local theory |
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infrastructure by means of an \emph{auxiliary context}. Thus the
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system holds up the impression of working within a fully abstract |
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situation with hypothetical entities: \isa{{\isaliteral{5C3C444546494E453E}{\isasymDEFINE}}\ c\ {\isaliteral{5C3C65717569763E}{\isasymequiv}}\ t}
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always results in a literal fact \isa{\isaliteral{5C3C5E42473E}{}\isactrlBG c\ {\isaliteral{5C3C65717569763E}{\isasymequiv}}\ t\isaliteral{5C3C5E454E3E}{}\isactrlEN }, where
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\isa{c} is a fixed variable \isa{c}. The details about
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global constants, name spaces etc. are handled internally. |
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So the general structure of a local theory is a sandwich of three |
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layers: |
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\begin{center}
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\framebox{\quad auxiliary context \quad\framebox{\quad target context \quad\framebox{\quad background theory\quad}}}
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\end{center}
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When a definitional package is finished, the auxiliary context is |
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reset to the target context. The target now holds definitions for |
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terms and theorems that stem from the hypothetical \isa{{\isaliteral{5C3C444546494E453E}{\isasymDEFINE}}} and \isa{{\isaliteral{5C3C4E4F54453E}{\isasymNOTE}}} elements, transformed by the
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particular target policy (see \cite[\S4--5]{Haftmann-Wenzel:2009}
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for details).% |
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\end{isamarkuptext}%
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\isamarkuptrue% |
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% |
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\isadelimmlref |
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\endisadelimmlref |
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\isatagmlref |
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\begin{isamarkuptext}%
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\begin{mldecls}
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\indexdef{}{ML type}{local\_theory}\verb|type local_theory = Proof.context| \\
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\indexdef{}{ML}{Named\_Target.init}\verb|Named_Target.init: (local_theory -> local_theory) ->|\isasep\isanewline%
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\verb| string -> theory -> local_theory| \\[1ex] |
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\indexdef{}{ML}{Local\_Theory.define}\verb|Local_Theory.define: (binding * mixfix) * (Attrib.binding * term) ->|\isasep\isanewline%
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\verb| local_theory -> (term * (string * thm)) * local_theory| \\ |
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\indexdef{}{ML}{Local\_Theory.note}\verb|Local_Theory.note: Attrib.binding * thm list ->|\isasep\isanewline%
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\verb| local_theory -> (string * thm list) * local_theory| \\ |
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\end{mldecls}
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\begin{description}
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\item Type \verb|local_theory| represents local theories. |
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Although this is merely an alias for \verb|Proof.context|, it is |
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semantically a subtype of the same: a \verb|local_theory| holds |
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target information as special context data. Subtyping means that |
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any value \isa{lthy{\isaliteral{3A}{\isacharcolon}}}~\verb|local_theory| can be also used
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with operations on expecting a regular \isa{ctxt{\isaliteral{3A}{\isacharcolon}}}~\verb|Proof.context|.
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\item \verb|Named_Target.init|~\isa{before{\isaliteral{5F}{\isacharunderscore}}exit\ name\ thy}
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initializes a local theory derived from the given background theory. |
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An empty name refers to a \emph{global theory} context, and a
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non-empty name refers to a \hyperlink{command.locale}{\mbox{\isa{\isacommand{locale}}}} or \hyperlink{command.class}{\mbox{\isa{\isacommand{class}}}}
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context (a fully-qualified internal name is expected here). This is |
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useful for experimentation --- normally the Isar toplevel already |
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takes care to initialize the local theory context. The given \isa{before{\isaliteral{5F}{\isacharunderscore}}exit} function is invoked before leaving the context; in
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most situations plain identity \verb|I| is sufficient. |
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\item \verb|Local_Theory.define|~\isa{{\isaliteral{28}{\isacharparenleft}}{\isaliteral{28}{\isacharparenleft}}b{\isaliteral{2C}{\isacharcomma}}\ mx{\isaliteral{29}{\isacharparenright}}{\isaliteral{2C}{\isacharcomma}}\ {\isaliteral{28}{\isacharparenleft}}a{\isaliteral{2C}{\isacharcomma}}\ rhs{\isaliteral{29}{\isacharparenright}}{\isaliteral{29}{\isacharparenright}}\ lthy} defines a local entity according to the specification that is
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given relatively to the current \isa{lthy} context. In
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particular the term of the RHS may refer to earlier local entities |
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from the auxiliary context, or hypothetical parameters from the |
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target context. The result is the newly defined term (which is |
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always a fixed variable with exactly the same name as specified for |
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the LHS), together with an equational theorem that states the |
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definition as a hypothetical fact. |
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Unless an explicit name binding is given for the RHS, the resulting |
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fact will be called \isa{b{\isaliteral{5F}{\isacharunderscore}}def}. Any given attributes are
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applied to that same fact --- immediately in the auxiliary context |
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\emph{and} in any transformed versions stemming from target-specific
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policies or any later interpretations of results from the target |
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context (think of \hyperlink{command.locale}{\mbox{\isa{\isacommand{locale}}}} and \hyperlink{command.interpretation}{\mbox{\isa{\isacommand{interpretation}}}},
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for example). This means that attributes should be usually plain |
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declarations such as \hyperlink{attribute.simp}{\mbox{\isa{simp}}}, while non-trivial rules like
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\hyperlink{attribute.simplified}{\mbox{\isa{simplified}}} are better avoided.
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\item \verb|Local_Theory.note|~\isa{{\isaliteral{28}{\isacharparenleft}}a{\isaliteral{2C}{\isacharcomma}}\ ths{\isaliteral{29}{\isacharparenright}}\ lthy} is
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analogous to \verb|Local_Theory.define|, but defines facts instead of |
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terms. There is also a slightly more general variant \verb|Local_Theory.notes| that defines several facts (with attribute |
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expressions) simultaneously. |
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This is essentially the internal version of the \hyperlink{command.lemmas}{\mbox{\isa{\isacommand{lemmas}}}}
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command, or \hyperlink{command.declare}{\mbox{\isa{\isacommand{declare}}}} if an empty name binding is given.
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\end{description}%
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\end{isamarkuptext}%
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\isamarkuptrue% |
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% |
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\endisatagmlref |
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{\isafoldmlref}%
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% |
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\isadelimmlref |
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\endisadelimmlref |
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% |
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\isamarkupsection{Morphisms and declarations \label{sec:morphisms}%
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} |
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\isamarkuptrue% |
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% |
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\begin{isamarkuptext}%
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FIXME |
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\medskip See also \cite{Chaieb-Wenzel:2007}.%
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\end{isamarkuptext}%
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\isamarkuptrue% |
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\isadelimtheory |
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\endisadelimtheory |
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\isatagtheory |
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\isacommand{end}\isamarkupfalse%
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\endisatagtheory |
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{\isafoldtheory}%
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\isadelimtheory |
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\endisadelimtheory |
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\isanewline |
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\end{isabellebody}%
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%%% Local Variables: |
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%%% mode: latex |
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%%% TeX-master: "root" |
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%%% End: |