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Sampling rate impact on energy consumption of biomedical signal processing systems

机译:采样率对生物医学信号处理系统能耗的影响

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Long battery runtime is one of the most wanted properties of wearable sensor systems. The sampling rate has an high impact on the power consumption. However, defining a sufficient sampling rate, especially for cutting edge mobile sensors is difficult. Often, a high sampling rate, up to four times higher than necessary, is chosen as a precaution. Especially for biomedical sensor applications many contradictory recommendations exist, how to select the appropriate sample rate. They all are motivated from one point of view - the signal quality. In this paper we motivate to keep the sampling rate as low as possible. Therefore we reviewed common algorithms for biomedical signal processing. For each algorithm the number of operations depending on the data rate has been estimated. The Bachmann-Landau notation has been used to evaluate the computational complexity in dependency of the sampling rate. We found linear, logarithmic, quadratic and cubic dependencies.
机译:较长的电池运行时间是可穿戴传感器系统最想要的特性之一。采样率对功耗有很大影响。但是,很难确定足够的采样率,尤其是对于最先进的移动传感器而言。通常,为了预防起见,会选择高采样率,最高可达所需采样率的四倍。特别是对于生物医学传感器应用,存在许多相互矛盾的建议,即如何选择适当的采样率。它们都是从一种观点出发的-信号质量。在本文中,我们鼓励将采样率保持在尽可能低的水平。因此,我们回顾了生物医学信号处理的常用算法。对于每种算法,已经估算了取决于数据速率的运算次数。 Bachmann-Landau表示法已用于评估取决于采样率的计算复杂性。我们发现线性,对数,二次和三次依赖性。

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