author | Christian Urban <urbanc@in.tum.de> |
Mon, 18 Jun 2012 14:49:09 +0100 | |
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theory Parsing |
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imports Base "Helper/Command/Command" "Package/Simple_Inductive_Package" |
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begin |
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chapter {* Parsing\label{chp:parsing} *} |
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text {* |
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\begin{flushright} |
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{\em An important principle underlying the success and popularity of Unix\\ is |
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the philosophy of building on the work of others.} \\[1ex] |
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Linus Torwalds in the email exchange\\ with Andrew S.~Tannenbaum |
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\end{flushright} |
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Isabelle distinguishes between \emph{outer} and \emph{inner} |
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syntax. Commands, such as \isacommand{definition}, \isacommand{inductive} |
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and so on, belong to the outer syntax, whereas terms, types and so on belong |
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to the inner syntax. For parsing inner syntax, Isabelle uses a rather |
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general and sophisticated algorithm, which is driven by priority |
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grammars. Parsers for outer syntax are built up by functional parsing |
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combinators. These combinators are a well-established technique for parsing, |
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which has, for example, been described in Paulson's classic ML-book |
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\cite{paulson-ml2}. Isabelle developers are usually concerned with writing |
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these outer syntax parsers, either for new definitional packages or for |
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calling methods with specific arguments. |
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\begin{readmore} |
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The library for writing parser combinators is split up, roughly, into two |
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parts: The first part consists of a collection of generic parser combinators |
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defined in the structure @{ML_struct Scan} in the file @{ML_file |
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"Pure/General/scan.ML"}. The second part of the library consists of |
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combinators for dealing with specific token types, which are defined in the |
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structure @{ML_struct Parse} in the file @{ML_file |
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"Pure/Isar/parse.ML"}. In addition specific parsers for packages are |
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defined in @{ML_file "Pure/Isar/parse_spec.ML"}. Parsers for method arguments |
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are defined in @{ML_file "Pure/Isar/args.ML"}. |
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\end{readmore} |
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*} |
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section {* Building Generic Parsers *} |
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text {* |
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Let us first have a look at parsing strings using generic parsing |
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combinators. The function @{ML_ind "$$" in Scan} takes a string as argument and will |
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``consume'' this string from a given input list of strings. ``Consume'' in |
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this context means that it will return a pair consisting of this string and |
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the rest of the input list. For example: |
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@{ML_response [display,gray] |
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"($$ \"h\") (Symbol.explode \"hello\")" "(\"h\", [\"e\", \"l\", \"l\", \"o\"])"} |
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@{ML_response [display,gray] |
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"($$ \"w\") (Symbol.explode \"world\")" "(\"w\", [\"o\", \"r\", \"l\", \"d\"])"} |
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The function @{ML "$$"} will either succeed (as in the two examples above) |
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or raise the exception @{text "FAIL"} if no string can be consumed. For |
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example trying to parse |
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@{ML_response_fake [display,gray] |
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"($$ \"x\") (Symbol.explode \"world\")" |
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"Exception FAIL raised"} |
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will raise the exception @{text "FAIL"}. There are three exceptions used in |
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the parsing combinators: |
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\begin{itemize} |
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\item @{text "FAIL"} is used to indicate that alternative routes of parsing |
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might be explored. |
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\item @{text "MORE"} indicates that there is not enough input for the parser. For example |
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in @{text "($$ \"h\") []"}. |
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\item @{text "ABORT"} is the exception that is raised when a dead end is reached. |
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It is used for example in the function @{ML "!!"} (see below). |
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\end{itemize} |
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However, note that these exceptions are private to the parser and cannot be accessed |
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by the programmer (for example to handle them). |
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In the examples above we use the function @{ML_ind explode in Symbol} from the |
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structure @{ML_struct Symbol}, instead of the more standard library function |
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@{ML_ind explode in String}, for obtaining an input list for the parser. The reason is |
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that @{ML explode in Symbol} is aware of character |
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sequences, for example @{text "\<foo>"}, that have a special meaning in |
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Isabelle. To see the difference consider |
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@{ML_response_fake [display,gray] |
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"let |
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val input = \"\<foo> bar\" |
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in |
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(String.explode input, Symbol.explode input) |
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end" |
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"([\"\\\", \"<\", \"f\", \"o\", \"o\", \">\", \" \", \"b\", \"a\", \"r\"], |
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[\"\<foo>\", \" \", \"b\", \"a\", \"r\"])"} |
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Slightly more general than the parser @{ML "$$"} is the function |
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@{ML_ind one in Scan}, in that it takes a predicate as argument and |
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then parses exactly |
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one item from the input list satisfying this predicate. For example the |
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following parser either consumes an @{text [quotes] "h"} or a @{text |
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[quotes] "w"}: |
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@{ML_response [display,gray] |
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"let |
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val hw = Scan.one (fn x => x = \"h\" orelse x = \"w\") |
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val input1 = Symbol.explode \"hello\" |
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val input2 = Symbol.explode \"world\" |
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in |
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(hw input1, hw input2) |
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end" |
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"((\"h\", [\"e\", \"l\", \"l\", \"o\"]),(\"w\", [\"o\", \"r\", \"l\", \"d\"]))"} |
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Two parsers can be connected in sequence by using the function @{ML_ind "--" in Scan}. |
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For example parsing @{text "h"}, @{text "e"} and @{text "l"} (in this |
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order) you can achieve by: |
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@{ML_response [display,gray] |
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"($$ \"h\" -- $$ \"e\" -- $$ \"l\") (Symbol.explode \"hello\")" |
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"(((\"h\", \"e\"), \"l\"), [\"l\", \"o\"])"} |
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Note how the result of consumed strings builds up on the left as nested pairs. |
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If, as in the previous example, you want to parse a particular string, |
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then you can use the function @{ML_ind this_string in Scan}. |
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@{ML_response [display,gray] |
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"Scan.this_string \"hell\" (Symbol.explode \"hello\")" |
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"(\"hell\", [\"o\"])"} |
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Parsers that explore alternatives can be constructed using the function |
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@{ML_ind "||" in Scan}. The parser @{ML "(p || q)" for p q} returns the |
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result of @{text "p"}, in case it succeeds, otherwise it returns the |
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result of @{text "q"}. For example: |
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@{ML_response [display,gray] |
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"let |
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val hw = $$ \"h\" || $$ \"w\" |
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val input1 = Symbol.explode \"hello\" |
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val input2 = Symbol.explode \"world\" |
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in |
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(hw input1, hw input2) |
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end" |
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"((\"h\", [\"e\", \"l\", \"l\", \"o\"]), (\"w\", [\"o\", \"r\", \"l\", \"d\"]))"} |
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The functions @{ML_ind "|--" in Scan} and @{ML_ind "--|" in Scan} work like the sequencing |
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function for parsers, except that they discard the item being parsed by the |
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first (respectively second) parser. That means the item being dropped is the |
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one that @{ML_ind "|--" in Scan} and @{ML_ind "--|" in Scan} ``point'' away. |
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For example: |
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@{ML_response [display,gray] |
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"let |
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val just_e = $$ \"h\" |-- $$ \"e\" |
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val just_h = $$ \"h\" --| $$ \"e\" |
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val input = Symbol.explode \"hello\" |
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in |
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(just_e input, just_h input) |
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end" |
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"((\"e\", [\"l\", \"l\", \"o\"]), (\"h\", [\"l\", \"l\", \"o\"]))"} |
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The parser @{ML "Scan.optional p x" for p x} returns the result of the parser |
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@{text "p"}, if it succeeds; otherwise it returns |
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the default value @{text "x"}. For example: |
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@{ML_response [display,gray] |
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"let |
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val p = Scan.optional ($$ \"h\") \"x\" |
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val input1 = Symbol.explode \"hello\" |
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val input2 = Symbol.explode \"world\" |
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in |
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(p input1, p input2) |
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end" |
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"((\"h\", [\"e\", \"l\", \"l\", \"o\"]), (\"x\", [\"w\", \"o\", \"r\", \"l\", \"d\"]))"} |
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The function @{ML_ind option in Scan} works similarly, except no default value can |
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be given. Instead, the result is wrapped as an @{text "option"}-type. For example: |
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||
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@{ML_response [display,gray] |
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"let |
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val p = Scan.option ($$ \"h\") |
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val input1 = Symbol.explode \"hello\" |
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val input2 = Symbol.explode \"world\" |
50 | 185 |
in |
186 |
(p input1, p input2) |
|
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end" "((SOME \"h\", [\"e\", \"l\", \"l\", \"o\"]), (NONE, [\"w\", \"o\", \"r\", \"l\", \"d\"]))"} |
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The function @{ML_ind ahead in Scan} parses some input, but leaves the original |
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input unchanged. For example: |
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@{ML_response [display,gray] |
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"Scan.ahead (Scan.this_string \"foo\") (Symbol.explode \"foo\")" |
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"(\"foo\", [\"f\", \"o\", \"o\"])"} |
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The function @{ML_ind "!!" in Scan} helps with producing appropriate error messages |
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during parsing. For example if you want to parse @{text p} immediately |
58 | 198 |
followed by @{text q}, or start a completely different parser @{text r}, |
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you might write: |
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|
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@{ML [display,gray] "(p -- q) || r" for p q r} |
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|
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However, this parser is problematic for producing a useful error |
