• 제목/요약/키워드: Reasoning System

검색결과 934건 처리시간 0.033초

전문가 대체 시스템에서의 퍼지 추론에 관한 연구 (A Study of Fuzzy Reasoning in Expert System)

  • 김성혁
    • 정보관리학회지
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    • 제7권1호
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    • pp.68-78
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    • 1990
  • 본 연구는 전문가 대체 시스템에서 모호하거나 절대적인 정의가 없는 개념들을 퍼 지 논리를 이용하여 추론해 나가는 과정을 제시하고 있다. 호가실한 정보가 주어졌을 때 전 체적인 퍼지 추론에 어떻게 영향을 미치는가를 검토하였으며, 구체적으로 확률적 추론에 이 용되는 퍼지 추론의 예를 제시하였다.

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Hybrid Case-based Reasoning and Genetic Algorithms Approach for Customer Classification

  • Kim Kyoung-jae;Ahn Hyunchul
    • Journal of information and communication convergence engineering
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    • 제3권4호
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    • pp.209-212
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    • 2005
  • This study proposes hybrid case-based reasoning and genetic algorithms model for customer classification. In this study, vertical and horizontal dimensions of the research data are reduced through integrated feature and instance selection process using genetic algorithms. We applied the proposed model to customer classification model which utilizes customers' demographic characteristics as inputs to predict their buying behavior for the specific product. Experimental results show that the proposed model may improve the classification accuracy and outperform various optimization models of typical CBR system.

베이지안 네트워크 기반 재난 대응 로봇의 탐색 목표 추론 시스템 (A Target Position Reasoning System for Disaster Response Robot based on Bayesian Network)

  • 양견모;서갑호;이종일;이석재;서진호
    • 로봇학회논문지
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    • 제13권4호
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    • pp.213-219
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    • 2018
  • In this paper, we introduce a target position reasoning system based on Bayesian network that selects destinations of robots on a map to explore compound disaster environments. Compound disaster accidents have hazardous conditions because of a low visibility and a high temperature. Before firefighters enter the environment, the robots notify information in advance, such as victim's positions, number of victims, and status of debris of building. The problem of the previous system is that the system requires a target position to operate the robots and the firefighter need to learn how to use the robot. However, selecting the target position is not easy because of the information gap between eyewitness accounts and map coordinates. In addition, learning the technique how to use the robots needs a lot of time and money. The proposed system infers the target area using Bayesian network and selects proper x, y coordinates on the map based on image processing methods of the map. To verify the proposed system, we designed three example scenarios based on eyewetinees testimonies and compared time consumption between human and the system. In addition, we evaluate the system usability by 40 subjects.

퍼지추론을 응용한 회전기계의 진동 진단법 (Vibration Diagnosis Method of Rtating Mchinery Using Fuzzy Reasoning)

  • 전순기;양보석
    • 소음진동
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    • 제6권5호
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    • pp.547-554
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    • 1996
  • Diagnosis is one of the dominant applications of expert systems technology today. Most diagnosis system is apply to if-then rule, and it is called production systems which consist of linguistic data. A new diagnosis method is suggested in this paper, in which the fuzzy reasoning theory is used to diagnosis the rotating machinery. Diagnosis algorithm is made fuzzy reasoned by using linguistic data of fuzziness. Linguistic data for fuzziness was described in fuzzy scale and fuzzy membership function. Then, those lingnistic data have been synthesized and defuzzificated according to every item observed. This system is successfully used for linguistic data in fuzziness of rotating machinery. The results indicate that the realistic application can be built in precision diagnosis system.

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시간논리구조에서 이산사건시스템의 최적화 및 추론 (Optimization and reasoning for Discrete Event System in a Temporal Logic Frameworks)

  • 황형수;정용만
    • 한국지능시스템학회논문지
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    • 제7권2호
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    • pp.25-33
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    • 1997
  • A DEDS is a system whose states change in response to the occurence of events from a predefined event set. In this paper, we consider the optimal control and reasoning problem for Discrete Event Systems(DES) in the Temporal Logic Framework(TEL) which have been recnetly defined. The TLE is enhanced with objective functions(event cost indices) and a measurement space is alos deined. A sequence of event which drive the system form a give initial state to a given final state is generated by minimizing a cost functioin index. Our research goal is the reasoning of optimal trajectory and the design of the optimal controller for DESs. This procedure could be guided by the heuristic search methods. For the heuristic search, we suggested the Stochastic Ruler algorithm, instead of the A algorithm with difficulties as following ; the uniqueness of solutions, the computational complexity and how to select a heuristic function. This SR algorithm is used for solving the optimal problem. An example is shown to illustrate our results.

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Case based Reasoning System with Two Dimensional Reduction Technique for Customer Classification Model

  • Kim, Kyoung-Jae;Ahn, Hyun-Chul
    • 한국정보통신학회:학술대회논문집
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    • 한국해양정보통신학회 2005년도 추계종합학술대회
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    • pp.383-386
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    • 2005
  • This study proposes a case based reasoning system with two dimensional reduction techniques. In this study, vertical and horizontal dimensions of the research data are reduced through hybrid feature and instance selection process using genetic algorithms. We applied the proposed model to customer classification model which utilizes customers' demographic characteristics as inputs to predict their buying behavior for the specific product. Experimental results show that the proposed technique may improve the classification accuracy and outperform various optimized models of typical CBR system.

