• 제목/요약/키워드: Knowledge-based System

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동적지식도와 데이터베이스관리시스템 기반의 전문가시스템 개발 (Development of Expert Systems based on Dynamic Knowledge Map and DBMS)

  • Jin Sung, Kim
    • 한국지능시스템학회:학술대회논문집
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    • 한국퍼지및지능시스템학회 2004년도 추계학술대회 학술발표 논문집 제14권 제2호
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    • pp.568-571
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    • 2004
  • In this study, we propose an efficient expert system (ES) construction mechanism by using dynamic knowledge map (DKM) and database management systems (DBMS). Generally, traditional ES and ES developing tools has some limitations such as, 1) a lot of time to extend the knowledge base (KB), 2) too difficult to change the inference path, 3) inflexible use of inference functions and operators. First, to overcome these limitations, we use DKM in extracting the complex relationships and causal rules from human expert and other knowledge resources. Then, elation database (RDB) and its management systems will help to transform the relationships from diagram to relational table. Therefore, our mechanism can help the ES or KBS (Knowledge-Based Systems) developers in several ways efficiently. In the experiment section, we used medical data to show the efficiency of our mechanism. Experimental results with various disease show that the mechanism is superior in terms of extension ability and flexible inference.

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ATTITUDES TOWARDS KNOWLEDGE SHARING AMONG QUANTITY SURVEYORS

  • Kherun Nita Ali;Md Asrul Nasid Masrom;Pow Yih Wen
    • 국제학술발표논문집
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    • The 4th International Conference on Construction Engineering and Project Management Organized by the University of New South Wales
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    • pp.567-574
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    • 2011
  • The purpose of this paper is to identify factors that influence knowledge sharing and determine the attitudes of quantity surveyors towards knowledge sharing based on the factors. The analysis was based on an online questionnaire survey of Registered Quantity Surveyors from Selangor and Kuala Lumpur. Individualism and collectivism were identified as two major factors that influence attitude towards knowledge sharing. Indicators of individualism include individual attitude, competitiveness, care, incentives and rewards; while the indicators of collectivism are trust, social behaviors and motivation. The findings show that the level of attitudes towards knowledge sharing among quantity surveyors is generally high under enabling organizational environment. However, this is a cautious conclusion as the valid sample on which the analysis is based is relatively small. Willingness to share was found to be highest when incentives and rewards are involved as well as when there is a knowledge management system to promote continuous learning and sharing of knowledge.

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A Knowledge-Based Technical Support System for ECRC

  • Shin, J.K.;Hwang, J.W.
    • 한국전자거래학회:학술대회논문집
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    • 한국전자거래학회 1998년도 학술대회지 vol.1
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    • pp.129-140
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    • 1998
  • ㆍ ECRC ㆍ Knowledge Management ㆍ KM technologies ㆍ KBTS System -Mistakes KMS -Discussion KMS -Distinguished Features(omitted)

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지식경영의 성공요인에 관한 실증적 연구: 기업규모 및 업종별 비교를 중심으로 (An Empirical Study on Success Factors of Knowledge Management in Korean Firms : Focus on Comparison by Company Size and Industry Type)

  • 서도원;이덕로;김찬중
    • 지식경영연구
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    • 제7권2호
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    • pp.69-96
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    • 2006
  • The purpose of this study is to find success factors of knowledge management in Korean firms, confirm them empirically, and verify their relative importance in terms of company size and industry type. The major studies on the knowledge management were deliberately selected and interpretively analyzed to find the success factors of Korean firms. As a result of the analysis, five success factors(top management's will, evaluation reward, organizational culture, knowledge management system, organizational structure) have been found. The empirical researches to make certain whether the above five factors derived are actually true or not have been separately performed by using questionnaire method. Based on the data collected, it is found that all five factors are significant. The degree of relative importance among the success factors of knowledge management in Korean firms has been found as: (i)top management's will, (ii)organizational culture, (iii)evaluation-reward, (iv)knowledge management system, (v)organizational structure. In company size, large firm's degree of relative importance among the success factors are: (i)top management's will, (ii)organizational culture, (iii)evaluation-reward, (iv)knowledge management system, (v) organizational structure. And medium-small firm's degree of relative importance among the success factors of knowledge management in Korean firms has been found as: (i)top management's will, (ii)organizational culture, (iii) evaluation-reward, (iv)knowledge management system, (v)organizational structure. Finally, in type of industry, manufactural firm's degree of relative importance among the success factors of knowledge management in Korean firms has been found as: (i)top management's will, (ii)organizational culture, (iii)evaluation-reward, (iv)knowledge management system, (v)organizational structure. And non-manufactural firm's degree of relative importance among the success factors of knowledge management in Korean firms are: (i)top management's will, (ii)organizational culture, (iii)evaluation-reward, (iv)knowledge management system, (v)organizational structure.

