Model-free stabilization by extremum seeking / Alexander Scheinker, Miroslav Krstić.
By: Scheinker, Alexander.
Contributor(s): Krstić, Miroslav
Material type:
E-bookSeries: (SpringerBriefs in electrical and computer engineering, 2191-8112).Publisher: Cham : Springer, 2017Description: 1 recurso en línea.ISBN: 3319507907; 9783319507903.Subject: Inteligencia artificial
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Madrid Digital Acceso Electrónico (UEM) | Ciencias e Ingeniería | Q172.5.V37 S345 2017 EB (Browse shelf(Opens below)) | Acceso electrónico | eBook.20022692 |
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SpringerLink Springer Engineering eBooks 2017 English+International
Incluye referencias bibliográficas
Introduction -- Weak Limit Averaging for Studying the Dynamics of Extremum-Seeking-Stabilized Systems -- Minimization of Lyapunov Functions -- Control Affine Systems -- Non-C2 Extremum Seeking -- Bounded Extremum Seeking -- Extremum Seeking for Stabilization of Systems Not Affine in Control -- General Choice of Extremum-Seeking Dithers -- Application Study: Particle Accelerator Tuning.
With this brief, the authors present algorithms for model-free stabilization of unstable dynamic systems. An extremum-seeking algorithm assigns the role of a cost function to the dynamic system's control Lyapunov function (clf) aiming at its minimization. The minimization of the clf drives the clf to zero and achieves asymptotic stabilization. This approach does not rely on, or require knowledge of, the system model. Instead, it employs periodic perturbation signals, along with the clf. The same effect is achieved as by using clf-based feedback laws that profit from modeling knowledge, but in a time-average sense. Rather than use integrals of the systems vector field, we employ Lie-bracket-based (i.e., derivative-based) averaging. The brief contains numerous examples and applications, including examples with unknown control directions and experiments with charged particle accelerators. It is intended for theoretical control engineers and mathematicians, and practitioners working in various industrial areas and in robotics.
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