Tensor-based reduction of linear parameter-varying state-space models

Fuente: arXiv
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Main Authors: Terzin, Bogoljub, Olucha, E. Javier, Das, Amritam, Weiland, Siep, Tóth, Roland
Format: Preprint
Published: 2025
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author Terzin, Bogoljub
Olucha, E. Javier
Das, Amritam
Weiland, Siep
Tóth, Roland
author_facet Terzin, Bogoljub
Olucha, E. Javier
Das, Amritam
Weiland, Siep
Tóth, Roland
contents The Linear Parameter-Varying (LPV) framework is a powerful tool for controlling nonlinear and complex systems, but the conversion of nonlinear models into LPV forms often results in high-dimensional and overly conservative LPV models. To be able to apply control strategies, there is often a need for model reduction in order to reduce computational needs. This paper presents the first systematic approach for the joint reduction of state order and scheduling signal dimension of LPV state space models. The existing methods typically address these reductions separately. By formulating a tensorial form of LPV models with an affine dependency on the scheduling variables, we leverage tensor decomposition to find the dominant components of state and scheduling subspaces. We extend the common Petrov-Galerkin projection approach to LPV framework by adding a scheduling projection. This extension enables the joint reduction. To find suitable subspaces for the extended Petrov-Galerkin projection, we have developed two different methods: tensor-based LPV moment matching, and an approach through Proper Orthogonal Decomposition. Advantages of the proposed methods are demonstrated on two different series-interconnected mass-spring-damper systems with nonlinear springs: one primarily used for comparison with other methods and a more elaborate higher-order model designed to assess scalability.
format Preprint
id arxiv_https___arxiv_org_abs_2507_23591
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Tensor-based reduction of linear parameter-varying state-space models
Terzin, Bogoljub
Olucha, E. Javier
Das, Amritam
Weiland, Siep
Tóth, Roland
Systems and Control
The Linear Parameter-Varying (LPV) framework is a powerful tool for controlling nonlinear and complex systems, but the conversion of nonlinear models into LPV forms often results in high-dimensional and overly conservative LPV models. To be able to apply control strategies, there is often a need for model reduction in order to reduce computational needs. This paper presents the first systematic approach for the joint reduction of state order and scheduling signal dimension of LPV state space models. The existing methods typically address these reductions separately. By formulating a tensorial form of LPV models with an affine dependency on the scheduling variables, we leverage tensor decomposition to find the dominant components of state and scheduling subspaces. We extend the common Petrov-Galerkin projection approach to LPV framework by adding a scheduling projection. This extension enables the joint reduction. To find suitable subspaces for the extended Petrov-Galerkin projection, we have developed two different methods: tensor-based LPV moment matching, and an approach through Proper Orthogonal Decomposition. Advantages of the proposed methods are demonstrated on two different series-interconnected mass-spring-damper systems with nonlinear springs: one primarily used for comparison with other methods and a more elaborate higher-order model designed to assess scalability.
title Tensor-based reduction of linear parameter-varying state-space models
topic Systems and Control
url https://arxiv.org/abs/2507.23591