• 제목/요약/키워드: Automated Knowledge Acquisition

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An Automated Knowledge Acquisition Tool Based on the Inferential Modeling Technique

  • Chan, Christine W.;Nguyen, Hanh H.
    • 대한전자공학회:학술대회논문집
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    • 대한전자공학회 2002년도 ITC-CSCC -2
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    • pp.1165-1168
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    • 2002
  • Knowledge acquisition is the process that extracts the required knowledge from available sources, such as experts, textbooks and databases, for incorporation into a knowledge-based system. Knowledge acquisition is described as the first step in building expert systems and a major bottleneck in the efficient development and application of effective knowledge based expert systems. One cause of the problem is that the process of human reasoning we need to understand for knowledge-based system development is not available for direct observation. Moreover, the expertise of interest is typically not reportable due to the compilation of knowledge which results from extensive practice in a domain of problem solving activity. This is also a problem of modeling knowledge, which has been described as not a problem of accessing and translating what is known, but the familiar scientific and engineering problem of formalizing models for the first time. And this formalization process is especially difficult for knowledge engineers who are often faced with the difficult task of creating a knowledge model of a domain unfamiliar to them. In this paper, we propose an automated knowledge acquisition tool which is based on an implementation of the Inferential Modeling Technique. The Inferential Modeling Technique is derived from the Inferential Model which is a domain-independent categorization of knowledge types and inferences [Chan 1992]. The model can serve as a template of the types of knowledge in a knowledge model of any domain.

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지식근로자의 상황정보를 이용한 자율적 지식획득 방법론 : 대화형 지식의 획득을 위한 차세대형 지식경영시스템 (Autonomous Knowledge Acquisition Methodology using Knowledge Workers' Context Information : Focused on the Acquisition of Dialogue-Based Knowledge for the Next Generation Knowledge Management Systems)

  • 유기동
    • 지식경영연구
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    • 제9권4호
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    • pp.65-75
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    • 2008
  • Knowledge workers' workload to register knowledge can cause quality defects in the quality as well as the quantity of knowledge that must be accumulated in a knowledge management system(KMS). To enhance the availability of a KMS by acquiring more quality-guaranteed knowledge, autonomous knowledge acquisition which outdoes the automated acquisition must be initiated. Adopting the capabilities of context-awareness and inference in the field of context-aware computing, this paper intends to autonomously identify and acquire knowledge from knowledge workers' daily lives. Based on knowledge workers' context information, such as location, identification, schedule, etc, a methodology to monitor, sense, and gather knowledge that resides in their ordinary discussions is proposed. Also, a prototype systems of the context-based knowledge acquisition system(CKAS), which autonomously dictates, analyzes, and stores dialogue-based knowledge is introduced to prove the validity of the proposed concepts. This paper's methodology and prototype system can support relieving knowledge workers' burden to manually register knowledge, and hence provide a way to accomplish the goal of knowledge management, efficient and effective management of qualified knowledge.

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음성형 지식의 자율적 관리 및 서비스를 위한 애플리케이션 스위트 개발 (Application Suite for Autonomous Management and Service of Verbal Knowledge)

  • 유기동
    • 한국전자거래학회지
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    • 제21권1호
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    • pp.79-90
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    • 2016
  • 문제 상황에 처한 사용자가 정보기술 역량을 활용하여 언제 어디서든 문제의 해결에 필요한 정보 및 지식을 완전히 자동화된 방식으로 제공받을 수 있도록 하는 자율적 지식서비스는, 사용자의 지적 탐구욕구의 증가와 더불어 정보기술 인프라의 고도화에 따라 더욱 많은 관심을 받고 있다. 기존의 지식서비스는, 지식의 획득과 분배 과정을 모두 다루는 것이 아닌, 지식의 분배 과정에 편향되어 집중되는 문제점을 갖고 있어, 사용자에게 분배되는 지식의 품질요건에 입각한 지식의 획득이 이루어지지 못한다. 따라서 본 연구는 지식이 획득되는 단계부터 사용자에게 분배되는 단계까지 일련의 과정을 완전 자동화하는 자율적 지식서비스의 프레임워크를 제시한다. 또한 이를 구성하는 요소기술을 도출 및 명세하여, 자율적 지식서비스의 프로토타입 시스템인 ASKs(Application Suite for Knowledge Service)를 개발한다. 본 연구를 통해, 특정 기술에 국한되어 정의되는 지식서비스의 범위를 확장하여, 보다 사용자 친화적이며 현실적 적용가능성이 높은 지식서비스의 구현이 촉진될 수 있다.

