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Distributed optimal control of nonlinear systems using a second-order augmented Lagrangian method
Linköpings universitet, Institutionen för systemteknik, Reglerteknik. Linköpings universitet, Tekniska fakulteten.ORCID-id: 0000-0001-9520-5153
Linköpings universitet, Institutionen för systemteknik, Reglerteknik. Linköpings universitet, Tekniska fakulteten.
2023 (engelsk)Inngår i: European Journal of Control, ISSN 0947-3580, E-ISSN 1435-5671, Vol. 70, artikkel-id 100768Artikkel i tidsskrift (Fagfellevurdert) Published
Abstract [en]

In this paper, we propose a distributed second-order augmented Lagrangian method for distributed optimal control problems, which can be exploited for distributed model predictive control. We employ a primal-dual interior-point approach for the inner iteration of the augmented Lagrangian and distribute the corresponding computations using message passing over what is known as the clique tree of the problem. The algorithm converges to its centralized counterpart and it requires fewer communications between sub-systems as compared to algorithms such as the alternating direction method of multipliers. We illustrate the efficiency of the framework when applied to randomly generated interconnected sub-systems as well as to a vehicle platooning problem.

sted, utgiver, år, opplag, sider
Elsevier, 2023. Vol. 70, artikkel-id 100768
HSV kategori
Identifikatorer
URN: urn:nbn:se:liu:diva-191554DOI: 10.1016/j.ejcon.2022.100768ISI: 000964867500001OAI: oai:DiVA.org:liu-191554DiVA, id: diva2:1732428
Merknad

Funding: Wallenberg AI, Autonomous Systems and Software Program (WASP) - Knut and Alice Wallenberg Foundation

Tilgjengelig fra: 2023-01-31 Laget: 2023-01-31 Sist oppdatert: 2023-05-08bibliografisk kontrollert
Inngår i avhandling
1. Distributed Optimization for Control and Estimation
Åpne denne publikasjonen i ny fane eller vindu >>Distributed Optimization for Control and Estimation
2022 (engelsk)Doktoravhandling, med artikler (Annet vitenskapelig)
Abstract [en]

Adopting centralized optimization approaches in order to solve optimization problem arising from analyzing large-scale systems, requires a powerful computational unit. Such units, however, do not always exist. In addition, it is not always possible to form the optimization problem in a centralized manner due to structural constraints or privacy requirements. A possible solution in these cases is to use distributed optimization approaches. Many large-scale systems have inherent structures which can be exploited to develop scalable optimization approaches. In this thesis, chordal graph properties are used in order to design tailored distributed optimization approaches for applications in control and estimation, and especially for model predictive control and localization problems. The first contribution concerns a distributed primal-dual interior-point algorithm for which it is investigated how parallelism can be exploited. In particular, it is shown how the computations of the algorithm can be distributed on different processors so that they can be run in parallel. As a result, the algorithm execution time is accelerated compared to the case where the algorithm is run on a single processor. Simulation studies on linear model predictive control and robust model predictive control confirm the efficiency of the framework. The second contribution is to devise a tailored distributed algorithm for nonlinear least squares with application to a sensor network location problem. It relies on the Levenberg-Marquardt algorithm, in which the computations are distributed using message passing over the computational graph of the problem, which is obtained from what is known as the clique tree of the problem. The results indicate that the algorithm provides not only a good localization accuracy, but also it requires fewer iterations and communications between computational agents in order to converge compared to known first-order methods. The third contribution is a study of extending the message passing idea in order to design tailored distributed algorithm for general non-convex problems. The framework relies on an augmented Lagrangian algorithm in which a primal-dual interior-point method is used for the inner iteration. Application of the framework for general model predictive control of systems with several interconnected sub-systems is extensively investigated. The performance of the framework is then compared with distributed methods based on the alternating direction method of multipliers, where the superiority of the framework is illustrated.

sted, utgiver, år, opplag, sider
Linköping: Linköping University Electronic Press, 2022. s. 26
Serie
Linköping Studies in Science and Technology. Dissertations, ISSN 0345-7524 ; 2207
HSV kategori
Identifikatorer
urn:nbn:se:liu:diva-182567 (URN)10.3384/9789179291983 (DOI)9789179291976 (ISBN)9789179291983 (ISBN)
Disputas
2022-03-11, Ada Lovelace, B-building, Campus Valla, Linköping, 10:00 (engelsk)
Opponent
Veileder
Forskningsfinansiär
Wallenberg AI, Autonomous Systems and Software Program (WASP)
Merknad

ISBN has been added for the PDF version.

Funded by the Knut and Alice Wallenberg Foundation

Tilgjengelig fra: 2022-02-04 Laget: 2022-01-27 Sist oppdatert: 2023-04-03bibliografisk kontrollert

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