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message, if the parsing of @{ML "(p -- q)" for p q} fails. Because with the |
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parser above you lose the information that @{text p} should be followed by @{text q}. |
220 | 206 |
To see this assume that @{text p} is present in the input, but it is not |
207 |
followed by @{text q}. That means @{ML "(p -- q)" for p q} will fail and |
|
208 |
hence the alternative parser @{text r} will be tried. However, in many |
|
236 | 209 |
circumstances this will be the wrong parser for the input ``@{text "p"}-followed-by-something'' |
220 | 210 |
and therefore will also fail. The error message is then caused by the failure |
211 |
of @{text r}, not by the absence of @{text q} in the input. This kind of |
|
212 |
situation can be avoided when using the function @{ML "!!"}. This function |
|
213 |
aborts the whole process of parsing in case of a failure and prints an error |
|
214 |
message. For example if you invoke the parser |
|
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|
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216 |
|
472 | 217 |
@{ML [display,gray] "!! (fn _ => fn _ =>\"foo\") ($$ \"h\")"} |
218 |
*} |
|
219 |
text {* |
|
58 | 220 |
on @{text [quotes] "hello"}, the parsing succeeds |
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|
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@{ML_response [display,gray] |
472 | 223 |
"(!! (fn _ => fn _ => \"foo\") ($$ \"h\")) (Symbol.explode \"hello\")" |
236 | 224 |
"(\"h\", [\"e\", \"l\", \"l\", \"o\"])"} |
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225 |
|
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but if you invoke it on @{text [quotes] "world"} |
472 | 227 |
|
228 |
@{ML_response_fake [display,gray] "(!! (fn _ => fn _ => \"foo\") ($$ \"h\")) (Symbol.explode \"world\")" |
|
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"Exception ABORT raised"} |
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230 |
|
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231 |
then the parsing aborts and the error message @{text "foo"} is printed. In order to |
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232 |
see the error message properly, you need to prefix the parser with the function |
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@{ML_ind error in Scan}. For example: |
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|
234 |
|
236 | 235 |
@{ML_response_fake [display,gray] |
472 | 236 |
"Scan.error (!! (fn _ => fn _ => \"foo\") ($$ \"h\"))" |
236 | 237 |
"Exception Error \"foo\" raised"} |
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238 |
|
426 | 239 |
This ``prefixing'' is usually done by wrappers such as @{ML_ind local_theory in Outer_Syntax} |
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240 |
(see Section~\ref{sec:newcommand} which explains this function in more detail). |
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241 |
|
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242 |
Let us now return to our example of parsing @{ML "(p -- q) || r" for p q |
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243 |
r}. If you want to generate the correct error message for failure |
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244 |
of parsing @{text "p"}-followed-by-@{text "q"}, then you have to write: |
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245 |
*} |
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246 |
|
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247 |
ML %grayML{*fun p_followed_by_q p q r = |
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248 |
let |
236 | 249 |
val err_msg = fn _ => p ^ " is not followed by " ^ q |
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250 |
in |
472 | 251 |
($$ p -- (!! (fn _ => err_msg) ($$ q))) || ($$ r -- $$ r) |
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252 |
end *} |
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253 |
|
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254 |
|
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255 |
text {* |
220 | 256 |
Running this parser with the arguments |
257 |
@{text [quotes] "h"}, @{text [quotes] "e"} and @{text [quotes] "w"}, and |
|
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258 |
the input @{text [quotes] "holle"} |
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|
259 |
|
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260 |
@{ML_response_fake [display,gray] "Scan.error (p_followed_by_q \"h\" \"e\" \"w\") (Symbol.explode \"holle\")" |
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261 |
"Exception ERROR \"h is not followed by e\" raised"} |
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|
262 |
|
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263 |
produces the correct error message. Running it with |
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|
264 |
|
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265 |
@{ML_response [display,gray] "Scan.error (p_followed_by_q \"h\" \"e\" \"w\") (Symbol.explode \"wworld\")" |
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266 |
"((\"w\", \"w\"), [\"o\", \"r\", \"l\", \"d\"])"} |
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|
267 |
|
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268 |
yields the expected parsing. |
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269 |
|
58 | 270 |
The function @{ML "Scan.repeat p" for p} will apply a parser @{text p} as |
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often as it succeeds. For example: |
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|
272 |
|
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273 |
@{ML_response [display,gray] "Scan.repeat ($$ \"h\") (Symbol.explode \"hhhhello\")" |
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274 |
"([\"h\", \"h\", \"h\", \"h\"], [\"e\", \"l\", \"l\", \"o\"])"} |
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275 |
|
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276 |
Note that @{ML_ind repeat in Scan} stores the parsed items in a list. The function |
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@{ML_ind repeat1 in Scan} is similar, but requires that the parser @{text "p"} |
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succeeds at least once. |
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279 |
|
58 | 280 |
Also note that the parser would have aborted with the exception @{text MORE}, if |
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you had it run with the string @{text [quotes] "hhhh"}. This can be avoided by using |
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the wrapper @{ML_ind finite in Scan} and the ``stopper-token'' |
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@{ML_ind stopper in Symbol}. With them you can write: |
49 | 284 |
|
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285 |
@{ML_response [display,gray] "Scan.finite Symbol.stopper (Scan.repeat ($$ \"h\")) (Symbol.explode \"hhhh\")" |
49 | 286 |
"([\"h\", \"h\", \"h\", \"h\"], [])"} |
287 |
||
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The function @{ML stopper in Symbol} is the ``end-of-input'' indicator for parsing strings; |
128 | 289 |
other stoppers need to be used when parsing, for example, tokens. However, this kind of |
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manually wrapping is often already done by the surrounding infrastructure. |
49 | 291 |
|
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The function @{ML_ind repeat in Scan} can be used with @{ML_ind one in Scan} to read any |
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293 |
string as in |
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294 |
|
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@{ML_response [display,gray] |
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"let |
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val p = Scan.repeat (Scan.one Symbol.not_eof) |
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val input = Symbol.explode \"foo bar foo\" |
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299 |
in |
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300 |
Scan.finite Symbol.stopper p input |
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301 |
end" |
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302 |
"([\"f\", \"o\", \"o\", \" \", \"b\", \"a\", \"r\", \" \", \"f\", \"o\", \"o\"], [])"} |
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303 |
|
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304 |
where the function @{ML_ind not_eof in Symbol} ensures that we do not read beyond the |
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305 |
end of the input string (i.e.~stopper symbol). |
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306 |
|
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The function @{ML_ind unless in Scan} takes two parsers: if the first one can |
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308 |
parse the input, then the whole parser fails; if not, then the second is tried. Therefore |
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309 |
|
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310 |
@{ML_response_fake_both [display,gray] "Scan.unless ($$ \"h\") ($$ \"w\") (Symbol.explode \"hello\")" |
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311 |
"Exception FAIL raised"} |
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312 |
|
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313 |
fails, while |
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314 |
|
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315 |
@{ML_response [display,gray] "Scan.unless ($$ \"h\") ($$ \"w\") (Symbol.explode \"world\")" |
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316 |
"(\"w\",[\"o\", \"r\", \"l\", \"d\"])"} |
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317 |
|
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318 |
succeeds. |
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319 |
|
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320 |
The functions @{ML_ind repeat in Scan} and @{ML_ind unless in Scan} can |
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321 |
be combined to read any input until a certain marker symbol is reached. In the |
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322 |
example below the marker symbol is a @{text [quotes] "*"}. |
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323 |
|
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324 |
@{ML_response [display,gray] |
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325 |
"let |
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326 |
val p = Scan.repeat (Scan.unless ($$ \"*\") (Scan.one Symbol.not_eof)) |
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327 |
val input1 = Symbol.explode \"fooooo\" |
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328 |
val input2 = Symbol.explode \"foo*ooo\" |
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329 |
in |
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330 |
(Scan.finite Symbol.stopper p input1, |
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331 |
Scan.finite Symbol.stopper p input2) |
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332 |
end" |
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|
333 |
"(([\"f\", \"o\", \"o\", \"o\", \"o\", \"o\"], []), |
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|
334 |
([\"f\", \"o\", \"o\"], [\"*\", \"o\", \"o\", \"o\"]))"} |
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|
335 |
|
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336 |
|
220 | 337 |
After parsing is done, you almost always want to apply a function to the parsed |
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|
338 |
items. One way to do this is the function @{ML_ind ">>" in Scan} where |
256
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339 |
@{ML "(p >> f)" for p f} runs |
58 | 340 |
first the parser @{text p} and upon successful completion applies the |
341 |
function @{text f} to the result. For example |
|
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|
342 |
|
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|
343 |
@{ML_response [display,gray] |
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344 |
"let |
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|
345 |
fun double (x, y) = (x ^ x, y ^ y) |
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346 |
val parser = $$ \"h\" -- $$ \"e\" |
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|
347 |
in |
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348 |
(parser >> double) (Symbol.explode \"hello\") |
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|
349 |
end" |
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|
350 |
"((\"hh\", \"ee\"), [\"l\", \"l\", \"o\"])"} |
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|
351 |
|
104 | 352 |
doubles the two parsed input strings; or |
59 | 353 |
|
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|
354 |
@{ML_response [display,gray] |
59 | 355 |
"let |
104 | 356 |
val p = Scan.repeat (Scan.one Symbol.not_eof) |
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|
357 |
val input = Symbol.explode \"foo bar foo\" |
59 | 358 |
in |
104 | 359 |
Scan.finite Symbol.stopper (p >> implode) input |
59 | 360 |
end" |
361 |
"(\"foo bar foo\",[])"} |
|
362 |
||
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|
363 |
where the single-character strings in the parsed output are transformed |
59 | 364 |
back into one string. |
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|
365 |
|
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366 |
The function @{ML_ind lift in Scan} takes a parser and a pair as arguments. This function applies |
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|
367 |
the given parser to the second component of the pair and leaves the first component |
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|
368 |
untouched. For example |
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|
369 |
|
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370 |
@{ML_response [display,gray] |
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371 |
"Scan.lift ($$ \"h\" -- $$ \"e\") (1, Symbol.explode \"hello\")" |
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|
372 |
"((\"h\", \"e\"), (1, [\"l\", \"l\", \"o\"]))"} |
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|
373 |
|
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374 |
\footnote{\bf FIXME: In which situations is @{text "lift"} useful? Give examples.} |
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|
375 |
|
397 | 376 |
Be aware of recursive parsers. Suppose you want to read strings separated by |
377 |
commas and by parentheses into a tree datastructure; for example, generating |
|
378 |
the tree corresponding to the string @{text [quotes] "(A, A), (A, A)"} where |
|
379 |
the @{text "A"}s will be the leaves. We assume the trees are represented by the |
|
380 |
datatype: |
|
390
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381 |
*} |
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|
382 |
|
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|
383 |
ML %grayML{*datatype tree = |
390
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|
384 |
Lf of string |
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|
385 |
| Br of tree * tree*} |
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|
386 |
|
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|
387 |
text {* |
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|
388 |
Since nested parentheses should be treated in a meaningful way---for example |
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|
389 |
the string @{text [quotes] "((A))"} should be read into a single |
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|
390 |
leaf---you might implement the following parser. |
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391 |
*} |
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|
392 |
|
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393 |
ML %grayML{*fun parse_basic s = |
397 | 394 |
$$ s >> Lf || $$ "(" |-- parse_tree s --| $$ ")" |
395 |
||
390
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396 |
and parse_tree s = |
397 | 397 |
parse_basic s --| $$ "," -- parse_tree s >> Br || parse_basic s*} |
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398 |
|
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|
399 |
text {* |
397 | 400 |
This parser corrsponds to the grammar: |
401 |
||
402 |
\begin{center} |
|
403 |
\begin{tabular}{lcl} |
|
404 |
@{text "<Basic>"} & @{text "::="} & @{text "<String> | (<Tree>)"}\\ |
