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首页> 外文期刊>IEEE Transactions on Signal Processing >Analysis of Sum-Weight-Like Algorithms for Averaging in Wireless Sensor Networks
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Analysis of Sum-Weight-Like Algorithms for Averaging in Wireless Sensor Networks

机译:无线传感器网络中求和加权平均算法的分析

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摘要

Distributed estimation of the average value over a Wireless Sensor Network has recently received a lot of attention. Most papers consider single variable sensors and communications with feedback (e.g., peer-to-peer communications). However, in order to use efficiently the broadcast nature of the wireless channel, communications without feedback are advocated. To ensure the convergence in this feedback-free case, the recently-introduced Sum-Weight-like algorithms which rely on two variables at each sensor are a promising solution. In this paper, the convergence towards the consensus over the average of the initial values is analyzed in depth. Furthermore, it is shown that the squared error decreases exponentially with the time. In addition, a powerful algorithm relying on the Sum-Weight structure and taking into account the broadcast nature of the channel is proposed.
机译:无线传感器网络上平均值的分布式估计最近引起了很多关注。大多数论文都考虑了单变量传感器和具有反馈的通信(例如,对等通信)。然而,为了有效地利用无线信道的广播性质,提倡无反馈的通信。为了确保在这种无反馈情况下的收敛性,最近引入的类似于Sum-Weight的算法(依赖于每个传感器的两个变量)是一种很有前途的解决方案。在本文中,深入分析了在初始值的平均值上向共识的收敛。此外,表明平方误差随时间呈指数减小。此外,提出了一种强大的算法,该算法依赖于Sum-Weight结构,并考虑了信道的广播性质。

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