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Practical Absolute Stabilization of Lur'e Systems via Periodic Event-Triggered Feedback

机译:通过周期性事件触发的反馈实现Lur'e系统的实际绝对稳定

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This paper deals with communication-aware absolute stabilization problems of Lur'e systems using intermittent state information. The full state information is sampled periodically, but transmitted over communication networks to the controller aperiodically according to an event-triggering strategy. The sequence of the event-triggering transmission instants is certainly a subset of that of the time-triggering sampling instants. Hence the time-triggering strategy prevents the event-triggering strategy from the so-called Zeno behavior immediately. We employ the emulation-based approach and divide the controller design procedure into two steps. First, we present a time-triggered controller guaranteeing the global exponential absolute stability for the resulting closed-loop Lur'e system. The obtained sufficient stability conditions involving the state feedback gain matrix and the constant sampling period are derived by means of absolute stability theory. Subsequently, its robustness is analyzed against the control input error induced by the event-triggering mechanism. Under a prescribed periodic event-triggering strategy with a freely selectable parameter, a periodic event-triggered controller is obtained for the Lur'e system to achieve practical exponential absolute stabilization. Finally, linear matrix inequality (LMI) techniques are used to compute all the control parameters.
机译:本文使用间歇状态信息处理Lur'e系统中具有通信意识的绝对稳定问题。完整状态信息会定期进行采样,但会根据事件触发策略通过通信网络不定期地传输到控制器。触发事件的传输瞬间的顺序当然是触发时间的采样瞬间的子集。因此,时间触发策略立即阻止了事件触发策略的所谓的Zeno行为。我们采用基于仿真的方法,并将控制器设计过程分为两个步骤。首先,我们提出了一个时间触发的控制器,以保证所产生的闭环Lur'e系统的全局指数绝对稳定性。利用绝对稳定性理论推导了所获得的涉及状态反馈增益矩阵和恒定采样周期的充分稳定性条件。随后,针对事件触发机制引起的控制输入错误,分析了其鲁棒性。在具有可自由选择参数的规定周期性事件触发策略下,为Lur'e系统获得周期性事件触发控制器,以实现实际的指数绝对稳定。最后,线性矩阵不等式(LMI)技术用于计算所有控制参数。

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