• 제목/요약/키워드: semantic relations

검색결과 203건 처리시간 0.035초

A Simple Syntax for Complex Semantics

  • Lee, Kiyong
    • 한국언어정보학회:학술대회논문집
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    • 한국언어정보학회 2002년도 Language, Information, and Computation Proceedings of The 16th Pacific Asia Conference
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    • pp.2-27
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    • 2002
  • As pact of a long-ranged project that aims at establishing database-theoretic semantics as a model of computational semantics, this presentation focuses on the development of a syntactic component for processing strings of words or sentences to construct semantic data structures. For design arid modeling purposes, the present treatment will be restricted to the analysis of some problematic constructions of Korean involving semi-free word order, conjunction arid temporal anchoring, and adnominal modification and antecedent binding. The present work heavily relies on Hausser's (1999, 2000) SLIM theory for language that is based on surface compositionality, time-linearity arid two other conditions on natural language processing. Time-linear syntax for natural language has been shown to be conceptually simple and computationally efficient. The associated semantics is complex, however, because it must deal with situated language involving interactive multi-agents. Nevertheless, by processing input word strings in a time-linear mode, the syntax cart incrementally construct the necessary semantic structures for relevant queries and valid inferences. The fragment of Korean syntax will be implemented in Malaga, a C-type implementation language that was enriched for both programming and debugging purposes arid that was particluarly made suitable for implementing in Left-Associative Grammar. This presentation will show how the system of syntactic rules with constraining subrules processes Korean sentences in a step-by-step time-linear manner to incrementally construct semantic data structures that mainly specify relations with their argument, temporal, and binding structures.

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관계형 데이타베이스에서 지식관리에 의한 질의 최적화 (Query Optimization with Knowledge Management in Relational Database)

  • 남인길;이두한
    • 한국정보처리학회논문지
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    • 제2권5호
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    • pp.634-644
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    • 1995
  • 본 논문에서는 세 가지 종류의 지식을 적절하게 표현하여 데이타베이스 시스템에 저장하고 이를 사용하여 질의를 의미적으로 등가이며 보다 처리 효율이 뛰어난 질의로 변환하는 기법을 제시하였다. 또한 제안된 지식을 사용하여 필수적인 성분이나 연산이 부분적으로 생략된 단순화된 질의를 완전한 질의로 변환할 수 있는 기법을 제시하여 사용자로 하여금 보다 단순화된 질의를 사용할 수 있는 환경을 제공하였다. 단순화된 질의로부터 변환과 최적화를 위해 다루는 지식은 크게 세 가지로 대별되는데, 의미적 무결성 규정과 도메인 무결성 규정을 포함하는 의미적 지식과 관계형 데이타베이스 에서의 릴레이션간의 물리적 관계를 표현하는 구조적 지식 그리고 속성의 도메인 정보 를 유지하는 도메인 정의이다. 제안된 시스템에서는 이들 지식을 사용하여 질의어의 조건 절에 있는 불필요하거나 중복적인 제한연산(restrictions)이나 조인연산(join) 을 제거하거나 다른 효율적인 연산으로의 대체, 혹은 보다 나은 효율을 위해 부가적인 제한연산이나 조인연산을 추가하여 질의 최적화를 이루게 된다.

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Sentiment Analysis of User-Generated Content on Drug Review Websites

  • Na, Jin-Cheon;Kyaing, Wai Yan Min
    • Journal of Information Science Theory and Practice
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    • 제3권1호
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    • pp.6-23
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    • 2015
  • This study develops an effective method for sentiment analysis of user-generated content on drug review websites, which has not been investigated extensively compared to other general domains, such as product reviews. A clause-level sentiment analysis algorithm is developed since each sentence can contain multiple clauses discussing multiple aspects of a drug. The method adopts a pure linguistic approach of computing the sentiment orientation (positive, negative, or neutral) of a clause from the prior sentiment scores assigned to words, taking into consideration the grammatical relations and semantic annotation (such as disorder terms) of words in the clause. Experiment results with 2,700 clauses show the effectiveness of the proposed approach, and it performed significantly better than the baseline approaches using a machine learning approach. Various challenging issues were identified and discussed through error analysis. The application of the proposed sentiment analysis approach will be useful not only for patients, but also for drug makers and clinicians to obtain valuable summaries of public opinion. Since sentiment analysis is domain specific, domain knowledge in drug reviews is incorporated into the sentiment analysis algorithm to provide more accurate analysis. In particular, MetaMap is used to map various health and medical terms (such as disease and drug names) to semantic types in the Unified Medical Language System (UMLS) Semantic Network.

