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Developing a Wireless High Precision and Processing Speed Pulse Monitoring Headset Using Photoplethysmography

机译:使用光电容积描记法开发无线高精度和处理速度脉冲监测耳机

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摘要

In this paper, thorough improvement of pulse monitoring and analysis equipment with a headset structure is presented. In order to study the most suitable infrared wavelength for the acquisition of the pulse wave at the earlobe, Monte Carlo simulation was adapted. Both high frequency noise and baseline drift, generated in the signal acquisition process, are considered. To further optimize the system design and improve accuracy, for the sensor’s dimensional drift, the corresponding compensation was carried on in the software. This paper introduced nonlinear quantization, especially in terms of very weak pulse signal, in the time domain analysis process. A quick extraction method named table look-up combing with interpolation was utilized to obtain frequency domain information whose processing speed can be increased by about 30 times compared with fast Fourier transformation setting the sampling point as 300. The results demonstrated the sensor’s excellent performance in pulse signal acquisition whose maximum residual is less than 0.004 mV. The test on a random sample of 300 people indicates that the system had high correlation with reference, validating the system accuracy is extremely high. Overall, this paper provides a practical pulse monitoring and analysis system with high precision and processing speed that can be widely applied in the field of health management or medical measurement.
机译:本文对具有耳机结构的脉冲监测和分析设备进行了全面的改进。为了研究最合适的红外波长以获取耳垂处的脉搏波,对蒙特卡罗模拟进行了调整。信号采集过程中会产生高频噪声和基线漂移。为了进一步优化系统设计并提高精度,针对传感器的尺寸漂移,在软件中进行了相应的补偿。本文介绍了在时域分析过程中的非线性量化,特别是在非常弱的脉冲信号方面。与将采样点设置为300的快速傅里叶变换相比,采用了一种名为表查找和插值的快速提取方法来获取频域信息,该信息的处理速度可提高约30倍。结果证明了该传感器在脉冲方面的出色性能最大残差小于0.004 mV的信号采集。在300人的随机样本上进行的测试表明,该系统与参考具有很高的相关性,证明系统的准确性非常高。总体而言,本文提供了一种实用的,具有高精度和处理速度的脉冲监测和分析系统,可广泛应用于健康管理或医疗测量领域。

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