• 제목/요약/키워드: Similar case-based approach

검색결과 134건 처리시간 0.024초

FMEA 개념과 사례베이스추론 기법을 이용한 보전작업순서결정시스템의 개발 (Development of Maintenance Sequence System by Using Modified FMEA and CBR)

  • 김광만
    • 대한안전경영과학회지
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    • 제3권4호
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    • pp.103-112
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    • 2001
  • In Factory, as the number of machine is increased the more maintenance efforts are necessary. Multi maintenance issues may occur at a certain time and the determination of maintenance sequence is needed. In this study, we first compare the priority of machines and the impact value using modified FMEA(Failure Mode Effect and Analysis) method. Also, CBR(Case-based Reasoning) approach is applied to retrieve similar fault cases of current machine problem. The proposed methodology will be useful to implement decision support system of maintenance sequence for CMMS/EAM (Computerized Maintenance Management System/Enterprise Asset Management).

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Deconstructing Agile Survey to Identify Agile Skeptics

  • Entesar Alanazi;Mohammad Mahdi Hassan
    • International Journal of Computer Science & Network Security
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    • 제24권3호
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    • pp.201-210
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    • 2024
  • In empirical software engineering research, there is an increased use of questionnaires and surveys to collect information from practitioners. Typically, such data is then analyzed based on overall, descriptive statistics. Overall, they consider the whole survey population as a single group with some sampling techniques to extract varieties. In some cases, the population is also partitioned into sub-groups based on some background information. However, this does not reveal opinion diversity properly as similar opinions can exist in different segments of the population, whereas people within the same group might have different opinions. Even though existing approach can capture the general trends there is a risk that the opinions of different sub-groups are lost. The problem becomes more complex in case of longitudinal studies where minority opinions might fade or resolute over time. Survey based longitudinal data may have some potential patterns which can be extracted through a clustering process. It may reveal new information and attract attention to alternative perspectives. We suggest using a data mining approach to finding the diversity among the different groups in longitudinal studies (agile skeptics). In our study, we show that diversity can be revealed and tracked over time with the use of clustering approach, and the minorities have an opportunity to be heard.

Quality Driven Approach for Product Line Architecture Customization in Patient Navigation Program Software Product Line

  • Ashari, Afifah M.;Abd Halim, Shahliza;Jawawi, Dayang N.A.;Suvelayutnan, Ushananthiny;Isa, Mohd Adham
    • KSII Transactions on Internet and Information Systems (TIIS)
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    • 제15권7호
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    • pp.2455-2475
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    • 2021
  • Patient Navigation Program (PNP) is considered as an important implementation of health care systems that can assist in patient's treatment. Due to the feasibility of PNP implementation, a systematic reuse is needed for a wide adoption of PNP computerized system. SPL is one of the promising systematic reuse approaches for creating a reusable architecture to enabled reuse in several similar applications of PNP systems which has its own variations with other applications. However, stakeholder decision making which result from the imprecise, uncertain, and subjective nature of architecture selection based on quality attributes (QA) further hinders the development of the product line architecture. Therefore, this study aims to propose a quality-driven approach using Multi-Criteria Decision Analysis (MCDA) techniques for Software Product Line Architecture (SPLA) to have an objective selection based on the QA of stakeholders in the domain of PNP. There are two steps proposed to this approach. First, a clear representation of quality is proposed by extending feature model (FM) with QA feature to determine the QA in the early phase of architecture selection. Second, MCDA techniques were applied for architecture selection based on objective preference for certain QA in the domain of PNP. The result of the proposed approach is the implementation of the PNP system with SPLA that had been selected using MCDA techniques. Evaluation for the approach is done by checking the approach's applicability in a case study and stakeholder validation. Evaluation on ease of use and usefulness of the approach with selected stakeholders have shown positive responses. The evaluation results proved that the proposed approach assisted in the implementation of PNP systems.

탄소성 파괴역학적 건전성 평가 시스템의 개발 I (A Development of Integrity Evaluation System Based on Elastic Plastic Fracture Mechanics(I) - Specimen Cases -)

  • 김영진;최재붕;손상환;이주진;허용학
    • 대한기계학회논문집
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    • 제14권3호
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    • pp.646-655
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    • 1990
  • 본 연구에서는 EPIES 프로그램의 상세한 내용과 이를 이용한 5가지 파괴역학 시편에 대한 사례 연구에 대하여 보고하고자 한다.

