• Title/Summary/Keyword: single-state parsing automata

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Application of Single-State Parsing Automata to LR Grammars (LR 문법에 대한 단일상태파싱오토마톤의 적용)

  • Lee, Gyung-Ok
    • Journal of KIISE
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    • v.43 no.10
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    • pp.1079-1084
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    • 2016
  • Single-state parsing automata have a characteristic such that the decision of an action depends only on the current state but not on the parsing history. The memory space and the parsing time of single-state parsing automata are less than the memory space and the parsing time of LR automata. However, the applicable grammar class of single-state parsing automata is less than that of LR automata. This paper provides extended single-state parsing automata, which are applicable to LR grammars. In the prior work, the special state, referred to as the cyclic state was not treated in the construction of single-state parsing automata, and hence, the applicable grammar class was less than LR grammars. The paper solves the problem of cyclic states by processing dynamic information depending on an input string. The proposed method expands the application of grammar class of single-state parsing automata to LR grammars.

Grammar Classes Generating Single State Parsing Automata (단일 상태 파싱 오토마톤을 생성하는 문법 클래스들)

  • Lee, Gyung-Ok
    • Journal of KIISE:Software and Applications
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    • v.41 no.7
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    • pp.518-522
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    • 2014
  • A single state parsing automaton has the characteristics of the decision of actions which do not depend on the history of the parsing paths but on the current state. The single state parsing automaton hence has the advantage of the reduced parsing time and a small memory requirement compared to those of the conventional LR automaton. However, currently, the grammar classes generating single state parsing automata have not been known. This paper deals with the grammar classes generating single state parsing automata; in addition, this paper gives the generating method of single state parsing automata of the grammar classes.

A Model of Probabilistic Parsing Automata (확률파싱오토마타 모델)

  • Lee, Gyung-Ok
    • Journal of KIISE
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    • v.44 no.3
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    • pp.239-245
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    • 2017
  • Probabilistic grammar is used in natural language processing, and the parse result of the grammar has to preserve the probability of the original grammar. As for the representative parsing method, LL parsing and LR parsing, the former preserves the probability information of the original grammar, but the latter does not. A characteristic of a probabilistic parsing automaton has been studied; but, currently, the generating model of probabilistic parsing automata has not been known. The paper provides a model of probabilistic parsing automata based on the single state parsing automata. The generated automaton preserves the probability of the original grammar, so it is not necessary to test whether or not the automaton is probabilistic parsing automaton; defining a probability function for the automaton is not required. Additionally, an efficient automaton can be constructed by choosing an appropriate parameter.