author | Christian Urban <urbanc@in.tum.de> |
Fri, 28 Nov 2008 05:56:28 +0100 | |
changeset 52 | a04bdee4fb1e |
parent 50 | 3d4b49921cdb |
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theory FirstSteps |
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Antiquotation setup is now contained in theory Base.
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imports Base |
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begin |
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chapter {* First Steps *} |
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text {* |
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Isabelle programming is done in SML. Just like lemmas and proofs, SML-code |
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in Isabelle is part of a theory. If you want to follow the code written in |
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this chapter, we assume you are working inside the theory defined by |
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\begin{center} |
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\begin{tabular}{@ {}l} |
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\isacommand{theory} FirstSteps\\ |
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\isacommand{imports} Main\\ |
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\isacommand{begin}\\ |
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\ldots |
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\end{tabular} |
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\end{center} |
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*} |
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section {* Including ML-Code *} |
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text {* |
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The easiest and quickest way to include code in a theory is |
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by using the \isacommand{ML}-command. For example\smallskip |
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\isa{\isacommand{ML} |
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\isacharverbatimopen\isanewline |
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\hspace{5mm}@{ML "3 + 4"}\isanewline |
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\isacharverbatimclose\isanewline |
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@{ML_text "> 7"}\smallskip} |
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Expressions inside \isacommand{ML}-commands are immediately evaluated, |
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like ``normal'' Isabelle proof scripts, by using the advance and undo buttons of |
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your Isabelle environment. The code inside the \isacommand{ML}-command |
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can also contain value and function bindings, and even those can be |
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undone when the proof script is retracted. In what follows we will drop the |
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\isacommand{ML} \isa{\isacharverbatimopen \ldots \isacharverbatimclose} whenever |
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we show code and its response. |
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Once a portion of code is relatively stable, one usually wants to |
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export it to a separate ML-file. Such files can then be included in a |
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theory by using \isacommand{uses} in the header of the theory, like |
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\begin{center} |
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\begin{tabular}{@ {}l} |
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\isacommand{theory} CookBook\\ |
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\isacommand{imports} Main\\ |
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\isacommand{uses} @{ML_text "\"file_to_be_included.ML\""} @{text "\<dots>"}\\ |
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\isacommand{begin}\\ |
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\ldots |
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\end{tabular} |
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\end{center} |
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*} |
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section {* Debugging and Printing *} |
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text {* |
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During development you might find it necessary to inspect some data |
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in your code. This can be done in a ``quick-and-dirty'' fashion using |
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the function @{ML "warning"}. For example |
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@{ML [display] "warning \"any string\""} |
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will print out @{ML_text [quotes] "any string"} inside the response buffer |
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of Isabelle. This function expects a string. If you develop under PolyML, |
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then there is a convenient, though again ``quick-and-dirty'', method for |
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converting values into strings, for example: |
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@{ML [display] "warning (makestring 1)"} |
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However this only works if the type of what is converted is monomorphic and is not |
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a function. |
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The function @{ML "warning"} should only be used for testing purposes, because any |
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output this function generates will be overwritten as soon as an error is |
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raised. For printing anything more serious and elaborate, the |
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function @{ML tracing} should be used. This function writes all output into |
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a separate tracing buffer. For example |
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@{ML [display] "tracing \"foo\""} |
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It is also possible to redirect the ``channel'' where the @{ML_text "foo"} is |
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printed to a separate file, e.g. to prevent Proof General from choking on massive |
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amounts of trace output. This redirection can be achieved using the code |
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*} |
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ML{* |
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val strip_specials = |
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let |
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fun strip ("\^A" :: _ :: cs) = strip cs |
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| strip (c :: cs) = c :: strip cs |
