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Comparison of multilayer perceptron training algorithms for portal venous doppler signals in the cirrhosis disease

机译:肝硬化疾病中门静脉多普勒信号多层感知器训练算法的比较

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In this study, we developed an expert diagnostic system for the interpretation of the portal vein Doppler signals belong the patients with cirrhosis and healthy subjects using signal processing and Artificial Neural Network (ANN) methods. Power spectral densities (PSD) of these signals were obtained to input of ANN using Short Time Fourier Transform (STFT) method. The four layered Multilayer Perceptron (MLP) training algorithms that we have built had given very promising results in classifying the healthy and cirrhosis. For prediction purposes, it has been presented that Levenberg Marquardt training algorithm of MLP network employing backpropagation works reasonably well. The diagnosis performance of the study shows the advantages of this system: It is rapid, easy to operate, noninvasive and not expensive. This system is of the better clinical application over others, especially for earlier survey of population. The stated results show that the proposed method can make an effective interpretation and point out the ability of design of a new intelligent assistance diagnosis system.
机译:在这项研究中,我们开发了一种专家诊断系统,用于通过信号处理和人工神经网络(ANN)方法来解释肝硬化和健康受试者的门静脉多普勒信号。使用短时傅立叶变换(STFT)方法获得这些信号的功率谱密度(PSD),以输入到ANN。我们建立的四层多层感知器(MLP)训练算法在对健康和肝硬化进行分类方面给出了非常有希望的结果。出于预测目的,已经提出了采用反向传播的MLP网络的Levenberg Marquardt训练算法可以很好地工作。该研究的诊断性能显示了该系统的优点:它快速,易于操作,无创且不昂贵。该系统比其他系统具有更好的临床应用,尤其是对于较早的人口调查。结果表明,所提出的方法可以做出有效的解释,并指出设计新型智能辅助诊断系统的能力。

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