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Consensus-Based Distributed Recursive Least-Squares Estimation using Ad Hoc Wireless Sensor Networks

机译:基于共识的分布式递归最小二乘估计,使用ad hoc无线传感器网络

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Recursive least-squares (RLS) schemes are of paramount importance for online estimation and tracking of signals, especially when the state and/or data model are unknown. Here, a distributed RLS-like algorithm is developed that can operate in ad hoc wireless sensor networks (WSNs). The novel algorithm is obtained by writing the weighted squared-error cost associated with an RLS algorithm in a separable form and applying the alternating-direction method of multipliers to minimize it in a distributed fashion. This distributed adaptive scheme can be applied in general WSNs that are challenged by communication noise and do not necessarily possess a Hamiltonian cycle. Relative to competing alternatives, the novel algorithm offers more efficient communications. Numerical examples indicate that the proposed scheme is resilient to communication noise, while it performs efficient tracking of time-varying processes.
机译:递归最小二乘(RLS)方案对于在线估计和信号跟踪至关重要,尤其是当状态和/或数据模型未知时。这里,开发了一种可以在Ad Hoc无线传感器网络(WSN)中运行的分布式RLS样算法。通过以可分离的形式写入与RLS算法相关联的加权平方误差成本并应用乘法器的交替方向方法来获得新的算法,以将其以分布式方式最小化。这种分布式自适应方案可以在通信噪声挑战的一般WSN中应用,并且不一定拥有Hamiltonian周期。相对于竞争替代方案,新颖的算法提供了更有效的通信。数值示例表明,所提出的方案是有效的通信噪声的弹性,而它执行有效跟踪时变处理。

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