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| strip [] = []; |
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in implode o strip o explode end; |
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fun redirect_tracing stream = |
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Output.tracing_fn := (fn s => |
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(TextIO.output (stream, (strip_specials s)); |
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TextIO.output (stream, "\n"); |
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TextIO.flushOut stream)); |
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*} |
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text {* |
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Calling @{ML "redirect_tracing"} with @{ML "(TextIO.openOut \"foo.bar\")"} |
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will cause that all tracing information is printed into the file @{ML_text "foo.bar"}. |
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*} |
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section {* Antiquotations *} |
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text {* |
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The main advantage of embedding all code in a theory is that the code can |
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contain references to entities defined on the logical level of Isabelle (by |
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this we mean definitions, theorems, terms and so on). This is done using |
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antiquotations. For example, one can print out the name of the current |
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theory by typing |
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||
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@{ML_response [display] "Context.theory_name @{theory}" "FirstSteps"} |
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where @{text "@{theory}"} is an antiquotation that is substituted with the |
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current theory (remember that we assumed we are inside the theory |
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@{ML_text FirstSteps}). The name of this theory can be extracted using |
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the function @{ML "Context.theory_name"}. |
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Note, however, that antiquotations are statically scoped, that is the value is |
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determined at ``compile-time'', not ``run-time''. For example the function |
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*} |
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ML {* |
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fun not_current_thyname () = Context.theory_name @{theory} |
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*} |
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text {* |
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does \emph{not} return the name of the current theory, if it is run in a |
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different theory. Instead, the code above defines the constant function |
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that always returns the string @{ML_text "FirstSteps"}, no matter where the |
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function is called. Operationally speaking, the antiquotation @{text "@{theory}"} is |
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\emph{not} replaced with code that will look up the current theory in |
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some data structure and return it. Instead, it is literally |
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replaced with the value representing the theory name. |
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In a similar way you can use antiquotations to refer to theorems or simpsets: |
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@{ML [display] "@{thm allI}"} |
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@{ML [display] "@{simpset}"} |
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While antiquotations have many applications, they were originally introduced to |
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avoid explicit bindings for theorems such as |
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*} |
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ML {* |
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val allI = thm "allI" |
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*} |
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text {* |
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These bindings were difficult to maintain and also could be accidentally |
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overwritten by the user. This usually broke definitional |
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packages. Antiquotations solve this problem, since they are ``linked'' |
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statically at compile-time. However, that also sometimes limits their |
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applicability. In the course of this introduction, we will learn more about |
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these antiquotations: they greatly simplify Isabelle programming since one |
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can directly access all kinds of logical elements from ML. |
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||
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*} |
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section {* Terms and Types *} |
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text {* |
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One way to construct terms of Isabelle on the ML-level is by using the antiquotation |
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\mbox{@{text "@{term \<dots>}"}}. For example |
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@{ML_response [display] "@{term \"(a::nat) + b = c\"}" |
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"Const (\"op =\", \<dots>) $ (Const (\"HOL.plus_class.plus\", \<dots>) $ \<dots> $ \<dots>) $ \<dots>"} |
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This will show the term @{term "(a::nat) + b = c"}, but printed using the internal |
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representation of this term. This internal representation corresponds to the |
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datatype @{ML_type "term"}. |
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The internal representation of terms uses the usual de Bruijn index mechanism where bound |
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variables are represented by the constructor @{ML Bound}. The index in @{ML Bound} refers to |
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the number of Abstractions (@{ML Abs}) we have to skip until we hit the @{ML Abs} that |
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binds the corresponding variable. However, in Isabelle the names of bound variables are |
