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首页> 外文期刊>Computers in Biology and Medicine >Assessment of slow wave propagation in multichannel electrogastrography by using noise-assisted multivariate empirical mode decomposition and cross-covariance analysis
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Assessment of slow wave propagation in multichannel electrogastrography by using noise-assisted multivariate empirical mode decomposition and cross-covariance analysis

机译:利用噪声辅助多变量经验分解和交叉协方差分析评估多通道电池慢波传播

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摘要

Electrogastrography (EGG) is a noninvasive technique for recording the myoelectrical activity of the stomach. An electrogastrographic signal recorded by using a four-channel system with electrodes placed on the surface of the skin is a mixture of a low-frequency gastric pacesetter potential known as a slow wave, electrical activity from other organs, and random noise. The aim of this work was to investigate the possibility of detecting the propagation of the gastric slow wave from multichannel EGG data. Noise-assisted multivariate empirical mode decomposition (NA-MEMD) and cross-covariance analysis (CCA) are proposed as new detection tools. NA-MEMD was applied to attenuate the noise and extract the EGG signal from four channels, while CCA was performed to assess the time shift between the EGG signal channels. Validation of the method was performed using synthetic EGG signals and the methodology was tested on four young, healthy adults. After validation, the proposed method was applied for two kinds of human EGG data: 10-min (short) EGG data from the preprandial phase and 90-120 min (long) EGG data from the preprandial phase as well as the postprandial phase. The results obtained for both synthetic and human EGG data confirm that the proposed method could be a useful tool for assessing the propagation of slow waves. The time shift calculation from the preprandial phase of the EGG examination yielded more consistent results than the postprandial phase. The mean value of the slow wave time lag between neighbouring channels for synthetic data was found to be 4.99 +/- 0.47 s. In addition, it was confirmed that the proposed method, that is, NA-MEMD and CCA together, are robust to noise.
机译:电动图形(鸡蛋)是一种用于记录胃的肌电活动的非侵入性技术。通过使用具有放置在皮肤表面上的电极的四通道系统记录的电动图标是被称为慢波,来自其他器官的慢波,电活动的低频胃耦合器电位和随机噪声的混合物。这项工作的目的是探讨检测来自多通道蛋数据的胃慢波传播的可能性。提出了噪声辅助多变量经验模式分解(NA-MEMD)和交叉协方差分析(CCA)作为新的检测工具。应用NA-MEMD来衰减噪声并从四个通道提取蛋信号,而CCA进行了评估蛋信号通道之间的时位。使用合成蛋信号进行该方法的验证,并在四个年轻,健康的成年人上测试方法。验证后,将所提出的方法应用于两种人蛋数据:从预载阶段和90-120分钟(长)来自预振作相以及餐后阶段的90-120分钟(长)蛋数据。对合成和人蛋数据获得的结果证实,该方法可以是评估慢波传播的有用工具。从鸡蛋检查的预持续阶段的时间转移计算产生比餐后阶段更一致的结果。发现合成数据相邻信道之间的慢波时间滞后的平均值为4.99 +/- 0.47 s。此外,证实了该方法,即Na-Memd和CCA在一起,对噪声具有鲁棒性。

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