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;;; -*- Mode: LISP; Syntax: COMMON-LISP; Package: CL-PPCRE; Base: 10 -*- |
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;;; $Header: /usr/local/cvsrep/cl-ppcre/repetition-closures.lisp,v 1.33 2008/07/06 18:12:05 edi Exp $ |
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;;; This is actually a part of closures.lisp which we put into a |
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;;; separate file because it is rather complex. We only deal with |
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;;; REPETITIONs here. Note that this part of the code contains some |
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;;; rather crazy micro-optimizations which were introduced to be as |
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;;; competitive with Perl as possible in tight loops. |
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;;; Copyright (c) 2002-2008, Dr. Edmund Weitz. All rights reserved. |
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;;; Redistribution and use in source and binary forms, with or without |
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;;; modification, are permitted provided that the following conditions |
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;;; are met: |
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;;; * Redistributions of source code must retain the above copyright |
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;;; notice, this list of conditions and the following disclaimer. |
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;;; * Redistributions in binary form must reproduce the above |
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;;; copyright notice, this list of conditions and the following |
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;;; disclaimer in the documentation and/or other materials |
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;;; provided with the distribution. |
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;;; THIS SOFTWARE IS PROVIDED BY THE AUTHOR 'AS IS' AND ANY EXPRESSED |
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;;; OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED |
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;;; WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE |
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;;; ARE DISCLAIMED. IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY |
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;;; DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL |
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;;; DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE |
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;;; GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS |
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;;; INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, |
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;;; WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING |
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;;; NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF THIS |
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;;; SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE. |
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(in-package :cl-ppcre) |
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(defmacro incf-after (place &optional (delta 1) &environment env) |
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"Utility macro inspired by C's \"place++\", i.e. first return the |
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value of PLACE and afterwards increment it by DELTA." |
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(with-unique-names (%temp) |
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(multiple-value-bind (vars vals store-vars writer-form reader-form) |
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(get-setf-expansion place env) |
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`(let* (,@(mapcar #'list vars vals) |
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(,%temp ,reader-form) |
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(,(car store-vars) (+ ,%temp ,delta))) |
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,writer-form |
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,%temp)))) |
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|
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;; code for greedy repetitions with minimum zero |
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(defmacro greedy-constant-length-closure (check-curr-pos) |
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"This is the template for simple greedy repetitions (where simple |
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means that the minimum number of repetitions is zero, that the inner |
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regex to be checked is of fixed length LEN, and that it doesn't |
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contain registers, i.e. there's no need for backtracking). |
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CHECK-CURR-POS is a form which checks whether the inner regex of the |
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repetition matches at CURR-POS." |
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`(if maximum |
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(lambda (start-pos) |
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(declare (fixnum start-pos maximum)) |
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;; because we know LEN we know in advance where to stop at the |
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;; latest; we also take into consideration MIN-REST, i.e. the |
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;; minimal length of the part behind the repetition |
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(let ((target-end-pos (min (1+ (- *end-pos* len min-rest)) |
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;; don't go further than MAXIMUM |
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;; repetitions, of course |
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(+ start-pos |
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(the fixnum (* len maximum))))) |
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(curr-pos start-pos)) |
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(declare (fixnum target-end-pos curr-pos)) |
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(block greedy-constant-length-matcher |
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;; we use an ugly TAGBODY construct because this might be a |
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;; tight loop and this version is a bit faster than our LOOP |
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;; version (at least in CMUCL) |
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(tagbody |
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forward-loop |
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;; first go forward as far as possible, i.e. while |
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;; the inner regex matches |
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(when (>= curr-pos target-end-pos) |
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(go backward-loop)) |
