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Control of discrete-time descriptor ...
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SpringerLink (Online service)
Control of discrete-time descriptor systems = an anisotropy-based approach /
Record Type:
Language materials, printed : Monograph/item
Title/Author:
Control of discrete-time descriptor systems/ by Alexey A. Belov, Olga G. Andrianova, Alexander P. Kurdyukov.
Reminder of title:
an anisotropy-based approach /
Author:
Belov, Alexey A.
other author:
Andrianova, Olga G.
Published:
Cham :Springer International Publishing : : 2018.,
Description:
xx, 169 p. :ill., digital ; : 24 cm.;
Contained By:
Springer eBooks
Subject:
Discrete-time systems. -
Online resource:
http://dx.doi.org/10.1007/978-3-319-78479-3
ISBN:
9783319784793
Control of discrete-time descriptor systems = an anisotropy-based approach /
Belov, Alexey A.
Control of discrete-time descriptor systems
an anisotropy-based approach /[electronic resource] :by Alexey A. Belov, Olga G. Andrianova, Alexander P. Kurdyukov. - Cham :Springer International Publishing :2018. - xx, 169 p. :ill., digital ;24 cm. - Studies in systems, decision and control,v.1572198-4182 ;. - Studies in systems, decision and control ;v. 2. .
Practical Application of Descriptor Systems -- Basics of Discrete-time Descriptor Systems Theory -- Anisotropy-based Analysis of LDTI Descriptor Systems -- Optimal Control -- Suboptimal Control -- Anisotropy-based Analysis for LDTI Descriptor Systems with Nonzero-Mean Input Signals -- Robust Anisotropy-based Control.
Control of Discrete-Time Descriptor Systems takes an anisotropy-based approach to the explanation of random input disturbance with an information-theoretic representation. It describes the random input signal more precisely, and the anisotropic norm minimization included in the book enables readers to tune their controllers better through the mathematical methods provided. The book contains numerous examples of practical applications of descriptor systems in various fields, from robotics to economics, and presents an information-theoretic approach to the mathematical description of coloured noise. Anisotropy-based analysis and design for descriptor systems is supplied along with proofs of basic statements, which help readers to understand the algorithms proposed, and to undertake their own numerical simulations. This book serves as a source of ideas for academic researchers and postgraduate students working in the control of discrete-time systems. The control design procedures outlined are numerically effective and easily implementable in MATLAB®.
ISBN: 9783319784793
Standard No.: 10.1007/978-3-319-78479-3doiSubjects--Topical Terms:
556563
Discrete-time systems.
LC Class. No.: QA402.3 / .B456 2018
Dewey Class. No.: 003.5
Control of discrete-time descriptor systems = an anisotropy-based approach /
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Practical Application of Descriptor Systems -- Basics of Discrete-time Descriptor Systems Theory -- Anisotropy-based Analysis of LDTI Descriptor Systems -- Optimal Control -- Suboptimal Control -- Anisotropy-based Analysis for LDTI Descriptor Systems with Nonzero-Mean Input Signals -- Robust Anisotropy-based Control.
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Control of Discrete-Time Descriptor Systems takes an anisotropy-based approach to the explanation of random input disturbance with an information-theoretic representation. It describes the random input signal more precisely, and the anisotropic norm minimization included in the book enables readers to tune their controllers better through the mathematical methods provided. The book contains numerous examples of practical applications of descriptor systems in various fields, from robotics to economics, and presents an information-theoretic approach to the mathematical description of coloured noise. Anisotropy-based analysis and design for descriptor systems is supplied along with proofs of basic statements, which help readers to understand the algorithms proposed, and to undertake their own numerical simulations. This book serves as a source of ideas for academic researchers and postgraduate students working in the control of discrete-time systems. The control design procedures outlined are numerically effective and easily implementable in MATLAB®.
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