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Nonlinear Filters: Theory and Applications

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Nonlinear Filters: Theory and Applications

Peyman Setoodeh, Saeid Habibi, Simon Haykin
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This book fills the gap between the literature on nonlinear filters and nonlinear observers by presenting a new state estimation strategy, the smooth variable structure filter (SVSF). The book is a valuable resource to researchers outside of the control society, where literature on nonlinear observers is less well-known. SVSF is a predictor-corrector estimator that is formulated based on a stability theorem, to confine the estimated states within a neighborhood of their true values. It has the potential to improve performance in the presence of severe and changing modeling uncertainties and noise. An important advantage of the SVSF is the availability of a set of secondary performance indicators that pertain to each estimate. this allows for dynamic refinement of the filter model. The combination of SVSF's robust stability and its secondary indicators of performance make it a powerful estimation tool, capable of compensating for uncertainties that are abruptly introduced in the system.
年:
2022
出版社:
Wiley
语言:
english
页:
307
ISBN 10:
1118835816
ISBN 13:
9781118835814
文件:
PDF, 3.13 MB
IPFS:
CID , CID Blake2b
english, 2022
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