• 제목/요약/키워드: knowledge/information networks

검색결과 434건 처리시간 0.024초

Rule Extraction from Neural Networks : Enhancing the Explanation Capability

  • Park, Sang-Chan;Lam, Monica-S.;Gupta, Amit
    • 지능정보연구
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    • 제1권2호
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    • pp.57-71
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    • 1995
  • This paper presents a rule extraction algorithm RE to acquire explicit rules from trained neural networks. The validity of extracted rules has been confirmed using 6 different data sets. Based on experimental results, we conclude that extracted rules from RE predict more accurately and robustly than neural networks themselves and rules obtained from an inductive learning algorithm do. Rule extraction algorithm for neural networks are important for incorporating knowledge obtained from trained networks into knowledge based systems. In lieu of this, the proposed RE algorithm contributes to the trend toward developing hybrid and versatile knowledge-based system including expert systems and knowledge-based decision su, pp.rt systems.

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Using Practice Context Models to Knowledge Management in Proof-of-Concept Activities: A Contribution of Knowledge Networks and Percolation Theory

  • Neto, Antonio Jose Rodrigues;Borges, Maria Manuel;Roque, Licinio
    • Journal of Information Science Theory and Practice
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    • 제9권1호
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    • pp.1-23
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    • 2021
  • This study introduces novel research using Practice Context Models supported by Knowledge Networks and Percolation Theory with the aim to contribute to knowledge management in Proof-of-Concept (PoC) activities. The authors envision this proposal as a potential instrument to identify network structures based on a percolation (propagation) threshold and to analyze the importance of nodes (e.g., practitioners, practices, competencies, movements, and scenarios) during the percolation of knowledge in PoC activities. After thirty months immersed in the natural PoC habitat, acting as observers and practitioners, and supported by an ethnographic exercise and a designer-research mindset, the authors identified the production of meaning in PoC activities occurring in a hermeneutic circle characterized by the presence of several knowledge networks; thus, discovering the 'natural knowledge' in PoC as a spectrum of cognitive development spread throughout its network, as each node could produce and disseminate certain knowledge that flows and influences other nodes. Therefore, this research presents the use of Practice Context Models 'connected' to Knowledge Networks and Percolation Theory as a potential and feasible proposal to be built using the attribution of values (weights) to the nodes (e.g., practitioners, practices, competencies, movements, scenarios, and also knowledge) in the context of PoC with the aim to allow the players (e.g., PoC practitioners) to have more flexibility in building alliances with other players (new nodes); that is, focusing on those nodes with higher value (focus on quality) in collaboration networks, i.e., alliances (connections) with the aim to contribute to knowledge management in the context of PoC.

An Evaluation of Applying Knowledge Base to Academic Information Service

  • Lee, Seok-Hyoung;Kim, Hwan-Min;Choe, Ho-Seop
    • International Journal of Knowledge Content Development & Technology
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    • 제3권1호
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    • pp.81-95
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    • 2013
  • Through a series of precise text handling processes, including automatic extraction of information from documents with knowledge from various fields, recognition of entity names, detection of core topics, analysis of the relations between the extracted information and topics, and automatic inference of new knowledge, the most efficient knowledge base of the relevant field is created, and plans to apply these to the information knowledge management and service are the core requirements necessary for intellectualization of information. In this paper, the knowledge base, which is a necessary core resource and comprehensive technology for intellectualization of science and technology information, is described and the usability of academic information services using it is evaluated. The knowledge base proposed in this article is an amalgamation of information expression and knowledge storage, composed of identifying code systems from terms to documents, by integrating terminologies, word intelligent networks, topic networks, classification systems, and authority data.

A Process-Centered Knowledge Model for Analysis of Technology Innovation Procedures

  • Chun, Seungsu
    • KSII Transactions on Internet and Information Systems (TIIS)
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    • 제10권3호
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    • pp.1442-1453
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    • 2016
  • Now, there are prodigiously expanding worldwide economic networks in the information society, which require their social structural changes through technology innovations. This paper so tries to formally define a process-centered knowledge model to be used to analyze policy-making procedures on technology innovations. The eventual goal of the proposed knowledge model is to apply itself to analyze a topic network based upon composite keywords from a document written in a natural language format during the technology innovation procedures. Knowledge model is created to topic network that compositing driven keyword through text mining from natural language in document. And we show that the way of analyzing knowledge model and automatically generating feature keyword and relation properties into topic networks.

단어의 자동번역을 위한 의미 네트워크의 통합 지식베이스 (Integrated Knowledge Bases of Semantic Networks for Automatic Translation of Ambiguous Words)

  • Yoo-Jin Moon;Young-Ho Hwang
    • Journal of Information Technology Applications and Management
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    • 제9권2호
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    • pp.71-80
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    • 2002
  • Automatic language translation has greatly advanced due to the increased user needs and Information retrieval in WWW. This paper utilizes the integrated knowledge bases of noun and verb networks for automatic translation of ambiguous words in the Korean sentences, through the selectional restriction relation in the sentences. And this paper presents the method to verify validity of Korean noun semantic networks that are used for the construction of the selectional restriction relation by applying the networks to the syntactic and semantic properties Integration of Korean Noun Networks into the SENKOV system will provide the accurate and efficient knowledge bases for the semantic analysis of Korean NLP.