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(when ,check-curr-pos |
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(incf curr-pos len) |
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(go forward-loop)) |
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backward-loop |
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;; now go back LEN steps each until we're able to match |
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;; the rest of the regex |
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(when (< curr-pos start-pos) |
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(return-from greedy-constant-length-matcher nil)) |
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(let ((result (funcall next-fn curr-pos))) |
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(when result |
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(return-from greedy-constant-length-matcher result))) |
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(decf curr-pos len) |
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(go backward-loop))))) |
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;; basically the same code; it's just a bit easier because we're |
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;; not bounded by MAXIMUM |
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(lambda (start-pos) |
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(declare (fixnum start-pos)) |
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(let ((target-end-pos (1+ (- *end-pos* len min-rest))) |
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(curr-pos start-pos)) |
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(declare (fixnum target-end-pos curr-pos)) |
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(block greedy-constant-length-matcher |
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(tagbody |
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forward-loop |
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(when (>= curr-pos target-end-pos) |
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(go backward-loop)) |
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(when ,check-curr-pos |
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(incf curr-pos len) |
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(go forward-loop)) |
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backward-loop |
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(when (< curr-pos start-pos) |
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(return-from greedy-constant-length-matcher nil)) |
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(let ((result (funcall next-fn curr-pos))) |
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(when result |
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(return-from greedy-constant-length-matcher result))) |
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(decf curr-pos len) |
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(go backward-loop))))))) |
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(defun create-greedy-everything-matcher (maximum min-rest next-fn) |
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"Creates a closure which just matches as far ahead as possible, |
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i.e. a closure for a dot in single-line mode." |
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(declare #.*standard-optimize-settings*) |
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(declare (fixnum min-rest) (function next-fn)) |
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(if maximum |
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(lambda (start-pos) |
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(declare (fixnum start-pos maximum)) |
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;; because we know LEN we know in advance where to stop at the |
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;; latest; we also take into consideration MIN-REST, i.e. the |
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;; minimal length of the part behind the repetition |
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(let ((target-end-pos (min (+ start-pos maximum) |
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(- *end-pos* min-rest)))) |
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(declare (fixnum target-end-pos)) |
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;; start from the highest possible position and go backward |
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;; until we're able to match the rest of the regex |
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(loop for curr-pos of-type fixnum from target-end-pos downto start-pos |
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thereis (funcall next-fn curr-pos)))) |
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;; basically the same code; it's just a bit easier because we're |
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;; not bounded by MAXIMUM |
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(lambda (start-pos) |
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(declare (fixnum start-pos)) |
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(let ((target-end-pos (- *end-pos* min-rest))) |
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(declare (fixnum target-end-pos)) |
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(loop for curr-pos of-type fixnum from target-end-pos downto start-pos |
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thereis (funcall next-fn curr-pos)))))) |
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(defgeneric create-greedy-constant-length-matcher (repetition next-fn) |
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(declare #.*standard-optimize-settings*) |
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(:documentation "Creates a closure which tries to match REPETITION. |
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It is assumed that REPETITION is greedy and the minimal number of |
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repetitions is zero. It is furthermore assumed that the inner regex |
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of REPETITION is of fixed length and doesn't contain registers.")) |
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(defmethod create-greedy-constant-length-matcher ((repetition repetition) |
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next-fn) |
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(declare #.*standard-optimize-settings*) |
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(let ((len (len repetition)) |
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(maximum (maximum repetition)) |
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(regex (regex repetition)) |
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(min-rest (min-rest repetition))) |
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(declare (fixnum len min-rest) |
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(function next-fn)) |
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(cond ((zerop len) |
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;; inner regex has zero-length, so we can discard it |
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;; completely |
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next-fn) |
