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Asymptotically Efficient Distributed Estimation With Exponential Family Statistics

机译:指数族统计量的渐近有效分布估计

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This paper studies the problem of distributed parameter estimation in multiagent networks with exponential family observation statistics. A certainty-equivalence type distributed estimator of the consensus-plus-innovations form is proposed in which, at each observation sampling epoch, agents update their local parameter estimates by appropriately combining the data received from their neighbors and the locally sensed new information (innovation). Under global observability of the networked sensing model, i.e., the ability to distinguish between different instances of the parameter value based on the joint observation statistics, and mean connectivity of the inter-agent communication network, the proposed estimator is shown to yield consistent parameter estimates at each network agent. Further, it is shown that the distributed estimator is asymptotically efficient, in that, the asymptotic covariances of the agent estimates coincide with that of the optimal centralized estimator, i.e., the inverse of the centralized Fisher information rate. From a technical viewpoint, the proposed distributed estimator leads to non-Markovian mixed time-scale stochastic recursions and the analytical methods developed in this paper contribute to the general theory of distributed stochastic approximation.
机译:本文研究具有指数族观察统计量的多主体网络中的分布式参数估计问题。提出了共识加创新形式的确定性-等价类型分布估计量,其中,在每个观察采样时期,代理通过适当组合从邻居接收的数据和本地感知的新信息(创新)来更新其局部参数估计。 。在网络感知模型的整体可观测性下,即基于联合观测统计数据区分参数值的不同实例的能力以及智能体间通信网络的平均连通性,表明拟议的估计器可产生一致的参数估计在每个网络代理。此外,表明了分布估计器是渐近有效的,因为代理估计的渐近协方差与最优集中估计器的渐近协方差一致,即集中费舍尔信息率的倒数。从技术角度来看,所提出的分布式估计器导致了非马尔可夫混合时标随机递归,并且本文开发的分析方法为分布式随机逼近的一般理论做出了贡献。

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