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Dynamic average consensus estimation over stochastically switching network via quantization communication

机译:通过量化通信的随机交换网络上的动态平均共识估计

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In this paper, we consider the problem that a group of agents aims to compute the average of individually estimated noisy parameters by sharing information among a random network of digital links. In this scenario, the average consensus seeking is involved in a two-step procedure. First, each agent estimates the local time-varying parameters individually, and then agents average their estimations by interaction with neighbors through quantized communication. Impact of quantization on the performance of the proposed distributed algorithm is investigated. We prove that the agents' states converge to a random variable that deviates from the average of the estimated parameters. We derive an upper bound for the asymptotic residual mean square error of the states, which captures effects of the quantization precision and the structure of the random communication networks.
机译:在本文中,我们考虑了一个问题,即一组代理旨在通过在数字链路的随机网络之间共享信息来计算单独估计的噪声参数的平均值。在这种情况下,平均共识寻求过程涉及两步过程。首先,每个代理分别估计本地时变参数,然后代理通过量化通信与邻居交互来平均其估计。研究了量化对所提出的分布式算法性能的影响。我们证明了代理人的状态收敛于一个随机变量,该随机变量偏离了估计参数的平均值。我们推导了状态的渐进残差均方误差的上限,该上限捕获了量化精度和随机通信网络的结构的影响。

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