• 제목/요약/키워드: Intelligent Decision

검색결과 917건 처리시간 0.027초

지능시스템의 내배엽성 모델링 : 지능적 카드 게임경기자 (Endomorphic Modeling of Intelligent Systems : Intelligent Card Game Players)

  • 김영광;이장세;지승
    • 한국정보과학회논문지:소프트웨어및응용
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    • 제26권12호
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    • pp.1507-1518
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    • 1999
  • 본 논문은 제어대상체의 지식을 이용하여 적절한 의사결정을 내리거나 또는 지속적으로 변화하는 주변환경에 적응해 나갈 수 있는 지능시스템 설계를 위한 내배엽성 모델링 방법론을 제시한다. 이러한 지능적 내배엽성 시스템은 의사결정 모델, 지식기반의 내부모델, 그리고 내부모델의 구축모델 등을 기반으로 달성될 수 있다. 학습기능의 모델링을 위하여 수정된 귀납추론 방법과 적응형 전문가 시스템 방법이 제안되었다. 제시된 방법론은 지능적 학습 및 의사결정 기능을 갖춘 지능적 카드경기자 모델링의 예를 통하여 그 가능성을 검증하였다. Abstract This paper presents an endomorphic modeling methodology for designing intelligent systems that can determine by itself using its knowledge of the world and adapt itself to continuously changing circumstances. We have developed such an intelligent endomorphic system by integrating the decision making component and knowledge based internal model with internal model construction model. Learning capabilities are established using the modified inductive reasoning and adaptive expert system techniques we developed. Proposed methodology has been successfully applied to a design of intelligent card game players capable of supporting the intelligent learning and decision making.

가상현실 분신과 웹 의사결정지원 개념에 입각한 인터넷쇼핑몰 설계 및 구현에 관한 연구 (Design and Implementation of Internet Shopping Mall by Using Virtual Reality-Driven Avatar and Web Decision Support System)

  • 이건창;정남호
    • 한국지능정보시스템학회:학술대회논문집
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    • 한국지능정보시스템학회 1999년도 춘계공동학술대회-지식경영과 지식공학
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    • pp.361-371
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    • 1999
  • This paper is concerned with designing and implementing the Internet shopping mall by using virtual reality-driven avatar and web decision support system. Traditionally, the Internet shopping mall has been designed based on the combination of several hyperlinks, images, and texts. However, this sort of approach results in a lower performance because possible customers cannot make more accurate shopping decisions. To overcome this kind of pitfalls facing the current Internet shopping malls, we propose using a combination of virtual reality and web DSS. The main virtues of our proposed approach to designing the Internet shopping mall are as follows: First, the virtual reality technique is emerging as one of alternative guaranteeing a sense of reality for customers part and facilitating the complex process of shopping decision makings. Especially, the avatar, which is an artificially designed man working on the Internet, can make easy and absorbing the Internet shopping-related decision making processes. Second, the web DSS approach can provide an effective decision support mechanism for customers. Especially, we design a set of intelligent agents for the proposed web DSS. Experimental results with an illustrative example showed that our proposed approach can yield a new Internet shopping mall paradigm with which customers can benefit from a high level of decision support functions.

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거래가격 결정을 위한 에이전트의 의사결정규칙에 대한 연구 (Decision Rules of Intelligent Agents for Purchase Pricing Decision)

  • 주석진
    • 한국정보시스템학회지:정보시스템연구
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    • 제14권2호
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    • pp.55-74
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    • 2005
  • In order to purchase a product cheaper, a lot of customers have been trying to search one or more marketplaces. Ever since the commercial use of the Internet, several types of marketplaces have been operating successfully on the Internet. Some of them are online shopping malls, auction markets, and group-buying markets. They have the price settlement mechanisms of their own. Online shopping malls where many stores are located support a customer to purchase the product that matches his/her requests such as price, function, design, and so forth. In online auction market, a customer can buy the product by making bids sequentially and competitively until a final price is reached. In online group-buying market, a customer can purchase the product by aggregating the orders from several buyers so that cheaper prices can be negotiated. The cheaper customers could purchase the same product item, the more satisfied they would be. However, it is very difficult for the customer to determine the marketplace to purchase, considering different kinds of marketplaces at the same time. Even though the purchasing price is cheapest in one marketplace, it is very difficult for customers to convince it the cheapest for all marketplaces. Therefore, rules and methods have been developed for purchase decision making in multiple marketplaces to reach the optimal purchase decision as a whole. They can maximize customer's utility and resolve the conflicts with other marketplaces through multi-agent negotiation.