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(t |
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;; now first try to optimize for a couple of common cases |
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(typecase regex |
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(str |
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(let ((str (str regex))) |
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(if (= 1 len) |
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;; a single character |
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(let ((chr (schar str 0))) |
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(if (case-insensitive-p regex) |
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(greedy-constant-length-closure |
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(char-equal chr (schar *string* curr-pos))) |
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(greedy-constant-length-closure |
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(char= chr (schar *string* curr-pos))))) |
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;; a string |
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(if (case-insensitive-p regex) |
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(greedy-constant-length-closure |
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(*string*-equal str curr-pos (+ curr-pos len) 0 len)) |
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(greedy-constant-length-closure |
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(*string*= str curr-pos (+ curr-pos len) 0 len)))))) |
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(char-class |
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;; a character class |
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(insert-char-class-tester (regex (schar *string* curr-pos)) |
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(greedy-constant-length-closure |
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(char-class-test)))) |
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(everything |
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;; an EVERYTHING object, i.e. a dot |
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(if (single-line-p regex) |
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(create-greedy-everything-matcher maximum min-rest next-fn) |
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(greedy-constant-length-closure |
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(char/= #\Newline (schar *string* curr-pos))))) |
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(t |
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;; the general case - we build an inner matcher which |
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;; just checks for immediate success, i.e. NEXT-FN is |
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;; #'IDENTITY |
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(let ((inner-matcher (create-matcher-aux regex #'identity))) |
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(declare (function inner-matcher)) |
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(greedy-constant-length-closure |
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(funcall inner-matcher curr-pos))))))))) |
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(defgeneric create-greedy-no-zero-matcher (repetition next-fn) |
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(declare #.*standard-optimize-settings*) |
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(:documentation "Creates a closure which tries to match REPETITION. |
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It is assumed that REPETITION is greedy and the minimal number of |
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repetitions is zero. It is furthermore assumed that the inner regex |
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of REPETITION can never match a zero-length string \(or instead the |
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maximal number of repetitions is 1).")) |
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(defmethod create-greedy-no-zero-matcher ((repetition repetition) next-fn) |
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(declare #.*standard-optimize-settings*) |
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(let ((maximum (maximum repetition)) |
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;; REPEAT-MATCHER is part of the closure's environment but it |
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;; can only be defined after GREEDY-AUX is defined |
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repeat-matcher) |
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(declare (function next-fn)) |
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(cond |
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((eql maximum 1) |
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;; this is essentially like the next case but with a known |
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;; MAXIMUM of 1 we can get away without a counter; note that |
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;; we always arrive here if CONVERT optimizes <regex>* to |
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;; (?:<regex'>*<regex>)? |
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(setq repeat-matcher |
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(create-matcher-aux (regex repetition) next-fn)) |
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(lambda (start-pos) |
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(declare (function repeat-matcher)) |
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(or (funcall repeat-matcher start-pos) |
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(funcall next-fn start-pos)))) |
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(maximum |
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;; we make a reservation for our slot in *REPEAT-COUNTERS* |
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;; because we need to keep track whether we've reached MAXIMUM |
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;; repetitions |
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(let ((rep-num (incf-after *rep-num*))) |
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(flet ((greedy-aux (start-pos) |
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(declare (fixnum start-pos maximum rep-num) |
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(function repeat-matcher)) |
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;; the actual matcher which first tries to match the |
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;; inner regex of REPETITION (if we haven't done so |
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;; too often) and on failure calls NEXT-FN |
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(or (and (< (aref *repeat-counters* rep-num) maximum) |
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(incf (aref *repeat-counters* rep-num)) |
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;; note that REPEAT-MATCHER will call |
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;; GREEDY-AUX again recursively |
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(prog1 |
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(funcall repeat-matcher start-pos) |