Breast Cytology Diagnosis using a Hybrid Case-based Reasoning and Genetic Algorithms Approach

  • Ahn, Hyun-Chul;Kim, Kyoung-Jae
    • 한국지능정보시스템학회:학술대회논문집
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    • 한국지능정보시스템학회 2007년도 한국지능정보시스템학회
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    • pp.389-398
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    • 2007
  • Case-based reasoning (CBR) is one of the most popular prediction techniques for medical diagnosis because it is easy to apply, has no possibility of overfitting, and provides a good explanation for the output. However, it has a critical limitation - its prediction performance is generally lower than other artificial intelligence techniques like artificial neural networks (ANNs). In order to obtain accurate results from CBR, effective retrieval and matching of useful prior cases for the problem is essential, but it is still a controversial issue to design a good matching and retrieval mechanism for CBR systems. In this study, we propose a novel approach to enhance the prediction performance of CBR. Our suggestion is the simultaneous optimization of feature weights, instance selection, and the number of neighbors that combine using genetic algorithms (GAs). Our model improves the prediction performance in three ways - (1) measuring similarity between cases more accurately by considering relative importance of each feature, (2) eliminating redundant or erroneous reference cases, and (3) combining several similar cases represent significant patterns. To validate the usefulness of our model, this study applied it to a real-world case for evaluating cytological features derived directly from a digital scan of breast fine needle aspirate (FNA) slides. Experimental results showed that the prediction accuracy of conventional CBR may be improved significantly by using our model. We also found that our proposed model outperformed all the other optimized models for CBR using GA.

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모바일 로봇의 목표물 추적을 위한 이미지 궤환 제어 (A Image Feedback control of Mobile Robot for Target Tracking)

  • 황원준;이우송
    • 한국산업융합학회 논문집
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    • 제18권2호
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    • pp.90-98
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    • 2015
  • This research propose with image-based visual a new approach to design a feedback control of mobile robot. because mobile robot must be recharged periodically, it is necessary to detect and move to docking station. Generally, laser scanner is used for detect of position of docking station. CCD Camera is also used for this purpose. In case of using camera, the position-based visual servoing method is widely used. But position-based visual servoing method requires the accurate calibration and it is hard and complex work. Another method using cameras is inmage-based visual feedback. Recently, image based visual feedback is widely used for robotic application. But it has a problem that cannot have linear trajectory in the 3-dimensional space. Because of this weak point, image-based visual servoing has a limit for real application. in case of 2-dimensional movement on the plane, it has also similar problem. In order to solve this problem, we point out the main reason of the problem of the resolved rate control method that has been generally used in the image-based visual servoing and we propose an image-based visual feedback method that can reduce the curved trajectory of mobile robot in th cartesian space.

축약형 신경망과 휴리스틱 검색에 의한 소프트웨어 공수 예측모델 (Parsimonious Neural Network and Heuristic Search Method for Software Effort Estimation Model)

  • 전응섭
    • 정보처리학회논문지D
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    • 제8D권2호
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    • pp.154-165
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    • 2001
  • 소프트웨어공수 예 에 관한 전공적인 모델링의 한계점을 극복하기 위해 사례기반과 신경망 그리고 퍼지이론 및 전문가 시스템 등 인공지능 기법을 이용한 연구들이 제시되고 있다. 특히 신경망을 이용한 공수예측 모델들이 예측력에 있어서 전통적인 모델들 보다 우수한 예측결과를 제시하고 있다. 그러나 이들 신경망 모델에 있어서도 고려되어야 할 점은 입력 데이터의 노이즈와 모델 설계 및 사용에 있어서 유연성 및 요율성 측면이 제기되고 있다. 본 연구에서는 이러한 기존의 신경망모델의 효율성 향상을 위한 새로운 방안으로 최적의 축약형 모델구조와 이에 관련된 최적 사례들을 사용하기 위한 사례기반 휴리스틱 검색기법을 제시한다. 30여개의 실제로 수행된 프로젝트의예측결과를 통해 최적사례 기반 축약형 신경망 모델의 결과가 저통적인 COCOMO 모델 그리고 기존의 신경망 모델과 비교해서 예측력과 모델의 유연성이 좋아졌음은 알 수 있었다. 따라서 본 연구에서 새롭게 제시한 축약형 모델과 최적사례기반 접근 방법은 급변하는 정보시스템 패러다임하에서도 유용하게 사용될 수있을 것이다.있을 것이다.

