• 제목/요약/키워드: fuzzy components

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퍼지숫자를 기반으로 가중 구성요소를 갖는 퍼지시스템의 신뢰도분석 (Fuzzy System Reliability Analysis With Weighted Components Based on Fuzzy Numbers)

  • 조상엽
    • 인터넷정보학회논문지
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    • 제8권3호
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    • pp.99-107
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    • 2007
  • 일반적으로 퍼지시스템의 신뢰도는 0과 1사이의 실수, 퍼지숫자, 신용구간, 구간값 퍼지집합,모호집합 등으로 표현하고 분석한다. 본 논문은 시스템에서 가중 구성요소의 중요도를 반영하는 가중값을 갖는 가중 구성요소를 위한 퍼지시스템의 신뢰도를 분석하는 방법을 설명한다. 퍼지시스템에서 가중 구성요소들의 신뢰도와 가중간은 삼각 퍼지숫자로 표현한다. 제안한 방법은 삼각 퍼지숫자의 퍼지산술연산을 사용하고 가중 구성요소의 가중값을 고려한다. 그러므로 기존의 방법들 보다 실행속도가 더 빠르고 그리고 더 유연한 실행이 가능하다.

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FUZZY QUASICOMPONENTS

  • Kong, Jae Eung;Cho, Sung Ki
    • Korean Journal of Mathematics
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    • 제4권1호
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    • pp.31-37
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    • 1996
  • We define fuzzy quasicomponents and prove some properties related to fuzzy components.

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퍼지자료에 대한 분산성분 추정 (Estimation variance components for fuzzy data)

  • Kang, Man-Ki;Park, Gyu-Tag
    • 한국지능시스템학회:학술대회논문집
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    • 한국퍼지및지능시스템학회 2002년도 춘계학술대회 및 임시총회
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    • pp.281-285
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    • 2002
  • The observation fuzzy data in random effect and balanced designs for one way classification by using a the matrix formulation, we can estimate the fuzzy variance components for the ozone depletion example and test by the agreement index.

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모호집합을 이용한 가중 구성요소를 갖는 퍼지시스템의 신뢰도 분석 (Reliability Analysis of Fuzzy Systems With Weighted Components Using Vague Sets)

  • 조상엽;박사준
    • 한국정보과학회논문지:소프트웨어및응용
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    • 제33권11호
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    • pp.979-985
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    • 2006
  • 기존 연구에서 퍼지시스템의 신뢰도는 0과 1사이의 실수, 퍼지숫자, 신용구간 등으로 표현하고 분석한다. 본 논문에서, 우리는 퍼지시스템의 가중 구성요소의 신뢰도와 가중 구성요소의 중요도를 반영하는 가중값을 전체집합 [0, 1]에서 정의되는 모호집합으로 표현하고 분석하는 방법을 제안한다. 모호집합은 참 소속함수와 거짓 소속함수로 구성된 구간으로 표현된다. 따라서 모호집합은 퍼지시스템의 신뢰도와 가중값를 더 유연한 방법으로 표현하는 것을 가능하게 한다. 제안된 방법은 퍼지시스템내의 가중 구성요소의 가중값을 고려하므로, 제안한 방법의 신뢰도분석은 기존의 방법들 보다 더 유연하고 효과적이다.

FFTA(Fuzzy Fault Tree Analysis)에 의한 불확실한 고장정보 연구 (Development of uncertainly failure information for FFTA)

  • 정영득;박주식;김건호;강경식
    • 대한안전경영과학회지
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    • 제3권2호
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    • pp.113-121
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    • 2001
  • Today, facilities are composed of many complex components or parts. Because of this characteristics, the frequency of failures is decreasing, but the strength of failures is increasing; therefore, the failure analysis about many complex components or parts was needed. In the former research about Fault Tree Analysis, failure data of similar facilities have been used for forecasting about target system or components, but in case that the system or components for forecasting failure is new or qualitative and quantitative data are given simultaneously, there are many difficulty in using Fault Tree Analysis with this incorrect failure data. Therefore, this paper deal with the Fault Tree Analysis method which be applied with Fuzzy theory in above case. In case that , therefore, if there is no the correct failure data, it is represented a system or components as qualitative variable. subsequently, it converted to the quantitative value using fuzzy theory, and the values used as the value for failure forecast.