|
405 |
@{text "<Tree>"} & @{text "::="} & @{text "<Basic>, <Tree> | <Basic>"}\\ |
|
406 |
\end{tabular} |
|
407 |
\end{center} |
|
408 |
||
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409 |
The parameter @{text "s"} is the string over which the tree is parsed. The |
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|
410 |
parser @{ML parse_basic} reads either a leaf or a tree enclosed in |
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|
411 |
parentheses. The parser @{ML parse_tree} reads either a pair of trees |
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412 |
separated by a comma, or acts like @{ML parse_basic}. Unfortunately, |
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413 |
because of the mutual recursion, this parser will immediately run into a |
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|
414 |
loop, even if it is called without any input. For example |
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|
415 |
|
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|
416 |
@{ML_response_fake_both [display, gray] |
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417 |
"parse_tree \"A\"" |
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418 |
"*** Exception- TOPLEVEL_ERROR raised"} |
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419 |
|
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420 |
raises an exception indicating that the stack limit is reached. Such |
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421 |
looping parser are not useful, because of ML's strict evaluation of |
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422 |
arguments. Therefore we need to delay the execution of the |
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423 |
parser until an input is given. This can be done by adding the parsed |
397 | 424 |
string as an explicit argument. So the parser above should be implemented |
425 |
as follows. |
|
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426 |
*} |
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427 |
|
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ML %grayML{*fun parse_basic s xs = |
397 | 429 |
($$ s >> Lf || $$ "(" |-- parse_tree s --| $$ ")") xs |
430 |
||
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431 |
and parse_tree s xs = |
397 | 432 |
(parse_basic s --| $$ "," -- parse_tree s >> Br || parse_basic s) xs*} |
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433 |
|
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434 |
text {* |
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435 |
While the type of the parser is unchanged by the addition, its behaviour |
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436 |
changed: with this version of the parser the execution is delayed until |
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437 |
some string is applied for the argument @{text "xs"}. This gives us |
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|
438 |
exactly the parser what we wanted. An example is as follows: |
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439 |
|
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440 |
@{ML_response [display, gray] |
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441 |
"let |
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442 |
val input = Symbol.explode \"(A,((A))),A\" |
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443 |
in |
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444 |
Scan.finite Symbol.stopper (parse_tree \"A\") input |
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445 |
end" |
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446 |
"(Br (Br (Lf \"A\", Lf \"A\"), Lf \"A\"), [])"} |
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447 |
|
149 | 448 |
|
449 |
\begin{exercise}\label{ex:scancmts} |
|
450 |
Write a parser that parses an input string so that any comment enclosed |
|
220 | 451 |
within @{text "(*\<dots>*)"} is replaced by the same comment but enclosed within |
149 | 452 |
@{text "(**\<dots>**)"} in the output string. To enclose a string, you can use the |
453 |
function @{ML "enclose s1 s2 s" for s1 s2 s} which produces the string @{ML |
|
236 | 454 |
"s1 ^ s ^ s2" for s1 s2 s}. Hint: To simplify the task ignore the proper |
455 |
nesting of comments. |
|
149 | 456 |
\end{exercise} |
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457 |
*} |
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458 |
|
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459 |
section {* Parsing Theory Syntax *} |
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460 |
|
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461 |
text {* |
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462 |
Most of the time, however, Isabelle developers have to deal with parsing |
156 | 463 |
tokens, not strings. These token parsers have the type: |
128 | 464 |
*} |
465 |
||
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466 |
ML %grayML{*type 'a parser = Token.T list -> 'a * Token.T list*} |
128 | 467 |
|
468 |
text {* |
|
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469 |
{\bf REDO!!} |
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|
470 |
|
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471 |
|
149 | 472 |
The reason for using token parsers is that theory syntax, as well as the |
128 | 473 |
parsers for the arguments of proof methods, use the type @{ML_type |
426 | 474 |
Token.T}. |
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|
475 |
|
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|
476 |
\begin{readmore} |
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477 |
The parser functions for the theory syntax are contained in the structure |
426 | 478 |
@{ML_struct Parse} defined in the file @{ML_file "Pure/Isar/parse.ML"}. |
479 |
The definition for tokens is in the file @{ML_file "Pure/Isar/token.ML"}. |
|
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|
480 |
\end{readmore} |
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|
481 |
|
426 | 482 |
The structure @{ML_struct Token} defines several kinds of tokens (for |
483 |
example @{ML_ind Ident in Token} for identifiers, @{ML Keyword in |
|
484 |
Token} for keywords and @{ML_ind Command in Token} for commands). Some |
|
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485 |
token parsers take into account the kind of tokens. The first example shows |
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486 |
how to generate a token list out of a string using the function |
426 | 487 |
@{ML_ind scan in Outer_Syntax}. It is given the argument |
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488 |
@{ML "Position.none"} since, |
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|
489 |
at the moment, we are not interested in generating precise error |
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|
490 |
messages. The following code |
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491 |
|
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|
492 |
|
426 | 493 |
@{ML_response_fake [display,gray] "Outer_Syntax.scan Position.none \"hello world\"" |
50 | 494 |
"[Token (\<dots>,(Ident, \"hello\"),\<dots>), |
495 |
Token (\<dots>,(Space, \" \"),\<dots>), |
|
496 |
Token (\<dots>,(Ident, \"world\"),\<dots>)]"} |
|
497 |
||
498 |
produces three tokens where the first and the last are identifiers, since |
|
58 | 499 |
@{text [quotes] "hello"} and @{text [quotes] "world"} do not match any |
230
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|
500 |
other syntactic category. The second indicates a space. |
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diff
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|
501 |
|
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diff
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|
502 |
We can easily change what is recognised as a keyword with the function |
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|
503 |
@{ML_ind define in Keyword}. For example calling it with |
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|
504 |
*} |
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diff
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|
505 |
|
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|
506 |
ML %grayML{*val _ = Keyword.define ("hello", NONE) *} |
230
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diff
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|
507 |
|
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diff
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|
508 |
text {* |
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diff
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|
509 |
then lexing @{text [quotes] "hello world"} will produce |
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diff
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|
510 |
|
426 | 511 |
@{ML_response_fake [display,gray] "Outer_Syntax.scan Position.none \"hello world\"" |
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|
512 |
"[Token (\<dots>,(Keyword, \"hello\"),\<dots>), |
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|
513 |
Token (\<dots>,(Space, \" \"),\<dots>), |
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diff
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|
514 |
Token (\<dots>,(Ident, \"world\"),\<dots>)]"} |
50 | 515 |
|
241 | 516 |
Many parsing functions later on will require white space, comments and the like |
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diff
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|
517 |
to have already been filtered out. So from now on we are going to use the |
426 | 518 |
functions @{ML filter} and @{ML_ind is_proper in Token} to do this. |
256
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|
519 |
For example: |
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diff
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|
520 |
|
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|
521 |
@{ML_response_fake [display,gray] |
50 | 522 |
"let |
426 | 523 |
val input = Outer_Syntax.scan Position.none \"hello world\" |
50 | 524 |
in |
426 | 525 |
filter Token.is_proper input |
50 | 526 |
end" |
527 |
"[Token (\<dots>,(Ident, \"hello\"), \<dots>), Token (\<dots>,(Ident, \"world\"), \<dots>)]"} |
|
528 |
||
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|
529 |
For convenience we define the function: |
50 | 530 |
*} |
531 |
||
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|
532 |
ML %grayML{*fun filtered_input str = |
426 | 533 |
filter Token.is_proper (Outer_Syntax.scan Position.none str) *} |
50 | 534 |
|
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|
535 |
text {* |
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|
536 |
If you now parse |
44
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diff
changeset
|
537 |
|
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diff
changeset
|
538 |
@{ML_response_fake [display,gray] |
50 | 539 |
"filtered_input \"inductive | for\"" |
540 |
"[Token (\<dots>,(Command, \"inductive\"),\<dots>), |
|
541 |
Token (\<dots>,(Keyword, \"|\"),\<dots>), |
|
542 |
Token (\<dots>,(Keyword, \"for\"),\<dots>)]"} |
|
44
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diff
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|
543 |
|
221 | 544 |
you obtain a list consisting of only one command and two keyword tokens. |
241 | 545 |
If you want to see which keywords and commands are currently known to Isabelle, |
449 | 546 |
use the function @{ML_ind get_lexicons in Keyword}: |
47
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diff
changeset
|
547 |
|
72
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diff
changeset
|
548 |
@{ML_response_fake [display,gray] |
47
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diff
changeset
|
549 |
"let |
426 | 550 |
val (keywords, commands) = Keyword.get_lexicons () |
47
4daf913fdbe1
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44
diff
changeset
|
551 |
in |
4daf913fdbe1
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44
diff
changeset
|
552 |
(Scan.dest_lexicon commands, Scan.dest_lexicon keywords) |
4daf913fdbe1
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diff
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|
553 |
end" |
132 | 554 |
"([\"}\", \"{\", \<dots>], [\"\<rightleftharpoons>\", \"\<leftharpoondown>\", \<dots>])"} |
42
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diff
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|
555 |
|
344
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diff
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|
556 |
You might have to adjust the @{ML_ind print_depth} in order to |
241 | 557 |
see the complete list. |
558 |
||
426 | 559 |
The parser @{ML_ind "$$$" in Parse} parses a single keyword. For example: |
50 | 560 |
|
72
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69
diff
changeset
|
561 |
@{ML_response [display,gray] |
44
dee4b3e66dfe
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parents:
43
diff
changeset
|
562 |
"let |
50 | 563 |
val input1 = filtered_input \"where for\" |
564 |
val input2 = filtered_input \"| in\" |
|
44
dee4b3e66dfe
added a readme chapter for prospective authors; added commands for referring to the Isar Reference Manual
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parents:
43
diff
changeset
|
565 |
in |
426 | 566 |
(Parse.$$$ \"where\" input1, Parse.$$$ \"|\" input2) |
44
dee4b3e66dfe
added a readme chapter for prospective authors; added commands for referring to the Isar Reference Manual
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diff
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|
567 |
end" |
128 | 568 |
"((\"where\",\<dots>), (\"|\",\<dots>))"} |
44
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43
diff
changeset
|
569 |
|
426 | 570 |
Any non-keyword string can be parsed with the function @{ML_ind reserved in Parse}. |
230
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diff
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|
571 |
For example: |
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diff
changeset
|
572 |
|
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diff
changeset
|
573 |
@{ML_response [display,gray] |
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diff
changeset
|
574 |
"let |
426 | 575 |
val p = Parse.reserved \"bar\" |
230
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diff
changeset
|
576 |
val input = filtered_input \"bar\" |
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229
diff
changeset
|
577 |
in |
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229
diff
changeset
|
578 |
p input |
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diff
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|
579 |
end" |
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diff
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|
580 |
"(\"bar\",[])"} |
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|
581 |
|
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|
582 |
Like before, you can sequentially connect parsers with @{ML "--"}. For example: |
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diff
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|
583 |
|
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|
584 |
@{ML_response [display,gray] |
44
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|
585 |
"let |
50 | 586 |
val input = filtered_input \"| in\" |
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|
587 |
in |
426 | 588 |
(Parse.$$$ \"|\" -- Parse.$$$ \"in\") input |
44
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|
589 |
end" |
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|
590 |
"((\"|\", \"in\"), [])"} |
44
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|
591 |
|
426 | 592 |
The parser @{ML "Parse.enum s p" for s p} parses a possibly empty |
58 | 593 |
list of items recognised by the parser @{text p}, where the items being parsed |
102
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|
594 |
are separated by the string @{text s}. For example: |
44
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changeset
|
595 |
|
72
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diff
changeset
|
596 |
@{ML_response [display,gray] |
44
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changeset
|
597 |
"let |
53
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|
598 |
val input = filtered_input \"in | in | in foo\" |
44
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|
599 |
in |
426 | 600 |
(Parse.enum \"|\" (Parse.$$$ \"in\")) input |
44
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|
601 |
end" |
183
