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Distributed expectation maximization in Appointment Rumor Routing in WSN

机译:WSN中约会谣言路由中的分布式期望最大化

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One of the major problem in wireless sensor networks is query-driven routing, which especially arises when Sink searches for data for which the location in the network is unknown. Event information is propagated by Rumor Routing in some selected paths in the network, and as a result, an event trace is created. A route to the location of the event is established when a query agent crosses an event trace. The main objective of all Rumor-based algorithms is to increase the cross over rate for the query-agents. In Appointment-based Rumor Routing, contrary to other query-driven algorithms, agents' cross over occurs in a predetermined location called appointment point. In previous works, the appointment point is centrally calculated at the base station. In this paper, a distributed algorithm is proposed for appointment point selection. In order to estimate the parameters and the rank of a Gaussian Mixture used to model event locations, a Distributed Expectation-Maximization algorithm is designed to estimate the rank and parameters. In this case, a data fusion algorithm as well as a novel approach called Active Gaussian Mean is employed to determine the appointment point. The results of simulation under multiple scenarios provide a comparison of the proposed algorithms with the ones in the literature. The results show that the proposed algorithms are nearly optimal.
机译:无线传感器网络中的主要问题之一是查询驱动的路由,这在Sink搜索网络中位置未知的数据时尤其容易出现。事件信息通过谣言路由在网络中的某些选定路径中传播,因此,将创建事件跟踪。当查询代理越过事件跟踪时,将建立到事件位置的路由。所有基于谣言的算法的主要目标是提高查询代理的交叉率。在基于约会的谣言路由中,与其他查询驱动的算法相反,座席的交换发生在称为约会点的预定位置。在以前的工作中,约会点是在基站集中计算的。本文提出了一种分布式的约会点选择算法。为了估计用于建模事件位置的高斯混合物的参数和等级,设计了分布式期望最大化算法来估计等级和参数。在这种情况下,将采用数据融合算法以及一种称为主动高斯均值的新颖方法来确定约会点。在多种情况下的仿真结果提供了所提出算法与文献中算法的比较。结果表明,所提出的算法几乎是最优的。

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