• 제목/요약/키워드: Dynamic knowledge map

검색결과 19건 처리시간 0.021초

동적지식도와 관계형 데이터베이스 기반의 의료영역 지식 개념화 (Dynamic Knowledge Map and RDB-based Knowledge Conceptualization in Medical Arena)

  • Kim, Jin-Sung
    • 한국지능시스템학회:학술대회논문집
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    • 한국퍼지및지능시스템학회 2004년도 춘계학술대회 학술발표 논문집 제14권 제1호
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    • pp.111-114
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    • 2004
  • Management of human knowledge is an interesting concept that has attracted the attention of philosophers for thousands of years. Artificial intelligence and knowledge engineering has provided some degree of rigor to the study of knowledge systems and expert systems(ES) re able to use knowledge to solve the problems and answer questions. Therefore, the process of conceptualization and inference of knowledge are fundamental problem solving activities and hence, are essential activities for solving the problem of software ES construction Especially, the access to relevant, up-to-date and reliable knowledge is very important task in the daily work of physicians and nurses. In this study, we propose the conceptualization and inference mechanism for implicit knowledge management in medical diagnosis area. To this purpose, we combined the dynamic knowledge map(KM) and relational database(RDB) into a dynamic knowledge map(DKM). A graphical user-interface of DKM allows the conceptualization of the implicit knowledge of medical experts. After the conceptualization of implicit knowledge, we developed an RDB-based inference mechanism and prototype software ES to access and retrieve the implicit knowledge stored in RDB. Our proposed system allows the fast comfortable access to relevant knowledge fitting to the demands of the current task.

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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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Efficient Knowledge Base Construction Mechanism Based on Knowledge Map and Database Metaphor

  • Kim, Jin-Sung;Lee, Kun-Chang;Chung, Nam-Ho
    • 한국경영과학회:학술대회논문집
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    • 대한산업공학회/한국경영과학회 2004년도 춘계공동학술대회 논문집
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    • pp.9-12
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    • 2004
  • Developing an efficient knowledge base construction mechanism as an input method for expert systems (ES) development is of extreme importance due to the fact that an input process takes a lot of time and cost in constructing an ES. Most ES require experts to explicit their tacit knowledge into a form of explicit knowledge base with a full sentence. In addition, the explicit knowledge bases were composed of strict grammar and keywords. To overcome these limitations, this paper proposes a knowledge conceptualization and construction mechanism for automated knowledge acquisition, allowing an efficient decision. To this purpose, we extended traditional knowledge map (KM) construction process to dynamic knowledge map (DKM) and combined this algorithm with relational database (RDB). In the experiment section, we used medical data to show the efficiency of our proposed mechanism. Each rule in the DKM was characterized by the name of disease, clinical attributes and their treatments. Experimental results with various disease show that the proposed system is superior in terms of understanding and convenience of use.

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동적 지식관리를 위한 평가기반 지식관리시스템 (An Evaluation-Based Knowledge Management System for Manacling Dynamic Knowledge)

  • 김홍기;신길환
    • 정보관리학회지
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    • 제19권2호
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    • pp.109-130
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    • 2002
  • 본 연구는 조직에서 구성원들이 문제해결에 쓰일 수 있는 지식을 스스로 평가함으로써 유용성의 측면에서 조직지가 어떻게 표현될 수 있는가에 대하여 다룬다. 즉, 조직차원에서의 개념화는 조직의 목표와 당면한 문제의 종류, 그리고 그에 따른 제시된 대안들의 중요성이 끊임없이 변하기 때문에 동적인 지식지도를 생성함으로써 가능하다. 이러한 동적인 지식지도는 문제해결의 특정 도메인 내(within a domain)의 지식 항목들 사이의 관계뿐만 아니라 여러 도메인들(across domains) 사이의 지식 항목들 사이의 관계를 표현할 수 있는 다차원적이며 목적 중심적이라 할 수 있다.

Dynamic Knowledge Map and SQL-based Inference Architecture for Medical Diagnostic Systems

  • Kim, Jin-Sung
    • 한국지능시스템학회논문지
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    • 제16권1호
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    • pp.101-107
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    • 2006
  • In this research, we propose a hybrid inference architecture for medical diagnosis based on dynamic knowledge map (DKM) and relational database (RDB). Conventional expert systems (ES) and developing tools of ES has some limitations such as, 1) time consumption to extend the knowledge base (KB), 2) difficulty to change the inference path, 3) inflexible use of inference functions and operators. To overcome these Limitations, we use DKM in extracting the complex relationships and causal rules from human expert and other knowledge resources. The DKM also can help the knowledge engineers to change the inference path rapidly and easily. Then, RDB and its management systems help us to transform the relationships from diagram to relational table.

