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Boosting the Battery Life of Wearables for Health Monitoring Through the Compression of Biosignals

机译:通过压缩生物信号来延长用于健康监测的可穿戴设备的电池寿命

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摘要

Modern wearable Internet of Things (IoT) devices enable the monitoring of vital parameters such as heart or respiratory (RESP) rates, electrocardiography (ECG), photo-plethysmographic (PPG) signals within e-health applications. A common issue of wearable technology is that signal transmission is power-demanding and, as such, devices require frequent battery charges and this poses serious limitations to the continuous monitoring of vitals. To ameliorate this, we advocate the use of lossy signal compression as a means to decrease the data size of the gathered biosignals and, in turn, boost the battery life of wearables and allow for fine-grained and long-term monitoring. Considering 1-D biosignals such as ECG, RESP, and PPG, which are often available from commercial wearable IoT devices, we provide a thorough review of existing biosignal compression algorithms. Besides, we present novel approaches based on online dictionaries, elucidating their operating principles and providing a quantitative assessment of compression, reconstruction and energy consumption performance of all schemes. As we quantify, the most efficient schemes allow reductions in the signal size of up to 100 times, which entail similar reductions in the energy demand, by still keeping the reconstruction error within 4% of the peak-to-peak signal amplitude. Finally, avenues for future research are discussed.
机译:现代可穿戴式物联网(IoT)设备可监控电子医疗应用程序中的重要参数,例如心脏或呼吸(RESP)速率,心电图(ECG),光电容积描记(PPG)信号。可穿戴技术的一个普遍问题是信号传输需要耗电,因此,设备需要频繁的电池充电,这对生命体的连续监视构成了严重限制。为了改善这一点,我们提倡使用有损信号压缩,以减少收集到的生物信号的数据大小,进而延长可穿戴设备的电池寿命,并进行细粒度和长期监控。考虑到通常可从商业可穿戴物联网设备中获得的一维生物信号(例如ECG,RESP和PPG),我们对现有生物信号压缩算法进行了全面回顾。此外,我们提出了基于在线词典的新颖方法,阐明了它们的操作原理并提供了对所有方案的压缩,重建和能耗性能的定量评估。正如我们所量化的那样,最有效的方案允许将重构误差保持在峰峰值信号幅度的4%以内,从而使信号大小减少多达100倍,这也意味着能量需求的类似减少。最后,讨论了未来研究的途径。

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