• Title/Summary/Keyword: 평가사례기반추론

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A Recommender System using Case-based Reasoning with Implicit Rating Information (묵시적 평가정보를 이용한 사례기반추론 추천시스템)

  • 김병찬;옥수호;우용태
    • Proceedings of the Korean Information Science Society Conference
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    • 2002.04b
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    • pp.139-141
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    • 2002
  • 본 논문에서는 인터넷 컨텐츠 사이트에서 개인별로 컨텐츠를 효과적으로 추천하기 위한 개인화 시스템모델을 제안하였다. 제안한 모델은 묵시적인 평가정보를 이용한 사례기반추론 기법으로서 협동적필터링 기법과 달리 유사집단의 평가정보를 이용하지 않고 개인별 속성에 대한 가중치와 속성 값을 이용하여 추천하는 기법이다. 이 기법은 각 사용자의 상품 추매 속성을 추천에 반영할 수 있는 장점이 있으며 사용자 프로파일을 이용하여 개인화된 추천이 가능하다. 제안한 기법이 Recall, Precision, F-measure의 평가 방법을 통해 실험한 결과 협동적필터링 기법 보다 모든 부분에서 더 좋은 결과가 나왔음을 볼 수 있다. 그러므로 제안 시스템이 유사 사용자의 평가정보를 이용한 협동적필터링 기법보다 효율적인 개인화 전략이 가능하다고 말 수 있다. 본 제안 모델을 이용하여 일대일 마케팅을 위한 eCRM 시스템 개발이 가능하리라 예상된다.

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A Study on the Selection Model of Retaining Wall Methods Using Case-Based Reasoning (사례기반추론을 이용한 흙막이공법 선정모델에 관한 연구)

  • Kim Jae-Yeob;Park U-Yeol;Kim Gwang-Hee;Kim Joong-Koo
    • Korean Journal of Construction Engineering and Management
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    • v.5 no.5 s.21
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    • pp.76-83
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    • 2004
  • There is a greater importance for underground work designed and built in the urban areas when it comes to considering the cost-effectiveness and the period of construction commensurate with an increasing trend of skyscrapers. At this stage of underground work, it's extremely necessary to choose a proper earth retaining method. However, a frequent change order during construction happens in Korea where different performers design and construct separately, so there is a great possibility for the change order to affect the aspects of construction cost and period which normally define the outcome of construction work. Therefore, the study has suggested the rational retaining wall method by developing the case-based reasoning model as stool to choose a proper retaining wall method applied at the stage of selecting the earth retaining method. Applying the 'CBR Model' developed in the study to the designing and developing stages of the earth retaining work will contribute to the successful outcomes by decreasing any changes of design from implementing the earth retaining work.

A Study on Risk Analysis Methode Using Case-Based Reasoning (사례기반 추론을 이용한 위험분석방법 연구)

  • Lee, Hyeak-Ro;Ahn, Seong-Jin
    • Journal of the Korea Institute of Information Security & Cryptology
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    • v.18 no.4
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    • pp.135-141
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    • 2008
  • The risk enlargement of cyber infringement and hacking is one of the latest hot issues. To solve the problem, the research for Security Risk Analysis, one of Information Security Technique, has been activating. However, the evaluation for Security Risk Analysis has many burdens; evaluation cost, long period of the performing time, participants’ working delay, countermeasure cost, Security Management cost, etc. In addition, pre-existing methods have only treated Analyzing Standard and Analyzing Method, even though their scale is so large that seems like a project. the Analyzing Method have no option but to include assessors’ projective opinion due to the mixture using that both qualitative and quantitative method are used for. Consequently, in this paper, we propose the Security Risk Analysis Methodology which manage the quantitative evaluation as a project and use Case-Based Reasoning Algorithm for define the period of the performing time and for select participants.

