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Hybrid online learning control in networked multiagent systems: A survey

机译:网络化多主体系统中的混合在线学习控制:一项调查

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摘要

This survey paper studies deterministic control systems that integrate three of the most active research areas during the last years: (1) online learning control systems, (2) distributed control of networked multiagent systems, and (3) hybrid dynamical systems (HDSs). The interest for these types of systems has been motivated mainly by two reasons: First, the development of cheap massive computational power and advanced communication technologies, which allows to carry out large computations in complex networked systems, and second, the recent development of a comprehensive theory for HDSs that allows to integrate continuous-time dynamical systems and discrete-time dynamical systems in a unified manner, thus providing a unifying modeling language for complex learning-based control systems. In this paper, we aim to give a comprehensive survey of the current state of the art in the area of online learning control in multiagent systems, presenting an overview of the different types of problems that can be addressed, as well as the most representative control architectures found in the literature. These control architectures are modeled as HDSs, which include as special subsets continuous-time dynamical systems and discrete-time dynamical systems. We highlight the different advantages and limitations of the existing results as well as some interesting potential future directions and open problems.
机译:这份调查报告研究了确定性控制系统,该系统整合了最近几年最活跃的三个研究领域:(1)在线学习控制系统,(2)网络化多智能体系统的分布式控制以及(3)混合动力系统(HDS)。对这些类型的系统的兴趣主要是由两个原因引起的:第一,廉价的海量计算能力和先进的通信技术的发展,可以在复杂的联网系统中进行大型计算;第二,综合性计算机的最新发展。 HDS的理论,该理论允许以统一的方式集成连续时间动力系统和离散时间动力系统,从而为复杂的基于学习的控制系统提供统一的建模语言。在本文中,我们旨在对多智能体系统中在线学习控制领域的最新技术进行全面调查,概述可以解决的不同类型的问题以及最具代表性的控制文献中发现的建筑。这些控制体系结构建模为HDS,其中包括连续时间动态系统和离散时间动态系统作为特殊子集。我们强调了现有结果的不同优势和局限性,以及一些有趣的潜在未来方向和未解决的问题。

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