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패턴의 변화를 가지는 연속성 데이터를 위한 스트리밍 의사결정나무 (Streaming Decision Tree for Continuity Data with Changed Pattern)

  • 윤태복;심학준;이지형;최영미
    • 한국지능시스템학회논문지
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    • 제20권1호
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    • pp.94-100
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    • 2010
  • 데이터 마이닝(Data Mining)은 환경으로부터 수집된 데이터에서 패턴을 추출하고 의미 있는 정보를 발견하기 위하여 주로 사용된다. 하지만, 기존의 방법은 데이터의 수집이 완료된 상태에서 분석하는 것을 기반으로 하고 있으며, 시간의 흐름에 따른 패턴의 변화를 반영하기 어렵다. 본 논문은 연속성(Continuity data), 대량성(Large scale) 그리고 패턴의 가변성(Changed pattern)과 같은 특성을 가지는 스트림 데이터(Stream Data)의 분석을 위한 스트리밍 의사결정 나무(Streaming Decision Tree : SDT) 방법을 소개한다. SDT는 연속적으로 발생하는 데이터를 블록으로 정의하고, 각 블록은 의사결정나무 학습 방법을 이용하여 규칙을 추출한다. 추출된 규칙은 발생 시간, 빈도 그리고 모순 등을 고려하여 결합하였다. 실험에서는 시계열 데이터를 이용하여 분석하였고, 적절한 결과를 확인하였다.

Multi-Frame Face Classification with Decision-Level Fusion based on Photon-Counting Linear Discriminant Analysis

  • Yeom, Seokwon
    • International Journal of Fuzzy Logic and Intelligent Systems
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    • 제14권4호
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    • pp.332-339
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    • 2014
  • Face classification has wide applications in security and surveillance. However, this technique presents various challenges caused by pose, illumination, and expression changes. Face recognition with long-distance images involves additional challenges, owing to focusing problems and motion blurring. Multiple frames under varying spatial or temporal settings can acquire additional information, which can be used to achieve improved classification performance. This study investigates the effectiveness of multi-frame decision-level fusion with photon-counting linear discriminant analysis. Multiple frames generate multiple scores for each class. The fusion process comprises three stages: score normalization, score validation, and score combination. Candidate scores are selected during the score validation process, after the scores are normalized. The score validation process removes bad scores that can degrade the final output. The selected candidate scores are combined using one of the following fusion rules: maximum, averaging, and majority voting. Degraded facial images are employed to demonstrate the robustness of multi-frame decision-level fusion in harsh environments. Out-of-focus and motion blurring point-spread functions are applied to the test images, to simulate long-distance acquisition. Experimental results with three facial data sets indicate the efficiency of the proposed decision-level fusion scheme.

의미웹에서 한정도메인 제약식을 이용한 지능형 쇼핑에이전트 : CD 쇼핑몰의 경우를 중심으로 (Intelligent Shopping Agents Using Finite Domain Constraint under Semantic Web)

  • 김학진;이명진
    • 지능정보연구
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    • 제12권4호
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    • pp.73-90
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    • 2006
  • 인터넷을 통한 온라인 구매에 소비자들은 현 탐색엔진 및 웹 구조의 한계와 의사결정 도구의 부족으로 많은 어려움을 겪는다. 이 논문은 인터넷 쇼핑의 상황에서 소비자가 결정해야 하는 의사결정 문제를 상정하고 지능형 에이전트 구축을 통하여 그 의사결정 과정을 돕는 의사결정의 틀을 제시한다. 이 에이전트는 의미 웹 환경에서 한정도메인 제약식 프로그래밍을 추론엔진으로 삼아 의사결정을 돕는다. 이를 통해 의미웹과 제약식 프로그래밍의 두 기술의 결합이 인터넷 쇼핑 시 소비자가 겪게 되는 어려움을 어떻게 해결하는지를 제시한다.

