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Comparison of simple algorithms for estimating respiration rate from electrical impedance pneumography signals in wearable devices

机译:可穿戴设备中电阻抗肺监测信号借鉴简单算法的比较

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摘要

Respiration rate (RR) is considered as a useful parameter in characterizing the health condition of a person. Among the methods used for respiration measurement, Electrical Impedance Pneumography (EEP) can be easily obtained in wearable applications due to the possibility of using the electrocardiography (ECG) electrodes for the EEP measurement. In the fast growing field of wearable devices, having clinically valuable and reliable information along with providing the convenience of the user, is probably the most important and challenging issue. To address the need of small sized devices for ECG (and EIP) measurements, EASI electrode configuration is an acceptable solution. The signals from EASI system not only provide useful information by themselves when directly used for cardiological analyses, but can also be converted to the standard 12-lead ECG information. With aforementioned advantages of EASI system, the question then arises how suitable the electrode locations of the system are for EIP measurements and what algorithms perform better for respiration rate derivation. In this work, we evaluated eight methods for deriving respiration rate from EIP signals measured from 15 subjects (10 males +5 females) in three conditions: standing, walking slowly, and walking fast. The algorithms were autoregressive (AR) modeling (three different approaches), Fast Fourier Transform (FFT), autocorrelation, peak detection and two counting algorithms. Our results show that advanced counting method is the most promising approach among the ones studied in this work. For this algorithm, the concordance correlation coefficients of the respiration rate estimates between EIP and the reference measurement were 0.96, 0.90 and 0.97 for standing, walking with 3 km/h speed, and walking with 6 km/h speed, respectively.
机译:呼吸率(RR)被认为是表征人的健康状况的有用参数。在用于呼吸测量的方法中,由于使用用于EEP测量的心电图(ECG)电极可能性,可以在可穿戴应用中容易地获得电阻抗膜(EEP)。在快速生长的可穿戴设备领域中,具有临床价值和可靠的信息以及提供用户的便利性,可能是最重要和最具挑战性的问题。为了满足ECG(和EIP)测量的小型设备的需要,EASI电极配置是可接受的解决方案。当直接用于心脏病学分析时,来自EASI系统的信号不仅可以自身提供了有用的信息,但也可以转换为标准的12引导ECG信息。随着EASI系统的上述优点,然后提出了系统的电极位置是如何用于EIP测量的合适,以及什么算法对呼吸速率导出更好。在这项工作中,我们评估了八种方法,用于从来自15个受试者(10个男性+5女性)测量的EIP信号中的呼吸率:站立,慢慢地行走,快速行走。该算法是自回归(AR)建模(三种不同的方法),快速傅里叶变换(FFT),自相关,峰值检测和两个计数算法。我们的结果表明,先进的计数方法是在这项工作中研究的最有希望的方法。对于该算法,EIP和参考测量之间的呼吸速率估计的一致性相关系数为0.96,0.90和0.97,用于速度为3km / h速度,分别使用6 km / h速度行走。

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