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Prediction of Intradialytic Hypotension Using PPG Signal Features

机译:利用PPG信号特征预测脑内低血压

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One of the most prevalent complications in hemodialysis patients is repetitive hypotension during dialysis sessions. Different factors can be used for monitoring patient conditions and preventing Intra-Dialytic Hypotension (IDH) occurrence during hemodialysis, such as blood pressure, blood volume, electrical Impedance factors etc. We predicted hypotension episodes by using finger PPG signal features. Because of non-stationary nature of PPG signal, we divided main signal in 5-minute parts with no overlap and analyzed each part, separately. Four different signals in different frequency bands extracted from each part and considered for analyzing in frequency domain. Finally, we extracted 12 features in time domain and 10 features in frequency domain. Using Genetic Algorithm (GA) and "AdaBoost" for feature selection and classification, we diffracted IDH and Pre-IDH episodes of dialysis sessions. The obtained results indicate that the mean value of accuracy, sensitivity and specificity of the proposed algorithm are 90.68%, 86.03% and 93.02% respectively.
机译:血液透析患者中​​最普遍的并发症之一是在透析期间的重复性低血压。不同的因素可用于监测患者条件并预防血液压力,血压,血容量,电阻抗因子等中的透析内的逆血(IDH)发生。我们通过使用手指PPG信号特征来预测低血压剧集。由于PPG信号的非静止性,我们将主信号分开5分钟,没有重叠,分别分别分析。从每个部分提取的不同频带中的四个不同信号,并考虑在频域中分析。最后,我们在时域中提取了12个功能和频域中的10个功能。使用遗传算法(GA)和“Adaboost”进行特征选择和分类,我们衍射IDH和透析会话的IDH预发作。所得结果表明,所提出的算法的准确性,敏感性和特异性的平均值分别为90.68%,86.03%和93.02%。

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