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April 13, 2026IEEE Transactions on Cybernetics0 citations

A Lyapunov-Based Event-Triggered Model Predictive Control Approach for Safe Tracking Control of Discrete-Time Nonlinear Systems

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XLXinyu LiHYHuaiguang YangSLShu Li

Key Points

  • The aim is to develop an event-triggered model predictive control approach that enhances computational efficiency while ensuring safety and stability in nonlinear systems.
  • Proposed a Lyapunov-based event-trigger mechanism for MPC.
  • Incorporated control barrier functions (CBFs) and control Lyapunov functions (CLFs) as constraints in MPC optimization.
  • Analyzed recursive feasibility of the proposed algorithm and evaluated infeasibility with respect to hard CBF constraints.
  • Established input-to-state practical stability (ISpS) for the closed-loop system.
  • The event-triggered approach reduces unnecessary controller updates, resulting in lower computational costs.
  • Tracking performance remains comparable to conventional time-triggered MPC methods.
  • Simulation results confirm the effectiveness of the proposed CBF-CLF-MPC algorithm.

Abstract

In this article, a novel Lyapunov-based event-trigger mechanism is proposed to reduce the computation cost of model predictive control (MPC) algorithm for discrete-time nonlinear input-affine safety-critical systems. Unlike conventional approaches that require continuous error monitoring, the proposed mechanism leverages the predictive capability of MPC to determine triggering instants directly based on the evolution of the closed-loop Lyapunov function. Safety and stability are enforced by incorporating control barrier functions (CBFs) and control Lyapunov functions (CLFs) as constraints within the MPC optimization. Furthermore, the recursive feasibility of the proposed event-triggered MPC algorithm is rigorously analyzed, with special attention to the potential infeasibility caused by hard CBF constraints. Input-to-state practical stability (ISpS) of the resulting closed-loop system is also established. Simulation results demonstrate that the proposed event-triggered CBF-CLF-MPC algorithm effectively eliminates unnecessary controller updates, reducing computational consumption while maintaining tracking performance comparable to that of a conventional time-triggered MPC algorithm.

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Cite This Study

Li et al. (2026) studied this question.

synapsesocial.com/papers/69dc87ea3afacbeac03e9faahttps://doi.org/10.1109/tcyb.2026.3678617
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