• 제목/요약/키워드: Fuzzy rule base

검색결과 220건 처리시간 0.028초

RVEGA-퍼지 제어 기법을 이용한 온도 제어 시스템의 구현 (Implementation of the Thermal Control System using RVEGA-Fuzzy Control Technique)

  • 김정수;정종원;박두환;지석준;이준탁
    • 한국마린엔지니어링학회:학술대회논문집
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    • 한국마린엔지니어링학회 2001년도 춘계학술대회 논문집
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    • pp.238-242
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    • 2001
  • In this paper, we proposed an optimal identification method of the membership functions and the numbers of fuzzy rule base for the stabilization controller of the Thermal process control system by RVEGA. Although fuzzy logic controllers and expert systems have been successfully applied in many complex industrial process, they must rely on experts knowledges. So it is difficult in determination of the linguistic state space, definition of the membership functions of each linguistic term and the derivation of the control rules. To verify the validity of this RVEGA-based fuzzy controller, Thermal process control system, with strong nonlinear dynamics, was selected for application of this algorithm and compare with PI controller, and the empirically improved fuzzy controller.

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Optimization of fuzzy controller for nonlinear buildings with improved charged system search

  • Azizi, Mahdi;Ghasemi, Seyyed Arash Mousavi;Ejlali, Reza Goli;Talatahari, Siamak
    • Structural Engineering and Mechanics
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    • 제76권6호
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    • pp.781-797
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    • 2020
  • In recent years, there is an increasing interest to optimize the fuzzy logic controller with different methods. This paper focuses on the optimization of a fuzzy logic controller applied to a seismically excited nonlinear building. In most cases, this problem is formulated based on the linear behavior of the structure, however in this paper, four sets of objective functions are considered with respect to the nonlinear responses of the structure as the peak interstory drift ratio, the peak level acceleration, the ductility factor and the maximum control force. The Improved Charged System Search is used to optimize the membership functions and the rule base of the fuzzy controller. The obtained results of the optimized and the non-optimized fuzzy controllers are compared to the uncontrolled responses of the structure. Also, the performance of the utilized method is compared with various classical and advanced optimization algorithms.

자기동조 PID제어기를 위한 퍼지전문가 시스템 (A fuzzy expert system for auto-tuning PID controllers)

  • 이기상;김현철;박태건;김일우
    • 제어로봇시스템학회:학술대회논문집
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    • 제어로봇시스템학회 1993년도 한국자동제어학술회의논문집(국내학술편); Seoul National University, Seoul; 20-22 Oct. 1993
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    • pp.398-403
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    • 1993
  • A rule based fuzzy expert system to self-tune PID controllers is proposed in this paper. The proposed expert system contains two rule bases, where one is responsible for "Long term tuning" and the other for "Incremental tuning". The rule for "Long term tuning" are extracted from the Wills'map and the knowledge about the implicit relations between PID gains and important long term features of the output response such as overshoot, damping and rise time, etc., while 'Incremental tuning" rules are obtained from the relations between PID gains and short term features, error and change in error. In the PID control environment, the proposed expert system operates in two phases sequentially. In the first phase, the long term tuning is performed until long term features meet their desired values approximately. Then the incremental tuning tarts with PID gains provided by the long term tuning procedure. It is noticeable that the final PID gains obtained in the incremental tuning phase are only the temporal ones. Simulation results show that the proposed rule base for "Long term tuning" provides superior control performance to that of Litt and that further improvement of control performance is obtained by the "Incremental tuning'.ance is obtained by the "Incremental tuning'.ing'.

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자율가변 구조의 신경망 모델을 이용한 구륜 이동 로봇의 위치 제어 (Position Control of Wheeled Mobile Robot using Self-Structured Neural Network Model)

  • 김기열;김성회;김현;임호;정영화
    • 정보학연구
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    • 제4권2호
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    • pp.117-127
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    • 2001
  • 본 논문에서는 퍼지모델의 최적 입-출력 소속함수들(membership functions) 및 규칙기반(rulebase) 얻기 위한 자율가변구조의 신경망 알고리즘을 제안하였으며 구륜 이동 로봇(WMR : Wheeled Mobile Robot)의 위치, 속도 방향제어를 위한 퍼지-신경망 제어기 설계를 설계하였다. 제안된 알고리즘에서 입-출력 소속함수의 파라미터들을 찾기 위하여 유전알고리즘을 응용한다. 유전알고리즘에 의해 출력술어의 원소가 증가되며, 규칙기반이 원소의 증가에 의하여 조절된다. 새롭게 조절된 제어기는 출력술어의 증가를 수행하지 않은 제어기와 경쟁하며. 만약 새롭게 조절되어진 퍼지-신경망 제어기가 경쟁에서 진다면, 그 제어법칙은 소멸한다. 그 반대로 조절된 제어기가 생존한다면, 출력술어의 증가된 각 원소들 및 변화된 시스템의 규칙기반이 제어기에 적용된다. 출력술어 및 규칙의 조절이 완료된 후 입력소속함수들에 대한 탐색이 제약조건을 가지고 수행되며 입력소속함수들의 탐색이 완료된 후 출력소속함수의 미세 조정이 수행된다.

