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Respiratory Rate Estimation from the Photoplethysmogram Combining Multiple Respiratory-induced Variations Based on SQI

机译:基于SQI的光体积描记图结合多个呼吸诱发的变化估计呼吸频率

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Currently measuring respiratory rate (RR) accurately and conveniently is still a difficult problem. The photoplethysmogram (PPG) obtained from pulse oximetry contains a variety of physiological information related to human health, such as heart rate, blood pressure, oxygen saturation and RR. This paper presents an algorithm to estimate respiratory rate based on the characteristic parameters of PPG. Firstly, signal quality index (SQI) is used to identify the low-quality PPG signal. Secondly, respiratory waveform is modeled by four features extracted from PPG signal. Thirdly, Autoregressive modelling (AR) is used to obtain frequency of the four respiratory-induced variations. Fourthly, RR is estimated by a data fusion method combine the four respiratory-induced variations. Finally, the proposed method has been tested on physiological recordings from some adults. The accuracy of the RR is assessed using root mean square (RMS) error. The median RMS error obtained for RR is 0.75 breaths/min showing that the proposed algorithm has achieved high accuracy and robustness.
机译:当前,准确且方便地测量呼吸频率(RR)仍然是一个难题。通过脉搏血氧饱和度测定法获得的光电容积描记(PPG)包含与人类健康相关的各种生理信息,例如心率,血压,血氧饱和度和RR。本文提出了一种基于PPG特征参数的呼吸频率估计算法。首先,信号质量指数(SQI)用于识别低质量PPG信号。其次,通过从PPG信号中提取的四个特征对呼吸波形进行建模。第三,自回归建模(AR)用于获得四个呼吸诱发的变化的频率。第四,通过数据融合方法结合四个呼吸诱发的变化来估计RR。最后,对一些成年人的生理记录进行了测试。使用均方根(RMS)误差评估RR的准确性。 RR的中值RMS误差为0.75呼吸/分钟,表明所提出的算法具有很高的准确性和鲁棒性。

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