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首页> 外文期刊>BioMed research international >Quantification of Hepatorenal Index for Computer-Aided Fatty Liver Classification with Self-Organizing Map and Fuzzy Stretching from Ultrasonography
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Quantification of Hepatorenal Index for Computer-Aided Fatty Liver Classification with Self-Organizing Map and Fuzzy Stretching from Ultrasonography

机译:超声检查与自组织地图和模糊伸展的计算机辅助脂肪肝分类对肝癌指标的定量

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摘要

Accurate measures of liver fat content are essential for investigating hepatic steatosis. For a noninvasive inexpensive ultra-sonographic analysis, it is necessary to validate the quantitative assessment of liver fat content so that fully automated reliable computer-aided software can assist medical practitioners without any operator subjectivity. In this study, we attempt to quantify the hepatorenal index difference between the liver and the kidney with respect to the multiple severity status of hepatic steatosis. In order to do this, a series of carefully designed image processing techniques, including fuzzy stretching and edge tracking, are applied to extract regions of interest. Then, an unsupervised neural learning algorithm, the self-organizing map, is designed to establish characteristic clusters from the image, and the distribution of the hepatorenal index values with respect to the different levels of the fatty liver status is experimentally verified to estimate the differences in the distribution of the hepatorenal index. Such findings will be useful in building reliable computer-aided diagnostic software if combined with a good set of other characteristic feature sets and powerful machine learning classifiers in the future.
机译:准确的肝脂肪含量措施对于研究肝脏脂肪变性至关重要。对于非侵入性的廉价超声超声分析,有必要验证肝脏脂肪含量的定量评估,以便全自动可靠的计算机辅助软件可以帮助医生而没有任何操作员主观性。在这项研究中,我们试图在肝脏脂肪变性的多重严重程度状态下量化肝脏和肾之间的肝肾指数差异。为此,应用了一系列精心设计的图像处理技术,包括模糊拉伸和边缘跟踪,用于提取感兴趣的区域。然后,设计了无监督的神经学习算法,自组织地图,被设计为建立来自图像的特征簇,并且对不同水平的脂肪肝状态的分布是实验验证的,以估计差异在肝肾指数的分布。如果结合了未来的良好的其他特征特征集和强大的机器学习分类,则这些发现将在构建可靠的计算机辅助诊断软件方面有用。

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