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An Architecture for Low-power Compressed Sensing and Estimation in Wireless Sensor Nodes

机译:无线传感器节点中低功耗压缩感和估计的架构

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Radio communication is among the most energy consuming tasks in wireless sensor nodes. Reducing the amount of data to be transmitted holds a large power saving potential. The combination of compressed sensing (CS) and local signal parameter estimation can achieve a massive data rate reduction in applications where the primary interest is in the acquisition of a scalar feature of the signal rather than the reconstruction of the entire waveform. In this paper,We propose a compressed estimator, building upon an enhancement of the typical CS signal-modulation scheme via punctured sampling. Specifically, a subset of signal samples and associated weighting coefficients are chosen so as to minimize node power consumption while achieving a given estimation performance. We detail a corresponding puncturing algorithm and present the design of an integrated digital compressed estimation unit in 28 nm FDSOI CMOS. In a concrete case study, local estimation combined with subsampling is shown to result in a power reduction of up to an order of magnitude with respect to the standard solution of sampling and transmitting samples for off-board processing.
机译:无线电通信是无线传感器节点中最能耗的任务之一。减少要传输的数据量保持大的省电潜力。压缩感测(CS)和局部信号参数估计的组合可以实现主要兴趣在获取信号的标量特征而不是整个波形的重构中的应用中的大规模数据速率降低。在本文中,我们提出了一种压缩估计器,建立通过穿孔采样来增强典型的CS信号调制方案。具体地,选择信号样本的子集和相关联的加权系数,以便最小化节点功耗,同时实现给定的估计性能。我们详细介绍了相应的刺破算法,并在28 nm FDSOI CMOS中呈现集成数字压缩估计单元的设计。在一个具体的案例研究中,将局部估计与附带相结合,相对于采样的标准解决方案和传输用于卸载处理的标准解决方案,可以降低高达幅度的功率降低。

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