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The cluster-indexing collaborative filtering recommendation

  • Park, Tae-Hyup;Ingoo Han
    • 한국지능정보시스템학회:학술대회논문집
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    • 한국지능정보시스템학회 2003년도 춘계학술대회
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    • pp.400-409
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    • 2003
  • Collaborative filtering (CF) recommendation is a knowledge sharing technology for distribution of opinions and facilitating contacts in network society between people with similar interests. The main concerns of the CF algorithm are about prediction accuracy, speed of response time, problem of data sparsity, and scalability. In general, the efforts of improving prediction algorithms and lessening response time are decoupled. We propose a three-step CF recommendation model which is composed of profiling, inferring, and predicting steps while considering prediction accuracy and computing speed simultaneously. This model combines a CF algorithm with two machine learning processes, SOM (Self-Organizing Map) and CBR (Case Based Reasoning) by changing an unsupervised clustering problem into a supervised user preference reasoning problem, which is a novel approach for the CF recommendation field. This paper demonstrates the utility of the CF recommendation based on SOM cluster-indexing CBR with validation against control algorithms through an open dataset of user preference.

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전자상거래를 위한 규칙 및 사례기반 추론 에이전트 (Electronic Commerce Using on Case & Rule Based Reasoning Agent)

  • 박진희;허철회;정환묵
    • 한국전자거래학회지
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    • 제8권1호
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    • pp.55-70
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    • 2003
  • With the gradual growth of the electronic commerce various forms of shopping malls are constructed, and their searching methods and function are studied many ways. However, the recent outcome is still inadequate to search for goods for the tastes and demands of customers. To construct the shopping mall on the electronic commerce and help customers with purchasing goods, the efficient interface for the customers to contact the shopping malls should be founded and the customers should be able to search the goods they want. Therefore, in this paper, we designed the Intelligent Integration Agent System (IIAS) using the multi-agent formed by the integration agent which integrates the case based reasoning(CBR) and the rule based reasoning(RBR) and the user agent which manages users' profiles. IIAS performs the rule based reasoning on the subject issue first, then provides the unsatisfying search results from the rule-base reasoning to the customers through the user agent, which enables the search of the goods most similar to the ones that meet the tastes and demands of the customers. That is, the accuracy and the speed has been improved by reasoning with the similarity adjustable integration agent which can pick out the goods of customers wants by modifying the weights of properties according to those of the customers.

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퍼지페트리네트 표현을 기반으로 하는 퍼지추론 (Fuzzy Reasonings based on Fuzzy Petei Net Representations)

  • 조상엽
    • 인지과학
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    • 제10권4호
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    • pp.51-62
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    • 1999
  • 본 논문에서는 규칙기반 전문가시스템의 퍼지 생성규칙을 표현할 수 있는 퍼지페트리네트 표현을 제안한다. 퍼지페트리네트 표현을 기반으로, 전진추론 알고리즘과 후진추론 알고리즘으로 구성된 퍼지 추론 알고리즘을 제안한다. 본 논문이 제안한 알고리즘은 단순히 min과 max 계산만을 하는 기존의 알고리즘과는 달리 퍼지 생성규칙의 전제 부와 결론 부에 퍼지 개념의 유무에 따라 적절한 믿음 값 평가 함수을 사용하여 보다 더 인간적인 추론을 한다. 전진추론 알고리즘은 유한한 방향성 나무인 도달나무로 표현할 수 있다. 후진추론 알고리즘은 목표노드에서 시작노드까지의 후진추론 통로를 구한 후에 믿음 값 평가함수를 이용하여 목표노드의 믿음 값을 구한다.

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가중 퍼지 페트리네트를 이용한 가중 퍼지 후진추론 (Weighted Fuzzy Backward Reasoning Using Weighted Fuzzy Petri-Nets)

  • 조상엽;이동은
    • 인터넷정보학회논문지
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    • 제5권4호
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    • pp.115-124
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    • 2004
  • 본 논문에서는 가중 퍼지 페트리네트에 기반을 둔 규칙기반시스템을 위한 가중 퍼지 후진추론 알고리즘을 제안한다. 규칙기반시스템에 있는 퍼지 생성규칙은 가중 퍼지 페트리네트로 모형화된다. 여기에서 퍼지 생성규칙에 나타나는 퍼지 명제의 진리값과 규칙의 확신도는 퍼지 숫자로 표현한다. 그리고 규칙에 나타나는 퍼지 명제의 가중값도 퍼지 숫자로 표현하다. 제안한 가중 퍼지 후진추론 알고리즘은 목표노드에서 초기노드까지 후진추론 통로를 생성한 후 목표노드의 확신도를 계산한다. 우리가 제안한 알고리즘은 규칙기반시스템이 더 유연하고 사람과 같은 방법으로 가중 퍼지 후진추론을 하는 것을 가능하게 한다.

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