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使用反向传播神经网络从表面胃电图无创识别胃收缩。

Non-invasive identification of gastric contractions from surface electrogastrogram using back-propagation neural networks.

作者信息

Chen J D, Lin Z, Wu Q, McCallum R W

机构信息

University of Virginia Health Science Center, Charlottesville 22908, USA.

出版信息

Med Eng Phys. 1995 Apr;17(3):219-25. doi: 10.1016/1350-4533(95)95713-k.

Abstract

Gastric contractions play an important role in the digestive process of the stomach. The established method for the measurement of gastric contractions is invasive and involves the insertion through the nose of a manometric probe into the stomach. A non-invasive method is introduced in this paper for the identification of gastric contractions using the surface electrogastrogram. The electrogastrogram (EGG) was measured by placing surface electrodes on the abdominal skin over the stomach in ten subjects. Gastric contractions were simultaneously monitored using an intraluminal manometric probe. The back-propagation neural network was applied to identify gastric contractions from the EGG. The input of the neural network was composed of spectral data points of the EGG which was computed using the exponential distribution method. Experiments were conducted to optimize network structures and parameters. Using the EGG data in five subjects as the training set and the EGG data in another five subjects as the testing set, an overall accuracy of 92% was achieved in the identification of gastric contractions with an optimized three-layer back-propagation neural network (number of nodes for input:hidden:output layers being 64:10:2).

摘要

胃收缩在胃的消化过程中起着重要作用。已有的测量胃收缩的方法具有侵入性,需要通过鼻腔将测压探头插入胃内。本文介绍了一种使用表面胃电图识别胃收缩的非侵入性方法。通过将表面电极放置在十名受试者胃部上方的腹部皮肤上,测量胃电图(EGG)。同时使用腔内测压探头监测胃收缩。应用反向传播神经网络从EGG中识别胃收缩。神经网络的输入由使用指数分布方法计算的EGG频谱数据点组成。进行实验以优化网络结构和参数。以五名受试者的EGG数据作为训练集,另外五名受试者的EGG数据作为测试集,使用优化后的三层反向传播神经网络(输入层:隐藏层:输出层的节点数为64:10:2)在胃收缩识别中实现了92%的总体准确率。

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