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On inherent limitations in robustness and performance for a class of prescribed-time algorithms

Aldana López, Rodrigo et al · Pergamon-Elsevier Science Ltd · 2023

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Prescribed-time algorithms based on time-varying gains may have remarkable properties, such as regulation in a user-prescribed finite time that is the same for every nonzero initial condition and that holds even under matched disturbances. However, at the same time, such algorithms are known to lack robustness to measurement noise. This note shows that the lack of robustness of a class of prescribed-time algorithms is of an extreme form. Specifically, we show the existence of arbitrarily small measurement noises causing considerable deviations, divergence, and other detrimental consequences. We also discuss some drawbacks and trade-offs of existing workarounds as motivation for further analysis. Fil: Aldana López, Rodrigo. Universidad de Zaragoza; España Fil: Seeber, Richard. University of Graz; Austria

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APA 7

Aldana López, R. E. A. (2023). On inherent limitations in robustness and performance for a class of prescribed-time algorithms. http://hdl.handle.net/11336/231431

MLA

Aldana López, Rodrigo et al. "On inherent limitations in robustness and performance for a class of prescribed-time algorithms." 2023. http://hdl.handle.net/11336/231431.

Chicago

Aldana López, Rodrigo et al. 2023. "On inherent limitations in robustness and performance for a class of prescribed-time algorithms.". http://hdl.handle.net/11336/231431.

Harvard

Aldana López, R. E. A. 2023, On inherent limitations in robustness and performance for a class of prescribed-time algorithms, Pergamon-Elsevier Science Ltd, available at: http://hdl.handle.net/11336/231431 [Accessed 7 Aug. 2026].

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Title
On inherent limitations in robustness and performance for a class of prescribed-time algorithms
Author / contributors
Aldana López, Rodrigo et al
Publisher
Pergamon-Elsevier Science Ltd
Publication year
2023
ISSN
0005-1098
ISSN
0005-1098
Language
English

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