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首页> 外文期刊>Control Theory & Applications, IET >Stabilisation of event-triggered-based neural network control system and its application to wind power generation systems
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Stabilisation of event-triggered-based neural network control system and its application to wind power generation systems

机译:基于事件触发的神经网络控制系统的稳定及其在风力发电系统中的应用

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摘要

This study addresses the event-triggered (ET)-based stabilisation problem of neural-network-based control system (NNBCS) and illustrates the direct application to wind power generation system. In this regard, the novel ET-based controller algorithm is designed for NNBCS instead of sampled data controller (sampling will be initiated at a fixed rate regardless whether it is required or not) which reduces the computation complexity by avoiding the unnecessary details over the transmission. The novel stability and stabilisation conditions are expressed in terms of linear matrix inequalities that are derived through constructing the time-dependent Lyapunov functional candidate. For deepening the knowledge in the outcomes of the proposed conditions, the study numerically evaluates the dynamic models such as variable-speed wind turbine drive system, permanent magnet synchronous motors model and traditional inverted pendulum model and validates the effectiveness of the proposed controller scheme. Finally, a comparison result shows the superiority of the derived conditions.
机译:本研究解决了基于神经网络的控制系统(NNBC)的事件触发(ET)基础的稳定问题,并说明了风力发电系统的直接应用。在这方面,基于新的ET的控制器算法设计用于NNBCS而不是采样数据控制器(采样将以固定速率启动,而是无论是否需要),这通过避免在传输上避免不必要的细节来降低计算复杂性。通过构建时间依赖的Lyapunov功能候选的线性矩阵不等式来表达新的稳定性和稳定性条件。为了深化所提出的条件结果的知识,该研究数值评估了变速风力涡轮机驱动系统,永磁同步电动机模型和传统倒立摆动模型等动态模型,并验证了所提出的控制器方案的有效性。最后,比较结果显示了衍生条件的优越性。

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