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Rate-Distortion Performance and Incremental Transmission Scheme of Compressive Sensed Measurements in Wireless Sensor Networks

机译:无线传感器网络中压缩感知测量的速率失真性能和增量传输方案

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摘要

We consider a Wireless Sensor Network (WSN) monitoring environmental data. Compressive Sensing (CS) is explored to reduce the number of coefficients to transmit and consequently save the energy of sensor nodes. Each sensor node collects N samples of environmental data, these are CS coded to transmit M<N values to a sink node. The M CS coefficients are uniformly quantized and entropy coded. We investigate the rate-distortion performance of this approach even under CS coefficient losses. The results show the robustness of the CS coding framework against packet loss. We devise a simple strategy to successively approximate/quantize CS coefficients, allowing for an efficient incremental transmission of CS coded data. Tests show that the proposed successive approximation scheme provides rate allocation adaptivity and flexibility with a minimum rate-distortion performance penalty.
机译:我们考虑使用无线传感器网络(WSN)监控环境数据。探索了压缩感测(CS),以减少传输系数的数量,从而节省传感器节点的能量。每个传感器节点收集N个环境数据样本,这些样本均经过CS编码以传输 M / mo> N 值到接收器节点。 M CS系数被均匀地量化和熵编码。即使在CS系数损失下,我们也研究了这种方法的速率失真性能。结果显示了CS编码框架针对丢包的鲁棒性。我们设计了一种简单的策略来连续逼近/量化CS系数,从而实现CS编码数据的有效增量传输。测试表明,所提出的逐次逼近方案以最小的速率失真性能损失提供了速率分配自适应性和灵活性。

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