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자동차 부품 제조사업체의 근골격계 질환 유해요인 조사 사례연구 (Case Study of Diagnosis on Muculoskeletal Disorders Risk Factors at an Autopart Company)

  • 양성환;조문선
    • 대한안전경영과학회지
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    • 제9권2호
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    • pp.33-48
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    • 2007
  • The goal of this study is to propose the effective method of investigating the injurious factors and making improved plans that prevents the workers against musculoskeletal disorders at an autopart company and the same business field with similar working conditions and process. A questionnaire were adopted to analyze the symptoms of workers' musculoskeletal disorders, and an ergonomic assessment method such as QEC, RULA, S.I were performed to find out harmful factors of workplace and working posture. Based on the result of the evaluation, to enhance the working environment, improvement of worktable, working space, tools, and outfit was suggested, and induction of mechanical system was also suggested. It can be concluded that the method and process described in this paper could be helpful for diagnosing the musculoskeletal disorders and making improvement plans to the autopart company and the same business field with similar working conditions and process.

맞춤구성을 위한 템플릿과 Option 기반의 추론 (Customized Configuration with Template and Options)

  • 이현정;이재규
    • 지능정보연구
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    • 제8권1호
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    • pp.119-139
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    • 2002
  • 전자 카탈로그 상에서의 상품 검색은 카탈로그에 명시되어 있는 상품을 찾는 표준상품검색과 소비자가 원하는 상품을 맞춤 하는 맞춤상품검색으로 분류할 수 있다. 현재의 대부분의 상품 검색은 표준상품 검색에 의존하고 있다. 특히 기업간 구성요소기반(Component-based)상품의 경우 표준상품검색만으로는 구매자의 다양한 요구에 응하기가 어렵다. 따라서 웹 상의 전자 카탈로그에서의 동적인 맞춤검색에 대한 요구가 증가하고 있다. 본 연구에서는 구성기반 상품에 대해서 표준상품검색만으로는 구매자가 원하는 상품의 검색가능성(Feasibility)과 검색된 대안들이 조정(Adjust) 프로세스 과정을 거쳐 최적해 도달 가능성(Admissibility)이 보장되지 않음을 보이고, 이에 대한 효과적인 방법론으로 검색가능성과 최적해 도달 가능성을 지원하는 Template-based Reasoning 방법론을 제안한다. Template-based Reasoning은 구매자의 요구사항에 따른 대안탐색 부분과 선택된 대안에 대한 조정과정의 두 단계로 이루어진다. 구매자의 주요 선호도(MUST Preference)에 근거하여 대안들을 탐색하고, 탐색된 대안들 간의 우선순위를 결정한다. 조정 단계에서는 옵션(Options)의 확장을 통해 구매자의 맞춤사양에 따른 상품을 제안하고, 제약 및 규칙기반 추론 (Constraint and Rule Satisfaction Approach)을 이용하여 옵션(Options)들 간의 제약조건에 따른 호환성(Compatibility)을 조사하고, 적정가격의 상품을 제안한다. 본 방법론은 Template을 사용하여 기본적으로 구매자가 원하는 상품을 검색하기 위한 검색노력을 줄이고, 검색된 대안들로부터 구매자와 시스템이 웹상에서 서로 상호작용(interactivity) 하여 해를 찾고, 제약조건과 규칙들에 의해 적합한 해를 찾아가는 방법을 제시한다. 본 논문은 구성기반 예로서 컴퓨터 부품 조립을 사용해서 Template-based reasoning 예를 보인다. 본 방법론은 검색노력을 줄이고, 검색에 있어 Feasibility와 Admissibility를 보장한다.

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시각주의 모델을 적용한 실내 복도에서의 위치인식 기법 (An Approach for Localization Around Indoor Corridors Based on Visual Attention Model)

  • 윤국열;최선욱;이종호
    • 제어로봇시스템학회논문지
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    • 제17권2호
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    • pp.93-101
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    • 2011
  • For mobile robot, recognizing its current location is very important to navigate autonomously. Especially, loop closing detection that robot recognize location where it has visited before is a kernel problem to solve localization. A considerable amount of research has been conducted on loop closing detection and localization based on appearance because vision sensor has an advantage in terms of costs and various approaching methods to solve this problem. In case of scenes that consist of repeated structures like in corridors, perceptual aliasing in which, the two different locations are recognized as the same, occurs frequently. In this paper, we propose an improved method to recognize location in the scenes which have similar structures. We extracted salient regions from images using visual attention model and calculated weights using distinctive features in the salient region. It makes possible to emphasize unique features in the scene to classify similar-looking locations. In the results of corridor recognition experiments, proposed method showed improved recognition performance. It shows 78.2% in the accuracy of single floor corridor recognition and 71.5% for multi floor corridors recognition.