An improved inverse optimal control design for affine-in-Input discrete-time nonlinear systems

This study presents an improved inverse optimal control (IOC) framework for both regulator and tracking control problems in affine-in-input discrete-time nonlinear dynamical systems. The proposed approach introduces state-dependent sigmoid weighting functions in the control input cost, enhancing design flexibility while preserving stability requirements. The effectiveness of the method is evaluated through regulator problems using a discrete-time nonlinear benchmark system and an unstable inverse pendulum, and through tracking problems using a real-time two-tank liquid level control system and an HIV infection dynamics model. Performance is assessed using various performance metrics. Results show that the proposed approach satisfies stability conditions of the IOC framework without requiring structural transformation of the system dynamics. In addition, it provides greater flexibility in controller parameter selection and achieves improved control performance compared with classical IOC methods. These findings demonstrate that the proposed design significantly enhances the applicability and effectiveness of IOC for affine-in-input discrete-time nonlinear systems.

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Publication Details

Journal
International Journal of General Systems
Published
2026-10-04
DOI
https://doi.org/10.1080/03081079.2026.2739429
Primary Topic
Control and Stability of Dynamical Systems
Type
article
Field-Weighted Citation Impact
0.00
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article

An improved inverse optimal control design for affine-in-Input discrete-time nonlinear systems

Meriç Çetin, Müjde Güzelkaya, İbrahim Eksin, Lütfi Ulusoy
International Journal of General Systems
Control and Stability of Dynamical Systems
article

An improved inverse optimal control design for affine-in-Input discrete-time nonlinear systems

Meriç Çetin, Müjde Güzelkaya, İbrahim Eksin, Lütfi Ulusoy
article en

Abstract

This study presents an improved inverse optimal control (IOC) framework for both regulator and tracking control problems in affine-in-input discrete-time nonlinear dynamical systems. The proposed approach introduces state-dependent sigmoid weighting functions in the control input cost, enhancing design flexibility while preserving stability requirements. The effectiveness of the method is evaluated through regulator problems using a discrete-time nonlinear benchmark system and an unstable inverse pendulum, and through tracking problems using a real-time two-tank liquid level control system and an HIV infection dynamics model. Performance is assessed using various performance metrics. Results show that the proposed approach satisfies stability conditions of the IOC framework without requiring structural transformation of the system dynamics. In addition, it provides greater flexibility in controller parameter selection and achieves improved control performance compared with classical IOC methods. These findings demonstrate that the proposed design significantly enhances the applicability and effectiveness of IOC for affine-in-input discrete-time nonlinear systems.

International Journal of General Systems
Tekirdağ Namık Kemal University (TR), Pamukkale University (TR), Istanbul Technical University (TR)
Openalex Percentile: Top 16%
Control and Stability of Dynamical Systems
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