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산업단지의 경쟁력 제고를 위한 산업집적지의 지식공유 네트워크에 관한 연구 (A Study on the Knowledge-Sharing Networks in Clusters to Enhance the Competitiveness of Industrial Parks)

  • 정종식
    • 지식경영연구
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    • 제2권1호
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    • pp.133-144
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    • 2001
  • Clusters mean geographic concentrations of interconnected companies and institutions in a particular field. Geographic, cultural, and institutional proximity provides companies with special access, closer relationships, better information, powerful incentives, and other advantages that are difficult to tap from a distance. And clusters are the knowledge-sharing networks which are composed of co-existence of related industries and supporting industries, sophisticated demand, sponsor of various exhibitions and events, liaison of peripheries and clusters, liaison of clusters and clusters, and governments' willingness for promoting clusters' development.

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지인 기반의 스마트 지식공유 시스템에 관한 연구 (A Study on Smart Knowledge Sharing System with Friends)

  • 윤원범;박기남;임희석
    • 디지털융복합연구
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    • 제11권2호
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    • pp.279-285
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    • 2013
  • 정보통신망과 컴퓨터 기술의 발전은 수많은 정보 및 지식을 생산해 내는 기반이 되었고, 최근 대중화가 가속화 되고 있는 스마트디바이스는 사용자가 원하는 정보와 지식을 쉽게 획득할 수 있는 도구로 사용되고 있다. 이에 본 논문에서는 인터넷 정보와 소셜네트워크를 활용한 스마트 디바이스 기반의 지식공유 시스템을 제안한다. 제안하는 시스템은 사용자 질의에 대해 인터넷 정보 검색, 축적된 지식 검색, 소셜네트워크 상의 지인 답변 기능으로 구성된다. 제안한 시스템의 효용성 분석을 위하여 사용자 만족도 평가를 실시하였다. 실험결과 스마트디바이스를 이용한 지식공유 시스템이 일반 정보검색엔진에 비해 통계적으로 유의미한 만족도를 나타냈다.

전략네트워크에서 발생하는 학습패턴에 관한 실증연구 (An Empirical Study on The Pattern of Interactive Learning in Strategic Networks)

  • 정종식;김현지
    • 통상정보연구
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    • 제9권4호
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    • pp.3-19
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    • 2007
  • The purpose of this paper is to study the pattern of interactive learning in strategic networks. Interactive learning is defined as the exchange and sharing of knowledge resources conducive to innovation between an innovator firm, its suppliers, and/or its customers. The strength of internal knowledge resources can either hamper or facilitate levels of interactive learning. We assume that more complex innovative activities urge firms to co-ordinate and exchange information between users and producers, which implies a higher level of interactive learning. To test our theoretical claims, we estimated the level of interactive learning of firms in strategic networks with: (1) their customers, (2) their suppliers. Theses analyses allow a comparison of the antecedents of interactive learning of firms participating in strategic networks. Our findings suggest that interactive learning with customers is positively affected by company's capabilities and value-created activities, and with supplies is positively affected by value-created activities and technology innovation centers.

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신경 텐서망을 이용한 컨셉넷 자동 확장 (Automatic Expansion of ConceptNet by Using Neural Tensor Networks)

  • 최용석;이경호;이공주
    • 정보처리학회논문지:소프트웨어 및 데이터공학
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    • 제5권11호
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    • pp.549-554
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    • 2016
  • 컨셉넷은 일반상식을 노드(개념)와 에지(관계)로 표현해 놓은 그래프 형태의 지식 베이스이다. 완전한 지식 베이스를 구축하는 것은 매우 어려운 문제이기 때문에 지식 베이스는 미완결된 형태의 데이터를 담고 있는 경우가 많다. 불완전한 지식을 담고 있는 지식 베이스로부터의 추론 결과는 신뢰하기 어렵기 때문에 지식의 완결성을 높이기 위한 방법이 필요하다. 본 논문에서는 신경 텐서망을 이용하여 컨셉넷의 지식 미완결성 문제를 완화해 보고자 한다. 컨셉넷에서 추출한 사실주장(assertion)을 이용하여 신경 텐서망을 학습시킨다. 학습된 신경 텐서망은 두 개의 개념 정보를 입력으로 받고, 그 두 개념이 특정 관계로 연결될 수 있는지를 나타내는 점수값을 출력한다. 이와 같이 신경 텐서망은 노드들의 연결 차수(degree)를 높여, 컨셉넷의 완결성을 증대시킬 수 있다. 본 연구에서 학습시킨 신경 텐서망은 평가데이터에 대해서 약 87.7%의 정확도를 보였다. 또한 컨셉넷에 연결이 없는 노드 쌍에 대하여 85.01%의 정확도로 새로운 관계를 예측할 수 있었다.

Bayesian Statistical Modeling of System Energy Saving Effectiveness for MAC Protocols of Wireless Sensor Networks: The Case of Non-Informative Prior Knowledge

  • Kim, Myong-Hee;Park, Man-Gon
    • 한국멀티미디어학회논문지
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    • 제13권6호
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    • pp.890-900
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    • 2010
  • The Bayesian networks methods provide an efficient tool for performing information fusion and decision making under conditions of uncertainty. This paper proposes Bayes estimators for the system effectiveness in energy saving of the wireless sensor networks by use of the Bayesian method under the non-informative prior knowledge about means of active and sleep times based on time frames of sensor nodes in a wireless sensor network. And then, we conduct a case study on some Bayesian estimation models for the system energy saving effectiveness of a wireless sensor network, and evaluate and compare the performance of proposed Bayesian estimates of the system effectiveness in energy saving of the wireless sensor network. In the case study, we have recognized that the proposed Bayesian system energy saving effectiveness estimators are excellent to adapt in evaluation of energy efficiency using non-informative prior knowledge from previous experience with robustness according to given values of parameters.