• Title/Summary/Keyword: 시간 최적제어

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퍼지제어 시스템을 위한 마이크로컴퓨터 지원설계

  • 주해호;이재원;박창선
    • Proceedings of the Korean Society of Precision Engineering Conference
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    • 1992.10a
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    • pp.187-191
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    • 1992
  • 본 연구에서 퍼지제어 시스템 설계를 위한 마이크로 컴퓨터 지원 설계 기법과 프로그램 FCS 를 개발하였다. 이 프로그램은 IBM-PC 호환기종 (80386,804860) 에 사용되는 Turbo-C 언어를 사용하였고, Borland C $^{++}$ 2.0 컴파일러를 사용하였다. 제어시스템의 각 요소를 모듈화 하여 동특성을 차분 방정식으로 표시하여 사용자가 쉽게 대치할 수 있도록 서브루틴화 하였다. 퍼지제어 규칙의 최적조건, 퍼지 입출력 변수의 최적조건, D/A 및 A/D 변환기의 최적 비트수, 최적 샘플링 시간을 결정 할 수 있다. 공기예열 시스템을 예로서 이 프로그램을 이용하여 설계하였다.

Generation of an Optimal Trajectory for Rotorcraft Subject to Multiple Waypoint Constraints (다중 경로점 제한 조건하의 헬리콥터의 최적 경로 생성)

  • Choe,Gi-Yeong
    • Journal of the Korean Society for Aeronautical & Space Sciences
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    • v.31 no.8
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    • pp.50-57
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    • 2003
  • Controlling rotorcraft to fly precisely through multiple, irregularly, and closely spaced waypoints is a common and practical mission. However, finding an optimal trajectory for this kind of mission is quite challenging. Usability of traditional approaches such as inverse control or direct methods to this kind of problem is limited because of either limitation on the specification of the constraints or requirement of extensive computation time. This paper proposes a method that can easily compute the full trajectory and control history for rotorcraft to pass through waypoints while satisfying other general constraints of states such as velocities and attitudes on each waypoint. The proposed method is applied to rotorcraft guidance problems of slalom and linear trajectory in the middle of general curved trajectory. The algorithm is test for various situations and demonstrates its usability.

Non-fragile controller design for discrete-time descriptor systems (이산시간 특이시스템의 비약성 제어기 설계)

  • Kim, Jong-Hae
    • Proceedings of the KIEE Conference
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    • 2008.04a
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    • pp.209-210
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    • 2008
  • 본 논문에서는 제어기에 승산형 섭동을 가지는 제어기와 이산시간 특이시스템을 안정화시키는 비약성 제어기 설계방법을 제시한다. 강인 비약성 제어기가 존재할 조건과 제어기 설계방법을 블록최적화가 가능한 선형 행렬부등식 접근방법으로 제안한다. 또한, 제어기의 약성 성도를 표시하는 비약성 척도를 동시에 계산함으로 승산형 섭동의 제어기 최대 변동정도를 제시한다. 제안한 비약성 제어기는 제어기의 이득 변동에도 불구하고 이산 시간 특이시스템의 강인 안정성을 보장한다.

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Optimal Active Seismic Control of Structures with Optimum Location of Active Controllers (제어기의 최적위치선정을 고려한 구조물의 최적 능동지진제어)

  • Cho, Chang-Geun;Kwon, Joon-Myoung;Park, Tae-Hoon;Park, Moon-Ho
    • Journal of the Korea institute for structural maintenance and inspection
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    • v.12 no.5
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    • pp.179-189
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    • 2008
  • The object of this study is to develope a program with proposed numerical techniques for an optimal seismic control of structures using active tendon systems. Ricatti closed-loop algorithm has been applied to control the active tendon systems with time-delay problem. The optimal control is formulated as an optimization problem which is finding optimal weighting matrices by minimizing the quadratic performance index by SUMT. In order to find the optimal location of active tendons in structures, controllability index has been introduced. From numerical examples, the current optimal control technique with optimal location of tendons was suitable to control the seismic response of structures.

A Study on Optimal PID Controller Design Ensure the Absolute Stability (절대안정도를 보장하는 최적 PID 제어기 설계에 관한 연구)

  • Cho, Joon-Ho
    • Journal of Convergence for Information Technology
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    • v.11 no.2
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    • pp.124-129
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    • 2021
  • In this paper, an optimal controller design that guarantees absolute stability is proposed. The order of application of the thesis determines whether the delay time is included, and if the delay time is included, the delay time is approximated through the Pade approximation method. Then, the open loop transfer function for the process model and the controller transfer function is obtained, and the absolute stability interval is calculated by the Routh-Hurwitz discrimination method. In the last step, the optimal Proportional and Integral and Derivative(PID) control parameter value is calculated using a genetic algorithm using the interval obtained in the previous step. As a result, it was confirmed that the proposed method guarantees stability and is superior to the existing method in performance index by designing an optimal controller. If we study the compensation method for the delay time in the future, it is judged that better performance indicators will be obtained.

