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A Method for Energy-Efficient Sampling of Analog to Digital Converters

机译:一种节能与数字转换器的节能采样方法

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We present PANDA, a data acquisition technique for energy-constrained sensor nodes that reduces the energy per operation required to sample and preprocess analog sensor data. PANDA takes advantage of the energy consumption patterns of commodity microcontrollers by sampling input signals in short bursts followed by long periods of inactivity. This approach reduces the overhead of repetitively transitioning the CPU and analog components in and out of low-power sleep states. This nonuniformly-spaced input data is then fed to a nonuniform FFT algorithm that computes the frequency spectrum. We show that the spectrum computed with the nonuniform FFT is very close to the spectrum that would be computed from uniformly sampled data preprocessed with a conventional FFT. The output of the nonuniform FFT can be filtered or postprocessed with conventional frequency domain analysis techniques, and a uniformly resampled output can be constructed with the conventional inverse FFT. We compare the energy consumption patterns of burst-mode sampling to those of conventional uniform sampling in several real sensor nodes. We demonstrate that for reasonably sized input datasets, burst mode sampling and postprocessing consumes more than 17 percent less energy than conventional uniform sampling, including the additional computations required to compute the nonuniform DFT.
机译:我们呈现熊猫,一种用于能量受限传感器节点的数据采集技术,其降低了样本和预处理模拟传感器数据所需的每个操作的能量。 Panda通过在短脉冲中的输入信号随后是长时间的不活动来利用商品微控制器的能量消耗模式。这种方法减少了重复转换CPU和模拟组件进出低功耗睡眠状态的开销。然后将这种不均匀间隔的输入数据馈送到计算频谱的非均匀FFT算法。我们表明,使用非均匀FFT计算的光谱非常接近频谱,该频谱将从预处理的统一采样数据计算出传统的FFT。可以通过传统的频域分析技术过滤或后处理非均匀FFT的输出,并且可以用传统的逆FFT构造均匀重采样的输出。我们将突发模式采样的能量消耗模式与几个真实传感器节点中的传统统一采样的能量消耗模式进行比较。我们证明,对于合理大小的输入数据集,突发模式采样和后处理消耗比传统统一采样减少超过17%,包括计算不均匀DFT所需的附加计算。

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