Company Name Discrimination in Tweets using Topic Signatures Extracted from News Corpus

  • Hong, Beomseok;Kim, Yanggon;Lee, Sang Ho
    • Journal of Computing Science and Engineering
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    • 제10권4호
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    • pp.128-136
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    • 2016
  • It is impossible for any human being to analyze the more than 500 million tweets that are generated per day. Lexical ambiguities on Twitter make it difficult to retrieve the desired data and relevant topics. Most of the solutions for the word sense disambiguation problem rely on knowledge base systems. Unfortunately, it is expensive and time-consuming to manually create a knowledge base system, resulting in a knowledge acquisition bottleneck. To solve the knowledge-acquisition bottleneck, a topic signature is used to disambiguate words. In this paper, we evaluate the effectiveness of various features of newspapers on the topic signature extraction for word sense discrimination in tweets. Based on our results, topic signatures obtained from a snippet feature exhibit higher accuracy in discriminating company names than those from the article body. We conclude that topic signatures extracted from news articles improve the accuracy of word sense discrimination in the automated analysis of tweets.

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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지식기반 (Knowledge-based) 질의응답시스템: 사실 자료 (Faet Database)구축을 중심으로 (A Knowledge-based Question-Answering System: With A View To Constructing A Fact Database)

  • 신효필
    • 인지과학
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    • 제13권1호
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    • pp.41-51
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    • 2002
  • 본 논문에서는 질의어 응답시스템에 있어 핵심이 되는 사실 자료 (Fact Database) 구축의 관점에서 지식기반 방법의 중요성과 그 과정에 대해서 논의한다. 지식기반 질의어 시스템은 기존의 이용가능한 자연언어처리의 자원-형태소, 구문, 의미분석 등-과 온톨로지라는 개념구조망을 이용하는 시스템으로 이 개념을 현실세계의 사실 자료와 연결시켜 개념구조가 지닌 속성과 값의 확장을 통해 그 가능한 응답을 유도해 내는 시스템이다. 이 시스템 구축에 있어 실제 세계의 자료를 수집하고 가공하고 개념화하는 과정은 이 시스템의 성패를 좌우하는 핵심작업으로 아직은 완전히 자동화되기 어렵다. 그러나 지식기반에 기초한 방법은 응용시스템의 질적 향상이라는 측면에서 진지하게 논의될 필요가 있다. 이 글에서는 사실 자료 구축의 관점에서 이런 작업들이 어떻게 행해져야 하는지 그리고 그 방법론이 지닌 특징 및 문제점에 대해 논의한다.

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코스닥 신규상장 기업의 특성에 따른 재무분석가의 이익예측력에 관한 연구 (The Effect of firm-specifics on forecast accuracy: The case of IPO firms in Korea)

  • 전성일;이기세
    • 지식경영연구
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    • 제13권5호
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    • pp.1-13
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    • 2012
  • This study investigates whether firm-specifics affect forecast accuracy using a sample of IPO firms in Korea. The forecasts accuracy can be differentiated depending on firm specifics. This study uses the foreign investor, intangible asset and patents as firm specifics. The analysts are divided into two groups by firm-specifies(foreign investors ratio of low and high, intangible asset ratio of low and high, patents of acquisition) and also examine the degree of analysts's forecast accuracy over the two groups. and examined the degree of the analysts' forecast accuracy over the two groups. The sample is composed of 460 IPO (Initial Public Offering) firms listed on the KOSDAQ (Korean Securities Dealers Automated Quotations) for the period from 2001 to 2009. The analysts' forecast accuracy is much higher in the group of high foreign investor but is lower in the group of high intangible assets and patents. Also, the group of high foreign investors respectively interacts with group of high intangible assets ratio and group of patents of acquisition. In result, The analysts' forecast accuracy is higher because foreign investor is decreased information asymmetry. This study compares suggests that patents may be helpful for predicting forecast accuracy.

