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Network Coding-Aware Compressive Data Gathering for Energy-Efficient Wireless Sensor Networks

机译:节能无线传感器网络的网络编码感知压缩数据收集

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This article investigates the joint application of compressive sensing (CS) and network coding (NC) to the problem of energy-efficient data gathering in wireless sensor networks. We consider the problem of optimally constructing forwarding trees to carry compressed data to projection nodes. Each compressed dataset refers to a weighted aggregation (or sum) of sensed measurements from network sensors collected at one projection node. Projection nodes then forward their received compressed data to the sink, which subsequently recovers the original measurements. This aggregation technique, based on CS, is shown to reduce significantly the number of transmissions in the network. We observe that the presence of multiple forwarding trees gives rise to many-to-many communication patterns in sensor networks that, in turn, can be exploited to perform NC on the compressed data being forwarded on these trees. Such a technique will further reduce the number of transmissions required to gather the measurements, resulting in a better network-wide energy efficiency. This article addresses the problem of NC-aware construction of forwarding/aggregation trees. We present a mathematical model to optimally construct such forwarding trees, which encourage NC operations on the compressed data. Owing to its complexity, we further develop algorithmic methods (both centralized and distributed) for solving the problem and analyze their complexities. We show that our algorithmic methods are scalable and accurate, with worst-case optimality gap not exceeding 3.96% in the studied scenarios. We also show that, when bothNC and compressive data gathering are considered jointly, performance gains (reduction in number of transmissions) of up to 30% may be attained. Finally, we show that the proposed methods distribute the workload of data gathering throughout the network nodes uniformly, resulting in extended network life times.
机译:本文研究了压缩传感(CS)和网络编码(NC)在无线传感器网络中节能数据收集问题上的联合应用。我们考虑优化构造转发树以将压缩数据传输到投影节点的问题。每个压缩的数据集是指在一个投影节点处收集的来自网络传感器的感测到的测量值的加权聚合(或总和)。然后,投影节点将接收到的压缩数据转发到接收器,接收器随后将恢复原始测量值。这种基于CS的聚合技术显示可以显着减少网络中的传输数量。我们观察到,多个转发树的存在引起了传感器网络中的多对多通信模式,这些通信模式又可以用来对这些树上转发的压缩数据执行NC。这种技术将进一步减少收集测量值所需的传输次数,从而提高网络范围的能源效率。本文解决了转发/聚合树的NC感知构造问题。我们提出了一种数学模型,以最佳地构造此类转发树,从而鼓励对压缩数据进行NC操作。由于其复杂性,我们进一步开发了解决问题的算法方法(集中式和分布式)并分析了它们的复杂性。我们表明,我们的算法方法具有可扩展性和准确性,在研究的场景中,最坏情况下的最优差距不超过3.96%。我们还表明,当同时考虑NC和压缩数据收集时,可以实现高达30%的性能提升(减少传输次数)。最后,我们证明了所提出的方法将数据收集的工作量均匀地分布在整个网络节点上,从而延长了网络寿命。

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