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(decf (aref *repeat-counters* rep-num)))) |
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(funcall next-fn start-pos)))) |
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;; create a closure to match the inner regex and to |
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;; implement backtracking via GREEDY-AUX |
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(setq repeat-matcher |
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(create-matcher-aux (regex repetition) #'greedy-aux)) |
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;; the closure we return is just a thin wrapper around |
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;; GREEDY-AUX to initialize the repetition counter |
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(lambda (start-pos) |
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(declare (fixnum start-pos)) |
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(setf (aref *repeat-counters* rep-num) 0) |
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(greedy-aux start-pos))))) |
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(t |
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;; easier code because we're not bounded by MAXIMUM, but |
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;; basically the same |
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(flet ((greedy-aux (start-pos) |
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(declare (fixnum start-pos) |
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(function repeat-matcher)) |
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(or (funcall repeat-matcher start-pos) |
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(funcall next-fn start-pos)))) |
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(setq repeat-matcher |
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(create-matcher-aux (regex repetition) #'greedy-aux)) |
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#'greedy-aux))))) |
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(defgeneric create-greedy-matcher (repetition next-fn) |
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(declare #.*standard-optimize-settings*) |
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(:documentation "Creates a closure which tries to match REPETITION. |
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It is assumed that REPETITION is greedy and the minimal number of |
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repetitions is zero.")) |
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(defmethod create-greedy-matcher ((repetition repetition) next-fn) |
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(declare #.*standard-optimize-settings*) |
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(let ((maximum (maximum repetition)) |
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;; we make a reservation for our slot in *LAST-POS-STORES* because |
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;; we have to watch out for endless loops as the inner regex might |
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;; match zero-length strings |
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(zero-length-num (incf-after *zero-length-num*)) |
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;; REPEAT-MATCHER is part of the closure's environment but it |
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;; can only be defined after GREEDY-AUX is defined |
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repeat-matcher) |
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(declare (fixnum zero-length-num) |
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(function next-fn)) |
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(cond |
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(maximum |
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;; we make a reservation for our slot in *REPEAT-COUNTERS* |
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;; because we need to keep track whether we've reached MAXIMUM |
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;; repetitions |
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(let ((rep-num (incf-after *rep-num*))) |
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(flet ((greedy-aux (start-pos) |
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;; the actual matcher which first tries to match the |
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;; inner regex of REPETITION (if we haven't done so |
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;; too often) and on failure calls NEXT-FN |
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(declare (fixnum start-pos maximum rep-num) |
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(function repeat-matcher)) |
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(let ((old-last-pos |
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(svref *last-pos-stores* zero-length-num))) |
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(when (and old-last-pos |
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(= (the fixnum old-last-pos) start-pos)) |
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;; stop immediately if we've been here before, |
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;; i.e. if the last attempt matched a zero-length |
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;; string |
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(return-from greedy-aux (funcall next-fn start-pos))) |
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;; otherwise remember this position for the next |
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;; repetition |
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(setf (svref *last-pos-stores* zero-length-num) start-pos) |
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(or (and (< (aref *repeat-counters* rep-num) maximum) |
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(incf (aref *repeat-counters* rep-num)) |
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;; note that REPEAT-MATCHER will call |
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;; GREEDY-AUX again recursively |
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(prog1 |
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(funcall repeat-matcher start-pos) |
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(decf (aref *repeat-counters* rep-num)) |
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(setf (svref *last-pos-stores* zero-length-num) |
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old-last-pos))) |
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(funcall next-fn start-pos))))) |
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;; create a closure to match the inner regex and to |
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;; implement backtracking via GREEDY-AUX |
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(setq repeat-matcher |
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(create-matcher-aux (regex repetition) #'greedy-aux)) |
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;; the closure we return is just a thin wrapper around |
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;; GREEDY-AUX to initialize the repetition counter and our |
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;; slot in *LAST-POS-STORES* |
