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Wearable Sensing of In-Ear Pressure for Heart Rate Monitoring with a Piezoelectric Sensor

机译:压电传感器可监测心率的可穿戴式入耳压力

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摘要

In this study, we developed a novel heart rate (HR) monitoring approach in which we measure the pressure variance of the surface of the ear canal. A scissor-shaped apparatus equipped with a piezoelectric film sensor and a hardware circuit module was designed for high wearability and to obtain stable measurement. In the proposed device, the film sensor converts in-ear pulse waves (EPW) into electrical current, and the circuit module enhances the EPW and suppresses noise. A real-time algorithm embedded in the circuit module performs morphological conversions to make the EPW more distinct and knowledge-based rules are used to detect EPW peaks. In a clinical experiment conducted using a reference electrocardiogram (ECG) device, EPW and ECG were concurrently recorded from 58 healthy subjects. The EPW intervals between successive peaks and their corresponding ECG intervals were then compared to each other. Promising results were obtained from the samples, specifically, a sensitivity of 97.25%, positive predictive value of 97.17%, and mean absolute difference of 0.62. Thus, highly accurate HR was obtained from in-ear pressure variance. Consequently, we believe that our proposed approach could be used to monitor vital signs and also utilized in diverse applications in the near future.
机译:在这项研究中,我们开发了一种新颖的心率(HR)监测方法,其中我们可以测量耳道表面的压力变化。设计具有压电膜传感器和硬件电路模块的剪刀形设备是为了实现高耐磨性并获得稳定的测量结果。在所提出的装置中,薄膜传感器将入耳式脉冲波(EPW)转换为电流,并且电路模块增强了EPW并抑制了噪声。嵌入在电路模块中的实时算法执行形态转换,以使EPW更加清晰,并且基于知识的规则用于检测EPW峰值。在使用参考心电图(ECG)设备进行的临床实验中,同时记录了58位健康受试者的EPW和ECG。然后将连续峰之间的EPW间隔及其对应的ECG间隔相互比较。从样品中获得了有希望的结果,具体地说,灵敏度为97.25%,阳性预测值为97.17%,平均绝对差为0.62。因此,从入耳压力变化获得了高精度的HR。因此,我们相信我们提出的方法可以用于监测生命体征,并且在不久的将来也可以用于各种应用中。

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