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|
602 |
"([\"in\", \"in\", \"in\"], [\<dots>])"} |
44
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|
603 |
|
426 | 604 |
The function @{ML_ind enum1 in Parse} works similarly, except that the |
326
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|
605 |
parsed list must be non-empty. Note that we had to add a string @{text |
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|
606 |
[quotes] "foo"} at the end of the parsed string, otherwise the parser would |
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|
607 |
have consumed all tokens and then failed with the exception @{text |
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|
608 |
"MORE"}. Like in the previous section, we can avoid this exception using the |
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|
609 |
wrapper @{ML Scan.finite}. This time, however, we have to use the |
426 | 610 |
``stopper-token'' @{ML Token.stopper}. We can write: |
49 | 611 |
|
72
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diff
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|
612 |
@{ML_response [display,gray] |
49 | 613 |
"let |
50 | 614 |
val input = filtered_input \"in | in | in\" |
426 | 615 |
val p = Parse.enum \"|\" (Parse.$$$ \"in\") |
49 | 616 |
in |
426 | 617 |
Scan.finite Token.stopper p input |
49 | 618 |
end" |
183
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|
619 |
"([\"in\", \"in\", \"in\"], [])"} |
49 | 620 |
|
75 | 621 |
The following function will help to run examples. |
53
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diff
changeset
|
622 |
*} |
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diff
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|
623 |
|
517
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diff
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|
624 |
ML %grayML{*fun parse p input = Scan.finite Token.stopper (Scan.error p) input *} |
53
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diff
changeset
|
625 |
|
0c3580c831a4
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changeset
|
626 |
text {* |
426 | 627 |
The function @{ML_ind "!!!" in Parse} can be used to force termination |
326
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|
628 |
of the parser in case of a dead end, just like @{ML "Scan.!!"} (see previous |
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|
629 |
section). A difference, however, is that the error message of @{ML |
426 | 630 |
"Parse.!!!"} is fixed to be @{text [quotes] "Outer syntax error"} |
221 | 631 |
together with a relatively precise description of the failure. For example: |
49 | 632 |
|
72
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diff
changeset
|
633 |
@{ML_response_fake [display,gray] |
49 | 634 |
"let |
50 | 635 |
val input = filtered_input \"in |\" |
426 | 636 |
val parse_bar_then_in = Parse.$$$ \"|\" -- Parse.$$$ \"in\" |
49 | 637 |
in |
426 | 638 |
parse (Parse.!!! parse_bar_then_in) input |
49 | 639 |
end" |
640 |
"Exception ERROR \"Outer syntax error: keyword \"|\" expected, |
|
641 |
but keyword in was found\" raised" |
|
642 |
} |
|
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diff
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|
643 |
|
65
c8e9a4f97916
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60
diff
changeset
|
644 |
\begin{exercise} (FIXME) |
53
0c3580c831a4
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diff
changeset
|
645 |
A type-identifier, for example @{typ "'a"}, is a token of |
426 | 646 |
kind @{ML_ind Keyword in Token}. It can be parsed using |
647 |
the function @{ML type_ident in Parse}. |
|
53
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diff
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|
648 |
\end{exercise} |
0c3580c831a4
removed the @{ML ...} antiquotation in favour of @{ML_open ...x}
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diff
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|
649 |
|
104 | 650 |
(FIXME: or give parser for numbers) |
53
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diff
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|
651 |
|
125 | 652 |
Whenever there is a possibility that the processing of user input can fail, |
221 | 653 |
it is a good idea to give all available information about where the error |
220 | 654 |
occurred. For this Isabelle can attach positional information to tokens |
326
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|
655 |
and then thread this information up the ``processing chain''. To see this, |
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|
656 |
modify the function @{ML filtered_input}, described earlier, as follows |
41
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diff
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|
657 |
*} |
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diff
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|
658 |
|
517
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diff
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|
659 |
ML %grayML{*fun filtered_input' str = |
426 | 660 |
filter Token.is_proper (Outer_Syntax.scan (Position.line 7) str) *} |
49 | 661 |
|
662 |
text {* |
|
125 | 663 |
where we pretend the parsed string starts on line 7. An example is |
49 | 664 |
|
125 | 665 |
@{ML_response_fake [display,gray] |
666 |
"filtered_input' \"foo \\n bar\"" |
|
667 |
"[Token ((\"foo\", ({line=7, end_line=7}, {line=7})), (Ident, \"foo\"), \<dots>), |
|
668 |
Token ((\"bar\", ({line=8, end_line=8}, {line=8})), (Ident, \"bar\"), \<dots>)]"} |
|
669 |
||
670 |
in which the @{text [quotes] "\\n"} causes the second token to be in |
|
671 |
line 8. |
|
672 |
||
426 | 673 |
By using the parser @{ML position in Parse} you can access the token |
326
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|
674 |
position and return it as part of the parser result. For example |
125 | 675 |
|
676 |
@{ML_response_fake [display,gray] |
|
677 |
"let |
|
241 | 678 |
val input = filtered_input' \"where\" |
125 | 679 |
in |
426 | 680 |
parse (Parse.position (Parse.$$$ \"where\")) input |
125 | 681 |
end" |
682 |
"((\"where\", {line=7, end_line=7}), [])"} |
|
683 |
||
684 |
\begin{readmore} |
|
685 |
The functions related to positions are implemented in the file |
|
686 |
@{ML_file "Pure/General/position.ML"}. |
|
687 |
\end{readmore} |
|
49 | 688 |
|
391 | 689 |
\begin{exercise}\label{ex:contextfree} |
690 |
Write a parser for the context-free grammar representing arithmetic |
|
691 |
expressions with addition and multiplication. As usual, multiplication |
|
692 |
binds stronger than addition, and both of them nest to the right. |
|
693 |
The context-free grammar is defined as: |
|
694 |
||
695 |
\begin{center} |
|
696 |
\begin{tabular}{lcl} |
|
697 |
@{text "<Basic>"} & @{text "::="} & @{text "<Number> | (<Expr>)"}\\ |
|
698 |
@{text "<Factor>"} & @{text "::="} & @{text "<Basic> * <Factor> | <Basic>"}\\ |
|
699 |
@{text "<Expr>"} & @{text "::="} & @{text "<Factor> + <Expr> | <Factor>"}\\ |
|
700 |
\end{tabular} |
|
701 |
\end{center} |
|
702 |
||
703 |
Hint: Be careful with recursive parsers. |
|
704 |
\end{exercise} |
|
49 | 705 |
*} |
706 |
||
326
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|
707 |
section {* Parsers for ML-Code (TBD) *} |
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|
708 |
|
230
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parents:
229
diff
changeset
|
709 |
text {* |
426 | 710 |
@{ML_ind ML_source in Parse} |
230
8def50824320
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229
diff
changeset
|
711 |
*} |
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229
diff
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|
712 |
|
193
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diff
changeset
|
713 |
section {* Context Parser (TBD) *} |
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diff
changeset
|
714 |
|
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diff
changeset
|
715 |
text {* |
326
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diff
changeset
|
716 |
@{ML_ind Args.context} |
f76135c6c527
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diff
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|
717 |
*} |
f76135c6c527
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diff
changeset
|
718 |
(* |
f76135c6c527
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324
diff
changeset
|
719 |
ML {* |
f76135c6c527
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diff
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|
720 |
let |
f76135c6c527
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324
diff
changeset
|
721 |
val parser = Args.context -- Scan.lift Args.name_source |
f76135c6c527
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diff
changeset
|
722 |
|
f76135c6c527
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diff
changeset
|
723 |
fun term_pat (ctxt, str) = |
f76135c6c527
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324
diff
changeset
|
724 |
str |> Syntax.read_prop ctxt |
f76135c6c527
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324
diff
changeset
|
725 |
in |
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324
diff
changeset
|
726 |
(parser >> term_pat) (Context.Proof @{context}, filtered_input "f (a::nat)") |
f76135c6c527
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324
diff
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|
727 |
|> fst |
f76135c6c527
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324
diff
changeset
|
728 |
end |
f76135c6c527
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324
diff
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|
729 |
*} |
f76135c6c527
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parents:
324
diff
changeset
|
730 |
*) |
f76135c6c527
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parents:
324
diff
changeset
|
731 |
|
f76135c6c527
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parents:
324
diff
changeset
|
732 |
text {* |
f76135c6c527
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parents:
324
diff
changeset
|
733 |
@{ML_ind Args.context} |
f76135c6c527
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parents:
324
diff
changeset
|
734 |
|
193
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diff
changeset
|
735 |
Used for example in \isacommand{attribute\_setup} and \isacommand{method\_setup}. |
ffd93dcc269d
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diff
changeset
|
736 |
*} |
ffd93dcc269d
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parents:
192
diff
changeset
|
737 |
|
207 | 738 |
section {* Argument and Attribute Parsers (TBD) *} |
739 |
||
44
dee4b3e66dfe
added a readme chapter for prospective authors; added commands for referring to the Isar Reference Manual
Christian Urban <urbanc@in.tum.de>
parents:
43
diff
changeset
|
740 |
section {* Parsing Inner Syntax *} |
42
cd612b489504
tuned mostly antiquotation and text
Christian Urban <urbanc@in.tum.de>
parents:
41
diff
changeset
|
741 |
|
125 | 742 |
text {* |
743 |
There is usually no need to write your own parser for parsing inner syntax, that is |
|
285 | 744 |
for terms and types: you can just call the predefined parsers. Terms can |
426 | 745 |
be parsed using the function @{ML_ind term in Parse}. For example: |
125 | 746 |
|
747 |
@{ML_response [display,gray] |
|
748 |
"let |
|
426 | 749 |
val input = Outer_Syntax.scan Position.none \"foo\" |
44
dee4b3e66dfe
added a readme chapter for prospective authors; added commands for referring to the Isar Reference Manual
Christian Urban <urbanc@in.tum.de>
parents:
43
diff
changeset
|
750 |
in |
426 | 751 |
Parse.term input |
125 | 752 |
end" |
753 |
"(\"\\^E\\^Ftoken\\^Efoo\\^E\\^F\\^E\", [])"} |
|
754 |
||
426 | 755 |
The function @{ML_ind prop in Parse} is similar, except that it gives a different |
127
74846cb0fff9
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Christian Urban <urbanc@in.tum.de>
parents:
126
diff
changeset
|
756 |
error message, when parsing fails. As you can see, the parser not just returns |
74846cb0fff9
updated and added two tentative recipes
Christian Urban <urbanc@in.tum.de>
parents:
126
diff
changeset
|
757 |
the parsed string, but also some encoded information. You can decode the |
326
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diff
changeset
|
758 |
information with the function @{ML_ind parse in YXML} in @{ML_struct YXML}. For example |
127
74846cb0fff9
updated and added two tentative recipes
Christian Urban <urbanc@in.tum.de>
parents:
126
diff
changeset
|
759 |
|
445 | 760 |
@{ML_response_fake [display,gray] |
127
74846cb0fff9
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parents:
126
diff
changeset
|
761 |
"YXML.parse \"\\^E\\^Ftoken\\^Efoo\\^E\\^F\\^E\"" |
445 | 762 |
"Text \"\\^E\\^Ftoken\\^Efoo\\^E\\^F\\^E\""} |
127
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Christian Urban <urbanc@in.tum.de>
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126
diff
changeset
|
763 |
|
149 | 764 |
The result of the decoding is an XML-tree. You can see better what is going on if |
131 | 765 |
you replace @{ML Position.none} by @{ML "Position.line 42"}, say: |
101 | 766 |
|
445 | 767 |
@{ML_response_fake [display,gray] |
125 | 768 |
"let |
426 | 769 |
val input = Outer_Syntax.scan (Position.line 42) \"foo\" |
125 | 770 |
in |
426 | 771 |
YXML.parse (fst (Parse.term input)) |
125 | 772 |
end" |
445 | 773 |
"Elem (\"token\", [(\"line\", \"42\"), (\"end_line\", \"42\")], [XML.Text \"foo\"])"} |
774 |
||
149 | 775 |
The positional information is stored as part of an XML-tree so that code |
776 |
called later on will be able to give more precise error messages. |
|
125 | 777 |
|
127
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diff
changeset
|
778 |
\begin{readmore} |
128 | 779 |
The functions to do with input and output of XML and YXML are defined |
473
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|
780 |
in @{ML_file "Pure/PIDE/xml.ML"} and @{ML_file "Pure/PIDE/yxml.ML"}. |
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diff
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|
781 |
\end{readmore} |
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|
782 |
|
361 | 783 |
FIXME: |
784 |
@{ML_ind parse_term in Syntax} @{ML_ind check_term in Syntax} |
|
785 |
@{ML_ind parse_typ in Syntax} @{ML_ind check_typ in Syntax} |
|
374 | 786 |
@{ML_ind read_term in Syntax} @{ML_ind read_term in Syntax} |
787 |
||
361 | 788 |
|
125 | 789 |
*} |
101 | 790 |
|
116
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|
791 |
section {* Parsing Specifications\label{sec:parsingspecs} *} |
101 | 792 |
|
793 |
text {* |
|
121 | 794 |
There are a number of special purpose parsers that help with parsing |
156 | 795 |
specifications of function definitions, inductive predicates and so on. In |
220 | 796 |
Chapter~\ref{chp:package}, for example, we will need to parse specifications |
121 | 797 |
for inductive predicates of the form: |
798 |
*} |
|
101 | 799 |
|
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|
800 |
|
121 | 801 |
simple_inductive |
802 |
even and odd |
|
803 |
where |
|
804 |
even0: "even 0" |
|
805 |
| evenS: "odd n \<Longrightarrow> even (Suc n)" |
|
806 |
| oddS: "even n \<Longrightarrow> odd (Suc n)" |
|
101 | 807 |
|
808 |
text {* |
|
121 | 809 |
For this we are going to use the parser: |
101 | 810 |
*} |
811 |
||
121 | 812 |
ML %linenosgray{*val spec_parser = |
426 | 813 |
Parse.fixes -- |
126 | 814 |
Scan.optional |
426 | 815 |
(Parse.$$$ "where" |-- |
816 |
Parse.!!! |
|
817 |
(Parse.enum1 "|" |
|
818 |
(Parse_Spec.opt_thm_name ":" -- Parse.prop))) []*} |
|
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|
819 |
|
101 | 820 |
text {* |
241 | 821 |
Note that the parser must not parse the keyword \simpleinductive, even if it is |
126 | 822 |
meant to process definitions as shown above. The parser of the keyword |
128 | 823 |
will be given by the infrastructure that will eventually call @{ML spec_parser}. |
126 | 824 |
|
825 |
||
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diff
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|
826 |
To see what the parser returns, let us parse the string corresponding to the |
121 | 827 |
definition of @{term even} and @{term odd}: |
828 |
||
101 | 829 |
@{ML_response [display,gray] |
830 |
"let |
|
831 |
val input = filtered_input |
|
832 |
(\"even and odd \" ^ |
|
833 |
\"where \" ^ |
|
834 |
\" even0[intro]: \\\"even 0\\\" \" ^ |
|
835 |
\"| evenS[intro]: \\\"odd n \<Longrightarrow> even (Suc n)\\\" \" ^ |
|
836 |
\"| oddS[intro]: \\\"even n \<Longrightarrow> odd (Suc n)\\\"\") |
|
837 |
in |
|
120
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diff