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IoT 및 도메인 지식 기반 교량 케이블 모니터링 자동화 시스템 구축 연구 (Development of Autonomous Cable Monitoring System of Bridge based on IoT and Domain Knowledge)

  • 민지영;박영수;박태림;길윤섭;진승섭
    • 한국구조물진단유지관리공학회 논문집
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    • 제28권3호
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    • pp.66-73
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    • 2024
  • 사장교에서 케이블 부재는 하중을 전달하는 가장 중요한 부재 중 하나이다. 따라서 사장교의 구조적 상태 및 안정성을 평가하기 위해서는 케이블의 상태를 파악하기 위해 지속적인 모니터링을 수행하는 것이 중요하다. 이러한 모니터링 시스템은 케이블에 부착된 가속도계를 통해 진동을 측정하고 이를 토대로 케이블 장력과 감쇠비를 추정하고, 이를 토대로 케이블의 상태 평가의 기초자료로 활용한다. 이러한 상시 모니터링 시스템은 지속적으로 진동 데이터를 측정하기 때문에 데이터 수집 시스템을 포함한 하드웨어가 안정적이고 전력 효율성이 높아야 한다. 또한 지속적으로 생성되는 대량의 진동 신호들을 사람의 개입을 최소화하며 안정적으로 분석할 수 있는 자율모니터링 시스템이 요구된다. 본 연구에서는 IoT를 활용한 도메인 지식 기반 자율 모니터링 시스템을 개발하였다. 케이블 자율 모니터링 시스템을 구현하기 위한 가장 중요한 요소는 케이블의 장력과 감쇠비의 추정을 위한 진동 신호의 주파수 영역 내 발생하는 첨두의 자동 추정이다. 본 연구에서는 도메인 지식 기반 첨두 자동 추정 알고리즘을 데이터 수집 및 On-Board Processing이 가능한 IoT 시스템에 내장하여 IoT 센서 단에서 Edge computing이 가능한 효율적인 IoT 자율 모니터링 시스템을 구현하였다. 개발된 자율 모니터링 시스템을 국내 사장교에 설치하여 장기간 현장 운영 성능을 평가하였으며, 그 결과 장기 데이터 수신률, 장력 추정의 정확성, 효율성 측면에서 기존 시스템과 비교하여 작동 성능을 확인하고 검증하였다.

Speeding up the KLT Tracker for Real-time Image Georeferencing using GPS/INS Data

  • Tanathong, Supannee;Lee, Im-Pyeong
    • 대한원격탐사학회지
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    • 제26권6호
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    • pp.629-644
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    • 2010
  • A real-time image georeferencing system requires all inputs to be determined in real-time. The intrinsic camera parameters can be identified in advance from a camera calibration process while other control information can be derived instantaneously from real-time GPS/INS data. The bottleneck process is tie point acquisition since manual operations will be definitely obstacles for real-time system while the existing extraction methods are not fast enough. In this paper, we present a fast-and-automated image matching technique based on the KLT tracker to obtain a set of tie-points in real-time. The proposed work accelerates the KLT tracker by supplying the initial guessed tie-points computed using the GPS/INS data. Originally, the KLT only works effectively when the displacement between tie-points is small. To drive an automated solution, this paper suggests an appropriate number of depth levels for multi-resolution tracking under large displacement using the knowledge of uncertainties the GPS/INS data measurements. The experimental results show that our suggested depth levels is promising and the proposed work can obtain tie-points faster than the ordinary KLT by 13% with no less accuracy. This promising result suggests that our proposed algorithm can be effectively integrated into the real-time image georeferencing for further developing a real-time surveillance application.

유전 알고리즘기반 퍼지 모델을 이용한 모터 고장 진단 자동화 시스템의 구현 (Implementation of Automated Motor Fault Diagnosis System Using GA-based Fuzzy Model)

  • 박태근;곽기석;윤태성;박진배
    • 대한전기학회:학술대회논문집
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    • 대한전기학회 2005년도 심포지엄 논문집 정보 및 제어부문
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    • pp.24-26
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    • 2005
  • At present, KS-1000 which is one of a commercial measurement instrument for motor fault diagnosis has been used in industrial field. The measurement system of KS-1000 is composed of three part : harmonic acquisition, signal processing by KS-1000 algorithm, diagnosis for motor fault. First of all, voltage signal taken from harmonic sensor is analysed for frequency by KS-1000 algorithm. Then, based on the result values of analysis skilled expert makes a judgment about whether motor system is the abnormality or degradation state. But the expert system such a motor fault diagnosis is very difficult to bring the expectable results by mathematical modeling due to the complexity of judgment process. In this reason, we propose an automation system using fuzzy model based on genetic algorithm(GA) that builded a qualitative model of a system without priori knowledge about a system provided numerical input output data.

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