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Real-time detection of apnea via signal processing of time-series properties of RFID-based smart garments

机译:基于RFID的智能服装的时间序列性能的信号处理实时检测APNEA

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Signal processing of time-series properties of Radio Frequency Identification (RFID) tags and novel work in textile knitted antennas for garment devices have enabled real-time detection of motion-based artifacts through unobtrusive, wireless, wearable devices. Capturing the Received Signal Strength Indicator (RSSI) as a time-series signal, we classify whether the subject is breathing or not, estimate the rate at which the subject is breathing, and classify whether the tag is moving in a linear, non-stretched fashion. We improve upon previous efforts to classify subject state from RSSI signals by eliminating the need to train the classifier with both breathing and non-breathing sample data (which is biologically infeasible). To test our approach, we use a programmable breathing infant mannequin yielding accurate detection of cessation of respiratory activity within 5 seconds, and a maximum root-mean-square error of 7 per minute when computing the respiratory rate.
机译:射频识别(RFID)标签(RFID)标签的时序性能的信号处理以及服装装置的纺织针织天线的工作能够通过不引人注目的无线可穿戴设备来实现基于运动的伪影的实时检测。 捕获接收的信号强度指示符(RSSI)作为时间序列信号,我们分类是拍摄对象是否呼吸,估计对象呼吸的速率,并分类标签是否在线性,非拉伸的速度移动 时尚。 我们通过消除需要将分类器与呼吸和非呼吸样品数据(在生物学上不可行的样本数据(这是生物上不可行的)培训的需要,从RSSI信号中提高从RSSI信号进行分类的努力。 为了测试我们的方法,我们使用可编程呼吸婴儿人体模型,从而在5秒内能够精确地检测呼吸活动的停止,并且在计算呼吸速率时每分钟的最大根平均误差为7。

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