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Generalized diffusion adaptation for energy-constrained distributed estimation

机译:能量受限分布式估计的广义扩散适应

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We propose a generalized diffusion adaptation strategy for distributed estimation under local and network-wide energy constraints. In our generalized diffusion strategy, at each iteration, each node can optimally combine intermediate parameter estimates from nodes other than its physical neighbors. The nodes whose intermediate estimates are relayed via a multi-hop path to a particular node, and fused there, are called the information neighbors of that node. This generalizes the physical neighborhood of nodes used in traditional diffusion strategies. We propose a method to determine the optimal information neighborhood, and combination weights for the information neighbors, subject to each node's energy budget, and an overall energy budget on the whole network for each iteration. By varying the energy budgets, our strategy covers the whole spectrum of strategies ranging from the centralized estimation method where all information is available at a single node, to the non-cooperative approach where each node performs its own local estimation. Numerical results suggest that our proposed method is able to achieve the same mean-square deviation as the adapt-then-combine diffusion algorithm with a lower energy budget.
机译:我们提出了局部和网络范围的能量约束下的分布式估计的广义扩散适应策略。在我们的广义扩散策略中,在每次迭代中,每个节点可以最佳地将中间参数估计从其物理邻居以外的节点组合。中间估计通过与特定节点的多跳路径中继的节点,并在那里融合,称为该节点的信息邻居。这概括了传统扩散策略中使用的节点的物理邻域。我们提出了一种确定关于每个节点的能量预算的信息邻居的最佳信息邻域的方法,以及用于每次迭代的整个网络上的整体能量预算。通过改变能源预算,我们的策略涵盖了从集中估计方法范围的整个策略,其中所有信息在单个节点上都有所有信息,到每个节点执行其自己的本地估计的非协同方法。数值结果表明,我们所提出的方法能够实现与具有较低能量预算的适应组合扩散算法相同的均方偏差。

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