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Micromotion Artefact Reduction of a Wrist Worn PPG Sensor Using Green Light PPG and Surface EMG

机译:使用绿灯PPG和表面EMG减少手腕磨损PPG传感器的微型艺术品。

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Photoplethysmography (PPG) is a noninvasive technology that uses a light source and a photodetector at the surface of the skin to monitor the volumetric variations of blood circulation for measurements of heart rate and more recently, mean arterial pressure. However, PPG signals are highly susceptible to motion artefacts. In wrist worn PPG, motion artefact reduction often uses an accelerometer as motion reference but micromotions such as finger movements are not accurately captured in an accelerometer and tend to mask with the PPG spectrum making it complicated to remove. This paper presents an approach to reduce the micromotion artefacts in a PPG signal using green light optics and surface electromyography (sEMG). The corrupted PPG signal was initially filtered using 2nd order IIR Chebyshev Type I Bandpass Filter. A combination of Continuous Wavelet Transform spectral subtraction and Filtered-x Least Mean Square algorithm were then used to further correct the PPG signal. Combination thereof showed the highest correlation and degree of agreement between the recovered and resting PPG as compared to using these independently. The recovered PPG signal was evaluated by comparing it to the resting PPG using Pearson linear regression, Passing-bablok regression and Bland-Altman plots.
机译:光电觉体描绘(PPG)是一种非侵入性技术,其在皮肤表面处使用光源和光电探测器,以监测心率测量的血液循环的容积变化,最近平均动脉压力。然而,PPG信号非常容易受到运动人工制品的影响。在手腕磨损的PPG中,运动人工制品通常使用加速度计作为运动参考,但在加速度计中不准确地捕获如手指运动的微观,并倾向于用PPG光谱掩盖,使其成为复杂的PPG光谱。本文介绍了一种方法,可以使用绿光光学和表面电拍摄(SEMG)减少PPG信号中的微调人工制品。损坏的PPG信号最初使用2滤波 nd 订购IIR Chebyshev I型带通滤波器。然后使用连续小波变换谱减法和过滤X最小均方算法的组合来进一步校正PPG信号。与使用这些独立相比,其组合显示出回收和休息的PPG之间的相应程度的最高相关性和协议。通过使用Pearson线性回归,通过-Bablok回归和Bland-Altman图来评估回收的PPG信号。

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