Optimal Control of Electrohydraulic Actuator System (전기유압식 액튜에이터의 최적제어)

  • Chang, Pyung Hoon;Cho, Sun-Whi
    • Transactions of the Korean Society of Mechanical Engineers
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    • v.1 no.3
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    • pp.131-140
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    • 1977
  • 전기유압식 액튜에이터의 시간영역내에서의 성능을 향상시키기 위해서 최적제어이론을 적용하였다. 계통의 정량적인 성능을 이차성능지수로 표시햐였다. 유압 액튜에이터와 밸브의 선형적인 전달특성을 이용해서 계통의 상태방정식을 세우고 리카티 방정식의 해를 컴퓨터로 구해서 계통의 최적입력을 결정하였다. 이상과 같이 만들어진 최적제어계통의 변위, 속도, 가속도의 과도응답을 구하기 위해서 아날로그 컴퓨터를 사용하고 그 응답과 P.W.M. 계통의 응답을 비교한 결과, 최적제어계통이 더욱 빠르고 안정된 응답을 나타냄을 알았다. 그 비교를 구체적이고 정량적으로 행하기 위해서 성능지수곡선을 구해서 비교한 결과 그 성능지수의 척도로 볼때 최적제어계통이 P.W.M. 계통보다 약 35% 까지 우수하다는 결론을 얻었다.

State feedback optimal control of large-scale discrete-time systems with time-delays (시간지연이 있는 대규모 이산시간 시스템의 상태궤환 최적제어)

  • 김경연;전기준
    • 제어로봇시스템학회:학술대회논문집
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    • 1988.10a
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    • pp.219-224
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    • 1988
  • A decentralised computational procedure is proposed for the optimal feedback gain matrix of large-scale discrete-time systems with time-delays. The constant feedback gain matrix is computed from the optimal state and input trajectries obtained hierarchically by the interaction prediction method. All the calculation in this approach are done off-line. The resulting gains are optimal for all the initial conditions. The interaction prediction method is applied to time-delay large-scale systems with general structures by extending the dimensions of coupling matices. A numerical exampie illustrates the algorithm.

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Preliminary Study on Structural Optimization with Control Variables Using Equivalent Static Loads for Spring-damper Control Systems (등가정하중을 이용한 스프링-댐퍼 제어시스템 구조물의 최적설계에 관한 기초연구)

  • Yoo, Nam-Sun;Jung, Ui-Jin;Park, Gyung-Jin;Kim, Tai-Kyung
    • Transactions of the Korean Society of Mechanical Engineers A
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    • v.38 no.6
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    • pp.619-627
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    • 2014
  • An optimization method is proposed for the simultaneous design of structural and control systems using the equivalent static loads. In the past researches, the control parameters of such feedback gains are obtained to improve some performance in the steady-state. However, the actuators which have position and velocity feedback gains should be designed to exhibit a good performance in the time domain. In other words, the system analysis should be conducted for the transient-state in dynamic manner. In this research, a new equivalent static loads method is presented to treat the control variables as the design variables. The equivalent static loads (ESLs) set is defined as a static load set which generates the same displacement field as that from dynamic loads at a certain time. The calculated sets of ESLs are applied as multiple loading conditions in the optimization process. Several examples are solved to validate the proposed method.

A Design of Global Optimal Sliding Mode Controller for Discrete-Time Linear Systems (이산시간 선형 시스템에 대한 전역 최적 슬라이딩 제어기 설계)

  • Lee, Jae-Young;Park, Jin-Bae;Choi, Yoon-Ho
    • Proceedings of the KIEE Conference
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    • 2008.10b
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    • pp.435-436
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    • 2008
  • 본 논문에서는 궤적이 슬라이딩 평면 밖에 있는 경우에 대해서도 LQ 성능을 보장하는 최적 슬라이딩 모드 제어기 설계 방법을 제안한다. 본 논문에서 제안한 방법에서는 슬라이딩 평면상에 있을 경우뿐만 아니라 슬라이딩 평면 밖에서도 LQ 성능을 보장하기 위해 최적 슬라이딩 평면을 이용하며 제어기에 슬라이딩 변수에 선형적으로 의존하는 항을 추가한다. 또한 제어기의 강인성을 위해 본 논문에서 제안된 새로운 외란 추정기법을 제어기와 결합한다. 마지막으로 컴퓨터 모의 실험을 통해 본 논문에서 제안한 제어기 설계 방법의 효율성을 검증하고자 한다.

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Control Gain Optimization for Mobile Robots Using Neural Networks and Genetic Algorithms (신경회로망과 유전알고리즘에 기초한 이동로봇의 제어 이득 최적화)

  • Choi, Young-kiu;Park, Jin-hyun
    • Journal of the Korea Institute of Information and Communication Engineering
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    • v.20 no.4
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    • pp.698-706
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    • 2016
  • In order to move mobile robots to desired locations in a minimum time, optimal control problems have to be solved; however, their analytic solutions are almost impossible to obtain due to robot nonlinear equations. This paper presents a method to get optimal control gains of mobile robots using genetic algorithms. Since the optimal control gains of mobile robots depend on the initial conditions, the initial condition range is discretized to form some grid points, and genetic algorithms are applied to provide the optimal control gains for the corresponding grid points. The optimal control gains for general initial conditions may be obtained by use of neural networks. So the optimal control gains and the corresponding grid points are used to train neural networks. The trained neural networks can supply pseudo-optimal control gains. Finally simulation studies have been conducted to verify the effectiveness of the method presented in this paper.