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Energy-Aware Data Compression for Wireless Sensor Networks

机译:无线传感器网络的能源感知数据压缩

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Data compression techniques have extensive applications in power-constrained digital communication systems, such as in the rapidly-developing domain of wireless sensor network applications. This paper explores energy consumption tradeoffs associated with data compression, particularly in the context of lossless compression for acoustic signals. Such signal processing is relevant in a variety of sensor network applications, including surveillance and monitoring. Applying data compression in a sensor node generally reduces the energy consumption of the transceiver at the expense of additional energy expended in the embedded processor due to the computational cost of compression. This paper introduces a methodology for comparing data compression algorithms in sensor networks based on the figure of merit D/ E, where D is the amount of data (before compression) that can be transmitted under a given energy budget E for computation and communication. We develop experiments to evaluate, using this figure of merit, different variants of linear predictive coding. We also demonstrate how different models of computation applied to the embedded software design lead to different degrees of processing efficiency, and thereby have significant effect on the targeted figure of merit
机译:数据压缩技术在功率受限的数字通信系统中具有广泛的应用,例如在无线传感器网络应用的快速发展领域中。本文探讨了与数据压缩相关的能耗折衷,尤其是在声学信号的无损压缩的情况下。此类信号处理与包括监视和监视在内的各种传感器网络应用相关。由于压缩的计算成本,在传感器节点中应用数据压缩通常会降低收发器的能耗,但会消耗嵌入式处理器中消耗的额外能量。本文介绍了一种基于品质因数D / E比较传感器网络中数据压缩算法的方法,其中D是在给定的能量预算E下可以传输以进行计算和通信的数据量(压缩前)。我们开发了实验,以利用这一优点,评估线性预测编码的不同变体。我们还演示了应用于嵌入式软件设计的不同计算模型如何导致不同程度的处理效率,从而对目标品质因数产生重大影响

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