• 제목/요약/키워드: 순환최소자승

검색결과 50건 처리시간 0.022초

사전 정보가 없는 비행체의 정밀 파라미터 추정 (A precise parameter estimation of an air vehicle without a priori information)

  • 김정한;박근범;송용규;황익호;최동균
    • 한국항공운항학회지
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    • 제18권3호
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    • pp.21-26
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    • 2010
  • This paper deals with the precise parameter estimation of an air vehicle without a priori information. First, Recursive Least Squares technique, which is an equation error method and does not require any a priori information, is applied and then the extended Kalman filter is used to tune parameters more precisely. To show the performance, a nonlinear longitudinal missile model is simulated and the parameters are estimated. The results show that this consecutive application of the techniques gives a very good estimation performance.

채터모델링과 진단법에 관한 연구 (A Study on the Modeling and Diagnostics on Chatter in Endmilling Operation)

  • 김영국;윤문철;하만경;심성보
    • 한국정밀공학회:학술대회논문집
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    • 한국정밀공학회 2001년도 춘계학술대회 논문집
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    • pp.971-974
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    • 2001
  • In this study, the static and dynamic characteristics of endmilling process was modelled and the analytic realization of chatter mechanism was discussed. In this regard, We have discussed on the comparative assessment of recursive time series modeling algorithms that can represent the machining process and detect the abnormal machining behaviors in precision endmilling operation. In this study, simulation and experimental work were performed to show the malfunctional behaviors. For this purpose, new recursive(RLSM) were adopted for the on-line system identification and monitoring of a machining process, we can apply these new algorithms in real process for detection of abnormal chatter. Also, the stability lobe of chatter was analysed by varying parameter of cutting dynamices in regenerative chatter mechanics.

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순환형 최소자승법을 이용한 송전선로의 고장점 추정 알고리즘 (The Fault Location Estimation Algorithm in Transmission Line Using a Recursive Least Square Error Method)

  • 윤창대;이종주;정호성;신명철;최상열
    • 대한전기학회:학술대회논문집
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    • 대한전기학회 2002년도 하계학술대회 논문집 A
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    • pp.203-205
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    • 2002
  • This paper presents the fault location estimation algorithm in transmission line using a recursive least square error method (RLSE). To minimize the computational burden of the digital relay a RLSE approach is used. Computer simulation results of the RLSE algorithm seem promising, indicating that it should be considered for further testing and evaluation.

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순환 최소자승법을 이용한 전동기 관성과 마찰계수 추정 (Inertia and Coefficient of Friction Estimation of Electric Motor using Recursive Least-Mean-Square Method)

  • 김지혜;최종우
    • 전기학회논문지
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    • 제56권2호
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    • pp.311-316
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    • 2007
  • This paper proposes the algorithm which estimates moment of the inertia and friction coefficient of friction for high performance speed control of electric motor. The proposed algorithm finds the moment of inertia and friction coefficient of friction by observing the speed error signal generated by the speed observer and using Recursive Least-Mean-Square method(RLS). By feedbacking the estimated inertia and estimated coefficient of friction to speed controller and full order speed observer, then the errors of the inertia and coefficient of friction and speed due to the inaccurate initial value are decreased. Inertia and coefficient of friction converge to the actual value within several times of speed changing. Simulation and actual experiment results are given to demonstrate the effectiveness of the proposed parameter estimator.

자율주행 버스의 종방향 제어를 위한 질량 및 종 경사 추정기 개발 (Vehicle Mass and Road Grade Estimation for Longitudinal Acceleration Controller of an Automated Bus)

  • 조아라;정용환;임형호;이경수
    • 자동차안전학회지
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    • 제12권2호
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    • pp.14-20
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    • 2020
  • This paper presents a vehicle mass and road grade estimator for developing an automated bus. To consider the dynamic characteristics of a bus varying with the number of passengers, the longitudinal controller needs the estimation of the vehicle's mass and road grade in real-time and utilizes the information to adjust the control gains. Discrete Kalman filter is applied to estimate the time-varying road grade, and the recursive least squares algorithm is adopted to account for the constant mass estimation. After being implemented in MATLAB/Simulink, the estimators are evaluated with the dynamic model and experimental data of the target bus. The proposed estimators will be applied to complement the algorithm of the longitudinal controller and proceed with algorithm verification.

순환최소자승법을 이용한 직류도시철도 변전소의 가선전압변동 모델링 (Modelling Voltage Variation at DC Railway Traction Substation using Recursive Least Square Estimation)

  • 배창한
    • 전력전자학회논문지
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    • 제20권6호
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    • pp.534-539
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    • 2015
  • The DC overhead line voltage of an electric railway substation swings depending on the accelerating and regenerative-braking energy of trains, and it deteriorates the energy quality of the electric facility in the DC railway substation and restricts the powering and braking performance of subway trains. Recently, an energy storage system or a regenerative inverter has been introduced into railway traction substations to diminish both the variance of the overhead line voltage and the peak power consumption. In this study, the variance of the overhead line voltage in a DC railway substation is modelled by RC parallel circuits in each feeder, and the RC parameters are estimated using the recursive least mean square (RLMS) scheme. The forgetting factor values for the RLMS are selected using simulated annealing optimization, and the modelling scheme of the overhead line voltage variation is evaluated through raw data measured in a downtown railway substation.