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kept at abstractions for printing purposes, and so should be treated only as comments. |
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|
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\begin{readmore} |
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Terms are described in detail in \isccite{sec:terms}. Their |
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definition and many useful operations can be found in @{ML_file "Pure/term.ML"}. |
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\end{readmore} |
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Sometimes the internal representation of terms can be surprisingly different |
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from what you see at the user level, because the layers of |
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parsing/type-checking/pretty printing can be quite elaborate. |
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\begin{exercise} |
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Look at the internal term representation of the following terms, and |
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find out why they are represented like this. |
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\begin{itemize} |
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\item @{term "case x of 0 \<Rightarrow> 0 | Suc y \<Rightarrow> y"} |
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\item @{term "\<lambda>(x,y). P y x"} |
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\item @{term "{ [x::int] | x. x \<le> -2 }"} |
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\end{itemize} |
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Hint: The third term is already quite big, and the pretty printer |
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may omit parts of it by default. If you want to see all of it, you |
52 | 217 |
can use the following ML function to set the limit to a value high |
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enough: |
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\end{exercise} |
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@{ML [display] "print_depth 50"} |
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The antiquotation @{text "@{prop \<dots>}"} constructs terms of propositional type, |
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inserting the invisible @{text "Trueprop"}-coercions whenever necessary. |
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Consider for example |
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@{ML_response [display] "@{term \"P x\"}" "Free (\"P\", \<dots>) $ Free (\"x\", \<dots>)"} |
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@{ML_response [display] "@{prop \"P x\"}" |
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"Const (\"Trueprop\", \<dots>) $ (Free (\"P\", \<dots>) $ Free (\"x\", \<dots>))"} |
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|
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which inserts the coercion in the latter case and |
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|
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@{ML_response [display] "@{term \"P x \<Longrightarrow> Q x\"}" "Const (\"==>\", \<dots>) $ \<dots> $ \<dots>"} |
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@{ML_response [display] "@{prop \"P x \<Longrightarrow> Q x\"}" "Const (\"==>\", \<dots>) $ \<dots> $ \<dots>"} |
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|
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which does not (since it is already constructed using the meta-implication). |
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|
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Types can be constructed using the antiquotation @{text "@{typ \<dots>}"}. For example |
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@{ML_response_fake [display] "@{typ \"bool \<Rightarrow> nat\"}" "bool \<Rightarrow> nat"} |
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|
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\begin{readmore} |
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Types are described in detail in \isccite{sec:types}. Their |
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definition and many useful operations can be found in @{ML_file "Pure/type.ML"}. |
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\end{readmore} |
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*} |
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section {* Constructing Terms and Types Manually *} |
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text {* |
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|
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While antiquotations are very convenient for constructing terms and types, |
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they can only construct fixed terms. Unfortunately, one often needs to construct terms |
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dynamically. For example, a function that returns the implication |
52 | 256 |
@{text "\<And>(x::\<tau>). P x \<Longrightarrow> Q x"} taking @{term P}, @{term Q} and the type @{term "\<tau>"} |
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as arguments can only be written as |
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*} |
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|
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ML {* |
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fun make_imp P Q tau = |
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let |
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val x = Free ("x",tau) |
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in Logic.all x (Logic.mk_implies (HOLogic.mk_Trueprop (P $ x), |
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HOLogic.mk_Trueprop (Q $ x))) |
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end |
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*} |
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|
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text {* |
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The reason is that one cannot pass the arguments @{term P}, @{term Q} and |
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@{term "tau"} into an antiquotation. For example the following does not work as |
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expected. |
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*} |
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|
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ML {* |
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fun make_wrong_imp P Q tau = @{prop "\<And>x. P x \<Longrightarrow> Q x"} |
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*} |
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text {* |
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To see this apply @{text "@{term S}"}, @{text "@{term T}"} and @{text "@{typ nat}"} |
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to both functions. |
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|
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One tricky point in constructing terms by hand is to obtain the |
