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An Efficient Extraction Approach of Heart Rate Variability from Real-time Smartphone Videos

机译:实时智能手机视频的心率变异性有效的提取方法

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Heart rate variability(HRV) is widely used to autonomic nerves system assessment and cardiac disease diagnosis in clinic. The traditional HRV analysis is based on Electrocardiogram (ECG). However, it is more convenient to measure HRV by Photoplethysmography (PPG) in most wearable applications, such as watches. This paper proposed a novel method called Temporal Difference Interval Pixels(TDIP) method to obtain PPG signal through smartphone camera. In the experiment, we compared the cost time of obtaining PPG between traditional Temporal Difference(TD) method and TDIP method. We used these two methods to obtain PPG from 5 minutes' smartphone videos, which was acquired from 10 subjects. The average cost time of these two methods are 152.72 seconds and 82.38 seconds respectively. Then, we compared the time domain parameters the standard deviation of NN intervals (SDNN)and the Root mean square of successive differences between NN intervals (RMSSD) obtained by the proposed method with that obtained by ECG. The Pearson coefficient is 0.91 for SDNN and 0.95 for RMSSD respectively. The result can meet the HRV accuracy requirement, and it also significantly reduces the amount of calculation to improve the real-time performance.
机译:心率变异性(HRV)广泛用于诊所的自主神经系统评估和心脏病诊断。传统的HRV分析基于心电图(ECG)。然而,在最可佩戴的应用中通过光增性的应用(PPG)测量HRV更方便,例如手表。本文提出了一种称为时间差间隔像素(TDIP)方法的新方法,以通过智能手机相机获得PPG信号。在实验中,我们比较了在传统的时间差(TD)方法和TDIP方法之间获得PPG的成本时间。我们使用这两种方法从5分钟的智能手机视频获得PPG,从10个科目中获得。这两种方法的平均成本时间分别为152.72秒和82.38秒。然后,将时域参数与由ECG获得的所提出的方法获得的NN间隔(RMSD)之间的连续差异的标准偏差进行了比较了NN间隔(SDNN)的标准偏差和均线均线。 Pearson系数分别为SDNN系数为0.91,分别为RMSD为0.95。结果可以满足HRV精度要求,并且还显着降低了改善实时性能的计算量。

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