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An Energy Efficient Wearable Smart IoT System to Predict Cardiac Arrest

机译:一种节能可穿戴智能物联网系统,以预测心脏骤停

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摘要

Recently, many people have become more concerned about having a sudden cardiac arrest. With the increase in popularity of smart wearable devices, an opportunity to provide an Internet of Things (IoT) solution has become more available. Unfortunately, out of hospital survival rates are low for people suffering from sudden cardiac arrests. The objective of this research is to present a multisensory system using a smart IoT system that can collect Body Area Sensor (BAS) data to provide early warning of an impending cardiac arrest. The goal is to design and develop an integrated smart IoT system with a low power communication module to discreetly collect heart rates and body temperatures using a smartphone without it impeding on everyday life. This research introduces the use of signal processing and machine-learning techniques for sensor data analytics to identify predict and/or sudden cardiac arrests with a high accuracy.
机译:最近,许多人变得更加关心突然心脏骤停。随着智能可穿戴设备的普及普及,提供提供物联网(物联网)解决方案的机会已经变得更加可用。遗憾的是,出于患有心脏骤停的人的医院生存率低。本研究的目的是使用智能物联网系统呈现多福音系统,该系统可以收集身体区域传感器(BAS)数据,以提供即将发生的心脏骤停的预警。目标是设计和开发一个具有低功率通信模块的集成智能物联网系统,可以使用智能手机谨慎地收集心率和身体温度,而不会导致日常生活。本研究介绍了用于传感器数据分析的信号处理和机器学习技术,以高精度地识别预测和/或突发的心脏骤停。

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