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퍼지추론을 이용한 신뢰성 시험 대상 품목 선정 전략 (A Strategy of Selecting Critical Items for Reliability Tests Using Fuzzy Inference)

  • 손영범;양정민
    • 대한임베디드공학회논문지
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    • 제13권4호
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    • pp.205-214
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    • 2018
  • The reliability test is a crucial step for ensuring robustness of high-cost and complex weapon systems. In this paper, we present a set of quantitative criteria to select critical parts or components in weapon systems for the reliability test, and implement a fuzzy inference system by applying developed criteria to fuzzy theory. We classify the selection criteria of critical parts or components into four fuzzy sets and membership functions. A fuzzy inference rule is proposed based on the AHP (Analytic Hierarchy Process) analysis technique so as to derive a convincing reliability test. The credibility of the fuzzy inference system is confirmed through a case study using actual equipment data exacted from an existent weapon system.

Fuzzy Sets을 이용한 시스템 부품의 고장가능성 진단에 관한 모델 (The possibility of failure of system component by fuzzy sets)

  • 김길동;조암
    • 품질경영학회지
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    • 제20권2호
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    • pp.44-54
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    • 1992
  • In conventional fault-tree analysis, the failure probabilities of components of a system are treated as exact values in estimating the failure probability of the top event. For the plant layout and systems of the products, however, it is often difficult to evaluate the failure probabilities of components from past occurences, because the environments of the systems change. Furthermore, it might be necessary to consider possible failure of components of the systems even if they have never failed before. In the paper, instead of the probability of failure, we propose the possibility of failure, viz, a fuzzy set defined in probability space. Thus, in this paper based on a fuzzy fault-tree model, the maximum possibility of system failure is determined from the possibility of failure of each component within the system according to the extension principle.

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입력 공간의 변환을 이용한 새로운 방식의 퍼지 모델링 (A New Fuzzy Modeling Algorithm Considering Correlation among Components of Input Data)

  • 김은태;박민기;박민용
    • 한국지능시스템학회:학술대회논문집
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    • 한국퍼지및지능시스템학회 1997년도 춘계학술대회 학술발표 논문집
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    • pp.111-114
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    • 1997
  • Generally, fuzzy models have the capability of dividing input space into several subspaces. compared to liner ones. But hitherto suggested fuzzy modeling algorithms not take into consideration the correlations between components of sample input data and address them independently of each other, which results in ineffective partition of input space. Therefore, to solve this problem. this letter proposes a new fuzzy modeling algorithm which partitions the input space more efficiently than conventional methods by taking into consideration correlations between components of sample data. As a way to use correlation and divide the input space. the method of principal component is used. Finally, the results of computer simulation are given to demonstrate the validity of this algorithm.

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입력 공간의 변환을 이용한 새로운 방식의 퍼지 모델링-KL 변환 방식 (A transformed input-domain approach to fuzzy modeling-KL transform approch)

  • 김은태;박민기;이수영;박민용
    • 전자공학회논문지S
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    • 제35S권4호
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    • pp.58-66
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    • 1998
  • In many situations, it is very important to identify a certain unkown system, it from its input-output data. For this purpose, several system modeling algorithms have been suggested heretofore, and studies regarding the fuzzy modeling based on its nonlinearity get underway as well. Generatlly, fuzzy models have the capability of dividing input space into several subspaces, compared to linear ones. But hitherto subggested fuzzy modeling algorithms do not take into consideration the correlations between components of sample input data and address them independently of each other, which results in ineffective partition of input space. Therefore, to solve this problem, this letter proposes a new fuzzy modeling algorithm which partitions the input space more efficiently that conventional methods by taking into consideration correlations between components of sample data. As a way to use correlation and divide the input space, the method of principal component is ued. Finally, the results of computer simulation are given to demonstrate the validity of this algorithm.

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Fuzzy Sliding Mode Control for Uncertain Nonlinear Systems Using Fuzzy Models

  • Seo, Sam-Jun;Kim, Dong-Sik
    • 제어로봇시스템학회:학술대회논문집
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    • 제어로봇시스템학회 2003년도 ICCAS
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    • pp.1262-1266
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    • 2003
  • Fuzzy sliding mode controller for a class of uncertain nonlinear dynamical systems is proposed and analyzed. The controller's construction and its analysis involve sliding modes. The proposed controller consists of two components. Sliding mode component is employed to eliminate the effects of disturbances, while a fuzzy model component equipped with an adaptation mechanism reduces modeling uncertainties by approximating model uncertainties. To demonstrate its performance, the proposed control algorithm is applied to an inverted pendulum. The results show that both alleviation of chattering and performance are achieved.

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