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(lambda (start-pos) |
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(declare (fixnum start-pos)) |
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(setf (aref *repeat-counters* rep-num) 0 |
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(svref *last-pos-stores* zero-length-num) nil) |
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(greedy-aux start-pos))))) |
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(t |
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;; easier code because we're not bounded by MAXIMUM, but |
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;; basically the same |
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(flet ((greedy-aux (start-pos) |
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(declare (fixnum start-pos) |
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(function repeat-matcher)) |
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(let ((old-last-pos |
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(svref *last-pos-stores* zero-length-num))) |
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(when (and old-last-pos |
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(= (the fixnum old-last-pos) start-pos)) |
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(return-from greedy-aux (funcall next-fn start-pos))) |
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(setf (svref *last-pos-stores* zero-length-num) start-pos) |
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(or (prog1 |
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(funcall repeat-matcher start-pos) |
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(setf (svref *last-pos-stores* zero-length-num) old-last-pos)) |
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(funcall next-fn start-pos))))) |
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(setq repeat-matcher |
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(create-matcher-aux (regex repetition) #'greedy-aux)) |
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(lambda (start-pos) |
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(declare (fixnum start-pos)) |
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(setf (svref *last-pos-stores* zero-length-num) nil) |
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| 357 |
(greedy-aux start-pos))))))) |
|---|
| 358 |
|
|---|
| 359 |
;; code for non-greedy repetitions with minimum zero |
|---|
| 360 |
|
|---|
| 361 |
(defmacro non-greedy-constant-length-closure (check-curr-pos) |
|---|
| 362 |
"This is the template for simple non-greedy repetitions \(where |
|---|
| 363 |
simple means that the minimum number of repetitions is zero, that the |
|---|
| 364 |
inner regex to be checked is of fixed length LEN, and that it doesn't |
|---|
| 365 |
contain registers, i.e. there's no need for backtracking). |
|---|
| 366 |
CHECK-CURR-POS is a form which checks whether the inner regex of the |
|---|
| 367 |
repetition matches at CURR-POS." |
|---|
| 368 |
`(if maximum |
|---|
| 369 |
(lambda (start-pos) |
|---|
| 370 |
(declare (fixnum start-pos maximum)) |
|---|
| 371 |
;; because we know LEN we know in advance where to stop at the |
|---|
| 372 |
;; latest; we also take into consideration MIN-REST, i.e. the |
|---|
| 373 |
;; minimal length of the part behind the repetition |
|---|
| 374 |
(let ((target-end-pos (min (1+ (- *end-pos* len min-rest)) |
|---|
| 375 |
(+ start-pos |
|---|
| 376 |
(the fixnum (* len maximum)))))) |
|---|
| 377 |
;; move forward by LEN and always try NEXT-FN first, then |
|---|
| 378 |
;; CHECK-CUR-POS |
|---|
| 379 |
(loop for curr-pos of-type fixnum from start-pos |
|---|
| 380 |
below target-end-pos |
|---|
| 381 |
by len |
|---|
| 382 |
thereis (funcall next-fn curr-pos) |
|---|
| 383 |
while ,check-curr-pos |
|---|
| 384 |
finally (return (funcall next-fn curr-pos))))) |
|---|
| 385 |
;; basically the same code; it's just a bit easier because we're |
|---|
| 386 |
;; not bounded by MAXIMUM |
|---|
| 387 |
(lambda (start-pos) |
|---|
| 388 |
(declare (fixnum start-pos)) |
|---|
| 389 |
(let ((target-end-pos (1+ (- *end-pos* len min-rest)))) |
|---|
| 390 |
(loop for curr-pos of-type fixnum from start-pos |
|---|
| 391 |
below target-end-pos |
|---|
| 392 |
by len |
|---|
| 393 |
thereis (funcall next-fn curr-pos) |
|---|
| 394 |
while ,check-curr-pos |
|---|
| 395 |
finally (return (funcall next-fn curr-pos))))))) |
|---|
| 396 |
|
|---|
| 397 |
(defgeneric create-non-greedy-constant-length-matcher (repetition next-fn) |
|---|
| 398 |
(declare #.*standard-optimize-settings*) |
|---|
| 399 |
(:documentation "Creates a closure which tries to match REPETITION. |
|---|
| 400 |
It is assumed that REPETITION is non-greedy and the minimal number of |
|---|
| 401 |
repetitions is zero. It is furthermore assumed that the inner regex |
|---|
| 402 |
of REPETITION is of fixed length and doesn't contain registers.")) |
|---|
| 403 |
|
|---|
| 404 |
(defmethod create-non-greedy-constant-length-matcher ((repetition repetition) next-fn) |
|---|
| 405 |
(declare #.*standard-optimize-settings*) |
|---|
| 406 |
(let ((len (len repetition)) |
|---|
| 407 |
(maximum (maximum repetition)) |
|---|
| 408 |
(regex (regex repetition)) |
|---|
| 409 |
(min-rest (min-rest repetition))) |
|---|
| 410 |
(declare (fixnum len min-rest) |
|---|
| 411 |
(function next-fn)) |
|---|
| 412 |
(cond ((zerop len) |
|---|
| 413 |
;; inner regex has zero-length, so we can discard it |
|---|
| 414 |
;; completely |
|---|
| 415 |
next-fn) |
|---|
| 416 |
(t |
|---|
| 417 |
;; now first try to optimize for a couple of common cases |
|---|
| 418 |
(typecase regex |
|---|
| 419 |
(str |
|---|
| 420 |
(let ((str (str regex))) |
|---|
| 421 |
(if (= 1 len) |
|---|
| 422 |
;; a single character |
|---|
| 423 |
(let ((chr (schar str 0))) |
|---|
| 424 |
(if (case-insensitive-p regex) |
|---|
| 425 |
(non-greedy-constant-length-closure |
|---|
| 426 |
(char-equal chr (schar *string* curr-pos))) |
|---|
| 427 |
(non-greedy-constant-length-closure |
|---|
| 428 |
(char= chr (schar *string* curr-pos))))) |
|---|
| 429 |
;; a string |
|---|
| 430 |
(if (case-insensitive-p regex) |
|---|
| 431 |
(non-greedy-constant-length-closure |
|---|
| 432 |
(*string*-equal str curr-pos (+ curr-pos len) 0 len)) |
|---|
| 433 |
(non-greedy-constant-length-closure |
|---|
| 434 |
(*string*= str curr-pos (+ curr-pos len) 0 len)))))) |
|---|
| 435 |
(char-class |
|---|
| 436 |
;; a character class |
|---|
| 437 |
(insert-char-class-tester (regex (schar *string* curr-pos)) |
|---|
| 438 |
(non-greedy-constant-length-closure |
|---|
| 439 |
(char-class-test)))) |
|---|
| 440 |
(everything |
|---|
| 441 |
(if (single-line-p regex) |
|---|
| 442 |
;; a dot which really can match everything; we rely |
|---|
| 443 |
;; on the compiler to optimize this away |
|---|
| 444 |
(non-greedy-constant-length-closure |
|---|
| 445 |
t) |
|---|
| 446 |
;; a dot which has to watch out for #\Newline |
|---|
| 447 |
(non-greedy-constant-length-closure |
|---|
| 448 |
(char/= #\Newline (schar *string* curr-pos))))) |
|---|
| 449 |
(t |
|---|
| 450 |
;; the general case - we build an inner matcher which |
|---|
| 451 |
;; just checks for immediate success, i.e. NEXT-FN is |
|---|
| 452 |
;; #'IDENTITY |
|---|
| 453 |
(let ((inner-matcher (create-matcher-aux regex #'identity))) |
|---|
| 454 |
(declare (function inner-matcher)) |
