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Asynchronous Adaptation and Learning Over Networks—Part I: Modeling and Stability Analysis

机译:异步适应和网络学习—第一部分:建模和稳定性分析

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In this work and the supporting Parts II and III of this paper, also in the current issue, we provide a rather detailed analysis of the stability and performance of asynchronous strategies for solving distributed optimization and adaptation problems over networks. We examine asynchronous networks that are subject to fairly general sources of uncertainties, such as changing topologies, random link failures, random data arrival times, and agents turning on and off randomly. Under this model, agents in the network may stop updating their solutions or may stop sending or receiving information in a random manner and without coordination with other agents. We establish in Part I conditions on the first and second-order moments of the relevant parameter distributions to ensure mean-square stable behavior. We derive in Part II expressions that reveal how the various parameters of the asynchronous behavior influence network performance. We compare in Part III the performance of asynchronous networks to the performance of both centralized solutions and synchronous networks. One notable conclusion is that the mean-square-error performance of asynchronous networks shows a degradation only in the order of , where is a small step-size parameter, while the convergence rate remains largely unaltered. The results provide a solid justification for the remarkable resilience of cooperative networks in the face of random failures at multiple levels: agents, links, data arrivals, and topology.
机译:在本工作以及本文的第二部分和第三部分中,以及在本期中,我们对异步策略的稳定性和性能进行了相当详细的分析,以解决网络上的分布式优化和自适应问题。我们研究了异步网络,这些网络受相当普遍的不确定性因素的影响,例如不断变化的拓扑,随机链路故障,随机数据到达时间以及代理随机打开和关闭。在此模型下,网络中的代理可以停止更新其解决方案,也可以停止以随机方式发送或接收信息,而无需与其他代理进行协调。我们在第一部分中建立了有关参数分布的一阶和二阶矩的条件,以确保均方稳定行为。我们在第二部分中得出表达式,这些表达式揭示了异步行为的各种参数如何影响网络性能。我们在第三部分中将异步网络的性能与集中式解决方案和同步网络的性能进行了比较。一个值得注意的结论是,异步网络的均方误差性能仅以的顺序显示降级,其中步长参数很小,而收敛速度在很大程度上保持不变。面对代理,链接,数据到达和拓扑等多个级别的随机故障,这些结果为合作网络的出色弹性提供了坚实的依据。

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