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Features Extraction for Cuffless Blood Pressure Estimation by Autoencoder from Photoplethysmography

机译:来自光学读物读物的自动化器禁心血压估计的特点提取

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Several studies have been proposed to estimate blood pressure (BP) with cuffless devices using only a Photoplethysmograph (PPG) sensor on the basis of the physiological knowledge that the PPG changes depend on the state of the cardiovascular system. In these studies, machine learning algorithms were used to extract various features from the wave height and the elapsed time from the rising point of the pulse wave to feature points have been used to estimate the BP. However, the accuracy is still not adequate to be used as medical equipment because their features cannot express fully information of the pulse waveform which changes according to the BP. And, no other effective knowledge about the pulse waveform for estimating BP has been found yet. Therefore, in this study, we focus on the autoencoder which can extract complex features and can add new features of the pulse waveform for estimating the BP. By using autoencoder, we extracted 100 features from the coupling signal of the pulse wave and from its first-order differentiation and second-order differentiation. The result of examination with 1363 test subjects show that the correlation coefficients and the standard deviation of the difference between the measured BP and the estimated BP got improved from R = 0.67, SD = 13.97 without autoencoder to R = 0.78, SD = 11.86 with autoencoder.
机译:已经提出了几项研究,以抑制诱齿装置的血压(BP)仅在基于PPG变化取决于心血管系统的状态的基础上,仅使用光电读数测器(PPG)传感器来抑制诱齿装置。在这些研究中,使用机器学习算法用于从波高的从波高的各种特征和从脉冲波的上升点到特征点来提取各种特征来估计BP。但是,准确性仍然不足以用作医疗设备,因为它们的功能不能表达根据BP改变的脉冲波形的完全信息。并且,尚未发现关于估计BP的脉冲波形的其他有效知识。因此,在本研究中,我们专注于可以提取复杂特征的AutoEncoder,并且可以添加脉冲波形的新功能以估计BP。通过使用AutoEncoder,我们从脉冲波的耦合信号和其一阶分化和二阶分化中提取了100个特征。用1363个测试对象进行检查结果表明,相关系数和测量的BP与估计的BP之间的差异的标准偏差从r = 0.67,sd = 13.97改善,没有自动码器与autoencoder的r = 0.78,sd = 11.86。 。

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