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    Keyword-based networked knowledge map expressing content relevance between knowledge

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    https://www.riss.kr/link?id=A105601849

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    다국어 초록 (Multilingual Abstract) kakao i 다국어 번역

    A knowledge map as the taxonomy used in a knowledge repository should be structured to support and supplement knowledge activities of users who sequentially inquire and select knowledge for problem solving. The conventional knowledge map with a hierarchical structure has the advantage of systematically sorting out types and status of the knowledge to be managed, however it is not only irrelevant to knowledge user’s process of cognition and utilization, but also incapable of supporting user`s activity of querying and extracting knowledge. This study suggests a methodology for constructing a networked knowledge map that can support and reinforce the referential navigation, searching and selecting related and chained knowledge in term of contents, between knowledge. Regarding a keyword as the semantic information between knowledge, this research’s networked knowledge map can be constructed by aggregating each set of knowledge links in an automated manner. Since a keyword has the meaning of representing contents of a document, documents with common keywords have a similarity in content, and therefore the keyword-based document networks plays the role of a map expressing interactions between related knowledge. In order to examine the feasibility of the proposed methodology, 50 research papers were randomly selected, and an exemplified networked knowledge map between them with content relevance was implemented using common keywords.
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    A knowledge map as the taxonomy used in a knowledge repository should be structured to support and supplement knowledge activities of users who sequentially inquire and select knowledge for problem solving. The conventional knowledge map with a hierar...

    A knowledge map as the taxonomy used in a knowledge repository should be structured to support and supplement knowledge activities of users who sequentially inquire and select knowledge for problem solving. The conventional knowledge map with a hierarchical structure has the advantage of systematically sorting out types and status of the knowledge to be managed, however it is not only irrelevant to knowledge user’s process of cognition and utilization, but also incapable of supporting user`s activity of querying and extracting knowledge. This study suggests a methodology for constructing a networked knowledge map that can support and reinforce the referential navigation, searching and selecting related and chained knowledge in term of contents, between knowledge. Regarding a keyword as the semantic information between knowledge, this research’s networked knowledge map can be constructed by aggregating each set of knowledge links in an automated manner. Since a keyword has the meaning of representing contents of a document, documents with common keywords have a similarity in content, and therefore the keyword-based document networks plays the role of a map expressing interactions between related knowledge. In order to examine the feasibility of the proposed methodology, 50 research papers were randomly selected, and an exemplified networked knowledge map between them with content relevance was implemented using common keywords.

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    참고문헌 (Reference)

    1 이민철, "텍스트 마이닝 기법을 적용한 뉴스 데이터에서의사건 네트워크 구축" 한국지능정보시스템학회 24 (24): 183-203, 2018

    2 유기동, "지식 간 상호참조적 네비게이션이 가능한 온톨로지 기반 프로세스 중심 지식지도" 한국지능정보시스템학회 18 (18): 61-83, 2012

    3 윤승정, "주제어 프로파일링 및 동시출현분석을 통한 지능정보시스템 연구의 정체성에 관한 연구" 한국지능정보시스템학회 22 (22): 139-155, 2016

    4 Chua, A., "Why KM projects fail: a multi-case analysis" 9 (9): 6-17, 2005

    5 Wang, Y., "Website browsing aid: A navigation graph-based recommendation system" 45 (45): 387-400, 2014

    6 Lin, F., "Visualized cognitive knowledge map integration for P2P networks" 46 (46): 774-785, 2009

    7 Bayardo, R.J., "Scaling up all pairs similarity search" 131-140, 2007

    8 Wang, Y., "On the cognitive process of human problem solving" 11 : 81-92, 2010

    9 Hao, J., "Knowledge map-based method for domain knowledge browsing" 61 : 106-114, 2014

    10 Yoo, K., "Knowledge flow-based business process redesign: applying a knowledge map to redesign a business process" 11 (11): 104-125, 2007

    1 이민철, "텍스트 마이닝 기법을 적용한 뉴스 데이터에서의사건 네트워크 구축" 한국지능정보시스템학회 24 (24): 183-203, 2018

    2 유기동, "지식 간 상호참조적 네비게이션이 가능한 온톨로지 기반 프로세스 중심 지식지도" 한국지능정보시스템학회 18 (18): 61-83, 2012

