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Distributed Decision Through Self-Synchronizing Sensor Networks in the Presence of Propagation Delays and Asymmetric Channels

机译:存在传播时延和不对称信道的自同步传感器网络分布式决策

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In this paper we propose and analyze a distributed algorithm for achieving globally optimal decisions, either estimation or detection, through a self-synchronization mechanism among linearly coupled integrators initialized with local measurements. We model the interaction among the nodes as a directed graph with weights (possibly) dependent on the radio channels, and we pose special attention to the effect of the propagation delay occurring in the exchange of data among sensors, as a function of the network geometry. We derive necessary and sufficient conditions for the proposed system to reach a consensus on globally optimal decision statistics. One of the major results proved in this work is that a consensus is reached with exponential convergence speed for any bounded delay condition if and only if the directed graph is quasi-strongly connected. We provide a closed form expression for the global consensus, showing that the effect of delays is, in general, the introduction of a bias in the final decision. Finally, we exploit our closed form expression to devise a double-step consensus mechanism able to provide an unbiased estimate with minimum extra complexity, without the need to know or estimate the channel parameters.
机译:在本文中,我们提出并分析了一种分布式算法,该算法通过局部同步初始化的线性耦合积分器之间的自同步机制来实现全局最优决策(估计或检测)。我们将节点之间的交互建模为有向图,权重(可能)取决于无线电信道,并且特别注意传感器之间交换数据时发生的传播延迟的影响,这取决于网络的几何形状。我们得出建议的系统就全局最佳决策统计达成共识的必要和充分条件。这项工作证明的主要结果之一是,当且仅当有向图是准强连通的时,对于任何有界延迟条件,都以指数收敛速度达成共识。我们为全球共识提供了一个封闭式的表达方式,表明延迟的影响通常会在最终决策中引入偏见。最后,我们利用封闭式表达式设计出一种双步共识机制,该机制能够以最小的额外复杂度提供无偏估计,而无需知道或估计信道参数。

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