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Cascade and parallel combination (CPC) of adaptive filters for estimating heart rate during intensive physical exercise from photoplethysmographic signal

机译:自适应滤波器的级联和并行组合(CPC)用于根据光电容积描记信号估算剧烈运动中的心率

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摘要

Photoplethysmographic (PPG) signal is getting popularity for monitoring heart rate in wearable devices because of simplicity of construction and low cost of the sensor. The task becomes very difficult due to the presence of various motion artefacts. In this study, an algorithm based on cascade and parallel combination (CPC) of adaptive filters is proposed in order to reduce the effect of motion artefacts. First, preliminary noise reduction is performed by averaging two channel PPG signals. Next in order to reduce the effect of motion artefacts, a cascaded filter structure consisting of three cascaded adaptive filter blocks is developed where three-channel accelerometer signals are used as references to motion artefacts. To further reduce the affect of noise, a scheme based on convex combination of two such cascaded adaptive noise cancelers is introduced, where two widely used adaptive filters namely recursive least squares and least mean squares filters are employed. Heart rates are estimated from the noise reduced PPG signal in spectral domain. Finally, an efficient heart rate tracking algorithm is designed based on the nature of the heart rate variability. The performance of the proposed CPC method is tested on a widely used public database. It is found that the proposed method offers very low estimation error and a smooth heart rate tracking with simple algorithmic approach.
机译:由于构造简单和传感器成本低,光电容积描记(PPG)信号在监视可穿戴设备中的心率方面越来越受欢迎。由于各种运动伪像的存在,任务变得非常困难。为了减少运动伪像的影响,提出了一种基于级联和并行组合的自适应滤波器的算法。首先,通过平均两个通道的PPG信号来进行初步的降噪。接下来,为了减少运动伪影的影响,开发了由三个级联自适应滤波器块组成的级联滤波器结构,其中将三通道加速度计信号用作运动伪影的参考。为了进一步减少噪声的影响,引入了基于两个这样的级联自适应噪声消除器的凸组合的方案,其中采用了两个广泛使用的自适应滤波器,即递归最小二乘和最小均方滤波器。心率是根据频谱域中降噪后的PPG信号估算的。最后,根据心率变异性的性质,设计了一种高效的心率跟踪算法。提议的CPC方法的性能已在广泛使用的公共数据库上进行了测试。发现所提出的方法提供了非常低的估计误差并且以简单的算法方法提供了平滑的心率跟踪。

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