节能长效生理监测

Ayan Banerjee, S. Nabar, S. Gupta, R. Poovendran
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引用次数: 1

摘要

最近,一些基于无线身体传感器的系统被提出用于连续、长期的生理监测。这种系统的一个主要挑战是要收集大量的数据,而这些数据的传输会在传感器上产生大量的能量消耗。在这项工作中,我们展示了一种数据报告方法,该方法显着降低了能量消耗,同时保持了报告的生理信号的高诊断准确性。这是通过使用传感器感兴趣的生理信号的生成模型来实现的,当感测数据与模型匹配时,抑制数据传输。在本演示中,我们实现了所提出的心电图(ECG)信号技术,并说明了其在节能和报告数据准确性方面的性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Energy-efficient long term physiological monitoring
Recently, several wireless body sensor-based systems have been proposed for continuous, long-term physiological monitoring. A major challenge in such systems is that a large amount of data is collected, and transmission of this data incurs significant energy consumption at the sensor. In this work, we demonstrate a data reporting method that significantly reduces energy consumption while maintaining a high diagnostic accuracy of the reported physiological signal. This is achieved by using a generative model of the physiological signal of interest at the sensor, and suppressing data transmission when sensed data matches the model. In this demonstration, we implement the proposed technique for electrocardiogram (ECG) signal and illustrate its performance in terms of energy savings and accuracy of reported data.
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