Hybrid metaheuristic optimization for Bouc–Wen hysteresis modeling and robust control of piezoelectric actuators

This paper proposes a hybrid optimization algorithm combining the adaptive Marine Predators Algorithm (aMPA) and adaptive Differential Evolution (aDE) for parameter identification of the Bouc–Wen hysteresis model in piezoelectric actuators. The proposed aMPA–aDE algorithm improves the balance between global exploration and local exploitation, thereby enhancing convergence performance and identification robustness compared with standalone optimization methods. To evaluate its effectiveness, the proposed algorithm is compared with several optimization approaches, including MPA, aMPA, DE, CMA-ES, and aDE–Jaya. Comparative results show that the proposed aMPA–aDE algorithm achieves competitive convergence speed and identification accuracy. The proposed method is then applied to identify the Bouc–Wen hysteresis model using experimental input–output data obtained from a piezoelectric actuator. Furthermore, the identified hysteresis model is incorporated into a Sliding Mode Controller (SMC) for trajectory tracking and experimental verification under different reference signals. Experimental results demonstrate that the proposed method can effectively characterize the nonlinear hysteresis behavior of the piezoelectric actuator and provide satisfactory tracking performance.

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Publication Details

Journal
Journal of Intelligent Material Systems and Structures
Published
2026-10-09
DOI
https://doi.org/10.1177/1045389x261493794
Primary Topic
Piezoelectric Actuators and Control
Type
article
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article

Hybrid metaheuristic optimization for Bouc–Wen hysteresis modeling and robust control of piezoelectric actuators

Nguyễn Ngọc Sơn, Nguyễn Thị Thu Hằng
Journal of Intelligent Material Systems and Structures
Piezoelectric Actuators and Control
article

Hybrid metaheuristic optimization for Bouc–Wen hysteresis modeling and robust control of piezoelectric actuators

Nguyễn Ngọc Sơn, Nguyễn Thị Thu Hằng
article en

Abstract

This paper proposes a hybrid optimization algorithm combining the adaptive Marine Predators Algorithm (aMPA) and adaptive Differential Evolution (aDE) for parameter identification of the Bouc–Wen hysteresis model in piezoelectric actuators. The proposed aMPA–aDE algorithm improves the balance between global exploration and local exploitation, thereby enhancing convergence performance and identification robustness compared with standalone optimization methods. To evaluate its effectiveness, the proposed algorithm is compared with several optimization approaches, including MPA, aMPA, DE, CMA-ES, and aDE–Jaya. Comparative results show that the proposed aMPA–aDE algorithm achieves competitive convergence speed and identification accuracy. The proposed method is then applied to identify the Bouc–Wen hysteresis model using experimental input–output data obtained from a piezoelectric actuator. Furthermore, the identified hysteresis model is incorporated into a Sliding Mode Controller (SMC) for trajectory tracking and experimental verification under different reference signals. Experimental results demonstrate that the proposed method can effectively characterize the nonlinear hysteresis behavior of the piezoelectric actuator and provide satisfactory tracking performance.

Journal of Intelligent Material Systems and Structures
Industrial University of Ho Chi Minh City (VN), Saigon University (VN)
Openalex Percentile: Top 16%
Piezoelectric Actuators and Control
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Hybrid metaheuristic optimization for Bouc–Wen hysteresis modeling and robust control of piezoelectric actuators — Nguyễn Ngọc Sơn, Nguyễn Thị Thu Hằng · Journal of Intelligent Material Systems and Structures (2026) | TGRS Research Map | TGRS