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Calibration and Validation of Homeostasis Parameters Estimates Produced by a DSP Embedded in a Wheelchair

机译:DSP嵌入轮椅中产生的稳态和验证宿潮和验证

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Ballistocardiogram, capacitive electrocardiogram, and photoplethysmogram (PPG) sensors were embedded in a wheelchair together with a digital signal processor (DSP) with Wi-Fi capabilities. This setup allows monitoring of some homeostasis parameters of the wheelchair user, namely heart rate (HR), pulse arrival and transit times, and oxygen saturation (SpO_2). Ten subjects tested the wheelchair capabilities. SpO_2 and HR obtained from the PPG of reference equipment were also recorded for comparative analysis. This paper reports the results of the algorithms developed for HR estimation, for all the signals, and for SpO_2 from the PPG. From the data of the ten subjects the algorithms had their parameters calibrated, and presented an average RMS error of 1.903% for SpO_2, with the best value being 0.024%. The most unstable signal is the BCG from where the global calibration provides an HR estimate with an average 4.73 bpm error. The algorithms created were confirmed valid, and the signals from the hardware setup can be used to provide estimates with significant accuracy in heart rate estimation, but needing personalized calibration in the SpO_2 case.
机译:滚珠球技术造影,电容式心电图和光电电血压(PPG)传感器与具有Wi-Fi功能的数字信号处理器(DSP)一起嵌入轮椅上。该设置允许监控轮椅用户的一些稳态参数,即心率(HR),脉冲到达和运输时间和氧饱和度(SPO_2)。十个受试者测试了轮椅的能力。还记录了从PPG参考设备获得的SPO_2和HR进行比较分析。本文报告了为HR估计开发的算法的结果,用于所有信号,以及来自PPG的SPO_2。从十个受试者的数据,算法的参数校准,并且展示了SPO_2的平均RMS误差为1.903%,最佳值为0.024%。最不稳定的信号是BCG,来自全局校准提供HR估计,平均为4.73bpm误差。创建的算法是有效的,并且来自硬件设置的信号可用于在心率估计中提供具有显着精度的估计,但需要在SPO_2情况下进行个性化校准。

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