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은행의 암묵적 지식과 형식적 지식의 통합관리를 위한 온톨로지기반 지식 리포지토리 모형 개발 연구 (Implementing the Model of Ontology-Based Knowledge Repository for Integrating Financial Firm's Implicit and Explicit Knowledge)

  • 김현희
    • 정보관리학회지
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    • 제22권2호
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    • pp.229-251
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    • 2005
  • 기업체의 경우 지식의 창출, 공유, 활용이 조직의 전 부서에서 발생하고 있기 때문에 자료실 정보시스템 또는 지식관리시스템이라는 제한된 공간에서 수동적으로 수집되는 정보, 지식만으로는 이용자의 요구를 제대로 만족시킬 수 없다. 따라서 본 연구에서는 BPM(Business Process Management)이 활성화 되어 있는 은행 환경에서 은행의 일반 업무 및 조사를 지원해 주는 지식, 정보, 문서 등의 암묵적 지식과 형식적 지식을 수집, 공유, 활용할 수 있는 온톨로지 기반 지식 리포지토리 모형을 구현해 보았다. 국내 일반 은행 환경에 맞는 모형을 제안하기 위해서 은행의 지식 관리의 현황, 문제점 및 개선점 등을 네 개의 일반 은행의 각 지식관리자와 자료실 사서 그리고 30명의 은행원들을 대상으로 한 면담과 설문지 조사를 통해서 파악한 후, 이러한 조사 결과를 기초로 하여 모형을 구현하였다.

PLC 래더다이어그램 생성을 위한 지식기반시스템에 관한 연구 (A Study on the Knowledge-based PLC Ladder Programming System)

  • 강신한;김광만;이재원
    • 산업경영시스템학회지
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    • 제17권30호
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    • pp.153-160
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    • 1994
  • In this paper, we present the application of knowledge-based system technique for generating of PLC ladder diagram The developed prototype system receives a time chart as an input and generates a ladder logic as its output This results in the computerization and intellegent processing of PLC programming. The system can be effectively applied to sequence control where the PLC programs need to be frequently changed and generated.

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Self-Evolving Expert Systems based on Fuzzy Neural Network and RDB Inference Engine

  • Kim, Jin-Sung
    • 지능정보연구
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    • 제9권2호
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    • pp.19-38
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    • 2003
  • In this research, we propose the mechanism to develop self-evolving expert systems (SEES) based on data mining (DM), fuzzy neural networks (FNN), and relational database (RDB)-driven forward/backward inference engine. Most researchers had tried to develop a text-oriented knowledge base (KB) and inference engine (IE). However, this approach had some limitations such as 1) automatic rule extraction, 2) manipulation of ambiguousness in knowledge, 3) expandability of knowledge base, and 4) speed of inference. To overcome these limitations, knowledge engineers had tried to develop an automatic knowledge extraction mechanism. As a result, the adaptability of the expert systems was improved. Nonetheless, they didn't suggest a hybrid and generalized solution to develop self-evolving expert systems. To this purpose, we propose an automatic knowledge acquisition and composite inference mechanism based on DM, FNN, and RDB-driven inference engine. Our proposed mechanism has five advantages. First, it can extract and reduce the specific domain knowledge from incomplete database by using data mining technology. Second, our proposed mechanism can manipulate the ambiguousness in knowledge by using fuzzy membership functions. Third, it can construct the relational knowledge base and expand the knowledge base unlimitedly with RDBMS (relational database management systems) module. Fourth, our proposed hybrid data mining mechanism can reflect both association rule-based logical inference and complicate fuzzy relationships. Fifth, RDB-driven forward and backward inference time is shorter than the traditional text-oriented inference time.

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객체지향 데이터베이스를 이용한 지식베이스 모형(OOKS) 개발 (Development of OOKS : a Knowledge Base Model Using an Object-Oriented Database)

  • 허순영;김형민;양근우;최지윤
    • 지능정보연구
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    • 제5권1호
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    • pp.13-34
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    • 1999
  • Building a knowledge base effectively has been an important research area in the expert systems field. A variety of approaches have been studied including rules, semantic networks, and frames to represent the knowledge base for expert systems. As the size and complexity of the knowledge base get larger and more complicated, the integration of knowledge based with database technology cecomes more important to process the large amount of data. However, relational database management systems show many limitations in handing the complicated human knowledge due to its simple two dimensional table structure. In this paper, we propose Object-Oriented Knowledge Store (OOKS), a knowledge base model on the basis of a frame sturcture using an object-oriented database. In the proposed model, managing rules for inferencing and facts about objects in one uniform structure, knowledge and data can be tightly coupled and the performance of reasoning can be improved. For building a knowledge base, a knowledge script file representing rules and facts is used and the script file is transferred into a frame structure in database systems. Specifically, designing a frame structure in the database model as it is, it can facilitate management and utilization of knowledge in expert systems. To test the appropriateness of the proposed knowledge base model, a prototype system has been developed using a commercial ODBMS called ObjectStore and C++ programming language.

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후레임 모델에의한 연삭가공용 데이터베이스의 설계 (Design of Grinding Datab ase Based on the Frame Model)

  • 김건희
    • 한국공작기계학회:학술대회논문집
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    • 한국공작기계학회 1997년도 춘계학술대회 논문집
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    • pp.102-106
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    • 1997
  • Grinding has difficulty in satisfying the qualitative knowledge based on the skilled expert as well as quantitative data for all user. Design of grinding database is based on the frame-based model for utilizing the empirical and qualitative knowledge. Inthis paper, basic strategy to develop the grinding database by frame-based model, which is strongly dependent upon experience and intuition, frame-base model, which is strongly dependent upon experience and intuition, is described. Design of grinding database is based on the frame-based model for utilizing the ambiguous knowledge and inference is accomplised by the object-oriented paradigm system.

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