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Automatic Scoring of Non-Apnoea Arousals Using the Polysomnogram

机译:使用多导睡眠图自动对非呼吸困难的配偶计分

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In this study, we developed a system that identifies the respiratory effort related arousals (RERA) and the non-RERA, non-apnoea arousals by processing four signals of the chin EMG signal, two channels of EEG signals (C4-M1 and C3-M2) and the oximetry signal. The 2 EEG signals were processed identically. Firstly, preprocessing was applied to remove the baseline wander, unwanted low frequency components and the abrupt changes. Then, the EEG signals were divided into non-overlapping epochs and a power spectral decomposition was calculated resulting in 5 PSD features per epoch. The Chin EMG signals were processed in the same fashion and resulted in 5 PSD features. The artefact signal of the SaO2 signal was removed and the square root of the standard deviation of the signal was calculated. The features were combined into a 16-element epoch. Following this, features from surrounding epochs were combined with the current epoch. We compared the performance of combining features from one to four epochs either side of an epoch. The 10-fold cross validation results of three classifiers including linear discriminant analysis (LDA), logistic regression (LR) and single hidden layer feedforward neural networks (SHLN). The performance of our best system was an AUC 0.82 and an AUPRC of 0.24 using the 10 hidden units feed-forward neural network.
机译:在这项研究中,我们开发了一种系统,该系统通过处理下巴EMG信号的四个信号,EEG信号的两个通道(C4-M1和C3- M2)和血氧饱和度信号。对2个EEG信号进行了相同的处理。首先,进行预处理以消除基线漂移,不必要的低频成分和突变。然后,将EEG信号分为非重叠时期,并计算功率谱分解,每个时期产生5个PSD特征。 Chin EMG信号以相同的方式处理,并产生5个PSD功能。去除SaO2信号的假象信号,并计算该信号的标准偏差的平方根。要素合并为16个元素的纪元。此后,来自周围时代的特征与当前时代相结合。我们比较了在一个特征的任一时期从一个特征到四个特征的组合特征的性能。三个分类器的10倍交叉验证结果包括线性判别分析(LDA),逻辑回归(LR)和单隐藏层前馈神经网络(SHLN)。使用10个隐藏单元前馈神经网络,我们最佳系统的性能为AUC 0.82和AUPRC为0.24。

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