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Author

Zhi-Wei Hua

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Sep 2026

Exact Tracking Under Unknown Switching Control Directions and Input Delay: A Predefined-Time Control Approach for Multiagent Systems

Most existing results on nonlinear systems with unknown control directions (CDs) focus on asymptotic tracking. This article investigates the problem of adaptive predefined-time (PT) precise tracking for a class of nonlinear multiagent systems (MASs) with unknown finitely switching CDs and time-varying input delay. A novel control framework is established by introducing monotonically increasing sequences, which extends the classical Nussbaum function methodology to scenarios involving finitely switchable and completely unknown CDs via a proof by contradiction mechanism. Moreover, to compensate for the input delay, a class of delay compensation signals is introduced. By incorporating fuzzy logic systems and bounded estimation techniques, it is rigorously proven that the tracking error converges to zero within a PT, while simultaneously ensuring that full-state constraints are satisfied and all closed-loop signals are semiglobally ultimately bounded. The proposed method offers improved control performance and a broader applicability compared to existing approaches. Numerical simulations are provided to demonstrate the effectiveness of the proposed strategy.

Zhi-Wei Hua, Sheng-Yuan Xu, C. Ahn · 0 citations
Sep 2026

Global Fixed‐Time Exact Tracking for Uncertain High‐Order Nonlinear Systems With Quantized Input

This article investigates the problem of global fixed‐time (FT) exact tracking control for high‐order nonlinear systems (HONSs) characterized by input quantization and external disturbances. Most existing approaches for handling unknown nonlinearities rely on radial basis function neural networks (RBFNNs) or fuzzy logic systems (FLS), which typically ensure only ultimately semi‐globally bounded stability. To address this limitation, an FT output tracking control strategy with prescribed performance is developed by integrating the barrier Lyapunov function (BLF) technique with an auxiliary power integrator and a bounded estimation method. The proposed scheme guarantees that the tracking error converges to zero within an FT, while ensuring the global boundedness of all closed‐loop signals and the strict satisfaction of state constraints. Moreover, the control design does not require function approximation, parameter identification, or command filtering, and effectively avoids the singularity problem. The effectiveness of the proposed method is validated through two numerical examples.

Zhi-Wei Hua · 0 citations

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