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Ensembles of dense and dense sampling descriptors for the HEp-2 cells classification problem

机译:HEp-2细胞分类问题的密集和密集采样描述符的集合

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摘要

The classification of Human Epithelial (HEp-2) cells images, acquired through Indirect Immunofluorescence (IIF) microscopy, is an effective method to identify staining patterns in patient sera. Indeed it can be used for diagnostic purposes, in order to reveal autoimmune diseases. However, the automated classification of IIF HEp-2 cell patterns represents a challenging task, due to the large intra-class and the small inter-class variability. Consequently, recent HEp-2 cell classification contests have greatly spurred the development of new IIF image classification systems.
机译:通过间接免疫荧光(IIF)显微镜获得的人类上皮细胞(HEp-2)图像分类是识别患者血清中染色模式的有效方法。实际上,它可以用于诊断目的,以揭示自身免疫性疾病。然而,由于大的组内和小的组间变异性,IIF HEp-2细胞模式的自动分类代表了一项艰巨的任务。因此,最近的HEp-2细胞分类竞赛极大地刺激了新IIF图像分类系统的发展。

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