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Data-Driven Inverse of Linear Systems and Application to Disturbance Observers
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Title
Data-Driven Inverse of Linear Systems and Application to Disturbance Observers
Issued Date
2023-06-01
Citation
Eun, Yongsoon. (2023-06-01). Data-Driven Inverse of Linear Systems and Application to Disturbance Observers. 2023 American Control Conference, ACC 2023, 2806–2811. doi: 10.23919/ACC55779.2023.10156256
Type
Conference Paper
ISBN
9798350328066
ISSN
2378-5861
Abstract
This work develops a data-based construction of inverse dynamics for LTI systems. Specifically, the problem addressed here is to find an input sequence from the corresponding output sequence based on pre-collected input and output data. The problem can be considered as a reverse of the recent use of the behavioral approach, in which the output sequence is obtained for a given input sequence by solving an equation formed by pre-collected data. The condition under which the problem gives a solution is investigated and turns out to be L-delay invertibility of the plant and a certain degree of persistent excitation of the data input. The result is applied to form a data-driven disturbance observer. The plant dynamics augmented by the data-driven disturbance observer exhibits disturbance rejection without the model knowledge of the plant. © 2023 American Automatic Control Council.
URI
http://hdl.handle.net/20.500.11750/47896
DOI
10.23919/ACC55779.2023.10156256
Publisher
American Automatic Control Council
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은용순
Eun, Yongsoon은용순

Department of Electrical Engineering and Computer Science

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