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CEASE: A Collaborative Event-Triggered Average-Consensus Sampled-Data Framework With Performance Guarantees for Multi-Agent Systems

机译:CEASE:协作事件触发的平均共识采样数据框架,为多主体系统提供性能保证

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摘要

The paper proposes a distributed framework for collaborative, event-triggered, average consensus, sampled data (CEASE) algorithms for undirected networked multi-agent systems with two classes of performance guarantees. Referred to as the E-CEASE algorithm, the first approach ensures an exponential rate of convergence and derives associated conditions and optimal design parameters using the Lyapunov stability theorem. The second approach provides a structured tradeoff between the number of transmissions and rate of consensus convergence based on a guaranteed cost and is referred to as the G-CEASE. The distributed implementations of CEASE are event-driven in the sense that agents transmit within their respective neighborhoods only on the triggering of an event. To reduce communication and processing, the triggering condition in CEASE is monitored at discrete-time steps. Monte-Carlo simulations on randomized networks quantify the effectiveness of the proposed approaches.
机译:本文针对具有两类性能保证的无向网络化多代理系统,提出了一种用于协作,事件触发,平均共识,采样数据(CEASE)算法的分布式框架。被称为E-CEASE算法,第一种方法可确保指数收敛速度,并使用Lyapunov稳定性定理得出相关条件和最佳设计参数。第二种方法在保证的成本的基础上,在传输次数和共识收敛速率之间进行了结构取舍,被称为G-CEASE。 CEASE的分布式实现是事件驱动的,在这种意义上,代理仅在触发事件时才在其各自的邻域内传输。为了减少通信和处理,CEASE中的触发条件以不连续的时间步长进行监控。随机网络上的蒙特卡洛模拟量化了所提出方法的有效性。

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