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April 6, 2026Scientific Reports2 citationsOpen Access

A novel nonlinear PID controller design with adaptive gains

AOAbdulkadir S. OzgunESErman SelimABAlper Bayrak

Key Points

  • This research aims to develop a nonlinear PID controller that adapts its gains to enhance performance in nonlinear systems under uncertainties.
  • Designed a nonlinear PID control architecture with adaptive gain updates.
  • Conducted stability analysis using Lyapunov-type methods.
  • Validated the controller through experimental studies on a real-time platform.
  • Analyzed performance improvements over conventional fixed-gain PID controllers.
  • Proven semi-global uniform ultimate stability (SGUUS) of the tracking error.
  • Achieved significant reductions in average tracking errors in pitch and roll compared to fixed-gain PID.
  • Demonstrated robustness against uncertainties and effective disturbance rejection.

Abstract

In this study, a novel nonlinear PID controller is developed for a class of second-order nonlinear systems subject to uncertainties and external disturbances. The proposed control architecture preserves the intuitive structure of the conventional PID framework while enhancing it through a systematically designed nonlinear adaptation mechanism. In particular, the controller gains are updated online via a newly constructed adaptive update rule with an innovative structural formulation, enabling improved performance under varying operating conditions. A rigorous stability analysis of the closed-loop system is carried out using Lyapunov-type methods specifically tailored for the proposed adaptive structure. It is formally proven that all closed-loop signals remain bounded, and semi-global uniform ultimate stability (SGUUS) of the tracking error is guaranteed. Unlike many adaptive or nonlinear PID formulations in the literature, the derived stability results are not limited solely to the adaptive case. It is emphasized that the proposed analytical framework is also directly applicable to classical constant-gain PID controllers. Therefore, this study additionally provides a novel stability analysis of PID control for second-order nonlinear systems, extending existing theoretical results. The practical applicability and robustness of the proposed control methodology are validated through extensive experimental studies conducted on a real-time platform. The experimental results demonstrate improved tracking performance, robustness against uncertainties, and effective disturbance rejection. The proposed controller reduces the average tracking errors by about Formula: see text in pitch and Formula: see text in roll compared with the fixed-gain PID case, thereby confirming the theoretical findings and highlighting the effectiveness of the proposed nonlinear PID design.

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Cite This Study

Ozgun et al. (2026) studied this question.

synapsesocial.com/papers/69d34d5c9c07852e0af975a3https://doi.org/10.1038/s41598-026-47124-2
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