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|
838 |
parse spec_parser input |
101 | 839 |
end" |
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diff
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|
840 |
"(([(even, NONE, NoSyn), (odd, NONE, NoSyn)], |
101 | 841 |
[((even0,\<dots>), \"\\^E\\^Ftoken\\^Eeven 0\\^E\\^F\\^E\"), |
842 |
((evenS,\<dots>), \"\\^E\\^Ftoken\\^Eodd n \<Longrightarrow> even (Suc n)\\^E\\^F\\^E\"), |
|
843 |
((oddS,\<dots>), \"\\^E\\^Ftoken\\^Eeven n \<Longrightarrow> odd (Suc n)\\^E\\^F\\^E\")]), [])"} |
|
121 | 844 |
|
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|
845 |
As you see, the result is a pair consisting of a list of |
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diff
changeset
|
846 |
variables with optional type-annotation and syntax-annotation, and a list of |
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diff
changeset
|
847 |
rules where every rule has optionally a name and an attribute. |
121 | 848 |
|
426 | 849 |
The function @{ML_ind "fixes" in Parse} in Line 2 of the parser reads an |
186
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diff
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|
850 |
\isacommand{and}-separated |
124
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diff
changeset
|
851 |
list of variables that can include optional type annotations and syntax translations. |
121 | 852 |
For example:\footnote{Note that in the code we need to write |
853 |
@{text "\\\"int \<Rightarrow> bool\\\""} in order to properly escape the double quotes |
|
854 |
in the compound type.} |
|
855 |
||
856 |
@{ML_response [display,gray] |
|
857 |
"let |
|
858 |
val input = filtered_input |
|
859 |
\"foo::\\\"int \<Rightarrow> bool\\\" and bar::nat (\\\"BAR\\\" 100) and blonk\" |
|
860 |
in |
|
426 | 861 |
parse Parse.fixes input |
121 | 862 |
end" |
863 |
"([(foo, SOME \"\\^E\\^Ftoken\\^Eint \<Rightarrow> bool\\^E\\^F\\^E\", NoSyn), |
|
864 |
(bar, SOME \"\\^E\\^Ftoken\\^Enat\\^E\\^F\\^E\", Mixfix (\"BAR\", [], 100)), |
|
865 |
(blonk, NONE, NoSyn)],[])"} |
|
50 | 866 |
*} |
867 |
||
121 | 868 |
text {* |
156 | 869 |
Whenever types are given, they are stored in the @{ML SOME}s. The types are |
870 |
not yet used to type the variables: this must be done by type-inference later |
|
149 | 871 |
on. Since types are part of the inner syntax they are strings with some |
241 | 872 |
encoded information (see previous section). If a mixfix-syntax is |
369 | 873 |
present for a variable, then it is stored in the |
371
e6f583366779
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diff
changeset
|
874 |
@{ML Mixfix} data structure; no syntax translation is indicated by @{ML_ind NoSyn in Syntax}. |
121 | 875 |
|
876 |
\begin{readmore} |
|
371
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369
diff
changeset
|
877 |
The data structure for mixfix annotations are implemented in |
e6f583366779
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369
diff
changeset
|
878 |
@{ML_file "Pure/Syntax/mixfix.ML"} and @{ML_file "Pure/Syntax/syntax.ML"}. |
121 | 879 |
\end{readmore} |
880 |
||
186
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diff
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|
881 |
Lines 3 to 7 in the function @{ML spec_parser} implement the parser for a |
219
98d43270024f
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218
diff
changeset
|
882 |
list of introduction rules, that is propositions with theorem annotations |
98d43270024f
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218
diff
changeset
|
883 |
such as rule names and attributes. The introduction rules are propositions |
426 | 884 |
parsed by @{ML_ind prop in Parse}. However, they can include an optional |
219
98d43270024f
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218
diff
changeset
|
885 |
theorem name plus some attributes. For example |
121 | 886 |
|
887 |
@{ML_response [display,gray] "let |
|
888 |
val input = filtered_input \"foo_lemma[intro,dest!]:\" |
|
426 | 889 |
val ((name, attrib), _) = parse (Parse_Spec.thm_name \":\") input |
121 | 890 |
in |
891 |
(name, map Args.dest_src attrib) |
|
892 |
end" "(foo_lemma, [((\"intro\", []), \<dots>), ((\"dest\", [\<dots>]), \<dots>)])"} |
|
893 |
||
426 | 894 |
The function @{ML_ind opt_thm_name in Parse_Spec} is the ``optional'' variant of |
895 |
@{ML_ind thm_name in Parse_Spec}. Theorem names can contain attributes. The name |
|
131 | 896 |
has to end with @{text [quotes] ":"}---see the argument of |
426 | 897 |
the function @{ML Parse_Spec.opt_thm_name} in Line 7. |
121 | 898 |
|
899 |
\begin{readmore} |
|
900 |
Attributes and arguments are implemented in the files @{ML_file "Pure/Isar/attrib.ML"} |
|
901 |
and @{ML_file "Pure/Isar/args.ML"}. |
|
902 |
\end{readmore} |
|
101 | 903 |
*} |
65
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60
diff
changeset
|
904 |
|
193
ffd93dcc269d
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192
diff
changeset
|
905 |
text_raw {* |
ffd93dcc269d
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192
diff
changeset
|
906 |
\begin{exercise} |
426 | 907 |
Have a look at how the parser @{ML Parse_Spec.where_alt_specs} is implemented |
424 | 908 |
in file @{ML_file "Pure/Isar/parse_spec.ML"}. This parser corresponds |
207 | 909 |
to the ``where-part'' of the introduction rules given above. Below |
426 | 910 |
we paraphrase the code of @{ML_ind where_alt_specs in Parse_Spec} adapted to our |
207 | 911 |
purposes. |
193
ffd93dcc269d
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192
diff
changeset
|
912 |
\begin{isabelle} |
ffd93dcc269d
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192
diff
changeset
|
913 |
*} |
ffd93dcc269d
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192
diff
changeset
|
914 |
ML %linenosgray{*val spec_parser' = |
426 | 915 |
Parse.fixes -- |
193
ffd93dcc269d
polishing to the theorem attributes section
Christian Urban <urbanc@in.tum.de>
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192
diff
changeset
|
916 |
Scan.optional |
426 | 917 |
(Parse.$$$ "where" |-- |
918 |
Parse.!!! |
|
919 |
(Parse.enum1 "|" |
|
920 |
((Parse_Spec.opt_thm_name ":" -- Parse.prop) --| |
|
921 |
Scan.option (Scan.ahead (Parse.name || |
|
922 |
Parse.$$$ "[") -- |
|
923 |
Parse.!!! (Parse.$$$ "|"))))) [] *} |
|
193
ffd93dcc269d
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Christian Urban <urbanc@in.tum.de>
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192
diff
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|
924 |
text_raw {* |
ffd93dcc269d
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192
diff
changeset
|
925 |
\end{isabelle} |
284 | 926 |
Both parsers accept the same input% that's not true: |
927 |
% spec_parser accepts input that is refuted by spec_parser' |
|
928 |
, but if you look closely, you can notice |
|
207 | 929 |
an additional ``tail'' (Lines 8 to 10) in @{ML spec_parser'}. What is the purpose of |
930 |
this additional ``tail''? |
|
193
ffd93dcc269d
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192
diff
changeset
|
931 |
\end{exercise} |
ffd93dcc269d
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192
diff
changeset
|
932 |
*} |
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192
diff
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|
933 |
|
229
abc7f90188af
permutation example uses now recent infrastructure
Christian Urban <urbanc@in.tum.de>
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228
diff
changeset
|
934 |
text {* |
426 | 935 |
(FIXME: @{ML Parse.type_args}, @{ML Parse.typ}, @{ML Parse.opt_mixfix}) |
229
abc7f90188af
permutation example uses now recent infrastructure
Christian Urban <urbanc@in.tum.de>
parents:
228
diff
changeset
|
936 |
*} |
abc7f90188af
permutation example uses now recent infrastructure
Christian Urban <urbanc@in.tum.de>
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228
diff
changeset
|
937 |
|
abc7f90188af
permutation example uses now recent infrastructure
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228
diff
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|
938 |
|
519
cf471fa86091
updated the section about new keywords
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517
diff
changeset
|
939 |
section {* New Commands\label{sec:newcommand} *} |
65
c8e9a4f97916
tuned and added a section about creating keyword files
Christian Urban <urbanc@in.tum.de>
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60
diff
changeset
|
940 |
|
c8e9a4f97916
tuned and added a section about creating keyword files
Christian Urban <urbanc@in.tum.de>
parents:
60
diff
changeset
|
941 |
text {* |
68
e7519207c2b7
added more to the "new command section" and tuning
Christian Urban <urbanc@in.tum.de>
parents:
67
diff
changeset
|
942 |
Often new commands, for example for providing new definitional principles, |
519
cf471fa86091
updated the section about new keywords
Christian Urban <urbanc@in.tum.de>
parents:
517
diff
changeset
|
943 |
need to be implemented. While this is not difficult on the ML-level and |
520
615762b8d8cb
improved new_command section
Christian Urban <urbanc@in.tum.de>
parents:
519
diff
changeset
|
944 |
jEdit, in order to be backwards compatible, new commands need also to be recognised |
615762b8d8cb
improved new_command section
Christian Urban <urbanc@in.tum.de>
parents:
519
diff
changeset
|
945 |
by Proof-General. This results in some subtle configuration issues, which we will |
519
cf471fa86091
updated the section about new keywords
Christian Urban <urbanc@in.tum.de>
parents:
517
diff
changeset
|
946 |
explain in the next section. Here we just describe how to define new commands |
cf471fa86091
updated the section about new keywords
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517
diff
changeset
|
947 |
to work with jEdit. |
65
c8e9a4f97916
tuned and added a section about creating keyword files
Christian Urban <urbanc@in.tum.de>
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60
diff
changeset
|
948 |
|
520
615762b8d8cb
improved new_command section
Christian Urban <urbanc@in.tum.de>
parents:
519
diff
changeset
|
949 |
Let us start with a ``silly'' command that does nothing at all. We |
615762b8d8cb
improved new_command section
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parents:
519
diff
changeset
|
950 |
shall name this command \isacommand{foobar}. Before you can |
615762b8d8cb
improved new_command section
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519
diff
changeset
|
951 |
implement any new command, you have to ``announce'' it in the |
615762b8d8cb
improved new_command section
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parents:
519
diff
changeset
|
952 |
\isacommand{keyword}-section of theory header. For \isacommand{foobar} |
615762b8d8cb
improved new_command section
Christian Urban <urbanc@in.tum.de>
parents:
519
diff
changeset
|
953 |
we need to write something like |
519
cf471fa86091
updated the section about new keywords
Christian Urban <urbanc@in.tum.de>
parents:
517
diff
changeset
|
954 |
|
cf471fa86091
updated the section about new keywords
Christian Urban <urbanc@in.tum.de>
parents:
517
diff
changeset
|
955 |
\begin{graybox} |
cf471fa86091
updated the section about new keywords
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parents:
517
diff
changeset
|
956 |
\isacommand{theory}~@{text Foo}\\ |
cf471fa86091
updated the section about new keywords
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diff
changeset
|
957 |
\isacommand{imports}~@{text Main}\\ |
cf471fa86091
updated the section about new keywords
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517
diff
changeset
|
958 |
\isacommand{keywords} @{text [quotes] "foobar"} @{text "::"} @{text "thy_decl"}\\ |
cf471fa86091
updated the section about new keywords
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diff
changeset
|
959 |
... |
cf471fa86091
updated the section about new keywords
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diff
changeset
|
960 |
\end{graybox} |
cf471fa86091
updated the section about new keywords
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parents:
517
diff
changeset
|
961 |
|
520
615762b8d8cb
improved new_command section
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parents:
519
diff
changeset
|
962 |
whereby @{ML_ind "thy_decl" in Keyword} indicates the kind of the |
615762b8d8cb
improved new_command section
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519
diff
changeset
|
963 |
command. Another possible kind is @{text "thy_goal"}, or you can |
615762b8d8cb
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diff
changeset
|
964 |
also to omit the kind entirely, in which case you declare a keyword |
615762b8d8cb
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diff
changeset
|
965 |
(something that is part of a command). |
615762b8d8cb
improved new_command section
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parents:
519
diff
changeset
|
966 |
|
615762b8d8cb
improved new_command section
Christian Urban <urbanc@in.tum.de>
parents:
519
diff
changeset
|
967 |
Now you can implement \isacommand{foobar} as: |
519
cf471fa86091
updated the section about new keywords
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parents:
517
diff
changeset
|
968 |
*} |
cf471fa86091
updated the section about new keywords
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parents:
517
diff
changeset
|
969 |
|
520
615762b8d8cb
improved new_command section
Christian Urban <urbanc@in.tum.de>
parents:
519
diff
changeset
|
970 |
ML %grayML{*let |
615762b8d8cb
improved new_command section
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parents:
519
diff
changeset
|
971 |
val do_nothing = Scan.succeed (Local_Theory.background_theory I) |
615762b8d8cb
improved new_command section
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519
diff
changeset
|
972 |
in |
615762b8d8cb
improved new_command section
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519
diff
changeset
|
973 |
Outer_Syntax.local_theory @{command_spec "foobar"} |
615762b8d8cb
improved new_command section
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519
diff
changeset
|
974 |
"description of foobar" |
615762b8d8cb
improved new_command section
Christian Urban <urbanc@in.tum.de>
parents:
519
diff
changeset
|
975 |
do_nothing |
615762b8d8cb
improved new_command section
Christian Urban <urbanc@in.tum.de>
parents:
519
diff
changeset
|
976 |
end *} |
615762b8d8cb
improved new_command section
Christian Urban <urbanc@in.tum.de>
parents:
519
diff
changeset
|
977 |
|
615762b8d8cb
improved new_command section
Christian Urban <urbanc@in.tum.de>
parents:
519
diff
changeset
|
978 |
text {* |
615762b8d8cb
improved new_command section
Christian Urban <urbanc@in.tum.de>
parents:
519
diff
changeset
|
979 |
The crucial function @{ML_ind local_theory in Outer_Syntax} expects |
615762b8d8cb
improved new_command section
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519
diff
changeset
|
980 |
the name for the command, a kind indicator, a short description and |
615762b8d8cb
improved new_command section
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519
diff
changeset
|
981 |
a parser producing a local theory transition (explained later). For the |
615762b8d8cb
improved new_command section
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519
diff
changeset
|
982 |
name and the kind, you can use the ML-antiquotation @{text "@{command_spec ...}"}. |
615762b8d8cb
improved new_command section
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diff
changeset
|
983 |
After this, you can write in your theory |
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|
984 |
*} |
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|
985 |
|
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|
986 |
|
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987 |
foobar |
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988 |
|
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|
989 |
|
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|
990 |
text {* |
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991 |
Remember that this only works in jEdit. In order to let Proof-General |
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992 |
recognise this command, a keyword file needs to be generated (see next |
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|
993 |
section). |
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|
994 |
|
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995 |
At the moment the command \isacommand{foobar} is not very useful. Let us |
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996 |
refine it a bit next by letting it take a proposition as argument and |
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|
997 |