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A Study on Construction Method of AI based Situation Analysis Dataset for Battlefield Awareness

  • Yukyung Shin;Soyeon Jin;Jongchul Ahn
    • 한국컴퓨터정보학회논문지
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    • 제28권10호
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    • pp.37-53
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    • 2023
  • 인공지능에 기반한 지능형 지휘통체체계는 복잡하고 방대한 전장정보와 전술 데이터들을 학습모델을 통해 자동으로 융합 및 추출하여 전장상황을 분석한다. 지휘관은 지능형 지휘통제체계의 상황분석 결과를 제공받아 전장인식이 가능하여 의사결정을 지원할 수 있다. 의사결정지원에 특화된 결과를 지휘관에게 제공하기 위해서는 인공지능을 학습하기 위한 실 전장상황과 유사한 전장상황분석 데이터셋 생성이 필요하다. 본 논문은 기존 선행연구인 '인공지능 기반 전장상황분석을 위한 가상 전장상황 데이터 셋 생성 연구'의 다음 단계의 데이터셋 구축 방법 연구로 지휘관의 의사결정지원 및 미래 전장인식을 위해 최종적인 전장상황분석 결과에 필요한 데이터셋을 생성하는 방안에 대해 제안하였다. 전장상황 분석용 학습 데이터셋 생성도구 SW를 설계 및 구현하였고, 구현한 SW를 이용하여 데이터 레이블 작업을 진행하였다. Siamese Network 학습모델을 이용하여 구축한 데이터셋을 입력하고, 후처리 알고리즘을 활용한 출력 결과를 도출하여 생성한 데이터셋을 검증하였다.

A knowledge Conversion Tool for Expert Systems

  • Kim, Jin-S.
    • International Journal of Fuzzy Logic and Intelligent Systems
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    • 제11권1호
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    • pp.1-7
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    • 2011
  • Most of expert systems use the text-oriented knowledge bases. However, knowledge management using the knowledge bases is considered as a huge burden to the knowledge workers because it includes some troublesome works. It includes chasing and/or checking activities on Consistency, Redundancy, Circulation, and Refinement of the knowledge. In those cases, we consider that they could reduce the burdens by using relational database management systems-based knowledge management infrastructure and convert the knowledge into one of easy forms human can understand. Furthermore they could concentrate on the knowledge itself with the support of the systems. To meet the expectations, in this study, we have tried to develop a general-purposed knowledge conversion tool for expert systems. Especially, this study is focused on the knowledge conversions among text-oriented knowledge base, relational database knowledge base, and decision tree.

Integrated Method for Knowledge Discovery in Databases

  • Hong Chung;Park, Kyoung-Oak;Chung, Hwan-Mook
    • 한국지능시스템학회:학술대회논문집
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    • 한국퍼지및지능시스템학회 1998년도 The Third Asian Fuzzy Systems Symposium
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    • pp.122-127
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    • 1998
  • This paper suggests an integrated method for discovering knowledge from a large database. Our approach applies an attribute-oriented concept hierarchy ascension technique to extract generalized data from actural data in databases, induction of decision trees to measure the value of information, and knowledge reduction of rough set theory to remove dispensable attributes and attribute values. The integrated algorithm first reduce the size of database for the concept generalization, reduces the number of attributes by way of elimination condition attributes which have little influence on decision attribute, and finally induces simplified decision rules removing the dispensable attribute values by analyzing the dependency relationships among the attributes.

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The Analysis of Significance of the Reusability Decision Metrics using Rough Set

  • Park, Wan-Kyoo;Na, Young-Nam;Lee, Sung-Joo;Chung, Hwan-Mook
    • 한국지능시스템학회:학술대회논문집
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    • 한국퍼지및지능시스템학회 1998년도 The Third Asian Fuzzy Systems Symposium
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    • pp.302-307
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    • 1998
  • Software reuse is a well-known method to increase the productivity of software, nevertheless it is not employed well on real world. One of the important factors that this problem occurs is programers' distrust in the existing components. Therefore in this paper, to increase the reliability of reusability decision, we proposed a method which can analyze significance of the reusability decision metrics using Rough Set.

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