지식경영의 동태적 가치사슬 모형 구축 (Dynamic Value Chain Modeling of Knowledge Management)

  • 이영찬
    • 한국정보시스템학회지:정보시스템연구
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    • 제17권3호
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    • pp.205-233
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    • 2008
  • This study suggests the dynamic value chain model, that will be able to not only show changing processes to organization's significant capital by integrating an individual, implicit, and explicit knowledge which affect organizational decision making, but also distinguish the key driver for raising organizational competitive power because it makes possible to analyze sensitivity of performance along with decision making alternatives and policy changes from dynamic view by connecting knowledge management capability, knowledge management activity, and relations with organizational performance with specific strategic map. Recently, a lot of organizations show interest in measuring and evaluating their performance synthetically. In organizations taking knowledge management, they introduce effective value chain model like a dynamic balanced scorecard (DBSC), and therefore they can reflect their knowledge management condition as well as show their changes by checking performance of established vision and strategy periodically. Furthermore, they can ask for their inner members' understanding and participation by communicating with and inspiring their members with awareness that members are one of their group, present a base of benchmarking, and offer significant information for later decision making. The BSC has been a successful framework for measuring an organization's performance in various perspectives through translating an organization's vision and strategy into an interrelated set of key performance indicators and specific actions. The BSC, while having significant strengths over traditional performance measurement methods, however, has its own limitations, due to its static nature, such as overlooking two-way causation between performance indicators and neglecting the impact of delayed feedback flowing from the adoption of new strategies or policy changes. To overcome these limitations, this study employs SD, a methodology for understanding complex systems where dynamic feedback among the interrelated system components significantly impact on the system outcomes. The SD simulation model in the form of DBSC would serve as a useful strategic teaming tool for facilitating an organization's communication process through various scenario analyses as well as predicting the dynamic behavior pattern of their key performance measures over a future time frame. For the demonstration purpose, this study applied the DBSC model to Prototype of Korea manufacturing and service firm.

정량 추론과 정성 추론의 통합 메카니즘 : 주가예측의 적용 (A Mechanism for Combining Quantitative and Qualitative Reasoning)

  • 김명종
    • 지식경영연구
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    • 제10권2호
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    • pp.35-48
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    • 2009
  • The paper proposes a quantitative causal ordering map (QCOM) to combine qualitative and quantitative methods in a framework. The procedures for developing QCOM consist of three phases. The first phase is to collect partially known causal dependencies from experts and to convert them into relations and causal nodes of a model graph. The second phase is to find the global causal structure by tracing causality among relation and causal nodes and to represent it in causal ordering graph with signed coefficient. Causal ordering graph is converted into QCOM by assigning regression coefficient estimated from path analysis in the third phase. Experiments with the prediction model of Korea stock price show results as following; First, the QCOM can support the design of qualitative and quantitative model by finding the global causal structure from partially known causal dependencies. Second, the QCOM can be used as an integration tool of qualitative and quantitative model to offerhigher explanatory capability and quantitative measurability. The QCOM with static and dynamic analysis is applied to investigate the changes in factors involved in the model at present as well discrete times in the future.

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동태적 직무분석을 이용한 암 환자 케어 코디네이터의 직무 분석 (Dynamic Job Analysis of the Cancer Care Coordinator in a General Hospital)

  • 이태화;김은현;고일선;이인숙
    • 간호행정학회지
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    • 제15권4호
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    • pp.571-580
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    • 2009
  • Purpose: The purpose of this study was to explore roles of cancer care coordinator's by developing job description, job specification and job process map using dynamic job analysis. Method: The development process consisted of three stages of vertical job analysis and three stages of horizontal job analysis by modifying Song(1997)'s dynamic job analysis. Focus group interview was used to validate the content of the job analysis. Results: Cancer care coordinator's job description was categorized into six major categories, fourteen intermediate categories and one hundred forty specific jobs. Major categories are professional nursing practice, consultation and counsel, coordination and collaboration, education, research and leadership. Cancer care coordinator's job specification included master's degree with over five years of clinical experience preferably relevant clinical area, professional knowledge on pathophysiology of cancer, case management and cost control, competency for communication and counselling skills and clinical decision making. Cancer care coordinator's job process map was framed with time(horizontal) and activities(vertical). Conclusion: The Outcomes of this study will guide to develop possible areas of oncology advanced practice nurses in hospital setting and facilitate the use of oncology nurse practitioners by developing care coordinator roles in cancer care.

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취업준비를 위한 career map and course map 추천 시스템 (Career map and course map recommendation system for employment)

  • 권원현
    • 한국정보통신학회:학술대회논문집
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    • 한국정보통신학회 2022년도 추계학술대회
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    • pp.276-279
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    • 2022
  • 4차 산업혁명은 지식의 생산속도가 빠르고 지식산업의 비중이 매우 증가하는 지식사회로의 전환을 의미하며 이와 관련하여 디지털 혁명이 지속되고 있다. 신기술에 의한 산업구조의 재편과 직업·직무의 변화는 교육의 변화를 가져오고 있고 디지털 기술의 발전으로 인해 경계가 없고 개별적이며 역동적인 교육이 새로운 교육의 표준이 되어 가고 있다. 이런 배경에서 정규 과정 학위보다는 신기술에 관한 나노 학위(Nano Degree)나 핵심강좌에 집중된 마이크로 디그리(microdegree)에 대한 관심도 많이 증가하고 있다. 대표적으로 미국의 유다시티(Udacity)는 직업과 연계된 온라인 나노디그리 과정을 개설해 운영하고 있고, 주요 기업들과 협업하여 기업에 필요한 핵심 교육과정을 개발 및 교육함으로 기업의 인재 확보를 효율적으로 지원하고 있다. 이렇게 온라인 직업 및 직무 교육이 활성화되면서 이제 개인 스스로가 직업능력개발에 대한 목표를 세우고 포트폴리오 방식의 지속가능한 학습을 이어갈 수 있는 환경이 갖추어 졌다. 그러나 효과적인 직업 교육을 위해서는 자동화된 개인 맞춤형 교육컨텐츠 설계가 선행되어야 한다. 이를 위해 본 논문에서는 온라인 학습시대에 직업준비를 위한 개인 맞춤형 career and course map 추천 시스템을 제안하고자 한다.

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