Estimators for Uncertain Dynamic Systems

Estimators for Uncertain Dynamic Systems
Author: A. I. Matasov
Publsiher: Unknown
Total Pages: 436
Release: 1999-01-31
Genre: Electronic Book
ISBN: 940115323X

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Uncertain Dynamic Systems

Uncertain Dynamic Systems
Author: Fred C. Schweppe
Publsiher: Prentice Hall
Total Pages: 588
Release: 1973
Genre: Mathematics
ISBN: UOM:39015000980964

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Estimators for Uncertain Dynamic Systems

Estimators for Uncertain Dynamic Systems
Author: A.I. Matasov
Publsiher: Springer Science & Business Media
Total Pages: 428
Release: 2012-12-06
Genre: Technology & Engineering
ISBN: 9789401153225

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When solving the control and design problems in aerospace and naval engi neering, energetics, economics, biology, etc., we need to know the state of investigated dynamic processes. The presence of inherent uncertainties in the description of these processes and of noises in measurement devices leads to the necessity to construct the estimators for corresponding dynamic systems. The estimators recover the required information about system state from mea surement data. An attempt to solve the estimation problems in an optimal way results in the formulation of different variational problems. The type and complexity of these variational problems depend on the process model, the model of uncertainties, and the estimation performance criterion. A solution of variational problem determines an optimal estimator. Howerever, there exist at least two reasons why we use nonoptimal esti mators. The first reason is that the numerical algorithms for solving the corresponding variational problems can be very difficult for numerical imple mentation. For example, the dimension of these algorithms can be very high.

Control of Uncertain Dynamic Systems

Control of Uncertain Dynamic Systems
Author: Shankar P. Bhattacharyya,Lee H. Keel
Publsiher: CRC Press
Total Pages: 535
Release: 2020-09-23
Genre: Technology & Engineering
ISBN: 9781000102567

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This book is a collection of 34 papers presented by leading researchers at the International Workshop on Robust Control held in San Antonio, Texas in March 1991. The common theme tying these papers together is the analysis, synthesis, and design of control systems subject to various uncertainties. The papers describe the latest results in parametric understanding, H8 uncertainty, l1 optical control, and Quantitative Feedback Theory (QFT). The book is the first to bring together all the diverse points of view addressing the robust control problem and should strongly influence development in the robust control field for years to come. For this reason, control theorists, engineers, and applied mathematicians should consider it a crucial acquisition for their libraries.

Optimal Estimation of Dynamic Systems

Optimal Estimation of Dynamic Systems
Author: John L. Crassidis,John L. Junkins
Publsiher: CRC Press
Total Pages: 606
Release: 2004-04-27
Genre: Mathematics
ISBN: 9780203509128

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Most newcomers to the field of linear stochastic estimation go through a difficult process in understanding and applying the theory.This book minimizes the process while introducing the fundamentals of optimal estimation. Optimal Estimation of Dynamic Systems explores topics that are important in the field of control where the signals receiv

State Estimation for Dynamic Systems

State Estimation for Dynamic Systems
Author: Felix L. Chernousko
Publsiher: CRC Press
Total Pages: 322
Release: 1993-11-09
Genre: Technology & Engineering
ISBN: 0849344581

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State Estimation for Dynamic Systems presents the state of the art in this field and discusses a new method of state estimation. The method makes it possible to obtain optimal two-sided ellipsoidal bounds for reachable sets of linear and nonlinear control systems with discrete and continuous time. The practical stability of dynamic systems subjected to disturbances can be analyzed, and two-sided estimates in optimal control and differential games can be obtained. The method described in the book also permits guaranteed state estimation (filtering) for dynamic systems in the presence of external disturbances and observation errors. Numerical algorithms for state estimation and optimal control, as well as a number of applications and examples, are presented. The book will be an excellent reference for researchers and engineers working in applied mathematics, control theory, and system analysis. It will also appeal to pure and applied mathematicians, control engineers, and computer programmers.

Identification and System Parameter Estimation 1982

Identification and System Parameter Estimation 1982
Author: G. A. Bekey,G. N. Saridis
Publsiher: Elsevier
Total Pages: 868
Release: 2016-06-06
Genre: Technology & Engineering
ISBN: 9781483165783

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Identification and System Parameter Estimation 1982 covers the proceedings of the Sixth International Federation of Automatic Control (IFAC) Symposium. The book also serves as a tribute to Dr. Naum S. Rajbman. The text covers issues concerning identification and estimation, such as increasing interrelationships between identification/estimation and other aspects of system theory, including control theory, signal processing, experimental design, numerical mathematics, pattern recognition, and information theory. The book also provides coverage regarding the application and problems faced by several engineering and scientific fields that use identification and estimation, such as biological systems, traffic control, geophysics, aeronautics, robotics, economics, and power systems. Researchers from all scientific fields will find this book a great reference material, since it presents topics that concern various disciplines.

Adaptive Control of Dynamic Systems with Uncertainty and Quantization

Adaptive Control of Dynamic Systems with Uncertainty and Quantization
Author: Jing Zhou,Lantao Xing,Changyun Wen
Publsiher: CRC Press
Total Pages: 256
Release: 2021-12-15
Genre: Technology & Engineering
ISBN: 9781000487763

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This book presents a series of innovative technologies and research results on adaptive control of dynamic systems with quantization, uncertainty, and nonlinearity, including the theoretical success and practical development such as the approaches for stability analysis, the compensation of quantization, the treatment of subsystem interactions, and the improvement of system tracking and transient performance. Novel solutions by adopting backstepping design tools to a number of hotspots and challenging problems in the area of adaptive control are provided. In the first three chapters, the general design procedures and stability analysis of backstepping controllers and the basic descriptions and properties of quantizers are introduced as preliminary knowledge for this book. In the remainder of this book, adaptive control schemes are introduced to compensate for the effects of input quantization, state quantization, both input and state/output quantization for uncertain nonlinear systems and are applied to helicopter systems and DC Microgrid. Discussion remarks are provided in each chapter highlighting new approaches and contributions to emphasize the novelty of the presented design and analysis methods. Simulation results are also given in each chapter to show the effectiveness of these methods. This book is helpful to learn and understand the fundamental backstepping schemes for state feedback control and output feedback control. It can be used as a reference book or a textbook on adaptive quantized control for students with some background in feedback control systems. Researchers, graduate students, and engineers in the fields of control, information, and communication, electrical engineering, mechanical engineering, computer science, and others will benefit from this book.