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The Impact of Transmit Rate Control on Energy-Efficient Estimation in Wireless Sensor Networks

机译:传输速率控制对无线传感器网络中节能估算的影响

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We study the impact of physical layer (PHY) transmit rate control on energy efficient estimation in wireless sensor networks. A sensor network collects measurements about an unknown evolving process. Each sensor controls its sampling rate and its PHY transmit rate to the next hop or to the Fusion Center (FC). The FC performs estimation of the unknown process based on sensor measurements and needs to adhere to an estimation accuracy constraint. The objective is to maximize sensor network lifetime. The tradeoff is that, high PHY transmit rates consume more energy per transmitted bit, but they increase the amount of transmitted sensor measurement data per unit time, and thus they aid in improving estimation quality and in satisfying the estimation error constraint. First, we study a single-hop network where sensors transmit directly to the FC. In this case, sensor sampling rates are directly mapped onto PHY transmit rates. We identify fundamental structural properties of the optimal solution, and we propose a distributed, iterative sensor PHY rate adaptation algorithm for reaching a solution, based on light-weight feedback from the FC. Next, we consider the multi-hop version of the problem, where the sensor measurement (sampling) rates, PHY transmit rates and data flows to the FC are controlled. We extend the distributed optimization framework above to include all controllable parameters, and we devise an iterative algorithm for maximizing network lifetime.
机译:我们研究了物理层(PHY)传输速率控制对无线传感器网络中的能效估计的影响。传感器网络收集有关未知进化过程的度量。每个传感器都控制其采样率及其到下一跳或Fusion Center(FC)的PHY传输率。 FC根据传感器测量值执行未知过程的估计,并且需要遵守估计精度约束。目的是使传感器网络寿命最大化。代价是,高PHY传输速率每传输的比特消耗更多的能量,但是它们增加了每单位时间传输的传感器测量数据的数量,因此,它们有助于提高估计质量并满足估计误差约束。首先,我们研究一个单跳网络,其中传感器直接传输到FC。在这种情况下,传感器采样率直接映射到PHY传输率。我们确定了最佳解决方案的基本结构特性,并基于来自FC的轻量反馈,提出了一种分布式迭代传感器PHY速率自适应算法来实现解决方案。接下来,我们考虑问题的多跳版本,其中传感器测量(采样)速率,PHY传输速率和流向FC的数据流受到控制。我们将上面的分布式优化框架扩展为包括所有可控参数,并设计了一种迭代算法来最大化网络寿命。

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