多智能体一致性的收敛速度:一种社区检测算法

Baofeng Zhang, Debao Chang, Zhanjie Li, Dan Ma
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引用次数: 2

摘要

本文考虑了通过将单层拓扑划分为连通子图层的社区检测算法来提高多智能体共识的收敛速度的问题。分割后的拓扑图保持了原拓扑图的约束条件。社团检测算法与共识协议相结合,有效提高了多智能体共识的收敛速度,并提出了分组改进算法和分层分组改进算法验证其可行性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
On convergence rate for multi-agent consensus: A community detection algorithm
This paper considers the problem of improving the convergence rate for multi-agent consensus via a community detection algorithm used to divide the single layer topology into layers of connected subgraphs. This divided topological graph maintains the constraints of the original topological graph. Combining with the consensus protocol, community detection algorithm improves the convergence rate of multi-agent consensus effectively, and we propose a grouping improvement algorithm and a hierarchical grouping improvement algorithm to verify its feasibility.
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