The Method on Value Evaluation of IS using CBR (CBR을 활용한 정보시스템의 가치평가 방법에 관한 연구)

  • Park Ki-Nam;Kim Jong-Weon
    • Proceedings of the Korea Society for Industrial Systems Conference
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    • 2006.05a
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    • pp.63-73
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    • 2006
  • 대부분의 CEO들은 대규모 투자가 선행되는 정보시스템의 화폐적 가치에 확신을 가지고 싶어 한다. 지금까지 MIS 연구자들은 정보시스템의 조직적 성과에 관한 여러 가지 간접적인 증거를 보여주었으나 경영자들이 요구하는 정보시스템에 대한 화폐적 확신을 주는데 실패하였다. 본 연구는 최근 각 기업들이 도입하고 있는 BSC의 성과지표 중 정보시스템 관련 지표를 활용하여 기업의 계량적 및 비계량적 성과측정을 활용함으로써 조직의 정보시스템 성과를 화폐가치로 환산할 수 있는 방법을 제시하고자 한다. 이때 사례기반추론 시스템을 활용하면 사례베이스로부터 유사사례를 도출하고 이를 통하여 정보시스템 도입에 필요한 주요 정보를 추론할 수 있게 되어 조직에서 도입할 정보시스템의 잠재적 화폐가치를 어느 정도 가늠할 수 있다. 본 연구는 정보시스템의 화폐적 가치분석을 위하여 실물옵션 가격결정모형을 활용하였고 객관적 화폐가치 추론을 위한 웹 사이트 구축을 목표로 한다.

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Intelligent Injection Mold Process Planning System Using Case-Based Reasoning (사례기반추론을 이용한 사출금형 공정계획시스템)

  • 최형림;김현수;박용성
    • Journal of Intelligence and Information Systems
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    • v.8 no.1
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    • pp.159-173
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    • 2002
  • The goal of this research is to develop of an intelligent injection mold process planning system using Case-Based Reasoning. Injection mold process planning is the planning of manufacturing process to produce an injection mold economically and efficiently. Automation of the process planning is required because the problems of handmade scheduling, the difficulty of training experts for process planning, the lack of domain experts, the spread of CAD/CAM system and flexible manufacturing. This research uses Case-Based Reasoning because the injection mold process planning is devised variously and complicatedly, but the process planning of similar injection molds is very similar to each other. The system that is developed by this research uses cases that are collected in a case base when planning the process of new injection mold. New injection mold process planning is devised by retrieving a case that was made from the most similar injection mold. This research presented and composed the cases of injection mold process planning, and devised a method of search and adaptation, and developed an intelligent injection mold process planning system with the experimental results.

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Development of a Book Recommender System for Internet Bookstore using Case-based Reasoning (사례기반 추론을 이용한 인터넷 서점의 서적 추천시스템 개발)

  • Lee, Jae-Sik;Myoung, Hun-Sik
    • The Journal of Society for e-Business Studies
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    • v.13 no.4
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    • pp.173-191
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    • 2008
  • As volumes of electronic commerce increase rapidly, customers are faced with information overload, and it becomes difficult for them to find necessary information and select what they need. In this situation, recommender systems can help the customers search and select the products and services they need more conveniently. These days, the recommender systems play important roles in customer relationship management. In this research, we develop a recommender system that recommends the books to the customers of Internet bookstore. In previous researches on recommender systems, collaborative filtering technique has been often employed. For the collaborative filtering technique to be used, the rating scores on books given by previous purchasers have to be collected. However, the collection of rating scores is not an easy task in reality. Therefore, in this research, we employed case-based reasoning technique that can work only with the book purchase history of customers. The accuracy of recommendation of the resulting book recommender system was about 40% on the level 3 classification code.

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Case-based Optimization Modeling (사례 기반의 최적화 모형 생성)

  • 장용식;이재규
    • Journal of Intelligence and Information Systems
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    • v.8 no.2
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    • pp.51-69
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    • 2002
  • In the supply chain environment on the web, collaborative problem solving and case-based modeling has been getting more important, because it is difficult to cope with diverse problem requirements and inefficient to manage many models as well. Hence, the approach on case-based modeling is required. This paper provides a framework that generates a goal model based on multiple cases, modeling knowledge, and forward chaining and it also develops a search algorithm through sensitivity analysis to reduce the modeling effort.

