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首页> 外文期刊>IEEE Transactions on Parallel and Distributed Systems >Efficient Computation of Robust Average of Compressive Sensing Data in Wireless Sensor Networks in the Presence of Sensor Faults
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Efficient Computation of Robust Average of Compressive Sensing Data in Wireless Sensor Networks in the Presence of Sensor Faults

机译:存在传感器故障时无线传感器网络中压缩传感数据鲁棒平均值的有效计算

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Wireless sensor networks (WSNs) enable the collection of physical measurements over a large geographic area. It is often the case that we are interested in computing and tracking the spatial-average of the sensor measurements over a region of the WSN. Unfortunately, the standard average operation is not robust because it is highly susceptible to sensor faults and heterogeneous measurement noise. In this paper, we propose a computational efficient method to compute a weighted average (which we will call robust average) of sensor measurements, which appropriately takes sensor faults and sensor noise into consideration. We assume that the sensors in the WSN use random projections to compress the data and send the compressed data to the data fusion centre. Computational efficiency of our method is achieved by having the data fusion centre work directly with the compressed data streams. The key advantage of our proposed method is that the data fusion centre only needs to perform decompression once to compute the robust average, thus greatly reducing the computational requirements. We apply our proposed method to the data collected from two WSN deployments to demonstrate its efficiency and accuracy.
机译:无线传感器网络(WSN)可以在较大的地理区域内收集物理测量结果。通常情况下,我们对WSN区域内的传感器测量值的空间平均值进行计算和跟踪很感兴趣。不幸的是,标准平均操作不可靠,因为它极易受到传感器故障和异构测量噪声的影响。在本文中,我们提出了一种计算有效的方法来计算传感器测量值的加权平均值(我们称其为鲁棒平均值),该方法适当地考虑了传感器故障和传感器噪声。我们假设WSN中的传感器使用随机投影来压缩数据并将压缩后的数据发送到数据融合中心。我们的方法的计算效率是通过使数据融合中心直接处理压缩数据流来实现的。我们提出的方法的主要优点是数据融合中心只需要执行一次解压缩就可以计算鲁棒平均值,从而大大降低了计算需求。我们将提出的方法应用于从两个WSN部署收集的数据,以证明其效率和准确性。

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