| author | Chengsong |
| Tue, 30 Aug 2022 12:41:52 +0100 | |
| changeset 588 | 80e1114d6421 |
| parent 474 | 726f4e65c0fe |
| permissions | -rwxr-xr-x |
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\documentclass[runningheads]{lipics-v2021}
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\def\lexer{\mathit{lexer}}
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\def\mkeps{\mathit{mkeps}}
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\def\inj{\mathit{inj}}
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\def\Empty{\mathit{Empty}}
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\def\Left{\mathit{Left}}
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\def\Right{\mathit{Right}}
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\def\Stars{\mathit{Stars}}
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\def\Char{\mathit{Char}}
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\def\Seq{\mathit{Seq}}
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\def\Der{\mathit{Der}}
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\def\nullable{\mathit{nullable}}
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\def\Z{\mathit{Z}}
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\def\S{\mathit{S}}
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\newcommand{\ZERO}{\mbox{\bf 0}}
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\newcommand{\ONE}{\mbox{\bf 1}}
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\def\rs{\mathit{rs}}
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\def\Brz{Brzozowski}
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\def\der{\backslash}
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\newtheorem{falsehood}{Falsehood}
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\newtheorem{conject}{Conjecture}
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\bibliographystyle{plainurl}
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\title{{POSIX} {L}exing with {B}itcoded {D}erivatives}
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\titlerunning{POSIX Lexing with Bitcoded Derivatives}
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\author{Chengsong Tan}{King's College London}{chengsong.tan@kcl.ac.uk}{}{}
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\author{Christian Urban}{King's College London}{christian.urban@kcl.ac.uk}{}{}
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\authorrunning{C.~Tan and C.~Urban}
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\keywords{POSIX matching and lexing, derivatives of regular expressions, Isabelle/HOL}
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\category{}
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\ccsdesc[100]{Design and analysis of algorithms}
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\ccsdesc[100]{Formal languages and automata theory}
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\Copyright{\mbox{}}
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\nolinenumbers |
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\begin{document}
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\maketitle |
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\begin{abstract}
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Sulzmann and Lu describe a lexing algorithm that calculates |
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Brzozowski derivatives using bitcodes annotated to regular |
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expressions. Their algorithm generates POSIX values which encode |
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the information of \emph{how} a regular expression matches a
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string---that is, which part of the string is matched by which part |
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of the regular expression. This information is needed in the |
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context of lexing in order to extract and to classify tokens. |
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The purpose of the bitcodes is to generate POSIX values incrementally while |
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derivatives are calculated. They also help with designing |
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an ``aggressive'' simplification function that keeps the size of |
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derivatives finitely bounded. Without simplification the size of some derivatives can grow |
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arbitrarily big resulting in an extremely slow lexing algorithm. In this |
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paper we describe a variant of Sulzmann and Lu's algorithm: Our |
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variant is a recursive functional program, whereas Sulzmann |
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and Lu's version involves a fixpoint construction. We \textit{(i)}
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prove in Isabelle/HOL that our algorithm is correct and generates |
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unique POSIX values; we also \textit{(ii)} establish a finite
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bound for the size of the derivatives. |
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%The size can be seen as a |
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%proxy measure for the efficiency of the lexing algorithm: because of |
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%the polynomial bound our algorithm does not suffer from |
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%the exponential blowup in earlier works. |
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% Brzozowski introduced the notion of derivatives for regular |
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% expressions. They can be used for a very simple regular expression |
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% matching algorithm. Sulzmann and Lu cleverly extended this |
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% algorithm in order to deal with POSIX matching, which is the |
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% underlying disambiguation strategy for regular expressions needed |
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% in lexers. Their algorithm generates POSIX values which encode |
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% the information of \emph{how} a regular expression matches a
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% string---that is, which part of the string is matched by which |
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% part of the regular expression. In this paper we give our |
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% inductive definition of what a POSIX value is and show $(i)$ that |
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% such a value is unique (for given regular expression and string |
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% being matched) and $(ii)$ that Sulzmann and Lu's algorithm always |
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% generates such a value (provided that the regular expression |
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% matches the string). We show that $(iii)$ our inductive definition |
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% of a POSIX value is equivalent to an alternative definition by |
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% Okui and Suzuki which identifies POSIX values as least elements |
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% according to an ordering of values. We also prove the correctness |
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% of Sulzmann's bitcoded version of the POSIX matching algorithm and |
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% extend the results to additional constructors for regular |
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% expressions. \smallskip |
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\end{abstract}
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\input{session}
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\end{document}
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