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首页> 外文期刊>Pattern Recognition: The Journal of the Pattern Recognition Society >ANA HEp-2 cells image classification using number, size, shape and localization of targeted cell regions
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ANA HEp-2 cells image classification using number, size, shape and localization of targeted cell regions

机译:ANA HEp-2细胞使用目标细胞区域的数量,大小,形状和定位对图像进行分类

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摘要

The ANA HEp-2 medical test is a powerful tool in autoimmune disease diagnostics. The last step of this test, the interpretation of immunofluorescent images by trained experts, represents a potential source of errors and could theoretically be replaced by automated methods. Here we present a fully automatic method for recognition of types of immunofluorescent images produced by the ANA HEp-2 medical test. The proposed method makes use of the difference in number, size, shape and localization of cell regions that are targeted by the antinuclear antibodies - the humoral components of immune system that bind human antigens as a result of the immune system malfunction. The method extracts morphological properties of stained cell regions using a combination of thresholding-based and thresholding-less approaches and applies a conventional machine-learning algorithm for image classification.
机译:ANA HEp-2医学测试是自身免疫性疾病诊断的有力工具。该测试的最后一步是由训练有素的专家对免疫荧光图像进行解释,它代表了潜在的错误来源,并且在理论上可以用自动化方法代替。在这里,我们介绍了一种用于识别由ANA HEp-2医学测试产生的免疫荧光图像类型的全自动方法。所提出的方法利用了抗核抗体所靶向的细胞区域的数量,大小,形状和位置上的差异。抗核抗体是免疫系统的体液成分,由于免疫系统功能失常,它们会结合人抗原。该方法使用基于阈值的方法和无阈值的方法相结合来提取染色细胞区域的形态学特性,并将常规的机器学习算法应用于图像分类。

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