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최적화 에이전트를 위한 사례기반의 자동 모형화

  • 장용식;이재규
    • Proceedings of the Korea Inteligent Information System Society Conference
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    • 2002.05a
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    • pp.323-332
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    • 2002
  • 전자상거래와 같은 분산컴퓨팅환경에서는, 의사결정을 위해 협동적 문제해결과 사례기반의 자동 모형화가 더욱 중요시 되고 있다. 왜냐하면, 문제요구는 다양하고 이에 대응하기 위해 모든 모형을 준비한다는 것은 실제로 어려우며, 모형의 저장 및 관리관점에서도 비효율적이기 때문이다. 이에 따라, 최적화 에이전트 기반의 자동 모형화에 의한 문제해결을 위한 연구의 필요성이 인식되고 있다. 본 연구에서는 최적화 모형에 대한 지식이 부족한 사용자 수준의 XML 표현과 같은 문제요구를 이해하고, 최적화 모형 사례로부터 목표모형을 탐색하는 최적화 에이전트를 위한 사례기반 자동 모형화의 프레임웍을 제시한다. 이를 위해, 자동 모형화 지식의 표현과 목표모형 탐색을 위한 전방향 추론절차를 제시한다 최적화 에이전트는 모형화 노력을 줄이기 위해서, 민감도분석을 통해 성능이 평가된 탐색 알고리즘을 사용한다.

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A Dynamic feature Weighting Method for Case-based Reasoning (사례기반 추론을 위한 동적 속성 가중치 부여 방법)

  • 이재식;전용준
    • Journal of Intelligence and Information Systems
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    • v.7 no.1
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    • pp.47-61
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    • 2001
  • Lazy loaming methods including CBR have relative advantages in comparison with eager loaming methods such as artificial neural networks and decision trees. However, they are very sensitive to irrelevant features. In other words, when there are irrelevant features, larry learning methods have difficulty in comparing cases. Therefore, their performance can be degraded significantly. To overcome this disadvantage, feature weighting methods for lazy loaming methods have been studied. Most of the existing researches, however, were focused on global feature weighting. In this research, we propose a new local feature weighting method, which we shall call CBDFW. CBDFW stores classification performance of randomly generated feature weight vectors. Then, given a new query case, CBDFW retrieves the successful feature weight vectors and designs a feature weight vector fur the query case. In the test on credit evaluation domain, CBDFW showed better classification accuracy when compared to the results of previous researches.

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A Study on Developing a Case-based Forecasting Model for Monthly Expenditures of Residential Building Projects (사례기반추론을 이용한 공동주택의 월간투입비용 예측모델 개발에 관한 연구)

  • Yi, June-Seong
    • Korean Journal of Construction Engineering and Management
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    • v.7 no.2 s.30
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    • pp.138-147
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    • 2006
  • The objective of this research is to explore a more precise forecasting method by applying Case-based Reasoning (CBR). The newly suggested method in this study enables project managers to forecast monthly expenditures with less time and effort by retrieving and referring only projects of a similar nature, while filtering out irrelevant cases included in database. For the purpose of accurate forecasting, 1) the choice of the numbers of referring projects and 2) the better selection among three levels ? which include a 20-work package level, a 7-major work package level, and a total sum level analysis, were investigated in detail. It is concluded that selecting similar projects at $12{\sim}19%$ out of the whole database will produce a more precise forecasting. The new forecasting model, which suggests the predicted values based on previous projects, is more than just a forecasting methodology; it provides a bridge that enables current data collection techniques to be used within the context of the accumulated information. This will eventually help all the participants in the construction industry to build up the knowledge derived from invaluable experience.