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fully qualified name for constants. For example the names for @{text "zero"} and |
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@{text "+"} are more complex than one first expects, namely |
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\begin{center} |
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@{ML_text "HOL.zero_class.zero"} and @{ML_text "HOL.plus_class.plus"}. |
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\end{center} |
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|
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The extra prefixes @{ML_text zero_class} and @{ML_text plus_class} are present because |
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these constants are defined within type classes; the prefix @{text "HOL"} indicates in |
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which theory they are defined. Guessing such internal names can sometimes be quite hard. |
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Therefore Isabelle provides the antiquotation @{text "@{const_name \<dots>}"} which does the |
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expansion automatically, for example: |
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@{ML_response_fake [display] "@{const_name \"Nil\"}" "List.list.Nil"} |
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(FIXME: Is it useful to explain @{text "@{const_syntax}"}?) |
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Similarly, types can be constructed manually, for example as follows: |
49 | 303 |
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304 |
*} |
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305 |
||
306 |
ML {* |
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fun make_fun_type tau1 tau2 = Type ("fun",[tau1,tau2]) |
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*} |
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309 |
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310 |
text {* |
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311 |
which can be equally written as |
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*} |
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313 |
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ML {* |
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fun make_fun_type tau1 tau2 = tau1 --> tau2 |
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*} |
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text {* |
|
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|
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\begin{readmore} |
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There are many functions in @{ML_file "Pure/logic.ML"} and |
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@{ML_file "HOL/hologic.ML"} that make such manual constructions of terms |
49 | 323 |
and types easier.\end{readmore} |
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324 |
|
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Have a look at these files and try to solve the following two exercises: |
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*} |
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text {* |
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|
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\begin{exercise}\label{fun:revsum} |
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Write a function @{ML_text "rev_sum : term -> term"} that takes a |
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term of the form @{text "t\<^isub>1 + t\<^isub>2 + \<dots> + t\<^isub>n"} (whereby @{text "i"} might be zero) |
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and returns the reversed sum @{text "t\<^isub>n + \<dots> + t\<^isub>2 + t\<^isub>1"}. Assume |
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the @{text "t\<^isub>i"} can be arbitrary expressions and also note that @{text "+"} |
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336 |
associates to the left. Try your function on some examples. |
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\end{exercise} |
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|
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\begin{exercise}\label{fun:makesum} |
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Write a function which takes two terms representing natural numbers |
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in unary (like @{term "Suc (Suc (Suc 0))"}), and produce the unary |
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number representing their sum. |
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\end{exercise} |
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*} |
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|
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section {* Type-Checking *} |
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348 |
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text {* |
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350 |
|
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We can freely construct and manipulate terms, since they are just |
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352 |
arbitrary unchecked trees. However, we eventually want to see if a |
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term is well-formed, or type checks, relative to a theory. |
50 | 354 |
Type-checking is done via the function @{ML cterm_of}, which converts |
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355 |
a @{ML_type term} into a @{ML_type cterm}, a \emph{certified} term. |
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Unlike @{ML_type term}s, which are just trees, @{ML_type |
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"cterm"}s are abstract objects that are guaranteed to be |
50 | 358 |
type-correct, and that can only be constructed via the ``official |
359 |
interfaces''. |
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|
50 | 361 |
Type checking is always relative to a theory context. For now we use |
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the @{ML "@{theory}"} antiquotation to get hold of the current theory. |
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363 |
For example we can write |
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364 |
|
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@{ML_response_fake [display] "cterm_of @{theory} @{term \"a + b = c\"}" "a + b = c"} |
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366 |
|
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367 |
or use the antiquotation |
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368 |
|
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@{ML_response_fake [display] "@{cterm \"(a::nat) + b = c\"}" "a + b = c"} |
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370 |
|
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371 |
A slightly more elaborate example is |
20 | 372 |
|
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373 |
@{ML_response_fake [display] |
39
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374 |
"let |
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375 |
val natT = @{typ \"nat\"} |
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376 |
val zero = @{term \"0::nat\"} |
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377 |
