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Comparative Study of Heart Rate Extraction Methods for a Novel Intelligent Mattress

机译:一种新型智能床垫心率提取方法的比较研究

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Unobtrusive monitoring of the heart rate (HR) is essential for improving medical intervention. A new generation of mattress-based fiber optic sensor (FOS) is emerging for HR monitoring. The use of this FOS mattress for medical diagnosis requires appropriate advanced signal processing algorithms. In our study, we aim to weigh the performances of a novel and cheaper microbend FOS mattress by applying ballistocardiogram and HR extraction algorithms. Therefore, our study targets comparing four types of HR extraction algorithms on the FOS mattress, namely MODWT, CEEMDAN, cepstrum and clustering. The goal is to select, based on their accuracy and computational speed, the most suitable one for online or offline application purposes. Results of applying these four chosen algorithms on the FOS mattress show that the cepstrum is the most accurate algorithm with a mean absolute error (MAE) of 4.62 ± 1.68 BPM. However, the cepstrum is more appropriate for offline monitoring with a runtime of 662.9 ms for a 10-second signal segment. The results also show that the Maximal Overlap Direct Wavelet Transform (MODWT) is more efficient with a runtime of 4.1 milliseconds for online purposes, but with a slightly bigger MAE (6.87 ± 1.94 BPM). Both methods proved to be as efficient on the new mattress technology as past intelligent mattresses.
机译:在心脏率(HR)的不显眼的监测是提高医疗干预是必不可少的。新一代的基于床垫光纤传感器(FOS)是新兴的人力资源监控。使用这种FOS床垫用于医疗诊断的需要适当的先进的信号处理算法。在我们的研究中,我们的目标是将心冲击和人力资源提取算法来衡量一个新的和更便宜的微弯FOS床垫的表演。因此,我们的研究目标的FOS床垫,即MODWT,CEEMDAN,倒谱和聚类比较四种类型的HR提取算法。我们的目标是基于其精度和计算速度,最适合一个用于在线或离线应用目的来选择。在FOS床垫显示施加这四个选择算法,所述倒谱是最准确的算法与4.62±1.68 BPM的平均绝对误差(MAE)的结果。然而,对数倒频谱是更适合于脱机的662.9毫秒为10第二信号段的运行时间监视。研究结果还显示,最大重叠直接小波变换(MODWT)是4.1毫秒在线目的的运行效率更高,但稍大一点的MAE(6.87±1.94 BPM)。这两种方法都被证明是高效的新床垫技术作为过去的智能床垫。

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