English

Observer design for classes of nonlinear port-Hamiltonian systems

Optimization and Control 2026-04-06 v1

Abstract

This paper presents a systematic observer design methodology for a class of port-Hamiltonian (pH) systems with state-dependent input matrices. Such systems can model a wide range of electromechanical systems, including magnetic levitation systems, MEMS devices, and electro-active polymer actuators such as DEA actuators, HASEL actuators, etc. In these applications, state-dependent input matrices naturally arise when the system is modeled under quasi-static electrical assumptions. An LPV polytopic embedding framework, together with LMI-based synthesis conditions, is proposed. The nonlinear error dynamics are represented as a convex combination of linear vertex systems using an integral mean value representation, which enables systematic computation of the observer gains that ensures exponential convergence. Both constant-gain and gain-scheduled observers are derived. Numerical results demonstrate the effectiveness of the proposed observer, with the gain-scheduled design achieving a significant increase in the maximum certifiable decay rate compared with constant-gain approaches, thereby reducing conservatism.

Keywords

Cite

@article{arxiv.2604.03151,
  title  = {Observer design for classes of nonlinear port-Hamiltonian systems},
  author = {Filippo Ugolini and Ning Liu and Yongxin Wu and Yann Le Gorrec and Alessandro Macchelli},
  journal= {arXiv preprint arXiv:2604.03151},
  year   = {2026}
}
R2 v1 2026-07-01T11:53:02.751Z