in |
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378 |
cterm_of @{theory} |
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379 |
(Const (@{const_name plus}, natT --> natT --> natT) |
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380 |
$ zero $ zero) |
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381 |
end" "0 + 0"} |
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382 |
|
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383 |
\begin{exercise} |
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384 |
Check that the function defined in Exercise~\ref{fun:revsum} returns a |
50 | 385 |
result that type-checks. |
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\end{exercise} |
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|
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*} |
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389 |
|
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section {* Theorems *} |
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text {* |
50 | 393 |
Just like @{ML_type cterm}s, theorems are abstract objects of type @{ML_type thm} |
394 |
that can only be built by going through interfaces, which means that all your proofs |
|
395 |
will be checked. |
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|
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397 |
To see theorems in ``action'', let us give a proof for the following statement |
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*} |
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399 |
|
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lemma |
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401 |
assumes assm\<^isub>1: "\<And>(x::nat). P x \<Longrightarrow> Q x" |
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402 |
and assm\<^isub>2: "P t" |
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403 |
shows "Q t" (*<*)oops(*>*) |
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404 |
|
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405 |
text {* |
49 | 406 |
on the ML-level:\footnote{Note that @{text "|>"} is reverse |
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407 |
application. This combinator, and several variants are defined in |
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408 |
@{ML_file "Pure/General/basics.ML"}.} |
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409 |
|
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410 |
@{ML_response_fake [display] |
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411 |
"let |
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412 |
val thy = @{theory} |
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413 |
|
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414 |
val assm1 = cterm_of thy @{prop \"\<And>(x::nat). P x \<Longrightarrow> Q x\"} |
49 | 415 |
val assm2 = cterm_of thy @{prop \"(P::nat\<Rightarrow>bool) t\"} |
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416 |
|
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417 |
val Pt_implies_Qt = |
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418 |
assume assm1 |
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419 |
|> forall_elim (cterm_of thy @{term \"t::nat\"}); |
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420 |
|
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421 |
val Qt = implies_elim Pt_implies_Qt (assume assm2); |
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422 |
in |
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423 |
|
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424 |
Qt |
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425 |
|> implies_intr assm2 |
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426 |
|> implies_intr assm1 |
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427 |
end" "\<lbrakk>\<And>x. P x \<Longrightarrow> Q x; P t\<rbrakk> \<Longrightarrow> Q t"} |
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428 |
|
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429 |
This code-snippet constructs the following proof: |
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430 |
|
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431 |
\[ |
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432 |
\infer[(@{text "\<Longrightarrow>"}$-$intro)]{\vdash @{prop "(\<And>x. P x \<Longrightarrow> Q x) \<Longrightarrow> P t \<Longrightarrow> Q t"}} |
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433 |
{\infer[(@{text "\<Longrightarrow>"}$-$intro)]{@{prop "\<And>x. P x \<Longrightarrow> Q x"} \vdash @{prop "P t \<Longrightarrow> Q t"}} |
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434 |
{\infer[(@{text "\<Longrightarrow>"}$-$elim)]{@{prop "\<And>x. P x \<Longrightarrow> Q x"}, @{prop "P t"} \vdash @{prop "Q t"}} |
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435 |
{\infer[(@{text "\<And>"}$-$elim)]{@{prop "\<And>x. P x \<Longrightarrow> Q x"} \vdash @{prop "P t \<Longrightarrow> Q t"}} |
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436 |
{\infer[(assume)]{@{prop "\<And>x. P x \<Longrightarrow> Q x"} \vdash @{prop "\<And>x. P x \<Longrightarrow> Q x"}}{}} |
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437 |
& |
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438 |
\infer[(assume)]{@{prop "P t"} \vdash @{prop "P t"}}{} |
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439 |
} |
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440 |
} |
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441 |
} |
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442 |
\] |
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443 |
|
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444 |
|
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445 |
\begin{readmore} |
50 | 446 |
For the functions @{text "assume"}, @{text "forall_elim"} etc |
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447 |
see \isccite{sec:thms}. The basic functions for theorems are defined in |
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|
448 |
@{ML_file "Pure/thm.ML"}. |
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449 |
\end{readmore} |
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450 |
|
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451 |
*} |
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452 |
|
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453 |
|
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454 |
section {* Tactical Reasoning *} |
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455 |
|
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456 |
text {* |
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457 |
The goal-oriented tactical style reasoning of the ML level is similar |
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458 |
to the @{text apply}-style at the user level, i.e.~the reasoning is centred |
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|
459 |
around a \emph{goal}, which is modified in a sequence of proof steps |
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|
460 |
until it is solved. |
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461 |
|
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462 |
A goal (or goal state) is a special @{ML_type thm}, which by |