RLSM 모델링에 의한 엔드밀링 시스템의 모드 분석 (Mode analysis of end-milling process by RLSM)

  • 김종도;윤문철;김광희
    • 동력기계공학회지
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    • 제15권5호
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    • pp.54-60
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    • 2011
  • In this study, an analytical realization of end-milling system was introduced using recursive parametric modeling analysis. Also, the numerical mode analysis of end-milling system with different conditions was performed systematically. In this regard, a recursive least square(RLS) modeling algorithm and the natural mode for real part and imaginary one was discussed. This recursive approach (RLSM) can be adopted for the on-line system identification and monitoring of an end-milling for this purpose. After experimental practice of the end-milling, the end-milling force was obtained and it was used for the calculation of FRF(Frequency response function) and mode analysis. Also the FRF was analysed for the prediction of a end-milling system using recursive algorithm.

신경회로망을 이용한 직접 자기동조제어기의 설계 (Design of a Direct Self-tuning Controller Using Neural Network)

  • 조원철;이인수
    • 전자공학회논문지SC
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    • 제40권4호
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    • pp.264-274
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    • 2003
  • 본 논문에서는 잡음과 시간지연이 존재하며 시스템 파라미터가 변하는 비선형 비최소위상 시스템에 적응하는 신경회로망이 결합된 PID구조를 갖는 일반화 최소분산 자기동조제어기를 제안한다. PID구조를 갖는 자기동조는 PID제어기처럼 구조가 간단하고 계통을 정밀하게 제어하는 자기동조 제어기의 특성을 그대로 유지할 수 있다. 일반화 최소분산 자기동조 제어기 파라미터는 비선형 시스템을 선형시스템으로 간주하고 순환최소자승법으로 추정하며 설계계수의 값은 확률근사법인 Robbins-Monro 알고리듬을 이용하여 자동조정하였다. 역전파 학습 알고리듬을 사용하는 신경회로망 제어기는 비선형 부분의 제어를 보상하기 위해 필터된 기준입력과 필터된 플랜트 출력이 같도록 제어값을 출력한다. 컴퓨터 시뮬레이션을 통해 제안한 방법이 시스템의 파라미터가 변하는 비최소위상 시스템에 잘 적응함을 보였다.

직류 서어보 전동기 제어를 위한 직접 극배치 PID 자기동조 제어기의 설계 (A Study on the Direct Pole Placement PID Self-Tuning Controller Design for DC Servo Motor Control)

  • 남문현;이규영
    • 대한전자공학회논문지
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    • 제27권2호
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    • pp.55-64
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    • 1990
  • 직류 전동기의 위치 및 속도 제어를 위해 그동안 주로 사용해 왔던 고전적인 선형 PID 제어 알고리듬을 사용하여 왔으나, 주위환경의 변화나 부하의 변경 또는 외란과 같은 비션형 요소들로 인해 실제 시스템의 모델링에는 많은 제한이 따랐다. 이 문제를 해결하기 위해 시스템의 모델링 없이 매개변수들을 온라인으로 추정하여 식별할 수 있는 PID 자기 동조기의 설계 방법을 제안하였다. 본 논문에서는 극 배치 PID 자기 동조 제어기의 설계 기법을 제안하고, 각각의 제어기 매개변수들을 추정하기 위하여 순환 최소자승 알고리듬을 사용하야T으며, Diophantine 방정식의 도입으로 인한 4개의 추가매개 변수들을 추정된 제어기 매개변수들을 이용하여 새롭게 유도된 방정식에서 구하였다. 제안된 제어기의 성능을 평가하기 위하여 최소, 비최소 위상 시스템에 대한 시뮬레이션을 하였고 실제 로보트 매니플레이터용 DC 서어보 전동기에 대하여 무부하와 부하 실험을 거쳐 그 특성이 양호함을 검증하였다.

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방대한 기상 레이더 데이터의 원할한 처리를 위한 순환 가중최소자승법 기반 RBF 뉴럴 네트워크 설계 및 응용 (Design of RBF Neural Networks Based on Recursive Weighted Least Square Estimation for Processing Massive Meteorological Radar Data and Its Application)

  • 강전성;오성권
    • 전기학회논문지
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    • 제64권1호
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    • pp.99-106
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    • 2015
  • In this study, we propose Radial basis function Neural Network(RBFNN) using Recursive Weighted Least Square Estimation(RWLSE) to effectively deal with big data class meteorological radar data. In the condition part of the RBFNN, Fuzzy C-Means(FCM) clustering is used to obtain fitness values taking into account characteristics of input data, and connection weights are defined as linear polynomial function in the conclusion part. The coefficients of the polynomial function are estimated by using RWLSE in order to cope with big data. As recursive learning technique, RWLSE which is based on WLSE is carried out to efficiently process big data. This study is experimented with both widely used some Machine Learning (ML) dataset and big data obtained from meteorological radar to evaluate the performance of the proposed classifier. The meteorological radar data as big data consists of precipitation echo and non-precipitation echo, and the proposed classifier is used to efficiently classify these echoes.