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가변환경하의 불안정 시스템에 대한 자율적응 제어기 설계 (Design of Self-Adapted Controller for Unstable System in Variable Environment)

  • 김성희
    • 정보학연구
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    • 제5권4호
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    • pp.57-64
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    • 2002
  • 부품들에 대한 열반응 검증 시스템은 모델링이 없으므로 일반적으로 PID 알고리즘에 의해 제어된다. 그러나 이 알고리즘에 의한 제어는 적절한 제어에 있어서 많은 한계성을 지닌다. 이러한 문제를 해결하기 위해 시스템에 대한 자율 탐색기능을 갖는 퍼지 알고리즘에 기반 된 제어기를 설계한다. 퍼지 입력소속함수가 설정된 안정영역에 기반 되어 적응되고, 규칙기반이 시스템 반응에 기초되어 변환된다. 추론과 비퍼지화를 통해 계산된 출력값이 시스템 동작에 알맞은 값으로 변환된다. 이러한 조절을 통해 시스템이 불안정 영역으로 이동하는 것을 최소화시킨다.

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퍼지제어를 이용한 용접선 추적용 아크센서에 관한 연구 (A Study on Arc Sensor for Weld Seam Tracking by Using Fuzzy Control)

  • 조시훈;김재웅
    • Journal of Welding and Joining
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    • 제13권1호
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    • pp.156-166
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    • 1995
  • Experimental models which are able to determine the deviation between weld line and weaving center by measuring the weld current during welding were proposed for the gas metal arc welding process. The models were used for developing a weld seam tracking system which controls the weaving speed of a welding torch. However, it was revealed that the tracking result of the system is affected by the welding conditions. Thus an arc sensor system was developed by using fuzzy control approach for overcoming the difficulty of modelling the nonlinear process. The rule base and parameters of the fuzzy control system were determined on the basis of the results of experiments. This fuzzy control system has shown the successful tracking capability for the wide operating range of welding conditions.

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유전 알고리즘을 이용한 퍼지 제어기의 자동설계 (Automatic design of fuzzy controller using genetic algorithms)

  • 김대진;홍정철
    • 전자공학회논문지B
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    • 제33B권5호
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    • pp.138-151
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    • 1996
  • This paper proposes a genetic fuzzy controller ensemble (FCE) for improving the control performance of of fuzzy controller in the non-linear and complex problems. The design procedure of each fuzzy controller in the FCF consists of the following two stages, each of which is performed by different genetic algorithms. The first stage generates a fuzzy rule base that covers the training examples as many as possible. The second stage builds fine-tuned membership funcitons that make the control error as small as possible. These two stages are repeated independently upon the different partition patterns of input-output variables. The control performance of the proposed method is compared with that of wang and mendel's approach[1] in terms of either the percentage of successful controls reaching to the goal or the average traveling distance.

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Mobile Robot Navigation using Optimized Fuzzy Controller by Genetic Algorithm

  • Zhao, Ran;Lee, Dong Hwan;Lee, Hong Kyu
    • International Journal of Fuzzy Logic and Intelligent Systems
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    • 제15권1호
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    • pp.12-19
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    • 2015
  • In order to guide the robots move along a collision-free path efficiently and reach the goal position quickly in the unknown multi-obstacle environment, this paper presented the navigation problem of a wheel mobile robot based on proximity sensors by fuzzy logic controller. Then a genetic algorithm was applied to optimize the membership function of input and output variables and the rule base of the fuzzy controller. Here the environment is unknown for the robot and contains various types of obstacles. The robot should detect the surrounding information by its own sensors only. For the special condition of path deadlock problem, a wall following method named angle compensation method was also developed here. The simulation results showed a good performance for navigation problem of mobile robots.

PI 및 PD Type Fuzzy Controller의 자기동조에 관한 연구 (A study on self tuning fuzzy PI and PD type controller)

  • 이상석
    • 한국산업융합학회 논문집
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    • 제3권1호
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    • pp.3-8
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    • 2000
  • This paper describes a development of self tuning scheme for PI and PO type fuzzy controllers. The output scaling factor(SF) is adjusted on-line by fuzzy rules according to the current trend of the controlled process. The rule-base for tuning the output SF is defined on error and change of error for the controlled variable using the most natural and unbiased membership functions. Simulation results demonstrate the better control performance can be achieved in comparison with Ziegler-Nichols(Z-N) PID controllers.

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mGA의 혼합된 구조를 사용한 퍼지모델 동정 (Fuzzy Model Identification Using A mGA Hybrid Scheme)

  • 이연우;주영훈;박진배
    • 대한전기학회:학술대회논문집
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    • 대한전기학회 1999년도 하계학술대회 논문집 B
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    • pp.507-509
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    • 1999
  • In this paper, we propose a new fuzzy model identification method that can yield a successful fuzzy rule base for fundamental approximations. The method in this paper uses a set of input-output data and is based on a hybrid messy genetic algorithm (mGA) with a fine-tuning scheme. The mGA processes variable-length strings, while standard GAs work with a fixed-length coding scheme. For successfully identifying a complex nonlinear system, we first use the mGA, which coarsely optimizes the structure and the parameters of the fuzzy inference system, and then the gradient descent method which tine tunes the identified fuzzy model. In order to demonstrate the superiority and efficiency of the proposed scheme, we finally show its application to a nonlinear approximation.

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