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Robust Event-Triggered MPC for Constrained Linear Discrete-Time Systems with Guaranteed Average Sampling Rate

机译:具有保证平均采样率的受限线性离散时间系统的强大的事件触发MPC

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We propose a robust event-triggered model predictive control (MPC) scheme for linear time-invariant discrete-time systems subject to bounded additive stochastic disturbances and hard constraints on the input and state. For given probability distributions of the disturbances acting on the system, we design event conditions such that the average frequency of communication between the controller and the actuator in the closed-loop system attains a given value. We employ Tube MPC methods to guarantee robust constraint satisfaction and a robust asymptotic bound on the system state. Moreover, we show that based on a given periodically updated Tube MPC scheme, an appropriate event-triggered MPC scheme can be designed, with the same guarantees on constraints and region of attraction, but with a reduced number of average communications.
机译:我们提出了一种强大的事件触发的模型预测控制(MPC)方案,用于线性时间不变的离散时间系统,对输入和状态进行有界附加随机扰动和硬约束。对于作用在系统上的扰动的概率分布,我们设计事件条件,使得控制器和闭环系统中的致动器之间的通信的平均频率达到给定值。我们采用管MPC方法来保证稳健的约束满意度和系统状态上的稳健性渐近。此外,我们示出了基于定期更新的管MPC方案,可以设计适当的事件触发的MPC方案,其限制和吸引区域的保证,但具有减少的平均通信数量。

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