Sliding Mode Control and Observation

aeronautical, and industrial engineering, applied mathematicians, control engineers, and physicists. Sliding Mode Control and Observation provides the necessary tools for graduate students, researchers and engineers to robustly control complex and uncertain nonlinear dynamical systems. Exercises pro...

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Bibliographic Details
Main Authors: Shtessel, Yuri, Edwards, Christopher (Author), Fridman, Leonid (Author), Levant, Arie (Author)
Format: eBook
Language:English
Published: New York, NY Birkhäuser 2014, 2014
Edition:1st ed. 2014
Series:Control Engineering
Subjects:
Online Access:
Collection: Springer eBooks 2005- - Collection details see MPG.ReNa
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245 0 0 |a Sliding Mode Control and Observation  |h Elektronische Ressource  |c by Yuri Shtessel, Christopher Edwards, Leonid Fridman, Arie Levant 
250 |a 1st ed. 2014 
260 |a New York, NY  |b Birkhäuser  |c 2014, 2014 
300 |a XVII, 356 p. 168 illus  |b online resource 
505 0 |a Preface -- Introduction: intuitive theory of sliding mode control -- Conventional Sliding Modes -- Conventional Sliding Mode Observers -- Second order sliding mode controllers and differentiators -- Analysis of sliding mode controllers in the frequency domain -- Higher order sliding mode controllers and differentiators -- Observation and Identification via HOSM-Observers -- Disturbance Observer Based Control: Aerospace Applications -- A Mathematical Preliminaries -- B Describing Functions -- C Linear Systems Theory -- D Lyapunov Stability -- Bibliography 
653 |a Mechanics, Applied 
653 |a Control, Robotics, Automation 
653 |a Engineering mathematics 
653 |a Engineering design 
653 |a Control theory 
653 |a Systems Theory, Control 
653 |a Multibody Systems and Mechanical Vibrations 
653 |a System theory 
653 |a Vibration 
653 |a Control engineering 
653 |a Robotics 
653 |a Engineering / Data processing 
653 |a Engineering Design 
653 |a Multibody systems 
653 |a Automation 
653 |a Mathematical and Computational Engineering Applications 
700 1 |a Edwards, Christopher  |e [author] 
700 1 |a Fridman, Leonid  |e [author] 
700 1 |a Levant, Arie  |e [author] 
041 0 7 |a eng  |2 ISO 639-2 
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490 0 |a Control Engineering 
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520 |a aeronautical, and industrial engineering, applied mathematicians, control engineers, and physicists. Sliding Mode Control and Observation provides the necessary tools for graduate students, researchers and engineers to robustly control complex and uncertain nonlinear dynamical systems. Exercises provided at the end of each chapter make this an ideal text for an advanced course taught in control theory 
520 |a The sliding mode control methodology has proven effective in dealing with complex dynamical systems affected by disturbances, uncertainties and unmodeled dynamics. Robust control technology based on this methodology has been applied to many real-world problems, especially in the areas of aerospace control, electric power systems, electromechanical systems, and robotics. Sliding Mode Control and Observation represents the first textbook that starts with classical sliding mode control techniques and progresses toward newly developed higher-order sliding mode control and observation algorithms and their applications.  
520 |a The present volume addresses a range of sliding mode control issues, including: *Conventional sliding mode controller and observer design *Second-order sliding mode controllers and differentiators *Frequency domain analysis of conventional and second-order sliding mode controllers *Higher-order sliding mode controllers and differentiators *Higher-order sliding mode observers *Sliding mode disturbance observer based control *Numerous applications, including reusable launch vehicle and satellite formation control, blood glucose regulation, and car steering control are used as case studies Sliding Mode Control and Observation is aimed at graduate students with a basic knowledge of classical control theory and some knowledge of state-space methods and nonlinear systems, while being of interest to a wider audience of graduate students in electrical/mechanical/aerospace engineering and applied mathematics, as well as researchers in electrical, computer, chemical, civil, mechanical,