具有统一规定性能的不确定系统的动态事件触发自适应渐近跟踪控制

IF 6.4 2区 计算机科学 Q1 AUTOMATION & CONTROL SYSTEMS
Kai Zhao;Yuhang Huang;Yongcheng Zhou
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引用次数: 0

摘要

提出了一种非参数严格反馈非线性系统的动态事件触发统一性能自适应控制方法。与大多数静态/动态事件驱动控制器只能保证最终一致有界跟踪结果不同,本文通过在动态阈值策略中引入外部辅助变量,并采用积分函数鲁棒技术,不仅减少了通信开销,消除了Zeno现象,而且实现了渐近零误差跟踪。当考虑性能约束时,控制设计和稳定性分析变得非常复杂和具有挑战性。该控制器通过构造一系列函数变换并结合核心信息技术处理非参数不确定性,通过适当调整关键设计参数来保证多个规定的性能特征,从而省去了重新设计控制器和重新分析稳定性的需要。最后通过仿真结果验证了理论讨论的有效性。从业者注意:动态事件触发控制的研究是实际网络系统的一个重要课题,如自主飞行器、锅炉涡轮系统、化学过程和机器人系统。如果不考虑事件触发机制对控制器设计的影响,可能会导致系统性能显著下降。虽然在文献中可以找到许多关于这个主题的作品,但在设计和实现上仍然存在一些局限性。本文通过动态事件触发框架,针对一些经典的实际系统提出了一种统一的规定性能控制方法,可以有效地阐明系统性能与传输资源消耗之间的关系。通过在动态阈值策略中引入外部辅助变量并采用积分函数,不仅节省了实际网络系统的通信开销,而且实现了渐近零误差跟踪。此外,通过构造一系列函数变换,利用核心信息技术,所提出的控制器能够在固定的控制框架下保证多个规定的性能行为,无需重新设计控制器和重新分析稳定性,更符合实际需求。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Dynamic Event-Triggered Adaptive Asymptotic Tracking Control of Uncertain Systems With Unified Prescribed Performance
This paper presents a dynamic event-triggered unified performance adaptive control method for nonparametric strict-feedback nonlinear systems. In contrast to most existing static/dynamic event-driven controllers that only guarantee uniformly ultimately bounded tracking results, here by introducing an external auxiliary variable into the dynamic threshold strategy and using the robust technique with the integral function, not only the communication overhead is reduced and the Zeno phenomenon is precluded, but also the asymptotic zero-error tracking is achieved. The control design and stability analysis become quite complicated and challenging when the performance constraint is taken into account. By constructing a series of functional transformations in conjunction with the core information technique to handle the nonparametric uncertainty, the proposed controller is able to guarantee multiple prescribed performance characteristics by appropriately adjusting the key design parameter, eliminating the need to redesign the controller and reanalyze the stability. Finally, simulation results are conducted to demonstrate the effectiveness of the theoretical discussion. Note to Practitioners—The study of dynamic event-triggered control is an important topic for practical networked systems such as autonomous aerial vehicles, boiler turbine systems, chemical processes and robotic systems. If the impact of the event-triggered mechanism on the controller design is not considered, the system performance may deteriorate significantly. Although numerous works on this topic can be found in the literature, there are still some limitations in the design and implementation. In this paper, we propose a unified prescribed performance control method for some classical practical systems via the dynamic event trigger framework, which can effectively clarify the relationship between system performance and transmission resource consumption. By introducing an external auxiliary variable into the dynamic threshold strategy and using the integral function, not only the communication overhead is saved in the practical networked systems, but also the asymptotic zero error tracking is achieved. Moreover, by constructing a series of function transformations and using the core information technique, the proposed controller is able to guarantee multiple prescribed performance behaviors under a fixed control framework, eliminating the need to redesign the controller and reanalyze the stability, which is more in line with actual requirements.
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来源期刊
IEEE Transactions on Automation Science and Engineering
IEEE Transactions on Automation Science and Engineering 工程技术-自动化与控制系统
CiteScore
12.50
自引率
14.30%
发文量
404
审稿时长
3.0 months
期刊介绍: The IEEE Transactions on Automation Science and Engineering (T-ASE) publishes fundamental papers on Automation, emphasizing scientific results that advance efficiency, quality, productivity, and reliability. T-ASE encourages interdisciplinary approaches from computer science, control systems, electrical engineering, mathematics, mechanical engineering, operations research, and other fields. T-ASE welcomes results relevant to industries such as agriculture, biotechnology, healthcare, home automation, maintenance, manufacturing, pharmaceuticals, retail, security, service, supply chains, and transportation. T-ASE addresses a research community willing to integrate knowledge across disciplines and industries. For this purpose, each paper includes a Note to Practitioners that summarizes how its results can be applied or how they might be extended to apply in practice.
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