printing this proposition inside the tracing buffer. We announce the |
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|
998 |
command as |
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|
999 |
|
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|
1000 |
\begin{graybox} |
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1001 |
\isacommand{keywords} @{text [quotes] "foobar_trace"} @{text "::"} @{text "thy_decl"} |
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1002 |
\end{graybox} |
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|
1003 |
|
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1004 |
The crucial part of a command is the function that determines the |
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|
1005 |
behaviour of the command. In the code above we used a |
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|
1006 |
``do-nothing''-function, which because of the parser @{ML_ind succeed in Scan} |
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|
1007 |
does not parse any argument, but immediately returns the simple |
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1008 |
function @{ML "Local_Theory.background_theory I"}. We can replace |
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|
1009 |
this code by a function that first parses a proposition (using the |
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|
1010 |
parser @{ML Parse.prop}), then prints out some tracing information |
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|
1011 |
(using the function @{text trace_prop}) and finally does |
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1012 |
nothing. For this you can write: |
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1013 |
*} |
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|
1014 |
|
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|
1015 |
ML %grayML{*let |
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1016 |
fun trace_prop str = |
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1017 |
Local_Theory.background_theory (fn ctxt => (tracing str; ctxt)) |
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|
1018 |
in |
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|
1019 |
Outer_Syntax.local_theory @{command_spec "foobar_trace"} |
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|
1020 |
"traces a proposition" |
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|
1021 |
(Parse.prop >> trace_prop) |
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|
1022 |
end *} |
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|
1023 |
|
68
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|
1024 |
text {* |
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|
1025 |
The command is now \isacommand{foobar\_trace} and can be used to |
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|
1026 |
see the proposition in the tracing buffer. |
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|
1027 |
*} |
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|
1028 |
|
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|
1029 |
foobar_trace "True \<and> False" |
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|
1030 |
|
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|
1031 |
text {* |
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|
1032 |
Note that so far we used @{ML_ind thy_decl in Keyword} as the kind |
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|
1033 |
indicator for the new command. This means that the command finishes as soon as |
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|
1034 |
the arguments are processed. Examples of this kind of commands are |
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|
1035 |
\isacommand{definition} and \isacommand{declare}. In other cases, commands |
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1036 |
are expected to parse some arguments, for example a proposition, and then |
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|
1037 |
``open up'' a proof in order to prove the proposition (for example |
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1038 |
\isacommand{lemma}) or prove some other properties (for example |
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|
1039 |
\isacommand{function}). To achieve this kind of behaviour, you have to use |
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|
1040 |
the kind indicator @{ML_ind thy_goal in Keyword} and the function @{ML |
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|
1041 |
"local_theory_to_proof" in Outer_Syntax} to set up the command. |
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|
1042 |
Below we show the command \isacommand{foobar\_goal} which takes a |
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|
1043 |
proposition as argument and then starts a proof in order to prove |
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|
1044 |
it. Therefore, we need to announce this command in the header |
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|
1045 |
as @{text "thy_goal"} |
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|
1046 |
|
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|
1047 |
\begin{graybox} |
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|
1048 |
\isacommand{keywords} @{text [quotes] "foobar_goal"} @{text "::"} @{text "thy_goal"} |
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|
1049 |
\end{graybox} |
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|
1050 |
|
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|
1051 |
Then we can write: |
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|
1052 |
*} |
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|
1053 |
|
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|
1054 |
ML%linenosgray{*let |
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|
1055 |
fun goal_prop str ctxt = |
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|
1056 |
let |
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|
1057 |
val prop = Syntax.read_prop ctxt str |
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|
1058 |
in |
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|
1059 |
Proof.theorem NONE (K I) [[(prop, [])]] ctxt |
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|
1060 |
end |
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|
1061 |
in |
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|
1062 |
Outer_Syntax.local_theory_to_proof @{command_spec "foobar_goal"} |
519
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|
1063 |
"proves a proposition" |
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|
1064 |
(Parse.prop >> goal_prop) |
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|
1065 |
end *} |
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|
1066 |
|
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|
1067 |
text {* |
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|
1068 |
The function @{text goal_prop} in Lines 2 to 7 takes a string (the proposition to be |
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|
1069 |
proved) and a context as argument. The context is necessary in order to be able to use |
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|
1070 |
@{ML_ind read_prop in Syntax}, which converts a string into a proper proposition. |
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|
1071 |
In Line 6 the function @{ML_ind theorem in Proof} starts the proof for the |
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|
1072 |
proposition. Its argument @{ML NONE} stands for a locale (which we chose to |
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|
1073 |
omit); the argument @{ML "(K I)"} stands for a function that determines what |
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|
1074 |
should be done with the theorem once it is proved (we chose to just forget |
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|
1075 |
about it). |
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|
1076 |
|
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|
1077 |
If you now type \isacommand{foobar\_goal}~@{text [quotes] "True \<and> True"}, |
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|
1078 |
you obtain the following proof state: |
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|
1079 |
*} |
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|
1080 |
|
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|
1081 |
foobar_goal "True \<and> True" |
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|
1082 |
txt {* |
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|
1083 |
\begin{minipage}{\textwidth} |
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|
1084 |
@{subgoals [display]} |
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|
1085 |
\end{minipage}\medskip |
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|
1086 |
|
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|
1087 |
and can prove the proposition as follows. |
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|
1088 |
*} |
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|
1089 |
apply(rule conjI) |
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|
1090 |
apply(rule TrueI)+ |
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|
1091 |
done |
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|
1092 |
|
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|
1093 |
text {* |
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|
1094 |
The final new command we describe is |
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|
1095 |
\isacommand{foobar\_proof}. Like \isacommand{lemma}, its purpose is |
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|
1096 |
to take a proposition and open a corresponding proof-state that |
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|
1097 |
allows us to give a proof for it. However, unlike |
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|
1098 |
\isacommand{lemma}, the proposition will be given as an |
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|
1099 |
ML-value. Such a command is quite useful during development |
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|
1100 |
of a tool that generates a goal on the ML-level and you want to see |
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|
1101 |
whether it is provable. In addition you also want that the proved |
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|
1102 |
proposition can be given a lemma name that can be referenced later on. |
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|
1103 |
|
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|
1104 |
The first problem of this new command is to parse some text as |
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|
1105 |
ML-source and then interpret it as a term. For the parsing we can |
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|
1106 |
use the function @{ML_ind "ML_source" in Parse} in the structure |
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|
1107 |
@{ML_struct Parse}. For running the ML-interpreter we need the |
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|
1108 |
following scaffolding code. |
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|
1109 |
*} |
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|
1110 |
|
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|
1111 |
ML %grayML{* |
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|
1112 |
structure Result = Proof_Data ( |
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|
1113 |
type T = unit -> term |
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|
1114 |
fun init thy () = error "Result") |
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|
1115 |
|
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|
1116 |
val result_cookie = (Result.get, Result.put, "Result.put") *} |
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|
1117 |
|
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|
1118 |
text {* |
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|
1119 |
With this in place we can write the code for \isacommand{foobar\_prove}. |
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|
1120 |
*} |
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|
1121 |
|
615762b8d8cb
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|
1122 |
ML %linenosgray{*let |
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diff
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|
1123 |
fun after_qed thm_name thms lthy = |
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|
1124 |
Local_Theory.note (thm_name, (flat thms)) lthy |> snd |
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|
1125 |
|
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|
1126 |
fun setup_proof (thm_name, (txt, pos)) lthy = |
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|
1127 |
let |
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|
1128 |
val trm = Code_Runtime.value lthy result_cookie ("", txt) |
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|
1129 |
in |
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diff
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|
1130 |
Proof.theorem NONE (after_qed thm_name) [[(trm, [])]] lthy |
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|
1131 |
end |
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|
1132 |
|
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|
1133 |
val parser = Parse_Spec.opt_thm_name ":" -- Parse.ML_source |
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|
1134 |
in |
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|
1135 |
Outer_Syntax.local_theory_to_proof @{command_spec "foobar_prove"} |
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|
1136 |
"proving a proposition" |
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|
1137 |
(parser >> setup_proof) |
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|
1138 |
end*} |
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|
1139 |
|
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|
1140 |
text {* |
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|
1141 |
In Line 12, we implement a parser that first reads in an optional lemma name (terminated |
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|
1142 |
by ``:'') and then some ML-code. The function in Lines 5 to 10 takes the ML |
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|
1143 |
text and lets the ML-runtime evaluate it using the function @{ML_ind value in Code_Runtime} |
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|
1144 |
in the structure @{ML_struct Code_Runtime}. Once the ML-text has been turned into a term, |
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|
1145 |
the function @{ML theorem in Proof} opens a corresponding proof-state. This function takes the |
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|
1146 |
function @{ML_text "after_qed"} as argument, whose purpose is to store the theorem, |
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|
1147 |
once it is proven, under the user given name @{text "thm_name"}. |
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|
1148 |
|
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|
1149 |
We can now give take a term, for example |
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|
1150 |
*} |
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|
1151 |
|
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|
1152 |
ML %grayML{*val prop_true = @{prop "True"}*} |
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|
1153 |
|
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|
1154 |
text {* |
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|
1155 |
and give a proove for it using \isacommand{foobar\_prove}: |
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|
1156 |
*} |
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|
1157 |
|
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|
1158 |
foobar_prove test: prop_true |
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|
1159 |
apply(rule TrueI) |
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|
1160 |
done |
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|
1161 |
|
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|
1162 |
text {* |
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|
1163 |
Finally we can test whether the lemma has been stored under the given name. |
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|
1164 |
|
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|
1165 |
\begin{isabelle} |
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|
1166 |
\isacommand{thm}~@{text "test"}\\ |
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|
