Distributed optimization via dynamic event-triggered scheme with metric subregularity condition

Xin Yu, Xi Chen, Yuan Fan, Songsong Cheng
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Abstract

In this paper, we present a continuous-time algorithm with a dynamic event-triggered communication (DETC) mechanism for solving a class of distributed convex optimization problems that satisfy a metric subregularity condition. The proposed algorithm addresses the challenge of limited bandwidth in multi-agent systems by utilizing a continuous-time optimization approach with DETC. Furthermore, we prove that the distributed event-triggered algorithm converges exponentially to the optimal set, even without strong convexity conditions. Finally, we provide a comparison example to demonstrate the efficiency of our algorithm in communication resource-saving.

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通过具有度量次规则条件的动态事件触发方案进行分布式优化
在本文中,我们提出了一种具有动态事件触发通信(DETC)机制的连续时间算法,用于解决一类满足度量次规则条件的分布式凸优化问题。所提出的算法利用带 DETC 的连续时间优化方法,解决了多代理系统中带宽有限的难题。此外,我们还证明,即使没有强凸性条件,分布式事件触发算法也能指数级收敛到最优集。最后,我们提供了一个比较实例,以证明我们的算法在节省通信资源方面的效率。
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