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Heart Rate Estimation from Wrist-Type Photoplethysmographic Signals Corrupted by Intense Motion Artifacts using NLMS Adaptive Filter and Spectral Peak Tracking

机译:使用NLMS自适应滤波器和频谱峰值跟踪,根据强烈运动伪影损坏的腕式光电容积描记信号估算心率

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Current advances in sensor and microelectronics technology have enable real-time non-invasive Heart Rate (HR) monitoring on wearable devices. Wrist-type Photoplethysmography is one of the most widely used methods to estimate HR in wearable devices. However, Photoplethysmographic (PPG) signals are strongly affected by Motion Artifacts (MA) caused by body movements. This paper presents a method of estimating heart rate from wrist-type photoplethysmographic signals during fast running of increasing speed peaking at 15km/hour. Our proposed method successfully suppresses the motion artifacts by using Normalized Least Mean Square (NLMS) adaptive filter and Spectral Peak Tracking (SPT). The proposed method was tested on datasets recorded from 12 subjects available from IEEE Signal Processing Cup 2015 [7]. Our algorithm produces HR estimations with mean absolute error of 1.57 beat per minute and the standard deviation of 1.11 beat per minute.
机译:传感器和微电子技术的最新进展已实现对可穿戴设备的实时无创心率(HR)监控。腕式光电容积描记法是估计可穿戴设备中HR的最广泛使用的方法之一。但是,人体运动引起的运动伪影(MA)严重影响了光电容积描记(PPG)信号。本文提出了一种以15 km / hour的速度峰值达到峰值的快速运行过程中,根据腕式光电容积描记信号估算心率的方法。我们提出的方法通过使用归一化最小均方(NLMS)自适应滤波器和频谱峰值跟踪(SPT)成功抑制了运动伪影。在从IEEE Signal Processing Cup 2015 [7]的12个主题记录的数据集上测试了该方法。我们的算法产生的HR估计值的平均绝对误差为每分钟1.57次搏动,标准偏差为每分钟1.11次搏动。

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