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Backward Adaptation for Power Efficient Sampling

机译:向后自适应以实现节能采样

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Advances in sampling and coding theory have contributed significantly towards lowering power consumption of resource-constrained devices, e.g. battery-operated sensor nodes, enabling them to operate for extended periods of time. In this paper, rate and energy efficiency of a recently proposed adaptive nonuniform sampling framework by Feizi , called Time-Stampless Adaptive Nonuniform Sampling (TANS), is examined and compared against state-of-the-art methods. TANS addresses one of the main limitations of nonuniform sampling schemes: sampling times do not need to be stored/transmitted since they can be computed using a function of previously taken samples. The sampling rate is adapted continuously with the aim of reducing the rate and therefore the energy consumption of the sampling process when the signal is varying slowly. Three TANS methods are proposed for different signal models and sampling requirements: i) TANS by polynomial extrapolation, which only assumes the third derivative of the signal is bounded but requires no other specific knowledge of the signal; ii) TANS by incremental variation, where the sampling time intervals are chosen from a lattice; and iii) TANS constrained to a finite set of sampling rates. Practical implementation details of TANS are discussed, and its rate and energy performance are compared with uniform sampling followed by a transformation-based compression, nonuniform sampling, and compressed sensing. Our results demonstrate that TANS provides significant improvements in terms of both the rate-distortion performance and the energy consumption compared against the other approaches.
机译:采样和编码理论的进步为降低资源受限设备的功耗做出了巨大贡献,例如电池供电的传感器节点,使其能够长时间运行。在本文中,我们研究了Feizi 最近提出的自适应非均匀采样框架(称为无时间戳自适应非均匀采样(TANS))的速率和能量效率,并将其与最新方法进行了比较。 TANS解决了非均匀采样方案的主要限制之一:不需要存储/传输采样时间,因为可以使用先前采样的函数来计算采样时间。为了降低速率,并因此降低信号缓慢变化时采样过程的能耗,连续调整采样率。针对不同的信号模型和采样要求,提出了三种TANS方法:i)通过多项式外推进行TANS,该方法仅假设信号的三阶导数是有界的,而无需其他有关信号的特定知识; ii)通过增量变化进行TANS,其中采样时间间隔是从晶格中选择的; iii)TANS限制为有限的采样率集合。讨论了TANS的实际实现细节,并将其速率和能量性能与均匀采样,随后基于变换的压缩,非均匀采样和压缩感测进行了比较。我们的结果表明,与其他方法相比,TANS在速率失真性能和能耗方面都提供了显着的改进。

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