|---|
| 455 |
(non-greedy-constant-length-closure |
|---|
| 456 |
(funcall inner-matcher curr-pos))))))))) |
|---|
| 457 |
|
|---|
| 458 |
(defgeneric create-non-greedy-no-zero-matcher (repetition next-fn) |
|---|
| 459 |
(declare #.*standard-optimize-settings*) |
|---|
| 460 |
(:documentation "Creates a closure which tries to match REPETITION. |
|---|
| 461 |
It is assumed that REPETITION is non-greedy and the minimal number of |
|---|
| 462 |
repetitions is zero. It is furthermore assumed that the inner regex |
|---|
| 463 |
of REPETITION can never match a zero-length string \(or instead the |
|---|
| 464 |
maximal number of repetitions is 1).")) |
|---|
| 465 |
|
|---|
| 466 |
(defmethod create-non-greedy-no-zero-matcher ((repetition repetition) next-fn) |
|---|
| 467 |
(declare #.*standard-optimize-settings*) |
|---|
| 468 |
(let ((maximum (maximum repetition)) |
|---|
| 469 |
;; REPEAT-MATCHER is part of the closure's environment but it |
|---|
| 470 |
;; can only be defined after NON-GREEDY-AUX is defined |
|---|
| 471 |
repeat-matcher) |
|---|
| 472 |
(declare (function next-fn)) |
|---|
| 473 |
(cond |
|---|
| 474 |
((eql maximum 1) |
|---|
| 475 |
;; this is essentially like the next case but with a known |
|---|
| 476 |
;; MAXIMUM of 1 we can get away without a counter |
|---|
| 477 |
(setq repeat-matcher |
|---|
| 478 |
(create-matcher-aux (regex repetition) next-fn)) |
|---|
| 479 |
(lambda (start-pos) |
|---|
| 480 |
(declare (function repeat-matcher)) |
|---|
| 481 |
(or (funcall next-fn start-pos) |
|---|
| 482 |
(funcall repeat-matcher start-pos)))) |
|---|
| 483 |
(maximum |
|---|
| 484 |
;; we make a reservation for our slot in *REPEAT-COUNTERS* |
|---|
| 485 |
;; because we need to keep track whether we've reached MAXIMUM |
|---|
| 486 |
;; repetitions |
|---|
| 487 |
(let ((rep-num (incf-after *rep-num*))) |
|---|
| 488 |
(flet ((non-greedy-aux (start-pos) |
|---|
| 489 |
;; the actual matcher which first calls NEXT-FN and |
|---|
| 490 |
;; on failure tries to match the inner regex of |
|---|
| 491 |
;; REPETITION (if we haven't done so too often) |
|---|
| 492 |
(declare (fixnum start-pos maximum rep-num) |
|---|
| 493 |
(function repeat-matcher)) |
|---|
| 494 |
(or (funcall next-fn start-pos) |
|---|
| 495 |
(and (< (aref *repeat-counters* rep-num) maximum) |
|---|
| 496 |
(incf (aref *repeat-counters* rep-num)) |
|---|
| 497 |
;; note that REPEAT-MATCHER will call |
|---|
| 498 |
;; NON-GREEDY-AUX again recursively |
|---|
| 499 |
(prog1 |
|---|
| 500 |
(funcall repeat-matcher start-pos) |
|---|
| 501 |
(decf (aref *repeat-counters* rep-num))))))) |
|---|
| 502 |
;; create a closure to match the inner regex and to |
|---|
| 503 |
;; implement backtracking via NON-GREEDY-AUX |
|---|
| 504 |
(setq repeat-matcher |
|---|
| 505 |
(create-matcher-aux (regex repetition) #'non-greedy-aux)) |
|---|
| 506 |
;; the closure we return is just a thin wrapper around |
|---|
| 507 |
;; NON-GREEDY-AUX to initialize the repetition counter |
|---|
| 508 |
(lambda (start-pos) |
|---|
| 509 |
(declare (fixnum start-pos)) |
|---|
| 510 |
(setf (aref *repeat-counters* rep-num) 0) |
|---|
| 511 |
(non-greedy-aux start-pos))))) |
|---|
| 512 |
(t |
|---|
| 513 |
;; easier code because we're not bounded by MAXIMUM, but |
|---|
| 514 |
;; basically the same |
|---|
| 515 |
(flet ((non-greedy-aux (start-pos) |
|---|
| 516 |
(declare (fixnum start-pos) |
|---|
| 517 |
(function repeat-matcher)) |
|---|
| 518 |
(or (funcall next-fn start-pos) |
|---|
| 519 |
(funcall repeat-matcher start-pos)))) |
|---|
| 520 |
(setq repeat-matcher |
|---|
| 521 |
(create-matcher-aux (regex repetition) #'non-greedy-aux)) |
|---|
| 522 |
#'non-greedy-aux))))) |
|---|
| 523 |
|
|---|
| 524 |
(defgeneric create-non-greedy-matcher (repetition next-fn) |
|---|
| 525 |
(declare #.*standard-optimize-settings*) |
|---|
| 526 |
(:documentation "Creates a closure which tries to match REPETITION. |
|---|
| 527 |
It is assumed that REPETITION is non-greedy and the minimal number of |
|---|
| 528 |
repetitions is zero.")) |
|---|
| 529 |
|
|---|
| 530 |
(defmethod create-non-greedy-matcher ((repetition repetition) next-fn) |
|---|
| 531 |
(declare #.*standard-optimize-settings*) |
|---|
| 532 |
;; we make a reservation for our slot in *LAST-POS-STORES* because |
|---|
| 533 |
;; we have to watch out for endless loops as the inner regex might |
|---|
| 534 |
;; match zero-length strings |
|---|
| 535 |
(let ((zero-length-num (incf-after *zero-length-num*)) |
|---|
| 536 |
(maximum (maximum repetition)) |
|---|
| 537 |
;; REPEAT-MATCHER is part of the closure's environment but it |
|---|
| 538 |
;; can only be defined after NON-GREEDY-AUX is defined |
|---|
| 539 |
repeat-matcher) |
|---|
| 540 |
(declare (fixnum zero-length-num) |
|---|
| 541 |
(function next-fn)) |
|---|
| 542 |
(cond |
|---|
| 543 |
(maximum |
|---|
| 544 |
;; we make a reservation for our slot in *REPEAT-COUNTERS* |
|---|
| 545 |
;; because we need to keep track whether we've reached MAXIMUM |
|---|
| 546 |
;; repetitions |
|---|
| 547 |
(let ((rep-num (incf-after *rep-num*))) |
|---|
| 548 |
(flet ((non-greedy-aux (start-pos) |
|---|
| 549 |
;; the actual matcher which first calls NEXT-FN and |
|---|
| 550 |
;; on failure tries to match the inner regex of |
|---|
| 551 |
;; REPETITION (if we haven't done so too often) |
|---|
| 552 |
(declare (fixnum start-pos maximum rep-num) |
|---|
| 553 |
(function repeat-matcher)) |
|---|
| 554 |
(let ((old-last-pos |
|---|
| 555 |
(svref *last-pos-stores* zero-length-num))) |
|---|
| 556 |
(when (and old-last-pos |
|---|
| 557 |
(= (the fixnum old-last-pos) start-pos)) |
|---|
| 558 |
;; stop immediately if we've been here before, |
|---|
| 559 |
;; i.e. if the last attempt matched a zero-length |
|---|
| 560 |
;; string |
|---|
| 561 |
(return-from non-greedy-aux (funcall next-fn start-pos))) |
|---|
| 562 |
;; otherwise remember this position for the next |
|---|
| 563 |
;; repetition |
|---|
| 564 |
(setf (svref *last-pos-stores* zero-length-num) start-pos) |
|---|
| 565 |
(or (funcall next-fn start-pos) |
|---|
| 566 |
(and (< (aref *repeat-counters* rep-num) maximum) |
|---|
| 567 |
(incf (aref *repeat-counters* rep-num)) |
|---|
| 568 |
;; note that REPEAT-MATCHER will call |
|---|
| 569 |
;; NON-GREEDY-AUX again recursively |
|---|
| 570 |
(prog1 |
|---|
| 571 |
(funcall repeat-matcher start-pos) |
|---|
| 572 |
(decf (aref *repeat-counters* rep-num)) |
|---|
| 573 |
(setf (svref *last-pos-stores* zero-length-num) |
|---|
| 574 |
old-last-pos))))))) |
|---|
| 575 |
;; create a closure to match the inner regex and to |
|---|
| 576 |
;; implement backtracking via NON-GREEDY-AUX |
|---|
| 577 |
(setq repeat-matcher |
|---|
| 578 |
(create-matcher-aux (regex repetition) #'non-greedy-aux)) |
|---|
| 579 |
;; the closure we return is just a thin wrapper around |
|---|
| 580 |
;; NON-GREEDY-AUX to initialize the repetition counter and our |
|---|
| 581 |
;; slot in *LAST-POS-STORES* |
|---|
| 582 |
(lambda (start-pos) |
|---|
| 583 |
(declare (fixnum start-pos)) |
|---|
| 584 |
(setf (aref *repeat-counters* rep-num) 0 |
|---|
| 585 |
(svref *last-pos-stores* zero-length-num) nil) |
|---|
| 586 |
(non-greedy-aux start-pos))))) |
|---|
| 587 |
(t |
|---|
| 588 |
;; easier code because we're not bounded by MAXIMUM, but |
|---|
| 589 |
;; basically the same |
|---|
| 590 |
(flet ((non-greedy-aux (start-pos) |
|---|
| 591 |
(declare (fixnum start-pos) |
