Sampled-data event-triggered control with sampling-independent positive guarantees on inter-event times

IF 4.8 2区 计算机科学 Q1 AUTOMATION & CONTROL SYSTEMS Automatica Pub Date : 2024-06-24 DOI:10.1016/j.automatica.2024.111798
Hao Yu , Tongwen Chen
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Abstract

To fit with a digital environment in networked control systems, sampled-data event-triggered control (ETC) has been proposed where the event-triggering mechanisms sense and process information only at discrete sampling instants (not necessarily periodically). One deficiency in the previous study on sampled-data ETC is the lack of analysis on transmission performance, which yields the potential occurrence of an undesirable phenomenon that the minimum inter-event time is always equal to the minimum inter-sampling interval, no matter how small the latter is. To overcome this drawback, in this paper, we propose a novel sampled-data ETC scheme such that the lower bounds of inter-event times have sampling-independent positive guarantees. A linear networked control system is considered under observer-based controllers, external disturbances, and multiple communication channels. The improved transmission performance is due to the utilization of dynamic event-triggering conditions and some mean-rate error signals, which are the ratios between network-induced errors and some time-increasing functions. After modeling the closed-loop dynamics into a hybrid system, sufficient conditions on the upper bound of inter-sampling intervals and parameters in ETC are provided to ensure input-to-state stability (rather than its practical version) and sampling-independent positive guarantees simultaneously. Furthermore, a new tradeoff relationship between the sampling and transmission performance is revealed: a faster sampling frequency is conducive to improving inter-event times. Finally, a linearized model of an inverted pendulum is simulated to illustrate the efficiency and feasibility of the obtained results.

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采样数据事件触发控制,具有与采样无关的事件间时间正保证
为了适应网络控制系统的数字环境,有人提出了采样数据事件触发控制(ETC),即事件触发机制仅在离散的采样时刻(不一定是周期性的)感知和处理信息。以往关于采样数据 ETC 研究的一个不足之处是缺乏对传输性能的分析,这就可能出现一种不良现象,即最小事件间时间总是等于最小采样间隔,无论后者有多小。为了克服这一缺点,本文提出了一种新颖的采样数据 ETC 方案,使事件间时间的下界具有与采样无关的正保证。本文考虑了基于观测器的控制器、外部干扰和多通信信道下的线性网络控制系统。由于利用了动态事件触发条件和一些平均率误差信号(即网络引起的误差与一些时间递增函数之间的比率),传输性能得到了改善。将闭环动力学建模为混合系统后,提供了 ETC 中采样间隔和参数上界的充分条件,以同时确保输入到状态稳定性(而非其实际版本)和采样无关的正保证。此外,还揭示了采样和传输性能之间新的权衡关系:更快的采样频率有利于改善事件间时间。最后,模拟了一个线性化的倒立摆模型,以说明所获结果的效率和可行性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Automatica
Automatica 工程技术-工程:电子与电气
CiteScore
10.70
自引率
7.80%
发文量
617
审稿时长
5 months
期刊介绍: Automatica is a leading archival publication in the field of systems and control. The field encompasses today a broad set of areas and topics, and is thriving not only within itself but also in terms of its impact on other fields, such as communications, computers, biology, energy and economics. Since its inception in 1963, Automatica has kept abreast with the evolution of the field over the years, and has emerged as a leading publication driving the trends in the field. After being founded in 1963, Automatica became a journal of the International Federation of Automatic Control (IFAC) in 1969. It features a characteristic blend of theoretical and applied papers of archival, lasting value, reporting cutting edge research results by authors across the globe. It features articles in distinct categories, including regular, brief and survey papers, technical communiqués, correspondence items, as well as reviews on published books of interest to the readership. It occasionally publishes special issues on emerging new topics or established mature topics of interest to a broad audience. Automatica solicits original high-quality contributions in all the categories listed above, and in all areas of systems and control interpreted in a broad sense and evolving constantly. They may be submitted directly to a subject editor or to the Editor-in-Chief if not sure about the subject area. Editorial procedures in place assure careful, fair, and prompt handling of all submitted articles. Accepted papers appear in the journal in the shortest time feasible given production time constraints.
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