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|
463 |
convention is an implication of the form: |
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464 |
|
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465 |
@{text[display] "A\<^isub>1 \<Longrightarrow> \<dots> \<Longrightarrow> A\<^isub>n \<Longrightarrow> #(C)"} |
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466 |
|
49 | 467 |
where @{term C} is the goal to be proved and the @{term "A\<^isub>i"} are the open |
468 |
subgoals. |
|
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469 |
Since the goal @{term C} can potentially be an implication, there is a |
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|
470 |
@{text "#"} wrapped around it, which prevents that premises are |
50 | 471 |
misinterpreted as open subgoals. The wrapper @{text "# :: prop \<Rightarrow> |
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472 |
prop"} is just the identity function and used as a syntactic marker. |
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|
473 |
|
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|
474 |
\begin{readmore} |
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475 |
For more on goals see \isccite{sec:tactical-goals}. |
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476 |
\end{readmore} |
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477 |
|
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478 |
Tactics are functions that map a goal state to a (lazy) |
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|
479 |
sequence of successor states, hence the type of a tactic is |
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480 |
@{ML_type[display] "thm -> thm Seq.seq"} |
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|
481 |
|
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|
482 |
\begin{readmore} |
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483 |
See @{ML_file "Pure/General/seq.ML"} for the implementation of lazy |
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|
484 |
sequences. However in day-to-day Isabelle programming, one rarely |
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|
485 |
constructs sequences explicitly, but uses the predefined tactic |
50 | 486 |
combinators (tacticals) instead. See @{ML_file "Pure/tctical.ML"} |
487 |
for the code; see Chapters 3 and 4 in the old Isabelle Reference Manual. |
|
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488 |
\end{readmore} |
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489 |
|
34 | 490 |
While tactics can operate on the subgoals (the @{text "A\<^isub>i"} above), they |
13
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|
491 |
are expected to leave the conclusion @{term C} intact, with the |
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|
492 |
exception of possibly instantiating schematic variables. |
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|
493 |
|
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494 |
To see how tactics work, let us transcribe a simple @{text apply}-style |
50 | 495 |
proof into ML: |
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496 |
*} |
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497 |
|
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498 |
lemma disj_swap: "P \<or> Q \<Longrightarrow> Q \<or> P" |
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499 |
apply (erule disjE) |
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500 |
apply (rule disjI2) |
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501 |
apply assumption |
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|
502 |
apply (rule disjI1) |
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503 |
apply assumption |
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504 |
done |
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505 |
|
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506 |
text {* |
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507 |
To start the proof, the function @{ML "Goal.prove"}~@{text "ctxt xs As C tac"} sets |
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508 |
up a goal state for proving the goal @{text C} under the assumptions @{text As} |
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|
509 |
(empty in the proof at hand) |
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|
510 |
with the variables @{text xs} that will be generalised once the |
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|
511 |
goal is proved. The @{text "tac"} is the tactic which proves the goal and which |
50 | 512 |
can make use of the local assumptions (there are none in this example). |
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513 |
|
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514 |
@{ML_response_fake [display] |
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515 |
"let |
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516 |
val ctxt = @{context} |
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517 |
val goal = @{prop \"P \<or> Q \<Longrightarrow> Q \<or> P\"} |
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518 |
in |
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519 |
Goal.prove ctxt [\"P\", \"Q\"] [] goal (fn _ => |
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520 |
eresolve_tac [disjE] 1 |
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521 |
THEN resolve_tac [disjI2] 1 |
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522 |
THEN assume_tac 1 |
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523 |
THEN resolve_tac [disjI1] 1 |
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524 |
THEN assume_tac 1) |
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525 |
end" "?P \<or> ?Q \<Longrightarrow> ?Q \<or> ?P"} |
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526 |
|
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527 |
\begin{readmore} |
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528 |
To learn more about the function @{ML Goal.prove} see \isccite{sec:results}. |
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529 |
\end{readmore} |
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An alternative way to transcribe this proof is as follows |
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@{ML_response_fake [display] |
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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 (fn _ => |
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(eresolve_tac [disjE] |
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THEN' resolve_tac [disjI2] |
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THEN' assume_tac |
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THEN' resolve_tac [disjI1] |
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THEN' assume_tac) 1) |
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end" "?P \<or> ?Q \<Longrightarrow> ?Q \<or> ?P"} |
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(FIXME: are there any advantages/disadvantages about this way?) |
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*} |
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section {* Storing Theorems *} |
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section {* Theorem Attributes *} |
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end |