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Energy-Aware Design of Compressed Sensing Systems for Wireless Sensors Under Performance and Reliability Constraints

机译:在性能和可靠性约束下的无线传感器压缩传感系统的能量感知设计

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This paper describes the system design of a compressed sensing (CS) based source encoding system for data compression in wireless sensor applications. We examine the trade-off between the required transmission energy (compression performance) and desired recovered signal quality in the presence of practical non-idealities such as quantization noise, input signal noise and channel errors. The end-to-end system evaluation framework was designed to analyze CS performance under practical sensor settings. The evaluation shows that CS compression can enable over 10X in transmission energy savings while preserving the recovered signal quality to roughly 8 bits of precision. We further present low complexity error control schemes tailored to CS that further reduce the energy costs by 4X as well as diversity scheme to protect against burst errors. Results on a real electrocardiography (EKG) signal demonstrate 10X in energy reduction and corroborate the system analysis.
机译:本文介绍了基于压缩传感(CS)的源编码系统的系统设计,该系统用于无线传感器应用中的数据压缩。在实际的非理想情况下,例如量化噪声,输入信号噪声和信道错误,我们在所需的传输能量(压缩性能)和所需的恢复信号质量之间进行了权衡。端到端系统评估框架旨在分析实际传感器设置下的CS性能。评估表明,CS压缩可以节省10倍以上的传输能量,同时将恢复的信号质量保持在大约8位精度。我们进一步提出了针对CS的低复杂度错误控制方案,该方案可进一步将能源成本降低4倍,并采用分集方案来防止突发错误。真实心电图(EKG)信号的结果表明,其能耗降低了10倍,并证实了系统分析。

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