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Subclass Discriminant Analysis of Morphological and Textural Features for HEp-2 Staining Pattern Classification

机译:HEp-2染色模式分类的形态和质地特征的子类判别分析

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摘要

Classifying HEp-2 fluorescence patterns in Indirect Immunofluorescence (IIF) HEp-2 cell imaging is important for the differential diagnosis of autoimmune diseases. The current technique, based on human visual inspection, is time-consuming, subjective and dependent on the operator's experience. Automating this process may be a solution to these limitations, making IIF faster and more reliable. This work proposes a classification approach based on Subclass Discriminant Analysis (SDA), a dimensionality reduction technique that provides an effective representation of the cells in the feature space, suitably coping with the high within-class variance typical of HEp-2 cell patterns. In order to generate an adequate characterization of the fluorescence patterns, we investigate the individual and combined contributions of several image attributes, showing that the integration of morphological, global and local textural features is the most suited for this purpose. The proposed approach provides an accuracy of the staining pattern classification of about 90%.
机译:在间接免疫荧光(IIF)中对HEp-2荧光模式进行分类HEp-2细胞成像对于自身免疫性疾病的鉴别诊断非常重要。基于人类视觉检查的当前技术耗时,主观且取决于操作员的经验。自动化此过程可能是这些限制的解决方案,从而使IIF更快,更可靠。这项工作提出了一种基于子类判别分析(SDA)的分类方法,该方法是一种降维技术,可以有效表示特征空间中的像元,并适当应对HEp-2像元模式典型的类内高方差。为了生成适当的荧光图案特征,我们研究了几种图像属性的单独和组合贡献,表明形态,全局和局部纹理特征的集成最适合此目的。所提出的方法提供了大约90%的染色模式分类精度。

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