Automatic space type classification of architectural BIM models using Graph Convolutional Networks

  • Yu, Youngsu;Lee, Wonbok;Kim, Sihyun;Jeon, Haein;Koo, Bonsang
    • 국제학술발표논문집
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    • The 9th International Conference on Construction Engineering and Project Management
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    • pp.752-759
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    • 2022
  • The instantiation of spaces as a discrete entity allows users to utilize BIM models in a wide range of analyses. However, in practice, their utility has been limited as spaces are erroneously entered due to human error and often omitted entirely. Recent studies attempted to automate space allocation using artificial intelligence approaches. However, there has been limited success as most studies focused solely on the use of geometric features to distinguish spaces. In this study, in addition to geometric features, semantic relations between spaces and elements were modeled and used to improve space classification in BIM models. Graph Convolutional Networks (GCN), a deep learning algorithm specifically tailored for learning in graphs, was deployed to classify spaces via a similarity graph that represents the relationships between spaces and their surrounding elements. Results confirmed that accuracy (ACC) was +0.08 higher than the baseline model in which only geometric information was used. Most notably, GCN was able to correctly distinguish spaces with no apparent difference in geometry by discriminating the specific elements that were provided by the similarity graph.

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Multiple Case Marking Constructions in Korean Revisited

  • Ryu, Byong-Rae
    • 한국언어정보학회지:언어와정보
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    • 제17권2호
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    • pp.1-27
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    • 2013
  • This paper presents a unified approach to multiple nominative and accusative constructions in Korean. We identify 16 semantic relations holding between two consecutive noun phrases (NPs) in multiple case marking constructions, and propose each semantic relation as a licensing condition on double case marking. We argue that the multiple case marking constructions are merely the sequences of double case marking, which are formed by dextrosinistrally sequencing the pairs of the same-case marked NPs of same or different type. Some appealing consequences of this proposal include a new comprehensive classification of the sequences of same-case NPs and a straightforward account of some long standing problems such as how the additional same-case NPs are licensed, and in what respects the multiple nominative marking and the multiple accusative marking are alike and different from each other.

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의존 문법과 대조 의미론을 이용한 한국어의 어휘적 중의성 해결 시스템 (Lexical Ambiguity Resolution System of Korean Language using Dependency Grammar and Collative Semantics)

  • 윤근수;권혁철
    • 인지과학
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    • 제3권1호
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    • pp.1-24
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    • 1991
  • 본 논문은 한국어의 어휘적 중의성을 해결하는 시스템을 보여준다. 이 시스템은 의존 문법과 대조 의미론을 이용하고 있다. 의존 문법은 두 형태소 사이의 의존관계에 의하여 문장을 분석한다. 대조 의미론은 어휘적 중의성과 의미관계의 상호작용을 조사한다. 대조 의미론은 의미 프레임,의미 백터,대조,분류의 4개의 구성요소로 이루어진다. 본 시스템은 C 언어로 구성되었으며, 문자을 분석 학과 두 단어간의 의미 관계를 조사하며 어휘적 중의성을 해결한다.

Automatic Detection of Korean Accentual Phrase Boundaries

  • Lee, Ki-Yeong;Song, Min-Suck
    • The Journal of the Acoustical Society of Korea
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    • 제18권1E호
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    • pp.27-31
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    • 1999
  • Recent linguistic researches have brought into focus the relations between prosodic structures and syntactic, semantic or phonological structures. Most of them prove that prosodic information is available for understanding syntactic, semantic and discourse structures. But this result has not been integrated yet into recent Korean speech recognition or understanding systems. This study, as a part of integrating prosodic information into the speech recognition system, proposes an automatic detection technique of Korean accentual phrase boundaries by using one-stage DP, and the normalized pitch pattern. For making the normalized pitch pattern, this study proposes a method of modified normalization for Korean spoken language. For the experiment, this study employs 192 sentential speech data of 12 men's voice spoken in standard Korean, in which 720 accentual phrases are included, and 74.4% of the accentual phrase boundaries are correctly detected while 14.7% are the false detection rate.