|---|
| 592 |
(function repeat-matcher)) |
|---|
| 593 |
(let ((old-last-pos |
|---|
| 594 |
(svref *last-pos-stores* zero-length-num))) |
|---|
| 595 |
(when (and old-last-pos |
|---|
| 596 |
(= (the fixnum old-last-pos) start-pos)) |
|---|
| 597 |
(return-from non-greedy-aux (funcall next-fn start-pos))) |
|---|
| 598 |
(setf (svref *last-pos-stores* zero-length-num) start-pos) |
|---|
| 599 |
(or (funcall next-fn start-pos) |
|---|
| 600 |
(prog1 |
|---|
| 601 |
(funcall repeat-matcher start-pos) |
|---|
| 602 |
(setf (svref *last-pos-stores* zero-length-num) |
|---|
| 603 |
old-last-pos)))))) |
|---|
| 604 |
(setq repeat-matcher |
|---|
| 605 |
(create-matcher-aux (regex repetition) #'non-greedy-aux)) |
|---|
| 606 |
(lambda (start-pos) |
|---|
| 607 |
(declare (fixnum start-pos)) |
|---|
| 608 |
(setf (svref *last-pos-stores* zero-length-num) nil) |
|---|
| 609 |
(non-greedy-aux start-pos))))))) |
|---|
| 610 |
|
|---|
| 611 |
;; code for constant repetitions, i.e. those with a fixed number of repetitions |
|---|
| 612 |
|
|---|
| 613 |
(defmacro constant-repetition-constant-length-closure (check-curr-pos) |
|---|
| 614 |
"This is the template for simple constant repetitions (where simple |
|---|
| 615 |
means that the inner regex to be checked is of fixed length LEN, and |
|---|
| 616 |
that it doesn't contain registers, i.e. there's no need for |
|---|
| 617 |
backtracking) and where constant means that MINIMUM is equal to |
|---|
| 618 |
MAXIMUM. CHECK-CURR-POS is a form which checks whether the inner |
|---|
| 619 |
regex of the repetition matches at CURR-POS." |
|---|
| 620 |
`(lambda (start-pos) |
|---|
| 621 |
(declare (fixnum start-pos)) |
|---|
| 622 |
(let ((target-end-pos (+ start-pos |
|---|
| 623 |
(the fixnum (* len repetitions))))) |
|---|
| 624 |
(declare (fixnum target-end-pos)) |
|---|
| 625 |
;; first check if we won't go beyond the end of the string |
|---|
| 626 |
(and (>= *end-pos* target-end-pos) |
|---|
| 627 |
;; then loop through all repetitions step by step |
|---|
| 628 |
(loop for curr-pos of-type fixnum from start-pos |
|---|
| 629 |
below target-end-pos |
|---|
| 630 |
by len |
|---|
| 631 |
always ,check-curr-pos) |
|---|
| 632 |
;; finally call NEXT-FN if we made it that far |
|---|
| 633 |
(funcall next-fn target-end-pos))))) |
|---|
| 634 |
|
|---|
| 635 |
(defgeneric create-constant-repetition-constant-length-matcher |
|---|
| 636 |
(repetition next-fn) |
|---|
| 637 |
(declare #.*standard-optimize-settings*) |
|---|
| 638 |
(:documentation "Creates a closure which tries to match REPETITION. |
|---|
| 639 |
It is assumed that REPETITION has a constant number of repetitions. |
|---|
| 640 |
It is furthermore assumed that the inner regex of REPETITION is of |
|---|
| 641 |
fixed length and doesn't contain registers.")) |
|---|
| 642 |
|
|---|
| 643 |
(defmethod create-constant-repetition-constant-length-matcher |
|---|
| 644 |
((repetition repetition) next-fn) |
|---|
| 645 |
(declare #.*standard-optimize-settings*) |
|---|
| 646 |
(let ((len (len repetition)) |
|---|
| 647 |
(repetitions (minimum repetition)) |
|---|
| 648 |
(regex (regex repetition))) |
|---|
| 649 |
(declare (fixnum len repetitions) |
|---|
| 650 |
(function next-fn)) |
|---|
| 651 |
(if (zerop len) |
|---|
| 652 |
;; if the length is zero it suffices to try once |
|---|
| 653 |
(create-matcher-aux regex next-fn) |
|---|
| 654 |
;; otherwise try to optimize for a couple of common cases |
|---|
| 655 |
(typecase regex |
|---|
| 656 |
(str |
|---|
| 657 |
(let ((str (str regex))) |
|---|
| 658 |
(if (= 1 len) |
|---|
| 659 |
;; a single character |
|---|
| 660 |
(let ((chr (schar str 0))) |
|---|
| 661 |
(if (case-insensitive-p regex) |
|---|
| 662 |
(constant-repetition-constant-length-closure |
|---|
| 663 |
(and (char-equal chr (schar *string* curr-pos)) |
|---|
| 664 |
(1+ curr-pos))) |
|---|
| 665 |
(constant-repetition-constant-length-closure |
|---|
| 666 |
(and (char= chr (schar *string* curr-pos)) |
|---|
| 667 |
(1+ curr-pos))))) |
|---|
| 668 |
;; a string |
|---|
| 669 |
(if (case-insensitive-p regex) |
|---|
| 670 |
(constant-repetition-constant-length-closure |
|---|
| 671 |
(let ((next-pos (+ curr-pos len))) |
|---|
| 672 |
(declare (fixnum next-pos)) |
|---|
| 673 |
(and (*string*-equal str curr-pos next-pos 0 len) |
|---|
| 674 |
next-pos))) |
|---|
| 675 |
(constant-repetition-constant-length-closure |
|---|
| 676 |
(let ((next-pos (+ curr-pos len))) |
|---|
| 677 |
(declare (fixnum next-pos)) |
|---|
| 678 |
(and (*string*= str curr-pos next-pos 0 len) |
|---|
| 679 |
next-pos))))))) |
|---|
| 680 |
(char-class |
|---|
| 681 |
;; a character class |
|---|
| 682 |
(insert-char-class-tester (regex (schar *string* curr-pos)) |
|---|
| 683 |
(constant-repetition-constant-length-closure |
|---|
| 684 |
(and (char-class-test) |
|---|
| 685 |
(1+ curr-pos))))) |
|---|
| 686 |
(everything |
|---|
| 687 |
(if (single-line-p regex) |
|---|
| 688 |
;; a dot which really matches everything - we just have to |
|---|
| 689 |
;; advance the index into *STRING* accordingly and check |
|---|
| 690 |
;; if we didn't go past the end |
|---|
| 691 |
(lambda (start-pos) |
|---|
| 692 |
(declare (fixnum start-pos)) |
|---|
| 693 |
(let ((next-pos (+ start-pos repetitions))) |
|---|
| 694 |
(declare (fixnum next-pos)) |
|---|
| 695 |
(and (<= next-pos *end-pos*) |
|---|
| 696 |
(funcall next-fn next-pos)))) |
|---|
| 697 |
;; a dot which is not in single-line-mode - make sure we |
|---|
| 698 |
;; don't match #\Newline |
|---|
| 699 |
(constant-repetition-constant-length-closure |
|---|
| 700 |
(and (char/= #\Newline (schar *string* curr-pos)) |
|---|
| 701 |
(1+ curr-pos))))) |
|---|
| 702 |
(t |
|---|
| 703 |
;; the general case - we build an inner matcher which just |
|---|
| 704 |
;; checks for immediate success, i.e. NEXT-FN is #'IDENTITY |
|---|
| 705 |
(let ((inner-matcher (create-matcher-aux regex #'identity))) |
|---|
| 706 |
(declare (function inner-matcher)) |
|---|
| 707 |
(constant-repetition-constant-length-closure |
|---|
| 708 |
(funcall inner-matcher curr-pos)))))))) |
|---|
| 709 |
|
|---|
| 710 |
(defgeneric create-constant-repetition-matcher (repetition next-fn) |
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| 711 |
(declare #.*standard-optimize-settings*) |
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| 712 |
(:documentation "Creates a closure which tries to match REPETITION. |
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| 713 |
It is assumed that REPETITION has a constant number of repetitions.")) |
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| 714 |
|
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| 715 |
(defmethod create-constant-repetition-matcher ((repetition repetition) next-fn) |
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| 716 |
(declare #.*standard-optimize-settings*) |
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| 717 |
(let ((repetitions (minimum repetition)) |
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| 718 |
;; we make a reservation for our slot in *REPEAT-COUNTERS* |
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| 719 |
;; because we need to keep track of the number of repetitions |
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| 720 |
(rep-num (incf-after *rep-num*)) |
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| 721 |
;; REPEAT-MATCHER is part of the closure's environment but it |
