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Performance-oriented communication topology design for distributed control of interconnected systems

机译:面向性能的通信拓扑设计,用于互连系统的分布式控制

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Communication networks provide a larger flexibility for the control design of interconnected systems by allowing the information exchange between the local controllers of the subsystems which can be used to improve the overall system performance. However, the interconnected systems may become unstable due to permanent communication link failures. This article presents a novel two-layer control architecture that allows to jointly improve the system performance which is the decay rate and guarantee the stability of the interconnected system under permanent communication link failures. As a novelty, the design of communication topology between the local controllers is also taken into account. On the other hand, it is still not well understood how significant the role of each possible communication link is in improving the system performance. Another novelty of this article is thus to propose a method based on eigenvalue sensitivity analysis in order to characterize the influence of each possible communication link in improving the performance of the overall system. In addition, for a special class of systems and physical interconnection topology, explicit solutions on communication topology design are derived for the first time. The solutions provide some insights into how the heterogeneity of the subsystem local dynamics, the strength of interconnection and the size of the network affect the optimal communication topology.
机译:通过允许子系统的本地控制器之间的信息交换,通信网络可为互连系统的控制设计提供更大的灵活性,该信息可用于提高整体系统性能。但是,由于永久性的通信链路故障,互连的系统可能变得不稳定。本文提出了一种新颖的两层控制体系结构,该体系结构可以共同提高系统性能(即衰减率),并确保在永久性通信链路故障下互连系统的稳定性。作为一种新颖性,还考虑了本地控制器之间的通信拓扑设计。另一方面,仍然没有很好地理解每个可能的通信链路在提高系统性能方面的作用。因此,本文的另一个新颖之处是提出一种基于特征值敏感性分析的方法,以表征每个可能的通信链接对改善整个系统性能的影响。此外,对于一类特殊的系统和物理互连拓扑,首次提出了有关通信拓扑设计的明确解决方案。该解决方案提供了一些有关子系统局部动力学的异质性,互连强度和网络规模如何影响最佳通信拓扑的见解。

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