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효율적인 온톨로지 추론 질의를 지원하는 OWL 저장 모델 (OWL Storage Model to Support Efficient Ontology Reasoning Query)

  • 김연희;이애정
    • 디지털산업정보학회논문지
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    • 제7권3호
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    • pp.25-35
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    • 2011
  • In the Semantic Web, storage models are required to efficiently store and retrieve metadata and ontology represented using OWL that can provide expressive power and reasoning support. In this paper, we propose an OWL storage model that can store and retrieve many restrictions and semantic relations defined on ontology with metadata. In addition, we propose some methods and rules to improve query processing efficiency of the proposed storage model. The proposed storage model can store and process large amounts of ontology and metadata because it consists of tables based on the relational database. And the proposed model can quickly provide more accurate results to users because of performing two different types of ontology reasoning and using the prime number labeling scheme to easily identify hierarchy relationships between classes or properties. The comparative evaluation results show that our storage model provides better performance than the existing storage model.

한국어 학습자의 관형격 조사 '의' 사용 양상 연구: 학습자 말뭉치 분석을 중심으로 (A Study on the Use of Genitive Particle '의': Focusing on the analysis of Korean Learners Corpus)

  • 심지영;이수현
    • 한국산업융합학회 논문집
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    • 제26권3호
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    • pp.433-442
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    • 2023
  • The purpose of this study is to reveal the Korean learners' usage pattern of '의', the genitive particle, according to semantic classification, so that it can be referred to in determining the contents and methods of related education. The method of this study adopts a quantitative analysis using learners corpus established by National Institute of Korean Language. As a result of the analysis, as proficiency increases, the overall frequency of '의' increases and the number of meaning senses used increases. However, the frequency of errors also increases with it. As for the usage pattern of each sense, the meaning of 'ownership, belonging' is the most frequent, and followed by 'acting entity', 'kinship, social relations', and 'relationship(area)'. In conclusion, the meanings of 'acting subjects' and 'relationships(area) need to be supplemented with explicit education. Other meanings need to be discussed, and decisions should be made in consideration of learning purpose and proficiency.

개념 및 관계 분류를 통한 분야 온톨로지 구축 (Building Domain Ontology through Concept and Relation Classification)

  • 황금하;신지애;최기선
    • 한국정보과학회논문지:소프트웨어및응용
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    • 제35권9호
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    • pp.562-571
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    • 2008
  • 본 논문에서는 분야 온톨로지 구축을 위하여 분야 상위 온톨로지를 구축한 다음, 분야 시소러스의 개념과 관계를 이용하여 분야 상위 온톨로지를 확장하는 방법을 제안한다. 이를 위하여 우선 일반분야 시소러스와 분야 사전을 이용하여 분야 상위 개념 분류체계를 구축한다. 다음, 분야 시소러스의 개념을 분야 상위 온톨로지의 상위 개념으로 분류하고, 광의어(Broader Term: BT)-협의어(Narrower Term: NT) 및 광의어-관련어(Related Term: RT) 사이의 관계를 분야 상위 온톨로지에서 정의한 의미관계로 분류한다. 개념 분류는 두 단계로 진행되는데, 1단계에서는 빈도수 기반 방법, 2단계에서는 유사도 기반방법을 적용하여 시소러스 개념을 분야 상위 온톨로지의 개념으로 분류한다. 관계 분류에서는 두 가지 방법을 적용하였는데, (i) 훈련데이타가 부족한 경우를 위하여 규칙기반 방법으로 BT-NT/RT관계를 iso와 기타 관계(non-isa관계)로 분류하고, 다시 패턴기반 방법으로 non-isa관계를 온톨로지를 위한 의미관계로 분류한다. (ii) 훈련데이타를 충분히 가지고 있을 경우, 최대 엔트로피 모델(MEM)을 적용한 특징기반 분류 기법을 사용하되, k-Nearest Neighbors(k-NN)방법으로 훈련데이타를 정제하였다. 본 논문에서 제안한 방법으로 시스템을 구축하였고, 실험 결과 사람에 의한 판단 결과와 비교 가능한 성능을 보여 주었다.