1167 |
@{text "> "}~@{thm TrueI} |
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|
1168 |
\end{isabelle} |
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|
1169 |
|
519
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|
1170 |
While this is everything you have to do for a new command when using jEdit, |
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|
1171 |
things are not as simple when using Emacs and ProofGeneral. We explain the details |
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diff
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|
1172 |
next. |
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|
1173 |
*} |
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|
1174 |
|
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|
1175 |
|
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|
1176 |
section {* Proof-General and Keyword Files *} |
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|
1177 |
|
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|
1178 |
text {* |
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|
1179 |
In order to use a new command in Emacs and Proof-General, you need a keyword |
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|
1180 |
file that can be loaded by ProofGeneral. To keep things simple we take as |
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|
1181 |
running example the command \isacommand{foobar} from the previous section. |
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diff
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|
1182 |
|
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|
1183 |
A keyword file can be generated with the command-line: |
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|
1184 |
|
74 | 1185 |
@{text [display] "$ isabelle keywords -k foobar some_log_files"} |
65
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|
1186 |
|
74 | 1187 |
The option @{text "-k foobar"} indicates which postfix the name of the keyword file |
80 | 1188 |
will be assigned. In the case above the file will be named @{text |
86 | 1189 |
"isar-keywords-foobar.el"}. This command requires log files to be |
68
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|
1190 |
present (in order to extract the keywords from them). To generate these log |
101 | 1191 |
files, you first need to package the code above into a separate theory file named |
68
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|
1192 |
@{text "Command.thy"}, say---see Figure~\ref{fig:commandtheory} for the |
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|
1193 |
complete code. |
65
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|
1194 |
|
66 | 1195 |
|
1196 |
%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%% |
|
1197 |
\begin{figure}[t] |
|
69
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diff
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|
1198 |
\begin{graybox}\small |
66 | 1199 |
\isacommand{theory}~@{text Command}\\ |
1200 |
\isacommand{imports}~@{text Main}\\ |
|
519
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|
1201 |
\isacommand{keywords} @{text [quotes] "foobar"} @{text "::"} @{text "thy_decl"}\\ |
66 | 1202 |
\isacommand{begin}\\ |
85
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|
1203 |
\isacommand{ML}~@{text "\<verbopen>"}\\ |
66 | 1204 |
@{ML |
1205 |
"let |
|
449 | 1206 |
val do_nothing = Scan.succeed (Local_Theory.background_theory I) |
66 | 1207 |
in |
520
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|
1208 |
Outer_Syntax.local_theory @{command_spec \"foobar\"} |
519
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|
1209 |
\"description of foobar\" |
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|
1210 |
do_nothing |
66 | 1211 |
end"}\\ |
85
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|
1212 |
@{text "\<verbclose>"}\\ |
66 | 1213 |
\isacommand{end} |
80 | 1214 |
\end{graybox} |
241 | 1215 |
\caption{This file can be used to generate a log file. This log file in turn can |
1216 |
be used to generate a keyword file containing the command \isacommand{foobar}. |
|
1217 |
\label{fig:commandtheory}} |
|
66 | 1218 |
\end{figure} |
1219 |
%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%% |
|
1220 |
||
75 | 1221 |
For our purposes it is sufficient to use the log files of the theories |
68
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|
1222 |
@{text "Pure"}, @{text "HOL"} and @{text "Pure-ProofGeneral"}, as well as |
75 | 1223 |
the log file for the theory @{text "Command.thy"}, which contains the new |
1224 |
\isacommand{foobar}-command. If you target other logics besides HOL, such |
|
74 | 1225 |
as Nominal or ZF, then you need to adapt the log files appropriately. |
104 | 1226 |
|
74 | 1227 |
@{text Pure} and @{text HOL} are usually compiled during the installation of |
1228 |
Isabelle. So log files for them should be already available. If not, then |
|
75 | 1229 |
they can be conveniently compiled with the help of the build-script from the Isabelle |
102
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|
1230 |
distribution. |
65
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|
1231 |
|
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|
1232 |
@{text [display] |
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|
1233 |
"$ ./build -m \"Pure\" |
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|
1234 |
$ ./build -m \"HOL\""} |
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|
1235 |
|
102
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|
1236 |
The @{text "Pure-ProofGeneral"} theory needs to be compiled with: |
65
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|
1237 |
|
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|
1238 |
@{text [display] "$ ./build -m \"Pure-ProofGeneral\" \"Pure\""} |
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|
1239 |
|
101 | 1240 |
For the theory @{text "Command.thy"}, you first need to create a ``managed'' subdirectory |
102
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|
1241 |
with: |
66 | 1242 |
|
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|
1243 |
@{text [display] "$ isabelle mkdir FoobarCommand"} |
66 | 1244 |
|
102
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|
1245 |
This generates a directory containing the files: |
66 | 1246 |
|
1247 |
@{text [display] |
|
1248 |
"./IsaMakefile |
|
68
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|
1249 |
./FoobarCommand/ROOT.ML |
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|
1250 |
./FoobarCommand/document |
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|
1251 |
./FoobarCommand/document/root.tex"} |
65
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|
1252 |
|
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|
1253 |
|
101 | 1254 |
You need to copy the file @{text "Command.thy"} into the directory @{text "FoobarCommand"} |
66 | 1255 |
and add the line |
1256 |
||
207 | 1257 |
@{text [display] "no_document use_thy \"Command\";"} |
66 | 1258 |
|
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|
1259 |
to the file @{text "./FoobarCommand/ROOT.ML"}. You can now compile the theory by just typing: |
65
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diff
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|
1260 |
|
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|
1261 |
@{text [display] "$ isabelle make"} |
c8e9a4f97916
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60
diff
changeset
|
1262 |
|
101 | 1263 |
If the compilation succeeds, you have finally created all the necessary log files. |
1264 |
They are stored in the directory |
|
65
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diff
changeset
|
1265 |
|
519
cf471fa86091
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diff
changeset
|
1266 |
@{text [display] "~/.isabelle/heaps/Isabelle2012/polyml-5.2.1_x86-linux/log"} |
65
c8e9a4f97916
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60
diff
changeset
|
1267 |
|
74 | 1268 |
or something similar depending on your Isabelle distribution and architecture. |
1269 |
One quick way to assign a shell variable to this directory is by typing |
|
66 | 1270 |
|
1271 |
@{text [display] "$ ISABELLE_LOGS=\"$(isabelle getenv -b ISABELLE_OUTPUT)\"/log"} |
|
1272 |
||
156 | 1273 |
on the Unix prompt. If you now type @{text "ls $ISABELLE_LOGS"}, then the |
128 | 1274 |
directory should include the files: |
65
c8e9a4f97916
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parents:
60
diff
changeset
|
1275 |
|
c8e9a4f97916
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parents:
60
diff
changeset
|
1276 |
@{text [display] |
c8e9a4f97916
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parents:
60
diff
changeset
|
1277 |
"Pure.gz |
c8e9a4f97916
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parents:
60
diff
changeset
|
1278 |
HOL.gz |
c8e9a4f97916
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parents:
60
diff
changeset
|
1279 |
Pure-ProofGeneral.gz |
68
e7519207c2b7
added more to the "new command section" and tuning
Christian Urban <urbanc@in.tum.de>
parents:
67
diff
changeset
|
1280 |
HOL-FoobarCommand.gz"} |
65
c8e9a4f97916
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parents:
60
diff
changeset
|
1281 |
|
101 | 1282 |
From them you can create the keyword files. Assuming the name |
75 | 1283 |
of the directory is in @{text "$ISABELLE_LOGS"}, |
74 | 1284 |
then the Unix command for creating the keyword file is: |
65
c8e9a4f97916
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60
diff
changeset
|
1285 |
|
c8e9a4f97916
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parents:
60
diff
changeset
|
1286 |
@{text [display] |
68
e7519207c2b7
added more to the "new command section" and tuning
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parents:
67
diff
changeset
|
1287 |
"$ isabelle keywords -k foobar |
80 | 1288 |
$ISABELLE_LOGS/{Pure.gz,HOL.gz,Pure-ProofGeneral.gz,HOL-FoobarCommand.gz}"} |
65
c8e9a4f97916
tuned and added a section about creating keyword files
Christian Urban <urbanc@in.tum.de>
parents:
60
diff
changeset
|
1289 |
|
80 | 1290 |
The result is the file @{text "isar-keywords-foobar.el"}. It should contain |
321
e450fa467e3f
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parents:
319
diff
changeset
|
1291 |
the string @{text "foobar"} twice.\footnote{To see whether things are fine, |
e450fa467e3f
polished the commands section
Christian Urban <urbanc@in.tum.de>
parents:
319
diff
changeset
|
1292 |
check that @{text "grep foobar"} on this file returns something non-empty.} |
e450fa467e3f
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parents:
319
diff
changeset
|
1293 |
This keyword file needs to be copied into the directory @{text |
e450fa467e3f
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parents:
319
diff
changeset
|
1294 |
"~/.isabelle/etc"}. To make ProofGeneral aware of it, you have to start |
e450fa467e3f
polished the commands section
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parents:
319
diff
changeset
|
1295 |
Isabelle with the option @{text "-k foobar"}, that is: |
65
c8e9a4f97916
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parents:
60
diff
changeset
|
1296 |
|
80 | 1297 |
|
102
5e309df58557
general cleaning up; deleted antiquotation ML_text; adjusted pathnames of various files in the distribution
Christian Urban <urbanc@in.tum.de>
parents:
101
diff
changeset
|
1298 |
@{text [display] "$ isabelle emacs -k foobar a_theory_file"} |
65
c8e9a4f97916
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parents:
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diff
changeset
|
1299 |
|
101 | 1300 |
If you now build a theory on top of @{text "Command.thy"}, |
519
cf471fa86091
updated the section about new keywords
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parents:
517
diff
changeset
|
1301 |
then you can now use the command \isacommand{foobar} |
cf471fa86091
updated the section about new keywords
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parents:
517
diff
changeset
|
1302 |
in Proof-General |
321
e450fa467e3f
polished the commands section
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parents:
319
diff
changeset
|
1303 |
|
519
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517
diff
changeset
|
1304 |
A similar procedure has to be done with any |
326
f76135c6c527
more work on the tutorial
Christian Urban <urbanc@in.tum.de>
parents:
324
diff
changeset
|
1305 |
other new command, and also any new keyword that is introduced with |
514
7e25716c3744
updated to outer syntax / parser changes
Christian Urban <urbanc@in.tum.de>
parents:
473
diff
changeset
|
1306 |
the function @{ML_ind define in Keyword}. For example: |
230
8def50824320
added material about OuterKeyword.keyword and OuterParse.reserved
Christian Urban <urbanc@in.tum.de>
parents:
229
diff
changeset
|
1307 |
*} |
65
c8e9a4f97916
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parents:
60
diff
changeset
|
1308 |
|
517
d8c376662bb4
removed special ML-setup and replaced it by explicit markups (i.e., %grayML)
Christian Urban <urbanc@in.tum.de>
parents:
514
diff
changeset
|
1309 |
ML %grayML{*val _ = Keyword.define ("blink", NONE) *} |
65
c8e9a4f97916
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parents:
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diff
changeset
|
1310 |
|
218
7ff7325e3b4e
started to adapt the rest of chapter 5 to the simplified version without parameters (they will be described in the extension section)
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parents:
211
diff
changeset
|
1311 |
|
68
e7519207c2b7
added more to the "new command section" and tuning
Christian Urban <urbanc@in.tum.de>
parents:
67
diff
changeset
|
1312 |
text {* |
519
cf471fa86091
updated the section about new keywords
Christian Urban <urbanc@in.tum.de>
parents:
517
diff
changeset
|
1313 |
Also if the kind of a command changes, from @{text "thy_decl"} to |
cf471fa86091
updated the section about new keywords
Christian Urban <urbanc@in.tum.de>
parents:
517
diff
changeset
|
1314 |
@{text "thy_goal"} say, you need to recreate the keyword file. |
68
e7519207c2b7
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Christian Urban <urbanc@in.tum.de>
parents:
67
diff
changeset
|
1315 |
*} |
e7519207c2b7
added more to the "new command section" and tuning
Christian Urban <urbanc@in.tum.de>
parents:
67
diff
changeset
|
1316 |
|
321
e450fa467e3f
polished the commands section
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parents:
319
diff
changeset
|
1317 |
text {* |
327
ce754ad78bc9
more work on the storing section
Christian Urban <urbanc@in.tum.de>
parents:
326
diff
changeset
|
1318 |
{\bf TBD below} |
74 | 1319 |
|
394 | 1320 |
(FIXME: read a name and show how to store theorems; see @{ML_ind note in Local_Theory}) |
241 | 1321 |
|
65
c8e9a4f97916
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60
diff
changeset
|
1322 |
*} |
c8e9a4f97916
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Christian Urban <urbanc@in.tum.de>
parents:
60
diff
changeset
|
1323 |
|
451
fc074e669f9f
disabled foobar_prove; updated to new Isabelle
Christian Urban <urbanc@in.tum.de>
parents:
449
diff
changeset
|
1324 |
|
324
4172c0743cf2
updated foobar_proof example
Christian Urban <urbanc@in.tum.de>
parents:
322
diff
changeset
|
1325 |
|
321
e450fa467e3f
polished the commands section
Christian Urban <urbanc@in.tum.de>
parents:
319
diff
changeset
|
1326 |
|
e450fa467e3f
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Christian Urban <urbanc@in.tum.de>
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319
diff
changeset
|
1327 |
|
322 | 1328 |
(* |
1329 |
ML {* |
|
1330 |
structure TacticData = ProofDataFun |
|
1331 |
( |
|
1332 |
type T = thm list -> tactic; |
|
1333 |
fun init _ = undefined; |
|
366 | 1334 |
) |
322 | 1335 |
|
1336 |
val set_tactic = TacticData.put; |
|
1337 |
*} |
|
1338 |
||
1339 |
ML {* |
|
1340 |
TacticData.get @{context} |
|
1341 |
*} |
|
1342 |
||
1343 |
ML {* Method.set_tactic *} |
|
1344 |
ML {* fun tactic (facts: thm list) : tactic = (atac 1) *} |
|
1345 |
ML {* Context.map_proof *} |
|
1346 |
ML {* ML_Context.expression *} |
|
1347 |
ML {* METHOD *} |
|
1348 |
||
1349 |
||
1350 |
ML {* |
|
1351 |
fun myexpression pos bind body txt = |
|
1352 |
let |
|
1353 |
val _ = tracing ("bind)" ^ bind) |
|
1354 |
val _ = tracing ("body)" ^ body) |
|
1355 |
val _ = tracing ("txt)" ^ txt) |
|
1356 |
val _ = tracing ("result) " ^ "Context.set_thread_data (SOME (let " ^ bind ^ " = " ^ txt ^ " in " ^ body ^ |
|
1357 |
" end (ML_Context.the_generic_context ())));") |
|
1358 |
in |
|
1359 |
ML_Context.exec (fn () => ML_Context.eval false pos |
|
1360 |
("Context.set_thread_data (SOME (let " ^ bind ^ " = " ^ txt ^ " in " ^ body ^ |
|