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| 722 |
;; can only be defined after NON-GREEDY-AUX is defined |
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| 723 |
repeat-matcher) |
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| 724 |
(declare (fixnum repetitions rep-num) |
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| 725 |
(function next-fn)) |
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| 726 |
(if (zerop (min-len repetition)) |
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| 727 |
;; we make a reservation for our slot in *LAST-POS-STORES* |
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| 728 |
;; because we have to watch out for needless loops as the inner |
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| 729 |
;; regex might match zero-length strings |
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| 730 |
(let ((zero-length-num (incf-after *zero-length-num*))) |
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| 731 |
(declare (fixnum zero-length-num)) |
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| 732 |
(flet ((constant-aux (start-pos) |
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| 733 |
;; the actual matcher which first calls NEXT-FN and |
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| 734 |
;; on failure tries to match the inner regex of |
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| 735 |
;; REPETITION (if we haven't done so too often) |
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| 736 |
(declare (fixnum start-pos) |
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| 737 |
(function repeat-matcher)) |
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| 738 |
(let ((old-last-pos |
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| 739 |
(svref *last-pos-stores* zero-length-num))) |
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| 740 |
(when (and old-last-pos |
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| 741 |
(= (the fixnum old-last-pos) start-pos)) |
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| 742 |
;; if we've been here before we matched a |
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| 743 |
;; zero-length string the last time, so we can |
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| 744 |
;; just carry on because we will definitely be |
|---|
| 745 |
;; able to do this again often enough |
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| 746 |
(return-from constant-aux (funcall next-fn start-pos))) |
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| 747 |
;; otherwise remember this position for the next |
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| 748 |
;; repetition |
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| 749 |
(setf (svref *last-pos-stores* zero-length-num) start-pos) |
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| 750 |
(cond ((< (aref *repeat-counters* rep-num) repetitions) |
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| 751 |
;; not enough repetitions yet, try it again |
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| 752 |
(incf (aref *repeat-counters* rep-num)) |
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| 753 |
;; note that REPEAT-MATCHER will call |
|---|
| 754 |
;; CONSTANT-AUX again recursively |
|---|
| 755 |
(prog1 |
|---|
| 756 |
(funcall repeat-matcher start-pos) |
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| 757 |
(decf (aref *repeat-counters* rep-num)) |
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| 758 |
(setf (svref *last-pos-stores* zero-length-num) |
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| 759 |
old-last-pos))) |
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| 760 |
(t |
|---|
| 761 |
;; we're done - call NEXT-FN |
|---|
| 762 |
(funcall next-fn start-pos)))))) |
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| 763 |
;; create a closure to match the inner regex and to |
|---|
| 764 |
;; implement backtracking via CONSTANT-AUX |
|---|
| 765 |
(setq repeat-matcher |
|---|
| 766 |
(create-matcher-aux (regex repetition) #'constant-aux)) |
|---|
| 767 |
;; the closure we return is just a thin wrapper around |
|---|
| 768 |
;; CONSTANT-AUX to initialize the repetition counter |
|---|
| 769 |
(lambda (start-pos) |
|---|
| 770 |
(declare (fixnum start-pos)) |
|---|
| 771 |
(setf (aref *repeat-counters* rep-num) 0 |
|---|
| 772 |
(aref *last-pos-stores* zero-length-num) nil) |
|---|
| 773 |
(constant-aux start-pos)))) |
|---|
| 774 |
;; easier code because we don't have to care about zero-length |
|---|
| 775 |
;; matches but basically the same |
|---|
| 776 |
(flet ((constant-aux (start-pos) |
|---|
| 777 |
(declare (fixnum start-pos) |
|---|
| 778 |
(function repeat-matcher)) |
|---|
| 779 |
(cond ((< (aref *repeat-counters* rep-num) repetitions) |
|---|
| 780 |
(incf (aref *repeat-counters* rep-num)) |
|---|
| 781 |
(prog1 |
|---|
| 782 |
(funcall repeat-matcher start-pos) |
|---|
| 783 |
(decf (aref *repeat-counters* rep-num)))) |
|---|
| 784 |
(t (funcall next-fn start-pos))))) |
|---|
| 785 |
(setq repeat-matcher |
|---|
| 786 |
(create-matcher-aux (regex repetition) #'constant-aux)) |
|---|
| 787 |
(lambda (start-pos) |
|---|
| 788 |
(declare (fixnum start-pos)) |
|---|
| 789 |
(setf (aref *repeat-counters* rep-num) 0) |
|---|
| 790 |
(constant-aux start-pos)))))) |
|---|
| 791 |
|
|---|
| 792 |
;; the actual CREATE-MATCHER-AUX method for REPETITION objects which |
|---|
| 793 |
;; utilizes all the functions and macros defined above |
|---|
| 794 |
|
|---|
| 795 |
(defmethod create-matcher-aux ((repetition repetition) next-fn) |
|---|
| 796 |
(declare #.*standard-optimize-settings*) |
|---|
| 797 |
(with-slots (minimum maximum len min-len greedyp contains-register-p) |
|---|
| 798 |
repetition |
|---|
| 799 |
(cond ((and maximum |
|---|
| 800 |
(zerop maximum)) |
|---|
| 801 |
;; this should have been optimized away by CONVERT but just |
|---|
| 802 |
;; in case... |
|---|
| 803 |
(error "Got REPETITION with MAXIMUM 0 \(should not happen)")) |
|---|
| 804 |
((and maximum |
|---|
| 805 |
(= minimum maximum 1)) |
|---|
| 806 |
;; this should have been optimized away by CONVERT but just |
|---|
| 807 |
;; in case... |
|---|
| 808 |
(error "Got REPETITION with MAXIMUM 1 and MINIMUM 1 \(should not happen)")) |
|---|
| 809 |
((and (eql minimum maximum) |
|---|
| 810 |
len |
|---|
| 811 |
(not contains-register-p)) |
|---|
| 812 |
(create-constant-repetition-constant-length-matcher repetition next-fn)) |
|---|
| 813 |
((eql minimum maximum) |
|---|
| 814 |
(create-constant-repetition-matcher repetition next-fn)) |
|---|
| 815 |
((and greedyp |
|---|
| 816 |
len |
|---|
| 817 |
(not contains-register-p)) |
|---|
| 818 |
(create-greedy-constant-length-matcher repetition next-fn)) |
|---|
| 819 |
((and greedyp |
|---|
| 820 |
(or (plusp min-len) |
|---|
| 821 |
(eql maximum 1))) |
|---|
| 822 |
(create-greedy-no-zero-matcher repetition next-fn)) |
|---|
| 823 |
(greedyp |
|---|
| 824 |
(create-greedy-matcher repetition next-fn)) |
|---|
| 825 |
((and len |
|---|
| 826 |
(plusp len) |
|---|
| 827 |
(not contains-register-p)) |
|---|
| 828 |
(create-non-greedy-constant-length-matcher repetition next-fn)) |
|---|
| 829 |
((or (plusp min-len) |
|---|
| 830 |
(eql maximum 1)) |
|---|
| 831 |
(create-non-greedy-no-zero-matcher repetition next-fn)) |
|---|
| 832 |
(t |
|---|
| 833 |
(create-non-greedy-matcher repetition next-fn))))) |
|---|