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Time series modeling for analysis and control: advanced autopilot and monitoring systems

This book presents multivariate time series methods for the analysis and optimal control of feedback systems. Although ships’ autopilot systems are considered through the entire book, the methods set forth in this book can be applied to many other complicated, large, or noisy feedback control system...

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Detalles Bibliográficos
Autores principales: Ohtsu, Kohei, Peng, Hui, Kitagawa, Genshiro
Lenguaje:eng
Publicado: Springer 2015
Materias:
Acceso en línea:https://dx.doi.org/10.1007/978-4-431-55303-8
http://cds.cern.ch/record/2005871
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author Ohtsu, Kohei
Peng, Hui
Kitagawa, Genshiro
author_facet Ohtsu, Kohei
Peng, Hui
Kitagawa, Genshiro
author_sort Ohtsu, Kohei
collection CERN
description This book presents multivariate time series methods for the analysis and optimal control of feedback systems. Although ships’ autopilot systems are considered through the entire book, the methods set forth in this book can be applied to many other complicated, large, or noisy feedback control systems for which it is difficult to derive a model of the entire system based on theory in that subject area. The basic models used in this method are the multivariate autoregressive model with exogenous variables (ARX) model and the radial bases function net-type coefficients ARX model. The noise contribution analysis can then be performed through the estimated autoregressive (AR) model and various types of autopilot systems can be designed through the state–space representation of the models. The marine autopilot systems addressed in this book include optimal controllers for course-keeping motion, rolling reduction controllers with rudder motion, engine governor controllers, noise adaptive autopilots, route-tracking controllers by direct steering, and the reference course-setting approach. The methods presented here are exemplified with real data analysis and experiments on real ships. This book is highly recommended to readers who are interested in designing optimal or adaptive controllers not only of ships but also of any other complicated systems under noisy disturbance conditions.
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institution Organización Europea para la Investigación Nuclear
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spelling cern-20058712021-04-21T20:24:13Zdoi:10.1007/978-4-431-55303-8http://cds.cern.ch/record/2005871engOhtsu, KoheiPeng, HuiKitagawa, GenshiroTime series modeling for analysis and control: advanced autopilot and monitoring systemsMathematical Physics and Mathematics This book presents multivariate time series methods for the analysis and optimal control of feedback systems. Although ships’ autopilot systems are considered through the entire book, the methods set forth in this book can be applied to many other complicated, large, or noisy feedback control systems for which it is difficult to derive a model of the entire system based on theory in that subject area. The basic models used in this method are the multivariate autoregressive model with exogenous variables (ARX) model and the radial bases function net-type coefficients ARX model. The noise contribution analysis can then be performed through the estimated autoregressive (AR) model and various types of autopilot systems can be designed through the state–space representation of the models. The marine autopilot systems addressed in this book include optimal controllers for course-keeping motion, rolling reduction controllers with rudder motion, engine governor controllers, noise adaptive autopilots, route-tracking controllers by direct steering, and the reference course-setting approach. The methods presented here are exemplified with real data analysis and experiments on real ships. This book is highly recommended to readers who are interested in designing optimal or adaptive controllers not only of ships but also of any other complicated systems under noisy disturbance conditions.Springeroai:cds.cern.ch:20058712015
spellingShingle Mathematical Physics and Mathematics
Ohtsu, Kohei
Peng, Hui
Kitagawa, Genshiro
Time series modeling for analysis and control: advanced autopilot and monitoring systems
title Time series modeling for analysis and control: advanced autopilot and monitoring systems
title_full Time series modeling for analysis and control: advanced autopilot and monitoring systems
title_fullStr Time series modeling for analysis and control: advanced autopilot and monitoring systems
title_full_unstemmed Time series modeling for analysis and control: advanced autopilot and monitoring systems
title_short Time series modeling for analysis and control: advanced autopilot and monitoring systems
title_sort time series modeling for analysis and control: advanced autopilot and monitoring systems
topic Mathematical Physics and Mathematics
url https://dx.doi.org/10.1007/978-4-431-55303-8
http://cds.cern.ch/record/2005871
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