Identification of Additive Continuous-time Systems in Open and Closed loop

Fuente: arXiv
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Auteurs principaux: González, Rodrigo A., Classens, Koen, Rojas, Cristian R., Welsh, James S., Oomen, Tom
Format: Preprint
Publié: 2024
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author González, Rodrigo A.
Classens, Koen
Rojas, Cristian R.
Welsh, James S.
Oomen, Tom
author_facet González, Rodrigo A.
Classens, Koen
Rojas, Cristian R.
Welsh, James S.
Oomen, Tom
contents When identifying electrical, mechanical, or biological systems, parametric continuous-time identification methods can lead to interpretable and parsimonious models when the model structure aligns with the physical properties of the system. Traditional linear system identification may not consider the most parsimonious model when relying solely on unfactored transfer functions, which typically result from standard direct approaches. This paper presents a novel identification method that delivers additive models for both open and closed-loop setups. The estimators that are derived are shown to be generically consistent, and can admit the identification of marginally stable additive systems. Numerical simulations show the efficacy of the proposed approach, and its performance in identifying a modal representation of a flexible beam is verified using experimental data.
format Preprint
id arxiv_https___arxiv_org_abs_2401_01263
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Identification of Additive Continuous-time Systems in Open and Closed loop
González, Rodrigo A.
Classens, Koen
Rojas, Cristian R.
Welsh, James S.
Oomen, Tom
Systems and Control
When identifying electrical, mechanical, or biological systems, parametric continuous-time identification methods can lead to interpretable and parsimonious models when the model structure aligns with the physical properties of the system. Traditional linear system identification may not consider the most parsimonious model when relying solely on unfactored transfer functions, which typically result from standard direct approaches. This paper presents a novel identification method that delivers additive models for both open and closed-loop setups. The estimators that are derived are shown to be generically consistent, and can admit the identification of marginally stable additive systems. Numerical simulations show the efficacy of the proposed approach, and its performance in identifying a modal representation of a flexible beam is verified using experimental data.
title Identification of Additive Continuous-time Systems in Open and Closed loop
topic Systems and Control
url https://arxiv.org/abs/2401.01263