    3 윤승정, "주제어 프로파일링 및 동시출현분석을 통한 지능정보시스템 연구의 정체성에 관한 연구" 한국지능정보시스템학회 22 (22): 139-155, 2016

    4 Chua, A., "Why KM projects fail: a multi-case analysis" 9 (9): 6-17, 2005

    5 Wang, Y., "Website browsing aid: A navigation graph-based recommendation system" 45 (45): 387-400, 2014

    6 Lin, F., "Visualized cognitive knowledge map integration for P2P networks" 46 (46): 774-785, 2009

    7 Bayardo, R.J., "Scaling up all pairs similarity search" 131-140, 2007

    8 Wang, Y., "On the cognitive process of human problem solving" 11 : 81-92, 2010

    9 Hao, J., "Knowledge map-based method for domain knowledge browsing" 61 : 106-114, 2014

    10 Yoo, K., "Knowledge flow-based business process redesign: applying a knowledge map to redesign a business process" 11 (11): 104-125, 2007

    11 Xu, Z., "Knowle: A semantic link network based system for organizing large scale online news events" 43-44 : 40-50, 2015

    12 Han, J., "Evidence for dynamically organized modularity in the yeast protein-protein interaction network" 430 (430): 88-93, 2004

    13 Samsonovich, A.V., "Cognitive processes in preparation for problem solving" 71 : 235-247, 2015

    14 Yoo, K., "Capture knowledge on the spot: toward the autonomous and pervasive service of context-rich knowledge" 54 (54): 401-414, 2013

    15 Kim, S., "Building the knowledge map: an industrial case study" 7 (7): 34-45, 2003

    16 Mansingh, G., "Building ontology-based knowledge maps to assist knowledge process outsourcing decisions" 7 : 37-51, 2009

    17 Rao, L., "Building ontology based knowledge maps to assist business process re-engineering" 52 (52): 577-589, 2012

    18 Fionda, V., "Building knowledge maps of Web graphs" 239 : 143-167, 2016

    19 Zhuge, H., "Automatically constructing semantic link network on documents" 23 : 956-971, 2011

    20 Frantzi, K., "Automatic recognition of multi-word terms" 3 (3): 117-132, 2000

    21 Rose, S., "Automatic keyword extraction from individual documents, Text Mining: Applications and Theory" Wiley Online Library 3-20, 2010

    22 Freeman, L.C., "A set of measures of centrality based on betweenness" 40 (40): 35-41, 1977

    23 Zhu, H., "A multi-constraint learning path recommendation algorithm based on knowledge map" 143 : 102-114, 2018

    24 Tsui, E., "A concept-relationship acquisition and inference approach for hierarchical taxonomy construction from tags" 46 : 44-57, 2010

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    학술지 이력

    학술지 이력
    연월일 이력구분 이력상세 등재구분
    2027 평가 재인증평가 신청대상 (재인증)
    2021-01-01 등재 등재학술지 유지 (재인증) KCI등재
    2018-01-01 등재 등재학술지 유지 (등재유지) KCI등재
    2015-03-25 학회명변경 영문명 : 미등록 -> Korea Intelligent Information Systems Society KCI등재
    2015-03-17 학술지명변경 외국어명 : 미등록 -> Journal of Intelligence and Information Systems KCI등재
    2015-01-01 등재 등재학술지 유지 (등재유지) KCI등재
    2011-01-01 등재 등재학술지 유지 (등재유지) KCI등재
    2009-01-01 등재 등재학술지 유지 (등재유지) KCI등재
    2008-02-11 학술지명변경 한글명 : 한국지능정보시스템학회 논문지 -> 지능정보연구 KCI등재
    2007-01-01 등재 등재학술지 유지 (등재유지) KCI등재
    2004-01-01 등재 등재학술지 선정 (등재후보2차) KCI등재
    2003-01-01 등재 등재후보 1차 PASS (등재후보1차) KCI등재후보
    2001-07-01 등재 등재후보학술지 선정 (신규평가) KCI등재후보
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    학술지 인용정보

    학술지 인용정보
    기준연도 WOS-KCI 통합IF(2년) KCIF(2년) KCIF(3년)
    2016 1.51 1.51 1.99
    KCIF(4년) KCIF(5년) 중심성지수(3년) 즉시성지수
    1.78 1.54 2.674 0.38
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