1361 |
" end (ML_Context.the_generic_context ())));")) |
|
1362 |
end |
|
1363 |
*} |
|
319
6bce4acf7f2a
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316
diff
changeset
|
1364 |
|
6bce4acf7f2a
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Christian Urban <urbanc@in.tum.de>
parents:
316
diff
changeset
|
1365 |
|
322 | 1366 |
ML {* |
1367 |
fun ml_tactic (txt, pos) ctxt = |
|
1368 |
let |
|
1369 |
val ctxt' = ctxt |> Context.proof_map |
|
1370 |
(myexpression pos |
|
1371 |
"fun tactic (facts: thm list) : tactic" |
|
1372 |
"Context.map_proof (Method.set_tactic tactic)" txt); |
|
1373 |
in |
|
1374 |
Context.setmp_thread_data (SOME (Context.Proof ctxt)) (TacticData.get ctxt') |
|
1375 |
end; |
|
1376 |
*} |
|
1377 |
||
1378 |
ML {* |
|
1379 |
fun tactic3 (txt, pos) ctxt = |
|
1380 |
let |
|
1381 |
val _ = tracing ("1) " ^ txt ) |
|
1382 |
in |
|
1383 |
METHOD (ml_tactic (txt, pos) ctxt; K (atac 1)) |
|
1384 |
end |
|
1385 |
*} |
|
1386 |
||
1387 |
setup {* |
|
426 | 1388 |
Method.setup (Binding.name "tactic3") (Scan.lift (Parse.position Args.name) |
322 | 1389 |
>> tactic3) |
1390 |
"ML tactic as proof method" |
|
1391 |
*} |
|
1392 |
||
1393 |
lemma "A \<Longrightarrow> A" |
|
1394 |
apply(tactic3 {* (atac 1) *}) |
|
1395 |
done |
|
1396 |
||
1397 |
ML {* |
|
1398 |
(ML_Context.the_generic_context ()) |
|
1399 |
*} |
|
1400 |
||
1401 |
ML {* |
|
1402 |
Context.set_thread_data; |
|
1403 |
ML_Context.the_generic_context |
|
1404 |
*} |
|
1405 |
||
1406 |
lemma "A \<Longrightarrow> A" |
|
1407 |
ML_prf {* |
|
1408 |
Context.set_thread_data (SOME (let fun tactic (facts: thm list) : tactic = (atac 1) in Context.map_proof (Method.set_tactic tactic) end (ML_Context.the_generic_context ()))); |
|
1409 |
*} |
|
1410 |
||
1411 |
ML {* |
|
1412 |
Context.set_thread_data (SOME ((let fun tactic (facts: thm list) : tactic = (atac 1) in 3 end) (ML_Context.the_generic_context ()))); |
|
1413 |
*} |
|
1414 |
||
1415 |
ML {* |
|
1416 |
Context.set_thread_data (SOME (let |
|
1417 |
fun tactic (facts: thm list) : tactic = (atac 1) |
|
1418 |
in |
|
1419 |
Context.map_proof (Method.set_tactic tactic) |
|
1420 |
end |
|
1421 |
(ML_Context.the_generic_context ()))); |
|
1422 |
*} |
|
1423 |
||
1424 |
||
1425 |
ML {* |
|
1426 |
let |
|
1427 |
fun tactic (facts: thm list) : tactic = atac |
|
1428 |
in |
|
1429 |
Context.map_proof (Method.set_tactic tactic) |
|
1430 |
end *} |
|
1431 |
||
1432 |
end *} |
|
1433 |
||
1434 |
ML {* Toplevel.program (fn () => |
|
1435 |
(ML_Context.expression Position.none "val plus : int" "3 + 4" "1" (Context.Proof @{context})))*} |
|
1436 |
||
1437 |
||
1438 |
ML {* |
|
1439 |
fun ml_tactic (txt, pos) ctxt = |
|
1440 |
let |
|
1441 |
val ctxt' = ctxt |> Context.proof_map |
|
1442 |
(ML_Context.expression pos |
|
1443 |
"fun tactic (facts: thm list) : tactic" |
|
1444 |
"Context.map_proof (Method.set_tactic tactic)" txt); |
|
1445 |
in Context.setmp_thread_data (SOME (Context.Proof ctxt)) (TacticData.get ctxt') end; |
|
1446 |
||
1447 |
*} |
|
1448 |
||
1449 |
ML {* |
|
1450 |
Context.set_thread_data (SOME (let fun tactic (facts: thm list) : tactic = (atac 1) in Context.map_proof (Method.set_tactic tactic) end (ML_Context.the_generic_context ()))); |
|
1451 |
*} |
|
1452 |
*) |
|
319
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316
diff
changeset
|
1453 |
|
211
d5accbc67e1b
more work on simple inductive and marked all sections that are still seriously incomplete with TBD
Christian Urban <urbanc@in.tum.de>
parents:
207
diff
changeset
|
1454 |
section {* Methods (TBD) *} |
178
fb8f22dd8ad0
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diff
changeset
|
1455 |
|
fb8f22dd8ad0
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parents:
177
diff
changeset
|
1456 |
text {* |
207 | 1457 |
(FIXME: maybe move to after the tactic section) |
1458 |
||
221 | 1459 |
Methods are central to Isabelle. They are the ones you use for example |
186
371e4375c994
made the Ackermann function example safer and included suggestions from MW
Christian Urban <urbanc@in.tum.de>
parents:
183
diff
changeset
|
1460 |
in \isacommand{apply}. To print out all currently known methods you can use the |
192 | 1461 |
Isabelle command: |
178
fb8f22dd8ad0
adapted to latest Attrib.setup changes and more work on the simple induct chapter
Christian Urban <urbanc@in.tum.de>
parents:
177
diff
changeset
|
1462 |
|
207 | 1463 |
\begin{isabelle} |
1464 |
\isacommand{print\_methods}\\ |
|
1465 |
@{text "> methods:"}\\ |
|
1466 |
@{text "> -: do nothing (insert current facts only)"}\\ |
|
1467 |
@{text "> HOL.default: apply some intro/elim rule (potentially classical)"}\\ |
|
1468 |
@{text "> ..."} |
|
1469 |
\end{isabelle} |
|
178
fb8f22dd8ad0
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parents:
177
diff
changeset
|
1470 |
|
193
ffd93dcc269d
polishing to the theorem attributes section
Christian Urban <urbanc@in.tum.de>
parents:
192
diff
changeset
|
1471 |
An example of a very simple method is: |
178
fb8f22dd8ad0
adapted to latest Attrib.setup changes and more work on the simple induct chapter
Christian Urban <urbanc@in.tum.de>
parents:
177
diff
changeset
|
1472 |
*} |
fb8f22dd8ad0
adapted to latest Attrib.setup changes and more work on the simple induct chapter
Christian Urban <urbanc@in.tum.de>
parents:
177
diff
changeset
|
1473 |
|
244
dc95a56b1953
fixed the problem with double definition of even and odd
Christian Urban <urbanc@in.tum.de>
parents:
241
diff
changeset
|
1474 |
method_setup %gray foo = |
181
5baaabe1ab92
updated to new method_setup
Christian Urban <urbanc@in.tum.de>
parents:
178
diff
changeset
|
1475 |
{* Scan.succeed |
5baaabe1ab92
updated to new method_setup
Christian Urban <urbanc@in.tum.de>
parents:
178
diff
changeset
|
1476 |
(K (SIMPLE_METHOD ((etac @{thm conjE} THEN' rtac @{thm conjI}) 1))) *} |
244
dc95a56b1953
fixed the problem with double definition of even and odd
Christian Urban <urbanc@in.tum.de>
parents:
241
diff
changeset
|
1477 |
"foo method for conjE and conjI" |
178
fb8f22dd8ad0
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parents:
177
diff
changeset
|
1478 |
|
fb8f22dd8ad0
adapted to latest Attrib.setup changes and more work on the simple induct chapter
Christian Urban <urbanc@in.tum.de>
parents:
177
diff
changeset
|
1479 |
text {* |
286 | 1480 |
It defines the method @{text foo}, which takes no arguments (therefore the |
207 | 1481 |
parser @{ML Scan.succeed}) and only applies a single tactic, namely the tactic which |
256
1fb8d62c88a0
added some first index-information
Christian Urban <urbanc@in.tum.de>
parents:
250
diff
changeset
|
1482 |
applies @{thm [source] conjE} and then @{thm [source] conjI}. The function |
344
83d5bca38bec
added structures in the index
Christian Urban <urbanc@in.tum.de>
parents:
328
diff
changeset
|
1483 |
@{ML_ind SIMPLE_METHOD in Method} |
287 | 1484 |
turns such a tactic into a method. The method @{text "foo"} can be used as follows |
178
fb8f22dd8ad0
adapted to latest Attrib.setup changes and more work on the simple induct chapter
Christian Urban <urbanc@in.tum.de>
parents:
177
diff
changeset
|
1485 |
*} |
fb8f22dd8ad0
adapted to latest Attrib.setup changes and more work on the simple induct chapter
Christian Urban <urbanc@in.tum.de>
parents:
177
diff
changeset
|
1486 |
|
fb8f22dd8ad0
adapted to latest Attrib.setup changes and more work on the simple induct chapter
Christian Urban <urbanc@in.tum.de>
parents:
177
diff
changeset
|
1487 |
lemma shows "A \<and> B \<Longrightarrow> C \<and> D" |
244
dc95a56b1953
fixed the problem with double definition of even and odd
Christian Urban <urbanc@in.tum.de>
parents:
241
diff
changeset
|
1488 |
apply(foo) |
178
fb8f22dd8ad0
adapted to latest Attrib.setup changes and more work on the simple induct chapter
Christian Urban <urbanc@in.tum.de>
parents:
177
diff
changeset
|
1489 |
txt {* |
fb8f22dd8ad0
adapted to latest Attrib.setup changes and more work on the simple induct chapter
Christian Urban <urbanc@in.tum.de>
parents:
177
diff
changeset
|
1490 |
where it results in the goal state |
fb8f22dd8ad0
adapted to latest Attrib.setup changes and more work on the simple induct chapter
Christian Urban <urbanc@in.tum.de>
parents:
177
diff
changeset
|
1491 |
|
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|
1492 |
\begin{minipage}{\textwidth} |
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|
1493 |
@{subgoals} |
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|
1494 |
\end{minipage} *} |
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|
1495 |
(*<*)oops(*>*) |
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|
1496 |
|
519
cf471fa86091
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|
1497 |
method_setup test = {* |
cf471fa86091
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|
1498 |
Scan.lift (Scan.succeed (K Method.succeed)) *} {* bla *} |
421
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|
1499 |
|
620a24bf954a
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|
1500 |
lemma "True" |
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|
1501 |
apply(test) |
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|
1502 |
oops |
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|
1503 |
|
519
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|
1504 |
method_setup joker = {* |
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|
1505 |
Scan.lift (Scan.succeed (fn ctxt => Method.cheating true ctxt)) *} {* bla *} |
421
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|
1506 |
|
620a24bf954a
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|
1507 |
lemma "False" |
620a24bf954a
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|
1508 |
apply(joker) |
620a24bf954a
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diff
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|
1509 |
oops |
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414
diff
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|
1510 |
|
620a24bf954a
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|
1511 |
text {* if true is set then always works *} |
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|
1512 |
|
620a24bf954a
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diff
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|
1513 |
ML {* atac *} |
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|
1514 |
|
620a24bf954a
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|
1515 |
method_setup first_atac = {* Scan.lift (Scan.succeed (K (SIMPLE_METHOD (atac 1)))) *} {* bla *} |
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|
1516 |
|
620a24bf954a
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diff
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|
1517 |
ML {* HEADGOAL *} |
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diff
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|
1518 |
|
620a24bf954a
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diff
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|
1519 |
lemma "A \<Longrightarrow> A" |
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diff
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|
1520 |
apply(first_atac) |
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diff
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|
1521 |
oops |
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diff
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|
1522 |
|
620a24bf954a
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diff
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|
1523 |
method_setup my_atac = {* Scan.lift (Scan.succeed (K (SIMPLE_METHOD' atac))) *} {* bla *} |
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|
1524 |
|
620a24bf954a
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diff
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|
1525 |
lemma "A \<Longrightarrow> A" |
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diff
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|
1526 |
apply(my_atac) |
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parents:
414
diff
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|
1527 |
oops |
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414
diff
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|
1528 |
|
620a24bf954a
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diff
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|
1529 |
|
193
ffd93dcc269d
polishing to the theorem attributes section
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diff
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|
1530 |
|
319
6bce4acf7f2a
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diff
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|
1531 |
|
6bce4acf7f2a
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diff
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|
1532 |
|
6bce4acf7f2a
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diff
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|
1533 |
|
6bce4acf7f2a
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316
diff
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|
1534 |
|
193
ffd93dcc269d
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diff
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|
1535 |
(* |
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|
1536 |
ML {* SIMPLE_METHOD *} |
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diff
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|
1537 |
ML {* METHOD *} |
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diff
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|
1538 |
ML {* K (SIMPLE_METHOD ((etac @{thm conjE} THEN' rtac @{thm conjI}) 1)) *} |
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|
1539 |
ML {* Scan.succeed *} |
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|
1540 |
*) |
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|
1541 |
|
421
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diff
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|
1542 |
ML {* resolve_tac *} |
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diff
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|
1543 |
|
620a24bf954a
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diff
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|
1544 |
method_setup myrule = |
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diff
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|
1545 |
{* Scan.lift (Scan.succeed (K (METHOD (fn thms => resolve_tac thms 1)))) *} |
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|
1546 |
{* bla *} |
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diff
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|
1547 |
|
620a24bf954a
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diff
changeset
|
1548 |
lemma |
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diff
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|
1549 |
assumes a: "A \<Longrightarrow> B \<Longrightarrow> C" |
620a24bf954a
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parents:
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diff
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|
1550 |
shows "C" |
620a24bf954a
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diff
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|
1551 |
using a |
620a24bf954a
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parents:
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diff
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|
1552 |
apply(myrule) |
620a24bf954a
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parents:
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diff
changeset
|
1553 |
oops |
620a24bf954a
added a section to the introduction; described @{make_string}
Christian Urban <urbanc@in.tum.de>
parents:
414
diff
changeset
|
1554 |
|
620a24bf954a
added a section to the introduction; described @{make_string}
Christian Urban <urbanc@in.tum.de>
parents:
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diff
changeset
|
1555 |
|
620a24bf954a
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Christian Urban <urbanc@in.tum.de>
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diff
changeset
|
1556 |
|
186
371e4375c994
made the Ackermann function example safer and included suggestions from MW
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|
1557 |
text {* |
421
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|
1558 |
(********************************************************) |
186
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|
1559 |
(FIXME: explain a version of rule-tac) |
371e4375c994
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|
1560 |
*} |
178
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|
1561 |
|
220 | 1562 |
end |