Output Feedback Adaptive Tracking Control for Uncertain Strict-Feedback Nonlinear Systems with Full-State Constraints and Unknown Output Gain
Abstract
1. Introduction
- (1)
- An adaptive state observer is developed to reconstruct the unmeasured states under unknown output gain. By introducing a new error signal with an adaptive compensation coefficient into the observer-based backstepping design, together with the corresponding adaptive updating laws, the adverse effect of unknown output gain on tracking performance can be effectively reduced.
- (2)
- To handle asymmetric time-varying full-state constraints, a control design combining the universal transformed function with a novel coordinate transformation is proposed. The developed method guarantees that all system states remain within the prescribed asymmetric constraint boundaries throughout the entire operation process, without requiring the strict feasibility conditions encountered in conventional BLF-based approaches.
- (3)
- By integrating adaptive state estimation and constraint-handling mechanisms into a single design, the proposed approach addresses the challenge of guaranteeing constraint satisfaction when the available output information is affected by unknown gain. Different from the compensation-based control methods in [16,17], where asymmetric full-state constraints are not explicitly addressed, the proposed method further incorporates a constraint-handling mechanism into the output-feedback control design. In addition, compared with the constrained control methods in [26], where adaptive compensation for unknown output gain was not considered, an adaptive compensation mechanism is incorporated in the proposed design to effectively reduce the influence of unknown output gain while ensuring constraint satisfaction.
2. Problem Statement and Preliminaries
2.1. Problem Statement
- (1)
- The closed-loop signals in the system are globally uniformly ultimately bounded.
- (2)
- The system output y is required to follow the reference trajectory while ensuring that all system states remain within the time-varying asymmetric boundaries:In this formulation, and are positive and twice differentiable constraint functions, respectively.
2.2. Preliminaries
3. Output-Feedback Adaptive Tracking Control Design
3.1. Universal Transformed Functions
3.2. Design of Adaptive State Observer
3.3. Design of Backstepping Adaptive Controller
3.4. Stability Analysis
- (1)
- All signals in the closed-loop system remain uniformly bounded;
- (2)
- The system states always evolve within the time-varying asymmetric constraint bounds.
4. Simulation
5. Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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| Performance Metrics | ERMS | MAE | IAE |
|---|---|---|---|
| Ours | 0.010867 | 0.217339 | |
| In [17] | 0.011610 | 0.232208 |
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Wang, Z.; Hashimoto, S.; Nie, P.; Xu, S.; Kawaguchi, T. Output Feedback Adaptive Tracking Control for Uncertain Strict-Feedback Nonlinear Systems with Full-State Constraints and Unknown Output Gain. Sensors 2026, 26, 3084. https://doi.org/10.3390/s26103084
Wang Z, Hashimoto S, Nie P, Xu S, Kawaguchi T. Output Feedback Adaptive Tracking Control for Uncertain Strict-Feedback Nonlinear Systems with Full-State Constraints and Unknown Output Gain. Sensors. 2026; 26(10):3084. https://doi.org/10.3390/s26103084
Chicago/Turabian StyleWang, Zhenlin, Seiji Hashimoto, Pengqiang Nie, Song Xu, and Takahiro Kawaguchi. 2026. "Output Feedback Adaptive Tracking Control for Uncertain Strict-Feedback Nonlinear Systems with Full-State Constraints and Unknown Output Gain" Sensors 26, no. 10: 3084. https://doi.org/10.3390/s26103084
APA StyleWang, Z., Hashimoto, S., Nie, P., Xu, S., & Kawaguchi, T. (2026). Output Feedback Adaptive Tracking Control for Uncertain Strict-Feedback Nonlinear Systems with Full-State Constraints and Unknown Output Gain. Sensors, 26(10), 3084. https://doi.org/10.3390/s26103084

